A double-sided fire bar precise positioning water-cooling anti-deformation device
By setting positioning strips on the surface of the nozzle and an internal water-cooling structure, combined with descaling liquid and movable pipes, the problem of scale and dirt generated on the nozzle during water cooling is solved, achieving efficient heat dissipation and corrosion prevention, and simplifying maintenance.
Patent Information
- Application Number
- CN202411939331.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2044-12-26
AI Technical Summary
The existing double-sided welded nozzle structure is prone to scale and dirt during the water cooling process, resulting in reduced heat dissipation efficiency and corrosion of the nozzle, and is difficult to maintain.
A device including a base frame, an air supply pipe, a water cooling structure and an adjustment structure was designed. By setting a positioning strip on the surface of the nozzle and an internal water cooling structure, the outer wall of the nozzle was cleaned with a descaling liquid, and the flow of cooling water was controlled through movable pipes and sealing plates to achieve descaling and corrosion protection.
It effectively removes dirt on the surface of the gun nozzle, improves heat dissipation efficiency, prevents corrosion, simplifies the maintenance process, and extends the service life of the gun nozzle.
Smart Images

Figure CN119794671B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of water-cooling anti-deformation, and in particular is a water-cooling anti-deformation device with precise positioning of double-sided fire bars. Background Art
[0002] A double-sided welding structure in the prior art is specifically composed of two rows of opposing gun nozzles. During welding, the two rows of opposing gun nozzles will weld the welded parts between them, but in this process the gun nozzle on one side will heat the gun nozzle on the opposite side, causing it to deform after heating, thereby reducing its service life. In order to solve this problem, a water-cooling pipe for cooling water is provided under the gun nozzle to achieve water-cooling and anti-deformation. Moreover, since the water-cooling pipe is fixedly connected to the bottom of the gun nozzle, the direction of the gun nozzle can also be limited, so that the flame ejected from the gun nozzle can be accurately positioned.
[0003] A patent application with publication number CN216503069U discloses a water-cooling pipe for copper blocks for welding templates, including a base, a water-cooling pipe, an adjustment bracket and a water-cooled copper block, wherein the connecting sleeves are evenly arranged on the right side of the top of the base, the pipe bracket is arranged on the left side of the top of the base, and a water-cooling pipe is arranged on the top of the pipe bracket. The pipe enables the copper blocks to fit into the outer wall of the template at different angles. The copper blocks can be interlocked using slots and blocks to form an integral structure, which facilitates the orderly fitting of the copper blocks to the outer wall of the template and improves the cooling effect.
[0004] There are still some problems in the actual application of the above scheme. When the water-cooling pipe is used to water-cool the two rows of opposing spraying nozzles, the cooling water will contact part of the outer wall of the nozzle. After long-term use, scale and dirt will be generated at the contact point between the nozzle and the water flow. These dirt will not only reduce the heat dissipation efficiency, but also cause corrosion to the surface of the nozzle. Moreover, this part of the nozzle is located inside the water-cooling anti-deformation device, which may be relatively difficult to maintain and service.
[0005] To this end, the present invention provides a double-sided fire bar precise positioning water-cooling anti-deformation device. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is: the water-cooled anti-deformation device for accurately positioning the double-sided fire bar described in the present invention includes a base frame, a plurality of gas pipes are provided at the upper end of the base frame, a gas duct is provided at one end of the gas pipe, an auxiliary pipeline is provided at the upper end of the gas duct, a gun nozzle is provided at one end of the gas duct, a positioning strip is provided on the surface of the gun nozzle, a water-cooling structure is provided inside the positioning strip, and an adjustment structure is provided at the lower end of the water-cooling structure; the water-cooling structure includes: a cooling frame, the cooling frame is provided at the lower end of the gun nozzle; a fixed pipe, the fixed pipe is provided at the side end of the cooling frame; the adjustment structure includes: a movable pipe, the movable pipe is provided at the The interior of the cooling frame is provided with a sealing plate, wherein the sealing plate is rotatably connected to the interior of the cooling frame; a liquid storage tank, the interior of the liquid storage tank is filled with descaling liquid, the liquid storage tank is arranged at the lower end of the cooling frame, and a first liquid pipe is provided at one end of the liquid storage tank; a residue frame, the residue frame is arranged at one end of the liquid storage tank, and a second liquid pipe is provided at one end of the residue frame; an adjusting frame, one of the two adjusting frames is arranged at one end of the first liquid pipe, and the other is arranged at one end of the second liquid pipe, and the adjusting frame is connected to the cooling frame; a first slide plate, the first slide plate is slidably connected to the interior of the adjusting frame, and one end of the first slide plate is slidably connected to the second slide plate.
