A smart spray curing device for vertical concrete structures
By using the snap-fit splicing of the support plate mechanism and the telescopic control of the nozzle, combined with the inflating of the airbag and the fitting of the pressure rod, the problem of poor humidification effect of the spray device for vertical concrete structures was solved, achieving uniform humidification of vertical concrete structures and improving construction quality and safety.
Patent Information
- Application Number
- CN202511287652.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-10
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2045-09-10
AI Technical Summary
Existing spraying devices are not very effective at humidifying vertical concrete structures, resulting in a significant reduction in humidification and an inability to effectively prevent surface cracking and insufficient strength development caused by excessively rapid water evaporation.
By using the snap-fit mechanism of the support plate and the telescopic control of the nozzle, combined with the inflation of the airbag and the fit of the pressure rod, the spray range and angle can be precisely adjusted to ensure that water is sprayed evenly to all parts of the vertical concrete structure.
It improved the spraying effect, ensured uniform humidification of vertical concrete structures, avoided defects caused by excessive moisture evaporation, and improved construction quality and safety.
Smart Images

Figure CN120844807B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of spray curing devices, and more specifically, to an intelligent spray curing device for vertical concrete structures. Background Technology
[0002] Vertical concrete structures, such as shear walls, are the core components of a building's main structure for load-bearing and lateral force resistance. The quality of their construction directly determines the safety of the entire building structure. The formation of concrete strength depends on a suitable temperature and humidity environment. Especially in the early stages after pouring, continuous curing is necessary to ensure that the cement hydration reaction proceeds fully and to avoid defects such as surface cracking and insufficient strength growth caused by excessive moisture evaporation. In this case, spray curing devices are required for spray curing.
[0003] Most existing spraying devices are installed above vertical concrete structures and humidify by spraying water from top to bottom. However, vertical concrete has a certain height, and the water above can only reach the bottom by flowing downwards, which greatly reduces its humidification effect. To solve these problems, this application proposes an intelligent spraying curing device for vertical concrete structures. Summary of the Invention
[0004] The purpose of this invention is to provide an intelligent spray curing device for vertical concrete structures to solve the problems mentioned in the background art: by connecting the two support plate mechanisms through the first and second buckles respectively, the extension length of the telescopic cylinder can be easily controlled by adjusting the pumped water pressure, thereby controlling the spraying range, and the installation of the pipe body can be facilitated by inflating the air bladder.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A smart spray curing device for vertical concrete structures includes:
[0007] A support plate mechanism includes a base plate, a first buckle and a second buckle on the end face of the base plate, two front clamping plates and a rear clamping plate inside the base plate;
[0008] A spraying mechanism includes a water tank and a first connecting member. A connecting block is provided inside the first connecting member. A telescopic cylinder is connected to the end face of the connecting block. A nozzle is provided on the end face of the telescopic cylinder. A limiting rope is connected to the nozzle. A pulling spring is provided inside the telescopic cylinder.
[0009] The connecting mechanism includes a tube body, with two annular grooves at the outer end of the tube body, each annular groove containing an air bladder. A central groove is also provided at the outer end of the tube body, containing a threaded sleeve. Two sliding sleeves are provided inside the tube body, with four pressure rods at the outer ends of each sliding sleeve.
[0010] By adopting the above technical solution, the base plate is fixed by the cooperation of the front clamping plate and the rear clamping plate, and the splicing between the two support plate mechanisms is achieved by the first buckle and the second buckle.
[0011] The extension length of the telescopic cylinder can be easily controlled by adjusting the water pressure pumped in, thus facilitating spraying below the wall.
[0012] Inflating the airbag restricts the pipe body, making installation easier, and the tightening rod ensures a better fit, reducing leakage.
[0013] Preferably, it also includes a wall, the spraying mechanism is connected to an external pipe, the support plate mechanism is configured as two and is disposed on the end face of the wall, the spraying mechanism is configured as two and is disposed on the end face of the support plate mechanism, and the connecting mechanism is disposed between the two spraying mechanisms.
[0014] By adopting the above technical solution, a high-pressure water pump is connected to the external pipe, and the spraying mechanism is fixed to the wall through the support plate mechanism. The high-pressure water pump pumps water from the external pipe into the spraying mechanism, which facilitates the spraying mechanism to spray the wall.
