Claims
- 1. A process for forming a fiber reinforced composite without the use of a closed impregnation die, comprising the steps of:
a) providing one or more polyisocyanate containing resins; b) providing one or more porous reinforcing structures; c) providing one or more catalysts suitable for promoting at least one polymer forming reaction of isocyanate groups; d) providing at least one open bath containing the one or more polyisocyanate containing resins; e) employing the open bath to at least partially impregnate at least one of the one or more porous reinforcing structures with the at least one polyisocyanate containing resin so as to form a prepreg, the prepreg characterized by having an exterior resin surface facing away from the reinforcing structure and an interior resin surface facing the reinforcing structure; f) disposing an effective amount of at least one of the one or more catalysts at a location selected from:
i) the interior resin surface, ii) the exterior resin surface, and iii) a combination of the interior and the exterior resin surfaces, in order to form a catalyzed prepreg; g) providing one or more curing apparatus capable of delivering a combination thermal and mechanical energy to the catalyzed prepeg; and h) employing the at least one curing apparatus to facilitate the curing of the catalyzed prepreg by the application of a combination of thermal and mechanical energy to the prepreg; under the proviso that the polyisocyanate containing resin is not fully cured and is in a flowable state at the time that the combination of thermal and mechanical energy is applied to the catalyzed prepreg, and under the further proviso that the catalyst disposed on the prepreg is not homogeneously distributed within the bulk of the polyisocyanate containing resin at the time that the combination of thermal and mechanical energy is applied to the catalyzed prepreg.
- 2. The process according to claim 1, wherein at least one of the one or more catalyst used in the preparation of the catalyzed prepreg remains at least partially phase separated from the polyisocyanate containing resin until the catalyzed prepreg enters the curing apparatus.
- 3. The process according to claim 1, wherein all of the one or more catalyst used in the preparation of the catalyzed prepreg have boiling points greater than 100° C. at 1 atmosphere pressure.
- 4. The process according to claim 3, wherein all of the one or more catalyst used in the preparation of the catalyzed prepreg have boiling points greater than 150° C. at 1 atmosphere pressure.
- 5. The process according to claim 2, wherein the process is a pultrusion process and wherein the curing apparatus used to produce the fiber reinforced composite includes a curing die of a pultrusion machine and the one or more porous reinforcing structures comprises fibers of at least one meter in length.
- 6. The process according to claim 2, wherein at least one of the at least partially phase separated catalysts used in preparing the catalyzed prepreg comprises at least one compound selected from the group consisting of alkali metal salts of carboxylic acids, alkaline earth metal salts of carboxylic acids, and combinations of these.
- 7. The process according to claim 5, wherein the curing die is the primary curing apparatus.
- 8. The process according to claim 7, wherein the curing die is the sole curing apparatus.
- 9. The process according to claim 1, wherein a catalyst is applied to the one or more porous reinforcing structures before the one or more polyisocyanate containing resins is applied to the one or more reinforcing structures.
- 10. The process according to claim 1, wherein a catalyst is applied to the at least one prepreg after the polyisocyanate containing resin has been applied thereto.
- 11. The process according to claim 10, wherein the catalyst is applied by spraying directly onto the exterior resin surface.
- 12. The process according to claim 9, wherein the catalyst is applied to the one or more reinforcing structures by at least one method selected from the group consisting of spraying and dip coating.
- 13. The process according to claim 12, wherein the catalyst treated reinforcing structure is dried to remove all volatile species having boiling points of 150° C. or less at 1 atmosphere pressure, before any of the one or more polyisocyanate containing resins are applied to the reinforcing structure.
- 14. The process according to claim 1, wherein the one or more catalyst is applied both to the reinforcing structure prior to the application of the one or more polyisocyanate containing resins, and to the prepreg after the polyisocyanate containing material has been applied.
- 15. The process according to claim 2, wherein the curing apparatus used in preparing the fiber reinforced composite comprises a heated press.
- 16. A fiber reinforced composite article produced according to the process of claim 15, selected from the group consisting of sheet molding compound (SMC) composite, bulk molding compound (BMC) composite, composite produced by hand layup, composite produced by filament winding, and composite produced by resin transfer molding.
- 17. The fiber reinforced composite article according to claim 16, wherein the fibers used to reinforce the composite comprise fibers of greater than 0.1 meters in length.
- 18. The fiber reinforced composite article according to claim 17, wherein the fibrous reinforcing material comprises at least one mat.
