Rear-end feeding and discharging system for photovoltaic slicing machine
The automated loading and unloading of the photovoltaic slicing machine is achieved through a rotary motor-driven threaded rod and servo motor system, which solves the fatigue and safety problems caused by manual loading by operators and ensures stable delivery and protection against impacts of the photovoltaic panels.
Patent Information
- Application Number
- CN202422991811.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-05
AI Technical Summary
During the loading and unloading process of photovoltaic slicing machines, operators need to manually load materials, which can lead to fatigue and operational errors, potentially causing material damage and personal injury.
The system employs a rotary motor-driven threaded rod and push block mechanism, combined with a servo motor and lead screw, to achieve automated loading and unloading of photovoltaic panels. Stability and impact resistance are ensured by moving guide rails and positioning brackets.
It reduces the labor intensity of operators, avoids material damage and personnel injury caused by operational errors, and improves the stability and safety of loading and unloading.
Smart Images

Figure CN223509156U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to packing equipment technical field, concretely is a kind of rear end feeding and discharging system for photovoltaic slicing machine. BACKGROUND
[0002] Rear end feeding and discharging system for photovoltaic slicing machine has been applied in many photovoltaic enterprises, and the automation and intelligent upgrading of photovoltaic slicing machine feeding and discharging device not only improve the production efficiency of single enterprise, but also promote the production automation process in the whole photovoltaic industry, and feeding and discharging device for photovoltaic slicing machine usually adopts truss structure, and is matched with movable conveying assembly and rotating mechanism.
[0003] In the current photovoltaic slicing machine feeding and discharging system, the photovoltaic panel is manually placed on the feeding equipment by the operator, and the photovoltaic panel is lifted from the low place to one end of the conveying device by the feeding equipment, and is clamped by the clamping mechanism, and the photovoltaic panel is adjusted by rotation to ensure that the appropriate direction is maintained during conveying. In the process of manual feeding, due to the size and weight of the photovoltaic panel, the operator is prone to fatigue, and operation errors may occur, resulting in material damage or even personal injury. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a kind of rear end feeding and discharging system for photovoltaic slicing machine to solve the problems raised in the above background.
[0005] To achieve the above object, the utility model provides the following technical scheme: a kind of rear end feeding and discharging system for photovoltaic slicing machine, including the rear end feeding and discharging mechanism of photovoltaic slicing machine and feeding and discharging mobile assembly, the feeding and discharging mobile assembly includes rotating motor, one end of the rotating motor is rotationally connected with threaded rod, the threaded rod is rotationally connected in the inside of mobile threaded cylinder, the inside of the mobile threaded cylinder is provided with threaded groove, the one end of the mobile threaded cylinder is fixedly installed with push block, the inside of the one end of the push block is provided with notch groove, the notch groove of the push block can be clamped in the one end clamping groove of feeding and discharging moving plate, the lower end both sides of the feeding and discharging moving plate are installed with mobile guide rail plate, the mobile guide rail plate is slidably connected in the inside both sides of feeding and discharging plate, and the inside both sides of the feeding and discharging plate are provided with mobile guide rail groove.
[0006] As a further preferred embodiment of the present technical solution, the one end of the feeding and discharging plate is fixedly installed with support cross beam rod, and the lower end of the support cross beam rod is installed with bottom plate.
[0007] As a further preferred embodiment of the present technical solution, the one end of the bottom plate is installed on the one end of the feeding frame, the one end of the feeding frame is connected with mounting plate by bolt, the inside of the mounting plate is provided with mobile recess, the inside of the mounting plate is installed with lead screw, and the upper end of the lead screw is installed with servo motor.
[0008] As a further preferred of the technical solution, the lead screw is connected through rotation in the inside of the moving frame plate, one end of the moving frame plate is fixedly installed with the feeding lifting plate, both sides of the inside of the feeding lifting plate are provided with moving guide rail grooves, the inside of the moving frame plate is connected through sliding in the inside of one end of the feeding frame, the inside of one end of the feeding frame is provided with a sliding guide rail groove.
[0009] As a further preferred of the technical solution, the moving guide rail groove of the feeding lifting plate and the moving guide rail groove of the discharging moving plate are in the same horizontal straight line.
