Integrated wired wireless charging control system

By integrating wired charging control module, wireless charging control module and heat dissipation module into one unit, the problem of single function in the existing technology is solved, realizing dual control and efficient heat dissipation for electric vehicle charging, and meeting actual needs.

CN114633643BActive Publication Date: 2025-11-25ANJIE WIRELESS TECH (SUZHOU) CO LTD
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Patent Information

Application Number
CN202210317070.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-03-29
Publication Date
2025-11-25
Estimated Expiration
2042-03-29

AI Technical Summary

Technical Problem

The existing wired and wireless charging control boxes are set up separately, with limited functions, and cannot meet the actual needs of electric vehicle charging.

Method used

An integrated wired and wireless charging control system was designed, which integrates the wired charging control module, the wireless charging control module, and the heat dissipation module into the same housing. It adopts a modular design and achieves dual functions through reasonable layout, and is equipped with a fan assembly for heat dissipation.

Benefits of technology

It achieves dual control functions for wired and wireless charging, meeting the actual needs of electric vehicle charging, while also possessing high integration and small size, and providing good heat dissipation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a kind of integrated wired wireless charging control system, it includes: wired charging control module, wireless charging control module, heat dissipation module and shell.The application adopts modular design idea, wired charging control module, wireless charging control module, heat dissipation module is arranged in the same shell according to specific way.Make the control system of the application have the dual function of wired control and wireless control, fully meet the actual control demand of electric vehicle charging.Heat dissipation module itself provides good heat dissipation function at the same time, also auxiliary wired charging control module, wireless charging control module integration package, each module is through reasonable layout, so that each module has high integration degree at the same time, overall volume is smaller.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of wireless charging, in particular to an integrated wired and wireless charging control system. BACKGROUND

[0002] With the popularity and promotion of electric vehicles, the charging problem of electric vehicles has become one of the technical problems that need to be solved. At present, electric vehicles are mainly charged through wired charging and wireless charging.

[0003] Among them, wired charging needs to configure a charging pile, and the charging gun on the charging pile is connected with the charging port of the electric vehicle to realize charging for the electric vehicle. Wireless charging is to set wireless charging devices on the vehicle end and the ground end respectively, and to realize wireless charging of electric vehicles through electromagnetic induction technology.

[0004] The above wired charging and wireless charging both need corresponding control boxes for charging control. However, the existing wired charging control box and wireless charging control box are separately arranged, and each control box can only realize single mode charging control, which is relatively single in function and cannot fully meet the actual use demand. Therefore, it is necessary to propose a further solution for the above problems. SUMMARY

[0005] The present application aims to provide an integrated wired and wireless charging control system to overcome the deficiencies in the prior art.

[0006] To solve the above technical problems, the technical scheme of the present application is:

[0007] An integrated wired and wireless charging control system, comprising: a wired charging control module, a wireless charging control module, a heat dissipation module and a shell;

[0008] The heat dissipation module is packaged in the shell, and the heat dissipation module comprises: a module body, a mounting cavity formed on one side of the module body, and a heat dissipation structure formed on the other side of the module body, and a substrate is arranged in the mounting cavity;

[0009] The wired charging control module is located in the upper space of the mounting cavity, and comprises: a wired control board and a first external power supply, which are integrated on one side of the substrate, and the first external power supply is arranged on one side of the wired control board;

[0010] The wireless charging control module includes: a first wireless control board, a second external power supply, and a second wireless control board. The first wireless control board and the second external power supply are arranged in the upper space of the mounting cavity and integrated on one side of the substrate, and are arranged side by side with the wired charging control module. The second wireless control board is arranged in the lower space of the mounting cavity, and its components are arranged in the corresponding sub-cavities of the mounting cavity.

[0011] As an improvement to the integrated wired and wireless charging control system of the present invention, a ventilation opening is also provided on at least one side wall of the housing.

[0012] As an improvement to the integrated wired and wireless charging control system of the present invention, ventilation openings are respectively provided on the walls of the outer shell on both sides of the heat dissipation module.

[0013] As an improvement to the integrated wired and wireless charging control system of the present invention, the heat dissipation structure consists of several fins formed on the other side of the module body, and the fins are capable of heat conduction with the module body.

[0014] As an improvement to the integrated wired and wireless charging control system of the present invention, the integrated wired and wireless charging control system further includes: a fan assembly; the fan assembly is disposed on one side of the heat dissipation structure.

