Heat dissipation control method and device for charging station, charging station, and medium

By using a combination of Type I and Type II heat dissipation modules in the charging pile, and adjusting the state of the heat dissipation modules according to the environment and power requirements, the problem of poor heat dissipation in the charging pile is solved, and the output power and safety are improved.

WO2025246340A1PCT designated stage Publication Date: 2025-12-04ZHEJIANG UNIVIEW TECH CO LTD

Patent Information

Application Number
PCT/CN2024/143127
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-05-28
Filing Date
2024-12-27
Publication Date
2025-12-04

AI Technical Summary

Technical Problem

Charging stations have poor heat dissipation in high-altitude areas or when charging at high power, which affects the output power and poses a safety hazard.

Method used

By combining the first and second types of heat dissipation modules, the working state of the heat dissipation modules corresponding to different groups of charging modules is adjusted. Taking advantage of the efficient heat dissipation effect of the second type of heat dissipation module, and considering environmental factors and power requirements, the working mode of the heat dissipation module is optimized.

Benefits of technology

The improved heat dissipation of the charging pile ensures that the output power meets the requirements, avoids excessive increase in hardware costs, and reduces safety hazards.

✦ Generated by Eureka AI based on patent content.

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Abstract

Embodiments of the present application disclose a heat dissipation control method and device for a charging station, a charging station, and a medium. According to the method, in a charging station, heat dissipation modules exclusively corresponding to a same group of charging modules comprise first-type heat dissipation modules and second-type heat dissipation modules, and heat dissipation modules shared by adjacent, different groups of charging modules comprise second-type heat dissipation modules. The heat dissipation performance of the second-type heat dissipation modules is superior to that of the first-type heat dissipation modules. The method comprises: determining a target group of charging modules in the charging station that are in a working state; and adjusting the working states of first-type heat dissipation modules and second-type heat dissipation modules exclusively corresponding to the target group of charging modules, and the working states of second-type heat dissipation modules shared by the target group of charging modules and an adjacent group of charging modules, so as to dissipate heat for the target group of charging modules and ensure that the output power of the target group of charging modules meets requirements.
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Description

A charging pile heat dissipation control method and device, a charging pile, and a medium

[0001] This application claims priority to the Chinese patent application No. 202410668771.1, filed on May 28, 2024, with the Chinese Patent Office, the content of which is incorporated herein by reference in its entirety. TECHNICAL FIELD

[0002] The present application relates to the field of automatic control technology, for example, to a charging pile heat dissipation control method and device, a charging pile, and a medium. BACKGROUND

[0003] Currently, new energy vehicles are gradually popularized, and charging piles are an important part of electric vehicle charging. Charging piles have also gradually become popular.

[0004] During the process of charging a new energy vehicle, the charging power needs to be as consistent as possible with the trend of the new energy vehicle charging curve, so as to achieve efficient charging, meet the performance requirements of the new energy vehicle battery, and prolong the service life of the battery. According to the charging curve, the charging pile needs to output power as consistent as possible with the charging curve. In addition, the requirement for the charging time limit of the new energy vehicle is becoming higher and higher. With the increase of charging speed, the current and voltage will also increase linearly, which leads to an increase in the power of the charging pile inductance module. The higher the power of the charging pile, the more heat it dissipates, and the more important efficient heat dissipation becomes. In areas with high altitudes, the heat dissipation capacity of the charging pile decreases. If the heat cannot be dissipated in time, it will affect the performance of the charging pile, and even cause a major safety accident. SUMMARY

[0005] The embodiments of the present application provide a charging pile heat dissipation control method, device, charging pile, and medium, which can effectively improve the heat dissipation effect of the charging pile without substantially changing the heat dissipation form and excessively increasing the hardware cost.

[0006] According to an aspect of the present application, a charging pile heat dissipation control method is provided. The heat dissipation modules corresponding to the same group of charging modules in the charging pile include first type heat dissipation modules and second type heat dissipation modules, and the heat dissipation modules corresponding to adjacent different groups of charging modules include second type heat dissipation modules. The heat dissipation effect of the second type heat dissipation modules is higher than that of the first type heat dissipation modules. The method comprises:

[0007] determining a target group of charging modules in a working state in the charging pile;

[0008] adjusting working states of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group of charging modules alone, and the second type of heat dissipation module corresponding to the target group of charging modules and the adjacent group of charging modules together, so as to dissipate heat for the target group of charging modules and make the output power of the target group of charging modules meet the requirement.

[0009] According to an aspect of the present application, a charging pile heat dissipation control device is provided, heat dissipation modules corresponding to a same group of charging modules in a charging pile alone include a first type of heat dissipation module and a second type of heat dissipation module, heat dissipation modules corresponding to adjacent different groups of charging modules together include the second type of heat dissipation module; the heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module; the device includes:

[0010] a target group of charging module determination module configured to determine a target group of charging modules in a working state in the charging pile;

[0011] an adjusting module configured to adjust working states of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group of charging modules alone, and the second type of heat dissipation module corresponding to the target group of charging modules and the adjacent group of charging modules together, so as to dissipate heat for the target group of charging modules and make the output power of the target group of charging modules meet the requirement.

[0012] According to another aspect of the present application, a charging pile is provided, the charging pile includes: at least two groups of charging modules, heat dissipation modules corresponding to a same group of charging modules alone include a first type of heat dissipation module and a second type of heat dissipation module, heat dissipation modules corresponding to adjacent different groups of charging modules together include the second type of heat dissipation module; the heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module;

[0013] the charging pile further includes: at least one processor; and

[0014] a memory in data processing connection with the at least one processor; wherein,

[0015] the memory stores a computer program executable by the at least one processor, the computer program is executed by the at least one processor to enable the at least one processor to execute the charging pile heat dissipation control method of any embodiment of the present application.

[0016] According to another aspect of the present application, a computer readable storage medium is provided, the computer readable storage medium stores computer instructions, the computer instructions are used to enable the processor to implement the charging pile heat dissipation control method of any embodiment of the present application when executed.

