An electrically fused brick holding box carrying device
By designing a handling device for insulated boxes of fused bricks, the efficient lifting, handling, and stacking of insulated boxes of fused bricks were achieved through mechanized operation, which solved the problem of low transfer efficiency in the existing technology, improved loading efficiency, and reduced the risk of workers being exposed to high temperatures.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- ZHENGZHOU YUANDONG REFRACTORY CO LTD
- Filing Date
- 2023-02-09
- Publication Date
- 2026-04-28
AI Technical Summary
In existing technologies, the transfer efficiency of electrofused brick insulation boxes is low, workers need to operate them one by one, and multiple boxes cannot be stacked on a trolley, resulting in low loading efficiency.
A handling device for insulated boxes of fused bricks was designed, including a transfer frame, a base, a lifting frame, a transfer arm, a clamping assembly, and a lifting plate. The device enables the lifting, handling, stacking, and loading/unloading of insulated boxes of fused bricks through mechanized operation. The combination of the clamping assembly and the flip plate enables safe stacking and efficient transfer.
It improves the handling efficiency of insulated boxes for fused bricks, reduces the risk of workers coming into contact with high temperatures, and enables the safe stacking and efficient transfer of multiple insulated boxes.
Smart Images

Figure CN116142712B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electrofused brick technology, and more specifically to a handling device for an electrofused brick insulation box. Background Technology
[0002] Electrofused bricks, also known as electrofused zirconia-corundum bricks, are refractory products made from industrial alumina powder and selected zircon sand. They are mainly used in glass industry tank furnaces, glass electric furnaces, and other high-temperature and erosion-resistant kilns.
[0003] After the raw materials for fused fused bricks are melted, they are poured into an insulated box and annealed and solidified inside the box. Therefore, the molten fused fused bricks release a large amount of heat during solidification. To avoid affecting subsequent casting production of the fused fused brick insulated boxes, the boxes are transferred after casting.
[0004] Currently, the transfer of insulated boxes for fused bricks requires workers to lift, hook, and unload each box individually. Due to the heat emitted during the annealing of the insulated boxes, workers need to complete all operations in a short time. In addition, the trolleys used to transport the insulated boxes cannot be stacked, so only one or two boxes can be loaded at a time, resulting in low loading and transfer efficiency. Summary of the Invention
[0005] The purpose of this invention is to provide a handling device for insulated boxes of fused bricks, which can realize the loading, transfer and stacking of insulated boxes of fused bricks, thereby improving the handling efficiency of insulated boxes of fused bricks.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a transport device for an electric fused brick insulation box, comprising a transport frame and a base slidably mounted on the transport frame, wherein a lifting frame is axially rotatably mounted on the top of the base, and a transport arm is slidably mounted on the lifting frame, a clamping assembly is movably mounted at one end of the transport arm, a lifting plate is slidably mounted on the outer wall of one side of the transport frame, and a transport plate is slidably mounted on the lifting plate, a flip plate is hinged on the transport plate, and a control assembly for flipping the flip plate is movably mounted on the top of the transport frame.
[0007] Preferably, the top of the transfer frame is provided with a sliding groove, and the base is slidably disposed in the sliding groove. A first screw is axially rotatably disposed inside the transfer frame, and the base is threadedly rotatably disposed on the first screw. A first motor is disposed inside the transfer frame, and a second motor is fixedly installed inside the base, with the output end of the second motor fixedly installed on the lifting frame.
[0008] Preferably, a slide rail is provided on one side of the outer wall of the lifting frame, the transfer arm is slidably disposed in the slide rail, a take-up reel is axially rotatably disposed on the top of the lifting frame, and a third motor is fixedly installed on the top of the lifting frame.
[0009] Preferably, a functional frame is fixedly installed at the first end of the transfer arm, a functional plate is fixedly installed on the functional frame, a drive gear is axially rotatably arranged on the outer wall of the functional plate adjacent to the functional frame, and guide grooves are symmetrically opened on the drive gear. A fourth motor is fixedly installed inside the functional frame, and the output end of the fourth motor is fixedly installed on the drive gear. An auxiliary gear axially rotatably arranged on the functional plate meshes with the drive gear.
