A forming device for an aluminum alloy frame of a solar panel

By designing an aluminum alloy frame forming device that includes negative pressure adsorption and hydraulic drive, the safety and efficiency issues of manual assembly of aluminum alloy frames and corner brackets were solved, realizing automated assembly and improving production efficiency and safety.

CN115533517BActive Publication Date: 2026-03-27ANHUI POLYTECHNIC UNIV MECHANICAL & ELECTRICAL COLLEGE
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-13
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

In the existing technology, the assembly of aluminum alloy frames and corner brackets mainly relies on manual labor, which poses safety hazards, high costs, and low efficiency. Furthermore, the corner bracket loading is inefficient and can easily cause injury.

Method used

A forming device was designed, comprising a workbench, a frame initial loading component, a corner code initial assembly component, a corner code final assembly component, a frame final loading component, and a frame unloading component. The device utilizes negative pressure adsorption and hydraulic drive to achieve automated assembly of aluminum alloy frames.

Benefits of technology

The system enables automated assembly of aluminum alloy frames, improving assembly efficiency, reducing labor costs, minimizing safety hazards, and features a compact structure and easy operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a forming device for an aluminum alloy frame of a solar panel, and relates to the technical field of mechanical assembly. The forming device comprises a workbench, a frame initial loading component, a corner code initial loading component, a corner code final loading component, a frame final loading component and a frame unloading component. The frame initial loading component is used for simultaneously loading a plurality of aluminum alloy frames distributed on the left and right sides. The corner code initial loading component is used for simultaneously loading a plurality of corner codes distributed on four corners, and the corner codes are firstly installed on the aluminum alloy frames distributed on the left and right sides. The frame final loading component is used for simultaneously loading a plurality of aluminum alloy frames distributed on the front and back sides. The corner code final loading component is used for secondarily installing the corner codes, which have been installed on the aluminum alloy frames distributed on the left and right sides, on the aluminum alloy frames distributed on the front and back sides. The frame unloading component is used for unloading the aluminum alloy frame, which has been assembled and formed, from the frame initial loading component and the frame final loading component.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of mechanical assembly, and in particular to a forming device of an aluminum alloy frame for a solar panel. BACKGROUND

[0002] With the gradual maturity of the technology of converting light energy into electrical energy for storage, the use of solar panels is becoming more and more widespread.

[0003] And the aluminum alloy frame and the corner code are important components of the solar panel. At present, the assembly of the aluminum alloy frame and the corner code is mainly realized by manual work. Since the end of the aluminum alloy frame has a relatively sharp cutting edge, there is a safety problem when manually assembling the corner code. In addition, the labor cost is high, the error rate is high, and the assembly efficiency is low. Therefore, it is particularly important to realize the automatic assembly of the aluminum alloy frame and the corner code.

[0004] In addition, the feeding work of the solar aluminum alloy frame corner code is generally completed by manual work one by one and intermittently, which is low in efficiency and easy to injure people. In order to improve the production efficiency and reduce the injury of the corner code to the workers in the feeding process, the feeding part of the corner code needs to be reasonably redesigned. SUMMARY

[0005] The purpose of the present application is to provide a forming device of an aluminum alloy frame for a solar panel to solve the above-mentioned defects in the prior art.

[0006] A forming device of an aluminum alloy frame for a solar panel, comprising a workbench, a frame initial loading component, a corner code initial assembly component, a corner code final assembly component, a frame final loading component and a frame unloading component, wherein:

[0007] The frame initial loading component is provided with a pair of and symmetrically distributed on the left and right sides of the workbench, and the frame initial loading component is used to simultaneously load a plurality of aluminum alloy frames distributed on the left and right sides;

[0008] The corner code initial assembly component is provided with two pairs and corresponding distributed on the front and back of the two frame initial loading components, and the corner code initial assembly component is used to simultaneously load a plurality of corner codes distributed on the four corners, and install these corner codes on the aluminum alloy frames distributed on the left and right sides;

[0009] The frame final loading component is provided with a pair of and symmetrically distributed on the front and back of the workbench, and the frame final loading component is used to simultaneously load a plurality of aluminum alloy frames distributed on the front and back;

[0010] The corner code final assembly component is provided with a pair of and symmetrically distributed in the middle of the workbench, and the corner code final assembly component is used to install the corner codes already installed on the aluminum alloy frames distributed on the left and right sides on the aluminum alloy frames distributed on the front and back;

[0011] The frame unloading component is provided with a pair of and symmetrically distributed on the front and rear edges of the workbench, and is used for unloading the aluminum alloy frame assembled and formed from the edge frame initial loading component and the edge frame final loading component.

