Claims
- 1. A method of preparing a gas-permeable membrane which comprises a microporous film and a solid polymeric coating on the microporous film, the method comprising
(A) forming a liquid coating on the microporous film, the liquid coating being composed of liquid coating composition which comprises
(a) a first polymer, and (b) hollow particles which (i) are dispersed in the coating composition, and (ii) are composed of a polymeric composition comprising a second polymer, the second polymer being different from the first polymer; and (B) solidifying the liquid coating on the microporous film.
- 2. A method according to claim 1 wherein (i) the coating composition contains 10 to 40% by weight of the hollow particles, based on the combined weight of the polymer and the particles, and (ii) at least 90% of the particles dispersed in the coating composition have a maximum dimension of 0.2 to 0.8 micron.
- 3. A method according to claim 1 wherein the volume of the particles dispersed in the liquid coating composition is 11 to 20% of the volume of the solid coating.
- 4. A method according to claim 1 wherein (i) the particles are hollow microspheres or hollow microfilaments composed of a homopolymer or copolymer of styrene, and (ii) step (B) comprises heating the coating at a temperature of 50 to 85° C.
- 5. A method of preparing a gas-permeable membrane which comprises a microporous film and a solid polymeric coating on the microporous film, the method comprising
(A) forming a liquid coating on the microporous film, the liquid coating being composed of liquid coating composition which comprises
(a) a first polymer, and (b) hollow particles which (i) are dispersed in the coating composition, and (ii)) are composed of a polymeric composition comprising a second polymer, the second polymer being different from the first polymer; and (B) solidifying the liquid coating on the microporous film; the hollow polymeric particles (a) having a maximum dimension of at most 0.5 t, where t is the thickness of the solid coating, and (b) being present in the liquid composition in an amount which is (i) 10 to 40% by weight of the combined weight of the polymer and the particles, and (ii) 11 to 20% of the volume of solid coating.
- 6. A method according to claim 5 wherein the first polymer consists essentially of at least one side chain crystalline polymer having a peak melting temperature Tp of −5 to 40° C., a heat of fusion of at least 10 J/g.
- 7. A gas-permeable membrane which comprises
(1) a microporous film, and (2) a solid coating on the microporous film, the coating comprising
(a) a matrix comprising a first polymer, and (b) hollow particles which (i)) are composed of a polymeric composition comprising a second polymer, (ii) are dispersed in the matrix, and (iii) have a maximum dimension which is at most 50% of the thickness of the solid coating, the second polymer being different from the first polymer.
- 8. A membrane according to claim 7 which also comprises a plurality of microscopic voids which
(i) provide continuous pathways for the transmission of oxygen and carbon dioxide through the coating, and (ii) are at least partly defined by walls composed of the second polymer.
- 9. A membrane according to claim 7 which at at least one temperature between 0 and 22° C. has an R ratio of less than 4.
- 10. A membrane according to claim 7 wherein (i) the first polymer consists essentially of at least one side chain crystalline polymer having a peak melting temperature Tp of −5 to 40° C., and a heat of fusion of at least 10 J/g, and (ii) the second polymer consists essentially of a homopolymer or copolymer of styrene.
- 12. A membrane according to claim 7 which has
(a) an oxygen permeability (OTR) at 20° C. of at least 30,000 cc/100 in2.atm.24 hrs; (b) an oxygen P10 ratio of at least 2 over at least one 10° C. temperature range between 0 and 25° C.; (c) a carbon dioxide P10 ratio of at least 2 over at least one 10° C. temperature range between 0 and 25° C.; and (d) at at least one temperature between 0 and 22° C. an R ratio less than 4.
- 13. A gas-permeable membrane which comprises
(1) a microporous film, and (2) a solid coating on the microporous film, the coating comprising
(a) a matrix comprising a first polymer, and (b) a plurality of microscopic voids which
(i) provide continuous pathways for the transmission of oxygen and carbon dioxide through the coating, and (ii) are at least partly defined by walls composed of the second polymer.
- 14. A membrane according to claim 13 which at at least one temperature between 0 and 22° C. has an R ratio less than 4.
- 15. A membrane according to claim 13 wherein the coating contains 10 to 40% by weight of the second polymer.
- 16. A membrane according to claim 18 wherein (i) the first polymer consists essentially of at least one side chain crystalline polymer having a peak melting temperature Tp of −5 to 40° C., for example 0 to 25° C., and a heat of fusion of at least 10 J/g, and (ii) the second polymer consists essentially of a homopolymer or copolymer of styrene.
- 17. A membrane according to claim 13 which has
(a) an oxygen permeability (OTR) at 20° C. of at least 30,000 cc/100 in2.atm.24 hrs; (b) an oxygen P10 ratio of at least 2 over at least one 10° C. temperature range between 0 and 25° C.; (c) a carbon dioxide P10 ratio of at least 2 over at least one 10° C. temperature range between 0 and 25° C., and (d) at at least one temperature between 0 and 22° C. an R ratio less than 4.
- 18. A container which can be sealed around a respiring biological material and which includes one or more atmosphere control members, at least one of the atmosphere control members comprising a gas-permeable membrane selected from gas-permeable membranes prepared by the method of claim 1, gas-permeable membranes prepared by the method of claim 5, gas-permeable membranes as defined in claim 7, and gas-permeable membranes as defined in claim 13.
- 19. A package which comprises
(a) a sealed container, and (c) within the sealed container, a respiring biological material and a packaging atmosphere around the biological material; the sealed container including one or more atmosphere control members, at least one of the atmosphere control members comprising a gas-permeable membrane selected from gas-permeable membranes prepared by the method of claim 1, gas-permeable membranes prepared by the method of claim 5, gas-permeable membranes as defined in claim 7, and gas-permeable membranes as defined in claim 13.
- 20. A package according to claim 19 wherein the respiring biological material is fresh berries, fresh cut fruit, or a vegetable.
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit under 35 USC 119 (e) (1) of U.S. provisional patent application No. 60/435,567, filed by Raymond Clarke and Charles B. Derringer on 20 Dec. 2002.
Provisional Applications (1)
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Number |
Date |
Country |
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60435567 |
Dec 2002 |
US |