Intelligent construction equipment for oversized wall of clean workshop and use method of intelligent construction equipment

By combining a balanced hoisting mechanism, a sliding connection mechanism, and a clamping and positioning mechanism with a level and a laser emitter, the problem of verticality control in the construction of ultra-large walls in cleanrooms has been solved, achieving precise hoisting and verticality control of the walls.

CN121536804APending Publication Date: 2026-02-17CHINA MCC17 GRP CO LTD
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Patent Information

Application Number
CN202610025836.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-09
Publication Date
2026-02-17

AI Technical Summary

Technical Problem

The verticality of the extra-large walls in cleanrooms is difficult to control during construction, which affects the quality of the wall formation.

Method used

By employing a balanced hoisting mechanism, a sliding connection mechanism, and a clamping and positioning mechanism, combined with a level and a laser emitter, precise hoisting and verticality control of large-sized wall units can be achieved.

Benefits of technology

By adjusting the screw and guide rollers, the balance and guidance of the hoisting process are ensured. The tilt is displayed using a level and indicator lights, and the offset is adjusted by the laser emitter to achieve precise vertical stacking of the wall.

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Abstract

The invention relates to the technical field of wall construction, in particular to intelligent construction equipment for an oversized wall of a clean workshop and a use method of the intelligent construction equipment, and solves the problems that when the wall of the clean workshop is constructed in the prior art, the perpendicularity of the wall is inconvenient to control due to the fact that the wall of the clean workshop is large in size and lap joint installation is inconvenient; the device comprises a balance hoisting mechanism, sliding connection mechanisms are installed at the two ends of the lower portion of the balance hoisting mechanism correspondingly, and clamping and positioning mechanisms are installed at the ends, away from the balance hoisting mechanism, of the two sliding connection mechanisms correspondingly; the clamping and positioning mechanism is composed of two lateral positioning modules which are symmetrically installed, and each lateral positioning module comprises a clamping installation plate. According to the method, the walls of the clean workshop are hoisted and spliced, the perpendicularity is detected and adjusted one by one while the large-size wall units are hoisted, and the construction quality of the walls of the clean workshop is effectively improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of wall construction technology, in particular to a super-large size wall intelligent construction equipment for clean workshop and a use method thereof. BACKGROUND

[0002] A clean workshop is a specially designed space, the main purpose of which is to exclude pollutants such as particles, harmful bacteria and the like in the air in the workshop, and to control parameters such as indoor temperature, cleanliness, air flow speed, noise, vibration, illumination and static electricity within a certain required range. The wall of the clean workshop is usually constructed by splicing super-large wall units, and the super-large size wall of the clean workshop usually adopts materials such as color steel plate, rock wool board and purified aluminum material. These materials have the characteristics of waterproof, moisture-proof, corrosion-resistant, anti-oxidation, acid and alkali resistance and high hardness, which can meet the special requirements of the clean workshop.

[0003] When the wall of the clean workshop is constructed, due to the large size of the wall of the clean workshop, it is not convenient to control the perpendicularity of the wall during lapping and installation, which affects the forming quality of the wall. Therefore, it does not meet the existing requirements, and for this purpose, a super-large size wall intelligent construction equipment for clean workshop and a use method thereof are proposed. SUMMARY

[0004] The purpose of the present application is to provide a super-large size wall intelligent construction equipment for clean workshop and a use method thereof to solve the problem that when the wall of the clean workshop is constructed, due to the large size of the wall of the clean workshop, it is not convenient to control the perpendicularity of the wall during lapping and installation, which affects the forming quality of the wall.

