Shell assembly, gas compression and supply device, air suspension system and vehicle

By forming a heat dissipation runner on the outer shell of the gas compression device and connecting it to the compression chamber, the problem of excessive temperature inside the gas compression device is solved, and a longer service life and optimized performance are achieved.

CN222976991UActive Publication Date: 2025-06-13BYD CO LTD +1
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Patent Information

Application Number
CN202421739600.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-06-13
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

Since the overall structure of the gas compression device is located inside the shell, the long-term working result in the temperature inside the compression device being too high, affecting the service life of the device.

Method used

A housing assembly is designed to achieve heat dissipation of gas by forming a heat dissipation runner on the housing and connecting it to the primary and secondary compression chambers.

Benefits of technology

The gas flowing through the heat dissipation channel can dissipate heat, reduce the internal temperature of the gas compression device, extend the service life of the device, and optimize the performance of the gas compression device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a shell assembly, a gas compression and supply device, an air suspension system and a vehicle, the shell assembly is used for the gas compression device and comprises a shell and a heat dissipation flow channel, the shell is provided with a containing cavity used for containing a piston mechanism, and the containing cavity is divided into a first-stage compression cavity and a second-stage compression cavity through the piston mechanism; the heat dissipation flow channel is communicated with the first-stage compression cavity and the second-stage compression cavity, and at least part of the heat dissipation flow channel is formed in the shell so that heat dissipation can be conducted on gas flowing through the heat dissipation flow channel through the heat dissipation flow channel, the internal temperature of the gas compression device can be reduced, the performance of the gas compression device can be optimized, and the gas compression device has the advantages of being simple in structure and convenient to install and manufacture.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of vehicle accessories, and in particular, to a housing assembly, a gas compression and supply device, an air suspension system, and a vehicle. Background Art

[0002] In the related art, after the gas of the gas compression device enters the first intake chamber of the housing through the intake port, it enters the primary compression chamber through the opening on the piston member in the housing, and then enters the secondary compression chamber of the housing through the air passage on the piston member for pressurization and then discharged. However, since the overall structure is located inside the housing, the temperature inside the compression device is likely to be too high after long-term operation, seriously affecting the service life of the device. Summary of the Utility Model

[0003] The purpose of the present disclosure is to provide a housing assembly, a gas compression and supply device, an air suspension system, and a vehicle, so as to be able to dissipate heat from the gas flowing through the inside of the heat dissipation channel, reduce the temperature inside the gas compression device, and optimize the performance of the gas compression device.

[0004] To achieve the above purpose, a first aspect of the present disclosure provides a housing assembly for a gas compression device, the housing assembly including: a housing having a receiving cavity for receiving a piston mechanism to divide the receiving cavity into a primary compression chamber and a secondary compression chamber through the piston mechanism; and a heat dissipation channel communicating with the primary compression chamber and the secondary compression chamber, at least a part of the heat dissipation channel being formed on the housing.

[0005] Optionally, the heat dissipation channel includes a first heat exchange channel section formed outside the housing; and / or the heat dissipation channel includes a second heat exchange channel section formed on the housing.

[0006] Optionally, the housing includes a first housing and a first end cap, the first housing and the first end cap jointly enclose the receiving cavity, a first communication port is provided on the first end cap, a second communication port is provided on the first housing, one end of the heat dissipation channel is communicated with the primary compression chamber through the first communication port, and the other end of the heat dissipation channel is communicated with the secondary compression chamber through the second communication port.

[0007] Optionally, the housing includes a first housing, a first end cap, and a second end cap, the first housing, the first end cap, and the second end cap jointly enclose the receiving cavity, a first communication port is provided on the first end cap, a third communication port is provided on the second end cap, one end of the heat dissipation channel is communicated with the primary compression chamber through the first communication port, and the other end of the heat dissipation channel is communicated with the secondary compression chamber through the third communication port.

[0008] Optionally, the housing includes a first housing body, on which a fourth communication port and a second communication port are provided. One end of the heat dissipation channel communicates with the first-stage compression chamber through the fourth communication port, and the other end of the heat dissipation channel communicates with the second-stage compression chamber through the second communication port.

[0009] Optionally, the accommodation chamber further includes a first intake chamber separated by the piston mechanism and located between the first-stage compression chamber and the second-stage compression chamber. The first intake chamber communicates with the first-stage compression chamber through a first flow channel, and at least part of the first flow channel is formed on the housing. The first flow channel is used for allowing gas to enter the first-stage compression chamber from the first intake chamber.

[0010] Optionally, the housing includes a first housing body and a first end cap. The first housing body and the first end cap jointly enclose the accommodation chamber. The first flow channel includes a first flow channel segment and a second flow channel segment that are connected. The first flow channel segment is formed on the first housing body and the end away from the second flow channel segment communicates with the first intake chamber. The second flow channel segment is formed on the first end cap and the end away from the first flow channel segment communicates with the first-stage compression chamber.

[0011] Optionally, the housing includes a first housing body, and the first flow channel is formed on the first housing body.

[0012] A second aspect of the present disclosure provides a gas compression device, including a piston mechanism and the housing assembly as described above.

[0013] Optionally, the gas compression device further includes a driving mechanism, which is drivingly connected to the piston mechanism. The piston mechanism divides the accommodation chamber into a first-stage compression chamber, a first intake chamber, and a second-stage compression chamber that are arranged at intervals in sequence.

[0014] Optionally, the housing is provided with a first inlet / outlet communicating with the first intake chamber.

[0015] Optionally, the driving mechanism includes a third housing body, which has a third intake chamber and a second inlet / outlet communicating with the third intake chamber. The third intake chamber communicates with the first flow channel communicating with the first-stage compression chamber through the first intake chamber, or the third intake chamber directly communicates with the first flow channel communicating with the first-stage compression chamber.

[0016] Optionally, the gas compression device further includes a temperature detection component for detecting the gas temperature inside the gas compression device.

[0017] A third aspect of the present disclosure provides a gas supply device, including the gas compression device as described above.