[0017] The technical scheme of the embodiment of the application is that the heat dissipation modules corresponding to the same group of charging modules in the charging pile respectively include first type heat dissipation modules and second type heat dissipation modules, the heat dissipation modules corresponding to adjacent different groups of charging modules jointly include second type heat dissipation modules; the heat dissipation effect of the second type heat dissipation modules is higher than that of the first type heat dissipation modules; a target group of charging modules in a working state in the charging pile is determined; the working states of the first type heat dissipation modules and the second type heat dissipation modules corresponding to the target group of charging modules respectively, and the working state of the second type heat dissipation modules corresponding to the target group of charging modules and adjacent groups of charging modules are adjusted, so as to dissipate heat for the target group of charging modules and make the output power of the target group of charging modules meet the requirements. The above scheme solves the problem that the heat dissipation effect is poor due to environmental factors, altitude and the like, and the output power of the charging pile is affected, thereby improving the heat dissipation effect by means of the combined working of heat dissipation modules with different heat dissipation effects, and assisting the charging pile to improve the output power. BRIEF DESCRIPTION OF DRAWINGS

[0018] Fig. 1 is a flow chart of a charging pile heat dissipation control method provided by an embodiment of the application;

[0019] Fig. 2 is a first schematic diagram of a heat dissipation module provided by an embodiment of the application;

[0020] Fig. 3 is a second schematic diagram of a heat dissipation module provided by an embodiment of the application;

[0021] Fig. 4 is a third schematic diagram of a heat dissipation module provided by an embodiment of the application;

[0022] Fig. 5 is a flow chart of a charging pile heat dissipation control method provided by another embodiment of the application;

[0023] Fig. 6 is a flow chart of a charging pile heat dissipation control method provided by still another embodiment of the application;

[0024] Fig. 7 is a comparison diagram of strong wind fan pressure correction curves provided by still another embodiment of the application;

[0025] Fig. 8 is a comparison diagram of curves of different fan combinations provided by still another embodiment of the application;

[0026] Fig. 9 is a schematic diagram of a ventilation opening provided by still another embodiment of the application;

[0027] Fig. 10 is a structural schematic diagram of a charging pile heat dissipation control device provided by an embodiment of the application;

[0028] Fig. 11 is a structural schematic diagram of a charging pile heat dissipation control device provided by an embodiment of the application. DETAILED DESCRIPTION

[0029] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings.

[0030] It should be noted that the terms "first," "second," "third," "fourth," "actual," "preset," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.

[0031] Figure 1 is a flowchart of a charging pile heat dissipation control method provided in an embodiment of this application. This embodiment is applicable to situations where charging piles need heat dissipation. Typically, this embodiment is applicable to situations where the heat dissipation effect of the charging pile is reduced due to external environmental influences, thus improving the heat dissipation effect. This method can be executed by a charging pile heat dissipation control device, which can be implemented in hardware and / or software and can be configured in a charging pile heat dissipation control unit. As shown in Figure 1, the method includes:

[0032] S110. Identify the target group charging modules that are in working condition in the charging pile.

[0033] In this embodiment, the charging pile may include at least two sets of charging modules. The heat dissipation modules corresponding individually to each set of charging modules include a first type of heat dissipation module and a second type of heat dissipation module. The heat dissipation modules shared by adjacent sets of charging modules include the second type of heat dissipation module. The heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module. For example, the first type of heat dissipation module is a regular fan, and the second type of heat dissipation module is a high-powered fan. The number of the first and second types of heat dissipation modules is not limited and can be determined according to the heat dissipation requirements and the number of charging modules. For example, as shown in Figure 2, the heat dissipation module directly corresponding to (i.e., individually corresponding to) the first set of charging modules may include both the first and second types of heat dissipation modules. The heat dissipation module located between two adjacent sets of charging modules, shared by the first and second sets of charging modules, includes the second type of heat dissipation module.

[0034] For example, in a typical charging station, one charging gun corresponds to a group of charging modules. During the charging process, not all charging guns are used; only some may be used, meaning some groups of charging modules are in operation. The system can detect the target group of charging modules that are in operation within the charging station. For instance, in Figure 2, if the first group of charging modules is in operation, it is considered the target group; if the second group is in operation, it is considered the target group; and if both groups are in operation, both groups are considered the target group.

[0035] S120. Adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, so as to dissipate heat for the target group charging module and make the output power of the target group charging module meet the requirements.

[0036] In this embodiment, the target group charging module is in a working state, while other group charging modules are not in a working state. Therefore, only the working state of the heat dissipation module that can generate heat dissipation effect on the target group charging module is adjusted, and the heat dissipation modules corresponding to other group charging modules are not adjusted, thus saving energy.

[0037] For example, for the target group charging module, the working states of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module alone, as well as the second type of heat dissipation module that is jointly corresponding to the target group charging module and the adjacent group charging module, are adjusted. In this way, by combining the first type of heat dissipation module and the second type of heat dissipation module, the heat dissipation effect of the target group charging module is effectively improved when heat dissipation is required, thereby helping the target group charging module to increase its output power.

[0038] For example, as shown in Figure 2, if the first group of charging modules is the target group of charging modules, the working states of the first type of heat dissipation module 1 and the second type of heat dissipation module 2, which are individually corresponding to the first group of charging modules, and the second type of heat dissipation module 3, which is jointly corresponding to the first and second groups of charging modules, are adjusted so that the first type of heat dissipation module 1, the second type of heat dissipation module 2, and the second type of heat dissipation module 3 work together to dissipate heat for the first group of charging modules. If the second group of charging modules is the target group of charging modules, the working states of the first type of heat dissipation module 5 and the second type of heat dissipation module 4, which are individually corresponding to the second group of charging modules, and the second type of heat dissipation module 3, which is jointly corresponding to the first and second groups of charging modules, are adjusted so that the first type of heat dissipation module 5, the second type of heat dissipation module 4, and the second type of heat dissipation module 3 work together to dissipate heat for the second group of charging modules.

[0039] For example, adjusting the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and adjacent group charging modules, includes:

[0040] In response to the first level of heat dissipation requirements of the target group charging module, the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module corresponding to the target group charging module and the adjacent group charging module, are all adjusted to the on state.

[0041] In response to the second level of heat dissipation requirements of the target group charging module, the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually are adjusted to the on state, and the second type of heat dissipation module corresponding to the target group charging module and the adjacent group charging module is adjusted to the off state.

[0042] In response to the heat dissipation requirement of the target group charging module being at level three, the first type of heat dissipation module or the second type of heat dissipation module corresponding to the target group charging module individually is adjusted to the on state, and the second type of heat dissipation module corresponding to the target group charging module and the adjacent group charging module is adjusted to the off state.

[0043] The heat dissipation requirements of the target group charging modules corresponding to the first level, the second level, and the third level decrease sequentially.

