Quick jointed board assembling device and using method

The quick assembly device for magnetic panels, designed with a gear transmission system and assembly arm, solves the problem of precise splicing and stable assembly of magnetic panels in the complex environment of ships, and realizes flexible adjustment and height compensation, thereby improving assembly quality and safety.

CN120862162APending Publication Date: 2025-10-31JIANGSU YANGZI XINFU SHIPBUILDING CO LTD
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Patent Information

Application Number
CN202510985780.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-17
Publication Date
2025-10-31

AI Technical Summary

Technical Problem

In the field of shipbuilding and repair, magnetic panels are difficult to use for precise splicing and stable assembly on complex hull structures, resulting in splicing gaps, angular deviations, and assembly instability, which affect assembly quality and safety.

Method used

A quick assembly device for magnetic panels was designed. Utilizing a gear transmission system and an assembly arm, the device achieves precise adjustment of the angle and position of the magnetic panels by driving the gears to rotate via a motor and adjusting the cylinders, thus adapting to the splicing needs of complex shapes and structures.

Benefits of technology

It improves the assembly flexibility and stability of magnetic panels, ensures that the splices are on the same horizontal plane, adapts to irregular surfaces in marine environments, and enhances assembly quality and safety.

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Abstract

The invention belongs to the field of ship manufacturing and maintenance, and particularly discloses a rapid jointed board assembling device and a using method.The rapid jointed board assembling device comprises a support, a supporting seat is fixed to one side of the support through a connecting rod, a pressure support is fixedly connected to the center of the top of the supporting seat, and an adjusting knob is arranged above the pressure support; an adjusting cushion block is arranged below the pressure support, a through hole is formed in the pressure support, a bevel gear transmission mechanism is arranged in the through hole, one end of the bevel gear transmission mechanism is connected with the adjusting cushion block, and the other end of the bevel gear transmission mechanism is connected with the adjusting knob; an assembling assembly is fixed to the lower portion of the adjusting cushion block and comprises a control box, a first air cylinder is fixed to the inner side wall of the control box, the output end of the first air cylinder is connected with a first rack, one end face of the rack is fixed to the output end of the first air cylinder, and a first gear and a second gear are meshed with the first rack. The problems that in the splicing process of the magnetic jointed board, adsorption is not accurate, and the splicing position is dislocated are effectively solved.
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Description

Technical Field

[0001] This invention belongs to the field of welding tooling technology, specifically relating to a quick assembly device for panel assembly and its usage method. Background Technology

[0002] In the field of shipbuilding and repair, magnetic panels, as a material with unique advantages, are gradually gaining wider application. Marine magnetic panels are commonly used for interior decoration, equipment installation and positioning, temporary structure construction, and rapid assembly operations in some special scenarios. Thanks to their magnetic properties, they can easily adhere to the surface of the ship's metal structure without the need for complex fixing devices, greatly improving construction flexibility and efficiency.

[0003] However, the assembly of magnetic panels in marine environments faces numerous unique challenges. Firstly, the complex and diverse hull structures of ships, with significant differences in shape, curvature, and spatial layout across different parts, necessitate that the magnetic panels adapt to various irregular surfaces and spatial conditions during assembly, achieving precise splicing and positioning. However, in practice, due to the lack of effective auxiliary devices, it is difficult for the magnetic panels to perfectly fit the hull surface, easily leading to gaps, angular deviations, and other problems that affect assembly quality and overall aesthetics.

[0004] Secondly, ships are subjected to various complex external forces during navigation, such as the impact of waves and ship vibrations, which places extremely high demands on the assembly stability of magnetic panels. If the magnetic panels are not securely fixed to the hull during assembly, they are prone to displacement or detachment under external forces, which can damage the panels themselves and threaten the normal operation of the ship and the safety of its equipment. Existing assembly methods often cannot guarantee the long-term stability of magnetic panels under complex working conditions and fail to meet the high standards of ship use.

[0005] Therefore, a quick assembly device and method for magnetic panels are proposed to effectively solve problems such as inaccurate adsorption and misalignment at the joints encountered during the splicing process, and to achieve precise adjustment of the angle and position of the magnetic panels. Summary of the Invention

[0006] The purpose of this invention is to provide a quick assembly device and method for using panels to solve the problems mentioned in the background art.

