The present invention relates to a scroll compressor.
In the past few years, in the refrigeration and air-conditioning industry, there is a growing movement to change a conventional refrigerant to a refrigerant having a low GWP (Global Warming Potential). Currently, as an alternative refrigerant (a next refrigerant) to R410A widely used in an air conditioner, R32, R290, R1234ze and the like are raised as candidate refrigerants.
A candidate refrigerant R32 has a problem that its molecular weight is small and leakage loss increases as compared with R410A. Further, candidate refrigerants R290 and R1234ze have a problem that their volumetric capacity is low as compared with R410A. As a solution to these problems, it is effective to reduce a displacement volume of a compressor and to operate the compressor in high-speed rotation.
However, when operating a scroll compressor in high-speed rotation, there is a possibility that by centrifugal force generated by an orbiting scroll or a motor (rotor), a crankshaft is bent, and reliability of a bearing for supporting the crankshaft is reduced or vibration noise is increased.
In order to avoid this phenomenon, it is necessary to use a lightweight material such as an aluminum-based material for the orbiting scroll. However, when using the aluminum-based material only for the orbiting scroll and using a conventional iron-based material for a fixed scroll, a gap inside the compressor is expanded due to a difference in linear expansion coefficient between the iron-based material and the aluminum-based material, to reduce efficiency. Therefore, it is desirable that a material of the orbiting scroll and a material of the fixed scroll are the same material.
Further, the fixed scroll compresses a refrigerant gas and is provided with a discharge port for discharging the refrigerant gas, and a release valve device for discharging the refrigerant gas at an early stage under the condition that liquid compression or pressure ratio is low. For example, Patent Document 1 describes this release valve device.
{Patent Document 1}
Japanese Patent Application Publication No. 2013-019322
The release valve device of Patent Document 1 includes a valve pressing body made of an elastic member and a guide member, a release valve which is pressed by the valve pressing body, and a valve seat in contact with the release valve. The release valve device of Patent Document 1 has a simple check valve structure, and the release valve is opened when pressure in a compression chamber is greater than a force of the valve pressing body, and the release valve is closed when the pressure in the compression chamber is reduced. In this manner, when the release valve device of Patent Document 1 repeats opening and closing, the release valve and the valve seat repeat collisions with each other, so to speak.
In the release valve device of Patent Document 1, the valve seat is formed integrally with the fixed scroll. Thus, when a material having a low Vickers hardness such as the aluminum-based material is used for the fixed scroll, it is considered that the valve seat is damaged due to the collision between the release valve and the valve seat.
Therefore, an object of the present invention is to provide a scroll compressor capable of ensuring reliability of a release valve device.
In order to solve the above problems, a scroll compressor according to the present invention is characterized by including: an orbiting scroll having an orbiting scroll wrap; a fixed scroll having a fixed scroll wrap intermeshing with the orbiting scroll wrap; a release hole formed in the fixed scroll; a housing hole communicating with the release hole and having a larger diameter than that of the release hole; a valve seat member which is housed in the housing hole and has a valve seat surface; a valve plate contacting with or separating from the valve seat surface by a pressure difference; a spring for pressing the valve plate against the valve seat surface; a stopper which is equipped with the spring and secures the valve seat member; and a retainer for securing the stopper.
Further, a scroll compressor according to the present invention is characterized by including: an orbiting scroll having an orbiting scroll wrap; a fixed scroll having a fixed scroll wrap intermeshing with the orbiting scroll wrap; a release hole formed in the fixed scroll; a housing hole communicating with the release hole and having a larger diameter than that of the release hole; a valve seat member which is housed in the housing hole and has a valve seat surface; a valve plate contacting with or separating from the valve seat surface by a pressure difference; a first spring for pressing the valve plate against the valve seat surface; a stopper which is equipped with the spring and secures the valve seat member; a second spring for pressing the stopper; and a retainer for pressing the second spring.