[0010] Preferably, the clamping assembly includes a clamping plate symmetrically and movably disposed on the outer wall of the functional plate on the side opposite to the drive gear disk, and the clamping plate is slidably disposed in the through slots symmetrically opened on the functional plate by means of the support rods disposed thereon, and the transmission shafts fixedly installed at the first end of the support rods are movably disposed in the guide slots.
[0011] Preferably, a slide rod is fixedly installed on the functional plate, and a second screw is axially rotatably mounted on the slide rod. A nut plate is slidably mounted on the slide rod, and the nut plate is threadedly mounted on the second screw. The first end of the second screw is fixedly installed on the auxiliary gear. A buffer plate is slidably mounted on the nut plate, and multiple buffer springs are provided between the buffer plate and the nut plate.
[0012] Preferably, a lifting groove is provided on the outer wall of one side of the transfer frame, a third screw is axially rotatably arranged in the lifting groove, the lifting plate is threadedly rotatably arranged on the third screw, and a gear transmission assembly for driving the third screw to rotate is movably arranged at the bottom of the transfer frame.
[0013] Preferably, the gear transmission assembly includes a lifting motor, an output shaft, a first gear, and a second gear. The first gear is fixedly mounted on a third screw, and the second gear is axially rotatably mounted on a transfer frame via a mounting shaft provided thereon. The first gear and the second gear mesh. The output shaft is fixedly mounted on the output end of the lifting motor, and one end of the output shaft meshes with a wedge gear at one end of the mounting shaft.
[0014] Preferably, the lifting plate is symmetrically provided with guide rails, the bottom beams of the transfer plate are symmetrically arranged at the bottom and are slidably disposed in the guide rails, the top of the transfer plate is provided with multiple support plates, the flip plate is hinged to one of the support plates, and one end of the flip plate hinge shaft is provided with a lever plate.
[0015] Preferably, the control component includes a slider that is slidably disposed on the top of the transfer frame and a main electric push rod that is fixedly installed on the top of the transfer frame. The output end of the main electric push rod is fixedly installed on the slider. A flip motor is fixedly installed on the top of the slider. A U-shaped plate is fixedly installed on the output end of the flip motor, and a lever is movably disposed within the U-shaped plate.
[0016] In the above technical solution, the electric fused brick insulation box handling device provided by the present invention has the following beneficial effects: By using a base slidably set on a transfer frame, in conjunction with a lifting frame that is driven to rotate axially at the top of the base and a transfer arm that is driven to slide on the lifting frame, the clamping component set at one end of the transfer arm can be used to lift, transport, and stack the electric fused brick insulation box. At the same time, in order to achieve safe stacking and loading / unloading of the electric fused brick insulation boxes, a lifting plate is driven to slide on the outer wall of one side of the transfer frame, and the transfer plate is slidably set on the lifting plate. This allows the transfer plate to move with the lifting plate to the transfer frame or be placed on the ground. In addition, the control component set on the top of the transfer frame can be used to control the flip plate to flip, so that the electric fused brick insulation boxes can be stacked on the flip plate. At the same time, the mechanical operation can reduce the discomfort caused to workers approaching the electric fused brick insulation box. Attached Figure Description
[0017] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0018] Figure 1 This is a schematic diagram of the overall structure provided for an embodiment of the present invention;
[0019] Figure 2 This is a partial structural schematic diagram provided for an embodiment of the present invention;
[0020] Figure 3 This is a schematic diagram of the bottom structure of the transfer vehicle frame provided in an embodiment of the present invention;
[0021] Figure 4 This is a schematic diagram of the transfer tray structure provided in an embodiment of the present invention;
[0022] Figure 5 This is a schematic diagram of the overall cross-sectional structure of the transfer vehicle frame provided in an embodiment of the present invention;
[0023] Figure 6 This is a schematic cross-sectional view of the transfer vehicle frame provided in an embodiment of the present invention;
[0024] Figure 7This is a schematic diagram of the drive gear disk structure provided in an embodiment of the present invention;
[0025] Figure 8 This is an enlarged structural diagram of point A provided in an embodiment of the present invention;
[0026] Figure 9 This is an enlarged structural diagram of point B provided in an embodiment of the present invention.
