Vibration damping device and hermetic compressor using same
A simple and adaptable vibration-damping device using an elastic plate member and a partially fixed holding member effectively addresses the complexity and limited applicability of existing solutions, achieving robust noise reduction across a wide frequency range in sealed compressors and other equipment.
Patent Information
- Application Number
- JP2025019987
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-04-18
- Filing Date
- 2025-02-10
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2043-04-17
AI Technical Summary
Existing vibration-damping solutions for sealed compressors are complex and specialized, failing to provide effective noise reduction across a wide frequency range and are not easily applicable to other equipment.
A vibration-damping device comprising an elastic plate-shaped member that is deformable to contact the surface of a structure, held by a partially fixed holding member with a predetermined gap, allowing the elastic member to maintain contact without being fixed to the structure.
The solution effectively reduces, relieves, or suppresses vibrations and associated noise in sealed compressors and other equipment by utilizing a simple, adaptable structure that can be easily adjusted for optimal vibration-damping performance.
Smart Images

Figure 0007674618000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to a vibration control device capable of reducing, mitigating or suppressing vibration of a structure in equipment that has a structure that generates vibrations, and to a hermetic compressor that is a typical example of equipment that uses the vibration control device. [Background technology]
[0002] Conventionally, technologies (vibration control technologies) have been considered for reducing, mitigating, or suppressing vibrations that occur during the operation of equipment. In particular, when vibrations propagate from a vibration source that causes vibrations to a specific object (structure), if the frequency of the vibrations from the vibration source overlaps with the resonant frequency of the object to which the vibrations are propagated, a large amount of noise is generated. Therefore, reducing, mitigating, or suppressing vibrations (vibration control action) can also be used as a noise countermeasure.
[0003] An example of a device that generates vibration is a hermetic compressor. In a typical hermetic compressor, a compression mechanism such as a reciprocating type, a rotary type, or a scroll type is housed inside a hermetic container. A compression operation is performed in which a refrigerant is sucked in, compressed, and discharged by the compression mechanism.
[0004] During this compression operation, pulsation occurs, which is transmitted to the sealed container via the refrigerant gas or lubricating oil present therein, exciting the sealed container and causing vibration. The frequency of this vibration depends on the operating speed of the compression mechanism. In addition, at the same time as the compression operation, noise such as a knocking sound is also generated from the suction / discharge valves of the compression mechanism. This noise is also transmitted to the sealed container via the solid contact parts of the compression mechanism, causing vibration.
[0005] As mentioned above, when the frequency of these vibrations overlaps with the resonant frequency of an object (structure) such as an airtight container, it generates a loud noise. In addition, noise such as a knocking sound is a harmonic that is within the range of human hearing, and when such a harmonic sound (vibration) is transmitted to an airtight container, it vibrates the container, which may lead to further noise generation.
[0006] Therefore, in the field of hermetic compressors, methods have been proposed for suppressing noise from hermetic compressors by adopting a configuration having a vibration-damping effect. For example, Patent Document 1 discloses a method of directly fixing an elastic member to a hermetic container of a hermetic compressor. Patent Document 2 discloses a method of using a vibration-damping member having a contact portion that elastically contacts the surface of the hermetic container.
[0007] In the method disclosed in Patent Document 1, an elastic member is fixed to the inner surface of a sealed container and the elastic member is brought into elastic contact with the inner surface, thereby obtaining a contact friction damping effect in a relatively wide frequency band. In the hermetic compressor disclosed in Patent Document 1, as shown in Fig. 12, a vibration damper plate 102 having a plurality of contact portions 104a to 104f is welded to a sealed container 101 at a fixing portion 103. This vibration damper plate 102 corresponds to the elastic member.
[0008] However, as described in Patent Document 2, the method disclosed in Patent Document 1 in which an elastic member (vibration damping plate 102) is fixed to a structure (sealed container 101) and brought into elastic contact with the structure may not provide sufficient noise prevention effects.
[0009] Therefore, the hermetic compressor disclosed in Patent Document 2 uses a vibration-damping member 202 having a fixed portion 204, which is a part fixed to a hermetic container 201, a free end 203, which is the other part, and a connecting portion 206 that connects the fixed portion 204 and the free end 203, as shown in Figures 13A and 13B.
[0010] The vibration-damping member 202 has a plurality of contact portions 205a to 205d that elastically contact the surface of the sealed container 201, except for the free end 203. This allows the natural frequency of the free end 203 of the vibration-damping member 202 to substantially match the natural frequency of the sealed container 201, thereby achieving a good vibration-damping effect. Note that in Figs. 13A and 13B, a configuration in which the vibration-damping member 202 is provided on the bottom surface of the sealed container 201 is illustrated, and the vibration-damping member 202 is immersed in the lubricating oil 207. [Prior art documents] [Patent documents]
[0011] [Patent Document 1] Japanese Patent Application Publication No. 02-159440 [Patent Document 2] Patent No. 6677948 Summary of the Invention [Problem to be solved by the invention]
[0012] However, the vibration-damping member 202 disclosed in Patent Document 2 is specialized for application to hermetic compressors. Therefore, the structure is relatively complicated, for example, the vibration-damping member 202 includes a plurality of contact portions 205a to 205d and includes a free end 203 via a connecting portion 206. Therefore, there is a demand for a vibration-damping device having a simple structure that can be applied not only to the field of hermetic compressors but also to other fields.
[0013] The present invention has been made to solve these problems, and has an object to provide a vibration damping device that is applicable not only to the field of hermetic compressors but also to other fields and is capable of achieving good vibration damping action, and a hermetic compressor using said vibration damping device. [Means for solving the problem]
[0014] In order to solve the above-mentioned problems, the vibration control device of the present invention comprises a plate-shaped elastic member having elasticity and capable of deforming so as to come into contact with a surface of a structure on which vibrations occur, and a retaining member that holds the elastic member in contact with the surface of the structure, the retaining member being partially fixed to the surface of the structure with a predetermined distance therebetween, and the elastic member being held between the retaining member and the surface of the structure and abutting against the surface of the structure without being fixed thereto.
[0015] According to the above-mentioned configuration, the plate-shaped elastic member is held by the holding member so as to abut against the surface of the structure, but the elastic member is not fixed to the surface of the structure but abuts against the structure. This allows the elastic member to be maintained in contact with the structure where vibrations occur without being fixed. As a result, even if vibrations occur in the structure, the vibrations are effectively suppressed or mitigated by the elastic action of the elastic member.
[0016] In addition, the elastic member is held between the support member that is partially fixed to the surface of the structure and is in contact with the surface of the structure, so that a vibration damping device with a simple configuration can be realized without the need for a complex configuration.
[0017] Furthermore, the contactability of the elastic member with the surface of the structure depends on the elasticity of the elastic member, and the contact area of the elastic member with the surface of the structure depends on the area of the elastic member. Since the elastic member is a plate member having elasticity, it is possible to easily adjust the contactability or contact area of the elastic member. This makes it possible to easily achieve vibration damping performance according to the vibration generated in the structure.
[0018] In addition, in order to solve the above-mentioned problems, the hermetic compressor of the present invention comprises a hermetic container, an electric element having a stator and a rotor, and a compression element driven by the electric element and compressing a fluid, the electric element and the compression element are housed within the hermetic container, and lubricating oil is stored within the hermetic container. The hermetic container further comprises a vibration damping device attached to an inner surface of the hermetic container, the vibration damping device comprising: a plate-shaped elastic member having elasticity and capable of deforming so as to contact the inner surface of the hermetic container, and a holding member that holds the elastic member in close contact with the inner surface of the hermetic container, the holding member being partially fixed with a predetermined gap between it and the inner surface of the hermetic container, and the elastic member being held between the holding member and the inner surface of the hermetic container and in contact with the surface of the structure without being fixed thereto.
[0019] According to the above configuration, the vibration damping device is configured to hold the plate-shaped elastic member by the holding member so that it abuts against the sealed container without being fixed to the sealed container, thereby making it possible to reduce, mitigate or suppress (damping) the vibration of the sealed container and also reduce noise caused by the vibration.
[0020] Furthermore, the vibration damping device provided in the hermetic compressor can also exert a friction damping effect on the three-dimensional vibration of the hermetic container. Therefore, it is possible to damp the peaks of multiple resonant frequencies of the hermetic container. Therefore, for example, if the hermetic compressor is a reciprocating type, it is possible to reliably reduce the noise in the harmonic resonant frequency band that is specific to the reciprocating type.
