Efficient pulse arc welding positioning tool equipment for slide wire production
By designing high-efficiency pulse arc welding positioning tooling equipment for sliding contact line production, automatic leveling and multi-directional welding of grounded flat steel and extension sections are realized, solving the problems of degraded welding quality and low operating efficiency in the prior art, and significantly improving welding efficiency and quality.
Patent Information
- Application Number
- CN202510392234.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-03-31
AI Technical Summary
The prior art cannot adjust its horizontal state when clamping ground flat steel and the extended section, resulting in a decrease in welding quality, deformation of the workpiece and low operating efficiency.
An efficient pulse arc welding positioning tooling equipment is designed, using airbags, pressure detection components and controllers to achieve automatic leveling of grounded flat steel and extension sections, combined with two-dimensional drive devices and L-shaped clamping rods and other components to realize multi-directional welding and automatic clamping and fixing.
The welding quality and efficiency are improved through the automatic leveling function, manual intervention and workpiece deformation are reduced, and suitable for large-scale production.
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Figure CN119973296A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of welding, and in particular to a high-efficiency pulse arc welding positioning tooling device for busbar production. Background Art
[0002] The busbar is a device used in power supply systems, commonly found in railways, trams, subways and other rail transit systems. In the production process of the busbar, it is necessary to assemble a grounding flat steel. The grounding flat steel is a key safety component in the busbar system. Its main function is to provide electrical grounding for the busbar to ensure that in the event of equipment failure or current leakage, the system can safely release current to prevent dangerous situations such as electric shock. The grounding flat steel is usually connected to the metal part of the busbar system, buried in the ground, and connected to the ground grounding system;
[0003] The grounding flat steel needs to be extended according to the different equipment layouts, the scope of the grounding system or the limitations of the construction site. In the process of extending the grounding flat steel, pulse arc welding is required to weld and extend the grounding flat steel. For example, welding is performed by a clean plate reinforcement welding device disclosed in publication number CN117943661B. However, in the process of welding the grounding flat steel and the extension section, the grounding flat steel and the extension section need to be kept horizontal. Keeping the grounding flat steel and the extension section horizontal can help improve welding quality, reduce deformation, avoid stress concentration, and ensure the uniformity of the weld, thereby ensuring the stability and reliability of the grounding system. The current pain points in construction are concentrated on the lack of positioning tooling functions. Since conventional equipment lacks multi-directional adjustment functions, if the operator finds horizontal deviation after fixing the grounding flat steel, the workpiece must be completely disassembled and repositioned. This repeated disassembly and assembly not only wastes man-hours, but is also likely to cause material deformation due to multiple clamping and fixation, affecting the conductivity and mechanical strength of the grounding system. Summary of the invention
[0004] In view of the above-mentioned shortcomings of the prior art, the present invention provides a high-efficiency pulse arc welding positioning tooling equipment for busbar production, which can effectively solve the problem that the prior art cannot adjust the horizontal state of the grounding flat steel and the extension section when clamping the grounding flat steel and the extension section.
[0005] To achieve the above objectives, the present invention is implemented through the following technical solutions:
[0006] The present invention provides a high-efficiency pulse arc welding positioning tooling equipment for busbar production, comprising:
[0007] A bottom plate, a two-dimensional driving device is fixedly mounted on the upper end surface of the bottom plate, a fixed head is fixedly mounted on the driving end of the two-dimensional driving device, a pulse arc welding gun is fixedly mounted in the fixed head, and the pulse arc welding gun is connected to a welding machine;
[0008] A horizontal positioning assembly, the horizontal positioning assembly includes two placement blocks fixed on the upper surface of the bottom plate, two pairs of first support columns are symmetrically arranged inside the two placement blocks, the first support columns are driven to rise and fall inside the placement blocks, two second support columns are arranged on both sides of the placement blocks, the second support columns are driven to rise and fall on both sides of the placement blocks, a slot is opened in the placement block, two air bags are arranged in the slot, a pressure detection element is fixedly installed on the inner wall of the air bag, and the pressure detection element is electrically connected to a controller;
[0009] A fixing assembly includes an extrusion rotating column arranged above the placement block.
