A quick splicing method for stainless steel water tank machine splicing

By using a support-positioning splicing machine base and a precise positioning structure in the splicing of stainless steel water tanks, the problem of positional offset during the splicing of stainless steel plates was solved, achieving fast and stable splicing and welding results.

CN118180760BActive Publication Date: 2025-11-04JIANGXI LONGHE NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202410464082.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-04-17
Publication Date
2025-11-04
Estimated Expiration
2044-04-17

AI Technical Summary

Technical Problem

Existing stainless steel water tanks are inconvenient to align at flat or right angles during assembly, which can easily lead to positional misalignment, affecting the welding effect and flatness. Furthermore, it is difficult to control the accuracy of the splicing position of the stainless steel plates according to welding requirements, resulting in uneven splicing surfaces.

Method used

The splicing machine base is designed for easy support and positioning. It combines structures such as telescopic frames, support frames, moving frames, and rotating frames. Through the cooperation of suction heads and nesting parts, it can achieve precise positioning and angle adjustment of stainless steel plates, ensuring the accuracy and stability of splicing.

Benefits of technology

It improves the speed and versatility of stainless steel water tank splicing, ensures flat splicing surfaces, prevents positional displacement, and enhances welding stability and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a quick splicing stainless steel water tank machine splicing method, which is provided with a splicing machine base facilitating support positioning, and the upper surface of the splicing machine base is telescopically connected with a telescopic frame; the quick splicing stainless steel water tank machine splicing method comprises the following: a fixing rod is installed at the rear side of the outer surface of the telescopic frame, the inner surface middle section of the telescopic frame is screw-adjusted with a moving plate, and the outer surface left and right sides of the moving plate are rotationally connected with angle rods. The quick splicing stainless steel water tank machine splicing method is provided with the splicing machine base, cooperates with the support frame of the turnover adjustment, can form a right angle or a flat angle state between the two groups of support frames, can control the position of the rotating frame on the moving frame and the assembled adsorption support, stably cooperates with the adsorption head to form adsorption positioning on the stainless steel plate, and the two groups of supports can form quick alignment and butt joint use of the stainless steel plate, facilitate positioning welding work, and improve the splicing speed of the stainless steel water tank.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of stainless steel water tank machine splicing, in particular to a stainless steel water tank machine splicing method with rapid splicing. BACKGROUND

[0002] The stainless steel water tank can be used as a water storage device for storing and supplying domestic water, which is assembled by a plurality of food-grade stainless steel material plates and is welded and sealed, and the support components are assembled inside to prevent deformation and have excellent corrosion resistance and strength, and is widely used in residential, commercial and industrial fields, and the stainless steel water tank can be customized with different specifications and capacities according to customer needs, and the common ones are square and round shapes, but there are still some problems in the existing stainless steel water tank when splicing.

[0003] In the prior art, the authorized publication (announcement) number: CN211966483U "stainless steel plate welding auxiliary device" wherein, including base, side plate, guide block, upper plate and clamping assembly; The side plate specifically has two blocks, and they are perpendicular to each other; The upper plate is connected with the base through a cylinder, a motion cylinder is arranged on the upper plate, the clamping assembly is movably connected with the upper plate through the piston rod of the motion cylinder, a clamping piece is arranged on the clamping assembly, a placing channel is arranged between the side plate and the guide block, a gas hole and a gas pipe joint are arranged on the side plate, the gas hole and the gas pipe joint are communicated, the clamping assembly corresponds in position to the placing channel, the two side plates are separated, and a positioning cylinder is arranged on the base.

[0004] During the operation of the above device, the labor intensity is reduced, the work efficiency is improved, the consistency of the weld is improved, thereby improving the consistency of the water tank, and the production cost is saved, but when in use, it is not convenient to align the plane or right angle, which is easy to cause position deviation during splicing of the stainless steel plate, affecting the welding effect and the flatness of the stainless steel water tank.

[0005] In the prior art, the authorized publication (announcement) number: CN216990638U "seamless welding device for stainless steel water tank" wherein, including a first base and a second base, the first base and the second base are provided with a height adjusting device at the upper end, the height adjusting device is provided with a supporting plate at the upper end, the supporting plate is provided with a rotating device at the upper end, the rotating device is provided with a movable adjusting plate at the upper end, the movable adjusting plate is provided with a fixed seat at the upper end left and right.