[0015] Preferably, the bottom plate has two front grooves on its end face, and the two front clamping plates are respectively disposed inside the two front grooves. Each of the two front grooves is provided with a limiting block, and each of the two front clamping plates is provided with two clamping springs on its end face.
[0016] By adopting the above technical solution, the front clamping plate is moved forward and latched to the front of the wall by pulling the front clamping plate. The clamping spring pulls the front clamping plate to fix the bottom plate. Moreover, the inner wall space of the front clamping plate and the limiting block cooperate to prevent the front clamping plate from slipping into the front groove.
[0017] Preferably, the bottom plate has a rear groove on its end face, the rear clamping plate is disposed inside the rear groove, and the first buckle has two slots inside.
[0018] By adopting the above technical solution, the rear clamping plate is fixed inside the rear groove by bolts. By rotating the bolts, the distance of the rear clamping plate inside the rear groove can be adjusted, thereby controlling the distance of the base plate from the front of the wall.
[0019] Preferably, the second buckle end face has two mounting slots, each mounting slot is provided with a locking block, each locking block end face is provided with a lever, each locking block end face is connected with a locking spring, and each mounting slot is provided with a lever groove.
[0020] By adopting the above technical solution, when installing the two support plate mechanisms together, the latch is pushed into the installation groove by pressing the latch with the pusher, the first latch is inserted into the second latch, and the latch is released to engage the spring and push the latch into the slot, making the two base plates more flush.
[0021] Preferably, the telescopic cylinder end face is provided with a second connector, the nozzle is disposed inside the second connector, the water tank end face has two water inlet holes, and there are two water tanks.
[0022] By adopting the above technical solution, the water tank can be connected to the outside through water holes on both sides, allowing water to be supplied into the water tank and serving as a pre-stored water function. Moreover, the nozzle can swing inside the second connector to adjust the nozzle angle.
[0023] Preferably, a water pipe is provided inside the connecting block, the water pipe is connected to the water tank, the nozzle is connected to the telescopic cylinder through a pipe, and six first connecting parts are provided.
[0024] By adopting the above technical solution, the water pipe is embedded inside the water tank, allowing water to pass through the connecting block and enter the telescopic cylinder, where it is then sprayed out.
[0025] Preferably, each of the two annular grooves has four vertical grooves inside, each of the multiple pressure rods is connected to a support rod, the multiple pressure rods are respectively disposed inside the multiple vertical grooves, each of the two airbags has four pressure slots inside, and the multiple pressure rods are respectively disposed inside the multiple pressure slots.
[0026] By adopting the above technical solution, when the airbag inflates, the sliding sleeve pulls the pressure rod, and the pressure rod, restricted by the support rod, will slowly rise and press against the inner wall of the airbag, allowing the airbag to fit inside the water tank.
[0027] Preferably, a movable groove is provided between the two annular grooves and the middle groove, and the two sliding sleeves are respectively disposed inside the two movable grooves, and both sliding sleeves are threadedly connected to the threaded sleeve.
[0028] By adopting the above technical solution, the rotating threaded sleeve will pull the sliding sleeve through the thread, allowing the sliding sleeve to drive the pressure rod to move inside the moving groove, which facilitates the compression of the airbag.
[0029] Preferably, each of the two annular grooves has a nozzle groove inside, each of the two nozzle grooves has an air nozzle inside, each of the two air nozzles is connected to two airbags respectively, each of the two annular grooves has four traction grooves inside, and two limiting discs are provided at the outer end of the tube body.
[0030] By adopting the above technical solution, the airbag can be inflated through the air nozzle inside the nozzle groove, so that the inflated airbag fits inside the water tank, and the airbag can seal the gap between the tube and the water tank to prevent water leakage.
[0031] Compared with the prior art, the beneficial effects of the present invention are:
[0032] 1) When using this printing machinery, the support plate mechanism is fixed to the concrete wall by the cooperation of the front clamping plate and the rear clamping plate. First, adjust the position of the rear clamping plate, then fasten the rear clamping plate behind the wall, and pull the front clamping plate to fasten it in front of the wall to fix the support plate mechanism, making the installation of the support plate mechanism more convenient. Moreover, the two support plate mechanisms can be connected by the cooperation of the first and second buckles, making it more convenient to connect the aligned support plate mechanisms.