[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a super-large size wall intelligent construction equipment for clean workshop, comprising a balance hoisting mechanism, two sliding connection mechanisms are installed at the both ends of the lower part of the balance hoisting mechanism, a clamping positioning mechanism is installed at the end of each of the two sliding connection mechanisms away from the balance hoisting mechanism, the clamping positioning mechanism is composed of two symmetrically installed lateral positioning modules, the lateral positioning module comprises a clamping mounting plate, a supporting bracket is fixedly installed on the inner side of the bottom end of the clamping mounting plate, a perspective hole is arranged in the middle of the supporting bracket, a lateral limiting angle plate is fixedly installed on the bottom end of the clamping mounting plate, anti-skid racks are fixedly installed on both sides of the clamping mounting plate, an offset monitoring unit is installed in the middle of the clamping mounting plate, the offset monitoring unit comprises a sealing cover, the sealing cover is fixedly installed on one side of the sealing cover, two batteries are installed on the inner side of the installation box, a supporting spring is arranged between the two batteries, a transmission seat is installed on the inner side of the supporting spring, and a monitoring plate is installed at one end of the transmission seat.

[0006] Preferably, the balance lifting mechanism comprises a lifting hook base, the bottom end of the lifting hook base is rotationally connected with two inclined pull rods, a lifting cross beam is installed below the two inclined pull rods, a balance display unit is installed on the upper end surface of the lifting cross beam, a plurality of lifting lugs are installed at the two ends of the balance display unit, the lifting cross beam is fixedly connected with the plurality of lifting lugs, the bottom ends of the two inclined pull rods are rotationally connected with two lifting lugs through a pintle, a first adjusting screw and a guide column are installed on the two sides of the lifting cross beam, a plurality of double-headed wheel shafts are installed below the first adjusting screw and the guide column, guide rollers are rotationally connected with the outer sides of the two ends of the double-headed wheel shafts, the balance display unit comprises a transparent cover, a level is installed on the inner side of the transparent cover, and indicator lights are fixedly installed at the two ends of the level.

[0007] Preferably, the sliding connection mechanism comprises a connection cross plate, a plurality of connection hoops are fixedly installed on the upper end surface of the connection cross plate, an installation seat is fixedly installed on one end of the lower end surface of the connection cross plate, a second adjusting screw is rotationally connected with the inner side of the upper end of the installation seat, and sliding push blocks are installed at the two ends of the second adjusting screw.

[0008] Preferably, the two sliding connection mechanisms and the clamping positioning mechanism are symmetrically installed relative to the balance lifting mechanism, the level is fixedly connected with the middle part of the lifting cross beam, and the level and the two indicator lights are electrically connected.

[0009] Preferably, the two ends of the first adjusting screw are provided with external threads in opposite directions, the first adjusting screw is connected with two connection hoops through threads, the first adjusting screw is rotationally connected with the lifting cross beam, a plurality of double-headed wheel shafts are linearly arranged along the axis of the first adjusting screw and are fixedly connected with the lifting cross beam, and adjacent two guide rollers are symmetrically installed relative to the double-headed wheel shaft.

[0010] Preferably, a plurality of connection hoops are fitted on the outer sides of the guide rollers and are in contact with the surfaces of the guide rollers, the double-headed wheel shafts are connected with the connection hoops through the guide rollers, a plurality of connection hoops are linearly arranged along the side edges of the connection cross plate, the two ends of the second adjusting screw are provided with external threads in opposite directions, the two ends of the second adjusting screw penetrate through the installation seat and are connected with the two sliding push blocks through threads, and the two sliding push blocks are slidingly connected with the installation seat.

[0011] Preferably, the upper end of the clamping mounting plate is rotationally connected with the installation seat through a pintle, the clamping mounting plate is in contact with one end of the sliding push block, and the two anti-skid racks are symmetrically installed relative to the offset monitoring unit.

[0012] Preferably, a large-size wall unit is installed between the two clamping positioning mechanisms, the large-size wall unit is composed of two calcium silicate boards and a rock wool layer, the two calcium silicate boards are symmetrically installed relative to the rock wool layer, and the rock wool layer is fixedly connected with the two calcium silicate boards.

[0013] Preferably, the upper end surface of the support plate is in contact with the lower end surface of the calcium silicate board, the middle part of the upper end surface of the lateral limiting angle plate is provided with a scale line, the bottom end of the monitoring plate is provided with a laser emitting head, the transmission seat is connected with the sealing cover through a supporting spring, the transmission seat is slidingly connected with the installation box, and the laser emitting head is electrically connected with the battery.

