Phononic crystal unit cell structure, shell structure, liquid accumulator and compressor

By co-designing the acoustic black hole region and the phononic crystal in the phononic crystal structure, the acoustic black hole region collects vibrations and contacts through elastomers, efficient vibration reduction and noise reduction are achieved, solving the problem of limited vibration reduction and noise reduction effect of phononic crystal single cell structure in the prior art, and improving the overall performance of the phononic crystal single cell structure.

CN223203256UActive Publication Date: 2025-08-08GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202422637895.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-08-08
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

The existing phonon crystal single-cell structure has limited vibration and noise reduction effects, and cannot effectively cooperate with the acoustic black hole structure and phonon crystals, resulting in prominent vibration and noise problems.

Method used

A single-cell structure of phononic crystal is designed, in which the acoustic black hole region and the phononic crystal are in contact with the elastomer, the thickness of the acoustic black hole region is gradually reduced, the phononic crystal is set at the smallest thickness, and is interpolated and cooperated with the elastomer through the via hole to form an effective coordinated vibration and noise reduction system.

Benefits of technology

It achieves efficient noise reduction in the frequency band 0-870Hz, breaks through the performance limitations of traditional sound insulation materials, improves the overall vibration and noise reduction effect, and ensures the sealing and sound insulation performance of the shell structure.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a phononic crystal unit cell structure, shell structure, reservoir and compressor wherein the phononic crystal unit cell structure comprises a base body and a phononic crystal, the phononic crystal is provided with an elastic body and a scatterer arranged on the elastic body; the substrate is provided with an acoustic black hole area, the phononic crystal is arranged at the acoustic black hole area, and the phononic crystal is in contact with the acoustic black hole area through the elastic body. According to the technical scheme, the acoustic black hole area on the base body has the function of collecting vibration on the base body, and the photonic crystal is arranged at the acoustic black hole area and makes contact with the acoustic black hole area through the elastic body, so that efficient vibration reduction can be achieved through the photonic crystal, and the vibration reduction efficiency is improved. Therefore, the vibration and noise reduction effect of the whole phononic crystal unit cell structure can be improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of vibration reduction and noise reduction of shells, and specifically relates to a phononic crystal unit cell structure, a shell structure, a liquid reservoir and a compressor. Background Art

[0002] The four main components of the refrigeration cycle system are the compressor, condenser, evaporator and expansion valve. Among them, the compressor mainly consists of four parts: compression mechanism, shell, drive motor and liquid reservoir. At present, the miniaturization and high speed of compressors have become the development trend of the industry. However, in the process of high speed, as the speed increases, the vibration and noise problems generated by the compressor body become more prominent, seriously affecting the user experience. The main excitation force of the rotary compressor is affected by the motor torque and gas resistance torque. A liquid reservoir is provided on one side of the rotary compressor. During the operation of the compressor, the vibration generated by the compressor will be transmitted to the liquid reservoir, causing the liquid reservoir to vibrate and generate noise. In addition, since the suction process during the operation of the compressor is intermittent and periodic, the liquid reservoir will produce suction noise, eddy current noise and cavity resonance noise.

[0003] Existing related technology discloses a phononic crystal unit cell structure, which is designed with phononic crystals and acoustic black hole structures on a substrate, wherein the phononic crystals and acoustic black hole structures are arranged at intervals on the substrate. The phononic crystals and acoustic black hole structures cooperate to achieve the effect of reducing vibration and noise of the substrate.

[0004] Among them, the phononic crystal and the acoustic black hole structure on the above-mentioned substrate are arranged at intervals, and each of them plays the role of reducing vibration and noise, without coordinated cooperation, resulting in limited vibration and noise reduction effect of the phononic crystal unit cell structure, which needs to be further improved. Utility Model Content

[0005] Therefore, the utility model provides a phononic crystal unit cell structure, a shell structure, a liquid reservoir and a compressor, which can solve the technical problem that the vibration reduction and noise reduction effect of the phononic crystal unit cell structure in the prior art is limited and needs to be further improved.

