Machine press
10421246 ยท 2019-09-24
Assignee
Inventors
Cpc classification
B30B15/165
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/625
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2211/7055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/265
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B30B15/163
PERFORMING OPERATIONS; TRANSPORTING
F15B2211/20569
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
In a machine press with a lower and an upper tool support, a closed hydraulic drive system acts upon the upper tool support. This system has at least one hydraulic drive unit, which includes at least one hydraulic cylinder-piston unit and at least one hydraulic assembly acting upon this unit and supplied from a storage reservoir. A base pressure above environmental pressure constantly prevails in the storage reservoir. The storage reservoir is designed as a cylinder store with a hydraulic chamber defined by a cylinder and a piston unit displaceably guided therein. The piston unit is acted upon on its side functionally opposite the hydraulic chamber by a hydraulic fluid chamber which for its part is connected to a high-pressure gas store. The active surface of the hydraulic fluid chamber on the piston unit is small compared to the active surface of the hydraulic chamber on the piston unit.
Claims
1. A machine press with a machine structure, a lower tool support disposed in fixed spatial relationship with the machine structure, an upper tool support, which is linearly movable up and down by an operating stroke relative to the lower tool support, and a closed hydraulic drive system, which acts on the upper tool support to cause the downwardly directed movement of the upper tool support and where the closed hydraulic drive system is provided with at least one hydraulic drive unit (1), which in turn comprises at least one hydraulic cylinder-piston unit (2) and at least one hydraulic assembly (6) that urges the hydraulic cylinder-piston unit, where a storage reservoir provides hydraulic fluid to the hydraulic assembly, wherein a base pressure higher than environmental pressure prevails constantly in the storage reservoir, wherein: the storage reservoir (20) is constructed as a cylinder accumulator (22) with a hydraulic chamber (21) bounded by a cylinder (23) and a piston unit (24) guided displaceably therein, wherein the piston unit is urged on its side disposed functionally opposite to the hydraulic chamber by a pressurized fluid chamber (25), which in turn is in communication with a high-pressure gas accumulator (26, 31, 36) and an active face (27) of the fluid chamber on the piston unit is small compared with an active face (28) of the hydraulic chamber (21) on the piston unit (24).
2. The machine press of claim 1, wherein a ratio of the active faces (28; 27) of the hydraulic chamber (21) and of the pressurized-fluid chamber (25) on the piston unit (24) is between 50 and 150.
3. The machine press of claim 1, wherein the pressurized-fluid chamber (25) is disposed inside the piston unit (24).
4. The machine press of claim 3, wherein the pressurized-fluid chamber (25) is sealed relative to a cylindrical outer face (29) of a plunger tube (30), which penetrates more or less deeply therein and is in communication with the high-pressure gas accumulator (26).
5. The machine press of claim 1, wherein the pressurized-fluid chamber (25) is disposed as a cavity inside a projection (32) provided on the piston unit (24) and prolonging it.
6. The machine press of claim 5, wherein a projection (32) protrudes into the hydraulic chamber (21).
7. The machine press of claim 5, wherein the pressurized-fluid chamber (25) is bounded by a sealing piston (33) guided sealingly in the cavity.
8. The machine press of claim 7, wherein the sealing piston (33) is disposed at the end face on a plunger tube (34), which passes through the pressurized-fluid chamber (25) and is sealed relative to its cylindrical outside face (35) of the projection (32) of the piston unit (24).
9. The machine press of claim 1, wherein the high-pressure gas accumulator (26) is constructed as a hydraulic accumulator, wherein an oil side of the hydraulic accumulator is in communication with the pressurized-fluid chamber (25).
10. The machine press of claim 1, wherein a hydropneumatically constructed return-stroke spring device acts on the upper tool support, wherein a gas spring of the spring device is identical to the high-pressure gas accumulator (31).
11. The machine press of claim 1, wherein the pressurized-fluid chamber (25) is provided inside the cylinder accumulator (22) on the side of the piston unit (24) facing away from the hydraulic chamber (21), and at the same time forms the volume of the high-pressure gas accumulator (36).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be explained hereinafter on the basis of four hydraulic drive units, just as they may be components of preferred embodiments of inventive machine presses, illustrated more or less schematically by way of example in the drawing, wherein
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) The drawing is not intended to represent the machine press as a whole, and it is limited to reproducing the aspects that are important for the present invention while relating to the respective drive system. Thus the machine presses for which the exemplary embodiments of the drive system explained in more detail hereinafter are intended may correspond in terms of their fundamental structure especially to the prior art (see, for example, DE 102009052531 A1).
(7) The closed hydraulic drive system acting on the upper tool support of the machine press in order to bring about its downwardly directed movement respectively comprises at least one hydraulic drive unit 1. Typically the drive system in question of each machine press respectively comprises two of the illustrated drive units, and so the description hereinafter will focus on this alternative.