[0012] Preferably, the edge frame initial loading component comprises a loading plate one, a loading strip one, a lower blocking strip one, a side blocking strip one and a suction plate one. The loading plate one is horizontally arranged. The loading strip one is parallelly arranged on the inner side of the loading plate one. The loading strip one is provided with a row of upper and lower through suction holes one. The lower end of the suction hole one is connected to the external negative pressure air source through the air guide pipe. The lower blocking strip one is parallelly arranged on the inner side of the loading strip one. The side blocking strip one is provided with a pair of and symmetrically arranged on the front and rear edges of the loading plate one. The cross section of the side blocking strip one is Z-shaped structure. The inner side of the lower blocking strip one is symmetrically welded with a hinge lug one. The suction plate one is T-shaped structure and is centrally arranged on the inner side of the lower blocking strip one. The two overhanging ends of the suction plate one are pasted with a magnetic ring one.

[0013] Preferably, the corner code initial loading component comprises a feeding plate, a connecting sheet, a lower blocking sheet, a hydraulic cylinder one and a fixed plate one. The feeding plate is parallelly arranged on the front wall or the rear wall of the loading plate one through a plurality of connecting sheets. The cross section of the feeding plate is L-shaped structure. The inner side of the feeding plate is uniformly provided with a circular guide hole. The inner side of the feeding plate is provided with a rectangular discharge port. The lower blocking sheet is parallelly connected to the inner end of the feeding plate. The hydraulic cylinder one is vertically arranged on the inner side of the feeding plate through the fixed plate one. The piston rod end of the hydraulic cylinder one is connected with a connecting block. The inner side of the connecting block is uniformly connected with a vertical push rod. The push rod and the guide hole are coaxially distributed.

[0014] Preferably, the corner code final loading component comprises a fixed plate two, a hydraulic cylinder two, a lifting strip and a hinge frame one. The fixed plate two is ∩-shaped structure and is vertically fixed in the middle of the workbench. The left and right sides of the fixed plate two are symmetrically provided with a rectangular receiving groove. The hydraulic cylinder two is vertically arranged downward and is arranged on the upper side of the fixed plate two. The lifting strip is ∩-shaped structure and is vertically slid on the inner side of the fixed plate two. The lifting strip is screwedly arranged on the piston rod end of the hydraulic cylinder two. The left and right sides of the lifting strip are symmetrically welded with a hinge seat. The hinge seat is hingedly arranged with a hinge strip. The hinge frame one is provided with a pair of and symmetrically arranged on the same side. The hinge frame one is L-shaped structure and faces the outer side. The hinge strips on the same side pass through the receiving groove and are hingedly connected with the hinge frame one. The hinge lug one on the same side is hingedly connected to the lower end of the hinge frame one. The fixed plate two is vertically welded with a front and rear symmetric support strip at the lower part of the receiving groove. The support strip is provided with a rectangular sliding groove for connecting the hinge strip on the lower side and the hinge frame one.

[0015] Preferably, the frame final load component includes a second loading plate, a second loading strip, a second lower baffle, a second side baffle, and a second adsorption plate. The second loading plate is horizontally arranged, and the second loading strip is installed parallel to the inner side of the second loading plate. The second loading strip has a row of vertically penetrating suction holes. The lower end of the second suction hole is connected to an external negative pressure air source through an air guide pipe. The second lower baffle is installed parallel to the inner side of the second loading strip. The second side baffle has a pair and is symmetrically installed on the left and right sides of the second loading plate. The second side baffle has a Z-shaped cross-section. The inner side of the second lower baffle has symmetrically welded hinge ears. The second adsorption plate has a T-shaped structure and is installed centrally on the inner side of the second lower baffle. Magnetic rings are attached to both overhanging ends of the second adsorption plate.

