Temperature control device of energy storage power station
By designing clamping mechanisms and fixing components, the cumbersome installation and disassembly of temperature control devices in energy storage power stations have been solved, enabling multi-angle adjustment and stability, and improving the efficiency of the device.
Patent Information
- Application Number
- CN202423284919.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-30
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-30
AI Technical Summary
The installation and disassembly of temperature control devices in existing energy storage power stations are cumbersome, and the angle adjustment is inconvenient, which affects the efficiency and stability of the devices.
The device employs a clamping mechanism and fixing components. Multi-angle adjustment is achieved through the rack and pinion plate and adjusting gear structure of the clamping mechanism. Combined with the tightening of bolts, this improves the convenience and stability of the device.
This technology enables convenient multi-angle adjustment of the temperature control device and ensures stability when placed horizontally, simplifying the installation and disassembly process and improving the device's efficiency.
Smart Images

Figure CN223537285U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of temperature control technology for energy storage power stations, specifically a temperature control device for energy storage power stations. Background Technology
[0002] Energy storage power stations are used to store electrical energy, regulate peak and off-peak electricity consumption, achieve black start, and ensure stable output. Common heat dissipation methods for containerized energy storage systems in energy storage power stations include natural heat dissipation, forced air cooling, liquid cooling, and phase change direct cooling. Existing devices require regular cleaning of dust and debris inside the outer shell and frequent disassembly or installation of the outer shell. However, disassembly of existing devices requires the use of screws or knobs, which results in high operating resistance and is not conducive to installation. Threaded installation is cumbersome, causes wear between threads, and results in significant wear on the nuts from the wrench, affecting the durability of installation and disassembly, and may even make disassembly impossible. This creates the problem of difficulty in installing and disassembling the outer shell of the device.
[0003] For example, CN201820951399.5 discloses "A quick-connect snap-fit temperature control device for energy storage power stations". By rotating the permanent magnet, the control body and the snap-fit body can be fixed, which facilitates installation. When the permanent magnet is rotated so that the magnetic poles at both ends are the same as the magnetic poles at the inner end of the permanent magnet slide bolt, the first slide groove is opened by the principle of like poles repulsion, so that the first slide groove slides into the slide hole. At the same time, the length of the permanent magnet slide bolt is longer than the length of the fixing hole, so that the permanent magnet slide bolt completely enters the interior of the slide hole, so that the support between the base and the fixing ring is lost, and the sliding installation relationship is restored, thus achieving the purpose of disassembling the base and the fixing ring. During use, disassembly can be completed by easily twisting the permanent magnet.
[0004] The temperature control device installed at the bottom of the energy storage power station has a relatively simple fixed installation position and angle. Moreover, the installation, disassembly, maintenance and testing of the temperature control device are relatively troublesome and not conducive to auxiliary angle adjustment, which indirectly reduces the effectiveness of the temperature control device for temperature control in the energy storage power station. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the shortcomings of existing technologies, this invention provides a temperature control device for energy storage power stations, which solves the aforementioned problems.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model provides the following technical solution: a temperature control device for an energy storage power station, comprising a temperature controller body, a connecting wire, a temperature control rear seat, and a fixing component. The connecting wire is connected to the bottom of the temperature controller body, and the temperature control rear seat is installed at the rear end of the temperature controller body. The temperature control rear seat is installed on the inner front end of the fixing component. The fixing component includes a clamping mechanism, a connecting rod, bolts, a movable seat, and a mounting plate. The middle rear end of the clamping mechanism is fixed to the front end of the connecting rod. The rear end of the connecting rod is fixedly connected to the inner front end of the movable seat by bolts. The rear end of the movable seat is fixed to the middle front end of the mounting plate. The temperature control rear seat is installed on the inner front end of the clamping mechanism.
