Wall-straddling type controllable hanging basket device
The automated position adjustment of the wall-mounted controllable suspended platform device solves the problem of frequent disassembly and installation of traditional suspended platforms, improving construction efficiency and safety.
Patent Information
- Application Number
- CN202511373394.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-24
- Publication Date
- 2025-11-07
AI Technical Summary
Traditional suspended platforms require frequent disassembly and installation during construction, resulting in high labor costs and low construction efficiency.
The system employs a wall-mounted controllable suspended platform device, which uses a counterweight structure, a translation clamping structure, and microprocessor control to achieve automated position adjustment of the suspended platform, reducing disassembly and installation procedures.
It improved construction efficiency, reduced manpower and time consumption, and ensured operational flexibility and safety.
Smart Images

Figure CN120906331A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of building construction equipment, in particular to a wall-riding controllable hanging basket device. BACKGROUND
[0002] The hanging basket is an important equipment for high-altitude operation in construction engineering, and is widely used in construction scenes such as curtain wall installation, external wall cleaning, thermal insulation construction, etc. The hanging basket is usually composed of a suspension mechanism (composed of a front beam, a front support, a middle beam, a rear beam and a counterweight), a suspension platform, a lifting machine, a safety lock, a working steel wire rope, a safety steel wire rope, an electrical box and an electrical control system.
[0003] However, in the process of high-altitude operation in construction engineering, the traditional hanging basket has obvious movement limitations: when the construction needs to adjust the operation position along the building facade, the workers need to completely disassemble the hanging basket device, then transfer the disassembled hanging basket device to the subsequent construction position, and finally re-install the hanging basket device. The above disassembly and installation procedures not only require professional technicians to operate, resulting in high labor costs, but also seriously affect the overall construction efficiency due to the long time consumption of the disassembly and installation procedures. SUMMARY
[0004] The present application aims to provide a wall-riding controllable hanging basket device that can automatically adjust the operation position during high-altitude operation, thereby improving the flexibility and efficiency of high-altitude operation.
[0005] To achieve the above-mentioned purpose, the present application adopts the following technical solutions:
[0006] 1) A wall-riding controllable hanging basket device, comprising a support plate, one side of the support plate being provided with a counterweight structure, the counterweight structure comprising a box body, a placing chamber being provided in the box body, a counterweight block being provided in the placing chamber, a moving structure being provided at the bottom of the box body, a driving structure being provided at the top of the building for pushing the box body to move, a suspension platform being provided at the other side of the support plate for carrying an operator and being liftable, and a translation clamping structure being provided at the bottom of the support plate and being capable of being arranged on a wall and moving along the wall.
[0007] In the present application, the counterweight structure comprises a box body, which is powered by the driving structure to move, and the bottom of the box body is provided with a moving structure, which can effectively reduce the frictional force when the box body moves, thereby ensuring that the box body can move more smoothly. The movement of the box body will cause the support plate to displace accordingly, thereby causing the suspension platform at the other end of the support plate to move, and at the same time, the translation clamping structure at the bottom of the support plate can move along the wall, so that the entire device can complete the position adjustment without disassembly. This function of flexible movement and adjustment of the working position without disassembly eliminates the cumbersome procedures of disassembly, transfer and reinstallation of the traditional hanging basket, effectively reduces the labor input and time consumption, and thereby significantly improves the overall construction efficiency.
[0008] The box is provided with a placing chamber for placing the counterweight, which provides a fixed containing space for the counterweight, ensures the stability of the counterweight effect, and the structure design of the chamber also facilitates the increase and decrease of the counterweight to adapt to the needs of different operating loads. The counterweight is placed in the placing chamber in the box, and provides counterweight for the device through its own weight, balances the load at one end of the suspended platform, and when the suspended platform carries the operator and tools, the weight of the counterweight can effectively offset part of the load, so that the center of gravity of the whole device is kept within a reasonable range, avoiding tilting or overturning of the device due to the deviation of the center of gravity, and ensuring the safety of high-altitude operation.
[0009] The translation clamping structure is erected on the wall body, which can fix the whole device on the wall body by clamping the wall body, provide stable support for the whole device, prevent the device from shaking or falling during operation, and provide reliable safety protection for high-altitude operation. The counterweight structure is arranged at one end of the support plate, and balances the load of the suspended platform through its own weight, ensuring the stability of the whole device and preventing the device from tipping over due to excessive load of the suspended platform.
[0010] 2) The wall-riding controllable basket device according to 1), wherein:
[0011] Further comprising a microprocessor, the microprocessor is electrically connected with the driving structure for controlling the opening and stopping of the driving structure, and the microprocessor is electrically connected with the translation clamping structure for controlling the clamping and releasing of the translation clamping structure to the wall body.