[0044] The adjustment method for the heat dissipation module can be determined based on the heat dissipation requirements of the target group charging module. These requirements are related to the altitude of the target group charging module and the required output power. If the heat dissipation requirement is high (i.e., the target group charging module's heat dissipation requirement is at level one), the first and second type heat dissipation modules corresponding to the target group charging module alone, as well as the second type heat dissipation module shared by the target group charging module and adjacent charging modules, can all be turned on. If the heat dissipation requirement is moderate (i.e., the target group charging module's heat dissipation requirement is at level two), the first and second type heat dissipation modules corresponding to the target group charging module alone can be turned on, while the second type heat dissipation modules shared by the target group charging module and adjacent charging modules can be turned off. If the heat dissipation requirement is low (i.e., the target group charging module's heat dissipation requirement is at level three), the first or second type heat dissipation module corresponding to the target group charging module alone can be turned on, while the second type heat dissipation modules shared by the target group charging module and adjacent charging modules can be turned off.

[0045] In this embodiment, adjusting the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and adjacent group charging modules, includes:

[0046] If the altitude of the target group charging module is higher than the preset altitude threshold, and / or the power provided by the target group charging module is less than the required power, then the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, are all adjusted to the on state to increase the heat dissipation effect on the target group charging module.

[0047] For example, if the altitude of the target group charging module is higher than a preset altitude threshold, it indicates that the target group charging module is located at a high altitude with low air density and poor heat dissipation. And / or when the power provided by the target group charging module is less than the required power, it indicates that the current performance of the target group charging module is low and cannot meet the charging requirements. Here, the required power is the power required by the charging device that needs power from the target group charging module to charge. In the above cases, the heat dissipation effect can be improved by adjusting the heat dissipation module. The first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging modules, can all be adjusted to the on state, so that all heat dissipation modules that can generate heat dissipation effect for the target group charging module are in the on state, thereby improving the heat dissipation effect, effectively dissipating heat for the target group charging module, and thus improving the charging performance of the target group charging module, enabling it to provide the required power. In addition, in the embodiments of this application, the first type of heat dissipation module and the second type of heat dissipation module are arranged and combined alternately, without having to replace all of them with the second type of heat dissipation module, avoiding excessive increase in hardware costs, and effectively improving the heat dissipation effect.

[0048] In one feasible solution, all heat dissipation modules corresponding to two adjacent sets of charging modules include a first type of heat dissipation module, a second type of heat dissipation module, a third type of heat dissipation module, a fourth type of heat dissipation module, and a fifth type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules. The heat dissipation modules corresponding to two adjacent sets of charging modules include heat dissipation modules individually corresponding to each of the two adjacent sets of charging modules and heat dissipation modules commonly corresponding to the two adjacent sets of charging modules.

[0049] The arrangement of the heat dissipation modules is shown in Figure 3. If the first group of charging modules is the target group of charging modules, the working states of the first type of heat dissipation module 1, the first type of heat dissipation module 2, the second type of heat dissipation module 3, and the second type of heat dissipation module 4 are adjusted so that the first type of heat dissipation module 1, the first type of heat dissipation module 2, the second type of heat dissipation module 3, and the second type of heat dissipation module 4 work together to dissipate heat for the first group of charging modules. If the heat dissipation requirement of the first group of charging modules is high, the first type of heat dissipation module 1, the first type of heat dissipation module 2, the second type of heat dissipation module 3, and the second type of heat dissipation module 4 can all be controlled to be in the on state. If the heat dissipation requirement of the first group of charging modules is moderate, the first type of heat dissipation module 1, the first type of heat dissipation module 2, and the second type of heat dissipation module 3 can be controlled to be in the on state, and the other heat dissipation modules in the first type of heat dissipation module 1, the first type of heat dissipation module 2, and the second type of heat dissipation module 3, as well as the second type of heat dissipation module 4, can be controlled to be in the off state. If the second group of charging modules is the target group of charging modules, the working states of the first type of heat dissipation module 6, the first type of heat dissipation module 5, the second type of heat dissipation module 4, and the second type of heat dissipation module 3 are adjusted so that the first type of heat dissipation module 6, the first type of heat dissipation module 5, the second type of heat dissipation module 4, and the second type of heat dissipation module 3 work together to dissipate heat for the second group of charging modules. If the second group of charging modules has a high demand for heat dissipation, the first type of heat dissipation module 6, the first type of heat dissipation module 5, the second type of heat dissipation module 4, and the second type of heat dissipation module 3 are all controlled to be in the on state. If the second group of charging modules has a moderate demand for heat dissipation, the first type of heat dissipation module 6, the first type of heat dissipation module 5, and the second type of heat dissipation module 4 are controlled to be in the on state, and the other heat dissipation modules in the first type of heat dissipation module 6, the first type of heat dissipation module 5, and the second type of heat dissipation module 4, as well as the second type of heat dissipation module 3, are all controlled to be in the off state.

[0050] In another feasible solution, all heat dissipation modules corresponding to two adjacent sets of charging modules include a second type of heat dissipation module, a first type of heat dissipation module, a second type of heat dissipation module, a first type of heat dissipation module, and a second type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules. The heat dissipation modules corresponding to two adjacent sets of charging modules include heat dissipation modules that are individually corresponding to each of the two adjacent sets of charging modules and heat dissipation modules that are commonly corresponding to the two adjacent sets of charging modules.

[0051] The arrangement of the heat dissipation modules is shown in Figure 4. If the first group of charging modules is the target group of charging modules, the working states of the second type of heat dissipation module 1, the first type of heat dissipation module 2, and the second type of heat dissipation module 3 corresponding to the first group of charging modules are adjusted to make the second type of heat dissipation module 1, the first type of heat dissipation module 2, and the second type of heat dissipation module 3 work together to dissipate heat for the first group of charging modules. If the heat dissipation requirement of the first group of charging modules is high, the second type of heat dissipation module 1, the first type of heat dissipation module 2, and the second type of heat dissipation module 3 can all be controlled to be in the on state. If the heat dissipation requirement of the first group of charging modules is moderate, the second type of heat dissipation module 1 and the first type of heat dissipation module 2 can be controlled to be in the on state, and the second type of heat dissipation module 3 can be in the off state. If the heat dissipation requirement of the first group of charging modules is low, the second type of heat dissipation module 1 or the first type of heat dissipation module 2 can be controlled to be in the on state, and the second type of heat dissipation module 3 can be in the off state. If the second group of charging modules is the target group of charging modules, the working states of the second type of heat dissipation module 5, the first type of heat dissipation module 4, and the second type of heat dissipation module 3 corresponding to both the first and second group of charging modules are adjusted to enable the second type of heat dissipation module 5, the first type of heat dissipation module 4, and the second type of heat dissipation module 3 to work together to dissipate heat for the second group of charging modules. If the second group of charging modules has a high demand for heat dissipation, the second type of heat dissipation module 5, the first type of heat dissipation module 4, and the second type of heat dissipation module 3 can all be controlled to be in the on state. If the second group of charging modules has a moderate demand for heat dissipation, the second type of heat dissipation module 5 and the first type of heat dissipation module 4 can be controlled to be in the on state, and the second type of heat dissipation module 3 can be in the off state. If the second group of charging modules has a low demand for heat dissipation, the second type of heat dissipation module 5 or the first type of heat dissipation module 4 can be controlled to be in the on state, and the second type of heat dissipation module 3 can be in the off state.

