Stacking equipment for autoclaved aerated phosphogypsum blocks
By combining the moving mechanism and the clamping mechanism, the problem of angular displacement and damage of phosphogypsum blocks during the stacking process is solved, achieving precise correction and protective clamping of the blocks, and improving the efficiency and quality of the stacking equipment.
Patent Information
- Application Number
- CN202511617067.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-06
- Publication Date
- 2025-12-05
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the stacking of phosphogypsum blocks, the blocks are prone to angular displacement or wear during transport or clamping, and it is difficult to effectively determine the damage to the block surface, resulting in space occupation and block damage, which affects stacking efficiency and quality.
The stacking equipment employs a moving mechanism, a clamping mechanism, and a transfer mechanism. The drive structure moves the sliding plate and the inclined block. Air pressure and sensors are used to detect block damage. Electromagnets attract and release the blocks, while elastic structures support and airbags clamp them, achieving the correction and protective clamping of the blocks.
It effectively corrects block angle deviations, avoids wear, promptly removes damaged blocks, reduces the damage rate and impact damage of blocks during stacking, and improves stacking efficiency and quality.
Smart Images

Figure CN121063136A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of block stacking, in particular to a steam pressure aerated phosphogypsum block stacking equipment. BACKGROUND
[0002] The steam pressure aerated phosphogypsum block is a new type of wall material made of phosphogypsum as the main raw material through processes such as batching, stirring, pouring, gas evolution, static stopping, cutting and steam pressure curing. It has the advantages of light weight, good thermal insulation performance, good sound insulation effect and strong anti-seismic ability. With the increasing demand for energy-saving and environment-friendly materials in the construction industry, the application of such blocks in construction engineering is becoming more and more widespread, and their production is also increasing, which puts higher requirements on the stacking of the blocks.
[0003] However, in the process of stacking the phosphogypsum blocks, when the phosphogypsum blocks are transported into the aisle shelf, if the phosphogypsum blocks deviate in angle during transportation, the clamping device will be clamped at the corner of the phosphogypsum block during subsequent clamping, or the correction during clamping by the clamping device will also cause the position of the phosphogypsum block to change, causing the side to be clamped and worn. At the same time, when the phosphogypsum block is clamped, it is impossible to judge whether the clamped surface of the phosphogypsum block is damaged. If it is still put into the aisle shelf, it will occupy space. When the phosphogypsum block is put into the shelf, if it is directly pushed in, it will cause the phosphogypsum block to be worn, and if it is vertically dropped into the shelf, it will cause the phosphogypsum block to be impacted, and if it is damaged. SUMMARY
[0004] The purpose of the present application is to provide a steam pressure aerated phosphogypsum block stacking equipment to solve the problems raised in the background.
[0005] To achieve the above purpose, the present application provides the following technical scheme: a steam pressure aerated phosphogypsum block stacking equipment, comprising a moving mechanism, an aisle shelf and a conveying mechanism, one end of the conveying mechanism is provided with a transfer mechanism, the lower end of the moving mechanism is provided with a clamping mechanism, and the upper surface of the conveying mechanism is provided with a phosphogypsum block. The transfer mechanism comprises a base, the upper end of the base is provided with a frame, a bevel block is slidably connected in the cavity of the frame, a sensor is fixedly connected to one side of the bevel block, connecting rods are symmetrically installed on the two sides of the frame, the side surfaces of the lower ends of the two connecting rods are fixedly connected with a sliding plate, the connecting rods and the sliding plate are slidably connected inside the base, two folding pipes are symmetrically installed on the side of the sliding plate away from the transfer mechanism, an air inlet plate is fixedly connected to one end of the folding pipe, an elastic structure is arranged on the side of the sliding plate away from the folding pipe, a telescopic pipe two is installed at the other end of the elastic structure, a bottom plate is fixedly connected to the upper end of the telescopic pipe two, and the bottom plate can abut against the lower end of the phosphogypsum block, an electromagnet is installed on the inner wall of the base, and a magnetic sheet that can be attracted by the electromagnet is installed on one side of the sliding plate. Symmetrical correction structures are arranged at the two ends of the base, which can correct the phosphogypsum block, and the correction structures are communicated with the air inlet plate. A driving structure for driving the sliding plate to move is installed at the lower end of the base.
