Electric power material storage loading and unloading equipment
By introducing moving and conveying mechanisms into the loading and unloading platform, the problem of poor platform mobility was solved, enabling efficient cargo layout and space utilization, and improving operational efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-24
- Publication Date
- 2026-03-13
AI Technical Summary
Existing loading and unloading platforms have poor mobility, making it difficult to effectively arrange cargo, resulting in low efficiency.
The design incorporates a moving and conveying mechanism, including components such as a scissor lift assembly, a conveying section, transport rollers, and ball bearings, enabling the pushing and fine-tuning of goods on a horizontal plane. It also utilizes the space on the placement plate to effortlessly adjust the position of the goods.
It improves the efficiency and safety of cargo layout, maximizes space utilization, reduces the need for manual adjustments, and enhances overall operational efficiency.
Smart Images

Figure CN121651027A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of warehousing and loading / unloading, and in particular to a power material warehousing and loading / unloading equipment. Background Technology
[0002] In modern logistics, manufacturing, and power material warehousing, loading and unloading platforms are key hubs connecting transport vehicles with warehouse storage areas, and their efficiency directly affects the operating speed of the entire supply chain.
[0003] Currently, most common loading and unloading platforms use fixed loading platforms in conjunction with forklifts, or are equipped with simple roller conveyors. While fixed platforms are simple in structure, they rely entirely on forklifts and other mobile equipment to move goods from the truck bed to the storage area, resulting in poor mobility and low efficiency. Platforms using traditional roller conveyors, while enabling rapid loading and unloading, have limited functionality; once goods leave the conveyor, fine-tuning is difficult. When it's inconvenient to arrange goods to maximize the use of limited temporary storage space, operators often need to manually move goods using tools like crowbars, or call in forklifts again for minor adjustments. This method is not only time-consuming and labor-intensive, but also reduces overall operational efficiency. Summary of the Invention
[0004] This invention provides a power material storage and loading / unloading equipment, which can solve the problems of poor mobility, inconvenient cargo layout, and low efficiency of existing loading / unloading platforms.
[0005] A power material storage and handling equipment, characterized in that it comprises: A moving mechanism includes a moving base, on which a scissor lift assembly is mounted, and on which a placement plate is mounted; The conveying mechanism includes multiple conveying sections mounted on the placement plate. The top surface of the placement plate has multiple receiving slots. The conveying sections are vertically slidably mounted in the receiving slots. The conveying sections can be moved above or inside the placement plate. When the material is located on the multiple conveying sections, it can slide in the horizontal plane.
[0006] Furthermore, the conveying unit includes a movable plate that is vertically slidably mounted on the receiving groove. A transport roller is rotatably mounted on the movable plate. Multiple perforations are evenly opened on the outer periphery of the transport roller. Multiple movable balls are arranged in the perforations. The multiple transport rollers are distributed in a linear array along the length direction of the placement plate.
[0007] Furthermore, the conveyor roller is hollow inside, and a movable block is slidably installed in the perforation. A groove is opened at the end of the movable block away from the axis of the conveyor roller, and the ball is rolled in the groove. A drive assembly for driving the multiple movable blocks to move is installed on the conveyor roller.
[0008] Furthermore, the drive assembly includes a pivot rod movably inserted into one end of the transport roller, a rotating rod rotatably mounted at one end of the pivot rod facing inwards from the transport roller, a connecting rod hinged to the end of the moving block away from the groove, multiple connecting rods having their free ends hinged to the rotating rod, an annular plate mounted at the other end of the transport roller, one end of the rotating rod movably inserted into the annular plate, and a transmission assembly for driving the multiple pivot rods to move mounted on the placement plate.
[0009] Furthermore, a movable frame plate is vertically slidably mounted on the placement plate, and a transmission assembly is mounted on the movable frame plate. Multiple movable plates are interconnected through the plate body. An adjustment component for driving the movable frame plate to move is installed on the placement plate. When the movable frame plate moves, the transmission assembly drives multiple movable plates to move.
[0010] Furthermore, the transmission assembly includes a connecting plate, multiple pivot rods are rotatably inserted into the connecting plate, multiple mounting cylinders are mounted on the movable frame plate, piston rods are slidably inserted into the mounting cylinders, a docking plate connected to the connecting plate is mounted on the free end of the piston rods, a convex ring is constructed on the rotating rod, a return spring is abutted between the convex ring and the ring plate, and an air supply component for supplying air pressure into the multiple mounting cylinders is mounted on the movable frame plate.
