Polymer having a multimodal molecular weight distribution
18 claims: 13 independent, 5 dependent
- 1(i) 5,000~150,000g/molの重量平均分子量を有する、 低分子量エチレンホモポリマーを20~70質量%、 (ii)200,000~700,000g/molの重量平均分子量を有する、第1の高分子量エチレンコポリマーを20~70質量%、および (iii)200,000~2,000,000g/molの重量平均分子量を有する、第2の高分子量エチレンコポリマーを0.5~ 9.5 質量%、含 み、 前記第2の高分子量エチレンコポリマーが、前記第1の高分子量エチレンコポリマーよりも大きい重量平均分子量を有する、 ポリエチレンの調製方法であって、 連続する 逐次の 工程(a)~(c):(a)エチレンを、第1の反応器中で重合して、低分子量エチレンホモポリマーを生成する工程、(b)エチレンおよびα-オレフィンコモノマーを、第2の反応器中で重合して、第2の高分子量エチレンコポリマーを生成する工程、ならびに(c)エチレンおよびα-オレフィンコモノマーを、第3の反応器中で重合して、第1の高分子量エチレンコポリマーを生成する工程、を含む、方法。
- 2第2の高分子量エチレンコポリマーを生成する前記重合中に、前記低分子量エチレンホモポリマーの一部分しか前記第2の反応器中に存在していない、請求項1に記載の方法。
- 3前記低分子量エチレンホモポリマーの別の一部分が、第3の反応器中の第1の高分子量エチレンコポリマーの重合に直接移送される、請求項2に記載の方法。
- 4前記重合の各々が、粒状重 合で ある、請求項1~3のいずれか一項に記載の方法。
- 5前記重合の各々が、スラリー重合である、請求項4に記載の方法。
- 6前記第2の高分子量エチレンコポリマーの量が、1~15質量 %で ある、請求項1~ 5 のいずれか一項に記載の方法。
- 7前記第2の高分子量エチレンコポリマーの量が、1.2~8.5質量%である、請求項6に記載の方法。
- 8前記第2の高分子量エチレンコポリマーが、前記第1の高分子量エチレンコポリマーよりも高い質量%のコモノマー含有量を有する、請求項1~ 7 のいずれか一項に記載の方法。
- 9前記第2の高分子量 エチレン コポリマーが、プロピレン、1-ブテン、1-ペンテン、4-メチル-1-ペンテン、1-ヘキセン、1-オクテン、およびそれらの混合物から選択される1種または複数種のα-オレフィンコモノマーを含む、請求項1~ 8 のいずれか一項に記載の方法。
- 10前記第1の高分子量 エチレン コポリマーが、プロピレン、1-ブテン、1-ペンテン、4-メチル-1-ペンテン、1-ヘキセン、1-オクテン、およびそれらの混合物から選択される1種または複数種のα-オレフィンコモノマーを含む、請求項1~ 9 のいずれか一項に記載の方法。
- 11前記第1の高分子量 エチレン コポリマーおよび/または前記第2の高分子量コポリマーが、エチレン1-ブテンコポリマーである、請求項1~ 10 のいずれか一項に記載の方法。
- 12前記第2の高分子量エチレンコポリマーが、1~20質量%のコモノマー含有量を有する、請求項1~ 11 のいずれか一項に記載の方法。
- 13前記第1の高分子量エチレンコポリマーが、0.3~2.5質量%のコモノマー含有量を有する、請求項1~ 12 のいずれか一項に記載の方法。
- 14前記第1の高分子量 エチレン コポリマーが、40~60質量%の量で存在している、請求項1~ 13 のいずれか一項に記載の方法。
- 15前記低分子量エチレンホモポリマーが、50~4000g/10分のMFR 2 を有する、請求項1~ 14 のいずれか一項に記載の方法。
- 16各重合が、チーグラーナッタ触媒によるものである、請求項1~ 15 のいずれか一項に記載の方法。
- 17前記ポリエチレンが、945~962kg/m 3 の密度を有する、請求項1~ 16 のいずれか一項に記載の方法。
- 18前記ポリエチレンが、0.15~0.6g/10分のMFR 5 を有する、請求項1~ 17 のいずれか一項に記載の方法。
Independent claims18
243 paragraphs, as filed
The present invention comprises (i) 20-70% by weight of a low molecular weight ethylene polymer, (ii) 20-70% by weight of a first high molecular weight ethylene polymer, and (iii) 0.5 to 9.5% by weight of a second high molecular weight ethylene polymer. For polyethylene having a multimodal molecular weight distribution, including% by weight. The present invention also relates to a method for preparing the polyethylene, a composition containing the polyethylene, and a method for preparing the polyethylene or an article using the composition. The article itself, especially the pipe, is a further aspect of the invention.
Polyethylene (PE) is often a material commonly used primarily for making pipes used to distribute water and gas under pressure. A major area of interest is polyethylene for HDPE pipes. For these pipes, polyethylene polymerized at moderate pressure using a coordination catalyst is used.
The polyethylene used in the manufacture of HDPE pipes must meet certain requirements. They are used at high internal pressures and are often exposed to external mechanical forces. The overall pressure is usually well below the yield stress of the polymer, but mechanical failure almost always occurs before the polymer chemically decomposes. It is generally accepted that this is due to the presence of micrometer-sized local inhomogeneities in polyethylene pipes causing a strong local stress distribution around the defect that exceeds the yield stress. This stress concentration induces the formation and growth of crazes due to the rupture of craze fibrils. Therefore, this apparently brittle defect mode, the so-called slow crack growth (SCG), is observed, limiting the life of the polyethylene pipe.
Polyethylene pipes are particularly suitable for the laying of non-conventional pipes due to their flexibility, deformability and long availability. Due to the widespread use of modern relining techniques and rapid pipe laying work, the material is high, especially with respect to the effects of scratches, notches, nicks and impacts that are unique to these techniques and promote SCG. Requirements and performance guarantees are required. When installing pipes by modern non-excavation laying methods or trenchless laying methods (eg, pipe bursting method, guided horizontal boring method), the pipes are dragged horizontally in the ground. Excavation-free methods often have considerable advantages in that they do not have to interfere with the surface of the earth, such as roads and other laying, and that laying costs are significantly reduced, while protruding stones, rocks, etc. Has the disadvantage that it is more likely to scratch the outer surface of the pipe in the longitudinal direction. In addition, when pressure is applied to the interior of the pipe, there will be a very high local tangential stress at the bottom of these vertical scratches. So, unfortunately, scratches are very harmful because these scratches often start the propagation of cracks along the wall, which would not normally even start. In addition, HDPE pipes are sometimes used to guide abrasive slurries, for example in mining operations. For such use, it is important that the pipe has high wear resistance.
Polyethylene, which has excellent resistance to both the initiation of cracks and the propagation of any crack initiated by SCG, allows for better and longer lasting durable pipes, and the polyethylene volume used in pipe manufacturing. It will be possible to further increase. Pipes with wear resistance are particularly attractive.
Another important potential failure mode for HDPE pipes that have internal pressure in use is rapid crack propagation (RCP). If a longitudinal crack begins without relaxation of the gas pressure inside the pipe with a high RCP, the crack will tend to open further and break and open the pipe very quickly and over long distances. However, for pipes with low RCP properties, pipe cracking will stop after a short distance. Therefore, polyethylene, which has excellent resistance to RCP, is particularly desirable for pipe production.
There are several important properties that polyethylene should have for pressurized pipe applications; 1) slow crack growth (SCG) resistance 2) rapid crack propagation (RCP) resistance 3) machining that enables pipe extrusion Gender (eg MFR<sub>5</sub>4) Resistance to scratches / depressions (eg, indicated by hardness resistance, scratch resistance, and wear resistance) 5) Resistance to ductile expansion associated with pipe bursting.
SCG resistance and RCP resistance mean that cracks are unlikely to propagate from existing defects, while resistance to scratches and pits is unlikely to cause defects that can induce cracks. Means that.
The literature states that improving SCG usually causes worsening of RCP at the same time. This is because it is generally said that an increase in comonomer levels (usually corresponding to a decrease in density) is beneficial for SCG, while a decrease in comonomer levels is beneficial for RCP and ductile swelling. In addition, MFR<sub>5</sub>It is known that FNCT improves when However, to extrude the polymer into pipes, MFR<sub>5</sub>Is not allowed, as it must be maintained within the range normally used for workability. Abrasion resistance to scratches must also be maintained to a maximum so that defects that increase the tendency for cracks to develop are minimized. For the same reason, the hardness of the polymer should be maximized. The hardness of polyethylene generally increases with increasing crystallinity and layer thickness. On the other hand, resistance to SCG is known to improve as the degree of crystallinity decreases.
These conflicting factors lead to the development of polyethylene for the production of pipes with the required balance characteristics (eg, improvements in SCG that do not adversely affect RCP, hardness, wear resistance and workability). It makes it very difficult.
The resistance of HDPE to SCG is usually determined by measuring its environmental stress crack resistance (ESCR). The resistance of HDPE to RCP is usually determined by measuring its impact resistance.
There are two main types of polymers currently used in HDPE pipes: 1) Cr (Philips) -catalyzed monomodal Cr HDPE made in a single reactor. This technique is relatively poor for characteristic profiles with respect to requirements for pressurized pipe applications. 2) Bimodal Ziegler HDPE made by two continuously operated reactors; one of the reactors makes a low molecular weight homopolymer and one of the reactors makes a high molecular weight polymer containing a comonomer. This technique gives a better characteristic profile compared to monomodal Cr HDPE.
The prior art also proposes some new polyethylenes for pipe production. US2009 / 0105422 has, for example, a high molecular weight copolymer having a multimodal molecular weight distribution and containing 45-55% by weight of low molecular weight ethylene homopolymer, ethylene and another olefin having 4-8 carbons. Discloses a composition for forming a polyethylene containing 20 to 40% by mass and 15 to 30% by mass of an ultra-high molecular weight ethylene copolymer. The polymer is made in a polymerization step using a continuous low hydrogen / ethylene concentration for each step. This polyethylene is said to have an improved combination of environmental stress crack resistance, mechanical strength and machining behavior. Examples of US'422 are trimodal polyethylene containing 50% by weight of low molecular weight ethylene homopolymer, 32% by weight of high molecular weight ethylene / 1-butene copolymer, and 18% by weight of ultra high molecular weight ethylene / 1-butene copolymer. Has been shown to have improved ESCR compared to the bimodal polyethylene of the comparative example. The examples also show that the mechanical performance of the trimodal polyethylene (specifically, notch impact resistance and tensile creep) is broadly similar to that of the bimodal comparative example. Resistance to scratches is not mentioned.
US6,713,561 discloses a similar polyethylene molding composition made in a similar manner, which has a better ratio of stiffness to stress cracking resistance and a high swelling rate of its melt. Is taught to bring about. The latter is particularly advantageous in the preparation of articles such as bottles and small containers by blow molding. Examples of US'561 show that polyethylene molding compositions have improved stress crack resistance and swelling rate and comparable bending creep resistance compared to the corresponding bimodal composition. ..
US7,829,646 is more than the case of using the conventional Cr catalyst in one step and the Ziegler catalyst in two steps by preparing the material of HDPE pipe in the monopolymerization step with Cr / aluminophosphate catalyst. Also discloses that it provides favorable wear resistance.
However, SCG's compared to bimodal polyethylene, which does not adversely affect RCP and at the same time maintains or improves hardness and / or wear resistance and / or scratch resistance. There is no prior art document disclosing multi-modal polyethylene for pipe production that provides improvement. The properties of hardness and wear resistance minimize the occurrence of detents, notches and imperfections that can later initiate cracks, while improving SCG performance over a long period of time as cracks develop. These polyethylenes are particularly attractive because they mean that cracks develop and improved SCG performance improves the service life of the pipe.