[0015] As an improvement to the integrated wired and wireless charging control system of the present invention, the fan assembly includes: at least one cooling fan;

[0016] When there are multiple cooling fans, the multiple cooling fans are arranged side by side on one side of the heat dissipation structure, and the multiple cooling fans are further fixed by the fan cover.

[0017] As an improvement to the integrated wired and wireless charging control system of the present invention, the wired control board includes: a main control chip, a wireless communication chip, input terminals, output terminals, and an internal power supply; the components are arranged as follows:

[0018] The input terminals and output terminals are arranged on one edge of the wired control board, and the wireless communication chip is arranged on the other edge of the wired control board; the main control chip and internal power supply are arranged in the middle area of ​​the wired control board.

[0019] As an improvement to the integrated wired and wireless charging control system of the present invention, both the first external power supply and the second external power supply include: an electrolytic capacitor, a heat sink, a first transformer, a resistor, and several first capacitors; the first external power supply and the second external power supply are set in reverse.

[0020] The electrolytic capacitor and the first transformer are arranged side by side on one side of the power supply fixing plate. The heat sink and the resistor are arranged opposite to the electrolytic capacitor and the first transformer and are arranged side by side on the other side of the power supply fixing plate. Several first capacitors are arranged side by side on one side of the first transformer and the resistor.

[0021] As an improvement to the integrated wired and wireless charging control system of the present invention, the second wireless control board includes: a capacitor box, a first inductor, a second capacitor, a third capacitor, a fourth capacitor, a MOSFET, a third inductor, a fourth inductor, a fifth capacitor, a first relay, a second transformer, and a second relay.

[0022] The second capacitor is located at the upper left corner of the substrate.

[0023] The first inductor is disposed below the second capacitor and near the left edge of the substrate.

[0024] The capacitor box is disposed below the first inductor and near the left edge of the substrate.

[0025] The second inductor and the third capacitor are disposed at the top of the substrate, and are arranged side by side from left to right;

[0026] The fourth capacitor is located below the third capacitor and is positioned near the right edge of the substrate.

[0027] The MOS transistor is positioned below the fourth capacitor and to the right of the second capacitor;

[0028] The third inductor is located below the MOSFET and to the right of the first inductor;

[0029] The fourth inductor is disposed below the third inductor and to the right of the first inductor;

[0030] The fifth capacitor is located at the lower right corner of the substrate.

[0031] The first relay, the second transformer, and the second relay are arranged side by side from right to left below the fourth inductor and to the left of the fifth capacitor.

[0032] As an improvement to the integrated wired and wireless charging control system of the present invention, the mounting cavity is formed with first to fifth sub-cavities separated by partitions;

[0033] The first sub-cavity is formed at the upper part of the module body and is used to house and install the second capacitor, the second inductor, the fourth capacitor, and the MOSFET.

[0034] The second sub-cavity is a horizontally arranged waist-shaped cavity located on the left side below the first sub-cavity, and is used to house and install the third inductor;

[0035] The third sub-cavity is located below the second sub-cavity and is used to house and install the fourth inductor, the fifth capacitor, the first relay, the second transformer, and the second relay.

[0036] The fourth sub-cavity is a vertically arranged rectangular cavity located to the right of the second and third sub-cavities, and is used to house and install the first inductor.

[0037] The fifth sub-cavity is formed by the outer walls of the third and fourth sub-cavities and is used to house and install the capacitor box.

[0038] Compared with existing technologies, the advantages of this invention are: This invention adopts a modular design approach, arranging the wired charging control module, wireless charging control module, and heat dissipation module in the same housing in a specific manner. This enables the control system of this invention to possess dual functions of wired and wireless control, fully meeting the actual control requirements of electric vehicle charging.

[0039] The heat dissipation module itself provides good heat dissipation while also assisting in the integrated packaging of the wired charging control module and the wireless charging control module. Through reasonable layout, each module has a high degree of integration while maintaining a small overall size. Attached Figure Description

[0040] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0041] Figure 1 This is an exploded perspective view of an embodiment of the integrated wired and wireless charging control system of the present invention.

[0042] Figure 2 for Figure 1 A schematic diagram of the structure when the mounting components are located on the outer bottom cover plate;

[0043] Figure 3 for Figure 2 A three-dimensional exploded view of the components installed in the middle;

[0044] Figure 4 for Figure 1 A three-dimensional enlarged schematic diagram of the heat dissipation module and fan assembly;

[0045] Figure 5 for Figure 4 A three-dimensional schematic diagram of the heat dissipation module and fan assembly from another angle;

[0046] Figure 6 A three-dimensional schematic diagram of a wired charging control module integrated on a substrate;

[0047] Figure 7 for Figure 6 A three-dimensional schematic diagram of the first external power source;

[0048] Figure 8 A three-dimensional schematic diagram of the second wireless control board;

[0049] Figure 9 This is a three-dimensional schematic diagram of the second wireless control board from another angle.

