Intelligent remote control building outer window water test device
The intelligent remote-controlled building window water spray test device, using components such as a water distribution box, spray pipe, and motor drive, solves the problems of inconvenience and uneven spraying in existing devices at windows of different depths. It achieves a wider spray range and better uniformity, reduces manual labor, and increases the authenticity of the test and the utilization of water resources.
Patent Information
- Application Number
- CN202510621567.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2045-05-15
AI Technical Summary
The existing water spray test device cannot be used uniformly at windows of different depths, requiring manual replacement of the bracket. The water flow from the spray outlet is too concentrated, resulting in insufficient water spray at the edges or seams of the window frame, making it impossible to detect the actual leakage point.
The intelligent remote-controlled building exterior window water spray test device uses components such as a water distribution box, spray pipe, electric suction cup, and camera to automatically adjust the direction and range of water spray. Combined with a simulated recovery component and motor drive, it achieves uniformity and stability of spraying.
It achieves a wider spray range and better uniformity, reduces manual labor intensity, increases the authenticity and accuracy of testing, enables water resource recycling, and improves device stability.
Smart Images

Figure CN120141745B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of water spray testing technology, specifically to an intelligent remote-controlled water spray testing device for building exterior windows. Background Technology
[0002] To test the waterproof performance of the exterior windows of residential projects, eliminate the risk of systemic leakage, and deliver products that satisfy customers, an on-site water spray test is required for each exterior window before project delivery. Natural water pressure forms a water curtain on the surface of the exterior windows to simulate rain, ensuring that the water spray covers all exterior windows. After the water spray test, the exterior windows are visually inspected upon entering the house to check for any leakage.
[0003] In the Chinese patent with publication number CN215865652U, entitled "A Water Spray Test Device for Building Exterior Windows", multiple independent water outlets are set up to conduct water spray tests on multiple exterior windows at the same time. On the one hand, it can test the sealing performance of the exterior windows themselves, and on the other hand, it can test the sealing performance between the exterior windows and the wall.
[0004] However, this patent and existing water spray device spray pipe brackets cannot be used uniformly at windows of different depths. It requires manual replacement of brackets suitable for the window, which affects the speed of the water spray test. In addition, the water flow from the spray outlet is too concentrated, which cannot be evenly sprayed on the exterior window facade, resulting in uneven coverage area. This leads to insufficient water spray at the edges or seams of the window frame, making it impossible to detect the actual leakage point. Summary of the Invention
[0005] This invention provides an intelligent remote-controlled water spray test device for building exterior windows, which can effectively solve the problems in the above-mentioned background technology where the spray pipe brackets of the patented and existing water spray devices cannot be used uniformly at windows of different depths, requiring manual replacement of brackets suitable for the windows, affecting the speed of the water spray test, and the water flow from the spray outlet is too concentrated, unable to spray evenly on the exterior window facade, resulting in uneven coverage area, insufficient water spray at the window frame edges or joints, and inability to detect the actual leakage points.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an intelligent remote-controlled building exterior window water spray test device, comprising an assembly frame, wherein a water spray test component is provided on one side of the assembly frame, and the water spray test component includes a water distribution box;
[0007] A water distribution box is installed in the middle of one side of the assembly frame. A water supply pipe is connected to the top opening of the water distribution box. Spray pipes are rotatably connected to both sides of the water distribution box. Several spray heads are installed at equal intervals on one side of the spray pipes. A connecting water pipe is connected between two water distribution boxes.
[0008] Both ends of the assembly frame are equipped with adjusting slide tubes. An adjusting rack is slidably installed inside the adjusting slide tubes. An electric suction cup is installed at one end of the adjusting rack. A support frame is connected to one side of the adjusting rack and near the electric suction cup. A movable electric push rod is rotatably installed at the top of the support frame. A roller frame is connected to the output end of the movable electric push rod. A hollow wheel is rotatably installed inside the roller frame. A drive motor is installed on one side of the outer side of the roller frame. The output end of the drive motor is connected to one end of the rotating shaft of the adjacent hollow wheel. Fixed suction cups are connected to evenly spaced holes on the outer side of the hollow wheel.
[0009] According to the above technical solution, a swing gear is connected to one end of the outer side of the spray pipe, and a swing electric push rod is installed at the bottom of the assembly frame and at the bottom of the swing gear. A swing rack is connected to the output end of the swing electric push rod, and the swing gear meshes with the adjacent swing rack.
[0010] According to the above technical solution, a number of cameras are installed at equal intervals on the other side of the assembly frame;
[0011] Limiting grooves are provided on both sides of the adjusting rack, and limiting strips are welded to both sides inside the adjusting slide tube. The adjusting rack is embedded in the adjacent limiting groove.
[0012] According to the above technical solution, an adjustment motor is installed at both ends of the assembly frame and on one side of the adjustment slide tube. An adjustment gear is connected to the output end of the adjustment motor, and the adjustment gear meshes with the adjacent adjustment rack.