[0010] Preferably, the placement block is embedded with two pairs of inflation boxes, the inner wall of the inflation box is airtightly and slidably mounted with a lifting piston plate, the upper end surface of the lifting piston plate is fixedly mounted with a lifting rod, the upper end of the lifting rod passes through the inflation box and is integrally formed with a tray, the inner wall of the tray is rotatably connected to the first support column, and a first spring is fixedly mounted between the tray and the inflation box.
[0011] Preferably, a three-way pipe is embedded in the placement block, and the three-way pipe has two output ends and one input end, the output ends are respectively connected to each inflation box, and the input end is connected to an air pump.
[0012] Preferably, a linear drive device is fixedly installed on the inner bottom end of the slot, the linear drive device is electrically connected to the controller, a moving seat is fixedly installed on the driving end of the linear drive device, a telescopic rod is fixedly installed on the inner bottom end of the moving seat, a disc is fixedly installed on the upper end surface of the telescopic rod, a second spring is fixedly installed between the disc and the moving seat, the upper end surface of the disc is fixedly connected to the airbag, and a partition is fixedly installed on the upper end surface of the disc and between the airbags.
[0013] Preferably, an L-shaped clamp rod is slidably installed in the two placement blocks, the lower end of the L-shaped clamp rod passes through the base plate, and tooth plates are staggeredly installed on the opposite side of the L-shaped clamp rod, and a vertical plate is symmetrically installed on the lower end surface of the base plate, and rotating teeth are rotatably installed on the opposite side of the vertical plate, and the rotating teeth are engaged with the tooth plate, and a first external block is fixedly installed on the opposite side of the vertical plate, and a second external block is fixedly installed on one side of the L-shaped clamp rod, and a third spring is fixedly installed between the first external block and the second external block, and one of the L-shaped clamp rods has an inclined plate fixedly installed on the side away from the vertical plate.
[0014] Preferably, two pairs of fixed boxes are fixedly installed on both sides of the placing block, a lifting block is slidably installed in the fixed box, a linkage rod is fixedly installed on the lower end surface of the lifting block, the linkage rod passes through the bottom plate and extends to the bottom, the lifting block is rotatably connected to the second support column, an oblique groove is provided on the outer wall of the second support column, an electromagnet is fixedly installed on the side of the lifting block away from the second support column, the electromagnet is electrically connected to the controller, a sliding rod is provided inside the fixed box, the upper and lower ends of the sliding rod are respectively rotatably connected to the bottom plate and the fixed box, and a fourth spring is fixedly installed between the lifting block and the bottom plate.
[0015] Preferably, an external frame is fixedly installed on one side of the base plate and at a position away from the two-dimensional driving device, a rotating driving member is fixedly installed on the upper end surface of the external frame, an output end of the rotating driving member passes through the external frame and is fixedly installed with a threaded rod, the threaded rod is rotatably connected to the external frame, a lifting plate is threadedly sleeved on the outer wall of the threaded rod, the lifting plate is slidably connected to the external frame, a rotating head is rotatably installed inside the two ends of the lifting plate, a lifting cross bar is fixedly installed on one side of the rotating head, and the lifting cross bar is rotatably connected to the extrusion rotating column.
[0016] Preferably, two extrusion plates are fixedly installed on both sides of the lifting plate, two pairs of fixed blocks are symmetrically installed on both sides of the external frame, a limit rod is fixedly installed between the fixed blocks, the limit rod is slidably connected with the lifting plate and the rotating head, a sleeve is fixedly installed on the lower end surface of the fixed block, the sleeve is rotatably connected to the rotating head, a coil spring is arranged in the sleeve, and the inner and outer ends of the coil spring are respectively fixedly connected to the rotating head and the sleeve.
[0017] Compared with the known prior art, the technical solution provided by the present invention has the following beneficial effects:
[0018] First, by setting up airbags, pressure detection elements and controllers, the system can detect the horizontal deviation between the grounded flat steel and the extension section in real time. When the deviation is detected, the controller automatically drives the air pump to inject air into the inflation box, pushing the first support column to rise, thereby realizing automatic leveling of the grounded flat steel and the extension section. This function effectively solves the problem of reduced welding quality caused by uneven workpieces in the traditional welding process, ensures the uniformity and welding strength of the weld, and compared with the traditional inefficient repeated disassembly and assembly method, the automatic leveling function of the present invention significantly improves the welding efficiency.