[0014] A use method of the super-large-size wall intelligent construction equipment of a clean workshop comprises the following steps:

[0015] S1: two sliding connection mechanisms and clamping positioning mechanisms are symmetrically installed relative to a balance hoisting mechanism, a plurality of connection clamps are sleeved outside the guide rollers and in contact with the surfaces of the guide rollers, the distance between the two sliding connection mechanisms is adjusted according to the length of the large-size wall unit, specifically, the first adjusting screw is rotated, the first adjusting screw drives the two connection plates to move in the same direction or opposite directions through the connection clamps, the guide rollers guide the connection clamps, and thus the hoisting operation of the large-size wall unit of different lengths is facilitated;

[0016] S2: the hook seat is hoisted by a crane, the balance hoisting mechanism drives the two clamping positioning mechanisms to be placed outside the two ends of the large-size wall unit through the two sliding connection mechanisms, the two second adjusting screws are rotated at this time, the second adjusting screws synchronously drive the adjacent two sliding push blocks to slide in opposite directions and push the clamping mounting plates, the clamping mounting plates are connected with the mounting seats through the column pins, the adjacent two clamping mounting plates are swung in opposite directions and the support plates are inserted into the lower end surfaces of the calcium silicate boards, the clamping mounting plates are connected with the sides of the calcium silicate boards through the anti-skid racks, and the balance hoisting mechanism is balanced and adjusted;

[0017] S3: specifically, the large-size wall unit is pre-hoisted by the crane, when the two ends of the large-size wall unit are hoisted for the first time through the clamping of the two clamping positioning mechanisms, the level of the hoisting beam is detected through the level meter in the transparent cover and displayed through the two indicator lights symmetrically installed relative to the level meter, the color change of the indicator lights visually displays the horizontal inclination of the hoisting beam, and thus the clamping positions of the two clamping positioning mechanisms on the large-size wall unit are adjusted to balance the hoisting of the large-size wall unit;

[0018] S4: Then the large size wall unit is hoisted again through the balance hoisting mechanism, the sliding connection mechanism and the clamping positioning mechanism and is stacked and assembled, at this time, the two lateral limiting angle plates are arranged on the two sides of the large size wall unit which has been installed, and the large size wall unit in the clamping positioning mechanism is vertically positioned through the lateral limiting angle plate, and the monitoring plate is in contact with the side surface of the large size wall unit under the elastic support of the support spring.

[0019] S5: The laser emitting head arranged at the bottom end of the monitoring plate irradiates the upper end surface of the lateral limiting angle plate through the perspective hole, the middle part of the upper end surface of the lateral limiting angle plate is provided with a scale line, the large size wall unit is adjusted laterally by the offset of the laser beam relative to the scale line, the multiple large size wall units are kept in the vertical accurate stacking state when the support plate and the lateral limiting angle plate are separated from the large size wall unit, and the perpendicularity control of the wall is realized.

[0020] Compared with the prior art, the beneficial effects of the present application are:

[0021] 1: When the first adjusting screw is rotated, the two connecting horizontal plates are moved in the same direction or opposite directions through the connecting hoop, the connecting hoop is guided through the guide roller, the hoisting operation of the large size wall unit of different lengths is satisfied, when the second adjusting screw is rotated, the adjacent two sliding push blocks are slid in opposite directions and the clamping mounting plate is pushed, the adjacent two clamping mounting plates are swung in opposite directions and the support plate is inserted into the lower end surface of the calcium silicate plate under the pushing of the sliding push block, the large size wall unit is pre-hoisted through the crane, the level of the hoisting beam is detected through the level meter in the transparent cover and is displayed through the two indicator lights which are symmetrically installed relative to the level meter, the color change of the indicator light directly displays the horizontal inclination of the hoisting beam, and then the clamping positions of the large size wall unit in the two clamping positioning mechanisms are adjusted to balance the hoisting of the large size wall unit.