[0033] 2) When using this printing machinery, the length of the telescopic cylinder can be adjusted by adjusting the pressure of the water pumped into the water tank. When the pressure is high, the water cannot be discharged from the nozzle in time, and the water pressure will press the telescopic cylinder to make it longer, thus making it easier for the water to be sprayed to the lower part of the wall, resulting in a better spraying effect. In addition, the nozzle is pulled by a restraining rope, which makes it easy to adjust the spraying angle of the nozzle.
[0034] 3) When using this printing machinery, insert the tube into the water tank, inflate the air bladder to make it bulge and press against the inner wall of the water tank, rotate the threaded sleeve to make the threaded sleeve drive the sliding sleeve to slide inside the tube, thereby pulling the pressure rod to press against the inner wall of the air bladder, so that the air bladder fits more tightly against the inner wall of the water tank, making it easier to connect the two water tanks. Attached Figure Description
[0035] Figure 1 This is an isometric schematic diagram of the present invention;
[0036] Figure 2 This is a bottom view of the support plate mechanism of the present invention;
[0037] Figure 3 This is an isometric schematic diagram of the support plate mechanism of the present invention;
[0038] Figure 4 This is a top sectional view of the base plate of the present invention;
[0039] Figure 5 This is a side sectional view of the second buckle of the present invention;
[0040] Figure 6 This is a side sectional view of the spray mechanism of the present invention;
[0041] Figure 7 This is an isometric schematic diagram of the connecting mechanism of the present invention;
[0042] Figure 8 This is an isometric schematic diagram of the tube body of the present invention;
[0043] Figure 9 This is a schematic diagram of the front section of the tube body of the present invention;
[0044] Figure 10 This is an isometric schematic diagram of the threaded sleeve of the present invention;
[0045] Figure 11 This is an isometric schematic diagram of the sliding sleeve of the present invention;
[0046] Figure 12 This is an isometric view of the airbag of the present invention.
[0047] Explanation of the numbers in the diagram: 1. Wall; 2. Support plate mechanism; 3. Sprinkler mechanism; 4. Connecting mechanism; 5. External pipe; 201. Base plate; 202. Rear clamping plate; 203. Front clamping plate; 204. First buckle; 205. Slot; 206. Second buckle; 207. Clamping block; 208. Pulling block; 209. Mounting slot; 210. Snap-fit spring; 211. Pulling slot; 212. Restricting block; 213. Rear slot; 214. Front slot; 215. Clamping spring; 301. Water tank; 302. First connecting piece 303. Connecting block; 304. Telescopic cylinder; 305. Nozzle; 306. Restriction rope; 307. Water inlet; 308. Water pipe; 309. Pulling spring; 310. Second connecting piece; 401. Pipe body; 402. Threaded sleeve; 403. Limiting plate; 404. Airbag; 405. Air nozzle; 406. Annular groove; 407. Middle groove; 408. Sliding sleeve; 409. Nozzle groove; 410. Vertical groove; 411. Pressure rod; 412. Moving groove; 413. Support rod; 414. Pressure groove; 415. Traction groove. Detailed Implementation
[0048] Example 1, please refer to Figures 1 to 5 The support plate mechanism 2 includes a base plate 201. A first buckle 204 and a second buckle 206 are provided on the end face of the base plate 201. Two front clamping plates 203 and a rear clamping plate 202 are provided inside the base plate 201. The base plate 201 is fixed by the cooperation of the front clamping plates 203 and the rear clamping plates 202. The two support plate mechanisms 2 are spliced together by the first buckle 204 and the second buckle 206.
[0049] Specifically, it also includes a wall 1, a spraying mechanism 3 connected to an external pipe 5, two support plate mechanisms 2 set on the end face of the wall 1, two spraying mechanisms 3 set on the end face of the support plate mechanisms 2, a connecting mechanism 4 set between the two spraying mechanisms 3, two front grooves 214 opened on the end face of the bottom plate 201, two front clamping plates 203 respectively set inside the two front grooves 214, a limiting block 212 set inside each of the two front grooves 214, and a limiting block 212 set on the end face of each of the two front clamping plates 203. Two clamping springs 215 are provided. A rear groove 213 is provided on the end face of the base plate 201. The rear clamping plate 202 is located inside the rear groove 213. Two slots 205 are provided inside the first buckle 204. Two mounting grooves 209 are provided on the end face of the second buckle 206. A locking block 207 is provided inside each of the two mounting grooves 209. A lever 208 is provided on the end face of each of the two locking blocks 207. A locking spring 210 is connected to the end face of each of the two locking blocks 207. A lever groove 211 is provided inside each of the two mounting grooves 209.