[0019] Second, by setting up L-shaped clamping rods, tooth plates, rotating teeth and other components, it can automatically clamp and fix the ground flat steel and extension section when welding the short side, ensuring that the workpiece does not move during the welding process. At the same time, the use of the two-dimensional drive device and the pulse arc welding gun can achieve multi-directional welding, avoiding the tedious operation of frequently adjusting the position of the workpiece during traditional welding. This design not only improves welding efficiency, but also reduces manual intervention and reduces the difficulty of operation, making it suitable for large-scale production. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the prior art descriptions are briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention, and for ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0021] Figure 1 It is a three-dimensional structural schematic diagram of the present invention;
[0022] Figure 2 It is a structural schematic diagram of the two-dimensional driving device of the present invention;
[0023] Figure 3 It is a structural schematic diagram of the placement block of the present invention;
[0024] Figure 4 It is a schematic cross-sectional view of the inflatable box of the present invention;
[0025] Figure 5 It is a schematic diagram of the structure of the airbag of the present invention;
[0026] Figure 6 It is a bottom view structural schematic diagram of the L-shaped clamp rod of the present invention;
[0027] Figure 7 is a schematic structural diagram of the first spring of the present invention;
[0028] Figure 8 It is a schematic diagram of the structure of the fixing assembly of the present invention;
[0029] Fig. 9 It is a schematic cross-sectional structural diagram of the lifting plate of the present invention;
[0030] Fig.10 It is a schematic diagram of the movement of the airbag of the present invention being blocked;
[0031] Figure numerals: 1, bottom plate; 101, two-dimensional driving device; 102, fixed head; 103, pulse arc welding gun; 2, horizontal positioning assembly; 201, placement block; 202, inflatable box; 203, lifting piston plate; 204, lifting rod; 205, first support column; 206, three-way pipe; 207, first spring; 208, notch; 209, linear driving device; 210, moving seat; 211, telescopic rod; 212, second spring; 213, disc; 214, airbag; 215, partition; 216, L-shaped clamp rod; 217, tooth plate; 218, vertical plate; 21 9. Rotating teeth; 220. First external block; 221. Second external block; 222. Third spring; 223. Inclined plate; 224. Fixed box; 225. Lifting block; 226. Electromagnet; 227. Second support column; 228. Sliding rod; 229. Fourth spring; 230. Connecting rod; 3. Fixed assembly; 301. External frame; 302. Rotating drive member; 303. Threaded rod; 304. Lifting plate; 305. Coil spring; 306. Rotating head; 307. Lifting cross bar; 308. Extrusion rotating column; 309. Fixed block; 310. Limiting rod; 311. Extrusion plate. DETAILED DESCRIPTION
[0032] In order to make the purpose, technical solution and advantages of the embodiments of the present invention clearer, the technical solution in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0033] The present invention will be further described below in conjunction with the embodiments.
[0034] Example: Refer to Figures 1 to 10 , high-efficiency pulse arc welding positioning tooling equipment for busbar production, including:
[0035] Base plate 1, a two-dimensional driving device 101 is fixedly installed on the upper end surface of the base plate 1, a fixed head 102 is fixedly installed on the driving end of the two-dimensional driving device 101, a pulse arc welding gun 103 is fixedly installed in the fixed head 102, and the pulse arc welding gun 103 is connected to a welding machine. Pulse arc welding is a method of welding by adjusting current pulses, which can provide higher welding quality and precision. Its working principle is to control the current to change between two high and low pulse stages to reduce heat input and spatter, thereby improving the welding effect, and is particularly suitable for thin plate and high-precision welding. The pulse arc welding system consists of a pulse arc welding gun 103 and a welding machine. The pulse arc welding gun 103 guides the arc and feeds in shielding gas, and the welding machine provides pulse current, and controls the welding process by accurately adjusting the intensity and frequency of the current. The advantages of pulse arc welding include reducing thermal deformation and improving welding quality and precision. The pulse arc welding gun 103 is the part in contact with the workpiece in pulse arc welding, and its main functions are to guide the arc, supply shielding gas, and feed welding wire. The welding machine is one of the core equipment of pulse arc welding and provides the current source required for welding. The pulse welding machine can provide pulse current output and can accurately control the waveform, frequency and amplitude of the current during the welding process;
[0036] A horizontal positioning assembly 2, the horizontal positioning assembly 2 comprises two placement blocks 201 fixed on the upper end surface of the bottom plate 1, two pairs of first support columns 205 are symmetrically arranged inside the two placement blocks 201, the first support columns 205 are driven to rise and fall inside the placement blocks 201, two second support columns 227 are arranged on both sides of the placement blocks 201, the second support columns 227 are driven to rise and fall on both sides of the placement blocks 201, a slot 208 is opened in the placement block 201, two air bags 214 are arranged in the slot 208, a pressure detection element is fixedly installed on the inner wall of the air bag 214, the pressure detection element is electrically connected to the controller, the pressure detection element can be used with an existing pressure sensor, and the pressure sensor usually uses a strain gauge, a piezoelectric material or a capacitance change to sense the change of pressure and convert it into an electrical signal;
[0037] The fixing assembly 3 includes an extrusion rotating column 308 arranged above the placement block 201 .