[0008] Preferably, the adjustment structure further includes: a rotating shaft, which is rotatably connected to the interior of the cooling frame, and the sealing plate is provided on the surface of the rotating shaft; a rotating gear, which is provided at one end of the rotating shaft; a rack, which is slidably connected to the interior of the cooling frame, and the rotating gear is meshed with the rack; a collar, which is provided on the surface of the movable pipe and connected to the rack; a first connecting rod, which is provided inside the adjustment frame, and the first slide and the second slide both slide on the surface of the first connecting rod; a second connecting rod, which is provided inside the adjustment frame, and the first slide and the second slide are threadedly connected to the second connecting rod.
[0009] Preferably, a pressure water pipe is provided inside the first liquid pipe, and the inner diameter of the pressure water pipe gradually decreases toward the end away from the liquid storage tank. The end of the first liquid pipe away from the liquid storage tank is slidably connected to a ball valve, and one end of the ball valve is connected to a sliding rod.
[0010] Preferably, one end of the adjusting frame is slidably connected to a movable block, one end of the second connecting rod is provided with a screw, and the screw is threadedly connected to the movable block, the upper end of the movable block is provided with a second connecting arm, and the second connecting arm is connected to the ring, the lower end of the movable block is provided with a first connecting arm, and one end of the first connecting arm is connected to the sliding rod.
[0011] Preferably, a baffle is provided at the lower end of the positioning bar.
[0012] Preferably, a reset rubber block is provided inside the cooling frame, and the reset rubber block is in contact with the second connecting arm.
[0013] Preferably, a discharge pipe is provided at one end of the first liquid pipe, a slot is provided between the discharge pipe and the first liquid pipe, a connecting rod is provided at one end of the sliding rod, and both the connecting rod and the sliding rod slide inside the slot, and the connecting rod is connected to the first connecting arm.
[0014] Preferably, a scraping frame is provided on the surface of the sliding rod, a scraping bar is provided on the surface of the scraping frame, and the scraping bar is in contact with the inner wall of the first liquid passage pipe.
[0015] Preferably, an adjustable filter is provided inside the scraping frame.
[0016] Preferably, the adjustment filter screen inside the scraping frame is semicircular, and a fixed filter screen is provided inside the first liquid passage, and the fixed filter screen is also semicircular.
[0017] The beneficial effects of the present invention are as follows:
[0018] 1. The double-sided fire bar precise positioning water-cooling anti-deformation device described in the present invention, by setting a movable pipe, when the gun nozzle is not working, first cuts off the cooling water injection of the fixed pipe, and then moves the movable pipe toward the fixed pipe for a distance, at this time the sealing plate will seal the passage between the fixed pipe and the cooling frame, and at this time the passage between the first liquid pipe and the cooling frame will be opened through the first connecting arm and the second connecting arm, and at this time the ball valve will also move, so that the descaling liquid inside the liquid storage tank can enter the interior of the cooling frame through the first liquid pipe, so that the descaling liquid contacts the outer wall of the gun nozzle to achieve the descaling effect, and the second liquid pipe will also drain the descaling liquid and dirt, so that the chemical reagents and dirt are collected in the residue frame to realize waste collection.
[0019] 2. The present invention describes a double-sided fire grate precise positioning water-cooled anti-deformation device, which is equipped with a scraping frame. When the ball valve is pulled out to allow the descaling liquid inside the liquid storage tank to enter the first liquid pipe, the scraping frame located on the surface of the sliding rod can not only scrape and clean the inner wall of the first liquid pipe, but the adjusting filter inside the scraping frame can also filter out impurities in the descaling liquid. Subsequently, when there is no need to pass the descaling liquid, the impurities and excess descaling liquid can also enter the interior of the discharge pipe through the slot, thereby being discharged from the first liquid pipe. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention will be further described below with reference to the accompanying drawings.
