Overturning and dumping frame for hot-dip galvanizing charging barrel
By designing an automated cylinder tilting and tilting frame, which automatically clamps and tilts the cylinder using rotating and clamping components, the problems of high labor intensity and low efficiency in manual operation are solved, realizing automated control of cylinder tilting and ensuring the health and safety of operators.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HEBEI YECHENG NEW MATERIAL TECH CO LTD
- Filing Date
- 2025-05-27
- Publication Date
- 2026-04-21
AI Technical Summary
In current hot-dip galvanizing production, manual operation of tilting the hopper is labor-intensive, inefficient, and harmful to health.
Design a cylinder tilting and tilting frame that includes a frame, a rotating component, and a clamping component. The cylinder is automatically clamped and tilted using a drive unit and a clamping plate, and the cylinder is automatically tilted by an automated control component.
It reduced labor intensity, improved work efficiency, protected the health of operators, and achieved automated control of the material cylinder tilting.
Smart Images

Figure CN224148142U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of hot-dip galvanizing production, specifically a hot-dip galvanizing cylinder tilting and tilting frame. Background Technology
[0002] Hot-dip galvanizing is an important means of metal surface anti-corrosion treatment. Its principle is to immerse standard parts that have been degreased and derusted into molten zinc at 500°C, so that a zinc layer or zinc-iron alloy coating is attached to the surface of the standard parts, thereby achieving the purpose of anti-corrosion.
[0003] The hot-dip galvanizing process is as follows: standard parts are loaded into a barrel and immersed in a zinc bath for galvanizing. After galvanizing, the barrel is transferred to a centrifuge for high-speed zinc removal to remove excess zinc. Finally, the galvanized standard parts in the barrel must be poured out. Currently, the industry commonly uses manual operation to empty the barrel after zinc removal. Specifically, workers manually unload the barrel from the centrifuge station using tools such as pry bars in a high-temperature environment, and then manually tilt the barrel to empty the standard parts.
[0004] However, manually operating the material cylinder to pour out the material is inefficient, labor-intensive, and exposes workers to zinc-containing fumes emitted by the zinc pot and centrifuge during the operation, which can easily lead to respiratory diseases with long-term exposure. Utility Model Content
[0005] The present invention aims to provide a hot-dip galvanizing cylinder tilting and tilting frame to solve the problems of high labor intensity, low work efficiency, and negative impact on health caused by the existing manual operation of cylinder tilting.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] A hot-dip galvanizing cylinder tilting and tipping frame includes a frame body, a rotating assembly, and a clamping assembly;
[0008] The rotating assembly includes a drive unit fixed on the frame and a rotating frame rotatably mounted on the frame. The output end of the drive unit is connected to the rotating frame, and the rotating frame is provided with a bearing space for placing the material cylinder.
[0009] The clamping assembly includes a first clamping part and a second clamping part arranged symmetrically, and the movement trajectories of the first clamping part and the second clamping part are both parallel to the rotation axis of the rotating frame;
[0010] The first clamping part includes a first linear drive element and a first clamping plate rotatably sleeved on the working end of the first linear drive element. The second clamping part includes a second linear drive element and a second clamping plate rotatably sleeved on the working end of the second linear drive element. The first linear drive element and the second linear drive element are fixed on the frame. The clamping surfaces of the first clamping plate and the second clamping plate are adapted to the outer contour shape of the material cylinder. The first clamping plate and the second clamping plate move towards each other to clamp the material cylinder, or move away from each other to release the material cylinder.
[0011] As a limitation of this utility model: the rotating frame includes a base frame, and a side frame is vertically fixed at each of the four edges of the base frame, and the bearing space is the area enclosed by the base frame and the four side frames.
[0012] As a further limitation of this utility model: a rotating shaft is provided between the side frame and the frame body, one end of the rotating shaft is fixedly connected to the side frame, and the other end is rotatably connected to the frame body, and the output end of the drive component is fixedly connected to the rotating shaft; there are two rotating shafts, and the two rotating shafts are symmetrically arranged.