[0038] It should be noted that the thickness of the grounding flat steel is roughly consistent with the thickness of the extension section, and the thickness of the extension section cannot be lower than the thickness of the grounding flat steel. The purpose of the busbar grounding system is to provide a low-impedance current path. If the extension section is thinner than the original grounding flat steel, it will lead to an increase in local current density, increase contact resistance, affect the grounding effect, and may even cause overheating or damage.
[0039] Reference Figures 3 to 10, two pairs of inflatable boxes 202 are embedded in the placement block 201, and a lifting piston plate 203 is airtightly and slidably installed on the inner wall of the inflatable box 202. A lifting rod 204 is fixedly installed on the upper end surface of the lifting piston plate 203. The upper end of the lifting rod 204 penetrates the inflatable box 202 and is integrally formed with a tray. The inner wall of the tray is rotatably connected to the first support column 205. A first spring 207 is fixedly installed between the tray and the inflatable box 202. A three-way pipe 206 is embedded in the placement block 201. The three-way pipe 206 has two output ends and an input end. The output ends are respectively connected to each inflatable box 202, and the input end is connected to an air pump. The air pump is an existing device, which is a device used to pressurize air or other gases from one place to another. The slot 208 A linear drive device 209 is fixedly installed at the inner bottom end. The linear drive device 209 is an existing device, which is a mechanical device that converts rotational motion into linear motion. The linear drive device 209 is electrically connected to the controller. A moving seat 210 is fixedly installed at the driving end of the linear drive device 209. A telescopic rod 211 is fixedly installed at the inner bottom end of the moving seat 210. A disc 213 is fixedly installed on the upper end surface of the telescopic rod 211. A second spring 212 is fixedly installed between the disc 213 and the moving seat 210. The upper end surface of the disc 213 is fixedly connected to the airbag 214. A partition 215 is fixedly installed on the upper end surface of the disc 213 and between the airbags 214. When the grounded flat steel and the extension section are placed above the placement block 201, the grounded flat steel and The extension section will squeeze the airbag 214 and the partition 215, so that the airbag 214 and the partition 215 drive the telescopic rod 211 to contract and compress the second spring 212, and the airbag 214 and the partition 215 will drop into the slot 208. After the grounding flat steel and the extension section are welded, the compressed second spring 212 will drive the airbag 214 and the partition 215 to rise. It should be noted that in the process of squeezing the airbag 214 by the grounding flat steel and the extension section, the air pressure change in the airbag 214 prevents the electrical signal generated by the pressure detection element from exceeding the preset value. An L-shaped clamp rod 216 is slidably installed in the two placement blocks 201. The lower end of the L-shaped clamp rod 216 passes through the bottom plate 1. The opposite side of the L-shaped clamp rod 216 is staggered with tooth plates 217. The bottom plate 1 A vertical plate 218 is symmetrically installed on the lower end surface of the vertical plate 218, and a rotating tooth 219 is rotatably installed on the opposite side of the vertical plate 218, and the rotating tooth 219 is meshed with the tooth plate 217. A first external block 220 is fixedly installed on the opposite side of the vertical plate 218, and a second external block 221 is fixedly installed on one side of the L-shaped clamping rod 216. A third spring 222 is fixedly installed between the first external block 220 and the second external block 221. An inclined plate 223 is fixedly installed on one of the L-shaped clamping rods 216 and on the side away from the vertical plate 218. Two pairs of fixed boxes 224 are fixedly installed on both sides of the placement block 201, and a lifting block 225 is slidably installed in the fixed box 224. A linkage rod 230 is fixedly installed on the lower end surface of the lifting block 225, and the linkage rod 230 passes through the bottom plate 1 and extends to the bottom.The lifting block 225 is rotatably connected to the second support column 227. The outer wall of the second support column 227 is provided with an oblique groove. An electromagnet 226 is fixedly installed on the side of the lifting block 225 away from the second support column 227. The electromagnet 226 is an existing device, which is a device that generates a magnetic field by electric current. It is usually composed of a conductive coil and an iron core. Its working principle is based on the physical phenomenon that a magnetic field is generated around when electric current passes through a wire. The electromagnet 226 is electrically connected to the controller. A slide bar 228 is arranged inside the fixed box 224. The upper and lower ends of the slide bar 228 are rotatably connected to the bottom plate 1 and the fixed box 224 respectively. A fourth spring 229 is fixedly installed between the lifting block 225 and the bottom plate 1. The fourth spring 229 is made of high-carbon steel material and has excellent strength and pressure resistance, so that the lifting block 225 and the second support column 227 can well support the grounding flat steel and the extension section through the fourth spring 229.
