A lightweight frame profile module composite wall and processing equipment
Through the combination of shaped frames and processing equipment, the inaccurate alignment and complicated operation problems of lightweight profile assembly are solved, and the rapid assembly and efficient production of frames of appropriate sizes are achieved, which improves assembly accuracy and efficiency.
Patent Information
- Application Number
- CN202211477689.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-23
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2042-11-23
AI Technical Summary
Existing lightweight profiles are prone to inaccurate alignment and complicated operation when assembling, resulting in insufficiency of assembly and fixed size limiting the scope of use.
Components such as shaped frames, spring telescopic rods, spherical beads, mounting blocks and support trusses are adopted, combined with the transmission, fixing and moving devices of the processing equipment, to realize the assembly structure and precise positioning of lightweight profiles, and improve assembly accuracy and efficiency through limiting components and clamping components.
It realizes the rapid assembly of the appropriate size frame according to the needs, avoids inaccurate alignment, improves assembly efficiency, and prevents movement through limiting and clamping, enhancing the assembly effect.
Smart Images

Figure CN115749056B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of composite wall production, and particularly to a lightweight frame profile module composite wall and processing equipment. Background Art
[0002] Lightweight frame profiles, also known as industrial profile frames, are a general term for a universal system frame composed of extruded industrial profiles and special industrial profile fittings. The frame profile products have good mechanical properties, high connection strength, and large bearing capacity, and are mainly applicable to machine frames, wall brackets, doors, etc. They are modular and multifunctional, and can quickly frame the outer shell of mechanical equipment without complex design and processing.
[0003] When lightweight profiles are used, they generally have fixed dimensions and it is difficult to quickly assemble them into a frame of a suitable size according to requirements, thus narrowing the scope of use of lightweight profiles.
[0004] In addition, before lightweight profiles are used, they generally need to be clamped and docked to facilitate the installation of composite walls. There are some deficiencies in the existing equipment when docking lightweight profiles:
[0005] 1. When assembling lightweight profiles, the lightweight profiles are directly assembled without positioning. Direct assembly generally easily results in inaccurate alignment, thus affecting the assembly effect of lightweight profiles.
[0006] 2. When assembling lightweight profiles, after the traditional frame is assembled, the truss that needs to be supported also needs to be separately placed into the assembled frame. This not only makes the operation steps cumbersome but also further reduces the working efficiency of lightweight profiles during assembly. Summary of the Invention
[0007] In order to make up for the deficiencies of the prior art, the present invention provides a lightweight frame profile module composite wall and processing equipment.
[0008] The technical problem to be solved by the present invention is achieved by the following technical solutions: A lightweight frame profile module composite wall includes a U-shaped frame, a spring telescopic rod, a spherical clamping bead, a mounting block, a support truss, and a mounting rod. The U-shaped frame is composed of two L-shaped plates and multiple connecting plates. A clamping groove is provided in one of the horizontal sections of the U-shaped frame, and circular grooves are symmetrically provided up and down in the clamping groove. A spherical clamping bead is installed in the circular groove through a spring telescopic rod. A mounting block that is matched with the clamping groove is fixedly installed on the other horizontal section of the U-shaped frame. Arc-shaped clamping grooves that are matched with the spherical clamping beads are symmetrically provided up and down on the mounting block. A cross-shaped support truss is provided between the U-shaped frames forming a rectangular frame. An installation rod is provided in the middle of the support truss, and wall panels are symmetrically installed at the front and rear ends of the installation rod.
