Integrated assembly and cooling system

By integrating the storage device, oil pump and oil cooler, the problem of complex structure in the vehicle cooling system is solved, and the compactness of components and simplification of the system are achieved.

CN115366746BActive Publication Date: 2025-10-10ZHEJIANG SANHUA AUTOMOTIVE COMPONENTS CO LTD
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
CN202110539201.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-05-18
Publication Date
2025-10-10
Estimated Expiration
2041-05-18

AI Technical Summary

Technical Problem

The functional components in the vehicle cooling system are set up independently, resulting in a complex structure and scattered parts. The system structure needs to be simplified.

Method used

The storage device, oil pump and oil cooler are integrated together, and a compact component structure is achieved through flow channels and connectors. They are connected with a cable device to simplify the system structure.

Benefits of technology

The integration of components is achieved, the system structure is simplified, and the compactness and installation stability of the system are improved.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN115366746B_ABST
    Figure CN115366746B_ABST
Patent Text Reader

Abstract

An integrated assembly and cooling system, the integrated assembly comprising a storage device, an oil pump and an oil cooler, the oil cooler being fixedly connected with the storage device, and the oil pump being fixedly connected with the storage device; the oil cooler has a first flow channel, an inlet of the first flow channel being communicated with an outlet of the oil pump, and an outlet of the first flow channel being communicated with an outlet of the integrated assembly or serving as the outlet of the integrated assembly; an inlet of the oil pump is communicated with a first inner cavity of the storage device; through the above structure, at least the storage device, the oil pump and the oil cooler are integrated together, so that the structure is compact and the system structure is facilitated to be simplified.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of vehicle technology, and in particular to an integrated component and a cooling system. Background Art

[0002] A vehicle's cooling system includes various functional components that work together to manage heat. Typically, these components are independently installed and connected to each other via pipes. Each component also requires separate external installation, resulting in a relatively complex overall system structure. Therefore, simplifying the system structure is a technical issue that needs to be considered. Summary of the Invention

[0003] The purpose of this application is to provide an integrated component and a cooling system, which are conducive to the integration of parts and components, making the structure more compact, thereby helping to simplify the system structure.

[0004] To achieve the above objectives, one embodiment of the present application adopts the following technical solution:

[0005] An integrated component includes a storage device, an oil pump and an oil cooler, wherein the oil cooler is fixedly connected to the storage device, and the oil pump is fixedly connected to the storage device; the oil cooler has a first flow channel, the inlet of the first flow channel is connected to the outlet of the oil pump, the outlet of the first flow channel is connected to an outlet of the integrated component or the outlet of the first flow channel serves as an outlet of the integrated component; the inlet of the oil pump is connected to the first inner cavity of the storage device.

[0006] A cooling system includes a cable device capable of charging a battery and an integrated component, wherein an inlet of the integrated component is connected to an outlet of the cable device, and an outlet of the integrated component is connected to the inlet of the cable device, and the integrated component is the integrated component described above.

[0007] In the technical solution of the integrated component provided in the present application, the integrated component includes a storage device, an oil pump and an oil cooler, the oil cooler is fixedly connected to the storage device, and the oil pump is fixedly connected to the storage device; the oil cooler has a first flow channel, the inlet of the first flow channel is connected to the outlet of the oil pump, the outlet of the first flow channel is connected to an outlet of the integrated component or the outlet of the first flow channel serves as an outlet of the integrated component; the inlet of the oil pump is connected to the first inner cavity of the storage device; through the above structure, at least the storage device, the oil pump and the oil cooler are integrated together, so that the structure is compact and conducive to simplifying the system structure.

[0008] The present application also discloses a cooling system, which includes a cable device capable of charging a battery and an integrated component, wherein an inlet of the integrated component is connected to an outlet of the cable device, and an outlet of the integrated component is connected to the inlet of the cable device, and the integrated component is the integrated component described above; this helps to simplify the system structure while being able to cool the cable device. BRIEF DESCRIPTION OF THE DRAWINGS

[0009] Figure 1 This is a schematic diagram of a three-dimensional structure of the first embodiment of the integrated component in this application;

[0010] Figure 2 yes Figure 1 A schematic diagram of a cross-sectional structure of an integrated component;

[0011] Figure 3 yes Figure 1 or Figure 2 A schematic diagram of the three-dimensional structure of a CNOOC pump;

[0012] Figure 4 yes Figure 1 or Figure 2 A schematic diagram of a three-dimensional structure in which the storage device, the first connecting member, the second connecting member and the mounting portion are integrated;

[0013] Figure 5 yes Figure 4 A perspective structural diagram of an integrated storage device, a first connecting member, a second connecting member, and a mounting portion;