[0011] Furthermore, multiple mounting cylinders are connected by connecting pipes, and the air supply component includes an air cylinder mounted on the movable frame plate. The air cylinder is connected to the adjacent mounting cylinder through a pipe. The inner diameter of the pipe and the connecting pipe is smaller than the inner diameter of the air cylinder. A hydraulic rod is mounted on the movable frame plate. The free end of the hydraulic rod is located inside the air cylinder and is equipped with a piston block. An air valve is mounted on the air cylinder.
[0012] Furthermore, the adjusting component includes an adjusting screw that is horizontally and rotatably mounted on the placement plate, a drive plate that is threaded onto the adjusting screw and slidably mounted horizontally on the placement plate, and a hinge rod that is hinged between the drive plate and the movable frame plate.
[0013] Furthermore, guardrails are installed on both sides of the placement plate along its length, and baffles are installed between one end of each guardrail.
[0014] Furthermore, a lifting ring is screwed into the guardrail, a chain is installed on the lifting ring, a guide plate is detachably installed at one end of the chain, a mounting plate is hinged to one end of the guide plate, and the mounting plate is detachably installed at one end of the placement plate.
[0015] Beneficial effects: 1. The design of the conveying unit of this invention enables the heavy goods to be pushed and adjusted on the horizontal plane when they are placed on the placement plate, which facilitates the layout of the goods and eliminates the need to use tools to adjust the position of the goods. This maximizes the use of space on the placement plate, makes it easier to move the goods, and thus improves the overall work efficiency. Attached Figure Description
[0016] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a partial structural diagram of the present invention; Figure 3 For the present invention Figure 2 Partial three-dimensional sectional view; Figure 4 For the present invention Figure 3 Enlarged view of the structure at point A in the middle; Figure 5 This is another structural schematic diagram of the present invention; Figure 6 This is a schematic diagram of another part of the structure of the present invention; Figure 7 For the present invention Figure 6 Partial three-dimensional sectional view; Figure 8 For the present invention Figure 6 Another partial sectional view; Figure 9 For the present invention Figure 8 Enlarged view of the structure at point B in the middle.
[0017] Explanation of reference numerals in the attached figures: 1. Moving mechanism; 101. Moving seat; 102. Scissor lift assembly; 103. Placement plate; 104. Receiving groove; 2. Conveying section; 201. Moving plate; 202. Conveying roller; 203. Perforation; 204. Ball bearing; 205. Moving block; 206. Slot; 3. Drive assembly; 301. Pivot rod; 302. Rotating rod; 303. Linkage rod; 304. Ring plate; 4. Transmission assembly; 401. Connecting plate; 402. Mounting cylinder; 403. Piston rod; 404, docking plate; 405, convex ring; 406, return spring; 5, movable frame plate; 6, plate body; 7, adjusting component; 701, adjusting screw; 702, drive plate; 703, hinge rod; 8, air supply component; 801, connecting pipe; 802, air cylinder; 803, pipeline; 804, hydraulic rod; 805, piston block; 806, air valve; 9, guardrail; 10, lifting ring; 11, chain; 12, guide plate; 13, mounting plate; 14, baffle. Detailed Implementation
[0018] The specific embodiments of the present invention will be described in detail below, but it should be understood that the scope of protection of the present invention is not limited to the specific embodiments.
