A tilt energy storage box convenient to install
Patent Information
- Application Number
- CN202521962249.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-11
- Publication Date
- 2026-09-22
- Estimated Expiration
- 2035-09-11
AI Technical Summary
现有储能盒多采用螺栓紧固或焊接固定方式,安装时需精准对位孔位并借助工具完成装配,不仅耗时费力,后期维护拆卸时还需逐一松卸紧固件,操作流程繁琐
[0011]有益效果:1、通过滑块与滑轨的滑动配合、卡块弹簧的自动卡接结构,结合固定组件与压紧板的快速操作,可实现储能盒的快速安装与拆卸,减少安装工时,提升维护便利性。
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Figure CN224790878U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of energy storage box technology, and in particular to an easy-to-install tilted energy storage box. Background Technology
[0002] In fields such as new energy equipment and emergency power supply systems, energy storage boxes are core components for energy storage and supply. Their installation stability and ease of operation directly affect the overall operating efficiency of the equipment. Existing energy storage boxes mostly use bolt fastening or welding fixing methods. During installation, precise alignment of the holes and the use of tools are required to complete the assembly, which is not only time-consuming and labor-intensive, but also requires loosening and unfastening the fasteners one by one during subsequent maintenance and disassembly, making the operation process cumbersome.
[0003] Meanwhile, some sliding installation structures for energy storage boxes lack bidirectional limiting components, making them prone to longitudinal slippage or lateral loosening during long-term use, thus compromising both installation efficiency and structural stability. Furthermore, traditional structures are ill-suited to the angle requirements of different installation scenarios, resulting in poor versatility. Utility Model Content
[0004] To overcome the aforementioned drawbacks, this invention provides an easy-to-install tilted energy storage box.
[0005] The technical solution is as follows: An easy-to-install tilting energy storage box includes an energy storage box, a support plate, a slider, a mounting plate, a slide rail, a support frame, a sliding bracket, springs, locking blocks, and fixing components. The energy storage box is rotatably mounted on the front side of the support plate via a pin. The relative rotation surfaces of the pins are filled with damping medium. Sliders are symmetrically connected to the rear side of the support plate. The mounting plate serves as the load-bearing base of the device, and slide rails corresponding to the sliders are symmetrically installed on its front side. The sliders and slide rails form a sliding guide fit. Support frames are installed on the upper and lower sides of the outer side wall of the slide rail. A sliding bracket is slidably connected through the support frame. Locking blocks are connected to the inner side of the sliding bracket. The inner end of the locking block extends into the slide rail groove, and its inner side wall is set as an inclined surface. Two springs are connected between the outer side of the locking block and the inside of the support frame. The springs are sleeved on the outside of the sliding bracket. A locking groove is opened on the slider at the corresponding position of the locking block. The locking block is locked into the locking groove. Fixing components are provided on the slide rail.
[0006] As an improvement to the above solution, the mating surfaces of the slider and the slide rail are inlaid with a polytetrafluoroethylene wear-resistant layer.
[0007] As an improvement to the above solution, the angle between the inclined surface of the card block and the horizontal plane is set to 30°-45°, and the inclined surface is mirror polished.
[0008] As an improvement to the above solution, the fixing component includes a fixing block, a first screw, and a limiting frame. The middle of the outer side of the slide rail is connected to the fixing block, the first screw is threadedly connected to the fixing block, and the limiting frame is rotatably connected to the first screw. The limiting frame and the outer side wall of the two support frames on the same side form a sliding fit, and the inner side of the limiting frame abuts against the outer end of the sliding frame.
[0009] As an improvement to the above solution, it also includes a second screw, a lifting block, a movable rod, and a pressure plate. The second screw is rotatably mounted on the lower middle position of the mounting plate via a bearing seat. The second screw extends vertically and is threadedly connected to the lifting block on its outer circumference. The lifting block is fitted against the front side of the mounting plate. A movable rod is rotatably connected to the lifting block. A pressure plate is rotatably connected to the top of the mounting plate via a pin. The movable rod is rotatably connected to the bottom front side of the pressure plate. The pressure plate and the top surface of the slider form a pressing fit.
