PVC-free multilayered film
16 claims: 10 independent, 6 dependent
- 1PVC-freie, bei mindestens 121°C hitzesterilisierbare Mehrschichtfolie (1), aufweisend eine Außenschicht (2), eine Stützschicht (4) sowie mindestens eine dazwischen angeordnete Mittelschicht (3), dadurch gekennzeichnet, dass die Außen- (2) und Stützschicht (4) jeweils bei Temperaturen oberhalb von 121°C schmelzen und Polymere aufweisen, deren Erweichungstemperaturen nach Vicat VST/A/50 gemäß ASTM D1525 oberhalb 121°C liegen, und das mindestens eine Mittelschicht (3) aus Polyethylen-Copolymer, wobei das Polyethylen-Copolymer ein Polyolefin ist, Polypropylen-Copolymer, Polypropylen-Homopoylmer oder - Copolymer mit jeweils p < 0,9 g/cm 3 , Low-Densitiy-Polyethylen (LDPE), Styrol-Ethylen/Butylen-Styrol-Blockcopolymer, Styrol-Ethylen/Propylen-Styrol-Blockcopolymer, SIS, Polyisobutylen (PIB) und/oder Blends der genannten Polymere untereinander oder mit Polypropylen (ρ ≥ 0,9 g/cm 3 ) und/oder Polyethylen besteht, deren Erweichungspunkt nach Vicat VST/A/50 gemäß ASTM D1525 unterhalb von 70°C liegen.
- 2PVC-freie Mehrschichtfolie gemäß Anspruch 1, dadurch gekennzeichnet, dass die Mittelschicht (3) mindestens zwei Schichten (6) mit niedriger Erweichungstemperatur aufweist, die Polymere enthalten, deren Erweichungstemperaturen unterhalb von etwa 70°C liegen und mindestens eine Schicht (7) mit hoher Erweichungstemperatur aufweist, die Polymere enthält, deren Erweichungstemperaturen oberhalb von etwa 121°C liegen, wobei die Schichten (6) und (7) jeweils alternierend angeordnet sind.
- 3PVC-freie Mehrschichtfolie gemäß Anspruch 1 oder 2, dadurch gekennzeichnet, dass die Mittelschicht (3) mindestens 90 µm sowie die Außen- (2) und Stützschicht (4) jeweils 10-20 µm dick sind.
- 4PVC-freie Mehrschichtfolie gemäß einem der hervorgehenden Ansprüche, dadurch gekennzeichnet, dass Mehrschichtfolie zusätzlich noch eine Siegelschicht (5) aufweist.
- 5PVC-freie Mehrschichtfolie gemäß Anspruch 4, dadurch gekennzeichnet, dass die Siegelschicht (5) Polymere aufweist, deren Erweichungstemperatur unterhalb der Erweichungstemperaturen der Außenschicht (2), der Stützschicht (4) sowie der mindestens einen Schicht (7) liegt.
- 6PVC-freie Mehrschichtfolie gemäß Anspruch 4 oder 5, dadurch gekennzeichnet, dass die Siegelschicht (5) 15-30 µm dick ist.
- 7PVC-freie Mehrschichtfolie gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass alle Schichten als wesentliche Bestandteile Polyolefin-Homopolymere und/oder Polyolefin-Copolymere enthalten.
- 8PVC-freie Mehrschichtfolie gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Mehrschichtfolie im wesentlichen frei von Weichmachern, Antiblockmitteln, Antistatika sowie anderen Füllstoffen ist.
- 9PVC-freie Mehrschichtfolie gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Außenschicht (2) aus einem Polypropylen-Homopolymer, einem Polypropylen-Blockcopolymer, einem Polypropylen-Randomcopolymer mit niedrigem Ethylengehalt und/oder einem High-Density-Polyethylen (HDPE), vorzugsweise einem Polypropylen-Randomcopolymer, besteht.
- 10PVC-freie Mehrschichtfolie gemäß einem der Ansprüche 2-8, dadurch gekennzeichnet, dass die Stützschicht (4) und die mindestens eine Schicht (7) mit hoher Erweichungstemperatur aus einem Polypropylen-Homopolymer, einem Polypropylen-Copolymer, einem High-Density-Polyethylen (HDPE) oder einem Linear-Low-Density-Polyethylen (LLDPE) und/oder Blends der genannten Polymere besteht.
- 11PVC-freie Mehrschichtfolie gemäß einem der Ansprüche 4-8, dadurch gekennzeichnet, dass die Siegelschicht (5) aus einem Polypropylen-Copolymer, einem High-Density-Polyethylen (HDPE), einem Linear-Low-Density-Polyethylen (LLDPE) und/oder Blends der genannten Polymere mit einem Styrol-Ethylen/Butylen-Styrol-Blockcopolymer, einem Styrol-Ethylen/Propylen-Styrol-Blockcopolymer, SIS und/oder einem a-Olefin-Copolymer, vorzugsweise aus einem Blend aus einem Polypropylen-Randomcopolymer und einem SIS-Blockcopolymer, besteht.
- 12PVC-freie Mehrschichtfolie gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Mehrschichtfolie eine Flach- oder Schlauchfolie ist.
- 13Verfahren zur Herstellung einer PVC-freien Mehrschichtfolie (1) gemäß einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die Mehrschichtfolie durch Coextrusion hergestellt wird.