[0013] As a further limitation of this utility model: the working end of the first linear drive element is movably fitted into one of the rotating shafts, and the working end of the second linear drive element is movably fitted into the other rotating shaft.
[0014] As a further limitation of this utility model: the driving component is a geared motor.
[0015] As another limitation of this utility model: the first clamping plate and the second clamping plate are located in the bearing space, the rotating frame is provided with a slide rod and two sliders slidably sleeved on the slide rod, the axis of the slide rod is parallel to the movement direction of the first clamping plate, and each of the first clamping plate and the second clamping plate is fixedly connected to a slider.
[0016] As a further limitation of this utility model: a connecting sleeve is provided between the working end of the first linear drive element and the first clamping plate, the connecting sleeve is fixedly connected to the working end of the first linear drive element, and the first clamping plate is rotatably clamped on the connecting sleeve.
[0017] A connecting sleeve is also provided between the working end of the second linear drive element and the second clamping plate. The connecting sleeve is fixedly connected to the working end of the second linear drive element, and the second clamping plate is rotated and locked onto the connecting sleeve.
[0018] As a further limitation of this utility model: both the first linear drive element and the second linear drive element are cylinders.
[0019] As a further limitation of this utility model: weight reduction holes are provided on the first clamping plate and the second clamping plate.
[0020] As another limitation of this utility model: it also includes an automation control component, which includes a control system and a first proximity switch and a second proximity switch that are electrically connected to the signal input terminal of the control system respectively.
[0021] The first proximity switch and the second proximity switch are both fixed on the frame. The line connecting the first proximity switch and the second proximity switch is a horizontal straight line. A metal sensing plate is fixed on the rotating frame. The first proximity switch and the metal sensing plate together form a flip-in detection device; the second proximity switch and the metal sensing plate together form a reset detection device.
[0022] The signal output terminals of the control system are electrically connected to the drive unit, the first linear drive element, and the second linear drive element, respectively.
[0023] By adopting the above technical solution, the beneficial effects achieved by this utility model compared with the prior art are as follows:
[0024] (1) This utility model includes a frame, a rotating assembly, and a clamping assembly. The rotating assembly includes a driving component and a rotating frame. The rotating frame is rotatably mounted on the frame and driven to rotate by the driving component. The clamping assembly includes a first clamping part and a second clamping part arranged symmetrically. The first clamping plate and the second clamping plate move towards each other to clamp the material cylinder, or move away from each other to release the material cylinder. In practice, the material cylinder is placed in the bearing space. The first linear driving element and the second linear driving element drive the first clamping plate and the second clamping plate to move towards each other to clamp the material cylinder. Then, the driving component drives the rotating frame, so that the rotating frame, the material cylinder, the first clamping plate and the second clamping plate rotate together 180° until the material cylinder opening is downward, and the standard part is poured out. Then, the driving component drives the rotating frame in the opposite direction until the material cylinder is reset to the initial position with the cylinder opening upward. Compared with workers manually flipping the material cylinder with tools, this utility model reduces labor intensity, improves work efficiency, and solves the health problems of operators.
[0025] (2) This utility model also includes an automated control component, which includes a control system, a first proximity switch, and a second proximity switch. The line connecting the first and second proximity switches is a horizontal straight line, and a metal sensing plate is fixed on the rotating frame. In implementation, the control system controls the first and second linear drive elements to clamp the cylinder. Then, the control system controls the drive element to flip the cylinder. When the rotating frame drives the cylinder to flip 180° until the cylinder opening faces downward, the metal sensing plate aligns with the first proximity switch to trigger a sensing signal, and the rotating frame stops rotating. The first proximity switch and the metal sensing plate cooperate to form a flip-in detection device. After the cylinder is tilted, the drive element drives the cylinder to rotate in the opposite direction until the cylinder returns to its initial position with the cylinder opening facing upward. At this time, the metal sensing plate aligns with the second proximity switch to trigger a sensing signal, and the rotating frame stops rotating. The second proximity switch and the metal sensing plate cooperate to form a reset detection device. The automated control component can realize automated control of the cylinder tilting, further improving work efficiency.