[0006] Preferably, the clamping mechanism comprises a cover plate, two sliding cylinders are symmetrically slidably connected to the two sides of the cover plate, a clamping cylinder is fixedly connected to one side of each sliding cylinder, and an air bag is installed at the bottom end of the opposite side of each clamping cylinder.
[0007] Preferably, the elastic structure comprises a side pipe, the side pipe is symmetrically installed on the two sides of the telescopic pipe two, two air pipes that are slidably connected with the air inlet plate are symmetrically fixedly connected to one side of the side pipe, and each air pipe is in the cavity of the corresponding folding pipe.
[0008] Preferably, a through hole is formed in the outer side wall of each air pipe, each through hole is located on the side close to the air inlet plate, a spring two is sleeved on the outer side wall of the air pipe, and the two ends of the spring two are fixedly connected with the side pipe and the sliding plate respectively.
[0009] Preferably, a notch is formed in the upper surface of the bottom plate and communicates with the telescopic pipe two, a piston is slidably connected to the upper notch of the telescopic pipe two, a supporting plate is fixedly connected to the inner side wall of the telescopic pipe two, a spring three is fixedly connected between the supporting plate and the piston, a gas cylinder one is fixedly connected to the outer side wall of the piston, and the output end of the gas cylinder one is fixedly connected with the piston.
[0010] Preferably, an airflow sensor is installed on the lower surface of the cover plate and communicates with the air bag, one-way valves are fixedly connected to the output ends on the two sides of the airflow sensor, an exhaust hole is formed in the upper surface of each sliding cylinder, a sliding sheet is slidably connected in the cavity of the exhaust hole and can block the exhaust hole, two gas cylinder twos are symmetrically installed on the upper surface of the cover plate, and each gas cylinder two is fixedly connected with the corresponding sliding sheet.
[0011] Preferably, the correcting structure comprises two L-shaped pipes, the two L-shaped pipes are symmetrically arranged on two sides of the base, two air grooves are symmetrically arranged in the base, and the air grooves and the L-shaped pipes are communicated, the upper end of the L-shaped pipe is fixedly connected with a long pipe, and three telescopic pipes one are equidistantly arranged on the side of the long pipe close to the base.
[0012] Preferably, the inside of each telescopic pipe one on the left and right sides of the long pipe is fixedly connected with a spring one, the other end of each spring one is fixedly connected with the inner wall of the long pipe, and the end of each telescopic pipe one away from the long pipe is fixedly connected with a correcting wheel, and each correcting wheel can be in contact with the phosphogypsum block.
[0013] Preferably, the driving structure comprises a sliding seat, the sliding seat is fixedly connected with the lower end of the sliding plate, the lower end of the base is fixedly connected with two positioning seats, a reciprocating screw rod is rotatably connected between the two positioning seats, the reciprocating screw rod is rotatably connected with the sliding seat, one side of the positioning seat is fixedly connected with a motor, the output end of the motor is fixedly connected with the reciprocating screw rod, the lower end of the base is fixedly connected with a connecting seat, and one side of the connecting seat is screwed with the transmission mechanism.
[0014] Compared with the prior art, the present application has the following advantages: The sliding plate and the bevel block are driven by the driving structure to move together with the phosphogypsum block, in the process of moving of the sliding plate, the folding pipe is continuously compressed, the air in the folding pipe is transmitted to the inside of the long pipe, then the three telescopic pipes one are regularly moved by the air pressure to make the correcting wheel correct the phosphogypsum block, then the cover plate is in contact with the upper end of the phosphogypsum block by the moving mechanism after the correction, then the bottom plate is in contact with the lower end of the phosphogypsum block by the air cylinder one, the air in the long pipe is transmitted to the inside of the bottom plate and then to the inside of the cover plate, the air flow sensor judges whether the surface of the phosphogypsum block is damaged, when the phosphogypsum block is damaged, the electromagnet is powered off and the magnetic sheet is separated from the adsorption, so that the telescopic pipe two and the bottom plate are elastically reset together with the spring two, the damaged phosphogypsum block is thrown out by inertia, and when the phosphogypsum block is not damaged, the air transmitted to the inside of the air bag when the air in the bottom plate is transmitted to the inside of the cover plate makes the air bag expand to lift the phosphogypsum block, and in the process of putting the phosphogypsum block into the moving mechanism, the slow deflation of the bottom plate can reduce the impact of the phosphogypsum block when it is put down, and the damage of the phosphogypsum block is reduced. BRIEF DESCRIPTION OF DRAWINGS
[0015] The present application will be further explained in conjunction with the drawings and examples: Figure 1 It is a schematic diagram of the overall structure of the present application; Figure 2 It is a partial structure schematic diagram of the transmission mechanism of the present application; Figure 3Structure diagram of the transfer mechanism of the present application; Figure 4 Structure diagram of the bottom structure of the transfer mechanism of the present application; Figure 5 Structure diagram of the transfer mechanism of the present application without the base; Figure 6 Structure diagram of the cross section of the base of the present application; Figure 7 Structure diagram of the Figure 6 enlarged view of A; Figure 8 Structure diagram of the Figure 6 enlarged view of B; Figure 9 Structure diagram of the cross section of the long tube of the present application; Figure 10 Structure diagram of the Figure 9 enlarged view of C; Figure 11 Structure diagram of the cross section of the cover plate of the present application; Figure 12 Structure diagram of the Figure 11 partial enlarged view of D; Figure 13 Structure diagram of the Figure 11 partial enlarged view of E.