[0014] Figure 6 This is a schematic cross-sectional view of a second embodiment of the integrated assembly in the present application;

[0015] Figure 7 yes Figure 6 A schematic cross-sectional view of the structure in which the storage device, the first connecting member, the second connecting member and the mounting portion are integrated together;

[0016] Figure 8 yes Figure 6 or Figure 7 A perspective diagram of a three-dimensional structure of the middle sleeve portion;

[0017] Figure 9 yes Figure 1 A schematic cross-sectional view of a third embodiment of the integrated component;

[0018] Figure 10 yes Figure 9 A schematic diagram of a three-dimensional structure in which the storage device, the sleeve portion and the fixing portion are integrated;

[0019] Figure 11 yes Figure 10A cross-sectional structure schematic diagram of the integrated storage device, sleeve part and fixing part;

[0020] Figure 12 is Figure 11 A cross-sectional structure schematic diagram of the integrated sleeve part and fixing part in one direction;

[0021] Figure 13 is Figure 11 A cross-sectional structure schematic diagram of the integrated sleeve part and fixing part in another direction;

[0022] Figure 14 is Figure 1 A three-dimensional structure schematic diagram of the oil cooler in one direction;

[0023] Figure 15 is Figure 1 A three-dimensional structure schematic diagram of the oil cooler in another direction;

[0024] Figure 16 is a connection schematic diagram of the cooling system in the present application. DETAILED DESCRIPTION

[0025] The present application will be further described below in conjunction with the accompanying drawings and specific embodiments:

[0026] The specific embodiments of the present application will be described in detail below in conjunction with the accompanying drawings. First, it should be noted that the orientation terms such as up, down, left, right, front, back, inner side, outer side, top, bottom, etc. mentioned or possibly mentioned in the present specification are defined with respect to the structure shown in the drawings, and they are relative concepts, so they can change accordingly according to different positions and different use states. Therefore, these or other orientation terms should not be interpreted as restrictive terms.

[0027] Referring to Figures 1 to 2 , the integrated assembly 100 includes a storage device 1, an oil pump 2 and an oil cooler 3, the oil cooler 3 is fixedly connected with the storage device 1, and the oil pump 2 is fixedly connected with the storage device 1; the oil cooler 3 has a first flow channel 31 and a second flow channel 32, the working medium in the first flow channel 31 and the working medium in the second flow channel 32 do not flow into each other, the working medium in the second flow channel 32 is lower in temperature than the working medium in the first flow channel 31, and the working medium in the first flow channel 31 and the working medium in the second flow channel 32 can exchange heat in the interior of the oil cooler 3; referring to Figure 1 , for the convenience of description, the flow path of the first flow channel 31 in Figure 1 is schematically shown as a thick solid line, and the flow path of the second flow channel 32 in Figure 1The flow path of the second flow channel 32 is shown as a thick dotted line; in this embodiment, the working medium in the first flow channel 31 is oil, and the working medium in the second flow channel 32 is water or other refrigerant medium; Figures 1 to 3 The inlet 21 of the oil pump 2 is connected to the first inner cavity 10 of the storage device 1. In this embodiment, the inlet 21 of the oil pump 2 is located in the first inner cavity 10 of the storage device 1, thereby achieving communication between the inlet 21 of the oil pump 2 and the first inner cavity 10 of the storage device 1. Of course, as other embodiments, the inlet 21 of the oil pump 2 can also be indirectly connected to the first inner cavity 10 of the storage device 1 by setting a connecting channel; see Figure 2 The outlet 22 of the oil pump 2 is connected to the inlet 311 of the first flow channel 31, and the outlet 312 of the first flow channel 31 is connected to the first outlet 113 of the integrated component 100. The "connection" here can be direct connection or indirect connection. Specifically, in this embodiment, the outlet 312 of the first flow channel 31 is indirectly connected to the first outlet 113 of the integrated component 100; of course, as other embodiments, the outlet of the first flow channel 31 can also serve as the outlet of the integrated component 100. In this case, the first flow channel 31 needs to be adaptively designed; in addition, in this embodiment, the integrated component 100 also includes a first pipe 94, which is fixedly connected to the storage device 1 and sealed. The pipeline of the first pipe 94 is connected to the outlet 312 of the first flow channel 31, and the first outlet 113 of the integrated component 100 is formed on the first pipe 93. Of course, as other embodiments, the first outlet 113 of the integrated component 100 can also be formed on the oil cooler or other components; in the above structure, the storage device 1, the oil pump 2 and the oil cooler 3 are integrated together, so the structure is compact and conducive to simplifying the system structure.

[0028] The following will specifically introduce the communication method between the outlet 22 of the oil pump 2 and the inlet 311 of the first flow channel 31 in the first embodiment of the integrated assembly.

