Intelligent support and hanger system based on internet of things
By combining the adjustment components, drive components, and permanent magnet rod electromagnet plates of the IoT-based intelligent pipe support system, the problem of difficulty in adjusting the height and position of pipes in existing pipe support systems has been solved, enabling stable installation and use of pipes.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- BEIJING URBAN & RURAL CONSTR GRP CO LTD
- Filing Date
- 2026-04-10
- Publication Date
- 2026-06-02
AI Technical Summary
Existing pipe support systems are difficult to adjust the height of the suspended pipe and the clamping position of the pipe laterally, resulting in unstable pipe installation.
An IoT-based intelligent support and hanger system is adopted. The height of the support plate is adjusted by adjusting the adjustment component, the clamping plate is moved closer or further away by the drive component, the height of the clamping block is adjusted by the lifting component, and the stable installation of the pipeline is achieved by the cooperation of the permanent magnet rod and the electromagnet plate.
It enables the adjustment of pipe height and position, ensuring stable installation of pipe between clamping plates, avoiding installation difficulties and detachment problems caused by height differences, and improving the stability of use.
Smart Images

Figure CN122129591A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of support and hanger technology, specifically to an intelligent support and hanger system based on the Internet of Things. Background Technology
[0002] Pipe supports and hangers are a collective term for supports and hangers. The main function of pipe supports and hangers is to support and fix pipes, ensuring that the pipe system can operate normally after installation. In actual use, pipe supports and hangers can bear the weight of the pipe itself and the weight of the medium flowing through it, thereby preventing the pipe from shifting or deforming during operation.
[0003] For example, patent number CN220060810U, patent name: A pipe support, discloses the compression action of an arc-shaped plate and a movable plate on a connecting spring, and the compression action of the movable plate on a rubber ball. Since both the connecting spring and the rubber ball are elastic, they can provide shock absorption and protection for the pipe body, avoiding the need for solely relying on springs for pipe protection, thus improving the protection effect and the practicality and applicability of the pipe support. However, in actual use, the height of the two clamps on the base cannot be adjusted. When the pipe is installed and there is a height difference between the pipe and the two clamps, the arc-shaped plates on the two clamps cannot abut against the pipe, preventing the arc-shaped plates from supporting and damping the pipe, thereby affecting actual use.
[0004] Existing pipe supports are difficult to adjust in terms of the height of the suspended pipe and the lateral clamping position of the pipe. Therefore, they do not meet current requirements. To address this, we propose an IoT-based intelligent pipe support system. Summary of the Invention
[0005] The purpose of this invention is to provide an intelligent pipe support system based on the Internet of Things to solve the problems mentioned in the background art, such as the difficulty in adjusting the height of the suspended pipe and the difficulty in adjusting the clamping position of the pipe laterally.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an intelligent support and hanger system based on the Internet of Things, comprising a base plate, a support plate under the base plate, a plurality of slidable mounting plates on the lower end surface of the support plate, a mounting cavity within the mounting plate, and opposing clamping plates with an L-shaped cross-section on the lower end surface of each mounting plate. Each clamping plate has a first clamping block and a second clamping block. A lifting assembly for driving the second clamping block to rise and fall is provided on the clamping plate. A positioning assembly for positioning the sliding of the mounting plate is provided within the mounting cavity. A driving assembly for driving the two clamping plates to move closer or further apart is also provided within the mounting cavity. The movement of the clamping plates drives the lifting assembly to rise and fall the second clamping block, and drives the positioning assembly to position or release the sliding of the mounting plate. An adjustment assembly for adjusting the height of the support plate is provided on the base plate.
[0007] Preferably, the lower end face of the mounting cavity and the corresponding clamping plate are provided with a first mounting groove, and the upper end face of the clamping plate is provided with a fixing plate. The drive assembly includes fixed blocks disposed opposite each other in the mounting cavity. Each fixed block has a corresponding connecting block on its lower end face. The lower end of each connecting block passes through the first mounting groove and is connected to the corresponding fixed plate. Each fixed block has a threaded plate. The mounting cavity also has a rotatable screw with threads passing through the two threaded plates. The rotation of the screw is used to drive the two fixed blocks to move closer or further apart, thereby enabling the two clamping plates to move closer or further apart.
[0008] Preferably, a second mounting groove penetrating the mounting plate is provided on the bottom wall of the mounting cavity, a driving groove is provided on one side wall of the clamping plate, a driving block with one end inserted into the corresponding driving groove is provided on one side wall of the second clamping block, and a rack is provided in the mounting cavity and on one side of the second mounting groove. The lifting assembly includes a threaded rod disposed in the drive groove and with one end threaded to the drive block. The upper end of the threaded rod passes through the second mounting groove and extends into the mounting cavity. A gear that meshes with the corresponding rack is sleeved on the threaded rod located in the mounting cavity. The clamping plate moves by rotating the rack and pinion drive gear, thereby realizing the threaded rod driving the second clamping block to lift.
