A control device for a new energy storage power station with adjustable regulation
By designing the wire harness assembly and bending assembly, the problem of wire twisting in the control device of the energy storage power station was solved, realizing the orderly layout and tension of the wires, improving the stability of the wire connection and the heat dissipation efficiency of the chassis.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHAANXI XINGZHENGWEI NEW ENERGY TECH CO LTD
- Filing Date
- 2025-06-25
- Publication Date
- 2026-07-17
AI Technical Summary
The control devices of existing energy storage power stations are prone to wire twisting during installation, which leads to performance degradation and affects the heat dissipation of the airflow channels inside the chassis, making them inconvenient to use.
The system employs wire harnessing and bending components, including a moving plate, an L-shaped harnessing plate, a threaded rod, a rotating rod, and a lifting frame. Through the cooperation of these components, the orderly layout and tension of the wires are achieved, preventing the wires from bending and becoming tangled.
It effectively reduces the space occupied by cables, keeps cables taut, prevents cables from bending and tangling, and improves the stability of cable connections and the heat dissipation efficiency of the chassis.
Smart Images

Figure CN224520454U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of energy storage power station technology, and in particular to a control device for a regulating new energy storage power station. Background Technology
[0002] An energy storage power station, also known as an integrated energy storage unit, is a device that integrates an energy storage system and related power conversion equipment. It can store and release electrical energy, providing users with a stable and reliable power supply. Integrated energy storage units are commonly used in homes, businesses, and industries to improve energy efficiency, enhance grid stability, and promote the use of renewable energy.
[0003] Existing energy storage power stations consist of a fixed enclosure, with the interior divided into two areas: a battery compartment and a high-voltage compartment. In emergencies, the battery compartment can provide continuous power, while the high-voltage compartment's control module manages the power supply. This control module needs to be connected to other components within the high-voltage compartment to function as a controller, ultimately enabling the storage and release of electrical energy.
[0004] When installing existing energy storage power stations, the controller is directly plugged into the high-voltage chamber after the wiring is completed. This causes the internal wires to twist automatically during the plugging process. After long-term use, the performance of the wires will degrade, making it impossible for the controller to transmit control signals properly. In addition, the twisted and noisy wires will also affect the airflow and heat dissipation inside the chassis, making it inconvenient to use. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the problems existing in the prior art, this utility model provides a control device for a regulating new energy storage power station.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model is implemented through the following technical solution: a control device for a regulating new energy storage power station, comprising a chassis, a battery compartment inside the chassis, a high-voltage compartment inside the chassis, a control module inside the high-voltage compartment, a frame assembly inside the high-voltage compartment, a wire harness assembly inside the frame assembly, and a bending assembly inside the frame assembly;
[0009] The cable harness assembly includes a movable plate slidably disposed inside a rack assembly. Several fixed plates are fixedly installed on the upper surface of the movable plate. L-shaped cable gathering plates are hinged to both sides of the fixed plates. Fixed blocks are fixedly connected to both sides of the movable plate. A threaded rod is movably connected to the side of the fixed block near the control module. A threaded sleeve is provided inside the rack assembly.
[0010] The bending assembly includes two rotating rods hinged to the side of the moving plate away from the control module. A lifting frame is hinged to the top of the rotating rods. Two sliders are slidably arranged inside the lifting frame. A compression spring is fixedly connected between the sliders and the lifting frame. A support rod is hinged to the top of the sliders. A support plate is hinged to the top of the support rod. Several guide rings are fixedly connected to the top of the support plate.
[0011] As a preferred embodiment of the control device for a new energy storage power station according to the present invention, the frame assembly includes four support frames fixedly connected inside the high-pressure chamber. A top plate is fixedly connected to the top of the support frame, a bottom plate is fixedly connected to the bottom of the support frame, and a threaded sleeve is fixedly connected inside the bottom plate.
[0012] As a preferred embodiment of the control device for an adjustable new energy storage power station described in this utility model, a crossbeam is fixedly connected between two support frames on the same side, and a limit rail is provided on the outer surface of the crossbeam. Grooves that cooperate with the limit rail are provided on both sides of the control module.
[0013] As a preferred embodiment of the control device for an adjustable new energy storage power station described in this utility model, the upper surface of the base plate is provided with a limiting groove, and the lower surface of the movable plate is provided with a limiting protrusion that cooperates with the limiting groove.
[0014] As a preferred embodiment of the control device for an adjustable new energy storage power station described in this utility model, a torsion spring is provided at the hinge point between the L-shaped convergence plate and the fixed plate, a plurality of rectangular openings are provided at the top of the L-shaped convergence plate, and an inclined surface is provided at the top of the L-shaped convergence plate.