<p><patcit num="1"><text>US2009 / 0105422</text></patcit><patcit num="2"><text>US6,713,561</text></patcit><patcit num="3"><text>US7,829,646</text></patcit><patcit num="4"><text>US6828267</text></patcit><patcit num="5"><text>US4081674</text></patcit><patcit num="6"><text>WO 98/02246</text></patcit><patcit num="7"><text>US4792588</text></patcit><patcit num="8"><text>EP520732</text></patcit><patcit num="9"><text>US7312283</text></patcit><patcit num="10"><text>US5880241</text></patcit><patcit num="11"><text>EP279863</text></patcit><patcit num="12"><text>WO93 / 23439</text></patcit><patcit num="13"><text>EP793678</text></patcit><patcit num="14"><text>WO96 / 00245</text></patcit><patcit num="15"><text>WO 97/29134</text></patcit><patcit num="16"><text>WO91 / 09882</text></patcit><patcit num="17"><text>WO97 / 31038</text></patcit><patcit num="18"><text>EP810344</text></patcit><patcit num="19"><text>EP792297</text></patcit></p>
<p><nplcit num="1"><text>GJP Britovesek et al .: The Search for New-Generation Olefin Polymerization Catalysts: Life beyond Metallocenes, edited by Angew.Chemie Int., Vol. 38 (1999), p. 428.</text></nplcit><nplcit num="2"><text>H. Makio et al .: Fl Catalysts: A New Family of High Performance Catalysts for Olefin Polymerization, Advanced Synthesis and Catalysis, Vol. 344 (2002), p. 477.</text></nplcit></p>
<p> Therefore, there is still a need for polyethylene for pipe manufacturing, which shows an improvement in SCG without the concomitant reduction in RCP. In addition, wear resistance and / or hardness and / or scratch resistance is comparable or improved compared to current bimodal polyethylene pipes, and thus scratch scratches due to the initiation of SCG can occur. Polyethylene with reduced properties seems to be particularly attractive. Of course, any newly developed polyethylene is also an acceptable range of MFR for pipe applications.<sub>5</sub>Must be processable as represented by (eg 0.2-1.4 g / 10 min).</p><p> Surprisingly, multimodal polyethylene containing a relatively small amount of a relatively high molecular weight ethylene copolymer (eg, 0.5-9.5% by weight of polyethylene) (preferably polyethylene having a trimodal composition and / or bimodal or trimodal). It has now been found that polyethylene with a molecular weight distribution) exhibits this highly desirable combination of properties. Given the presence of small amounts of relatively high molecular weight ethylene copolymers, it adversely affects other important properties (eg, RCP, hardness, wear resistance, scratch resistance and workability). The extent to which SCG is improved without is surprising. There is even evidence that SCG, hardness and scratch resistance are better when the polymer composition has a small amount than when it has a large amount of high molecular weight ethylene copolymer.</p><p> A further important issue is how to produce the multimodal polyethylene of the present invention. Such polymers can be produced, for example, by extrusion blending of individually polymerized polymers or by continuous polymerization. When serial polymerization is used, the polymer is generally prepared with the rationale of increasing molecular weight and / or increasing comonomer content, or decreasing molecular weight and / or decreasing comonomer content.</p>
<p> From the first aspect, the present invention comprises (i) 20-70% by weight of low molecular weight ethylene polymer, (ii) 20-70% by weight of first high molecular weight ethylene polymer, and (iii) second. Provided are polyethylene containing 0.5 to 9.5% by mass of high molecular weight ethylene polymer.</p><p> Preferably, the polyethylene is multimodal. Preferably, polyethylene has a multimodal molecular weight distribution. Preferably, the polyethylene has a multimodal composition.</p><p> From a further aspect, the invention comprises the step of polymerizing ethylene and, optionally, at least one other α-olefin to produce the polyethylene, wherein the polymerization is carried out in at least three steps. The method for preparing polyethylene defined in the above is provided.</p><p> In a further aspect, the present invention provides polyethylene that can be obtained by the methods defined above.</p><p> In a further aspect, the invention provides a composition comprising polyethylene as defined above.</p><p> In a further aspect, the invention provides an article comprising the polyethylene defined above or the composition defined above.</p><p> In a preferred embodiment, the article is a pipe.</p><p> In a further aspect, the invention provides a method of preparing an article as defined above, comprising the steps of molding the polyethylene defined above or the composition defined above, eg blow molding.</p><p> In a further aspect, the invention provides the use of the polyethylene defined above or the composition defined above in the manufacture of pipes.</p><p> From a further aspect, the present invention comprises (i) 20-70% by mass of the low molecular weight ethylene polymer, (ii) 20 to 70% by mass of the first high molecular weight ethylene polymer, and (iii) a second high molecular weight. A method for preparing polyethylene containing 0.5 to 30% by mass of an ethylene polymer, wherein a series of steps (a) to (c): (a) ethylene and an optional α-olefin comonomer are added to the first reactor. To produce a low molecular weight ethylene polymer, (b) a step of polymerizing ethylene and an optional α-olefin comonomer in a second reactor to produce a second high molecular weight ethylene polymer. , And (c) a step of polymerizing ethylene and an optional α-olefin comonomer in a third reactor to produce a first high molecular weight ethylene polymer.</p><p> Preferably, the polyethylene is multimodal. Preferably, polyethylene has a multimodal molecular weight distribution. Preferably, the polyethylene has a multimodal composition.</p>
<figref num="1">It is the schematic of the preferable method of this invention.</figref><figref num="2">It is a graph which shows the FNCT with respect to the fraction of the 2nd high molecular weight ethylene copolymer.</figref><figref num="3">It is a graph which shows the Charpy impact with respect to the fraction of the 2nd ultra-high molecular weight ethylene copolymer at +23 ° C.</figref><figref num="4">It is a graph which shows the Charpy impact on the fraction of the 2nd ultra-high molecular weight ethylene copolymer at -20 ° C.</figref><figref num="5">It is a graph which shows the damage property to the fraction of the 2nd high molecular weight ethylene copolymer.</figref><figref num="6">It is a graph which shows the wear with respect to the fraction of the 2nd high molecular weight ethylene copolymer.</figref><figref num="7">It is a graph which shows the shore hardness with respect to the fraction of the 2nd high molecular weight ethylene copolymer.</figref>
Definitions As used herein, the term "polyethylene" is derived from at least 50% by weight, even more preferably at least 75% by weight, even more preferably at least 85% by weight, even more preferably at least 90% by weight of ethylene. Refers to a polymer containing a unit of.
As used herein, the term "ethylene homopolymer" refers to a polymer that consists essentially of ethylene-derived repeating units. Homopolymers include, for example, at least 99% by weight, preferably at least 99.5% by weight, more preferably at least 99.9% by weight, even more preferably at least 99.95% by weight (eg, 100% by weight) of repeating units derived from ethylene. be able to.
As used herein, the term "ethylene copolymer" refers to a polymer containing repeating units derived from ethylene and at least one other monomer. In a typical copolymer, repeating units of at least 0.05% by weight, more preferably at least 0.1% by weight, even more preferably at least 0.4% by weight are derived from at least one monomer other than ethylene. Generally, ethylene copolymers contain 15% by weight or less of repeating units derived from monomers other than ethylene.
As used herein,% by weight is expressed relative to the mass of polyethylene, unless otherwise specified.
As used herein, the terms "low" and "high" are used relative to each other. Therefore, low molecular weight ethylene polymers have a molecular weight that is not as large as high molecular weight polymers.
As used herein, the term LMW polymer refers to a low molecular weight ethylene polymer.
As used herein, the term HMW1 refers to a first ultra-high molecular weight ethylene copolymer. As used herein, the term HMW2 refers to a second ultra high molecular weight ethylene copolymer. HMW1 and HMW2 each have a higher molecular weight than the LMW polymer. Either HMW1 or HMW2 can have the highest molecular weight, or they can have the same molecular weight. Therefore, preferably, the polyethylene of the present invention is bimodal or trimodal.
Whenever the term "molecular weight" is used, it means weight average molecular weight, unless otherwise specified.
As used herein, the term "multimodal" refers to polymers containing multiple components or fractions, which are multisite catalytic systems (eg, in one step) under various polymerization conditions and / or in one step. It is produced by the use of (systems with two or more types of active sites) and / or by the use of two or more different catalysts in the polymerization step or step and varies with respect to these components. A weight average molecular weight and a molecular weight distribution are provided, and / or various comonomer contents are provided. The prefix "multi" refers to the number of various components present in the polymer. So, for example, a three-component polymer is simply called a "trimodal".
As used herein, the term "multimodal composition" refers to a composition comprising a plurality of components or fractions, each of which is different within the composition. Preferably, each of the components or fractions has a different composition. That is, for example, a composition comprising an ethylene homopolymer, an ethylene copolymer containing 0.1% by weight of comonomer, and an ethylene copolymer containing 0.5% by weight of comonomer is a multimodal composition, specifically a trimodal composition.
As used herein, the term "multimodal molecular weight distribution" refers to the form of a molecular weight distribution curve, i.e., the appearance of a graph of a polymer mass fraction as a function of its molecular weight. Polyethylenes with a multimodal molecular weight distribution can exhibit more than one maximum, or at least be clearly broader when compared to the individual component curves. Furthermore, the multimodal property can be shown as a difference in the crystallization temperature curve of the melt or component. In contrast, polymers containing one component produced under constant polymerization conditions are referred to herein as unimodal.
As used herein, the term catalytic system refers to an overall active entity that catalyzes a polymerization reaction. Usually, the catalyst system is a coordination catalyst system containing a transition metal compound (active site precursor) and an activator (sometimes referred to as a cocatalyst) capable of activating the transition metal compound.
As used herein, the term "Ziegler-Natta (ZN)" catalyst preferably has a transition metal component (eg, Ti) that sigma-bonds to its ligand and activator (eg, an Al-containing organometallic compound). Refers to the catalyst containing. Preferred Ziegler-Natta catalysts optionally include particle building material.
As used herein, the term "slurry polymerization" refers to the polymerization of a polymer as a solid in a liquid. The liquid may be a monomer of a polymer. In this case, the polymerization is sometimes referred to as bulk polymerization. The term slurry polymerization is what is sometimes referred to in the art as supercritical polymerization, i.e., a polymer suspended in a fluid that is relatively close to the critical point of the fluid or, if the fluid is a mixture, its pseudo-critical point. Includes polymerization in the case of a turbid solid. A fluid can be considered relatively close to its critical point if its compression factor is less than twice its quasi-critical compression factor in the case of a fluid's critical compression factor or mixture.
As used herein, the term "multi-step polymerization" refers to polymerization that takes place in two or more steps. Generally, each step is performed in a separate reactor. The term multi-step polymerization is used interchangeably with multi-step polymerization.
The final polyethylene for processing into polyethylene articles (eg, pipes) often contains certain additives such as carbon black and colorants described below, which are polyethylene synthetic. After completion, it is usually compounded in polyethylene as a concentrated masterbatch. The following details regarding polyethylene refer to polyethylene itself and do not include any additional additives unless explicitly stated.
The polyethylene of the present invention is preferably multimodal. Preferably, polyethylene has a multimodal (eg, bimodal or trimodal) molecular weight distribution. Preferably, the polyethylene has a multimodal (eg, trimodal) composition.
The total amount of ethylene monomers present in the polyethylene of the present invention is preferably 50 to 99.9% by mass, more preferably 50 to 99.5% by mass, and even more preferably 75 to 99.0% by mass (for example, 85 to 97% by mass). ). In particular, the total amount of ethylene monomers in polyethylene is preferably 92 to 99.8% by mass, more preferably 98 to 99.9% by mass.
The total comonomer content of the polyethylene of the present invention is preferably 0.1 to 10% by mass, even more preferably 0.2 to 5% by mass, and even more preferably 0.3 to 3% by mass. When it is specified herein that the amount of a given monomer present in a polymer is an amount, it should be understood that the monomer is present in the polymer in the form of repeating units. .. One of ordinary skill in the art can easily determine what the repeating unit is for any given monomer. The comonomer is preferably one or more (eg, one) α-olefins. Particularly preferably, the comonomer is selected from propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-octene and mixtures thereof. However, preferably the α-olefin is 1-butene.
The polyethylene of the present invention is preferably high density polyethylene (HDPE). Although HDPE has a relatively low inherent mass, it still has the advantages of high mechanical strength, corrosion resistance and chemical resistance as well as long-term stability. Preferably, the polyethylene of the present invention is 935 to 910 kg / m.<sup>3</sup>, More preferably 935 ~ 970kg / m<sup>3</sup>, Even more preferably 940-965 kg / m<sup>3</sup>, Even more preferably 945 ~ 962kg / m<sup>3</sup>Has a density of.
The polyethylene of the present invention is preferably 0.05 to 2.0 g / 10 minutes, more preferably 0.05 to 1.0 g / 10 minutes, even more preferably 0.1 to 0.75 g / 10 minutes, and even more preferably 0.15 to 0.6 g / 10 minutes. MFR<sub>5</sub>Have. This is acceptable for pipe applications, i.e. it is certain that polyethylene can be extruded.
The polyethylene of the present invention preferably has an FRR (MFR) of 2.6 to 10, more preferably 2.9 to 8, and even more preferably 3 to 6.<sub>5</sub>/ MFR<sub>2</sub>).
The polyethylene of the present invention preferably has a melting temperature of 100 to 140 ° C, even more preferably 110 to 138 ° C, even more preferably 120 to 135 ° C.