[0006] In the prior art, the authorized publication (announcement) number: CN218874209U "stainless steel water tank production welding device" in which, including side frame fixed assembly, the side frame fixed assembly is provided with two, the side frame fixed assembly includes a right angle side frame, both ends of the outside of the right angle side frame are rotatably installed with a rotating rod, the rotating rod is installed with a fixed shell outside, one side of the fixed shell outside is provided with a vacuum chuck, two the side frame fixed assembly is provided with a track pipe between the two, the front and rear ends of the track pipe outside are installed with a side disc, the side disc and the right angle side frame are fixedly connected through a connecting block, one side of the track pipe outside is provided with a sliding and fixing assembly, the sliding and fixing assembly is installed with an electric welder inside;

[0007] In the process of working of the above device, the welding device is installed at the right angle needing welding by using the fixed structure, then the electric welder is translated for welding by cooperating with the track structure, the stability and efficiency of welding are improved, but in use, it is inconvenient to control the splicing position accuracy of the stainless steel plate according to the welding requirements, the position deviation between the stainless steel plates is prone to occur, and the splicing surface of the water tank appears concave-convex. SUMMARY

[0008] The purpose of the present application is to provide a quick splicing stainless steel water tank machine splicing method to solve the problems of inconvenient alignment of the plane or right angle, easy position deviation of the stainless steel plate during splicing, affecting the welding effect and flatness of the stainless steel water tank, inconvenient control of the splicing position accuracy of the stainless steel plate according to the welding requirements, and easy position deviation between the stainless steel plates, causing the splicing surface of the water tank to appear concave-convex.

[0009] To achieve the above purpose, the present application provides the following technical scheme: a quick splicing stainless steel water tank machine splicing method is provided, which is provided with a splicing machine base convenient for supporting and positioning, and the upper surface of the splicing machine base is telescopically connected with a telescopic frame;

[0010] It comprises: a fixed rod installed on the outer surface of the rear side of the telescopic frame, a moving plate is threadedly adjusted in the middle of the inner surface of the telescopic frame, angle rods are rotatably connected to the outer surface of the moving plate on both sides, a support frame is rotatably connected to the outer surface of the other end of the angle rod, and is located on the side of the outer surface of the support frame, and the outer surface of the support frame is rotatably connected at one end, and is rotatably connected to the outer surface of the rear side of the fixed rod;

[0011] A threaded rod is rotatably connected to the inside of the support frame, a moving block is slidably connected to the inner surface of the support frame, a threaded rod is threadedly connected to the inner surface of the moving block, and a moving frame is installed on the outer surface of the moving block;

[0012] A pinion is rotatably connected to the inner surface of the moving frame at an inclined corner, and the outer surface of the pinion is connected with a gear at an inclined lower corner, and the gear is nested and rotated in the inner surface of the moving frame, and the outer surface of the gear is provided with a rotating frame;

[0013] A limiting groove is formed in the middle of the inner surface of the rotating frame, and the inner surface of the rotating frame is slidably connected with a sliding block, and the outer surface of the sliding block is provided with an adsorption support, and the inner surface of the adsorption support is rotatably connected with a straight gear;

[0014] A telescopic rack is connected to the outer surface of the straight gear at left and right sides in a relative engagement, and is limited and slid in the inner surface of the adsorption support, and the inner surface of the telescopic rack is nested and slidably connected with a nesting piece, and the inner surface of the nesting piece is snap-fitted and installed with an adsorption tube, and the outer surface of the adsorption tube is provided with an adsorption head, and the outer surface of the adsorption head is adsorptively connected with a stainless steel plate.

[0015] Preferably, the telescopic frame is embeddedly installed on the outer surface of the fixed rod, and the telescopic frame forms a sliding rotating structure with the moving plate and the angle rod, and the angle rod forms a positioning rotating structure with the support frame arranged opposite to the fixed rod.

[0016] Through the above structure, the support frame is formed to adjust the angle and control the angle of the adsorbed stainless steel plate, and the distance between the flat angle and the straight angle can be effectively adjusted.