[0021] The above and other objects, features, and advantages of the present invention will become apparent from the following detailed description of preferred embodiments, taken in conjunction with the accompanying drawings. Effect of the Invention
[0022] With the above-described configuration, the present invention has the effect of providing a vibration damping device that can be applied not only to the field of hermetic compressors but also to other fields and that can achieve good vibration damping action, and a hermetic compressor that uses the vibration damping device. [Brief description of the drawings]
[0023] [Figure 1] FIG. 1 is a cross-sectional view showing an example of the configuration of a hermetic compressor according to an embodiment of the present disclosure. [Diagram 2] FIG. 2 is a plan view showing an example of the configuration of the inner surface side of the upper sealed container of the sealed container of the hermetic compressor shown in FIG. [Diagram 3] FIG. 3 is a partial cross-sectional view showing a configuration example of a vibration damping device according to this embodiment, which is provided in the upper sealed container shown in FIG. [Figure 4] FIG. 4 is a plan view showing an example of the configuration of the inner surface side of the lower sealed container of the sealed container of the hermetic compressor shown in FIG. [Diagram 5]FIG. 5 is a partial cross-sectional view showing an example of the configuration of a vibration damping device according to this embodiment, which is provided in the lower sealed container shown in FIG. [Figure 6] FIG. 6 is a schematic process diagram showing a method of attaching the vibration damping device provided in the upper sealed container shown in FIG. [Figure 7] FIG. 7A is a comparative plan view and cross-sectional view showing an example of a retaining member provided in the vibration damping device shown in FIG. 3 or FIG. 5, and FIGS. 7B and 7C are plan views showing other examples of the retaining member shown in FIG. 7A. [Figure 8] FIG. 8A is a comparative plan view and cross-sectional view showing an example of an elastic member provided in the vibration damping device shown in FIG. 3 or FIG. 5, and FIG. 8B is a partial cross-sectional view showing an example of a positioning protrusion provided in the elastic member shown in FIG. 8A. [Figure 9] 9A to 9C are comparative views of a plan view and a cross section showing another example of the elastic member shown in FIG. 8A. [Figure 10] FIG. 10A is a graph showing the relationship between vibration level and frequency in a representative example and a comparative example of the present disclosure, and FIG. 10B is a graph showing the relationship between noise level and frequency in the same example and the same comparative example. [Figure 11] FIG. 11A is a graph showing the relationship between vibration level and frequency in another representative example and comparative example of the present disclosure, and FIG. 11B is a graph showing the relationship between noise level and frequency in the same example and comparative example. [Figure 12] FIG. 12 is a perspective view showing an example of an elastic member included in the hermetic compressor described in Patent Document 1. As shown in FIG. [Figure 13] FIG. 13A is a top view showing an example of a configuration in which a vibration-damping member provided in the hermetic compressor described in Patent Document 2 is provided on the bottom surface of a hermetic container, and FIG. 13B is a partial cross-sectional view showing a state in which the vibration-damping member shown in FIG. 13A is immersed in lubricating oil. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] The vibration damping device disclosed herein comprises a plate-shaped elastic member having elasticity and capable of deforming so as to come into contact with the surface of a structure on which vibration occurs, and a retaining member that holds the elastic member in contact with the surface of the structure, the retaining member being partially fixed to the surface of the structure with a predetermined distance therebetween, and the elastic member being held between the retaining member and the surface of the structure and abutting against the surface of the structure without being fixed thereto.
[0025] According to the above-mentioned configuration, the plate-shaped elastic member is held by the holding member so as to abut against the surface of the structure, but the elastic member is not fixed to the surface of the structure but abuts against the structure. This allows the elastic member to be maintained in contact with the structure where vibrations occur without being fixed. As a result, even if vibrations occur in the structure, the vibrations are effectively suppressed or mitigated by the elastic action of the elastic member.
[0026] In addition, the elastic member is held between the support member that is partially fixed to the surface of the structure and is in contact with the surface of the structure, so that a vibration damping device with a simple configuration can be realized without the need for a complex configuration.
[0027] Furthermore, the contactability of the elastic member with the surface of the structure depends on the elasticity of the elastic member, and the contact area of the elastic member with the surface of the structure depends on the area of the elastic member. Since the elastic member is a plate member having elasticity, it is possible to easily adjust the contactability or contact area of the elastic member. This makes it possible to easily achieve vibration damping performance according to the vibration generated in the structure.
[0028] In the vibration damping device having the above-mentioned configuration, the surface of the structure may be curved, and the retaining member may include a portion having a curvature corresponding to the curvature of the surface of the structure.
[0029] In the vibration damping device having the above-described configuration, the shape of the corners or longitudinal ends of the plate-like elastic member may be a convex curve.
[0030] In addition, in the vibration damping device of the above configuration, a plurality of protrusions may be provided on the non-contact surface, which is the surface of both surfaces of the elastic member that does not contact the surface of the structure, and the retaining member may be configured to have holes at respective positions corresponding to the plurality of protrusions.
[0031] In the vibration damping device having the above-described configuration, the holding member may have a portion that holds the elastic member in a plate shape, and the thickness of the plate may be greater than the thickness of the elastic member.
[0032] In the vibration damping device having the above-described configuration, the holding member may be configured to hold the elastic member in a state in which the elastic member is biased toward a surface of the structure.
[0033] In the vibration damping device having the above-described configuration, the elastic member may be made of metal and may be subjected to a hardening process.
[0034] In the vibration damping device having the above-mentioned configuration, the structure may be a sealed container provided in a hermetic compressor, and an inner surface of the sealed container may be a surface of the structure.
[0035] In addition, the hermetic compressor according to the present disclosure comprises a hermetic container, an electric element having a stator and a rotor, and a compression element driven by the electric element to compress a fluid, the electric element and the compression element being housed within the hermetic container, and lubricating oil being stored within the hermetic container, and further comprising a vibration damping device attached to an inner surface of the hermetic container, the vibration damping device comprising a plate-shaped elastic member having elasticity and capable of deforming so as to contact the inner surface of the hermetic container, and a holding member that holds the elastic member in close contact with the inner surface of the hermetic container, the holding member being partially fixed with a predetermined gap between it and the inner surface of the hermetic container, and the elastic member being held between the holding member and the inner surface of the hermetic container and in contact with the surface of the structure without being fixed thereto.
[0036] According to the above configuration, the vibration damping device is configured to hold the plate-shaped elastic member by the holding member so that it abuts against the sealed container without being fixed to the sealed container, thereby making it possible to reduce, mitigate or suppress (damping) the vibration of the sealed container and also reduce noise caused by the vibration.
[0037] Furthermore, the vibration damping device provided in the hermetic compressor can also exert a friction damping effect on the three-dimensional vibration of the hermetic container. Therefore, it is possible to damp the peaks of multiple resonant frequencies of the hermetic container. Therefore, for example, if the hermetic compressor is a reciprocating type, it is possible to reliably reduce the noise in the harmonic resonant frequency band that is specific to the reciprocating type.
[0038] In the hermetic compressor having the above configuration, the vibration damping device may be attached to at least one of an upper inner surface and a lower inner surface of the hermetic container.
[0039] Representative embodiments of the present disclosure will be described below with reference to the drawings. In the following, the same or corresponding elements are denoted by the same reference numerals throughout the drawings, and duplicated descriptions thereof will be omitted.
[0040] [Example of hermetic compressor configuration] First, a typical configuration example of a hermetic compressor according to an embodiment of the present disclosure will be specifically described with reference to Fig. 1. Fig. 1 is a cross-sectional view showing a configuration example of a hermetic compressor according to a typical embodiment of the present disclosure.
[0041] As shown in Fig. 1, the hermetic compressor has a configuration in which an electric element 2 and a compression element 3 are housed in a hermetic container 1. The electric element 2 and the compression element 3 form a compressor body 4. In the hermetic compressor, the hermetic container 1 is filled with a refrigerant gas 6, for example, R600a in this embodiment, and the bottom portion is filled with lubricating oil 7, for example, mineral oil in this embodiment. The compressor body 4 housed in the hermetic container 1 is elastically supported by a suspension spring 5.
[0042] The sealed container 1 is composed of an upper sealed container 1a and a lower sealed container 1b. A spring receiving portion 5a is provided in the lower sealed container 1b, and a suspension spring 5 is attached to this spring receiving portion 5a, and the compressor body 4 is supported by this suspension spring 5. In this embodiment, the sealed container 1 (upper sealed container 1a and lower sealed container 1b) is formed by, for example, drawing a steel plate.
[0043] The sealed container 1 is equipped with a suction pipe 8 and a discharge pipe 9. One end of the suction pipe 8 is connected to the inside of the sealed container 1, and the other end is connected to the low pressure side (not shown) of the refrigeration device. One end of the discharge pipe 9 passes through the sealed container 1 and is connected to a discharge muffler (not shown) from the compression element 3, and the other end is connected to the high pressure side (not shown) of the refrigeration device.
[0044] The electric motor element 2 is composed of at least a rotor 14 and a stator 15. The stator 15 is disposed on the outer diameter side of the rotor 14 so as to maintain a substantially constant gap between the rotor 14 and the stator 15. In this embodiment, the electric motor element 2 is driven by, for example, an inverter drive circuit at a plurality of operating frequencies including an operating frequency (for example, 75 Hz = 4,500 r / min) higher than the commercial power supply frequency. Therefore, the hermetic compressor according to this embodiment may include an inverter circuit so as to enable the electric motor element 2 to be rotationally driven at a plurality of operating rotational speeds.
[0045] The compression element 3 is a reciprocating type driven by the electric element 2, and includes a shaft (crankshaft) 10, a cylinder block 11, a piston 12, a connecting portion 13, etc. The shaft 10 is composed of at least a main shaft, an eccentric shaft formed eccentrically with respect to the main shaft, and a flange portion connecting the main shaft and the eccentric shaft. The stator 15 is fixed to the legs of the cylinder block 11, and the rotor 14 is fixed to the main shaft of the shaft 10, for example, by shrink fitting.
[0046] As shown in Fig. 1, the eccentric shaft of the shaft 10 is located on the upper side of the hermetic compressor, and the main shaft is located on the lower side of the hermetic compressor. Therefore, this up-down positional relationship (direction) is used when explaining the position of the shaft 10. For example, the upper end of the eccentric shaft faces the inner upper surface of the hermetic container 1 (upper hermetic container 1a), and the lower end of the eccentric shaft is connected to the main shaft.
[0047] The upper end of the main shaft is connected to the eccentric shaft, and the lower end of the main shaft faces the inner lower surface of the sealed container 1 (lower sealed container 1b), and the lower end of the main shaft is immersed in lubricating oil 7. An oil supply mechanism is provided below the shaft 10, i.e., below the main shaft, and the oil supply mechanism supplies lubricating oil 7 from the lower end of the main shaft immersed in the lubricating oil 7 to the upper end of the eccentric shaft.
[0048] Cylinders that form compression chambers and a main bearing that rotatably supports the main axis of shaft 10 are integrally formed in cylinder block 11. The main bearing is formed in a tubular (cylindrical) shape that extends in the vertical direction relative to cylinder block 11, and its inner peripheral surface is the sliding surface. The main bearing also includes a thrust surface and a tubular extension.