[0052] The technical solution of this application embodiment includes a heat dissipation module for each group of charging modules in a charging pile, comprising a first type of heat dissipation module and a second type of heat dissipation module. A heat dissipation module shared by adjacent groups of charging modules also includes a second type of heat dissipation module. The heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module. A target group of charging modules in the charging pile is identified as being in operation. The operating states of the first and second type of heat dissipation modules individually corresponding to the target group of charging modules, as well as the second type of heat dissipation module shared by the target group of charging modules and adjacent groups of charging modules, are adjusted to dissipate heat from the target group of charging modules so that the output power of the target group of charging modules meets the requirements. This solution solves the problem of poor heat dissipation effect due to environmental factors, altitude, etc., which affects the output power of the charging pile. It improves the heat dissipation effect by combining heat dissipation modules with different heat dissipation effects, thereby assisting the charging pile in increasing its output power.

[0053] Figure 5 is a flowchart of a charging pile heat dissipation control method according to another embodiment of this application. This embodiment is a refinement based on the above embodiment; solutions not described in detail in this embodiment are found in the above embodiment. As shown in Figure 5, the method of this embodiment includes the following steps:

[0054] S210. Identify the target group charging modules that are in operation in the charging pile.

[0055] S220. Determine the current altitude of the target group charging module and / or the required power corresponding to the current charging progress in the charging curve.

[0056] For example, the current altitude of the target group charging module can be determined based on its current latitude and longitude, and the relationship between latitude, longitude, and altitude in the map data. And / or, the power demand of the charging equipment on the target group charging module can be determined based on the charging curve of the charging equipment powered by the target group charging module and its current charging progress.

[0057] S230. Based on the current altitude and / or the required power, adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, so that the heat dissipation effect generated by the heat dissipation module is positively correlated with the current altitude and / or the required power.

[0058] For example, the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging modules, can be adaptively adjusted according to the current altitude and / or power demand. This makes the heat dissipation effect of the heat dissipation module on the target group charging module positively correlated with the current altitude and / or power demand of the target group charging module. The higher the current altitude, the better the heat dissipation effect of the heat dissipation module. The greater the power demand, the better the heat dissipation effect of the heat dissipation module.

[0059] In this embodiment of the application, adjusting the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, and the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging modules, according to the current altitude and / or the required power, includes:

[0060] Based on the pre-set positive correlation between altitude ranges and altitude scores, determine the target altitude score corresponding to the current altitude; and / or, based on the pre-set positive correlation between power ranges and power scores, determine the target power score corresponding to the required power;

[0061] Based on the target altitude score and / or target power score, and the pre-determined correlation between the score and the working mode of the heat dissipation module combination, determine the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module alone, as well as the working state of the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module.

[0062] Among them, in the predetermined relationship between the score and the working mode of the heat dissipation module combination, the heat dissipation effect generated by the heat dissipation module working in the combination mode is positively correlated with the score, and the score includes the target altitude score, the target power score, or the sum of the target altitude score and the target power score.

[0063] For example, determining the target altitude score corresponding to the current altitude based on a pre-set positive correlation between altitude ranges and altitude scores includes:

[0064] The current altitude is determined to be within the first altitude range of the preset altitude range. Based on the positive correlation between the preset altitude range and the altitude score, the altitude score corresponding to the first altitude range is determined, and the altitude score corresponding to the first altitude range is determined as the target altitude score corresponding to the current altitude.

[0065] For example, determining the target power score corresponding to the required power based on a pre-set positive correlation between power ranges and power scores includes:

[0066] The required power is determined to be located in a first power range within the preset power range. Based on the positive correlation between the preset power range and the power score, the power score corresponding to the first power range is determined, and the power score corresponding to the first power range is determined as the target power score corresponding to the required power.

[0067] For example, the correlation between altitude ranges and altitude scores can be determined, as shown in Table 1. Table 1 provides statistics for altitudes above 2000 meters, with altitude scores increasing from a1 to a7. The current altitude H of the target group's charging module can be determined, and based on Table 1, the altitude range in which the current altitude H falls can be determined, thereby determining the corresponding altitude score.

[0068] Table 1

[0069] For example, the correlation between power range and power score can be predetermined, as shown in Table 2. Table 2 presents statistics for power levels less than or equal to 120 kW. Power scores increase from b1 to b5. It can be determined which power range the charging device's required power W for the target group of charging modules falls within, thereby determining the corresponding power score.

[0070] Table 2

[0071] The operating state of the heat dissipation module can be determined based on the altitude score and / or power score. For example, if the altitude score is a7, indicating a high altitude, the heat dissipation module needs to achieve a high heat dissipation effect. Therefore, the first and second type heat dissipation modules corresponding to the target group charging module individually, as well as the second type heat dissipation module shared by the target group charging module and adjacent groups of charging modules, can all be kept in the on state. If the altitude score is a3, indicating a relatively high altitude, the heat dissipation module needs to achieve a relatively high heat dissipation effect. Therefore, the first and second type heat dissipation modules corresponding to the target group charging module individually can be kept in the on state, while the second type heat dissipation module shared by the target group charging module and adjacent groups of charging modules can be kept in the off state. The method of adjusting the operating state of the heat dissipation module based on the power score or the sum of the altitude score and the power score is similar. Combinations of operating modes for the first and second type heat dissipation modules corresponding to the target group charging module individually, and the second type heat dissipation module shared by the target group charging module and adjacent groups of charging modules, can include: simultaneously being on, any one heat dissipation module being on, or any two heat dissipation modules being on, thereby achieving different heat dissipation effects. The correlation between the score and the working mode of the heat dissipation module is determined in advance, so that the working mode combination with different heat dissipation effects is matched with the score.