[0019] like Figures 1 to 9 As shown in the figure, an embodiment of the present invention provides a power material storage and loading / unloading equipment, comprising: The mobile mechanism 1 includes a mobile seat 101. Specifically, this application does not impose specific restrictions on how the mobile seat 101 can move. It can be any structure that enables the mobile seat 101 to move on the road surface. In this embodiment, four universal self-locking wheels can be installed at the bottom of the mobile seat 101 to facilitate workers to move the mobile seat 101 to the corresponding position. A scissor lift assembly 102 is installed on the mobile seat 101. The scissor lift assembly 102 is a commonly used lifting component in the prior art. The power source of the scissor lift assembly 102 in this application is a hydraulic cylinder. The scissor lift assembly 102 is moved by hydraulic power. Because a placement plate 103 is installed on the scissor lift assembly 102, the scissor lift assembly 102 will drive the placement plate 103 to move vertically when it is raised and lowered, so that it can be adaptively adjusted according to the height of the goods. The conveying mechanism includes multiple conveying sections 2 mounted on a placement plate 103. Multiple receiving slots 104 are provided on the top surface of the placement plate 103. The conveying sections 2 are vertically slidably mounted within the receiving slots 104. The conveying sections 2 can move above or inside the placement plate 103. When materials are located on the multiple conveying sections 2, they can slide horizontally. In other words, during use, the height of the placement plate 103 is first adjusted using a scissor lift assembly 102 to ensure the placement plate 103 is flush with the unloading platform. For example, when transferring electrical materials from a truck to a warehouse, the placement plate 103 is first moved to be level with the truck bed using the scissor lift assembly 102, and then the multiple conveying sections 2 are moved from the truck bed to the warehouse. The receiving slot 104 is moved a certain distance away, so that the conveying section 2 is higher than the top plane of the placement plate 103. It should be noted that at this time, the heights of the multiple conveying sections 2 are the same. After the staff moves the goods onto the placement plate 103, the goods will be located on the multiple conveying sections 2. Because the multiple conveying sections 2 are at the same height, when the goods are pushed horizontally, the goods will move on the multiple conveying sections 2. After some heavier goods are located on the multiple conveying sections 2, the staff can directly push the goods to adjust their position. Preferably, guardrails 9 are installed on both sides of the placement plate 103 along its length. A baffle 14 is installed between one end of the guardrail 9. A support frame for people to step on can be set on the outer periphery of the guardrail 9, which can effectively prevent the staff from stepping on the baffle. The design of the conveyor 2 improves safety by preventing slippage when pushing goods onto the placement plate 103. The design allows for horizontal adjustment of heavier goods on the placement plate 103, facilitating cargo placement without the need for tools. This maximizes the use of space on the placement plate 103, reducing effort required for moving goods and improving overall work efficiency. Once the goods are in place, multiple conveyor 2 units can be moved into the receiving trough 104, ensuring direct contact between the placed goods and the placement plate 103, preventing slippage. Furthermore, when moving the moving base 101, the placement plate 103 is less likely to be pulled down due to excessive inertia. For the movement of goods on 03, preferably, a lifting ring 10 is screwed into the guardrail 9, and a chain 11 is installed on the lifting ring 10. A guide plate 12 is detachably installed at one end of the chain 11. Specifically, a lifting ring 10 can also be installed at the end of the chain 11 connected to the guide plate 12. The lifting ring 10 is screwed into the guide plate 12. The length of the chain 11 can be changed according to actual use. A mounting plate 13 is hinged to one end of the guide plate 12. The mounting plate 13 is detachably installed at one end of the placement plate 103. The mounting plate 13 is installed at one end of the placement plate 103 by threads. The guide plate 12 can be used according to actual needs, such as facilitating the movement of hydraulic trolleys onto the placement plate 103 or facilitating the movement of staff onto the placement plate 103.
[0020] like Figure 1 , Figure 2 and Figure 4 As shown, a portion of the structure of the conveying unit 2 is disclosed. The conveying unit 2 includes a movable plate 201 vertically slidably mounted on the receiving groove 104. The movable plate 201 is U-shaped. A transport roller 202 is rotatably mounted on opposite sides of the movable plate 201. A plurality of through holes 203 are evenly opened on the outer periphery of the transport roller 202. A plurality of movable balls 204 are disposed in the through holes 203, such as... Figure 1 As shown, multiple transport rollers 202 are arranged in a linear array along the length of the placement plate 103. After the goods are initially placed on the multiple transport rollers 202, the goods can be pushed to make them stick to the push plate. When it is necessary to adjust the position of the goods, multiple balls 204 can be moved so that the balls 204 protrude a portion from the outer periphery of the transport rollers 202. In this way, the goods directly contact the multiple balls 204, which facilitates the adjustment of the position of the goods. After the position of the goods is adjusted, the balls 204 are moved into the perforation 203 and the moving plate 201 is moved downward. It is convenient to use, and the design of multiple balls 204 not only makes it easier to move the goods, but also allows the balls 204 to be stored in the perforation 203. This prevents the balls 204 from causing the goods to slip on the placement plate 103 after the transport rollers 202 are moved into the receiving groove 104.