[0006] In order to solve the above problems, the utility model provides a phononic crystal unit cell structure, which includes a substrate and a phononic crystal, wherein the phononic crystal has an elastic body and a scatterer arranged on the elastic body;

[0007] The substrate has an acoustic black hole region, the phononic crystal is arranged in the acoustic black hole region, and the phononic crystal is in contact with the acoustic black hole region through the elastic body.

[0008] In some embodiments, the thickness of the acoustic black hole region gradually decreases from the outside to the inside, and the phononic crystal is arranged at the location where the thickness of the acoustic black hole region is the smallest through the elastomer.

[0009] In some embodiments, a through hole is provided in the middle of the acoustic black hole region, and the thickness of the acoustic black hole region at the through hole is minimized; wherein the phononic crystal is embedded in the through hole through the elastomer.

[0010] In some embodiments, the inner peripheral wall of the through hole and the elastic body are plug-fitted together.

[0011] In some embodiments, the elastic body is provided with an annular groove extending in the circumferential direction, and the inner circumferential wall of the through hole is inserted into the annular groove in the circumferential direction.

[0012] In some embodiments, the elastic body and the through hole are interference fit.

[0013] In some embodiments, the thickness of the acoustic black hole region (12) decreases gradually from the outside to the inside according to a power exponential.

[0014] In some embodiments, the substrate has a first surface and a second surface relative to each other, a groove is provided on the first surface, and the second surface has a first area surface opposite to the groove, and the wall thickness of the substrate between the first area surface and the groove forms the acoustic black hole area.

[0015] In some embodiments, the elastic body has an inner hole running through both ends; the scatterer is columnar, and the scatterer is nested in the inner hole.

[0016] In some embodiments, when the thickness of the acoustic black hole region on the substrate gradually decreases from the outside to the inside, the substrate is plate-shaped, and the maximum thickness of the substrate is 0.5mm≤t≦5.0mm; the elastomer is annular, and the outer radius of the elastomer is 10.0mm≤r1≦30.0mm, the inner radius of the elastomer is 5.0mm≤r2≦25.0mm, and the height of the elastomer is 5.0mm≤h1≦25.0mm; the scatterer is cylindrical, and the radius of the scatterer is r3=r2, and the height of the scatterer is 5.0mm≤h2≦25.0mm.

[0017] The utility model also provides a shell structure, which includes a shell and any one of the above-mentioned phononic crystal unit cell structures;

[0018] The shell wall of the shell constitutes the matrix of the phononic crystal unit cell structure.

[0019] The utility model also provides a liquid storage device or a compressor, which comprises the shell structure described above.

[0020] The phononic crystal unit cell structure, shell structure, liquid reservoir and compressor provided by the utility model have the following beneficial effects:

[0021] 1. Compared to existing designs in which the acoustic black hole structure and phononic crystal on a substrate each independently provide vibration and noise reduction, the technical solution of the present invention effectively combines the acoustic black hole structure and the phononic crystal, enabling them to work synergistically. Specifically, the acoustic black hole region on the substrate serves to collect vibrations on the substrate, while the phononic crystal is positioned in the acoustic black hole region and in contact with the acoustic black hole region via an elastic body. This allows for efficient vibration reduction using the phononic crystal, thereby enhancing the overall vibration and noise reduction effects of the phononic crystal unit cell structure of the present invention.

[0022] 2. The utility model designs the size of the phononic crystal unit cell structure so that it can achieve efficient noise reduction in the 0-870Hz frequency band, and its sound insulation performance in multiple frequency bands breaks through the "mass law" of traditional sound insulation materials. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following is a brief introduction to the drawings required for the embodiments or the description of the prior art. The drawings described below are merely exemplary. For those skilled in the art, other implementation drawings can be derived from the provided drawings without inventive effort.

[0024] Figure 1 This is a schematic structural diagram of a phononic crystal unit cell structure provided by one embodiment of the present utility model;

[0025] Figure 2 yes Figure 1 Cross-sectional view of the unit cell structure of the mesophononic crystal;

[0026] Figure 3 yes Figure 2 Schematic diagram of the size of the unit cell structure of the mesophononic crystal;

[0027] Figure 4 This is a structural schematic diagram of a base of a phononic crystal unit cell structure provided by one embodiment of the present utility model;

[0028] Figure 5 This is a structural diagram of a liquid reservoir provided by one embodiment of the present utility model;

[0029] Figure 6 This is a comparison curve of the sound transmission loss between the phononic crystal unit cell structure of the utility model and a 2 mm cold-rolled steel plate.