[0018] Optionally, the air supply device further includes a drying and filtering module. The drying and filtering module includes a second housing having a second air inlet chamber. A filter element is disposed in the second air inlet chamber, and an outer peripheral wall of the filter element abuts against an inner peripheral wall of the second air inlet chamber to divide the second air inlet chamber into a first chamber and a second chamber. The first chamber communicates with the secondary compression chamber, and the second chamber is configured to communicate with the air spring.

[0019] Optionally, the air supply device further includes a pressure relief member disposed outside the second housing. A pressure relief pipe communicating with the pressure relief member is disposed in the second air inlet chamber. The filter element is sleeved on the pressure relief pipe. An air inlet of the pressure relief pipe communicates with the first chamber, and the pressure relief member has a first one-way valve disposed at a connection between the pressure relief member and the pressure relief pipe.

[0020] A fourth aspect of the present disclosure provides an air suspension system, including an air spring and the air supply device as described above.

[0021] A fifth aspect of the present disclosure provides a vehicle, including the air suspension system as described above.

[0022] Through the above technical solution, that is, the housing assembly provided by the present disclosure, by connecting the heat dissipation flow path to the primary compression chamber and the secondary compression chamber, it is possible to dissipate heat from the gas flowing through the interior of the heat dissipation flow path through the heat dissipation flow path. In this way, when the above housing assembly is applied to, for example, a gas compression device, the internal temperature of the gas compression device can be reduced, which is beneficial to ensuring the long-term stable operation of the gas compression device, realizing the optimization of the performance of the gas compression device, and at least part of the heat dissipation flow path is formed on the outer shell, which is convenient for the heat dissipation flow path to dissipate heat from the gas flowing through the interior of the heat dissipation flow path. Moreover, the heat dissipation flow path is located outside the accommodation chamber of the outer shell, and the heat dissipation effect is better, which is more beneficial to ensuring the long-term stable operation of the gas compression device. That is, it can be understood that, compared with the related art, in the related art, the air passage connecting the primary compression chamber and the secondary compression chamber is located inside the accommodation chamber of the outer shell, which causes the internal temperature of the gas compression device to be too high during long-term operation, is not conducive to the heat dissipation of the gas in the air passage, and the overall structure has a poor heat dissipation effect. However, the housing assembly provided by the present disclosure forms at least part of the heat dissipation flow path on the outer shell, that is, the heat dissipation flow path is located outside the accommodation chamber of the outer shell, which is more conducive to the heat dissipation of the gas in the heat dissipation flow path and has a better heat dissipation effect. In addition, by arranging the heat dissipation flow path connecting the primary compression chamber and the secondary compression chamber on the outer shell, compared with the related art in which the air passage connecting the primary compression chamber and the secondary compression chamber is arranged on the piston mechanism, it is obvious that the housing assembly provided by the present disclosure can better simplify the structure of the piston mechanism, is more convenient for the installation and manufacture of the piston mechanism, and reduces the production difficulty.

[0023] Other features and advantages of the present disclosure will be described in detail in the following detailed description section. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] The drawings are used to provide a further understanding of the present disclosure, and constitute a part of the specification. Together with the following detailed description, they are used to explain the present disclosure, but do not constitute a limitation to the present disclosure. In the drawings:

[0025] Figure 1 is the front view of the gas supply device provided in the exemplary embodiment of the present disclosure;

[0026] Figure 2 is the schematic structural diagram of the gas supply device provided in the exemplary embodiment of the present disclosure;

[0027] Figure 3 is the schematic structural diagram of the gas compression device provided in the exemplary embodiment of the present disclosure;

[0028] Figure 4 is the schematic structural diagram of the gas compression device provided in the exemplary embodiment of the present disclosure from another angle;

[0029] Figure 5 is the schematic structural diagram of the connection between the housing assembly and the driving mechanism provided in the exemplary embodiment of the present disclosure;

[0030] Figure 6 is the schematic structural diagram of the outer shell of the housing assembly provided in the exemplary embodiment of the present disclosure;

[0031] Figure 7 is the schematic structural diagram of the first end cover of the housing assembly provided in the exemplary embodiment of the present disclosure;

[0032] Figure 8 is the schematic structural diagram of the connection between the housing assembly and the driving mechanism provided in the first embodiment of the present disclosure;

[0033] Figure 9 is the schematic structural diagram of the connection between the housing assembly and the driving mechanism provided in the second embodiment of the present disclosure;

[0034] Figure 10 is the schematic structural diagram of the connection between the housing assembly and the driving mechanism provided in the third embodiment of the present disclosure;

[0035] Figure 11 is the inflation principle diagram of the gas supply device provided in the exemplary embodiment of the present disclosure;

[0036] Figure 12 is the deflation principle diagram of the gas supply device provided in the exemplary embodiment of the present disclosure;

[0037] Figure 13 It is the deflation schematic diagram of the air supply device provided in the exemplary embodiment of the present disclosure.

[0038] Description of Reference Numerals

[0039] 1 - Housing; 110 - Accommodating cavity; 111 - Primary compression chamber; 112 - Secondary compression chamber; 113 - First intake chamber; 120 - First housing; 121 - Second communication port; 130 - First end cap; 131 - First communication port; 140 - Second end cap; 2 - Piston mechanism; 210 - Piston; 3 - Heat dissipation flow path; 310 - First heat exchange flow path section; 320 - Second heat exchange flow path section; 4 - First flow path; 410 - First flow path section; 420 - Second flow path section; 5 - Driving mechanism; 510 - Third housing; 520 - Third intake chamber; 530 - Second inlet and outlet; 6 - First inlet and outlet; 7 - Drying and filtering module; 710 - Second housing; 711 - Second intake chamber; 7111 - First chamber; 7112 - Second chamber; 720 - Filter element; 8 - Pressure relief component; 810 - First check valve; 820 - Pressure relief valve; 830 - Solenoid valve; 9 - Pressure relief pipe; 910 - Intake port; 10 - Temperature detection component; 11 - Second check valve; 12 - Third check valve; 13 - Fourth check valve; 14 - First pipeline; 15 - Second pipeline; 16 - Third pipeline; 1610 - First branch; 1620 - Second branch. Detailed Embodiment

[0040] The following details the specific embodiments of the present disclosure with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only for the purpose of illustrating and explaining the present disclosure, and are not intended to limit the present disclosure.