[0009] Preferably, the clamping mechanism includes a clamping base, a rotating shaft, an adjusting gear one, an adjusting gear two, a rack plate one, a spring sleeve rod one, a clamping plate one, a rack plate two, a spring sleeve rod two, a clamping plate two, a rack plate three, a clamping plate three, a spring sleeve rod three, a rack plate four, a clamping plate four, and a spring sleeve rod four. A rotating shaft is located at the center of the inner side of the clamping base. The outer side of the rotating shaft is fixed to the inner center of the adjusting gear one and the adjusting gear two, respectively. The upper and lower sides of the adjusting gear one mesh and rotate with the lower end of the rack plate and the upper end of the rack plate two, respectively. The inner right end of the rack plate one is slidably engaged with the left end of the spring sleeve rod one. The right ends of the spring sleeve rod one and the rack plate two are fixed to the upper and lower sides of the left end of the clamping plate one, respectively. The rack... The inner left side of plate two is slidably engaged with the right side of spring sleeve rod two. The left side of spring sleeve rod two and rack plate one are respectively fixed to the upper and lower sides of the right side of clamping plate two. The upper and lower ends of adjusting gear two are respectively engaged and rotated with the right side of rack plate three and the left side of rack plate four. The bottom of rack plate three and spring sleeve rod three are respectively fixed to the upper left and right sides of clamping plate three. The upper end of spring sleeve rod three is slidably engaged with the inner lower end of rack plate four. The upper ends of rack plate four and spring sleeve rod four are respectively fixed to the lower left and right sides of clamping plate four. The rear seat of temperature control is installed at the middle connection of clamping plate one, clamping plate two, clamping plate three and clamping plate four. The middle rear end of the clamping seat is fixed to the front end of the connecting rod.
[0010] Preferably, the rear end of the clamping mechanism is oscillating and adjusting along the inner side of the front end of the movable seat via a connecting rod, thereby improving the convenience of multi-angle adjustment of the temperature controller body.
[0011] Preferably, the front middle part of the movable seat is fastened to the rear end of the connecting rod by bolts, which helps to improve the stability of the temperature controller body when it is placed horizontally.
[0012] Preferably, the rotating shaft, adjusting gear one, and adjusting gear two are arranged on the same horizontal line in the middle of the inner side of the clamping seat. The rack plate one and rack plate two are adjusted horizontally in opposite directions by adjusting gear one, and the rack plate three and rack plate four are adjusted vertically in opposite directions by adjusting gear two, so as to make the rack plate one, rack plate two, rack plate three and rack plate four achieve the same frequency stability for angle adjustment.
[0013] Preferably, the inner sides of the notches of rack plate one, rack plate two, rack plate three and rack plate four are elastically engaged by springs provided on the outer sides of spring sleeve rod one, spring sleeve rod two, spring sleeve rod three and spring sleeve rod four, respectively, which improves the ease of resetting rack plate one, rack plate two, rack plate three and rack plate four.
[0014] Preferably, rack plate one, rack plate two, rack plate three and rack plate four are directly adjusted synchronously through a rotating shaft, adjusting gear one and adjusting gear two, which facilitates the auxiliary effect of tightening and fixing the edge of the temperature control rear seat indirectly.
[0015] (III) Beneficial Effects
[0016] This utility model provides a temperature control device for an energy storage power station. It has the following advantages: by setting a fixing component, the clamping mechanism provides auxiliary fixation for the rear temperature control seat; the swing adjustment of the connecting rod and the inner side of the front end of the movable seat improves the convenience of multi-angle observation after different angle changes; and the bolts further enhance the stable positioning of the rear temperature control seat after angle adjustment by improving the connection rod and the movable seat.
[0017] This utility model provides a temperature control device for an energy storage power station. It has the following beneficial effects: By setting up a clamping mechanism, when the temperature control rear seat and clamping plate one are pushed outward to the right, clamping plate one moves outward synchronously with rack plate two. With the rack at the upper end of rack plate two, the rack meshes with adjusting gear one and rotates. Subsequently, the rotation of adjusting gear one simultaneously rotates adjusting gear two, indirectly engaging and rotating rack plates one, three, and four together, extending outward along the four inner sides of the clamping seat. Furthermore, the spring sleeve rods one, two, three, and four increase the tightening force between rack plates one, two, three, and four, thereby indirectly improving the tightening and fixing effect on the four outer sides of the temperature control rear seat. Attached Figure Description
[0018] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0019] Figure 2 This is a schematic diagram of the planar structure of the present invention;
[0020] Figure 3 This is a three-dimensional structural diagram of the fixing component of this utility model;
[0021] Figure 4 This is a front-view perspective structural diagram of the clamping mechanism of this utility model;
[0022] Figure 5 This is a rear-view perspective structural diagram of the clamping mechanism of this utility model.