[0017] Preferably, the support frame forms a threaded adjusting sliding structure with the moving block through the threaded rod, and the moving block is embeddedly installed on the outer surface of the moving frame at upper and lower sides, and the moving frame forms an embedded engagement rotating structure with the gear through the pinion, and the gear forms an integrated structure with the rotating frame.

[0018] Through the above structure, the position of the moving frame can be stably controlled during use, and the distance of the moving frame can be finely adjusted according to the angle adjustment of the support frame, and the distance of the moving frame can be controlled according to the flat angle setting of the support frame and the size of the stainless steel plate, and the moving frame can be rotated to meet the stability of the size adjustment and placement of the stainless steel.

[0019] Preferably, the inner surface of the rotating frame is rotatably connected with a turntable, the outer surface of the turntable is rotatably connected with a connecting rod, the outer surface of the connecting rod is rotatably connected with the adsorption support at the other end, and the inner surface of the rotating frame is provided with a sliding groove.

[0020] Through the above structure, the adsorption support can be effectively and stably connected to improve the stability of the adsorption support and control the distance adjustment therebetween.

[0021] Preferably, the rotating disc is connected with the rotating frame and the large gear through a shaft to form a rotating structure, and the rotating disc is connected with the adsorption support through a connecting rod to form a linkage rotating structure, and the adsorption support is symmetrically arranged about the middle section of the outer surface of the rotating disc, and the sliding groove is symmetrically arranged about the rear side of the inner surface of the rotating frame.

[0022] Through the above structure, the spacing between the adsorption supports can be effectively adjusted during use, and the stability of the adsorption supports during use can be adjusted by the sliding groove.

[0023] Preferably, the limiting groove is symmetrically arranged about the middle section of the inner surface of the rotating frame, and the rotating frame is connected with the motor on the adsorption support through the limiting groove to form a limiting sliding structure, and the adsorption support is connected with the rotating frame through the sliding block and the sliding groove to form a limiting sliding structure.

[0024] Through the above structure, the stability of the adsorption supports during spacing adjustment can be improved, and the motor used alone by the adsorption supports can be prevented from causing position interference, thereby improving the use effect.

[0025] Preferably, the adsorption support is connected with the telescopic rack through the spur gear to form a meshing adjustment telescopic structure, the telescopic rack is connected with the nested part to form a sliding limiting structure, the nested part is connected with the adsorption pipe to form an embedded clamping structure, and the adsorption pipe is connected with the stainless steel plate through the adsorption head to form a positioning adsorption structure.

[0026] Through the above structure, the nested part can be conveniently installed during use, different adsorption modes can be quickly replaced, and when used in a threaded sealing assembly type water tank, the nested part can be clamped to a positioning hole to improve the positioning effect and the use effect of the nested part.

[0027] Preferably, the outer surface of the telescopic rack is provided with a locking assembly, the locking assembly is internally connected with a return spring, one side of the outer surface of the return spring is connected with a clamping block, and the outer surface of the clamping block is clamped with the nested part.

[0028] Through the above structure, the nested part can be conveniently installed during use, different adsorption modes can be quickly replaced, and when used in a threaded sealing assembly type water tank, the nested part can be clamped to a positioning hole to improve the positioning effect and the use effect of the nested part.

[0029] Preferably, the locking assembly and the telescopic rack form an integrated structure, the locking assembly is connected with the clamping block through the return spring to form an elastic sliding structure, and the clamping block is connected with the nested part to form a limiting clamping.

[0030] Through the above structure, the nested part can be conveniently installed during use, different adsorption modes can be quickly replaced, and when used in a threaded sealing assembly type water tank, the nested part can be clamped to a positioning hole to improve the positioning effect and the use effect of the nested part.