[0041] It should be noted that all actions of obtaining signals, information or data in the present disclosure are carried out on the premise of complying with the corresponding data protection regulations and policies of the country where it is located and obtaining the authorization given by the owner of the corresponding device.

[0042] In the present disclosure, unless otherwise stated, "inside and outside" refer to the inside and outside relative to the contour of the component or structure itself. In addition, it should be noted that the terms such as "first, second" are used to distinguish one element from another, and do not have sequentiality and importance. Additionally, in the description with reference to the accompanying drawings, the same reference numerals in different drawings represent the same elements.

[0043] According to a first aspect of the present disclosure, a housing assembly is provided. Refer to Figures 1 to 13As shown, the housing assembly is for a gas compression device and includes an outer housing 1 and a heat dissipation flow channel 3. The outer housing 1 has a receiving cavity 110 for receiving a piston mechanism 2, and the piston mechanism 2 divides the receiving cavity 110 into a primary compression chamber 111 and a secondary compression chamber 112. The heat dissipation flow channel 3 communicates with the primary compression chamber 111 and the secondary compression chamber 112, and at least part of the heat dissipation flow channel 3 is formed on the outer housing 1.

[0044] Through the above technical solution, that is, the housing assembly provided by the present disclosure, by connecting the heat dissipation flow channel 3 to the primary compression chamber 111 and the secondary compression chamber 112, the gas flowing through the inside of the heat dissipation flow channel 3 can be dissipated. In this way, when the above housing assembly is applied to, for example, a gas compression device, the internal temperature of the gas compression device can be reduced, which is beneficial to ensuring the long-term stable operation of the gas compression device, optimizing the performance of the gas compression device. And at least part of the heat dissipation flow channel 3 is formed on the outer housing 1. That is, it can be understood that, for example, the heat dissipation flow channel 3 can be entirely formed on the outer housing 1 or the communication between the primary compression chamber 111 and the secondary compression chamber 112 can also be achieved through, for example, a heat dissipation pipe located outside the outer housing 1. In this way, it is convenient to dissipate the gas flowing through the inside of the heat dissipation flow channel 3. And the heat dissipation flow channel 3 is located outside the receiving cavity 110 of the outer housing 1, with better heat dissipation effect, which is more beneficial to ensuring the long-term stable operation of the gas compression device. That is, it can be understood that, compared with the related art, in the related art, the air passage connecting the primary compression chamber and the secondary compression chamber is located inside the receiving cavity of the outer housing, resulting in too high internal temperature during the long-term operation of the gas compression device, which is not conducive to the heat dissipation of the gas in the air passage, and the overall structure has a poor heat dissipation effect. While the housing assembly provided by the present disclosure forms at least part of the heat dissipation flow channel 3 on the outer housing 1, that is, the heat dissipation flow channel 3 is located outside the receiving cavity 110 of the outer housing 1, which is more conducive to the heat dissipation of the gas in the heat dissipation flow channel 3 and has a better heat dissipation effect. In addition, by arranging the heat dissipation flow channel 3 connecting the primary compression chamber 111 and the secondary compression chamber 112 on the outer housing 1, compared with the related art where the air passage connecting the primary compression chamber and the secondary compression chamber is arranged on the piston mechanism, it is obvious that the housing assembly provided by the present disclosure can better simplify the structure of the piston mechanism 2, is more convenient for the installation and manufacture of the piston mechanism 2, and reduces the production difficulty.

[0045] Among them, it should be noted that in the vertical direction, reference can be made to Figure 11In the up-down direction of the drawing, the primary compression chamber 111 may be arranged below the secondary compression chamber 112. Of course, the specific embodiment where the primary compression chamber 111 is arranged below the secondary compression chamber 112 is exemplary. In some other embodiments not shown, the primary compression chamber 111 may also be arranged above the secondary compression chamber 112. Or, in some other embodiments not shown, the primary compression chamber 111 and the secondary compression chamber 112 may also be arranged at intervals in the horizontal direction. The horizontal direction may refer to Figure 11 the left-right direction of the drawing. The present disclosure does not specifically limit such deformation modes. Those skilled in the art can adaptively design according to actual application requirements. The present disclosure is not limited thereto.

[0046] The present disclosure specifically illustrates, by way of example, that the primary compression chamber 111 is arranged below the secondary compression chamber 112:

[0047] In some embodiments, referring to Figures 11 to 13 as shown, the heat dissipation flow channel 3 may include a first heat exchange flow channel section 310 formed outside the housing 1, and both ends of the first heat exchange flow channel section 310 are respectively communicated with the primary compression chamber 111 and the secondary compression chamber 112. In this way, by arranging the heat dissipation flow channel 3 outside the housing 1, it is more conducive to the heat dissipation of the gas in the heat dissipation flow channel 3, ensuring a high heat dissipation effect and facilitating the long-term stable operation of the gas compression device.

[0048] Of course, the specific embodiment where the heat dissipation flow channel 3 includes the first heat exchange flow channel section 310 formed outside the housing 1 is exemplary. In some other embodiments, referring to Figures 8 to 10 as shown, the heat dissipation flow channel 3 may also include a second heat exchange flow channel section 320 formed on the housing 1, and both ends of the second heat exchange flow channel section 320 are respectively communicated with the primary compression chamber 111 and the secondary compression chamber 112. In this way, by arranging the heat dissipation flow channel 3 outside the accommodation chamber 110 of the housing 1, on the one hand, it is more conducive to the heat dissipation of the gas in the heat dissipation flow channel 3, ensuring a high heat dissipation effect and facilitating the long-term stable operation of the gas compression device. On the other hand, at least part of the space of the housing 1 can be directly utilized, the structure is simpler and the space occupancy rate is lower. Thus, when the housing assembly is applied to, for example, a gas compression device, the occupancy rate of the installation space of the housing assembly can be reduced to have a higher space utilization rate.