[0007] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a quick assembly device for splicing panels and a method of use, including a bracket, a support base fixed to one side of the bracket by a connecting rod, a pressure bracket fixedly connected to the top center of the support base, an adjustment knob provided above the pressure bracket, an adjustment pad provided below the pressure bracket, a through hole provided on the pressure bracket, a bevel gear transmission mechanism provided in the through hole, one end of the bevel gear transmission mechanism being connected to the adjustment pad, and the other end being connected to the adjustment knob;

[0008] An assembly component is fixed below the adjusting pad. The assembly component includes a control box. A cylinder is fixed to the inner wall of the control box. The output end of the cylinder is connected to a rack. The end face of the rack is fixed to the output end of the cylinder. A gear and a gear are meshed on the rack. The gear and gear are rotatably connected to the control box via a connecting shaft. The gear is based on the side of the gear away from the cylinder. A rotating rod is fixed to the center of the side of the gear. The rotating rod moves in a circle around the gear. A rotating groove is provided on the control box. The other end of the rotating rod is slidably connected in the rotating groove.

[0009] Two assembly arms are installed on one side of the control box, including assembly arm one and assembly arm two. Assembly arm one is equipped with assembly block one, and assembly block one is equipped with a telescopic assembly shaft and assembly rod. The end of the assembly shaft is hinged to a magnetic plate, and the assembly rod is reset by spring two. Assembly arm two is equipped with assembly block two, which is driven to rotate by a motor and synchronously raised and lowered by a gear transmission mechanism.

[0010] The present invention further describes that the assembly block 1 has a plurality of teeth on the side away from the support rod 1, the assembly block 1 has an installation groove 1 inside, and a plurality of installation holes 1 and installation holes 2 are evenly distributed through the assembly block 1 below the installation groove 1. The plurality of installation holes 1 and installation holes 2 are alternately distributed. An assembly shaft is provided in the installation hole 1. One end of the assembly shaft is located in the installation groove 1 and is fixed with a hinge block. The other end extends to the outside of the assembly block 1 and is hinged with a magnetic plate. The magnetic plate is used to attract magnetic panels. A balance plate is slidably connected above the hinge block. The balance plate keeps the plurality of hinge blocks on the same plane.

[0011] The present invention further describes that a second mounting groove is provided on the outer diameter of the second mounting hole, and a sliding hole is provided between the second mounting groove and the adjacent first mounting hole. A limit rod is provided in the second mounting groove. One end of the limit rod is located in the second mounting groove and fixed with a limit block, and the other end passes through the sliding hole and is hinged with a tapered tooth. The tapered tooth fits against the end face of the limit rod.

[0012] The present invention further illustrates that the upper end of the limiting rod near the conical tooth has a notch, the hinge point of the conical tooth is located in the notch, and a spring four is fixed between the limiting rod and the conical tooth, the spring four being used for resetting.

[0013] The present invention further illustrates that an opening is provided on the outer diameter of the assembly rod, the opening cooperates with the limiting block, a spring three is fixed between the limiting block and the mounting groove two, and the spring three is sleeved on the outer diameter of the limiting rod; a tapered groove is provided on the outer diameter of the assembly shaft, and the tapered groove is adapted to the tapered teeth.

[0014] The present invention further illustrates that an opening is provided on the outer diameter of the assembly rod, the opening cooperates with the limiting block, a spring three is fixed between the limiting block and the second mounting groove, and the spring three is sleeved on the outer diameter of the assembly rod; a tapered groove is provided on the outer diameter of the assembly shaft, and the tapered groove is adapted to the tapered teeth.

[0015] The present invention further illustrates that the second assembly arm includes a second support plate, the second support plate is fixed to the first gear via a connecting shaft, and a second cylinder is fixed to the side of the second support plate away from the first assembly arm via a telescopic rod. A rotating plate is fixed to the output end of the second cylinder, and the rotating plate is fixed to the rotating rod via a connecting rod.

[0016] The present invention further describes that a fixing plate and a rack are fixed below the cylinder 2. A support rod 2 is slidably connected to the side wall of the fixing plate. A rack 3 is fixed to the inner wall of the support rod 2. The rack 3 is arranged opposite to the rack 2. A gear 3 meshes with the bottom of the rack 3. The center of the gear 3 is fixed to the support rod 2 through a connecting rod. A gear 4 meshes with the other side of the gear 3. A motor is fixed to the center of the gear 4. The motor is used to drive the gear 4 to rotate. An assembly block 2 is fixed to the other end of the gear 4. The assembly block 2 and the assembly block 1 have the same structure and are arranged opposite to each other.

[0017] The present invention further illustrates that, located above the gear three, the rack two and the rack three are respectively meshed with gear five and gear six, and the gear five and the gear six are meshed with each other in a staggered manner.