[0016] Preferably, the frame unloading component includes a raised strip, a slide rail, a slide plate, a second hinge frame, a third hydraulic cylinder, a third fixing plate, and a connecting block. A pair of raised strips are symmetrically installed on the upper side of the worktable. A pair of slide rails are correspondingly installed on the upper sides of the two raised strips. A slider is slidably connected to the slide rail. The slide plate has a U-shaped structure and is horizontally connected to the upper side of the slider. A pair of second hinge frames are symmetrically welded to the outer side of the slide plate. The second hinge frame has an L-shaped structure and faces outwards. A second hinge ear on the same side is hinged to the lower end of the second hinge frame. The third hydraulic cylinder is horizontally inwardly positioned between the slide plate and the worktable. The third hydraulic cylinder is installed on the upper side of the worktable via the third fixing plate. The connecting block is threaded to the end of the piston rod of the third hydraulic cylinder and is vertically fixed to the lower side of the slide plate.

[0017] Compared with the prior art, the forming device for the aluminum alloy frame of the solar panel in this invention has the following advantages:

[0018] (1) Manual stacking: ① The aluminum alloy frames distributed on the left and right sides are evenly stacked on the upper side of the first loading plate, and the lower baffle and the side baffle are used for limiting. The innermost aluminum alloy frame will be located on the upper side of the first loading plate. At this time, the negative pressure condition at the first suction hole firmly adsorbs the aluminum alloy frame; ② The aluminum alloy frames distributed on the front and back sides are evenly stacked on the upper side of the second loading plate, and the lower baffle and the side baffle are used for limiting. The innermost aluminum alloy frame will be located on the upper side of the second loading plate. At this time, the negative pressure condition at the second suction hole firmly adsorbs the aluminum alloy frame; ③ The corner brackets distributed at the four corners are evenly stacked on the inner side of the feeding plate, and the feeding plate and the lower baffle are used for limiting. The innermost corner bracket will abut against the upper side of the lower baffle. At this time, the corner bracket is also located between the guide hole and the discharge port.

[0019] (2) Material adjustment: ① Flip the left and right side plates inward and upward, and firmly attach them to the hinge frame 1 using the magnetic ring on the adsorption plate 1. The innermost aluminum alloy frame will be at the bottom, and the innermost corner bracket will also be at the bottom; ② Flip the front and rear side plates inward and upward, and firmly attach them to the hinge frame 2 using the magnetic ring on the adsorption plate 2. The innermost aluminum alloy frame will be at the bottom.

[0020] (3) Initial installation of corner brackets: The piston rod of hydraulic cylinder one extends and drives the push rod to be inserted into the guide hole, so as to push the bottom corner bracket out of the feeding plate and insert it into the front and rear ends of the bottom aluminum alloy frame distributed on the left and right sides.

[0021] (4) Corner code final installation: The piston rod of hydraulic cylinder two retracts and drives the lifting bar to move upward, thereby driving the hinge frame one on both sides to move closer to each other, so as to install the corner code that has been installed on the aluminum alloy frame distributed on the left and right sides onto the aluminum alloy frame distributed on the front and rear sides.

[0022] (5) Frame unloading: interrupt the negative pressure conditions at air intake hole 1 and air intake hole 2, then extend the piston rod of hydraulic cylinder 2 and drive the two side loading plates 1 to move away from each other. At the same time, retract the piston rod of hydraulic cylinder 3 and drive the two side loading plates 2 to move away from each other, so as to detach the assembled aluminum alloy frame from the lower stop bar 1 and lower stop bar 2. Then, the frame is removed manually.

[0023] In summary, the aluminum alloy frame for solar panels in this invention features ingenious design, compact structure, convenient placement and removal, high assembly efficiency, and good assembly effect. Attached Figure Description

[0024] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention.

[0025] Figure 2 This is a schematic diagram of the structure of the initial loading component of the border in this invention.

[0026] Figure 3 This is a schematic diagram of the structure of the adsorption plate 1 in the initial loading component of the frame.

[0027] Figure 4 This is a schematic diagram of the initial assembly component of the corner bracket in this invention.

[0028] Figure 5 This is a schematic diagram of the corner code final assembly component in this invention.

[0029] Figure 6 This is a schematic diagram of the frame final load component in this invention.

[0030] Figure 7This is a schematic diagram of the structure of the adsorption plate 2 in the frame final load component.

[0031] Figure 8 This is a schematic diagram of the frame unloading component in this invention.

[0032] Figure 9 This is a schematic diagram of the aluminum alloy frame and corner brackets in this invention.