[0030] The accompanying drawings are:

[0031] 1. Intake pipe; 2. Upper cover; 3. Filter assembly; 4. Shell; 5. Phononic crystal; 6. Straight pipe; 7. Lower cover; 8. Intake pipe; 51. Elastomer; 52. Scatterer; 11. Matrix; 12. Acoustic black hole region; 110. Via hole; 111. First surface; 112. Second surface; 121. Groove; 901. Annular groove; 1121. First region surface. DETAILED DESCRIPTION

[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments. The following description of at least one exemplary embodiment is actually only illustrative and is in no way intended to limit the present invention and its application or use. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0033] In the description of the present invention, it needs to be understood that the directions or positional relationships indicated by directional words such as "front, back, up, down, left, right", "horizontal, vertical, vertical, horizontal" and "top, bottom" are usually based on the directions or positional relationships shown in the drawings. They are only for the convenience of describing the present invention and simplifying the description. Unless otherwise specified, these directional words do not indicate or imply that the device or element referred to must have a specific direction or be constructed and operated in a specific direction. Therefore, they cannot be understood as limiting the scope of protection of the present invention; the directional words "inside and outside" refer to the inside and outside relative to the outline of each component itself.

[0034] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used herein to describe the spatial positional relationship of a device or feature to other devices or features as shown in the figures. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figures. For example, if the device in the drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.

[0035] In addition, it should be noted that the use of words such as "first" and "second" to limit components is only for the convenience of distinguishing the corresponding components. Unless otherwise stated, the above words have no special meaning and therefore cannot be understood as limiting the scope of protection of this utility model.

[0036] See also Figure 1-4 As shown, according to an embodiment of the present invention, a phononic crystal unit cell structure is provided, which includes a substrate 11 and a phononic crystal 5. The phononic crystal 5 has an elastic body 51 and a scatterer 52 disposed on the elastic body 51. The substrate 11 has an acoustic black hole region 12, and the phononic crystal 5 is disposed in the acoustic black hole region 12, and the phononic crystal 5 is in contact with the acoustic black hole region 12 through the elastic body 51.

[0037] Compared to the prior art design in which the acoustic black hole structure and the phononic crystal on the substrate each independently reduce vibration and noise, the technical solution of the present invention realizes the effective combination of the acoustic black hole structure (i.e., the acoustic black hole region 12 mentioned above) and the phononic crystal 5, so that the acoustic black hole structure and the phononic crystal 5 can work together. Specifically, the acoustic black hole region 12 on the substrate 11 has the function of collecting the vibrations on the substrate 11, and the phononic crystal 5 is arranged at the acoustic black hole region 12, and the phononic crystal 5 is in contact with the acoustic black hole region 12 through the elastic body 51, so that the phononic crystal 5 can achieve efficient vibration reduction, thereby improving the overall vibration reduction and noise reduction effect of the phononic crystal unit cell structure of the present invention.

[0038] In some embodiments, as Figure 2 As shown, the thickness of the acoustic black hole region 12 gradually decreases from the outside to the inside. The phononic crystal 5 is arranged at the location where the thickness of the acoustic black hole region 12 is the smallest through the elastic body 51 .

[0039] In the above example, since the thickness of the acoustic black hole region 12 gradually decreases from the outside to the inside, the acoustic black hole region 12 can gather the vibration to the point where the thickness is minimum. When the point where the thickness of the acoustic black hole region 12 is minimum is located at its center, the acoustic black hole region 12 can "localize" the vibration at the center of the acoustic black hole region 12, thereby allowing the phononic crystal 5 located at the point where the thickness is minimum to efficiently reduce vibration, thereby further improving the effect of vibration reduction and noise reduction.