Furthermore, a scroll compressor according to the present invention is characterized by including: an orbiting scroll having an orbiting scroll wrap; a fixed scroll having a fixed scroll wrap intermeshing with the orbiting scroll wrap; a release hole formed in the fixed scroll; a housing hole communicating with the release hole and having a larger diameter than that of the release hole; a valve seat member which is housed in the housing hole and has a valve seat surface; a valve plate contacting with or separating from the valve seat surface by a pressure difference; a first spring for pressing the valve plate against the valve seat surface; a stopper equipped with the spring; a second spring disposed between the stopper and the valve seat member; and a retainer for securing the stopper.
According to the present invention, it is possible to provide a scroll compressor capable of ensuring reliability of a release valve device.
Hereinafter, embodiments of the present invention (hereinafter referred to as “embodiments”) will be described in detail with reference to the accompanying drawings. Note that, in each figure, the same components are denoted by the same reference numerals, and a duplicated description thereof will be omitted.
First, a scroll compressor S according to a first embodiment will be described with reference to
As shown in
The sealed container 1 is configured such that a lid chamber 1b is welded to an upper side of a cylindrical case 1a, and a bottom chamber 1c is welded to a lower side of the cylindrical case 1a. Further, the lid chamber 1b is provided with a suction pipe 1d, and the case 1a is provided with a discharge pipe 1e. The compressor mechanism 2 is disposed at an upper portion in the sealed container 1 composed of the case 1a, the lid chamber 1b and the bottom chamber 1c, and the electric motor 8 is disposed at a lower portion in the sealed container 1. Then, machine oil 11 (lubricating oil) is stored in a bottom portion of the sealed container 1.
The compression mechanism 2 is configured to include the orbiting scroll 3, the fixed scroll 4, and the frame 5 which is fastened to the fixed scroll 4 with a fastener 5b such as a bolt and supports the orbiting scroll 3.
The orbiting scroll 3 is provided with a spiral orbiting scroll wrap erected from an upper surface side of a base plate thereof, and is provided with an orbiting bearing 3a, into which an eccentric portion 6b of the crankshaft 6 is fitted, on a lower surface side of the base plate. The fixed scroll 4 is provided with a fixed scroll wrap, which is erected from a lower surface side of a base plate thereof and intermeshes with the orbiting scroll wrap. The orbiting scroll 3 is orbitably disposed opposite to the fixed scroll 4, and a suction chamber 12 and a compression chamber 13 are formed by the orbiting scroll 3 and the fixed scroll 4.
The frame 5 is secured to an inner wall surface of the sealed container 1 by welding at an outer peripheral side thereof, and includes a main bearing 5a for rotatably supporting a main shaft 6a of the crankshaft 6. Further, a back pressure chamber (intermediate pressure chamber) 15 is formed between the orbiting scroll 3 and the frame 5.
The Oldham ring 7 is disposed between a lower surface of the orbiting scroll 3 and the frame 5, and is fitted into a groove formed on the lower surface side of the orbiting scroll 3 and a groove formed in the frame 5. The Oldham ring 7 serves to revolve the orbiting scroll 3 in response to eccentric rotation of the eccentric portion 6b of the crankshaft 6, without rotating the orbiting scroll 3.
The electric motor 8 includes a stator 8a and a rotor 8b. The stator 8a is press-fitted into the sealed container 1, and is secured by welding or the like. The rotor 8b is rotatably disposed in the stator 8a. Further, the crankshaft 6 is secured to the rotor 8b.