(8) Each of the two drive units 1 comprises in turn a hydraulic cylinder-piston unit 2although if necessary several cylinder-piston units 2 may also be providedwith a cylinder 3 and, guided therein, a piston 4, the piston rod 5 of which is firmly joined to the upper tool support of the machine press, as well as a hydraulic assembly 6 that urges hydraulic cylinder piston unit 2 and has a hydraulic pump 8 driven (reversibly with respect to the direction of rotation) by an electric motor 7 and constructed as a reversing pump.
(9) The upper tool support is held in its upper end position by means of a spring device that applies preloading. The spring device is integrated in such a way into hydraulic cylinder-piston unit of the two drive units 1 that respective piston-rod working chamber 9 of hydraulic cylinder-piston units 2 is in hydraulic communication with an associated external pressure accumulator 10 subjected to gas preloading.
(10) The hydraulic drive of the machine press can be changed over between a fast traverse and a press traverse. In this connectionbecause the upwardly directed force of the spring device (described in the foregoing) is acting constantly at such a height on the upper tool support that its weight and all movable components of the machine press coupled therewith as well as the closing force involved by the base pressure prevailing in the two hydraulic drive units (see below) is over-compensated and the upper tool support is held in its highest position by preloadingan active movement of the upper tool support by the hydraulic drive is nevertheless not a free movement due to gravity, even in the fast traverse. This is achieved by the fact that a respective auxiliary piston 12 penetrates into pistons 4 of the two hydraulic cylinder-piston units 2, namely into respective bores 11 machined therein. More information in this regard may be found in AT 8633 U1 (
(11) For the press traverse, valve 18 is changed over, so that hydraulic assembly 6 urges piston working chamber 17 and auxiliary working chamber 15 in parallel. At the end of the closing movement, i.e. typically when the upper tool support has reached a given position, the flow of hydraulic assembly 6 is powered down and stopped, so that the upper tool support becomes stationary. The tool then pauses for a short time, before what is known as the decompression stroke sets in, i.e. the slow, controlled raising of the upper tool and opening of the press by a small distance (e.g. 2-3 mm) due to reversal of the flow direction in the hydraulic assembly. At the end of the decompression stroke, i.e. when the high pressure in cylinder-piston unit 2 has been reduced at least substantially, valve 18 and suction valve 19 are changed over, so that piston 4 is retracted under the effect of the spring device. This retraction of piston 4 takes place in a controlled (braked) fast traverse, in which auxiliary working chamber 15 is emptied in monitored and controlled manner via hydraulic assembly 6, which continues to be operated with flow direction reversed compared with closing of the press. To this extent the output capacity of hydraulic assembly 6 can be changed over and adjusted in this hydraulic drive unit.
(12) The hydraulic system is hermetically sealed. For this purpose a storage reservoir 20, which has a volume-variable hydraulic chamber (storage chamber) 21, wherein the maximum volume difference of storage chamber 21 is matched to the alternating volume of hydraulic cylinder-piston unit 2, is provided for the hydraulic fluid.
(13) The hydraulic fluid is pressurized in such a way in the hydraulic system that at least a base pressure higher than the environmental pressure prevails constantly therein and everywhereand therefore especially in storage chamber 21. For this purpose, and in engineered implementation of the present invention, storage reservoir 20 is constructed in all exemplary embodiments as cylinder accumulator 22 with a storage chamber (hydraulic chamber) 21 bounded by a cylinder 23 and a piston unit 24 guided displaceably therein. On its side functionally facing hydraulic chamber 21, piston unit 24 is urged by a pressurized-fluid chamber 25. This in turn is in communication with a high-pressure gas accumulator 26. Active face 27 of pressurized-fluid chamber 25 on piston unit 24 is small relative to active face 28 of hydraulic chamber 21 on piston unit 24.
(14) In the embodiment shown in
(15) According to
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(18) It must be pointed out for clarification that the illustration of the exemplary embodiments explained in the foregoing with diverse detailed features is in no case to be construed as a correspondingly limited disclosure of the present invention, and certainly not even in such a way that the respective individual features are respectively disclosed only in such a combination with one another. To the contrary, other detailed features and/or other combinations of features are encompassed by the present invention. For example, the specific (hydropneumatic) construction of the device for the return stroke of the upper tool support is in no way mandatory. To the contrary, all other known return-stroke devices functioning, for example, hydraulically, mechanically, electrically, pneumatically or in some other way may be provided. No more so is it mandatory that the upper tool support of the machine press can be lowered at all with two different speeds, i.e. in a fast traverse and a press traverse, but if it can, that a combined hydraulic cylinder according to the illustrated design must be used for the purpose. Diverse other known configurations that permit two-stage lowering of the upper tool support are obviously also usable in the scope of the present invention.