Press for making a part from fiber composite
10843418 ยท 2020-11-24
Assignee
Inventors
Cpc classification
B29C70/446
PERFORMING OPERATIONS; TRANSPORTING
B30B5/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C70/46
PERFORMING OPERATIONS; TRANSPORTING
B29C70/44
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a press for producing a component from a fibre-composite material, which is designed as a membrane press, comprising a press frame (15), a press lower part (3) on which a mould (4) is arranged, a press upper part (5) having a pressure chamber (6) that can be sealed against the press lower part (3), one or more press cylinders (9) which are supported on the press frame and act on the press upper part (5) and/or the press lower part (3), a membrane (11) that can be tensioned over the mould (4), a vacuum pump (12) with which a vacuum can be generated on a side of the membrane (11), for example on the underside, characterised in that the press frame is designed as a C-frame with an upper horizontal C-arm, a lower horizontal C-frame and a vertical C-base.
Claims
1. A press for making a part from fiber composite, the press comprising: a laterally open C-shaped frame consisting of a plurality of C-frames provided one behind the other and each C-shaped, the frame having a horizontal upper C-leg, a horizontal lower C-leg, and a vertical C-base extending between the upper and lower C-legs, a mold, a lower element on the lower C-leg and supporting the mold, a upper element on the upper C-leg and having a pressure case that can be sealed against the lower element, cylinders supported on the frame and acting on the upper element or on the lower element, a membrane stretchable over or against the mold, and a vacuum pump that can create a subatmospheric pressure on one side of the membrane.
2. The press defined in claim 1, further comprising: claiming elements securing together the plurality of C-frames.
3. The press defined in claim 1, wherein the cylinders are supported on the upper C-leg and act upon the upper element, and the lower element is fixed on the lower C-leg.
4. The press defined in claim 1, wherein the lower element or the upper element is heatable.
5. The press defined in claim 1, wherein the mold or a base plate supporting or forming the mold is heatable.
6. The press defined in claim 1, wherein the pressure case is heatable.
7. The press defined in claim 1, wherein the membrane is made of silicone.
8. The press defined in claim 1 wherein the membrane is secured to the upper element in an elastically biased manner so as to be clamped into the pressure case.
9. A press for making a part from fiber composite, the press comprising: a laterally open C-shaped frame having a n horizontal upper C-leg, a horizontal lower C-leg, and a vertical C-base extending between the upper and lower C-legs; a mold; a lower element on the lower C-leg and supporting the mold; a upper element on the upper C-leg and having a pressure case that can be sealed against the lower element; press cylinders supported on the frame and acting on the upper element or on the lower element; a membrane stretchable over or against the mold; a vacuum pump applying subatmospheric pressure on a side of the membrane turned toward the mold; a superatmospheric pressure pump applying superatmospheric pressure in the pressure case on an opposite side of the membrane turned away from the mold; and means for heating an interior of the pressure case on the opposite side of the membrane or for heating the mold.
Description
BRIEF DESCRIPTION OF THE INVENTION
(1) The invention is described in further detail below with reference to a schematic drawing that illustrates only one embodiment. In the figures:
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SPECIFIC DESCRIPTION OF THE INVENTION
(11) The figures show a membrane press 1 for making a part from fiber composite. In such a membrane press, a part is manufactured from fiber composite by shaping a thermoplastic semifinished product, for example an organic sheet 2. Here, the membrane press 1 has a lower element 3 formed as a press table supporting a mold 4 that is a negative of the part to be manufactured. Moreover, the press 1 has an upper element 5 that has a hood-like pressure case 6 that can be sealed against the lower element 3. For this purpose, the lower, annular front edge 7 of the pressure case 6 that can be placed on the press table is provided with a circumferential seal 8. A press cylinder 9 acts on the upper element 5; here, the piston 10 of the press cylinder 9 is connected to the pressure case 6 so that the pressure case 6 is pressed by the cylinder 9, more particularly the piston 10 thereof, against the lower element 3. Moreover, the membrane press 1 is equipped with an elastic membrane 11 that can be stretched over the mold 4. Furthermore, a vacuum pump 12 is provided that here is connected to the lower element 3. Moreover, a superatmospheric pressure pump 13 can be optionally provided that here is connected to the upper element 5 and/or to the pressure case 6.
(12) To shape an organic sheet 2, it is placed on the mold 4, and the membrane 11 is flexed and stretched over the mold 4 on top of the organic sheet 2.
(13) The organic sheet is deformed so as to deform the part by applying a subatmospheric pressure by the vacuum pump 12 to the face of the membrane 11 facing the mold 4 and by applying a superatmospheric pressure by the superatmospheric pressure pump 13 to the face turned away from the mold 4, so that the organic sheet 2 is shaped against the mold to form the part.
(14) The organic sheet 2 is heated before being placed into the press 1. Moreover, the mold 4 or at least its surface facing the organic sheet 2 is heated before and/or during the deformation. Finally, it is advantageous if the fluid medium that applies superatmospheric pressure to the membrane is heated. To achieve this, a heater 14 is shown schematically in the figures. Heaters for heating the organic sheet and for heating the mold are not shown.
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(17) The organic sheet 2 can be composed as shown in
(18) According to
(19) By contrast,
(20) The invention will be explained particularly with reference to
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(22) In the illustrated embodiment, the press cylinders 9 are in a matrix or in a grid composed of several rows, with three rows (See
(23) The press cylinders 9 can thus be formed in principle as single-acting cylinders that apply the pressing forces. The press cylinders 9 can then be retracted by the retraction cylinders 21 and the press thus opened. Optionally, however, the pressing cylinder 9 can also be formed as a double-acting cylinder, in which case retraction cylinders 21 can be omitted. However, the use of the retraction cylinders 21 can also be advantageous when double-acting cylinders are used.
(24) In the embodiment shown in
(25) The figures have been described with reference to the preferred use of organic sheets and/or organic sheet layers. However, other thermoplastic, semifinished (fiber composite) products and, in particular, semifinished products composed of a plurality of individual layers placed loosely (in non-consolidated form) into the press can also be processed in the manner shown.