[0009] Preferably, the support plate has multiple insertion holes, the mounting cavity has multiple liftable insertion blocks, the upper end face of each insertion block has an insertion rod, and a first inclined surface is also provided on one side wall of the insertion block. The positioning component includes multiple horizontal plates mounted on a fixed block. Each horizontal plate has a second inclined surface at one end that mates with a corresponding first inclined surface. The movement of the fixed block drives the insert block to move upward, inserting the insert rod into the corresponding insertion hole, thereby positioning the sliding of the mounting plate.
[0010] Preferably, the support plate is provided with a limiting cylinder at both ends, the bottom plate is provided with a limiting rod at both ends that is inserted into the corresponding limiting cylinder, and the support plate is also provided with a rotatable threaded cylinder. The adjustment assembly includes a motor mounted on the base plate. A rotating rod is mounted on the output shaft of the motor. One end of the rotating rod is threaded into a threaded cylinder. The motor drives the rotating rod to rotate, thereby adjusting the height of the support plate.
[0011] Preferably, a sliding groove is provided on the lower end of the support plate, and a slot is provided on the opposite side wall of the sliding groove. A locking block is provided on the opposite side wall of the mounting plate, with one end of the locking block engaging in the corresponding slot. An intercepting block is provided at both ends of the sliding groove to intercept the locking block.
[0012] Preferably, the bottom of the base plate is provided with two electric push rods, and the output end of each electric push rod is fixedly connected to an electromagnet plate. The bottom surface of the electromagnet plate is in contact with the top surface of the support plate. The top of each insertion rod is fixedly installed with a permanent magnet rod. When the electromagnet plate is energized, it generates magnetic force to pull the permanent magnet rod upward and insert it into the corresponding insertion hole. Both ends of the electromagnet plate are provided with semi-circular arc grooves, and the limiting cylinders are movably inserted into the interior of the semi-circular arc grooves.
[0013] Preferably, each insert block has a slot, and the mounting cavity has multiple uprights with one end passing through the corresponding slot. Each upright has a plate on both sides of the insert block for limiting the position of the insert block.
[0014] Preferably, each end surface of the support plate is provided with two through holes, and each surface of the intercepting block is provided with two limiting holes corresponding to the positions of the through holes. An arc-shaped plate is movably installed at each end of the support plate, and the limiting cylinder is inserted into the opening direction of the arc-shaped plate. Two plug-in rods are fixedly installed at the bottom of the arc-shaped plate, and the plug-in rods are movably inserted into the interior of the limiting holes through the through holes.
[0015] Preferably, the clamping plate is provided with positioning grooves with a T-shaped cross section on both sides of the drive groove, and the second clamping block is provided with positioning blocks with a T-shaped cross section that fit into the corresponding positioning groove on one side wall.
[0016] Compared with the prior art, the beneficial effects of the present invention are: 1. The present invention adjusts the height of the support plate by adjusting the components, so that the mounting plate and clamping plate on the support plate can be adjusted according to the position of the pipe. Compared with the existing ones, this Internet of Things-based intelligent support system can avoid the situation where the pipe cannot be installed between the two clamping plates due to the height difference between the clamping plate and the pipe in actual use. 2. This invention uses a driving component to drive two clamping plates closer together, so that the pipe overlaps between two first clamping blocks, achieving pre-installation of the pipe between the two clamping plates. When the two clamping plates approach each other, the clamping plates drive a lifting component and a positioning component. The lifting component drives the second clamping block on the clamping plate to move towards the first clamping block, so that the second clamping block abuts against the pipe, positioning the pipe on the first clamping block, thus achieving installation of the pipe between the two clamping plates. At the same time, the positioning component positions the sliding of the mounting plate on the support