[0050] Figure 10 This is a 3D schematic diagram of the heat dissipation module. Detailed Implementation

[0051] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0052] One embodiment of the present invention provides an integrated wired and wireless charging control system, which can be used as a control terminal in the charging process of electric vehicles to control charging piles in wired charging mode, and to control ground charging devices and on-board charging devices in wireless charging mode.

[0053] like Figure 1 As shown, the integrated wired and wireless charging control system of this embodiment includes: a wired charging control module 10, a wireless charging control module 20, a heat dissipation module 30, and a housing 40.

[0054] The wired charging control module 10, the wireless charging control module 20, and the heat dissipation module 30 are integrated and installed in the housing 40 to facilitate integrated packaging and protection of the three components.

[0055] The outer casing 40 includes: a casing 41, an outer top cover 42, and an outer bottom cover 43.

[0056] The housing 41 is arranged vertically, and the wired charging control module 10 and the wireless charging control module 20 are arranged vertically within the space enclosed by the housing 41.

[0057] To facilitate heat dissipation and reduce heat accumulation, at least one side wall of the housing 41 is provided with a vent 410. In one embodiment, the vent 410 is provided on opposite side walls of the housing 41. This facilitates airflow inside the housing 41, thereby improving heat dissipation.

[0058] Furthermore, a window 411 is provided on the side wall of the housing 41 to facilitate wiring. This window 411 exposes the interfaces of the internally integrated wired charging control module 10 and wireless charging control module 20. Thus, external wiring can be connected to the corresponding interfaces through the window 411. In addition, a protective cover 44 is installed at the aforementioned window 411, and this protective cover 44 has an opening that communicates with the outside.

[0059] The outer top cover 42 is installed at the top opening of the housing 41 to encapsulate the top of the housing 41; the outer bottom cover 43 is installed at the bottom opening of the housing 41 to encapsulate the bottom of the housing 41.

[0060] like Figure 2 As shown, to facilitate the installation and fixing of the integrated wired and wireless charging control system of this embodiment, a mounting component 50 is also provided on the outer bottom cover plate 43. Thus, the charging control system of this embodiment can be easily mounted on a corresponding wall with the help of the mounting component 50.

[0061] like Figure 3 As shown, the mounting assembly 50 includes an inner fixing frame 51 and an outer fixing frame 52. The inner fixing frame 51 is fixed to the outer bottom cover plate 43, and the outer fixing frame 52 is assembled onto one side of the inner fixing frame 51. Both the inner fixing frame 51 and the outer fixing frame 52 have a U-shaped structure, and the inner edge of the inner fixing frame 51 is also provided with an integrally extended ear piece 511. Thus, the mounting assembly 50 can be first fixed to the corresponding wall via the outer fixing frame 52, and then the charging control system of this embodiment can be connected to the ear piece 511 of the inner fixing frame 51.

[0062] As described above, the heat dissipation module 30 is encapsulated in the housing 40, which is used to achieve heat dissipation and assembly fixation of the wired charging control module 10 and the wireless charging control module 20.

[0063] like Figure 4 , 5 As shown, the heat dissipation module 30 includes: a module body 31, a mounting cavity 32 formed on one side of the module body 31, and a heat dissipation structure 33 formed on the other side of the module body 31. Furthermore, the other side of the module body 31 is provided with multiple connecting feet 311 distributed on the outside of the heat dissipation structure 33, and the heat dissipation module 30 is locked to the outer bottom cover plate 43 of the outer casing 40 via the multiple connecting feet 311.

[0064] The mounting cavity 32 forms an assembly space for the wired charging control module 10 and the wireless charging control module 20. The mounting cavity 32 includes side walls 321 on all four sides and several partitions 322 disposed on the module body 31. These partitions 322 enclose multiple sub-cavities suitable for assembling the various components in the wired charging control module 10 and the wireless charging control module 20. Accordingly, the sub-cavities are distributed according to the arrangement of the components in the module.

[0065] In one embodiment, the heat dissipation structure 33 consists of several fins formed on the other side of the module body 31, and the fins are capable of heat conduction with the module body 31. Accordingly, the fins and the module body 31 can be integrally formed. In terms of arrangement, the fins are parallel to each other and maintain an appropriate spacing to facilitate timely heat dissipation.