[0021] Figure 1 is a perspective view of embodiment 1 of the present invention;
[0022] Figure 2 It is a partial view of the first embodiment of the present invention;
[0023] Figure 3 This is a connection diagram of the cooling frame and the first liquid pipe of the present invention;
[0024] Figure 4 This is a connection diagram of the first liquid pipe and the water pressure pipe of the present invention;
[0025] Figure 5 is a side view of the cooling frame and positioning strips of the present invention;
[0026] Figure 6 This is a connection diagram of the adjustment frame and the first liquid pipe of the present invention;
[0027] Figure 7 yes Figure 6 A partial enlarged view of the middle part;
[0028] Figure 8 yes Figure 6 A partial enlarged view of point B in the middle;
[0029] Figure 9 1 is an expanded view of the first slide plate and the second slide plate of the present invention;
[0030] Figure 10 is an initial diagram of the first slide plate and the second slide plate of the present invention;
[0031] Figure: 1, base frame; 2, gas pipe; 21, gas pipe; 3, auxiliary pipe; 4, positioning bar; 5, nozzle; 6, water cooling structure; 61, cooling frame; 62, fixed pipe; 7, adjustment structure; 701, first liquid pipe; 702, baffle; 703, liquid storage tank; 704, first connecting rod; 705, second connecting rod; 706, discharge pipe; 707, scraping frame; 708, first connecting arm; 709, water pressure pipe; 710, ball valve; 711, residue frame; 7 12. Second liquid passage; 713. Adjustment frame; 714. Scraper; 715. Adjustment filter; 716. Fixed filter; 717. Sliding rod; 718. Screw; 719. Movable block; 720. Movable pipe; 721. Ring; 722. Rotating shaft; 723. Rotating gear; 724. Sealing plate; 725. Rack; 726. Second connecting arm; 727. Resetting rubber block; 728. Notch; 729. Connecting rod; 730. First slide; 731. Second slide. DETAILED DESCRIPTION
[0032] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods. Example 1
[0033] like Figures 1 to 10 As shown, a double-sided fire bar precise positioning water-cooling anti-deformation device according to an embodiment of the present invention comprises a base frame 1, a plurality of gas pipes 2 are provided at the upper end of the base frame 1, a gas pipe 21 is provided at one end of the gas pipe 2, an auxiliary pipe 3 is provided at the upper end of the gas pipe 21, a gun nozzle 5 is provided at one end of the gas pipe 21, a positioning strip 4 is provided on the surface of the gun nozzle 5, a water-cooling structure 6 is provided inside the positioning strip 4, and an adjustment structure 7 is provided at the lower end of the water-cooling structure 6; the water-cooling structure 6 comprises: a cooling frame 61, which is provided at the lower end of the gun nozzle 5; a fixed pipe 62, which is provided at the side end of the cooling frame 61; the adjustment structure 7 comprises: a movable pipe 720, which is provided inside the cooling frame 61 and slides on the surface of the fixed pipe 62; a seal The sealing plate 724 is rotatably connected to the interior of the cooling frame 61; the liquid storage tank 703, the interior of the liquid storage tank 703 is filled with descaling liquid, the liquid storage tank 703 is arranged at the lower end of the cooling frame 61, and one end of the liquid storage tank 703 is provided with a first liquid pipe 701; the residue frame 711, the residue frame 711 is arranged at one end of the liquid storage tank 703, and one end of the residue frame 711 is provided with a second liquid pipe 712; the adjusting frame 713, one of the two adjusting frames 713 is arranged at one end of the first liquid pipe 701, and the other is arranged at one end of the second liquid pipe 712, and the adjusting frame 713 is connected to the cooling frame 61; the first slide 730, the first slide 730 is slidably connected to the interior of the adjusting frame 713, and one end of the first slide 730 is slidably connected to the second slide 731.