The crankshaft 6 is configured to include the main shaft 6a and the eccentric portion 6b. The main shaft 6a of the crankshaft 6 is supported by the main bearing 5a provided in the frame 5 at an upper side thereof, and is supported by the lower bearing 9 at a lower side thereof. The eccentric portion 6b of the crankshaft 6 is formed with the main shaft 6a eccentrically and integrally, and is fitted into the orbiting bearing 3a provided on a back surface of the orbiting scroll 3. When rotating the main shaft 6a by driving the electric motor 8, the eccentric portion 6b rotates eccentrically with respect to the main shaft 6a so as to revolve the orbiting scroll 3. Further, the crankshaft 6 is provided with an oil supply passage 6c for guiding machine oil 11 to the main bearing 5a, the lower bearing 9 and the orbiting bearing 3a, and is attached with an oil supply pipe 6d for sucking and guiding the machine oil 11 to the oil supply passage 6c, at a lower shaft end thereof.
When revolving the orbiting scroll 3 by driving the electric motor 8, gas refrigerant passes through the suction chamber 12 from the suction pipe 1d, and is guided into the compression chamber 13 formed by the orbiting scroll 3 and the fixed scroll 4. Then, the gas refrigerant in the compression chamber 13 is reduced in volume to be compressed as it moves toward the center between the orbiting scroll 3 and the fixed scroll 4. The compressed gas refrigerant is discharged from a discharge port 4a of the fixed scroll 4 to a discharge pressure chamber 14 which is a space in the sealed container 1, and flows out to the outside through the discharge pipe 1e.
The fixed scroll 4 is provided with the release valve device 10 for discharging the gas refrigerant to the discharge pressure chamber 14 before the compression chamber 13 communicates with the discharge port 4a, such as when a large amount of liquid refrigerant is sucked during start-up, or when a pressure ratio of discharge pressure to suction pressure, that is, “discharge pressure/suction pressure” is low.
The pressure ratio when the release valve device 10 operates is quantitatively described as follows. Whether or not the release valve device 10 operates, is determined by a relationship between the pressure ratio and a design volume ratio of the scroll wrap. Here, the design volume ratio is a ratio of maximum volume to minimum volume (volume when the compression chamber 13 communicates with the discharge port 4a) of the compression chamber 13, that is, “maximum volume/minimum volume”. That is, whether or not the release valve device 10 operates, is determined by a shape of the scroll wrap and operation conditions, and the following relationship is satisfied between the pressure ratio and the design volume ratio.
(discharge pressure)/(suction pressure)<{(maximum volume)/(minimum volume)}̂(adiabatic index) (1)
When equation (1) is satisfied, the release valve device 10 operates.
(discharge pressure)/(suction pressure)>{(maximum volume)/(minimum volume)}̂(adiabatic index) (2)
When equation (2) is satisfied, the release valve device 10 does not operate.
Here, before describing the release valve device 10 (see
The release valve device 10E according to the conventional example includes a valve seat surface 4d formed integrally with the fixed scroll 4, a spring 10a, a valve plate 10b, a stopper 10f5 and a retainer 10h.
On a side (an opposite side of the wrap) of the discharge pressure chamber 14 (see
The spring 10a, the valve plate 10b and the stopper 10f5 are disposed inside the housing hole 4b formed in the fixed scroll 4. The spring 10a is supported by the stopper 10f5 at one end thereof, and is in contact with the valve plate 10b at the other end thereof, to bias the valve plate 10b in a direction of the valve seat surface 4d (release hole 4c). The stopper 10f5 supports the one end of the spring 10a and regulates maximum moving distance of the valve plate 10b. The retainer 10h is attached to the side of the discharge pressure chamber 14 (see
When pressure in the compression chamber 13 is lower than the discharge pressure (pressure in the discharge pressure chamber 14 (see
On the other hand, under conditions of the equation (1), when the pressure in the compression chamber 13 is higher than the discharge pressure (pressure in the discharge pressure chamber 14 (see
Here, when the release valve device 10E operates (that is, when the equation (1) is satisfied), the release valve device 10E is opened and closed once per rotation of the crankshaft 6. In other words, when the release valve device 10E operates, the valve plate 10b and the valve seat surface 4d collide with each other once per rotation of the crankshaft 6. For example, when the crankshaft 6 rotates at 3,000 revolutions per minute, the valve seat 4d is a severe contact surface in which 180,000 collisions are repeated per hour, and it is an important issue to ensure reliability of the valve seat surface 4d.