[0010] As a further preferred of the technical solution, the inside of the sliding support groove of one end of the feeding frame is connected through sliding with the sliding support block, one end of the sliding support block is fixedly installed in one end of the feeding lifting plate.
[0011] As a further preferred of the technical solution, the upper end of the discharging moving plate is fixedly installed with the positioning frame rod, the positioning frame rod is an L-shaped metal frame structure, and the inner side end of the positioning frame rod is installed with a rubber pad.
[0012] The utility model provides a rear end feeding and discharging system for photovoltaic slicing machine, has the following beneficial effects:
[0013] (1) the utility model discloses a pushing block notch groove is combined in the clamping groove of discharging moving plate through moving, and the discharging moving plate is moved, and the moving guide rail plate is moved in the moving guide rail groove in the inside of the discharging plate, and the moving guide rail plate is moved to the inside of the moving guide rail groove of feeding lifting plate, and the discharging moving plate is further moved to the upper end of feeding lifting plate, and the feeding lifting plate moves up and down, and drives the discharging moving plate with photovoltaic board to move up and down, when the discharging moving plate moves up, can reduce the operator to take photovoltaic board and load, reduce the fatigue of operator work, avoid the operation error that possibly occurs to cause material damage even personnel injury.
[0014] (2) the utility model discloses that the feeding lifting plate moves up and down in the process, and the supporting sliding block moves in the supporting sliding groove of the feeding frame, can ensure that the feeding lifting plate moves up and down can keep stability, through the positioning frame rod, can hold multiple photovoltaic boards in the L-shaped inner side of positioning frame rod, avoid the discharging moving plate and move and lead to multiple photovoltaic boards to appear to sway or shift, through the rubber pad, can avoid the knock damage that photovoltaic board moves and loads. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 It is the schematic diagram of the whole structure of the utility model;
[0016] Figure 2 This is a schematic diagram of the supporting sliding groove and sliding guide rail groove structure of this utility model;
[0017] Figure 3 This is a schematic diagram of the material lifting plate structure of this utility model;
[0018] Figure 4 This is a schematic diagram of the snap-fit groove and the material feeding moving plate structure of this utility model;
[0019] Figure 5 This is a schematic diagram of the movable guide rail plate and the push block structure of this utility model;
[0020] In the diagram: 100, rear-end loading and unloading mechanism of the photovoltaic slicing machine; 101, loading frame; 102, mounting plate; 103, supporting sliding groove; 104, loading lifting plate; 105, moving guide rail groove; 106, sliding guide rail groove; 107, servo motor; 108, lead screw; 109, moving frame plate; 110, supporting sliding block; 200, unloading moving component; 201, base plate; 202, supporting crossbeam; 203, unloading plate; 204, unloading moving plate; 205, snap-fit groove; 206, positioning frame rod; 207, rubber pad; 208, pushing block; 209, moving threaded cylinder; 210, threaded rod; 211, rotary motor; 212, moving guide rail plate. Detailed Implementation
[0021] 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.
[0022] This utility model provides a technical solution: such as Figure 1 , Figures 4-5 As shown in this embodiment, a rear-end loading and unloading system for a photovoltaic slicing machine includes a rear-end loading and unloading mechanism 100 and a loading and unloading moving component 200. The loading and unloading moving component 200 includes a rotary motor 211. One end of the rotary motor 211 is rotatably connected to a threaded rod 210. The threaded rod 210 is rotatably connected to the inside of a movable threaded cylinder 209. The inside of the movable threaded cylinder 209 has a threaded groove. One end of the movable threaded cylinder 209 is fixedly installed with a push block 208. One end of the push block 208 has a notch. The notch of the push block 208 can engage with a locking groove 205 at one end of the loading moving plate 204. Movable guide rails 212 are installed on both sides of the lower end of the loading moving plate 204. The movable guide rails 212 are slidably connected to the inside sides of the loading plate 203. Movable guide rail grooves 105 are opened on both sides of the inside of the loading plate 203.