[0034] Specifically, the solution is a double-sided fire row precise positioning water-cooled anti-deformation device, which is used to cool the working gun nozzle 5. When the gun nozzle 5 is in use, gas is first introduced into the inside of the gas pipe 2, and then the gas is converted into flames and ejected from the gun nozzle 5 through the gas pipe 21, thereby welding the first welding part 8 and the second welding part 9. In order to improve the quality of the weld, two rows of gun nozzles 5 are set, and the welding ports of the two rows of gun nozzles 5 are opposite. However, when in use, the flame ejected from the gun nozzle 5 on one side will affect the gun nozzle 5 on the other side, thereby shortening the use of the gun nozzle 5. Lifespan, at this time, by arranging positioning strips 4 on the surface of a row of gun nozzles 5 and arranging a water-cooling structure 6 inside the positioning strips 4, the gun nozzle 5 can be cooled to reduce the impact of the flame. When water cooling is required, cooling water is introduced into the interior of the fixed tube 62, and the cooling water will flow inside the cooling frame 61. In the process of flowing, the cooling water will absorb the heat generated by the gun nozzle 5 through the thermal conductivity of water, and take the heat away through circulating flow, thereby realizing heat dissipation, and after the welding work is completed, the gun nozzle 5 will stop working.
[0035] After long-term use, silicates in the cooling water are likely to form silica scale when combined with calcium and magnesium ions in hard water, and are deposited on the outer wall of the nozzle 5. At this time, the cooling water injection of the fixed pipe 62 is cut off, and the movable pipe 720 is started. At this time, the movable pipe 720 will move toward one end of the fixed pipe 62, and in the process of movement, the sealing plate 724 is started, and the sealing plate 724 will rotate. When the end of the movable pipe 720 moves to be flush with the end of the fixed pipe 62, the sealing plate 724 will also rotate to block the passage between the fixed pipe 62 and the cooling frame 61. At this time, the first slide 730 and the second slide 731 are started, and the two will move in a direction away from each other, thereby opening the adjustment frame 713. At this time, the descaling liquid inside the liquid storage tank 703 will also flow out from the inside of the liquid storage tank 703. The descaling liquid can clean the silica scale attached to the outer wall of the nozzle 5 and enter the interior of the cooling frame 61 through the first liquid passage 701. When the welding work is needed again, the movable pipe 720 is started again to continue to connect the fixed pipe 62 with the cooling frame 61, and the adjustment frame 713 will also be closed, so as not to affect the cooling of the nozzle 5. By setting the adjustment structure 7, the descaling liquid can be introduced into the interior of the cooling frame 61 when the nozzle 5 is not working, and due to the closure of the sealing plate 724, the flow range of the descaling liquid is limited to the position in contact with the nozzle 5 in the cooling frame 61, thereby cleaning and preventing the outer wall of the nozzle 5, and the removed dirt and descaling liquid will also be collected separately, so as not to affect the subsequent cooling.
[0036] like Figures 1 to 10 As shown, the adjustment structure 7 also includes: a rotating shaft 722, which is rotatably connected to the inside of the cooling frame 61, and a sealing plate 724 is provided on the surface of the rotating shaft 722; a rotating gear 723, which is provided at one end of the rotating shaft 722; a rack 725, which is slidably connected to the inside of the cooling frame 61, and the rotating gear 723 is engaged with the rack 725; a ring 721, which is provided on the surface of the movable pipe 720, and the ring 721 is connected to the rack 725; a first connecting rod 704, which is provided inside the adjustment frame 713, and the first slide 730 and the second slide 731 both slide on the surface of the first connecting rod 704; a second connecting rod 705, which is provided inside the adjustment frame 713, and the first slide 730 and the second slide 731 are both threadedly connected to the second connecting rod 705.
[0037] Specifically, when the movable pipe 720 moves toward one end of the fixed pipe 62, the movable pipe 720 will drive the rack 725 to move through the ring 721, and during the movement, the rack 725 will drive the rotating gear 723 to rotate, and at this time the rotating gear 723 will drive the sealing plate 724 to rotate through the rotating shaft 722, and finally block the channel between the fixed pipe 62 and the cooling frame 61, and then rotate the second connecting rod 705. Since the first slide 730 and the second slide 731 are threadedly connected to the second connecting rod 705, and the other ends of the first slide 730 and the second slide 731 slide on the surface of the first connecting rod 704, the two will move away from each other at this time, thereby opening the adjustment frame 713.
[0038] like Figures 1 to 6 As shown, a pressure water pipe 709 is provided inside the first liquid pipe 701, and the inner diameter of the pressure water pipe 709 gradually decreases toward the end away from the liquid storage tank 703. The end of the first liquid pipe 701 away from the liquid storage tank 703 is slidingly connected to a ball valve 710, and one end of the ball valve 710 is connected to a sliding rod 717.