[0031] Preferably, the method comprises the following steps:

[0032] S1: the base of the splicing machine is moved to a specified position, and after the stainless steel plate is adsorbed, the height of the fixed rod mounted on the telescopic frame and the support frame connected with the fixed rod is adjusted, and the angle of the support frame is controlled by the angle rod controlled by the telescopic frame to move the plate to adapt to the butt joint of the end of the stainless steel plate at different angles, so that the position of the base of the splicing machine is adjusted to form a splicing with the upper part of the welded stainless steel plate;

[0033] S2: when the angle of the support frame is adjusted, the angle of the rotating frame on the moving frame can be controlled by the threaded rod, and the rotating frame can be controlled by the meshing between the pinion and the gear to prevent the rotation of the rotating frame from affecting the rotation of the rotating frame, and the position of the adsorption support can be controlled by the rotating disc adjusting connecting rod according to the size of the stainless steel plate, and the adsorption support can be prevented from being deviated by the cooperation of the sliding block and the sliding groove;

[0034] S3: while adjusting the distance between the adsorption supports, the rotation of the straight toothed gear on the adsorption support can control the distance between the nested parts of the relatively arranged telescopic rack assembly and the adsorption heads mounted thereon, and form stable adsorption on the stainless steel plate, and cooperate with the telescopic frame, the support frame, the moving frame and the rotating frame to control the splicing position of the stainless steel plate.

[0035] Compared with the prior art, the beneficial effects of the present application are:

[0036] 1. The quick splicing stainless steel water tank machine splicing method is provided with a splicing machine base, a support frame for overturning adjustment, a rotating frame on the moving frame, and an adsorption support assembled thereby, and the adsorption heads stably cooperate to adsorb and position the stainless steel plate, and the two groups of supports can quickly align and butt joint the stainless steel plate for positioning and welding work, thereby improving the splicing speed of the stainless steel water tank.

[0037] 2. The quick splicing stainless steel water tank machine splicing method is provided with a support frame for straight angle or flat angle control for easy point rotation adjustment, which can be used for splicing of stainless steel plates at different angles, improving the diversity of welding, and the cooperation of the threaded rod and the moving block of the support frame assembly can effectively control the translation of the rotating frame on the moving frame, and the cooperation of the rotating disc and the connecting rod on the rotating frame can control the distance between the adsorption supports, and the distance between the adsorption heads of the single-sided adsorption support can be adjusted.

[0038] 3. The quick splicing stainless steel water tank machine splicing method is provided with detachable adsorption heads, is stably assembled on a nesting piece, and is slidably and clippably installed between the nesting piece and the telescopic rack, so that the stability of the nesting piece in use can be effectively improved, the central axis of the relative adjustment adsorption head is vertically arranged in the same plane, position deviation caused by adsorption of the stainless steel plate is prevented, and the adsorption head can be detached and replaced with other adsorption structures or diagonal support structures. BRIEF DESCRIPTION OF DRAWINGS

[0039] Figure 1 It is a three-dimensional structure schematic view of the splicing machine base of the present application.

[0040] Figure 2 It is a three-dimensional structure schematic view of the splicing machine base of the present application.

[0041] Figure 3 It is a three-dimensional structure schematic view of the folding support frame of the present application.

[0042] Figure 4 It is a three-dimensional structure schematic view of the moving frame of the present application.

[0043] Figure 5 It is a three-dimensional structure schematic view of the rotating frame of the present application.

[0044] Figure 6 It is a three-dimensional structure schematic view of the rotating disc of the present application.

[0045] Figure 7 It is a three-dimensional structure schematic view of the adsorption support frame of the present application.

[0046] In the figure: 1, splicing machine base; 2, telescopic frame; 3, fixed rod; 4, moving plate; 5, angle rod; 6, support frame; 7, threaded rod; 8, moving block; 9, moving frame; 10, pinion; 11, gear; 12, rotating frame; 1201, rotating disc; 1202, connecting rod; 1203, sliding groove; 13, limiting groove; 14, adsorption support frame; 15, sliding block; 16, straight toothed gear; 17, telescopic rack; 1701, locking assembly; 1702, return spring; 1703, clamping block; 18, nesting piece; 19, adsorption pipe; 20, adsorption head; 21, stainless steel plate. DETAILED DESCRIPTION

[0047] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0048] Please refer to Figures 1-7The application provides a quick splicing stainless steel water tank machine splicing method, which is characterized in that a splicing machine base 1 is arranged to facilitate support positioning, and the upper surface of the splicing machine base 1 is telescopically connected with a telescopic frame 2.