[0013] According to the above technical solution, the other end of the hollow wheel rotating shaft is connected to one end of the rotary joint, the other end of the rotary joint is connected to one end of the telescopic bellows, the other end of the telescopic bellows is connected to a connector, a filter box is installed at the top of the support frame and on one side of the movable electric push rod, the connector is connected to one end of the filter box by a thread, a dust filter screen is embedded inside the filter box, an air suction pump is installed on one side of the filter box, and the air suction end of the air suction pump is connected to the other end of the adjacent filter box.
[0014] According to the above technical solution, a transverse electric actuator is installed on one side of the support frame and on the side of the suction pump. The output end of the transverse electric actuator is connected to a transverse rack, and one end of the moving electric actuator is connected to a transverse gear. The transverse rack meshes with an adjacent transverse gear.
[0015] According to the above technical solution, a movable platform is provided on one side of the top of the assembly frame located at the top. Winding rollers are installed on both sides of the top of the movable platform. A lifting motor is installed at one end of the winding roller. The output end of the lifting motor is connected to one end of the rotating shaft of the adjacent winding roller. A lifting rope is wound around the outside of the winding roller. One end of the two lifting ropes is connected to the two ends of the top of the assembly frame located at the top. Electric wheels are installed at the four corners of the bottom of the movable platform.
[0016] Both ends of the mobile platform are equipped with guide electric actuators, and the output ends of the guide electric actuators are connected to two guide wheels. The lifting rope is wrapped inside the adjacent guide wheels.
[0017] According to the above technical solution, a simulated recycling component is provided between the two assembly frames, and the simulated recycling component includes a guide connecting rod;
[0018] Two assembly frames are connected by guide connecting rods at their adjacent ends. A bidirectional motor is installed in the middle of the guide connecting rod. A moving screw is connected to the output end of the bidirectional motor. A moving seat is connected between the moving screw and the adjacent guide connecting rod. The moving seat and the moving screw are connected by a threaded hole. The moving seat and the guide connecting rod are slidably connected. A redirecting electric actuator is installed on one side of the moving seat. The output ends of two redirecting electric actuators located on the same plane are connected to an assembly plate through a rotating connecting seat. A flow passage hole is equally spaced through one side of the assembly plate. An axial flow fan is installed on one side of the assembly plate at the position corresponding to the flow passage hole. Several axial flow fans located on the same plane are connected by a linkage rod. A redirecting motor is installed on one side of the assembly plate at one end of the linkage rod. The output end of the redirecting motor is connected to one end of the adjacent linkage rod.
[0019] A water collection tank is installed at the bottom of the assembly frame. Inside the water collection tank, a take-up and release roller is rotatably installed. Both ends of the outer side of the water collection tank are equipped with spiral springs. The two ends of the rotating shaft of the take-up and release rollers are respectively connected to the movable connecting ends of the two spiral springs. A waterproof cloth is wrapped around the outer side of the take-up and release rollers. The movable ends of the waterproof cloth are respectively connected to one end of two lifting ropes. The other end of the lifting ropes is connected to one end of the bottom of an adjacent adjusting rack. A return water pump is installed on one side of the outer side of the water collection tank. The inlet end of the return water pump is connected to the bottom of one side of the water collection tank through a return inlet pipe. The outlet end of the return water pump is connected to one side of the water supply pipe through a return outlet pipe. The return outlet pipe is connected to the water supply pipe through a one-way water valve.
[0020] According to the above technical solution, the diameter at the middle position of the take-up and release rollers is smaller than the diameter at both ends, and a return water filter screen is placed inside the water collection tank and at the bottom of the take-up and release rollers.
[0021] According to the above technical solution, the input terminals of the swing electric actuator, camera, adjusting motor, electric suction cup, moving electric actuator, drive motor, suction pump, horizontal moving electric actuator, lifting motor, guide electric actuator, bidirectional motor, redirecting electric actuator, axial flow fan, redirecting motor and return water pump are electrically connected to the output terminal of the external controller, and the input terminal of the external controller is electrically connected to the output terminal of the external power supply.
[0022] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0023] 1. Equipped with a water spray test assembly, the lifting motor drives the winding roller to rotate, the lifting rope is extended, the assembly frame descends, and the adjusting motor drives the adjusting rack to move until the electric suction cup is in contact with the building's exterior window. The electric suction cup is activated to stably fix the assembly frame to the outside of the exterior window. With the connection of the water pipe, clean water enters the water distribution box and the inside of the spray pipe, and finally sprays out from the spray head. The swing electric push rod drives the swing gear and the spray pipe to rotate, changing the spray direction of the spray head, resulting in a wider spray range, more convenient operation, and more uniform spray.
[0024] When testing different window depths, the position of the adjusting rack in the adjusting slide tube is changed by adjusting the motor. The electric suction cup can adsorb the building window facades of different depths, making it more applicable. Combined with the image captured by the camera and transmitted to the external display, it is convenient and quick to observe the spraying situation of the window.