- 14Verfahren zur Herstellung einer PVC-freien Mehrschichtfolie (1) gemäß Anspruch 13, dadurch gekennzeichnet, dass die hergestellte Folie im Anschluß an die Coextrusion mit Wasser schockgekühlt wird.
- 15Verwendung einer PVC-freien Mehrschichtfolie (1) gemäß einem der Ansprüche 1-12 zur Herstellung von medizinischen Beuteln.
- 16Verwendung einer Non-PVC-Mehrschichtfolie (1) gemäß Anspruch 15, zur Herstellung von medizinischen Mehrkammerbeuteln.
Independent claims16
57 paragraphs, as filed
0001The invention relates to a non-PVC multilayer film comprising an outer layer, at least one middle layer, a support layer and optionally a sealing layer, wherein all layers are substantially free of PVC and preferably contain as essential constituents polyolefin homopolymers and / or polyolefin copolymers. The invention further relates to a method for producing the multilayer film and to the use thereof.
0002Multilayer films have been widely used for many years. For example, multilayer films are used in the food industry for packaging foodstuffs. But also in the medical field multi-layer films have long been used, for example for the production of medical bags.
0003The multilayer films for these bags have heretofore been made of polyvinyl chloride (PVC) in most cases. However, the use of polyvinyl chloride has some disadvantages. Thus, on the one hand there is a risk that plasticizers contained in the PVC film are released, and - in the case of using the films in medical bags - for example, can diffuse into the medical solution contained therein. In addition, there is a problem that hydrochloric acid is formed upon sealing in the heat. In addition, PVC tends to absorb drug in infusion solutions.
0004Because of these disadvantages, other materials are increasingly used for multilayer films.
0005For related art, the<ul id="ul0001" list-style="none" compact="compact"><li>EP-A-0 179 639 = D1,</li><li>EP-A-0 474 376 = D2 and the</li><li>US-A-4,643,926 = called D3.</li></ul>
0006So will in the <patcit id="pcit0001" dnum="EP0179639A"><text>EP-A-0 179 639</text></patcit> describes a multilayer film having, for example, two outer layers and one inner layer, wherein the outer layers are each a blend of at least one propylene-based polymer and at least one linear low-density polyethylene (LDPE), and the inner layer is at least one polymer containing one high gas barrier contains. As the polymer having a high gas barrier, for example, an ethylene-vinyl alcohol copolymer (EVOH) is used.
0007In the case of the multilayer films known from D1, it is disadvantageous that the content of LDPE in the blend of the outer layer can lead to a lack of temperature resistance under the conditions of a sterilization treatment. In addition, in the case of the film known from D1 with a gas barrier middle layer (ie E> 2000), inadequate impact strength can be assumed.
0008A multilayer film with a total of 5 or 7 layers is disclosed in D2. This multilayer film has an inner layer and two outer layers. Between the outer layers and the inner layer one or two layers can be arranged in each case. The inner layer comprises a blend of a) a propylene homopolymer or copolymer and b) an ethylene copolymer or polybutene. The two outer layers are sealable and contain a plasticizer. As a material for the outer layers inter alia styrene-butadiene copolymers are used. In the case of the multilayer film according to D2, on the one hand there is a symmetrical structure, with two sealing layers. On the other hand, a plasticizer is needed for the two styrene-butadiene copolymers and, moreover, the outer layers of the film according to D2 have no defined softening point. In addition, according to D2, a layer acting as a support layer is missing. Overall, the film of D2 thus has a rather unfavorable structure, which in particular 1) to a poor transparency, 2) a bonding of the outer layers, for example with a medical bag under conditions of sterilization, 3) due to the symmetrical structure itself clearly elaborate sealing process, 4) can lead to a not sufficient at 121 ° C power absorption of the film and finally 5) due to the material composition to disposal problems.
0009A multilayer film is also used in the <patcit id="pcit0002" dnum="US4643926A"><text>US-A-4,643,926</text></patcit> disclosed. The laminated films of D3 have a sealing layer of ethylene-propylene copolymer, modified ethylene-propylene copolymer or flexible copolyester, one or more inner layers including elastic polymeric materials, and an outer layer of ethylene-propylene copolymer or a flexible copolyester , The inner film layers (middle layer or inner layers) lack a support layer so that the inner or middle layer (s) of the multilayer film flow during sealing. In addition, according to current knowledge, the presence of at least one adhesion-promoting layer is necessary for the disclosed material combinations for the layers. This comes for example an ethylene-methacrylate copolymer (EMA) or an ethylene-vinyl acetate copolymer (EVA) in question, which in turn leads to the disadvantage that the film without radiation crosslinking is not heat sterilizable. Finally, the material selection disclosed according to D3 also suggests that disposal problems with used films may occur.
0010In addition, is off <patcit id="pcit0003" dnum="EP0564206A"><text>EP-A-0 564 206</text></patcit> a container is known which has a multilayer structure. However, this container does not have a layer of polymers whose softening point according to Vicat is less than 70 ° C.
0011The publication <patcit id="pcit0004" dnum="DE3923464A"><text>DE-A-39 23 464</text></patcit> describes heat-shrinkable composite films. Since these films shrink in a heat sterilization, they are not suitable for the production of medical multi-chamber bags.
0012Out <patcit id="pcit0005" dnum="US4778697A"><text>US-A-4,778,697</text></patcit> Multi-layer films are known which contain either polypropylene or polyethylene as well as other components which provide elasticity. In this case, no layer of polymers is disclosed, the softening temperature of Vicat is less than 70 ° C.