[0023] like Figures 1-4As shown, one end of the blanking plate 203 is fixedly installed with a support cross beam rod 202, the lower end of the support cross beam rod 202 is installed with a bottom plate 201, one end of the bottom plate 201 is installed on one end of the feeding frame 101, one end of the feeding frame 101 is connected with a mounting plate 102 through a bolt, a moving groove is formed in the inside of the mounting plate 102, a lead screw 108 is installed in the inside of the mounting plate 102, the upper end of the lead screw 108 is installed with a servo motor 107, the lead screw 108 is rotatably connected in the inside of a moving frame plate 109, one end of the moving frame plate 109 is fixedly installed with a feeding lifting plate 104, moving guide rail grooves 105 are formed in the inside of both sides of the feeding lifting plate 104, the moving frame plate 109 is slidably connected in the inside of one end of the feeding frame 101, a sliding guide rail groove 106 is formed in the inside of one end of the feeding frame 101, the moving guide rail grooves 105 of the feeding lifting plate 104 and the moving guide rail grooves 105 of the blanking moving plate 204 are on the same horizontal straight line.
[0024] When the plurality of photovoltaic panels are stacked on the upper end of the blanking moving plate 204, the threaded rod 210 is driven to rotate in the moving threaded cylinder 209 by the driving rotary motor 211, further driving the moving threaded cylinder 209 to move horizontally forward and backward, then the pushing block 208 gap groove is movably clamped in the clamping groove 205 of the blanking moving plate 204, and the blanking moving plate 204 is driven to move, and the moving guide rail plate 212 moves in the moving guide rail groove 105 in the inside of the blanking plate 203, the moving guide rail plate 212 is moved to the inside of the moving guide rail groove 105 of the feeding lifting plate 104, further the blanking moving plate 204 is moved to the upper end of the feeding lifting plate 104, the photovoltaic panel is clamped and rotated by the clamping device, and the photovoltaic panel is placed on the conveying device and conveyed to the slicing machine processing area, then the lead screw 108 is driven to rotate in the moving frame plate 109 by the driving servo motor 107, further driving the feeding lifting plate 104 to move up and down, and driving the blanking moving plate 204 with the photovoltaic panel to move up and down, when the blanking moving plate 204 moves up, the clamping device can clamp the photovoltaic panel, which can reduce the operation of the operator to take up the photovoltaic panel for feeding, reduce the fatigue of the operator, and avoid the possibility of operation error leading to material damage or even personnel injury.
[0025] As shown in Figures 1-4 The inside of one end of the feeding frame 101 is provided with a support sliding groove 103, the inside of the support sliding groove 103 is slidably connected with a support sliding block 110, one end of the support sliding block 110 is fixedly installed on one end of the feeding lifting plate 104, the upper end of the blanking moving plate 204 is fixedly installed with a positioning frame rod 206, the positioning frame rod 206 is an L-shaped metal frame structure, and the inside end of the positioning frame rod 206 is installed with a rubber pad 207.
[0026] Through the up and down movement of the feeding lifting plate 104, the supporting sliding block 110 moves in the supporting sliding groove 103 of the feeding frame 101, which can ensure the stability of the up and down movement of the feeding lifting plate 104. The positioning frame rod 206 can clamp multiple photovoltaic panels inside the L-shaped inside of the positioning frame rod 206, avoiding the movement of the discharging moving plate 204 causing the multiple photovoltaic panels to shake or deviate. The rubber pad 207 can prevent the photovoltaic panels from being damaged by knocking during the feeding movement.