[0018] The present invention further explains that two magnetic panels are placed below a magnetic plate. The adjustment knob is rotated, and the adjustment pad is lowered through the bevel gear transmission mechanism, causing the assembly to move down. When the magnetic plate contacts the panels, the adjustment knob is stopped. The magnetic plate is powered on to generate magnetism, and cylinder two is started. Its fixed end moves toward support plate two. Through support rod two and magnetic plate, one magnetic panel moves to the other. After successful assembly, cylinder two is stopped.

[0019] If the two panels are not assembled horizontally, turn the adjustment knob again to lower the adjustment pad. When the magnetic plate contacts the panel, stop turning the adjustment knob, turn on the power, turn the adjustment knob to raise the adjustment pad, start the motor to drive the second assembly block and the magnetic plate to rotate, thereby driving the magnetic panel to rotate to the required angle. At the same time, by moving the second support rod downwards, the panel moves up and down, so that the splicing point is on the same horizontal plane.

[0020] If the upper surface of the assembly plate is not horizontal, turn the adjustment knob to lower the adjustment pad. One end of the magnetic plate will first contact the assembly plate. Continue to move the second assembly block downward. The assembly shaft will drive the hinge block to move upward. After the magnetic plate fully contacts the assembly plate, continue to move the assembly assembly downward. The length of the assembly shaft will become shorter. After the assembly rod contacts the assembly plate, it will move upward. The limit block will be squeezed out of the opening on the outer diameter of the assembly rod, which will drive the conical teeth into the conical groove, restricting the downward movement of the assembly shaft. Turn on the power and turn the adjustment knob to raise the adjustment pad. The magnetic assembly plate will rise in a horizontal state.

[0021] After the two magnetic panels are assembled, the power to the magnetic panels is turned off. Under the action of spring one, the conical groove moves upward relative to the conical teeth, and the assembly rod moves downward under the action of spring two. The limiting block re-enters the opening on the outer diameter of the assembly rod.

[0022] Compared with existing technologies, the beneficial effects achieved by this invention are as follows: the gear transmission system and assembly arm design in the assembly assembly allow the device to flexibly adjust the splicing angle of the magnetic panels. By driving the gears with a motor, the assembly blocks and magnetic plates rotate, enabling splicing of two magnetic panels at any angle, meeting the needs of various complex shapes and structures in the marine field. Whether it's straight-line splicing, oblique-angle splicing, or splicing at special angles, it can all be easily achieved, greatly improving the flexibility and adaptability of assembly.

[0023] During assembly, when two magnetic panels are not horizontally aligned, the device automatically performs height compensation. Through gear transmission, a rack and pinion moves, causing one of the magnetic panels to move up or down, ensuring that the joint between the two panels is precisely on the same horizontal plane. This function effectively solves the splicing difficulties caused by irregular hull structures or uneven panel surfaces, improving assembly quality and precision, and reducing the possibility of rework later.

[0024] When the upper surface of the magnetic panel is inclined, the assembly shaft and assembly rod of the device are designed to automatically adapt to this inclination. The assembly shaft is retractable under pressure, and the assembly rod can move upward when in contact with the magnetic panel. The assembly shaft is prevented from moving downward through the engagement of a limiting rod and tapered teeth. Simultaneously, during the upward movement, the magnetic panel remains horizontal, ensuring the stability and accuracy of the assembly. This feature allows the device to better adapt to the complex and varied surface conditions in marine environments, improving its practicality and reliability. Attached Figure Description

[0025] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:

[0026] Figure 1 This is a schematic diagram of the overall structure and operation of an embodiment of the present invention;

[0027] Figure 2 This is a schematic diagram of the bevel gear transmission mechanism according to an embodiment of the present invention;

[0028] Figure 3 This is a schematic diagram of the internal structure of the control box according to an embodiment of the present invention;

[0029] Figure 4 This is an embodiment of the present invention. Figure 1 A schematic diagram of the structure of region A;

[0030] Figure 5 This is a schematic diagram of the assembly arm structure of the present invention;

[0031] Figure 6 This is an embodiment of the present invention. Figure 5 A schematic diagram of the structure of region B;

[0032] Figure 7 This is a schematic diagram of the internal structure of the assembly block 1 according to an embodiment of the present invention;

[0033] Figure 8 This is an embodiment of the present invention. Figure 7 A schematic diagram of the C region structure;

[0034] Figure 9 This is an embodiment of the present invention. Figure 8 A schematic diagram of the structure of region D.