[0029] See Figure 2 、 Figure 4 and Figure 5 , the outlet 22 of the oil pump 2 is connected to the inlet 311 of the first flow channel 31. Specifically, the integrated component 100 further includes a first connecting member 4. In this embodiment, the first connecting member 4 and the storage device 1 are split structures and fixedly connected. Specifically, the storage device 1 includes a shell 12, the inner surface of the shell 12 constitutes at least a portion of the surface corresponding to the first inner cavity 10 of the storage device 1; the shell 12 has an oil filling hole 121, and the first inner cavity 10 of the storage device 1 can be filled with oil through the oil filling hole 121. Specifically, see Figure 1In this embodiment, the integrated assembly 100 further includes a second connecting pipe 93, which is provided corresponding to the oil filling hole 121. The second connecting pipe 93 is fixedly connected to the housing 12, and the pipeline of the second connecting pipe 93 is connected to the first inner cavity 10 of the storage device 1. The second connecting pipe 93 serves as an oil filling pipeline for the first inner cavity 10 of the storage device 1; Figure 2 、 Figure 4 and Figure 5 In this embodiment, the first connecting member 4 is fixedly connected to the shell 12. Specifically, in this embodiment, the first connecting member 4 is fixedly connected to the bottom wall 125 of the shell 12, and the connection between the first connecting member 4 and the bottom wall 125 of the shell 12 is sealed. Of course, as other embodiments, the first connecting member 4 can also be an integrated structure with the storage device 1, or as other embodiments, the first connecting member 4 can also be fixedly connected to or integrated with the oil cooler 3.

[0030] See Figure 2 、 Figure 4 and Figure 5 The first connecting member 4 is at least partially located in the first inner cavity 10 of the storage device 1, and the integrated component 100 has a first connecting channel 41, see Figure 4 For the convenience of description, Figure 2 and Figure 4 The flow path of the first connecting channel 41 is shown as a thick solid line. In this embodiment, the first connecting channel 41 is entirely formed in the first connecting member 4. Of course, in other embodiments, the first connecting channel 41 may be partially formed in the first connecting member 4 and partially formed in other components, and the first connecting channel formed in the first connecting member 4 is connected to the first connecting channel formed in other components; see Figure 2 In this embodiment, the first connecting channel 41 connects the inlet 311 of the first flow channel 31 of the oil cooler 3 and the outlet 22 of the oil pump 2. The “connection” here can be direct or indirect. When it is indirect, the first connecting channel 41 can connect the inlet 311 of the first flow channel 31 and the channel connected to the outlet 22 of the oil pump 2, or the first connecting channel 41 can connect the channel connected to the inlet 311 of the first flow channel 31 and the outlet 22 of the oil pump 2, or the first connecting channel 41 can connect the channel connected to the inlet 311 of the first flow channel 31 and the channel connected to the outlet 22 of the oil pump 2; see Figure 2 、 Figure 4 and Figure 5As for the storage device 1, the first connecting channel 41 connects the outlet 22 of the oil pump 2 and the first orifice 1201 of the storage device 1, and the first orifice 1201 of the storage device 1 is connected to the inlet 311 of the first flow channel 31 of the oil cooler 3. In this embodiment, the first orifice 1201 of the storage device 1 is formed on the shell 12, and the first orifice 1201 of the storage device 1 serves as an outlet of the storage device 1; of course, as other embodiments, when the first connecting member 4 is fixedly connected to the oil cooler 3, the first connecting channel 41 is equivalent to a part of the first flow channel 31, and at this time, the inlet of the first connecting channel 41 is equivalent to the inlet of the first flow channel 31.

[0031] See Figure 4 and Figure 5 The first connecting member 4 includes a first main body portion 42 and a first protrusion portion 43. The first main body portion 42 is fixedly connected to the storage device 1. The first protrusion portion 43 is protruded from the outer peripheral surface of the first main body portion 42. A portion of the first connecting channel 41 is formed on the first protrusion portion 43, and the other portion of the first connecting channel 41 is formed on the first main body portion 42. The end surface of the first protrusion portion 43 has an opening 431, which serves as the inlet of the first connecting channel 41. Figure 2 、 Figure 4 and Figure 5 In this embodiment, the first protrusion 43 partially extends into the outlet 22 of the oil pump 2. Of course, as other implementation methods, the first protrusion 43 can also be completely extended into the outlet 22 of the oil pump 2, and the connection between the first protrusion 43 and the outlet 22 of the oil pump 2 is sealed to prevent the working medium at the outlet of the oil pump 2 from leaking from the connection between the first protrusion 43 and the outlet of the oil pump 2; of course, as other implementation methods, at least a portion of the first protrusion 43 can also extend into the channel connected to the outlet 22 of the oil pump 2. At this time, the first protrusion 43 and the channel connected to the outlet 22 of the oil pump 2 are sealed to prevent the working medium at the outlet of the oil pump 2 from leaking from the connection between the first protrusion 43 and the channel connected to the outlet of the oil pump 2. Specifically, please refer to the second implementation method of the integrated component, which will not be described here one by one.

