Cabin type structure for energy storage equipment
By using a semi-open frame structure and wiring duct design, the problems of corrosion, low space utilization and poor fixation of energy storage containers have been solved, thereby improving the stability of the equipment and the efficiency of hoisting.
Patent Information
- Application Number
- CN202422979508.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-03
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-03
AI Technical Summary
The existing energy storage container frame structure is susceptible to corrosion by liquid cooling systems, has low space utilization, limited operating space, and poor fixation, which affects equipment stability and hoisting efficiency.
The structure adopts a semi-open frame structure, including main beams, secondary beams, cross beams, longitudinal beams and diagonal bracing beams. It is equipped with windows and shielding structures, wiring ducts and fixing mechanisms to improve structural strength and ventilation and heat dissipation, enhance hoisting visibility and airtightness, use wiring ducts to protect cables, and install quick-fixing energy storage batteries.
It improves the structural strength and operational stability of energy storage equipment, enhances ventilation and heat dissipation, increases hoisting efficiency and space utilization, and ensures cable protection and rapid installation and disassembly.
Smart Images

Figure CN223514152U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of energy storage equipment technology, and more specifically, to a cabin structure for energy storage equipment. Background Technology
[0002] An energy storage container is a device that uses a container as a carrier to store energy by installing batteries inside the container. The container generally has an electrical compartment and a battery compartment. The batteries used for energy storage are mainly located in the battery compartment, while the electrical compartment is used to house electrical control components.
[0003] To ensure the stability of energy storage containers, current technologies generally employ liquid cooling for heat dissipation to prevent overheating and damage to the equipment, thus ensuring normal operation. However, the frame structure of most existing energy storage containers is constructed using welded channel steel. When using liquid cooling, water vapor condenses inside the container, or in the event of a leak in the liquid cooling system, liquid accumulates in the grooves of the channel steel, increasing the risk of liquid corrosion to the container frame structure and reducing its strength.
[0004] Existing energy storage containers have a rather chaotic layout and low space utilization. They can often only install specific energy storage components and cannot make full use of the storage space of the container. Furthermore, when the energy storage components are fixed to the bottom of the container, the operator's operating space is limited, making it difficult to quickly fix the components. Moreover, the existing fixing methods are not very effective. Utility Model Content
[0005] The purpose of this utility model is to provide a cabin structure for energy storage devices, which addresses the shortcomings of existing technologies and solves the problems mentioned in the background.
[0006] The technical solution of this utility model is implemented as follows:
[0007] The utility model provides a cabin structure for energy storage equipment, including a frame base plate, two first side plates arranged in pairs, and two second side plates arranged in pairs. The two first side plates are arranged on the side walls of the frame base plate along the extension direction of the frame base plate, and the two second side plates are arranged between the two first side plates. Several windows are opened on the two opposite side walls of the first side plates, and each window is provided with a matching shielding structure. A wiring structure is installed on the bottom of the frame base plate along its extension direction, and multiple fixing mechanisms for fixing energy storage batteries are installed on the bottom of the frame base plate along its extension direction.
[0008] In some technical solutions of this utility model, the frame base plate includes two main beams arranged in pairs, with secondary beams installed on both sides of the two main beams, and several crossbeams installed between the two secondary beams. Several longitudinal beams are equally spaced between the two main beams, and the longitudinal beams are connected to the crossbeams.
[0009] In some technical solutions of this utility model, a diagonal tie beam is provided between the main beam and the secondary beam.
[0010] In some technical solutions of this utility model, the first side plate includes a plurality of first rods, all of which are installed on the side wall of the main beam. The window is placed between any two adjacent first rods, and a side sealing plate connected to the first rod is provided between any two adjacent windows.
[0011] In some technical solutions of this utility model, the shielding structure includes a side door panel, which is rotatably connected to the outer wall of the first rod.
[0012] In some technical solutions of this utility model, several lifting pins are installed on the side walls of the two main beams that are facing away from each other.
[0013] In some technical solutions of this utility model, the wiring structure includes a hollow wiring pipe, which is installed at the bottom of the frame base plate, and multiple drainage holes are provided on the side wall of the wiring pipe.
[0014] In some technical solutions of this utility model, a number of first corner pieces are provided on the inner bottom wall of the frame base plate, and a torsion lock mechanism is installed on the top of each first corner piece.
[0015] In some technical solutions of this utility model, a number of second corner pieces are provided on the outer bottom wall of the frame base plate.
[0016] Compared with the prior art, the present invention has at least the following advantages or beneficial effects:
[0017] The cabin structure is a semi-open frame structure, which ensures structural strength while facilitating ventilation and heat dissipation of the energy storage equipment, thereby improving the stability of equipment operation.