[0012] In the present application, the microprocessor is electrically connected with the driving structure and the translation clamping structure, which can accurately control the running state of the driving structure and the translation clamping structure, realize the automation and intelligentization of device operation, reduce the error and tediousness of manual operation, and improve the accuracy and reliability of device operation.
[0013] 3) The wall-riding controllable basket device according to 2), wherein:
[0014] The translation clamping structure comprises a moving cover erected on the top of the wall body, the moving cover comprises two side plates, the two side plates are connected with a top plate, the two side plates and the top plate jointly form an inverted U-shaped structure, a plurality of clamping components for clamping the wall body are uniformly distributed in the moving cover along the moving direction of the moving cover, a plurality of rolling components capable of rolling along the top surface of the wall body are uniformly distributed in the top plate along the moving direction of the top plate, a transmission component is arranged between the clamping component and the rolling component, the running power of the clamping component can be transmitted to the rolling component through the transmission component, the transmission component is used for driving the rolling component to separate from or abut against the wall body, the microprocessor is electrically connected with the clamping component for controlling the clamping and releasing of the clamping component to the two sides of the wall body.
[0015] In the present application, the moving cover is the frame of the translation clamping structure, which is designed in an inverted U-shaped cross-section to be stably erected on the top of the wall, to provide an installation carrier for the clamping assembly, the rolling assembly and the transmission assembly, and to ensure the structural integrity and stability of the translation clamping structure.
[0016] The clamping assembly is uniformly distributed along the moving direction of the moving cover and is used to clamp both sides of the wall. Under the control of the microprocessor, the clamping and release of the wall are realized. When clamping, the entire device can be fixed on the wall to prevent the device from moving or shaking during operation, ensuring the safety of the operation. The uniform distribution of multiple clamping assemblies can make the clamping force more uniform and improve the fixing effect. When released, the device can move smoothly along the wall.
[0017] The rolling assembly is also uniformly distributed along the moving direction of the moving cover and can roll and lift along the top surface of the wall. When the device needs to move, the rolling assembly descends and contacts the top surface of the wall. The rolling assembly reduces the frictional resistance between the moving cover and the wall by rolling, so that the moving cover can move more smoothly along the wall. When the device's operation position adjustment is completed, the rolling assembly rises and separates from the top surface of the wall, and the top plate is attached to the wall, so that the moving cover can be more stably erected on the top of the wall, thereby improving the stability of the entire device. In addition, during the moving and stationary processes of the moving cover, the top plate is always in contact with the top surface of the wall to provide continuous support for the moving cover, ensuring that the moving cover remains stable under any working conditions.
[0018] The transmission assembly is arranged between the clamping assembly and the rolling assembly, and can transmit the operating power of the clamping assembly to the rolling assembly and drive it to lift, realizing the linkage of the clamping assembly and the rolling assembly. When the clamping assembly clamps the wall, the rolling assembly is lifted by the transmission assembly to ensure firm clamping. When the clamping assembly releases the wall, the rolling assembly is lowered by the transmission assembly to contact the wall, facilitating the movement of the device. This linkage design makes the switching between clamping and moving more efficient and synchronous, improves the continuity and convenience of device operation, and at the same time can reduce the number of driving devices, thereby saving costs.
[0019] 4) The wall-riding controllable cradle device according to 3), wherein:
[0020] The clamping assembly includes two oppositely arranged telescopic pumps, which are arranged outside the side plates. The output shafts of the telescopic pumps extend towards the wall through the side plates. The microprocessor is electrically connected to the two telescopic pumps for controlling the extension or retraction of the output shafts of the two telescopic pumps. The output shafts of the two telescopic pumps can move towards or away from each other and clamp and release the wall.
[0021] In the application, the clamping assembly includes two telescopic pumps arranged oppositely, which can apply clamping force from both sides of the wall, and the telescopic pump output shaft is extended and retracted to clamp and release the wall, and the two-way clamping mode can ensure more stable clamping and avoid clamping deviation caused by single-side stress.
[0022] The microprocessor is electrically connected with the telescopic pump and controls the extension or retraction of the telescopic pump output shaft, realizes automatic control of the clamping action, improves the convenience of operation, and can accurately control the telescoping amount of the telescopic pump output shaft, so as to adjust the clamping force, adapt to walls with different thicknesses or materials, and improve the universality and accuracy of clamping of the device.