[0010] As an improvement to the above scheme, the damping medium is made of silicone rubber, and an annular rubber storage groove is evenly opened on the outer circumference of the pin.
[0011] Beneficial effects: 1. Through the sliding cooperation between the slider and the slide rail, the automatic locking structure of the locking block spring, and the quick operation of the fixing components and the pressure plate, the energy storage box can be quickly installed and disassembled, reducing installation time and improving maintenance convenience.
[0012] 2. The one-way locking of the card block and the card slot, the horizontal fixing of the limit frame, the vertical pressing of the pressure plate, and the angle locking of the damping medium work together to ensure that the energy storage box does not loosen or shift during use, thus ensuring operational stability.
[0013] 3. The energy storage box can be tilted and kept stable as needed by rotating the pin shaft in conjunction with the damping medium. It can adapt to different installation environments and usage requirements, enhancing the applicability of the device in various scenarios. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a three-dimensional structural diagram of the energy storage box, support plate, and slider component of this utility model.
[0016] Figure 3 This is a three-dimensional structural diagram of the slider, mounting plate, and slide rail components of this utility model.
[0017] Figure 4 This is a cross-sectional view of the slide rail, support frame, and fixing block of this utility model.
[0018] The following are the labels in the diagram: 1. Energy storage box, 2. Support plate, 3. Slider, 4. Mounting plate, 5. Slide rail, 6. Support frame, 7. Sliding frame, 8. Spring, 9. Locking block, 10. Fixing block, 11. First screw, 12. Limiting frame, 13. Second screw, 14. Lifting block, 15. Movable rod, 16. Pressing plate. Detailed Implementation
[0019] Example: An easy-to-install tilting energy storage box, such as Figures 1-4 As shown, the device includes an energy storage box 1, a support plate 2, a slider 3, a mounting plate 4, a slide rail 5, a support frame 6, a sliding bracket 7, a spring 8, a locking block 9, and a fixing assembly. The energy storage box 1 is rotatably mounted on the front side of the support plate 2 via a pin. The relative rotational surfaces of the pin are filled with a damping medium to enhance relative rotational resistance. The damping medium is made of silicone rubber, which has stable damping characteristics and aging resistance. The outer circumference of the pin is uniformly provided with annular rubber storage grooves, which enhance the adhesion stability of the damping medium and ensure reliable tilt adjustment during long-term use. Slider 3s are symmetrically connected to the rear side of the support plate 2. The mounting plate 4 serves as the load-bearing base of the device, and slide rails 5 corresponding to slider 3s are symmetrically mounted on its front side. Slider 3s and slide rails 5 form a sliding guide fit, enabling the overall sliding assembly of the support plate 2 and the energy storage box 1. The mating surfaces of slider 3 and slide rails 5 are inlaid with a polytetrafluoroethylene wear-resistant layer, which can significantly reduce sliding friction. To reduce wear and tear after long-term use, extend the lifespan of the device, and maintain smooth sliding, a support frame 6 is installed on the upper and lower sides of the outer wall of the slide rail 5. A sliding frame 7 is slidably connected through the support frame 6. A locking block 9 is integrally formed on the inner side of the sliding frame 7. The inner end of the locking block 9 extends into the slide groove of the slide rail 5, and its inner side wall is set as an inclined surface. The inclined surface gradually rises from the outside to the inside. Two springs 8 are connected between the outer side of the locking block 9 and the inside of the support frame 6. The springs 8 are sleeved on the outside of the sliding frame 7. A locking groove is opened on the slider 3 at the corresponding position of the locking block 9. The locking block 9 is locked into the locking groove to realize the installation of the energy storage box 1. The angle between the inclined surface of the locking block 9 and the horizontal plane is set to 30°-45°, and the inclined surface is mirror polished. This angle range can balance the effort-saving effect of the slider 3 pushing the locking block 9 and the locking stability after locking. Mirror polishing further reduces sliding resistance and avoids jamming. A fixing component is provided on the slide rail 5.