[0072] This application provides a method for controlling the heat dissipation of a charging pile. The method determines the current altitude of the target group of charging modules and / or the required power corresponding to the current charging progress in the charging curve. Based on the current altitude and / or the required power, the operating states of the first and second types of heat dissipation modules individually corresponding to the target group of charging modules, as well as the second type of heat dissipation module shared by the target group of charging modules and adjacent groups of charging modules, are adjusted so that the heat dissipation effect generated by the heat dissipation modules is positively correlated with the current altitude and / or the required power. This scheme, combined with the current altitude and / or required power of the target group of charging modules, adaptively determines the operating state of the heat dissipation modules, thereby achieving a gradient adjustment of the heat dissipation effect. This ensures that the heat dissipation effect corresponding to the adjustment method meets the heat dissipation requirements of the target group of charging modules, assists the target group of charging modules in providing appropriate power, and avoids wasting the power supply resources of the heat dissipation modules.

[0073] Figure 6 is a flowchart of a charging pile heat dissipation control method according to another embodiment of this application. This embodiment is a refinement based on the above embodiments; solutions not described in detail in this embodiment are found in the above embodiments. As shown in Figure 6, the method of this embodiment includes the following steps:

[0074] S310. Identify the target group charging modules that are in working condition in the charging pile.

[0075] S320. Adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, so as to dissipate heat for the target group charging module and make the output power of the target group charging module meet the requirements.

[0076] In this embodiment of the application, before adjusting the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, and the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging modules, the method further includes:

[0077] Control the output of the first type of heat dissipation module to achieve the maximum heat dissipation effect, and determine the first air pressure data of the first type of heat dissipation module;

[0078] The output of the second type of heat dissipation module is controlled to achieve the maximum heat dissipation effect, and the power supply voltage of the second type of heat dissipation module is adjusted or pulse width modulation is applied to the second type of heat dissipation module so that the difference between the second wind pressure data and the first wind pressure data of the second type of heat dissipation module is less than a preset threshold.

[0079] For example, the heat dissipation effects of the first type of heat dissipation module and the second type of heat dissipation module may differ. For instance, the first type of heat dissipation module might be a regular fan, while the second type is a high-powered fan. The air pressure of the first and second types of heat dissipation modules may differ. If both types of heat dissipation modules are turned on simultaneously, a backflow phenomenon might occur from the first type of heat dissipation module. In this embodiment, before adjusting the heat dissipation modules, the air pressure data of the heat dissipation modules is adjusted. The output of the first type of heat dissipation module is controlled to achieve maximum heat dissipation effect. A first air pressure data for the first type of heat dissipation module is determined. The output of the second type of heat dissipation module is controlled to achieve maximum heat dissipation effect. The power supply voltage of the second type of heat dissipation module is adjusted, or pulse width modulation is applied to the second type of heat dissipation module, thereby adjusting the air pressure of the second type of heat dissipation module. This ensures that the difference between the second and first air pressure data of the second type of heat dissipation module is less than a preset threshold, preventing backflow from the first type of heat dissipation module. The preset threshold can be the maximum air pressure difference value that will not cause backflow.

[0080] For example, as shown in Figure 7, before wind pressure calibration, the wind pressure-airflow curve 2 of the powerful fan is significantly higher than the wind pressure-airflow curve 1 of a single ordinary fan. After wind pressure calibration, the difference between the wind pressure-airflow curve 3 of the powerful fan and the wind pressure-airflow curve 1 of a single ordinary fan is significantly reduced. Based on the powerful fan after wind pressure calibration, the wind pressure-airflow curves 4 of two ordinary fans and one powerful fan are obtained. The comparison diagram of the wind pressure-airflow curves 4 of two ordinary fans and one powerful fan and the wind pressure-airflow curve 5 of three ordinary fans is shown in Figure 8. It can be clearly seen that compared with three ordinary fans, the airflow of two ordinary fans and one powerful fan is significantly enhanced, which can effectively improve the heat dissipation effect.

[0081] S330. Determine the current altitude of the target group charging module and / or the required power corresponding to the current charging progress in the charging curve, and determine the opening size of the ventilation port between the target group charging module and the heat dissipation module so that the opening size is positively correlated with the current altitude and / or the required power.

[0082] For example, a vent exists between the charging module and the heat dissipation module. For a target group of charging modules in operation, the opening size of the vent can be determined based on the current altitude and / or required power. This ensures that the opening size matches the heat dissipation effect of the heat dissipation module, guaranteeing that the cooling air generated by the heat dissipation module can smoothly pass through the vent and reach the target group of charging modules. Since the heat dissipation effect corresponding to the operating state of the heat dissipation module is positively correlated with the current altitude and / or required power, and the greater the heat dissipation effect of the heat dissipation module, the larger the required vent size, the vent size is also positively correlated with the current altitude and / or required power, thus ensuring that the cooling air generated by the heat dissipation module can smoothly pass through the vent.

[0083] For example, as shown in Figure 9, the vent opening size is smallest in the default state. From the default state to the enhanced state 3, the vent opening gradually increases, and the amount of heat dissipation air passing through the vent also gradually increases. Under the same operating mode of the heat dissipation module, the heat dissipation effect gradually increases. When the current altitude and / or power demand is low, the vent opening size can be set to enhanced state 1; when the current altitude and / or power demand is moderate, the vent opening size can be set to enhanced state 2; and when the current altitude and / or power demand is high, the vent opening size can be set to enhanced state 3.

[0084] S340. If a charging module is not in operation, adjust the opening of the vent corresponding to that charging module to the minimum.

[0085] For example, if the target group charging module changes to a non-working state, or other group charging modules are in a non-working state, the opening of the corresponding vent is adjusted to the minimum, such as the default state in Figure 9, to reduce dust and impurities from entering the charging module, causing pollution to the charging module, and affecting the performance of the charging module.

[0086] It should be noted that S320 and S330-S340 in the embodiments of this application can be executed simultaneously to help each other improve the heat dissipation effect.