[0023] 5) The wall-riding controllable hanging basket device according to 4), wherein:
[0024] The rolling assembly includes a roller arranged between the two telescopic pumps, the roller is arranged above the telescopic pump, a rolling shaft is arranged in the roller, a plurality of moving cavities for accommodating the rolling assembly are uniformly arranged in the moving direction of the top plate, a telescopic rod is arranged in the moving cavity, the top of the telescopic rod is fixedly connected with the inner wall of the moving cavity, the bottom of the telescopic rod is fixedly connected with the rolling shaft, and a rolling outlet is formed in the top plate and communicates with the moving cavity and is used for the extension of the roller.
[0025] In the application, the roller is arranged in the moving cavity, when the whole device needs to move, the roller is extended through the rolling outlet and contacts the top surface of the wall, the rolling movement of the roller can reduce the frictional resistance between the top plate and the top surface of the wall, the moving cover can move along the wall more smoothly, and the cooperation of the plurality of rollers can further improve the stability of movement.
[0026] The two telescopic pumps are arranged on both sides of the roller and are fixedly connected with the inner wall of the moving cavity, when the roller is raised, the telescopic pump is retracted upward, and when the roller is lowered, the telescopic rod is extended downward, so that the raising and lowering of the roller can be realized. The symmetrical telescopic rods arranged on both sides can ensure the balance during the raising and lowering of the roller, avoid tilting, provide stable support force for the roller, ensure that the roller will not be deformed or damaged when bearing the weight of the device, and ensure the reliability of the rolling assembly.
[0027] 6) The wall-riding controllable hanging basket device according to 5), wherein:
[0028] The transmission assembly comprises vertical racks arranged at both ends of the roller shaft, and a rack arranged at the free end of the output shaft of the telescopic pump, the top plate is provided with a rack outlet in communication with the moving chamber and for the vertical racks to extend out, the end of the rack away from the telescopic pump is provided with a clamping block, the vertical racks and the rack are jointly meshed with a gear, and the gear is fixedly connected with the inner wall of the moving cover.
[0029] In the present application, the rack is fixed at the free end of the output shaft of the telescopic pump and moves correspondingly with the telescopic pump, on the one hand, the clamping block at the end directly acts on the wall, and the other side rack arranged oppositely realizes clamping of the wall; on the other hand, the movement of the rack drives the gear meshed therewith to rotate.
[0030] The vertical racks are fixedly arranged at both ends of the roller shaft and can convert the rotary motion of the gear into linear motion in the vertical direction, when the gear rotates, the vertical racks move up and down, and in turn drive the roller shaft and the roller to lift, realizing contact and separation of the roller and the top surface of the wall, and the vertical racks arranged at both ends can ensure that the roller shaft is balanced, so that the roller lifts more stably.
[0031] The clamping block is arranged at the end of the rack away from the telescopic pump and is in contact with the surface of the wall under the pushing of the rack, which increases the contact area between the rack and the wall, can not only disperse the clamping force and avoid damage to the surface of the wall, but also improve the friction of clamping, so that the clamping is more firm and reliable.
[0032] The gear is fixedly connected with the inner wall of the moving cover and is jointly meshed with the vertical racks and the rack, which functions to transmit power and change the direction of motion, converts the movement of the rack into the lifting motion of the vertical racks, realizes linkage of the clamping assembly and the rolling assembly, and ensures the stability and accuracy of the transmission process, so that the movement of the rack and the vertical rack maintains a strict synchronous relationship, ensures the coordination of the clamping and the lifting of the roller, and improves the accuracy and efficiency of the state switching of the device.
[0033] 7) The wall-riding controllable cradle device according to 2), wherein:
[0034] The box body is provided with a lifting assembly for lifting the box body, and the microprocessor is electrically connected with the lifting assembly and used for controlling the lifting and lowering of the box body by the lifting assembly.
[0035] In the present application, the long telescopic rods are uniformly distributed along the moving direction of the top of the box body and are fixedly connected with the support plate at the top end, which functions to connect the box body and the support plate, and when the box body is lifted or lowered under the action of the lifting assembly, the long telescopic rods are synchronously telescoped, thereby providing vertical guidance and support for the box body, and the multiple long telescopic rods uniformly distributed can balance the force acting on the box body, avoid tilting or shaking during lifting, and enhance the stability of the counterweight structure.
[0036] The lifting assembly is arranged on the box body and is used for driving the box body to lift.
[0037] 8) The wall-riding controllable hanging basket device according to 7), wherein:
[0038] The lifting assembly comprises an electric jack arranged on the top of the building, a support cross bar connected to a free end of an output shaft of the electric jack, and a horizontal moving groove formed in a side wall of the box body, one end of the support cross bar being capable of extending into the horizontal moving groove, and the microprocessor being electrically connected to the electric jack and used for controlling the extension or retraction of the output shaft of the electric jack.
[0039] In the present application, the electric jack is arranged on the top of the building, and the extension and retraction of the output shaft of the electric jack can generate driving force to directly drive the support cross bar to lift and further provide power for the lifting of the box body.
