Transmission structure for hydrogen fuel cell production

By introducing a monitoring plate and a feeding structure into the transmission structure used in hydrogen fuel cell production, and utilizing the meshing of a motor-driven half-gear with a toothed plate and the cooperation of a spring, real-time detection of the batteries and timely screening of unqualified batteries can be achieved. This solves the problem of screening unqualified batteries during the transmission process and reduces production time and costs.

CN224159984UActive Publication Date: 2026-04-24XIE HYDROGEN (SHANGHAI) NEW ENERGY TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
XIE HYDROGEN (SHANGHAI) NEW ENERGY TECH CO LTD
Filing Date
2025-05-30
Publication Date
2026-04-24

AI Technical Summary

Technical Problem

The existing hydrogen fuel cell production and transmission structure lacks self-detection capabilities, making it difficult to screen out substandard cells during transmission, which increases production time and costs.

Method used

A transmission structure for hydrogen fuel cell production was designed, comprising a support frame, a transmission plate, a vertical plate, a tilting tray, a moving plate, a monitoring plate, and a reciprocating structure. The half-gear driven by a motor meshes with the toothed plate, and the reciprocating movement of the monitoring plate is achieved in conjunction with a spring. Combined with the feeding structure, the screw rod driven by the motor is rotated to realize the timely ejection of unqualified batteries.

Benefits of technology

It enables real-time detection of batteries during transmission and timely screening of substandard batteries, reducing production time and costs, and improving the flexibility and efficiency of the transmission structure.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a transmission structure for hydrogen fuel cell production, which belongs to the technical field of cell production and transmission, and comprises a support frame, a transmission plate and a vertical plate are fixedly connected above the support frame, a transmission belt is in transmission connection above the transmission plate, a turnover storage tray is rotatably connected in the transmission plate, and the turnover storage tray is in transmission connection with the vertical plate. A movable plate is slidably connected in the vertical plate, a connecting plate is fixedly connected below the movable plate, a monitoring plate is fixedly connected below the connecting plate, a reciprocating structure is arranged outside the vertical plate, and the reciprocating structure is connected with the movable plate. By arranging the moving plate, the connecting plate, the monitoring plate, the vertical plate and the reciprocating structure, the transmission structure enables the monitoring plate to realize a reciprocating motion function in the vertical plate through the cooperation of a half gear, a toothed plate and a spring, and the monitoring plate can detect and process a battery in transmission, so that the subsequent production time and cost are reduced, and the production efficiency is improved. And the flexibility of the transmission structure is ensured.
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Description

Technical Field

[0001] This utility model relates to the field of battery production transmission technology, specifically a transmission structure for hydrogen fuel cell production. Background Technology

[0002] With the increasing global demand for clean energy, hydrogen fuel cells, as a highly efficient and environmentally friendly energy conversion device, have received widespread attention. Hydrogen fuel cells generate electricity through the electrochemical reaction of hydrogen and oxygen, boasting advantages such as high energy density and zero emissions. They show great application potential in fields such as automobiles and stationary power sources. After production, hydrogen fuel cells are transported using conveyor structures. Current conveyor structures primarily use conveyor belts to transport the produced cells. However, most of these structures lack self-detection mechanisms, making it difficult to screen out substandard cells during transport. Because real-time detection during transport is challenging, substandard cells require subsequent testing to be identified, thus increasing production time and costs. Utility Model Content

[0003] The purpose of this invention is to provide a transmission structure for hydrogen fuel cell production, so as to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a transmission structure for hydrogen fuel cell production, comprising a support frame, a transmission plate and a vertical plate fixedly connected above the support frame, a transmission belt drivingly connected above the transmission plate, a flip-over storage tray rotatably connected inside the transmission plate, a movable plate slidably connected inside the vertical plate, a connecting plate fixedly connected below the movable plate, a monitoring plate fixedly connected below the connecting plate, a reciprocating structure provided outside the vertical plate, the reciprocating structure being connected to the movable plate, a feeding structure provided inside the connecting plate, the reciprocating structure including an auxiliary plate, a toothed plate and a drive rod, a half gear connected outside the drive rod, a protrusion fixedly connected to one side of the toothed plate, a movable rod fixedly connected above the protrusion, a fixed disk fixedly connected outside the movable rod, and a spring sleeved on the movable rod.

[0005] As a further preferred embodiment of this technical solution, a motor is connected to one side of the transmission plate, a base is fixedly connected to the bottom of the support frame, and the output shaft of the motor is connected to the flip-over storage tray.

[0006] As a further preferred embodiment of this technical solution, the drive rod is rotatably connected inside the upright plate, one side of the toothed plate is connected to the moving plate, and the half gear meshes with the toothed plate.

[0007] As a further preferred embodiment of this technical solution, the movable rod is slidably connected inside the auxiliary plate, and the fixed plate is connected to the auxiliary plate by a spring.