[0018] Several windows are provided on the two opposite side walls of the first side panel, with at least three windows. This facilitates ventilation and increases the field of vision during the installation of energy storage batteries, making it easier to install and unload small energy storage devices and improving hoisting efficiency. Each window is equipped with a matching shielding structure, which helps to seal the cabin structure into a relatively sealed space and improve the airtightness of the space.
[0019] The bottom of the frame base plate is equipped with a wiring structure, which helps to protect the battery wires and other cables, preventing damage to the cables from impacts with the battery or other components.
[0020] The bottom of the frame base plate is equipped with multiple fixing mechanisms for fixing energy storage batteries along its extension direction, which enables rapid installation and disassembly of energy storage equipment and improves the hoisting efficiency of energy storage batteries during the installation process. Attached Figure Description
[0021] Figure 1 This is a front view structural diagram of the present invention.
[0022] Figure 2 This is a schematic diagram of the structure viewed from below for practical purposes.
[0023] Figure 3 This is a top view of the structure of this utility model.
[0024] Figure 4 This is a side view of the structure of this utility model.
[0025] Figure 5 for Figure 2 A magnified schematic diagram of the structure at point A in the middle.
[0026] Figure 6 for Figure 1 A magnified schematic diagram of the structure at point B in the middle.
[0027] Reference numerals in the attached drawings: 1. Main beam; 2. Secondary beam; 3. Second corner bracket structure; 4. Diagonal tie beam; 5. Crossbeam; 6. Lifting pin; 7. Second side plate; 8. Auxiliary beam; 9. Side sealing plate; 10. Side door panel; 11. Wiring pipe; 12. Drainage hole; 13. First corner bracket structure; 14. Twist lock mechanism; 15. First rod; 16. Longitudinal beam. Detailed Implementation
[0028] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0029] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.
[0030] Example
[0031] This utility model provides a cabin structure for energy storage devices, such as Figure 1 , Figure 2 As shown, the device includes a frame base plate, two pairs of first side plates, and two pairs of second side plates 7. The two first side plates are arranged on the side wall of the frame base plate along the extension direction of the frame base plate, and the two second side plates 7 are arranged between the two first side plates. The cabin structure formed by the above components is a semi-open frame structure, which ensures structural strength while facilitating ventilation and heat dissipation of the energy storage device and improving the stability of the device operation.
[0032] Several windows are provided on the two opposite side walls of the first side panel, with at least three windows. This facilitates ventilation and increases the field of vision during the installation of energy storage batteries, making it easier to install and unload small energy storage devices and improving hoisting efficiency. Each window is equipped with a matching shielding structure, which helps to seal the cabin structure into a relatively sealed space and improve the airtightness of the space.
[0033] The bottom of the frame base plate is equipped with a wiring structure along its extension direction, which helps to protect the battery wires and other cables, and prevents the cables from being damaged by the battery or other objects.
[0034] The bottom of the frame base plate is equipped with multiple fixing mechanisms for fixing energy storage batteries along its extension direction, which enables rapid installation and disassembly of energy storage equipment and improves the hoisting efficiency of energy storage batteries during the installation process.
[0035] In some technical solutions of this utility model, the frame base plate includes two main beams 1 arranged in pairs. The main beams 1 are H-beams. Secondary beams 2 are welded to both sides of each main beam 1. Several crossbeams 5 are welded between the two secondary beams 2. There are two crossbeams 5. Several longitudinal beams 16 are equidistantly arranged between the two main beams 1. The number of longitudinal beams 16 is determined according to the length of the frame base plate. The longitudinal beams 16 are fixedly connected to the main beams 1 by welding, and the intersections of the longitudinal beams 16 and the crossbeams 5 are also fixedly connected by welding. Furthermore, the longitudinal beams 16 also serve to elevate the bottom of the frame base plate.
[0036] In actual vehicle body modification, to avoid interference between the vehicle body and the bottom beam of the frame, a transition steel is added to the side wall of the frame. The transition steel is then welded to the bottom main beam 1 and the sub-beam 2 to strengthen the connection between them.
[0037] In some technical solutions of this utility model, a diagonal bracing beam 4 is provided between the main beam 1 and the secondary beam 2. The diagonal bracing beam 4 is made of square steel and is welded to the main beam 1 or the secondary beam 2 to strengthen the connection strength between the main beam 1 and the secondary beam 2.
[0038] In some technical solutions of this utility model, the first side plate includes a plurality of first rods 15, all of which are welded to the side wall of the main beam 1. A window is positioned between any two adjacent first rods 15, and a side sealing plate 9 connected to the first rods 15 is provided between any two adjacent windows. The side sealing plate 9 is welded to the first rods 15. It also includes auxiliary beams 8 welded to at least five first rods 15. The auxiliary beams 8 are square steel and are used to strengthen the structural strength when the first rods 15 are connected to the main beam 1.