[0066] In addition, to improve heat dissipation, the integrated wired and wireless charging control system of this embodiment also includes a fan assembly 60 for heat dissipation by the auxiliary heat dissipation module 30.

[0067] Specifically, the fan assembly 60 is disposed on one side of the heat dissipation structure 33. Thus, when the fan assembly 60 is operating, it can deliver airflow to the heat dissipation structure 33, thereby assisting in heat dissipation. The fan assembly 60 includes at least one cooling fan 61.

[0068] In one embodiment, multiple cooling fans 61 are arranged side-by-side on one side of the heat dissipation structure 33 and are further secured by fan covers 62. Correspondingly, the aforementioned ventilation openings 410 are provided on the housings 41 on both sides of the heat dissipation structure 33. Thus, when each cooling fan 61 is working, it can continuously blow external air onto the heat dissipation structure 33.

[0069] In addition, to achieve directional ventilation, an air duct 34 is provided between the other side of the heat dissipation structure 33 and the opposite vent 410. This air duct 34 runs through the air supply direction, with one end connected to the other side of the heat dissipation structure 33 and the other end connected to the vent 410. This facilitates the rapid dissipation of hot air and prevents backflow. Furthermore, cover plates 35 are installed on the vents 410 on both sides of the housing 41.

[0070] The wired charging control module 10 and the wireless charging control module 20 are integrated into the aforementioned mounting cavity 32. In order to achieve an integrated design, the technical solution of this embodiment mainly optimizes the spatial arrangement of the components in the wired charging control module 10 and the wireless charging control module 20, so that the wired and wireless modules can be arranged compactly.

[0071] Specifically, the wired charging control module 10 and the wireless charging control module 20 are integrated on a substrate 36.

[0072] like Figure 6 As shown, the wired charging control module 10 is arranged on the upper part of the mounting cavity 32, and is used to control the charging pile in wired charging mode. The wired charging control module 10 includes a wired control board 11 and a first external power supply 12, which are integrated on one side of the substrate 36, and the first external power supply 12 is arranged at intervals at one end of the wired control board 11.

[0073] The wired control board 11 includes a main control chip 110, a wireless communication chip 111, input terminals 112, output terminals 113, and an internal power supply 114. The main control chip 110 transmits signals with the wireless communication chip 111, input terminals 112, and output terminals 113. The internal power supply 114 serves as a backup power supply and is electrically connected to the main control chip 110 and the wireless communication chip 111. In one embodiment, the wireless communication chip 111 is a 4G-enabled wireless chip.

[0074] Furthermore, the components are arranged as follows: input terminals 112 and output terminals 113 are arranged on one edge of the wired control board 11, and the wireless communication chip 111 is arranged on the other edge of the wired control board 11. The main control chip 110 and the internal power supply 114 are arranged in the middle area of ​​the wired control board 11.

[0075] The first external power supply 12 supplies power to the wired control board 11. It can adopt the form of an existing power module. In the technical solution of this embodiment, the arrangement of the components is further optimized to achieve the purpose of compact arrangement of wired and wireless modules.

[0076] like Figure 7 As shown, the first external power supply 12 includes: an electrolytic capacitor 121, a heat sink 122, a first transformer 123, a resistor 124, and several first capacitors 125.

[0077] Electrolytic capacitor 121 and first transformer 123 are arranged side-by-side on one side of the power supply mounting plate. Heat sink 122 and resistor 124 are arranged opposite to electrolytic capacitor 121 and first transformer 123, and are arranged side-by-side on the other side of the power supply mounting plate. Several first capacitors 125 are arranged approximately side-by-side on one side of first transformer 123 and resistor 124.

[0078] The wireless charging control module 20 is used to control the ground charging device and the vehicle-mounted charging device in wireless charging mode. The wireless charging control module 20 includes: a first wireless control board 21, a second external power supply 22, and a second wireless control board 23.

[0079] The first wireless control board 21 and the second external power supply 22 are arranged on the upper part of the mounting cavity 32, and are arranged side by side with the wired charging control module 10. The first wireless control board 21 is located on one side of the wired control board 11, and the second external power supply 22 is located on one side of the first external power supply 12. The first wireless control board 21 can be a conventional communication control board; the second external power supply 22 has the same structure as the first external power supply 12, but its arrangement direction is opposite to that of the first external power supply 12.