[0020] like Figures 3-4 As shown, the fixing assembly includes a fixing block 10, a first screw 11, and a limiting frame 12. The middle of the outer side of the slide rail 5 is connected to the fixing block 10. The first screw 11 is threadedly connected to the fixing block 10. The limiting frame 12 is rotatably connected to the first screw 11. The limiting frame 12 and the outer side wall of the two support frames 6 on the same side form a sliding fit. The inner side of the limiting frame 12 abuts against the outer end of the sliding frame 7 to achieve axial positioning of the sliding frame 7.
[0021] When using this device, first install the mounting plate 4 in the designated mounting position using bolts. Then install the energy storage box 1. Rotate the first screw 11 to move it outward, causing the limiting frame 12 to move synchronously, moving the limiting frame 12 away from the sliding frame 7, leaving room for the sliding frame 7 to move. Then hold the energy storage box 1 and align the slider 3 on the support plate 2 with the slide rail 5. Then push the energy storage box 1 upward along the guide direction of the slide rail 5. As the slider 3 moves upward along the slide groove of the slide rail 5, it slides relative to the inclined surface of the locking block 9. Through the guiding action of the inclined surface, the locking block 9 is pushed outward and the spring 8 is compressed. The sliding frame 7 retracts into the support frame 6 synchronously with the locking block 9. When the slider 3 moves upward to the preset position, the slot on the slider 3 and the locking block 9 are axially aligned. The spring 8 elastically resets, driving the locking block 9 and the sliding frame 7 to reset inward. The locking block 9 is embedded in the slot to form an axis. The slider 3 cannot slide downwards due to the one-way limiting effect of the inclined surface of the locking block 9. Then, the first screw 11 is turned in the opposite direction to drive the limiting frame 12 to move inwards until the limiting frame 12 is tightly abutted against the outer end of the sliding frame 7, thereby achieving the lateral locking of the sliding frame 7 and ensuring the stability of the engagement between the locking block 9 and the slot. During use, the energy storage box 1 can be tilted around the pin. The damping medium provides stable frictional resistance to ensure that the energy storage box 1 can be stably maintained at the preset tilt angle position after adjustment. When disassembling and maintaining the energy storage box 1, the limiting frame 12 is no longer limiting the sliding frame 7 according to the above operation. Then, the energy storage box 1 can be pushed upwards, so that the slider 3, through the engagement with the inclined surface of the locking block 9, squeezes the locking block 9 outwards. The slider 3 can then continue to move upwards until the slider 3 is completely disengaged from the slide rail 5, thereby achieving the quick disassembly of the energy storage box 1.
[0022] like Figure 1 and Figure 3 As shown, it also includes a second screw 13, a lifting block 14, a movable rod 15, and a pressure plate 16. The second screw 13 is rotatably mounted on the lower middle position of the mounting plate 4 via a bearing seat. The second screw 13 extends vertically and is threadedly connected to the lifting block 14 on its outer circumference. The lifting block 14 is fitted against the front side of the mounting plate 4 and can only move vertically due to the constraint of the mounting plate 4. The movable rod 15 is rotatably connected to the lifting block 14. The pressure plate 16 is rotatably connected to the top of the mounting plate 4 via a pin. The movable rod 15 is rotatably connected to the bottom front side of the pressure plate 16. When the pressure plate 16 is in a horizontal state, its lower surface forms a pressing fit with the top surface of the slider 3 to achieve vertical limitation of the slider 3 and prevent the slider 3 from moving upward unexpectedly along the slide rail 5.
