Battery power generation device and power generation system with same

Through the integrated design of battery power generation devices, the problems of low efficiency, complex maintenance and high safety risks caused by multi-module design in the prior art are solved, and efficient energy conversion, reduced safety risks and simplified maintenance processes are achieved.

CN120073012APending Publication Date: 2025-05-30JINAN LVDONG HYDROGEN ENERGY TECH CO LTD +1
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Patent Information

Application Number
CN202510236608.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

The multi-module design of existing fuel cell power generation devices adopts a distributed assembly method, which leads to difficulty in optimizing pipelines and efficient resource utilization, limited system performance, complex maintenance, inflexible space layout, and high safety risks.

Method used

Design an integrated battery power generation device, which integrates power generation modules, hydrogen supply modules and fire protection modules through the combination of power generation housing and partitions, optimizes the layout of hydrogen supply pipelines, reduces pipelines and connectors, and realizes physical isolation and real-time monitoring.

Benefits of technology

It improves overall energy conversion efficiency, reduces safety risks, simplifies maintenance processes, enhances the space utilization and adaptability of the device, and meets diverse power needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a battery power generation device and a power generation system with the same. The battery power generation device comprises a power generation shell; the partition plate is arranged in the power generation shell to divide the power generation shell into an upper shell and a lower shell, a heat dissipation module is arranged in the upper shell, and a power generation module, a hydrogen supply module and a fire protection module are integrated in the lower shell; a hydrogen supply pipeline is arranged on the side, away from the upper shell, of the partition plate so as to convey hydrogen energy in the hydrogen supply pipeline. The problem that when a battery power generation device in the prior art is used, efficiency is low due to the fact that all modules are in a separated state is solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of power generation, and in particular, to a battery power generation device and a power generation system having the same. Background Art

[0002] In the advancement of fuel cell power generation technology, especially for systems with MW-level high-power output, modular design has become a key path to optimize performance and improve efficiency. However, in the prior art, the multi-module design of fuel cell power generation devices usually adopts a decentralized assembly method, that is, after each module is independently assembled, on-site assembly and connection are carried out. Although this decentralized assembly method simplifies the design and maintenance of individual modules to a certain extent, there are obvious deficiencies in overall system integration, performance optimization, and on-site installation:

[0003] When the decentralized assembled modules are in parallel, the supply and distribution pipelines of hydrogen, air, and cooling water are independent, making it difficult to optimize the pipelines and efficiently utilize resources, resulting in limited overall energy conversion efficiency and system performance.

[0004] The monitoring, maintenance, and safety systems of each independent module are independent, which not only increases the complexity of the system but also may lead to an increase in management costs and a decrease in maintenance efficiency.

[0005] The independently assembled modules are difficult to achieve the best layout in a limited space, restricting the applicability of the device in different scenarios. Especially in industrial sites or urban environments with limited space, the flexibility of modular design cannot be fully exerted.

[0006] The decentralized modular design increases the risks of hydrogen leakage and electrical faults. Especially in the case of multi-module parallel operation, higher requirements are put forward for the monitoring and emergency response of system safety. Summary of the Invention

[0007] The main object of the present invention is to provide a battery power generation device and a power generation system having the same, so as to solve the problem of low efficiency caused by the separation of each module when the battery power generation device in the prior art is in use.

[0008] To achieve the above object, according to one aspect of the present invention, a battery power generation device is provided, including:

[0009] A power generation housing;

[0010] A partition plate is arranged in the power generation housing to divide the power generation housing into an upper housing and a lower housing. A heat dissipation module is arranged in the upper housing, and a power generation module, a hydrogen supply module, and a fire protection module are integrated in the lower housing;

[0011] Wherein, a hydrogen supply pipeline is arranged on the side of the partition plate away from the upper housing to transport the hydrogen energy in the hydrogen supply pipeline.

[0012] Further, the battery power generation device further includes:

[0013] A receiving groove, which is provided on the side of the partition away from the upper housing to receive the hydrogen supply pipeline;

[0014] A plurality of locking holes, which are provided on the partition;

[0015] Locking members, which correspond to the plurality of locking holes one by one, and are inserted through the plurality of locking holes to fix the hydrogen supply pipeline in the receiving groove.

[0016] Further, the battery power generation device further includes: a housing cover, which is rotatably arranged on the power generation housing to open or close the power generation housing.