[0025] The moving electric actuator drives the roller frame and hollow wheels to move, bringing the hollow wheels into contact with the exterior window facade. Through the connection of the rotary joint, telescopic corrugated pipe, and filter box, the air pump removes the air from inside the hollow wheels. The fixed suction cup adheres to the exterior window facade. The drive motor rotates the hollow wheels, which in turn rotates the moving electric actuator, the lifting motor moves the lifting rope up and down, and the electric wheels move the moving platform. The assembly frame can move stably and flexibly along the exterior window facade at multiple angles without requiring manual manipulation, reducing labor intensity. Furthermore, compared to traditional manual manipulation, the stable movement of the assembly frame prevents violent shaking of the entire device, avoiding collisions that could damage the exterior window glass, resulting in better device stability.
[0026] 2. A simulated recycling component is provided. A bidirectional motor drives a moving screw to rotate. Under the limiting guidance of the guide connecting rod, the bidirectional motor drives the moving seat and assembly plate to move up and down. Under the rotational connection of the rotating connecting seat, the redirecting electric push rod drives the assembly plate to swing. At the same time, the redirecting motor drives the linkage rod and axial flow fan to swing. The bidirectional motor, redirecting electric push rod and redirecting motor cooperate with each other to change the blowing direction of the axial flow fan in multiple directions, simulating the effect of natural wind on rainwater, which increases the realism of the test. Furthermore, by controlling the wind speed of the axial flow fan, the effect of different winds on the spray can be simulated, which further increases the realism of the test.
[0027] The splashed water falls onto the top of the waterproof fabric under gravity. The horizontal height at the middle position of the take-up and release rollers is lower than the height at both ends of the rollers. Guided by the take-up and release rollers, the water falling onto the top of the waterproof fabric can collect in the middle of the waterproof fabric and finally fall into the water collection tank. The return water filter screen filters the water flowing into the water collection tank, and impurities are retained on the top of the return water filter screen. The water collected in the water collection tank is transported into the water supply pipe by the return inlet pipe, return water pump and return outlet pipe, realizing water recycling and reducing water waste. Under the connection and drive of the lifting rope, the adjustment rack moves while pulling the waterproof fabric, so that the waterproof fabric can be as close as possible to the outside window, and the splashed water can fall onto the top of the waterproof fabric as much as possible, which improves the water recycling effect.
[0028] In summary, the axial flow fan in the simulated recycling component enables the water sprayed from the spray nozzles in the water spray test component to act more evenly on the outer surface of the window. Compared with the background technology and existing test devices, the water sprayed by this device is more uniform and the test effect is better. The various electrical components of this device can be connected to a dedicated remote control via wireless local area network to achieve remote automated control, which is convenient and fast. Attached Figure Description
[0029] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof.
[0030] In the attached diagram:
[0031] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0032] Figure 2 This is a schematic diagram of the structure of the water spray test assembly of the present invention;
[0033] Figure 3 This is a schematic diagram of the installation structure of the water distribution box of the present invention;
[0034] Figure 4 This is a schematic diagram of the installation structure of the spray pipe of the present invention;
[0035] Figure 5 This is a schematic diagram of the installation structure of the hollow wheel of the present invention;
[0036] Figure 6 This is a schematic diagram of the installation structure of the guide wheel of the present invention;
[0037] Figure 7 This is a schematic diagram of the structure of the simulated recycling component of the present invention;
[0038] Figure 8 This is a schematic diagram of the installation structure of the bidirectional motor of the present invention;
[0039] Figure 9 This is a schematic diagram of the installation structure of the axial flow fan of the present invention;
[0040] Figure 10 This is a schematic diagram of the installation structure of the water collection tank of the present invention;
[0041] Figure 11 This is a schematic diagram of the installation structure of the take-up and release rollers of the present invention;
[0042] Labels in the diagram: 1. Assembly rack;