0013The publication <patcit id="pcit0006" dnum="EP0282282A"><text>EP-A-0 282 282</text></patcit> discloses heat-shrinkable multilayer films whose middle layer has a softening temperature in the range of 80 ° C to 115 ° C. Such a film is not suitable for the production of medical multi-chamber bags.
0014In view of the prior art disclosed herein and the disadvantages associated with this prior art, it was therefore an object of the invention to provide an impact-resistant, heat-sterilizable, flexible and as transparent as possible film, which should be free from PVC and plasticizers, as much as possible should be easily disposable materials and also allows the production of medical bags or multi-chamber bags and the like, So even after a sterilization treatment has a high impact resistance.
0015The object of the invention is also to specify a method for producing such a multilayer film and the use of the film.
0016The above objects and other unspecified objects are achieved by a non-PVC multilayer film of the type mentioned above having the features of the characterizing part of the claim <b>1</b>, Advantageous embodiments are the subject of claim<b>1</b> dependent claims, while claim <b><u style="single">13</u></b> a solution of the problem underlying the invention in procedural terms. The use of the non-PVC multilayer films according to the invention is in claims<b><u style="single">15</u></b> and <b><u style="single">16</u></b> put under protection.
0017Characterized in that in a PVC-free, at least 121 ° C heat sterilizable multilayer film (1) having an outer layer (2), a support layer (4) and at least one interposed middle layer (3), the outer (2) and Support layer (4) each melt at temperatures above 121 ° C and have polymers whose softening temperatures according to Vicat VST / A / 50 according to ASTM D1525 are above 121 ° C and at least one middle layer (3) made of polyethylene copolymer, wherein the polyethylene copolymer is a polyolefin, polypropylene copolymer, polypropylene homopolymer or copolymer each having ρ <0.9 g / cm<sup>3</sup>, Low-density polyethylene (LDPE), styrene-ethylene / butylene-styrene block copolymer, styrene-ethylene / propylene-styrene block copolymer, SIS, polyisobutylene (PIB) and / or blends of said polymers with each other or with polypropylene (ρ ≥ 0.9 g / cm<sup>3</sup>) and / or polyethylene whose softening point according to Vicat VST / A / 50 according to ASTM D1525 is below 70 ° C., it is possible to provide a multilayer film which is outstandingly suitable for applications in the medical field, in particular for contact with medical solutions or body fluids which is also autoclavable, flexible and visually clear. In addition, the films according to the invention are not or only slightly permeable to water vapor and, finally, the PVC-free multilayer film according to the invention has excellent welding and sealing properties, which emphasizes its suitability for the production of medical pouches. In addition, it gives a very high impact resistance for absorbing energy under impact load without destruction.
0018According to the invention, therefore, a non-PVC multilayer film essentially has at least three layers which all fulfill certain functions. The core of the multilayer construction according to the invention is an inner layer, which was also referred to above in the text as the middle layer, which gives the finished film a high flexibility. According to their function, the middle class can thus also be called a flexibility layer. In the context of the invention, the at least one middle layer according to the invention is necessarily bounded by two neighboring layers, ie at least one on each side, and is thus arranged between two outer layers.
0019The softening temperature is determined for the polymer and plastic materials of the invention according to Vicat VST / A / 50, ie it is defined as the temperature at which a defined, 10-N steel pin loaded by method A at 1 mm into an increasingly heated plastic sample<sup>2</sup> Cross section 1 mm deep penetrated (old: DIN 53460, new: DIN ISO standard 306, ASTM D1525). The softening temperature is usually much lower than the temperature at which the polymeric substance would completely reach a quasi-liquid state. Thus, during the heating of partially crystalline polymers used according to the invention, the amorphous regions begin to flow while the crystalline regions maintain the structure.
0020It is to be assumed that, as a rule, the properties of the polymers with softening temperatures of less than about 70 ° C. give the middle layer their melting behavior, which melts at temperatures of <121 ° C. Melting does not mean that the middle layer completely changes into the liquid state of aggregation, but essentially involves fusing the middle layer at temperatures of about 121 ° C., leaving sufficient areas of the middle layer in the solid state of aggregation and residual dimensional stability excellent flexibility of the entire film.
0021The middle layer limiting layers, namely, the outer layer and the support layer may be different or the same. It is essential within the scope of the invention, however, that they have polymers whose softening temperatures are above about 121 ° C, whereby the respective layer is usually given a behavior with respect to the melting property, as high melting, so in the inventive sense as melting at Temperatures of> 121 ° C can be designated. In terms of their function, both layers according to the invention serve to support and stabilize the inner middle layer.
0022Although the combination of 3 layers (support layer, middle layer and outer layer) already results in a high utility value non-PVC multilayer film, according to the invention, the middle layer can have at least 2 layers with a low softening temperature, the layers having low softening temperatures containing polymers, their softening temperatures are below about 70 ° C. These are separated by a high softening temperature layer containing polymers whose softening temperatures are above about 121 ° C with the low and high softening temperature layers being alternately arranged. That is, the inner middle layer may be divided into a plurality of support and middle layers, so that the non-PVC multilayer film of the invention is at least three-ply, but may also be 5, 7, etc. ply. By this multi-layer of the middle layer is not deviated from the basic idea of the invention, but the flexibility of the entire film is significantly improved by structuring the middle layer throughout the structural design. In the case of a 5- or 7-layer structure, the three or five inner layers can, for example, be two or have three layers of polymers which give the layers containing them a total of a softening temperature of <121 ° C, while in the first case between the two middle layers a layer with one or more polymers having softening temperatures of> 121 ° C and in the second case two such layers arranged to support between the three middle layers.
