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 |
|