[0035] In the diagram: 1. Bracket; 2. Support base; 3. Pressure bracket; 301. Through hole; 4. Adjusting pad; 5. Adjusting knob; 6. Bevel gear transmission mechanism; 7. Assembly component; 701. Control box; 702. Cylinder 1; 703. Rack 1; 704. Gear 1; 705. Gear 2; 706. Rotating rod; 707. Rotating groove; 8. Assembly arm; 801. Assembly arm 1; 8011. Support plate 1; 8012. Support rod 1; 8013. Assembly block 1; 80131. Mounting hole 1; 80132. Mounting hole 2; 80133. Assembly shaft; 80134. Spring 1; 80135. Mounting groove 1; 80136. Hinge block; 80137. Magnetic plate; 80138. Assembly Rod; 80139, Sliding plate; 80140, Balance plate; 80141, Spring 2; 80142, Mounting groove 2; 80143, Limiting rod; 80144, Limiting block; 80145, Conical tooth; 80146, Sliding hole; 80147, Spring 3; 80148, Conical groove; 80149, Notch; 80150, Spring 4; 802, Assembled arm 2; 8021, Support plate 2; 8022, Cylinder 2; 8023, Rotating plate; 8024, Support rod 2; 8025, Rack 2; 8026, Rack 3; 8027, Gear 3; 8028, Gear 4; 8029, Assembled block 2; 8030, Gear 5; 8031, Gear 6; 804, Fixing plate. Detailed Implementation

[0036] The following detailed, non-limiting description of the technical solution of the present invention, in conjunction with preferred embodiments and accompanying drawings, is provided. Obviously, the described embodiments are merely some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.

[0037] Please see Figure 1-9 The present invention provides a technical solution: a quick assembly device for interlocking panels and a method for using it, comprising a bracket 1.

[0038] like Figure 1 and Figure 2As shown, in some embodiments, the bracket 1 is a height-adjustable lifting bracket. A support base 2 is fixed to one side of the bracket 1 via a connecting rod. The support base 2 supports the device body. A pressure bracket 3 is fixedly connected to the top center of the support base 2. An adjustment knob 5 is located above the pressure bracket 3, and an adjustment pad 4 is located below the pressure bracket 3. A through hole 301 is provided on the pressure bracket 3, and a bevel gear transmission mechanism 6 is installed within the through hole 301. One end of the bevel gear transmission mechanism 6 is connected to the adjustment pad 4, and the other end is connected to the adjustment knob 5. Rotating the adjustment knob 5 drives the adjustment pad 4 to rise or fall via the bevel gear transmission mechanism 6.

[0039] like Figure 1 and Figure 3 As shown, in some embodiments, an assembly assembly 7 is fixed below the adjusting pad 4. The assembly assembly 7 includes a control box 701. A cylinder 702 is fixed to the inner wall of the control box 701. The output end of the cylinder 702 is connected to a rack 703. The end face of the rack 703 is fixed to the output end of the cylinder 702. A gear 704 and a gear 705 are meshed on the rack 703. The gear 704 and the gear 705 are rotatably connected to the control box 701 through a connecting shaft. The gear 705 is based on the side of the gear 704 away from the cylinder 702. A rotating rod 706 is fixed at the center of one side of the gear 705. The rotating rod 706 makes a circular motion around the gear 705. A rotating groove 707 is provided on the control box 701. The other end of the rotating rod 706 is slidably connected in the rotating groove 707. The rotating groove 707 is used to limit the sliding range of the rotating rod 706.

[0040] like Figures 4-6 As shown, in some embodiments, two assembly arms 8 are installed on one side of the control box 701. The assembly arm 8 includes an assembly arm 1 801 and an assembly arm 2 802. The assembly arm 1 801 includes a support plate 1 8011, which is fixed to the control box 701. A support rod 1 8012 is fixed below the support plate 1 8011, and an assembly block 1 8013 is fixed on the support rod 1 8012 near the assembly arm 2 802.

[0041] like Figures 7-9As shown, in some embodiments, the assembly block 8013 has a plurality of teeth on the side away from the support rod 8012. An installation groove 80135 is formed inside the assembly block 8013. A plurality of installation holes 80131 and 80132 are evenly distributed through the assembly block 8013 below the installation groove 80135. The installation holes 80131 and 80132 are alternately distributed. A [further details are needed for accurate translation]. The assembly shaft 80133 is a telescopic structure. One end of the assembly shaft 80133 is located in the mounting groove 80135 and is fixed with a hinge block 80136. The other end extends to the outside of the assembly block 8013 and is hinged with a magnetic plate 80137. The magnetic plate 80137 is used to attract magnetic panels. A balance plate 80140 is slidably connected above the hinge block 80136. The balance plate 80140 keeps several hinge blocks 80136 on the same plane.