[0017] Further, the power generation housing includes: a bottom plate, and a plurality of installation positions are provided on the bottom plate to respectively install a power generation module, a hydrogen supply module and a fire protection module through the respective installation positions.

[0018] Further, the power generation housing further includes: a plurality of mounting plates, which are respectively arranged on the outer peripheral side of the bottom plate to form the power generation housing with the bottom plate;

[0019] Wherein, between each mounting plate and the bottom plate is detachably arranged through a mounting component.

[0020] Further, the mounting component includes: a plurality of protruding portions, which are arranged on the edges of each mounting plate;

[0021] A plurality of groove portions, which are provided on the bottom plate, and the plurality of groove portions are arranged corresponding to the protruding portions one by one, so as to fix each mounting plate on the bottom plate through the cooperation of each protruding portion and the corresponding groove portion.

[0022] Further, the mounting component further includes: an anti-slip member, which is arranged on the outer wall surface of the protruding portion or the inner wall surface of the groove portion;

[0023] Wherein, the anti-slip member is made of rubber.

[0024] Further, a plurality of cooling grooves extending along the length direction of the bottom plate are provided on the bottom plate, and the plurality of cooling grooves are arranged along the width direction of the bottom plate;

[0025] A cooling pipe, which is arranged in the cooling groove to dissipate heat through the cooling pipe.

[0026] Further, mounting grooves are provided on the inner wall surfaces of each mounting plate, and the outer edges of the partition are inserted into the mounting grooves.

[0027] According to another aspect of the present invention, a power generation system is provided, and the power generation system has the above-mentioned battery power generation device.

[0028] Applying the technical solution of the present invention, the integrated design reduces the number of pipelines and connectors, and reduces the loss of energy during transmission. At the same time, the optimized heat dissipation mechanism ensures the efficient operation of each module at a stable temperature.

[0029] The physical isolation of the hydrogen supply pipeline from the power generation and heat dissipation modules, as well as the real-time monitoring and emergency response mechanism of the fire protection module, greatly reduces the safety risks during the operation of the device.

[0030] The flexible heat dissipation module design and the integration of modular components enable the device to be quickly deployed in different scenarios and meet diverse power requirements.

[0031] The integrated design makes the maintenance of the device more convenient, reduces the complexity of on-site assembly, and also facilitates the operators to conduct routine inspections and fault troubleshooting. Description of the Drawings

[0032] The specification drawings forming a part of this application are used to provide a further understanding of the present invention. The schematic embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation to the present invention. In the drawings:

[0033] Figure 1 A side view of the battery power generation device according to an embodiment of this application is shown;

[0034] Figure 2 A top view of the battery power generation device according to an embodiment of this application is shown;

[0035] Figure 3 A schematic diagram of the bottom plate of the battery power generation device according to an embodiment of this application is shown;

[0036] Figure 4 A schematic diagram of the structure of the mounting plate and the bottom plate of the battery power generation device according to an embodiment of this application is shown.

[0037] Among them, the above-mentioned drawings include the following reference numerals:

[0038] 1. Power generation housing; 101. Upper housing; 102. Lower housing; 103. Bottom plate; 104. Mounting plate; 105. Protrusion; 106. Groove; 2. Partition; 3. Heat dissipation module; 4. Power generation module; 5. Fire protection module. Detailed Embodiments

[0039] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments can be combined with each other. The present invention will be described in detail below with reference to the drawings and in combination with the embodiments.

[0040] In the advancement of fuel cell power generation technology, especially for systems with MW-level high-power output, modular design has become a key path to optimize performance and improve efficiency. However, in the existing technology, the multi-module design of fuel cell power generation devices usually adopts a decentralized assembly method, that is, after each module is independently assembled, on-site assembly and connection are carried out. Although this decentralized assembly method simplifies the design and maintenance of individual modules to a certain extent, there are obvious deficiencies in overall system integration, performance optimization, and on-site installation:

[0041] When the modules assembled dispersedly are in parallel, the supply and distribution pipelines of hydrogen, air, and cooling water are independent, making it difficult to optimize the pipelines and efficiently utilize resources, resulting in limited overall energy conversion efficiency and system performance.

[0042] The monitoring, maintenance, and safety systems of each independent module are independent, which not only increases the complexity of the system but also may lead to an increase in management costs and a decrease in maintenance efficiency.