plate, thereby preventing the mounting plate from moving the pipe between the two clamping plates when the pipe is installed on the two clamping plates, which would affect the actual use of the pipe. 3. This invention utilizes the cooperation of a permanent magnet rod and an electromagnet plate. When the horizontal plate pushes the insert block upwards via the inclined plane, the insert block causes the insert rod and permanent magnet rod to insert into the socket. At this point, the output end of the electric push rod drives the electromagnet plate downwards, ensuring it adheres tightly to the top surface of the support plate. Simultaneously, the magnet inside the electromagnet plate is energized, causing the permanent magnet rod to be affected by magnetism and pull the insert rod and insert block upwards, thus fully engaging the socket. This prevents the insert rod from failing to properly engage in the socket when the horizontal plate pushes the insert block only slightly, which could lead to it easily falling out and causing the mounting plate to move. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of an IoT-based intelligent support system according to the present invention; Figure 2 This is an exploded structural diagram of the support plate and the interceptor plate in this invention; Figure 3 This is a schematic diagram of the structure of the clamping plate and the mounting plate in this invention; Figure 4 This is a cross-sectional view of the clamping plate and mounting plate in this invention; Figure 5 This is a schematic diagram of the structure of the fixing block and the fixing plate in this invention; Figure 6 This is a schematic diagram of the positioning groove and driving groove in this invention; Figure 7 This is a schematic diagram of the structure of the fixing plate, connecting block, threaded plate, and horizontal plate in this invention; Figure 8 This is a schematic diagram of the structure in this invention where the positioning block and the driving block are mounted on the clamping plate; Figure 9 This is a schematic diagram of the internal structure of the mounting cavity in this invention; Figure 10 This is a schematic diagram of the structure of the insert block sleeved on the upright in this invention; Figure 11 This is a schematic diagram of the structure in which the fixing block is installed in the mounting cavity in this invention; Figure 12 This is a cross-sectional structural diagram of the permanent magnet rod position in this invention.
[0018] The meanings of the labels in the diagram are as follows: 100. Base plate; 110. Support plate; 120. Clamping plate; 121. First clamping block; 122. Second clamping block; 130. Limiting cylinder; 131. Limiting rod; 140. Threaded cylinder; 150. Motor; 151. Rotating rod; 160. Bolt; 170. Through hole; 180. Electric push rod; 190. Electromagnetic plate; 191. Semi-circular groove; 201. Slide groove; 202. Slot; 210. Intercepting block; 211. Limiting hole; 220. Arc plate; 221. Connecting rod; 300. Mounting plate; 310. Fixed plate; 320, locking block; 330, knob; 340, insertion rod; 341, permanent magnet rod; 401, mounting cavity; 402, second mounting slot; 410, fixing block; 420, lead screw; 431, drive slot; 440, drive block; 450, threaded rod; 451, gear; 460, insertion block; 470, horizontal plate; 480, rack; 510, connecting block; 520, threaded plate; 531, positioning slot; 800, positioning block; 901, first mounting slot; 910, upright rod; 911, slot; 912, upright plate. Detailed Implementation
[0019] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0020] Please see Figures 1 to 12 This invention provides an embodiment of an IoT-based intelligent support system, comprising a base plate 100, a support plate 110 below the base plate 100, a plurality of slidable mounting plates 300 on the lower end face of the support plate 110, a mounting cavity 401 within each mounting plate 300, and opposing L-shaped clamping plates 120 on the lower end face of each mounting plate 300. Each clamping plate 120 is provided with a first clamping block 121 and a second clamping block 122, and the clamping plate 120 is provided with a mechanism for driving the second clamping block. The lifting assembly for raising and lowering the holding block 122 has a positioning assembly in the mounting cavity 401 for positioning the sliding of the mounting plate 300. The mounting cavity 401 also has a driving assembly for driving the two clamping plates 120 to move closer or further apart. The movement of the clamping plates 120 drives the lifting assembly to raise and lower the second clamping block 122, and drives the positioning assembly to position or release the sliding of the mounting plate 300. The base plate 100 has an adjustment assembly for adjusting the height of the support plate 110.