[0050] Furthermore, the first buckle 204 is fixedly installed on one side of the bottom plate 201, and the second buckle 206 is fixedly installed on the other side of the bottom plate 201. The outer pipe 5 is connected to the spray mechanism 3 via a threaded disc. Two support plate mechanisms 2 with identical structures are placed in parallel. The support plate mechanisms 2 are fixedly installed on the upper end face of the wall 1. The front groove 214 is opened on both sides of the front end face of the bottom plate 201. The front clamping plate 203 is slidably installed inside the front groove 214. The limiting block 212 is fixedly installed in the middle of the rear inner wall of the front groove 214. Two clamping springs 215 are respectively fixedly installed on both sides of the rear end face of the front clamping plate 203. The other end of the clamping spring 215 is fixedly installed in the rear inner wall of the front groove 214. The rear groove 213 is opened in the middle of the rear end face of the bottom plate 201. The rear clamping plate 202 is slidably installed inside the rear groove 213 and fixed by bolts. Two slots 205 are opened. Two mounting grooves 209 are provided on the front and rear inner walls of the first buckle 204, and on the front and rear faces of the second buckle 206. The locking block 207 is slidably disposed inside the mounting groove 209. Two lever blocks 208 are fixedly disposed on adjacent sides of the upper face of the two locking blocks 207. The locking spring 210 is fixedly disposed between the locking block 207 and the mounting groove 209. The lever groove 211 is provided on the front and rear sides of the upper face of the second buckle 206. The lever block 208 is slidably disposed inside the lever groove 211. An anti-slip groove is provided below the base plate 201 to adapt to the uneven upper surface of the wall 1, making the base plate 201 more stable. Moreover, the rear clamping plate 202 and the front clamping plate 203 have the same structure. The clamping plate is "L" shaped, and an anti-slip groove is provided at one end of its short side. The anti-slip groove can increase the friction of the clamping plate and make the clamping force of the clamping plate more stable.
[0051] The steps for using this invention are as follows: First, loosen the bolts on the rear clamping plate 202 by rotating it. Then, pull the rear clamping plate 202 to adjust its position inside the rear groove 213. Next, rotate the bolts to tighten and fix the rear clamping plate 202. Adjust the distance between the bottom plate 201 and the spray position on the upper surface of the wall 1 by adjusting the extension length of the rear clamping plate 202. The rear clamping plate 202 is fastened to the rear end face of the wall 1. Pull the front clamping plate 203, which slides inside the front groove 214. The sliding front clamping plate 203 pulls the clamping spring 215, causing it to stretch. The front clamping plate 203 is fastened to the front end of the wall 1. The clamping spring 215 continues to pull the front clamping plate 203, causing the front clamping plate 203 and the rear clamping plate 202 to... The base plate 201 is fixed in place, making it easier to secure. When splicing the two base plates 201, the lever 208 is pressed first. The lever 208 will cause the locking block 207 to slide inside the mounting groove 209 and press against the locking spring 210. After the locking block 207 is fully retracted into the mounting groove 209, the second latch 206 is inserted into the first latch 204. The lever 208 is then released. At this time, the locking block 207 is no longer restrained, and the locking spring 210 pushes the locking block 207 into the locking groove 205. This completes the fixation between the first latch 204 and the second latch 206, making the two base plates 201 fit together more neatly, thus facilitating the connection between the two spraying mechanisms 3.
[0052] Example 2, please refer to Figures 2 to 6 The difference from embodiment 1 is that the spraying mechanism 3 includes a water tank 301 and a first connecting member 302. The first connecting member 302 has a connecting block 303 inside, and a telescopic cylinder 304 is connected to the end face of the connecting block 303. A nozzle 305 is provided on the end face of the telescopic cylinder 304, and a limiting rope 306 is connected to the nozzle 305. A tension spring 309 is provided inside the telescopic cylinder 304. The extension length of the telescopic cylinder 304 can be easily controlled by adjusting the pumped water pressure, thereby facilitating spraying below the wall 1.
[0053] Specifically, the end face of the telescopic cylinder 304 is provided with a second connector 310, the nozzle 305 is located inside the second connector 310, the end face of the water tank 301 is provided with two water inlets 307, the water tank 301 is configured to have two, the connecting block 303 is provided with a water pipe 308, the water pipe 308 is connected to the water tank 301, the nozzle 305 is connected to the telescopic cylinder 304 through a pipe, and the first connector 302 is configured to have six.
