Claims
- 1-26. (Canceled)
- 27. A method for producing a fiber-reinforced plastic component, the method comprising:
arranging a fiber composite semi-finished product on a tool; forming a first cavity, wherein the first cavity is defined by at least one side of the fiber composite semi-finished product and a gas-permeable membrane which is impermeable to a matrix material; forming a second cavity adjacent to the first cavity, wherein the second cavity is delimited from a surrounding area by a film that is gas-impermeable and matrix-material-impermeable and that is sealed with respect to the tool; suctioning air from the second cavity, wherein the suctioning causes evacuation of the first cavity, such that the matrix material is suctioned from a reservoir into the first cavity; during the suctioning, subjecting a flow of the matrix material into the first cavity to at least a temporary increase in pressure using a pressure control system; distributing the matrix material over the at least one side using a flow promoting device; and allowing the matrix material to penetrate into the fiber composite semi-finished product from a vertical direction.
- 28. The method of claim 27, wherein the fiber composite semi-finished product comprises a dry fiber composite semi-finished product and wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 29. The method of claim 27, further comprising controlling a matrix material pressure based on at least one of a viscosity of the matrix material, a temperature of the matrix material, and a pressure in the first cavity.
- 30. The method of claim 27, further comprising controlling a pressure of the flow based on at least one of a viscosity of the matrix material, a temperature of the matrix material, and a pressure in the first cavity.
- 31. The method of claim 27, further comprising controlling a pressure of the flow based on a temperature of the matrix material flowing into the first cavity.
- 32. The method of claim 27, further comprising controlling a pressure of the flow based on a temperature in the first cavity.
- 33. A method for producing a fiber-reinforced plastic component, the method comprising:
arranging a fiber composite semi-finished product on a tool; forming a first cavity, wherein the first cavity is defined by at least one side of the fiber composite semi-finished product and a gas-permeable membrane which is impermeable to a matrix material; forming a second cavity adjacent to the first cavity, wherein the second cavity is delimited from a surrounding area by a film that is gas-impermeable and matrix-material-impermeable and that is sealed with respect to the tool; suctioning air from the second cavity, wherein the suctioning causes evacuation of the first cavity, whereby the matrix material is suctioned from a reservoir into the first cavity via line; during the suctioning, providing at least a temporary vacuum in the line using a pressure control system; distributing the matrix material over the at least one side using a flow promoting device; and allowing the matrix material to penetrate into the fiber composite semi-finished product from a vertical direction.
- 34. The method of claim 33, wherein the fiber composite semi-finished product comprises a dry fiber composite semi-finished product and wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 35. A device for producing a fiber-reinforced plastic component by an injection process, the device comprising:
a tool adapted to support a fiber composite semi-finished product; a first membrane which is gas-permeable and impermeable to a matrix material; the first membrane being structured and arranged to form a first cavity with at least one side of the fiber composite semi-finished product; a line allowing insertion of the matrix material into the first cavity; a second membrane which is impermeable to gas and to the matrix material; the second membrane being sealed with respect to the tool and being structured and arranged to form a second cavity adjacent to the first cavity; the second cavity being delimited from a surrounding area via the second membrane; and a pressure control system connected to the line and influencing a pressure in the line, whereby, when air is suctioned from the second cavity, the first cavity is evacuated, the matrix material is suctioned from a reservoir into the first cavity, and the matrix material penetrates vertically into the fiber composite semi-finished product.
- 36. The device of claim 35, wherein the fiber composite semi-finished product comprises a dry fiber composite semi-finished product and wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 37. A method for producing a fiber-reinforced plastic component, the method comprising:
arranging a fiber composite semi-finished product on a tool; forming a first cavity, wherein the first cavity is defined by a gas-permeable membrane which is impermeable to a matrix material; forming a second cavity adjacent to the first cavity, wherein the second cavity is delimited from a surrounding area by a film that is gas-impermeable and matrix-material-impermeable and that is sealed with respect to the tool; suctioning air from the second cavity, wherein the suctioning causes evacuation of the first cavity and causes the matrix material to be suctioned from a reservoir into the first cavity; distributing the matrix material over at least one side of the fiber composite semi-finished product using at least one flow promoting device arranged on the at least one side; and allowing the matrix material to penetrate into the fiber composite semi-finished product from a vertical direction.
- 38. The method of claim 37, wherein the at least one side of the fiber composite semi-finished product faces the tool and wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 39. The method of claim 37, wherein the at least one flow promoting device is arranged between the at least one side and the tool.
- 40. The method of claim 37, further comprising distributing the matrix material over an opposite side of the fiber composite semi-finished product using at least one other flow promoting device arranged on the opposite side.