[0049] The thrust surface is a flat surface extending in a direction perpendicular (vertical, horizontal) to the axis, i.e., extension direction of the main shaft (up-down direction). The tubular extension is tubular (cylindrical) and extends further upward than the thrust surface; in other words, it is a part that extends upward from the tubular main bearing body. Therefore, the tubular extension, together with the main bearing body, has an inner circumferential surface (sliding surface) that faces the outer circumferential surface (sliding surface) of the main shaft. A thrust ball bearing is provided on the thrust surface of the main bearing.
[0050] In this embodiment, the cylinder block 11 is made of, for example, cast iron. The compression chamber is a cylindrical (columnar) bore formed in the cylinder block 11, and the piston 12 is inserted into this compression chamber so that it can reciprocate. Therefore, the compression chamber is closed by the insertion of the piston 12. In this embodiment, the connecting part 13 is made of, for example, an aluminum casting, and supports the eccentric shaft of the shaft 10 and is connected to the piston 12. Therefore, the eccentric shaft of the shaft 10 and the piston 12 are connected by the connecting part 13.
[0051] Furthermore, in this embodiment, the hermetic compressor is provided with vibration damping devices 18 and 19 attached to the inner surface of the hermetic container 1. In Fig. 1, an upper vibration damping device 18 is provided on the inner surface (upper inner surface of the hermetic container 1) of the upper hermetic container 1a of the hermetic container 1, and a lower vibration damping device 19 is provided on the inner surface (lower inner surface of the hermetic container 1) of the lower hermetic container 1b. These vibration damping devices 18 and 19 will be described later.
[0052] In this embodiment, the electric element 2 is located on the upper side and the compression element 3 is located on the lower side in the sealed container 1. However, the configuration of the hermetic compressor according to the present disclosure is not limited to this, and the electric element 2 may be located on the lower side and the compression element 3 may be located on the upper side. In this embodiment, the electric element 2 is an inner rotor type, and the rotor 14 is rotatably arranged coaxially with the stator 15 on the inner periphery of the stator 15. However, the configuration of the electric element 2 is not limited to this, and may be an outer rotor type, that is, the rotor 14 is rotatably arranged coaxially with the stator 15 on the outer periphery of the stator 15. In this embodiment, the compression element 3 is a reciprocating type (reciprocating type) as shown in FIG. 1, but the present disclosure is not limited to this, and may be, for example, a rotary type (rotating type).
[0053] In addition, in the present embodiment, the hermetic compressor includes a compression element 3 driven by an electric element 2 that compresses a refrigerant gas 6 filled in a hermetic container 1. However, the hermetic compressor according to the present disclosure is not limited to one that compresses a refrigerant gas 6, and may be one that compresses a known fluid other than the refrigerant gas 6.
[0054] In this embodiment, the hermetic compressor having such a configuration is connected to, for example, a known refrigeration device to form a refrigerant circuit. The refrigerant circuit may include a hermetic compressor, a radiator, a pressure reducing device, and a heat absorber, which are connected in a ring shape by piping.
[0055] To operate the hermetic compressor, first, power is supplied to the electric element 2 from a commercial power source (not shown). This rotates the rotor 14 of the electric element 2. The rotor 14 rotates the shaft 10, and the eccentric motion of the eccentric axis of the shaft 10 is transmitted to the piston 12 via the connecting portion 13, thereby driving the piston 12 to reciprocate in the compression chamber. The reciprocating motion of the piston 12 sucks the refrigerant gas 6 guided into the hermetic container 1 into the compression chamber and compresses it, thereby performing a predetermined compression operation.
[0056] Specifically, the reciprocating motion of piston 12 draws refrigerant gas 6, which is the working fluid in the refrigeration system, into sealed container 1 through suction pipe 8. The refrigerant gas 6 in sealed container 1 is drawn into a compression chamber through a suction valve, compressed, and discharged from discharge pipe 9 through a discharge valve and a discharge muffler to the high-pressure side of the refrigeration system.
[0057] At this time, in the hermetic compressor, pulsation occurs in the flow of the refrigerant gas 6 due to the compression operation. This also causes pulsation in the compressor body 4, which is elastically supported in the hermetic container 1 by the suspension springs 5. Furthermore, the pulsation of the compressor body 4 is also excited by other vibrations. As a result, the hermetic container 1 is excited and vibrates. When the hermetic container 1 vibrates in this way, noise is generated.
[0058] Therefore, in this embodiment, as described above, the vibration damping devices 18 and 19 are provided for the sealed container 1, thereby reducing, mitigating or suppressing (damping) the vibration of the sealed container 1.
[0059] The specific driving method of the hermetic compressor is not limited to the inverter drive described above. For example, the hermetic compressor may be driven by simple on-off control. When the hermetic compressor is inverter-driven by an inverter circuit, the operating frequency is not particularly limited. Furthermore, the operating speed of the electric element 2 is not particularly limited, but generally, for example, can be within a range of 17 to 75 rps (revolutions per second or rotations per second). The upper limit of the operating speed may be 80 rps, and the lower limit of the operating speed may be 13 rps.
[0060] [Example of vibration control device configuration] Next, an example in which the vibration damping device according to the present disclosure is applied to a hermetic compressor will be specifically described with reference to Figs. 2 to 6. Fig. 2 is a plan view showing the ceiling surface of the sealed container 1, i.e., the inner surface side of the upper sealed container 1a. Fig. 3 is a partial cross-sectional view showing a typical configuration example of the vibration damping device according to the present disclosure provided on the inner surface (ceiling surface) of the upper sealed container 1a. Fig. 4 is a plan view showing the bottom surface of the sealed container 1, i.e., the inner surface side of the lower sealed container 1b. Fig. 5 is a partial cross-sectional view showing a typical configuration example of the vibration damping device according to the present disclosure provided on the inner surface (bottom surface) of the lower sealed container 1b.
[0061] As shown in Fig. 2, an upper vibration damping device 18 including a holding member 16 and an elastic member 17 is provided on the inner surface, i.e., the ceiling surface (top surface) of the upper sealed container 1a. As described later, the holding member 16 holds the plate-shaped elastic member 17 by abutting it against the surface of the upper sealed container 1a (structure). Therefore, in the example shown in Fig. 2, the holding member 16 has a plate-shaped configuration capable of covering the entire elastic member 17. Therefore, in Fig. 2, the holding member 16 is illustrated by a solid line, and the elastic member 17 covered by the holding member 16 is illustrated by a dotted line.
[0062] In this embodiment, the holding member 16 has two positioning holes 16a and two fixing portions 16b. The holding member 16 is configured as a plate member having a longitudinal direction, with fixing portions 16b provided at both ends, and two positioning holes 16a formed side by side along the longitudinal direction near the center in the longitudinal direction.
[0063] Similar to the holding member 16, the elastic member 17 is also configured as a plate member having a longitudinal direction. In this embodiment, the elastic member 17 is entirely covered by the holding member 16, and therefore the spreading area of the elastic member 17 is smaller than the spreading area of the holding member 16. Two positioning protrusions 17a are provided along the longitudinal direction at the center of the elastic member 17. The positions of the positioning protrusions 17a of the elastic member 17 and the positions of the positioning holes 16a of the holding member 16 correspond to each other.
[0064] As shown in Fig. 3, one surface (first surface) of the elastic member 17, which is a plate member, abuts against the upper sealed container 1a. The other surface (second surface, the back side of the first surface) of the elastic member 17 is supported or biased by the holding member 16, and is held so that the first surface of the elastic member 17 abuts against the upper sealed container 1a. Therefore, the first surface of the elastic member 17 is the "contact surface" that abuts against the upper sealed container 1a, i.e., the surface of the structure where vibration occurs, and the second surface of the elastic member 17, i.e., the surface not abutting against the upper sealed container 1a, is the "non-contact surface" that does not abut against the structure. The positioning protrusion 17a is provided on the non-contact surface (second surface) of the elastic member 17.
[0065] The holding member 16 holds the elastic member 17 so that the contact surface (first surface) of the elastic member 17 abuts against the upper sealed container 1a (structure), and therefore has rigidity unlike the elastic member 17 which has elasticity.
[0066] In this embodiment, the structure in which vibration occurs is the sealed container 1, and the ceiling surface (surface of the structure) of the sealed container 1 (upper sealed container 1a) is curved upwardly convexly as shown in Fig. 1 or 3. Therefore, the holding member 16 is also curved along the curvature of the ceiling surface.
[0067] One surface (first surface) of the holding member 16, which is a plate member, contacts the elastic member 17 and holds the elastic member 17 so as to be in contact with the upper sealed container 1a (structure). Therefore, the first surface of the holding member 16 is a "holding surface" for holding the elastic member 17, and the second surface of the holding member 16, i.e., the back surface of the holding surface, is a "non-holding surface" that does not hold the elastic member 17. The fixing parts 16b provided on both ends of the holding member 16 are parts for fixing the holding member 16 to the upper sealed container 1a, and in this embodiment, are formed as protrusions protruding toward the holding surface side.
[0068] Since the elastic member 17 is interposed between the retaining member 16 and the surface of the upper sealed container 1a (structural body), the retaining member 16 has a predetermined distance between itself and the upper sealed container 1a (structural body) and is partially fixed to the upper sealed container 1a by the fastening portion 16b. In this embodiment, the fastening portion 16b is welded to the inner surface of the upper sealed container 1a.
[0069] The positioning hole 16a of the holding member 16 is formed at a position corresponding to the positioning protrusion 17a of the elastic member 17. As a result, the positioning protrusion 17a fits into the positioning hole 16a, and the elastic member 17 is positioned relative to the holding member 16. The holding member 16 is fixed to the upper sealed container 1a, but the elastic member 17 is only positioned by the holding member 16. Therefore, the elastic member 17 can abut against the upper sealed container 1a in a positioned state without being fixed to the upper sealed container 1a.