[0016] Explanation of reference numerals: 1, clamping mechanism; 2, transfer mechanism; 3, phosphogypsum block; 4, base; 5, frame; 6, bevel block; 61, inductor; 7, connecting rod; 8, sliding plate; 9, folding tube; 10, air vent plate; 11, air groove; 12, L-shaped tube; 13, long tube; 14, telescopic tube one; 15, correction wheel; 16, spring one; 17, telescopic tube two; 18, bottom plate; 19, side tube; 20, magnetic sheet; 21, electromagnet; 22, air tube; 23, spring two; 24, through hole; 25, cover plate; 26, sliding cylinder; 27, clamping cylinder; 28, air bag; 29, air vent; 30, sliding sheet; 31, air flow sensor; 311, one-way valve; 32, piston; 33, supporting plate; 34, spring three; 35, air cylinder one; 36, sliding seat; 37, positioning seat; 38, reciprocating screw rod; 39, motor; 40, moving mechanism; 41, roadway shelf; 42, transmission mechanism; 43, connecting seat; 44, air cylinder two. DETAILED DESCRIPTION
[0017] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments of the present application, all the other embodiments obtained by those skilled in the art without creative work fall within the scope of the present application.
[0018] Please refer to Figures 1-13 The present application provides a technical solution: a steam pressure aerated phosphogypsum block stacking equipment, comprising a moving mechanism 40, a roadway shelf 41 and a transmission mechanism 42, one end of the transmission mechanism 42 is provided with a transfer mechanism 2, the lower end of the moving mechanism 40 is provided with a clamping mechanism 1, and the upper surface of the transmission mechanism 42 is placed with a phosphogypsum block 3. The transfer mechanism 2 comprises a base 4, the upper end of the base 4 is provided with a frame 5, the cavity of the frame 5 is slidably connected with a bevel block 6, one side of the bevel block 6 is fixedly connected with an inductor 61, the two sides of the frame 5 are symmetrically provided with connecting rods 7, the side surfaces of the lower ends of the two connecting rods 7 are commonly fixedly connected with a sliding plate 8, and the connecting rod 7 and the sliding plate 8 are slidably connected in the base 4, the side of the sliding plate 8 away from the transmission mechanism 42 is symmetrically provided with two folding pipes 9, one end of the folding pipe 9 is fixedly connected with a ventilation plate 10, the side of the sliding plate 8 away from the folding pipe 9 is provided with an elastic structure, the other end of the elastic structure is provided with a telescopic pipe two 17, the upper end of the telescopic pipe two 17 is fixedly connected with a bottom plate 18, and the bottom plate 18 can abut against the lower end of the phosphogypsum block 3, the inner wall of the base 4 is provided with an electromagnet 21, and one side of the sliding plate 8 is provided with a magnetic sheet 20 capable of being attracted by the electromagnet 21; The two ends of the base 4 are symmetrically provided with a correction structure, which can correct the phosphogypsum block 3, and the correction structure is in communication with the ventilation plate 10; The lower end of the base 4 is provided with a driving structure for driving the sliding plate 8 to move.