[0040] To achieve the goal of positioning the phononic crystal 5 via the elastic body 51 at the point where the thickness of the acoustic black hole region 12 is minimal, in some embodiments, a through-hole 110 is provided in the middle of the acoustic black hole region 12. This through-hole 110 is a through hole. The thickness of the acoustic black hole region 12 is minimized at the through-hole 110. The phononic crystal 5 is embedded in the through-hole 110 via the elastic body 51.

[0041] In the above example, the acoustic black hole region 12 can collect vibrations to the via 110, and then the phononic crystal 5 receives the vibrations collected by the acoustic black hole region 12 along the circumferential direction through the elastomer 51, thereby improving the vibration reduction efficiency of the phononic crystal 5 and enhancing the overall vibration reduction and noise reduction effect of the phononic crystal unit cell structure of the utility model.

[0042] In some embodiments, as Figure 2 As shown, the inner wall of the aforementioned through hole 110 and the elastomer 51 are plugged into each other, which can improve the stability of the connection between the elastomer 51 and the acoustic black hole region 12, thereby facilitating the phononic crystal 5 to efficiently reduce the vibration collected in the acoustic black hole region 12.

[0043] In order to achieve the effect of plug-fitting between the inner peripheral wall of the through hole 110 and the elastic body 51, in some embodiments, as shown in FIG. Figure 2 As shown, the elastic body 51 is provided with an annular groove 901 extending in the circumferential direction, and the inner peripheral wall of the through hole 110 is inserted into the annular groove 901 in the circumferential direction.

[0044] In some embodiments, the aforementioned elastomer 51 and the via 110 are interference fit, which can further improve the connection stability between the elastomer 51 and the via 110, thereby facilitating the phononic crystal 5 to efficiently reduce the vibration collected by the acoustic black hole region 12.

[0045] In some embodiments, the elastic body 51 may be a silicone rubber ring. Figure 2 As shown, the aforementioned annular groove 901 is located in the middle of the outer surface of the elastomer 51. The groove width between the two opposite groove walls of the annular groove 901 is equal to the thickness of the outer edge of the through hole 110 of the base 11, and the diameter of the elastomer 51 at the bottom surface of the annular groove 901 is slightly larger than the diameter of the through hole 110. When the scatterer 52 is embedded in the elastomer 51, the elastomer 51 and the through hole 110 can be interference-fitted, so that the elastomer 51 and the through hole 110 can be sealed. In this way, when the phononic crystal unit cell structure of the present invention is applied to the shell 4 of the liquid reservoir, the liquid reservoir can still maintain a sealed state. The hollow portion of the annular ring of the elastomer 51 is embedded with the scatterer 52, which can be a steel cylinder. The height of the scatterer 52 can be the same as the height of the elastomer 51.

[0046] In some embodiments, the thickness of the acoustic black hole region 12 decreases from the outside to the inside according to a power exponential. Specifically, the position of any point on the acoustic black hole region is x, and the thickness of the acoustic black hole region corresponding to point x is h(x), where h(x)=εx n ; n≥2, ε is a constant.

[0047] It should be noted here that an acoustic black hole (ABH) is the acoustic analogy of the concept of a black hole in astrophysics. It is a structure that has a converging effect on bending waves through changes in geometric parameters or material properties. Under absolutely ideal conditions, the speed of bending waves gradually decreases to zero within the acoustic black hole region 12.

[0048] In the above example, the substrate 11 is a two-dimensional acoustic black hole plate, in which the thickness of the acoustic black hole region 12 is varied according to the power exponent h(x), so that the bending wave number approaches infinity, and the group velocity and phase velocity approach 0, that is, no reflection is formed, thereby achieving the "convergence" of vibrations.

[0049] In order to form the aforementioned acoustic black hole region 12, in some embodiments, as Figure 4 As shown, the aforementioned substrate 11 has a first surface 111 and a second surface 112 opposite to each other. A groove 121 is formed on the first surface 111, and the second surface 112 has a first area surface 1121 opposite to the groove 121. The wall thickness of the substrate 11 between the first area surface 1121 and the groove 121 forms the aforementioned acoustic black hole region 12 (i.e. Figure 4 The portion of the substrate 11 within the dotted frame).