Next, the release valve device 10 included in the scroll compressor S according to the first embodiment will be described with reference to
The release valve device 10 according to the first embodiment includes the spring 10a, the valve plate 10b, a valve seat member 10c having a valve seat surface 10d and a release hole 10e, a stopper 10f having a holding portion 10g, and a retainer 10h.
On the side of the discharge pressure chamber 14 (see
While the valve seat surface 4d of the release valve device 10E (see
As shown in
The retainer 10h is attached to the side of the discharge pressure chamber 14 (see
Basic opening and closing operation of the release valve device 10 according to the first embodiment is the same as the release valve device 10E (see
Operational effects of the scroll compressor S (see
As described above, when using a next refrigerant (for example, R32, R290, R1234ze) as the refrigerant of the scroll compressor S, the orbiting scroll 3 is formed with a lightweight material such as an aluminum alloy or a magnesium alloy, in order to downsize and speed up the scroll compressor S. Further, in order to prevent efficiency reduction due to expansion of a gap inside the compressor by a difference in linear expansion coefficient, the fixed scroll 4 is formed with the same material as the orbiting scroll 3, that is, the lightweight material such as the aluminum alloy or the magnesium alloy. On the other hand, the valve plate 10b of the release valve device 10 is formed with a material such as a rolled steel plate.
Here, the aluminum alloy or the magnesium alloy has a Vickers hardness of about 150, and when the valve seat surface 4d is formed integrally with the fixed scroll 4 as the release valve device 10E (see
In contrast, the release valve device 10 (see
That is, by forming the valve seat surface 10d in the valve seat member 10c separated from the fixed scroll 4, and by using a material having high Vickers hardness as the material of the valve seat member 10c, it is possible to improve reliability of the valve seat surface 10d. In particular, even when a lightweight material such as the aluminum alloy or the magnesium alloy having low Vickers hardness is used as the orbiting scroll 3 or the fixed scroll 4, it is possible to ensure reliability of the release valve device 10.
Meanwhile, in the scroll compressor including the release valve device 10E (see
As the material used as the valve seat member 10c having the valve seat surface 10d, for example, a molding material can be used. In addition, a molding material subjected to nitriding treatment may be used. An iron-based material or a steel material may be used, and an iron-based material or a steel material subjected to nitriding treatment may be used, and further an iron-based material or a steel material subjected to carburizing quenching treatment may be used. A sintered material subjected to steam treatment may be used, and a sintered material subjected to steam treatment and nitriding treatment may be used.
Thus, in the scroll compressor S including the release valve device 10 (see
Next, the scroll compressor S according to a second embodiment will be described. The scroll compressor S according to the second embodiment is different in configuration of a release valve device 10A as compared with the scroll compressor S (see
The release valve device 10A included in the scroll compressor S according to the second embodiment will be described with reference to
The release valve device 10A according to the second embodiment included the spring (a first spring) 10a, the valve plate 10b, the valve seat member 10c having the valve seat surface 10d and the release hole 10e, a stopper 10f1 having a holding portion 10g1, a pressing spring (second spring) 10i1, and the retainer 10h.
The retainer 10h is attached to the side of the discharging chamber 14 (see
The other configurations and basic opening and closing operation of the release valve device 10A according to the second embodiment is the same as the release valve device 10 (see
Operational effects of the scroll compressor S including the release valve device 10A (see
The release valve device 10A (see
Further, as for depth machining accuracy of the housing hole 4b of the fixed scroll 4 according to the second embodiment, high machining accuracy is not required as in the first embodiment, and thus productivity of the fixed scroll 4, and consequently productivity of the scroll compressor S is improved.