[0040] 9) The wall-riding controllable hanging basket device according to 2), wherein:
[0041] The driving structure comprises a pushing cylinder, a vertical sliding rail extending in the height direction is formed in one side of the box body, a vertical sliding block capable of sliding along the vertical sliding rail is arranged on the vertical sliding rail, an end of an output shaft of the pushing cylinder is fixedly connected to the vertical sliding block, the microprocessor is electrically connected to the pushing cylinder and is used for controlling the start and stop of the pushing cylinder, and the pushing cylinder is used for driving the counterweight structure to move.
[0042] In the application, the push cylinder serves as the power device of the driving structure, and is controlled by the microprocessor to start and stop, so that the push cylinder drives the counterweight structure to move. The extension and retraction of the output shaft of the push cylinder can generate driving force, and by accurately controlling the extension and retraction amount of the output shaft, the moving distance of the box body can be accurately controlled, and the accuracy of the position adjustment of the counterweight structure is ensured. The vertical slide rail provides accurate movement guide for the vertical slide block, prevents the slide block from deviating or shaking during movement, and ensures that the driving force can be efficiently transmitted to the box body.
[0043] The vertical slide block is arranged on the vertical slide rail and can slide along the slide rail, and the vertical slide block is fixedly connected with the end of the output shaft of the push cylinder. On the one hand, the power output by the push cylinder can be transmitted to the box body to drive the box body to move. On the other hand, when the box body is lifted and lowered under the driving of the lifting assembly, the vertical slide block can slide relatively in the vertical slide rail, so as to avoid hindering the lifting movement of the box body, and ensure that the lifting and movement of the box body are performed cooperatively.
[0044] The microprocessor is electrically connected with the push cylinder to control the start and stop of the push cylinder, so that the automatic control of the push cylinder is realized, the intervention of manual operation is reduced, the safety and efficiency of the device operation are improved, and the position adjustment of the counterweight structure is more accurate and convenient, and the device can quickly respond to the needs of different working conditions.
[0045] 10) The over-the-wall controllable hanging basket device according to 2), wherein:
[0046] The box body has a rolling chamber at the bottom, and the moving structure includes a moving shaft arranged in the rolling chamber. The two ends of the moving shaft are rotatably connected with moving wheels. The box body is provided with moving outlets corresponding to the moving wheels and communicating with the rolling chamber. The moving outlets are used for the moving wheels to extend out. The box body is provided with a rolling cylinder at the top. The output shaft of the rolling cylinder is fixedly connected with the moving shaft through the box body. The microprocessor is electrically connected with the rolling cylinder to control the extension or retraction of the output shaft of the rolling cylinder, so that the rolling cylinder drives the moving shaft to lift and lower.
[0047] In the application, the rolling chamber is arranged at the bottom of the box body to provide a space for the moving shaft and the moving wheels. The moving shaft is arranged in the rolling chamber and rotatably connected with the moving wheels at both ends. The moving shaft transmits the driving force of the rolling cylinder to the moving wheels and provides rotary support for the moving wheels, so that the moving wheels can stably rotate. When the box body needs to move, the moving wheels can extend out of the bottom of the box body and contact the ground. The sliding friction between the box body and the ground is converted into rolling friction, which greatly reduces the moving resistance, so that the box body can be flexibly and smoothly adjusted in position, and the convenience of the device movement is improved.
[0048] The microprocessor is electrically connected with the rolling cylinder, and the lifting state of the moving wheel is accurately controlled by controlling the extension and retraction of the output shaft of the rolling cylinder: when the box body needs to be moved, the rolling cylinder is controlled to extend, so that the moving wheel contacts the ground and supports the box body; when the box body does not need to be moved, the rolling cylinder is controlled to retract, so that the moving wheel is located in the rolling chamber, and the stability of the box body is ensured.
[0049] Compared with the prior art, the present application has the following technical effects:
[0050] The present application drives the counterweight box to move through the push cylinder, thereby driving the support plate to displace, and further driving the suspension platform at the other end of the support plate to move, so that the entire device completes position adjustment without disassembly. Compared with the prior art, the present application eliminates the cumbersome procedures of disassembly, transfer and reinstallation of the traditional hanging basket, effectively reduces the labor input and time consumption, and significantly improves the overall construction efficiency.
[0051] Secondly, the uniformly distributed telescopic pumps in the moving cover can clamp and release the two sides of the wall, when clamping, the moving cover can be fixed on the wall to prevent the device from moving or shaking during operation, and when releasing, the moving cover can smoothly move along the wall. When the device needs to move, the rollers are lowered to contact the top surface of the wall, and the rolling movement of the rollers can reduce the frictional resistance between the top plate and the top surface of the wall, so that the moving cover can move more smoothly along the wall; after the position adjustment of the device is completed, the rollers are raised to disengage from the top surface of the wall, so that the moving cover can be more stably erected on the top of the wall.