[0027] The utility model provides a rear end feeding and discharging system for photovoltaic slicing machine, specific working principle is as follows: when multiple photovoltaic panels are stacked on the upper end of the discharging moving plate 204, the driving rotating motor 211 drives the threaded rod 210 to rotate inside the moving threaded cylinder 209, further drives the moving threaded cylinder 209 to move horizontally forward and backward, then the pushing block 208 gap groove is clamped in the clamping groove 205 of the discharging moving plate 204, and the discharging moving plate 204 is driven to move. The moving guide rail plate 212 moves in the moving guide rail groove 105 inside the discharging plate 203, and the moving guide rail plate 212 is moved to the moving guide rail groove 105 inside the feeding lifting plate 104, and the discharging moving plate 204 is further moved to the upper end of the feeding lifting plate 104. The photovoltaic panel is clamped by the clamping device and rotated, and the photovoltaic panel is placed on the conveying device and conveyed to the slicing machine processing area. Then the driving servo motor 107 drives the lead screw 108 to rotate inside the moving frame plate 109, further drives the feeding lifting plate 104 to move up and down, and drives the discharging moving plate 204 with photovoltaic panels to move up and down. When the discharging moving plate 204 moves up, the clamping device can clamp the photovoltaic panel, which can reduce the operation of the operator to pick up the photovoltaic panel for feeding, reduce the fatigue of the operator, avoid the operation error that may cause material damage or even personnel injury, and ensure the stability of the up and down movement of the feeding lifting plate 104. The supporting sliding block 110 moves in the supporting sliding groove 103 of the feeding frame 101, which can ensure the stability of the up and down movement of the feeding lifting plate 104. The positioning frame rod 206 can clamp multiple photovoltaic panels inside the L-shaped inside of the positioning frame rod 206, avoiding the movement of the discharging moving plate 204 causing the multiple photovoltaic panels to shake or deviate. The rubber pad 207 can prevent the photovoltaic panels from being damaged by knocking during the feeding movement.
[0028] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, and the scope of the utility model is defined by the appended claims and their equivalents.
Claims
1. A back-end infeed and outfeed system for a photovoltaic slicer, comprising a back-end infeed and outfeed mechanism (100) of a photovoltaic slicer and an outfeed moving assembly (200), characterized in that: The blanking moving assembly (200) contains a rotating motor (211), one end of the rotating motor (211) is rotatably connected with a threaded rod (210), the threaded rod (210) is rotatably connected in the inside of a moving threaded cylinder (209), the inside of the moving threaded cylinder (209) is provided with a threaded groove, one end of the moving threaded cylinder (209) is fixedly installed with a push block (208), the inside of one end of the push block (208) is provided with a notched groove, the notched groove of the push block (208) can be clamped in the clamping groove (205) of one end of the blanking moving plate (204), the lower ends of the blanking moving plate (204) are installed with moving guide rail plates (212), the moving guide rail plates (212) are slidably connected in the inside of both sides of the blanking plate (203), the inside of both sides of the blanking plate (203) is provided with moving guide rail grooves (105).
2. A back end in and out system for a photovoltaic slitter according to claim 1, characterized in that: One end of the blanking plate (203) is fixedly installed with a support cross beam rod (202), the lower end of the support cross beam rod (202) is installed with a bottom plate (201).
3. A back end in and out system for a photovoltaic slitter according to claim 2, wherein: One end of the bottom plate (201) is installed on one end of the feeding frame (101), one end of the feeding frame (101) is boltedly connected with a mounting plate (102), the inside of the mounting plate (102) is provided with a moving groove, the inside of the mounting plate (102) is installed with a lead screw (108), the upper end of the lead screw (108) is installed with a servo motor (107).
4. A back end in and out system for a photovoltaic slitter according to claim 3, wherein: The lead screw (108) is rotatably connected in the inside of a moving rack plate (109), one end of the moving rack plate (109) is fixedly installed with a feeding lifting plate (104), the inside of both sides of the feeding lifting plate (104) is provided with moving guide rail grooves (105), the moving rack plate (109) is slidably connected in the inside of one end of the feeding frame (101), the inside of one end of the feeding frame (101) is provided with a sliding guide rail groove (106).
5. A back end in and out system for a photovoltaic slitter according to claim 4, wherein: The moving guide rail grooves (105) of the feeding lifting plate (104) are in the same horizontal straight line with the moving guide rail grooves (105) of the blanking moving plate (204).
6. A back end in and out system for a photovoltaic slitter according to claim 4, wherein: The inside of one end of the feeding frame (101) is provided with a support sliding groove (103), the inside of the support sliding groove (103) is slidably connected with a support sliding block (110), one end of the support sliding block (110) is fixedly installed on one end of the feeding lifting plate (104).
7. A back end in and out system for a photovoltaic slitter according to claim 1, wherein: The upper end of the blanking moving plate (204) is fixedly installed with a positioning rack rod (206), the positioning rack rod (206) is an L-shaped metal frame structure, the inner side end of the positioning rack rod (206) is installed with a rubber pad (207).