Feeding cylinder conveying device
By designing a feeding cylinder conveying device that uses a rotating bracket and pneumatic telescopic components to fix the feeding cylinder, the problem of low feeding cylinder conveying efficiency was solved, achieving efficient and convenient feeding cylinder conveying and meeting the needs of hydrogen production and storage material production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-19
- Publication Date
- 2026-04-07
AI Technical Summary
In the existing technology, during the process of the feeding cylinder entering and exiting the secondary feeding device, the automatic control trolley moves slowly and requires manual adjustment of the feeding cylinder position, resulting in a long time and failing to meet production needs.
Design a feeding cylinder conveying device, including a rotating bracket, which is installed on the side wall of the feeding inlet of the secondary feeding device via a rotating shaft. The rotating bracket forms a three-dimensional support structure. A tray is used to place the feeding cylinder. The feeding cylinder is fixed by a pneumatic telescopic component and a pressure plate assembly. A hand lever pushes the rotating bracket to rotate, thereby achieving efficient conveying of the feeding cylinder.
It improved the conveying efficiency of the feeding cylinder, reduced manual adjustment time, met production needs, and improved work efficiency.
Smart Images

Figure CN224091097U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of heating furnace technology for hydrogen production and storage materials, specifically a feeding cylinder conveying device. Background Technology
[0002] Hydrogen storage material heating furnaces are specialized equipment for producing hydrogen storage materials. Traditionally, hydrogen storage material production involves melting the raw material in a crucible all at once. After melting, the material is heated to activate it, enabling it to effectively adsorb and release hydrogen. To increase the furnace's capacity, current methods employ a secondary feeding device for two-stage feeding, producing hydrogen storage material in a single furnace. The most common feeding method in the industry is using a feeding cylinder, where hydrogen storage material is added to the furnace multiple times through the cylinder to achieve the desired hydrogen storage material production.
[0003] In the existing technology, during the process of the feeding cylinder entering and exiting the secondary feeding device, the feeding cylinder is automatically fed into the secondary feeding device by controlling the trolley. Then, the position of the heating cylinder in the secondary feeding device is manually adjusted before it can be installed in the secondary feeding device. After feeding is completed, the feeding cylinder is moved out of the secondary feeding device by controlling the trolley. Because the automatic control of the trolley is slow and the installation position of the heating cylinder in the secondary feeding device needs to be manually adjusted, the whole process takes a long time and cannot meet the production needs.
[0004] Therefore, it is necessary to design a feeding cylinder conveying device to improve the above-mentioned problems in the secondary feeding device. Summary of the Invention
[0005] To address the problems of the prior art, this utility model provides a feeding cylinder conveying device, including a rotating bracket. One end of the rotating bracket is mounted on the side wall near the feeding inlet of the secondary feeding device via a rotating shaft, and the other end of the rotating bracket is used to place the feeding cylinder.
[0006] The rotating support is a three-dimensional support structure composed of several interconnected connecting parts. One end of the three-dimensional support structure is sleeved on the rotating shaft. A tray is installed on the three-dimensional support structure for placing the feeding cylinder. At least one connecting part of the three-dimensional support structure forms a feeding cylinder clamping space with the tray, so that the feeding cylinder can be clamped and fixed after being placed on the tray.
[0007] Furthermore, the rotating support includes a first connecting part, one end of which is sleeved on the rotating shaft, and the other end of which is provided with a second connecting part, a third connecting part, and a fourth connecting part. The first connecting part, the second connecting part, the third connecting part, and the fourth connecting part have different spatial extension directions and are connected to each other to form a three-dimensional support. The tray is installed on the fourth connecting part. With the first connecting part as the center of the rotating shaft as the radius, when the rotating support rotates around the rotating shaft, the distance between the second connecting part and the first connecting part ensures that the feeding cylinder is fed into the inlet of the secondary feeding device, and the distance between the third connecting part and the fourth connecting part ensures that the feeding cylinder is fed into the secondary feeding device.
[0008] Furthermore, a pressure plate assembly is installed on at least one connecting part of the three-dimensional support structure. The pressure plate assembly is located above the tray and is used to fix the position of the feeding cylinder when the feeding cylinder is placed on the tray.
[0009] The pressure plate assembly includes a pneumatic telescopic component and a pressure plate. The telescopic end of the pneumatic telescopic component is connected to the pressure plate. The pressure plate is a rectangular plate. The length of the pressure plate is greater than the diameter of the feeding cylinder, and the width of the pressure plate is greater than half the diameter of the feeding cylinder. The pneumatic telescopic component moves the pressure plate to limit the height of the feeding cylinder so that the feeding cylinder does not move.