0023In each case, it is thus ensured that a middle layer is always adjacent to layers whose softening temperature is> 121 ° C or which contain polymers having a Vicat softening temperature of> 121 ° C (VST / A / 50 (10N).
0024The thickness of the individual layers of the non-PVC multilayer film according to the invention is not particularly critical per se. According to the invention, however, it is preferred that the middle layer is at least 90 microns and the outer and the supporting layer are each 10-20 microns thick. Despite their relatively small thickness thus allow outer and support layer due to their support properties particularly advantageous that deformation of the relatively flexible and thick middle layer due to the increased fluidity of the middle layer is largely avoided when exposed to heat.
0025If the multilayer film of the 3-layer basic structure about goes to a 5 or 7-layer structure, can be held in the individual layers in principle to the values stated for the 3-layer structure. However, it is equally possible and most preferred to make the thickness of the individual layers involved in the construction of the middle layer correspondingly thinner in order to keep the total thickness of the three or five "middle layers" approximately in the range of approximately 100 μm.
0026In a further expedient embodiment, the non-PVC multilayer film according to the invention additionally has a sealing layer. This is preferably arranged as outermost layer on the outer support layer. As a result, the welding of the multilayer film of the invention on this side is possible in an advantageous manner. In general, polymers which are compatible with the solution are used for the sealing layer, since the sealing layer in the case of a bag produced from the non-PVC multilayer film according to the invention is located inside the bag after completion of the bag. Furthermore, the polymers should be very easy to seal so that a good and firm weld can be made. Thus, a 4-, 6-, 8-etc. realized layered structure, resulting in an asymmetric film.
0027In a preferred embodiment, the sealing layer comprises polymers whose softening temperature is below the softening temperatures of the outer layer, the supporting layer and the at least one layer with a high softening temperature, which is arranged between "two middle layers". Suitably, the sealing layer is 15-30 microns thick. At the same time, it is advantageous for the invention if the plastic material of the sealing layer has a softening temperature of> 121 ° C. It should be noted in particular that the sealing layer may well have shares of rubber to achieve the desired properties. The sealing layer is preferably impact-modified by at least 15% synthetic rubber. In any case, it is advantageous if the plastic material for the sealing layer is chosen so that the material of the layer under the conditions of steam sterilization, ie at about 121 ° C, remains dimensionally stable.
0028As already mentioned, the choice of materials for all layers of a non-PVC multilayer film according to the invention is essentially oriented to the softening temperatures of the polymers contained in the individual layers formed from plastic materials.
0029At this point it should be noted that for the invention by "plastic material" such materials are understood, whose essential components consist of macromolecular organic compounds, wherein the plastic materials are also referred to as polymers, including in particular homopolymers and copolymers (random, block and or graft polymers) and mixtures (= blends) of the aforementioned substances.
0030In addition to the softening temperatures of the polymers and thus of the plastic materials of the individual layers, the environmental compatibility of the materials used for the individual layers also plays an important role for the invention.
0031Thus, previously used materials, such as PVC, due to the environmental problems (HCl, dioxin, furan), the release of added plasticizers and a lack of recyclability have several disadvantages.
0032A very particularly preferred embodiment of the non-PVC multilayer film according to the invention is now characterized in that all layers which are involved in the construction of the film contain as essential constituents polyolefin homopolymers and / or polyolefin copolymers which are linked α-olefinically. By using such materials, the invention provides a completely suitable for medical purposes, yet absolutely environmentally compatible, as recyclable multi-layer film.
0033While known polyolefin films could not meet the applicable requirements in terms of flexibility or clarity, all of these criteria are met according to the invention.
0034Among the materials which may be used for the outer layer are the polymers or polymer mixtures known to the person skilled in the art, whose softening temperature is higher than that of the polymers or polymer mixtures of the other layers or equal to the softening temperature of the polymer or of the polymer mixtures of the support layer (s) ).
0035These preferably include polypropylene homopolymers, polypropylene block copolymers, low to medium ethylene content polypropylene random copolymers and / or high density polyethylene (HDPE). Particularly preferred are polypropylene random copolymers. The polymers mentioned can be used alone or in the form of mixtures, so-called blends.
0036For the middle layer or the at least one layer with low softening temperature of the middle layers are especially polyethylene copolymers, polypropylene homopolymers or copolymers with <img file="EP0739713B2_D0001.tif" /> <0.9 g / cm<sup>3</sup>, Low-density polyethylene (LDPE), styrene-ethylene / butylene-styrene block copolymers, styrene-ethylene / propylene-styrene block copolymers, SIS (styrene-isoprene-styrene), polyisobutylenes (PIBs) and / or blends of said polymers with polypropylene with <img file="EP0739713B2_D0002.tif" /> ≥ 0.9 g / cm<sup>3</sup> and / or polyethylene in question.
0037The backing layer and / or the at least one layer with a high softening temperature advantageously consist of a polypropylene homopolymer, a polypropylene copolymer, a high-density polyethylene (HDPE) or a linear low-density polyethylene (LLDPE) and / or blends of mentioned polymers.
