POSITIVE DISPLACEMENT MACHINE BASED ON THE SPIRAL PRINCIPLE
20250059976 · 2025-02-20
Inventors
Cpc classification
F04C29/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/0207
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/808
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C23/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C29/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to a positive displacement machine working according to the spiral principle, in particular a scroll compressor, comprising a compressor section and a motor section, wherein an orbiting displacement spiral and a counter spiral are arranged in the compressor section, which engage into one another in such a way that variable compression chambers are formed between the displacement spiral and the counter spiral in order to receive and compress a working medium flowing through a working medium circuit, wherein an electric motor is arranged in the motor section, which is drive-connected to the displacement spiral, and wherein a cooling device is provided for cooling the electric motor. The invention is characterized in that the cooling device is independent of the working medium circuit.
Claims
1. A positive displacement machine according to the spiral principle, in particular, a scroll compressor, comprising a compressor section and a motor section, wherein, in the compressor section, an orbiting displacement spiral and a counter spiral are arranged that engage into one another in such a way that variable compression chambers are formed between the displacement spiral and the counter spiral in order to receive and compress a working medium flowing through a working medium circuit, wherein an electric motor is arranged in the motor section which is drive-connected to the displacement spiral and wherein a cooling device is provided for cooling the electric motor, characterized in that the cooling device is independent of the working medium circuit.
2. The positive displacement machine according to claim 1, wherein the working medium circuit comprises a compressor feed which flows directly into the compressor section, in particular, directly from outside the positive displacement machine.
3. The positive displacement machine according to claim 1, wherein the cooling device comprises a cooling medium circuit.
4. The positive displacement machine according to claim 1, wherein the cooling device, in particular, the cooling medium circuit, is thermally coupled with the working medium circuit or a bypass of the working medium circuit, in particular, by means of a heat exchanger.
5. The positive displacement machine according to claim 3, wherein the cooling medium circuit is arranged entirely outside the electric motor or extends in sections through the electric motor.
6. The positive displacement machine according to claim 1, wherein an inverter is provided for the electrical control of the electric motor, wherein the cooling device, in particular, the cooling medium circuit, is thermally coupled to the inverter.
7. The positive displacement machine according to claim 6, wherein the inverter is attached to a motor housing of the motor section or integrated into a motor housing of the motor section.
8. The positive displacement machine according to claim 6, wherein the inverter is designed independently of the motor section and the compressor section.
9. The positive displacement machine according to claim 1, wherein the cooling device comprises heat pipes.
10. A vehicle, in particular, a battery-powered electric vehicle, or a fuel cell vehicle comprising a positive displacement machine according to claim 1.
11. The vehicle according to claim 10, wherein the inverter is arranged in the vehicle independently of the motor section and/or the compressor section.
12. Use A use of the positive displacement machine according to claim 1 as a refrigerant compressor for cooling and/or as a heat pump for heating.
Description
[0026] The invention is explained in more detail below by means of exemplary embodiments with reference to the following schematic drawings. The figures show:
[0027]
[0028]
[0029]
[0030]
[0031] The motor-side bearing 13 is arranged in a housing floor 16 of an motor housing 15. The motor housing 15 accommodates the electric motor 11. An inverter 17 is integrated into the housing floor 16 or arranged on the housing floor 16.
[0032] The compressor-side bearing 24 is arranged in the compressor section 20. The drive shaft 12 is connected to a displacement spiral 21 in the compressor section 20 via an eccentric bearing 25. The eccentric bearing 25 is used to set the displacement spiral 21 in orbital motion.
[0033] The displacement spiral 21 engages in a counter spiral 22 so that a compression chamber 23 is formed or a plurality of compression chambers 23 are formed between the displacement spiral 21 and the counter spiral 22. The, or each compression chamber 23 is variable, wherein the variability refers to the volume of the compression chamber 23 depending on the position of the displacement spiral 21.
[0034] The compressor section 20 comprises a compressor housing 28 that surrounds the displacement spiral 21, the counter spiral 22 and the compression chamber 23. The compressor housing 28 is connected to the motor housing 15.