[0042] An assembly rod 80138 is slidably connected in the second mounting hole 80132. One end of the assembly rod 80138 is located in the first mounting groove 80135 and a sliding plate 80139 is fixed thereon. The sliding plate 80139 is located below the hinge block 80136, and the other end extends to the outside of the first assembly block 8013. A second spring 80141 is sleeved on the outer diameter of the assembly rod 80138. The second spring 80141 is used to reset the assembly rod 80138.

[0043] A second mounting groove 80142 is provided on the outer diameter of the second mounting hole 80132. A sliding hole 80146 is provided between the second mounting groove 80142 and the adjacent first mounting hole 80131. A limit rod 80143 is provided in the second mounting groove 80142. One end of the limit rod 80143 is located in the second mounting groove 80142 and is fixed with a limit block 80144. The other end passes through the sliding hole 80146 and is hinged with a conical tooth 80145. The conical tooth 80145 is in contact with the end face of the limit rod 80143.

[0044] It should be further explained that: the upper end of the limiting rod 80143 near the conical tooth 80145 has a notch 80149, the hinge point of the conical tooth 80145 is located in the notch 80149, and a spring 80150 is fixed between the limiting rod 80143 and the conical tooth 80145, the spring 80150 being used for resetting.

[0045] When the conical tooth 80145 enters the conical groove 80148, the conical tooth 80145 restricts the movement of the assembly shaft 80133, preventing the assembly shaft 80133 from moving downward relative to the conical tooth 80145. When the assembly shaft 80133 moves upward relative to the conical tooth 80145, the conical tooth 80145 will rotate relative to the limiting rod 80143.

[0046] An opening is provided on the outer diameter of the assembly rod 80138, which cooperates with the limiting block 80144. A spring 80147 is fixed between the limiting block 80144 and the mounting groove 80142, and the spring 80147 is sleeved on the outer diameter of the limiting rod 80143.

[0047] A tapered groove 80148 is provided on the outer diameter of the assembly shaft 80133, and the tapered groove 80148 is adapted to the tapered tooth 80145.

[0048] A spring 80134 is sleeved on the outer diameter of the assembly shaft 80133. One end of the spring 80134 is fixed to the sliding plate 80139, and the other end is fixed to the inner wall of the mounting groove 80135.

[0049] The second assembly arm 802 includes a second support plate 8021, which is fixed to the first gear 704 via a connecting shaft. A second cylinder 8022 is fixed to the side of the second support plate 8021 away from the first assembly arm 801 via a telescopic rod. A rotating plate 8023 is fixed to the output end of the second cylinder 8022, and the rotating plate 8023 is fixed to the rotating rod 706 via a connecting rod.

[0050] A fixing plate 804 and a rack 8025 are fixed below the cylinder 2 8022. A support rod 8024 is slidably connected to the side wall of the fixing plate 804. A rack 3 8026 is fixed to the inner wall of the support rod 2 8024. The rack 3 8026 is arranged opposite to the rack 2 8025. A gear 3 8027 is meshed at the bottom of the rack 3 8026. The center of the gear 3 8027 is fixed to the support rod 2 8024 through a connecting rod. A gear 4 8028 is meshed on the other side of the gear 3 8027. A motor is fixed to the center of the gear 4 8028. The motor is used to drive the gear 4 8028 to rotate. An assembly block 2 8029 is fixed to the other end of the gear 4 8028. The assembly block 2 8029 and the assembly block 1 8013 have the same structure and are arranged opposite to each other.

[0051] Located above the gear three 8027, the rack two 8025 and the rack three 8026 are respectively meshed with the gear five 8030 and the gear six 8031, which are staggered vertically.

[0052] By starting the motor, the gear four 8028 is driven to rotate, which in turn drives the assembly block two 8029 to rotate. As the assembly block two 8029 rotates, it drives the magnetic plate 80137 located directly below it to rotate. The magnetic plate 80137 drives the magnetic panel connected to it to rotate until the magnetic panel rotates to the required angle between it and the other magnetic panel. Because one of the magnetic panels rotates, the splicing points of the two magnetic panels are not on the same horizontal plane.

[0053] While gear four 8028 drives assembly block two 8029 to rotate, gear four 8028 meshes with gear three 8027, causing gear three 8027 to rotate. Gear three 8027 drives rack three 8026 to move. Rack three 8026 drives rack two 8025 to move through gear five 8030 and gear six 8031. Since rack two 8025 is fixedly connected to cylinder two 8022, support rod two 8024 moves downward relative to rack two 8025. Support rod two 8024 slides on fixed plate 804, thereby driving one of the magnetic panels to move upward or downward. After assembly block two 8029 has rotated, the splicing point of the two magnetic panels is exactly on the same horizontal plane.