- 19. A pultruded part produced according to the process of claim 5.
- 20. The pultruded part according to claim 19, wherein the fibrous reinforcing structure used in the preparation of the part comprises at least one mat.
- 21. A composite article produced according to the process of claim 1, wherein the composite comprises a plurality of urethane groups.
- 22. A composite article produced according to the process of claim 1, wherein the composite comprises a plurality of isocyanurate groups.
- 23. The process according to claim 1, wherein the one or more polyisocyanate containing resins on the catalyzed prepreg is still liquid and still contains unreacted isocyanate groups at the time the catalyzed prepreg enters the curing apparatus.
- 24. The process according to claim 5, wherein the one or more polyisocyanate containing resins on the catalyzed prepreg gels inside the curing die of the pultrusion machine and a solid pultruded part free of wet spots emerges from the curing die.
- 25. The process according to claim 1, wherein the principle reactions that take place during the curing are selected from the group consisting of urethane formation, isocyanurate formation, and combinations of these.
- 26. The process according to claim 25, wherein the principle reaction that takes place during the cure is isocyanurate formation.
- 27. The process according to claim 1, wherein the polyisocyanate containing resin used in preparing the composite consists essentially of an MDI series isocyanate composition which is liquid at 25° C. and has a viscosity at 25° C. in the range of from greater than 100 cps to less than 1000 cps.
- 28. The process according to claim 27, wherein the MDI series isocyanate composition is a mixture of one or more isocyanate terminated prepolymers and one or more monomeric isocyanates of the MDI series.
- 29. The process according to claim 1, wherein the sole means used for the impregnation of the porous reinforcing structure with the polyisocyanate containing material is the at least one open bath wherein the at least one bath contains a gas filled head space maintained at ambient pressure.
- 30. The process according to claim 29, wherein a single open bath is used for impregnation of the porous reinforcing structure with the one or more polyisocyanate containing resin.
- 31. A process for forming a fiber reinforced composite without the use of a closed impregnation die, consisting essentially of:
a) providing one or more polyisocyanate containing resins; b) providing one or more porous fiber reinforcing structures; c) providing one or more catalysts suitable for promoting at least one polymer forming reaction of isocyanate groups; d) providing at least one open bath; e) employing the open bath to at least partially impregnate at least one of the porous fiber reinforcing structures with at least one bath containing the one or more polyisocyanate containing resin so as to form a prepreg, the prepreg characterized by having an exterior resin surface facing away from the reinforcing structure and an interior resin surface facing the reinforcing structure; f) disposing an effective amount of at least one of the one or more catalysts suitable for promoting at least one polymer forming reaction of isocyanate groups at a location selected from the group consisting of:
i) the interior resin surface, ii) the exterior resin surface, and iii) a combination of the interior and the exterior resin surfaces, in order to form a catalyzed prepreg; g) providing one or more curing apparatus capable of delivering a combination of thermal and mechanical energy to a curing substrate; and h) employing the at least one curing apparatus to facilitate the curing of the catalyzed prepreg by the application of a combination of thermal and mechanical energy to the prepreg; under the proviso that the polyisocyanate containing resin is not fully cured and is in a flowable state at the time that the combination of thermal and mechanical energy is applied to the catalyzed prepreg, and under the further proviso that the catalyst disposed on the prepreg is not homogeneously distributed within the bulk of the polyisocyanate containing resin at the time that the combination of thermal and mechanical energy is applied to the catalyzed prepreg.
- 32. The process according to claim 31, wherein the composite is made by one component open bath pultrusion; the principle reaction during cure is isocyanurate formation; the reinforcing structure is selected from the group consisting of continuous glass fibers, mats made from glass fibers of greater than one meter in average length, and combinations of these; and the polyisocyanate containing material is an MDI composition containing isocyanate terminated prepolymers and monomeric isocyanates of the MDI series, the isocyanate composition being liquid at 25° C. and having a viscosity at 25° C. of between 200 cps and 800 cps.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit under 35 U.S.C. Section 119(e) of U.S. Provisional Application Serial No. 60/226,126, filed Aug. 18, 2000, entitled “One Component Thermoset Polyurethane System”, the subject matter of which is herein incorporated by reference. This application is also a continuation of international application PCT/US01/25907, filed Aug. 17, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60226126 |
Aug 2000 |
US |
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/US01/25907 |
Aug 2001 |
US |
Child |
10369991 |
Feb 2003 |
US |