[0043] The modules assembled independently are difficult to achieve the best layout in a limited space, restricting the applicability of the device in different scenarios. Especially in industrial sites or urban environments with limited space, the flexibility of modular design fails to be fully utilized.

[0044] The decentralized modular design increases the risks of hydrogen leakage and electrical faults. Especially during the parallel operation of multiple modules, it poses higher requirements for the monitoring and emergency response of system safety.

[0045] The main purpose of the present invention is to provide a battery power generation device and a power generation system having the same, so as to solve the problem of low efficiency caused by the separation of each module when the battery power generation device in the existing technology is in use.

[0046] The battery power generation device provided by this application includes a power generation housing 1;

[0047] A partition 2, which is arranged in the power generation housing 1 to divide the power generation housing 1 into an upper housing 101 and a lower housing 102. A heat dissipation module 3 is arranged in the upper housing 101, and a power generation module 4, a hydrogen supply module, and a fire protection module 5 are integrated in the lower housing 102;

[0048] Wherein, a hydrogen supply pipeline is arranged on the side of the partition 2 away from the upper housing 101 to transport the hydrogen energy in the hydrogen supply pipeline.

[0049] Such as Figures 1 to 4As shown, the power generation housing 1 serves as the framework of the entire device and is made of high-strength materials to ensure the structural stability and safety of the device. The partition 2 is designed to be located at the center inside the power generation housing 1, and its main function is to divide the power generation housing 1 into an upper housing 101 and a lower housing 102. The upper housing 101 contains a heat dissipation module 3, and the layout of the heat dissipation module 3 takes into account the optimal path of air flow to achieve high-efficiency heat exchange. Ventilation openings are provided at the top or sides, and the bottom is connected to the lower housing 102 through the ventilation holes in the partition 2 to promote the circulation of cold and hot air.

[0050] Lower housing 102: Integrates a power generation module 4, a hydrogen supply module, and a fire protection module 5. Each module is closely arranged in the lower housing 102 and separated by the partition 2 to reduce the impact of heat on the hydrogen supply system and improve overall safety.

[0051] The hydrogen supply pipeline is arranged on the side of the partition 2 away from the upper housing 101, that is, inside the lower housing 102. This design ensures the physical separation of hydrogen supply from the power generation and heat dissipation modules, reducing the risk of fire caused by hydrogen leakage.

[0052] The hydrogen supply pipeline is connected to the hydrogen supply module. By providing a solenoid valve and a pressure sensor connected thereto on the hydrogen supply pipeline, the flow rate and pressure of hydrogen can be precisely controlled to ensure uniform and safe supply of hydrogen to each power generation module 4.

[0053] The heat dissipation module 3 inhales external cold air through the ventilation openings of the upper housing 101. The cold air exchanges heat with the hot air generated inside the lower housing 102 through the ventilation holes in the partition 2, and finally discharges the hot air to effectively control the temperature inside the device.

[0054] The fire protection module 5 includes a smoke sensor, a hydrogen concentration sensor, and a fire extinguishing device provided inside the power generation housing 1. It is arranged inside the lower housing 102 and can detect potential fires and hydrogen leakage situations in the first place. Once an abnormality is detected, the fire protection module 5 is immediately activated, and the danger is quickly controlled by releasing the fire extinguishing agent or emergency closing of the hydrogen supply to protect the safety of the device and personnel.

[0055] The integrated design reduces the number of pipelines and connectors, reducing energy loss during transmission. At the same time, the optimized heat dissipation mechanism ensures the efficient operation of each module at a stable temperature.

[0056] The physical isolation of the hydrogen supply pipeline from the power generation and heat dissipation module 3, as well as the real-time monitoring and emergency response mechanism of the fire protection module 5, greatly reduces the safety risks during the operation of the device.

[0057] The flexible design of the heat dissipation module 3 and the integration of modular components enable the device to be quickly deployed in different scenarios to meet diverse power requirements.

[0058] The integrated design makes the maintenance of the device more convenient, reduces the complexity of on-site assembly, and also facilitates the operator's routine inspection and troubleshooting.

[0059] Furthermore, the battery power generation device further includes: a receiving groove provided on the side of the partition 2 away from the upper housing 101 to receive the hydrogen supply pipeline;

[0060] a plurality of locking holes provided on the partition 2;

[0061] a locking member corresponding to each of the plurality of locking holes and passing through the plurality of locking holes to fix the hydrogen supply pipeline in the receiving groove.