[0049] The fixing rod 3 is installed at the rear side of the outer surface of the telescopic frame 2, the inner surface middle section of the telescopic frame 2 is threadedly adjusted with a moving plate 4, the outer surface left and right sides of the moving plate 4 are rotatably connected with angle rods 5, the outer surface other end of the angle rods 5 is rotatably connected with support frames 6, the outer surface side edges of the support frames 6 are rotatably connected with each other and rotatably connected to the rear side of the outer surface of the fixing rod 3.

[0050] The screw rod 7 is rotatably connected to the inner portion of the support frame 6, the inner surface of the support frame 6 is slidably connected with a moving block 8, the inner surface of the moving block 8 is threadedly connected with the screw rod 7, and the outer surface of the moving block 8 is installed with a moving frame 9.

[0051] The pinion 10 is rotatably connected to the inner surface bevel of the moving frame 9, the outer surface bevel lower corner of the pinion 10 is meshingly connected with a gear wheel 11, the gear wheel 11 is nested and rotated in the inner surface of the moving frame 9, and the outer surface rear side of the gear wheel 11 is installed with a rotating frame 12.

[0052] The telescopic frame 2 and the fixing rod 3 are embeddedly installed on the outer surfaces, the telescopic frame 2 forms a sliding rotation structure with the moving plate 4 and the angle rod 5, and the angle rod 5 forms a positioning rotation structure with the fixing rod 3 and the oppositely arranged support frame 6.

[0053] The support frame 6 forms a thread-adjusted sliding structure with the screw rod 7 and the moving block 8, the outer surfaces of the moving block 8 and the moving frame 9 are embeddedly installed on the upper and lower sides, the moving frame 9 forms an embedded meshing rotation structure with the pinion 10 and the gear wheel 11, and the gear wheel 11 and the rotating frame 12 form an integrated structure.

[0054] In use, the splicing machine base 1 is moved to the corresponding position, and the height of the telescopic frame 2 on the splicing machine base 1 is controlled according to the use, and the suction head 20 on the telescopic frame 2 is matched to form suction positioning on the stainless steel plate 21, and the motor control screw rod on the telescopic frame 2 is adjusted to limit the sliding adjustment of the moving plate 4, and the angle rod 5 is driven by the moving plate 4 to adjust the positioning rotation of the support frame 6 on the fixed rod 3, and the support frame 6 is formed in a relative arrangement, and according to the same point rotation, the angle of the support frame 6 can be controlled, which can be adjusted between the angle interval of flat angle and right angle, and when the interval of the support frame 6 is adjusted, the motor on the support frame 6 can be started to effectively drive the threaded rod 7 to adjust the moving block 8 on the moving frame 9 to form limit sliding adjustment, so as to control the rotation frame 12 assembled on the moving frame 9 and the stainless steel plate 21 adsorbed by the suction head 20 arranged on the rotation frame 12 to move in position, and when the length and width of the stainless steel plate 21 on the rotation frame 12 are deflected, the motor assembled on the moving frame 9 can be controlled to adjust the output shaft to rotate the small gear 10 inside the moving frame 9, and the large gear 11 installed on the rotation frame 12 is engaged to form angle adjustment, so as to effectively control the position and angle of the stainless steel plate 21 and improve the stability of splicing;

[0055] The limiting groove 13 is opened in the middle segment of the inner surface of the rotation frame 12, the inner surface of the rotation frame 12 is slidably connected with the sliding block 15, and the outer surface of the sliding block 15 is provided with the suction support 14, and the inner surface of the suction support 14 is rotatably connected with the straight gear 16;

[0056] The telescopic rack 17 is connected to the outer surface of the straight gear 16 on the left and right sides in a relative engagement manner, and is limited to slide on the inner surface of the suction support 14, the inner surface of the telescopic rack 17 is slidably connected with the nesting piece 18, and the inner surface of the nesting piece 18 is clamped and mounted with the suction pipe 19, and the outer surface of the suction pipe 19 is provided with the suction head 20, and the outer surface of the suction head 20 is adsorbed with the stainless steel plate 21.

[0057] The inner surface of the rotation frame 12 is rotatably connected with the rotating disc 1201, the outer surface of the rotating disc 1201 is rotatably connected with the connecting rod 1202, the outer surface of the other end of the connecting rod 1202 is rotatably connected with the suction support 14, and the inner surface of the rotation frame 12 is provided with the sliding groove 1203.

