Wind power monitoring device for high-rise construction
By designing positioning blocks and claw blocks in the tower crane lifting assembly, fixing the wind power monitoring assembly, and the wind power sensor is close to the building material, the safety hazards caused by the installation of the wind speed sensor are solved, and the accuracy of wind speed monitoring and construction safety are improved.
Patent Information
- Application Number
- CN202422339884.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-09-25
AI Technical Summary
The existing wind speed sensors are generally installed on the top of the tower crane, which is farther than the building material area, causing workers to make wrong judgments during high-rise construction, posing safety hazards.
The positioning block, claw block and positioning rod are designed to fix the wind monitoring assembly between the side cover plates through the connecting mechanism, and the wind sensor is monitored close to the building material to improve the accuracy of wind speed monitoring.
通过风力传感器更加接近建筑材料位置监控风速,降低了因距离远导致的错误判断,提高了施工安全性。
Smart Images

Figure CN223078340U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wind monitoring, and more specifically, to a wind monitoring device for high-rise construction. Background Art
[0002] The wind monitoring device for high-rise construction is a crucial part in building construction. Especially during the construction of high-rise buildings, since the building is at a relatively high position and is greatly affected by wind, effective measures must be taken for wind monitoring to ensure construction safety and project quality.
[0003] Currently, during the construction of high-rise buildings, it mainly relies on tower cranes to lift building materials to the high construction positions. Workers need to constantly monitor the ambient wind speed when operating the tower crane. When the ambient wind speed is too high, they need to immediately stop the lifting operation to avoid potential safety hazards caused by the violent swing of the hook and building materials due to the action of wind. The detection of wind speed mainly relies on wind speed sensors. Existing wind speed sensors are generally installed on the top of the tower crane. When the building materials are just lifted, the speed measurement position of the wind speed sensor is at a relatively long distance compared to the position of the building materials. And the wind speed is not consistent in the vertical span. When the wind speed at the top of the tower crane is too slow while the wind speed at the position of the building materials is too fast, the wind speed sensor does not give an alarm, resulting in workers making wrong judgments and continuing the lifting operation. At this time, the building materials have just been lifted, and the excessive wind speed under the lever action will cause their violent swing, thus generating relatively large safety hazards. In view of this, we propose a wind monitoring device for high-rise construction. Summary of the Utility Model
[0004] The purpose of the utility model is to overcome the deficiencies of the prior art, adapt to the actual needs, and provide a wind monitoring device for high-rise construction to solve the technical problem that existing wind speed sensors are generally installed on the top of the tower crane, which is relatively far from the building material area and easily leads to wrong judgments by workers and potential safety hazards.
[0005] To solve the above technical problems, the utility model provides the following technical solution: A wind monitoring device for high-rise construction, including a tower crane body movably connected with a lifting component;
[0006] The lifting component includes a lifting part with a wind monitoring component detachably installed inside.
[0007] The lifting part includes symmetrically detachably connected side covers. A wire wheel is rotatably installed between the side covers. A rotating shaft is centrally formed inside the wire wheel. Both ends of the rotating shaft can be rotatably connected inside the side covers. Symmetrically formed mounting holes are opened inside the side covers, and positioning rods are detachably installed in the mounting holes.
[0008] The wind monitoring component includes a positioning block slidably fitted inside the wire wheel. Claw-shaped blocks for grasping and abutting against the bottom of the outer edge surface of the positioning rod are formed at both ends of the surface of the positioning block. A connecting block is formed in the middle of the surface of the positioning block. The top of the connecting block is connected to an arc-shaped plate. A connecting mechanism is arranged between the connecting block and the side cover plate. A wind sensor is detachably arranged on the top of the arc-shaped plate.
[0009] By designing the positioning block, claw-shaped blocks and positioning rod, the wind monitoring component is fixedly installed between the side cover plates through the connecting mechanism, so that the wind force at the position of the hoisting component can be monitored by the wind sensor. Compared with the tower crane arrangement method, it is closer to the building materials, thus improving the accuracy of wind speed monitoring in the building materials area, and reducing the safety hazards caused by inaccurate wind force judgment due to the long distance from the building materials, resulting in wrong judgments by workers.
[0010] Preferably, a fitting portion is formed at the bottom end of the positioning block, and the surface of the fitting portion is adaptively abutted against the bottom of the inner wall of the wire wheel.
[0011] Preferably, a plug shaft is formed in the middle of the bottom of the wind sensor. Insertion holes for inserting and installing the plug shaft are formed in the arc-shaped plate and the connecting block, and limiting holes are formed in the insertion holes.
[0012] Preferably, the connecting mechanism includes a double-headed screw inserted into the limiting hole. Both ends of the double-headed screw extend out of the connecting block and the side cover plate. A through hole for the double-headed screw to pass through is formed in the side cover plate. Nuts are threadedly fitted and installed on the outer edge surfaces of the two ends of the double-headed screw extending out of the through hole.
