Integrated data acquisition module for energy storage equipment

By designing an integrated data acquisition module, the problem of scattered connections of the sensing acquisition modules within the energy storage equipment is solved, and more efficient space utilization and lower error rate are achieved.

CN222837609UActive Publication Date: 2025-05-06YANCHENG FUTURE-SMART ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421450113.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-24
Publication Date
2025-05-06
Estimated Expiration
2034-06-24

AI Technical Summary

Technical Problem

The connections of the sensing and acquisition modules inside the energy storage equipment are scattered, resulting in messy internal equipment, large space occupancy and high error rate.

Method used

Design an integrated data acquisition module, including installation bracket, data transmission module, conductive connection module, data communication module and error-proof adaptation module. Through the integration and reasonable layout of these modules, centralized collection and upload of sensing data can be realized.

Benefits of technology

It improves the space utilization rate of energy storage equipment, reduces the error rate, makes the interior of the equipment cleaner and more beautiful, and simplifies the installation process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN222837609U_ABST
Patent Text Reader

Abstract

The utility model discloses an integrated data acquisition module used for energy storage equipment, comprising a mounting bracket used for being connected with an equipment rack; the data transmission module is supported on the mounting bracket and is used for transmitting data acquired by the sensing acquisition module; the conductive connection module is used for conductively connecting the data transmission module with the sensing acquisition module; the data communication module is used for uploading the data acquired by the sensing acquisition module to a data center of the energy storage equipment; the installation support is used for installing an energy storage device, the mistake-proof switching module is used for being in communication connection with a data center of the energy storage device to upload data, and the installation support is provided with a positioning bayonet matched with the mistake-proof switching module so as to limit the installation position of the mistake-proof switching module. According to the integrated data acquisition module provided by the utility model, the installation position of each functional module is reasonably arranged and planned, so that the whole module has no scattered wire harness, the internal installation space is saved, the space utilization rate is improved, the error probability is reduced, and the installation is more convenient.
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Description

Technical Field

[0001] The utility model relates to the technical field of energy storage equipment, in particular to an integrated data acquisition module for energy storage equipment. Background Art

[0002] In energy storage devices or energy storage systems, it is usually necessary to set up several sensor acquisition modules to collect environmental data in order to determine the operating status of the equipment. These sensor acquisition modules need to be connected and installed through conductive aluminum bars, Teflon wiring harnesses (or FPC) and related electronic components. At present, these peripheral wiring harnesses and electronic components are usually installed in the energy storage device in a scattered manner, resulting in the interior of the device being too messy, which is not conducive to maintenance, and occupies a large internal space, resulting in a high error rate. Utility Model Content

[0003] In order to overcome the deficiencies of the prior art, the purpose of the utility model is to provide an integrated data acquisition module for energy storage equipment, which has the advantages of improving space utilization and reducing error rate.

[0004] The purpose of the utility model is achieved by the following technical solutions:

[0005] According to an embodiment of the present disclosure, an integrated data acquisition module for an energy storage device is provided, comprising:

[0006] A mounting bracket for connecting to an equipment rack;

[0007] A data transmission module carried by the mounting bracket, the data transmission module being connected to the sensing acquisition module and used for transmitting data collected by the sensing acquisition module;

[0008] A conductive connection module, used for conductively connecting the data transmission module with the sensor collection module;

[0009] A data communication module, which is connected to the data transmission module and is used to upload the data collected by the sensor collection module to a data center of the energy storage device; and

[0010] An anti-error adapter module is connected to the data communication module and is used to realize communication connection with the data center of the energy storage device to upload data. An independent interface is provided between the anti-error adapter module and the data communication module, and a positioning bayonet adapted to the anti-error adapter module is provided on the mounting bracket to limit the installation position of the anti-error adapter module.

[0011] To implement the above technical solution, the mounting bracket is used to centrally install the data transmission module, the conductive connection module, the data communication module and the anti-error adapter module, so that each functional module is integrated into one, and provides an installation basis for the sensor acquisition module. The sensor acquisition module and the data communication module are conductively connected through the conductive connection module. The data communication module transmits the data collected by the sensor acquisition module to the data communication module, and is connected to the data center of the energy storage device through the anti-error adapter module to upload the data to the data center to complete the data acquisition process. The independent interface and positioning bayonet between the anti-error adapter module and the data communication module ensure the uniqueness of the connection between the anti-error adapter module and the data communication module to prevent connection errors. The integrated data acquisition module of the utility model is used to reasonably plan the installation positions of each functional module, so that there is no scattered wiring harness as a whole, saving internal installation space, improving space utilization, making the interior of the energy storage device more tidy and beautiful, reducing the probability of errors, and making installation more convenient.