[0027] Explanation of reference numerals in the attached figures:
[0028] 1. Transfer trolley frame; 2. Base; 3. Lifting frame; 4. Transfer arm; 5. Lifting plate; 6. Transfer plate; 7. Main electric push rod; 8. Third screw; 9. Support rod; 11. Slide groove; 12. Push plate; 13. Lifting groove; 21. First screw; 22. Second motor; 23. First motor; 31. Slide rail; 32. Take-up reel; 33. Third motor; 41. Functional frame; 42. Fourth motor; 43. Drive gear; 44. Guide groove; 45. Auxiliary gear; 6. Functional plate; 47. Through slot; 48. Slide rod; 49. Second screw; 51. Guide rail; 61. Support plate; 62. Bottom beam; 63. Flip plate; 64. Paddle plate; 71. Slider; 72. Tilting motor; 73. U-shaped plate; 81. First gear; 82. Mounting shaft; 83. Second gear; 84. Output shaft; 85. Lifting motor; 91. Transmission shaft; 92. Clamping plate; 93. Nut plate; 94. Guide rod; 95. Buffer plate; 96. Buffer spring. Detailed Implementation
[0029] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0030] like Figure 1-9As shown, a conveying device for an electric fused brick insulation box includes a transfer frame 1 and a base 2 that is slidably mounted on the transfer frame 1. A lifting frame 3 is rotatably mounted on the top of the base 2, and a transfer arm 4 is slidably mounted on the lifting frame 3. A clamping component is movably mounted at one end of the transfer arm 4. A lifting plate 5 is slidably mounted on the outer wall of one side of the transfer frame 1, and a transfer plate 6 is slidably mounted on the lifting plate 5. A flip plate 63 is hinged on the transfer plate 6, and a control component that drives the flip plate 63 to flip is movably mounted on the top of the transfer frame 1. By using a base 2 slidably mounted on a transfer frame 1, a lifting frame 3 driven to rotate axially on the top of the base 2, and a transfer arm 4 driven to slide on the lifting frame 3, the clamping assembly at one end of the transfer arm 4 is used to lift, transport, and stack the electric fused brick insulation boxes. At the same time, in order to achieve safe stacking and loading / unloading of the electric fused brick insulation boxes, a lifting plate 5 is driven to slide on the outer wall of one side of the transfer frame 1, and a transfer plate 6 is slidably mounted on the lifting plate 5. This allows the transfer plate 6 to move with the lifting plate 5 onto the transfer frame 1 or be placed on the ground. Simultaneously, a control assembly movable on the top of the transfer frame 1 is used to control the flip plate 63 to flip, so that the electric fused brick insulation boxes can be stacked on the flip plate 63.
[0031] like Figure 1 As shown, as a further technical solution provided by the present invention, the top of the transfer frame 1 is provided with a sliding groove 11, and the base 2 is slidably disposed in the sliding groove 11. A first screw 21 is axially rotatably disposed in the transfer frame 1, and the base 2 is threadedly rotatably disposed on the first screw 21. A first motor 23 is disposed in the transfer frame 1, and a second motor 22 is fixedly installed in the base 2, and the output end of the second motor 22 is fixedly installed on the lifting frame 3.
[0032] Specifically, in order to enable the lifting frame 3 to move along the slide 11, and simultaneously allow the lifting frame 3 to rotate axially on the base 2, as follows: Figure 9 As shown, by using the belt drive of the pulley set at one end of the first screw 21 and one end of the second motor 22, the second motor 22 drives the first screw 21 to rotate. At this time, the base 2 is screwed and rotated on the first screw 21 and slides in the slide groove 11. The second motor 22 drives the lifting frame 3 to rotate on the top of the base 2, so as to realize the swing transport of the electric fused brick insulation box by the transfer arm 4.