[0070] 3, in the upper vibration damping device 18 according to the present embodiment, a flat plate (plate member) elastic member 17 is sandwiched between the upper sealed casing 1a (structural body) and a holding member 16. The holding member 16 has a holding surface that approximately matches the curvature of the upper sealed casing 1a, and is fixed to the upper sealed casing 1a so that a predetermined gap is formed between the holding member 16 and the inner surface (ceiling surface) of the upper sealed casing 1a.
[0071] As shown in FIG. 1, the hermetic compressor according to this embodiment includes an upper vibration damping device 18 on the ceiling surface of the hermetic container 1 (the inner surface of the upper hermetic container 1a) and a lower vibration damping device 19 on the bottom surface of the hermetic container 1 (the inner surface of the lower hermetic container 1b).
[0072] As shown in Fig. 4, a lower vibration damping device 19 including a holding member 16 and an elastic member 17 is provided on the inner surface, i.e., the bottom surface, of the lower sealed container 1b. In this embodiment, the lower vibration damping device 19 has a similar configuration to the upper vibration damping device 18, and therefore in Fig. 4, the holding member 16 is shown by a solid line, and the elastic member 17 covered by the holding member 16 is shown by a dotted line.
[0073] In order to mount the suspension springs 5 supporting the compressor body 4 in the lower sealed container 1b, for example, four spring receiving portions 5a are provided at positions corresponding to the four corners of a square area corresponding to the compressor body 4, as shown in Fig. 4. Therefore, the lower vibration damping device 19 is mounted at a position inside the square area so as not to overlap with the positions of the spring receiving portions 5a. As shown in Fig. 1, the lower sealed container 1b stores lubricating oil 7, and is provided with a suction pipe 8, a discharge pipe 9, etc., as shown in Fig. 4.
[0074] In the lower vibration damping device 19, similarly to the upper vibration damping device 18, the holding member 16 has two positioning holes 16a and two fixing portions 16b. The holding member 16 is configured as a plate member having a longitudinal direction, with fixing portions 16b provided at both ends, and two positioning holes 16a formed side by side along the longitudinal direction near the longitudinal center.
[0075] Similar to the holding member 16, the elastic member 17 is also configured as a plate member having a longitudinal direction. In this embodiment, the elastic member 17 is entirely covered by the holding member 16, and therefore the spreading area of the elastic member 17 is smaller than the spreading area of the holding member 16. Two positioning protrusions 17a are provided along the longitudinal direction at the center of the elastic member 17. The positions of the positioning protrusions 17a of the elastic member 17 and the positions of the positioning holes 16a of the holding member 16 correspond to each other.
[0076] 5, in the lower vibration damping device 19, the contact surface (first surface) of the elastic member 17 also contacts the lower sealed casing 1b, and the non-contact surface (second surface) of the elastic member 17 is supported or biased by the holding member 16 so that the contact surface of the elastic member 17 contacts the lower sealed casing 1b. The positioning protrusion 17a is provided on the non-contact surface of the elastic member 17.
[0077] In the lower vibration damping device 19, the holding member 16 also holds the elastic member 17 by the holding surface (first surface) so that the contact surface of the elastic member 17 abuts against the lower sealed container 1b (structure). As shown in FIG. 1 or FIG. 5, the bottom surface (structure surface) of the sealed container 1 (lower sealed container 1b) is curved convexly downward. Therefore, the holding member 16 is also curved along the curvature of the bottom surface. The fixing parts 16b provided on both ends of the holding member 16 are parts for fixing the holding member 16 to the lower sealed container 1b, and are formed as protrusions protruding toward the holding surface (first surface) side, similar to the upper vibration damping device 18.
[0078] Since the elastic member 17 is interposed between the retaining member 16 and the surface of the lower sealed casing 1b (structural body), the retaining member 16 has a predetermined distance between itself and the lower sealed casing 1b (structural body) and is partially fixed to the lower sealed casing 1b by the fixing portion 16b. In this embodiment, similar to the upper vibration damping device 18, the fixing portion 16b is welded to the inner surface of the lower sealed casing 1b.
[0079] In the lower vibration damping device 19, the positioning hole 16a of the holding member 16 is also formed at a position corresponding to the positioning protrusion 17a of the elastic member 17. As a result, the positioning protrusion 17a fits into the positioning hole 16a, and the elastic member 17 is positioned relative to the holding member 16. The holding member 16 is fixed to the lower sealed casing 1b, but the elastic member 17 is only positioned by the holding member 16. Therefore, the elastic member 17 can abut against the lower sealed casing 1b in a positioned state without being fixed to the lower sealed casing 1b.
[0080] 5, in the lower vibration damping device 19 according to this embodiment, a flat plate (plate member) elastic member 17 is sandwiched between the lower sealed casing 1b (structural body) and a holding member 16. The holding member 16 has a holding surface that approximately matches the curvature of the lower sealed casing 1b, and is fixed to the lower sealed casing 1b such that a predetermined gap is formed between the holding member 16 and the inner surface (bottom surface) of the lower sealed casing 1b.
[0081] As described above, in this embodiment, in both the upper vibration damping device 18 and the lower vibration damping device 19, the fixing portion 16b is welded to the inner surface of the sealed container 1 (the inner surface (ceiling surface) of the upper sealed container 1a in the case of the upper vibration damping device 18, and the inner surface (bottom surface) of the lower sealed container 1b in the case of the lower vibration damping device 19), thereby fixing the sealed container 1 (structural body), and thus the vibration damping devices 18, 19 are attached to the sealed container 1. This point will be described with reference to FIG. 6 using the upper vibration damping device 18 as an example.
[0082] 6, an elastic member 17 is disposed between the inner surface of the upper sealed container 1a, i.e., the ceiling surface (lower side in the figure), and the holding member 16. As described above, the holding member 16 is curved so as to substantially match the curvature of the inner surface of the upper sealed container 1a. On the other hand, the elastic member 17 is a plate member having elasticity, and is a flat plate that does not curve when not held by the holding member 16 (when no external force is applied).
[0083] Here, the holding member 16 has two positioning holes 16a formed in the longitudinal center along the longitudinal direction, as described above. The elastic member 17 located between the holding member 16 and the inner surface of the upper sealed container 1a has two positioning protrusions 17a formed in the longitudinal center along the longitudinal direction, as described above. The positioning protrusions 17a protrude from the non-contact surface side of the elastic member 17, i.e., the holding surface side of the holding member 16. Before fixing the holding member 16 to the upper sealed container 1a, the positioning holes 16a of the holding member 16 and the positioning protrusions 17a of the elastic member 17 are aligned.
[0084] At both ends of the holding member 16, there are provided fixing parts 16b as protrusions protruding toward the holding surface side. When the holding member 16 is brought into contact with the upper sealed container 1a, a predetermined gap (predetermined interval) corresponding to the thickness of the elastic member 17 is secured between the holding surface of the holding member 16. At this time, since both the inner surface of the upper sealed container 1a and the holding member 16 are curved to have substantially the same curvature, the predetermined interval formed between them is also a curved spatial region. Meanwhile, the elastic member 17 sandwiched between them is flat when no external force is applied, but when an external force is applied, it is curved due to its elasticity.
[0085] Therefore, as shown in the lower part of Fig. 6, the elastic member 17 is sandwiched between the upper sealed container 1a and the holding member 16, and electricity is passed through the fixed portion 16b while the holding member 16 is pressed from the non-holding surface side of the holding member 16 toward the upper sealed container 1a side (the inner surface side or the ceiling surface side). This makes it possible to melt the fixed portion 16b, and the holding member 16 is fixed to the inner surface of the upper sealed container 1a. At this time, the holding member 16 holds the elastic member 17 in a state in which it is biased toward the inner surface (the surface of the structure) of the upper sealed container 1a.
[0086] During the fixing, as described above, the two positioning protrusions 17a are inserted into the two positioning holes 16a, respectively. Therefore, the position of the elastic member 17 with respect to the inner surface of the upper sealed container 1a is determined by the holding member 16. Therefore, the elastic member 17 can stably abut against the inner surface of the upper sealed container 1a in a curved and positioned state. In this manner, the upper vibration damping device 18 can be attached to the inner surface (ceiling surface) of the upper sealed container 1a.
[0087] The installation of the lower vibration damping device 19 is similar to that described above, and a detailed description thereof will be omitted. However, as is clear from Fig. 1, the lubricating oil 7 is stored on the inner surface (bottom surface) of the lower sealed container 1b to which the lower vibration damping device 19 is attached. Therefore, the lower vibration damping device 19 is entirely immersed in the lubricating oil 7.
[0088] [Vibration control effect by vibration control device] The vibration damping devices 18, 19 configured as described above reduce, mitigate or suppress (vibration damping) the vibrations generated during operation of the hermetic compressor configured as described above, thereby reducing (reducing) or suppressing noise during operation, will be described with reference to Figures 1 to 5, 12, 13A and 13B.
[0089] When the compressor body 4 of the hermetic compressor performs a compression operation, pulsation occurs in the flow of the refrigerant gas 6, as described above. This causes pulsation in the compressor body 4, which is elastically supported in the hermetic container 1 by the suspension springs 5. Furthermore, the pulsation of the compressor body 4 is also excited by other vibrations. Accordingly, the pulsation is transmitted to the hermetic container 1 via the refrigerant gas 6 or the lubricating oil 7, etc., and the hermetic container 1 is excited and vibrates. When the hermetic container 1 vibrates in this manner, noise is generated.
[0090] When the sealed container 1 vibrates, for example, looking at the upper sealed container 1a and the upper vibration damping device 18 shown in Fig. 2 or 3, the vibration of the upper sealed container 1a causes a minute sliding displacement in the elastic member 17 within the gap (within a predetermined distance) between the upper sealed container 1a and the holding member 16. This is because the elastic member 17 is not only not fixed to the upper sealed container 1a, but is also merely positioned relative to the holding member 16 without being fixed thereto.