[0033] in:

[0034] 10-Workbench;

[0035] 20-Frame initial loading component; 201-Placement plate one; 202-Placement strip one; 202a-Suction hole one; 203-Lower baffle one; 204-Side baffle one; 205-Hinge ear one; 206-Adsorption plate one; 207-Magnetic ring one;

[0036] 30-Corner code initial assembly components; 301-Discharge plate; 301a-Guide hole; 301b-Discharge port; 302-Connecting piece; 303-Lower baffle; 304-Hydraulic cylinder one; 305-Fixing plate one; 306-Connecting block; 307-Push rod;

[0037] 40-Angle bracket final assembly; 401-Fixing plate two; 401a-Receiving groove; 402-Hydraulic cylinder two; 403-Lifting bar; 404-Hinge seat; 405-Hinge bar; 406-Hinge frame one; 407-Support bar; 407a-Sliding groove;

[0038] 50-Frame final load component; 501-Placement plate two; 502-Placement strip two; 502a-Suction hole two; 503-Lower baffle two; 504-Side baffle two; 505-Hinge ear two; 506-Adsorption plate two; 507-Magnetic ring two;

[0039] 60-Frame unloading component; 601-Elevating strip; 602-Slide rail; 603-Slider; 604-Slide plate; 605-Hinge frame two; 606-Hydraulic cylinder three; 607-Fixing plate three; 608-Connecting block;

[0040] 70-Aluminum alloy frame;

[0041] 80-corner code. Detailed Implementation

[0042] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0043] like Figures 1 to 9As shown, a forming device for an aluminum alloy frame for solar panels includes a worktable 10, a frame initial loading component 20, a corner bracket initial assembly component 30, a corner bracket final assembly component 40, a frame final loading component 50, and a frame unloading component 60, wherein:

[0044] The frame initial loading component 20 is provided in a pair and symmetrically distributed on the left and right sides of the worktable 10. The frame initial loading component 20 is used to simultaneously support multiple aluminum alloy frames 70 distributed on the left and right sides.

[0045] The corner bracket initial mounting component 30 has two pairs and is correspondingly distributed on the front and rear sides of the two frame initial mounting components 20. The corner bracket initial mounting component 30 is used to simultaneously carry multiple corner brackets 80 distributed at the four corners, and to first install these corner brackets 80 onto the aluminum alloy frame 70 distributed on the left and right sides.

[0046] The frame load-bearing component 50 is provided in a pair and symmetrically distributed on the front and rear sides of the worktable 10. The frame load-bearing component 50 is used to simultaneously support multiple aluminum alloy frames 70 distributed on the front and rear sides.

[0047] The corner code final installation component 40 is provided in a pair and symmetrically distributed in the middle of the workbench 10. The corner code final installation component 40 is used to install the corner code 80 that has been installed on the aluminum alloy frame 70 distributed on the left and right sides onto the aluminum alloy frame 70 distributed on the front and rear sides.

[0048] The frame unloading component 60 is provided in pairs and symmetrically distributed on the front and rear sides of the workbench 10. The frame unloading component 60 is used to unload the assembled aluminum alloy frame from the initial frame loading component 20 and the final frame loading component 50.

[0049] In this embodiment, the frame initial loading component 20 includes a loading plate 201, a loading strip 202, a lower baffle 203, a side baffle 204, and an adsorption plate 206. The loading plate 201 is horizontally arranged, and the loading strip 202 is installed parallel to the inner side of the loading plate 201. The loading strip 202 has a row of vertically penetrating suction holes 202a. The lower end of the suction holes 202a is connected to an external negative pressure air source through an air guide pipe. The baffle strip 203 is installed parallel to the inner side of the loading strip 202. The side baffle strip 204 is provided in pairs and symmetrically installed on the front and rear sides of the loading plate 201. The cross-section of the side baffle strip 204 is Z-shaped. The inner side of the lower baffle strip 203 is symmetrically welded with hinge ears 205. The adsorption plate 206 is T-shaped and centrally installed on the inner side of the lower baffle strip 203. Magnetic rings 207 are attached to both overhanging ends of the adsorption plate 206.