[0009] In the processing of the above lightweight frame profile module composite wall, it needs to be processed and assembled. The processing equipment includes a workbench, a transmission device, a fixing device and a moving device. The top of the workbench is provided with a transmission device, a fixing device and a moving device. The fixing device is located behind the transmission device, and the moving device is located above the transmission device and the fixing device;
[0010] The transmission device includes a limiting plate, a rotating rod, a transmission belt, an L-shaped plate, an intermittent motor and an adjusting component. The limiting plates are symmetrically and fixedly installed on the front and rear sides of the top of the workbench. Two rotating rods are horizontally rotatably arranged between the two limiting plates. The two rotating rods are connected by a transmission belt. An L-shaped plate is fixedly installed on the limiting plate located at the rear side. An intermittent motor is fixedly installed on the L-shaped plate. The output shaft of the intermittent motor is fixedly connected to one of the rotating rods. An adjusting component is arranged on the two limiting plates.
[0011] As a preferred technical solution of the present invention, the fixing device includes a C-shaped plate, an electric push rod, a support spring, a moving plate, a circular ejector rod and a limiting component. The C-shaped plate with an opening downward is fixedly installed at a position near the rear side of the top of the workbench. Circular through grooves with the centers located on the diagonal line of the horizontal section of the C-shaped plate are opened at the four corners of the top of the horizontal section of the C-shaped plate. An electric push rod is fixedly installed on the top of the workbench and directly opposite to the center position of the top of the C-shaped plate. The top of the electric push rod is fixedly installed with a moving plate. The four corners of the bottom of the moving plate are connected to the workbench through support springs. Circular ejector rods that are slidably matched with the circular through grooves are fixedly installed at the four corners of the top of the moving plate. A limiting component is arranged at the position of each circular through groove on the top of the C-shaped plate.
[0012] As a preferred technical solution of the present invention, the moving device includes a fixed rod, a structural plate, a rectangular block, a square plate, a clamping plate, a cylindrical rod, an annular plate, an electric telescopic rod, a swinging plate and a clamping component. Four fixed rods are fixedly installed on the top of the workbench. The transmission device and the fixing device are both located between the front and rear arranged fixed rods. A structural plate is fixedly installed on the tops of the four fixed rods. A sliding groove is opened at the center position of the bottom of the structural plate. A rectangular block is slidably connected in the sliding groove through an electric slider. The bottom of the rectangular block is fixedly installed with a square plate through a cylinder. Moving grooves are symmetrically opened on the left and right sides of the bottom of the square plate. Clamping plates are horizontally slidably connected in the moving grooves. A cylindrical rod is fixedly installed at the center position of the bottom of the square plate. An annular plate is slidably arranged on the cylindrical rod. The annular plate and the square plate are connected by an electric telescopic rod. Swing plates are respectively hinged to the left and right sides of the annular plate through pin shafts. The swing plates are respectively hinged to the opposite surfaces of the two clamping plates through pin shafts. A circular groove is opened at the bottom of the cylindrical rod. A clamping component is arranged on the cylindrical rod.
[0013] As a preferred technical solution of the present invention, the adjusting component includes a threaded rod, an adjusting plate, a first spring rod and a circular handle. The middle parts of the two limiting plates are both connected with the threaded rod through threads. After the two threaded rods pass through the limiting plates, they are both rotatably connected with an adjusting plate. The adjusting plate is located above the conveyor belt. The adjusting plate and the limiting plate are connected by a plurality of first spring rods. The opposite surfaces of the two threaded rods are fixedly installed with circular handles.
[0014] As a preferred technical solution of the present invention, the limiting component includes a fixing plate, a compression spring and a vertical plate. At the top of the U-shaped plate at each circular through-hole, fixing plates symmetric about the diagonal of the horizontal section of the U-shaped plate are fixedly installed. The opposite surfaces of the fixing plates at the same circular through-hole are fixedly installed with a vertical plate through a plurality of compression springs.
[0015] As a preferred technical solution of the present invention, the clamping component includes a wedge block, an arc-shaped clamping block and a second spring rod. A rectangular through-hole communicating with the circular groove is opened along the circumferential direction at the lower end of the cylindrical rod. A wedge block is slidably connected in the rectangular through-hole. Arc-shaped clamping blocks are fixedly installed at one ends of the wedge blocks located in the circular groove. The arc-shaped clamping blocks and the inner wall of the circular groove are connected by second spring rods. An anti-slip pad is fixedly installed at one end of the arc-shaped clamping block far away from the wedge block. The inner wall diameter of the annular plate has a conical structure that gradually decreases from bottom to top.