0038Suitable materials for the sealing layer are, in particular, polypropylene copolymers, high-density polyethylenes (HDPEs), linear low-density polyethylenes (LLDPEs) and / or blends of the abovementioned polymers with a styrene-ethylene / butylene-styrene polymer. Block copolymer, a styrene-ethylene / propylene-styrene block copolymer, SIS (styrene-isoprene-styrene block copolymers) and / or an α-olefin copolymer, preferably from a blend of a polypropylene random copolymer and a synthetic rubber.
0039The polymer materials for the individual layers are, as already mentioned, preferably polyolefins. In this case, the multilayer film according to the invention very particularly preferably characterized by the fact that they may be substantially free of lubricants, plasticizers, antiblocking agents, antistatic agents and other fillers. It should be emphasized that between the individual layers of the different materials in principle can be assumed that sufficient liability. However, the adhesion between the layers can advantageously be increased by the fact that the individual layers each additionally have up to 70% by weight, based on 100% by weight of their composition, of those plastics materials which are used to form one or both adjacent layers serve the non-PVC multilayer film.
0040By means of this "material mediation" or the substitution of material, the compatibility of the layers formed with each other to form a film is significantly increased, without questioning the other properties. In particular, it is possible by this "fade" to produce a good connection of the layers with each other, without a bonding agent would be necessary.
0041The non-PVC multilayer film of the invention may, in principle, be designed according to the molding process familiar to the person skilled in the art. According to the invention, the embodiment is preferred as flat or tubular (blown) film.
0042The invention also provides a process for producing the non-PVC multilayer film, which is characterized in that the individual layers are coextruded with each other to obtain the non-PVC multilayer film. Important for the invention is that it is possible by coextrusion of several layers together to combine several desired properties in a film, thereby increasing the quality of the product obtained.
0043For this purpose, especially in the coextrusion process, it is possible, with a suitable selection of the extrusion partners, to provide a tailored multilayer film which makes it possible in a unique manner to dispense with any addition of adhesion promoters and nevertheless the required properties and, in addition, other important properties, such as gas and water vapor permeability, strength of the material, weldability, Transparency and temperature resistance, influence.
0044Although the coextrusion of materials of the layers according to the invention is known in principle, it is not readily apparent that the successful realization of such a complex multilayer film as the invention has been foreseeable on the basis of existing experience. In this respect, the success of the invention was surprising, since in practice otherwise showed again and again that even with the aid of possibly tabulated properties of polymers, such as composite adhesion data, the use of such materials does not necessarily lead to success. That is, the solution of a given problem by pure selection of known materials is basically not possible in a multi-layer coextrusion film.
0045Furthermore, it is possible in the process according to the invention that the film is further processed after the actual shaping in the usual ways. For example, it can be stretched. Preferably, however, it is shock cooled after being molded with water. As a result, an optimal bond with high flexibility and sufficient toughness is achieved, but above all, the transparency of the film is improved by the shock-like cooling of the film, because the crystallization of the polymers involved in the construction of the film is prevented during slow cooling. This leads to a low degree of crystallinity and thus to high transparency and toughness.
0046The non-PVC multilayer film according to the invention is outstandingly suitable for use in the medical field. The materials of the individual layers of the multilayer film are all chosen so that the film is transparent and flexible, but in particular also hot sterilisable fusible and sealable. The use of PVC, which always contains a proportion of plasticizers, is avoided, as well as no adhesion promoters are needed, the could diffuse through the layers of plastic material, which is particularly undesirable when used in the medical field.
0047Due to its excellent material and performance properties, the non-PVC multilayer film according to the invention is used with particularly great advantage for the production of medical bags or medical multi-chamber bags.
0048In the following the invention will be explained in more detail with reference to the accompanying figures.
0049In the figures show:<dl id="dl0001"><dt>Fig. 1</dt><dd>a schematic cross section through a first embodiment of the non-PVC multilayer film according to the invention with sealing layer.</dd><dt>Fig. 2</dt><dd>a schematic cross section through a second embodiment of the non-PVC multilayer film according to the invention, wherein for simplicity, only the structure of the layer 3 of <figref idref="f0001">Fig. 1</figref> is shown in otherwise unchanged structure.</dd><dt>Fig. 3</dt><dd>a schematic cross section through a third embodiment of the non-PVC multilayer film according to the invention, wherein for simplicity also here the outer, support and sealing layer <figref idref="f0001">Fig. 1</figref> are omitted; and</dd><dt>Fig. 4</dt><dd>a schematic cross section through a fourth embodiment of the non-PVC multilayer film according to the invention, in which case again only the middle layer 3 accordingly <figref idref="f0001">Fig. 1</figref> is shown enlarged and the outer layer and the support and sealing layer are omitted for simplicity.</dd></dl>
0050In <figref idref="f0001">Fig. 1</figref> a first embodiment of a non-PVC multilayer film 1 according to the invention is shown in cross section. The film was produced by coextrusion, and a total of four layers 2, 3, 4 and 5 can be seen. Layer 2 is the outer layer, layer 3 is the middle layer, layer 4 is a support layer, and layer 5 is a sealing layer.