[0021] like Figure 1 , Figure 2 and Figure 4 As shown, in order to facilitate the movement of the ball bearings 204, the inside of the transport roller 202 is hollow, and a moving block 205 is slidably installed in the perforation 203. A groove 206 is opened at the end of the moving block 205 away from the axis of the transport roller 202, and the ball bearings 204 are rolled in the groove 206. A drive assembly 3 for driving multiple moving blocks 205 to move is installed on the transport roller 202. That is to say, multiple moving blocks 205 can be driven to move simultaneously by the drive assembly 3. This makes it more convenient to control the movement of multiple ball bearings 204, reduces the operation steps, and makes it faster to use.
[0022] like Figure 1 , Figure 2 and Figure 4As shown, a partial structure of the drive assembly 3 is disclosed. Both ends of the transport roller 202 pass through the movable plate 201 and are aligned with one side of the movable plate 201. The drive assembly 3 includes a pivot rod 301 movably inserted into one end of the transport roller 202. A rotating rod 302 is rotatably mounted on one end of the pivot rod 301 facing inwards from the transport roller 202. A connecting rod 303 is hinged to one end of the movable block 205 away from the groove 206. The free ends of multiple connecting rods 303 are hinged to the rotating rod 302. An annular plate 304 is installed at the other end of the transport roller 202. One end of the rotating rod 302 is movably inserted into the annular plate 304. The placement plate 1... The 03 is equipped with a transmission assembly 4 that drives multiple pivot rods 301 to move. In order to enable all the balls 204 to move simultaneously, the transmission assembly 4 can drive multiple pivot rods 301 to move. When the pivot rods 301 move, they will drive multiple connecting rods 303 hinged to them to move. Because the connecting rods 303 are hinged to the moving block 205, when multiple pivot rods 301 move, the connecting rods 303 will push or pull multiple moving blocks 205 to move closer or further away from the axis of the corresponding pivot rod 301 in sync, thereby realizing the synchronous extension or retraction of multiple balls 204, which is more convenient to use.
[0023] like Figure 1 , Figure 2 and Figure 4As shown, in some embodiments, a movable frame plate 5 is vertically slidably mounted on the placement plate 103, and a transmission assembly 4 is mounted on the movable frame plate 5. Multiple movable plates 201 are interconnected via plate bodies 6. An adjusting member 7 for driving the movable frame plate 5 is mounted on the placement plate 103. That is, when the adjusting member 7 drives the movable frame plate 5 to move vertically, the transmission assembly 4 drives the multiple movable plates 201 to move. In use, the movable frame plate 5 can first be moved upwards by the adjusting member 7, thereby moving the multiple transport rollers 202 above the placement plate 103. When the electrical materials move on the multiple transport rollers 202, the transport rollers 202 rotate, facilitating the pushing of the electrical materials. At this time, the ball bearings 204 are located within the perforations 203. After the electrical materials are placed on the multiple transport rollers 202, the electrical materials need to be adjusted. When the power supply is positioned, the transmission component 4 can move multiple balls 204 to the outside of the transport roller 202, so that the power supply is located on the multiple balls 204, which facilitates the layout of the power supply. After the power supply is laid out, the transmission component 4 moves the multiple balls 204 into the corresponding perforations 203. Then, the adjusting component 7 moves the moving frame plate 5 downward. Since the moving frame plate 5 is connected to multiple moving plates 201, the multiple moving plates 201 will move in the receiving groove 104, so that the multiple transport rollers 202 move into the receiving groove 104 to contact the power supply with the placement plate 103, so as to prevent the power supply laid out later from shaking when the moving seat 101 moves. The adjusting component 7 can control the multiple transport rollers 202 to move synchronously, making it more convenient to use.