[0008] As a further preferred embodiment of this technical solution, the drive rod is rotatably connected inside the auxiliary plate, and the auxiliary plate is fixedly connected to one side of the upright plate.

[0009] As a further preferred embodiment of this technical solution, the feeding structure includes a concave plate, which is fixedly connected inside the connecting plate. A threaded rod is rotatably connected inside the concave plate, and the feeding plate is externally threaded onto the threaded rod.

[0010] As a further preferred embodiment of this technical solution, one end of the threaded rod is connected to a second motor, which is fixedly connected to one side of the concave plate.

[0011] This utility model provides a transmission structure for hydrogen fuel cell production, which has the following advantages:

[0012] (1) This utility model sets up a moving plate, a connecting plate, a monitoring plate, a vertical plate and a reciprocating structure. An external motor drives the drive rod to rotate, and the half gear rotates with the drive rod. Since the half gear meshes with the toothed plate, the toothed plate slides in the auxiliary plate. When the moving rod moves, it drives the spring to deform through the fixed plate, and the moving plate slides with the action of the toothed plate. After the monitoring plate moves, it will detect the surface of the battery. This transmission structure enables the monitoring plate to reciprocate in the vertical plate through the cooperation between the half gear, the toothed plate and the spring. The monitoring plate can detect and process the battery during transmission, thereby reducing the subsequent production time and cost and ensuring the flexibility of the transmission structure.

[0013] (2) By setting up a feeding structure, the screw rod is driven by motor 2 to rotate in both directions, and the feeding plate will move on the surface of the screw rod. After the feeding plate moves, it will push out the unqualified battery, so that the unqualified battery can be pushed out in time, avoiding the phenomenon of confusion between unqualified battery and qualified battery during transmission. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0015] Figure 2 This is a schematic diagram of the three-dimensional structure of the vertical plate of this utility model;

[0016] Figure 3 This is a three-dimensional structural diagram of the reciprocating structure of this utility model;

[0017] Figure 4 This is a three-dimensional structural diagram of the material feeding structure of this utility model.

[0018] In the diagram: 1. Support frame; 2. Transmission plate; 3. Vertical plate; 4. Tilting tray; 5. Motor 1; 6. Transmission belt; 7. Base; 8. Reciprocating structure; 801. Auxiliary plate; 802. Toothed plate; 803. Drive rod; 804. Half gear; 805. Protrusion; 806. Moving rod; 807. Fixed plate; 808. Spring; 9. Feeding structure; 901. Concave plate; 902. Threaded rod; 903. Motor 2; 904. Feeding plate; 10. Moving plate; 11. Connecting plate; 12. Monitoring plate. Detailed Implementation

[0019] 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.

[0020] This utility model provides a technical solution: such as Figure 1 and Figure 4 As shown, in this embodiment, a transmission structure for hydrogen fuel cell production includes a support frame 1. A transmission plate 2 and a vertical plate 3 are fixedly connected to the upper part of the support frame 1. A transmission belt 6 is drivenly connected to the upper part of the transmission plate 2. A flip-over storage tray 4 is rotatably connected inside the transmission plate 2. A moving plate 10 is slidably connected inside the vertical plate 3. A connecting plate 11 is fixedly connected to the lower part of the moving plate 10. A monitoring plate 12 is fixedly connected to the lower part of the connecting plate 11. A reciprocating structure 8 is provided outside the vertical plate 3. The reciprocating structure 8 is connected to the moving plate 10. A feeding structure 9 is provided inside the connecting plate 11. The reciprocating structure 8 includes an auxiliary plate 801, a toothed plate 802, and a drive rod 803. A half gear 804 is connected to the outside of the drive rod 803. A protrusion 805 is fixedly connected to one side of the toothed plate 802. A moving rod 806 is fixedly connected above the protrusion 805. A fixed disk 807 is fixedly connected to the outside of the moving rod 806. A spring 808 is sleeved on the moving rod 806.

[0021] like Figure 1 and Figure 3 As shown, a motor 5 is connected to one side of the transmission plate 2, a base 7 is fixedly connected to the bottom of the support frame 1, the output shaft of the motor 5 is connected to the flipping tray 4, the drive rod 803 is rotatably connected to the upright plate 3, one side of the toothed plate 802 is connected to the moving plate 10, the half gear 804 meshes with the toothed plate 802, the moving rod 806 is slidably connected to the auxiliary plate 801, the fixed plate 807 is connected to the auxiliary plate 801 through the spring 808, the drive rod 803 is rotatably connected to the auxiliary plate 801, and the auxiliary plate 801 is fixedly connected to one side of the upright plate 3;

[0022] By setting a spring 808, an external motor drives the drive rod 803 to rotate, and the half gear 804 rotates along with the drive rod 803. Since the half gear 804 meshes with the toothed plate 802, the toothed plate 802 slides within the auxiliary plate 801. When the moving rod 806 moves, it causes the spring 808 to deform through the fixed plate 807. When the half gear 804 disengages from the toothed plate 802, the toothed plate 802 is reset by the action of the spring 808, so that the spring 808 provides a certain support for the movement of the toothed plate 802 and prevents the toothed plate 802 from falling off during movement.