[0016] As a preferred technical solution of the present invention, rectangular grooves are opened on the opposite surfaces of the two adjusting plates, and rotating rollers are evenly rotatably arranged in the rectangular grooves from left to right.
[0017] Compared with the prior art, the present invention has the following advantages:
[0018] 1. A lightweight frame profile module composite wall provided by the present invention sets the U-shaped frame as an assembled structure, so that a frame with a suitable size can be quickly assembled according to actual needs, avoiding the phenomenon that the use range of lightweight profiles is reduced due to traditional fixed sizes.
[0019] 2. Through the processing equipment provided by the present invention, during the assembly of lightweight profiles, the limiting component can limit the lightweight profile frame to be assembled before docking, preventing inaccurate alignment during direct assembly and affecting the assembly effect of the lightweight profile frame.
[0020] 3. When the support truss on the fixing device is placed between two U-shaped frames to be assembled by the moving device provided by the present invention, the rapid assembly between the two U-shaped frames can also be implemented, further improving the working efficiency during the assembly of the lightweight profile frame.
[0021] 4. The fixing device provided in the present invention can limit and fix the support truss, preventing the support truss from moving, which is not conducive to the taking of the moving device.
[0022] 5. The clamping component provided in the present invention can quickly clamp and fix the mounting rod on the support truss. The anti-slip pad installed on the arc-shaped clamping block is used to increase the friction force, preventing slipping during the clamping of the mounting rod. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The present invention will be further described below in conjunction with the drawings and embodiments.
[0024] Figure 1 It is a three-dimensional structural schematic diagram of the lightweight frame profile module composite wall of the present invention.
[0025] Figure 2 It is a planar structural schematic diagram of the lightweight frame profile module composite wall of the present invention.
[0026] Figure 3 It is the present invention Figure 2 Partial enlarged view at M.
[0027] Figure 4 It is a first three-dimensional structural schematic diagram of the processing equipment of the present invention.
[0028] Figure 5 It is a second three-dimensional structural schematic diagram of the processing equipment of the present invention.
[0029] Figure 6 It is a partial cross-sectional view of the processing equipment of the present invention.
[0030] Figure 7 It is a main cross-sectional structural schematic diagram of the processing equipment of the present invention.
[0031] Figure 8 It is the present invention Figure 7 Partial enlarged view at N.
[0032] Figure 9 It is the present invention Figure 7 Cross-sectional view taken along the A-A direction.
[0033] Figure 10 It is the present invention Figure 7 Cross-sectional view taken along the B-B direction.
[0034] In the figure: 0, U-shaped frame; 1, spring telescopic rod; 2, spherical clamping bead; 3, mounting block; 4, support truss; 5, mounting rod; 6, workbench; 7, transmission device; 71, limit plate; 72, rotating rod; 73, transmission belt; 74, L-shaped plate; 75, intermittent motor; 76, adjustment component; 761, threaded rod; 762, adjustment plate; 763, first spring rod; 764, circular handle; 8, fixing device; 81, U-shaped plate; 82, electric push rod; 83, support spring; 84, moving plate; 85, circular ejector rod; 86, limit component; 861, fixing plate; 862, extrusion spring; 863, vertical upright plate; 9, moving device; 90, fixing rod; 91, structural plate; 92, rectangular block; 93, square plate; 94, clamping plate; 95, cylindrical rod; 96, annular plate; 97, electric telescopic rod; 98, swing plate; 99, clamping component; 991, wedge block; 992, arc-shaped clamping block; 993, second spring rod. Specific embodiments
[0035] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described.