[0012] In some exemplary embodiments, the conductive connection modules are provided in at least two groups located at opposite corners of the data transmission module.

[0013] By implementing the above technical solution, the conductive connection module can be connected to the sensor collection module while fixing the data transmission module more stably under the mounting bracket.

[0014] In some exemplary embodiments, the conductive connection module has at least one conductive connector for electrically connecting to the sensing collection module.

[0015] The above technical solution is implemented to facilitate conductive connection through the conductive interface.

[0016] In some exemplary embodiments, the mounting bracket is made of an insulating material.

[0017] The above technical solution is implemented to prevent short circuit.

[0018] In some exemplary embodiments, the data transmission module includes an FPC integrated circuit board.

[0019] In some exemplary embodiments, the data communication module includes a BMU acquisition chip.

[0020] In some exemplary embodiments, the error-proof switching module includes a CAN bus interface.

[0021] In summary, compared with the prior art, the utility model has the following beneficial effects:

[0022] The embodiment of the utility model provides an integrated data acquisition module for energy storage equipment, wherein the mounting bracket is used for centrally mounting the data transmission module, the conductive connection module, the data communication module and the anti-error adapter module, so that each functional module is integrated into one, and provides an installation basis for the sensor acquisition module, the sensor acquisition module and the data communication module are conductively connected through the conductive connection module, the data communication module transmits the data collected by the sensor acquisition module to the data communication module, and is connected to the data center of the energy storage equipment through the anti-error adapter module, and the data is uploaded to the data center to complete the data acquisition process, and the uniqueness of the connection between the anti-error adapter module and the data communication module is ensured through the independent interface and positioning bayonet between the anti-error adapter module and the data communication module to prevent connection errors; the integrated data acquisition module of the utility model is used to reasonably plan the installation positions of each functional module, so that there is no scattered wiring harness as a whole, saving internal installation space, improving space utilization, making the interior of the energy storage equipment more tidy and beautiful, reducing the probability of errors, and making installation more convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a structural schematic diagram of an embodiment of the utility model.

[0024] Figure 2 It is a schematic diagram of the connection structure of an embodiment of the utility model.

[0025] The numbers and letters in the figure represent the corresponding component names:

[0026] 10. Mounting bracket; 20. Data transmission module; 30. Conductive connection module; 31. Conductive connector; 40. Data communication module; 50. Anti-error transfer module; 60. Sensor acquisition module. DETAILED DESCRIPTION

[0027] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0028] like Figure 1 and Figure 2As shown, the utility model provides an integrated data acquisition module for energy storage equipment, including: a mounting bracket 10, used to be connected to an equipment rack; a data transmission module 20 carried by the mounting bracket 10, the data transmission module 20 is connected to a sensor acquisition module 60, and is used to transmit data collected by the sensor acquisition module 60; a conductive connection module 30, used to conductively connect the data transmission module 20 to the sensor acquisition module 60; a data communication module 40, the data communication module 40 is connected to the data transmission module 20, and is used to upload the data collected by the sensor acquisition module 60 to a data center of the energy storage equipment; and, an anti-error transfer module 50, the anti-error transfer module 50 is connected to the data communication module 40, and is used to realize a communication connection with the data center of the energy storage equipment to upload data, an independent interface is provided between the anti-error transfer module 50 and the data communication module 40, and a positioning bayonet adapted to the anti-error transfer module 50 is provided on the mounting bracket 10 to limit the installation position of the anti-error transfer module 50.

[0029] Specifically, the mounting bracket 10 is made of a hard insulating material such as plastic, and is provided with a plurality of connection holes for connecting equipment racks. The insulating mounting bracket 10 can prevent short circuits.

[0030] The data transmission module 20 includes an FPC integrated circuit board, on which a number of circuits for data transmission are integrated. The overall length of the FPC integrated circuit board is roughly equivalent to the length of the mounting bracket 10, that is, it extends from one side of the mounting bracket 10 to the other side. The data communication module 40 and the error-proofing adapter module 50 are arranged on one side of the data transmission module 20.