[0054] Furthermore, the water tank 301 is fixedly installed at the rear center of the upper surface of the base plate 201. Six first connecting pieces 302 are equidistantly fixed at the front of the upper surface of the base plate 201. Connecting blocks 303 are hinged inside the first connecting pieces 302, allowing them to fold upwards and reduce their footprint, making transportation easier. A telescopic cylinder 304 is fixedly installed at the front end of the connecting blocks 303. The telescopic cylinder 304 is telescopic and its front end is solid. A second connecting piece 310 is fixedly installed at the lower center of the front end of the telescopic cylinder 304. A nozzle 305 is hinged inside the second connecting piece 310. The nozzle 305 is pulled by a restraining rope 306 at the rear, with the other end of the restraining rope 306 fixed at the lower center of the outermost front end of the telescopic cylinder 304. A water inlet 3... 07 is located in the middle of both ends of the water tank 301, and the water inlet 307 is threaded inside. The thread is for connecting with the external pipe 5 and the plug. The water pipe 308 is embedded inside the water tank 301. The water pipe 308 passes through the connecting block 303 and is connected to the inner wall of the rear side of the telescopic cylinder 304. Part of the water pipe 308 extends inside the water tank 301, so that the extension length of the water pipe 308 can be adjusted when the connecting block 303 swings. The pipe connected to the nozzle 305 is embedded in the front end of the telescopic cylinder 304. It can be stretched to adapt to the swing of the nozzle 305. The nozzle 305 is pulled by the restraining rope 306. When the telescopic cylinder 304 is fully extended, the restraining rope 306 will pull the nozzle 305 to fold towards the rear wall 1, so that the water spray direction of the nozzle 305 can spray onto the wall 1.
[0055] The steps of using this invention are as follows: When it is necessary to activate the sprinkler system, start the high-pressure water pump and pump water into the water tank 301 through the external pipe 5. The water output of the nozzle 305 is limited. By adjusting the pumped water pressure, when the water pressure is low, water can be smoothly sprayed from the nozzle 305 onto the upper front of the wall 1. When the water pressure is moderate, the nozzle 305 cannot discharge the water in time, and the water will be squeezed on the inner wall of the telescopic cylinder 304, which will push the telescopic cylinder 304 to extend, thereby lengthening the spray position of the nozzle 305. At this time, the restraining rope... 306 will pull the nozzle 305, causing the nozzle 305 to fold towards the front of the wall 1. When the water that the nozzle 305 can spray and the extension of the telescopic cylinder 304 reach a balance, a mid-section spray will be formed. When the water pressure reaches its maximum, the telescopic cylinder 304 will extend and retract to its limit, allowing the nozzle 305 to reach its farthest position, so that the water from the nozzle 305 can be sprayed at a lower level, making the spraying effect in front of the wall 1 better. After the spraying is completed, pulling the spring 309 will pull the telescopic cylinder 304, causing the telescopic cylinder 304 to retract and return to its original position.
[0056] Example 3, please refer to Figures 1 to 12The difference from embodiment 2 is that the connecting mechanism 4 includes a tube body 401. The outer end of the tube body 401 has two annular grooves 406, and each annular groove 406 is provided with an airbag 404. The outer end of the tube body 401 has a central groove 407, and the central groove 407 is provided with a threaded sleeve 402. The tube body 401 has two sliding sleeves 408, and each sliding sleeve 408 has four pressure rods 411 at its outer end. By inflating the airbags 404, the tube body 401 can be restricted, making the tube body 401 easier to install. Moreover, the pressure rods 411 make the airbags 404 fit better and reduce water leakage.
[0057] Specifically, each of the two annular grooves 406 has four vertical grooves 410 inside, and multiple pressure rods 411 are connected to support rods 413. The multiple pressure rods 411 are respectively set inside the multiple vertical grooves 410. Each of the two airbags 404 has four pressure grooves 414 inside, and multiple pressure rods 411 are respectively set inside the multiple pressure grooves 414. A moving groove 412 is opened between the two annular grooves 406 and the middle groove 407. Two sliding sleeves 408 are respectively set inside the two moving grooves 412. Both sliding sleeves 408 are threadedly connected to threaded sleeves 402. Each of the two annular grooves 406 has a nozzle groove 409 inside, and each of the two nozzle grooves 409 has an air nozzle 405 inside. The two air nozzles 405 are respectively connected to the two airbags 404. Each of the two annular grooves 406 has four traction grooves 415 inside, and two limiting discs 403 are provided at the outer end of the tube body 401.