[0049] It should be noted that the specific embodiments of the heat dissipation flow channel 3 of the present disclosure are not limited to the above two embodiments. For example, in some other embodiments not shown in the drawings, the heat dissipation flow channel 3 may also include a second heat exchange flow channel section 320 formed on the housing 1 and a first heat exchange flow channel section 310 formed outside the housing 1. In this way, for example, one end of the second heat exchange flow channel section 320 can be connected to the primary compression chamber 111, the other end can be connected to one end of the first heat exchange flow channel section 310, and the other end of the first heat exchange flow channel section 310 can be connected to the secondary compression chamber 112. The present disclosure is not limited to this, and those skilled in the art can adaptively design according to actual application requirements. The purpose is to be able to connect to the primary compression chamber 111 and the secondary compression chamber 112 through the heat dissipation flow channel 3.

[0050] In addition, it should be noted that the above heat dissipation flow channel 3 can be provided with a heat dissipation part (not shown in the figure) outside, for example, to dissipate the heat of the gas in the heat dissipation flow channel 3. The heat dissipation part can be constructed in any suitable way. For example, the heat dissipation part can include a fan to cool the above-mentioned first heat exchange flow channel section 310 and second heat exchange flow channel section 320 by the air-cooling method of blowing air, so as to cool the gas inside the heat dissipation flow channel 3. Or, the heat dissipation part can also include a nozzle to cool the above-mentioned first heat exchange flow channel section 310 and second heat exchange flow channel section 320 by the water-cooling method of spraying. Or, heat dissipation fins can be provided on the first heat exchange flow channel section 310 and / or the second heat exchange flow channel section 320 to dissipate heat by means of, for example, the external wind force. Of course, the air-cooling, water-cooling or heat dissipation fin methods can also be used simultaneously, or any other method capable of cooling the first heat exchange flow channel section 310 and the second heat exchange flow channel section 320 can be used to cool the gas in the heat dissipation flow channel 3. The present disclosure does not make specific limitations on this.

[0051] In some embodiments, referring to Figures 11 to 13 as shown, the housing 1 may include a first housing 120 and a first end cover 130. The first housing 120 and the first end cover 130 together enclose an accommodation chamber 110. A first communication port 131 is provided on the first end cover 130, and a second communication port 121 is provided on the first housing 120. One end of the heat dissipation flow channel 3 is connected to the primary compression chamber 111 through the first communication port 131, and the other end of the heat dissipation flow channel 3 is connected to the secondary compression chamber 112 through the second communication port 121, so as to connect to the primary compression chamber 111 and the secondary compression chamber 112 through the heat dissipation flow channel 3. In this way, there is no need to modify the piston mechanism 2, which can make the structure of the piston mechanism 2 simpler, facilitate on-site installation and manufacturing, and reduce the on-site production difficulty and production manufacturing cost.

[0052] Of course, the specific embodiments of the above housing 1 are exemplary. In some other embodiments, referring to Figure 4As shown, the housing 1 may also include a first housing body 120, a first end cover 130, and a second end cover 140. The first housing body 120, the first end cover 130, and the second end cover 140 together define a receiving cavity 110. A first communication port 131 is provided on the first end cover 130, and a third communication port (not shown) is provided on the second end cover 140. One end of the heat dissipation flow channel 3 communicates with the primary compression chamber 111 through the first communication port 131, and the other end of the heat dissipation flow channel 3 communicates with the secondary compression chamber 112 through the third communication port, so as to realize the communication between the primary compression chamber 111 and the secondary compression chamber 112 through the heat dissipation flow channel 3.

[0053] Alternatively, in other embodiments, the housing 1 may further include a first housing body 120. A fourth communication port (not shown) and a second communication port 121 are provided on the first housing body 120. One end of the heat dissipation flow channel 3 communicates with the primary compression chamber 111 through the fourth communication port, and the other end of the heat dissipation flow channel 3 communicates with the secondary compression chamber 112 through the second communication port 121. The present disclosure is not limited thereto, and those skilled in the art can adaptively design according to actual application requirements. That is, it can be understood that those skilled in the art can realize the communication between the heat dissipation flow channel 3 and the compression chamber through the communication port on the end cover, and / or can also realize the communication between the heat dissipation flow channel 3 and the compression chamber through the communication port opened on the outer wall of the first housing body 120.

[0054] In some embodiments, referring to Figures 11 to 13 As shown, the receiving cavity 110 may further include a first intake chamber 113 separated by a piston mechanism 2 and located between the primary compression chamber 111 and the secondary compression chamber 112. The first intake chamber 113 communicates with the primary compression chamber 111 through a first flow channel 4. The first flow channel 4 is at least partially formed on the housing 1. That is, it can be understood that, for example, the first flow channel 4 may be entirely formed on the housing 1 or a part of it may be formed on the housing 1 and the other part may be formed on the end cover to realize the communication between the first intake chamber 113 and the primary compression chamber 111. In this way, the first flow channel 4 is used for allowing gas to enter the primary compression chamber 111 from the first intake chamber 113. Thus, by forming at least part of the first flow channel 4 communicating with the first intake chamber 113 and the primary compression chamber 111 on the housing 1, there is no need to open through holes in the piston mechanism as in the related art to make the first intake chamber communicate with the primary compression chamber, which is beneficial to better simplifying the structure of the piston mechanism 2, making it more convenient for the installation and manufacturing of the piston mechanism 2, reducing the production difficulty, and at the same time facilitating the reciprocating movement of the piston 210 of the piston mechanism 2 in the receiving cavity 110 under the drive of a drive mechanism 5 (to be described below). The piston 210 has better symmetry and moves more smoothly.

[0055] Optionally, in some embodiments, referring to Figures 11 to 13As shown, the outer shell 1 may include a first housing 120 and a first end cap 130. The first housing 120 and the first end cap 130 together enclose a receiving cavity 110. The first flow channel 4 may include a first flow channel section 410 and a second flow channel section 420 that are connected and communicate with each other. The first flow channel section 410 is formed on the first housing 120 and the end away from the second flow channel section 420 communicates with the first intake chamber 113. The second flow channel section 420 is formed on the first end cap 130 and the end away from the first flow channel section 410 communicates with the first-stage compression chamber 111. The structure is simple and convenient for installation and manufacturing.