[0031] The conductive connection module 30 is an aluminum conductive structure with excellent conductive performance as a whole. It has a conductive body and at least one conductive joint 31. The conductive body is provided with a rivet hole for conductively connecting with the data transmission module 20 and riveting with the mounting bracket 10. The conductive joint 31 is used to electrically connect with the sensor acquisition module 60, and a connection hole is also provided on the conductive joint 31 so as to be riveted or welded with the sensor acquisition module 60 to realize power supply. In this embodiment, the conductive connection module 30 is provided with at least two groups located at the diagonal corners of the data transmission module 20, so that the conductive connection module 30 can fix the data transmission module 20 under the mounting bracket 10 more stably while realizing the connection with the sensor acquisition module 60.

[0032] The data communication module 40 includes a BMU acquisition chip, which can be an acquisition chip dedicated to the battery management system for data preprocessing and uploading. The error-proofing adapter module 50 includes a CAN bus interface. The error-proofing adapter module 50 and the data communication module 40 are connected and communicated by setting an independent interface. Of course, in some embodiments, the two can also be connected and fixed by spot welding. The error-proofing adapter module 50 can also adopt other forms of interfaces, which are not elaborated here; the positioning bayonet is only set on one side of the mounting bracket 10, so that the installation direction of each functional module is unique to achieve the error-proofing function.

[0033] The mounting bracket 10 is used for centrally installing the data transmission module 20, the conductive connection module 30, the data communication module 40 and the anti-error adapter module 50, so that each functional module is integrated into one, and provides an installation basis for the sensor acquisition module 60. The sensor acquisition module 60 and the data communication module 40 are conductively connected through the conductive connection module 30. The data communication module 40 transmits the data collected by the sensor acquisition module 60 to the data communication module 40, and is connected to the data center of the energy storage device through the anti-error adapter module 50 to upload the data to the data center to complete the data acquisition process. The independent interface and positioning bayonet between the anti-error adapter module 50 and the data communication module 40 ensure the uniqueness of the connection between the anti-error adapter module 50 and the data communication module 40 to prevent connection errors. The integrated data acquisition module of the utility model is used to reasonably plan the installation positions of each functional module, so that there is no scattered wiring harness as a whole, saving internal installation space, improving space utilization, making the interior of the energy storage device more tidy and beautiful, reducing the probability of errors, and making installation more convenient.

[0034] The above embodiments only express several implementation methods of the utility model, and the descriptions are relatively specific and detailed, but they cannot be understood as limiting the scope of the utility model patent. It should be pointed out that for ordinary technicians in this field, without departing from the concept of the utility model, several modifications and improvements can be made, which are equivalent modifications and improvements made to the above embodiments based on the essential technology of the utility model, and all of them belong to the protection scope of the utility model.

Claims

1. An integrated data acquisition module for energy storage equipment, characterized in that: include: A mounting bracket for connecting to an equipment rack; A data transmission module carried by the mounting bracket, the data transmission module being connected to the sensing acquisition module and used for transmitting data collected by the sensing acquisition module; A conductive connection module, used for conductively connecting the data transmission module with the sensor collection module; A data communication module, which is connected to the data transmission module and is used to upload the data collected by the sensor collection module to a data center of the energy storage device; and An anti-error adapter module is connected to the data communication module and is used to realize communication connection with the data center of the energy storage device to upload data. An independent interface is provided between the anti-error adapter module and the data communication module, and a positioning bayonet adapted to the anti-error adapter module is provided on the mounting bracket to limit the installation position of the anti-error adapter module.

2. The integrated data acquisition module for energy storage equipment according to claim 1, characterized in that: The conductive connection modules are provided with at least two groups located at opposite corners of the data transmission module.

3. The integrated data acquisition module for energy storage equipment according to claim 1 or 2, characterized in that: The conductive connection module has at least one conductive connector for electrically connecting to the sensing collection module.

4. The integrated data acquisition module for energy storage equipment according to claim 1, characterized in that: The mounting bracket is made of insulating material.

5. The integrated data acquisition module for energy storage equipment according to claim 1, characterized in that: The data transmission module includes an FPC integrated circuit board.

6. The integrated data acquisition module for energy storage equipment according to claim 1, characterized in that: The data communication module includes a BMU acquisition chip.

7. The integrated data acquisition module for energy storage equipment according to claim 1, characterized in that: The error-proof switching module includes a CAN bus interface.