[0010] Furthermore, a handrail is also installed on the three-dimensional support structure for pushing the rotating support to rotate.
[0011] Furthermore, ribs are provided between adjacent connecting parts to enhance the connection strength between the connecting parts.
[0012] Furthermore, the connecting part is a retractable structure.
[0013] Furthermore, the telescopic structure is a sleeve telescopic structure, and the sleeve telescopic structure is provided with a telescopic length control structure.
[0014] Furthermore, the telescopic length control structure includes several pin holes and fixing pins on the outer sleeve and inner sleeve. The telescopic length is controlled by inserting the fixing pin into the pin hole corresponding to the telescopic length.
[0015] The beneficial effects of this utility model are:
[0016] This application discloses a feeding cylinder conveying device used in the production process of hydrogen storage materials. It includes a rotating support, which is a three-dimensional support structure composed of several interconnected connecting parts. One end of the rotating support is mounted on the side wall near the feeding inlet of the secondary feeding device via a rotating shaft, and the other end of the rotating support holds the feeding cylinder, thereby achieving efficient conveying of the feeding cylinder and improving work efficiency. Attached Figure Description
[0017] Figure 1This is a schematic diagram of the feeding cylinder conveying device of this utility model;
[0018] Figure 2 This utility model presents a schematic diagram of the connection structure of the second square tube, the third square tube, and the fourth square tube.
[0019] Figure label:
[0020] In the diagram: 1-First square tube, 2-Second square tube, 3-Third square tube, 4-Fourth square tube, 5-Tray, 6-Spindle, 7-Handrail, 8-Pneumatic telescopic component, 9-Pressure plate. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] Please see Figure 1-2 This utility model provides a feeding cylinder conveying device, including a rotating bracket. One end of the rotating bracket is installed on the side wall near the feeding inlet of the secondary feeding device via a rotating shaft 6, and the other end of the rotating bracket is used to place the feeding cylinder. At least one connecting part in the three-dimensional bracket structure forms a feeding cylinder clamping space with the tray, so that the feeding cylinder can be clamped and fixed after being placed on the tray.
[0023] Wherein, one end of the rotating bracket is sleeved on the rotating shaft 6, and the other end of the rotating bracket is movably sleeved on the rotating shaft 6;
[0024] Furthermore, the rotating support is a three-dimensional support structure composed of several interconnected connecting parts. One end of the three-dimensional support structure is sleeved on the rotating shaft 6, and a tray is installed on the three-dimensional support structure for placing the feeding cylinder. The tray is fixedly connected to the three-dimensional support structure.
[0025] The rotating support includes a first connecting part, one end of which is sleeved on the rotating shaft 6. The other end of the first connecting part is provided with a second connecting part, a third connecting part, and a fourth connecting part. The first connecting part, the second connecting part, the third connecting part, and the fourth connecting part have different spatial extension directions. After being connected to each other, they form a three-dimensional support. The tray is fixedly installed on the fourth connecting part. With the first connecting part as the center of the rotating shaft as the radius, when the rotating support rotates around the rotating shaft, the distance between the second connecting part and the first connecting part ensures that the feeding cylinder is fed into the inlet of the secondary feeding device, and the distance between the third connecting part and the fourth connecting part ensures that the feeding cylinder is fed into the secondary feeding device.
[0026] In specific implementation, the first connecting part, the second connecting part, the third connecting part, and the fourth connecting part are respectively the first square tube 1, the second square tube 2, the third square tube 3, and the fourth square tube 4. The first square tube 1, the second square tube 2, the third square tube 3, and the fourth square tube 4 have different spatial extension directions and form a three-dimensional support after being connected to each other. One end of the first square tube 1 is sleeved on the rotating shaft 6, and the other end of the first square tube 1 is vertically provided with the second square tube 2. The other end of the first square tube 1 is connected to one end of the second square tube 2. The bottom of the other end of the second square tube 2 is vertically provided with the third square tube 3. The bottom of the other end of the second square tube 2 is connected to the top of the third square tube 3. The bottom of the third square tube 3 is vertically provided with the fourth square tube 4, and the fourth square tube 4 is parallel to the first square tube 1. The bottom of the third square tube 3 is connected to one end of the fourth square tube 4, and the top of the other end of the fourth square tube 4 is connected with a tray 5 for placing the feeding cylinder.