[0062] Specifically, the battery power generation device further includes a receiving groove provided on the side of the partition 2 away from the upper housing 101. The receiving groove may be serpentinely distributed on the partition 2. Among them, the number of receiving grooves is multiple, and the multiple receiving grooves extend along the length direction of the partition 2 and are arranged along the width direction of the partition 2 to receive the hydrogen supply pipeline. On the partition 2, locking holes are respectively provided on both sides in the width direction of each receiving groove. There is also a locking member used in cooperation with the plurality of locking holes. The locking holes are bolt holes in this embodiment, and the locking member can be a cable tie or a bolt in this embodiment. By using the cooperation of the locking holes and the locking member, the hydrogen supply pipeline can be fixed in the receiving groove.

[0063] The serpentine distribution design of the receiving groove, combined with the cooperation of the locking holes and the locking member, ensures the stable fixation of the hydrogen supply pipeline during operation. Even under vibration or external impact conditions, the integrity and tightness of the pipeline can be maintained, significantly reducing the risk of hydrogen leakage and improving the safety performance of the entire device.

[0064] The serpentinely distributed receiving grooves can maximize the use of the space of the partition 2, making the layout of the hydrogen supply pipeline more compact and orderly. This optimized layout not only reduces the interference between pipelines but also provides more space for the installation of other key components, enhancing the space utilization rate inside the device.

[0065] The design of the receiving groove and the locking member makes the installation and disassembly of the hydrogen supply pipeline simpler and faster. Especially when pipeline maintenance or replacement is required, this design can significantly reduce the downtime and maintenance cost, improving the operation efficiency and economic benefits of the device.

[0066] Since the number of receiving grooves is multiple and can be flexibly extended and arranged along the length and width directions of the partition 2, this design provides adaptability for hydrogen supply pipelines of different scales. When the device needs to be expanded or the configuration of the hydrogen supply module is adjusted, the hydrogen supply system can be quickly modified by increasing or decreasing the receiving grooves and adjusting the position of the locking member, ensuring the scalability of the device and its adaptability to different application scenarios.

[0067] In summary, the battery power generation device of the present invention, through the innovative hydrogen supply pipeline fixing structure, not only enhances the safety and stability of the device, but also improves the space utilization rate by optimizing the pipeline layout. At the same time, the improvement of maintenance convenience and adaptability expansion creates favorable conditions for the efficient operation and commercial application of MW-level fuel cell power generation devices.

[0068] Furthermore, the battery power generation device further includes: a housing cover rotatably provided on the power generation housing 1 to open or close the power generation housing 1.

[0069] The rotatable setting of the housing cover allows the operator to quickly open the power generation housing 1 for easy inspection, maintenance or replacement of internal components. Without a complex disassembly process, the downtime is reduced, and the availability and efficiency of the device are improved.

[0070] In an emergency, the housing cover that can be quickly rotated and opened can quickly provide access to the interior of the device for emergency repair or safety inspection. At the same time, the housing cover in the closed state can effectively protect the internal components and prevent the influence of external environmental factors (such as dust, humidity or physical damage) on the device, improving the overall safety protection level.

[0071] Furthermore, the power generation housing 1 includes: a bottom plate 103 provided with a plurality of installation positions on the bottom plate 103 to respectively install the power generation module 4, the hydrogen supply module and the fire protection module 5 through each installation position.

[0072] Furthermore, the power generation housing 1 further includes: a plurality of mounting plates 104 respectively provided on the outer peripheral side of the bottom plate 103 to form the power generation housing 1 with the bottom plate 103;

[0073] Among them, each mounting plate 104 and the bottom plate 103 are detachably arranged through a mounting component.

[0074] Specifically, the power generation housing 1 further includes a bottom plate 103, on which a plurality of installation positions are provided. The plurality of installation positions can be in the form of installation grooves, and the power generation module 4, the hydrogen supply module and the fire protection module 5 can be respectively installed through the plurality of installation positions. It also includes mounting plates 104 provided on the outer peripheral side of the bottom plate, and the plurality of mounting plates 104 and the bottom plate 103 are detachably arranged through a mounting component.