[0036] Refer to Figure 1 , Figure 2 and Figure 3 , a lightweight frame profile module composite wall, including a U-shaped frame 0, a spring telescopic rod 1, a spherical clamping bead 2, a mounting block 3, a support truss 4 and a mounting rod 5. The U-shaped frame 0 is composed of two L-shaped plates and multiple connecting plates. A clamping groove is opened in one of the horizontal sections of the U-shaped frame 0. Circular grooves are symmetrically opened up and down in the clamping groove. A spherical clamping bead 2 is installed in the circular groove through a spring telescopic rod 1. A mounting block 3 that is matched with the clamping groove is fixedly installed on the other horizontal section of the U-shaped frame 0. Arc-shaped clamping grooves that are matched with the spherical clamping bead 2 are symmetrically opened up and down on the mounting block 3. A cross-shaped support truss 4 is arranged between the rectangular frames composed of two U-shaped frames 0. An installation rod 5 is arranged in the middle of the support truss 4. Wall panels are symmetrically installed at the front and rear ends of the installation rod 5.
[0037] Refer to Figure 4 , during the processing of the above lightweight frame profile module composite wall, it needs to be processed and assembled. The processing equipment includes a workbench 6, a transmission device 7, a fixing device 8 and a moving device 9. The transmission device 7, the fixing device 8 and the moving device 9 are arranged on the top of the workbench 6. The fixing device 8 is located behind the transmission device 7. The moving device 9 is located above the transmission device 7 and the fixing device 8.
[0038] Refer to Figure 4 and Figure 5, the described transmission device 7 includes a limiting plate 71, a rotating rod 72, a conveyor belt 73, an L-shaped plate 74, an intermittent motor 75 and an adjusting component 76. Symmetrically and fixedly installed on the front and rear sides of the top of the workbench 6 are limiting plates 71. Horizontally rotatably arranged between the two limiting plates 71 are two rotating rods 72. The two rotating rods 72 are drivingly connected by a conveyor belt 73. Fixedly installed on the limiting plate 71 at the rear side is an L-shaped plate 74. Fixedly installed on the L-shaped plate 74 is an intermittent motor 75. The output shaft of the intermittent motor 75 is fixedly connected to one of the rotating rods 72. An adjusting component 76 is arranged on the two limiting plates 71.
[0039] In the original state, first, single U-shaped frames 0 of appropriate sizes are spliced according to actual needs. After splicing, the adjusting component 76 is adaptively adjusted according to the size of the spliced U-shaped frame 0. By adjusting the adjusting component 76, the U-shaped frame 0 to be assembled can be limited. After the limiting, at this time, the U-shaped frames 0 to be assembled and processed are sequentially placed on the conveyor belt 73. At the same time, the support trusses 4 are placed in batches on the fixing device 8. After all are placed, the support trusses 4 are limited by the fixing device 8. Finally, the intermittent motor 75 is started. The intermittent motor 75 makes the rotating rod 72 drive the conveyor belt 73 to perform intermittent transportation. When the conveyor belt 73 drives the U-shaped frame 0 to be assembled to be transported below the moving device 9, the support trusses 4 on the fixing device 8 are placed between the two U-shaped frames 0 to be assembled by the moving device 9. At the same time, the two U-shaped frames 0 can be quickly assembled, thereby improving work efficiency.
[0040] Refer to Figure 6 , the described adjusting component 76 includes a threaded rod 761, an adjusting plate 762, a first spring rod 763 and a circular handle 764. The middle parts of the two limiting plates 71 are both connected by threads with threaded rods 761. After passing through the limiting plates 71, the two threaded rods 761 are rotatably connected to an adjusting plate 762. The adjusting plate 762 is located above the conveyor belt 73. The adjusting plate 762 and the limiting plate 71 are connected by a plurality of first spring rods 763. Fixedly installed on the opposite sides of the two threaded rods 761 are circular handles 764.
[0041] Refer to Figure 4 , rectangular grooves are formed on the opposite surfaces of the two adjusting plates 762. Rotating rollers are evenly rotatably arranged in the rectangular grooves from left to right.