[0019] Specifically, the phosphogypsum block 3 is transmitted to the upper end of the transfer mechanism 2 through the transmission mechanism 42, when the phosphogypsum block 3 contacts the inductor 61, the driving structure is started to drive the sliding plate 8 and the bevel block 6 to move together with the phosphogypsum block 3, at the same time, the folding pipe 9 is continuously compressed in the process of the sliding plate 8 moving, so that the internal air is transmitted to the inside of the correction structure in communication with the ventilation plate 10, so that the correction structure corrects the phosphogypsum block 3, then the clamping mechanism 1 is driven by the moving mechanism 40 to clamp the corrected phosphogypsum block 3, and then the phosphogypsum block 3 is shifted to the bracket of the roadway shelf 41.
[0020] In this embodiment, the clamping mechanism 1 comprises a cover plate 25, two sliding cylinders 26 are symmetrically slidably connected on the two sides of the cover plate 25, a clamping cylinder 27 is fixedly connected on one side of each sliding cylinder 26, and an air bag 28 is mounted on the bottommost end of the opposite side of each clamping cylinder 27.
[0021] In the embodiment, the elastic structure comprises side pipes 19 symmetrically arranged on both sides of the telescopic pipe 2, and one side of each side pipe 19 is symmetrically fixedly connected with two air pipes 22 slidably connected with the air inlet plate 10, and each air pipe 22 is located in the cavity of the corresponding folding pipe 9.
[0022] In the embodiment, the outer side wall of each air pipe 22 is provided with a through hole 24, and each through hole 24 is located on the side close to the air inlet plate 10. The outer side wall of the air pipe 22 is sleeved with a spring 23, and the two ends of the spring 23 are fixedly connected with the side pipe 19 and the sliding plate 8 respectively.
[0023] In the embodiment, the upper surface of the bottom plate 18 is provided with a notch in communication with the telescopic pipe 2, and the upper notch of the telescopic pipe 2 is slidably connected with a piston 32. The inner side wall of the telescopic pipe 2 is fixedly connected with a supporting plate 33, and the supporting plate 33 and the piston 32 are fixedly connected with a spring 34. The outer side wall of the piston 32 is fixedly connected with a cylinder 1, and the output end of the cylinder 1 is fixedly connected with the piston 32.
[0024] In the embodiment, the lower surface of the cover plate 25 is provided with an airflow sensor 31 in communication with the air bag 28. The output ends of the airflow sensor 31 on both sides are fixedly connected with one-way valves 311. The upper surface of each sliding cylinder 26 is provided with an exhaust hole 29, and the cavity of the exhaust hole 29 is slidably connected with a sliding sheet 30, and the sliding sheet 30 can block the exhaust hole 29. The upper surface of the cover plate 25 is symmetrically provided with two cylinders 44, and each cylinder 44 is fixedly connected with the corresponding sliding sheet 30.
[0025] Specifically, referring to Figure 5 and Figure 6 , the spring 23 is in an initial state. When the sliding plate 8 pushes the folding pipe 9 to fold towards the air inlet plate 10, the spring 23 is stretched and stores elastic restoring force. At the same time, the frame 5 and the bevel block 6 are pushed away from directly above the bottom plate 18, and the bevel block 6 naturally falls and slides downward to the bottom end in the frame 5. At this time, after the phosphogypsum block 3 is corrected by the correction structure, the cylinder 1 pushes the piston 32 to move upward. When the cylinder 1 pushes the piston 32 to move upward, the spring 34 does not produce obvious stretching because the bottom plate 18 is not resisted. Therefore, the piston 32 does not move out of the cavity of the telescopic pipe 2, so the cylinder 1 pushes the bottom plate 18 upward together. Until the bottom plate 18 is in contact with the lower surface of the phosphogypsum block 3, and the bottom plate 18 is above the bevel block 6 and the frame 5 at this time. At this time, the cover plate 25 is also pushed by the moving mechanism 40 to cover the upper surface of the phosphogypsum block 3. Referring to Figure 2 , Figure 3 and Figure 4Wherein the lower surface of the cover plate 25 and the upper surface of the bottom plate 18 are both provided with a ring of sealing pads, and the phosphogypsum block 3 is a porous structure penetrating from top to bottom, so at this time if the surface of the phosphogypsum block 3 is not damaged, the bottom plate 18 and the cover plate 25 will be in a state of communication, then the cylinder two 44 pushes the sliding sheet 30 to seal the exhaust hole 29, when