[0087] This application provides a method for controlling the heat dissipation of a charging pile. The method determines the current altitude of the target group's charging modules and / or the required power corresponding to the current charging progress in the charging curve. It also determines the opening size of the ventilation opening between the target group's charging modules and the heat dissipation module, ensuring that the opening size is positively correlated with the current altitude and / or the required power. If a charging module is not in operation, the opening of the ventilation opening corresponding to that module is minimized. This solution adjusts the ventilation opening size in accordance with the heat dissipation effect of the heat dissipation module, ensuring that the ventilation opening size matches the heat dissipation airflow and that the heat dissipation airflow can smoothly pass through the ventilation opening to the target group's charging modules for heat dissipation. Furthermore, it minimizes the ventilation opening when necessary to prevent dust and impurities from entering the target group's charging modules and causing contamination.

[0088] Figure 10 is a schematic diagram of a charging pile heat dissipation control device provided in an embodiment of this application. The device can execute the charging pile heat dissipation control method provided in any embodiment of this application and has the corresponding functional modules for executing the method.

[0089] The heat dissipation modules corresponding to each group of charging modules in a charging pile include a first type of heat dissipation module and a second type of heat dissipation module. The heat dissipation modules corresponding to adjacent groups of charging modules include the second type of heat dissipation module. The heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module.

[0090] As shown in Figure 10, the device includes:

[0091] The target group charging module determination module 410 is configured to determine the target group charging modules that are in working condition in the charging pile.

[0092] The adjustment module 420 is configured to adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module commonly corresponding to the target group charging module and the adjacent group charging module, so as to dissipate heat for the target group charging module and ensure that the output power of the target group charging module meets the requirements.

[0093] In this embodiment, the adjustment module 420 adjusts the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module commonly corresponding to the target group charging module and adjacent group charging modules, including:

[0094] If the altitude of the target group charging module is higher than the preset altitude threshold, and / or the power provided by the target group charging module is less than the required power, then the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, are all adjusted to the on state to increase the heat dissipation effect on the target group charging module.

[0095] In this embodiment, the adjustment module 420 adjusts the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module commonly corresponding to the target group charging module and adjacent group charging modules, including:

[0096] Determine the required power corresponding to the current altitude and / or current charging progress in the charging curve of the target group charging module;

[0097] Based on the current altitude and / or the required power, adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, so that the heat dissipation effect generated by the heat dissipation module is positively correlated with the current altitude and / or the required power.

[0098] In this embodiment, the adjustment module 420 adjusts the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, according to the current altitude and / or the required power, including:

[0099] Based on the pre-set positive correlation between altitude ranges and altitude scores, determine the target altitude score corresponding to the current altitude; and / or, based on the pre-set positive correlation between power ranges and power scores, determine the target power score corresponding to the required power;

[0100] Based on the target altitude score and / or target power score, and the pre-determined correlation between the score and the working mode of the heat dissipation module combination, determine the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module alone, as well as the working state of the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module.

[0101] Among them, in the predetermined relationship between the score and the working mode of the heat dissipation module combination, the heat dissipation effect generated by the heat dissipation module working in the combination mode is positively correlated with the score, and the score includes the target altitude score, the target power score, or the sum of the target altitude score and the target power score.

[0102] In this embodiment of the application, before adjusting the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, and the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, the device further includes:

[0103] The control module is configured to control the output of the first type of heat dissipation module to achieve the maximum heat dissipation effect and to determine the first air pressure data of the first type of heat dissipation module.

[0104] The wind pressure calibration module is configured to control the output of the second type of heat dissipation module to achieve the maximum heat dissipation effect, and to adjust the power supply voltage of the second type of heat dissipation module or to perform pulse width modulation on the second type of heat dissipation module so that the difference between the second wind pressure data and the first wind pressure data of the second type of heat dissipation module is less than a preset threshold.

[0105] In this embodiment of the application, the device further includes:

[0106] The first opening adjustment module is configured to determine the current altitude and / or the required power corresponding to the current charging progress in the charging curve of the target group charging module, and to determine the opening size of the ventilation port between the target group charging module and the heat dissipation module, so that the opening size is positively correlated with the current altitude and / or the required power.

[0107] The second opening adjustment module is configured to minimize the opening of the vent corresponding to a charging module if the charging module is not in operation.

[0108] In the embodiments of this application, all heat dissipation modules corresponding to two adjacent sets of charging modules include a first type of heat dissipation module, a second type of heat dissipation module, a third type of heat dissipation module, a fourth type of heat dissipation module, and a fifth type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules; or all heat dissipation modules corresponding to two adjacent sets of charging modules include a second type of heat dissipation module, a first type of heat dissipation module, a second type of heat dissipation module, a third type of heat dissipation module, and a fifth type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules.

[0109] The charging pile heat dissipation control device provided in this application embodiment can execute a charging pile heat dissipation control method provided in any embodiment of this application, and has the corresponding functional modules for executing the method.

[0110] This application embodiment also provides a charging pile, the charging pile including: at least two sets of charging modules, the heat dissipation module corresponding to each charging module in the same set includes a first type of heat dissipation module and a second type of heat dissipation module, the heat dissipation module corresponding to adjacent different sets of charging modules includes a second type of heat dissipation module; the heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module;

[0111] The charging pile also includes: at least one processor; and

[0112] The memory is connected to the at least one processor for data processing; wherein,

[0113] The memory stores a computer program that can be executed by the at least one processor, which is then executed by the at least one processor to enable the at least one processor to execute the charging pile heat dissipation control method of any embodiment of this application.

[0114] Figure 11 shows a schematic diagram of the structure of the charging pile heat dissipation control method execution device 10, which can be used to implement embodiments of this application. The charging pile heat dissipation control device is intended to represent various forms of digital computers, such as laptop computers, desktop computers, workbenches, personal digital assistants, servers, blade servers, mainframe computers, and other suitable computers. The charging pile heat dissipation control device can also represent various forms of mobile devices, such as personal digital processors, cellular phones, smartphones, wearable devices (such as helmets, glasses, watches, etc.), and other similar computing devices. The components shown herein, their connections and relationships, and their functions are merely examples and are not intended to limit the implementation of the application described and / or claimed herein.

[0115] As shown in Figure 11, the charging pile heat dissipation control device 10 includes at least one processor 11 and a memory, such as a read-only memory (ROM) 12 or a random access memory (RAM) 13, connected to the at least one processor 11 for data processing. The memory stores computer programs executable by the at least one processor. The processor 11 can perform various appropriate actions and processes based on the computer program stored in the ROM 12 or loaded from the storage unit 18 into the RAM 13. The RAM 13 can also store various programs and data required for the operation of the charging pile heat dissipation control device 10. The processor 11, ROM 12, and RAM 13 are interconnected via a bus 14. An input / output (I / O) interface 15 is also connected to the bus 14.