[0042] First, adjust the distance between the two adjusting plates 762 according to the size of the spliced U-shaped frame 0. The adjustment process is as follows: Rotate the circular handle 764 manually or with existing tools. The circular handle 764 drives the threaded rod 761 to rotate. At this time, under the limit of the first spring rod 763, the two adjusting plates 762 move relative to each other. After adjustment, the open ends of the two U-shaped frames 0 to be assembled are placed symmetrically about the axis of the threaded rod 761 on the conveyor belt 73. Furthermore, the adjusting plates 762 can limit the U-shaped frame 0 to be spliced, avoiding the occurrence of the traditional inaccurate alignment phenomenon and preventing the two U-shaped frames 0 from being difficult to splice. The rotating rollers evenly arranged on the adjusting plates 762 can reduce the friction force on the U-shaped frame 0, and further facilitate the conveyor belt 73 to drive the U-shaped frame 0 to be spliced to move.
[0043] Refer to Figure 6 , the fixing device 8 includes a U-shaped plate 81, an electric push rod 82, a support spring 83, a moving plate 84, a circular ejector rod 85 and a limiting component 86. A U-shaped plate 81 with a downward opening is fixedly installed at a position near the rear side of the top of the workbench 6. Circular through grooves with the centers located on the diagonal line of the horizontal section of the U-shaped plate 81 are opened at the four corners of the top of the horizontal section of the U-shaped plate 81. An electric push rod 82 is fixedly installed at the position on the top of the workbench 6 directly opposite to the center of the top of the U-shaped plate 81. The top of the electric push rod 82 is fixedly installed with a moving plate 84. The four corners of the bottom of the moving plate 84 are connected to the workbench 6 through support springs 83. Circular ejector rods 85 that are slidably matched with the circular through grooves are fixedly installed at the four corners of the top of the moving plate 84. Limiting components 86 are arranged at the positions of each circular through groove on the top of the U-shaped plate 81.
[0044] First, place the cross-shaped support truss 4 in batches on the U-shaped plate 81. The cross-shaped support truss 4 is limited and fixed by the arranged limiting component 86 to prevent the support truss 4 from moving and being unfavorable for the moving device 9 to pick it up. When the moving device 9 picks up the support truss 4, start the electric push rod 82 at the same time. The electric push rod 82 drives the moving plate 84 to move upward, so that the moving plate 84 drives the circular ejector rod 85 to move upward. Multiple circular ejector rods 85 simultaneously push the support truss 4 upward, thus facilitating the picking up by the moving device 9.
[0045] Refer to Figure 9 , the limiting component 86 includes a fixing plate 861, a compression spring 862 and a vertical plate 863. Fixing plates 861 that are symmetric about the diagonal line of the horizontal section of the U-shaped plate 81 are fixedly installed at the positions of each circular through groove on the top of the U-shaped plate 81. A vertical plate 863 is fixedly installed between the opposite surfaces of the fixing plates 861 at the same circular through groove through multiple compression springs 862.
[0046] First, place the sides of the cross-shaped support truss 4 between each group of fixed plates 861. After placement, under the action of the compression spring 862, the vertical upright plate 863 always contacts the side wall of the support truss 4, thereby limiting the support truss 4 and preventing the support truss 4 from moving, which is not conducive to the taking of the moving device 9.