[0043] 2. Water Spray Test Components; 201. Water Distribution Box; 202. Water Supply Pipe; 203. Spray Pipe; 204. Spray Head; 205. Swing Gear; 206. Swing Electric Actuator; 207. Swing Rack; 208. Connecting Water Pipe; 209. Camera; 210. Adjusting Slide Tube; 211. Adjusting Rack; 212. Limiting Groove; 213. Limiting Strip; 214. Adjusting Motor; 215. Adjusting Gear; 216. Electric Suction Cup; 217. Support Frame; 218. Moving Electric Actuator; 219. 220. Roller frame; 221. Hollow wheel; 222. Drive motor; 223. Fixed suction cup; 224. Rotary joint; 225. Telescopic corrugated pipe; 226. Connector; 227. Filter box; 228. Dust filter screen; 229. Suction pump; 230. Horizontal electric actuator; 231. Horizontal rack; 232. Horizontal gear; 233. Moving table; 234. Winding roller; 235. Lifting motor; 236. Lifting rope; 237. Guide electric actuator; 238. Guide wheel; 239. Electric wheel;
[0044] 3. Simulated recycling components; 301. Guide connecting rod; 302. Bidirectional motor; 303. Moving screw; 304. Moving seat; 305. Redirecting electric actuator; 306. Rotating connecting seat; 307. Assembly plate; 308. Flow hole; 309. Linkage rod; 310. Axial flow fan; 311. Redirecting motor; 312. Water collection tank; 313. Take-up and release rollers; 314. Spiral spring; 315. Waterproof cloth; 316. Lifting rope; 317. Return water filter screen; 318. Return water pump; 319. Return inlet pipe; 320. Return outlet pipe; 321. One-way water valve. Detailed Implementation
[0045] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0046] Example: Figure 1-11As shown, this invention provides a technical solution for an intelligent remote-controlled building exterior window water spray test device, including an assembly frame 1. A water spray test component 2 is arranged on one side of the assembly frame 1. The water spray test component 2 includes a water distribution box 201, a water supply pipe 202, a spray pipe 203, a spray head 204, a swing gear 205, a swing electric actuator 206, a swing rack 207, a connecting water pipe 208, a camera 209, an adjusting slide 210, an adjusting rack 211, a limiting groove 212, a limiting strip 213, an adjusting motor 214, an adjusting gear 215, and an electric... The components include: a moving suction cup 216, a support frame 217, a moving electric actuator 218, a roller frame 219, a hollow wheel 220, a drive motor 221, a fixed suction cup 222, a rotary joint 223, a telescopic corrugated pipe 224, a connector 225, a filter box 226, a dust filter screen 227, an air pump 228, a horizontal moving electric actuator 229, a horizontal moving rack 230, a horizontal moving gear 231, a moving table 232, a winding roller 233, a lifting motor 234, a lifting rope 235, a guide electric actuator 236, a guide wheel 237, and an electric wheel 238.
[0047] A water distribution box 201 is installed in the middle of one side of the assembly frame 1. A water supply pipe 202 is connected to the top opening of the water distribution box 201. Spray pipes 203 are rotatably connected to both sides of the water distribution box 201. Several spray heads 204 are installed at equal intervals on one side of the spray pipes 203. A swing gear 205 is connected to one end of the outer side of the spray pipes 203. A swing electric actuator 206 is installed at the bottom of the assembly frame 1 and at the bottom of the swing gear 205. A swing rack 207 is connected to the output end of the swing electric actuator 206. The swing gear 205 meshes with the adjacent swing rack 207. When the swing electric actuator 206 is running, it can drive the swing gear 205 and the spray pipes 203 to rotate, thereby changing the spray direction of the spray head 204. A connecting water pipe 208 is connected between the two water distribution boxes 201. Several cameras 209 are installed at equal intervals on the other side of the assembly frame 1. The cameras 209 can transmit the captured images to an external display in real time, so as to facilitate the observation of the spraying situation of the outer window.
[0048] Both ends of the assembly frame 1 are equipped with adjusting slide tubes 210. An adjusting rack 211 is slidably mounted inside the adjusting slide tube 210. Limiting grooves 212 are formed on both sides of the adjusting rack 211. Limiting strips 213 are welded to both sides of the adjusting slide tube 210. The adjusting rack 211 is embedded in the adjacent limiting groove 212. The limiting strips 213 can limit the movement of the adjusting rack 211 within the adjusting slide tube 210. Adjusting motors 214 are installed at both ends of the assembly frame 1, located on one side of the adjusting slide tube 210. An adjusting gear 215 is connected to the output end of the adjusting motor 214. The adjusting gear 215 meshes with the adjacent adjusting rack 211. The gear meshing drives… Under the action, the adjusting motor 214 can drive the adjusting rack 211 to move inside the adjusting slide tube 210. An electric suction cup 216 is installed at one end of the adjusting rack 211. A support frame 217 is connected to one side of the adjusting rack 211 and near the electric suction cup 216. A movable electric push rod 218 is rotatably installed at the top of the support frame 217. A roller frame 219 is connected to the output end of the movable electric push rod 218. A hollow wheel 220 is rotatably installed inside the roller frame 219. A drive motor 221 is installed on one side of the outside of the roller frame 219. The output end of the drive motor 221 is connected to one end of the rotating shaft of the adjacent hollow wheel 220. A fixed suction cup 222 is connected to the evenly spaced holes on the outside of the hollow wheel 220.