[0050] In some embodiments, the second surface 112 may be a plane, which facilitates processing.

[0051] In some embodiments, the elastic body 51 has an inner hole extending through both ends. The scatterer 52 is cylindrical and nested within the inner hole. The elastic body 51 can be annular, and the scatterer 52 can be cylindrical. When the elastic body 51 is annular, the via 110 on the base 11 is a circular hole that matches the elastic body 51.

[0052] In the above example, the elastic body 51 and the scatterer 52 cooperate to form the aforementioned phononic crystal 5 for vibration and noise reduction. The scatterer 52 and the elastic body 51 together constitute a "mass-spring" system, which has a resonant frequency. When excited by elastic waves of a specific frequency (i.e., the resonant frequency of the "mass-spring" system), the scatterer 52 resonates and interacts with the traveling elastic waves in the matrix 11, thereby suppressing the propagation of the elastic waves and achieving the effect of suppressing vibration.

[0053] It should be noted here that the elastic modulus of the materials of the above-mentioned elastomer 51 and the scatterer 52 should be quite different. In some embodiments, the elastomer 51 of the above-mentioned phononic crystal can be made of a flexible material such as silicone rubber or rubber. The scatterer 52 of the above-mentioned phononic crystal can be made of a metal material such as steel, copper or iron. Among them, the scatterer 52 made of metal material increases the weight of the phononic crystal unit cell structure. When the phononic crystal 5 is set on the shell 4, it can increase the weight of the shell 4 and also have a vibration reduction effect.

[0054] The size and material of the phononic crystal unit cell structure can be adjusted according to actual conditions to change the frequencies of the peaks and troughs of the sound transmission loss curve of the phononic crystal unit cell structure to adapt to different vibration reduction application scenarios. When the phononic crystal unit cell structure is applied to a shell structure, the weight of the shell structure can be increased by increasing the number of phononic crystal unit cells or increasing the weight of the scatterer 52, thereby achieving a vibration reduction effect.

[0055] In some embodiments, as Figure 3 As shown, when the thickness of the acoustic black hole region 12 on the aforementioned substrate 11 gradually decreases from the outside to the inside, the substrate 11 can be plate-shaped, and the maximum thickness of the substrate 11 is 0.5mm≤t≦5.0mm. The elastic body 51 is annular, and the outer radius of the elastic body 51 is 10.0mm≤r1≦

[0056] The inner radius of the elastic body 51 is 5.0 mm ≤ r2 ≤ 25.0 mm, and the height of the elastic body 51 is 5.0 mm ≤ h1 ≤ 25.0 mm. The scatterer 52 is cylindrical, and the radius of the scatterer 52 is r3 = r2, and the height of the scatterer 52 is 5.0 mm ≤ h2 ≤ 25.0 mm.

[0057] In the above example, the phononic crystal unit cell structure of the present invention can achieve efficient noise reduction in the 0-870Hz frequency band after adopting the above-mentioned size design, and its sound insulation performance in multiple frequency bands breaks through the "mass law" of traditional sound insulation materials.

[0058] In a specific application example, the maximum thickness t of the base 11 is 2 mm, the outer radius r1 of the elastic body 51 is 20 mm, the inner radius r2 of the elastic body 51 is 16 mm, the height h1 of the elastic body 51 is 6 mm, and the height h2 of the scatterer 52 is 6 mm.

[0059] It should be noted that the phononic crystal unit cell structure of the present invention is a local resonance type phononic crystal 5, and its band gap starting frequency f1 and ending frequency f2 are calculated according to the following formula:

[0060]

[0061] Where m1 is the mass of the scatterer, m2 is the equivalent mass of the matrix, and k is the equivalent stiffness of the elastic body.

[0062] The sound transmission loss (sound insulation) TL of the phononic crystal unit cell structure of the present invention can be calculated according to the following formula:

[0063]

[0064] Where p in is the incident sound wave pressure amplitude, p out is the pressure amplitude of the transmitted sound wave, and the unit of TL is dB.