[0032] See Figure 4 The housing 12 has a through hole 122, which passes through the first side wall 123 of the housing 12 along the thickness direction of the first side wall 123 of the housing 12; the first side wall 123 of the housing 12 is perpendicular to the top wall 124 of the housing 12, and the first side wall 123 of the housing 12 extends along the height direction of the storage device 1; refer to Figure 2 、 Figure 4 and Figure 5The oil pump 2 has a portion passing through the through hole 122, and another portion of the oil pump 2 is located outside the through hole 122. The oil pump 2 and the through hole 122 are sealed. This helps prevent the working medium of the first inner cavity 10 of the storage device 1 from leaking at the through hole 122. Figure 2 、 Figure 4 and Figure 5 The opening 431 of the first protrusion 43 faces the through hole 122 , and the opening 431 of the first protrusion 43 is located at the outlet 22 of the oil pump 2 , so that the outlet 22 of the oil pump 2 is communicated with the first connecting channel 41 .

[0033] The following will specifically introduce the communication method between the outlet 312 of the first flow channel 31 and an outlet of the integrated component 100.

[0034] See Figure 2 、 Figure 4 and Figure 5 In this embodiment, the integrated component 100 further includes a second connecting member 5, which is an integral structure with the storage device 1 or a separate structure with the storage device 1 and is fixedly connected. In this embodiment, the second connecting member 5 is located in the first inner cavity 10 of the storage device 1. Of course, as other embodiments, the second connecting member 5 may also be partially located in the first inner cavity 10 of the storage device 1. The integrated component 100 has a second connecting channel 51. In this embodiment, the second connecting channel 51 is entirely formed on the second connecting member 5. Of course, as other embodiments, the second connecting channel 51 may also be partially formed on the second connecting member 5 and partially formed on other components. In this case, the second connecting channel formed on the second connecting member 4 is connected to the second connecting channel formed on other components. Figure 2 、 Figure 4 and Figure 5 The second connecting channel 51 is connected to the outlet 312 of the first flow channel 31 and the first outlet 113 of the integrated component; Figure 2 、 Figure 4 and Figure 5 As for the storage device 1, the second connecting channel 51 connects the second orifice 1202 of the storage device 1 and the third orifice 1203 of the storage device 1. Here, the second orifice 1202 of the storage device 1 is connected to the outlet 312 of the first flow channel 31. Of course, as other embodiments, the second orifice 1202 of the storage device 1 can also serve as the outlet 312 of the first flow channel 31. Here, the third orifice 1203 of the storage device 1 is used to connect with the first connecting pipe 94.

[0035] See Figure 4In the embodiment, the second connecting member 5 comprises a second main body 52 and two second protruding parts 53, the second protruding parts 53 protrude from the lower surface of the second main body 52, the second protruding parts 53 are connected with the storage device 1, the second protruding parts 53 are closer to the connecting surface of the storage device 1 than the second main body 52; the second connecting channel 51 is partially formed in the second main body 52, and the second connecting channel 51 is partially formed in the second protruding parts 53; refer to Figure 4 and Figure 5 In the storage device 1, the connecting surface for connecting the second connecting member 5 and the connecting surface for connecting the first connecting member 4 are the same connecting surface, specifically, the second connecting member 5 is also connected with the bottom wall of the shell 12, of course, as other embodiments, the connecting surface for the second connecting member 5 in the storage device 1 and the connecting surface for connecting the first connecting member 4 in the storage device 1 can also not be the same connecting surface.

[0036] Refer to Figures 1 to 5 The working medium in the first inner cavity 10 of the storage device 1 enters the inside of the oil pump 2 through the inlet 21 of the oil pump 2, the working medium in the inside of the oil pump 2 flows out from the outlet of the oil pump 2, the working medium of the outlet 22 of the oil pump 2 enters the inlet 311 of the first flow channel 31 of the oil cooler 3 through the first connecting channel 41, the working medium in the first flow channel 31 of the oil cooler 3 exchanges heat with the working medium in the second flow channel 32 of the oil cooler 3, the working medium in the first flow channel 31 of the oil cooler 3 flows into the second connecting channel 51 and then flows out from the second connecting channel 51. In the above embodiment, the inner cavity of the storage device 1 only comprises the first inner cavity 10, of course, as other embodiments, the inner cavity of the storage device 1 can also comprise other inner cavities, specifically, refer to the second embodiment of the integrated assembly, which will not be described here.

