The present invention relates to an air-conditioning compressor for air-conditioning systems, in particular for motor vehicles, or to an air-conditioning system having an air-conditioning compressor, the air-conditioning compressor communicating with a high-pressure zone and with a suction pressure zone, pressure being optionally returned from the drive chamber of the air-conditioning compressor, from the drive-chamber pressure zone to the suction pressure zone, and a filter, in particular a dirt particle filter, being optionally located in the suction pressure zone.
Compressors or air-conditioning systems of this kind are generally known. In this context, the problem arises that, once a certain operating time period has elapsed, the dirt particles form a so-called filter cake in the filters. Over the course of operation, the filter cake causes an increasing loss of pressure that is detrimental to the efficiency of the system.
In addition, compressors having a drive-chamber pressure return have the disadvantage that the drive-chamber pressure within the compressor is returned directly to the suction pressure zone, and, in the process, dirt particles, such as ablated material from the pressure chamber produced by the mechanical loading of the driving gear, are returned to the suction pressure zone of the air-conditioning compressor. There, the dirt particles can do damage, for example in the area of the pistons and the cylinder liners or the valve devices.
It is, therefore, an object of the present invention to devise an air-conditioning compressor or an air-conditioning system which will overcome these disadvantages.
The objective is achieved by an air-conditioning compressor for air-conditioning systems, in particular for motor vehicles, or by an air-conditioning system having an air-conditioning compressor, the air-conditioning compressor communicating with a high-pressure zone and with a suction pressure zone, pressure being optionally returned from the drive chamber of the air-conditioning compressor, from the drive-chamber pressure zone to the suction pressure zone, and a filter, in particular a dirt particle filter, being optionally located in the suction pressure zone, an additional dirt particle separator being located in the suction pressure zone. Here, the advantage is derived that dirt particles in the dirt particle separator may be collected in a collecting space and are, therefore, not able to reach the downstream filter. As a result, no filter cake that is effective to any appreciable degree is able to build up in the filter.
An air-conditioning compressor or an air-conditioning system is preferred, in which the dirt particle separator is designed as a cyclone separator, the dirt particles being separated by the action of centrifugal force along the walls of the dirt particle separator and being collected in a dirt-particle collecting device, while the purified refrigerant stream is directed to the suction pressure zone of the air-conditioning compressor.
Also preferred is an air-conditioning compressor or an air-conditioning system, in which the dirt particle separator is located in the direction of flow upstream of the filter. Also preferred is an air-conditioning compressor or an air-conditioning system, in which the dirt particle separator is located inside of the compressor housing. An air-conditioning compressor or an air-conditioning system is likewise preferred in which the drive-chamber pressure return is connected between the filter and the compressor inlet. An air-conditioning compressor or an air-conditioning system is likewise preferred in which the drive-chamber pressure return is connected between the filter and the dirt particle separator, so that the drive-chamber pressure return is also filtered. Another air-conditioning compressor or an air-conditioning system is preferred in which the drive-chamber pressure return is connected in the direction of flow upstream of the dirt particle separator, so that the drive-chamber pressure return is also cleaned of dirt particles in the dirt particle separator.
A compressor in accordance with the present invention or an air-conditioning system in accordance with the present invention has the distinguishing feature that the dirt particle separator is located outside of the compressor housing and the filter inside of the compressor housing, and the drive-chamber pressure return is connected in the direction of flow downstream of the filter, between the filter and the compressor suction-pressure zone.
Another air-conditioning compressor in accordance with the present invention or an air-conditioning system in accordance with the present invention has the distinguishing feature that the dirt particle separator and the filter are located outside of the compressor housing, and the drive-chamber pressure return is redirected in the direction of flow downstream of the filter, to the suction pressure zone of the compressor. An air-conditioning compressor or an air-conditioning system is likewise preferred in which the dirt particle separator is located outside of the housing and the filter inside of the housing, and the drive-chamber pressure return is connected in the direction of flow upstream of the filter, so that the drive-chamber pressure return flow is filtered.
The present invention is described in the following with reference to the figures, which show:
The circuit diagram in
The circuit diagram in
In another circuit diagram in
In
In
Thus, the essential principle underlying the present invention is the introduction of an additional dirt particle separator 5 for extracting particles which may be collected in a collecting space 9 and, therefore, not be able to reach downstream filter 3. Thus, no appreciably noticeable filter cake is able to build up in filter 3 which, otherwise, over the course of operation, would cause an increasing loss of pressure that would be detrimental to the efficiency of the system.
It is also an aim of the present invention for drive-chamber outflow 25 or 29 to be linked to suction pressure zone 15 of compressor 1 in such a way that the compressor control characteristic is not unintentionally influenced, for example by the increasing loss of pressure across filter 3. This may be achieved, in particular, by returning the drive-chamber outflow via connecting line 29 in
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/DE05/01719 | 9/28/2005 | WO | 3/27/2007 |