[0047] Refer to Figure 6 , Figure 7 and Figure 10 , the moving device 9 includes a fixed rod 90, a structural plate 91, a rectangular block 92, a square plate 93, a clamping plate 94, a cylindrical rod 95, an annular plate 96, an electric telescopic rod 97, a swing plate 98 and a clamping assembly 99. Four fixed rods 90 are fixedly installed on the top of the workbench 6. The transmission device 7 and the fixing device 8 are both located between the front and rear arranged fixed rods 90. A structural plate 91 is fixedly installed on the top of the four fixed rods 90. A sliding groove is opened at the center position of the bottom of the structural plate 91. A rectangular block 92 is slidably connected in the sliding groove through an electric slider. The bottom of the rectangular block 92 is fixedly installed with a square plate 93 through a cylinder. Moving grooves are symmetrically opened on the left and right sides of the bottom of the square plate 93. Clamping plates 94 are horizontally slidably connected in the moving grooves. A cylindrical rod 95 is fixedly installed at the center position of the bottom of the square plate 93. An annular plate 96 is slidably arranged on the cylindrical rod 95. The annular plate 96 and the square plate 93 are connected by an electric telescopic rod 97. Swing plates 98 are hinged on the left and right sides of the annular plate 96 through pin shafts. The swing plates 98 are respectively hinged to the opposite surfaces of the two clamping plates 94 through pin shafts. A circular groove is opened at the bottom of the cylindrical rod 95. A clamping assembly 99 is arranged on the cylindrical rod 95.
[0048] When starting the intermittent motor 75 to make the conveyor belt 73 drive the U-shaped frame 0 to be assembled for transportation, start the electric slider. The electric slider drives the rectangular block 92 to move backward in the sliding groove, so that the rectangular block 92 drives the cylinder to move to the center position of the fixing device 8. Then start the cylinder to move downward. The cylinder drives the square plate 93 to move downward. The square plate 93 makes the cylindrical rod 95 drive the clamping assembly 99 to be directly above the support truss 4. The circular groove is directly opposite to the mounting rod 5. At this time, start the electric telescopic rod 97. The electric telescopic rod 97 pushes the annular plate 96 to move downward. The mounting rod 5 on the support truss 4 can be quickly clamped and fixed through the clamping assembly 99. After clamping and fixing, the cylinder returns to its original position. At this time, the electric slider also moves to its original position, and then drives the clamped and fixed support truss 4 to be directly above the two U-shaped frames 0 to be assembled. At this time, the distance between the clamping plates 94 is greater than the total length of the two U-shaped frames 0 in the left-right direction, such as Figure 9As shown, when the cylinder is started again and moves downward, after moving the support truss 4 between the two U-shaped frames 0 that need to be assembled, the electric telescopic rod 97 is started to retract. The electric telescopic rod 97 drives the annular plate 96 to move upward. The annular plate 96 makes the swing plate 98 drive the left and right clamping plates 94 to move towards each other. The clamping plates 94 push the U-shaped frames 0 to move relatively, so that the two U-shaped frames 0 are quickly assembled. When placing the support truss 4, the operation of splicing the two U-shaped frames 0 is carried out at the same time, which further improves the assembly efficiency. After assembly, the conveyor belt 73 continues to move to the right, and finally, the U-shaped frame 0 and the support truss 4 are quickly welded.
[0049] Refer to Figure 8 , the clamping component 99 includes a wedge block 991, an arc-shaped clamping block 992 and a second spring rod 993. Rectangular through grooves communicating with the circular groove are uniformly arranged along the circumference at the lower end of the cylindrical rod 95. A wedge block 991 is slidably connected in the rectangular through groove. Arc-shaped clamping blocks 992 are fixedly installed at one ends of the wedge blocks 991 located in the circular groove. The arc-shaped clamping blocks 992 and the inner wall of the circular groove are connected by second spring rods 993. Anti-slip pads are fixedly installed at one ends of the arc-shaped clamping blocks 992 away from the wedge blocks 991. The inner wall diameter of the annular plate 96 has a conical structure that gradually decreases from bottom to top.
[0050] When the electric telescopic rod 97 is started to push the annular plate 96 to move downward, the inner wall of the annular plate 96 with a conical structure first contacts the inclined surface of the wedge block 991, and then simultaneously squeezes the wedge block 991 to move it into the circular groove, so that the wedge block 991 drives the arc-shaped clamping block 992 to quickly clamp and fix the mounting rod 5 on the support truss 4. The anti-slip pads installed on the arc-shaped clamping blocks 992 play a role in increasing the friction force, preventing slipping during the clamping process and being unfavorable for clamping the mounting rod 5. When the support truss 4 is placed and the mounting rod 5 is released, under the action of the second spring rod 993, the wedge block 991 returns to its original position.