The Mn (number average molecular weight) of the polyethylene of the present invention is preferably 1,000 to 50,000 g / mol, even more preferably 3,000 to 40,000 g / mol, and even more preferably 5,000 to 30,000 g / mol. The weight average molecular weight (Mw) of the polyethylene of the present invention is preferably 100,000 to 1,000,000 g / mol, even more preferably 150,000 to 750,000 g / mol, and even more preferably 200,000 to 500,000 g / mol.
The polyethylene of the present invention is multimodal. Particularly preferably, the polyethylene of the present invention is bimodal or trimodal, for example trimodal. Preferably, the molecular weight distribution (Mw / Mn) of polyethylene is 5 to 100, more preferably 10 to 50.
The trimodal properties and wide molecular weight distribution of polyethylenes of the present invention ensure that an attractive balance of polymer properties can be achieved. In particular, the presence of a second high molecular weight ethylene copolymer, especially an ultra high molecular weight ethylene copolymer in a small amount (eg, 0.5-9.5% by weight), has excellent SCG resistance as well as high resistance to RCP, scratch resistance and hardness. Polyethylene is produced.
Low molecular weight polymer The low molecular weight polymer present in the polyethylene of the present invention can be an ethylene homopolymer or an ethylene copolymer. Preferred copolymers include one or more (eg, one) α-olefin comonomer. Preferred α-olefin monomers are selected from propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-octene and mixtures thereof. Preferably, the α-olefin is 1-butene. However, preferably, the low molecular weight ethylene polymer is an ethylene homopolymer.
Preferably, the low molecular weight ethylene polymer is 920-980 kg / m.<sup>3</sup>, More preferably 920 ~ 970kg / m<sup>3</sup>Has a density of. In some cases, the low molecular weight ethylene polymer is preferably 930-965 kg / m.<sup>3</sup>, Even more preferably 940-960 kg / m<sup>3</sup>Has a density of. However, even more preferably, the low molecular weight ethylene polymer is 960 to 975 kg / m.<sup>3</sup>, More preferably 967 ~ 972kg / m<sup>3</sup>Has a density of.
Preferably, the low molecular weight ethylene polymer has an MFR of 10 to 5000 g / 10 min, even more preferably 20 to 2000 g / 10 min, even more preferably 50 to 1500 g / 10 min.<sub>2</sub>Have.
Low molecular weight ethylene polymers are preferably 2.6-10, even more preferably 2.9-8, even more preferably 3-6 FRRs (MFRs).<sub>5</sub>/ MFR<sub>2</sub>).
The low molecular weight ethylene polymer preferably has a melting temperature of 120 to 140 ° C, even more preferably 125 to 138 ° C, even more preferably 127 to 135 ° C.
The Mn of the low molecular weight ethylene polymer is preferably 1,000 to 100,000 g / mol, even more preferably 1,500 to 80,000 g / mol, and even more preferably 2,000 to 60,000 g / mol (for example, 2500 to 5000 g / mol). The weight average molecular weight (Mw) of the low molecular weight ethylene polymer is preferably 5,000 to 150,000 g / mol, even more preferably 10,000 to 100,000 g / mol, even more preferably 15,000 to 80,000 g / mol (for example, 17,000 to 35,000 g / mol). mol).
The Mw / Mn of the low molecular weight ethylene polymer is preferably 3 to 18, even more preferably 4 to 15, and even more preferably 5 to 13.
The amount of the low molecular weight ethylene polymer present in the polyethylene of the present invention is preferably 30 to 70% by mass, more preferably 35 to 65% by mass, still more preferably 40 to 60% by mass, and even more preferably 45. It is ~ 55% by mass, and mass% is based on the mass of polyethylene.
Preferably, the low molecular weight ethylene polymer is a Ziegler-Natta polymer, i.e. prepared by Ziegler-Natta catalytic polymerization.
First High Molecular Polymer The first high molecular polymer present in the polyethylene of the present invention is an ethylene copolymer. Preferred copolymers include one or more (eg, one) α-olefin comonomer. Preferred α-olefin comonomers are selected from propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-octene and mixtures thereof. Preferably, the comonomer is 1-butene. That is, preferably the first high molecular weight polymer is an ethylene 1-butene copolymer.
The amount of ethylene monomer present in the first high molecular weight polymer is preferably 50 to 99.9% by mass, more preferably 50 to 99.5% by mass. In some first high molecular weight polymers, the amount of ethylene monomer present is preferably 75-99.0% by weight, for example 85-97% by weight, based on the weight of the copolymer. In the more preferable first high molecular weight polymer, the amount of ethylene monomer present is preferably 90 to 99.8% by mass, more preferably 98 to 99.7% by mass, based on the mass of the copolymer. The total comonomer content of the first high molecular weight polymer is preferably 0.1 to 9.5% by mass, even more preferably 0.2 to 4.5% by mass, and even more preferably 0.3 to 2.5% by mass, based on the mass of the copolymer. Preferably, the comonomer content (based on mass%) of the first high molecular weight polymer is higher than that of the low molecular weight copolymer by more than 200%, more preferably more than 400%, even more preferably more than 900%.
Preferably, the first high molecular weight ethylene copolymer is 880 to 960 kg / m.<sup>3</sup>, More preferably 880 ~ 940kg / m<sup>3</sup>Has a density of. In some embodiments, the first ultra-high molecular weight ethylene copolymer is 890-930 kg / m.<sup>3</sup>, Even more preferably 890 ~ 920kg / m<sup>3</sup>Has a density of. However, more preferably, the first high molecular weight ethylene copolymer is 920 to 955 kg / m.<sup>3</sup>, Even more preferably 930 ~ 950kg / m<sup>3</sup>Has a density of.
Preferably, the first high molecular weight ethylene copolymer is MFR.<sub>21</sub>Is 0.1 ~ 10g / 10 minutes, even more preferably MFR<sub>21</sub>0.2 ~ 5g / 10 minutes, even more preferably MFR<sub>21</sub>Has 0.3 ~ 4g / 10 minutes.
The first ultra-high molecular weight ethylene copolymer preferably has an FRR (MFR) of 2.6 to 10, more preferably 2.8 to 8, and even more preferably 3 to 6.<sub>5</sub>/ MFR<sub>2</sub>).
The Mn of the first ultra-high molecular weight ethylene copolymer is preferably 10,000 to 150,000 g / mol, even more preferably 20,000 to 125,000 g / mol, and even more preferably 30,000 to 100,000 g / mol.
The weight average molecular weight (Mw) of the first ultra-high molecular weight ethylene copolymer is preferably higher than that of the low molecular weight ethylene polymer. Preferably, the Mw of the first ultra-high molecular weight ethylene copolymer is greater than 100%, more preferably greater than 200%, even more preferably 400% higher than the Mw of the low molecular weight ethylene polymer. The weight average molecular weight (Mw) of the first ultra-high molecular weight ethylene copolymer is preferably 100,000 to 1,000,000 g / mol, even more preferably 150,000 to 800,000 g / mol, and even more preferably 200,000 to 700,000 g / mol.
The Mw / Mn of the first ultra-high molecular weight ethylene copolymer is preferably 3 to 25, more preferably 4 to 20, and even more preferably 5 to 18.
The amount of the first high molecular weight ethylene polymer present in the polyethylene of the present invention is preferably 30 to 70% by mass, more preferably 35 to 65% by mass, still more preferably 40 to 60% by mass, still more. It is preferably in the range of 40 to 50% by weight, where mass% is based on the mass of polyethylene.
Preferably, the first ultra-high molecular weight ethylene copolymer is a Ziegler-Natta polymer. That is, it is prepared by Ziegler-Natta catalytic polymerization.
Second High Molecular Polymer The second high molecular polymer present in the polyethylene of the present invention is an ethylene copolymer. Preferred copolymers include one or more (eg, one) α-olefin comonomer. Preferred α-olefin comonomers are selected from propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-octene and mixtures thereof. Preferably, the comonomer is 1-butene. That is, preferably the second high molecular weight polymer is an ethylene 1-butene copolymer.
The amount of ethylene monomer present in the second high molecular weight polymer is preferably 50 to 99.5% by mass, and even more preferably 75 to 99.0% by mass (for example, 85 to 97% by mass) based on the mass of the copolymer. Is. The total comonomer content of the second high molecular weight polymer is preferably 0.1 to 30% by mass, even more preferably 0.5 to 25% by mass, and even more preferably 1 to 20% by mass (for example, 2 to 2 to 20% by mass) based on the mass of the copolymer. 10% by mass).
Preferably, the second high molecular weight ethylene copolymer has a higher mass% comonomer content than the first high molecular weight copolymer. Preferably, the comonomer content (based on mass%) of the second ultra-high molecular weight copolymer is greater than 50%, more preferably greater than 100%, even more preferably greater than 300% than that of the first ultra-high molecular weight ethylene copolymer. And expensive. For example, if the low molecular weight ethylene polymer is a homopolymer, this results in a polyethylene having a multimodal composition, specifically a trimodal composition.
Preferably, the second high molecular weight ethylene copolymer is 875 to 935 kg / m.<sup>3</sup>Has a density of. Some preferred second high molecular weight ethylene copolymers are 885 to 920 kg / m.<sup>3</sup>, Even more preferably 890 ~ 915kg / m<sup>3</sup>Has a density of. However, the more preferred second high molecular weight ethylene copolymer is 890-930 kg / m.<sup>3</sup>, Even more preferably 905 ~ 925kg / m<sup>3</sup>Has a density of.
Preferably, the second ultra-high molecular weight ethylene copolymer is 0.001 to 40 g / 10 min, even more preferably 0.005 to 30 g / 10 min, even more preferably 0.006 to 20 g / 10 min, particularly preferably 0.007 to 10 g / 10 min. (For example, 0.0075 ~ 1g / 10 minutes) MFR<sub>21</sub>Have.
Preferably, the second ultra-high molecular weight ethylene copolymer is 4.4-20, more preferably 6-18, even more preferably 7-15 FRR (MFR).<sub>21</sub>/ MFR<sub>5</sub>).
The Mn of the second ultra-high molecular weight ethylene copolymer is preferably 20,000 to 500,000 g / mol, even more preferably 30,000 to 400,000 g / mol, and even more preferably 40,000 to 300,000 g / mol.
The weight average molecular weight (Mw) of the second ultra-high molecular weight ethylene copolymer is preferably higher than the Mw of the first ultra-high molecular weight ethylene copolymer. Even more preferably, the Mw of the second ultra-high molecular weight ethylene copolymer is 5 to 1250%, even more preferably 10 to 1000%, even more preferably 15 to 750% (more preferably 15 to 750%) than the Mw of the first ultra high molecular weight ethylene copolymer. For example, 30-300%) larger. The weight average molecular weight (Mw) of the second ultra-high molecular weight ethylene copolymer is preferably 100,000 to 3,000,000 g / mol, even more preferably 150,000 to 2,500,000 g / mol, even more preferably 200,000 to 2,000,000 g / mol, and particularly preferably. It is in the range of 500,000 to 1,500,000 g / mol. This polymer can be considered as an ultra high molecular weight ethylene copolymer.
The Mw / Mn of the second high molecular weight ethylene copolymer is preferably 3 to 30, more preferably 4 to 25, and even more preferably 5 to 23.
The amount of the second ultra-high molecular weight ethylene copolymer present in the polyethylene of the present invention is preferably in the range of 0.5 to 9.5% by mass. Preferably, the amount of the second ultra-high molecular weight ethylene copolymer is greater than 1.0% by weight, for example 1.2% by weight or 1.5% by weight. Preferably, the amount of the second ultra-high molecular weight ethylene copolymer is less than 9.5% by weight, for example 9.0% by weight, or 8.5% by weight. In some polyethylenes of the present invention, the amount of the second high molecular weight ethylene copolymer is preferably 1.2 to 8.5% by mass, more preferably 1.0 to 7.5% by mass, even more preferably 1.5 to 6.0% by mass, even more preferably. Is 3 to 6% by mass, and% by mass is based on the mass of polyethylene.
Although not bound by theory, introducing a relatively large amount of comonomer into an ethylene copolymer that is present in a small amount means that the comonomer is present in the copolymer and its short chain. It is assumed that it means that it is incorporated into. This means that the level of side chains present in the copolymer is increased and, correspondingly, the entanglement of the chains is increased. Both of these effects are thought to contribute to improved SCG performance. However, at the same time, since only a small amount of polyethylene is modified in this way, the adverse effects commonly observed in the prior art on RCP, if any, are very small.