[0040] Reference Figures 8 to 9 An external frame 301 is fixedly installed on one side of the bottom plate 1 and at a position away from the two-dimensional driving device 101. A rotating driving member 302 is fixedly installed on the upper end surface of the external frame 301. The rotating driving member 302 is an existing device and can be used with an existing motor. This is an existing mature technology and will not be described in detail here. The output end of the rotating driving member 302 passes through the external frame 301 and is fixedly installed with a threaded rod 303. The threaded rod 303 is rotatably connected to the external frame 301. A lifting plate 304 is threadedly sleeved on the outer wall of the threaded rod 303. The lifting plate 304 is slidably connected to the external frame 301. Rotating heads 306 are rotatably installed inside the two ends of the lifting plate 304. The rotating heads A lifting cross bar 307 is fixedly installed on one side of 306, and the lifting cross bar 307 is rotatably connected to the extrusion rotating column 308 inside. Two extrusion plates 311 are fixedly installed on both sides of the lifting plate 304. Two pairs of fixed blocks 309 are symmetrically installed on both sides of the external frame 301. A limiting rod 310 is fixedly installed between the fixed blocks 309. The limiting rod 310 is slidably connected to the lifting plate 304 and the rotating head 306. A sleeve is fixedly installed on the lower end surface of the fixed block 309. The sleeve is rotatably connected to the rotating head 306. A coil spring 305 is arranged in the sleeve. The inner and outer ends of the coil spring 305 are fixedly connected to the rotating head 306 and the sleeve respectively. The limiting rod 310 is divided into a hard section and a soft end. Figure 8 As shown, the thicker part is the hard segment, and the thinner part is the soft segment. The rotating head 306 will be limited by the hard segment when sliding on the outer wall of the hard segment. When sliding to the outer wall of the soft end, the rotating head 306 can rotate freely, causing the soft segment to bend, and the coil spring will be wound up during the rotation of the rotating head 306.
[0041] The working principle of the present invention is as follows:
[0042] By placing the grounding flat steel and the extension section on the upper end surface of the placement block 201, the second support column 227 and the first support column 205 will be supported on the lower ends of the grounding flat steel and the extension section respectively, so that the grounding flat steel and the extension section are supported by the second support column 227 and the first support column 205 above the placement block 201 and maintain a certain distance (the second support column 227 and the first support column 205 respectively support the lower ends of the grounding flat steel and the extension section from both sides to ensure the initial positioning), and the grounding flat steel and the extension section will squeeze the airbag 214 to drive the disc 213 to descend, so that the disc 213 drives the telescopic rod 211 to contract and compress the second spring 212, and the rotating drive member 302 is opened to drive the lifting plate 304, the lifting cross bar 307 and the extrusion rotating column 308 to descend, and the extrusion rotating column 308 will descend above the second support column 227 and the first support column 205 to contact The grounding flat steel and the extension section. It should be noted that in the process of the extrusion rotating column 308 descending to contact the grounding flat steel and the extension section, the extrusion rotating column 308 can cooperate with the second support column 227 and the first support column 205 to fix the grounding flat steel and the extension section on the upper end surface of the placement block 201 respectively (to limit and fix the grounding flat steel and the extension section), and by opening the linear drive device 209, the moving seat 210 is driven to move in the slot 208. The moving seat 210 will drive the airbag 214 to move from the lower end surface of the grounding flat steel to the lower end surface of the extension section (or from the lower end surface of the extension section to the lower end surface of the grounding flat steel). In this process, if the weld formed by the connection between the grounding flat steel and the extension section is not horizontally aligned (the grounding flat steel is lower than the extension section or the extension section is lower than the grounding flat steel), the airbag 214 will contact the lower end surface of the extension section, so that the movement of the airbag 214 is hindered (such as Fig.10 As shown, Fig.10 The figure shows the obstructed state of the airbag 214 when there is a horizontal deviation between the grounded flat steel and the extended section). The airbag 214 will be squeezed by the lower end of the extended section, and the gas inside the airbag 214 will be compressed, causing the air pressure inside the airbag 214 to increase. After the air pressure increases and exceeds the preset value, the set pressure detection element will generate an electrical signal according to the change in the air pressure inside the airbag 214. The controller controls the voltage input to the air pump through the electrical signal generated by the pressure detection element, so that the air pump is turned on to inject air into the air box 202 below the extended section, increasing the air pressure in the air box 202, so that the lifting piston plate 203 slides and rises in the air box 202 due to the increased air pressure, driving the first support column 205 to rise and lift the extended section, so that the extended section is kept level with the grounded flat steel.