[0052] In addition, the gear simultaneously engages the vertical rack and the rack, can transmit power and change the direction of movement, converts the movement of the rack into the lifting of the vertical rack, realizes the linkage of the clamping assembly and the rolling assembly, makes the state switching more efficient and synchronous, improves the operation continuity, and also can reduce the number of driving devices to save costs. BRIEF DESCRIPTION OF DRAWINGS
[0053] Figure 1 It is a structure diagram of the wall-riding controllable hanging basket device of the present application.
[0054] Figure 2 It is Figure 1 It is an enlarged view of A in the middle.
[0055] Figure 3 It is Figure 1 It is a sectional view of B-B in the middle.
[0056] Figure 4 It is Figure 3 It is a sectional view of C-C in the middle.
[0057] Figure 5 It is Figure 3 It is a sectional view of D-D in the middle. Detailed Implementation
[0058] The following detailed description illustrates the specific implementation method:
[0059] The reference numerals in the accompanying drawings include: support plate 1, side plate 2, top plate 4, telescopic pump 5, roller 7, roller shaft 8, telescopic rod 9, vertical rack 11, rack 12, clamping block 13, gear 14, housing 15, long telescopic rod 16, counterweight block 17, electric jack 18, support crossbar 19, moving groove 20, pushing cylinder 21, vertical slide rail 22, vertical slider 23, moving shaft 24, moving wheel 25, rolling cylinder 26, drive mounting base 27, rolling base 28, first support lug 29, first fixed shaft 30, first working wire rope 31, first safety wire rope 32, first hoist 33, suspended platform 34, guardrail 35, and first safety lock 36.
[0060] See the example. Figure 1 and Figure 4 As shown, the wall-mounted controllable suspended platform device in this embodiment includes a housing 15 and a microprocessor. The interior space of the housing 15 is a placement chamber, in which counterweights 17 are stacked. Movable slots 20 are opened on both sides of the housing 15, and the opening of the movable slots is perpendicular to the moving direction of the housing. Two electric jacks 18 are installed on the roof of the building, and the two electric jacks 18 are located on both sides of the housing 15. The free ends of the output shafts of the two electric jacks 18 are fixedly connected to support crossbars 19 by bolts and nuts. The end of the support crossbar 19 away from the electric jacks 18 extends into the movable slot. Both electric jacks 18 are electrically connected to the microprocessor.
[0061] See Figure 3 As shown, a vertical slide rail 22 extending along the height direction is opened at one end of the housing 15. A vertical slider 23 is slidably connected to the vertical slide rail 22. The sliding direction of the vertical slider 23 is perpendicular to the moving direction of the housing. The drive mounting base 27 is fixedly installed on the roof of the building by bolts and nuts. The bottom of the push cylinder 21 is fixedly connected to the drive mounting base 27 by bolts and nuts. The free end of the output shaft of the push cylinder 21 is fixedly connected to the side of the vertical slider 23 away from the housing 15 by bolts and nuts. The push cylinder 21 is electrically connected to the microprocessor.
[0062] See Figure 5As shown, the bottom of the box 15 is provided with two rolling chambers, which are respectively located on both sides of the bottom of the box 15 along the pushing direction of the pushing cylinder 21, and are used for accommodating the moving shaft 24 and the two moving wheels 25. The bottom of the box 15 is provided with two moving outlets in communication with the rolling chambers, and each moving outlet corresponds to one moving wheel 25. The two ends of the moving shaft 24 are rotatably connected to the moving wheels 25 through bearings. The top of the box 15 is fixedly installed with a rolling cylinder 26 through bolts and nuts. The free end of the output shaft of the rolling cylinder 26 penetrates through the box 15 and is welded to the moving shaft 24. The bottom of the rolling cylinder 26 is fixedly connected to a rolling base 28 through bolts and nuts. The rolling base 28 is fixedly connected to the bottom of the support plate 1 through bolts and nuts.
[0063] The end of the support plate 1 close to the box 15 is uniformly provided with five long extension rods 16 made of stainless steel. The top end of the long extension rod 16 is fixedly connected to the bottom surface of the support plate 1 through bolts and nuts. The bottom end of the long extension rod 16 is fixedly connected to the top of the box 15 through bolts and nuts. The bottom of the support plate 1 is fixedly connected with a moving cover through bolts and nuts. The moving cover has an inverted U-shaped cross section. The moving cover includes two side plates 2 arranged perpendicularly to the support plate 1. The ends of the two side plates 2 close to the support plate 1 are fixedly connected with a top plate 4 through bolts and nuts. The top plate 4 is fixedly connected to the support plate 1 through bolts and nuts.