[0022] 2: The large size wall unit in the clamping positioning mechanism is vertically positioned through the lateral limiting angle plate, the monitoring plate is in contact with the side surface of the large size wall unit under the elastic support of the support spring, the laser emitting head arranged at the bottom end of the monitoring plate irradiates the upper end surface of the lateral limiting angle plate through the perspective hole, the middle part of the upper end surface of the lateral limiting angle plate is provided with a scale line, the large size wall unit is adjusted laterally by the offset of the laser beam relative to the scale line, the multiple large size wall units are kept in the vertical accurate stacking state when the support plate and the lateral limiting angle plate are separated from the large size wall unit, and the perpendicularity control of the wall is realized. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 This is a front view of the entire invention;

[0025] Figure 3 This is a side view of the entire invention;

[0026] Figure 4 This is a schematic diagram of the structure of the balancing hoisting mechanism of the present invention;

[0027] Figure 5 For the present invention Figure 4 Schematic diagram of the exploded structure in region A;

[0028] Figure 6 This is a partial cross-sectional structural diagram of the entire invention;

[0029] Figure 7 This is a schematic diagram of the sliding connection mechanism of the present invention;

[0030] Figure 8 This is a cross-sectional structural diagram of the clamping and positioning mechanism of the present invention;

[0031] Figure 9 This is an exploded structural diagram of the lateral positioning module of the present invention.

[0032] In the diagram: 1. Large-size wall unit; 101. Calcium silicate board; 102. Rock wool layer; 2. Balanced hoisting mechanism; 201. Hook seat; 202. Diagonal tie rod; 203. Lifting lug; 204. Hoisting beam; 205. Balance display unit; 206. First adjusting screw; 207. Guide roller; 208. Guide column; 209. Transparent cover; 210. Level; 211. Indicator light; 212. Double-headed wheel axle; 3. Sliding connection mechanism; 301. 302. Connecting horizontal plate; 303. Connecting clamp; 304. Mounting base; 305. Second adjusting screw; 306. Sliding push block; 4. Clamping and positioning mechanism; 407. Clamping mounting plate; 408. Support plate; 409. Lateral limiting angle plate; 400. Anti-slip rack; 401. Offset monitoring unit; 402. Mounting box; 403. Sealing cover; 404. Transmission base; 405. Battery; 416. Support spring; 417. Monitoring plate; 418. Viewing hole. Detailed Implementation

[0033] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0034] Please see Figures 1 to 6An embodiment of the present invention provides an intelligent construction device for ultra-large-sized walls in a cleanroom, comprising a balancing hoisting mechanism 2. The balancing hoisting mechanism 2 includes a hook seat 201, with two inclined tie rods 202 rotatably connected to the bottom end of the hook seat 201. A hoisting beam 204 is installed below the two inclined tie rods 202. A balancing display unit 205 is installed in the middle of the upper surface of the hoisting beam 204. Multiple lifting lugs 203 are installed at both ends of the balancing display unit 205. The hoisting beam 204 is fixedly connected to the multiple lifting lugs 203. The bottom ends of the two inclined tie rods 202 are rotatably connected to two of the lifting lugs 203 through pins. The hook seat 201 is hoisted by a crane, so that the hook seat 201 hoists the hoisting beam 204 through the two inclined tie rods 202 and the lifting lugs 203.

[0035] A first adjusting screw 206 and a guide column 208 are respectively installed on both sides of the lifting beam 204. The first adjusting screw 206 is rotatably connected to the lifting beam 204. Multiple double-headed wheel axles 212 are installed below the first adjusting screw 206 and the guide column 208. The multiple double-headed wheel axles 212 are linearly arranged along the axis of the first adjusting screw 206 and fixedly connected to the lifting beam 204. Two adjacent guide rollers 207 are symmetrically installed with respect to the double-headed wheel axles 212. The outer sides of both ends of the double-headed wheel axles 212 are rotatably connected. The system includes guide rollers 207 and a balance display unit 205, which includes a transparent cover 209. A level 210 is installed inside the transparent cover 209. Indicator lights 211 are fixedly installed at both ends of the level 210. The level 210 is fixedly connected to the middle of the hoisting beam 204. The level 210 is electrically connected to the two indicator lights 211. The level of the hoisting beam 204 is detected by the level 210, and the horizontal tilt of the hoisting beam 204 is displayed intuitively by the color change of the indicator lights 211.