0051The middle layer 3 may according to the invention be divided into several layers 6 and 7. This is best in the<figref idref="f0001">Fig. 2-4</figref> to recognize the magnification out <figref idref="f0001">Fig. 1</figref> represent the middle layer with the omission of layers 2, 4 and 5. The layers 4 and 7 may have the same polymeric structure.
0052The outer layer 2 usually consists of a polymer or a polymer mixture whose melting point is higher than the melting point of Polmyere or polymer blends of the other layers or equal to the melting point of the polymer or polymer mixture of the support layer 4. The polymer or the polymer mixture of the outer layer 2 usually depends on the welding temperature of the sealing layer 5, so that upon contact of the outer layer and the welding tool melting or gluing of the outer layer 2 takes place.
0053The middle layer 3 is preferably a soft or flexible layer having a softening point or constituents of a softening point below the sterilization temperature of 121 ° C and which may be divided by one or more layers 7 into the same or different layers 6. The layers 7 are made of polymers or contain polymers whose melting points are well above 121 ° C. During sterilization, the layers 7 with the outer layer 2 and the support layer 4 form a matrix which prevents the layers 6 from flowing. The layers 6, 7 and 4 can also have properties that favor a connection to the neighboring layer.
0054The support layer 4 fulfills the task of a flow barrier during the welding process. It usually consists of polymers or polymer blends with a softening point above the corresponding welding temperature.
0055The sealing layer 5 usually consists of a seal-permeable polymer or polymer mixtures, which have suitable suitability for contact with food, enteral or parenteral solutions.
Results of test trials
0056A) An exemplary film according to the invention can be realized, inter alia, by selection and coextrusion of the following materials with the following properties:<ol id="ol0001"><li>a) outer layer 2 Novolen 1302 L (atactic polypropylene homopolymer having a Vicat A of 138 ° C), Novolen 1102 H (isotactic polypropylene homopolymer having a Vicat A of 154 ° C), PP 23 M 10 cs 259 (polypropylene random copolymer having a Vicat A of 135 ° C);</li><li>b) middle layer 3 Teamex 1000 F (VLDPE with Vicat A = 66 ° C.), Exxact 4024 (polyethylene copolymer with Vicat A = 70 ° C.), Adflex 7029 XCP (polypropylene copolymer with Vicat A = 55 ° C.)</li><li>c) support layer 4 as a)</li><li>d) sealing layer 5 Novolen 3200 HX (polypropylene random copolymer with Vicat A = 130 ° C).</li></ol>B) In a further experiment, the impact resistance of a non-PVC multilayer film according to the invention was investigated by drop test. By way of example, it is shown how an impact-resistant multi-layer film according to the invention behaves before and after superheated steam sterilization, in the case test from 1 or 2 m height. The test sample is a coextruded multilayer film, which is structured as follows:<ul id="ul0002" list-style="none" compact="compact"><li>Seven-layer composite according to <figref idref="f0001">Fig. 1 and 3</figref> With<ul id="ul0003" list-style="none" compact="compact"><li>PP-H as outer layer 2;</li><li>PE-C / PP blend as layer 6;</li><li>PE-C according to layer 7;</li><li>PP-H as support layer 4</li><li>PP-R / SEBS blend as sealing layer 5</li></ul></li></ul>The percentages by weight (% by weight) of the entire film are as follows:<ul id="ul0004" list-style="none" compact="compact"><li>28 % PP-H</li><li>60 % PE / PP blend</li><li>12 % impact-modified PP-R.</li></ul>The material abbreviations mean in detail:<dl id="dl0002" compact="compact"><dt>PP-H, R:</dt><dd>Polypropylene homopolymer, random copolymer</dd><dt>SEBS:</dt><dd>Styrene-ethylene-butylene-styrene block copolymer</dd><dt>PE-C:</dt><dd>Polyethylene copolymer</dd></dl>The film was coextruded and is wound as a tubular film, with a lying width of 180 mm and a film thickness of 140-150μm available. The film is slightly biaxially oriented in the manufacturing process with a stretch ratio of: elongation / transverse extension = 2.3 / 1.4. Thus, films of the invention as well as materials for films according to the invention are distinctly different from the materials known from the prior art. The eg LLDPE described in D3 is suitable for heat shrink films. LLPDE is a linear polymer. To a linear chain are at most C<sub>8</sub>Residues copolymerized. LLPDE therefore leads to oriented films. In general, these are stretched more than forty times and therefore have the property of shrinking in heat treatment against their stretched direction. This property does not show a film which can be used according to the invention. Although this can be slightly oriented (4: 1), but not stretched (> 40: 1). Thus, it is not linearly oriented and shows no shrinking property. The tubular film sample is cut to appropriate lengths and by means of indirect thermal contact welding or laser welding (welding is not critical) to a bag with two flexible hose connections undetachably welded together and then filled with water as incompressible filling, so that each result in the same quantities. The two hose connections are tightly sealed with plug-in connectors. In previous