[0064] Referring to Figure 2 As shown, a plurality of extension pumps 5 are installed on the outer sides of the two side plates 2. All the extension pumps 5 are arranged along the moving direction of the moving cover, and the extension pumps 5 on the two side plates 2 form a one-to-one corresponding positional relationship. The extension pumps 5 are fixedly connected to the side plates 2 through bolts and nuts. The free ends of the extension rods of the extension pumps 5 penetrate through the side plates 2 and extend towards the wall. The extension pumps 5 are electrically connected to the microprocessor.
[0065] A plurality of moving chambers are opened in the top plate 4 and are uniformly arranged along the moving direction of the top plate 4. The moving chambers are used for accommodating the rollers 7, the rolling shafts 8, the two vertical racks 11 and the two extension rods 9. The bottom of the top plate 4 is provided with rolling outlets in communication with the moving chambers. The positions of the rolling outlets correspond to the positions of the rollers 7. The rolling shafts 8 coaxially penetrate through the rollers 7, and the rollers 7 are rotatably connected to the rolling shafts 8 through bearings. The two extension rods 9 are fixedly connected to the rolling shafts 8 through bolts and nuts. The two extension rods 9 are respectively located on both sides of the rollers 7. The top ends of the two extension rods 9 are fixedly connected to the inner walls of the moving chambers through bolts and nuts.
[0066] Two vertical racks 11 are respectively located at both ends of the roller shaft 8, both ends of the roller shaft 8 are fixedly connected with the vertical racks 11 through bolts and nuts, the free ends of the two corresponding output shafts of the telescopic pumps 5 are fixedly connected with racks 12 through bolts and nuts, and the tooth surfaces of the racks 12 face the top plate 4, the vertical racks 11 are perpendicular to the corresponding racks 12, and the end portions of the racks 12 away from the telescopic pumps are welded with clamping blocks 13, the corresponding vertical racks 11 and racks 12 are jointly meshed with a gear 14, a support shaft is coaxially penetrated in the gear 14, and connecting rods are welded at both ends of the support shaft, and the top ends of the connecting rods are fixedly connected with the inner sides of the two side plates 2 through bolts and nuts.
[0067] The first lug set and the second lug set are installed at one end of the support plate 1 away from the box body 15, the first lug set includes two first lugs 29, the second lug set includes two second lugs, the two first lugs 29 and the two second lugs are fixedly connected with the bottom of the support plate 1 through bolts and nuts, a first fixed shaft 30 is jointly penetrated on the two first lugs 29, the two first lugs 29 are fixedly connected with the first fixed shaft 30 through welding, a second fixed shaft is jointly penetrated on the two second lugs, and the two second lugs are fixedly connected with the second fixed shaft through welding, a first working wire rope 31 and a first safety wire rope 32 are fixedly installed on the first fixed shaft 30 through wire rope clamps, and a second working wire rope and a second safety wire rope are fixedly installed on the second fixed shaft through wire rope clamps.
[0068] The protective fences 35 are welded around the suspension platform 34, the first lifting machine 33 and the first safety lock 36 are fixedly connected on the protective fence 35 on one side of the suspension platform 34 through bolts and nuts, and the second lifting machine and the second safety lock are fixedly connected on the protective fence 35 on the other side of the suspension platform 34 through bolts and nuts; one end of the first working wire rope 31 is inserted into the wire inlet of the first lifting machine 33 and is led out from the wire outlet of the first lifting machine 33, one end of the first safety wire rope 32 is inserted into the wire hole of the first safety lock 36 and is led out from the wire hole of the first safety lock 36; one end of the second working wire rope is inserted into the wire inlet of the second lifting machine and is led out from the wire outlet of the second lifting machine, and one end of the second safety wire rope is inserted into the wire hole of the second safety lock and is led out from the wire hole of the second safety lock, and the first lifting machine 33 and the second lifting machine are electrically connected with the microprocessor.
[0069] The specific implementation process is as follows:
[0070] The microprocessor sends commands to the two electric jacks 18 at the same time, and the output shafts of the two electric jacks 18 extend upwards at the same time, pushing the support crossbar 19 to rise, one end of the support crossbar 19 extending into the moving groove 20, and the rising of the support crossbar 19 driving the entire box 15 to rise. Subsequently, the microprocessor sends commands to the two rolling cylinders 26 at the same time, and the output shafts of the two rolling cylinders 26 extend downwards at the same time, pushing the moving shaft 24 to move downwards, driving the moving wheels 25 at both ends of the moving shaft 24 to move downwards and contact the roof of the building.