Next, the scroll compressor S according to a third embodiment will be described. The scroll compressor S according to the third embodiment is different in configuration of a release valve device 10B as compared with the scroll compressor S (see
The release valve device 10B included in the scroll compressor S according to the third embodiment will be described with reference to
The release valve device 10B according to the third embodiment includes the spring (first spring) 10a, the valve plate 10b, the valve seat member 10c having the valve seat surface 10d and the release hole 10e, a stopper 10f2 having a holding portion 10g2, a pressing spring (second spring) 10i2, and the retainer 10h.
The retainer 10h is attached to the side of the discharge pressure chamber 14 (see
The other configurations and basic opening and closing operation of the release valve device 10B according to the third embodiment is the same as the release valve device 10 (see
Operational effects of the scroll compressor S including the release valve device 10B (see
The release valve device 10B (see
Next, the scroll compressor S according to a fourth embodiment will be described. The scroll compressor S according to the fourth embodiment is different in configuration of a release valve device 10C as compared with the scroll compressor S (see
The release valve device 10C included in the scroll compressor S according to the fourth embodiment will be described with reference to
As shown in
That is, the stopper 10f of the release valve device 10 (see
The other configurations and basic opening and closing operation of the release valve device 10C according to the fourth embodiment is the same as the release valve device 10 (see
Operational effects of the scroll compressor S including the release valve device 10C (see
In the release valve device 10 (see
In contrast, in the release valve device 10C (see
Note that, the release valve device 10C (see
Next, the scroll compressor S according to a fifth embodiment will be described. The scroll compressor S according to the fifth embodiment is different in configuration of a release valve device 10D as compared with the scroll compressor S (see
The release valve device 10D included in the scroll compressor S according to the fifth embodiment will be described with reference to
As shown in
The valve seat member 10c4 is provided with the protrusions 10k in an outer peripheral portion thereof, and the protrusions 10k are configured to be fitted into the grooves 10I formed in the stopper 10f4 such as by press-fitting.
The other configurations and basic opening and closing operation of the release valve device 10D according to the fifth embodiment is the same as the release valve device 10 (see
Operational effects of the scroll compressor S including the release valve device 10D (see
With such a structure, as shown in
Note that, the release valve device 10D (see
Note that, the scroll compressor S according to the embodiments (first to fifth embodiments) is not limited to the configurations in the embodiments, and various modifications may be made without departing from the spirit and scope of the invention.
In the above embodiments (first to fifth embodiments), the release valve devices 10, 10A to 10D are taken as examples, however, the present invention can be applied to valve devices that perform the same operations as the release valve devices 10, 10A to 10D used in the scroll compressor S.
As shown in
Further, although not shown, there is also the scroll compressor S provided with a back pressure release valve device (not shown, for example, the back pressure release valve device of Japanese Patent Publication No. 5022010) for communicating the back pressure chamber 15 and the discharge pressure chamber 14 by opening a valve thereof when the pressure in the back pressure 15 is higher than the discharge pressure (pressure of the discharge pressure chamber 14). Such a back pressure release valve device (not shown) is provided in the frame 5. Here, the frame 5 is fastened to the fixed scroll 4 by the fastener 5b, and houses the orbiting scroll 3 therein while forming the back pressure chamber 15. Therefore, in order to prevent deformation or the like due to a difference in linear expansion coefficient, it is preferable to form the frame 5 with the same material as the orbiting scroll 3 and the fixed scroll 4, that is, the lightweight material such as the aluminum alloy or the magnesium alloy. The back pressure release valve device (not shown) has the check valve structure using the spring similarly to the release valve device 10, and includes the valve seat surface. The present invention can also be applied to the back pressure release valve device (not shown).
However, since operation frequency of the back pressure release valve device (not shown) is smaller than that of the release valve device 10 or the back pressure control valve 16, the back pressure release valve device may remain in the same structure as the conventional release valve device 10E (see
Filing Document | Filing Date | Country | Kind |
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PCT/JP2013/074751 | 9/12/2013 | WO | 00 |