[0056] Of course, the specific embodiment of the first flow channel 4 above is exemplary. In some other embodiments not shown, the first flow channel 4 may also be directly formed on the first housing 120. The present disclosure is not limited to this, and those skilled in the art can adaptively design according to actual application requirements. The purpose is to be able to achieve the communication between the first intake chamber 113 and the first-stage compression chamber 111 through the first flow channel 4.

[0057] In addition, in some embodiments, referring to Figure 11 As shown, a second one-way valve 11 may be provided between the first-stage compression chamber 111 and the first intake chamber 113. For example, the second one-way valve 11 may be arranged at the outlet where the second flow channel section 420 communicates with the first-stage compression chamber 111. In this way, the gas in the first intake chamber 113 can be filled into the first-stage compression chamber 111 through the second one-way valve 11, but the gas in the first-stage compression chamber 111 cannot flow back to the first intake chamber 113. Among them, the specific embodiment of arranging the second one-way valve 11 at the outlet where the second flow channel section 420 communicates with the first-stage compression chamber 111 is exemplary. In some other embodiments not shown, the second one-way valve 11 may also be arranged at the inlet where the second flow channel section 420 communicates with the first intake chamber 113. The present disclosure is not limited to this.

[0058] Similarly, as Figure 11 shown, a third one-way valve 12 may be provided between the heat dissipation flow channel 3 and the second-stage compression chamber 112. For example, the third one-way valve 12 may be arranged at the second communication port 121. In this way, the gas in the first-stage compression chamber 111 can be filled into the second-stage compression chamber 112 through the heat dissipation flow channel 3 through the third one-way valve 12, but the gas in the second-stage compression chamber 112 cannot flow back to the first-stage compression chamber 111. Among them, the embodiment of arranging the third one-way valve 12 at the second communication port 121 is exemplary. In some other embodiments, the third one-way valve 12 may also be arranged on the heat dissipation flow channel 3 or at the first communication port 131. The present disclosure is not limited to this.

[0059] In addition, any well-known one-way valve structure in the art can be selected for the above one-way valve to achieve the one-way flow of gas and avoid the problem of gas backflow. The present disclosure will not elaborate too much here, and those skilled in the art can adaptively design according to actual application requirements.

[0060] According to a second aspect of the present disclosure, a gas compression device is provided. Referring to Figures 11 to 13 as shown, the gas compression device includes a piston mechanism 2 and the above-mentioned housing assembly, so as to be able to dissipate heat from the gas flowing through the inside of the heat dissipation channel 3, reduce the internal temperature of the gas compression device, and optimize the performance of the gas compression device. In addition, the gas compression device also has all the beneficial effects of the above-mentioned housing assembly, and the present disclosure will not elaborate here.

[0061] In some embodiments, referring to Figures 11 to 13 as shown, the gas compression device may further include a driving mechanism 5. The driving mechanism 5 is drivingly connected to the piston mechanism 2 to drive the piston 210 of the piston mechanism 2 to reciprocate in the vertical direction, and the piston mechanism 2 divides the accommodation cavity 110 into a first-stage compression chamber 111, a first intake chamber 113, and a second-stage compression chamber 112 that are arranged at intervals in sequence.

[0062] Among them, it should be noted that Figure 11 exemplarily shows that during the process of the piston 210 reciprocating relative to the first housing 120 in the vertical direction, the volume change of the first-stage compression chamber 111 is greater than the volume change of the second-stage compression chamber 112. In this way, when the piston 210 moves upward relative to the first housing 120 in the vertical direction, for example, due to the increase in the volume of the first-stage compression chamber 111 and the decrease in pressure, the gas in the first intake chamber 113 can be filled into the first-stage compression chamber 111. When the piston 210 moves downward relative to the first housing 120 in the vertical direction, due to the decrease in the volume of the first-stage compression chamber 111, the gas is compressed once in the first-stage compression chamber 111, and the pressure increases. When the pressure in the first-stage compression chamber 111 is greater than the pressure in the second-stage compression chamber 112, the gas in the first-stage compression chamber 111 is discharged into the second-stage compression chamber 112. As the piston 210 continues to move upward relative to the first housing 120 in the vertical direction, the gas in the second-stage compression chamber 112 is compressed twice to discharge the highly compressed gas after the second compression to the outside of the outer shell 1, for example, it can be discharged to the air spring of the air suspension system of the vehicle, thereby improving the comfort, driving performance, and passability of the vehicle.

[0063] In addition, in some embodiments, referring to Figures 11 to 13As shown, the housing 1 can be provided with a first inlet / outlet 6 communicating with the first intake chamber 113. The first inlet / outlet 6 can communicate with, for example, the outside atmosphere. Thus, while enabling the intake and exhaust of the first intake chamber 113 through the first inlet / outlet 6, it is also convenient to discharge the heat inside the housing 1 through the first inlet / outlet 6, further improving the heat dissipation effect of the gas compression device and ensuring the long-term stable operation of the gas compression device.

[0064] In addition, Figure 9 and Figure 10 exemplarily show that the drive mechanism 5 can include a third housing 510. The third housing 510 has a third intake chamber 520 and a second inlet / outlet 530 communicating with the third intake chamber 520. In this way, while enabling the intake and exhaust of the third intake chamber 520 through the second inlet / outlet 530, it is also convenient to discharge the heat inside the third housing 510 through the second inlet / outlet 530, improving the heat dissipation effect of the drive mechanism 5 and being beneficial to ensuring the long-term stable operation of the gas compression device.

[0065] Exemplarily, in some embodiments, as Figure 10 shown, the first inlet / outlet 6 provided on the housing 1 and the second inlet / outlet 530 provided on the drive mechanism 5 can be arranged simultaneously. In this way, while facilitating the intake and exhaust inside the gas compression device, it can also simultaneously discharge the heat generated during the operation of the internal components of the drive mechanism 5 and the housing 1, which is beneficial to ensuring the long-term stable operation of the gas compression device. And the third intake chamber 520 can communicate with the first flow path 4 communicating with the first-stage compression chamber 111 through the first intake chamber 113, or the third intake chamber 520 can also directly communicate with the first flow path 4 communicating with the first-stage compression chamber 111. The present disclosure does not specifically limit such deformation methods. The purpose is to be able to perform the inflation operation in the first-stage compression chamber 111 through the first inlet / outlet 6 and / or the second inlet / outlet 530. Those skilled in the art can adaptively design according to actual application requirements.