[0023] In the diagram: Temperature controller main body-1, connecting wire-2, temperature control rear seat-3, fixing component-4, clamping mechanism-41, connecting rod-42, bolt-43, movable seat-44, mounting plate-45, clamping seat-411, rotating shaft-412, adjusting gear one-413, adjusting gear two-414, rack plate one-415, spring sleeve rod one-416, clamping plate one-417, rack plate two-418, spring sleeve rod two-419, clamping plate two-4110, rack plate three-4111, clamping plate three-4112, spring sleeve rod three-4113, rack plate four-4114, clamping plate four-4115, spring sleeve rod four-4116. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0025] Please see Figure 1 and 2 This utility model provides a technical solution for a temperature control device for an energy storage power station: a temperature control device for an energy storage power station includes a temperature controller body 1, a connecting line 2, a temperature control rear seat 3, and a fixing component 4. The bottom of the temperature controller body 1 is connected to the connecting line 2, and the rear end of the temperature controller body 1 is equipped with the temperature control rear seat 3, which is installed on the inner side of the front end of the fixing component 4.
[0026] Please see Figure 3This utility model provides a technical solution for a temperature control device for an energy storage power station: A temperature control device for an energy storage power station, the fixing component 4 includes a clamping mechanism 41, a connecting rod 42, a bolt 43, a movable seat 44 and a mounting plate 45. The middle of the rear end of the clamping mechanism 41 is fixed to the front end of the connecting rod 42. The rear end of the connecting rod 42 is fixedly connected to the inner side of the front end of the movable seat 44 by bolt 43. The rear end of the movable seat 44 is fixed to the middle of the front end of the mounting plate 45. The temperature control rear seat 3 is installed on the inner side of the front end of the clamping mechanism 41. The rear end of the clamping mechanism 41 is swung and adjusted vertically along the inner side of the front end of the movable seat 44 by the connecting rod 42, thereby improving the convenience of multi-angle adjustment of the temperature controller body 1. The middle of the front end of the movable seat 44 is threadedly fastened to the rear end of the connecting rod 42 by bolt 43, which also helps to improve the stability of the temperature controller body 1 when placed horizontally.
[0027] Please see Figure 4 and 5This utility model provides a technical solution for a temperature control device for an energy storage power station: A temperature control device for an energy storage power station, the clamping mechanism 41 includes a clamping base 411, a rotating shaft 412, an adjusting gear one 413, an adjusting gear two 414, a rack plate one 415, a spring sleeve rod one 416, a clamping plate one 417, a rack plate two 418, a spring sleeve rod two 419, a clamping plate two 4110, a rack plate three 4111, a clamping plate three 4112, a spring sleeve rod three 4113, a rack plate four 4114, a clamping plate four 4115, and a spring sleeve rod four 4116. The rotating shaft 412 is provided in the middle of the inner side of the clamping base 411, and the outer side of the rotating shaft 412 is fixed to the inner middle of the adjusting gear one 413 and the adjusting gear two 414 respectively. The upper and lower sides of adjusting gear 413 mesh with the lower end of rack plate 415 and the upper end of rack plate 418, respectively, and rotate. The inner side of the right end of rack plate 415 slides with the left end of spring sleeve rod 416. The right ends of spring sleeve rod 416 and rack plate 418 are fixed to the upper and lower sides of the left end of clamping plate 417, respectively. The inner side of the left end of rack plate 418 slides with the right end of spring sleeve rod 419. Spring sleeve rod 419 and the left end of rack plate 415 are fixed to the upper and lower sides of the right end of clamping plate 4110, respectively. The upper and lower ends of adjusting gear 414 mesh with the right end of rack plate 4111 and the left end of rack plate 4114, respectively, and rotate. Rack plate 4111 and spring sleeve rod 419 slide with the right end of spring sleeve rod 419. The bottom of rod 3 4113 is fixed to the upper left and right sides of clamping plate 3 4112 respectively. The upper end of spring sleeve rod 3 4113 is slidably engaged with the lower inner side of rack plate 4114. The upper ends of rack plate 4114 and spring sleeve rod 4116 are fixed to the bottom left and right sides of clamping plate 4115 respectively. The temperature control rear seat 3 is installed