[0091] By this minute sliding displacement, the elastic member 17 converts the vibration energy of the upper sealed container 1a into heat energy. This not only reduces, mitigates, or suppresses the vibration of the upper sealed container 1a, but also effectively reduces or suppresses the noise associated with the vibration. The lower sealed container 1b and the lower vibration damping device 19 shown in FIG. 4 or FIG. 5 also achieve the same effect as above.
[0092] Furthermore, when the elastic member 17 undergoes minute sliding deformation, the load applied to the sealed container 1 (upper sealed container 1a or lower sealed container 1b) depends on the elastic force of the elastic member 17. Specifically, as described in Patent Document 1, for example, the amount of energy attenuation between the contact portion of the elastic member 17 and the inner surface of the sealed container 1 is generally given by the following formula: ΔS=4∫Fδdx
[0093] Here, in the above formula, ΔS is the amount of energy attenuation, F is the contact force of the elastic member 17, δ is the relative displacement of the contact portion of the elastic member 17, and dx is the contact range of the elastic member 17.
[0094] In the present disclosure, the elastic member 17, which is a plate member, is in contact with the entire inner surface of the upper sealed container 1a. Therefore, the contact force F of the elastic member 17 depends on the elastic force of the elastic member 17, and the contact range dx of the elastic member 17 depends on the area of the elastic member 17. The contact force of the elastic member 17 with respect to the sealed container 1 or the contact range of the elastic member 17 with respect to the sealed container 1 can be adjusted relatively easily compared to conventional vibration control methods. As a result, the vibration of the sealed container 1 can be controlled more stably than in the past, and noise caused by the vibration can be reduced.
[0095] In this embodiment, the target (structure) in which vibration occurs is the sealed container 1 of the hermetic compressor. As is clear from FIG. 1, the entire sealed container 1 can be considered to be substantially spherical. For this reason, for example, in the fixed surface of the upper sealed container 1a to which the upper vibration damping device 18 is fixed, in addition to vibration in a direction perpendicular to the fixed surface (hereinafter, this is referred to as the main vibration), it is assumed that a plurality of relatively weak vibrations (hereinafter, this is referred to as the secondary vibrations) are generated in a direction intersecting the main vibration. In other words, it is assumed that three-dimensional vibrations are generated in the sealed container 1.
[0096] In the vibration damping devices 18 and 19 according to the present embodiment, minute sliding displacement occurs in the elastic member 17 even in response to three-dimensional vibration of the sealed container 1, and this provides a good vibration damping effect. Therefore, the noise caused by the vibration of the sealed container 1 can be reduced even more effectively.
[0097] As described above, the compression element 3 of the hermetic compressor according to this embodiment is of the reciprocating type, and with such a configuration, there is a possibility that noise in a specific harmonic resonance frequency band (for example, within a range of 2 kHz to 8 kHz) will be generated due to vibration of the hermetic container 1. In contrast, with the vibration damping devices 18 and 19 according to this embodiment, minute sliding displacement in the elastic member 17 can satisfactorily reduce noise in the resonance frequency band specific to this reciprocating type.
[0098] As described above, the hermetic compressor according to the present embodiment may include an inverter circuit, so that the compression element 3 may be inverter-driven at a plurality of operating frequencies. When the compression element 3 is inverter-driven, the operation speed of the compression mechanism (which is a reciprocating type in this embodiment and is therefore composed of the piston 12 and a bore) varies, so that the frequency at which vibration is applied to the sealed container 1 varies. In contrast, the vibration damping devices 18 and 19 according to the present embodiment can exert a good friction damping effect, so that an effective vibration damping action can be achieved and noise can be reduced well.
[0099] As described above, a method of realizing vibration damping by attaching an elastic member to a sealed container has been known.
[0100] In the above-mentioned Patent Document 1, as shown in Fig. 12, a vibration damper plate 102 as an elastic member is fixed to the inner surface of a sealed container 101 of a hermetic compressor by, for example, spot welding at a fixing portion 103. The vibration damper plate 102 has a plurality of contact portions 104a, 104b, 104c, 104d, 104e, and 104f, and these contact portions 104a to 104f are in elastic contact with the sealed container 101. In such an elastic member, the plurality of contact portions 104a to 104f are in partial contact with different portions of the surface of the sealed container 101 (structure). This allows the vibration damper plate 102 to be stably in contact with the inner surface (surface of the structure) of the sealed container 101, so that it is said that a good vibration reduction and noise reduction effect can be obtained.
[0101] However, as described in Patent Document 2, when the vibration damper plate 102 described in Patent Document 1 is welded to the fixed portion 103 of the sealed container 101, the contact portions 104a to 104f of the vibration damper plate 102 may elastically contact while undergoing plastic deformation. Therefore, there is a possibility that the contact positions or contact loads of the multiple contact portions 104a to 104f may vary. As a result, there is a possibility that the contact friction damping effect of the vibration damper plate 102 may vary, making it difficult to obtain a good vibration damping effect and reducing the noise reduction effect.
[0102] 13A and 13B, a vibration-damping member 202 is used, which has a fixed portion 204 that is a part fixed to a sealed container 201, a free end 203 that is the other part, and a connecting portion 206 that connects the fixed portion 204 and the free end 203. The vibration-damping member 202 has a part other than the free end 203 that has a plurality of contact portions 205a to 205d that elastically contact the surface of the sealed container 201.
[0103] The vibration damping member 202 is fixed to the sealed container 201 (structure) by the fixing portion 204, and the free end 203 is vibrating. This allows the natural frequency of the vibration damping member 202 to substantially match the natural frequency of the sealed container 201 (structure). As a result, the vibration damping member 202 can exert a dynamic vibration absorber effect. Furthermore, a plurality of contact portions 205a to 205d on the side opposite to the free end 203 are in contact with the sealed container 201 (structure) in an elastic state. This allows the vibration damping member 202 to exert a contact friction damping effect at the contact portions 205a to 205d.
[0104] Therefore, the vibration damping member 202 can suppress the vibration of the sealed container 201 (structure) by the dynamic vibration absorber effect and the contact friction damping effect, and as a result, the noise of the hermetic compressor can also be reduced.
[0105] However, as described above, the vibration-damping member 202 has a complex structure, including the free end 203 and multiple contact portions 205a to 205d. Therefore, it is easy to substantially match the natural frequency of the vibration-damping member 202 with the natural frequency of the structure (sealed container 201) that generates the vibration, but the complex structure limits the degree of freedom to accommodate changes in the natural frequency. In addition, while it is easy to specialize the vibration-damping member 202 for a specific structure, it is difficult to apply the vibration-damping member 202 to other uses.
[0106] In contrast, in vibration damping devices 18 and 19 according to the present disclosure, a plate-shaped elastic member 17 is held by a holding member 16 so as to abut against the inner surface of the sealed container 1. With this configuration, the elastic member 17 abuts against the sealed container 1 without being fixed to the inner surface of the sealed container 1. This allows the elastic member 17 to be maintained in contact with the sealed container 1 without being fixed thereto. As a result, even if vibrations occur in the sealed container 1, the elastic action of the elastic member 17 satisfactorily reduces, mitigates, or suppresses the vibrations.
[0107] Moreover, the elastic member 17 is held between the holding member 16 that is partially fixed to the inner surface of the sealed container 1, and is in contact with the inner surface of the sealed container 1. Therefore, it is not necessary to adopt a complex configuration, and a simple configuration can be realized.
[0108] In particular, compared to a conventional configuration, for example, the vibration damping plate 102 disclosed in Patent Document 1, in the present disclosure, the elastic member 17 is held by the holding member 16 and only abuts against the sealed container 1, thereby suppressing or avoiding the risk of load variation due to plastic deformation. Therefore, the vibration damping devices 18, 19 according to the present disclosure can provide good vibration damping action and noise reduction effect.
[0109] Furthermore, the contactability of the elastic member 17 with the inner surface of the sealed container 1 depends on the elasticity of the elastic member 17, and the contact range of the elastic member 17 with the inner surface of the sealed container 1 depends on the area of the elastic member 17. Since the elastic member 17 is a plate member having elasticity, it becomes possible to easily adjust the contactability or contact range of the elastic member 17. This makes it possible to easily achieve vibration damping performance according to the vibrations generated in the sealed container 1, and makes it possible to apply the present invention not only to hermetic compressors but also to other fields.
[0110] [Modifications of vibration control device] Next, typical modified examples of the vibration damping devices 18, 19 according to the present disclosure will be specifically described. Figures 7A to 7C show an example of a retaining member used in the vibration damping devices 18, 19, Figures 8A and 8B show an example of an elastic member used in the vibration damping devices 18, 19, and Figures 9A to 9C show another example of the elastic member.
[0111] The holding member 16 shown in Fig. 7A is included in the vibration damping devices 18 and 19 described above, and is configured as a plate member having a longitudinal direction as described above. Two positioning holes 16a are formed in the longitudinal center of the holding member 16, side by side along the longitudinal direction, and fixing portions 16b are provided at both ends of the holes. As is clear from the cross-sectional view of Fig. 7A, the holding member 16 is curved to have a curvature that approximately matches the curvature of the inner surface of the sealed container 1.
[0112] The holding member 26 shown in Fig. 7B has a basic configuration similar to that of the holding member 16, but is configured as a substantially square plate member, rather than a plate member having a longitudinal direction as in the holding member 16. Therefore, two positioning holes 26a are formed side by side along the vertical direction in the figure near the center of the holding member 26, and fixing portions 26b are provided on both side edges of the holding member 26 along the arrangement direction of the positioning holes 26a so as to face each other. Therefore, the first fixing portion 26b, the two positioning holes 26a, and the second fixing portion 26b are lined up in a row in this order.