[0071] Subsequently, the microprocessor sends commands to all the telescopic pumps 5 at the same time, and the output shafts of all the telescopic pumps 5 retract synchronously, thereby driving the rack 12 to move away from the wall, and at the same time, driving the clamping blocks 13 to move away from the wall, releasing the clamping pressure on the wall; as the rack 12 moves backwards, the gear 14 meshing with the rack 12 and the vertical rack 11 rotates clockwise, driving the vertical rack 11 to move downwards, and in turn driving the rollers 7 to move downwards, and the rollers 7 contacting the top surface of the wall; then, the microprocessor sends a command to the pushing cylinder 21, and the output shaft of the pushing cylinder 21 extends, pushing the entire box 15 to move, thereby driving the entire device to adjust the working position.
[0072] After the adjustment of the device position is completed, the microprocessor sends commands to all the telescopic pumps 5 at the same time, and the output shafts of all the telescopic pumps 5 extend synchronously, thereby driving the rack 12 to move towards the wall, until the clamping blocks 13 are attached to the wall, at which time the two corresponding clamping blocks 13 clamp the wall; as the rack 12 moves forwards, the gear 14 meshing with the rack 12 and the vertical rack 11 rotates counterclockwise, driving the vertical rack 11 to move upwards, and in turn driving the rollers 7 to move upwards, and the rollers 7 separating from the top surface of the wall, and the top plate 4 being attached to the wall.
[0073] Subsequently, the microprocessor sends commands to the two rolling cylinders 26 at the same time, and the output shafts of the two rolling cylinders 26 retract upwards at the same time, driving the moving shaft 24 to move upwards, and in turn driving the moving wheels 25 at both ends of the moving shaft 24 to move upwards and separate from the roof of the building; then, the microprocessor sends commands to the two electric jacks 18 at the same time, and the output shafts of the two electric jacks 18 retract downwards at the same time, driving the support crossbar 19 to descend, and in turn driving the entire box 15 to descend to the roof of the building.
[0074] In this embodiment, the counterweight box is driven by the pushing cylinder 21 to move, thereby driving the support plate 1 to produce a corresponding displacement, and in turn driving the suspension platform 34 at the other end of the support plate 1 to move, thereby enabling the entire device to complete the adjustment of the working position without disassembly. Compared with the prior art, this embodiment eliminates the cumbersome procedures of disassembly, transfer and reinstallation of the traditional hanging basket, effectively reduces the labor input and time consumption, and significantly improves the overall construction efficiency.
[0075] Secondly, the telescopic pump uniformly distributed in the mobile cover can clamp and release the two sides of the wall body. When clamping, the mobile cover can be fixed on the wall body to prevent the device from moving or shaking during operation. When releasing, the mobile cover can smoothly move along the wall body. When the device needs to move, the roller 7 is lowered to contact the top surface of the wall body. The rolling movement of the roller can reduce the frictional resistance between the top plate and the top surface of the wall body, so that the mobile cover can move more smoothly along the wall body. After the position adjustment of the device is completed, the roller 7 is raised to separate from the top surface of the wall body, so that the mobile cover can be more stably erected on the top of the wall body.
[0076] In addition, the gear 14 simultaneously engages the vertical rack 11 and the rack 12, can transmit power and change the direction of movement, converts the movement of the rack 12 into the vertical lifting of the vertical rack 11, realizes the linkage of the clamping assembly and the rolling assembly, makes the state switching more efficient and synchronous, improves the operation continuity, and at the same time can reduce the number of driving devices to save the cost.
[0077] The above is only an embodiment of the present application, and the common technical solutions and / or characteristics in the scheme are not described in detail. It should be noted that for those skilled in the art, without departing from the technical solutions of the present application, a number of modifications and improvements can be made, which should also be considered as the protection scope of the present application, which will not affect the effect and practicality of the present application. The protection scope of the present application should be subject to the content of its claims, and the specific implementation mode and the like in the specification can be used to explain the content of the claims.
Claims
1. A controllable wall-hugging basket device, characterized in that, The utility model provides a building maintenance platform, including support board, one side of support board is equipped with counterweight structure, counterweight structure includes box, be equipped with the placement chamber in the box, be equipped with counterweight block in the placement chamber, the bottom of box is equipped with moving structure, building top is equipped with the drive structure for pushing the movement of box, the other side of support board is equipped with the suspension platform for bearing operator and can lift, the bottom of support board is equipped with the translation clamping structure of erecting on wall body and can move along wall body.