[0050] In this embodiment, the corner bracket initial assembly component 30 includes a feeding plate 301, a connecting piece 302, a lower baffle 303, a hydraulic cylinder 304, and a fixing plate 305. The feeding plate 301 is installed parallel to the front or rear wall of the loading plate 201 via several connecting pieces 302. The feeding plate 301 has an L-shaped cross-section. Circular guide holes 301a are uniformly provided on the outer side of the interior of the feeding plate 301, and a rectangular discharge port 301b is provided on the inner side of the interior of the feeding plate 301. The lower baffle 303 is connected parallel to the inner end of the feeding plate 301. The hydraulic cylinder 304 is vertically installed on the outer side of the interior of the feeding plate 301 via the fixing plate 305. A connecting block 306 is connected to the end of the piston rod of the hydraulic cylinder 304. Vertical push rods 307 are uniformly connected to the inner side of the connecting block 306. The push rods 307 correspond to and are coaxially distributed with the guide holes 301a.

[0051] In this embodiment, the corner code final assembly component 40 includes a second fixing plate 401, a second hydraulic cylinder 402, a lifting bar 403, and a first hinge frame 406. The second fixing plate 401 has a U-shaped structure and is vertically fixed in the middle of the workbench 10. Rectangular receiving grooves 401a are symmetrically provided on the left and right sides of the second fixing plate 401. The second hydraulic cylinder 402 is vertically downward and installed on the upper side of the second fixing plate 401. The lifting bar 403 has a U-shaped structure and slides vertically on the inner side of the second fixing plate 401. The lifting bar 403 is threaded onto the end of the piston rod of the second hydraulic cylinder 402. Symmetrical hinge seats 404 are welded to the left and right sides of the lifting bar 403. Each hinge seat 404 is hinged with a hinge bar 405. A pair of hinge frames 406 are provided and are symmetrically distributed on the left and right. The hinge frame 406 is L-shaped and faces outward. A pair of hinge bars 405 on the same side pass through the receiving groove 401a and are hinged to the hinge frame 406. A hinge ear 205 on the same side is hinged to the lower end of the hinge frame 406. The fixing plate 401 has a symmetrical support bar 407 vertically welded to the lower part of the receiving groove 401a. The support bar 407 is provided with a rectangular sliding groove 407a, which is used to connect the lower hinge bar 405 and the pin of the hinge frame 406 to slide in the sliding groove 407a.

[0052] In this embodiment, the frame final loading component 50 includes a second loading plate 501, a second loading strip 502, a second lower baffle 503, a second side baffle 504, and a second adsorption plate 506. The second loading plate 501 is horizontally arranged, and the second loading strip 502 is installed parallel to the inner side of the second loading plate 501. The second loading strip 502 has a row of vertically penetrating suction holes 502a. The lower end of the suction holes 502a is connected to an external negative pressure air source through an air guide pipe. The second baffle 503 is installed parallel to the inner side of the second loading strip 502. The second side baffle 504 is provided in pairs and symmetrically installed on the left and right sides of the second loading plate 501. The second side baffle 504 has a Z-shaped cross-section. The inner side of the second lower baffle 503 is symmetrically welded with hinge ears 505. The second adsorption plate 506 has a T-shaped structure and is installed in the center on the inner side of the second lower baffle 503. Magnetic rings 507 are attached to both overhanging ends of the second adsorption plate 506.

[0053] In this embodiment, the frame unloading component 60 includes a raised strip 601, a slide rail 602, a sliding plate 604, a second hinge frame 605, a third hydraulic cylinder 606, a third fixing plate 607, and a connecting block 608. A pair of raised strips 601 are symmetrically installed on the upper side of the workbench 10. A pair of slide rails 602 are correspondingly installed on the upper sides of the two raised strips 601. A slider 603 is slidably connected to the slide rail 602. The sliding plate 604 has a U-shaped structure and is horizontally connected to the upper side of the slider 603. The second hinge frame 605... 5. A pair of hinges 604 are symmetrically welded to the outside of the slide plate 604. The second hinge frame 605 is L-shaped and faces outward. The second hinge ear 503 on the same side is hinged to the lower end of the second hinge frame 605. The third hydraulic cylinder 606 is horizontally arranged inward and located between the slide plate 604 and the worktable 10. The third hydraulic cylinder 606 is installed on the upper side of the worktable 10 through the third fixing plate 607. The connecting block 608 is threaded to the end of the piston rod of the third hydraulic cylinder 606. The connecting block 608 is vertically fixed to the lower side of the slide plate 604.