[0113] The holding member 36 shown in FIG. 7C is also a plate member like the holding member 16 or the holding member 26, but is configured in a substantially equilateral triangle shape. Two positioning holes 36a are formed in the holding member 36 in the vicinity of the center of gravity of the equilateral triangle along the vertical direction in the figure. The direction in which the positioning holes 36a are aligned corresponds to the perpendicular bisector of the equilateral triangle. The fixing parts 36b of the holding member 36 are provided at positions corresponding to the apex angle and each base angle of the equilateral triangle. Therefore, unlike the holding member 16 or the holding member 26, the holding member 36 has a total of three fixing parts 36b. Thus, the fixing parts 16b-36b provided on the holding members 16-36 are not limited to two, and may be three or more.
[0114] The elastic member 17 shown in Fig. 8A is included in the vibration damping devices 18 and 19 described above, and is configured as a plate member having a longitudinal direction, similar to the holding member 16 shown in Fig. 7A, as described above. The elastic member 17 is provided with two positioning protrusions 17a at the center in the longitudinal direction along the longitudinal direction. As described above, the positions of the positioning protrusions 17a of the elastic member 17 and the positions of the positioning holes 16a of the holding member 16 correspond to each other. As described above, the elastic member 17 has elasticity and remains flat without bending unless an external force is applied.
[0115] As described above, the positioning protrusion 17a protrudes from the non-contact surface of the elastic member 17, that is, from the side that does not contact the inner surface of the sealed container 1 but contacts the holding surface of the holding member 16. The specific configuration of the positioning protrusion 17a is not particularly limited, but as shown in FIG. 8B, a configuration in which a plate member is projected from the contact surface (left side in the figure) to the non-contact surface (right side in the figure) can be given. Compared with a conventional elastic vibration damper plate or the like (see, for example, Patent Document 1), such an elastic member 17 can contact the surface of a structure that generates vibration, such as the sealed container 1, over a relatively large contact area. This can reduce the resonance level of the sealed container 1 (structure).
[0116] Furthermore, the specific configuration of the elastic member 17 is not limited to the configuration shown in Fig. 8A, and configurations as shown in Figs. 9A to 9C may also be adopted. The elastic member 17 is supported or biased by the holding member 16 and comes into contact with the surface of the structure (sealed container 1 in this embodiment) where vibration occurs. Therefore, in the present disclosure, the elastic member 17 may be a plate member having a two-dimensional extension, such as a leaf spring. Therefore, the shape of the elastic member 17 is not limited to a belt-like shape (or a rectangular shape) having a longitudinal direction as shown in Fig. 8A.
[0117] For example, the elastic member 27 shown in Fig. 9A is configured as a substantially square plate member, similar to the holding member 26 shown in Fig. 7B. Two positioning protrusions 27a are formed side by side in the vertical direction in the figure near the center of the elastic member 27, corresponding to the positioning holes 26a of the holding member 26. Similar to the elastic member 17, the elastic member 27 is also flat and does not curve unless an external force is applied.
[0118] 9B is a generally rhombic plate member, and the vertical direction in the figure is the longitudinal direction. Like the elastic member 17, the elastic member 37 has two positioning protrusions 37a formed in the generally central portion in the longitudinal direction along the longitudinal direction. Like the elastic member 17 or the elastic member 27, the elastic member 37 is also flat and does not curve unless an external force is applied.
[0119] In the elastic member 47 shown in FIG. 9C, when the direction along the vertical direction in the figure is defined as the first direction, two positioning protrusions 47a are lined up near the center of the first direction. Furthermore, when the direction along the horizontal direction in the figure, i.e., the direction perpendicular to the first direction, is defined as the second direction, the elastic member 47 has a portion that extends greatly in the second direction. In the example shown in FIG. 9C, thin plate-like portions extend from both ends in the first direction in directions opposite to each other along the second direction. In addition, thin plate-like members extend from the center of the first direction in directions opposite to each other along the second direction.
[0120] In other words, the elastic member 47 can be expressed as a plate member whose longitudinal direction is the second direction, in which two positioning projections 47a are arranged in the center of the second direction along a direction (first direction) perpendicular to the second direction, and two slits are formed from both ends of the second direction toward the center. Like the elastic member 17, the elastic member 27, or the elastic member 37, the elastic member 47 is also flat and does not curve unless an external force is applied.
[0121] The elastic member 17 shown in Fig. 8A (or Fig. 2 or Fig. 4), the elastic member 27 shown in Fig. 9A, the elastic member 37 shown in Fig. 9B, and the elastic member 47 shown in Fig. 9C are all plate members that expand two-dimensionally. This allows the expanding surface to be brought into good contact with the structure (sealed container 1), thereby increasing the contact area between the elastic member 17 and the structure and achieving a better vibration damping effect.
[0122] Moreover, the elastic member 27 shown in Fig. 9A, the elastic member 37 shown in Fig. 9B, and the elastic member 47 shown in Fig. 9C all have a relatively larger spreading area than the elastic member 17 shown in Fig. 8A. Therefore, the contact area with the sealed container 1 (structure) can be made larger than that of the elastic member 17. As a result, these elastic members 27 to 47 can exert a damping effect on vibrations of more frequencies.
[0123] In particular, the diamond-shaped elastic member 37 shown in Fig. 9B can be expressed as including portions protruding to both sides, compared to the elastic member 17 having a simple longitudinal direction. Therefore, the elastic member 37 has a shape that is easier to move three-dimensionally than the elastic member 17. Furthermore, the elastic member 47 shown in Fig. 9C can be expressed as including three portions each extending to both sides, compared to the elastic member 17. Therefore, the elastic member 47 has a shape that is easier to move three-dimensionally than the elastic member 27 or the elastic member 37.
[0124] In this way, the shape of the elastic members 17-47 is not particularly limited, and the shape of the plate member can be appropriately designed to adjust the contact area depending on the inner surface shape of the structure (sealed container 1 in this embodiment) where vibration occurs, or the level of the vibration (or noise) that occurs. The contact area of the elastic members 17-47 with the surface of the structure depends on the area of the elastic members 17-47. Therefore, by changing the shape of the elastic members 17-47 or adjusting the partial dimensions, it is possible to easily adjust the contact area with the surface of the structure. This makes it possible to easily achieve vibration damping performance that corresponds to the vibration generated in the structure.
[0125] The specific material of the elastic member 17 (or the elastic members 27 to 47) is not particularly limited, but it is generally sufficient that the elastic member 17 is made of metal and has been subjected to a quenching treatment. This allows the elastic member 17 to be easily manufactured, and enables the elasticity of the elastic member 17 to be adjusted by quenching. The specific metal material is not particularly limited, but representative examples include various steel materials (stainless steel, etc.), phosphor bronze, beryllium copper, titanium spring material, etc. More preferred materials include stainless steel, spring steel, etc. In the examples described below, SK material (carbon tool steel material) is used.
[0126] The surface of the elastic member 17 may be subjected to an oxidation treatment. If the elastic member 17 is made of metal, an oxide film can be formed on the surface. This can protect the surface of the elastic member 17, improving the stability of the elastic member 17. Furthermore, if the vibration damping devices 18, 19 are attached to the sealed container 1 by, for example, projection welding, the oxide film can prevent current from passing through the elastic member 17 during projection welding. This can avoid or prevent welding between the sealed container 1 and the elastic member 17.
[0127] The thickness of the elastic member 17 is not particularly limited and can be set appropriately depending on various conditions, but generally, it is sufficient if it is within the range of 0.1 to 1 mm. This allows the elastic member 17 to be well fitted to the inner surface of the sealed container 1, thereby obtaining a greater damping effect. In addition, although it depends on the material of the elastic member 17, if the elastic member 17 is made of metal, it is possible to adjust the elasticity of the elastic member 17 by appropriately adjusting the thickness within the above range.
[0128] The specific elastic modulus of the elastic member 17 is not particularly limited and can be set appropriately depending on various conditions. Generally, the Young's modulus is 100,000 to 300,000 N / mm 2 A more preferable range is 150,000 to 250,000 N / mm 2Although it depends on conditions such as the type, structure, or material of the structure in which the vibration occurs, for example, if the structure is a sealed container 1, the Young's modulus of the elastic member 17 can be set within the above range to more effectively attenuate the vibration (or noise).
[0129] As described above, the contact range of the elastic member 17 with the surface of the structure depends on the area of the elastic member 17, but the contactability of the elastic member 17 with the surface of the structure depends on the elasticity of the elastic member 17. The elasticity (Young's modulus) of the elastic member 17 can be set appropriately depending on various conditions such as the type of material, thickness, and hardening treatment. Therefore, by adjusting the elasticity of the elastic member 17, the contactability of the elastic member 17 can be easily adjusted in the same way as the contact range. This makes it possible to easily achieve vibration damping performance according to the vibrations generated in the structure.
[0130] In particular, by setting the Young's modulus of the elastic member 17 within the above range, it is possible to increase F (contact force) without decreasing δ (relative displacement of the contact portion) in the above-mentioned calculation formula for the energy attenuation amount ΔS. This makes it possible to more effectively attenuate vibrations (or noise) generated in the structure. Note that increasing the contact area of the elastic member 17 increases dx in the above-mentioned calculation formula for the energy attenuation amount ΔS.
[0131] Here, in the elastic member 17 shown in Fig. 8A or the elastic members 27 to 47 shown in Fig. 9A to 9C, the corners or longitudinal ends of the plate member may have a convex curved shape. In other words, in the elastic members 17 to 47, the corners or ends may have a rounded shape (with an R) rather than a sharp angle.
[0132] As described above, the elastic member 17 (or the elastic members 27 to 47) may be a plate member, but the holding member 16 (or the holding members 26, 36) is a plate member like the elastic member 17, but as long as it can hold the elastic member 17 facing the surface of the structure, the holding member 16 does not need to be a plate member. In other words, the specific shape of the holding member 16 is not limited as long as it can hold the elastic member 17 in contact with the surface of the structure. Therefore, for example, the holding member 16 (or the holding members 26, 36) may have a three-dimensional shape (block shape) instead of a flat shape like a plate member.