[0036] Please see Figures 2 to 7The lower ends of the balancing hoisting mechanism 2 are equipped with sliding connection mechanisms 3. Each sliding connection mechanism 3 includes a connecting horizontal plate 301. Multiple connecting clamps 302 are fixedly installed on the upper surface of the connecting horizontal plate 301. The two ends of the first adjusting screw 206 are provided with opposite external threads. The first adjusting screw 206 is threadedly connected to two of the connecting clamps 302. A mounting base 303 is fixedly installed at one end of the lower surface of the connecting horizontal plate 301. A second adjusting screw 304 is rotatably connected to the inner side of the upper end of the mounting base 303. Sliding push blocks 305 are installed at both ends of the second adjusting screw 304. Multiple connecting clamps 302 are fitted onto the outer side of the guide roller 207 and are in contact with the surface of the guide roller 207. The double-headed wheel axle... 212 is connected to the connecting clamp 302 by a guide roller 207. Multiple connecting clamps 302 are arranged linearly along the side of the connecting horizontal plate 301. The two ends of the second adjusting screw 304 are provided with external threads with opposite directions of rotation. The two ends of the second adjusting screw 304 pass through the mounting base 303 and are connected to the two sliding push blocks 305 by threads. The two sliding push blocks 305 are slidably connected to the mounting base 303, so that the second adjusting screw 304 synchronously drives the two adjacent sliding push blocks 305 to slide in opposite directions and push the clamping mounting plate 401. Then, the two adjacent clamping mounting plates 401 are pushed by the sliding push blocks 305 and swing in opposite directions to realize the clamping of the large-size wall unit 1 by the support plate 402.

[0037] Please see Figure 7 and Figure 8 Each of the two sliding connection mechanisms 3 has a clamping and positioning mechanism 4 installed at the end furthest from the balancing hoisting mechanism 2. Both the sliding connection mechanisms 3 and the clamping and positioning mechanism 4 are symmetrically installed relative to the balancing hoisting mechanism 2. The clamping and positioning mechanism 4 consists of two symmetrically installed lateral positioning modules. Each lateral positioning module includes a clamping mounting plate 401. The upper end of the clamping mounting plate 401 is rotatably connected to the mounting base 303 via a pin. One end of the clamping mounting plate 401 is in contact with the sliding push block 305. The inner side of the bottom end of the clamping mounting plate 401 is fixedly installed. A support plate 402 is provided, with a viewing hole 412 in the middle of the support plate 402. A lateral limiting angle plate 403 is fixedly installed at the bottom of the clamping mounting plate 401. Anti-slip racks 404 are fixedly installed on both sides of one side of the clamping mounting plate 401. An offset monitoring unit 405 is installed in the middle of the clamping mounting plate 401. The two anti-slip racks 404 are symmetrically installed relative to the offset monitoring unit 405. The anti-slip racks 404 facilitate clamping when hoisting large-size wall units 1 and prevent axial displacement of large-size wall units 1.

[0038] Please see Figure 9The offset monitoring unit 405 includes a sealing cover 407. A mounting box 406 is fixedly installed on one side of the sealing cover 407. Two batteries 409 are installed inside the mounting box 406. A support spring 410 is provided between the two batteries 409. A transmission seat 408 is installed inside the support spring 410. A monitoring plate 411 is installed at one end of the transmission seat 408. A scale line is provided in the middle of the upper surface of the lateral limiting angle plate 403. A laser emitting head is provided at the bottom of the monitoring plate 411. The transmission seat 408 and the sealing cover 407 are connected by the support spring 410. The transmission seat 408 is slidably connected to the mounting box 406. The laser emitting head is electrically connected to the batteries 409. The laser emitting head irradiates the upper surface of the lateral limiting angle plate 403 through the viewing hole 412. The large-size wall unit 1 is laterally adjusted by the offset of the laser beam relative to the scale line.

[0039] Please see Figure 2 and Figure 3 A large wall unit 1 is installed between the two clamping and positioning mechanisms 4. The large wall unit 1 consists of two calcium silicate boards 101 and a rock wool layer 102. The two calcium silicate boards 101 are installed symmetrically relative to the rock wool layer 102. The rock wool layer 102 is fixedly connected to the two calcium silicate boards 101. The upper end face of the support plate 402 is in contact with the lower end face of the calcium silicate board 101. The support plate 402 facilitates the support and positioning of the large wall unit 1 and makes it easy to clamp during hoisting.