[0054] Working principle: When two magnetic panels need to be assembled, the two magnetic panels are placed under the two magnetic plates 80137. By rotating the adjustment knob 5, the adjustment pad 4 is driven down through the bevel gear transmission mechanism 6. The adjustment pad 4 drives the assembly component 7 to move downward. When the magnetic plate 80137 contacts the surface of the magnetic panel, the adjustment knob 5 is stopped.

[0055] When the magnetic plate 80137 is powered on, it generates magnetism, and the cylinder 8022 is activated. The cylinder extends through its output end. Since the rotating plate 8023 is fixed, the fixed end of the cylinder 8022 moves toward the support plate 8021, and the length of the telescopic rod decreases.

[0056] The fixed end of the second cylinder 8022 drives the magnetic panel located directly below the second support rod 8024 to move towards another magnetic panel through the second support rod 8024 and the magnetic plate 80137. When the two magnetic panels come into contact and are successfully assembled, the second cylinder 8022 stops.

[0057] When the two magnetic panels are not horizontally assembled, rotating the adjustment knob 5 causes the adjustment pad 4 to descend via the bevel gear transmission mechanism 6. The adjustment pad 4 then causes the assembly assembly 7 to move downward. When the magnetic plate 80137 contacts the surface of the magnetic panel, the rotation of the adjustment knob 5 is stopped.

[0058] When the magnetic plate 80137 is powered on, it generates magnetism. Then, the adjustment knob 5 is rotated again. By rotating the adjustment knob 5, the adjustment pad 4 is driven to rise through the bevel gear transmission mechanism 6. The adjustment pad 4 drives the assembly component 7 to move upward. After the assembly component 7 has moved upward a certain distance, the adjustment knob 5 is stopped.

[0059] By starting the motor, the gear four 8028 is driven to rotate, which in turn drives the assembly block two 8029 to rotate. As the assembly block two 8029 rotates, it drives the magnetic plate 80137 located directly below it to rotate. The magnetic plate 80137 drives the magnetic panel connected to it to rotate until the magnetic panel rotates to the required angle between it and the other magnetic panel. Because one of the magnetic panels rotates, the splicing points of the two magnetic panels are not on the same horizontal plane.

[0060] While gear four 8028 drives assembly block two 8029 to rotate, gear four 8028 meshes with gear three 8027, causing gear three 8027 to rotate. Gear three 8027 drives rack three 8026 to move. Rack three 8026 drives rack two 8025 to move through gear five 8030 and gear six 8031. Since rack two 8025 is fixedly connected to cylinder two 8022, support rod two 8024 moves downward relative to rack two 8025. Support rod two 8024 slides on fixed plate 804, thereby driving one of the magnetic panels to move upward or downward. After assembly block two 8029 has rotated, the splicing point of the two magnetic panels is exactly on the same horizontal plane.

[0061] When the upper surfaces of the two magnetic panels are not horizontal, rotating the adjustment knob 5 causes the adjustment pad 4 to descend via the bevel gear transmission mechanism 6. The adjustment pad 4 causes the assembly assembly 7 to move downward. When the magnetic plate 80137 contacts the surface of the magnetic panel, due to the inclination of the upper surface of the magnetic panel, one end of the magnetic plate 80137 contacts the magnetic panel first. As the assembly block 8029 continues to move downward, the magnetic plate 80137 and the magnetic panel are pressed together. The assembly shaft 80133 corresponding to one end of the magnetic plate 80137 moves upward. The assembly shaft 80133 causes the hinge block 80136, which is hinged to it, to move upward.

[0062] When the magnetic plate 80137 is fully in contact with the magnetic panel, the assembly assembly 7 continues to move downward. The length of the assembly shaft 80133 shortens under pressure. When the assembly rod 80138 contacts the magnetic panel, an interaction force is generated between the assembly rod 80138 and the magnetic panel. The assembly rod 80138 moves upward under the action of the force. During the upward movement of the assembly rod 80138, the limiting block 80144 and the opening on the outer diameter of the assembly rod 80138 generate a squeezing force. The limiting block 80144 is squeezed out of the opening under the squeezing force. The limiting block 80144 drives the conical tooth 80145 into the conical groove 80148 through the limiting rod 80143, preventing the assembly shaft 80133 from moving downward relative to the conical tooth 80145.