[0133] As in this embodiment, if the structure is a sealed container 1 and both the inner surface (ceiling surface) of the upper sealed container 1a and the inner surface (bottom surface) of the lower sealed container 1b are curved so as to be convex outward, the holding surface of the elastic member 17 in the holding member 16 may have a curvature corresponding to the curvature of the surface of the structure. In other words, the holding member 16 may include a portion having a curvature corresponding to the curvature of the surface of the structure, and the surface of the portion may be the holding surface of the elastic member 17.
[0134] Alternatively, the holding member 16 may be partially plate-shaped. For example, the fixing portion 16b may be three-dimensional (block-shaped), and the portion having the holding surface may be plate-shaped. Here, when the holding member 16 is a plate member or partially plate-shaped, as shown in FIG. 3 or FIG. 5, the thickness of the plate-shaped portion of the holding member 16 may be greater than the thickness of the elastic member 17, which is a plate member. This allows the elastic member 17 to be well held by the holding member 16, and prevents the holding member 16 from becoming excessively large.
[0135] If the holding member 16 and the elastic member 17 are both plate members, they may be formed of a plate material of a known iron-based material (so-called iron plate). By using such an iron plate, the vibration damping devices 18, 19 can be made smaller and the cost can be reduced. As a result, when the vibration damping devices 18, 19 are applied to a hermetic compressor, it is possible to prevent the hermetic compressor from becoming larger and the cost from increasing, and a more compact and inexpensive hermetic compressor can be provided. In the embodiment described later, an SK material is used for the elastic member 17, and a steel material is used for the holding member 16.
[0136] The number of positioning protrusions 17a provided on elastic member 17 is not particularly limited, and may be two or more, i.e., multiple. Since positioning holes 16a provided on holding member 16 are provided at positions corresponding to positioning protrusions 17a, the number of positioning holes 16a may also be the same as the number of positioning protrusions 17a, i.e., multiple. Although it depends on the shape of elastic member 17 or the shape of holding member 16, forming multiple positioning holes 16a and multiple positioning protrusions 17a allows the position of elastic member 17 held by holding member 16 relative to the structure (sealed container 1 in this embodiment) to be appropriately set.
[0137] The shapes of the positioning holes 16a and the positioning protrusions 17a are not particularly limited. In this embodiment, they are circular as shown in Figs. 2 to 5, but they may be rectangular, elliptical, triangular, or linear, i.e., holes and protrusions having a longitudinal direction. The dimensions of the positioning holes 16a and the positioning protrusions 17a are not particularly limited, and can be appropriately set depending on various conditions such as the spreading areas of the elastic member 17 and the holding member 16.
[0138] Furthermore, the positions of the positioning holes 16a in the holding member 16 and the positioning protrusions 17a in the elastic member 17 are not particularly limited and can be set appropriately depending on the shapes of the holding member 16 or the elastic member 17. In this embodiment, as described above, both the holding member 16 and the elastic member 17 are plate members having a longitudinal direction (primary direction), so that the elastic member 17 can be well positioned with a simple configuration by providing a plurality of positioning holes 16a and positioning protrusions 17a side by side along the longitudinal direction.
[0139] In the present embodiment, only one elastic member 17 is held by the holding member 16, but the present disclosure is not limited to this, and two or three or more (multiple) elastic members 17 may be held by the holding member 16. Similarly, in the present embodiment, one elastic member 17 is held by one plate-shaped holding member 16, but the present disclosure is not limited to this, and the elastic member 17 may be held by two or three or more (multiple) holding members 16. From the viewpoint of suppressing an increase in the number of parts, it is sufficient that there is one each of the holding member 16 and the elastic member 17.
[0140] Even if many resonance frequency peaks occur in the structure (for example, the hermetic container 1 of a hermetic compressor) to which the vibration damping devices 18 and 19 are attached, multiple elastic members 17 can be held in accordance with these peaks. This allows these many peaks to be effectively damped, and therefore vibrations (or noise) can be attenuated even more effectively.
[0141] Here, in this embodiment, as shown in Fig. 1, two devices, an upper vibration damping device 18 and a lower vibration damping device 19, are provided for the sealed container 1, but the present disclosure is not limited thereto. For example, only the upper vibration damping device 18 may be provided for the sealed container 1, only the lower vibration damping device 19 may be provided for the sealed container 1, or three or more vibration damping devices may be provided. According to the present disclosure, by providing at least one vibration damping device for the sealed container 1, a good vibration damping effect can be realized, but by providing multiple vibration damping devices, it is possible to attenuate multiple resonant frequency peaks in the sealed container 1 and also to obtain a stronger damping effect.
[0142] In the present embodiment, as shown in Figs. 1 to 5, both of the vibration damping devices 18 and 19 are provided on the inner surface of the sealed container 1, but the present disclosure is not limited thereto, and the vibration damping devices 18 and 19 may be provided on the outer surface of the sealed container 1. That is, the installation positions of the vibration damping devices 18 and 19 are not particularly limited, and they can be installed at suitable positions on the surface of the structure depending on various conditions of the structure where vibration occurs. A specific example of the installation position of the vibration damping devices 18 and 19 can be, for example, a position that is the center of a natural vibration mode. There are multiple centers of natural vibration modes depending on the frequency to be attenuated, but in the embodiment described later, the vibration damping devices are installed at a position that is the center of a frequency of 4 to 6 kHz.
[0143] In the case of a hermetic compressor, the vibration damping devices 18, 19 may be provided on the inner surface of the sealed container 1 as described above. In the vibration damping devices 18, 19, the elastic member 17 is held by the holding member 16 and is not fixed to the sealed container 1, so there is a possibility that the elastic member 17 and the holding member 16 may resonate. This resonance may also cause noise, but by providing the vibration damping devices 18, 19 on the inner surface of the sealed container 1, it becomes possible for the sealed container 1 to soundproof the noise caused by resonance.
[0144] In the present embodiment, the present disclosure has been specifically described by giving an example in which the vibration damping device is applied to a hermetic compressor (an example in which the structure in which vibration occurs is a hermetic container). However, the present disclosure is not limited to this, and as described above, it can be applied to fields other than hermetic compressors. For example, the vibration damping device according to the present disclosure can also be applied to refrigerators, air conditioners, etc.
[0145] When the vibration damping device according to the present disclosure is applied to a refrigerator, the structure where vibration occurs is the refrigerator body, and the vibration damping device according to the present disclosure can be attached to, for example, the side of the refrigerator body. When the vibration damping device according to the present disclosure is applied to an air conditioner, for example, an outdoor unit can be cited as an example of the structure where vibration occurs. In this case, the vibration damping device according to the present disclosure can be attached to the wall surface or the like of the outdoor unit.
[0146] In this way, in the present disclosure, when the structure generating the vibration has a resonant frequency, it is possible to realize a satisfactory vibration damping effect with a simple configuration, and it is also possible to reduce or alleviate noise caused by the vibration. Therefore, the present disclosure can be applied to a wide range of industrial products. EXAMPLES
[0147] The present disclosure will be described in more detail with reference to the following examples and comparative examples, but the present invention is not limited thereto. Those skilled in the art can make various changes, modifications, and alterations without departing from the scope of the present invention.
[0148] Example 1 An upper sealed vessel 1a of a hermetic compressor was prepared, and an SK material having a length of 50 mm, a width of 18 mm and a thickness of 0.4 mm was used as the elastic member 17, and a steel plate having a length of 80 mm, a width of 30 mm and a thickness of 2 mm was used as the retaining member 16.
[0149] The elastic member 17 was sandwiched between the ceiling surface of the upper sealed container 1a and the holding member 16, and the elastic member 17 and the holding member 16 were positioned and pressed, and the fixing portion 16b of the holding member 16 was energized to melt the fixing portion 16b and fix it to the inner surface of the upper sealed container 1a (see FIG. 6). In this way, the upper vibration damping device 18 was attached to the inner surface (ceiling surface) of the upper sealed container 1a. In this way, a test sample according to Example 1 was obtained (see FIG. 2).
[0150] A hermetic compressor using the test sample according to Example 1 was prepared, and an acceleration pickup was installed in the upper hermetic container 1a, and an impact test was performed while the hermetic compressor was not in operation. In this impact test, the compressor was struck vertically against the ground, and an acceleration signal in the same direction as the striking direction was measured. A frequency analysis was performed on the measured acceleration signal using an FFT (Fast Fourier Transform) analyzer to obtain a power spectrum. The results, i.e., the vibration level versus frequency, are shown in FIG. 10A.
[0151] Furthermore, while the hermetic compressor was running, condenser microphones were placed at 100 mm from the hermetic compressor in four directions to measure the noise. The measured noise signal was subjected to frequency analysis using an FFT analyzer to obtain a power spectrum. The results, i.e., the noise level versus frequency, are shown in Figure 10B.
[0152] Comparative Example 1 Except for using the upper sealed container 1a without the upper vibration damping device 18 as the test sample according to Comparative Example 1, the vibration level and noise level of the upper sealed container 1a were measured in the same manner as in Example 1. The results of the vibration level versus frequency are shown in Fig. 10A, and the results of the noise level versus frequency are shown in Fig. 10B.
[0153] In addition, in FIG. 10A and FIG. 10B, the dashed lines indicate the vibration level (unit: m / s 2 / N) and noise level (unit: dB), and the solid line represents the vibration level (unit: m / s 2 / N) and noise level (unit: dB).
[0154] (Comparison between Example 1 and Comparative Example 1) 10A and 10B, in the test sample according to Comparative Example 1 (dashed line in the figure), many vibration peaks are confirmed in the vibration level, and many noise peaks are also confirmed in the noise level. In contrast, in the test sample according to Example 1 (solid line in the figure), it is found that the vibration peaks of the upper sealed container 1a are greatly suppressed, and the noise peaks of the upper sealed container 1a are also greatly reduced.