tests, the optimum parameters, such as temperature, time, surface pressure, for welding were determined for the individual test samples. They are listed in the following table:<tables id="tabl0001" num="0001"><table frame="all"><tgroup cols="6"><colspec colnum="1" colname="col1" colwidth="22mm" /><colspec colnum="2" colname="col2" colwidth="10mm" /><colspec colnum="3" colname="col3" colwidth="10mm" /><colspec colnum="4" colname="col4" colwidth="20mm" /><colspec colnum="5" colname="col5" colwidth="20mm" /><colspec colnum="6" colname="col6" colwidth="34mm" /><thead valign="top"><row><entry rowsep="0" align="center">temperature</entry><entry namest="col2" nameend="col3" align="center">Time</entry><entry namest="col4" nameend="col5" align="center">Surface pressure [N / m<sup>2</sup>]</entry><entry rowsep="0" align="center">Filling amount of water [l]</entry></row><row><entry /><entry align="center">a</entry><entry align="center">b</entry><entry align="center">a</entry><entry align="center">b</entry><entry /></row></thead><tbody><row><entry align="center">130</entry><entry align="center">6</entry><entry align="center">8</entry><entry align="center">8</entry><entry align="center">9</entry><entry align="center">2</entry></row></tbody></tgroup></table></tables>The foil is welded in a welding device by 2 welding bars, which are heated with resistance heating cartridges.<ol id="ol0002" compact="compact"><li>a) Welding bar straight lower seam</li><li>b) Welding bar for welding in the connecting hoses</li></ol>Half of the finished bags are sterilized or not sterilized. The sterilization is carried out in an autoclave, at 121 ° C and 35 min, under wet steam. The fall device allows variable adjustment of any height up to 2 m. It has a pneumatically operated flap unit, which serves to support the bag and is opened when pressurized. The bags are on the belly side, so that the impact takes place in the worst-case abdominal position. It can be seen that an influence of the sterilization, for example by reducing the impact resistance is not noticeable. Also, a decrease in the frequency of cases did not occur. Only the break of the sample happens at different places. While the film preferably shows damage before sterilization, the weak spot in the weld seam lies after sterilization. A possible reason for this behavior is due to the increasing degree of crystallization as well as the forming spherulitic superstructures with the consequences of a loss of toughness. The sealing layer is at the underside. Impact-modified film with PP-R / SEBS blend. The improvement in impact resistance is achieved by the rubber content as a discontinuous phase in a PP-R matrix. Given the good compatibility of the two blend components, the rubber phases are able to absorb stresses in the brittle PP-R matrix and provide greater elasticity. However, the much greater aspect of fall resistance is that of the middle layer 3. Assuming adequate seam strength, the energy introduced into the material upon impact must be absorbed. The tested film has as a middle layer a high proportion of PE / PP blend. The absorbed energy can be determined by the law of conservation of energy, from which follows:<maths id="math0001"><math display="block"><mi mathvariant="normal">W</mi><mo>=</mo><mi mathvariant="normal">m</mi><mo mathvariant="normal">*</mo><mi mathvariant="normal">G</mi><mo>*</mo><mfenced><msub><mi mathvariant="normal">H</mi><mn>1</mn></msub><mo>-</mo><msub><mi mathvariant="normal">H</mi><mn>2</mn></msub></mfenced></math><img file="EP0739713B2_D0003.tif" /></maths><dl id="dl0003" compact="compact"><dt>H<sub>1</sub></dt><dd>= Fall height</dd><dt>H<sub>2</sub></dt><dd>= Rebound height</dd><dt>m</dt><dd>= Bag weight</dd><dt>G</dt><dd>= Gravitational acceleration</dd></dl>It should also be taken into account with what strain rate the samples are loaded, it follows with<maths id="math0002"><math display="block"><mi>ν</mi><mo>=</mo><msqrt><mn>2</mn><mo>*</mo><mi>G</mi><mo>*</mo><msub><mi>H</mi><mn>1</mn></msub></msqrt></math><img file="EP0739713B2_D0004.tif" /></maths> (neglecting air resistance) the speed of the bag before impact. In the drop test, the test samples behave partially elastic with a rebound height h<sub>2</sub> from 10-20 cm, so that is expected from a partially elastic shock. The stress causes no breakage of the samples. Due to the high strain rates and the low elongation of the samples can be said with good certainty that the load takes place in the energy elastic range (Hooke's range). C) Furthermore, the impact tensile strength was measured on the film described under B) herein:<ul id="ul0005" list-style="none" compact="compact"><li>The impact toughness was measured using a Universal Pendulum Hammer Type 6545/023 from Ceast (Torino / Italy). The principle of measurement is based on the conversion of potential into kinetic energy. A film sample (dimensions below) is clamped so that the pendulum hammer when passing through the zero position abruptly claimed the film to train. The energy resulting from the destruction of the film is calculated from the energy balance between the potential energies before and after the destruction of the sample, by determining the initial deflection h1 from the zero position of the pendulum and the final deflection h2, after fracture of the sample.