[0066] Of course, the specific embodiments of the simultaneous arrangement of the above-mentioned first inlet / outlet 6 and second inlet / outlet 530 are exemplary. In some other embodiments, only the first inlet / outlet 6 can be provided on the housing 1 or only the second inlet / outlet 530 can be provided on the drive mechanism 5. The present disclosure does not specifically limit this. In addition, it should be noted that the present disclosure does not specifically limit the specific opening sizes of the first inlet / outlet 6 and the second inlet / outlet 530 and the corresponding arrangement quantities. Those skilled in the art can adaptively design according to actual application requirements.

[0067] In addition, the present disclosure does not make any specific limitation on the specific structure of the driving mechanism 5. Those skilled in the art may select a driving motor as a driving component that is well known in the art according to actual application requirements to realize the driving of the piston mechanism 2 by electric drive. Of course, in other embodiments, the driving of the piston mechanism 2 may also be realized by driving methods such as pneumatic or hydraulic pressure. The present disclosure does not make any specific limitation on this. The purpose is to realize the reciprocating movement of the piston mechanism 2 by the driving mechanism 5.

[0068] In addition, in some embodiments, reference Figures 1 to 13 As shown, the gas compression device also includes a temperature detection component for detecting the temperature of the gas in the gas compression device, so as to accurately monitor the temperature condition of the gas compression device in real time, thereby taking targeted and effective temperature adjustment measures to ensure that the gas compression device works stably for a long time.

[0069] Among them, the temperature monitoring component can be constructed in any suitable manner. For example, a person skilled in the art can select a temperature sensor known in the art to detect the temperature of the gas in the gas compression device, and by connecting the temperature sensor to, for example, a controller (not shown) signal, the controller can receive the temperature information detected by the temperature sensor, and then can make targeted and effective temperature adjustment measures to ensure that the gas compression device works stably for a long time.

[0070] It should be noted that the above-mentioned controller can be a separately arranged controller such as a PLC controller or a single-chip microcomputer, or it can also be, for example, an electronic control unit (ECU) of a vehicle. The present disclosure does not make specific limitations on this, and the above-mentioned controller can be connected to the above-mentioned temperature sensor and other actuator signals by, for example, wireless or wired means. Since the signal connection method and data transmission method between the above-mentioned controller and each actuator are all known in the art, they can be implemented by the controller and will not be elaborated on here.

[0071] According to the third aspect of the present disclosure, referring to Figures 11 to 13 As shown, a gas supply device is provided, which includes the above-mentioned gas compression device, so that the gas flowing through the heat dissipation channel 3 can be cooled through the heat dissipation channel 3, the internal temperature of the gas compression device is reduced, and the performance of the gas compression device is optimized. In addition, the gas supply device also has all the beneficial effects of the above-mentioned gas compression device, which will not be repeated in this disclosure.

[0072] In some embodiments, reference Figures 11 to 13As shown, the air supply device may further include a drying and filtering module 7. The drying and filtering module 7 includes a second housing 710 which has a second air inlet chamber 711. A filter element 720 is disposed in the second air inlet chamber 711. The outer peripheral wall of the filter element 720 is attached to the inner peripheral wall of the second air inlet chamber 711 to divide the second air inlet chamber 711 into a first chamber 7111 and a second chamber 7112. The first chamber 7111 communicates with the secondary compression chamber 112, and the second chamber 7112 is used to communicate with the air spring. In this way, the high-pressure gas discharged from the secondary compression chamber 112 can pass through the drying and filtering module 7 for drying and filtering and then be discharged to the air spring of the vehicle's air suspension system, which is beneficial to ensuring the long-term stable operation of the air supply device. In addition, since the outer peripheral wall of the filter element 720 is directly attached to the inner peripheral wall of the second air inlet chamber 711 of the second housing 710, that is, the filter housing arranged outside the filter element in the related art is cancelled, the number of parts is simplified. While being beneficial to the overall lightweight design of the air supply device, it can also improve the space utilization rate of the desiccant in the filter element 720 and improve the drying and filtering effect on the high-pressure gas discharged to the air spring.

[0073] In addition, in some embodiments, referring to Figure 11 As shown, a fourth one-way valve 13 may be provided between the secondary compression chamber 112 and the first chamber 7111. For example, the fourth one-way valve 13 may be arranged at the exhaust port where the secondary compression chamber 112 communicates with the first chamber 7111. In this way, the gas in the secondary compression chamber 112 can be discharged into the first chamber 7111 through the fourth one-way valve 13, but the gas in the first chamber 7111 cannot flow back into the secondary compression chamber 112. Among them, the fourth one-way valve 13 can select any well-known one-way valve structure in the art to achieve the one-way flow of gas and avoid the problem of gas backflow. The present disclosure will not elaborate too much here, and those skilled in the art can adaptively design according to actual application requirements.

[0074] In addition, the present disclosure does not specifically limit the specific structure of the filter element 720 either. Those skilled in the art can adaptively design according to actual application requirements, and the purpose is to be able to achieve the drying and filtering of high-pressure gas.

[0075] In some embodiments, referring to Figures 11 to 13 As shown, the air supply device may further include a pressure relief member 8 disposed outside the second housing 710. A pressure relief pipe 9 communicating with the pressure relief member 8 is disposed in the second air inlet chamber 711, and the pressure relief member 8 has a first one-way valve 810 disposed at the connection between the pressure relief member 8 and the pressure relief pipe 9, so as to be able to keep the system pressure in the air supply device within a set pressure range, avoid accidents caused by too high system pressure, and improve the safety of the system.

[0076] And, asFigure 11 As shown, the filter element 720 can be sleeved on the pressure relief pipe 9. In this way, not only can the pressure relief operation be carried out in time when the system pressure is too high through the pressure relief pipe 9, but also the installation and fixation of the filter element 720 can be realized through the pressure relief pipe 9, with high integration and improved space utilization rate.