[0026] In summary, this utility model can reduce labor intensity, improve work efficiency, and protect the health and safety of operators; this utility model is applicable to the hot-dip galvanizing industry and is used to flip the material cylinder to pour out standard parts. Attached Figure Description
[0027] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0028] Figure 1 This is a three-dimensional structural diagram of an embodiment of the present utility model;
[0029] Figure 2 This is a three-dimensional structural diagram illustrating the application state of an embodiment of the present utility model;
[0030] Figure 3 This is a top view structural diagram of the application state of this utility model embodiment;
[0031] Figure 4 for Figure 3 Sectional view along the middle AA direction;
[0032] Figure 5 for Figure 4 Enlarged diagram of part B.
[0033] In the diagram: 1-barrel, 2-first linear drive element;
[0034] 3-First clamping plate, 31-Upper horizontal plate, 32-Lower horizontal plate, 33-Vertical plate, 34-Clamping surface, 35-Front side plate, 36-Rear side plate;
[0035] 4-Connecting sleeve, 41-Annular groove;
[0036] 5-Piston rod, 6-Second linear drive element, 7-Second clamping plate, 8-Weight reduction hole, 9-Gear motor;
[0037] 10-Rotating frame, 101-Bearing space, 102-Base frame, 103-Side frame;
[0038] 11-Slide bar, 12-Slider, 13-First pivot, 14-Second pivot, 15-Bearing seat, 16-Connecting plate;
[0039] 17-Frame, 171-First support, 172-Second support, 173-Third support;
[0040] 18 - First upright, 19 - Second upright, 20 - Third upright. Detailed Implementation
[0041] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and do not constitute a limitation thereof.
[0042] The directional terms or positional relationships such as "up," "down," "left," "right," "front," and "back" used in the embodiments are based on the drawings in this utility model specification. Figure 2 The orientation relationships are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or component must have a specific orientation, or that it must be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting the content protected by this utility model.
[0043] like Figures 1-5 As shown, this embodiment includes a frame 17, a rotating assembly, and a clamping assembly; the clamping assembly is used to clamp the material cylinder 1, and the rotating assembly is used to flip the clamped material cylinder 1 to pour out the standard parts inside the material cylinder 1.
[0044] 1. Clamping assembly;
[0045] The clamping assembly includes a first clamping part and a second clamping part arranged symmetrically. The first clamping part and the second clamping part are arranged symmetrically on the left and right.
[0046] like Figure 1As shown, the first clamping part includes a first linear drive element 2 and a first clamping plate 3 rotatably sleeved on the working end of the first linear drive element 2. In this embodiment, the first linear drive element 2 adopts an existing cylinder, but it can also be replaced with any other structure that can provide linear driving force, such as an electric actuator. The first linear drive element 2 is fixed on the frame 17. The first clamping plate 3 includes a horizontal plate and a vertical plate 33 fixedly connected. In this embodiment, the horizontal plate includes an upper horizontal plate 31 and a lower horizontal plate 32. The top end of the vertical plate 33 is fixedly connected to the upper horizontal plate 31, and the bottom end is fixedly connected to the lower horizontal plate 32. The clamping surface 34 of the first clamping plate 3 is adapted to the outer contour shape of the material cylinder 1. Here, the clamping surface 34 refers to the side of the upper horizontal plate 31 and the lower horizontal plate 32 that abuts against the outer contour of the material cylinder 1. Adaptation means that the clamping surface 34 has the same shape as the outer contour of the material cylinder 1. That is, the side of the upper horizontal plate 31 and the lower horizontal plate 32 that contacts the material cylinder 1 is set as an arc concave to the material cylinder 1 so that it can better fit the outer wall of the material cylinder 1 and clamp it tightly when clamping the material cylinder 1.