[0033] As a further technical solution provided by the present invention, a slide rail 31 is provided on the outer wall of one side of the lifting frame 3, the transfer arm 4 is slidably disposed in the slide rail 31, a take-up wheel 32 is axially rotated on the top of the lifting frame 3, and a third motor 33 is fixedly installed on the top of the lifting frame 3.
[0034] Specifically, in order to enable the transfer arm 4 to move up and down along the lifting frame 3, thereby facilitating the transfer arm 4 to cooperate with the clamping assembly to stack the electric discharge melting brick insulation box, such as... Figure 2 As shown, the output end of the third motor 33 and the belt drive of one end of the rotating shaft of the take-up reel 32 are connected to drive the third motor 33 to rotate the take-up reel 32 to wind the rope. The steel wire rope wound on the take-up reel 32 is used to pull the transfer arm 4 to slide in the slide rail 31, thereby realizing the stacking of the electric fused brick insulation box.
[0035] As a further technical solution provided by the present invention, a functional frame 41 is fixedly installed at the first end of the transfer arm 4, a functional plate 46 is fixedly installed on the functional frame 41, a drive gear 43 is axially rotatably arranged on the outer wall of the functional plate 46 adjacent to the functional frame 41, and a guide groove 44 is symmetrically opened on the drive gear 43. A fourth motor 42 is fixedly installed inside the functional frame 41, and the output end of the fourth motor 42 is fixedly installed on the drive gear 43. An auxiliary gear 45 axially rotatably arranged on the functional plate 46 meshes with the drive gear 43.
[0036] Specific examples Figure 7 As shown, the fourth motor 42 installed in the functional frame 41 drives the drive gear 43 to rotate, and the rotation of the drive gear 43 causes the drive gear 43 to drive the auxiliary gear 45 to rotate.
[0037] As a further technical solution provided by the present invention, the clamping assembly includes a clamping plate 92 symmetrically and movably disposed on the outer wall of the functional plate 46 relative to the drive gear disk 43, and the clamping plate 92 is slidably disposed in the through slots 47 symmetrically opened on the functional plate 46 by means of the support rods 9 disposed thereon, and the transmission shaft 91 fixedly installed at the first end of the support rod 9 is movably disposed in the guide slot 44.
[0038] Specifically, in order to achieve the clamping of the electrofused brick insulation box, such as Figure 8 As shown, the support rods 9 slide within the through slots 47, while the transmission shafts 91 are movably mounted within the guide slots 44. Therefore, when the fourth motor 42 drives the drive gear 43 to rotate, the transmission shafts 91... Figure 7 as well as Figure 8 It can be seen that the drive shaft 91 can move along the end of the guide groove 44 away from the axis to the end of the guide groove 44 near the axis, and then cooperate with the support rod 9 to slide in the through groove 47 so that the clamping plates 92 move closer to each other to clamp the electric fused brick insulation box. Similarly, by moving the drive shaft 91 along the end of the guide groove 44 near the axis to the end of the guide groove 44 away from the axis, the clamping plates 92 move further apart, thereby freeing the electric fused brick insulation box from clamping.
[0039] As a further technical solution provided by the present invention, a slide rod 48 is fixedly installed on the functional plate 46, and a second screw 49 is axially rotatably arranged on the slide rod 48. A nut plate 93 is slidably arranged on the slide rod 48, and the nut plate 93 is threadedly rotatably arranged on the second screw 49. The first end of the second screw 49 is fixedly installed on the auxiliary gear 45. A buffer plate 95 is slidably arranged on the nut plate 93, and a plurality of buffer springs 96 are arranged between the buffer plate 95 and the nut plate 93.