[0080] The second wireless control board 23 is located in the lower part of the mounting cavity 32, and its various devices are located in the sub-cavities of the module body 31.

[0081] like Figure 8 , 9 As shown, the second wireless control board 23 includes: a capacitor box 231, a first inductor 232, a second capacitor 233, a second inductor 234, a third capacitor 235, a fourth capacitor 236, a MOSFET 237, a third inductor 238, a fourth inductor 239, a fifth capacitor 240, a first relay 241, a second transformer 242, a second relay 243, and a heat sink 244.

[0082] by Figure 9 With reference to the orientation of the second wireless control board 23, the components of the second wireless control board 23 are arranged as follows:

[0083] The second capacitor 233 is located at the upper left corner of the substrate 36.

[0084] The first inductor 232 is disposed below the second capacitor 233 and near the left edge of the substrate 36. In one embodiment, there are two sets of first inductors 232, which are arranged side by side from top to bottom.

[0085] The capacitor box 231 is used to control each capacitor component. It is located below the two sets of first inductors 232 and near the left edge of the substrate 36.

[0086] The second inductor 234 and the third capacitor 235 are disposed at the upper end of the substrate 36, arranged side by side from left to right. In one embodiment, there are multiple third capacitors 235, which are arranged in two rows on the substrate 36, and each third capacitor 235 in any row is arranged side by side horizontally.

[0087] The fourth capacitor 236 is located below the plurality of third capacitors 235 in the lower row and is positioned near the right edge of the substrate 36.

[0088] MOSFET 237 is disposed below the fourth capacitor 236 and to the right of the second capacitor 233. In one embodiment, multiple MOSFETs 237 are arranged in two rows on the substrate 36, with each row of MOSFETs 237 arranged horizontally side by side. A heat sink 244 is disposed between the two rows of MOSFETs 237 to assist in heat dissipation.

[0089] The third inductor 238 is disposed below the MOSFET 237 and to the right of the first inductor 232 above it. In one embodiment, there are three groups of third inductors 238, which are arranged horizontally side by side.

[0090] The fourth inductor 239 is disposed below the middle group of third inductors 238, and approximately to the right of the lower first inductor 232. In one embodiment, there are two groups of fourth inductors 239, arranged side by side from top to bottom.

[0091] The fifth capacitor 240 is located at the lower right corner of the substrate 36. In one embodiment, there are multiple fifth capacitors 240, which are arranged in two rows on the substrate 36, with each fifth capacitor 240 in any row arranged vertically side by side.

[0092] The first relay 241, the second transformer 242, and the second relay 243 are arranged side by side from right to left below the fourth inductor 239, and are located to the left of the fifth capacitor 240 in the lower row.

[0093] Correspondingly, the module body 31 has first to fifth sub-cavities 323 to 327 formed by partitions.

[0094] like Figure 10 As shown, the first sub-cavity 323 is formed at the upper part of the module body 31, and is used to house and install the second capacitor 233, the second inductor 234, the fourth capacitor 236, and the MOSFET 237. The first sub-cavity 323 also has a stepped structure to facilitate the arrangement of the devices.

[0095] The second sub-cavity 324 is a horizontally arranged waist-shaped cavity located on the left side below the first sub-cavity 323, and is used to house and install three sets of third inductors 238.

[0096] The third sub-cavity 325 is located below the second sub-cavity 324 and is used to house and install the fourth inductor 239, the fifth capacitor 240, the first relay 241, the second transformer 242, and the second relay 243.

[0097] The fourth sub-cavity 326 is a vertically arranged rectangular cavity located to the right of the second sub-cavity 324 and the third sub-cavity 325, and is used to house and install the first inductor 232.

[0098] The fifth sub-cavity 327 is surrounded by the outer walls of the third sub-cavity 325 and the fourth sub-cavity 326, and is used to house and install the capacitor box 231.

[0099] In summary, this invention adopts a modular design approach, arranging the wired charging control module, wireless charging control module, and heat dissipation module in a specific manner within the same housing. This enables the control system of this invention to possess dual functions of wired and wireless control, fully meeting the actual control requirements of electric vehicle charging.

[0100] The heat dissipation module itself provides good heat dissipation while also assisting in the integrated packaging of the wired charging control module and the wireless charging control module. Through reasonable layout, each module has a high degree of integration while maintaining a small overall size.