[0021] In this embodiment, bolts 160 are installed at the four corners of the base plate 100. The base plate 100 is installed in the appropriate position by the bolts 160, that is, the support plate 110 is also installed. At this time, the operator moves the corresponding mounting plates 300 in sequence so that the two clamping plates 120 can be moved to the appropriate position and the pipe is placed between the two clamping plates 120. Then, the driving component drives the two clamping plates 120 to move closer to each other, so that the pipe overlaps between the two first clamping blocks 121, realizing the pre-installation of the pipe between the two clamping plates 120. When the two clamping plates 120 are close together... When the clamping plates 120 approach each other, the lifting assembly and the positioning assembly drive the second clamping block 122 on the clamping plate 120 to move towards the first clamping block 121, so that the second clamping block 122 abuts against the pipe and positions the pipe on the first clamping block 121, thus realizing the installation of the pipe between the two clamping plates 120. At the same time, the positioning assembly positions the sliding of the mounting plate 300 on the support plate 110, thereby preventing the mounting plate 300 from moving the pipe between the two clamping plates 120 when the pipe is installed on the two clamping plates 120, which would affect the actual use of the pipe. When the drive assembly drives the two clamping plates 120 to move away from each other, the clamping plates 120 will drive the lifting assembly and the positioning assembly. The lifting assembly drives the second clamping block 122 to release its clamping force on the pipe, so that the pipe can be taken out between the two clamping plates 120. At the same time, the positioning assembly releases its positioning force on the mounting plate 300, so that the mounting plate 300 can slide, thereby facilitating the next installation of the pipe between the two clamping plates 120. In this system, when the mounting plate 300 moves between the two clamping plates 120, and there is a certain height difference between the two clamping plates 120 and the pipe, causing the pipe to be unable to be positioned between the two clamping plates 120, the height of the support plate 110 can be adjusted by adjusting the components. This allows the mounting plate 300 and the clamping plates 120 on the support plate 110 to be adjusted in height according to the position of the pipe. Compared with the existing system, this IoT-based intelligent support system can avoid the situation where the pipe cannot be installed between the two clamping plates 120 due to the height difference between the clamping plates 120 and the pipe in actual use. The first clamping block 121 and the second clamping block 122 are respectively provided with interconnected first arc-shaped grooves and second arc-shaped grooves on the side walls facing the pipe. The first arc-shaped grooves and the second arc-shaped grooves are adapted to the outer side walls of the pipe. When the pipe is located between the two first clamping blocks 121, the pipe is located in the two first arc-shaped grooves, which makes the pre-installation effect of the pipe between the two clamping plates 120 better. When the second clamping block 122 moves down, the second clamping block 122 presses against the pipe through the second arc-shaped groove, which makes the installation effect of the pipe between the two clamping plates 120 better. The first clamping blocks 121 are all fixedly installed at the lower end of the clamping plate 120. When the two clamping plates 120 approach each other, the two first clamping blocks 121 also approach each other. When the two first clamping blocks 121 approach each other and abut together, the pipe is placed on the two first clamping blocks 121, that is, the pipe is pre-installed between the two clamping plates 120. The support plate 110 has a sliding groove 201 on its lower end. The sliding groove 201 is set along the sliding direction of the mounting plate 300. The opposite side wall of the sliding groove 201 is provided with a slot 202. The opposite side wall of the mounting plate 300 is fixedly installed with a locking block 320 that is inserted into the corresponding slot 202. By sliding the mounting plate 300 into the sliding groove 201 from the opening of the sliding groove 201 and locking the locking block 320 into the corresponding slot 202, the mounting plate 300 is slidably installed on the support plate 110. In actual use, in order to prevent the mounting plate 300 from sliding out of the slide groove 201, intercepting blocks 210 are fixed at both ends of the slide groove 201 to intercept the card block 320. By intercepting the card block 320 through the intercepting blocks 210, the mounting plate 300 can be prevented from sliding out of the slide groove 201.
[0022] The bottom of the base plate 100 is provided with two electric push rods 180. The output end of each electric push rod 180 is fixedly connected to an electromagnet plate 190. The bottom surface of the electromagnet plate 190 is in contact with the top surface of the support plate 110. The top of each insertion rod 340 is fixedly installed with a permanent magnet rod 341. When the electromagnet plate 190 is energized, it generates magnetic force to pull the permanent magnet rod 341 upward and insert it into the corresponding insertion hole. Both ends of the electromagnet plate 190 are provided with semi-circular arc grooves 191. The limiting cylinders 130 are movably inserted into the interior of the semi-circular arc grooves 191.
[0023] The support plate 110 has two through holes 170 on both ends of its surface, and the intercepting block 210 has two limiting holes 211 on its surface that correspond to the positions of the through holes 170. Arc plates 220 are movably installed on both ends of the support plate 110. Limiting cylinders 130 are inserted into the opening direction of the arc plates 220. Two plug-in rods 221 are fixedly installed on the bottom of the arc plates 220. The plug-in rods 221 are movably inserted into the limiting holes 211 through the through holes 170.
[0024] Through the cooperation of the permanent magnet rod 341 and the electromagnet plate 190, when the horizontal plate 470 pushes the insertion block 460 upward through the inclined plane, the insertion block 460 will drive the insertion rod 340 and the permanent magnet rod 341 to insert into the insertion hole. At this time, the output end of the electric push rod 180 can be driven to push the electromagnet plate 190 downward, so that the electromagnet plate 190 is in close contact with the top surface of the support plate 110. At the same time, the magnet inside the electromagnet plate 190 is energized. At this time, the permanent magnet rod 341 will be affected by the magnetic effect and pull the insertion rod 340 and the insertion block 460 upward, so that they are completely inserted into the insertion hole. This avoids the situation where the insertion rod 340 cannot be properly inserted into the insertion hole when the horizontal plate 470 pushes the insertion block 460 by a small amount, which may cause it to fall off and cause the mounting plate 300 to move.