[0023] like Figure 4 As shown, the feeding structure 9 includes a concave plate 901, which is fixedly connected to the connecting plate 11. A threaded rod 902 is rotatably connected inside the concave plate 901. The feeding plate 904 is externally threaded to the threaded rod 902. One end of the threaded rod 902 is connected to a second motor 903, which is fixedly connected to one side of the concave plate 901.

[0024] By setting a concave plate 901, the motor 903 drives the threaded rod 902 to rotate in both directions, and the unloading plate 904 moves on the surface of the threaded rod 902. After moving, the unloading plate 904 pushes out the unqualified batteries. The unloading plate 904 slides in the concave plate 901, so that the concave plate 901 plays a certain guiding role in the movement of the unloading plate 904, avoiding the phenomenon of jamming when the unloading plate 904 moves.

[0025] This utility model provides a transmission structure for hydrogen fuel cell production, the specific working principle of which is as follows:

[0026] When the transmission structure is transporting batteries, it can be transported by the transmission plate 2 and the transmission belt 6. The batteries will be flipped sequentially by the flipping tray 4. When the batteries are flipped to the top layer by the flipping tray 4.

[0027] An external motor drives the drive rod 803 to rotate, and the half gear 804 rotates along with the drive rod 803. Since the half gear 804 meshes with the toothed plate 802, the toothed plate 802 slides within the auxiliary plate 801. When the moving rod 806 moves, it causes the spring 808 to deform via the fixed plate 807, and the moving plate 10 slides along with the toothed plate 802. After moving, the monitoring plate 12 inspects the surface of the battery. The monitoring plate 12 has a built-in high-precision camera to detect surface defects. When a defect is detected, the motor 903 drives the threaded rod 902 to rotate in both directions, and the unloading plate 904 moves on the surface of the threaded rod 902. After moving, the unloading plate 904 pushes out the defective battery. When the half gear 804 disengages from the toothed plate 802, the toothed plate 802 resets under the action of the spring 808.

[0028] 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 transmission structure for hydrogen fuel cell production, comprising a support frame (1), characterized in that: A transmission plate (2) and a vertical plate (3) are fixedly connected above the support frame (1). A transmission belt (6) is driven above the transmission plate (2). A flip-over storage tray (4) is rotatably connected inside the transmission plate (2). A moving plate (10) is slidably connected inside the vertical plate (3). A connecting plate (11) is fixedly connected below the moving plate (10). A monitoring plate (12) is fixedly connected below the connecting plate (11). A reciprocating structure (8) is provided outside the vertical plate (3). The reciprocating structure (8) and the moving plate (10) are connected... The connecting plate (11) is provided with a feeding structure (9). The reciprocating structure (8) includes an auxiliary plate (801), a toothed plate (802) and a drive rod (803). The drive rod (803) is externally connected to a half gear (804). A protrusion (805) is fixedly connected to one side of the toothed plate (802). A moving rod (806) is fixedly connected above the protrusion (805). A fixed plate (807) is fixedly connected to the outside of the moving rod (806). A spring (808) is sleeved on the moving rod (806).

2. The transmission structure for hydrogen fuel cell production according to claim 1, characterized in that: A motor (5) is connected to one side of the transmission plate (2), and a base (7) is fixedly connected to the bottom of the support frame (1). The output shaft of the motor (5) is connected to the flip storage tray (4).

3. The transmission structure for hydrogen fuel cell production according to claim 1, characterized in that: The drive rod (803) is rotatably connected inside the upright plate (3), one side of the toothed plate (802) is connected to the moving plate (10), and the half gear (804) meshes with the toothed plate (802).

4. The transmission structure for hydrogen fuel cell production according to claim 1, characterized in that: The movable rod (806) is slidably connected inside the auxiliary plate (801), and the fixed plate (807) is connected to the auxiliary plate (801) by a spring (808).

5. The transmission structure for hydrogen fuel cell production according to claim 1, characterized in that: The drive rod (803) is rotatably connected inside the auxiliary plate (801), and the auxiliary plate (801) is fixedly connected to one side of the upright plate (3).

6. The transmission structure for hydrogen fuel cell production according to claim 1, characterized in that: The feeding structure (9) includes a concave plate (901), which is fixedly connected to the connecting plate (11). A threaded rod (902) is rotatably connected inside the concave plate (901), and the feeding plate (904) is externally threaded to the threaded rod (902).

7. A transmission structure for hydrogen fuel cell production according to claim 6, characterized in that: One end of the threaded rod (902) is connected to a second motor (903), which is fixedly connected to one side of the concave plate (901).