[0116] Multiple components in the charging pile heat dissipation control device 10 are connected to the I / O interface 15, including: an input unit 16, such as a keyboard, mouse, etc.; an output unit 17, such as various types of displays, speakers, etc.; a storage unit 18, such as a disk, optical disk, etc.; and a data processing unit 19, such as a network card, modem, wireless data processing transceiver, etc. The data processing unit 19 allows the charging pile heat dissipation control device 10 to exchange information / data with other devices through computer networks such as the Internet and / or various telecommunications networks.

[0117] Processor 11 can be a variety of general-purpose and / or special-purpose processing components with processing and computing capabilities. Some examples of processor 11 include, but are not limited to, a central processing unit (CPU), a graphics processing unit (GPU), various special-purpose artificial intelligence (AI) computing chips, various processors running machine learning model algorithms, digital signal processors (DSPs), and any suitable processor, controller, microcontroller, etc. Processor 11 performs the various methods and processes described above, such as the charging pile heat dissipation control method.

[0118] In some embodiments, the charging pile heat dissipation control method may be implemented as a computer program tangibly contained in a computer-readable storage medium, such as storage unit 18. In some embodiments, part or all of the computer program may be loaded and / or installed on the charging pile heat dissipation control device 10 via ROM 12 and / or data processing unit 19. When the computer program is loaded into RAM 13 and executed by processor 11, one or more steps of the charging pile heat dissipation control method described above may be performed. Alternatively, in other embodiments, processor 11 may be configured to perform the charging pile heat dissipation control method by any other suitable means (e.g., by means of firmware).

[0119] Various embodiments of the systems and techniques described above herein can be implemented in digital electronic circuit systems, integrated circuit systems, field-programmable gate arrays (FPGAs), application-specific integrated circuits (ASICs), application-specific standard parts (ASSPs), systems-on-chips (SoCs), complex programmable logic devices (CPLDs), computer hardware, firmware, software, and / or combinations thereof. These various embodiments may include implementations in one or more computer programs that can be executed and / or interpreted on a programmable system including at least one programmable processor, which may be a dedicated or general-purpose programmable processor, capable of receiving data and instructions from a storage system, at least one input device, and at least one output device, and transmitting data and instructions to the storage system, the at least one input device, and the at least one output device.

[0120] Computer programs used to implement the methods of this application may be written in any combination of one or more programming languages. These computer programs may be provided to the processor of a general-purpose computer, a special-purpose computer, or other programmable charging pile heat dissipation control device, such that when executed by the processor, the computer programs cause the functions / operations specified in the flowcharts and / or block diagrams to be implemented. The computer programs may be executed entirely on the machine, partially on the machine, or as a standalone software package, partially on the machine and partially on a remote machine, or entirely on a remote machine or server.

[0121] In the context of this application, a computer-readable storage medium can be a tangible medium that may contain or store a computer program for use by or in conjunction with an instruction execution system, apparatus, or device. A computer-readable storage medium can be, but is not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, apparatus, or devices, or any suitable combination of the foregoing. Alternatively, a computer-readable storage medium can be a machine-readable signal medium. More specific examples of machine-readable storage media include electrical connections based on one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, compact disc-read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.

[0122] To provide user interaction, the systems and techniques described herein can be implemented on a charging pile thermal control device, which includes: a display device (e.g., a CRT (Cathode Ray Tube) or LCD (Liquid Crystal Display) monitor) for displaying information to the user; and a keyboard and pointing device (e.g., a mouse or trackball) through which the user provides input to the charging pile thermal control device. Other types of devices can also be used to provide user interaction; for example, feedback provided to the user can be any form of sensory feedback (e.g., visual feedback, auditory feedback, or tactile feedback); and input from the user can be received in any form (including sound input, voice input, or tactile input).

[0123] The systems and technologies described herein can be implemented in computing systems that include backend components (e.g., as data servers), or middleware components (e.g., application servers), or frontend components (e.g., user computers with graphical user interfaces or web browsers through which users can interact with implementations of the systems and technologies described herein), or any combination of such backend, middleware, or frontend components. The components of the system can be interconnected through digital data processing (e.g., data processing networks) of any form or medium. Examples of data processing networks include local area networks (LANs), wide area networks (WANs), blockchain networks, and the Internet.

[0124] A computing system can include clients and servers. Clients and servers are generally geographically separated and typically interact via data processing networks. The client-server relationship is created by computer programs running on the respective computers and having a client-server relationship with each other. The server can be a cloud server, also known as a cloud computing server or cloud host, which is a hosting product within the cloud computing service system. It addresses the shortcomings of traditional physical hosts and Virtual Private Server (VPS) services, such as high management difficulty and weak business scalability.

[0125] It should be understood that the various forms of processes shown above can be used to rearrange, add, or delete steps. For example, the steps described in this application can be executed in parallel, sequentially, or in different orders, as long as the desired information of the technical solution of this application can be achieved, and this is not limited herein.

[0126] The specific embodiments described above do not constitute a limitation on the scope of protection of this application. Those skilled in the art should understand that various modifications, combinations, sub-combinations, and substitutions can be made according to design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the scope of protection of this application.

Claims

1. A method for controlling heat dissipation in a charging pile, wherein the heat dissipation module corresponding to each group of charging modules in the charging pile includes a first type of heat dissipation module and a second type of heat dissipation module, and the heat dissipation module shared by adjacent groups of charging modules includes the second type of heat dissipation module; the heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module; the method includes: Identify the target group of charging modules that are in operation within the charging pile; Adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module that is shared by the target group charging module and the adjacent group charging module, in order to dissipate heat for the target group charging module so that the output power of the target group charging module meets the requirements.

2. The method according to claim 1, wherein, Adjusting the operating state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and adjacent group charging modules, includes: In response to the first level of heat dissipation requirements of the target group charging module, the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module corresponding to the target group charging module and the adjacent group charging module, are all adjusted to the on state. In response to the second level of heat dissipation requirements of the target group charging module, the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually are adjusted to the on state, and the second type of heat dissipation module corresponding to the target group charging module and the adjacent group charging module is adjusted to the off state. In response to the heat dissipation requirement of the target group charging module being at level three, the first type of heat dissipation module or the second type of heat dissipation module corresponding to the target group charging module individually is adjusted to the on state, and the second type of heat dissipation module corresponding to the target group charging module and the adjacent group charging module is adjusted to the off state. The heat dissipation requirements of the target group charging modules corresponding to the first level, the second level, and the third level decrease sequentially.