[0058] Furthermore, two annular grooves 406 are respectively formed on both sides of the outer end face of the tube body 401. The airbag 404 is fixedly installed on the inner wall of the annular groove 406. The middle groove 407 is formed in the middle of the outer end face of the tube body 401. The threaded sleeve 402 is rotatably sleeved inside the middle groove 407. Four vertical grooves 410 are equidistantly formed on the inner wall of the annular groove 406. Four pressure grooves 414 are equidistantly formed on the inner wall of the airbag 404. The sliding sleeve 408 is slidably sleeved inside the moving groove 412. The threaded sleeve 402 and the tail of the sliding sleeve 408 are threadedly connected. Four pressure rods 411 are equidistantly hinged on the side of the outer end face of the sliding sleeve 408 near the annular groove 406. 411 is slidably disposed inside the vertical groove 410. The support rod 413 is hingedly disposed on the lower side of the inner wall of the pressure groove 414 near the middle groove 407. The other end of the support rod 413 is hingedly disposed inside the pressure rod 411. Two nozzle grooves 409 are respectively opened on the outer side of the inner wall of the adjacent side of the annular groove 406. The air nozzle 405 is fixedly disposed inside the nozzle groove 409. The air nozzle 405 and the air bag 404 are fixedly connected. Four traction grooves 415 are equidistantly opened on the inner wall of the annular groove 406 away from the middle groove 407. The other end of the traction groove 415 is opened inside the tube body 401. The limiting plate 403 is fixedly sleeved on the middle of the outer end face of the tube body 401 near both sides.
[0059] The steps of using this invention are as follows: Insert the tube body 401 into the water inlet 307. The position of the tube body 401 is restricted by the limiting plate 403. Inflate the air bladder 404 through the air nozzle 405, so that the air bladder 404 inflates beyond the diameter of the tube body 401 and fits against the inside of the water tank 301. The restriction provided by the air bladder 404 prevents the tube body 401 from falling off. Then, rotate to the threaded sleeve 402. The threaded sleeve 402 pulls the sliding sleeve 408 through its threads, causing the sliding sleeve 408 to slide inside the moving groove 412 and pull the pressure rod 411. The pressure rod 411 moves upward along the pressure groove 414. The pressure rod 411 is restricted by the support rod 413, so that the pressure rod 411 is stably pressed inside the pressure groove 414, so that the airbag 404 fits against the inside of the water tank 301. When the water spray is turned on, water will enter the inside of the water tank 301 and pass through the pipe 401. When the water passes through the pipe 401, it will enter the inside of the traction groove 415. The other end of the traction groove 415 is connected to the end face of the airbag 404. The water impacts the airbag 404, making the airbag 404 fit more tightly against the inner wall of the water tank 301.
[0060] The steps for using this invention are as follows: When installing the device, first adjust the length of the extended rear clamping plate 202, and then fasten the rear clamping plate 202 behind the wall 1. Then, pull the front clamping plate 203 to fasten it to the front of the wall 1 to fix the position of the base plate 201. Check the length of the wall 1 to select how many spraying mechanisms 3 to install. When connecting two spraying mechanisms 3, first connect the support plate mechanism 2, and then engage the first buckle 204 and the second buckle 206 on the base plate 201. The locking spring 210 pushes the locking block 207 into the locking groove 205 to fix the base plates 201 flush. Then, insert the pipe body 401. After the pipe body 401 is inserted between the two water tanks 301, the air bladder 404 is inflated through the air nozzle 405 to form a limiting function. Then, the threaded sleeve 402 is rotated, which moves the sliding sleeve 408 to press the pressure rod 411 into the inside of the pressure groove 414, so that the air bladder 404 fits into the inside of the water tank 301 to prevent water leakage. The high-pressure water pump is connected through the external pipe 5. The pressure of the water pumped in is adjusted by the high-pressure water pump to control the extension length of the telescopic cylinder 304. The nozzle 305 in front of the telescopic cylinder 304 can spray water onto the front of the wall 1, thereby wetting the wall 1.