Preferably, the second ultra-high molecular weight ethylene copolymer is a Ziegler-Natta polymer. That is, it is prepared by Ziegler-Natta catalytic polymerization.
Method The polyethylene of the present invention can be prepared by blending the ethylene polymers (i), (ii) and (iii) as defined herein. However, more preferably, the polyethylene of the present invention is prepared by a multi-step polymerization method. When the polymer is produced by a multi-step method, the reactors can be in parallel or in series, but a series arrangement is preferred. When the polymer components are produced in parallel, the powder is preferably mixed and extruded for homogenization.
Catalytic Systems The polyethylenes of the present invention can be prepared using Ziegler-Natta catalysts, single-site catalytic systems, or hybrids of these catalysts. However, preferably polyethylene is prepared using one or more Ziegler-Natta catalyst systems. Preferably, the polyethylene of the present invention is prepared using, for example, one Ziegler-Natta catalytic system at each stage of multi-step polymerization.
The Ziegler-Natta catalyst system preferably contains a transition metal component and an activator. Preferably, the transition metal component when added to the polymerization reaction is contained in the solid fine particles. Preferably, at least some activator, sometimes referred to as a cocatalyst, is added to the polymerization reaction in the form of a liquid or solution.
Ziegler-Natta catalytic system transition metal component The active site of the catalytic system is a transition metal. Group 4 (eg, Ti, Zr, Hf) or Group 5 (eg, V, Nb, Ta) transition metals, especially Group 4 metals, especially Ti, are preferred. In a particularly preferred Ziegler-Natta catalyst, only Group 4 transition metals (eg, Ti) are present.
During the preparation of the catalyst system, it is preferable to use transition metals in the form of alkoxy or halogen compounds, especially chlorides. Particularly preferably, Ti is TiCl at the stage of introducing it into the catalyst system preparation process.<sub>4</sub>Supplied as.
The content of the transition metal in the final solid catalyst based on the mass of the dry solid catalyst component is preferably 0.1-5 mmol / g.
Preferably, the final solid catalyst particles are also group 2 metals, preferably magnesium compounds, even more preferably Mg-Cl compounds (eg MgCl).<sub>2</sub>) Is also included.
Magnesium compounds are Mg-Cl (eg MgCl)<sub>2</sub>Although it can be introduced into the catalyst preparation as the compound itself), it is preferred that it be prepared in stew within the catalyst preparation procedure to ensure a high degree of dispersion, i.e., contact between the transition metal and the pores. One of ordinary skill in the art knows how to carry out such an in-situ reaction.
The content of Mg in the final solid catalyst based on the mass of the dry solid catalyst component is preferably 1-25% by mass.
Particle Constituent Materials The particle constituent materials present in the catalytic system containing the Chigranata catalyst can be inorganic oxide carriers such as silica, alumina, titania, silica-alumina and silica-titania, or chlorides, It can be an Mg or Ca compound such as an oxychloride, an alkyl or alkoxide or a metal salt with an organic anion. However, preferably, this material contains silica or MgCl containing other components of choice.<sub>2</sub>Is. Even more preferably, this material is MgCl.<sub>2</sub>Is. This is particularly advantageous in polymerization to produce a second ultra high molecular weight ethylene copolymer.
The particle constituent material, if present, preferably accounts for 30-90% by weight of the final dry solid catalyst. When the particle constituent material contains an Mg-Cl compound, the constituent material will also usually function as the magnesium compound described above. When the particle constituent material is a metal oxide, the metal oxide fine particles usually define the outer morphology of the final catalyst system, and the other components of the catalyst system will be synthesized inside the pores.
Activators and Additional Ingredients Activators are compounds capable of activating transition metal components. Activators are sometimes referred to as cocatalysts. Useful activators are, among other things, alkylaluminum compounds and alkoxyaluminum compounds. Particularly preferred activators are alkylaluminum, especially trialkylaluminum (eg, trimethylaluminum, triethylaluminum, and tri-isobutylaluminum). The activator is in excess of the transition metal component and is preferably used. For example, when alkylaluminum is used as the activator, the molar ratio of aluminum in the activator to the transition metal in the transition metal component is preferably 1 to 500 mol / mol, preferably 2 to 100 mol / mol, for example 5 to. It is 50 mol / mol. The activator is usually not part of the solid microcatalyst, but is added to the polymerization reactor as a liquid.
The catalytic system containing the Ziegler-Natta catalyst may further comprise a co-activator and / or a modifier. That is, for example, two or more alkylaluminum compounds described above may be used and / or the components of the catalyst system may be combined with different types of ethers, esters, silicone ethers, etc. in the art. The activity and / or selectivity of known catalytic systems may be altered.
Catalyst system preparation Catalytic systems containing Ziegler-Natta catalysts can be prepared by procedures known in the art, eg, as disclosed in US6828267, US4081674 and US4792588.
The solid catalytic particles may optionally be washed prior to use to remove unbound transition metals. For the final catalytic particles added to the polymerization, only very small amounts of transition metals should be extractable into the alkane at 80 ° C.
The average particle size of the catalytic particles is preferably in the range of 1 to 250 μm, more preferably 4 to 100 μm, and even more preferably 6 to 30 μm (eg, 10 to 25 μm). The particles are preferably spherical.
The surface area of the catalytic particles is preferably 1 to 500 m.<sup>2</sup>/ g, more preferably 2 ~ 300m<sup>2</sup>It is in the range of / g. The pore volume of the catalytic particles is preferably 0.1 to 5 cm.<sup>3</sup>/ g, preferably 0.2-1.5 cm<sup>3</sup>It is in the range of / g.
Single-site catalyst system General single-site catalyst The catalyst system containing a single-site catalyst that can be used in the method of the present invention is preferably a metallocene-containing catalyst system. Such catalyst systems are well known in the art, such as WO98 / 02246, the contents of which are incorporated herein by reference.
The catalyst system may or may not be supported, but is preferably supported. The supported catalyst system can be prepared by immersing the active site precursor in it. Alternatively, the catalyst system can be synthesized by producing solid particles directly from the liquid starting material component without a separate immersion step. A preferred catalytic system containing a single-site catalyst comprises a carrier.
A catalytic system containing a single-site catalyst preferably comprises a carrier, an activator, and at least one transition metal active site precursor (eg, metallocene). The activator can be aluminoxane, borane or borate, but aluminoxane is preferred. Preferably, the active site precursor is a metallocene.
Catalyst form and carrier The catalyst system containing the single-site catalyst is preferably in the fine particle form. Preferably, the catalyst system is in the form of particles with a weight average particle size of 1 to 250 microns, preferably 4 to 150 microns. Preferably, the catalyst system is in the form of a free-flowing powder.
Suitable carrier materials for use in catalytic systems containing single-site catalysts are well known in the art. The carrier material is preferably an inorganic material, such as an oxide of silicon and / or aluminum, or MgCl.<sub>2</sub>Is. Preferably, the carrier is an oxide of silicon and / or aluminum. Even more preferably, the carrier is silicon.
Preferably, the carrier particles have an average particle size of 1 to 500 microns, preferably 3 to 250 microns (eg, 10 to 150 microns). Particles of appropriate size can be obtained by sieving to remove oversized particles. Sifting can be done before, during or after the preparation of the catalyst system. Preferably, the particles are spherical. The surface area of the carrier is preferably 5 to 1200 m.<sup>2</sup>/ g, more preferably 50-600m<sup>2</sup>It is in the range of / g. The pore volume of the carrier is preferably 0.1-5 cm.<sup>3</sup>/ g, preferably 0.5-3.5 cm<sup>3</sup>It is in the range of / g.
Preferably, the carrier is dehydrated before use. Particularly preferably, the carrier is heated to 100-800 ° C, more preferably 150-700 ° C (eg, about 250 ° C) prior to use. Preferably, dehydration is carried out for 0.5-12 hours.
Suitable carriers for the preparation of the catalyst systems described herein are commercially available, for example, from Grace and PQ Corporation.
The activator alminoxane is preferably present in the catalytic system as an activator. Alminoxane is preferably an oligomer. Even more preferably, aluminoxane is, for example, a suitable formula (Al).<sub>1.</sub>4R<sub>0.8</sub>O)<sub>n</sub>(n is 10-60 and R is an alkyl group, eg C<sub>1~20</sub>A cage-like (eg, polycyclic) molecule with an alkyl group). In the preferred aluminoxane, R is C<sub>1~8</sub>Alkyl groups such as methyl. Methylaluminoxane (MAO) is preferably a mixture of oligomers having a molecular weight distribution with an average molecular weight of 700-1500. MAO is the preferred aluminoxane used in catalytic systems.
Alminoxane may be modified with an alkylaluminum or an alkoxyaluminum compound. Particularly preferred modified compounds are alkylaluminum, especially trialkylaluminum (such as trimethylaluminum, triethylaluminum, and triisobutylaluminum). Trimethylaluminum is particularly preferred.
Aluminoxanes (such as MAO) suitable for the preparation of catalyst systems described herein are commercially available, for example, from Albemarle and Chemtura.
For example, the slow hydrolysis of trimethylaluminum inside the pores of the carrier can also produce activators in situ. This method is well known in the art.
Alternatively, a boron-based activator may be used. A preferred boron-based activator is one attached to at least three fluorinated phenyl rings described in EP520732.
Alternatively, the activated solid surface described in US7312283 can also be used as a carrier. These are solid inorganic oxide fine particles with high pore size that exhibit Lewis acid or Bronsted acidic behavior, are treated with an electron-withdrawing component (usually anions), and then fired.
Transition Metal Active Site Precursors Generally, the metals of transition metal precursors are 16-electron complexes, but they may sometimes contain less electrons, such as complexes of Ti, Zr or Hf.
The active site transition metal precursor is preferably metallocene.
The metallocene preferably comprises a metal coordinated by one or more η-binding ligands. The metal is preferably Zr, Hf or Ti, especially Zr or Hf. The η-binding ligand is preferably a η5-cyclic ligand, i.e. a homocyclic or heterocyclic cyclopentadienyl group, optionally having a condensation or pendant substituent. The two η-binding ligands may be crosslinked.
The preparation of metallocenes can be carried out according to methods known from the literature or similar methods and is within the skill of polymer chemists.
Other types of single-site precursor compounds are described below: GJP Britovsek et al .: The Search for New-Generation Olefin Polymerization Catalysts: Life beyond Metallocenes, Angew. Chemie Int., Vol. 38 (1999), 428 page. H. Makio et al .: Fl Catalysts: A New Family of High Performance Catalysts for Olefin Polymerization, Advanced Synthesis and Catalysis, Vol. 344 (2002), p. 477. Dupont-Brookhart-type active site precursors are described in US 5880241.
Catalyst system preparation The preparation of a single-site catalyst system can be carried out according to a method known in the art. For example, methods of supporting a single-site catalyst with a preformed carrier and aluminoxane are provided in EP279863, WO93 / 23439, EP793678, WO96 / 00245, WO97 / 29134. Alternatively, methods of supporting a single-site catalyst with a preformed carrier and boron activator are provided in WO 91/09882 and WO 97/31038. Methods for obtaining particulate catalyst systems without the use of preformed carriers are provided in EP810344 and EP792297.
The use of a Ziegler-Natta catalyst makes it easier than usual to achieve a combination of very high molecular weight and a relatively high uptake of the target comonomer in one of the polymerization steps. Preferable over single-site catalysts.
Multi-Step Polymerization Method Preferably, the polyethylene of the present invention is prepared by a multi-step polymerization method. Preferably, the polyethylene is prepared in three steps or three steps, even more preferably in three different reactors. Preferably, the method is semi-continuous or continuous.
The polyethylene of the present invention can be prepared, for example, by a slurry, gas and / or solution polymerization reaction. Gas phase polymerization and slurry phase polymerization are collectively referred to as granular polymerization. Preferably, the method of the invention comprises granular polymerization. Even more preferably, the polyethylene of the present invention is prepared by a slurry polymerization reaction. The polymerization is preferably carried out in a conventional circulating loop reactor or a stirring tank reactor, preferably in a stirring tank reactor. The diluent is preferably a hydrocarbon having 3 to 10 carbon atoms. Preferably, the diluent is n-hexane or isobutane. Most preferably, the diluent is n-hexane.
If present, the comonomer is preferably an alpha olefin with 3-10 carbon atoms. Preferably, the comonomer is propylene, n-butene, n-pentene, 4-methyl-pentene-1, n-hexene or n-octene. When the diluent is n-hexane, the comonomer is preferably propylene, n-butene, n-pentene or 4-methyl-pentene-1. More preferably, the comonomer is n-butene or n-pentene, and most preferably n-butene. When the diluent is isobutene, the comonomer is preferably n-butene, n-pentene, 4-methyl-pentene-1, hexene or 1-octene. More preferably, the comonomer is n-butene, n-pentene, n-hexene or n-octene, and most preferably n-hexene.