[0040] Specifically, to further secure the electrofused brick insulation box, when the clamping plates 92 approach each other to clamp the electrofused brick insulation box, the drive gear 43 and auxiliary gear 45 rotate respectively. Due to the rotation of the auxiliary gear 45, the second screw 49 rotates along the axis of the auxiliary gear 45. At this time, the nut plate 93 rotates threadedly on the second screw 49 and slides on the slide rod 48. When the clamping plates 92 approach each other, the nut plate 93 moves towards the functional plate 46, thereby allowing the functional plate 46 to cooperate with the nut plate 93 to further clamp the electrofused brick insulation box. Similarly, when the clamping plates 92 move away from each other, the nut plate 93 moves away from the functional plate 46, thereby allowing the nut plate 93 to break free from clamping the electrofused brick insulation box. In order to make the buffer plate 95 and the clamping plates 92 simultaneously adhere to the outer wall of the electrofused brick insulation box, the buffer plate 95... The guide rods 94, symmetrically arranged on the guide rods 94, slide on the nut plate 93. The two ends of the buffer spring 96 are fixedly installed on the nut plate 93 and the buffer plate 95, respectively. When the drive gear 43 rotates, the clamping plates 92 move closer together, while the buffer plate 95 moves towards the functional plate 46. When the buffer plate 95 is in contact with the outer wall of the electrofused brick insulation box, the clamping plates 92 continue to move closer together, and the buffer spring 96 compresses and buffers. When the clamping plates 92 are in contact with the outer wall of the electrofused brick insulation box, the buffer spring 96 pushes the buffer plate 95 to make it fit against the outer wall of the electrofused brick insulation box, thus cooperating with the functional plate 46 to clamp the electrofused brick insulation box. The close proximity of the clamping plates 92 also clamps and fixes the electrofused brick insulation box, thereby ensuring the stability of the clamping of the electrofused brick insulation box.
[0041] As a further technical solution provided by the present invention, a lifting groove 13 is provided on the outer wall of one side of the transfer frame 1, a third screw 8 is axially rotatably arranged in the lifting groove 13, the lifting plate 5 is threadedly rotatably arranged on the third screw 8, and a gear transmission assembly that drives the third screw 8 to rotate is movably arranged at the bottom of the transfer frame 1.
[0042] Specifically, by using a gear transmission assembly to drive the lifting plate 5 to move up and down along the lifting groove 13, the lifting plate 5 is driven to lift, transport and unload the transfer plate 6. Furthermore, by configuring multiple transfer plates 6, the electric fused brick insulation box can be loaded and transferred quickly.
[0043] As a further technical solution provided by the present invention, the gear transmission assembly includes a lifting motor 85, an output shaft 84, a first gear 81 and a second gear 83. The first gear 81 is fixedly mounted on the third screw 8, and the second gear 83 is axially rotatably mounted on the transfer frame 1 via the mounting shaft 82 provided thereon. The first gear 81 and the second gear 83 mesh. The output shaft 84 is fixedly mounted on the output end of the lifting motor 85, and one end of the output shaft 84 meshes with a wedge gear at one end of the mounting shaft 82.
[0044] Specifically, in order to drive the lifting plate 5 to lift, the lifting motor 85 is used to make the output shaft 84 and the wedge gear at one end of the mounting shaft 82 mesh and transmit power. At the same time, the second gear 83 on the mounting shaft 82 meshes with the first gear 81, so that the third screw 8 rotates with the first gear 81. At this time, the lifting plate 5 rotates on the third screw 8 and slides on the transfer frame 1, thereby realizing the driving lifting and lowering of the lifting plate 5.
[0045] As a further technical solution provided by the present invention, the lifting plate 5 is symmetrically provided with guide rails 51, the bottom beams 62 symmetrically provided at the bottom of the transfer plate 6 are slidably provided in the guide rails 51, the top of the transfer plate 6 is provided with multiple support plates 61, the flip plate 63 is hinged to one of the support plates 61, and one end of the hinge shaft of the flip plate 63 is provided with a lever plate 64.