[0047] like Figure 1 , 4 As shown in Figure 5, a connecting sleeve 4 is provided between the working end of the first clamping plate 3 and the first linear drive element 2. The working end of the first linear drive element 2 refers to the end of the cylinder piston rod 5. The connecting sleeve 4 is fixedly connected to the working end of the first linear drive element 2. The connecting sleeve 4 is fixedly sleeved on the end of the piston rod 5 by bolts. An annular groove 41 is provided on the connecting sleeve 4. A through hole is provided on the vertical plate 33 of the first clamping plate 3. The vertical plate 33 is sleeved on the connecting sleeve 4 and can be rotatably locked in the annular groove 41.
[0048] The second clamping part includes a second linear drive element 6 and a second clamping plate 7 rotatably sleeved on the working end of the second linear drive element 6. The second linear drive element 6 also uses a conventional cylinder. The second linear drive element 6 is fixed to the right end of the frame 17. The structure of the second clamping plate 7 is the same as that of the first clamping plate 3, and it also includes a horizontal plate and a vertical plate 33 that are fixedly connected. The clamping surface 34 of the second clamping plate 7 is also adapted to the outer contour shape of the material cylinder 1. A connecting sleeve 4 is also provided between the working end of the second linear drive element 6 and the second clamping plate 7. The connecting sleeve 4 is fixedly connected to the working end of the second linear drive element 6, and the second clamping plate 7 is rotatably clamped onto the connecting sleeve 4. The installation method between the connecting sleeve 4 and the second clamping plate 7 is the same as that of the first clamping plate 3, and will not be described in detail.
[0049] The first clamping part and the second clamping part both move in the left and right directions, and their movement trajectories are both straight lines extending in the left and right directions. During operation, the first linear drive element 2 drives the first clamping plate 3 to move linearly in the left and right directions, and the second linear drive element 6 drives the second clamping plate 7 to move linearly in the left and right directions. When the first clamping plate 3 and the second clamping plate 7 move towards each other, they clamp the material cylinder 1; when they move away from each other, they release the material cylinder 1.
[0050] To improve this embodiment, weight-reducing holes 8 are provided on the first clamping plate 3 and the second clamping plate 7, such as... Figure 1 As shown, the weight reduction hole 8 is provided on the vertical plate 33 and the lower horizontal plate 32.
[0051] II. Rotating components;
[0052] like Figure 1 As shown, the rotating assembly includes a drive unit fixed on the frame 17 and a rotating frame 10 rotatably mounted on the frame 17. The output end of the drive unit is connected to the rotating frame 10 and is used to drive the rotating frame 10 to rotate. In this embodiment, the drive unit adopts the existing geared motor 9. Of course, any other device in the prior art can be selected, as long as it can drive the rotating frame 10 to rotate.
[0053] The rotating frame 10 is provided with a bearing space 101 for placing the material cylinder 1. Specifically, the rotating frame 10 is a three-dimensional frame structure, including a base frame 102. Each of the four edges of the base frame 102 is vertically fixed with a side frame 103. The bearing space 101 is the area enclosed by the base frame 102 and the four side frames 103. After the material cylinder 1 is placed, the base frame 102 supports the material cylinder 1. The first clamping plate 3 and the second clamping plate 7 are located in the bearing space 101 and move towards or away from each other in the bearing space 101.