</li></ul>The following applies:<maths id="math0003"><math display="block"><mi>Epot</mi><mo></mo><mn>1</mn><mo>=</mo><mi mathvariant="normal">m</mi><mo>*</mo><mi mathvariant="normal">G</mi><mo>*</mo><mi mathvariant="normal">H</mi><mo></mo><mn>1</mn></math><img file="EP0739713B2_D0005.tif" /></maths><maths id="math0004"><math display="block"><mi>Epot</mi><mo></mo><mn>2</mn><mo>=</mo><mi mathvariant="normal">m</mi><mo>*</mo><mi mathvariant="normal">G</mi><mo>*</mo><mi mathvariant="normal">H</mi><mo></mo><mn>2</mn></math><img file="EP0739713B2_D0006.tif" /></maths> and from this the damage energy:<maths id="math0005"><math display="block"><mi>It</mi><mo>=</mo><mi>Epot</mi><mo></mo><mn>1</mn><mo>-</mo><mi>Epot</mi><mo></mo><mn>2</mn></math><img file="EP0739713B2_D0007.tif" /></maths>The measurements were carried out with a deflection of 90 ° from the zero position. The potential energy Epot1 was always 15 years. The device is equipped so that the values for the tensile impact strength are calculated after the end of the test. The device used was operated in detail at the following setting or had the following characteristics:<ul id="ul0006" list-style="none" compact="compact"><li>DRWG Number (cod.): 6545/023</li><li>potential energy: 15 y</li><li>gem. Weight at 90 ° C: 2181.7-2203.6 g</li><li>Distance between rotation and impact axes: 373.8 ± 0.1 mm.</li><li>Time for 50 oscillations. less than 5 ° = 60.98-61.59 s</li></ul>The tensile impact strength of a film according to the invention (non-sterilized, four samples a 0.15 mm clamped together with a thickness of 4 x 0.15 mm, a width of the specimen of 4 mm and a vertical cross-section of 0.6 mm<sup>2</sup>) was 12,935.8 mJ / mm<sup>2</sup>, The impact toughness value was sterilized at 5,560.3 mJ / mm<sup>2</sup>, (Thickness: 4 x 0.14 mm, width unchanged, cross section: 0.56 mm<sup>2</sup>). A previously used PVC film usually has a tensile impact strength in the range of 7150 mJ / mm<sup>2</sup> (not sterilized) or 6973 mJ / mm<sup>2</sup> (sterilized). It follows that in the film according to the invention all the requirements for a particularly high tensile impact strength are still met after sterilization. D) Determination of Evaporation Residue According to DIN 58363 Part 15 (July 1982) Another not insignificant advantage can be seen in the low migration of the additives. The additive loss during sterilization is 0.55 mg / dm for a PVC film<sup>2</sup>However, in the inventive film, however, only 0.1 mg / dm<sup>2</sup> (at 121 ° C) measured in evaporation residue according to DIN 58363. Further advantages and embodiments of the invention will become apparent from the following claims.
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Every citation, both ways
| Document | Relation | Office |
|---|---|---|
| EP0206826A | Cites | European Patent Office (EPO) |
| EP0282282A | Cites | European Patent Office (EPO) |
| EP0369447A | Cites | European Patent Office (EPO) |
| EP0437856A | Cites | European Patent Office (EPO) |
| EP0564206A | Cites | European Patent Office (EPO) |
| DE3923464A | Cites | Germany |
| GB2023497A | Cites | United Kingdom |
| US4778697A | Cites | United States of America |
| FRANCK A.; BIEDERBICK K. : "KUNSTSSTOFF - KOMPENDIUM: AUFBAU, POLYMERISATION, VERARBEITUNG, EIGENSCHAFTEN, ANWENDUNG DER THERMOPLASTE, ELASTOMERE, DUROPLASTE, POLYMERLEGIERUNGEN" 1990 , WÜRZBURG, VOGEL VERLAG.; DE XP002033624 * Seite 325 - Seite 326 * | Non-patent | – |
| SAECHTLING H.: "INTERNATIONAL PLASTICS HANDBOOK FOR THE TECHNOLOGIST, ENGINEER AND USER" 1992 , MUNICH, CARL HANSER VERLAG.; DE XP002033625 * Seite 165 - Seite 164; Tabelle 26 * | Non-patent | – |
| BRANDRUP J.; IMMERGUT E. H.: "POLYMER HANDBOOK: PHYSICAL DATA, POLYMERS " 1989 , NEW YORK, WILEY & SONS.; US XP002033683 references V/31 and V/30 | Non-patent | – |
21 members in 10 offices; this record represents the family
Priority claims2
| Document | Office | Kind | Date |
|---|---|---|---|
| 19515254 | Germany | – | |
| 19515254 | Germany | A |
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| DE19515254A1 | Germany | A1 | |
| AU5077096A | Australia | A | |
| KR960037279A | Republic of Korea | A | |
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| EP0739713A3 | European Patent Office (EPO) | A3 | |
| DE19515254C2 | Germany | C2 | |
| US5783269A | United States of America | A | |
| BR9602033A | Brazil | A | |
| AU699415B2 | Australia | B2 | |
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Numbers
- Publication
- 0739713
- Application
- 961065117
Titles3
- German
- Non-PVC-Mehrschichtfolie
- English
- PVC-free multilayered film
- French
- Feuille multicouche exempte de PVC
Classification
- CPC, 19
- B32B27/32
- B32B27/00
- B32B27/08
- Y10T428/2826
- Y10T428/1352
- Y10T428/1334
- Y10T428/1359
- Y10T428/31909
- Y10T428/31924
- Y10T428/31931
- Y10T428/31913
- Y10T428/31917
- B32B7/027
- B32B2323/043
- B32B2323/046
- B32B2439/80
- B32B2270/00
- B32B27/302
- B32B2309/105
- IPC, 9
- B32B27 32
- B65D30 02
- A61J1 10
- A61L31 00
- B29C47 06
- B32B7 027
- B32B27 00
- B65D65 40
- C08L23 10
Designated states11
- Contracting states, 11
- Austria
- Belgium
- Switzerland
- Germany
- Spain
- France
- United Kingdom
- Italy
- Liechtenstein
- Netherlands (Kingdom of the)
- Sweden
