AU722397B2

Use of foam materials derived from high internal phase emulsions for insulation

Abstract

The invention relates to the use of polymeric foam materials for insulation. These polymeric foams are prepared by polymerization of certain water-in-oil emulsions having a relatively high ratio of water phase to oil phase, commonly known in the art as high internal phase emulstions, or "HIPEs." The HIPE-derived foam materials used in the present invention comprise a generally hydrophobic, flexible, semi-flexible, or rigid nonionic polymeric foam structure of interconnected open-cells. These foam structures have: A) a specific surface area per foam volume of at least about 0.01 m2/cc; B) a density of less than about 0.05 g/cc; and C) a glass transition temperature (Tg) of between about -20 DEG and 90 DEG C. The foams can be used as thermal, acoustic, and/or mechanical insulation materials. In a preferred embodiment, the foams used can be prepared, packaged, and shipped in a compressed, high density state and will "spring back" upon activation (e.g. heat) to the original density of the foam.

AU722397B2, drawing sheet 1
Sheet 1 of 2

Term

Term ended

Expired 3 June 2016, 10.3 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

2 claims: 2 independent, 0 dependent

  1. 1
    WO 96/40824 PCT/US96/10169 What is Claimed is:1. The use of a polymeric foam material as an insulator, wherein the polymeric foam material has: A) a specific surface area per foam volume of at least 0.01 m^/cc;B) a dry density of less than 0.05 g/cc;and C) a glass transition temperature (Tg) of between -20° and 90°C. 2. The use of a polymeric foam material as an insulator, wherein the polymeric foam material has: A) a specific surface area per foam volume of at least 0.01 m^/cc;B) a dry density of less than 0.05 g/cc;and C) a glass transition temperature (Tg) of between -20° and 90°C;and wherein the polymeric foam material is prepared by the process comprising the steps of (A) forming a water-in-oil emulsion at a temperature of 30°C or higher and under low shear mixing from: (1) an oil phase comprising: (a) from 80% to 98% by weight of a monomer component capable of forming a copolymer having a Tg value of from 20°C to 90°C, said monomer component comprising: (i) from 10% to 70% by weight of a substantially water-insoluble, monofunctional monomer capable of forming a homopolymer having a Tg of 35°C or less;(ii) from 10% to 70% by weight of a substantially water-insoluble, monofunctional comonomer capable of imparting toughness equivalent to that provided by styrene;(iii) from 2% to 50% of a first substantially waterinsoluble, poiyfunctional crosslinking agent selected from the group consisting of divinyl benzene and analogs thereof;and (iv) from 0% to 15% of a second substantially waterinsoluble, poiyfunctional crosslinking agent selected from the group consisting of diacrylates of diols and analogs thereof;and I WO 96/40824 PCT/US96/10169 (b) from 2% to 20% by weight of an emulsifier component which is soluble in the oil phase and which is sutable for forming a stable water-in-oil emulsion;
  2. 2
    (2) a water phase comprising from 0.1% to 20% by weight of a watersoluble electrolyte; and (3) a volume to weight ratio of water phase to oil phase in the range of from 12:1 to 250:1;and (B) polymerizing the monomer component in the oil phase of the water-inoil emulsion to form the polymeric foam material. 3. The use according to Claim 1, wherein the polymeric foam material has a glass transition temperature (Tg) of from 0° to 50°C. 4. The use according to Claim 1, wherein the polymeric foam material has a number average cell size of less than 100pm. 5. The use according to Claim 4, wherein the polymeric foam material has a number average cell size of from 10 pm to 50 gm, preferably of from 15 pm to 35 pm. 6. The use according to Claim 5, wherein the polymeric foam material has a glass transition temperature of from 10° to 40 °C. 7. The use of a hydrophobic polymeric foam material as an insulator, wherein the polymeric foam material has: A) a specific surface area per foam volume of at least 0.025 m^/cc;B) a dry density of from 0.08 g/cc to 0.004 g/cc;C) a glass transition temperature (Tg) of between 0° and 50°C;and D) a number average cell size of from 10 pm to 50 pm. 8. The use according to Claim 2, wherein the monomer component used in step (A) comprises from 10% to 70% monofunctional comonomer (ii), preferably from 20% to 50% monofunctional comonomer (ii). 9 The use according to Claim 8, wherein the monomer component used in step (A) comprises from 20% to 50% monofunctional monomer (i). WO 96/40824 PCT/US96/10169 10. The use according to Claim 9, wherein the monomer component used in step (A) comprises from 10% to 30% crosslinking agent (iii). 11. The use according to Claim 2, wherein monofunctional monomer (i) of the monomoer component is selected from the group consisting of 2ethylhexyl acrylate, isodecyl acrylate, lauryl acrylate, and lauryl methacrylate;monofunctional comonomer (ii) of the monomoer component is selected from the group consisting of styrene, ethyl styrene, and p-n-octylstyrene;and the first crosslinking agent (iii) of the monomoer component is selected from the group consisting of divinylbenzene, trivinylbenzene, divinyltoluene, and divinylxylene. 12. The use according to Claim 2, wherein the volume to weight ratio of water phase to oil phase is in the range of from 25:1 to 125:1.