2. The controllable wall-hugging cradle device of claim 1, wherein: Also includes microprocessor, microprocessor is electrically connected with drive structure, is used for controlling the opening and stop of drive structure, microprocessor is electrically connected with translation clamping structure, is used for controlling the clamping and release of translation clamping structure to wall body.
3. The controllable wall-hugging cradle device of claim 2, wherein: The translation clamping structure includes a moving cover erected on the top of the wall, the moving cover includes two side plates, the two side plates are connected with a top plate, the two side plates and the top plate form a reverse U-shaped structure, the moving cover is uniformly distributed with a plurality of clamping assemblies for clamping the wall along the moving direction of the moving cover, the top plate is uniformly distributed with a plurality of rolling assemblies that can roll along the top surface of the wall along the moving direction of the top plate, the clamping assemblies and the rolling assemblies are provided with a transmission assembly, the operating power of the clamping assemblies can be transmitted to the rolling assemblies through the transmission assembly, the transmission assembly is used to drive the rolling assemblies to separate from or abut against the wall, the microprocessor and the clamping assemblies are electrically connected, and the clamping and release of the clamping assemblies to the two sides of the wall are controlled.
4. The controllable wall-hugging cradle device of claim 3, wherein: The clamping assembly includes two opposite telescopic pumps, the two telescopic pumps are arranged outside the side plates, the output shafts of the telescopic pumps extend towards the wall through the side plates, the microprocessor is electrically connected with the two telescopic pumps, and the extension or retraction of the output shafts of the two telescopic pumps is controlled, the output shafts of the two telescopic pumps can move towards or away from each other and clamp and release the wall.
5. The controllable wall-hugging cradle device of claim 4, wherein: The rolling assembly includes a roller arranged between the two telescopic pumps, the roller is arranged above the telescopic pumps, a rolling shaft is arranged in the roller, a plurality of moving cavities for accommodating the rolling assemblies are uniformly distributed in the top plate along the moving direction of the top plate, a telescopic rod is arranged in the moving cavity, the top of the telescopic rod is fixedly connected with the inner wall of the moving cavity, the bottom of the telescopic rod is fixedly connected with the rolling shaft, and a rolling outlet is formed in the top plate and communicates with the moving cavity and is used for the extension of the roller.
6. The controllable wall-hugging cradle device of claim 5, wherein: The transmission assembly includes a vertical rack arranged at both ends of the rolling shaft and a rack arranged at the free end of the output shaft of the telescopic pump, a rack outlet is formed in the top plate and communicates with the moving cavity and is used for the extension of the vertical rack, the end of the rack away from the telescopic pump is provided with a clamping block, a gear is jointly engaged on the vertical rack and the rack, and the gear is fixedly connected with the inner wall of the moving cover.
7. The controllable wall-hugging cradle device of claim 2, wherein: A plurality of long telescopic rods are uniformly distributed in the box along the moving direction of the box, the top end of the long telescopic rod is fixedly connected with one end of the support plate, a lifting assembly is arranged on the box and is used for lifting the box, and the microprocessor is electrically connected with the lifting assembly and is used for controlling the lifting and lowering of the lifting assembly to the box.
8. The controllable wall-hugging cradle device of claim 7, wherein: The lifting assembly comprises an electric jack arranged at the top of the building, a supporting cross bar is connected to the free end of the output shaft of the electric jack, a horizontal moving groove is formed in the side wall of the box, one end of the supporting cross bar can extend into the horizontal moving groove, the microprocessor is electrically connected with the electric jack and is used for controlling the extension or retraction of the output shaft of the electric jack.
9. The controllable wall-hugging cradle device of claim 2, wherein: The driving structure comprises a pushing cylinder, a vertical sliding rail extending along the height direction is formed in one side of the box, a vertical sliding block capable of sliding along the vertical sliding rail is arranged on the vertical sliding rail, the end of the output shaft of the pushing cylinder is fixedly connected with the vertical sliding block, the microprocessor is electrically connected with the pushing cylinder and is used for controlling the start and stop of the pushing cylinder, and the pushing cylinder is used for driving the counterweight structure to move.
10. The controllable wall-hugging cradle device of claim 2, wherein: The box is provided with a rolling chamber at the bottom, the moving structure comprises a moving shaft arranged in the rolling chamber, moving wheels are rotatably connected to the two ends of the moving shaft respectively, moving outlets corresponding to the moving wheels are formed in the bottom of the box and are communicated with the rolling chamber, the moving outlets are used for the moving wheels to extend out, the box is provided with a rolling cylinder at the top, the output shaft of the rolling cylinder is fixedly connected with the moving shaft through the box, and the microprocessor is electrically connected with the rolling cylinder and is used for controlling the extension or retraction of the output shaft of the rolling cylinder, so that the rolling cylinder drives the moving shaft to move up and down.