[0054] like Figure 1 As shown, the rotating frame 10 is provided with a slide rod 11 and two sliders 12 slidably sleeved on the slide rod 11. The slide rod 11 is fixedly mounted on the front side frame 103 of the rotating frame 10. The axis of the slide rod 11 is parallel to the movement direction of the first clamping plate 3, that is, the axis of the slide rod 11 is along the left and right directions, and the sliding direction of the sliders 12 is also along the left and right directions. The first clamping plate 3 and the second clamping plate 7 are each fixedly connected to a slider 12. Taking the first clamping plate 3 as an example, the first clamping plate 3 also includes a front side plate 35 and a rear side plate 36 with the same structure. The front side plate 35 and the rear side plate 36 are also provided with weight reduction holes 8. The edge of the front side plate 35 is fixedly connected to the vertical plate 33, the upper horizontal plate 31, and the lower horizontal plate 32, respectively. The edge of the rear side plate 36 is also fixedly connected to the vertical plate 33, the upper horizontal plate 31, and the lower horizontal plate 32, respectively. A slider 12 is fixedly mounted on the front side plate 35. Similarly, the second clamping plate 7 also includes a front side plate 35 and a rear side plate 36 with the same structure, and a slider 12 is also fixed on the front side plate 35 of the second clamping plate 7. Correspondingly, the rear side frame 103 of the rotating frame 10 is also provided with a slide rod 11 and two sliders 12 slidably sleeved on the slide rod 11. Here, one slider 12 is fixed on the rear side plate 36 of the first clamping plate 3 and the rear side plate 36 of the second clamping plate 7. When the cylinder drives, the slider 12 plays a limiting role in the movement of the first clamping plate 3 and the second clamping plate 7, so that they can move linearly along the left and right lines.
[0055] The rotating frame 10 is rotatably mounted on the frame body 17. Specifically, as follows... Figure 2-5 As shown, a pivot is provided between the side frame 103 and the frame body 17. In this embodiment, there are two pivots, both extending axially in the left-right direction. The two pivots are symmetrically arranged on the left and right, and are named the first pivot 13 and the second pivot 14. The first pivot 13 and the second pivot 14 are arranged in the same way. Taking the second pivot 14 as an example: Figure 4 , 5 As shown, the second rotating shaft 14 is rotatably connected to the frame 17 via bearings and bearing seats 15. This is existing technology. The left end of the second rotating shaft 14 is fixedly connected to the right side frame 103. A connecting plate 16 is fixedly mounted on the right side frame 103, and the left end of the second rotating shaft 14 is fixedly connected to the connecting plate 16. The connecting plate 16 also has weight-reducing holes 8. Similarly, the first rotating shaft 13 is rotatably connected to the frame 17 via bearings and bearing seats 15. The right end of the first rotating shaft 13 is fixedly connected to the left side frame 103. A connecting plate 16 with weight-reducing holes 8 is also fixedly mounted on the left side frame 103, and the right end of the first rotating shaft 13 is fixedly connected to the connecting plate 16. Figure 5 As shown, the output end of the geared motor 9 is fixedly sleeved with the second rotating shaft 14. When the geared motor 9 works, it drives the second rotating shaft 14 to rotate, which in turn drives the rotating frame 10 to rotate, and the first rotating shaft 13 also rotates accordingly. The rotation axis of the rotating frame 10 is the central axis of the second rotating shaft 14, that is, the rotation axis extends in the left and right directions and is parallel to the movement trajectory of the first clamping part and the second clamping part.
[0056] like Figure 4 As shown, the working end of the first linear drive element 2 is movably engaged within the first rotating shaft 13. Specifically, the working end of the first linear drive element 2 is the piston rod end of the cylinder. The piston rod 5 is movably engaged within the first rotating shaft 13. Here, "movably engaged" means that the piston rod 5 passes through the first rotating shaft 13 in the left and right directions and can extend and retract left and right within the first rotating shaft 13. Similarly, the working end of the second linear drive element 6 is movably engaged within the second rotating shaft 14. That is, the piston rod 5 of the second linear drive element 6 passes through the second rotating shaft 14 in the left and right directions and can extend and retract left and right within the second rotating shaft 14. It should be further noted that the piston rod 5 extends and retracts left and right within the first rotating shaft 13 to achieve the clamping and release of the material cylinder 1. However, when the material cylinder 1 rotates with the rotating frame 10, due to the rotatable locking relationship between the connecting sleeve 4 and the first clamping plate 3, the first clamping plate 3 rotates with the rotating frame 10, but the piston rod 5 does not rotate with the rotating frame 10.