[0013] Preferably, mounting plates can be detachably installed at the bottoms of the opposite sides of the side cover plates. A threaded rod is threadedly fitted and detachably connected between the side cover plates. Bolts are threadedly fitted and installed between the mounting plates and the side cover plates. An installation groove is formed in the mounting plate. Anti-detachment plates are symmetrically formed on one side of one of the side cover plates, and the other ends of the anti-detachment plates are abutted against the side cover plates.
[0014] Preferably, a connecting rod is detachably installed inside the installation groove. A mounting seat is rotatably installed on the outer edge surface of the connecting rod. A hook is formed at the bottom of the mounting seat.
[0015] Compared with the prior art, the beneficial effects of the present utility model are:
[0016] 1. The utility model designs a positioning block, a claw-shaped block and a positioning rod, and fixes and installs the wind monitoring component between the side covers through a connecting mechanism, so that the wind force at the position of the hoisting component can be monitored by the wind sensor. Compared with the arrangement method of the tower crane, it is closer to the building materials, thus improving the accuracy of wind speed monitoring in the building materials area, and reducing the situation of inaccurate wind force judgment caused by the far distance from the building materials, resulting in potential safety hazards caused by workers' wrong judgment. It solves the problem that the existing wind speed sensors are generally installed on the top of the tower crane, which is far from the building materials area and easily leads to wrong judgments by workers and potential safety hazards.
[0017] 2. The utility model also constructs claw-shaped blocks at both ends of the surface of the positioning block, and grabs and limits the bottom of the positioning rod through the claw-shaped blocks, so as to improve the installation stability of the wind monitoring component in the hoisting component, enhance its integrity, and prevent errors in wind monitoring caused by the relative movement between the wind monitoring component and the hoisting component when bearing the wind force, thereby further improving the accuracy of wind speed monitoring in the building materials area. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic structural diagram of the utility model;
[0019] Figure 2 of the utility model Figure 1 is an enlarged schematic diagram of the structure at A in the utility model;
[0020] Figure 3 is a schematic structural diagram of the hoisting component of the utility model;
[0021] Figure 4 is a schematic structural diagram of the wind monitoring component of the utility model;
[0022] Figure 5 is a schematic diagram of the bottom structure of the wind monitoring component of the utility model;
[0023] Figure 6 is a disassembled schematic diagram of the hoisting component of the utility model.
[0024] Description of the reference numerals in the drawings:
[0025] 1. Tower crane body; 2. Lifting and moving component; 3. Lifting and moving part; 301. Side cover plate; 302. Threaded rod; 303. Positioning rod; 304. Mounting plate; 305. Mounting groove; 306. Bolt; 307. Anti-disengagement plate; 308. Rotating shaft; 309. Wire wheel; 310. Connecting rod; 311. Mounting seat; 312. Hook; 4. Wind monitoring component; 401. Positioning block; 402. Fitting part; 403. Claw-shaped block; 404. Connecting block; 405. Arc-shaped plate; 406. Wind sensor; 407. Double-headed screw; 408. Nut. Detailed implementation manner
[0026] As Figures 1-6 shown, a wind monitoring device for high-rise construction related to the present utility model includes a tower crane body 1 movably connected with a lifting and moving component 2. The lifting and moving component 2 includes a lifting and moving part 3 with a wind monitoring component 4 detachably installed inside. The lifting and moving part 3 includes symmetrically detachably connected side cover plates 301. A wire wheel 309 is rotatably installed between the side cover plates 301. A rotating shaft 308 is formed in the center of the wire wheel 309. Both ends of the rotating shaft 308 can be rotatably connected inside the side cover plates 301. Mounting holes are symmetrically formed inside the side cover plates 301. A positioning rod 303 is detachably installed in the mounting holes. The wind monitoring component 4 includes a positioning block 401 slidably fitted inside the wire wheel 309. Claw-shaped blocks 403 for grasping and abutting against the bottom of the outer edge surface of the positioning rod 303 are formed at both ends of the surface of the positioning block 401. And a connecting block 404 is formed in the center of the surface of the positioning block 401. An arc-shaped plate 405 is formed at the top of the connecting block 404. A connecting mechanism is arranged between the connecting block 404 and the side cover plate 301. A wind sensor 406 is detachably arranged on the top of the arc-shaped plate 405.
[0027] In an embodiment of the present utility model, a fitting part 402 is formed at the bottom end of the positioning block 401. The surface of the fitting part 402 is adapted to abut against the bottom of the inner wall of the wire wheel 309.
[0028] In an embodiment of the present utility model, a plug shaft is formed in the center of the bottom of the wind sensor 406. A jack for plugging and installing the plug shaft is formed in the arc-shaped plate 405 and the connecting block 404. A limiting hole is formed in the jack. The connecting mechanism includes a double-headed screw 407 inserted into the limiting hole. Both ends of the double-headed screw 407 extend out of the connecting block 404 and the side cover plate 301. A through hole for the double-headed screw 407 to pass through is formed in the side cover plate 301. Nuts 408 are threadedly fitted and installed on the outer edge surfaces of both ends of the double-headed screw 407 extending out of the through hole.