the sliding sheet 30 moves to the maximum distance, it will then drive the sliding cylinder 26 and the clamping cylinder 27 to move, so that the clamping cylinder 27 clamps the side surface of the phosphogypsum block 3, then after the bottom plate 18 is in contact with the phosphogypsum block 3, the cylinder one 35 further pushes the piston 32, which will make the piston 32 separate from the cavity of the telescopic pipe two 17, then the gas inside the correction structure will flow into the inside of the bottom plate 18 through the through hole 24, the air pipe 22, the side pipe 19 and the telescopic pipe two 17, then through the hole on the phosphogypsum block 3 to the inside of the cover plate 25, when it is transmitted to the inside of the cover plate 25, the gas will first pass through the airflow sensor 31, which can detect whether the gas still has pressure and flow after passing through the phosphogypsum block 3 naturally, if it does not reach the qualified threshold, the clamping mechanism 1 will be lifted and will not clamp the phosphogypsum block 3 again, at the same time the electromagnet 21 is powered off so that the magnetic sheet 20 and the electromagnet 21 are no longer attracted, at this time the piston 32 releases the elastic restoring force, driving the telescopic pipe two 17 and the side pipe 19 to move together in the direction of the air panel 10, at the same time the bottom plate 18 will move, in the process of moving the bottom plate 18 will move the phosphogypsum block 3 above it, through the inertia of the phosphogypsum block 3 itself, when the bottom plate 18 moves to the end, the phosphogypsum block 3 will be thrown out, thus realizing the effect of quickly removing the defective phosphogypsum block 3, then the cylinder one 35 drives the sliding plate 8 to descend, the driving structure drives the sliding plate 8 to reset, the sliding plate 8 will push the piston 32 and the telescopic pipe two 17 and the bottom plate 18 to reset together, in the process of resetting Figure 13 Wherein the lower end of the bevel block 6 is a bevel. When the lower end of the bevel block 6 is in contact with the sliding plate 8, it will push the bevel block 6 up to make the bevel block 6 be pushed into the cavity of the frame 5 again; When the airflow sensor 31 detects that the gas discharged by the bottom plate 18 reaches the standard, at this time the gas entering the inside of the cover plate 25 will be discharged into the inside of the air bag 28 through the sliding cylinder 26 and the clamping cylinder 27, at this time the clamping cylinder 27 clamps the phosphogypsum block 3, after the air bag 28 is inflated, it will expand to fill the lower end of the phosphogypsum block 3, then the clamping mechanism 1 and the moving mechanism 40 drive the phosphogypsum block 3 to move, the air bag 28 can lift the phosphogypsum block 3, then when the phosphogypsum block 3 is put into the tunnel shelf 41, the cylinder two 44 drives the sliding sheet 30 to move so that the exhaust hole 29 is opened, then the sliding cylinder 26 and the clamping cylinder 27 no longer clamp the phosphogypsum block 3, when the exhaust hole 29 is opened, the air bag 28 will continuously deflate, so that the phosphogypsum block 3 slowly falls and contacts the bracket of the tunnel shelf 41.
[0026] In the embodiment, the correcting structure comprises two L-shaped pipes 12 symmetrically arranged on two sides of the base 4, two air grooves 11 symmetrically arranged in the base 4, and the air grooves 11 and the L-shaped pipes 12 being communicated, a long pipe 13 fixedly connected to the upper end of the L-shaped pipe 12, and three telescopic pipes I 14 equidistantly arranged on one side of the long pipe 13 close to the base 4.
[0027] In the embodiment, a spring I 16 is fixedly connected to the inside of each telescopic pipe I 14 on the left and right sides of the long pipe 13, the other end of each spring I 16 is fixedly connected to the inner wall of the long pipe 13, a correcting wheel 15 is fixedly connected to the end of each telescopic pipe I 14 away from the long pipe 13, and each correcting wheel 15 can abut against the phosphogypsum block 3.
[0028] In the embodiment, the driving structure comprises a sliding seat 36 fixedly connected to the lower end of the sliding plate 8, two positioning seats 37 fixedly connected to the lower end of the base 4, a reciprocating screw rod 38 rotatably connected between the two positioning seats 37 and rotatably connected with the sliding seat 36, a motor 39 fixedly connected to one side of the positioning seat 37 and having an output end fixedly connected with the reciprocating screw rod 38, and a connecting seat 43 fixedly connected to the lower end of the base 4 and screw-connected with the transmission mechanism 42 on one side.