[0049] The other end of the rotating shaft of the hollow wheel 220 is connected to one end of the rotary joint 223, and the other end of the rotary joint 223 is connected to one end of the telescopic bellows 224. The rotary joint 223 ensures that air passes through the telescopic bellows 224 without obstructing the rotation of the hollow wheel 220. The other end of the telescopic bellows 224 is connected to a connector 225. A filter box 226 is installed on the top of the support frame 217 and on one side of the movable electric push rod 218. The connector 225 is threadedly connected to one end of the filter box 226. 6. A dust filter 227 is embedded inside the filter box 226. The dust filter 227 can filter the air flowing through it and prevent dust from affecting the operation of the suction pump 228. The suction pump 228 is installed on one side of the filter box 226. The suction end of the suction pump 228 is connected to the other end of the adjacent filter box 226. Under the connection of the rotary joint 223, the telescopic bellows 224 and the filter box 226, the suction pump 228 can draw the air out of the hollow wheel 220, so that the air pressure inside the hollow wheel 220 is lower than the outside air pressure.
[0050] A transverse electric actuator 229 is installed on one side of the support frame 217 and on the side of the suction pump 228. A transverse rack 230 is connected to the output end of the transverse electric actuator 229. A transverse gear 231 is connected to one end of the moving electric actuator 218. The transverse rack 230 meshes with the adjacent transverse gear 231. When the transverse electric actuator 229 is running, it can drive the transverse gear 231 and the moving electric actuator 218 to rotate, thereby driving the roller frame 219 and the hollow wheel 220 to rotate.
[0051] A movable platform 232 is located on one side of the top of the assembly rack 1. Winding rollers 233 are mounted on both sides of the top of the movable platform 232. A lifting motor 234 is mounted at one end of each winding roller 233. The output end of the lifting motor 234 is connected to one end of the rotating shaft of the adjacent winding roller 233. Lifting ropes 235 are wound around the outside of the winding rollers 233. One end of each lifting rope 235 is connected to one end of the top of the assembly rack 1. Under the connection of the lifting ropes 235, when the lifting motor 234 drives the winding rollers 233 to rotate, it can move the assembly rack 1 up and down. Electric wheels 238 are installed at the four corners of the bottom. The moving platform 232 is transported to the roof of the building. The electric wheels 238 can drive the assembly frame 1 to move laterally. Guide electric push rods 236 are installed at both ends inside the moving platform 232. Two guide wheels 237 are connected to the output end of the guide electric push rods 236. The lifting rope 235 is wrapped inside the adjacent guide wheels 237. The guide wheels 237 can guide the lifting rope 235. The guide electric push rods 236 can push the lifting rope 235 to detach from the eaves of the building to avoid damage to the lifting rope 235 due to friction between the eaves and the lifting rope 235.
[0052] A simulated recycling component 3 is set between the two assembly racks 1. The simulated recycling component 3 includes a guide connecting rod 301, a bidirectional motor 302, a moving screw 303, a moving seat 304, a redirecting electric push rod 305, a rotating connecting seat 306, an assembly plate 307, a flow hole 308, a linkage rod 309, an axial flow fan 310, a redirecting motor 311, a water collection tank 312, a take-up and release roller 313, a spiral spring 314, a waterproof cloth 315, a lifting rope 316, a return water filter screen 317, a return water pump 318, a return inlet pipe 319, a return outlet pipe 320, and a one-way water valve 321.
[0053] Two assembly frames 1 are connected at their adjacent ends by guide connecting rods 301. A bidirectional motor 302 is installed in the middle of the guide connecting rods 301. A moving screw 303 is connected to the output end of the bidirectional motor 302. A moving seat 304 is connected between the moving screw 303 and the adjacent guide connecting rod 301. The moving seat 304 is connected to the moving screw 303 through a threaded hole. The moving seat 304 is slidably connected to the guide connecting rod 301. A redirecting electric actuator 305 is installed on one side of the moving seat 304. The two assembly frames 1 are located on the same plane. The output end of the redirecting electric actuator 305 is connected to the assembly plate 307 via the rotating connecting seat 306. The assembly plate 307 has flow holes 308 that are equally spaced through it on one side. An axial flow fan 310 is installed on one side of the assembly plate 307 at the position corresponding to the flow holes 308. Several axial flow fans 310 located on the same plane are connected to each other via linkage rods 309. A redirecting motor 311 is installed on one side of the assembly plate 307 at one end of the linkage rod 309. The output end of the redirecting motor 311 is connected to one end of the adjacent linkage rod 309.