[0037] The following will introduce the fixed connection mode of the oil pump 2 and the storage device 1.

[0038] Refer to Figure 1 and Figure 2 Part of the oil pump 2 is located in the first inner cavity 10 of the storage device 1, correspondingly, in the embodiment, the inlet 21 of the oil pump 2 and the outlet 22 of the oil pump 2 are located in the first inner cavity 10 of the storage device 1, and another part of the oil pump 2 is exposed outside the shell 12. Refer to Figure 4 and Figure 5 The storage device 1 further comprises a support seat 13, the support seat 13 is located in the first inner cavity 10 of the storage device 1, in the embodiment, the support seat 13 is an integral structure with the shell 12, of course, as other embodiments, the support seat 13 and the shell 12 can also be a split structure and fixedly connected; refer to Figures 1 to 5The portion of the oil pump 2 located in the first inner cavity 10 of the storage device 1 is directly supported on the support seat 13. Of course, as other embodiments, the portion of the oil pump 2 located in the first inner cavity 10 of the storage device 1 may also be indirectly supported on the support seat 13. In this way, the portion of the oil pump 2 located in the first inner cavity 10 of the storage device 1 can be supported, which is beneficial to prevent the oil pump 2 from being cantilevered, and further beneficial to improving the connection stability of the oil pump 2 during installation.

[0039] See Figures 1 to 5 , the oil pump 2 is fixedly connected to the storage device 1; specifically, see Figure 4 In this embodiment, the integrated assembly 100 further includes at least two mounting portions 6, the mounting portions 6 being protruded outwardly relative to the housing 12, and the portion of the oil pump 2 exposed from the housing 12 being fixedly connected to the mounting portion 6. Specifically, the portion of the oil pump 2 exposed from the housing 12 is fixedly connected to the mounting portion 6 by screws or bolts; see Figure 5 In this embodiment, the mounting portion 6 and the shell 12 are separate structures and are fixedly connected. Of course, as other embodiments, the mounting portion 6 and the shell 12 can also be an integrated structure; in this embodiment, the mounting portion 6 is columnar. Of course, as other embodiments, the mounting portion 6 can also be ring-shaped or other shapes.

[0040] For other embodiments, see Figures 6 to 8 In this embodiment, the storage device 1 further includes a sleeve portion 7, which is fixedly connected to the shell 12. Of course, as other embodiments, the sleeve portion 7 can also be an integral structure with the shell 12; the wall surface corresponding to the first inner cavity 10 includes at least part of the inner wall surface of the shell 12 and at least part of the outer wall surface of the sleeve portion 7. In this embodiment, the storage device further includes a second inner cavity, and the sleeve portion 7 includes a first accommodating portion 71. The cavity of the first accommodating portion 71 constitutes the second inner cavity. In this embodiment, the wall corresponding to the first accommodating portion 71 is supported on the support seat 13; refer to Figure 3 、 Figures 6 to 8 In this embodiment, the inlet 21 and the outlet 22 of the oil pump 2 are located in the second inner cavity, and the oil pump 2 has another portion located in the cavity of the first accommodating portion 71. The outer peripheral surface corresponding to the portion of the cavity of the oil pump 2 located in the first accommodating portion 71 is in contact with the side wall surface of the first accommodating portion 71; in this way, the portion of the cavity of the oil pump 2 located in the first accommodating portion 71 can be supported on the first accommodating portion 71. Since the wall corresponding to the first accommodating portion 71 is supported on the support seat 13, this is equivalent to indirectly supporting the portion of the cavity of the oil pump 2 located in the first accommodating portion 71 on the support seat 13, which is beneficial to improving the connection stability of the oil pump 2 during installation.

[0041] See Figures 6 to 8In this embodiment, the first accommodating portion 71 includes a first circulation portion 711 and a second circulation portion 712, and the first circulation portion 711 and the second circulation portion 712 pass through the bottom wall of the first accommodating portion 71; Figure 3 、 Figures 6 to 8 The cavity of the first circulation part 711 is connected to the inlet 21 of the oil pump 2 and the first inner cavity 10 of the storage device 1, and the cavity of the second circulation part 712 is connected to the outlet 22 of the oil pump 2. Specifically, the cavity of the second circulation part 712 is connected to the outlet 22 of the oil pump 2 and the first connecting channel 41.