[0024] like Figures 3 to 6As shown, a portion of the structure of the transmission assembly 4 is disclosed. The transmission assembly 4 includes a connecting plate 401, multiple pivot rods 301 rotatably inserted into the connecting plate 401, multiple mounting cylinders 402 mounted on a movable frame plate 5, piston rods 403 slidably inserted into the mounting cylinders 402, and a docking plate 404 connected to the connecting plate 401 mounted on the free end of the piston rods 403. A convex ring 405 is constructed on the pivot rod 302, and a return spring 406 abuts against the convex ring 405 and the ring plate 304. An air supply component 8 for supplying air pressure into the multiple mounting cylinders 402 is mounted on the movable frame plate 5. Gas is supplied into the mounting cylinders 402 through the air supply component 8. The continuous supply of gas will increase the air pressure in the mounting cylinders 402, thereby forcing the piston rods 403 to move within the mounting cylinders 402, causing the free end of the piston rods 403 to extend out. Because the free end of the piston rods 403 is connected to the connecting plate 401, the multiple piston rods 403 will push the connecting plate 401 to move, thereby causing the piston rods to rotate. The connecting plate 401, which is inserted into the pivot rod 301, moves. When the connecting plate 401 moves, it drives multiple pivot rods 301 to move. Since the pivot rods 301 are rotatably set on the connecting plate 401, they do not affect the normal rotation of the transport roller 202. That is to say, no matter what angle the transport roller 202 rotates, it will not affect the movement of the ball 204. When the ball 204 extends out of the transport roller 202, the return spring 406 is in a compressed state. When the gas supply component 8 stops supplying gas to the mounting cylinder 402, the return spring 406 will reset. Under the action of gravity of the power supply, the ball 204 will move back into the transmission, realizing the synchronous movement of all the ball 204. Specifically, this application does not impose specific restrictions on the structure of the gas supply component 8. It can be any drive structure that satisfies the movement of the piston rod 403, such as an air pump supplying gas into the mounting cylinder. Of course, a hydraulic pump can also be used to realize the movement of the piston rod 403 by hydraulic drive.
[0025] like Figures 6 to 9As shown, in order to overcome the influence of gravity on the movement of the ball bearings 204 and ensure that the movement of multiple ball bearings 204 can lift the power equipment, in this embodiment, a connecting pipe 801 connects multiple mounting cylinders 402. The air supply component 8 includes an air cylinder 802 mounted on the movable frame plate 5. The air cylinder 802 is connected to the adjacent mounting cylinder 402 through a pipe 803. The inner diameter of the pipe 803 and the connecting pipe 801 is smaller than the inner diameter of the air cylinder 802. A hydraulic rod 804 is mounted on the movable frame plate 5. The free end of the hydraulic rod 804 is located inside the air cylinder 802 and is equipped with a piston block 805. An air valve 806 is mounted on the air cylinder 802. When the extension and retraction end of the hydraulic rod 804 moves, driving the piston block 805 to move, the piston block 805 will compress the air inside the air cylinder 802, thereby supplying air to the cylinder. The gas inside cylinder 802 is transported to mounting cylinder 402 through pipe 803. Since multiple mounting cylinders 402 are connected by connecting pipe 801, the gas pressure inside multiple mounting cylinders 402 will also increase. Preferably, the inner diameter of cylinder 802 is four times or more the inner diameter of connecting pipe 801 and pipe 803. Based on Pascal's principle, the force per unit area of the piston of hydraulic rod 804 is amplified when it is transmitted to ball 204, thereby ensuring that the weight above ball 204 can be lifted. When it is necessary to move ball 204 into the corresponding perforation 203, it is only necessary to open air valve 806 to reduce the pressure inside mounting cylinder 402 and air cylinder 802. At this time, hydraulic rod 804 can also be moved and reset. The operation is convenient. Finally, air valve 806 can be closed.
[0026] like Figure 6 and Figure 7 As shown, in some embodiments, the adjusting member 7 includes an adjusting screw 701 that is horizontally and rotatably mounted on the placement plate 103. A drive plate 702 that is threaded onto the adjusting screw 701 is horizontally slidably mounted on the placement plate 103. A hinge rod 703 is hinged between the drive plate 702 and the movable frame plate 5 to prevent the heavy objects on the transport roller 202 from pressing down on the movable frame plate 5 and causing it to directly contact the placement plate 103. By rotating the adjusting screw 701, the drive plate 702 is driven to rotate. When the drive plate 702 rotates, it will drive the movable frame plate 5 to move vertically through the hinge rod 703. Because the threaded engagement has good self-locking properties, the transport roller 202 that has moved to the next position is not likely to move downward due to the gravity of the electrical materials, thus ensuring reliability during use.
[0027] The above-disclosed embodiments are merely a few specific examples of the present invention. However, the embodiments of the present invention are not limited thereto, and any variations that can be conceived by those skilled in the art should fall within the protection scope of the present invention.
Claims
1. A power material storage and handling equipment, characterized in that, include: The moving mechanism (1) includes a moving base (101), on which a scissor lift assembly (102) is mounted, and on which a placement plate (103) is mounted. The conveying mechanism includes multiple conveying sections (2) installed on the placement plate (103). The top surface of the placement plate (103) is provided with multiple receiving slots (104). The conveying sections (2) are vertically slidably installed in the receiving slots (104). The conveying sections (2) can be moved above or inside the placement plate (103). When the material is located on the multiple conveying sections (2), it can slide in the horizontal plane.