[0039] Specifically, by setting the ball valve 710, in the initial state, the ball valve 710 will block one end of the pressure water pipe 709, thereby preventing the descaling liquid from flowing out. When the descaling liquid needs to be introduced, the sliding rod 717 is started, and the sliding rod 717 will drive the ball valve 710 to move away from the pressure water pipe 709, thereby allowing the descaling liquid to flow out. Moreover, since the inner diameter of the pressure water pipe 709 gradually decreases, the flow rate of the descaling liquid inside will increase at this time, thereby increasing the descaling speed.
[0040] like Figures 1 to 9 As shown, one end of the adjustment frame 713 is slidably connected to a movable block 719, one end of the second connecting rod 705 is provided with a screw 718, and the screw 718 is threadedly connected to the movable block 719, the upper end of the movable block 719 is provided with a second connecting arm 726, and the second connecting arm 726 is connected to the ring 721, the lower end of the movable block 719 is provided with a first connecting arm 708, and one end of the first connecting arm 708 is connected to the sliding rod 717.
[0041] Specifically, by setting the movable block 719, when the nozzle 5 stops working, the movable block 719 is started, and the movable block 719 will move in the direction away from the adjustment frame 713, and in the process of movement, the movable block 719 will drive the screw 718 to rotate, thereby causing the second connecting rod 705 to rotate, and the first slide 730 and the second slide 731 to move in the direction away from each other, and at this time, the second connecting arm 726 will also drive the ring 721 to move, thereby blocking the channel between the fixed pipe 62 and the cooling frame 61, and the first connecting arm 708 will also cause the ball valve 710 to move in the direction away from the water pressure pipe 709, thereby realizing the simultaneous execution of multiple steps.
[0042] like Figures 1 to 2 As shown, a baffle 702 is provided at the lower end of the positioning bar 4 .
[0043] Specifically, by providing the baffle 702 , when the nozzle 5 is working, the baffle 702 can reduce the damage of the flame to the liquid storage tank 703 and the surrounding structures.
[0044] like Figures 1 to 4 As shown, a reset rubber block 727 is provided inside the cooling frame 61 , and the reset rubber block 727 is in contact with the second connecting arm 726 .
[0045] Specifically, by setting a reset rubber block 727, the reset rubber block 727 will crack into a small gap when it contacts the second connecting arm 726, so that the second connecting arm 726 can move. When the reset rubber block 727 is not in contact with the second connecting arm 726, the reset rubber block 727 inside the cooling frame 61 will abut against it, thereby sealing the cooling frame 61 from the outside and preventing the cooling water inside the cooling frame 61 from leaking out.
[0046] like Figures 1 to 8 As shown, a discharge pipe 706 is provided at one end of the first liquid passage pipe 701, a slot 728 is provided between the discharge pipe 706 and the first liquid passage pipe 701, a connecting rod 729 is provided at one end of the sliding rod 717, and both the connecting rod 729 and the sliding rod 717 slide inside the slot 728, and the connecting rod 729 is connected to the first connecting arm 708.
[0047] Specifically, by setting the discharge pipe 706, when the sliding rod 717 drives the ball valve 710 to move, allowing the descaling liquid to enter the interior of the cooling frame 61, the sliding rod 717 will block the slot 728 at this time, so that the descaling liquid will not enter the interior of the discharge pipe 706. Subsequently, when the descaling is completed and the ball valve 710 is reset, the sliding rod 717 is no longer inside the slot 728, and since the diameter of the connecting rod 729 is smaller than the sliding rod 717, the excess descaling liquid will enter the interior of the discharge pipe 706 through the slot 728, thereby being discharged from the first liquid passage 701. Example 2
[0048] like Figures 3 to 10 As shown, in contrast to Example 1, another embodiment of the present invention is that a scraping frame 707 is provided on the surface of the sliding rod 717 , a scraping bar 714 is provided on the surface of the scraping frame 707 , and the scraping bar 714 contacts the inner wall of the first liquid passage 701 .
[0049] Specifically, by setting the scraper 714, when the sliding rod 717 drives the ball valve 710 to move, the scraper frame 707 located on the surface of the sliding rod 717 will also move. And since the scraper frame 707 is provided with the scraper 714 on the surface, the scraper 714 will also clean the inner wall of the first liquid pipe 701 to avoid blockage.