at the middle connection of clamping plate 1 417, clamping plate 2 4110, clamping plate 3 4112 and clamping plate 4115. The middle rear end of clamping seat 411 is fixed to the front end of connecting rod 42. Rotating shaft 412, adjusting gear 1 413 and adjusting gear 2 414 are arranged on the same horizontal line in the middle of the inner side of clamping seat 411. Rack plate 1 415 and rack plate 2 418 are connected by... Adjusting gear 1 413 performs horizontal opposing translation adjustment, while rack plate 3 4111 and rack plate 4114 perform vertical opposing translation adjustment via adjusting gear 2 414. This facilitates the synchronous frequency stability of angle adjustment among rack plate 1 415, rack plate 2 418, rack plate 3 4111, and rack plate 4114. The inner sides of the notches of rack plate 1 415, rack plate 2 418, rack plate 3 4111, and rack plate 4114 are elastically engaged by springs located on the outer sides of spring sleeve rod 1 416, spring sleeve rod 2 419, spring sleeve rod 3 4113, and spring sleeve rod 4116, respectively, improving the ease of resetting rack plate 1 415, rack plate 2 418, rack plate 3 4111, and rack plate 4114.Rack plate 1 (415), rack plate 2 (418), rack plate 3 (4111), and rack plate 4 (4114) are directly adjusted synchronously via rotating shaft 412, adjusting gear 1 (413), and adjusting gear 2 (414), which indirectly improves the tightening and fixing effect on the edge of the temperature control rear seat 3.
[0028] In use, the right edge of the temperature control rear seat 3 is first pushed outward to the right by the clamping plate 417. Then, the clamping plate 417 and the rack plate 418 extend outward to the right side of the clamping seat 411. With the rack on the upper end of the rack plate 418, the rack meshes with the adjusting gear 413 and rotates. Then, the adjusting gear 413 rotates while the adjusting gear 414 rotates, and indirectly meshes with the rack plate 415, rack plate 4111 and rack plate 4114 and extends outward along the four inner sides of the clamping seat 411 for adjustment.
[0029] Then, by using spring sleeve rod 1 416, spring sleeve rod 2 419, spring sleeve rod 3 4113 and spring sleeve rod 4116 respectively, the tightening force between rack plate 1 415, rack plate 2 418, rack plate 3 4111 and rack plate 4114 is increased, thereby indirectly improving the tightening and fixing of the four sides of the outer side of the temperature control rear seat 3.
[0030] Finally, the swing adjustment of the connecting rod 42 and the inner front end of the movable seat 44 improves the convenience of multi-angle observation after different angle conversion of the temperature control rear seat 3, and the bolt 43 enhances the stability of the high temperature control rear seat 3 after angle adjustment by the connecting rod 42 and the movable seat 44.
[0031] The control method of this utility model is to control the device by manually starting and stopping the switch. The wiring diagram of the power element and the supply of power are common knowledge in the field. Since this utility model is mainly used to protect mechanical devices, the control method and wiring layout will not be explained in detail.
[0032] The control method of this utility model is automatic control through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art. The power supply is also common knowledge in the field. Since this utility model is mainly used to protect mechanical devices, the control method and circuit connection will not be explained in detail.
[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A temperature control device for an energy storage power station, comprising a temperature controller body (1), a connecting line (2) and a temperature control rear mount (3), wherein the bottom of the temperature controller body (1) is connected to the connecting line (2) and the rear end of the temperature controller body (1) is equipped with the temperature control rear mount (3); Its features are: It also includes a fixing component (4), the temperature control rear seat (3) is installed on the inner side of the front end of the fixing component (4), the fixing component (4) includes a clamping mechanism (41), a connecting rod (42), a bolt (43), a movable seat (44) and a mounting plate (45), the middle of the rear end of the clamping mechanism (41) is fixed to the front end of the connecting rod (42), the rear end of the connecting rod (42) is fixedly connected to the inner side of the front end of the movable seat (44) by bolts (43), the rear end of the movable seat (44) is fixed to the middle of the front end of the mounting plate (45), and the temperature control rear seat (3) is installed on the inner side of the front end of the clamping mechanism (41).