[0015] As a preferred embodiment of the control device for an adjustable new energy storage power station described in this utility model, two limiting columns are fixedly connected between the top plate and the bottom plate, a limiting slider is provided on the side of the lifting frame near the limiting columns, and a limiting groove that cooperates with the limiting slider is opened on the outer surface of the limiting columns.
[0016] As a preferred embodiment of the control device for an adjustable new energy storage power station described in this utility model, the top of the lifting frame is provided with a rectangular groove, the slider slides in the rectangular groove, the inner wall of the rectangular groove is provided with a limit groove, both sides of the slider are provided with protrusions that cooperate with the limit groove, the lower surface of the support plate is fixedly connected with a plug rod, and the inside of the lifting frame is provided with a plug hole that cooperates with the plug rod.
[0017] (III) Beneficial Effects
[0018] This utility model provides a control device for a regulating new energy storage power station. It has the following beneficial effects:
[0019] 1. Press the wires down into the two L-shaped bundles. Under the action of the torsion spring, the L-shaped bundles will be reset. Depending on the length of the wires and the classification requirements, the wires can be passed directly out from the opening at the top of the L-shaped bundles without having to pass through the entire L-shaped bundles for cable management. By setting up the L-shaped bundles, several wires can be bundled into a single bundle in batches, making cable management easier.
[0020] 2. When the moving plate is moved by the threaded rod and threaded sleeve, the lifting frame is moved by the rotating rod. This allows the wire passing through the guide ring to bend by the raised support plate and guide ring, reducing space occupation. Furthermore, the spring, slider and support rod settings can maintain the tension of the wire and prevent the wire from bending and scattering. Attached Figure Description
[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0022] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0023] Figure 2 This is a schematic diagram of the control module of this utility model.
[0024] Figure 3 This is an exploded structural diagram of the frame assembly of this utility model.
[0025] Figure 4 This is a utility model Figure 4 A magnified structural diagram of A in the diagram.
[0026] Figure 5 This is an exploded structural diagram of the bending component of this utility model.
[0027] In the diagram, 1. Chassis; 2. Battery compartment; 3. High-voltage compartment; 4. Control module; 5. Frame assembly; 501. Top plate; 502. Crossbeam; 503. Base plate; 504. Support frame; 6. Cable harness assembly; 601. Fixing plate; 602. Fixing block; 603. Moving plate; 604. L-shaped cable gathering plate; 605. Threaded rod; 606. Threaded sleeve; 7. Bending assembly; 701. Rotating rod; 702. Lifting frame; 703. Support rod; 704. Limiting post; 705. Slider; 706. Guide ring; 707. Support plate; 708. Insert rod; 709. Compression spring. Detailed Implementation
[0028] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention.
[0029] Example 1
[0030] Reference Figure 1 , Figure 2 , Figure 3 and Figure 4 This is the first embodiment of the present utility model. This embodiment provides a control device for an adjustable new energy storage power station, including a chassis 1, a battery compartment 2 inside the chassis 1, a high-voltage compartment 3 inside the chassis 1, a control module 4 inside the high-voltage compartment 3, a frame assembly 5 inside the high-voltage compartment 3, a wire harness assembly 6 inside the frame assembly 5, and a bending assembly 7 inside the frame assembly 5.
[0031] The cable harness assembly 6 includes a movable plate 603 that is slidably disposed inside the rack assembly 5. Several fixed plates 601 are fixedly installed on the upper surface of the movable plate 603. L-shaped cable gathering plates 604 are hinged to both sides of the fixed plates 601. Fixed blocks 602 are fixedly connected to both sides of the movable plate 603. A threaded rod 605 is movably connected to the side of the fixed block 602 near the control module 4. A threaded sleeve 606 is provided inside the rack assembly 5.
[0032] Specifically, the frame assembly 5 includes four support frames 504 fixedly connected inside the high-pressure chamber 3. A top plate 501 is fixedly connected to the top of the support frame 504, and a bottom plate 503 is fixedly connected to the bottom of the support frame 504. A threaded sleeve 606 is fixedly connected inside the bottom plate 503.
[0033] Specifically, a crossbeam 502 is fixedly connected between two support frames 504 on the same side. The outer surface of the crossbeam 502 is provided with a limit slide rail. Both sides of the control module 4 are provided with grooves that cooperate with the limit slide rail. The control module 4 can be easily plugged in by cooperating with the limit slide rail on the outer surface of the crossbeam 502.
[0034] Specifically, the upper surface of the base plate 503 is provided with a limiting groove, and the lower surface of the movable plate 603 is provided with a limiting protrusion that cooperates with the limiting groove. Through the cooperation between the base plate 503 and the movable plate 603, the movement of the limiting movable plate 603 is facilitated.