General Slurry Polymerization Conditions Conditions for carrying out slurry polymerization are well established in the art. The reaction temperature is preferably in the range of 30 to 120 ° C, for example 50 to 100 ° C. The reaction pressure is preferably in the range of 1-100 bar, for example 10-70 bar or 2-50 bar. The total residence time in the reactor is preferably in the range of 0.5 to 6 hours, for example 1 to 4 hours. The diluent used is generally an aliphatic hydrocarbon having a boiling point in the range of -70 to 100 ° C. Preferred diluents are n-hexane, isobutane and propane, especially n-hexane.
Hydrogen is also supplied to at least one, more preferably at least two, of the reactors to act as a molecular weight regulator. When used, the ratio of the partial pressure between hydrogen and ethylene in the reactor is 0.001-5.
Preferably, the polymerization reaction is carried out as a continuous method or a semi-continuous method. Therefore, the monomers, diluents and hydrogen are preferably supplied to the reactor continuously or semi-continuously. In addition, slurries from any of the previous reactors may be fed continuously or semi-continuously. Preferably, the catalyst system is also supplied continuously or semi-continuously to the reactor if direct supply is required. Even more preferably, the polymer slurry is taken out of the reactor continuously or semi-continuously. Semi-continuous is a relatively short time interval (eg, between 20 seconds and 2 minutes) during at least 75% (eg, 100%) of the polymerization period compared to the residence time of the polymer in the reactor. Means controlling them to be added and / or removed.
Preferably, the concentration of polymer present in the reactor during polymerization is in the range of 15-55% by weight on a total (eg slurry) basis, more preferably 25-50% by weight on a total (eg slurry) basis. It is in. These concentrations should be maintained by controlling the rate of addition of the monomer, the rate of addition of the diluent (if present) and the catalyst system, and to some extent the rate of removal of the polymer (eg, the polymer slurry from the slurry reactor). Can be done.
Gas-phase polymerization conditions Conditions for carrying out gas-phase polymerization are well established in the art. Each reactor system typically includes a reactor and a gas recycling and cooling system, in which the recycling and cooling system optionally condenses a portion of the gas. The reaction temperature is preferably in the range of 50 to 125 ° C, for example 70 to 120 ° C. The reaction pressure is preferably in the range of 1-100 bar, for example 10-30 bar. The total residence time in the reactor is preferably in the range of 2-9 hours, eg 3-7 hours. Inert gases such as nitrogen and low boiling alkanes (eg isopentane) are preferably present.
Hydrogen is also supplied to at least two of the reactor systems to function as a molecular weight regulator. When used, the partial pressure ratio between hydrogen and ethylene in the reactor is preferably 0.001-5.
Preferably, the polymerization reaction is carried out as a continuous method or a semi-continuous method. Therefore, the monomers, hydrogen, nitrogen and volatile hydrocarbons are preferably continuously or semi-continuously fed to the reactor system. Polymer powders from any of the previous reactors are preferably supplied continuously or semi-continuously. Preferably, the catalyst system is also supplied continuously or semi-continuously to the reactor if direct supply is required. Even more preferably, the polymer is continuously or semi-continuously removed from the reactor. Semi-continuous is a relatively short time interval (eg, between 20 seconds and 5 minutes) during at least 75% (eg, 100%) of the polymerization period compared to the residence time of the polymer in the reactor. Means controlling them to be added and / or removed.
The granulation method can be hybrid and includes both slurry and vapor phase reactors.
Solution Polymerization Method In this type of method, the polymer is in a reactor, in solution, preferably C.<sub>6~10</sub>It is present in saturated hydrocarbon liquids. The temperature is preferably in the range of 90-320 ° C. Preferably, the temperature rises for each polymerization step. The reaction pressure is preferably in the range of 2 to 200 bar. Preferably, the reaction pressure is reduced with respect to each step. The total residence time in the reactor is preferably 3 minutes to 1.5 hours. The solvent is preferably removed from the polymer by degassing the polymer melt.
First Preferred Method A preferred method comprises a series of steps (a)-(c): (a) ethylene and an optional α-olefin comonomer polymerized in a first reactor to have a low molecular weight. A step of producing an ethylene (LMW) polymer, (b) a step of polymerizing ethylene and an α-olefin comonomer in a second reactor to produce a first high molecular weight ethylene copolymer (HMW1), and (c). ) A step of polymerizing ethylene and an α-olefin comonomer in a third reactor to produce a second high molecular weight ethylene copolymer (HMW2).
In the first preferred method of the invention, polyethylene (eg, multimodal) is prepared by continuously preparing its ethylene polymer component from the lowest molecular weight to the highest molecular weight. That is, the molecular weights of these components increase in the order of LMW <HMW1 <HMW2. In a more preferred method of the invention, polyethylene (eg, multimodal) is prepared by continuously preparing ethylene polymer components from the lowest comonomer content to the highest comonomer content. That is, the comonomer content of these components increases in the order of LMW <HMW1 <HMW2. In this latter case, the LMW polymer will also generally be the lowest molecular weight polymer, but either HMW1 or HMW2 can be the highest molecular weight polymer. Preferably, HMW2 has the highest comonomer content and highest molecular weight.
In a preferred method, at least some of the low molecular weight ethylene polymers are present in the second reactor during the polymerization to produce the first high molecular weight ethylene copolymer. In a more preferred method, only a portion of the low molecular weight ethylene copolymer is present in the second reactor. Preferably, another portion of the low molecular weight ethylene polymer is transferred directly to the polymerization of the second high molecular weight ethylene copolymer in the third reactor. In a particularly preferred method, the low molecular weight ethylene polymer and the first high molecular weight ethylene copolymer are present in the third reactor during the polymerization to produce the second high molecular weight ethylene copolymer.
In this preferred method, essentially all catalysts used in the reactor are preferably fed to the first (LMW) reactor. The first reactor is also preferably supplied with ethylene and hydrogen. When the first reactor is a slurry phase reactor or a solution phase reactor, a diluent or solvent is also preferably supplied, respectively. Preferably, the conditions for carrying out the polymerization in the first reactor are as follows. Temperature: 50-270 ° C, more preferably 60-120 ° C, even more preferably 50-100 ° C, even more preferably 70-90 ° C Pressure: 1-220 bar, preferably 1-60 bar, more preferred Is 1 to 20 bar, more preferably 5 to 15 bar, ethylene partial pressure: 1 to 200 bar, preferably 1 to 15 bar, more preferably 1 to 10 bar, even more preferably 2 to 10 bar, residence time: 1 minute to 6 hours, preferably. 0.5-4 hours, more preferably 1-2 hours Diluent / Solvent: Not present (in the case of gas phase) or C as a diluent<sub>4~10</sub>Either saturated alkane (preferably hexane or isobutane) H<sub>2</sub>: Ethylene partial pressure ratio: 5: 1 to 0.5: 1, preferably 3: 1 to 1: 1 comonomer in the reactor: 0 to 1% by mass, preferably 0 to 0.1% by mass, more preferably 0% by mass.
Preferably, the optional comonomer is 1-butene.
The polymerization in the first reactor is preferably 30-70% by weight, more preferably 35-65% by weight, even more preferably 40-60% by weight, most preferably 45-55% by weight of the total polyethylene. Generate.
The effluent from the first (LMW) reactor is preferably directed to the second reactor. Preferably, 100% of the flow goes to the second reactor. The most volatile component is from the effluent of the first reactor so that this stream enters the second reactor after more than 80% of hydrogen, more preferably at least 90% of hydrogen, has been removed. It is preferably removed.
The second reactor is supplied with ethylene, comonomer and optionally hydrogen. If the second reactor is a slurry phase reactor or a solution phase reactor, additional diluent or solvent is supplied, respectively. The pressure is preferably lower in the second reactor than in the first reactor. Preferably, the conditions for carrying out the polymerization in the second reactor are as follows. Temperature: 50-290 ° C, preferably 50-100 ° C, more preferably 60-100 ° C, even more preferably 70-90 ° C Pressure: 1-200 bar, preferably 1-60 bar, more preferably 1 ~ 15bar, even more preferably 2 ~ 15bar, even more preferably 2 ~ 10bar Ethylene partial pressure: 0.2 ~ 200bar, preferably 0.5 ~ 15bar, more preferably 0.5 ~ 6bar, for example 0.7 ~ 6bar Dwelling time: 1 minute ~ 4 Time, preferably 0.5-4 hours, more preferably 0.5-3 hours, even more preferably 1-2 hours Diluent / Solvent: Not present (in the case of gas phase) or C as a diluent<sub>4~10</sub>Either saturated alkane (preferably hexane or isobutane) H<sub>2</sub>: Ethylene partial pressure ratio: 0.01: 1 to 0.5: 1, preferably 0.02: 1 to 0.2: 1 Reactor comonomer: Ethylene partial pressure ratio: 0.0001: 1 to 0.01: 1, preferably 0.003: 1 to 0.005: 1
Preferably, the optional comonomer is 1-butene.
In the second reactor, 30 to 70% by mass of total polyethylene is preferably produced, more preferably 35 to 65% by mass, even more preferably 40 to 60% by mass, and most preferably 40 to 50% by mass.
Essentially all of the effluent from the second reactor is preferably fed to the third reactor. Hydrogen is preferably removed. Ethylene and comonomer are supplied to the third reactor. When the third reactor is a slurry phase reactor or a solution phase reactor, a diluent or solvent is additionally preferably supplied, respectively. Preferably, the conditions for carrying out the polymerization in the third reactor are as follows. Temperature: 50-320 ° C, more preferably 50-100 ° C, even more preferably 60-100 ° C, even more preferably 70-90 ° C Pressure: 0.5-220 bar, more preferably 1-60 bar, more More preferably 1 to 10 bar, preferably 1.5 to 7 bar Ethylene partial pressure: 0.2 to 200 bar, more preferably 0.25 to 10 bar, even more preferably 0.3 to 4 bar Dwelling time: 0.2 minutes to 2 hours, preferably 2 minutes to 1 hour , More preferably 5-30 minutes Diluent / Solvent: Absent (gas phase) or C as diluent<sub>4~10</sub>Either saturated alkane (preferably hexane or isobutane) H<sub>2</sub>: Ethylene partial pressure ratio: 0.000: 1 to 0.05: 1, preferably 0.000: 1 to 0.01: 1 Reactor comonomer: Ethylene partial pressure ratio: 0.001: 1 to 0.2: 1, preferably 0.003: 1 to 0.03: 1
Preferably, the optional comonomer is 1-butene.
The molar ratio of comonomer to ethylene in the third reactor is preferably 1.5 to 20 times, more preferably 2 to 15 times, the molar ratio of comonomer to ethylene in the second reactor. Double, even more preferably 3-10 times higher.
In the third reactor, 0.5 to 9.5% by weight of total polyethylene is preferably made. Preferably, at least 1.0% by weight (eg, 1.2% by weight or 1.5% by weight) of the total polyethylene is made in the third reactor. Preferably, less than 9.5% by weight of total polyethylene (eg, 9.0% by weight or 8.5% by weight) is made in the third reactor. Particularly preferably, 1.2 to 8.5% by mass, more preferably 1.0 to 7.5% by mass, still more preferably 1.5 to 6% by mass, and most preferably 3 to 6% by mass of total polyethylene is produced.
After polymerization in the third reactor, polyethylene is preferably obtained by centrifugation or flushing.
The preferred characteristics of the polymers prepared by this method, namely the first low molecular weight ethylene polymers and the first and second high molecular weight ethylene copolymers, are as defined above.
Optionally, the polymerization of the second and third reactors can be carried out as polymerization in different zones, including different polymerization conditions within a single reactor shell. However, this is not desirable.
Second Preferred Method In the second preferred method of the present invention, polyethylene prepares its ethylene polymer component in the order of low molecular weight ethylene polymer, second high molecular weight ethylene copolymer, and then first high molecular weight ethylene copolymer. It is prepared by
This preferred method comprises a series of steps (a)-(c): (a) ethylene and an optional α-olefin comonomer polymerized in a first reactor to produce a low molecular weight ethylene polymer (LMW). , (B) Ethylene and α-olefin comonomer polymerized in a second reactor to produce a second high molecular weight ethylene copolymer (HMW2), and (c) Ethylene and α- A step of polymerizing an olefin comonomer in a third reactor to produce a first high molecular weight ethylene copolymer (HMW1).