[0077] In addition, as Figure 13 shown, the air inlet 910 of the pressure relief pipe 9 can be communicated with the first chamber 7111. In this way, when the air supply device is in, for example, a deflation operation, that is, the gas discharged from, for example, the air spring can flow through the filter element 720 in the direction of the arrow in Figure 13 , and at least part of the moisture in the desiccant in the filter element 720 can be better carried out and discharged into, for example, the external atmosphere through the pressure relief pipe 9, which can effectively extend the service life of the drying and filtering module 7.

[0078] Furthermore, in some embodiments, referring to Figures 11 to 13 shown, the pressure relief member 8 may include a pressure relief valve 820 and a solenoid valve 830 that are communicated with each other. The pressure relief valve 820 is communicated with the pressure relief pipe 9, and the first check valve 810 is arranged at the communication position. The pressure relief valve 820 is communicated with the first intake chamber 113 through the first pipe 14. The pressure relief valve 820 is bypassed to the second pipe 15 that communicates the second chamber 7112 with the air spring through the third pipe 16. And the third pipe 16 includes a first branch 1610 and a second branch 1620 arranged in parallel, and the solenoid valve 830 is arranged at the communication position of the first branch 1610 and the second branch 1620. In this way, through the arrangement of the pressure relief valve 820 and the solenoid valve 830, the switching of the working processes of inflation, deflation and deflation of the air supply device can be realized (the specific working process will be described in detail below), and the controllability is good.

[0079] Among them, the present disclosure does not specifically limit the specific structures of the pressure relief valve 820 and the solenoid valve 830. Those skilled in the art can select any publicly known structures of the pressure relief valve 820 and the solenoid valve 830 in the art, and the present disclosure will not elaborate here. In addition, it should be noted that the pressure relief operation of the pressure relief valve 820 may be to discharge the high-pressure gas in the second intake chamber 711 to the first intake chamber 113 through the first pipe 14 and then discharge the high-pressure gas to the external atmosphere through the first inlet and outlet 6, or the first pipe 14 of the pressure relief valve 820 may not be communicated with the first intake chamber 113, and the pressure relief operation can be directly realized by communicating the first pipe 14 of the pressure relief valve 820 with the external atmosphere. The present disclosure is not limited to this.

[0080] According to the fourth aspect of the present disclosure, an air suspension system is provided, including an air spring and the above-mentioned air supply device. This air suspension system has all the beneficial effects of the above-mentioned air supply device, and the present disclosure will not elaborate here.

[0081] According to the fifth aspect of the present disclosure, a vehicle is provided, including the above air suspension system. This vehicle has all the beneficial effects of the above air suspension system, and the present disclosure will not elaborate here.

[0082] Based on the above embodiments, the present disclosure exemplarily describes the working processes of inflation, deflation, and air release of the air supply device as follows:

[0083] a. Inflation of the air supply device:

[0084] As Figure 11 shown, by controlling the solenoid valve 830, the third pipeline 16 and the second pipeline 15 are made not to communicate. At this time, the first check valve 810 of the pressure relief valve 820 is in a normally closed state under the action of the spring force F1, that is, the pressure relief valve 820 is not communicated with the second intake chamber 711 at this time;

[0085] The driving mechanism 5 drives the piston mechanism 2 to reciprocate relative to the first housing 120 in the vertical direction. When the piston 210 of the piston mechanism 2 moves upward relative to the first housing 120 in the vertical direction, since the volume of the primary compression chamber 111 increases and the pressure decreases, the second check valve 11 opens, so that the gas in the first intake chamber 113 is filled into the primary compression chamber 111 through the second check valve 11;

[0086] When the piston 210 moves downward relative to the first housing 120 in the vertical direction, since the volume of the primary compression chamber 111 decreases, the gas is compressed once in the primary compression chamber 111 and the pressure increases. The second check valve 11 closes. When the pressure in the primary compression chamber 111 is greater than the pressure in the secondary compression chamber 112, the third check valve 12 opens, so that the gas in the primary compression chamber 111 is discharged to the secondary compression chamber 112 through the heat dissipation flow channel 3, and the gas can be cooled during the process of flowing through the heat dissipation flow channel 3;

[0087] When the piston 210 continues to move upward relative to the first housing 120 in the vertical direction, the gas in the secondary compression chamber 112 is compressed twice, the third check valve 12 closes. When the gas pressure in the secondary compression chamber 112 reaches the opening value of the fourth check valve 13, the fourth check valve 13 opens, so that the highly compressed gas after secondary compression is discharged to the second intake chamber 711, and after being dried and filtered by the filter element 720, it is discharged through the second pipeline 15 to the air spring of the air suspension system of the vehicle, thereby improving the comfort, driving performance, and passability of the vehicle.

[0088] b. Deflation of the air supply device:

[0089] As Figure 12As shown, when the gas pressure in the second intake chamber 711 is too high and exceeds the safety pressure set by the pressure relief valve 820, the acting force F2 of the high-pressure gas on the first one-way valve 810 of the pressure relief valve 820 exceeds the spring force F1, that is, F2 is greater than F1, the spring compresses, the first one-way valve 810 opens, and the air supply device starts to relieve pressure, avoiding accidents caused by excessive system pressure and improving the safety of the system.

[0090] c. Air release of the air supply device:

[0091] As Figure 13 shown, by controlling the solenoid valve 830, the second branch 1620 of the third pipeline 16 is connected to the second pipeline 15, and at this time the fourth one-way valve 13 is in a closed state. The high-pressure gas from the air spring of the vehicle's air suspension system is discharged into the second intake chamber 711 and the pressure relief valve 820 respectively via the second pipeline 15. At this time, the acting force (F2 + F3) of the high-pressure gas on the valve core of the pressure relief valve 820 exceeds the spring force F1, that is, (F2 + F3) is greater than F1, the spring compresses, and the first one-way valve 810 opens, enabling the high-pressure gas from the air spring of the vehicle's air suspension system to be discharged to the first intake chamber 113 through the first pipeline 14 and discharged into the outside atmosphere via the first inlet / outlet 6;

[0092] Moreover, during the air release process of the air supply device, since the high-pressure gas discharged from the air spring of the vehicle's air suspension system can flow through the filter element 720 in the direction of the arrow in Figure 13 , it can better carry out at least part of the moisture in the desiccant in the filter element 720 and discharge it into the outside atmosphere via the pressure relief pipe 9, effectively extending the service life of the drying and filtering module 7.