[0051] During specific work:
[0052] First step, first splice a single U-shaped frame 0 of appropriate size according to actual needs. After splicing, place the cross-shaped support trusses 4 that need to be supported and fixed in batches on the U-shaped plate 81, and limit and fix the cross-shaped support trusses 4 through the set limit component 86.
[0053] Step 2: At this time, adjust the distance between the two adjusting plates 762 according to the size of the spliced U-shaped frame 0. The specific adjustment process is as follows: Rotate the circular handle 764 manually or with existing tools. The circular handle 764 drives the threaded rod 761 to rotate. At this time, under the limit of the first spring rod 763, the two adjusting plates 762 move relative to each other. After adjustment, place the open ends of the two U-shaped frames 0 to be assembled symmetrically left and right along the threaded rod 761 on the conveyor belt 73. Finally, start the intermittent motor 75, and the intermittent motor 75 makes the rotating rod 72 drive the conveyor belt 73 to perform intermittent transportation.
[0054] Step 3: When starting the intermittent motor 75, start the electric slider at the same time. The electric slider drives the rectangular block 92 to move backward in the sliding groove, so that the rectangular block 92 drives the air cylinder to move to the central position of the fixing device 8. Then start the air cylinder to move downward. The air cylinder drives the square plate 93 to move downward. The square plate 93 makes the cylindrical rod 95 drive the clamping component 99 to be directly above the support truss 4. The circular groove is directly opposite to the mounting rod 5. At this time, start the electric telescopic rod 97. The electric telescopic rod 97 pushes the annular plate 96 downward. Through the clamping component 99, the mounting rod 5 on the support truss 4 can be quickly clamped and fixed. After clamping and fixing, the air cylinder returns to its original position. At this time, the electric slider also moves to its original position, and then drives the clamped and fixed support truss 4 to be directly above the two U-shaped frames 0 that need to be assembled. At this time, the distance between the clamping plates 94 is greater than the total length of the two U-shaped frames 0 in the left and right directions. As Figure 9 shown, start the air cylinder to move downward again. After moving the support truss 4 between the two U-shaped frames 0 that need to be assembled, start the electric telescopic rod 97 to retract. The electric telescopic rod 97 drives the annular plate 96 to move upward. The annular plate 96 makes the swing plate 98 drive the two clamping plates 94 on the left and right to move towards each other. The clamping plates 94 push the U-shaped frames 0 to move relative to each other, so that the two U-shaped frames 0 are quickly assembled. The operation of splicing the two U-shaped frames 0 is carried out while placing the support truss 4, which further improves the assembly efficiency. After assembly, the conveyor belt 73 continues to move to the right, and finally quickly weld the U-shaped frame 0 and the support truss 4.