[0101] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0102] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. An integrated wired and wireless charging control system, characterized in that, The integrated wired and wireless charging control system includes: a wired charging control module, a wireless charging control module, a heat dissipation module, and a housing; The heat dissipation module is encapsulated in a housing. The heat dissipation module includes: a module body, a mounting cavity formed on one side of the module body, and a heat dissipation structure formed on the other side of the module body. A substrate is disposed in the mounting cavity. The wired charging control module is located in the upper space of the mounting cavity, and includes a wired control board and a first external power supply, which are integrated on one side of the substrate, and the first external power supply is arranged on one side of the wired control board. The wireless charging control module includes: a first wireless control board, a second external power supply, and a second wireless control board. The first wireless control board and the second external power supply are arranged in the upper space of the mounting cavity and integrated on one side of the substrate, and are arranged side by side with the wired charging control module. The second wireless control board is arranged in the lower space of the mounting cavity, and its components are arranged in the corresponding sub-cavities of the mounting cavity. The wired control board includes: a main control chip, a wireless communication chip, input terminals, output terminals, and an internal power supply; the components are arranged as follows: The input terminals and output terminals are arranged on one edge of the wired control board, and the wireless communication chip is arranged on the other edge of the wired control board; the main control chip and internal power supply are arranged in the middle area of ​​the wired control board. The second wireless control board includes: a capacitor box, a first inductor, a second capacitor, a third capacitor, a fourth capacitor, a MOSFET, a third inductor, a fourth inductor, a fifth capacitor, a first relay, a second transformer, and a second relay; The second capacitor is located at the upper left corner of the substrate. The first inductor is disposed below the second capacitor and near the left edge of the substrate. The capacitor box is disposed below the first inductor and near the left edge of the substrate. The second inductor and the third capacitor are disposed at the top of the substrate, and are arranged side by side from left to right; The fourth capacitor is located below the third capacitor and is positioned near the right edge of the substrate. The MOS transistor is positioned below the fourth capacitor and to the right of the second capacitor; The third inductor is located below the MOSFET and to the right of the first inductor; The fourth inductor is disposed below the third inductor and to the right of the first inductor; The fifth capacitor is located at the lower right corner of the substrate. The first relay, the second transformer, and the second relay are arranged side by side from right to left below the fourth inductor and to the left of the fifth capacitor.

2. The integrated wired and wireless charging control system according to claim 1, characterized in that, Ventilation openings are also provided on at least one side wall of the outer casing.

3. The integrated wired and wireless charging control system according to claim 2, characterized in that, The ventilation openings are respectively provided on the walls of the outer casing on both sides of the heat dissipation module.

4. The integrated wired and wireless charging control system according to claim 1, characterized in that, The heat dissipation structure consists of several fins formed on the other side of the module body, and the fins are capable of heat conduction with the module body.

5. The integrated wired and wireless charging control system according to any one of claims 1 to 4, characterized in that, The integrated wired and wireless charging control system further includes a fan assembly; the fan assembly is disposed on one side of the heat dissipation structure.

6. The integrated wired and wireless charging control system according to claim 5, characterized in that, The fan assembly includes: at least one cooling fan; When there are multiple cooling fans, the multiple cooling fans are arranged side by side on one side of the heat dissipation structure, and the multiple cooling fans are further fixed by the fan cover.

7. The integrated wired and wireless charging control system according to claim 1, characterized in that, Both the first external power supply and the second external power supply include: an electrolytic capacitor, a heat sink, a first transformer, a resistor, and several first capacitors; the first external power supply and the second external power supply are configured in reverse. The electrolytic capacitor and the first transformer are arranged side by side on one side of the power supply fixing plate. The heat sink and the resistor are arranged opposite to the electrolytic capacitor and the first transformer and are arranged side by side on the other side of the power supply fixing plate. Several first capacitors are arranged side by side on one side of the first transformer and the resistor.

8. The integrated wired and wireless charging control system according to claim 1, characterized in that, The mounting cavity is formed with first to fifth sub-cavities separated by partitions; The first sub-cavity is formed at the upper part of the module body and is used to house and install the second capacitor, the second inductor, the fourth capacitor, and the MOSFET. The second sub-cavity is a horizontally arranged waist-shaped cavity located on the left side below the first sub-cavity, and is used to house and install the third inductor; The third sub-cavity is located below the second sub-cavity and is used to house and install the fourth inductor, the fifth capacitor, the first relay, the second transformer, and the second relay. The fourth sub-cavity is a vertically arranged rectangular cavity located to the right of the second and third sub-cavities, and is used to house and install the first inductor. The fifth sub-cavity is formed by the outer walls of the third and fourth sub-cavities and is used to house and install the capacitor box.

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