[0025] like Figure 1-11 As shown, in this embodiment, the lower end surface of the mounting cavity 401 and the corresponding clamping plate 120 are provided with a first mounting groove 901, and the upper end surface of the clamping plate 120 is provided with a fixing plate 310. The drive assembly includes a fixing block 410 disposed opposite to each other in the mounting cavity 401. Each fixing block 410 has a corresponding connecting block 510 on its lower end surface. The lower end of each connecting block 510 passes through the first mounting groove 901 and is connected to the corresponding fixing plate 310. Each fixing block 410 is provided with a threaded plate 520. The mounting cavity 401 is also provided with a rotatable lead screw 420 that is threaded through the two threaded plates 520. The rotation of the lead screw 420 is used to drive the two fixing blocks 410 to move closer or further away from each other, thereby realizing the two clamping plates 120 moving closer or further away from each other.
[0026] In this embodiment, the arrangement of the first mounting groove 901, fixing plate 310, fixing block 410, connecting block 510, threaded plate 520, and lead screw 420 enables the fixing plate 310 to be fixedly mounted on the clamping plate 120, the fixing plate 310 and the fixing block 410 to be fixedly connected by the connecting block 510, the threaded plate 520 to be fixedly mounted on the fixing block 410, and the two ends of the lead screw 420 to be rotatably mounted in the side wall of the mounting cavity 401 by bearings. When the lead screw 420 rotates, it drives the two threaded plates 520 to move closer or further apart. The movement of the threaded plates 520 drives the fixing block 410 to move. The movement of the fixing block 410 can drive the fixing plate 310 to move by sliding along the first mounting plate 300 through the connecting block 510. The movement of the fixing plate 310 can drive the corresponding clamping plate 120 to move, thereby realizing the movement of the two clamping plates 120 closer or further apart. The first mounting groove 901 is provided along the moving direction of the clamping plate 120; In actual use, one end of the lead screw 420 extends out of the mounting plate 300, and a knob 330 for driving the lead screw 420 to rotate is fixedly installed on the extended end of the lead screw 420. The knob 330 facilitates driving the lead screw 420 to rotate.
[0027] like Figure 1-12 As shown, in this embodiment, a second mounting groove 402 penetrating the mounting plate 300 is provided on the bottom wall of the mounting cavity 401, a driving groove 431 is provided on one side wall of the clamping plate 120, a driving block 440 with one end inserted into the corresponding driving groove 431 is provided on one side wall of the second clamping block 122, and a rack 480 is provided in the mounting cavity 401 and on one side of the second mounting groove 402. The lifting assembly includes a threaded rod 450 disposed in the drive groove 431 and with one end threaded to the drive block 440. The upper end of the threaded rod 450 passes through the second mounting groove 402 and extends into the mounting cavity 401. A gear 451 that meshes with the corresponding rack 480 is sleeved on the threaded rod 450 located in the mounting cavity 401. The movement of the clamping plate 120 drives the gear 451 to rotate through the rack 480, thereby realizing the threaded rod 450 driving the second clamping block 122 to lift.
[0028] In this embodiment, the arrangement of the second mounting groove 402, drive groove 431, drive block 440, rack 480, threaded rod 450, and gear 451 allows the drive block 440 to be fixedly mounted on the second clamping block 122, the rack 480 to be fixedly mounted in the mounting cavity 401, the threaded rod 450 to be rotatably mounted in the drive groove 431 via a bearing, the upper end of the threaded rod 450 penetrating the fixing plate 310 and the second mounting groove 402, and the gear 451 to be fixedly mounted on the threaded rod 450 and meshing with the rack 480 in the mounting cavity 401. When the two... When the clamping plates 120 approach each other, the clamping plates 120 drive the threaded rod 450 to move along the second mounting groove 402. When the threaded rod 450 moves, the gear 451 on the threaded rod 450 also moves. When the gear 451 moves, it can rotate through the cooperation with the rack 480. The rotation of the gear 451 can drive the threaded rod 450 in the drive groove 431 to rotate. The rotation of the threaded rod 450 can drive the second clamping block 122 to move down through the drive block 440, so that the second clamping block 122 can abut against the pipe. When the two clamping plates 120 move away from each other, the clamping plates 120 drive the threaded rod 450 to move along the second mounting groove 402. When the threaded rod 450 moves, the gear 451 on the threaded rod 450 also moves. When the gear 451 moves, it can rotate through the cooperation with the rack 480. The rotation of the gear 451 can drive the threaded rod 450 in the drive groove 431 to rotate. The rotation of the threaded rod 450 can drive the second clamping block 122 to move upward through the drive block 440, so that the second clamping block 122 releases its clamping force on the pipe. In actual use, the clamping plate 120 is provided with T-shaped positioning grooves 531 on both sides of the drive groove 431. The second clamping block 122 is fixedly installed with T-shaped positioning blocks 800 that fit into the corresponding positioning grooves 531 on one side wall. By limiting the positioning blocks 800 with the positioning grooves 531, the clamping plate 120 is also limited by the positioning blocks 800, thereby making the clamping plate 120 more stable when lifting and lowering.