[0023] When disassembling the energy storage box 1, turning the second screw 13 drives the lifting block 14 to move vertically upward, simultaneously lifting the upper end of the movable rod 15 upward. The thrust of the movable rod 15 drives the pressure plate 16 to rotate upward around the top pin axis until the pressure plate 16 switches to the vertical state, releasing the pressing fit with the top surface of the slider 3. At this time, the slider 3 can slide upward along the slide rail 5. Through the cooperation with the inclined surface of the locking block 9, the locking block 9 is squeezed and retracted into the support frame 6, finally making the slider 3 completely disengage from the slide rail 5 groove, completing the disassembly operation of the energy storage box 1. When reinstalling, the slider 3 slides upward from the lower end of the slide rail 5 along the groove until the locking groove on the slider 3 and the locking block 9 are engaged, reaching the preset installation position. Turning the second screw 13 in the opposite direction drives the lifting block 14 and the movable rod 15 to move downward synchronously. The movable rod 15 pulls the pressure plate 16 to rotate downward around the top pin axis and reset to the horizontal state. Its lower surface re-forms a pressing fit with the top surface of the slider 3, realizing the vertical secondary fixation of the slider 3.
Claims
1. An easy-to-install tilting energy storage box, characterized in that, The device includes an energy storage box (1), a support plate (2), a slider (3), a mounting plate (4), a slide rail (5), a support frame (6), a sliding bracket (7), a spring (8), a locking block (9), and a fixing assembly. The energy storage box (1) is rotatably mounted on the front side of the support plate (2) via a pin. The relative rotation surfaces of the pin are filled with a damping medium. The slider (3) is symmetrically connected to the rear side of the support plate (2). The mounting plate (4) serves as the load-bearing base of the device, and its front side is symmetrically equipped with slide rails (5) corresponding to the slider (3). The slider (3) and the slide rails (5) form a sliding guide assembly. The upper and lower sides of the outer wall of the slide rail (5) are equipped with support frames (6). A sliding frame (7) is slidably connected through the support frame (6). A locking block (9) is connected to the inner side of the sliding frame (7). The inner end of the locking block (9) extends into the slide groove of the slide rail (5) and its inner side wall is set as an inclined surface. Two springs (8) are connected between the outer side of the locking block (9) and the inside of the support frame (6). The springs (8) are sleeved on the outside of the sliding frame (7). A slot is opened on the slider (3) at the position corresponding to the locking block (9). The locking block (9) is inserted into the slot. A fixing component is provided on the slide rail (5).
2. The tilting energy storage box for easy installation as described in claim 1, characterized in that, The mating surfaces of the slider (3) and the slide rail (5) are both inlaid with a polytetrafluoroethylene wear-resistant layer.
3. The tilting energy storage box for easy installation as described in claim 2, characterized in that, The angle between the inclined surface of the card block (9) and the horizontal surface is set to 30°-45°, and the inclined surface is mirror polished.
4. The tilting energy storage box for easy installation as described in claim 3, characterized in that, The fixing component includes a fixing block (10), a first screw (11), and a limiting frame (12). The middle part of the outer side of the slide rail (5) is connected to the fixing block (10). The first screw (11) is threaded onto the fixing block (10). The limiting frame (12) is rotatably connected to the first screw (11). The limiting frame (12) and the outer side wall of the two support frames (6) on the same side form a sliding fit. The inner side of the limiting frame (12) is in contact with the outer end of the sliding frame (7).
5. The tilting energy storage box for easy installation as described in claim 4, characterized in that, It also includes a second screw (13), a lifting block (14), a movable rod (15), and a pressure plate (16). The second screw (13) is rotatably mounted on the lower middle position of the mounting plate (4) via a bearing seat. The second screw (13) extends vertically and is threadedly connected to the lifting block (14) on its outer circumference. The lifting block (14) is fitted against the front side of the mounting plate (4). The movable rod (15) is rotatably connected to the lifting block (14). The pressure plate (16) is rotatably connected to the top of the mounting plate (4) via a pin. The movable rod (15) is rotatably connected to the bottom front side of the pressure plate (16). The pressure plate (16) and the top surface of the slider (3) form a pressing fit.
6. The tilting energy storage box for easy installation as described in claim 5, characterized in that, The damping medium is made of silicone rubber, and the outer circumference of the pin is uniformly provided with annular rubber storage grooves.