[0046] Specifically, in order to make the transfer tray 6 fit against the ground during transfer, the transfer tray 6 is slidably mounted in the guide rail 51 by means of the bottom beams 62 symmetrically arranged at the bottom. When the lifting tray 5 is lowered, the transfer tray 6 is made to fit against the ground. The transfer frame 1 is moved so that the transfer tray 6 slides back into the guide rail 51 and disengages from the lifting tray 5, thereby realizing the loading of the transfer tray 6.
[0047] As a further technical solution provided by the present invention, the control component includes a slider 71 slidably disposed on the top of the transfer frame 1 and a main electric push rod 7 fixedly installed on the top of the transfer frame 1. The output end of the main electric push rod 7 is fixedly installed on the slider 71. A flip motor 72 is fixedly installed on the top of the slider 71. A U-shaped plate 73 is fixedly installed on the output end of the flip motor 72, and a dial 64 is movably disposed within the U-shaped plate 73.
[0048] Specifically, to facilitate the stacking of the electrofused brick insulation boxes, a torsion spring is fitted onto the hinge shaft of the flip plate 63. The first end of the torsion spring is fixedly mounted on the flip plate 63, and the second end is fixedly mounted on the support plate 61. The torsion spring drives the flip plate 63 to flip, thereby opening the placement slots between the support plates 61. Figure 1 and Figure 4It can be seen that when the lifting plate 5 is driven upward, the lever 64 moves between the U-shaped plates 73, using the placement slot provided on the top of the transfer plate 6 to allow the electrofused brick insulation box to be placed between the support plates 61. After the placement slot between the support plates 61 on the top of the transfer plate 6 is full, the flipping motor 72 drives the U-shaped plate 73 to rotate, which in turn drives the lever 64 to flip. At the same time, the hinge shaft of the flipping plate 63 flips with the lever 64 so that the flipping plate 63 flips to cover the space between the support plates 61. The fused brick insulation box is then moved again using the base 2, lifting frame 3, and clamping components, and placed on the flip plate 63 to press it down. After the fused brick insulation box is pressed down on the flip plate 63, the main electric push rod 7 drives the slider 71 to slide, causing the lever 64 to disengage from between the U-shaped plates 73. At this point, the pressing flip plate 63 of the fused brick insulation box stops flipping. Subsequently, the fused brick insulation box is transferred again using the transfer cart 1. Figure 1 It is known that the push plate 12 set on the transfer frame 1 is far away from the transfer tray 6, thereby avoiding discomfort caused by workers approaching the electric fused brick insulation box. When the transfer tray 6 is driven down to the ground by the lifting tray 5, after the electric fused brick insulation box on the flip plate 63 is taken out, the torsion spring drives the flip plate 63 to flip again to expose the electric fused brick insulation box on the top of the transfer tray 6, so as to facilitate the taking out of the electric fused brick insulation box on the top of the transfer tray 6. At the same time, the flip plate 63 after flipping is convenient for subsequent use, which greatly speeds up the transfer efficiency.
[0049] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A handling device for an electrofused brick insulation box, characterized in that, The system includes a transfer frame (1) and a base (2) that is slidably mounted on the transfer frame (1). A lifting frame (3) is slidably mounted on the top of the base (2), and a transfer arm (4) is slidably mounted on the lifting frame (3). A clamping component is movably mounted on one end of the transfer arm (4). A lifting plate (5) is slidably mounted on the outer wall of one side of the transfer frame (1), and a transfer plate (6) is slidably mounted on the lifting plate (5). A flip plate (63) is hinged on the transfer plate (6), and a control component that drives the flip plate (63) to flip is movably mounted on the top of the transfer frame (1). A functional frame (41) is fixedly installed at the first end of the transfer arm (4), and a functional plate (46) is fixedly installed on the functional frame (41). A drive gear (43) is axially rotatably arranged on the outer wall of the functional plate (46) adjacent to the functional frame (41), and a guide groove (44) is symmetrically opened on the drive gear (43). A fourth motor (42) is fixedly installed inside the functional frame (41), and the output end of the fourth motor (42) is fixedly installed on the drive gear (43). An auxiliary gear (45) axially rotatably arranged on the functional plate (46) meshes with the drive gear (43). The clamping assembly includes a clamping plate (92) symmetrically and movably disposed on the outer wall of the functional plate (46) relative to the drive gear plate (43), and the clamping plate (92) is slidably disposed in the through slots (47) symmetrically opened on the functional plate (46) by means of the support rod (9) disposed thereon; the transmission shaft (91) fixedly installed at the first end of the support rod (9) is movably disposed in the guide groove (44); A slide rod (48) is fixedly installed on the functional plate (46), and a second screw (49) is axially rotatably mounted on the slide rod (48). A nut plate (93) is slidably mounted on the slide rod (48), and the nut plate (93) is threadedly mounted on the second screw (49). The first end of the second screw (49) is fixedly mounted on the auxiliary gear (45). A buffer plate (95) is slidably mounted on the nut plate (93), and multiple buffer springs (96) are provided between the buffer plate (95) and the nut plate (93).