[0029] like Figure 1-11 As shown, in this embodiment, the support plate 110 is provided with multiple insertion holes, and the mounting cavity 401 is provided with multiple liftable insertion blocks 460. Each insertion block 460 is provided with an insertion rod 340 on its upper end surface, and a first inclined surface is also provided on one side wall of the insertion block 460. The positioning assembly includes multiple horizontal plates 470 disposed on the fixing block 410. Each horizontal plate 470 has a second inclined surface at one end that cooperates with the corresponding first inclined surface. The movement of the fixing block 410 is used to drive the insert block 460 to move upward, insert the insert rod 340 into the corresponding insertion hole, and realize the positioning of the sliding of the mounting plate 300.
[0030] In this embodiment, by setting up the insertion hole, insertion block 460, insertion rod 340, first inclined surface, horizontal plate 470 and second inclined surface, the insertion rod 340 is fixedly installed on the insertion block 460 and the horizontal plate 470 is fixedly installed on the fixing block 410. When the two support plates 110 drive the two fixing blocks 410 to move closer to each other, the fixing block 410 can drive the horizontal plate 470 to move. The movement of the horizontal plate 470 can squeeze the first inclined surface through the second inclined surface, so that the insertion block 460 can drive the insertion rod 340 to move upward and insert the insertion rod 340 into the corresponding insertion hole, thereby realizing the positioning of the sliding of the mounting plate 300. When the two support plates 110 move the two fixing blocks 410 away from each other, the fixing blocks 410 move the horizontal plate 470 away from the insert block 460 and release the pressure of the horizontal plate 470 on the fixing block 410. At this time, the insert block 460 and the insert rod 340 are affected by their own weight, causing the insert block 460 and the insert rod 340 to move down and slide out of the insertion hole, thereby releasing the positioning of the mounting plate 300. Each of the insert blocks 460 is provided with a slot 911, which is set along the moving direction of the insert block 460. Multiple uprights 910 with one end passing through the corresponding slot 911 are fixedly installed in the mounting cavity 401. The insert block 460 is sleeved on the upright 910 through the slot 911, thereby realizing the lifting and lowering installation of the insert block 460 in the mounting cavity 401. In actual use, upright plates 912 are fixedly installed on the upright 910 and on both sides of the insert 460 to limit the position of the insert 460. The upright plates 912 are fixedly installed on the upright 910. By limiting the position of the insert 460 through the upright plates 912, it is possible to prevent the insert 460 from tilting when it is raised or lowered, thereby affecting the use effect of the insert rod 340 on the insert 460.
[0031] like Figure 1 As shown, in this embodiment, the support plate 110 is provided with a limiting cylinder 130 at both ends, the bottom plate 100 is provided with a limiting rod 131 at both ends of which is inserted into the corresponding limiting cylinder 130, and the support plate 110 is also provided with a rotatable threaded cylinder 140. The adjustment assembly includes a motor 150 mounted on the base plate 100. A rotating rod 151 is mounted on the output shaft of the motor 150. One end of the rotating rod 151 is threaded into the threaded cylinder 140. The motor 150 drives the rotating rod 151 to rotate, thereby adjusting the height of the support plate 110.