2. The temperature control device for an energy storage power station according to claim 1, characterized in that: The clamping mechanism (41) includes a clamping base (411), a rotating shaft (412), an adjusting gear one (413), an adjusting gear two (414), a rack plate one (415), a spring sleeve rod one (416), a clamping plate one (417), a rack plate two (418), a spring sleeve rod two (419), a clamping plate two (4110), a rack plate three (4111), a clamping plate three (4112), a spring sleeve rod three (4113), a rack plate four (4114), a clamping plate four (4115), and a spring sleeve rod four (4116). The clamping base (411) A rotating shaft (412) is provided in the middle of the inner side of 11). The outer side of the rotating shaft (412) is fixed to the inner side of the middle of the first adjusting gear (413) and the second adjusting gear (414). The upper and lower sides of the first adjusting gear (413) mesh with the lower end of the first rack plate (415) and the upper end of the second rack plate (418) respectively. The inner side of the right end of the first rack plate (415) slides with the left end of the first spring sleeve rod (416). The right ends of the first spring sleeve rod (416) and the second rack plate (418) are respectively connected to the left side of the first clamping plate (417). The upper and lower sides of the rack plate are fixed together. The inner side of the left end of the rack plate two (418) is slidably engaged with the right end of the spring sleeve rod two (419). The left ends of the spring sleeve rod two (419) and the rack plate one (415) are respectively fixed to the upper and lower sides of the right end of the clamping plate two (4110). The upper and lower ends of the adjusting gear two (414) are respectively engaged and rotated with the right end of the rack plate three (4111) and the left end of the rack plate four (4114). The bottoms of the rack plate three (4111) and the spring sleeve rod three (4113) are respectively engaged with the upper end of the clamping plate three (4112). The left and right sides of the end are fixed together. The upper end of the spring sleeve rod three (4113) is slidably engaged with the inner side of the lower end of the rack plate four (4114). The upper ends of the rack plate four (4114) and the spring sleeve rod four (4116) are respectively fixed to the left and right sides of the bottom of the clamping plate four (4115). The temperature control rear seat (3) is installed at the middle connection of the clamping plate one (417), clamping plate two (4110), clamping plate three (4112) and clamping plate four (4115). The middle of the rear end of the clamping seat (411) is fixed to the front end of the connecting rod (42).
3. The temperature control device for an energy storage power station according to claim 1, characterized in that: The rear end of the clamping mechanism (41) is oscillating and adjusting along the inner side of the front end of the movable seat (44) via the connecting rod (42).
4. The temperature control device for an energy storage power station according to claim 1, characterized in that: The front middle of the movable seat (44) is fastened to the rear end of the connecting rod (42) by bolts (43).
5. The temperature control device for an energy storage power station according to claim 2, characterized in that: The rotating shaft (412), adjusting gear one (413), and adjusting gear two (414) are arranged on the same horizontal line in the middle of the inner side of the clamping base (411). The rack plate one (415) and rack plate two (418) are adjusted horizontally in opposite directions by adjusting gear one (413), and the rack plate three (4111) and rack plate four (4114) are adjusted vertically in opposite directions by adjusting gear two (414).
6. The temperature control device for an energy storage power station according to claim 2, characterized in that: The inner sides of the notches of the rack plate one (415), rack plate two (418), rack plate three (4111), and rack plate four (4114) are elastically engaged by springs provided on the outer sides of spring sleeve rod one (416), spring sleeve rod two (419), spring sleeve rod three (4113), and spring sleeve rod four (4116), respectively.
7. The temperature control device for an energy storage power station according to claim 2, characterized in that: The rack plate one (415), rack plate two (418), rack plate three (4111) and rack plate four (4114) are directly adjusted synchronously through the rotating shaft (412), adjusting gear one (413) and adjusting gear two (414).
Citation Information
Patent Citations
Quick joint formula energy storage power station temperature control device
CN208782345U