[0035] Specifically, a torsion spring is provided at the hinge point between the L-shaped gathering plate 604 and the fixing plate 601. The top of the L-shaped gathering plate 604 has several rectangular openings and a slope. The torsion spring facilitates the reset of the rotation of the L-shaped gathering plate 604. The slope allows the L-shaped gathering plate 604 to rotate outward when the wire is pressed down, making it easier for the wire to be pressed between the two L-shaped gathering plates 604. The rectangular openings allow the wire to pass directly through the openings at the top of the L-shaped gathering plate 604 without having to pass through the entire L-shaped gathering plate 604 for cable management.
[0036] Furthermore, the wires are pressed down between the two L-shaped coiling plates 604, thereby causing the L-shaped coiling plates 604 to rotate outward through the inclined surface at the top. When the wires are pressed down between the two L-shaped coiling plates 604, the L-shaped coiling plates 604 are reset under the action of the torsion spring. Depending on the length of the wires and the classification requirements, the wires can be directly passed through the openings at the top of the L-shaped coiling plates 604 without having to pass through the entire L-shaped coiling plate 604 for cable management. Through the setting of the L-shaped coiling plates 604, several wires can be bundled into a bundle in batches for easy cable management. The connection relationship, working principle and operation sequence between the control module 4 and other components are existing technologies and are common knowledge known to those skilled in the art, and will not be elaborated on here.
[0037] Example 2
[0038] Reference Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 This is the second embodiment of the present invention. This embodiment is based on the previous embodiment. The bending component 7 includes two rotating rods 701 hinged to the side of the moving plate 603 away from the control module 4. The top of the rotating rods 701 is hinged to a lifting frame 702. Two sliders 705 are slidably arranged inside the lifting frame 702. A compression spring 709 is fixedly connected between the sliders 705 and the lifting frame 702. The top of the sliders 705 is hinged to a support rod 703. The top of the support rod 703 is hinged to a support plate 707. Several guide rings 706 are fixedly connected to the top of the support plate 707.
[0039] Specifically, two limiting posts 704 are fixedly connected between the top plate 501 and the bottom plate 503. A limiting slider 705 is provided on the side of the lifting frame 702 near the limiting posts 704. The outer surface of the limiting post 704 is provided with a limiting groove that cooperates with the limiting slider 705. Through the cooperation between the limiting post 704 and the limiting slider 705, when the moving plate 603 moves, it drives the rotating rod 701 to rotate. Through the cooperation between the limiting slider 705 and the limiting groove, the lifting frame 702 can be limited to lifting and lowering.
[0040] Specifically, the top of the lifting frame 702 is provided with a rectangular groove, the slider 705 slides in the rectangular groove, the inner wall of the rectangular groove is provided with a limit groove, and both sides of the slider 705 are provided with protrusions that cooperate with the limit groove. The lower surface of the support plate 707 is fixedly connected with a plug rod 708, and the inside of the lifting frame 702 is provided with a plug hole that cooperates with the plug rod 708. Through the cooperation of the rectangular groove and the limit groove, the sliding of the slider 705 is conveniently limited. Through the setting of the plug rod 708, the vertical lifting of the support plate 707 can be limited.
[0041] Furthermore, when the moving plate 603 is moved by the threaded rod 605 and the threaded sleeve 606, the lifting frame 702 is moved by the rotating rod 701. This allows the wire passing through the guide ring 706 to be bent by the raised support plate 707 and the guide ring 706, reducing the space occupied. The spring, slider 705 and support rod 703 keep the wire taut and prevent it from bending and scattering. The moving position of the moving plate 603 can be adjusted to accommodate wires of different lengths or specifications.