[0063] When the magnetic plate 80137 is powered on, the adjustment knob 5 is rotated to drive the adjustment pad 4 to rise through the bevel gear transmission mechanism 6. Since the position of the assembly shaft 80133 is restricted by the bevel gear 80145, the magnetic panel remains horizontal as a whole during the rising process.

[0064] After the two magnetic panels are assembled, the power to the magnetic plate 80137 is turned off. Since there is no gravity effect from the two magnetic panels, the conical groove 80148 moves upward relative to the conical teeth 80145 under the action of the first spring 80134. Since the limiting rod 80143 is not in contact with the magnetic panels, the limiting rod 80143 moves downward under the action of the second spring 80141, and the limiting block 80144 re-enters the opening on the outer diameter of the assembly rod 80138.

[0065] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this invention, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention.

[0066] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features, and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the technology and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A quick assembly device for panels, comprising a support frame (1), characterized in that: The bracket (1) has a support base (2) fixed on one side by a connecting rod. The support base (2) has a pressure bracket (3) fixedly connected to the top center. An adjustment knob (5) is provided above the pressure bracket (3). An adjustment pad (4) is provided below the pressure bracket (3). A through hole (301) is provided on the pressure bracket (3). A bevel gear transmission mechanism (6) is provided in the through hole (301). One end of the bevel gear transmission mechanism (6) is connected to the adjustment pad (4), and the other end is connected to the adjustment knob (5). An assembly assembly (7) is fixed below the adjusting pad (4). The assembly assembly (7) includes a control box (701). A cylinder (702) is fixed to the inner wall of the control box (701). The output end of the cylinder (702) is connected to a rack (703). The end face of the rack (703) is fixed to the output end of the cylinder (702). A gear (704) and a gear (705) mesh on the rack (703). (705) is rotatably connected to the control box (701) via a connecting shaft. The second gear (705) is based on the side of the first gear (704) away from the first cylinder (702). A rotating rod (706) is fixed at the center of one side of the second gear (705). The rotating rod (706) makes a circular motion with the second gear (705) as the center. A rotating groove (707) is provided on the control box (701). The other end of the rotating rod (706) is slidably connected in the rotating groove (707). Two assembly arms (8) are installed on one side of the control box (701), including assembly arm one (801) and assembly arm two (802). Assembly arm one (801) is provided with assembly block one (8013). Assembly block one (8013) is provided with a telescopic assembly shaft (80133) and assembly rod (80138). The end of the assembly shaft (80133) is hinged to a magnetic plate (80137). The assembly rod (80138) is reset by spring two (80141). Assembly arm two (802) is provided with assembly block two (8029). Assembly block two (8029) is driven to rotate by a motor and the synchronous lifting and lowering of the assembly blocks is realized through a gear transmission mechanism.

2. The quick assembly device for panels according to claim 1, characterized in that: The first assembly block (8013) has several teeth on the side away from the first support rod (8012). The first assembly block (8013) has an installation groove (80135) inside. Below the first installation groove (80135), several first installation holes (80131) and second installation holes (80132) are evenly distributed through the first assembly block (8013). The first installation holes (80131) and second installation holes (80132) are alternately distributed. The first installation hole (80131) contains… An assembly shaft (80133) is provided. One end of the assembly shaft (80133) is located in the mounting groove (80135) and a hinge block (80136) is fixed thereon. The other end extends to the outside of the assembly block (8013) and is hinged to a magnetic plate (80137). The magnetic plate (80137) is used to attract magnetic panels. A balance plate (80140) is slidably connected above the hinge block (80136). The balance plate (80140) makes several hinge blocks (80136) lie on the same plane.

3. The quick assembly device for panels according to claim 2, characterized in that: The second mounting hole (80132) has a second mounting groove (80142) on its outer diameter. A sliding hole (80146) is provided between the second mounting groove (80142) and the adjacent first mounting hole (80131). A limit rod (80143) is provided in the second mounting groove (80142). One end of the limit rod (80143) is located in the second mounting groove (80142) and fixed with a limit block (80144). The other end passes through the sliding hole (80146) and is hinged with a conical tooth (80145). The conical tooth (80145) fits against the end face of the limit rod (80143).

4. The quick assembly device for panels according to claim 3, characterized in that: The limiting rod (80143) has a notch (80149) at its upper end near the conical tooth (80145). The hinge point of the conical tooth (80145) is located in the notch (80149). A spring four (80150) is fixed between the limiting rod (80143) and the conical tooth (80145), and the spring four (80150) is used for resetting.