[0043] It should be noted that after the first support column 205 is driven to rise and lift the extension section to be aligned with the grounded flat steel level, the airbag 214 is no longer squeezed by the lower end of the extension section during movement, and the air pressure inside it returns to its original state. The set pressure detection element no longer generates an electrical signal due to the change in the air pressure inside the airbag 214, and stops controlling the voltage input into the air pump. The air pump stops supplying air, and the airbag 214 continues to be driven to the bottom of the extension section through the linear drive device 209. In the process of the airbag 214 contacting the lower end of the extension section, the set partition 215 will separate the two airbags 214 to prevent one of the airbags 214 from squeezing the other airbag 214 when squeezed (the airbag 214 is in contact with the extension section on one side and blocked by the partition 215 on the other side during the squeezing process, and the gas inside it will be squeezed). In the process of the pressure detection element generating an electrical signal, the controller will also control the input to the linear drive device 209. The voltage causes the linear drive device 209 to slow down its moving speed, thereby avoiding overload when the driving partition 215 and the airbag 214 are in contact and squeezed with the lower end of the extension section. When the airbag 214 is driven to move to the lower end surface of the extension section, the linear drive device 209 drives the airbag 214 to reciprocate back to the lower end surface of the grounded flat steel (in the process of aligning the grounded flat steel and the extension section to form a weld, the airbag 214 moves from the lower end of the grounded flat steel to the lower end of the extension section, but the lower end of the extension section is not necessarily lower than the grounded flat steel, and the lower end of the grounded flat steel may be lower than the lower end of the extension section). If the lower end of the grounded flat steel is lower than the lower end of the extension section, the airbag 214 will also contact and squeeze with the lower end of the grounded flat steel, and the corresponding pressure detection element set in the squeezed airbag 214 will generate an electrical signal. The controller will control the voltage input to the air pump through the electrical signal, drive the corresponding first support column 205 to rise, and lift the grounded flat steel, so that the grounded flat steel is horizontally aligned with the extension section.
[0044] When the first support column 205 is lifted up to align the grounding flat steel or the extension section, the other end of the grounding flat steel and the extension section is supported by the second support column 227. When the first support column 205 is lifted up to align the grounding flat steel and the extension section, the other end of the grounding flat steel and the extension section will drop (the upper end of the grounding flat steel and the extension section is squeezed by the squeezing rotating column 308, one end is lifted up by the first support column 205, and the other end will drop). During the dropping process, the second support column 227 will be squeezed downward, so that the second support column 227 is synchronously lifted and lowered through the linkage rod 230, and the lifting block 225 and the electromagnet 226 slide down and drop on the inner wall of the lifting rod 204. Squeeze the slide bar 228. After the first support column 205 rises and lifts the grounding flat steel and the extension section to adjust the level, the airbag 214 is driven to slide back and forth on the lower end surface of the grounding flat steel and the extension section for several times (the number of reciprocating movements is preferably 5 to 10 times). After the airbag 214 is not squeezed by the grounding flat steel and the extension section, it indicates that the grounding flat steel and the extension section have been horizontally aligned. The controller controls the voltage input to the electromagnet 226 so that the electromagnet 226 generates magnetic force to adsorb on the inner wall of the fixing box 224, so that the second support column 227 can fix and support the two ends of the grounding flat steel and the extension section between the fixing box 224 to prevent the grounding flat steel and the extension section from being displaced during welding.