[0035] The high-pressure section 30 connects to the compressor section 20 and comprises a high-pressure housing 33 that encloses a high-pressure chamber 31. The high-pressure housing 33 is firmly connected to the compressor housing 28. It is also possible that the compressor housing 28 and the high-pressure housing 33 are single-piece. The high-pressure section 30 comprises a working medium outlet 32, which extends as a channel through the high-pressure housing 33 and connects the high-pressure chamber 31 with the surrounding area.
[0036] In the case of the positive displacement machine 100 from prior art, a working medium 40, which is preferably designed as a refrigerant, flows into motor section 10 via an motor feed 14. The working medium 40 then flows through the electric motor 11, wherein it preferably passes through channels in the stator 11a or through an air gap between the stator 11a and a rotor 11b. A separating can may also extend through the air gap, separating the rotor 11b from the stator 11a in a fluid-tight manner. A compressor equipped with such a separating can is described in the applicant's German patent application, filed on the same date and entitled Kaltemtttelverdlchter (Refrigerant compressor).
[0037] The working medium 40 enters the compressor section 20 and is fed into the variable compression chamber 23 in the compressor section 20 via a chamber feed 26. Via the movement of the displacement spiral 21 with relation to the counter spiral 22 and the resulting change in volume of the compression chamber 23, the working medium 40 is compressed and enters the high-pressure chamber 31 under a high level of pressure. The working medium 40 then leaves the positive displacement machine 100 via the working medium outlet 32. The course of working medium 40 is shown in the attached figures by dashed arrows.
[0038] In the case of the positive displacement machine 100 from prior art in accordance with
[0039]
[0040] It is particularly preferable to set up a cooling medium circuit that comprises a cooling medium 50 that circulates in a cooling medium circuit independent of the working medium circuit. The cooling medium 50 can be water, for example.
[0041] In this respect, it can therefore be provided that motor section 10 comprises an external water-cooling system.
[0042] The shell cooling system or cooling device 18 preferably extends over the entire circumference of motor section 10.
[0043] In addition, it can be provided that the cooling device 18 is thermally coupled to the housing floor 16 and/or the inverter 17. In particular, a single cooling medium circuit, such as a water-cooling circuit for example, can be provided, which is thermally coupled to the inverter 17 and the motor housing 15. The cooling medium circuit dissipates heat from the inverter 17 and/or the motor housing 15 and thus also from the electric motor 11. Specifically, a cooling element 18c can be arranged on the outside of the motor housing 15 and/or on the outside of the inverter 17, wherein cooling medium inlet 18a and a cooling medium outlet 18b are assigned to each cooling element 18c. The 18c cooling elements can be connected in series or in parallel with regard to the cooling medium flow. It is also possible for each cooling element 18c to be assigned to a separate cooling device.
[0044] As can be seen in
[0045] The exemplary embodiment in accordance with
[0046] The cooling of the motor section 10 or the electric motor 11 is carried out in the exemplary embodiment in accordance with
[0047] In
[0048] In addition to the exemplary embodiments presented here, it is also conceivable that a positive displacement machine 100 comprises a motor section 10, through which a part of the working medium 40 is flowed, wherein another part of the working medium 40 flows directly into the chamber feed 26 via the compressor feed 27. In any case, it is provided that a cooling device 18 independent of the working medium circuit is provided to cool the motor section 10 and/or the inverter 17.
REFERENCE LIST
[0049] 100 positive displacement machine [0050] 10 motor section [0051] 11 electric motor [0052] 11a stator [0053] 11b rotor [0054] 12 drive shaft [0055] 13 motor-side bearing [0056] 14 motor feed [0057] 15 motor housing [0058] 16 housing floor [0059] 17 inverter [0060] 18 cooling device [0061] 18a cooling medium inlet [0062] 18b cooling medium outlet [0063] 18c cooling element [0064] 19 motor partition [0065] 20 compressor section [0066] 21 displacement spiral [0067] 22 counter spiral [0068] 23 compression chamber [0069] 24 compressor-side bearing [0070] 25 eccentric bearing [0071] 26 chamber feed [0072] 27 compressor feed [0073] 28 compressor housing [0074] 30 high-pressure section [0075] 31 high-pressure chamber [0076] 32 working medium outlet [0077] 33 high-pressure housing [0078] 40 working medium [0079] 50 cooling medium