[0050] like Figures 9 and 10 As shown, an adjustment filter 715 is provided inside the scraping frame 707.
[0051] Specifically, by setting up the regulating filter 715, when the descaling liquid is passed into the interior of the cooling frame 61, the regulating filter 715 inside the scraping frame 707 will filter out the impurities inside the descaling liquid, thereby avoiding the accumulation of impurities inside the cooling frame 61.
[0052] like Figures 9 and 10 As shown, the adjustment filter screen 715 inside the scraping frame 707 is semicircular, and a fixed filter screen 716 is provided inside the first liquid passage 701, and the fixed filter screen 716 is also semicircular.
[0053] Specifically, by setting a fixed filter 716, when the sliding rod 717 drives the ball valve 710 to move, the scraping frame 707 will drive the adjustable filter 715 to move flush with the fixed filter 716, thereby performing the filtering work. After the descaling liquid is introduced, the ball valve 710 is reset, and the adjustable filter 715 and the fixed filter 716 will be separated. At this time, impurities can be discharged by simply flushing clean water into the discharge pipe 706.
[0054] Working principle: When water cooling is required, cooling water is introduced into the interior of the fixed pipe 62. The cooling water will flow inside the cooling frame 61. During the flow, the cooling water will absorb the heat generated by the nozzle 5 through the thermal conductivity of the water and take the heat away through the circulation flow, thereby achieving heat dissipation. After the welding work is completed, the nozzle 5 will stop working, the cooling water injection into the fixed pipe 62 will be cut off, and the movable block 719 will be started. The movable block 719 will move in the direction away from the adjustment frame 713, and in the process of movement, the movable block 719 will bring The movable screw 718 rotates, thereby causing the second connecting rod 705 to rotate. Since the first slide 730 and the second slide 731 are both threadedly connected to the second connecting rod 705, and the other ends of the first slide 730 and the second slide 731 slide on the surface of the first connecting rod 704, the two will move away from each other at this time, thereby opening the adjustment frame 713, and at this time, the second connecting arm 726 will also drive the ring 721 to move, and the ring 721 will drive the rack 725 to move, and during the movement, the rack 725 will drive the rotating gear 723 rotates, and at this time the rotating gear 723 will drive the sealing plate 724 to rotate through the rotating shaft 722. When the end of the movable pipe 720 moves to be flush with the end of the fixed pipe 62, the sealing plate 724 will also rotate to block the passage between the fixed pipe 62 and the cooling frame 61. At the same time, the ball valve 710 will be moved away from the water pressure pipe 709 through the first connecting arm 708, thereby allowing the descaling liquid to pass out. Since the inner diameter of the water pressure pipe 709 gradually decreases, the flow rate of the descaling liquid inside will increase and enter the cooling frame 61. Internally, since the sealing plate 724 has blocked the fixed tube 62 at this time, the descaling liquid will flow in the direction of the cooling water flow, thereby removing and preventing dirt on the outer wall of the nozzle 5, and the removed dirt and descaling liquid will not flow out of the cooling frame 61, but enter the interior of the residue frame 711 through the second liquid pipe 712 for collection, and when welding work is needed again, the movable pipe 720 is started again to continue to connect the fixed tube 62 to the cooling frame 61, and the adjustment frame 713 will also be closed, so as not to affect the cooling of the nozzle 5.