[0054] The forming device for this type of aluminum alloy frame for solar panels includes the following steps in practical applications:

[0055] Step 1: Manual stacking of materials:

[0056] ① The aluminum alloy frames 70 distributed on the left and right sides are evenly stacked on the upper side of the loading plate 201 and limited by the lower stop bar 203 and the side stop bar 204. The innermost aluminum alloy frame 70 will be located on the upper side of the loading bar 202. At this time, the aluminum alloy frame 70 is firmly adsorbed by the negative pressure condition at the suction hole 202a.

[0057] ② The aluminum alloy frames 70 distributed on the front and rear sides are evenly stacked on the upper side of the second loading plate 501 and limited by the lower baffle 503 and the side baffle 504. The innermost aluminum alloy frame 70 will be located on the upper side of the second loading plate 502. At this time, the aluminum alloy frame 70 is firmly adsorbed by the negative pressure condition at the second suction hole 502a.

[0058] ③ The corner brackets 80 distributed at the four corners are evenly stacked on the inner side of the feeding plate 301 and limited by the feeding plate 301 and the lower baffle 303. The innermost corner bracket 80 will abut against the upper side of the lower baffle 303. At this time, this corner bracket 80 is also located between the guide hole 301a and the discharge port 301b.

[0059] Step 2: Material Adjustment

[0060] ① Flip the left and right side mounting plates 201 inward and upward 90 degrees, and firmly attach them to the hinge frame 406 by the magnetic ring 207 on the adsorption plate 206. The innermost aluminum alloy frame 70 will be at the bottom, and the innermost corner bracket 80 will also be at the bottom.

[0061] ② Flip the two front and rear mounting plates 501 inward and upward by 90 degrees, and firmly attach them to the hinge frame 605 by the magnetic ring 507 on the adsorption plate 506. The innermost aluminum alloy frame 70 will be at the bottom.

[0062] Step 3: Initial installation of corner brackets: The piston rod of hydraulic cylinder 304 extends and drives the push rod 307 to be inserted into the guide hole 301a, so as to push the bottom corner bracket 80 out of the feeding plate 301 and insert it into the front and rear ends of the bottom aluminum alloy frame 70 distributed on the left and right sides.

[0063] Step 4: Corner bracket final installation: The piston rod of hydraulic cylinder 2 402 retracts and drives the lifting bar 403 to move upward, thereby driving the two hinge frames 1 406 to move closer to each other, so as to install the corner brackets 80 that have been installed on the aluminum alloy frames 70 distributed on the left and right sides onto the aluminum alloy frames 70 distributed on the front and rear sides.

[0064] Step 5: Frame unloading: Interrupt the negative pressure conditions at suction port 1 202a and suction port 2 502a, then extend the piston rod of hydraulic cylinder 2 402 and drive the two side loading plates 1 201 to move away from each other. At the same time, retract the piston rod of hydraulic cylinder 3 606 and drive the two side loading plates 2 501 to move away from each other, so as to detach the assembled aluminum alloy frame from the lower stop bar 1 203 and the lower stop bar 2 503. Then, the frame is removed manually.

[0065] Step 6: Continuous assembly: Repeat steps 3 to 5.

[0066] In summary, the aluminum alloy frame for solar panels in this invention features ingenious design, compact structure, convenient placement and removal, high assembly efficiency, and good assembly effect.

[0067] Therefore, the disclosed embodiments described above are merely illustrative in all respects and are not exhaustive. All modifications within the scope of this invention or its equivalents are included in this invention.

Claims

1. A forming apparatus for an aluminum alloy frame for a solar panel, characterized by: The frame unloading component (60) is arranged on the workbench (10) and is used for simultaneously unloading the plurality of aluminum alloy frames (70) distributed on the left and right sides of the workbench (10). The side blocking strip one (204) is arranged on the left and right sides of the loading plate one (201) and is symmetrically arranged. The corner code final assembly component (40) is arranged on the workbench (10) and is used for reassembling the corner code (80) which has been assembled on the aluminum alloy frame (70) distributed on the left and right sides of the workbench (10) to the aluminum alloy frame (70) distributed on the front and back sides of the workbench (10). The side blocking strip two (504) is arranged on the left and right sides of the loading plate two (501) and is symmetrically arranged. The corner code final assembly component (40) is arranged on the workbench (10) and is used for reassembling the corner code (80) which has been assembled on the aluminum alloy frame (70) distributed on the left and right sides of the workbench (10) to the aluminum alloy frame (70) distributed on the front and back sides of the workbench (10). The frame unloading component (60) is provided with a pair of and symmetrically distributed on the front and back of the workbench (10), the frame unloading component (60) is used for unloading the aluminum alloy frame assembled from the frame initial loading component (20) and the frame final loading component (50).