2. The electric fused brick insulation box handling device according to claim 1, characterized in that, The top of the transfer frame (1) is provided with a sliding groove (11), and the base (2) is slidably disposed in the sliding groove (11). The first screw (21) is axially rotatably disposed in the transfer frame (1), and the base (2) is threadedly rotatably disposed on the first screw (21). The first motor (23) is disposed in the transfer frame (1), and the second motor (22) is fixedly installed in the base (2), and the output end of the second motor (22) is fixedly installed on the lifting frame (3).
3. The electric fused brick insulation box handling device according to claim 1, characterized in that, A slide rail (31) is provided on the outer wall of one side of the lifting frame (3). The transfer arm (4) is slidably disposed in the slide rail (31). A take-up wheel (32) is axially rotated on the top of the lifting frame (3). A third motor (33) is fixedly installed on the top of the lifting frame (3).
4. The electric fused brick insulation box handling device according to claim 1, characterized in that, The outer wall of one side of the transfer frame (1) is provided with a lifting groove (13), and a third screw (8) is axially rotatably arranged in the lifting groove (13). The lifting plate (5) is threadedly rotatably arranged on the third screw (8). A gear transmission assembly that drives the third screw (8) to rotate is movably arranged at the bottom of the transfer frame (1).
5. The electric fused brick insulation box handling device according to claim 4, characterized in that, The gear transmission assembly includes a lifting motor (85), an output shaft (84), a first gear (81), and a second gear (83). The first gear (81) is fixedly mounted on a third screw (8), and the second gear (83) is axially rotatably mounted on a transfer frame (1) via a mounting shaft (82) provided thereon. The first gear (81) and the second gear (83) mesh. The output shaft (84) is fixedly mounted on the output end of the lifting motor (85), and one end of the output shaft (84) meshes with a wedge gear at one end of the mounting shaft (82).
6. The electric fused brick insulation box handling device according to claim 1, characterized in that, The lifting plate (5) is symmetrically provided with guide rails (51), and the bottom beams (62) symmetrically provided at the bottom of the transfer plate (6) are slidably provided in the guide rails (51). The top of the transfer plate (6) is provided with multiple support plates (61), and the flip plate (63) is hinged to one of the support plates (61). One end of the hinge shaft of the flip plate (63) is provided with a lever plate (64).
7. The electric fused brick insulation box handling device according to claim 1, characterized in that, The control component includes a slider (71) that slides on the top of the transfer frame (1) and a main electric push rod (7) that is fixedly installed on the top of the transfer frame (1). The output end of the main electric push rod (7) is fixedly installed on the slider (71). A flip motor (72) is fixedly installed on the top of the slider (71). A U-shaped plate (73) is fixedly installed on the output end of the flip motor (72), and a dial (64) is movably installed inside the U-shaped plate (73).
Citation Information
Patent Citations
Structure of electric brick conveying vehicle
CN108791380A
Intelligent logistics transfer equipment
CN112320267A