[0040] A method for using an intelligent construction device for ultra-large walls in a cleanroom includes the following steps:

[0041] S1: The two sliding connection mechanisms 3 and the clamping and positioning mechanism 4 are symmetrically installed relative to the balancing hoisting mechanism 2. Multiple connecting clamps 302 are fitted onto the outside of the guide roller 207 and are in contact with the surface of the guide roller 207. The distance between the two sliding connection mechanisms 3 is adjusted according to the length of the large wall unit 1. Specifically, the first adjusting screw 206 is rotated so that the first adjusting screw 206 drives the two connecting horizontal plates 301 to move in opposite directions through the connecting clamps 302. The guide roller 207 facilitates the guidance of the connecting clamps 302, thereby satisfying the hoisting operation of large wall units 1 of different lengths.

[0042] S2: The hook seat 201 is lifted by a crane, so that the balancing hoisting mechanism 2 drives the two clamping and positioning mechanisms 4 to be placed on the outside of both ends of the large wall unit 1 through the two sliding connection mechanisms 3. At this time, the two second adjusting screws 304 are rotated, so that the second adjusting screws 304 drive the two adjacent sliding push blocks 305 to slide in opposite directions and push the clamping mounting plate 401. The clamping mounting plate 401 is connected to the mounting seat 303 through a pin. Then, the two adjacent clamping mounting plates 401 are pushed by the sliding push blocks 305 and swing in opposite directions, so that the support plate 402 is inserted into the lower end face of the calcium silicate board 101. At the same time, the clamping mounting plate 401 is connected to the side of the calcium silicate board 101 through the anti-slip rack 404, and the balancing hoisting mechanism 2 is balanced.

[0043] S3: Specifically, a crane is used to pre-lift the large wall unit 1. When the two ends of the large wall unit 1 are initially lifted by the clamping and positioning mechanism 4, the level of the lifting beam 204 is detected by the level 210 inside the transparent cover 209 and displayed by two indicator lights 211 installed symmetrically relative to the level 210. The horizontal inclination of the lifting beam 204 is displayed intuitively by the color change of the indicator lights 211, which facilitates the adjustment of the clamping position of the two clamping and positioning mechanisms 4 on the large wall unit 1 to achieve balanced lifting of the large wall unit 1.

[0044] S4: Then, the large wall unit 1 is lifted again and stacked and assembled by the balance hoisting mechanism 2, the sliding connection mechanism 3 and the clamping and positioning mechanism 4. At this time, the two lateral limiting angle plates 403 are placed on both sides of the large wall unit 1 after installation. Then, the large wall unit 1 in the clamping and positioning mechanism 4 is vertically positioned by the lateral limiting angle plates 403. At the same time, the transmission seat 408 drives the monitoring plate 411 to contact the side of the large wall unit 1 under the elastic support of the support spring 410.

[0045] S5: The laser emitting head at the bottom of the monitoring plate 411 then irradiates the upper surface of the lateral limiting angle plate 403 through the viewing hole 412. A scale line is provided in the middle of the upper surface of the lateral limiting angle plate 403. The large wall unit 1 is laterally adjusted by the offset of the laser beam relative to the scale line. This effectively maintains the large wall unit 1 in a vertically precise stacked state when the support plate 402 and the lateral limiting angle plate 403 are separated from the large wall unit 1, thereby achieving verticality control of the wall.