3. The method according to claim 1, wherein, Adjusting the operating state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and adjacent group charging modules, includes: In response to the target group charging module's altitude being higher than a preset altitude threshold, and the target group charging module providing power being less than at least one of the required power, the first type of heat dissipation module and the second type of heat dissipation module corresponding to the target group charging module individually, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, are all adjusted to the on state to increase the heat dissipation effect on the target group charging module.

4. The method according to claim 1, wherein, Adjusting the operating state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and adjacent group charging modules, includes: Determine at least one of the current altitude of the target group charging module and the required power corresponding to the current charging progress in the charging curve; Based on at least one of the current altitude and the required power, adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, so that the heat dissipation effect generated by the heat dissipation module is positively correlated with at least one of the current altitude and the required power.

5. The method according to claim 4, wherein, Determining the required power corresponding to the current charging progress in the charging curve of the target group charging module includes: Based on the charging curve of the charging device powered by the target group charging module and the current charging progress, determine the power requirement of the charging device for the target group charging module.

6. The method according to claim 4, wherein, Based on at least one of the current altitude and the required power, adjust the operating state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module jointly corresponding to the target group charging module and adjacent group charging modules, including: The process involves determining at least one of the following: determining the target altitude score corresponding to the current altitude based on a pre-set positive correlation between altitude ranges and altitude scores; and determining the target power score corresponding to the required power based on a pre-set positive correlation between power ranges and power scores. Based on at least one of the target altitude score and the target power score, and the predetermined correlation between the score and the working mode of the heat dissipation module combination, determine the working state of the first type of heat dissipation module and the second type of heat dissipation module that each target group charging module individually corresponds to, and the working state of the second type of heat dissipation module that the target group charging module and the adjacent group charging module jointly correspond to. Among them, in the predetermined relationship between the score and the working mode of the heat dissipation module combination, the heat dissipation effect generated by the heat dissipation module working in the combination mode is positively correlated with the score, and the score includes the target altitude score, the target power score, or the sum of the target altitude score and the target power score.

7. The method according to claim 6, wherein, Based on the pre-set positive correlation between altitude ranges and altitude scores, the target altitude score corresponding to the current altitude is determined, including: The current altitude is determined to be within the first altitude range of the preset altitude range. Based on the positive correlation between the preset altitude range and the altitude score, the altitude score corresponding to the first altitude range is determined, and the altitude score corresponding to the first altitude range is determined as the target altitude score corresponding to the current altitude.

8. The method according to claim 6, wherein, Based on the pre-set positive correlation between power ranges and power scores, the target power score corresponding to the required power is determined, including: The required power is determined to be located in a first power range within the preset power range. Based on the positive correlation between the preset power range and the power score, the power score corresponding to the first power range is determined, and the power score corresponding to the first power range is determined as the target power score corresponding to the required power.

9. The method according to claim 1, before adjusting the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, and the second type of heat dissipation module jointly corresponding to the target group charging module and the adjacent group charging module, the method further includes: Control the output of the first type of heat dissipation module to achieve the maximum heat dissipation effect, and determine the first air pressure data of the first type of heat dissipation module; The output of the second type of heat dissipation module is controlled to achieve the maximum heat dissipation effect, and the power supply voltage of the second type of heat dissipation module is adjusted or pulse width modulation is applied to the second type of heat dissipation module so that the difference between the second wind pressure data and the first wind pressure data of the second type of heat dissipation module is less than a preset threshold.

10. The method according to claim 1, further comprising: Determine at least one of the current altitude of the target group charging module and the required power corresponding to the current charging progress in the charging curve, and determine the opening size of the ventilation port between the target group charging module and the heat dissipation module, so that the opening size is positively correlated with at least one of the current altitude and the required power; In response to the presence of a non-operating charging module, the opening of the vent corresponding to the charging module is adjusted to its minimum.

11. The method according to claim 1, wherein, All heat dissipation modules corresponding to two adjacent sets of charging modules include a first type of heat dissipation module, a second type of heat dissipation module, a third type of heat dissipation module, a fourth type of heat dissipation module, and a fifth type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules.

12. The method according to claim 1, wherein, All heat dissipation modules corresponding to two adjacent sets of charging modules include a second type of heat dissipation module, a first type of heat dissipation module, a second type of heat dissipation module, and a second type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules.

13. A heat dissipation control device for a charging pile, wherein the heat dissipation module corresponding to each group of charging modules in the charging pile includes a first type of heat dissipation module and a second type of heat dissipation module, and the heat dissipation module shared by adjacent groups of charging modules includes the second type of heat dissipation module; the heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module; the device includes: The target group charging module determination module is configured to determine the target group charging modules that are in operation in the charging pile. The adjustment module is configured to adjust the working state of the first type of heat dissipation module and the second type of heat dissipation module individually corresponding to the target group charging module, as well as the second type of heat dissipation module commonly corresponding to the target group charging module and the adjacent group charging modules, so as to dissipate heat for the target group charging module and ensure that the output power of the target group charging module meets the requirements.

14. A charging pile, comprising: There are at least two sets of charging modules. The heat dissipation modules corresponding to each set of charging modules individually include a first type of heat dissipation module and a second type of heat dissipation module. The heat dissipation modules corresponding to adjacent sets of charging modules together include the second type of heat dissipation module. The heat dissipation effect of the second type of heat dissipation module is higher than that of the first type of heat dissipation module. The charging pile also includes: at least one processor; and The memory is connected to the at least one processor for data processing; wherein, The memory stores a computer program that can be executed by the at least one processor, the computer program being executed by the at least one processor to enable the at least one processor to perform the charging pile heat dissipation control method according to any one of claims 1-12.

15. The method according to claim 14, wherein, All heat dissipation modules corresponding to two adjacent sets of charging modules include a first type of heat dissipation module, a second type of heat dissipation module, a third type of heat dissipation module, a fourth type of heat dissipation module, and a fifth type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules.

16. The method of claim 14, wherein, All heat dissipation modules corresponding to two adjacent sets of charging modules include a second type of heat dissipation module, a first type of heat dissipation module, a second type of heat dissipation module, and a second type of heat dissipation module arranged along the arrangement direction of the two adjacent sets of charging modules.

17. A computer-readable storage medium storing computer instructions that, when executed by a processor, implement the charging pile heat dissipation control method according to any one of claims 1-12.

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