[0065] According to the above formula, when the elastomer 51 of the phononic crystal unit cell structure of the present invention is annular, and the scatterer 52 is cylindrical, and the material of the elastomer 51 is silicone rubber, and the material of the scatterer 52 is cold-rolled steel plate or steel, the geometric parameters of the phononic crystal unit cell structure of the present invention are shown in Table 1 below, and its material parameters are shown in Table 2 below.

[0066] Table 1 Geometric parameters of phononic crystal unit cell structure (unit: mm)

[0067] Lattice constant a 50 Maximum thickness of substrate t 2 Elastic outer circle radius <![CDATA[r1]]> 20 Inner radius of the elastic body <![CDATA[r2]]> 16 Elastic body height <![CDATA[h1]]> 6 Scatter radius <![CDATA[r3]]> 16 Scatterer height <![CDATA[h2]]> 6

[0068] Table 2 Phononic crystal unit cell structure material parameters

[0069] Material <![CDATA[Density / kg·m -3 > Elastic modulus / Pa Poisson's ratio Cold rolled steel plate / steel 7850 <![CDATA[2.21×e 11 ]]> 0.3 silicone rubber 1300 <![CDATA[1.37×e 5 ]]> 0.47

[0070] Based on the geometric parameters and material parameters of the above-mentioned phononic crystal unit cell structure, its sound transmission loss is numerically calculated. The results are shown in Figure 6 As shown in the sound transmission loss curve. The above-mentioned phononic crystal unit cell structure can be applied to a shell 4 such as a liquid reservoir shell or a compressor shell. Since the traditional liquid reservoir shell or compressor shell is generally made of cold-rolled steel plate with a wall thickness of 2.0 mm, compared with the traditional shell 4 without the phononic crystal unit cell structure of the present invention, it can be clearly seen from the figure that the sound transmission loss of the phononic crystal unit cell structure of the present invention in most frequencies of 0-870 Hz is greater than that of the 2 mm cold-rolled steel plate, indicating that the phononic crystal unit cell structure of the present invention can achieve efficient noise reduction in the 0-870 Hz frequency band, and its sound insulation performance in multiple frequency bands breaks through the "mass law" of traditional sound insulation materials.

[0071] The phononic crystal unit cell structure of the present invention can effectively reduce vibration response by utilizing the phononic crystal 5 and the acoustic black hole structure. Furthermore, when the phononic crystal unit cell structure of the aforementioned dimensions is applied to a housing 4, such as a reservoir housing or a compressor housing, the phononic crystal unit cells are periodically arranged on the housing 4, effectively reducing vibration and noise of the reservoir or compressor within a wide frequency band of 0-870 Hz.

[0072] In some embodiments, as Figure 5 As shown, the present invention further provides a shell structure, which includes a shell 4 and any one of the above-mentioned phononic crystal unit cell structures. The shell wall of the shell 4 constitutes the matrix 11 of the above-mentioned phononic crystal unit cell structure.

[0073] In the above example, since the shell structure adopts the above-mentioned phononic crystal unit cell structure, the acoustic black hole region 12 on the substrate 11 has the function of collecting the vibrations on the substrate 11, and the phononic crystal 5 is arranged in the acoustic black hole region 12, and the phononic crystal 5 is in contact with the acoustic black hole region 12 through the elastomer 51, it is possible to utilize the phononic crystal 5 to achieve efficient vibration reduction, thereby improving the overall vibration reduction and noise reduction effect of the phononic crystal unit cell structure of the utility model.

[0074] Among them, when the acoustic black hole area 12 of the substrate is provided with a through hole 110, and the elastomer 51 of the phononic crystal is interference fit with the through hole 110, the sealing between the phononic crystal 5 and the through hole 110 can be achieved, so that when the shell structure is applied to a liquid reservoir or a compressor, the sealing of the shell structure can be ensured, and the shell structure can be prevented from leaking at the through hole 110, so that the phononic crystal unit cell structure also has a sound insulation effect.