[0042] For other embodiments, see Figures 9 to 13 In this embodiment, the integrated assembly 100 further includes a fixing portion 8, which is an integral structure with the sleeve portion 7. Of course, as other embodiments, the fixing portion 8 and the sleeve portion 7 may also be separate structures and fixedly connected; the fixing portion 8 is at least partially located outside the housing 12 of the storage device 1 and is fixedly connected to the housing 12; the fixing portion 8 has a second accommodating portion 81, the cavity of the second accommodating portion 81 is communicated with the cavity of the first accommodating portion 71, and the portion of the oil pump 2 exposed to the housing 12 is at least partially located in the cavity of the second accommodating portion 81; the portion of the oil pump 2 exposed to the housing 12 is fixedly connected to the fixing portion 8; specifically, see Figure 12 and Figure 13 In this embodiment, the fixing portion 8 is annular and is formed with a connecting hole 83 , through which screws or bolts are inserted to fix the fixing portion 8 to the oil pump 2 .

[0043] The connection method between the oil cooler 3 and the storage device 1 will be described below.

[0044] See Figure 1 and Figure 2 In this embodiment, the oil cooler 3 is supported on and connected to the outer surface of the storage device 1; specifically, see Figure 1 and Figure 2 In this embodiment, the oil cooler 3 is located in the longitudinal direction of the storage device 1, and the oil cooler 3 is supported on the outer bottom surface of the storage device 1; the oil cooler 3 includes a heat exchange body 33 and a connecting plate 34. In this embodiment, the connecting plate 34 is located between the heat exchange body 33 and the storage device 1. Of course, as other embodiments, part of the connecting plate 34 may also be located between the heat exchange body and the storage device 1; see Figure 1 and Figure 2 One side of the connecting plate 34 is fixedly connected to the heat exchange body 33 by welding, and the other side of the connecting plate 34 is fixedly connected to the storage device 1. Specifically, in this embodiment, the connecting plate 34 and the storage device 1 are fixedly connected by screws or bolts; of course, as other embodiments, one side of the connecting plate 34 and the heat exchange body 33 can also be fixedly connected by other connection methods. Figure 14The oil cooler 3 has a first inlet 301 and a first outlet 302. In this embodiment, the first inlet 301 and the first outlet 302 are located on the same side of the heat exchange body 33, the first inlet 301 serves as the inlet of the second flow channel 32, and the first outlet 302 serves as the outlet of the second flow channel 32; the oil cooler 3 has a second inlet 303 and a second outlet 304. The second inlet 303 and the second outlet 304 are located on the same side of the heat exchange body 33, and the side where the first inlet 301 is located and the side where the second inlet 303 is located are arranged opposite to each other. The second inlet 303 serves as the inlet of the first flow channel 31, and the second outlet 304 serves as the outlet of the first flow channel 31. In this embodiment, the second inlet 303 is closer to the storage device 1 than the first inlet 301, and the first inlet 301 is located outside the storage device 1.

[0045] See Figure 1 and Figure 2 In this embodiment, the mounting side of the storage device 1 for fixing the oil cooler 3 is vertically arranged to the mounting side of the storage device 1 for fixing the oil pump 2; this makes the overall structure of the integrated component 100 more compact.

[0046] The structures of other components of the integrated assembly 100 will be described in detail below.

[0047] See Figure 1 and Figure 2 The integrated component 100 also includes a sensor 91, which is fixedly connected to the storage device 1; the sensor 91 includes a probe 911, which extends into the first inner cavity 10 of the storage device 1, and the probe 911 can detect the temperature in the first inner cavity 10 of the storage device 1, or the probe 911 can detect the viscosity of the working medium in the first inner cavity 10 of the storage device 1, or the probe 911 can detect the liquid level of the working medium in the first inner cavity 10 of the storage device 1; in this embodiment, the mounting surface in the storage device 1 for mounting the sensor 91 is the same mounting surface as the mounting surface on the oil cooler 3 for mounting the storage device 1.

[0048] See Figure 2 The integrated assembly 100 further includes a pressure relief member 92, which is fixedly connected to the storage device 1; Figure 2 and Figure 4 The housing 12 of the storage device 1 has a mounting hole 120, which is in communication with the first inner cavity 10 of the storage device 1. In this embodiment, the pressure relief member 92 is partially located in the mounting hole 120. Of course, as other embodiments, the pressure relief member 92 may also be entirely located in the mounting hole 120; see Figure 2In addition to oil, the medium in the first inner cavity 10 of the storage device 1 may also contain gas. When the gas pressure in the first inner cavity 10 of the storage device 1 reaches a preset pressure, the pressure relief hole in the pressure relief component 92 will open, and the gas in the first inner cavity 10 of the storage device 1 will be discharged from the pressure relief hole in the pressure relief component 92. This is conducive to reducing the gas pressure in the first inner cavity 10 of the storage device 1, which is conducive to preventing the storage device 1 from being damaged by excessive gas pressure, thereby affecting the use of the integrated component 100.