[0058] The rotating disc 1201 and the large gear 11 form a rotating structure through a shaft, the rotating disc 1201 and the suction support 14 form a linkage rotating structure through the connecting rod 1202, and the suction support 14 is symmetrically arranged about the middle segment of the outer surface of the rotating disc 1201, and the sliding groove 1203 is symmetrically opened about the rear side of the inner surface of the rotation frame 12.

[0059] The limiting groove 13 is symmetrically opened in the middle section of the inner surface of the rotating frame 12, and the rotating frame 12 forms a limiting sliding structure with the electric mechanism on the adsorbing support 14 through the limiting groove 13, and the adsorbing support 14 forms a limiting sliding structure with the rotating frame 12 through the sliding block 15 and the sliding groove 1203.

[0060] The adsorbing support 14 forms a meshing adjusting telescopic structure with the telescopic rack 17 through the straight toothed gear 16, the telescopic rack 17 forms a sliding limiting structure with the nested part 18, and the nested part 18 forms an embedded clamping structure with the adsorbing pipe 19, and the adsorbing pipe 19 forms a positioning adsorbing structure with the stainless steel plate 21 through the adsorbing head 20.

[0061] The outer surface of the telescopic rack 17 is provided with a locking assembly 1701, the locking assembly 1701 is internally connected with a return spring 1702, the outer surface of the return spring 1702 is connected with a clamping block 1703, and the outer surface of the clamping block 1703 is clamped with the nested part 18.

[0062] The locking assembly 1701 forms an integrated structure with the telescopic rack 17, the locking assembly 1701 forms an elastic sliding structure with the clamping block 1703 through the return spring 1702, and the clamping block 1703 forms a limiting clamping with the nested part 18.

[0063] A quick splicing stainless steel water tank machine splicing method, comprising the following steps

[0064] First step: move the splicing machine base 1 to the designated position, and then adjust the height of the fixed rod 3 installed on the telescopic frame 2 and the support frame 6 connected with the fixed rod 3, and control the angle of the support frame 6 by the angle rod 5 driven by the moving plate 4 controlled by the telescopic frame 2, so as to adapt to the butt joint use of the end part of the stainless steel plate 21 with different angles, so as to adjust the position of the splicing machine base 1 and form a splicing use with the upper part of the welded stainless steel plate 21.

[0065] Second step: when adjusting the angle of the support frame 6, the angle of the rotating frame 12 on the moving frame 9 can be controlled by the threaded rod 7, the rotating frame 12 can be controlled in stability by the meshing between the pinion 10 and the gear 11 between the moving frame 9 and the rotating frame 12, the rotation of the rotating disc 1201 on the rotating frame 12 is prevented from being affected, and the position of the adsorbing support 14 can be controlled according to the size of the stainless steel plate 21, and the adsorbing support 14 is prevented from being deviated by the cooperation of the sliding block 15 and the sliding groove 1203.

[0066] Third step: while adjusting the distance between the adsorption supports 14, the rotation of the straight gear 16 on the adsorption support 14 can control the distance between the nested parts 18 assembled by the telescopic rack 17 and the adsorption heads 20 installed on the adsorption tube 19, and form stable adsorption on the stainless steel plate 21, and cooperate with the telescopic support 2, the supporting frame 6, the moving frame 9 and the rotating frame 12 to control the splicing position of the stainless steel plate 21.

[0067] When the stainless steel plate 21 is adsorbed by the components on the rotating frame 12, the adsorption heads 20 on the rotating frame 12 can be controlled according to the size of the stainless steel plate 21, and the motor assembled in the middle of the rotating frame 12 can be adjusted to control the output shaft to adjust the rotating disc 1201 to form rotation, thereby driving the connecting rod 1202 to control the distance between the adsorption supports 14, and when the adsorption supports 14 move, the installed sliding block 15 can effectively form limit sliding in the sliding groove 1203 opened in the rotating frame 12, and when the adsorption supports 14 are limited and adjusted, the separate motor used for installation can form limit sliding on the inner surface of the limit slot 13 opened in the rotating frame 12, preventing the movement of the adsorption supports 14 from being affected, and when the distance between the adsorption supports 14 is adjusted, the motor on the adsorption supports 14 can also be controlled to drive the straight gear 16 built-in the adsorption supports 14 to rotate, thereby controlling the telescopic rack 17 connected by the straight gear 16 to form staggered adjustment, driving the nested parts 18 assembled by the telescopic rack 17 to form adsorption heads 20 installed on the adsorption tube 19 to form positioning adsorption on the stainless steel plate 21, and when the nested parts 18 are used, the locking assembly 1701 installed on the telescopic rack 17 and the elastic control clamping block 1703 cooperating with the return spring 1702 can form clamping positioning on the nested parts 18, improve the stability of the nested parts 18, and improve the position accuracy when the stainless steel plate 21 is spliced.