[0045] When welding the grounded flat steel and the extension section, the upper and lower long sides need to be welded first to prevent stress concentration, and then the short sides on both sides are welded. By starting the two-dimensional drive device 101, the fixed head 102 and the pulse arc welding gun 103 are driven to move, and the pulse arc welding gun 103 can weld the grounded flat steel and the extension section. After welding the long sides in the above manner (after welding one side of the long side, the grounded flat steel and the extension section can be flipped by the existing manipulator), the grounded flat steel and the extension section are placed vertically between the placement blocks 201, with one side of the short side facing upward. In this process, the lifting plate 304 is driven to descend by opening the rotating drive member 302, so that the lifting plate 304 drives the extrusion plate 311 to descend and contact and squeeze the inclined plate 223. After being squeezed, the inclined plate 223 drives one of the L-shaped clamp rods 216 to drive the tooth plate 217 to move toward the grounded flat steel and the extension section, and the tooth plate 217 will engage with the rotating tooth 219 to drive the rotating tooth 219 to rotate, and the rotating rotating tooth 219 will drive the other tooth plate 21 7 drives the L-shaped clamp rod 216 to move toward the grounding flat steel and the extension section, and the two L-shaped clamp rods 216 are synchronously driven to move toward the grounding flat steel and the extension section to clamp and fix the grounding flat steel and the extension section, so that the grounding flat steel and the extension section are positioned between the placement blocks 201, so that the pulse arc welding gun 103 can weld the short side of the grounding flat steel and the extension section. It should be noted that during the descending process of the lifting plate 304, the rotating head 306 and the lifting cross bar 307 will be driven to descend synchronously, and the rotating head 306 and the lifting cross bar 307 will be driven to descend synchronously. The inner wall of the head 306 will slide down on the outer wall of the limit rod 310, and because there is no grounding flat steel and extension section on the upper end face of the placement block 201, the inner wall of the rotating head 306 will slide to the soft section on the outer wall of the limit rod 310. After sliding to the soft section, the extrusion rotating column 308 and the rotating head 306 will contact the upper end face of the placement block 201 to rotate (bend the soft section), preventing obstruction of the pulse arc welding gun 103 from welding the grounding flat steel and the short side of the extension section, and at the same time avoiding obstruction of the extrusion plate 311 from contacting the inclined plate 223.
[0046] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the embodiments of the present invention.
Claims
1. High-efficiency pulse arc welding positioning tooling equipment for busbar production, characterized in that: include: A base plate (1), a two-dimensional driving device (101) being fixedly mounted on the upper end surface of the base plate (1), a fixed head (102) being fixedly mounted on the driving end of the two-dimensional driving device (101), a pulse arc welding gun (103) being fixedly mounted inside the fixed head (102), and the pulse arc welding gun (103) being connected to a welding machine; A horizontal positioning assembly (2), the horizontal positioning assembly (2) comprising two placement blocks (201) fixed on the upper end surface of the bottom plate (1), two pairs of first support columns (205) being symmetrically arranged inside the two placement blocks (201), the first support columns (205) being driven to rise and fall inside the placement blocks (201), two second support columns (227) being arranged on both sides of the placement blocks (201), the second support columns (227) being driven to rise and fall on both sides of the placement blocks (201), a notch (208) being opened inside the placement blocks (201), two air bags (214) being arranged inside the notch (208), a pressure detection element being fixedly mounted on the inner wall of the air bag (214), the pressure detection element being electrically connected to a controller; A fixing assembly (3), wherein the fixing assembly (3) comprises an extrusion rotating column (308) arranged above the placement block (201).
2. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 1 is characterized in that: The placement block (201) is embedded with two pairs of inflatable boxes (202), the inner wall of the inflatable box (202) is airtightly and slidably mounted with a lifting piston plate (203), the upper end surface of the lifting piston plate (203) is fixedly mounted with a lifting rod (204), the upper end of the lifting rod (204) passes through the inflatable box (202) and is integrally formed with a tray, the inner wall of the tray is rotatably connected to the first support column (205), and a first spring (207) is fixedly mounted between the tray and the inflatable box (202).
3. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 2 is characterized in that: The placement block (201) is embedded with a three-way pipe (206), the three-way pipe (206) having two output ends and an input end, the output ends are respectively connected to each inflation box (202), and the input end is connected to an air pump.
4. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 3 is characterized in that: A linear drive device (209) is fixedly installed at the inner bottom end of the slot (208), and the linear drive device (209) is electrically connected to a controller. A moving seat (210) is fixedly installed at the driving end of the linear drive device (209), and a telescopic rod (211) is fixedly installed at the inner bottom end of the moving seat (210). A disc (213) is fixedly installed on the upper end surface of the telescopic rod (211), and a second spring (212) is fixedly installed between the disc (213) and the moving seat (210). The upper end surface of the disc (213) is fixedly connected to an airbag (214), and a partition (215) is fixedly installed on the upper end surface of the disc (213) and between the airbags (214).
5. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 4 is characterized in that: An L-shaped clamp rod (216) is slidably installed in the two placement blocks (201), the lower end of the L-shaped clamp rod (216) passes through the bottom plate (1), and tooth plates (217) are staggeredly installed on the opposite side of the L-shaped clamp rod (216) up and down, and a vertical plate (218) is symmetrically installed on the lower end surface of the bottom plate (1), and a rotating tooth (219) is rotatably installed on the opposite side of the vertical plate (218), and the rotating tooth (219) is meshed with the tooth plate (217), and a first external block (220) is fixedly installed on the opposite side of the vertical plate (218), and a second external block (221) is fixedly installed on one side of the L-shaped clamp rod (216), and a third spring (222) is fixedly installed between the first external block (220) and the second external block (221), and an inclined plate (223) is fixedly installed on one of the L-shaped clamp rods (216) and on the side away from the vertical plate (218).
6. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 5 is characterized in that: Two pairs of fixed boxes (224) are fixedly installed on both sides of the placement block (201), and a lifting block (225) is slidably installed in the fixed box (224). A linkage rod (230) is fixedly installed on the lower end surface of the lifting block (225), and the linkage rod (230) passes through the bottom plate (1) and extends to the bottom. The lifting block (225) is rotatably connected to the second support column (227), and the outer wall of the second support column (227) is provided with an oblique groove. An electromagnet (226) is fixedly installed on the side of the lifting block (225) away from the second support column (227), and the electromagnet (226) is electrically connected to the controller. A sliding rod (228) is arranged inside the fixed box (224), and the upper and lower ends of the sliding rod (228) are rotatably connected to the bottom plate (1) and the fixed box (224) respectively. A fourth spring (229) is fixedly installed between the lifting block (225) and the bottom plate (1).
7. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 1 is characterized in that: An external frame (301) is fixedly mounted on one side of the base plate (1) and at a position away from the two-dimensional driving device (101); a rotating driving member (302) is fixedly mounted on the upper end surface of the external frame (301); an output end of the rotating driving member (302) passes through the external frame (301) and is fixedly mounted with a threaded rod (303); the threaded rod (303) is rotatably connected to the external frame (301); a lifting plate (304) is threadedly sleeved on the outer wall of the threaded rod (303); the lifting plate (304) is slidably connected to the external frame (301); rotating heads (306) are rotatably mounted inside the two ends of the lifting plate (304); a lifting cross bar (307) is fixedly mounted on one side of the rotating head (306); the lifting cross bar (307) is rotatably connected to the extrusion rotating column (308) inside.
8. The high-efficiency pulse arc welding positioning tooling equipment for busbar production according to claim 7 is characterized in that: Two extrusion plates (311) are fixedly installed on both sides of the lifting plate (304), and two pairs of fixed blocks (309) are symmetrically installed on both sides of the external frame (301). A limit rod (310) is fixedly installed between the fixed blocks (309), and the limit rod (310) is slidably connected to the lifting plate (304) and the rotating head (306). A sleeve is fixedly installed on the lower end surface of the fixed block (309), and the sleeve is rotatably connected to the rotating head (306). A coil spring (305) is arranged in the sleeve, and the inner and outer ends of the coil spring (305) are respectively fixedly connected to the rotating head (306) and the sleeve.
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