[0057] III. Frame 17;
[0058] like Figure 3As shown, the frame 17 includes a first support 171, a second support 172, and a third support 173 that are fixedly connected in sequence. From a top view, the frame 17 has a U-shaped structure, with the front of the frame 17 being the open end of the U-shape. It should be noted that the distance between the central axis of the second rotating shaft 14 and the second support 172 should be greater than the distance between the central axis of the second rotating shaft 14 and the bottom end of the base frame 102, to ensure that when the rotating frame 10 and the material cylinder 1 move along... Figure 2 When rotating in the direction of the middle arrow, the base frame 102 will not block the second support frame 172, which facilitates the smooth flipping of the rotating frame 10.
[0059] IV. Automated control components;
[0060] To achieve automated control, this embodiment also includes an automated control component, which includes a control system and a first proximity switch and a second proximity switch electrically connected to the signal input terminals of the control system. The structure and principle of the control system and proximity switches are existing technologies and will not be described in detail in this embodiment.
[0061] Both the first and second proximity switches are fixed to the frame 17, such as Figure 2 As shown, a first upright 18 is fixed to the front side of the frame 17, and a first proximity switch is mounted on the first upright 18. A second upright 19 is fixed to the rear side of the frame 17, and a second proximity switch is mounted on the second upright 19. The first and second proximity switches are not shown in the figure. The line connecting the first and second proximity switches is a horizontal straight line extending in the front-rear direction.
[0062] like Figure 1 , 2 As shown, a metal sensing plate is fixed on the rotating frame 10, and a third upright 20 is fixed on the right side frame 103 of the rotating frame 10. The metal sensing plate is mounted on the third upright 20 and is not shown in the figure. The metal sensing plate is used to sense and cooperate with the first proximity switch and the second proximity switch. The signal output terminal of the control system is electrically connected to the driving component, the first linear drive element 2, and the second linear drive element 6, respectively.
[0063] Specifically, the first proximity switch, in conjunction with the metal induction plate, constitutes a flip-in detection device; when the rotating frame 10 drives the material cylinder 1 along... Figure 2 When the cylinder is rotated 180° in the direction of the middle arrow until the opening of the cylinder is facing down, the metal sensing plate aligns with the first proximity switch and triggers a sensing signal. The first proximity switch transmits the signal to the control system, which then controls the reduction motor 9 to stop working. At this time, the rotating frame 10 stops rotating and waits for the standard parts in the cylinder 1 to be poured out.
[0064] The second proximity switch, together with the metal induction plate, forms a reset position detection device. After the material is poured, the control system controls the reduction motor 9 to rotate in the opposite direction, so that the rotating frame 10 drives the material cylinder 1 to rotate in the opposite direction until the material cylinder 1 is reset to the initial position with the cylinder opening facing upward. At this time, the metal induction plate and the second proximity switch are aligned to trigger the induction signal. The second proximity switch transmits the signal to the control system, and the control system controls the reduction motor 9 to stop working, and the rotating frame 10 stops rotating.
[0065] The automated control component enables automated control of the tilting of the material cylinder 1, further improving work efficiency.