In a second preferred method of the invention, polyethylene (eg, multimodal) is preferably prepared by preparing its ethylene polymer components in the order of lowest molecular weight, highest molecular weight, then second highest molecular weight. NS. That is, the molecular weights of these components increase in the order of LMW <HMW1 <HMW2. In a more preferred second method of the invention, polyethylene (eg, multimodal) has its ethylene polymer components in the order of lowest comonomer content, highest comonomer content, then second highest comonomer content. Prepared by preparing. That is, the comonomer content of these components increases in the order of LMW <HMW1 <HMW2. In this case, the LMW polymer will also generally be the lowest molecular weight polymer, but either HMW1 or HMW2 can be the highest molecular weight polymer. Preferably, HMW2 has the highest comonomer content and highest molecular weight.
This preferred method is shown in Figure 1, which is discussed in more detail below.
In a preferred method, at least some of the low molecular weight ethylene polymer is present in the second reactor during the polymerization to produce the second high molecular weight ethylene copolymer. In a more preferred method, only a portion of the low molecular weight ethylene copolymer is present in the second reactor. Preferably, another portion of the low molecular weight ethylene polymer is transferred directly to the polymerization of the first high molecular weight ethylene copolymer in the third reactor. In a more preferred method, the low molecular weight ethylene polymer and the second high molecular weight ethylene copolymer are present in the third reactor during the polymerization to produce the first high molecular weight ethylene copolymer.
In this preferred method, essentially all the catalyst used in the reactor is preferably fed to the first reactor. The first reactor is also preferably supplied with ethylene and hydrogen. When the first reactor is a slurry reactor or a solvent reactor, a diluent or solvent is also preferably supplied, respectively. Preferably, the conditions for carrying out the polymerization in the first reactor are as follows. Temperature: 50-270 ° C, more preferably 50-120 ° C, more preferably 50-100 ° C, even more preferably 70-90 ° C Pressure: 1-220 bar, preferably 1-70 bar, more preferably 1 to 20 bar, even more preferably 2 to 50 bar, even more preferably 3 to 20 bar, for example 5 to 15 bar Ethylene partial pressure: 0.2 to 200 bar, more preferably 0.5 to 15 bar, even more preferably 1 to 10 bar, for example 2 to ~ 10bar Resident time: 1 minute to 6 hours, preferably 0.5 to 4 hours, more preferably 1 to 2 hours Diluent / solvent: Not present (in the case of gas phase) or C as a diluent<sub>4~10</sub>Either saturated alkanes (preferably hexane or isobutane), and even more preferably hexane H as a diluent.<sub>2</sub>: Ethylene partial pressure ratio: 5: 1 to 0.5: 1, preferably 3: 1 to 1: 1 comonomer in the reactor: 0 to 1% by mass, preferably 0 to 0.1% by mass, more preferably 0% by mass.
Preferably, the optional comonomer is 1-butene, 1-pentene, 1-hexene or 1-octene, more preferably 1-butene.
The polymerization in the first reactor preferably produces 30-70% by weight, more preferably 35-65% by weight, even more preferably 40-60% by weight, most preferably 45-55% by weight of total polyethylene. do.
All effluent from the first reactor (after removal of hydrogen) may be transferred to the second reactor. However, more preferably, it is divided into one that goes directly to the third reactor and one that goes via the second reactor. Preferably 5-100% of the flow, more preferably 10-70%, most preferably 15-50% (eg 20-40%) go through the second reactor. Optionally, unwanted compounds are removed from the stream. The most volatile components are, for example, after more than 96% of hydrogen has been removed, this flow enters the second reactor, and after more than 80% of hydrogen has been removed, the flow has a third reaction. It is preferably removed from the effluent of the first reactor so that it enters the vessel directly. Therefore, the flow entering the second reactor and the flow entering the third reactor directly contain polyethylene and diluents predominantly. Preferably, this flow is split after substantially all (eg, all) of hydrogen has been removed. This optional division uses control, for example by measuring the mass flow rate of the slurry, and / or the volume feeder, or flow between the second and third reactors in a short sequence. It can be achieved using switching.
Ethylene and comonomer are supplied to the second reactor. A significant fraction of the comonomer feed is preferably an unpurified recycled stream from the third reactor. When the second reactor is a slurry phase or a solution phase, a diluent or solvent is preferably supplied, respectively. At the option, hydrogen is also supplied to the reactor. Preferably, the conditions for carrying out the polymerization in the second reactor are as follows. Temperature: 50-290 ° C, preferably 55-120 ° C, more preferably 50-100 ° C, for example 60-100 ° C, even more preferably 70-90 ° C Pressure: 0.5-220 bar, preferably 0.75 ~ 70 bar, more preferably 1 ~ 50 bar, even more preferably 1 ~ 16 bar, for example 5 ~ 11 bar Ethylene partial pressure: 0.2 ~ 200 bar, preferably 0.3 ~ 10 bar, more preferably 0.3 ~ 4 bar H<sub>2</sub>: Ethylene partial pressure ratio: 0.000: 1 to 0.05: 1, preferably 0.000: 1 to 0.01: 1 Dwelling time: 0.2 minutes to 1 hour, preferably 1 minute to 1 hour, preferably 2 to 20 minutes Diluent: Existence Not (in the case of gas phase) or C as a diluent<sub>4~10</sub>Saturated alkane (more preferably hexane or isobutane), even more preferably as a diluent hexane Reactor comonomer: ethylene partial pressure ratio: 0.001: 1 to 0.2: 1, preferably 0.003: 1 to 0.03: 1
Preferably, the optional comonomer is 1-butene, 1-pentene, 1-hexene or 1-octene, most preferably 1-butene.
In the second reactor, 0.5 to 9.5% by weight of the total polymer is preferably made. Preferably, at least 1.0% by weight (eg, 1.2% by weight or 1.5% by weight) of the total polyethylene is made in the second reactor. Preferably, less than 9.5% by weight of total polyethylene (eg, 9.0% by weight or 8.5% by weight) is made in the second reactor. Particularly preferably, 1.2 to 8.5% by mass, more preferably 1.0 to 7.5% by mass, still more preferably 1.5 to 6% by mass, and most preferably 3 to 6% by mass of total polyethylene is produced.
In essence, all of the polymer effluent from the second reactor is preferably fed to the third reactor. This stream mainly contains polyethylene and diluents. Optionally, the volatiles are partially removed from the stream before entering the third reactor. For example, volatile comonomer (eg, 1-butene) can be removed from the stream. Any polymer effluent from the first reactor that does not enter the second reactor is preferably fed to the third reactor.
Ethylene and hydrogen are supplied to the third reactor. When the third reactor is a slurry phase or a solution phase, a diluent or solvent is preferably supplied, respectively. Comonomers are also preferably supplied. Preferably, the main amount of comonomer feed comes with the polymer from the second reactor. Preferably, the conditions for carrying out the polymerization in the third reactor are as follows. Temperature: 50-320 ° C, preferably 50-120 ° C, more preferably 50-100 ° C, even more preferably 70-90 ° C Pressure: 1-220 bar, preferably 1-70 bar, more preferably 1 ~ 50bar, even more preferably 1 ~ 15bar, even more preferably 2 ~ 10bar Ethylene partial pressure: 0.4 ~ 200bar, more preferably 0.5 ~ 15bar, even more preferably 0.5 ~ 6bar Dwelling time: 1 minute ~ 4 hours, preferably Is 0.5-4 hours, more preferably 1-2 hours Diluent: Not present (in the case of gas phase) or C as a diluent<sub>4~10</sub>Saturated alkanes (more preferably hexane or isobutane), even more preferably hexane H as a diluent<sub>2</sub>: Ethylene partial pressure ratio: 0.01: 1 to 0.5: 1, preferably 0.02: 1 to 0.2: 1 Reactor comonomer: Ethylene partial pressure ratio: 0.0001: 1 to 0.01: 1, preferably 0.0003: 1 to 0.005: 1
Preferably, the optional comonomer is 1-butene, 1-pentene, 1-hexene or 1-octene, even more preferably 1-butene.
The molar ratio of comonome / ethylene is preferably 5 to 90% of the molar ratio in the second reactor, more preferably 10 to 40% of the molar ratio in the second reactor. The pressure is lower in the third reactor than in the second reactor.
In the third reactor, 30-70% by weight, more preferably 35-65% by weight, even more preferably 40-60% by weight, most preferably 40-50% by weight of the total polymer is made.
Optionally, a portion or part of the flow exiting the third reactor is recycled to the second reactor.
After polymerization in the third reactor, polyethylene is preferably obtained by centrifugation or flushing.
The preferred characteristics of the polymers prepared by this method, namely the first low molecular weight ethylene polymers and the first and second high molecular weight ethylene copolymers, are as defined above.
This polymerization is generally applicable to the preparation of multimodal (eg, trimodal) polyethylene. That is, from a further aspect, the present invention comprises (i) 20-70% by mass of the low molecular weight ethylene polymer, (ii) 20 to 70% by mass of the first high molecular weight ethylene polymer, and (iii) the second. A method for preparing polyethylene containing 0.5 to 30% by mass of a high molecular weight ethylene polymer, wherein a series of steps (a) to (c) (a) ethylene and an optional α-olefin comonomer are used in the first reactor. Steps of polymerizing in to produce a low molecular weight ethylene (LMW) polymer, (b) ethylene and an optional α-olefin comonomer polymerized in a second reactor to produce a second high molecular weight ethylene (LMW). It comprises the steps of producing a HMW2) polymer and (c) polymerizing ethylene and an optional α-olefin comonomer in a third reactor to produce a first high molecular weight ethylene (HMW1) polymer. , Provide a method.
Preferably, the polyethylene is multimodal. Preferably, polyethylene has a multimodal molecular weight distribution. Preferably, the polyethylene has a multimodal composition.
In this method of the present invention, polyethylene is prepared by preparing the ethylene polymer component in the order of low molecular weight ethylene polymer, second high molecular weight ethylene copolymer, and then first high molecular weight ethylene copolymer. Preferably, (eg, multimodal) polyethylene is prepared by preparing its ethylene polymer components in the order of lowest molecular weight, highest molecular weight, then second highest molecular weight. That is, the molecular weights of these components increase in the order of LMW <HMW1 <HMW2. In a more preferred second method of the invention, the polyethylene (eg, multimodal) prepares its ethylene polymer components in the order of lowest comonomer content, highest comonomer content, then second highest comonomer content. Is prepared by That is, the comonomer content of these components increases in the order of LMW <HMW1 <HMW2. In this latter case, the LMW polymer will also generally be the lowest molecular weight polymer, but either HMW1 or HMW2 can be the highest molecular weight polymer. Preferably, HMW2 has the highest comonomer content and highest molecular weight.
In a preferred method, at least some of the low molecular weight ethylene polymer is present in the second reactor during the polymerization to produce the second high molecular weight ethylene copolymer. In a more preferred method, only a portion of the low molecular weight ethylene copolymer is present in the second reactor. Preferably, another portion of the low molecular weight ethylene polymer is transferred directly to the polymerization of the first high molecular weight ethylene copolymer in the third reactor. In a more preferred method, the low molecular weight ethylene polymer and the second high molecular weight ethylene copolymer are present in the third reactor during the polymerization to produce the first high molecular weight ethylene copolymer. Therefore, any low molecular weight ethylene polymer that is not present in the second reactor preferably goes directly to the third reactor.
Optionally, the polymerization of the second and third reactors can be carried out as polymerization in different zones, including different polymerization conditions within a single reactor shell. However, this is not desirable.
After polymerization in the third reactor, polyethylene is preferably obtained by centrifugation or flushing.
In these methods, the low molecular weight ethylene polymer is preferably an ethylene homopolymer. Preferably, the first high molecular weight ethylene polymer is an ethylene copolymer. Preferably, the second high molecular weight ethylene polymer is an ethylene copolymer. Preferably, the amount of the second high molecular weight ethylene polymer is 0.5 to 30% by mass, more preferably 1 to 15% by mass, still more preferably 1.5 to 9.5% by mass, still more preferably 1.2 to 8.5% by mass ( For example, 1.5 to 6% by mass).
In such a method, the second high molecular weight ethylene polymer has a higher mass% comonomer content than the first high molecular weight ethylene polymer. Preferably, the second high molecular weight ethylene copolymer has a comonomer content of 1-20% by weight. Preferably, the second high molecular weight copolymer comprises one or more α-olefin comonomer, and particularly preferably propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-Selected from octene and mixtures thereof. Particularly preferably, the second high molecular weight copolymer is an ethylene 1-butene copolymer.