2. The forming apparatus of an aluminum alloy frame for a solar panel according to claim 1, characterized by: The frame initial loading component (20) further comprises an adsorption plate one (206), the adsorption plate one (206) is T-shaped and centrally installed on the inner side of the lower blocking strip one (203), and the two overhanging ends of the adsorption plate one (206) are pasted with magnetic rings one (207).

3. The apparatus according to claim 1, wherein: The corner code initial loading component (30) comprises a discharging plate (301), a connecting piece (302), a lower blocking piece (303), a hydraulic cylinder one (304) and a fixed plate one (305), the discharging plate (301) is parallelly installed on the front wall or the rear wall of the loading plate one (201) through a plurality of connecting pieces (302), the cross section of the discharging plate (301) is L-shaped, the inside of the discharging plate (301) is uniformly provided with a circular guide hole (301a) on the outside, the inside of the discharging plate (301) is provided with a rectangular discharge port (301b) on the inside, the lower blocking piece (303) is connected to the inner end of the discharging plate (301), the hydraulic cylinder one (304) is vertically installed on the inside of the discharging plate (301) through the fixed plate one (305), the piston rod end of the hydraulic cylinder one (304) is connected with a connecting block (306), the inner side of the connecting block (306) is uniformly connected with a vertical push rod (307), the push rod (307) and the guide hole (301a) are coaxially distributed corresponding to each other.

4. The apparatus according to claim 1, wherein: The corner code final assembly component (40) comprises a fixed plate two (401), a hydraulic cylinder two (402), a lifting bar (403) and a hinged frame one (406), the fixed plate two (401) is a ∩ type structure and is vertically fixed in the middle of the workbench (10), the left and right sides of the fixed plate two (401) are symmetrically provided with a rectangular receiving groove (401a), the hydraulic cylinder two (402) is vertically downward and is installed on the upper side of the fixed plate two (401), the lifting bar (403) is a ∩ type structure and is vertically slid on the inner side of the fixed plate two (401), the lifting bar (403) is screw installed on the piston rod end of the hydraulic cylinder two (402), the left and right sides of the lifting bar (403) are welded with the upper and lower symmetrical hinged seats (404), the hinged seats (404) are all hinged with the hinged bars (405), the hinged frame one (406) is provided with a pair of and is symmetrically distributed, the hinged frame one (406) is an L type structure and is outward, a pair of hinged bars (405) on the same side pass through the receiving groove (401a) and are hinged with the hinged frame one (406), the hinged ear one (205) on the same side is hinged with the lower end of the hinged frame one (406), the fixed plate two (401) is vertically welded with the front and rear symmetrical support bars (407) at the lower part of the receiving groove (401a), the support bars (407) are provided with rectangular sliding grooves (407a) for connecting the hinged bars (405) below and the pin shafts of the hinged frame one (406) to be slidably connected in the sliding grooves (407a).

5. The apparatus of claim 1, wherein: The frame final assembly component (50) further comprises an adsorption plate two (506), the adsorption plate two (506) is a T type structure and is centrally installed on the inner side of the lower blocking bar two (503), both of the two overhanging ends of the adsorption plate two (506) are pasted with magnetic rings two (507).

6. The apparatus of claim 1, wherein: The frame unloading component (60) comprises a pair of left-right symmetrical elevation bars (601) installed on the upper side of the workbench (10), a pair of slide rails (602) installed on the upper side of the two elevation bars (601), a slide block (603) slidably connected to the slide rail (602), a slide plate (604) connected to the upper side of the slide block (603) and having a ∪-shaped structure, a pair of left-right symmetrical hinged frames (605) welded to the outer side of the slide plate (604), the hinged frame (605) having an L-shaped structure and facing outward, the hinged lug (503) on the same side being hinged to the lower end of the hinged frame (605), a hydraulic cylinder (606) horizontally arranged inward and located between the slide plate (604) and the workbench (10), the hydraulic cylinder (606) being installed on the upper side of the workbench (10) through a fixing plate (607), and a connecting block (608) threadedly connected to the piston rod end of the hydraulic cylinder (606) and vertically fixed to the lower side of the slide plate (604).

Citation Information

Patent Citations

  • Corner connector assembling device

    CN216633312U