[0039] In some technical solutions of this utility model, the shielding structure includes a side door panel 10, which is rotatably connected to the outer wall of the first rod 15. Two hidden hinges are installed at equal intervals on the side door panel 10, and the hidden hinges are welded to the side wall of the first rod 15.
[0040] The side panel 9 adopts a sheet metal inner and outer wrapping process, with a central cavity equipped with a reinforcing rib to enhance the structural strength of the side panel 9.
[0041] A door lock structure is provided between the side door panel 10 and the first rod 15 to prevent the side door panel 10 from being opened at will. The door lock structure adopts a hidden panel lock, which is existing technology. The top and bottom door frames of the door lock are double-limited.
[0042] In some technical solutions of this utility model, a number of lifting pins 6 are provided on the opposite sidewalls of the two main beams 1. The number of lifting pins 6 is at least 5, which is used to increase the lifting points of the mechanism and improve the balance of the structure during lifting. The lifting pins 6 are inserted into the pin openings opened on the main beams 1, so that the lifting pins 6 can be hidden inside the main beams 1 when not in use, avoiding their exposure from affecting the operation of the above structure.
[0043] In some technical solutions of this utility model, the wiring structure includes a hollow wiring conduit 11. The wiring conduit 11 is a sheet metal part for wiring, which is bent by a bending device to form a pipe structure with a rectangular cross-section. The material is stainless steel sheet metal to avoid cable scratches and corrosion. The wiring conduit 11 is installed at the bottom of the frame base plate by welding. Multiple drainage holes 12 are opened on the side wall of the wiring conduit 11 to facilitate drainage and prevent water from accumulating inside the wiring conduit 11 or on the frame base plate, which could cause corrosion of the inner wall of the structure.
[0044] In some technical solutions of this utility model, a plurality of first corner bracket structures 13 are provided on the inner bottom wall of the frame base plate, and a twist-locking mechanism 14 is installed on the top of each first corner bracket structure 13. The first corner bracket structures 13 are evenly distributed on the inner bottom wall of the frame base plate. The first corner bracket structures 13 are standard container corner brackets, used to form a fixed area for at least 5 energy storage compartments on the inner bottom wall of the frame base plate. The twist-locking mechanism 14 is designed to enable the rapid installation and disassembly of energy storage batteries and operating auxiliary equipment. The twist-locking mechanism 14 is prior art.
[0045] In some technical solutions of this utility model, a plurality of second corner bracket structures 3 are provided on the outer bottom wall of the frame base plate. The second corner bracket structures 3 are standard container corner brackets, and are connected to the chassis of the transport vehicle to improve the efficiency of hoisting and transfer. Holes are made in the main beam 1 to form mounting holes, facilitating the fixing of the second corner bracket structures 3 into the mounting holes using pins.
[0046] The above are merely preferred embodiments of this utility model and are not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A cabin structure for energy storage equipment, characterized in that, The device includes a frame base plate, two paired first side plates, and two paired second side plates. The two first side plates are disposed on the side walls of the frame base plate along its extension direction, and the two second side plates are disposed between the two first side plates. Several windows are provided on the two opposite side walls of the first side plates, and each window is provided with a matching shielding structure. A wiring structure is installed on the bottom of the frame base plate along its extension direction, and multiple fixing mechanisms for fixing energy storage batteries are installed on the bottom of the frame base plate along its extension direction.
2. The cabin structure for energy storage equipment according to claim 1, characterized in that, The frame base plate includes two main beams arranged in pairs, with secondary beams installed on both sides of the two main beams. Several crossbeams are installed between the two secondary beams, and several longitudinal beams are equidistantly arranged between the two main beams. The longitudinal beams are connected to the crossbeams.
3. A cabin structure for an energy storage device according to claim 2, characterized in that, A diagonal tie beam is provided between the main beam and the secondary beam.
4. A cabin structure for an energy storage device according to claim 2, characterized in that, The first side plate includes a plurality of first rods, all of which are installed on the side wall of the main beam. The window is located between any two adjacent first rods, and a side sealing plate connected to the first rod is provided between any two adjacent windows.
5. A cabin structure for an energy storage device according to claim 4, characterized in that, The shielding structure includes a side panel, which is rotatably connected to the outer wall of the first rod.
6. A cabin structure for an energy storage device according to claim 2, characterized in that, Several lifting pins are installed on the side walls of the two main beams that are facing away from each other.
7. A cabin structure for an energy storage device according to claim 2, characterized in that, The wiring structure includes a hollow wiring pipe installed at the bottom of the frame base plate, and multiple drainage holes are provided on the side wall of the wiring pipe.
8. A cabin structure for an energy storage device according to claim 2, characterized in that, The inner bottom wall of the frame base plate is provided with several first corner pieces, and each of the first corner pieces is equipped with a torsion lock mechanism on its top.
9. A cabin structure for an energy storage device according to claim 2, characterized in that, Several second corner components are provided on the outer bottom wall of the frame base plate.