In such a method, preferably the first high molecular weight ethylene copolymer has a comonomer content of 0.3 to 2.5% by weight. Preferably, the first high molecular weight copolymer comprises one or more α-olefin comonomer, eg, propylene, 1-butene, 1-pentene, 4-methyl-1-pentene, 1-hexene, 1-. Selected from octene and mixtures thereof. Particularly preferably, the first high molecular weight copolymer is an ethylene 1-butene copolymer.
In such a method, preferably, the second high molecular weight copolymer has a higher weight average molecular weight than the first high molecular weight copolymer. Preferably, the second high molecular weight copolymer has a weight average molecular weight of 200,000 to 2,000,000 g / mol. Preferably, the first high molecular weight copolymer has a weight average molecular weight of 200,000 to 700,000 g / mol.
In such methods, preferably the first high molecular weight copolymer is present in an amount of 40-60% by weight. Preferably, the low molecular weight ethylene polymer is an ethylene homopolymer. Preferably, the low molecular weight ethylene polymer is 50-4000 g / 10 min MFR.<sub>2</sub>Have.
In such a method, polyethylene is preferably 945-962 kg / cm.<sup>3</sup>Density and / or 0.15 ~ 0.6g / 10 min MFR<sub>5</sub>Have.
In such methods, each polymerization is preferably catalyzed by Ziegler-Natta.
More preferred features of each polymer component and polyethylene are as described above. In addition, the preferred conditions for carrying out each polymerization step are as defined above for the second preferred method.
The method described above is schematically shown in FIG. Figure 1 shows how the flow from the 1st (LMW polymer) reactor is split between the 2nd (HMW2 polymer) and 3rd (HMW1 polymer) reactors. .. Figure 1 also shows how this method can advantageously recycle diluents and / or comonomer. The dotted line in FIG. 1 illustrates the recycling of comonomer separated from the polyethylene product into each reactor. The thin solid line in FIG. 1 illustrates the recycling of either the purified or unpurified form of the diluent. As used herein, an unpurified diluent refers to a diluent in which the wax (the PE fraction soluble in hexane) has not been removed and the comonomer has not been completely removed. In contrast, hydrogen may, for example, be optionally removed and preferably removed before being recycled into, for example, a third reactor. Correspondingly, purifying the diluent means a diluent that is essentially free of wax and comonomer.
In a preferred method, the purified diluent accounts for 30-100% of the total diluent recycled. Preferably, the first (LMW polymer) reactor is fed with a purified diluent. Preferably, the second (HMW2 polymer) reactor is fed with a non-purified diluent and / or a purified diluent. Preferably, the third (HMW1 polymer) reactor is fed with a non-purified diluent and / or a purified diluent. In addition, a certain amount of new diluent (eg, 0.1-4% by volume) is preferably added to replace the reactor system, eg, the lost diluent.
In a more preferred method, the first (LMW polymer), second (HMW2 polymer) and third (HMW1 polymer) reactors are fed with new comonomer and / or recycled comonomer. Preferably, the comonomer is not supplied to the first (LMW polymer) reactor. Preferably, more than 40% by weight, even more preferably more than 60% by weight (eg, 40-80% by weight) of the total supply of comonomer to the third (HMW1) reactor is the diluent, and the second (eg, 40-80% by weight). It comes with a stream of polymers from the reactor of HMW2).
Advantages of the method shown in FIG. 1 over the conventional method (which sequentially prepares polymers with increased molecular weight and comonomer content) include: -Since the comonomer concentration is usually lower in the HMW1 polymer reactor than in the HMW2 polymer reactor, the total mass flow rate of the separation-derived comonomer is reduced. This makes it easier to separate the comonomer from the diluent and from the polyethylene wax, and the smaller volume makes the comonomer easier to handle and cheaper. It is also advantageous when some of the comonomer undergoes unwanted chemical reactions in this recycling system. The volume required to store the excess comonomer during the transfer of the product to a grade that requires less comonomer is smaller. The volume of the HMW2 polymer reactor can be significantly reduced because the catalyst concentration is considerably higher in the HMW2 polymer reactor and the pressure is usually higher than in the early days of the method. Also, in the HMW2 polymer reactor, the residence time of the catalyst in the reactor system in the HMW2 polymer process is shorter than in the conventional method, and the Ziegler catalyst has the ability to take up comonomer as the residence time increases. It is usually easier to incorporate very high comonomer content as it is reduced. -A high fraction of the recycled diluent can be used as a non-purified diluent. For all three reactors, with equal total residence time (see Examples), catalyst consumption is lower. -It is possible to recycle the blend of comonomer and diluent into a second reactor. If the LMW polymer is a copolymer, or if a small amount of comonomer is acceptable in the LMW polymer, the diluent from the third reactor is returned to the first reactor for recycling without removal of the comonomer. It is possible.
Although we have described polymerization in relation to three steps and three reactor sequences, it is also here that, of course, it may be incorporated into longer (eg, four or more steps) sequences that include additional reactors. It should be noted. For example, regardless of the method used, there may be one reactor behind the third reactor, optionally. This preferably produces a copolymer. In this case, the reactor is 1 to 30% by weight, more preferably 2 to 20% by weight (eg, 2 to 9.5% by weight), even more preferably 3 to 15% by weight (eg, 4 to 9.5% by weight) of the total polymer. ) Is generated. Similarly, one reactor (eg, a prepolymerization reactor) may be present before the first reactor mentioned above.
Downstream processing When the final polyethylene is obtained from the slurry reactor, the polymer is removed from it and the diluent is preferably separated from the polymer by flushing or filtration. The main portion of the diluent and unconverted comonomer is preferably recycled and returned to the polymerization reactor. Preferably, the polymer is then dried (eg, to remove liquid and gas residues from the reactor). Optionally, the polymer is subjected to a decalcification step, ie, washing with alcohol (optionally mixed with a hydrocarbon liquid or water). Preferably, there is no decalcification step.
In order to be able to handle polyethylene without difficulty, both within and downstream of the polymerization process, polyethylene from the reactor is preferably relatively high bulk density particles (eg, said polymer powder). Less than 20% by mass is smaller than size 100 μm and loosen bulk density is 300 kg / m<sup>3</sup>By having (greater than), it is preferably in a fluid state.
Preferably, the process from polymerization to the exit of the extruder for pelletization is inert (eg, N).<sub>2</sub>) Conducted in a gas atmosphere.
Antioxidants are preferably added to polyethylene (processing stabilizers and long-term antioxidants). As antioxidants, all compound types known for this purpose (sterically or semi-sterically hindered phenols, aromatic amines, sterically hindered aliphatic amines, organic phosphates, and sulfur-containing compounds (eg,). Thioether)) can be used. Other additives (anti-adhesive agents, color master batches, antistatic agents, slip agents, fillers, UV absorbers, lubricants, acid neutralizers and fluoroelastomers, and other polymer processing agents) are optional. It may be added to the polymer.
When polyethylene will be used in pipe production, it is extruded after a pigment (eg, carbon black) is preferably added. The pigment is preferably added in the form of a masterbatch.
Polyethylene is preferably extruded and granulated into pellets. The preferred pellet is 400 kg / m<sup>3</sup>It has a loose bulk density of more than 2 mm and has less than 10% by mass of pellets smaller than 2 mm in size.
After pelleting the polyethylene, additional additives (eg, polymer processing agents or anti-adhesives) may be added. In this case, the additive is preferably added, for example, as a masterbatch and pellets mixed with it before being molded into an article.
Polyethylene composition The polyethylene composition of the present invention preferably has at least one of the following properties.
For polyethylene, for example, under the conditions specified in the following examples, the FNCT time to fracture preferably exceeds 10 hours, more preferably exceeds 15 hours, and even more preferably exceeds 20 hours. The maximum FNCT time to destruction can be, for example, 50 hours.
Polyethylene has a Charpy impact at + 23 ° C, preferably 5 kJ / m, under the conditions specified in the following examples, for example.<sup>2</sup>More than, more preferably 10kJ / m<sup>2</sup>Beyond, even more preferably 12 kJ / m<sup>2</sup>Exceed. The maximum Charpy impact is, for example, 50kJ / m<sup>2</sup>Can be.
Polyethylene has, for example, a shore hardness of preferably at least 30, more preferably at least 40, even more preferably at least 50, and more preferably at least 60 under the conditions specified in the examples below. The maximum shore hardness can be 90.
Polyethylene has, for example, wear of less than 40%, more preferably less than 30%, even more preferably less than 25%, under the conditions specified in the examples below. The minimum wear can be 5%.
The advantage of the polyethylene composition of the present invention is the combination of properties that can be achieved. The preferred polyethylene composition of the present invention has, for example, at least two, more preferably at least three, and even more preferably all four of the following properties, as measured under the conditions specified in the examples below. : FNCT time to destruction:> 10 hours Charpy impact:> 5kJ / m<sup>2</sup> Shore hardness:> 30 Wear: <40%
Even more preferably, the polyethylene composition of the present invention, for example, when measured under the conditions specified in the following examples, has at least two, more preferably at least three, and even more preferably four of the following properties: Have all of: FNCT time to destruction:> 20 hours Charpy impact:> 12kJ / m<sup>2</sup> Shore hardness:> 50 Wear: <25%
Applications The polyethylene of the present invention can be used in any molding application such as blow molding, or in extrusion molding such as pipe extrusion and film extrusion. However, preferably polyethylene is used in extrusion, especially in pipe extrusion.
The polyethylene of the present invention is preferably used for pipe applications. Preferably used in HDPE pipes, for example according to the PE80 or PE100 standard. Pipes can be used, for example, in water and gas distribution, sewerage, wastewater, agricultural applications, slurries, chemicals and the like.
The present invention will be described below with reference to the following non-limiting examples and drawings.
(Example) Polymer measurement method Unless otherwise specified, the following parameters were measured for the polymer samples shown in the table below.
MFR<sub>2</sub>, MFR<sub>5</sub>And MFR<sub>21</sub>Was measured at loads of 2.16, 5.0 and 21.6 kg, respectively, according to ISO 1133. Those measurements were made at 190 ° C.
Molecular weight and molecular weight distribution, Mn, Mw and MWD were measured by gel permeation chromatography (GPC) according to the following method: weight average molecular weight Mw, and molecular weight distribution (MWD = Mw / Mn, Mn is number average molecular weight). , Mw is the weight average molecular weight) is measured by a method based on ISO16014-4: 2003. Waters Alliance GPCV2000 instrument equipped with refractive index detector and online viscometer, 1 PLgel GUARD + 3 PLgel MIXED-B, and 1,2,4-trichlorobenzene (TCB, 250 mg / L 2,6) as solvent -Ditertbutyl-4-methyl-phenol stabilized) was used and used at a constant flow rate of 1 mL / min at 140 ° C. 200 μl of sample solution was injected per analysis. The column set was calibrated using general purpose calibration (according to ISO 16014-2: 2003) with polystyrene (PS) standards with a narrow molecular weight distribution of 15 in the range 1.0 kg / mol to 12000 kg / mol. These standards are Polymer It was from Labs and had a Mw / Mn of 1.02 to 1.10. Mark Houwink constants are polystyrene and polyethylene (for PS, K: 0.19 × 10)<sup>-5</sup>For dL / g and a: 0.655, PE, K: 3.9 × 10<sup>-4</sup>Used for dL / g and a: 0.725). All samples should be dissolved in 4 mL of stabilized TCB (at 140 ° C) 0.5-3.5 mg of polymer prior to injection into the GPC instrument, and occasionally shaken at 140 ° C for 3 hours, and 160 ° C. Prepared by holding in for an additional hour.
The melting point was measured according to ISO11357-1 by Perkin Elmer DSC-7 differential scanning calorimetry. The heating curve was 10 ° C / min and -10 ° C to 200 ° C. It was held at 200 ° C for 10 minutes. The cooling curve was 10 ° C / min and 200 ° C to -10 ° C. The melting point was adopted as the endothermic peak of the second heating. Crystallinity was calculated by dividing the observed melting peak by the heat of fusion of fully crystalline polyethylene (generally 290 J / g is adopted).
The comonomer content (% by weight) was determined based on Fourier Transform Infrared Spectroscopy (FTIR) calibrated by C13-NMR.
The density of the material is measured according to Method D of ISO 1183: 1987 (E) using isopropanol-water as the gradient liquid. When the sample was crystallized, the plaque cooling rate was 15 ° C / min. The adjustment time was 16 hours.