[0075] The design of the plurality of installation positions enables the power generation module 4, the hydrogen supply module and the fire protection module 5 to be quickly and accurately installed on the bottom plate 103, forming a compact and function-concentrated layout. The installation positions in the form of grooves provide stable fixing points for different modules, ensuring the stability and interconnectivity of each module during operation.

[0076] A detachable mounting component is used between the mounting plate 104 and the bottom plate 103, making the maintenance, replacement, or upgrade of the module extremely convenient. The operator does not need to completely disassemble the device. By simple operations, the mounting plate 104 can be disassembled, and then each module on the bottom plate 103 can be accessed and adjusted, significantly shortening the downtime for maintenance and reducing the maintenance cost.

[0077] The multiple mounting positions on the bottom plate 103 not only optimize the layout between the modules but also improve the utilization rate of the internal space of the device, enabling the device to achieve multi-functional integration in a relatively compact space.

[0078] The detachable design of the mounting component not only ensures the stability of the module installation but also allows the bottom plate 103 and the mounting plate 104 to be adjusted and replaced according to the scenario requirements. This design flexibility improves the adaptability of the entire device to different environments and application conditions, enabling the device to easily cope with the changing working environments from indoor to outdoor and from high temperature to low temperature.

[0079] The detachable connection between the bottom plate 103 and the mounting plate 104 enables the device to be disassembled during transportation, reducing the transportation volume and cost. During on-site assembly, the position of the mounting plate 104 can be flexibly adjusted according to the on-site conditions, simplifying the on-site installation process of large equipment.

[0080] In summary, through the multiple mounting positions designed on the bottom plate 103 and the detachable mounting plate 104, the present invention not only realizes the rapid installation and maintenance of the internal modules of the device but also optimizes the space utilization efficiency and the adaptability of the structure, providing a solid technical foundation for the efficient operation and wide application of MW-level fuel cell power generation devices.

[0081] Further, the mounting component includes: a plurality of protruding portions 105 provided on the edges of each mounting plate 104;

[0082] a plurality of groove portions 106 provided on the bottom plate 103, and the plurality of groove portions 106 are arranged in one-to-one correspondence with the protruding portions 105, so as to fix each mounting plate 104 on the bottom plate 103 through the cooperation of each protruding portion 105 and the corresponding groove portion 106.

[0083] Further, the mounting component further includes: an anti-slip member provided on the outer wall surface of the protruding portion 105 or the inner wall surface of the groove portion 106;

[0084] Wherein, the material of the anti-slip member is rubber.

[0085] Specifically, the mounting component includes a plurality of protrusions 105 provided on the edge of the mounting plate 104. A plurality of groove portions 106 are provided at positions on the bottom plate 103 corresponding to the protrusions 105. When the protrusions 105 are inserted into the corresponding groove portions 106, the mounting plate 104 is fixed on the bottom plate 103. An anti-slip member is provided on the outer peripheral surface of the protrusions 105 or the inner wall surface of the groove portions 106. The material of the anti-slip member is rubber in this embodiment.

[0086] The cooperation between the protrusions 105 and the groove portions 106 provides a firm mechanical connection, ensuring the safety and stability of the mounting plate 104 on the bottom plate 103, preventing loosening or detachment caused by external force impact or vibration, protecting the modules mounted on the mounting plate 104 from damage, and improving the operation reliability of the entire device.

[0087] The anti-slip member provided on the outer peripheral surface of the protrusions 105 or the inner wall surface of the groove portions 106 is made of rubber, increasing the friction coefficient of the contact surface and further enhancing the fixing effect of the mounting plate 104. Even in a humid or extreme temperature environment, the rubber anti-slip member can maintain good adhesion, preventing the module from sliding on the bottom plate 103 and ensuring the safe and stable operation of the device under various environmental conditions.

[0088] The cooperative design of the protrusions 105 and the groove portions 106 makes the installation and disassembly of the mounting plate 104 simple and fast, without the need for additional tools or fasteners. This design greatly simplifies the maintenance and upgrade process, especially for hydrogen fuel cell devices that require frequent maintenance, significantly reducing the downtime and improving the operation efficiency.

[0089] Through the cooperation of the protrusions 105 and the groove portions 106, not only the stable connection of the mounting plate 104 is achieved, but also different modules can be flexibly positioned on the bottom plate 103, optimizing the internal space layout. This modular design concept enables the device to adapt to different installation environments and requirements, improving the adaptability and scalability of the whole machine.