[0042] Working principle: When installing the control module 4 in the energy storage power station, the wires required for connection to the control module 4 are plugged in. Then, the wires are aligned with the adjacent L-shaped coiling plates 604. By pressing the wires down between the two L-shaped coiling plates 604, the inclined surface at the top of the L-shaped coiling plates 604 causes them to rotate outward. After the wires are pressed between the two L-shaped coiling plates 604, the torsion springs cause the L-shaped coiling plates 604 to return to their original position. Depending on the length and classification requirements of the wires, the wires can be selected to exit from the L-shaped coiling plates respectively. The wires can pass directly through the opening at the top of 604 without needing to pass through the entire L-shaped cable management plate 604. The L-shaped cable management plate 604 allows for the grouping and bundling of several wires into a single bundle, facilitating cable management. Before the wires engage with the L-shaped cable management plate 604, the threaded rods 605 can be adjusted according to the overall wire length. By simultaneously rotating two threaded rods 605, the fixed threaded sleeve 606 causes the threaded rods 605 to move the movable plate 603. When the movable plate 603 moves, it causes the rotating rod 701 to... The lifting frame 702 moves, causing the guide ring 706 to descend, facilitating the management of shorter wires. After the wire is aligned with the L-shaped cable tray 604, the wire is passed through the guide ring 706, and the control module 4 is inserted into the frame assembly 5. Then, the threaded rod 605 is rotated in the reverse direction, causing the moving plate 603 to reset. This, in turn, causes the lifting frame 702 to rise via the rotating rod 701. As the lifting frame 702 rises, the wire bends. The bent wire, through the guide ring 706 and the support plate 707, presses down on the support rod 703, thereby... The rotation of the support rod 703 drives the slider 705 to slide, thereby compressing the spring 709. This prevents the support plate 707 from being raised too high, causing the wires to be stretched too tightly and affecting the connection between the wires and other components. Furthermore, the action of the spring 709 on the slider 705, through the support rod 703, drives the support plate 707 and the guide ring 706 to maintain the tension of the wires, preventing the wires from curling and scattering inside the housing 1. Ultimately, this enables the installation of the control module 4 of the energy storage power station. The internally connected wires can be adjusted according to their length, facilitating wire management.
[0043] It should be noted that in this paper, relational terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations.
Claims
1. Adjustable new energy energy storage power station control device, including case (1), the inside of case (1) is provided with battery compartment (2), the inside of case (1) is provided with high pressure compartment (3), the inside of high pressure compartment (3) is provided with control module (4), it is characterized by: The high-pressure chamber (3) is provided with a frame assembly (5), the frame assembly (5) is provided with a wire harness assembly (6), and the frame assembly (5) is provided with a bending assembly (7). The cable harness assembly (6) includes a movable plate (603) that is slidably disposed inside the rack assembly (5). Several fixed plates (601) are fixedly installed on the upper surface of the movable plate (603). L-shaped cable gathering plates (604) are hinged to both sides of the fixed plates (601). Fixed blocks (602) are fixedly connected to both sides of the movable plate (603). A threaded rod (605) is movably connected to the side of the fixed block (602) near the control module (4). A threaded sleeve (606) is provided inside the rack assembly (5). The bending assembly (7) includes two rotating rods (701) hinged to the side of the moving plate (603) away from the control module (4). The top of the rotating rods (701) is hinged to a lifting frame (702). Two sliders (705) are slidably arranged inside the lifting frame (702). A compression spring (709) is fixedly connected between the sliders (705) and the lifting frame (702). The top of the sliders (705) is hinged to a support rod (703). The top of the support rod (703) is hinged to a support plate (707). The top of the support plate (707) is fixedly connected to several guide rings (706).
2. The adjustable new energy storage power station control device according to claim 1, characterized in that: The frame assembly (5) includes four support frames (504) fixedly connected inside the high-pressure chamber (3). The top of the support frame (504) is fixedly connected to a top plate (501), and the bottom of the support frame (504) is fixedly connected to a bottom plate (503). The threaded sleeve (606) is fixedly connected inside the bottom plate (503).
3. The adjustable new energy storage power station control device according to claim 2, characterized in that: A crossbeam (502) is fixedly connected between the two support frames (504) on the same side. The outer surface of the crossbeam (502) is provided with a limit slide rail. Both sides of the control module (4) are provided with grooves that cooperate with the limit slide rail.
4. The adjustable new energy storage power station control device according to claim 3, characterized in that: The upper surface of the base plate (503) is provided with a limiting groove, and the lower surface of the movable plate (603) is provided with a limiting protrusion that cooperates with the limiting groove.
5. The adjustable new energy energy storage power station control device according to claim 4, characterized in that: A torsion spring is provided at the hinge point between the L-shaped gathering plate (604) and the fixing plate (601). The top of the L-shaped gathering plate (604) is provided with several rectangular openings and a slope is provided at the top of the L-shaped gathering plate (604).
6. The adjustable new energy energy storage power station control device according to claim 5, characterized in that: Two limiting posts (704) are fixedly connected between the top plate (501) and the bottom plate (503). A limiting slider (705) is provided on the side of the lifting frame (702) near the limiting post (704). A limiting groove that cooperates with the limiting slider (705) is opened on the outer surface of the limiting post (704).
7. The control device for a regulating new energy storage power station according to claim 6, characterized in that: The top of the lifting frame (702) is provided with a rectangular groove, the slider (705) slides in the rectangular groove, the inner wall of the rectangular groove is provided with a limiting groove, both sides of the slider (705) are provided with protrusions that cooperate with the limiting groove, the lower surface of the support plate (707) is fixedly connected with a plug rod (708), and the inside of the lifting frame (702) is provided with a plug hole that cooperates with the plug rod (708).