Polymer rheology is frequency swept at 190 ° C in a nitrogen atmosphere using a parallel plate shape, a 25 mm diameter plate, and a Rheometrics RDA II Dynamic Rheometer with a 1.2 mm spacing according to ISO 6721-10. It was measured by. These measurements show storage modulus (G'), loss modulus (G "), and complex viscosity (η).<sup>*</sup>) And complex modulus (G)<sup>*</sup>) Are all obtained as a function of frequency (ω). These parameters are associated as follows: For any frequency ω: Complex modulus: G<sup>*</sup>= (G'<sup>2</sup>+ G "<sup>2</sup>)<sup>1/2</sup>.. Complex viscosity: η<sup>*</sup>= G<sup>*</sup>/ ω. The unit used for elastic modulus is Pa (or kPa), and the unit used for viscosity is Pa s, which is frequency (1 / s). η<sup>*</sup><sub>0.05</sub>Has a frequency of 0.05s<sup>-1</sup>Complex viscosity in, η *<sub>300</sub>Is 300s<sup>-1</sup>Is the complex viscosity in. According to the empirical Cox-Merz rule, for a given polymer and temperature, the complex viscosity as a function of the frequency measured by this dynamic method is the viscosity as a function of the shear rate for stable flow (eg, capillary). It is the same.
The activity coefficient for the bench scale polymerization operation is calculated by the following formula:
<maths num="1"><img file="JP6820249B2_D0001.tif" /></maths>
PI, which is a polydispersity index, is the crossing point in RDA frequency sweep, G'is equal to G ", and PI = 10<sup>5</sup>Given by Pa / G'.
Intrinsic viscosity: The viscosity number was measured in decalin at 135 ° C according to EN-ISO1628-3: 20, and calculated from this intrinsic viscosity as follows. From the measurements after each polymerization step, Mv (viscosity average molecular weight) was calculated by the Marks-Houwink formula using a pre-exponential factor of 0.0475 ml / g and an index of 0.725. This makes it possible to calculate the Mv of the polymer produced in each step by the following additional formula.
<maths num="2"><img file="JP6820249B2_D0002.tif" /></maths>
In the formula, Mw, Mn and Mv are the weight average, number average molecular weight and viscosity average molecular weight, respectively, W is the mass fraction of the polymer, i is the polymer component and n is the total number of components after the process. be. The first two equations are rigorous and the third equation is empirical. Furthermore, Mw / Mn of each polymer component was adopted as 7.
How to Measure Polymer Compositions Unless otherwise stated, the following parameters are measured for 4 mm plates compression molded with Collin 300 P compression moulders with reference to ISO293-186, ISO1872-2-1197 and ISO1873-2-1997. bottom.
FNCT time to fracture was applied to a 10 mm compression molded dogbone crushed from a compression molded plate with a notch depth of 1.6 mm in deionized water at a temperature of 80 ° C in 2% by weight Arkopal N110. Measure according to ISO 16770 using 8.5MPa.
Charpy impact is measured at + 23 ° C and -20 ° C according to ISO179-1 / 1eA using a V-shaped notch sample on a compression part.
Shore hardness: Shore D is measured on a digital shore measuring instrument, Bareiss HHP-2001, with any crack initiated. Samples are prepared according to ISO291: 1997.
Abrasion resistance is measured at 23 ° C with a force of 10 N according to the ISO 4649 Type B test (non-rotating sample).
Scratch: The polymer composition compression molded plate was scratched with a normal force of 10N by an Erichsen scratch resistance tester with a tip diameter of + 23 ° C and 1mm. The scratched plate was cut perpendicular to the scratch, a micrograph of the cross section was taken, and the depth from this point to the scratch was measured.
For small-scale tests, pipes cannot be made and tested for this test, so use FNCT measurements for compounds as a measure of SCG, and use Charpy impact for compounds as a measure of RCP. Is customary. Similarly, shore hardness D measures the hardness of a sample and is a measure of the likelihood of scratches. Wear resistance according to ISO4649 measures the volume loss of a test material after it has been exposed to wear by a wear sheet that would cause the mass loss defined by the reference compound under the same specified conditions of the test. .. For example, the movement of the wear slurry along the surface of the polymer also provides a measure of the degree of wear, as well as a measure of the likelihood of scratches, such as a hardness test.
Experiments (Examples 1 to 4) A conventional Ziegler-Natta catalyst containing Ti as a transition metal was used. This catalyst is described in US4792588. The titanium content was 3.4% by mass.
The polymerization was carried out in an 8 liter flask equipped with a stirrer and a temperature control system. The catalyst was added as muddy. TEA, triethylaluminum, was used as the activator. The same comonomer supply system was used for all operations. The procedure included the following steps:
Polymerization of low molecular weight ethylene polymers: The reactor was purged with nitrogen and heated to 110 ° C. Next, hydrogen was filled at 20 ° C and a pressure of 3.05 bar was applied. Next, 3000 ml of liquid hexane was added to the reactor and stirring was started at 300 rpm. The temperature of the reactor was 70 ° C. The co-catalyst and TEA were then pre-contacted in mud for 5 minutes and filled with 800 ml of hexane. Next, ethylene was supplied to bring the total pressure to 12.3 bar. Next, ethylene was continuously supplied by a mass flow meter. Once a sufficient amount of powder has been prepared, the polymerization is stopped and the hexane is evaporated.
First Ultra High Molecular Weight Ethylene Polymerization: Fill hydrogen at 20 ° C up to 0.16 bar. Next, stirring is started at 300 rpm. The reactor is then heated to> 70 ° C. When the temperature reaches 72 ° C, add 35 ml of 1-butene and feed ethylene to a total pressure of 5.7 bar g. Next, ethylene and 1-butene are continuously supplied. Once a sufficient amount of powder has been prepared, the polymerization is stopped and the hexane is evaporated.
Polymerization of second ultra-high molecular weight ethylene polymer: Heat the reactor to> 70 ° C, fill with 3000 ml of hexane and start stirring at 300 rpm. When the temperature reaches 72 ° C, feed 180 ml of ethylene and 1-butene to a total pressure of 5.3 bar. Next, ethylene and 1-butene were continuously supplied. Once a sufficient amount of powder has been prepared, the polymerization is stopped and the hexane is evaporated.
In Examples 1, 3 and 4, the polymerization is in the order of (i) low molecular weight ethylene polymer, (ii) first high molecular weight ethylene polymer (HMW1), and (iii) second high molecular weight ethylene polymer (HMW2). It was carried out in. Therefore, when polymerizing HMW1, the LMW polymer is present, and when polymerizing HMW2, both the LMW polymer and the HMW1 polymer are present. In Example 2, the polymerization was carried out in the order of (i) low molecular weight ethylene polymer, (ii) second high molecular weight ethylene polymer (HMW2), and (iii) first high molecular weight ethylene polymer (HMW1). Therefore, when polymerizing HMW2, the LMW polymer is present, and when polymerizing HMW1, both the LMW polymer and the HMW2 polymer are present.
Polymerization of the four comparative examples was also performed. The first comparative example polymerization (C1) was carried out in the same manner as above, except that 1-butene was not added during the polymerization of the second ultra-high molecular weight ethylene polymer. Comparative Example Polymerization (C2 and C4) was carried out in the same manner as above, except that the polymerization was stopped after the polymerization of the first ultra-high molecular weight ethylene. Comparative Example Polymerization (C3) was performed with a higher molecular weight (10% by weight) second high molecular weight (HMW2) polymer.
Further details of the polymerization procedure and results are given in Table 1A, and the details of the resulting polyethylene polymer are summarized in Table 1B below, where Rl is the polymerization in the first reactor and its formation. Rll refers to the polymerization in the second reactor and the combination of the products of the first and second reactors, and Rlll refers to the polymerization in the third reactor and the first. It refers to the combination of the reactor, the product of the second reactor and the product of the third reactor, and this product is the final polyethylene product.
<tables num="1A"><img file="JP6820249B2_D0003.tif" /></tables>
<tables num="1B"><img file="JP6820249B2_D0004.tif" /></tables>
<tables num="1C"><img file="JP6820249B2_D0005.tif" /></tables>
<tables num="2"><img file="JP6820249B2_D0006.tif" /></tables>
The results of the polymerization activity show that the ratio of the effective average activity of all steps to the activity of step Rl is more than 10% for the three-step operation for HMW2 in the second step compared to the other three-step and two-step polymerizations. At a high point, it was amazing. This ratio is a reciprocal measure of the reciprocal of catalyst consumption in a manufacturing plant at a given production rate with a given catalyst at a given total residence time. This means that the production of HMW2 polymers in the second polymerization step but not in the third step is expected to result in significantly lower catalyst consumption in continuous commercial production. ing. Similarly, the production of HMW2 polymers in the second polymerization step but not in the third step is expected to consume significantly less catalyst than producing the polymer in only two steps. .. The cost of catalyst consumption is a considerable manufacturing cost in commercial production, so this reduction shows significant savings and improves profits. Also, the production of the HMW2 polymer in the third reactor is quite advantageous compared to producing the polymer in only two steps.
The polymer was compounded with Irganox B215 (antioxidant) 1550 ppm in a Prism 16 extruder with L / D = 25. The extruder was run at an output rate of 1 kg / h, 500 rpm, non-vacuum and nitrogen flushing. The temperature profile of the extruder was 180 to 200 x 4 to 180 (die). The resulting pellets were then pressed into 4 mm plates according to ISO 293-1986, 1872-2 and 1873-2. Next, suitable test pieces were prepared from these plates.
These results are shown in Table 2 below.
<tables num="3"><img file="JP6820249B2_D0007.tif" /></tables>
The final polymers of Examples 1-4 and C1-C4 are very similar or have the same density values and also have very similar MFRs.<sub>5</sub>It has values, which means that these stiffnesses are also very similar, as are their actual extrusion processability. As a result, they can be compared properly.
Surprisingly, the polyethylene compositions of the present invention have much higher FNCT results than all of the polymer compositions of Comparative Examples. Surprisingly, the FNCT is higher in the polyethylene compositions of the invention containing the lower content of the second high molecular weight ethylene copolymer than in those having the same ethylene copolymer with the higher content. This is also shown in Figure 2.
Even more surprisingly, the Charpy impact, which indicates RCP resistance, has not been reduced, which, as described, usually occurs when the polymer is modified, which improves FNCT. This is shown in Figures 3 and 4. A polyethylene composition containing a second ultra-high molecular weight ethylene copolymer with a lower content of both Charpy impact at room temperature (Fig. 3) and Charpy impact at low temperature (Fig. 4) has a higher content of the same copolymer. Was better than.
It was further found that the scratch resistance was better (lower value) in the polyethylene composition containing the second high molecular weight ethylene copolymer with the lower content than in the same copolymer with the higher content. This is shown in Figure 5. It was also found that the wear resistance was better (lower value) in the polyethylene composition containing the second high molecular weight ethylene copolymer with the lower content than in the same copolymer with the higher content. This is shown in Figure 6. Due to its high comonomer content, the third component / fraction maintained even shore hardness despite being a relatively soft component. This is shown in Figure 7.
It is impressive that these significant improvements in mechanical properties, specifically SCG and RCP, could be obtained by incorporating these small amounts of the second high molecular weight copolymer. Even more desirable, the results (shore hardness, scratch resistance and abrasion resistance) show that the polyethylene of the present invention can, first of all, be scratched, chipped or notched by the handling of pipes in the art. It shows that it is more resistant to being able to, which means that it also reduces the number and size of defects that can propagate into the crack. This combination of properties is highly desirable for the manufacture of pipes, especially pressure resistant pipes.
It is hypothesized that the third polymer, which has a relatively high molecular weight and a relatively high comonomer content, improves the level of chain binding and entanglement in the polyethylene composition. This improvement in the level of chain binding and entanglement will eliminate the energy associated with the stress field in the initial crack and reduce the likelihood of crack propagation. Furthermore, the polymers of the present invention are also convenient for preparation. A relatively small amount of the second high molecular weight copolymer can be made in a relatively small reactor, with a short residence time, or in a medium size reactor where very conventional reactor conditions are used. ..
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Numbers
- Publication
- 6820249
- Application
- 251391
Titles2
- Japanese
- マルチモーダルポリエチレンポリマーおよび前記ポリマーの調製方法
- English
- Multimodal polyethylene polymer and method for preparing the polymer
Classification
- CPC, 19
- C08F10/02
- C08L23/0807
- C08F2/001
- C08L23/06
- C08L23/0815
- C08L2205/025
- C08L2205/03
- C08L2203/18
- C08L23/04
- C08L23/08
- C08L2205/02
- C08L2314/02
- C08F210/16
- C08F110/02
- C08F2500/12
- C08F2500/01
- C08F2500/02
- C08F2500/05
- C08F2500/13
- IPC, 3
- C08L23 06
- C08F10 02
- C08L23 08