5. The quick assembly device for panels according to claim 4, characterized in that: An opening is provided on the outer diameter of the assembly rod (80138), which cooperates with the limiting block (80144). A spring (80147) is fixed between the limiting block (80144) and the second mounting groove (80142). The spring (80147) is sleeved on the outer diameter of the limiting rod (80143). A tapered groove (80148) is provided on the outer diameter of the assembly shaft (80133), which is adapted to the tapered tooth (80145).

6. The quick assembly device for panels according to claim 5, characterized in that: A spring (80134) is sleeved on the outer diameter of the assembly shaft (80133). One end of the spring (80134) is fixed to the sliding plate (80139), and the other end is fixed to the inner wall of the mounting groove (80135).

7. A quick assembly device for panels according to claim 6, characterized in that: The second assembly arm (802) includes a second support plate (8021), which is fixed to the first gear (704) via a connecting shaft. A second cylinder (8022) is fixed to the side of the second support plate (8021) away from the first assembly arm (801) via a telescopic rod. A rotating plate (8023) is fixed to the output end of the second cylinder (8022), and the rotating plate (8023) is fixed to the rotating rod (706) via a connecting rod.

8. The quick assembly device for panels according to claim 7, characterized in that: A fixing plate (804) and a rack (8025) are fixed below the cylinder 2 (8022). A support rod (8024) is slidably connected to the side wall of the fixing plate (804). A rack (8026) is fixed to the inner wall of the support rod (8024). The rack (8026) is arranged opposite to the rack (8025). A gear (8027) meshes with the bottom of the rack (8026). 7) The center is fixed to the second support rod (8024) via a connecting rod. The third gear (8027) is meshed with the fourth gear (8028) on the other side. The fourth gear (8028) has a motor fixed at its center. The motor is used to drive the fourth gear (8028) to rotate. The other end of the fourth gear (8028) is fixed with the second assembly block (8029). The second assembly block (8029) and the first assembly block (8013) have the same structure and are arranged opposite to each other.

9. A quick assembly device for panels according to claim 8, characterized in that: Located above the gear three (8027), the rack two (8025) and rack three (8026) are respectively meshed with gear five (8030) and gear six (8031), and the gear five (8030) and gear six (8031) are meshed in a staggered manner.

10. The method of using the quick assembly device for panel assembly according to claim 9, characterized in that: Place the two magnetic panels below the magnetic plate (80137), rotate the adjustment knob (5), and the adjustment pad (4) will be lowered through the bevel gear transmission mechanism (6), so that the assembly component (7) moves down. When the magnetic plate (80137) contacts the panel, stop rotating the adjustment knob (5), turn on the power of the magnetic plate (80137) to generate magnetism, start the cylinder two (8022), and its fixed end moves towards the support plate two (8021). Through the support rod two (8024) and the magnetic plate (80137), one magnetic panel moves to the other. After the assembly is successful, stop the cylinder two (8022). If the two panels are not horizontally assembled, turn the adjustment knob (5) again to lower the adjustment pad (4). When the magnetic plate (80137) contacts the panel, stop turning the adjustment knob (5), turn on the power, turn the adjustment knob (5) to raise the adjustment pad (4), start the motor to drive the second assembly block (8029) and the magnetic plate (80137) to rotate, thereby driving the magnetic panel to rotate to the required angle. At the same time, by moving the second support rod (8024) downwards, the panel moves up and down, so that the splicing point is on the same horizontal plane. If the upper surface of the panel is not horizontal, turn the adjustment knob (5) to lower the adjustment pad (4), and one end of the magnetic plate (80137) will first contact the panel. Continue to move the second assembly block (8029) downward. The assembly shaft (80133) will drive the hinge block (80136) to move upward. After the magnetic plate (80137) is fully in contact with the panel, continue to move the assembly assembly (7) downward. The length of the assembly shaft (80133) will become shorter. After the assembly rod (80138) contacts the panel, it will move upward. The limiting block (80144) will be squeezed out of the opening on the outer diameter of the assembly rod (80138), which will drive the conical tooth (80145) into the conical groove (80148) and restrict the assembly shaft (80133) from moving downward. Turn on the power and turn the adjustment knob (5) to raise the adjustment pad (4). The magnetic panel will rise in a horizontal state. After the two magnetic panels are assembled, the power to the magnetic plate (80137) is turned off. Under the action of spring one (80134), the conical groove (80148) moves upward relative to the conical teeth (80145), and the assembly rod (80138) moves downward under the action of spring two (80141). The limiting block (80144) re-enters the opening on the outer diameter of the assembly rod (80138).