[0046] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A smart construction device for ultra-large-sized walls in a cleanroom, comprising a balancing hoisting mechanism (2), characterized in that: Both ends of the lower part of the balancing hoisting mechanism (2) are equipped with sliding connection mechanisms (3). Each of the two sliding connection mechanisms (3) away from the balancing hoisting mechanism (2) is equipped with a clamping and positioning mechanism (4). The clamping and positioning mechanism (4) consists of two symmetrically installed lateral positioning modules. Each lateral positioning module includes a clamping mounting plate (401). A support plate (402) is fixedly installed on the inner side of the bottom end of the clamping mounting plate (401). A viewing hole (412) is provided in the middle of the support plate (402). A lateral limiting angle plate (403) is fixedly installed at the bottom end of the clamping mounting plate (401). Anti-slip racks (404) are fixedly installed on both sides of the mounting plate (401). An offset monitoring unit (405) is installed in the middle of the clamping mounting plate (401). The offset monitoring unit (405) includes a sealing cover (407). An installation box (406) is fixedly installed on one side of the sealing cover (407). Two batteries (409) are installed inside the installation box (406). A support spring (410) is provided between the two batteries (409). A transmission seat (408) is installed inside the support spring (410). A monitoring plate (411) is installed at one end of the transmission seat (408).

2. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 1, characterized in that: The balancing hoisting mechanism (2) includes a hook base (201), with two inclined tie rods (202) rotatably connected to the bottom end of the hook base (201). A hoisting beam (204) is installed below the two inclined tie rods (202). A balancing display unit (205) is installed in the middle of the upper surface of the hoisting beam (204). Multiple lifting lugs (203) are installed at both ends of the balancing display unit (205). The hoisting beam (204) is fixedly connected to the multiple lifting lugs (203). The bottom ends of the two inclined tie rods (202) are connected to two of the lifting lugs (203). The hoisting beam (204) is rotatably connected by a pin. A first adjusting screw (206) and a guide column (208) are respectively installed on both sides of the beam. Multiple double-headed wheel shafts (212) are installed below the first adjusting screw (206) and the guide column (208). Guide rollers (207) are rotatably connected to the outer sides of both ends of the double-headed wheel shafts (212). The balance display unit (205) includes a transparent cover (209). A level (210) is installed on the inner side of the transparent cover (209). Indicator lights (211) are fixedly installed on both ends of the level (210).

3. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 2, characterized in that: The sliding connection mechanism (3) includes a connecting horizontal plate (301), a plurality of connecting clamps (302) are fixedly installed on the upper end surface of the connecting horizontal plate (301), and a mounting base (303) is fixedly installed on one end of the lower end surface of the connecting horizontal plate (301). A second adjusting screw (304) is rotatably connected to the inner side of the upper end of the mounting base (303), and sliding push blocks (305) are installed at both ends of the second adjusting screw (304).

4. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 3, characterized in that: The two sliding connection mechanisms (3) and the clamping and positioning mechanism (4) are symmetrically installed relative to the balancing hoisting mechanism (2). The level (210) is fixedly connected to the middle of the hoisting beam (204). The level (210) is electrically connected to the two indicator lights (211).

5. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 4, characterized in that: The first adjusting screw (206) has external threads with opposite directions at both ends. The first adjusting screw (206) is threadedly connected to two of the connecting clamps (302). The first adjusting screw (206) is rotatably connected to the lifting beam (204). Multiple double-headed wheel shafts (212) are linearly arranged along the axis of the first adjusting screw (206) and fixedly connected to the lifting beam (204). Two adjacent guide rollers (207) are symmetrically installed relative to the double-headed wheel shafts (212).

6. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 5, characterized in that: Multiple connecting clamps (302) are fitted onto the outside of the guide roller (207) and in contact with the surface of the guide roller (207). The double-headed wheel shaft (212) and the connecting clamps (302) are connected by rolling through the guide roller (207). The multiple connecting clamps (302) are arranged linearly along the side of the connecting cross plate (301). The two ends of the second adjusting screw (304) are provided with external threads with opposite directions of rotation. The two ends of the second adjusting screw (304) pass through the mounting base (303) and are connected to the two sliding push blocks (305) by threads. The two sliding push blocks (305) are slidably connected to the mounting base (303).

7. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 6, characterized in that: The upper end of the clamping mounting plate (401) is rotatably connected to the mounting base (303) by a pin. The clamping mounting plate (401) is in contact with one end of the sliding push block (305). The two anti-slip racks (404) are symmetrically installed relative to the offset monitoring unit (405).

8. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 7, characterized in that: A large wall unit (1) is installed between the two clamping and positioning mechanisms (4). The large wall unit (1) consists of two calcium silicate boards (101) and a rock wool layer (102). The two calcium silicate boards (101) are installed symmetrically relative to the rock wool layer (102). The rock wool layer (102) is fixedly connected to the two calcium silicate boards (101).

9. The intelligent construction equipment for ultra-large-size walls in a cleanroom according to claim 8, characterized in that: The upper end face of the support plate (402) is in contact with the lower end face of the calcium silicate plate (101). The middle part of the upper end face of the lateral limiting angle plate (403) is provided with a scale line. The bottom end of the monitoring plate (411) is provided with a laser emitting head. The transmission seat (408) and the sealing cover (407) are connected by a support spring (410). The transmission seat (408) is slidably connected to the mounting box (406). The laser emitting head is electrically connected to the battery (409).

10. A method of using an intelligent construction device for ultra-large-scale walls in a cleanroom according to any one of claims 1-9, characterized in that, Includes the following steps: S1: The two sliding connection mechanisms (3) and the clamping and positioning mechanism (4) are symmetrically installed relative to the balance hoisting mechanism (2). Multiple connecting clamps (302) are fitted on the outside of the guide roller (207) and in contact with the surface of the guide roller (207). The distance between the two sliding connection mechanisms (3) is adjusted according to the length of the large wall unit (1). Specifically, the first adjusting screw (206) is rotated so that the first adjusting screw (206) drives the two connecting horizontal plates (301) to move in opposite directions through the connecting clamps (302). The connecting clamps (302) are guided by the guide roller (207) so as to meet the hoisting operation of large wall units (1) of different lengths. S2: The hook seat (201) is lifted by a crane, so that the balance lifting mechanism (2) drives the two clamping and positioning mechanisms (4) to be placed on the outside of both ends of the large wall unit (1) through the two sliding connection mechanisms (3). At this time, the two second adjusting screws (304) are rotated, so that the second adjusting screws (304) drive the two adjacent sliding push blocks (305) to slide in opposite directions and push the clamping mounting plate (401). The clamping mounting plate (401) is connected to the mounting seat (303) through a pin. Then, the two adjacent clamping mounting plates (401) are pushed by the sliding push block (305) and swing in opposite directions, so that the support plate (402) is inserted into the lower end face of the calcium silicate board (101). At the same time, the clamping mounting plate (401) is connected to the side of the calcium silicate board (101) through the anti-slip rack (404) to balance the lifting mechanism (2). S3: Specifically, a crane is used to pre-lift a large wall unit (1), so that when the two ends of the large wall unit (1) are initially lifted by clamping two clamping and positioning mechanisms (4), the level of the lifting beam (204) is detected by the level (210) inside the transparent cover (209) and displayed by two indicator lights (211) installed symmetrically relative to the level (210). The horizontal inclination of the lifting beam (204) is displayed intuitively by the color change of the indicator lights (211), which facilitates the adjustment of the clamping position of the two clamping and positioning mechanisms (4) on the large wall unit (1) to achieve the balance of the lifting of the large wall unit (1); S4: Then, the large wall unit (1) is lifted again and stacked and assembled by the balance hoisting mechanism (2), the sliding connection mechanism (3) and the clamping and positioning mechanism (4). At this time, the two lateral limiting angle plates (403) are placed on both sides of the large wall unit (1) after installation. The lateral limiting angle plates (403) are used to vertically position the large wall unit (1) in the clamping and positioning mechanism (4). At the same time, the transmission seat (408) drives the monitoring plate (411) to contact the side of the large wall unit (1) under the elastic support of the support spring (410). S5: The laser emitter at the bottom of the monitoring plate (411) then irradiates the upper surface of the lateral limiting angle plate (403) through the viewing hole (412). A scale line is provided in the middle of the upper surface of the lateral limiting angle plate (403). The large wall unit (1) is laterally adjusted by the offset of the laser beam relative to the scale line. This effectively maintains that multiple large wall units (1) are in a vertically precise stacked state when the support plate (402) and the lateral limiting angle plate (403) are separated from the large wall unit (1), thereby achieving verticality control of the wall.