[0075] It should be noted here that the above-mentioned phononic crystal unit cell structure should be arranged periodically on the shell 4. Because the definition of phononic crystal is: a periodic structure composed of two or more materials. It is precisely because of the periodicity of the medium inside the phononic crystal 5 (band gap generation mechanism: that is, the periodicity of the material - Bragg scattering mechanism; the periodicity of the structure - local resonance mechanism) that an elastic wave band gap can be generated when the elastic wave propagates therein, and thus the band gap characteristics of the phononic crystal 5 can be used to achieve effective suppression of vibration and noise within the band gap frequency range. The phononic crystal 5 of the present invention is a local resonance type phononic crystal. The local resonance mechanism believes that under the excitation of elastic waves of a specific frequency, each scatterer 52 resonates and interacts with the elastic wavelength wave traveling wave, thereby suppressing its propagation. Combined with the local resonance band gap theory of phononic crystal 5, it can be seen that when the sound wave approaches a certain order natural frequency of the oscillator, the external excitation force on the matrix 11 and the reaction force from the oscillator are zero, and the matrix 11 remains stationary. The sound wave will not be able to propagate, resulting in the appearance of a sound insulation peak; when the sound wave frequency continues to increase, the reaction force of the oscillator on the matrix 11 weakens, the vibration mode of the matrix 11 is activated, and the sound wave can continue to propagate in the phononic crystal 5 structure, at this time a sound insulation valley appears.

[0076] In some embodiments, as Figure 5 As shown, the utility model also provides a liquid reservoir, which includes the above-mentioned shell structure.

[0077] When the compressor rotates at high speed, vibrations from components like the reed valve, vane, and bearings, as well as the pressure differences between the upper and lower chambers of the motor caused by compressed gas, can easily be transmitted to the reservoir, causing it to vibrate violently and radiate noise. Furthermore, because the suction process during compressor operation is intermittent and periodic, the reservoir can generate suction noise, eddy current noise, and cavity resonance noise.

[0078] In the above example, since the liquid reservoir adopts the above-mentioned shell structure, the acoustic black hole area 12 on the base 11 has the function of collecting the vibrations on the shell 4, and the phononic crystal 5 is arranged in the acoustic black hole area 12, and the phononic crystal 5 is in contact with the acoustic black hole area 12 through the elastomer 51, so that the phononic crystal 5 can be used to achieve efficient vibration reduction, thereby improving the overall vibration reduction and noise reduction effect of the phononic crystal unit cell structure of the utility model.

[0079] Among them, since the shell wall of the shell 4 constitutes the matrix 11 of the aforementioned phononic crystal unit cell structure, the shell wall of the shell 4 of the liquid reservoir, the elastic body 51 and the scatterer 52 together constitute the aforementioned phononic crystal unit cell structure. The shell 4 of the liquid reservoir is cylindrical, and the aforementioned phononic crystal unit cell structure is periodically arranged on the shell 4. Among them, the shell 4 of the liquid reservoir serves as the matrix 11 of the aforementioned phononic crystal unit cell structure, and the outer surface of the shell 4 is periodically attached with phononic crystals 5 composed of an elastomer 51 and a scatterer 52, which together constitute a phononic crystal cylinder. Unlike conventional phononic crystal unit cell structures, the matrix 11 of the phononic crystal unit cell structure of the utility model is provided with an acoustic black hole structure (i.e., the aforementioned acoustic black hole region 12). The matrix 11 with the acoustic black hole region 12 can realize the "convergence" of the vibration of the liquid reservoir shell 4 to one point, that is, the vibration is "localized" at the center of the matrix 11, and then the phononic crystal 5 is used for vibration reduction, thereby further reducing the vibration of the liquid reservoir.

[0080] In some embodiments, as Figure 5 As shown, the aforementioned liquid reservoir also includes an air intake pipe 1, an upper cover plate 2, a filter assembly 3, a straight pipe 6, a lower cover plate 7 and an air intake pipe 8.

[0081] In some embodiments, the present invention further provides a compressor comprising the aforementioned housing structure. Due to the compressor's use of the aforementioned housing structure, the acoustic black hole region 12 on the substrate 11 functions to collect vibrations on the substrate 11. The phononic crystal 5 is disposed in the acoustic black hole region 12 and is in contact with the acoustic black hole region 12 via the elastic body 51. This allows for efficient vibration reduction using the phononic crystal 5, thereby enhancing the overall vibration and noise reduction effects of the phononic crystal unit cell structure of the present invention.

