一种双层堆叠台
By using a double-layer stacking platform design and employing transmission components and a lifting mechanism to achieve automatic repositioning of the placement plates, the problem of low working efficiency of existing battery module stacking platforms is solved, and the production process is made continuous and the equipment operation is stable.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG HONGZHE NEW ENERGY TECHNOLOGY CO LTD
- Filing Date
- 2025-07-14
- Publication Date
- 2026-07-17
AI Technical Summary
Existing battery module stacking platforms have low efficiency and require a large amount of space for loading, unloading, and operation, which affects the smoothness of the production process and the efficiency of material flow.
The system adopts a double-layer stacking platform design, which uses transmission components and lifting mechanisms to realize the automatic repositioning of the placed plates. The two workstations work alternately, and the hydraulic cylinders and pressure sensors are used for precise extrusion calibration to ensure stacking accuracy and efficiency.
It enables continuous production processes, reduces equipment downtime, improves work efficiency, and ensures the stability and accuracy of stacking through automated operation.
Smart Images

Figure CN224519903U_ABST
Abstract
Claims
1. A double-tiered stacking table comprising a base plate (100), characterized in that, The upper end of the base plate (100) is fixedly connected to two parallel support plates (101). Each of the two support plates (101) is provided with a sliding groove (102). A sliding table (103) is slidably connected to the sliding groove (102). The sliding table (103) is connected to the placement plate (104) through a lifting mechanism. The upper end of the base plate (100) is fixedly connected to two support plates (105) on both sides of the two support plates (101). Each of the two support plates (105) is provided with a sliding groove (106). A sliding table (107) is slidably connected to the sliding groove (106). A placement plate (108) is fixedly connected to the sliding table (107). A transmission component is provided between the support plates (101) and the support plates (105). A worktable (109) is fixedly connected to the base plate (100). A pressing component is provided on the worktable (109).
2. The dual-tier stacked table of claim 1, wherein, The lifting mechanism includes four sliding rods (201), which are slidably connected to a sliding platform (103). The upper ends of the four sliding rods (201) are fixedly connected to a placement plate (104). The lower ends of the sliding rods (201) are fixedly connected to a connecting plate (202). The lower ends of the connecting plate (202) are fixedly connected to two support rods (203). A sliding wheel (204) is rotatably connected between the two support rods (203). The upper end of the base plate (100) is fixedly connected to a guide plate (205). The guide plate (205) is provided with a guide groove (206), and the sliding wheel (204) is slidably connected in the guide groove (206).
3. The dual-tier stacked platform of claim 1, wherein, The transmission component includes two fixed plates (301), which are fixedly connected between support plate one (101) and support plate two (105). An L-shaped fixed plate (302) is fixedly connected to the fixed plate (301). A main transmission wheel (303) and a driven transmission wheel (304) are rotatably connected between the two fixed plates (301) and the L-shaped fixed plate (302). A transmission belt (305) is provided at the outer end of the main transmission wheel (303) and the driven transmission wheel (304). A sliding table one (103) is fixedly connected to a connecting block one (306), and the connecting block one (306) is fixedly connected to the transmission belt (305). A sliding table two (107) is fixedly connected to a connecting block two (307), and the connecting block two (307) is fixedly connected to the transmission belt (305). A motor (308) is fixedly connected to the main transmission wheel (303).
4. The dual-tier stacked platform of claim 1, wherein, The extrusion component includes a fixed base (401), which is fixedly connected to the workbench (109). A hydraulic cylinder (402) is fixedly connected to the fixed base (401). The output rod of the hydraulic cylinder (402) is fixedly connected to the mounting plate (403). Four limiting rods (404) are fixedly connected to the mounting plate (403). The outer ends of the four limiting rods (404) are rotatably connected to four limiting cylinders (405). The four limiting cylinders (405) are fixedly connected to the pressure plate (406). A pressure sensor (407) is fixedly connected between the pressure plate (406) and the mounting plate (403). A spring (408) is provided at the outer end of the limiting rod (404). The two ends of the spring (408) are respectively connected to the mounting plate (403) and the limiting cylinder (405). A limiting base (409) is provided on the side of the workbench (109) away from the fixed base (401).
5. The dual-tier stacked platform of claim 1, wherein, The first placement plate (104) and the second placement plate (108) are the same size. The workbench (109) is attached to the outer ends of the first placement plate (104) and the second placement plate (108) respectively. The backing plate (500) is fixedly connected to the workbench (109).
6. The dual-tier stacked platform of claim 1, wherein, A controller (600) is fixedly connected to the workbench (109), and the controller (600) is electrically connected to the motor (308), the hydraulic cylinder (402) and the pressure sensor (407).
7. The dual-tier stacked platform of claim 4, wherein, Rubber pads (700) are fixedly connected to the limiting seat (409) and the pressure plate (406).
8. The dual-tier stacked platform of claim 2, wherein, The four sliding rods (201) are evenly distributed on the sliding table (103).