[0049] As another embodiment, the integrated component 100 may also include a filter, which is arranged upstream of the inlet 21 of the oil pump 2, so that impurities in the oil entering the oil pump can be filtered to prevent the impurities in the oil from damaging the internal structure of the oil pump, thereby affecting the use of the oil pump; the filter here can be an independent part fixed to the storage device, or it can be directly integrated on the oil pump.

[0050] As another embodiment, the integrated component 100 may also include a filter, which is arranged downstream of the outlet 312 of the first flow channel 31, so that the working medium flowing out of the first flow channel 31 can be filtered to prevent impurities in the working medium flowing out of the first flow channel 31 from damaging the system structure, thereby affecting the use of the system.

[0051] As another embodiment, the integrated component 100 may also include a first filter and a second filter. The first filter is arranged upstream of the inlet 21 of the oil pump 2, so that impurities in the oil entering the oil pump can be filtered to prevent the impurities in the oil from damaging the internal structure of the oil pump, thereby affecting the use of the oil pump; the filter here can be an independent part, fixed to the storage device, or directly integrated on the oil pump; the second filter is arranged downstream of the outlet 312 of the first flow channel 31, so that the working medium flowing out of the first flow channel 31 can be filtered to prevent the impurities in the working medium flowing out of the first flow channel 31 from damaging the system structure, thereby affecting the use of the system.

[0052] See Figure 16 The present application also discloses a cooling system, which includes a cable device 102 and an integrated component 100 for charging a battery in a new energy vehicle. An inlet of the integrated component 100 is connected to an outlet of the cable device 102, and an outlet of the integrated component 100 is connected to an inlet of the cable device 102. The cable device 102 here can be a cable device electrically connected to the battery inside the new energy vehicle, or a cable device used to electrically connect to the inside of the new energy vehicle in a charging pile; see Figure 16The integrated assembly 100 comprises the storage device 1, the oil pump 2 and the oil cooler 3, and the integrated assembly is the integrated assembly described above, and the structure of the integrated assembly 100 can refer to the foregoing description, and thus will not be repeated here; the cooling system further comprises a first filter 103, and the first filter 103 is arranged upstream of the inlet of the oil pump 2, so that impurities in the oil entering the inside of the oil pump can be filtered, and the first filter 103 can be arranged in the cooling system alone or integrated with the integrated assembly 100; the cooling system further comprises a second filter 104, and the second filter 104 is arranged downstream of the outlet of the integrated assembly 100, so that the working medium flowing out of the outlet of the integrated assembly 100 can be filtered, so as to prevent impurities in the working medium flowing out of the outlet of the integrated assembly 100 from damaging the system structure, thereby affecting the use of the system, and the second filter 104 can be arranged in the cooling system alone or integrated with the integrated assembly 100.

[0053] It should be noted that the above examples are only used to illustrate the present application and not to limit the technical solutions described in the present application. Although the present application has been described in detail with reference to the above examples, it should be understood by those skilled in the art that the skilled in the art can still modify or equivalently replace the present application, and all technical solutions and improvements which do not deviate from the spirit and scope of the present application should be covered within the scope of the claims of the present application.

Claims

1. An integrated component, characterized in that: It includes a storage device, an oil pump and an oil cooler, the oil cooler is fixedly connected to the storage device, the oil pump is fixedly connected to the storage device, and the integrated component also includes a sleeve portion, which is fixedly connected to the storage device; the oil cooler has a first flow channel, the inlet of the first flow channel is connected to the outlet of the oil pump, the outlet of the first flow channel is connected to an outlet of the integrated component or the outlet of the first flow channel serves as an outlet of the integrated component; the inlet of the oil pump is connected to the first inner cavity of the storage device, the sleeve portion includes a first accommodating portion, and the outer peripheral surface corresponding to the part of the cavity of the oil pump located in the first accommodating portion is in contact with the side wall surface of the first accommodating portion.

2. The integrated assembly according to claim 1, characterized in that: The integrated component also includes a first connecting member, which is fixedly connected to the storage device or the oil cooler; the first connecting member is at least partially located in the first inner cavity of the storage device; the integrated component has a first connecting channel, at least part of which is formed on the first connecting member, and the first connecting channel connects the inlet of the first flow channel and the outlet of the oil pump.