[0054] At the bottom of the assembly frame 1, a water collection tank 312 is installed. Inside the water collection tank 312, a take-up / release roller 313 is rotatably mounted. Spiral springs 314 are installed at both ends of the outer side of the water collection tank 312. The two ends of the rotating shaft of the take-up / release roller 313 are respectively connected to the movable connecting ends of the two spiral springs 314. A waterproof cloth 315 is wound around the outside of the take-up / release roller 313. The movable ends of the waterproof cloth 315 are respectively connected to one end of two lifting ropes 316. The other end of the lifting ropes 316 is connected to one end of the bottom of an adjacent adjusting rack 211. Under the driving action of the lifting ropes 316, the adjusting rack 211 can pull the waterproof cloth 315 to move when it moves. The diameter of the take-up / release roller 313 at the middle position is smaller than the diameter at both ends. Under the guidance of the water, the water falling on the top of the waterproof cloth 315 can be collected in the middle of the waterproof cloth 315 and finally fall into the water collection tank 312. Inside the water collection tank 312 and at the bottom of the take-up and release roller 313, there is a return water filter screen 317. The return water filter screen 317 can filter the water flowing into the water collection tank 312 and keep the impurities on the top of the return water filter screen 317. A return water pump 318 is installed on one side of the outside of the water collection tank 312. The water inlet of the return water pump 318 is connected to the bottom of one side of the water collection tank 312 through a return inlet pipe 319. The water outlet of the return water pump 318 is connected to one side of the water supply pipe 202 through a return outlet pipe 320. The return outlet pipe 320 is connected to the water supply pipe 202 through a one-way water valve 321.
[0055] The input terminals of the swing electric actuator 206, camera 209, adjusting motor 214, electric suction cup 216, moving electric actuator 218, drive motor 221, suction pump 228, horizontal moving electric actuator 229, lifting motor 234, guide electric actuator 236, bidirectional motor 302, redirecting electric actuator 305, axial flow fan 310, redirecting motor 311, and return water pump 318 are electrically connected to the output terminal of the external controller. The input terminal of the external controller is electrically connected to the output terminal of the external power supply. The external controller can be connected to a dedicated remote controller via a wireless local area network to realize remote automated control of various electrical components.
[0056] The working principle and usage process of this invention are as follows: When in use, the entire device is transported to the roof of the building, the electric wheel 238 is placed on the roof, the lifting rope 235 is connected to the top two ends of the top assembly frame 1, and the lifting rope 235 is guided by the guide wheel 237. The guide electric push rod 236 is controlled to drive the guide wheel 237 to move, so that the lifting rope 235 is detached from the roof. When the lifting rope 235 moves, friction between the roof and the lifting rope 235 is avoided to prevent damage to the lifting rope 235. Then the assembly frame 1 is moved to the outside of the building wall with the building's exterior windows, and the water supply pipe 202 is connected to the external water pump.
[0057] The lifting motor 234 drives the winding roller 233 to rotate, the lifting rope 235 is extended, and the assembly frame 1 descends. When the assembly frame 1 moves to the position of the outer window, the adjusting motor 214 drives the adjusting gear 215 to rotate, the adjusting rack 211 is embedded in the adjacent limiting groove 212, the limiting strip 213 limits the adjusting rack 211, the adjusting motor 214 drives the adjusting rack 211 to move until the electric suction cup 216 is in contact with the building's outer window. When the electric suction cup 216 contacts the outer window, the electric suction cup 216 is activated, and the assembly frame 1 is stably fixed to the outside of the outer window. Subsequently, an external water pump delivers clean water into the water supply pipe 202. Under the connection of the water pipe 208, the clean water enters the water distribution box 201 and the spray pipe 203, and finally sprays out from the spray head 204. At the same time, the swing electric actuator 206, the bidirectional motor 302, the redirecting electric actuator 305, the redirecting motor 311 and the axial flow fan 310 operate. The swing electric actuator 206 drives the swing gear 205 and the spray pipe 203 to rotate, changing the spray direction of the spray head 204, resulting in a wider spray range, more convenient operation and more uniform spray.
[0058] The bidirectional motor 302 drives the moving screw 303 to rotate. Under the limiting guidance of the guide connecting rod 301, the bidirectional motor 302 drives the moving seat 304 and the assembly plate 307 to move up and down. Under the rotational connection of the rotating connecting seat 306, the redirecting electric push rod 305 drives the assembly plate 307 to swing. At the same time, the redirecting motor 311 drives the linkage rod 309 and the axial flow fan 310 to swing. The bidirectional motor 302, the redirecting electric push rod 305 and the redirecting motor 311 cooperate with each other to change the blowing direction of the axial flow fan 310 in multiple directions, simulating the effect of natural wind on rainwater, which increases the realism of the test. Moreover, by controlling the wind speed of the axial flow fan 310, the effect of different winds on the spray can be simulated, which further increases the realism of the test. In addition, the blowing of the axial flow fan 310 can make the water sprayed by the spray head 204 more evenly act on the outer surface of the window, making the spray more uniform and the test effect better.