[0090] In summary, through the cooperation between the protrusions 105 and the groove portions 106 and the setting of the anti-slip member between the bottom plate 103 and the mounting plate 104, the present invention not only ensures the firm and safe installation of the module, but also brings advantages in terms of convenient maintenance, space optimization, cost-effectiveness, etc., laying a solid foundation for the efficient operation and wide application of MW-level fuel cell power generation devices. This innovative connection method and anti-slip measure provide useful references and technical inspirations for the equipment design in other fields.

[0091] Further, a plurality of cooling grooves extending along the length direction of the bottom plate 103 are provided on the bottom plate 103, and the plurality of cooling grooves are arranged along the width direction of the bottom plate 103;

[0092] A cooling pipe is disposed within the cooling groove to dissipate heat through the cooling pipe.

[0093] Specifically, a plurality of cooling grooves are provided on the bottom plate 103. The plurality of cooling grooves extend along the length direction of the bottom plate 103 and are arranged along the width direction of the bottom plate 103. A cooling pipe is disposed within the cooling groove to dissipate heat through the cooling pipe.

[0094] Regarding the layout of the cooling pipe within the cooling groove, since the cooling pipe is in close contact with the bottom plate 103, it can ensure the effective conduction of heat energy, thereby enabling the rapid heat dissipation of key components such as the power generation module 4 and the hydrogen supply module, maintaining the temperature during the operation of the device within a safe and ideal range, and improving the thermal management ability of the device.

[0095] The design of the cooling groove makes the arrangement of the cooling pipe more compact and orderly. It not only reduces the additional space occupied by the cooling system but also can be effectively integrated with other structures of the power generation housing 1 (such as the installation module and the hydrogen supply pipe), enhancing the rationality of the internal layout of the device and the compactness of the overall structure, which is conducive to the miniaturization and modular development of the device.

[0096] The cooling pipe within the cooling groove can be maintained or replaced independently of other components on the bottom plate 103 without disassembling the entire device, reducing the maintenance workload and downtime, ensuring the long-term stable operation of the device, and at the same time reducing the overall maintenance cost.

[0097] Furthermore, mounting grooves are provided on the inner wall surfaces of the respective mounting plates 104, and the outer edges of the partition plates 2 are inserted into the mounting grooves.

[0098] Specifically, mounting grooves are respectively provided on the inner wall surfaces of the respective mounting plates 104, and the partition plates 2 are fixed within the power generation housing 1 through the mounting grooves.

[0099] The provision of the mounting grooves enables the partition plates 2 to be quickly and accurately installed within the power generation housing 1 without complex fixing processes such as welding or using bolts. This design allows for the quick disassembly of the partition plates 2 during maintenance or upgrade, simplifies the operation process, greatly reduces the downtime, and improves the maintenance efficiency and operational flexibility of the device.

[0100] The partition plates 2 are fixed through the mounting grooves, forming a more stable and secure internal structure. This design ensures the fixation of the partition plates 2 within the power generation housing 1. Even when the device encounters vibration or external impact during operation, the partition plates 2 can maintain their positions, protecting the internal components from damage and enhancing the structural stability and operational safety of the entire device.

[0101] The design of the installation groove allows for a more flexible spatial layout of the partition 2 inside the power generation housing 1. The position of the partition 2 can be adjusted as needed to optimize the arrangement of components such as the power generation module 4, the hydrogen supply module, and the fire protection module 5, thereby improving the utilization efficiency of the internal space of the device. This optimization enables the device to achieve more efficient energy conversion and heat management in a limited space, making it suitable for installation environments with limited space.

[0102] According to another aspect of the present application, there is also provided a power generation system having the above-described battery power generation device.

[0103] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they specify the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0104] Unless otherwise specifically stated, the relative arrangements of components and steps, numerical expressions, and values set forth in these embodiments do not limit the scope of the present invention. At the same time, it should be understood that, for the sake of convenience of description, the dimensions of the various parts shown in the drawings are not drawn in actual proportional relationships. Technologies, methods, and devices known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, such technologies, methods, and devices should be regarded as part of the specification. In all the examples shown and discussed here, any specific value should be construed as merely exemplary and not as a limitation. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that like reference numerals and letters denote like items in the following drawings, and thus, once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.