[0055] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A double-sided fire bar precise positioning water-cooling anti-deformation device, characterized by: The invention comprises a base frame (1), wherein the upper end of the base frame (1) is provided with a plurality of gas pipes (2), one end of the gas pipe (2) is provided with a gas conduit (21), the upper end of the gas conduit (21) is provided with an auxiliary pipeline (3), one end of the gas conduit (21) is provided with a gun nozzle (5), a surface of the gun nozzle (5) is provided with a positioning strip (4), the interior of the positioning strip (4) is provided with a water cooling structure (6), and the lower end of the water cooling structure (6) is provided with an adjustment structure (7); The water cooling structure (6) includes: a cooling frame (61), the cooling frame (61) is arranged at the lower end of the gun nozzle (5); a fixed pipe (62), the fixed pipe (62) is arranged at the side end of the cooling frame (61); The regulating structure (7) includes: a movable pipe (720), the movable pipe (720) is arranged inside the cooling frame (61), and the movable pipe (720) slides on the surface of the fixed pipe (62); a sealing plate (724), the sealing plate (724) is rotatably connected to the inside of the cooling frame (61); a liquid storage tank (703), the inside of the liquid storage tank (703) is filled with descaling liquid, the liquid storage tank (703) is arranged at the lower end of the cooling frame (61), and one end of the liquid storage tank (703) is provided with a first liquid pipe (701); a residue frame (711), the residue A slag frame (711) is provided at one end of the liquid storage tank (703), and a second liquid pipe (712) is provided at one end of the slag frame (711); an adjusting frame (713), one of the two adjusting frames (713) is provided at one end of the first liquid pipe (701), and the other is provided at one end of the second liquid pipe (712), and the adjusting frame (713) is connected to the cooling frame (61); a first slide plate (730), the first slide plate (730) is slidably connected to the inside of the adjusting frame (713), and one end of the first slide plate (730) is slidably connected to the second slide plate (731); The regulating structure (7) further comprises: a rotating shaft (722), the rotating shaft (722) being rotatably connected to the interior of the cooling frame (61), and the sealing plate (724) being provided on the surface of the rotating shaft (722); a rotating gear (723), the rotating gear (723) being provided at one end of the rotating shaft (722); a rack (725), the rack (725) being slidably connected to the interior of the cooling frame (61), and the rotating gear (723) being meshed with the rack (725); A collar (721), the collar (721) being provided on the surface of the movable pipe (720), and the collar (721) being connected to the rack (725); A first connecting rod (704), wherein the first connecting rod (704) is disposed inside the adjusting frame (713), and the first slide plate (730) and the second slide plate (731) both slide on the surface of the first connecting rod (704); The second connecting rod (705) is arranged inside the adjustment frame (713), and the first slide plate (730) and the second slide plate (731) are both threadedly connected to the second connecting rod (705).
2. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 1, characterized in that: A pressure water pipe (709) is provided inside the first liquid passage pipe (701), and the inner diameter of the pressure water pipe (709) gradually decreases toward the end away from the liquid storage tank (703). The end of the first liquid passage pipe (701) away from the liquid storage tank (703) is slidably connected to a ball valve (710), and one end of the ball valve (710) is connected to a sliding rod (717).
3. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 2, characterized in that: One end of the adjustment frame (713) is slidably connected to a movable block (719), one end of the second connecting rod (705) is provided with a screw rod (718), and the screw rod (718) is threadedly connected to the movable block (719), the upper end of the movable block (719) is provided with a second connecting arm (726), and the second connecting arm (726) is connected to the collar (721), the lower end of the movable block (719) is provided with a first connecting arm (708), and one end of the first connecting arm (708) is connected to the sliding rod (717).
4. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 1, characterized in that: A baffle (702) is provided at the lower end of the positioning bar (4).
5. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 3, characterized in that: A reset rubber block (727) is provided inside the cooling frame (61), and the reset rubber block (727) is in contact with the second connecting arm (726).
6. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 3, characterized in that: A discharge pipe (706) is provided at one end of the first liquid passage pipe (701), a notch (728) is provided between the discharge pipe (706) and the first liquid passage pipe (701), a connecting rod (729) is provided at one end of the sliding rod (717), and both the connecting rod (729) and the sliding rod (717) slide inside the notch (728), and the connecting rod (729) is connected to the first connecting arm (708).
7. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 6, characterized in that: A scraping frame (707) is provided on the surface of the sliding rod (717), a scraping strip (714) is provided on the surface of the scraping frame (707), and the scraping strip (714) is in contact with the inner wall of the first liquid passage tube (701).
8. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 7, characterized in that: An adjustment filter (715) is provided inside the scraping frame (707).
9. The double-sided fire bar precise positioning water-cooling anti-deformation device according to claim 8, characterized in that: The regulating filter (715) inside the scraping frame (707) is semicircular, and a fixed filter (716) is provided inside the first liquid passage (701), and the fixed filter (716) is also semicircular.
Citation Information
Patent Citations
Copper block water cooling pipeline for template welding
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Jig apparatus for welding pipe
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Systems, devices, controllers, and methods for use in the treatment of a pipeline
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