The present invention relates to an axial piston machine, in particular to an air-conditioning compressor for motor vehicles, including at least one piston having a substantially cylindrical piston skirt and a wraparound element that embraces a swivel ring or a swash plate, and piston slippers that slide on this swivel ring or this swash plate that slidably engage thereon.
The present invention also relates to a method for manufacturing a piston of an axial piston machine.
Machines of this kind are generally known. The process of manufacturing the piston wraparound element with the spherical cap-shaped depressions for receiving the piston slippers is associated with narrow tolerances and is difficult from a production standpoint since, once the piston slippers and the swash plate, respectively the swivel ring, have been assembled, the piston slippers must be movable with the least possible clearance within the wraparound element. For the most part, therefore, a high workpiece accuracy, respectively precise selection of the individual parts, is essential.
It is an object of the present invention to devise an axial piston machine which will overcome these disadvantages.
The present invention provides an axial piston machine, in particular an air-conditioning compressor for motor vehicles, including at least one piston having a substantially cylindrical piston skirt and a wraparound element that embraces a swivel ring or a swash plate, and piston slippers that slide on this swivel ring or this swash plate, a separate retaining element having a spherical cap-shaped depression for one of the piston slippers being arranged within the wraparound element. An axial piston machine is preferred in which the separate retaining element is adjustable/positionable relative to the wraparound element. Here the advantage is derived that, independently of the manufacturing tolerances of the wraparound element and of the two spherical cap-shaped depressions, the separate retaining element is able to slidably engage without clearance against the piston slippers and the swash plate, and, if indicated, may even squeeze the piston slippers, preloading the same, thereby eliminating the need for complicated machining or even selection processes.
An axial piston machine according to the present invention may provide a retaining element that may be adjustable relative to the wraparound element through the use of a self-locking threaded connection. It may also be beneficial, however, to use a press-fit connection to fasten the retaining element or a welded connection, once the retaining element has been placed in position against the piston slipper.
An axial piston machine is preferred in which, following assembly of one swash plate and two piston slippers, the retaining element may be inserted into the wraparound element and fixed in position substantially without play therein.
In addition, an axial piston machine is preferred in which the wraparound element has a circular opening for receiving the cylindrical piston skirt. Advantageous in this context is the multipiece design of the entire piston, since, for example, the cylindrical piston skirt may be fabricated in a deep-drawing process and the wraparound element in a stamping/bending process, so that the manufacturing method may be adapted to the shape of the individual parts.
In addition, an axial piston machine is preferred, in which the cylindrical piston skirt has a casing and an end cover. Here as well, it may be possible to optimize the fabrication of the individual parts and the different methods associated therewith through the use of a plurality of individual parts.
An axial piston machine according to the present invention may provide the casing with a second spherical cap-shaped depression of the piston for the other piston slipper. Thus, as an individual part, the open casing form allows the spherical cap-shaped depression to be integrally co-formed during the deep-drawing process without entailing substantial outlay for manufacturing.
An axial piston machine is also preferred in which the cover has at least one piston-ring groove. Preferred here again is a method for manufacturing a relatively flat cover component that allows a suitable piston-ring groove to be incorporated into this component.
Also preferred is an axial piston machine in which the wraparound element, the retaining element, the casing and the cover are fabricated from a steel material. The steel material has, in particular, a higher strength and also better wear characteristics than aluminum materials known from the related art, and also facilitates production of thin-walled components.
Equally preferred is an axial piston machine in which the wraparound element, the casing, the end cover and, as the case may be, the retaining element may be laser-welded together, within the spherical cap-shaped depression, the casing having an opening, for example to allow for cleaning subsequently to the welding and abrading processes.
A method is also preferred for manufacturing a piston of an axial piston machine, in particular an air-conditioning compressor for motor vehicles, including at least one piston having a substantially cylindrical piston skirt and a wraparound element that embraces a swivel ring or a swash plate, and piston slippers that slide on this swivel ring or this swash plate, a first piston slipper being inserted into the spherical cap of the casing; the swivel ring or the swash plate being introduced into the wraparound element over the first piston slipper; the second piston slipper being fitted onto the swivel ring, respectively the swash plate, inside of the wraparound element; the retaining element being introduced through the opening into the wraparound element and being brought into contacting engagement with the second piston slipper; and the retaining element being fixed to the wraparound element in this position of contacting engagement, preferably using a fastening method, such as a self-locking thread or a press-fit connection, optionally, however also by a welded or bonded connection. Thus, it is especially advantageous to fit the retaining element onto the swivel ring, respectively the swash plate, in the wraparound element, only after the piston slippers have been installed. This allows the internal clearance in the assembly unit, composed of the swash plate, the piston slipper and the piston, to be optimally adjusted without the need for specially selecting components.
The present invention is described below in greater detail with reference to the figures, which show:
The cylindrical portion of the piston, also referred to as piston casing 1, is shown in cross section in
In
In
In
Following insertion of spherical cap 21 from
In
Finally, in
Thus, the assembly unit of an air-conditioning compressor piston composed of a casing 1 having a finish-stamped spherical cap 3, additionally of a cover 7 having a piston-ring groove 9, a U-shaped wraparound element 13 and a retaining segment 27 is provided by the present invention. In this context, depending on the particular advantages desired, different methods may be selected for joining casing 1 to cover 7, on the one hand, and casing 1 to U-shaped wraparound element 13, on the other hand. When sheet metal steel materials are used, it is preferable to employ laser welding processes since the piston must also be able to withstand high forces during the compression work. However, for machine applications which are not carried out at such high pressures, other materials, as well as other fastening methods would also be conceivable. It is possible to consider other aspects when designing the connection of U-shaped wraparound element 13 to retaining element 27. Thus, for example, a threaded connection is conceivable that allows the clearance to be properly adjusted and also readjusted. A self-locking thread prevents the threaded connection from becoming loose during operation.
Number | Date | Country | Kind |
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10 2005 019 046.4 | Apr 2005 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE2006/000577 | 3/31/2006 | WO | 00 | 10/23/2007 |