[0093] During rapid startup, by controlling the solenoid valve 830 to open the pressure relief valve 820, the gas with a certain pressure from the gas compression device (for example, from the secondary compression chamber 112) flows back to the first intake chamber 113 of the gas compression device through the drying and filtering module 7, and then quickly reaches the working pressure after compression. Then, control the solenoid valve 830 to close the pressure relief valve 820, facilitating the air supply device to quickly switch to the inflation state.

[0094] The preferred embodiments of the present disclosure have been described in detail above with reference to the accompanying drawings. However, the present disclosure is not limited to the specific details in the above embodiments. Within the scope of the technical concept of the present disclosure, various simple modifications can be made to the technical solutions of the present disclosure, and these simple modifications all fall within the protection scope of the present disclosure.

[0095] In addition, it should be noted that, in the various specific technical features described in the above specific embodiments, they can be combined in any appropriate manner without conflict. To avoid unnecessary repetition, the present disclosure does not separately describe various possible combination methods.

[0096] In addition, any combination can be made among various different embodiments of the present disclosure, as long as it does not violate the idea of the present disclosure, and it should also be regarded as the content disclosed by the present disclosure.

Claims

1. A housing assembly, characterized in that: For a gas compression device, the housing assembly comprises: a housing having a housing chamber for accommodating a piston mechanism, so that the housing chamber is divided into a primary compression chamber and a secondary compression chamber by the piston mechanism; and A heat dissipation channel is connected to the primary compression chamber and the secondary compression chamber, and the heat dissipation channel is at least partially formed on the shell.

2. The housing assembly according to claim 1, characterized in that: The heat dissipation channel includes a first heat exchange channel section formed outside the housing; and / or The heat dissipation channel includes a second heat exchange channel section formed on the shell.

3. The housing assembly according to claim 1 or 2, characterized in that: The outer shell includes a first shell and a first end cover, the first shell and the first end cover together enclose the accommodating cavity, the first end cover is provided with a first connecting port, the first shell is provided with a second connecting port, one end of the heat dissipation channel is connected to the first compression chamber through the first connecting port, and the other end of the heat dissipation channel is connected to the second compression chamber through the second connecting port.

4. The housing assembly according to claim 1 or 2, characterized in that: The outer shell includes a first shell, a first end cover and a second end cover, the first shell, the first end cover and the second end cover together form the accommodating cavity, the first end cover is provided with a first connecting port, the second end cover is provided with a third connecting port, one end of the heat dissipation channel is connected to the first compression chamber through the first connecting port, and the other end of the heat dissipation channel is connected to the second compression chamber through the third connecting port.

5. The housing assembly according to claim 1 or 2, characterized in that: The shell includes a first shell, which is provided with a fourth connecting port and a second connecting port. One end of the heat dissipation channel is connected to the first compression chamber through the fourth connecting port, and the other end of the heat dissipation channel is connected to the second compression chamber through the second connecting port.

6. The housing assembly according to claim 1, characterized in that: The accommodating chamber also includes a first air intake chamber separated by the piston mechanism and located between the primary compression chamber and the secondary compression chamber. The first air intake chamber is connected to the primary compression chamber through a first flow channel. The first flow channel is at least partially formed on the outer shell. The first flow channel is used to supply gas from the first air intake chamber into the primary compression chamber.

7. The housing assembly according to claim 6, characterized in that: The outer shell includes a first shell and a first end cover, the first shell and the first end cover together form the accommodating chamber, the first flow channel includes a first flow channel section and a second flow channel section that are connected to each other, the first flow channel section is formed on the first shell and one end away from the second flow channel section is connected to the first air intake chamber, and the second flow channel section is formed on the first end cover and one end away from the first flow channel section is connected to the first-stage compression chamber.

8. The housing assembly according to claim 6, characterized in that: The housing includes a first shell, and the first flow channel is formed on the first shell.

9. A gas compression device, characterized in that: The invention comprises a piston mechanism and a housing assembly as claimed in any one of claims 1 to 8.

10. The gas compression device according to claim 9, characterized in that: The gas compression device also includes a driving mechanism, which is drivingly connected to the piston mechanism, and the piston mechanism divides the accommodating chamber into a primary compression chamber, a first air intake chamber, and a secondary compression chamber which are arranged in sequence.

11. The gas compression device according to claim 10, characterized in that: The housing is provided with a first inlet and outlet communicating with the first air inlet chamber.

12. The gas compression device according to claim 10, characterized in that: The driving mechanism includes a third shell, which has a third air intake chamber and a second inlet and outlet connected to the third air intake chamber. The third air intake chamber is connected to the first flow channel connected to the first compression chamber through the first air intake chamber, or the third air intake chamber is directly connected to the first flow channel connected to the first compression chamber.

13. The gas compression device according to claim 9, characterized in that: The gas compression device further comprises a temperature detection element for detecting the temperature of the gas in the gas compression device.

14. An air supply device, characterized in that: A gas compression device comprising the gas compression device according to any one of claims 9 to 13.

15. The air supply device according to claim 14, characterized in that: The air supply device also includes a drying and filtering module, which includes a second shell, the second shell having a second air intake chamber, a filter element being arranged in the second air intake chamber, the outer peripheral wall of the filter element being attached to the inner peripheral wall of the second air intake chamber to separate the second air intake chamber into a first chamber and a second chamber, the first chamber being connected to the secondary compression chamber, and the second chamber being used to be connected to an air spring.

16. The air supply device according to claim 15, characterized in that: The air supply device also includes a pressure relief member arranged outside the second shell, a pressure relief pipe connected to the pressure relief member is arranged in the second air inlet chamber, the filter element is sleeved on the pressure relief pipe, the air inlet of the pressure relief pipe is connected to the first chamber, and the pressure relief member has a first one-way valve arranged at the connection between the pressure relief member and the pressure relief pipe.

17. An air suspension system, characterized in that: The invention comprises an air spring and the air supply device according to any one of claims 14 to 16.

18. A vehicle, characterized in that: Includes the air suspension system as claimed in claim 17.

Citation Information

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