[0027] Furthermore, a pressure plate assembly is installed on at least one connecting part of the three-dimensional support structure. The pressure plate assembly is located above the tray and is used to fix the position of the feeding cylinder so that the feeding cylinder does not move when it is placed on the tray; wherein, the pressure plate assembly is fixedly connected to at least one connecting part of the three-dimensional support structure.
[0028] The pressure plate assembly includes a pneumatic telescopic component and a pressure plate. The telescopic end of the pneumatic telescopic component is connected to the pressure plate. The pressure plate is a rectangular plate. The length of the pressure plate is greater than the diameter of the feeding cylinder, and the width of the pressure plate is greater than half the diameter of the feeding cylinder. The pneumatic telescopic component moves the pressure plate to limit the height of the feeding cylinder so that the feeding cylinder does not move.
[0029] In specific implementation, a pressure plate assembly is installed on the second square tube 2. The pressure plate assembly includes a pneumatic telescopic component 8 and a pressure plate 9. The pneumatic telescopic component 8 includes a fixed sleeve and a telescopic rod installed in the fixed sleeve. One end of the telescopic rod is located in the fixed sleeve, and the other end of the telescopic rod extends out of the fixed sleeve and is connected to the pressure plate 9. The pneumatic telescopic component moves to drive the pressure plate to limit the height of the feeding cylinder so that the feeding cylinder does not move.
[0030] Furthermore, a handrail is also installed on the three-dimensional support structure, which is used to push the rotating support to rotate.
[0031] Specifically, a handrail 7 is also installed on the top of the second square tube 2 of the three-dimensional support structure, which is used to push the feeding cylinder to rotate; the handrail is fixedly connected to the three-dimensional support structure.
[0032] Furthermore, ribs are provided between adjacent connecting parts to enhance the connection strength between the connecting parts;
[0033] Specifically, a first rib is provided between the third-party tube 3 and the fourth-party tube 4 to enhance the connection strength between the third-party tube 3 and the fourth-party tube 4; a second rib is provided between the second-party tube 2 and the third-party tube 3 to enhance the connection strength between the second-party tube 2 and the third-party tube 3.
[0034] Furthermore, the connecting part is a telescopic structure, and the telescopic length control structure includes several pin holes and fixing pins opened on the outer sleeve and the inner sleeve. The telescopic length is controlled by inserting the fixing pin into the pin hole corresponding to the telescopic length.
[0035] In specific implementation, the second square tube 2 includes a first telescopic tube and a second telescopic tube. One closed end of the first telescopic tube is connected to the other end of the first square tube 1. One end of the second telescopic tube is nested inside the opening at the other end of the first telescopic tube, and the other end of the second telescopic tube is connected to the top of the third square tube 3. Several through holes are correspondingly provided on the side walls of the bottom end of the first telescopic tube and the open end of the second telescopic tube, and cotter pins are provided on the through holes. After adjusting the length of the first telescopic tube relative to the secondary feeding device and adjusting the height of the first telescopic tube, the first and second telescopic tubes are fixed with cotter pins, and the feeding cylinder is placed... Placed on tray 5; the third tube 3 includes a third telescopic tube and a fourth telescopic tube, the top end of the third telescopic tube is connected to the other end of the second telescopic tube, the bottom end of the third telescopic tube is nested inside one open end of the fourth telescopic tube, and the other closed end side wall of the fourth telescopic tube is connected to one end of the fourth square tube 4; and several through holes are correspondingly provided on the bottom end of the third telescopic tube and the side wall of one open end of the fourth telescopic tube, and cotter pins are provided on the through holes; the height of the feeding cylinder is adjusted by adjusting the height of the third telescopic tube, and after the height of the third telescopic tube is adjusted, the third telescopic tube and the fourth telescopic tube are fixed by the cotter pin.
[0036] Specific implementation process: When actually using this feeding cylinder conveying device, first adjust the relevant components of the rotating support according to the position of the secondary feeding device and the size and weight of the feeding cylinder. If it is necessary to adjust the horizontal distance between the feeding cylinder and the secondary feeding device, it can be achieved by adjusting the relative positions of the first and second telescopic tubes in the second square tube 2; if it is necessary to change the placement height of the feeding cylinder, adjust the relative positions of the third and fourth telescopic tubes in the third third tube 3, and fix them with cotter pins after adjustment.