- 41. The method of claim 37, further comprising, during the suctioning, subjecting a flow of the matrix material into the first cavity to at least a temporary increase in pressure using a pressure-producing system.
- 42. A device for producing a fiber-reinforced plastic component by an injection process, the device comprising:
a tool adapted to support a fiber composite semi-finished product; at least one flow-promotion device configured to be arranged on a surface of the fiber composite semi-finished product which faces the tool; a first membrane which is gas-permeable and impermeable to a matrix material; the first membrane being structured and arranged to form a first cavity with at least one side of the fiber composite semi-finished product; a line allowing insertion of the matrix material into the first cavity; a second membrane which is impermeable to gas and to the matrix material; and the second membrane being sealed with respect to the tool and being structured and arranged to form a second cavity adjacent to the first cavity, whereby, when air is suctioned from the second cavity, the first cavity is evacuated, the matrix material is suctioned from a reservoir into the first cavity and into the at least one flow-promotion device, and the matrix material is distributed over the surface and penetrates vertically into the fiber composite semi-finished product.
- 43. The device of claim 42, wherein the fiber composite semi-finished product comprises a dry fiber composite semi-finished product and wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 44. A method for producing a fiber-reinforced plastic component, the method comprising:
arranging a fiber composite semi-finished product on a tool; applying a layer on at least one surface of the fiber composite semi-finished product on a tool, wherein the layer comprises one of a metallic layer and a composite layer; forming a first cavity, wherein the first cavity is defined by a gas-permeable membrane which is impermeable to a matrix material; forming a second cavity adjacent to the first cavity, wherein the second cavity is delimited from a surrounding area by a film that is gas-impermeable and matrix-material-impermeable and that is sealed with respect to the tool; suctioning air from the second cavity, wherein the suctioning causes evacuation of the first cavity, such that the matrix material is suctioned from a reservoir into the first cavity; and allowing the matrix material to penetration through the layer and into the fiber composite semi-finished product, wherein the allowing connects the layer to the fiber composite semi-finished product.
- 45. The method of claim 44, wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 46. The method of claim 44, wherein the allowing comprises allowing the matrix material to penetration through the layer and vertically into the fiber composite semi-finished product.
- 47. A device for producing a fiber-reinforced plastic component by an injection process, the device comprising:
a tool adapted to support a fiber composite semi-finished product; at least one flow-promotion device configured to be arranged on at least one surface of the fiber composite semi-finished product; a layer arranged on at least one surface of the fiber composite semi-finished product on a tool, wherein the layer comprises one of a metallic layer and a composite layer; a membrane which is gas-permeable and impermeable to a matrix material; the membrane being structured and arranged to form a first cavity with at least one side of the fiber composite semi-finished product; a line allowing insertion of the matrix material into the first cavity; a film which is impermeable to gas and to the matrix material; and the film being sealed with respect to the tool and being structured and arranged to form a second cavity adjacent to the first cavity, whereby, when air is suctioned from the second cavity, the first cavity is evacuated, the matrix material is suctioned from a reservoir into the first cavity, into the at least one flow-promotion device and through the layer, the matrix material penetrates vertically into the fiber composite semi-finished product, and the layer is connected to the fiber composite semi-finished product.
- 48. The device of claim 47, wherein the fiber composite semi-finished product comprises a dry fiber composite semi-finished product and wherein the first cavity is formed around the at least one side of the fiber composite semi-finished product.
- 49. The device of claim 47, wherein the at least one flow-promoting device is configured to cause a distribution of the matrix material over the at least one surface.
- 50. A method for producing a fiber-reinforced plastic component, the method comprising:
arranging a fiber composite semi-finished product on a tool; forming a first cavity, wherein the first cavity is defined by a gas-permeable membrane which is impermeable to a matrix material; forming a second cavity adjacent to the first cavity, wherein the second cavity is delimited from a surrounding area by a film that is gas-impermeable and matrix-material-impermeable and that is sealed with respect to the tool; suctioning air from the second cavity, wherein the suctioning causes evacuation of the first cavity, such that the matrix material is suctioned from a reservoir into the first cavity; and controlling vacuum, temperature and pressure of the first cavity in order to harden the fiber composite semi-finished product.
Priority Claims (1)
Number |
Date |
Country |
Kind |
101-40-166.3 |
Aug 2001 |
DE |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The instant application is a National Stage Application of International Application No. PCT/DE02/02857 filed on Aug. 2, 2002 and published as International Publication WO 03/018297 on Mar. 6, 2003. The instant application also claims priority under 35 U.S.C. §119 of German Application No. 101 40 166.3 filed on Aug. 22, 2001.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/DE02/02857 |
8/2/2002 |
WO |
|