2. The power material storage and handling equipment as described in claim 1, characterized in that, The conveying unit (2) includes a movable plate (201) that is vertically slidably mounted on the receiving groove (104). A transport roller (202) is rotatably mounted on the movable plate (201). A plurality of perforations (203) are evenly opened on the outer periphery of the transport roller (202). A plurality of movable balls (204) are arranged in the perforations (203). The plurality of transport rollers (202) are arranged in a linear array along the length direction of the placement plate (103).
3. The power material storage and handling equipment as described in claim 2, characterized in that, The conveying roller (202) is hollow inside. A movable block (205) is slidably installed in the perforation (203). A groove (206) is opened at one end of the movable block (205) away from the axis of the conveying roller (202). The ball (204) is rolled in the groove (206). A drive assembly (3) for driving multiple movable blocks (205) to move is installed on the conveying roller (202).
4. The power material storage and handling equipment as described in claim 3, characterized in that, The drive assembly (3) includes a pivot rod (301) movably inserted into one end of the transport roller (202). A rotating rod (302) is rotatably mounted on one end of the pivot rod (301) facing the inside of the transport roller (202). A connecting rod (303) is hinged to one end of the moving block (205) away from the groove (206). The free ends of multiple connecting rods (303) are hinged to the rotating rod (302). A ring plate (304) is installed on the other end of the transport roller (202). One end of the rotating rod (302) is movably inserted into the ring plate (304). A transmission assembly (4) for driving multiple pivot rods (301) to move is installed on the placement plate (103).
5. The power material storage and handling equipment as described in claim 4, characterized in that, A movable frame plate (5) is vertically slidably mounted on the placement plate (103). A transmission assembly (4) is mounted on the movable frame plate (5). Multiple movable plates (201) are interconnected through a plate body (6). An adjustment component (7) for driving the movable frame plate (5) to move is installed on the placement plate (103). When the movable frame plate (5) moves, the multiple movable plates (201) are driven to move through the transmission assembly (4).
6. The power material storage and handling equipment as described in claim 5, characterized in that, The transmission assembly (4) includes a connecting plate (401), a plurality of pivot rods (301) are rotatably inserted into the connecting plate (401), a plurality of mounting cylinders (402) are installed on the movable frame plate (5), a piston rod (403) is slidably inserted into the mounting cylinder (402), a docking plate (404) connected to the connecting plate (401) is installed at the free end of the piston rod (403), a convex ring (405) is constructed on the rotating rod (302), a return spring (406) is abutted between the convex ring (405) and the ring plate (304), and an air supply component (8) for supplying air pressure into the plurality of mounting cylinders (402) is installed on the movable frame plate (5).
7. The power material storage and handling equipment as described in claim 6, characterized in that, A connecting pipe (801) connects multiple mounting cylinders (402). The air supply component (8) includes an air cylinder (802) mounted on the movable frame plate (5). The air cylinder (802) is connected to the adjacent mounting cylinder (402) through a pipe (803). The inner diameter of the pipe (803) and the connecting pipe (801) is smaller than the inner diameter of the air cylinder (802). A hydraulic rod (804) is mounted on the movable frame plate (5). The free end of the hydraulic rod (804) is located inside the air cylinder (802) and is equipped with a piston block (805). An air valve (806) is mounted on the air cylinder (802).
8. The power material storage and handling equipment as described in claim 5, characterized in that, The adjusting component (7) includes an adjusting screw (701) that is horizontally and rotatably mounted on the placement plate (103), a drive plate (702) that is threaded onto the adjusting screw (701) is horizontally slidably mounted on the placement plate (103), and a hinge rod (703) is hinged between the drive plate (702) and the movable frame plate (5).
9. The power material storage and handling equipment as described in claim 1, characterized in that, The placement plate (103) is equipped with guardrails (9) on both sides along its length, and a baffle (14) is installed between one end of the guardrails (9).
10. The power material storage and handling equipment as described in claim 9, characterized in that, A lifting ring (10) is screwed into the guardrail (9), and a chain (11) is installed on the lifting ring (10). A guide plate (12) is detachably installed on one end of the chain (11), and an installation plate (13) is hinged to one end of the guide plate (12). The installation plate (13) is detachably installed on one end of the placement plate (103).