[0037] The feeding cylinder is placed directly onto pallet 5 using a forklift. The position of the pressure plate in the pressure plate assembly is adjusted to press it firmly against the top of the feeding cylinder, preventing it from shaking or slipping during transport. The operator can hold the handle 7 and push the feeding cylinder to rotate. The rotation of the rotating bracket around the shaft 6 smoothly feeds the feeding cylinder into the secondary feeding device. There is no need to adjust the feeding cylinder's position within the secondary feeding device. The feeding cylinder is accurately hung inside the secondary feeding device. After feeding, the feeding cylinder is removed from the secondary feeding device using the same operation, thereby improving work efficiency and meeting production needs.
[0038] It is important to note that during use, the connections of all components of the device should be checked regularly, especially the shaft 6, ribs, the connections between the first square tube 1 and the second square tube 2, and between the third square tube 3 and the fourth square tube 4, as well as the securing of the cotter pins, to ensure the safety and stability of the device. Simultaneously, based on actual production needs and equipment wear, timely maintenance and upkeep should be performed, and severely worn parts should be replaced when necessary to ensure the device is always in good working order.
[0039] It is worth noting that the feeding cylinder conveying device of this application addresses the problem of low conveying efficiency of feeding cylinders in the prior art. This device mainly includes a rotating support. Through a rational design of the structure of the rotating support and its connection with the secondary feeding device, one end of the rotating support is mounted on the side wall near the feeding inlet of the secondary feeding device via a rotating shaft 6. The other end of the rotating support holds the feeding cylinder, enabling efficient and convenient conveying of the feeding cylinder to the secondary feeding device during the production of hydrogen storage materials, thereby achieving efficient conveying of the feeding cylinder and improving work efficiency.
[0040] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A feeding cylinder conveying device, characterized in that, It includes a rotating bracket, one end of which is mounted on the side wall near the feeding inlet of the secondary feeding device via a rotating shaft, and the other end of which is used to place the feeding cylinder; The rotating support is a three-dimensional support structure composed of several interconnected connecting parts. One end of the three-dimensional support structure is sleeved on the rotating shaft. A tray is installed on the three-dimensional support structure for placing the feeding cylinder. At least one connecting part of the three-dimensional support structure forms a feeding cylinder clamping space with the tray, so that the feeding cylinder can be clamped and fixed after being placed on the tray.
2. The feeding cylinder conveying device according to claim 1, characterized in that, The rotating support includes a first connecting part, one end of which is sleeved on the rotating shaft. The other end of the first connecting part is provided with a second connecting part, a third connecting part, and a fourth connecting part. The first connecting part, the second connecting part, the third connecting part, and the fourth connecting part have different spatial extension directions. After being connected to each other, they form a three-dimensional support. The tray is installed on the fourth connecting part. With the first connecting part as the center of the rotating shaft as the radius, when the rotating support rotates around the rotating shaft, the distance between the second connecting part and the first connecting part ensures that the feeding cylinder is fed into the inlet of the secondary feeding device, and the distance between the third connecting part and the fourth connecting part ensures that the feeding cylinder is fed into the secondary feeding device.
3. The feeding cylinder conveying device according to claim 1, characterized in that, At least one connecting part of the three-dimensional support structure is equipped with a pressure plate assembly, which is located above the tray and is used to fix the position of the feeding cylinder when the feeding cylinder is placed on the tray. The pressure plate assembly includes a pneumatic telescopic component and a pressure plate. The telescopic end of the pneumatic telescopic component is connected to the pressure plate. The pressure plate is a rectangular plate. The length of the pressure plate is greater than the diameter of the feeding cylinder, and the width of the pressure plate is greater than half the diameter of the feeding cylinder. The pneumatic telescopic component moves the pressure plate to limit the height of the feeding cylinder so that the feeding cylinder does not move.
4. The feeding cylinder conveying device according to claim 1, characterized in that, The three-dimensional support structure is also equipped with a handrail, which is used to push the rotating support to rotate.
5. The feeding cylinder conveying device according to claim 1, characterized in that, Ribs are provided between adjacent connecting parts to enhance the connection strength between them.
6. The feeding cylinder conveying device according to claim 5, characterized in that, The connecting part is a retractable structure.
7. The feeding cylinder conveying device according to claim 6, characterized in that, The retractable structure is a sleeve telescopic structure, and the sleeve telescopic structure is provided with a telescopic length control structure.
8. The feeding cylinder conveying device according to claim 7, characterized in that, The telescopic length control structure includes several pin holes and fixing pins on the outer sleeve and inner sleeve. The telescopic length is controlled by inserting the fixing pin into the corresponding telescopic length pin hole.