[0066] In this embodiment, the device is installed on a transport line. The cylinder 1 containing the standard parts is immersed in zinc in a zinc pot and then spun zinc in a centrifuge. The existing robot gripper removes the cylinder 1 from the centrifuge and places it into the carrying space 101 of this embodiment. After placement, the robot gripper transmits a signal to the control system. The control system controls the first linear drive element 2 and the second linear drive element 6 to work, causing the first clamping plate 3 and the second clamping plate 7 to move relative to each other and clamp the cylinder 1. Subsequently, the control system controls the reduction motor 9 to work, causing the rotating frame 10 to rotate the cylinder 1 180° until the cylinder opening faces downward. At this time, the metal sensing plate aligns with the first proximity switch, triggering a sensing signal and transmitting the signal to the control system. The control system then controls the reduction motor 9 to stop working, and the rotating frame 10 stops rotating. At this time, the standard parts are poured out of the cylinder 1 and fall onto the transport line for transport. Next, the control system controls the geared motor 9 to rotate in the reverse direction, causing the rotating frame 10 to drive the material cylinder 1 to rotate in the reverse direction until the material cylinder 1 returns to its initial position with the opening facing upwards. At this time, the metal sensing plate aligns with the second proximity switch, triggering a sensing signal and transmitting the signal to the control system. The control system then controls the geared motor 9 to stop working, and the rotating frame 10 stops rotating. After the material cylinder 1 returns to its original position, the control system controls the first linear drive element 2 and the second linear drive element 6 to work, causing the first clamping plate 3 and the second clamping plate 7 to move in opposite directions, releasing the material cylinder 1. The robot gripper then removes the material cylinder 1 and puts it back in for flipping and unloading. By using this device to flip and unload the material cylinder 1, compared to manually flipping the material cylinder 1 with tools, the labor intensity is reduced, the health of the operators is solved, and the work efficiency is improved. In practical applications, the standard part unloading capacity is increased from 1.5-2 tons per hour by manual operation to 4-5 tons per hour.
[0067] It should be noted that the above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the above embodiments, those skilled in the art can still modify the technical solutions described in the above embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A hot-dip galvanizing pot turnover pouring frame characterized by comprising: The rack body, the rotating assembly and the clamping assembly are included. The rotating assembly includes a driving member fixed on the rack body and a rotating rack rotatably arranged on the rack body, and the output end of the driving member is connected to the rotating rack. The clamping assembly includes symmetrically arranged first and second clamping portions, and the movement trajectories of the first and second clamping portions are parallel to the rotation axis of the rotating rack. The first clamping portion includes a first linear driving member and a first clamping plate rotatably sleeved on the working end of the first linear driving member, and the second clamping portion includes a second linear driving member and a second clamping plate rotatably sleeved on the working end of the second linear driving member.
2. A hot-dip galvanizing pot turnover pouring frame according to claim 1, wherein The first and second clamping plates are fixed on the rack body.
3. A hot-dip galvanizing pot turnover pouring frame according to claim 2, wherein The first and second clamping plates are fixed on the rack body.
4. A hot-dip galvanizing pot turnover pouring frame according to claim 3, wherein The first and second clamping plates are fixed on the rack body.
5. A hot-dip galvanizing pot turnover pouring frame according to claim 4, wherein The first and second clamping plates are fixed on the rack body.
6. A hot-dip galvanizing pot turnover pouring frame according to any one of claims 1 to 5, characterized in that, The first and second clamping plates are fixed on the rack body.
7. A hot-dip galvanizing pot turnover pouring frame according to claim 6, wherein The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body.
8. A hot-dip galvanizing pot turnover pouring frame according to claim 7, wherein The first and second clamping plates are fixed on the rack body.
9. A hot-dip galvanizing pot turnover pouring frame according to claim 8, wherein The first and second clamping plates are fixed on the rack body.
10. A hot-dip galvanizing pot dumper according to any one of claims 1-5, 7-9, characterized in that, The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are fixed on the rack body. The first and second clamping plates are located in the carrying space. The first and second clamping plates are located in the carrying space. The first and second sliding blocks are fixedly connected to the first and second clamping plates, respectively. The first and second clamping plates are located in the carrying space. The first and second linear driving members are air cylinders. The first and second clamping plates are provided with weight reduction holes. The automatic control assembly includes a control system and first and second proximity switches electrically connected to the signal input end of the control system. The first and second proximity switches are fixed on the rack body. The first and second proximity switches are fixed on the rack body. The first and second proximity switch wires are horizontal straight lines. The first proximity switch and the metal sensing sheet form a turnover position detection device. The second proximity switch and the metal sensing sheet form a reset position detection device. The signal output end of the control system is electrically connected to the driving member, the first linear driving member and the second linear driving member.