[0068] The contents not described in detail in the specification belong to the prior art known to those skilled in the art.

[0069] Although the embodiments of the present application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to the embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.

Claims

1. A quick-assembly stainless steel water tank machine, which is provided with an assembly machine base (1) for easy support and positioning, and the upper surface of the assembly machine base (1) is telescopically connected with a telescopic frame (2). Its features are, include: The fixed rod (3) is installed on the rear side of the outer surface of the telescopic frame (2), and the middle section of the inner surface of the telescopic frame (2) is threaded with a movable plate (4), and the left and right sides of the outer surface of the movable plate (4) are rotatably connected with angle rods (5). At the same time, the other end of the outer surface of the angle rod (5) is rotatably connected with a support frame (6), and is located on the side of the outer surface of the support frame (6). One end of the outer surface of the support frame (6) is rotatably connected to each other and rotatably connected to the rear side of the outer surface of the fixed rod (3). A threaded rod (7) is rotatably connected to the inside of the support frame (6), and a movable block (8) is slidably connected to the inner surface of the support frame (6). A threaded rod (7) is threadedly connected to the inner surface of the movable block (8), and a movable frame (9) is installed on the outer surface of the movable block (8). The small gear (10) is rotatably connected to the inner surface of the movable frame (9) at an angle, and the outer surface of the small gear (10) is meshed with the large gear (11) at the lower angle, and the large gear (11) is nested and rotated on the inner surface of the movable frame (9), and a rotating frame (12) is installed on the rear side of the outer surface of the large gear (11). The inner surface of the rotating frame (12) is rotatably connected to a turntable (1201), and the outer surface of the turntable (1201) is rotatably connected to a connecting rod (1202). The other end of the outer surface of the connecting rod (1202) is rotatably connected to an adsorption bracket (14), and a sliding groove (1203) is provided on the inner surface of the rotating frame (12). The turntable (1201) forms a rotating structure with the rotating frame (12) and the large gear (11) through the shaft, and the turntable (1201) forms a linkage rotating structure with the adsorption bracket (14) through the connecting rod (1202). The adsorption bracket (14) is symmetrically arranged about the middle section of the outer surface of the turntable (1201), and the slide groove (1203) is symmetrically opened about the rear side of the inner surface of the rotating frame (12). A limiting groove (13) is opened in the middle section of the inner surface of the rotating frame (12), and a slider (15) is slidably connected to the inner surface of the rotating frame (12), and an adsorption bracket (14) is installed on the outer surface of the slider (15). At the same time, a spur gear (16) is rotatably connected to the inner surface of the adsorption bracket (14). The telescopic rack (17) is meshed with the left and right sides of the outer surface of the spur gear (16) and limits the telescopic rack (17) to slide on the inner surface of the adsorption bracket (14). The inner surface of the telescopic rack (17) is nested and slidably connected with a nesting piece (18), and the inner surface of the nesting piece (18) is fitted with an adsorption tube (19). At the same time, the outer surface of the adsorption tube (19) is fitted with an adsorption head (20), and the outer surface of the adsorption head (20) is adsorbed and connected with a stainless steel plate (21).

2. The rapid assembly stainless steel water tank machine according to claim 1, characterized in that: The telescopic frame (2) and the fixed rod (3) are embedded in the outer surface of the telescopic frame (2) and the fixed rod (3). The telescopic frame (2) forms a sliding rotating structure with the angle rod (5) through the moving plate (4). The angle rod (5) forms a positioning rotating structure with the support frame (6) arranged opposite to it through the fixed rod (3).