[0032] In this embodiment, the arrangement of the limiting cylinder 130, limiting rod 131, threaded cylinder 140, motor 150, and rotating rod 151 enables the limiting cylinder 130 to be fixedly installed on the support plate 110, the limiting rod 131 to be fixedly installed on the base plate 100 and limit the support plate 110, the threaded cylinder 140 to be rotatably installed on the support plate 110 via bearings, the motor 150 to be fixedly installed on the base plate 100, and the rotating rod 151 to be fixedly connected to the output shaft of the motor 150. When the lower end of the rotating rod 151 is threaded into the threaded cylinder 140, the support plate 110 is installed under the base plate 100. When the motor 150 drives the rotating rod 151 to rotate, the threaded cylinder 140 can drive the support plate 110 to rise and fall along the rotating rod 151 through the cooperation of the rotating rod 151 and the threaded cylinder 140, thereby realizing the height adjustment of the clamping plate 120. The base plate 100 is equipped with a driver for driving the motor 150. The driver is electrically connected to the motor 150. A wireless receiver is connected to the driver by wires. When in use, the operator can send a signal to the wireless receiver through a wireless remote control. The wireless receiver then sends the signal to the driver. At this time, the driver controls the motor 150 to work or stop working, thereby realizing intelligent control of the motor 150.
[0033] In practical use, the operator controls the start motor 150 via a wireless remote control. The motor 150 drives the rotating rod 151 to rotate, which in turn drives the support plate 110 to adjust its height, thus adjusting the clamping plate 120 to a suitable position. Then, the operator slides the mounting plate 300 to the appropriate position. At this point, the operator places the pipe between the two clamping plates 120 and drives the lead screw 420 to rotate via the knob 330. The rotation of the lead screw 420 drives the clamping plate 120 to move via the fixing block 410. The movement of the clamping plate 120 causes the threaded rod 450 and the gear 451 to move. The gear 451 then moves... The rack 480 enables the threaded rod 450 to rotate. The rotation of the threaded rod 450 drives the second clamping block 122 to move towards the first clamping block 121, so that the sidewalls of the first arc groove and the second arc groove abut against the sidewall of the pipe, realizing the installation of the pipe between the two clamping plates 120. When the fixing block 410 moves, the fixing block 410 can drive the horizontal plate 470 to move. The horizontal plate 470, through the pressure of the second inclined surface on the first inclined surface, causes the insertion rod 340 on the insertion block 460 to be inserted into the corresponding insertion hole. At the same time, the sliding of the mounting plate 300 is also positioned. Through the cooperation of the permanent magnet rod 341 and the electromagnet plate 190, when the horizontal plate 470 pushes the insertion block 460 upward through the inclined plane, the insertion block 460 will drive the insertion rod 340 and the permanent magnet rod 341 to insert into the insertion hole. At this time, the output end of the electric push rod 180 can be driven to push the electromagnet plate 190 downward, so that the electromagnet plate 190 is in close contact with the top surface of the support plate 110. At the same time, the magnet inside the electromagnet plate 190 is energized. At this time, the permanent magnet rod 341 will be affected by the magnetic effect and pull the insertion rod 340 and the insertion block 460 upward, so that they are completely inserted into the insertion hole. This avoids the situation where the insertion rod 340 cannot be properly inserted into the insertion hole when the horizontal plate 470 pushes the insertion block 460 by a small amount, which may cause it to fall off and cause the mounting plate 300 to move.
[0034] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. An IoT-based intelligent support and hanger system, comprising a base plate (100), characterized in that: A support plate (110) is provided under the base plate (100). Multiple slidable mounting plates (300) are provided on the lower end surface of the support plate (110). Mounting cavities (401) are provided in the mounting plates (300). Clamping plates (120) with opposite cross sections and L-shaped cross sections are provided on the lower end surface of the mounting plates (300). A first clamping block (121) and a second clamping block (122) are provided on each clamping plate (120). A lifting assembly for driving the second clamping block (122) to lift is provided on the clamping plate (120). The mounting cavity (401) is provided with a positioning component for positioning the sliding of the mounting plate (300). The mounting cavity (401) is also provided with a driving component for driving the two clamping plates (120) to move closer or further apart. The movement of the clamping plates (120) is used to drive the lifting component to lift the second clamping block (122) and to drive the positioning component to position or release the sliding of the mounting plate (300). The base plate (100) is provided with an adjustment component for adjusting the height of the support plate (110).
2. The IoT-based intelligent support and hanger system according to claim 1, characterized in that: The lower end surface of the mounting cavity (401) and the corresponding clamping plate (120) are provided with a first mounting groove (901), and the upper end surface of the clamping plate (120) is provided with a fixing plate (310). The drive assembly includes a fixed block (410) disposed in the mounting cavity (401). Each fixed block (410) has a corresponding connecting block (510) on its lower end surface. The lower end of each connecting block (510) passes through the first mounting groove (901) and is connected to the corresponding fixed plate (310). Each fixed block (410) has a threaded plate (520). The mounting cavity (401) also has a rotatable screw (420) with threads passing through the two threaded plates (520). The screw (420) rotates to drive the two fixed blocks (410) to move closer or further away from each other, thereby enabling the two clamping plates (120) to move closer or further away from each other.