[0082] It is easy for those skilled in the art to understand that, under the premise of no conflict, the advantageous technical features of the above-mentioned methods can be freely combined and superimposed.

[0083] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present invention shall be included in the scope of protection of the present invention. The above description is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and variations can be made without departing from the technical principles of the present invention. Such improvements and variations shall also be considered within the scope of protection of the present invention.

Claims

1. A phononic crystal unit cell structure, characterized in that: The invention comprises a substrate (11) and a phononic crystal (5), wherein the phononic crystal (5) comprises an elastic body (51) and a scattering body (52) arranged on the elastic body (51); The substrate (11) has an acoustic black hole region (12), the phononic crystal (5) is arranged in the acoustic black hole region (12), and the phononic crystal (5) is in contact with the acoustic black hole region (12) through the elastic body (51).

2. The phononic crystal unit cell structure according to claim 1, characterized in that: The thickness of the acoustic black hole region (12) gradually decreases from the outside to the inside, and the phononic crystal (5) is arranged at the point where the thickness of the acoustic black hole region (12) is the smallest through the elastic body (51).

3. The phononic crystal unit cell structure according to claim 2, characterized in that: A through hole (110) is provided in the middle of the acoustic black hole region (12), and the thickness of the acoustic black hole region (12) at the through hole (110) reaches a minimum; wherein the phononic crystal (5) is embedded in the through hole (110) through the elastomer (51).

4. The phononic crystal unit cell structure according to claim 3, characterized in that: The inner peripheral wall of the through hole (110) and the elastic body (51) are plug-fitted.

5. The phononic crystal unit cell structure according to claim 4, characterized in that: The elastic body (51) is provided with an annular groove (901) extending in the circumferential direction, and the inner peripheral wall of the through hole (110) is inserted into the annular groove (901) in the circumferential direction.

6. The phononic crystal unit cell structure according to any one of claims 3 to 5, characterized in that: The elastic body (51) and the through hole (110) are interference-fitted.

7. The phononic crystal unit cell structure according to any one of claims 2 to 5, characterized in that: The thickness of the acoustic black hole region (12) gradually decreases from the outside to the inside according to a power exponent.

8. The phononic crystal unit cell structure according to any one of claims 2 to 5, characterized in that: The base (11) has a first surface (111) and a second surface (112) opposite to each other, a groove (121) is provided on the first surface (111), and the second surface (112) has a first area surface (1121) opposite to the groove (121), and the wall thickness of the base (11) between the first area surface (1121) and the groove (121) forms the acoustic black hole area (12).

9. The phononic crystal unit cell structure according to any one of claims 1 to 5, characterized in that: The elastic body (51) has inner holes running through both ends; the scattering body (52) is columnar, and the scattering body (52) is nested in the inner holes.

10. The phononic crystal unit cell structure according to claim 9, characterized in that: When the thickness of the acoustic black hole region (12) on the substrate (11) gradually decreases from the outside to the inside, the substrate (11) is plate-shaped, and the maximum thickness of the substrate (11) is 0.5 mm ≤ t ≤ 5.0 mm; the elastic body (51) is annular, and the outer radius of the elastic body (51) is 10.0 mm ≤ r1 ≤ 30.0 mm, the inner radius of the elastic body (51) is 5.0 mm ≤ r2 ≤ 25.0 mm, and the height of the elastic body (51) is 5.0 mm ≤ h1 ≤ 25.0 mm; the scatterer (52) is cylindrical, and the radius of the scatterer (52) is r3 = r2, and the height of the scatterer (52) is 5.0 mm ≤ h2 ≤ 25.0 mm.

11. A housing structure, characterized in that: Comprising a shell (4) and the phononic crystal unit cell structure according to any one of claims 1 to 10; The shell wall of the shell (4) constitutes the matrix (11) of the phononic crystal unit cell structure.

12. A liquid accumulator or compressor, characterized in that: The invention comprises the housing structure described in claim 11.