[0155] As described above, the elastic member 17 and the holding member 16 are both iron plate members. Therefore, the configuration of the upper vibration damping device 18 using these members is simply a matter of stacking and fixing the plate members, and is therefore simpler than conventional vibration damping members, and does not require a large volume for installation. This makes it possible to suppress or avoid an increase in the size of the hermetic compressor, and also to effectively suppress an increase in costs, resulting in a compact, inexpensive hermetic compressor.
[0156] Furthermore, in the hermetic compressor according to the present disclosure, a configuration can be adopted in which the electric element 2 is inverter-driven at a plurality of operating frequencies. In this case, it is assumed that the frequency at which vibration is applied to the upper sealed container 1a may change due to the variable speed of the compression operation by the compression element 3. However, as is clear from the results in Fig. 10A and Fig. 10B, the upper vibration damping device 18 can exert a damping effect over a wide range of frequencies, and therefore, not only can it achieve a more satisfactory vibration damping action, but it can also reduce noise.
[0157] Example 2 A lower sealed container 1b of a hermetic compressor was prepared, and a lower vibration damping device 19 was attached to the inner surface (bottom surface) of the lower sealed container 1b in the same manner as in Example 1 using the same elastic member 17 and holding member 16 as in Example 1, to obtain a test sample according to Example 2 (see FIG. 4). In the test sample according to Example 2, a predetermined amount of lubricating oil 7 was stored in the lower sealed container 1b in order to approximate the state of an actual hermetic compressor.
[0158] For the test sample according to Example 2, the vibration level and noise level of the lower sealed container 1b were measured in the same manner as in Example 1. The results of the vibration level versus frequency are shown in Fig. 11A, and the results of the noise level versus frequency are shown in Fig. 11B. Comparative Example 2
[0159] The vibration level and noise level of the lower sealed container 1b were measured in the same manner as in Example 2, except that the lower sealed container 1b without the lower vibration damping device 19 was used as the test sample according to Comparative Example 2. The results of the vibration level versus frequency are shown in Fig. 11A, and the results of the noise level versus frequency are shown in Fig. 11B.
[0160] In the test sample according to Comparative Example 2, a predetermined amount of lubricating oil 7 is stored in the lower sealed container 1b. In addition, in Figs. 11A and 11B, the dashed lines indicate the vibration level (unit: m / s 2 / N) and noise level (unit: dB), and the solid line indicates the vibration level (unit: m / s 2 / N) and noise level (unit: dB).
[0161] (Comparison between Example 2 and Comparative Example 2) 11A and 11B, in the test sample according to Comparative Example 2 (dashed line in the figure), many vibration peaks are confirmed in the vibration level and many noise peaks are confirmed in the noise level, similar to the test sample according to Comparative Example 1. In contrast, in the test sample according to Example 2 (solid line in the figure), similar to the test sample according to Example 1, it can be seen that the vibration peak of the lower sealed container 1b is greatly suppressed and the noise peak of the lower sealed container 1b is also greatly reduced.
[0162] As described above, in both the test sample according to Comparative Example 2 and the test sample according to Example 2, a predetermined amount of lubricating oil 7 is stored in the lower sealed container 1b. As is clear from the results of the test sample according to Example 2, it is found that the lower vibration damping device 19 can exhibit good vibration damping and noise reduction effects even when immersed in the lubricating oil 7.
[0163] In this way, the vibration damping devices 18 and 19 according to the present disclosure can produce a minute sliding displacement between the sealed container 1 and the elastic member 17, thereby exerting a friction damping effect. Therefore, as shown in the results of Example 1 or Example 2, it is possible to reduce, mitigate or suppress (damage) the vibration of the sealed container 1, and also reduce noise caused by the vibration.
[0164] Moreover, since the load of the elastic member 17 applied to the sealed container 1 depends on the elastic force of the elastic member 17, the load applied to the sealed container 1 (structure) does not vary in the vibration damping devices 18 and 19. Therefore, the vibration damping devices 18 and 19 can exert a more stable friction damping effect.
[0165] Furthermore, as shown by the results of Example 1 or Example 2, the vibration damping devices 18 and 19 can also exhibit a friction damping effect against three-dimensional vibration of the sealed container 1. Therefore, the peaks of multiple resonance frequencies of the sealed container 1 can be damped.
[0166] Therefore, when the vibration damping devices 18, 19 are attached to a reciprocating hermetic compressor (see FIG. 1), noise in the harmonic resonance frequency band (within the range of 2 kHz to 8 kHz) specific to the reciprocating type can be reliably reduced.
[0167] The present invention is not limited to the above-described embodiment, and various modifications are possible within the scope of the claims. The technical scope of the present invention also includes embodiments obtained by appropriately combining the technical means disclosed in different embodiments or multiple modified examples.
[0168] From the above description, many improvements and other embodiments of the present invention will be apparent to those skilled in the art. Therefore, the above description should be construed as merely illustrative and is provided for the purpose of teaching those skilled in the art the best mode for carrying out the present invention. Details of the structure and / or function thereof may be substantially changed without departing from the spirit of the present invention. [Industrial Applicability]
[0169] The present invention can be widely and suitably used in fields where vibration is reduced, mitigated, or suppressed (vibration control) in structures where vibration occurs.Typically, the present invention can be widely and suitably used in fields where noise is generated by vibration of a sealed container, such as a hermetic compressor. [Explanation of symbols]
[0170] 1: Airtight container 1a: Upper sealed container 1b: Lower sealed container 2:Electric element 3: Compression factor 4: Compressor body 5: Suspension spring 5a: Spring receiving part 6: Refrigerant gas 7: Lubricating oil 8: Suction pipe 9:Discharge pipe 10: Shaft 11: Cylinder block 12: Piston 13:Connection part 14: Rotor 15: Stator 16: Holding member 16a: Positioning hole 16b: Fixing part 17: Elastic material 17a: Positioning protrusion 18: Upper vibration control device 19: Lower vibration control device 26: Retaining member 26a: Positioning hole 26b: Fixing part 27: Elastic member 27a: Positioning protrusion 36: Retaining member 36a: Positioning hole 36b: Fixing part 37: Elastic member 37a: Positioning protrusion 47: Elastic member 47a: Positioning protrusion
Claims
1. a plate-shaped elastic member having elasticity and capable of deforming so as to come into contact with a surface of a structure where vibration is generated; a holding member that holds the elastic member in contact with a surface of the structure, the holding member is partially fixed to the surface of the structure with a predetermined gap therebetween, the elastic member is made of metal and has been subjected to a quenching treatment, and the elastic member is held between the holding member and the surface of the structure and abuts against the surface of the structure without being fixed thereto. Vibration control device.
2. a plate-shaped elastic member having elasticity and capable of deforming so as to come into contact with a surface of a structure where vibration is generated; a holding member that holds the elastic member in contact with a surface of the structure, the holding member is partially fixed to the surface of the structure with a predetermined gap therebetween, The shape of the corners or longitudinal ends of the plate-like elastic member is a convex curved shape, and the elastic member is held between the holding member and the surface of the structure and abuts against the surface of the structure without being fixed thereto. Vibration control device.
3. The structure surface is curved, and the holding member includes a portion having a curvature corresponding to the curvature of the structure surface. The vibration damping device according to claim 1 or 2.
4. A non-contact surface of the elastic member that is not in contact with the surface of the structure is provided with a plurality of protrusions, The holding member is provided with holes at positions corresponding to the plurality of protrusions. The vibration damping device according to claim 1 or 2.
5. The holding member has a plate-shaped portion for holding the elastic member, and the thickness of the plate-shaped portion is greater than the thickness of the elastic member. The vibration damping device according to claim 1 or 2.
6. The holding member holds the elastic member in a state in which the elastic member is biased toward the surface of the structure. The vibration damping device according to claim 1 or 2.
7. The structure is a sealed container provided in a hermetic compressor, and the inner surface of the sealed container is the surface of the structure. The vibration damping device according to claim 1 or 2.
8. A sealed container; an electromotive element comprising a stator and a rotor; a compression element driven by the electric element to compress a fluid; Equipped with the electric element and the compression element are housed in the sealed container, and lubricating oil is stored in the sealed container; Further, a vibration control device is provided which is attached to the inner surface of the sealed container, The vibration damping device comprises: a plate-shaped elastic member having elasticity and capable of deforming so as to come into contact with an inner surface of the sealed container; a holding member that holds the elastic member in close contact with the inner surface of the sealed container, the holding member is partially fixed to the inner surface of the sealed container with a predetermined gap therebetween, The elastic member is made of metal and has been subjected to a quenching treatment, and the elastic member is held between the holding member and the inner surface of the sealed container and is in contact with the surface of the structure without being fixed thereto. Hermetic compressor.
9. A sealed container; an electromotive element comprising a stator and a rotor; a compression element driven by the electric element to compress a fluid; Equipped with the electric element and the compression element are housed in the sealed container, and lubricating oil is stored in the sealed container; Further, a vibration control device is provided which is attached to the inner surface of the sealed container, The vibration damping device comprises: a plate-shaped elastic member having elasticity and capable of deforming so as to come into contact with an inner surface of the sealed container; a holding member that holds the elastic member in close contact with the inner surface of the sealed container, the holding member is partially fixed to the inner surface of the sealed container with a predetermined gap therebetween, The shape of the corners or longitudinal ends of the plate-like elastic member is a convex curved shape, and the elastic member is held between the holding member and the inner surface of the sealed container and is in contact with the surface of the structure without being fixed thereto. Hermetic compressor.
10. The vibration damping device is attached to at least one of an upper inner surface and a lower inner surface of the sealed container. The hermetic compressor according to claim 8 or 9.
Citation Information
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