[0059] After the water sprayed by the sprinkler head 204 acts on the exterior window for a period of time, the electric suction cup 216 is temporarily de-energized. The adjusting motor 214 drives the electric suction cup 216 to move away from the exterior window by a certain distance. The moving electric push rod 218 drives the roller frame 219 and the hollow wheel 220 to move, so that the hollow wheel 220 contacts the exterior window facade. Then, the air suction pump 228 starts. Under the connected action of the rotary joint 223, the telescopic corrugated pipe 224 and the filter box 226, the air suction pump 228 draws out the air inside the hollow wheel 220, so that the air pressure inside the hollow wheel 220 is lower than the outside air pressure. The fixed suction cup 222 is attached to the exterior window facade, and the drive is used to... Motor 221 drives hollow wheel 220 to rotate, transverse rack 230 and transverse gear 231 mesh, and in conjunction with transverse electric push rod 229 drive moving electric push rod 218 to rotate, lifting motor 234 drives lifting rope 235 to move up and down, and electric wheel 238 drives moving platform 232 to move. Assembly frame 1 can move stably and flexibly along the exterior window facade at multiple angles without the need for manual pulling of the entire device, reducing the intensity of manual labor. Moreover, the stable movement of assembly frame 1, compared with traditional manual pulling, prevents the entire device from shaking violently, avoiding collisions that could damage the exterior window glass, and the device has better stability.
[0060] When moving to the next spray position, the moving electric push rod 218 drives the hollow wheel 220 to disengage from the outer window, the air pump 228 stops running, the adjusting motor 214 drives the electric suction cup 216 to fit against the outer window, and the above spraying steps are repeated to achieve the test at the next position. The image captured by the camera 209 is transmitted to the external display for easy and quick observation of the spraying situation on the outer window.
[0061] Furthermore, when the depth of the exterior window being tested is different, the position of the adjusting rack 211 within the adjusting slide tube 210 can be changed by adjusting the motor 214, and the electric suction cup 216 can adsorb the exterior window facades of different depths, making it more widely applicable.
[0062] During the spray test, water droplets hitting the exterior window surface will splash. The splashed water falls to the top of the waterproof fabric 315 under gravity. The horizontal height of the middle position of the take-up and release rollers 313 is lower than the height of the ends of the take-up and release rollers 313. Guided by the take-up and release rollers 313, the water falling to the top of the waterproof fabric 315 can collect in the middle of the waterproof fabric 315 and finally fall into the water collection tank 312. The return water filter screen 317 filters the water flowing into the water collection tank 312, and impurities are retained on the top of the return water filter screen 317. When the return water pump 318 starts, the water collected inside the water collection tank 312 enters the water delivery pipe 202 through the return inlet pipe 319, the return water pump 318, and the return outlet pipe 320, realizing water recycling and reducing water waste. Under the connection and drive of the lifting rope 316, the adjusting rack 211 moves while pulling the waterproof cloth 315, so that the waterproof cloth 315 can be as close as possible to the outside window, so that as much splashed water as possible falls on the top of the waterproof cloth 315, and the water recycling effect is better.
[0063] The various electrical components of this device can be connected to the remote controller via a wireless local area network, enabling convenient and quick remote automated control.
[0064] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A smart remote control building exterior window water test device, comprising an assembly frame (1), characterized in that, The assembly frame (1) is provided with a water spray test assembly (2) on one side, and the water spray test assembly (2) includes a water distribution box (201). A water distribution box (201) is installed in the middle of one side of the assembly frame (1). A water supply pipe (202) is connected to the top of the water distribution box (201). Spray pipes (203) are rotatably connected to both sides of the water distribution box (201). Several spray heads (204) are installed at equal intervals on one side of the spray pipe (203). A connecting water pipe (208) is connected between two water distribution boxes (201). The assembly frame (1) is equipped with adjusting slide tubes (210) at both ends. An adjusting rack (211) is slidably installed inside the adjusting slide tube (210). An electric suction cup (216) is installed at one end of the adjusting rack (211). A support frame (217) is connected to one side of the adjusting rack (211) and near the electric suction cup (216). A movable electric push rod (218) is rotatably installed at the top of the support frame (217). A roller frame (219) is connected to the output end of the movable electric push rod (218). A hollow wheel (220) is rotatably installed inside the roller frame (219). A drive motor (221) is installed on one side of the outside of the roller frame (219). The output end of the drive motor (221) is connected to one end of the rotating shaft of the adjacent hollow wheel (220). A fixed suction cup (222) is connected to the evenly spaced holes on the outside of the hollow wheel (220). One end of the spray pipe (203) is connected to a swing gear (205). A swing electric actuator (206) is installed at the bottom of the assembly frame (1) and at the bottom of the swing gear (205). The output end of the swing electric actuator (206) is connected to a swing rack (207). The swing gear (205) meshes with the adjacent swing rack (207). A simulated recycling component (3) is provided between the two assembly racks (1), and the simulated recycling component (3) includes a guide connecting rod (301). Two said assembly frame (1) between two adjacent ends are connected with guide connecting rod (301), the middle of guide connecting rod (301) is equipped with two-way motor (302), two-way motor (302) output end is connected with mobile screw rod (303), mobile screw rod (303) and adjacent guide connecting rod (301) between connecting with mobile seat (304), mobile seat (304) and mobile screw rod (303) between through thread hole connection, mobile seat (304) and guide connecting rod (301) between sliding connection, mobile seat (304) one side is equipped with the change direction electric push rod (305), two said change direction electric push rod (305) output end is connected with assembly plate (307) through the rotation connecting seat (306) in the same plane, the assembly plate (307) one side equidistantly is provided with the through-flow hole (308) that establishes, the assembly plate (307) one side corresponds the position of through-flow hole (308) and is equipped with the axial flow fan (310), several said axial flow fan (310) between in the same plane are connected through linkage rod (309), the assembly plate (307) one side is equipped with the change direction motor (311) in linkage rod (309) one end, change direction motor (311) output end and adjacent linkage rod (309) one end are connected.