[0105] In the description of the present invention, it should be understood that the orientation or positional relationships indicated by orientation words such as "front, rear, upper, lower, left, right", "lateral, vertical, perpendicular, horizontal", and "top, bottom" are generally based on the orientation or positional relationships shown in the drawings. These are only for the convenience of describing the present invention and simplifying the description. Without contrary description, these orientation words do not indicate and imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and thus should not be construed as limiting the protection scope of the present invention; the orientation words "inner, outer" refer to the inside and outside relative to the contour of each component itself.

[0106] For ease of description, spatial relative terms, such as "above", "over", "on the upper surface", "upper", etc., may be used herein to describe the spatial positional relationship of one device or feature to other devices or features as shown in the figures. It should be understood that the spatial relative terms are intended to encompass different orientations in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is inverted, a device described as "above" or "over" other devices or structures will then be positioned "below" or "under" the other devices or structures. Thus, the exemplary term "above" can include both orientations of "above" and "below". The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and corresponding interpretations of the spatial relative descriptions used herein will be made.

[0107] In addition, it should be noted that the use of terms such as "first" and "second" to define components is only for the convenience of distinguishing the corresponding components. Without further statement, these terms have no special meaning, and thus should not be construed as limiting the scope of protection of the present invention.

[0108] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention may have various modifications and changes. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A battery power generation device, characterized in that: include: A power generation housing (1); a partition (2), the partition (2) being arranged in the power generation housing (1) to divide the power generation housing (1) into an upper housing (101) and a lower housing (102), the upper housing (101) being provided with a heat dissipation module (3), and the lower housing (102) being integrated with a power generation module (4), a hydrogen supply module and a fire protection module (5); Wherein, a hydrogen supply pipeline is provided on the side of the partition (2) away from the upper shell (101) to transport the hydrogen energy in the hydrogen supply pipeline.

2. The battery power generation device according to claim 1, characterized in that: The battery power generation device also includes: a containing tank, the containing tank being arranged on a side of the partition plate (2) away from the upper shell (101) to contain the hydrogen supply pipeline; A plurality of locking holes are provided on the partition plate (2); A locking piece, wherein the locking piece corresponds to the plurality of locking holes one by one, and is penetrated through the plurality of locking holes to fix the hydrogen supply pipeline in the containing tank.

3. The battery power generation device according to claim 1, characterized in that: The battery power generation device also includes: A shell cover is rotatably arranged on the power generation shell (1) to open or close the power generation shell (1).

4. The battery power generation device according to claim 1, characterized in that: The power generation housing (1) comprises: A base plate (103) is provided with a plurality of mounting positions, so that the power generation module (4), the hydrogen supply module and the fire protection module (5) can be respectively mounted through the respective mounting positions.

5. The battery power generation device according to claim 4, characterized in that: The power generation housing (1) further comprises: A plurality of mounting plates (104), wherein the plurality of mounting plates (104) are respectively arranged on the outer peripheral side of the bottom plate (103) to form the power generation housing (1) together with the bottom plate (103); Wherein, each of the mounting plates (104) and the base plate (103) is detachably arranged via a mounting assembly.

6. The battery power generation device according to claim 5, characterized in that: The installation assembly includes: A plurality of protrusions (105) are provided on the edge of each of the mounting plates (104); A plurality of groove portions (106) are provided on the base plate (103), and the plurality of groove portions (106) are provided in one-to-one correspondence with the protrusion portions (105), so that each of the mounting plates (104) can be fixed on the base plate (103) by using each of the protrusion portions (105) in cooperation with the corresponding groove portion (106).

7. The battery power generation device according to claim 6, characterized in that: The installation assembly also includes: an anti-slip component, the anti-slip component being arranged on the outer wall surface of the protruding portion (105) or the inner wall surface of the recessed portion (106); Wherein, the material of the anti-slip component is rubber.

8. The battery power generation device according to claim 4, characterized in that: The bottom plate (103) is provided with a plurality of cooling grooves extending along the length direction of the bottom plate (103), and the plurality of cooling grooves are arranged along the width direction of the bottom plate (103); A cooling pipe is arranged in the cooling groove to dissipate heat through the cooling pipe.

9. The battery power generation device according to claim 5, characterized in that: An installation groove is provided on the inner wall surface of each installation plate (104), and the outer edge of the partition plate (2) is inserted into the installation groove.

10. A power generation system, characterized in that: The power generation system comprises the battery power generation device according to any one of claims 1 to 9.