3. The integrated assembly according to claim 1 or 2, characterized in that: The integrated assembly further includes a second connecting member, the second connecting member being fixedly connected to or integrally provided with the storage device; the second connecting member being at least partially located in the first inner cavity of the storage device; the integrated assembly having a second connecting channel, at least a portion of which is formed on the second connecting member; When the outlet of the first flow channel is in communication with one outlet of the integrated component, the second connecting channel is in communication with the outlet of the first flow channel and one outlet of the integrated component.

4. The integrated assembly according to claim 3, characterized in that: The oil cooler includes a heat exchange body and a connecting plate, at least part of the connecting plate is located between the storage device and the heat exchange body, one side of the connecting plate is fixedly connected to the heat exchange body, and the other side of the connecting plate is fixedly connected to the storage device.

5. The integrated assembly according to claim 3, characterized in that: The inlet of the oil pump and the outlet of the oil pump are located in the first inner cavity of the storage device; or the sleeve portion includes a first accommodating portion, the first accommodating portion is at least partially located in the first inner cavity of the storage device, the inlet of the oil pump and the outlet of the oil pump are located in the cavity corresponding to the first accommodating portion, the first accommodating portion includes a first communicating portion and a second communicating portion, the first communicating portion and the second communicating portion pass through the bottom wall of the first accommodating portion; the cavity of the first communicating portion connects the inlet of the oil pump and the first inner cavity of the storage device, and the cavity of the second communicating portion connects the outlet of the oil pump.

6. The integrated assembly according to claim 4, characterized in that: The inlet of the oil pump and the outlet of the oil pump are located in the first inner cavity of the storage device; or the sleeve portion includes a first accommodating portion, the first accommodating portion is at least partially located in the first inner cavity of the storage device, the inlet of the oil pump and the outlet of the oil pump are located in the cavity corresponding to the first accommodating portion, the first accommodating portion includes a first communicating portion and a second communicating portion, the first communicating portion and the second communicating portion pass through the bottom wall of the first accommodating portion; the cavity of the first communicating portion connects the inlet of the oil pump and the first inner cavity of the storage device, and the cavity of the second communicating portion connects the outlet of the oil pump.

7. The integrated assembly according to claim 5 or 6, characterized in that: The storage device includes a shell, the outer surface of the shell constitutes at least part of the outer surface of the storage device; the oil pump is partially exposed from the shell, and the part of the oil pump exposed from the shell is fixedly connected to the shell.

8. The integrated assembly according to any one of claims 1, 2, 4 to 6, characterized in that: The installation side of the storage device for installing the oil cooler is arranged vertically to the installation side of the storage device for installing the oil pump.

9. The integrated assembly according to claim 3, characterized in that: The installation side of the storage device for installing the oil cooler is arranged vertically to the installation side of the storage device for installing the oil pump.

10. The integrated assembly according to claim 7, characterized in that: The installation side of the storage device for installing the oil cooler is arranged vertically to the installation side of the storage device for installing the oil pump.

11. The integrated assembly according to claim 8, characterized in that: The integrated component also includes a sensor, which is fixedly connected to the storage device; the sensor includes a probe, which extends into the first inner cavity of the storage device, and the probe can detect the temperature in the first inner cavity of the storage device or the probe can detect the viscosity of the working medium in the first inner cavity of the storage device or the probe can detect the liquid level of the working medium in the first inner cavity of the storage device.

12. The integrated assembly according to claim 9 or 10, characterized in that: The integrated component also includes a sensor, which is fixedly connected to the storage device; the sensor includes a probe, which extends into the first inner cavity of the storage device, and the probe can detect the temperature in the first inner cavity of the storage device or the probe can detect the viscosity of the working medium in the first inner cavity of the storage device or the probe can detect the liquid level of the working medium in the first inner cavity of the storage device.

13. The integrated assembly according to claim 11, characterized in that: The integrated component also includes a pressure relief member, which is fixedly connected to the top of the storage device; the top of the storage device has a mounting hole, which is connected to the first inner cavity of the storage device, and the pressure relief member is at least partially located in the mounting hole.

14. The integrated assembly according to claim 12, characterized in that: The integrated component also includes a pressure relief member, which is fixedly connected to the top of the storage device; the top of the storage device has a mounting hole, which is connected to the first inner cavity of the storage device, and the pressure relief member is at least partially located in the mounting hole.

15. A cooling system comprising a cable device capable of charging a battery and an integrated component, wherein an inlet of the integrated component is connected to an outlet of the cable device, and an outlet of the integrated component is connected to the inlet of the cable device, and the integrated component is the integrated component according to any one of claims 1 to 14.

Citation Information

Patent Citations

  • Oil-cooled motor

    CN112271876A

  • Integrated assembly

    CN115366747A

  • Integrated assembly

    CN115366748A

  • Charging device cooling system

    CN209845579U

  • Oil pump module for a motor vehicle

    DE202020105684U1