3. The rapid assembly stainless steel water tank machine according to claim 1, characterized in that: The support frame (6) forms a sliding structure for thread adjustment with the moving block (8) through the threaded rod (7), and the moving block (8) and the moving frame (9) are embedded on the upper and lower sides of their outer surfaces. The moving frame (9) forms an embedded meshing rotation structure with the small gear (10) and the large gear (11), while the large gear (11) and the rotating frame (12) form an integrated structure.

4. The rapid assembly stainless steel water tank machine according to claim 1, characterized in that: The limiting groove (13) is symmetrically opened about the middle section of the inner surface of the rotating frame (12), and the rotating frame (12) forms a limiting sliding structure with the motor on the adsorption bracket (14) through the limiting groove (13), and the adsorption bracket (14) forms a limiting sliding structure with the rotating frame (12) through the slider (15) and the sliding groove (1203).

5. The rapid assembly stainless steel water tank machine according to claim 1, characterized in that: The adsorption bracket (14) forms a telescopic structure for meshing adjustment through a spur gear (16) and a telescopic rack (17), and the telescopic rack (17) and the nesting piece (18) form a sliding limiting structure, and the nesting piece (18) and the adsorption tube (19) form a built-in locking structure. At the same time, the adsorption tube (19) forms a positioning adsorption structure through the adsorption head (20) and the stainless steel plate (21).

6. The rapid assembly stainless steel water tank machine according to claim 1, characterized in that: The outer surface of the telescopic rack (17) is fitted with a locking assembly (1701), and the locking assembly (1701) is internally connected with a return spring (1702). A locking block (1703) is attached to one side of the outer surface of the return spring (1702), and a nesting piece (18) is engaged with the outer surface of the locking block (1703).

7. The rapid assembly stainless steel water tank machine according to claim 6, characterized in that: The locking assembly (1701) and the telescopic rack (17) form an integrated structure, and the locking assembly (1701) forms an elastic sliding structure with the locking block (1703) through the return spring (1702), and the locking block (1703) and the nesting piece (18) form a limiting engagement.

8. A method for rapidly assembling stainless steel water tanks by machine according to claim 1, comprising the following steps: S1: Move the splicing machine base (1) to the designated position, and after adsorbing the stainless steel plate (21), adjust the height of the fixed rod (3) installed on the telescopic frame (2) and the support frame (6) connected to the fixed rod (3), and control the angle of the support frame (6) to rotate at a fixed point according to the angle rod (5) driven by the control plate (4) of the telescopic frame (2) to adapt to the end docking of the stainless steel plate (21) at different angles, thereby adjusting the position of the splicing machine base (1) to form a splicing with the upper part of the welded stainless steel plate (21); S2: When the support frame (6) is adjusted, the angle of the rotating frame (12) on the moving frame (9) can be controlled by the threaded rod (7). The stability of the rotating frame (12) can be controlled by the meshing between the small gear (10) and the large gear (11) between the moving frame (9) and the rotating frame (12), and the rotation of the turntable (1201) on the rotating frame (12) can be prevented from affecting the rotation. The position of the adsorption bracket (14) can be controlled by the adjusting rod (1202) of the turntable (1201) according to the size of the stainless steel plate (21). The adsorption bracket (14) is prevented from angular deviation by the cooperation of the slider (15) and the groove (1203). S3: While adjusting the spacing of the adsorption bracket (14), the rotation of the spur gear (16) on the adsorption bracket (14) can control the spacing between the nested parts (18) assembled with the telescopic rack (17) and the adsorption heads (20) on the adsorption tube (19) that are engaged and installed, and form a stable adsorption on the stainless steel plate (21). In conjunction with the adjustment of the telescopic frame (2), the support frame (6), the moving frame (9) and the rotating frame (12), the splicing position of the stainless steel plate (21) can be controlled.

Citation Information

Patent Citations

  • Stainless steel plate welding auxiliary device

    CN211966483U

  • Seamless welding device for stainless steel water tank

    CN216990638U

  • Welding device for stainless steel water tank production

    CN218874209U

  • Reversible placing rack for semi-finished substrate glass products

    CN115504095A

  • Splicing type cable bridge with steering structure

    CN218040583U