[0061] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. A smart spray curing device for vertical concrete structures, characterized in that, include: The support plate mechanism (2) includes a base plate (201), a first buckle (204) is provided on the end face of the base plate (201), a second buckle (206) is provided on the end face of the base plate (201), two front clamping plates (203) are provided inside the base plate (201), a rear clamping plate (202) is provided inside the base plate (201), and; The spraying mechanism (3) includes a water tank (301) and a first connecting member (302). A connecting block (303) is provided inside the first connecting member (302). A telescopic cylinder (304) is connected to the end face of the connecting block (303). A nozzle (305) is provided on the end face of the telescopic cylinder (304). A limiting rope (306) is connected to the nozzle (305). A pulling spring (309) is provided inside the telescopic cylinder (304). The connecting mechanism (4) includes a tube body (401), with two annular grooves (406) at the outer end of the tube body (401), and an airbag (404) inside each of the two annular grooves (406). A central groove (407) is provided at the outer end of the tube body (401), and a threaded sleeve (402) is provided inside the central groove (407). Two sliding sleeves (408) are provided inside the tube body (401), and four pressure rods (411) are provided at the outer ends of each of the two sliding sleeves (408).
2. The intelligent spray curing device for vertical concrete structures according to claim 1, characterized in that: It also includes a wall (1), the spraying mechanism (3) is connected to an external pipe (5), the support plate mechanism (2) is set in two and is set on the end face of the wall (1), the spraying mechanism (3) is set in two and is set on the end face of the support plate mechanism (2), and the connecting mechanism (4) is set between the two spraying mechanisms (3).
3. The intelligent spray curing device for vertical concrete structures according to claim 2, characterized in that: The bottom plate (201) has two front grooves (214) on its end face. The two front clamping plates (203) are respectively disposed inside the two front grooves (214). Each of the two front grooves (214) is provided with a limiting block (212). Each of the two front clamping plates (203) is provided with two clamping springs (215) on its end face.
4. The intelligent spray curing device for vertical concrete structures according to claim 3, characterized in that: The bottom plate (201) has a rear groove (213) on its end face, and the rear clamping plate (202) is located inside the rear groove (213). The first buckle (204) has two slots (205) inside.
5. The intelligent spray curing device for vertical concrete structures according to claim 4, characterized in that: The second buckle (206) has two mounting slots (209) on its end face. Each of the two mounting slots (209) is provided with a locking block (207). Each of the two locking blocks (207) is provided with a lever (208) on its end face. Each of the two locking blocks (207) is connected to a locking spring (210). Each of the two mounting slots (209) is provided with a lever groove (211).
6. The intelligent spray curing device for vertical concrete structures according to claim 5, characterized in that: The telescopic cylinder (304) is provided with a second connector (310) on its end face, the nozzle (305) is provided inside the second connector (310), and the water tank (301) has two water inlets (307) on its end face. The water tank (301) is configured as two.
7. The intelligent spray curing device for vertical concrete structures according to claim 6, characterized in that: The connecting block (303) is equipped with a water pipe (308), which is connected to the water tank (301). The nozzle (305) is connected to the telescopic cylinder (304) through a pipe. The first connecting piece (302) is set to six.
8. The intelligent spray curing device for vertical concrete structures according to claim 7, characterized in that: Each of the two annular grooves (406) has four vertical grooves (410) inside, and each of the multiple pressure rods (411) is connected to a support rod (413). The multiple pressure rods (411) are respectively arranged inside the multiple vertical grooves (410). Each of the two airbags (404) has four pressure grooves (414) inside, and the multiple pressure rods (411) are respectively arranged inside the multiple pressure grooves (414).
9. A smart spray curing device for vertical concrete structures according to claim 8, characterized in that: A movable groove (412) is provided between the two annular grooves (406) and the middle groove (407). Two sliding sleeves (408) are respectively disposed inside the two movable grooves (412). Both sliding sleeves (408) are threadedly connected to the threaded sleeve (402).
10. A smart spray curing device for vertical concrete structures according to claim 9, characterized in that: Both annular grooves (406) are provided with nozzle grooves (409), and both nozzle grooves (409) are provided with air nozzles (405). The two air nozzles (405) are connected to two airbags (404) respectively. Both annular grooves (406) are provided with four traction grooves (415). The outer end of the tube body (401) is provided with two limiting discs (403).
Citation Information
Patent Citations
Concrete wall surface spraying device for constructional engineering
CN217680672U
Wet curing device for concrete
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