2. The intelligent remote control building exterior window water test device according to claim 1, characterized in that, The other side of the assembly frame (1) is equipped with several cameras (209) at equal intervals. The limiting groove (212) is formed on both sides of the adjusting rack (211), and the limiting strip (213) is welded on both sides of the adjusting sliding pipe (210).
3. The intelligent remote control building exterior window water test device according to claim 1, characterized in that, The adjusting motor (214) is installed at one end of the adjusting sliding pipe (210) of the assembly frame (1), the output end of the adjusting motor (214) is connected with the adjusting gear (215), and the adjusting gear (215) is engaged with the adjacent adjusting rack (211).
4. The intelligent remote control building exterior window water test device according to claim 1, characterized in that, The other end of the rotating shaft of the hollow wheel (220) is connected to one end of the rotary joint (223), the other end of the rotary joint (223) is connected to one end of the telescopic corrugated pipe (224), the other end of the telescopic corrugated pipe (224) is connected with the connecting head (225), the filter box (226) is installed at the top end of the support frame (217) and on one side of the moving electric push rod (218), the connecting head (225) and one end of the filter box (226) are connected by threads, the dust filter screen (227) is embedded in the filter box (226), the air suction pump (228) is installed on one side of the filter box (226), and the air suction end of the air suction pump (228) is connected with the other end of the adjacent filter box (226).
5. The intelligent remote control building exterior window water test device according to claim 4, characterized in that, The horizontal moving electric push rod (229) is installed on one side of the support frame (217) and on one side of the air suction pump (228), the output end of the horizontal moving electric push rod (229) is connected with the horizontal moving rack (230), and the horizontal moving gear (231) is connected to one end of the moving electric push rod (218).
6. The intelligent remote control building exterior window water test device according to claim 1, characterized in that, The moving table (232) top is equipped with winding roller (233), winding roller (233) one end is equipped with lifting motor (234), lifting motor (234) output is connected with adjacent winding roller (233) rotation axis one end, winding roller (233) outside is wound with lifting rope (235), two lifting rope (235) one end is connected with the top of the assembly frame (1) top two ends respectively, the moving table (232) bottom four corners are equipped with electric wheel (238). The moving table (232) inside two ends are equipped with guide electric push rod (236), the guide electric push rod (236) output is connected with two guide wheels (237), the lifting rope (235) is covered in the adjacent guide wheel (237) inside.
7. The intelligent remote control building exterior window water test device according to claim 1, characterized in that, The bottom of the assembly frame (1) is equipped with water collecting tank (312), the water collecting tank (312) is rotatably installed with take-up roller (313), the water collecting tank (312) outside two ends are equipped with spiral clockwork (314), the take-up roller (313) rotation axis two ends are connected with two spiral clockwork (314) movable connection end respectively, the take-up roller (313) outside is wound with waterproof cloth (315), the waterproof cloth (315) movable end two sides are connected with two pull rope (316) one end respectively, the pull rope (316) other end is connected with the bottom of the adjacent adjusting rack (211) one end, the water collecting tank (312) outside one side is equipped with backflow water pump (318), the backflow water pump (318) water inlet end and water collecting tank (312) one side bottom are connected through backflow inlet pipe (319), the backflow water pump (318) water outlet end and water supply pipe (202) one side are connected through backflow outlet pipe (320), the backflow outlet pipe (320) and water supply pipe (202) are connected through one-way water valve (321).
8. The intelligent remote control building exterior window water test device according to claim 7, characterized in that, The diameter of the take-up roller (313) at the middle position is smaller than that at the two ends, and the water collecting tank (312) inside and at the bottom of the take-up roller (313) is placed with a backwater filter screen (317).
9. The intelligent remote control building exterior window water test device according to claim 7, characterized in that, The swing electric push rod (206), the camera (209), the adjusting motor (214), the electric suction cup (216), the moving electric push rod (218), the driving motor (221), the air suction pump (228), the horizontal moving electric push rod (229), the lifting motor (234), the guide electric push rod (236), the bidirectional motor (302), the direction changing electric push rod (305), the axial flow fan (310), the direction changing motor (311) and the backflow water pump (318) input are electrically connected with the output of the external controller, and the input of the external controller is electrically connected with the output of the external power supply.
Citation Information
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