[0029] Specifically, the gas in the folding pipe 9 is transported to the inside of the air passage plate 10, then transported to the inside of the long pipe 13 through the air groove 11 and the L-shaped pipe 12, and then flows into the inside of each telescopic pipe I 14. Figure 9 Only the inside of the telescopic pipe I 14 at the middle position is not provided with the spring I 16, when the gas is transported to the inside of the long pipe 13, the telescopic pipe I 14 at the middle position is preferentially pushed to move, so that the correcting wheel 15 at the middle position first clamps and limits the middle position of the phosphogypsum block 3, then when the air pressure in the long pipe 13 increases, the telescopic pipes I 14 on both sides are pushed to slide, and the springs I 16 in the telescopic pipes I 14 on both sides are stretched, and the simultaneous movement of the telescopic pipes I 14 on both sides can make the correcting wheel 15 further limit the phosphogypsum block 3, so as to correct the phosphogypsum block 3.
[0030] Working principle: first through the transmission mechanism 42 will be phosphogypsum block 3 transmission to the upper end of the transfer mechanism 2, in the phosphogypsum block 3 and inductor 61 contact, the drive structure will start, drive the sliding plate 8 and bevel block 6 along with the phosphogypsum block 3 moves, at the same time in the process of sliding plate 8 will make the folding tube 9 is constantly compressed, so that the internal air transmission to the inside of the long tube 13, then through the air pressure to drive three telescopic tube 14 regular movement so that the correction wheel 15 to the phosphogypsum block 3 correction, then after the correction is completed by moving mechanism 40 will be clamping mechanism 1 moves to the upper end of the phosphogypsum block 3, so that the cover plate 25 and the upper end of the phosphogypsum block 3, then through the cylinder 35 so that the bottom plate 18 and the lower end of the phosphogypsum block 3, through the process of gas flow in the long tube 13 inside the bottom plate 18 and then transmission to the inside of the cover plate 25, through the air flow sensor 31 to determine whether the surface of the phosphogypsum block 3 is damaged, when the phosphogypsum block 3 damage, through the electromagnet 21 power off and magnetic sheet 20 to remove the adsorption, so that the telescopic tube 17 with the bottom plate 18 along with the spring 23 together with elastic reset, so that the damaged phosphogypsum block 3 through the inertia throw out, at the same time in the case of no damage to the phosphogypsum block 3, the bottom plate 18 to the gas delivered to the inside of the cover plate 25 will be transmitted to the inside of the air bag 28, so that the air bag 28 inflation to the phosphogypsum block 3 lifting, at the same time in the process of putting the phosphogypsum block 3 into the moving mechanism 40, the bottom plate 18 slowly deflates can reduce the impact of the phosphogypsum block 3 put down, reduce the damage of the phosphogypsum block 3.
[0031] The above, only for the preferred specific embodiments of the present application, but the scope of protection of the present application is not limited to this, any skilled in the art of the technical personnel in the technical range of the present application is disclosed, according to the technical solution of the present application and the invention concept of equivalent replacement or change, should be covered in the scope of protection of the present application.
Claims
1. A stacker device for autoclaved aerated phosphogypsum blocks, comprising a moving mechanism (40), a tunnel shelf (41) and a transport mechanism (42), characterized in that: One end of the transmission mechanism (42) is provided with a transfer mechanism (2), the lower end of the moving mechanism (40) is provided with a clamping mechanism (1), the upper surface of the transmission mechanism (42) is placed with phosphogypsum block (3); The transfer mechanism (2) comprises a base (4), the upper end of the base (4) is provided with a frame (5), the cavity of the frame (5) is slidably connected with a bevel block (6), one side of the bevel block (6) is fixedly connected with an inductor (61), the two sides of the frame (5) are symmetrically provided with connecting rods (7), the side surfaces of the lower ends of the two connecting rods (7) are fixedly connected with a sliding plate (8), and the connecting rod (7) and the sliding plate (8) are slidably connected in the base (4), the side, away from the transmission mechanism (42), of the sliding plate (8) is symmetrically provided with two folding pipes (9), one end of the folding pipe (9) is fixedly connected with a ventilation plate (10), the side, away from the folding pipe (9), of the sliding plate (8) is provided with an elastic structure, the other end of the elastic structure is provided with a telescopic pipe two (17), the upper end of the telescopic pipe two (17) is fixedly connected with a bottom plate (18), and the bottom plate (18) can abut against the lower end of the phosphogypsum block (3), the inner wall of the base (4) is provided with an electromagnet (21), and the side of the sliding plate (8) is provided with a magnetic sheet (20) which can be adsorbed by the electromagnet (21). The two ends of the base (4) are symmetrically provided with correction structures, which can correct the phosphogypsum block (3), and the correction structures are communicated with the ventilation plate (10); The lower end of the base (4) is provided with a driving structure for driving the sliding plate (8) to move.
2. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 1, characterized in that: The clamping mechanism (1) comprises a cover plate (25), the two sides of the cover plate (25) are symmetrically and slidably connected with two sliding cylinders (26), one side of each sliding cylinder (26) is fixedly connected with a clamping cylinder (27), and the bottom ends of the two clamping cylinders (27) on the opposite sides are provided with air bags (28).
3. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 2, characterized in that: The elastic structure comprises a side pipe (19), the side pipe (19) is symmetrically installed on the two sides of the telescopic pipe two (17), and the side pipe (19) is symmetrically fixedly connected with two air pipes (22) which are slidably connected with the ventilation plate (10), and each air pipe (22) is located in the cavity of the corresponding folding pipe (9).
4. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 3, characterized in that: The outer side wall of each air pipe (22) is provided with a through hole (24), and each through hole (24) is located on the side close to the ventilation plate (10), the outer side wall of the air pipe (22) is provided with a spring two (23), and the two ends of the spring two (23) are fixedly connected with the side pipe (19) and the sliding plate (8) respectively.
5. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 1, characterized in that: The upper surface of the bottom plate (18) is provided with a notch which is communicated with the telescopic pipe two (17), the upper notch of the telescopic pipe two (17) is slidably connected with a piston (32), the inner side wall of the telescopic pipe two (17) is fixedly connected with a supporting plate (33), the supporting plate (33) and the piston (32) are fixedly connected with a spring three (34), the outer side wall of the piston (32) is fixedly connected with a gas cylinder one (35), and the output end of the gas cylinder one (35) is fixedly connected with the piston (32).
6. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 2, characterized in that: The lower surface of the cover plate (25) is provided with an air flow sensor (31) in communication with the air bag (28), unidirectional valves (311) are fixedly connected to the output ends of the air flow sensor (31), the upper surface of each sliding cylinder (26) is provided with an exhaust hole (29), a sliding plate (30) is slidably connected in the cavity of the exhaust hole (29) and can block the exhaust hole (29), and the upper surface of the cover plate (25) is symmetrically provided with two air cylinders two (44), and each air cylinder two (44) is fixedly connected with the corresponding sliding plate (30).
7. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 1, characterized in that: The correction structure comprises two L-shaped pipes (12), which are symmetrically installed on the two sides of the base (4), two air grooves (11) are symmetrically formed in the base (4), the air grooves (11) and the L-shaped pipes (12) are communicated, long pipes (13) are fixedly connected to the upper ends of the L-shaped pipes (12), and three telescopic pipes one (14) are equidistantly installed on one side of the long pipe (13) close to the base (4).
8. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 7, characterized in that: A spring one (16) is fixedly connected to the inside of each telescopic pipe one (14) on the left and right sides of the long pipe (13), one end of each spring one (16) is fixedly connected to the inner wall of the long pipe (13), and the other end of each spring one (16) is fixedly connected to the inner wall of the long pipe (13), and the other end of each spring one (16) is fixedly connected to the inner wall of the long pipe (13).
9. A steam pressure autoclaved aerated phosphogypsum block stacking apparatus according to claim 1, characterized in that: The driving structure comprises a sliding seat (36), the sliding seat (36) is fixedly connected to the lower end of the sliding plate (8), two positioning seats (37) are fixedly connected to the lower end of the base (4), a reciprocating screw rod (38) is rotatably connected between the two positioning seats (37), the reciprocating screw rod (38) is rotatably connected with the sliding seat (36), a motor (39) is fixedly connected to one side of the positioning seat (37), the output end of the motor (39) is fixedly connected with the reciprocating screw rod (38), and a connecting seat (43) is fixedly connected to the lower end of the base (4), one side of the connecting seat (43) is screwed with the transmission mechanism (42).