[0029] In the embodiment of the present utility model, mounting plates 304 are detachably mounted at the bottoms of the opposite sides of the side cover plates 301. A threaded rod 302 is detachably connected between the side cover plates 301 in a threaded fit manner. A bolt 306 is mounted between the mounting plate 304 and the side cover plate 301 in a threaded fit manner. An installation groove 305 is formed in the mounting plate 304. Anti-disengagement plates 307 are symmetrically formed on one side of one of the side cover plates 301. The other ends of the anti-disengagement plates 307 are in contact with the side cover plates 301. A connecting rod 310 is detachably mounted inside the installation groove 305. A mounting seat 311 is rotatably mounted on the outer edge surface of the connecting rod 310. A hook 312 is formed at the bottom of the mounting seat 311.
[0030] Working principle: This embodiment provides a wind monitoring device for high-rise construction. During use, first, the positioning block 401 and the fitting portion 402 are inserted into the wire wheel 309. Then, they are fixed between the side cover plates 301 through the threaded rod 302. Then, the threaded rod 302 is detachably mounted in the mounting holes of the side cover plates 301, so that the claw-shaped block 403 grabs and abuts against the bottom of the outer edge surface of the positioning rod 303. Then, the double-headed screw 407 passes through the side cover plate 301, the connecting block 404, and the limiting hole, and its two ends pass through the side cover plate 301. By tightening the nut 408, the wind monitoring assembly 4 can be fixedly mounted in the lifting component 3. The building materials can be hooked by the hook 312, and the building materials can be lifted and moved by the tower crane body 1. During the lifting and moving process, the wind sensor 406 monitors the wind force at the position of the lifting component 3. Compared with the way of arranging the tower crane, it is closer to the building materials, thus improving the accuracy of wind speed monitoring in the building material area, and reducing the safety hazards caused by inaccurate wind force judgment due to the long distance from the building materials, resulting in incorrect judgments by workers.
[0031] The embodiments disclosed in the present utility model are preferred embodiments, but not limited thereto. Those of ordinary skill in the art can easily understand the spirit of the present utility model based on the above embodiments and make different extensions and changes. As long as they do not depart from the spirit of the present utility model, they are within the protection scope of the present utility model.
Claims
1. A wind monitoring device for high-rise construction, characterized in that, It includes a tower crane body (1) actively connected with a lifting and moving component (2); The lifting and moving component (2) includes a lifting and moving part (3) with a wind power monitoring component (4) detachably installed inside; The lifting and moving part (3) includes symmetrically detachably connected side covers (301). A wire wheel (309) is rotatably installed between the side covers (301). A rotating shaft (308) is centrally formed inside the wire wheel (309). Both ends of the rotating shaft (308) are rotatably connected inside the side covers (301). Installation holes are symmetrically formed inside the side covers (301), and positioning rods (303) are detachably installed inside the installation holes; The wind power monitoring component (4) includes a positioning block (401) slidably fitted inside the wire wheel (309). Claw-shaped blocks (403) for grasping and abutting against the bottom of the outer edge surface of the positioning rod (303) are formed at both ends of the surface of the positioning block (401). A connecting block (404) is centrally formed on the surface of the positioning block (401). An arc-shaped plate (405) is formed at the top of the connecting block (404). A connecting mechanism is arranged between the connecting block (404) and the side cover (301). A wind power sensor (406) is detachably arranged on the top of the arc-shaped plate (405).
2. The wind power monitoring device for high-rise construction according to claim 1, characterized in that, A fitting part (402) is formed at the bottom end of the positioning block (401), and the surface of the fitting part (402) is adaptively abutted against the bottom of the inner wall of the wire wheel (309).
3. The wind monitoring device for high-rise construction according to claim 1, characterized in that A plug shaft is centrally formed at the bottom of the wind power sensor (406). A jack for the plug shaft to be inserted and installed is formed in the arc-shaped plate (405) and the connecting block (404), and a limiting hole is formed in the jack.
4. The wind power monitoring device for high-rise construction according to claim 3, characterized in that, The connecting mechanism includes a double-headed screw (407) inserted into the limiting hole. Both ends of the double-headed screw (407) extend out of the connecting block (404) and the side cover (301). A through hole for the double-headed screw (407) to pass through is formed inside the side cover (301). Nuts (408) are threadedly fitted and installed on the outer edge surfaces of the two ends of the double-headed screw (407) extending out of the through hole.
5. The wind monitoring device for high-rise construction according to claim 1, characterized in that, Mounting plates (304) are detachably installed at the bottoms of the opposite sides of the side covers (301). A threaded rod (302) is threadedly fitted and detachably connected between the side covers (301). Bolts (306) are threadedly fitted and installed between the mounting plates (304) and the side covers (301). An installation groove (305) is formed inside the mounting plates (304). Anti-detachment plates (307) are symmetrically formed on one side of one of the side covers (301), and the other ends of the anti-detachment plates (307) are abutted against the side covers (301).
6. The wind monitoring device for high-rise construction according to claim 5, characterized in that, A connecting rod (310) is detachably installed inside the installation groove (305). A mounting seat (311) is rotatably installed on the outer edge surface of the connecting rod (310). A hook (312) is formed at the bottom of the mounting seat (311).