[0055] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. The descriptions in the above embodiments and the specification only illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A processing device for a lightweight frame profile module composite wall, the lightweight frame profile module composite wall comprising a U-shaped frame, characterized in that: The U-shaped frame is composed of two L-shaped plates and multiple connecting plates. One of the horizontal segments of the U-shaped frame is provided with a clamping groove, and circular grooves are symmetrically arranged up and down in the clamping groove. Spherical clamping beads are installed in the circular grooves through spring telescopic rods. An installation block matching the clamping groove is fixed on the other horizontal segment of the U-shaped frame, and arc-shaped clamping grooves matching the spherical clamping beads are symmetrically arranged up and down on the installation block. A cross-shaped support truss is arranged between the U-shaped frames forming a loop-shaped frame body. An installation rod is arranged in the middle of the support truss, and wall panels are symmetrically installed at the front and rear ends of the installation rod. The processing equipment includes a workbench. A transmission device, a fixing device, and a moving device are arranged on the top of the workbench. The fixing device is located behind the transmission device, and the moving device is located above the transmission device and the fixing device. The transmission device includes limiting plates symmetrically fixed on the front and rear sides of the top of the workbench. Two rotating rods are horizontally rotatably arranged between the two limiting plates. The two rotating rods are connected by a transmission belt. An L-shaped plate is fixed on the limiting plate located at the rear side, and an intermittent motor is fixed on the L-shaped plate. The output shaft of the intermittent motor is fixed to one of the rotating rods. An adjusting component is arranged on the two limiting plates. The fixing device includes a U-shaped plate with a downward opening fixed at a position near the rear side of the top of the workbench. Circular through grooves are opened at the four corners of the top of the horizontal segment of the U-shaped plate. An electric push rod is fixed on the top of the workbench and directly opposite the center of the top of the U-shaped plate. The top of the electric push rod is fixed with a moving plate. The four corners of the bottom of the moving plate are connected to the workbench through support springs. Circular top rods slidingly matched with the circular through grooves are fixed at the four corners of the top of the moving plate. A limiting component is arranged at the position of each circular through groove on the top of the U-shaped plate. The moving device includes four fixed rods fixed on the top of the workbench. The transmission device and the fixing device are both located between the front and rear arranged fixed rods. A structural plate is jointly fixed at the top of the four fixed rods. A sliding groove is opened at the center of the bottom of the structural plate. A rectangular block is slidably connected in the sliding groove through an electric slider. A square plate is fixed at the bottom of the rectangular block through a cylinder. Moving grooves are symmetrically opened on the left and right sides of the bottom of the square plate. Clamping plates are horizontally slidably connected in the moving grooves. A cylindrical rod is fixed at the center of the bottom of the square plate. An annular plate is slidably arranged on the cylindrical rod. The annular plate and the square plate are connected by an electric telescopic rod. Swing plates are respectively hinged to the left and right sides of the annular plate through pins. The swing plates are respectively hinged to the opposite surfaces of the two clamping plates through pins. A circular groove is opened at the bottom of the cylindrical rod. A clamping component is arranged on the cylindrical rod. The clamping component includes a wedge block. A rectangular through groove communicating with the circular groove is opened along the circumference at the lower end of the cylindrical rod. The wedge block is slidably connected in the rectangular through groove. Arc-shaped clamping blocks are fixed at one ends of the wedge blocks located in the circular groove. The arc-shaped clamping blocks and the inner wall of the circular groove are connected by second spring rods. Anti-slip pads are fixed at the ends of the arc-shaped clamping blocks far away from the wedge blocks. The inner wall diameter of the annular plate has a tapered structure gradually decreasing from bottom to top.
2. The processing equipment for a lightweight frame profile module composite wall according to claim 1, characterized in that: The described adjustment component includes a threaded rod. Both of the described limiting plates are threadedly connected with a threaded rod. The opposite surfaces of the two threaded rods after passing through the limiting plates are rotatably connected with an adjustment plate. The adjustment plate is located above the conveyor belt. The adjustment plate and the limiting plate are connected by a plurality of first spring rods. The opposite surfaces of the two threaded rods are fixed with circular handles.
3. The processing equipment for a lightweight frame profile module composite wall according to claim 1, characterized in that: The described limiting component includes a fixed plate. At the top of the U-shaped plate at each circular through-hole, fixed plates symmetric about the diagonal of the horizontal section of the U-shaped plate are provided. The opposite surfaces of the fixed plates at the same circular through-hole are fixed with vertical standing plates through a plurality of compression springs.
4. The processing equipment for a lightweight frame profile module composite wall according to claim 2, characterized in that: Rectangular grooves are formed in the opposite surfaces of the two adjustment plates. Rotating rollers are evenly arranged in the rectangular grooves from left to right in a rotatable manner.
Citation Information
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