3. The IoT-based intelligent support and hanger system according to claim 2, characterized in that: The bottom wall of the mounting cavity (401) is provided with a second mounting groove (402) that penetrates the mounting plate (300). The side wall of the clamping plate (120) is provided with a drive groove (431). The side wall of the second clamping block (122) is provided with a drive block (440) whose end is inserted into the corresponding drive groove (431). The mounting cavity (401) is provided with a rack (480) located on one side of the second mounting groove (402). The lifting assembly includes a threaded rod (450) disposed in the drive groove (431) and with one end threaded to the drive block (440). The upper end of the threaded rod (450) passes through the second mounting groove (402) and extends into the mounting cavity (401). A gear (451) meshing with the corresponding rack (480) is sleeved on the threaded rod (450) located in the mounting cavity (401). The movement of the clamping plate (120) drives the gear (451) to rotate through the rack (480), thereby realizing the threaded rod (450) driving the second clamping block (122) to lift.
4. The IoT-based intelligent support and hanger system according to claim 3, characterized in that: The support plate (110) has multiple insertion holes, and the mounting cavity (401) has multiple liftable insertion blocks (460). Each insertion block (460) has an insertion rod (340) on its upper end surface, and a first inclined surface is also provided on one side wall of the insertion block (460). The positioning component includes multiple horizontal plates (470) disposed on the fixed block (410). Each horizontal plate (470) has a second inclined surface at one end that cooperates with the corresponding first inclined surface. The fixed block (410) moves to drive the insert block (460) to move upward and insert the insert rod (340) into the corresponding insertion hole, thereby positioning the sliding of the mounting plate (300).
5. The IoT-based intelligent support and hanger system according to claim 4, characterized in that: The support plate (110) is provided with a limiting cylinder (130) at both ends, and the bottom plate (100) is provided with a limiting rod (131) at both ends, one end of which is inserted into the corresponding limiting cylinder (130). The support plate (110) is also provided with a rotatable threaded cylinder (140). The adjustment assembly includes a motor (150) mounted on the base plate (100). A rotating rod (151) is mounted on the output shaft of the motor (150). One end of the rotating rod (151) is threaded into the threaded cylinder (140). The motor (150) drives the rotating rod (151) to rotate, thereby adjusting the height of the support plate (110).
6. The IoT-based intelligent support and hanger system according to claim 5, characterized in that: The support plate (110) has a sliding groove (201) on its lower end. The sliding groove (201) has a slot (202) on its opposite side wall. The mounting plate (300) has a block (320) on its opposite side wall, one end of which is inserted into the corresponding slot (202). The sliding groove (201) has an intercepting block (210) at both ends for intercepting the block (320).
7. The IoT-based intelligent support and hanger system according to claim 5, characterized in that: The bottom of the base plate (100) is provided with two electric push rods (180). The output end of each electric push rod (180) is fixedly connected to an electromagnet plate (190). The bottom surface of the electromagnet plate (190) is in contact with the top surface of the support plate (110). The top of each insertion rod (340) is fixedly installed with a permanent magnet rod (341). When the electromagnet plate (190) is energized, it generates magnetic force to pull the permanent magnet rod (341) upward and insert it into the corresponding insertion hole. Both ends of the electromagnet plate (190) are provided with semi-circular arc grooves (191). The limiting cylinder (130) is movably inserted into the interior of the semi-circular arc groove (191).
8. The IoT-based intelligent support and hanger system according to claim 4, characterized in that: Each insert (460) has a slot (911) and a mounting cavity (401) has multiple uprights (910) with one end passing through the corresponding slot (911). Each upright (910) has a plate (912) on both sides of the insert (460) for limiting the position of the insert (460).
9. The IoT-based intelligent support and hanger system according to claim 6, characterized in that: The support plate (110) has two through holes (170) on both ends of its surface. The interceptor block (210) has two limiting holes (211) on its surface that correspond to the positions of the through holes (170). An arc plate (220) is movably installed on both ends of the support plate (110). The limiting cylinder (130) is inserted into the opening direction of the arc plate (220). Two plug-in rods (221) are fixedly installed at the bottom of the arc plate (220). The plug-in rods (221) are movably inserted into the limiting hole (211) through the through hole (170).
10. The IoT-based intelligent support and hanger system according to claim 3, characterized in that: The clamping plate (120) is provided with positioning grooves (531) with a T-shaped cross section on both sides of the drive groove (431), and the second clamping block (122) is provided with positioning blocks (800) with a T-shaped cross section on one side wall that are inserted into the corresponding positioning grooves (531).