Adjustable radial gate supporting structure and supporting system thereof

By designing an adjustable arc gate support structure, the rotation of the screw is adjusted by using the worm gear drive to adjust the height of the support mechanism, the problem of limited application scope of the existing support structure is solved, the support for multiple arc gates is achieved, and the production cost is reduced.

CN120027337APending Publication Date: 2025-05-23CHINA GEZHOUBA GROUP MACHINERY & SHIP
View PDF 0 Cites 1 Cited by

Patent Information

Application Number
CN202510151154.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-11
Publication Date
2025-05-23

AI Technical Summary

Technical Problem

The existing arc-shaped gate support structure can only adapt to gates of specific arcs, which limits its scope of application, resulting in the need to prepare a variety of support structures, increasing the production cost.

Method used

An adjustable arc-shaped gate support structure is designed, including a support platform, multiple support mechanisms and driving mechanisms. The rotation of the screw is adjusted through the worm gear drive, which drives the lifting rod to move upwards and adjusts the height of the support mechanism to adapt to arc-shaped gates of different arcs.

Benefits of technology

This design expands the scope of application of the support structure, reduces production costs, and facilitates replacement and maintenance of the support pads and support mechanisms through the design of the installation mechanism and drive mechanism, extending the service life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120027337A_ABST
    Figure CN120027337A_ABST
Patent Text Reader

Abstract

The invention discloses an adjustable radial gate supporting structure and a supporting system thereof, and relates to the technical field of water conservancy equipment. A plurality of supporting mechanisms are mounted at the top end of the supporting platform at equal intervals, mounting mechanisms are mounted at the top ends of the multiple supporting mechanisms, and a plurality of driving mechanisms are mounted at the top end of the supporting platform; the supporting mechanism comprises a supporting cylinder, a jacking rod, a supporting disc, a reinforcing rib plate, an adjusting screw rod and a worm wheel; the adjusting screw rod is driven by the worm gear to rotate to drive the jacking rod to move upwards so as to support the radial gate, so that the height of the supporting mechanism can be adjusted, and different radians can be formed by adjusting the height of each row of supporting mechanism so as to adapt to and support the radial gates with different radians; the design and manufacturing requirements of various radial gates are met, the application range of the supporting structure is widened, and the manufacturing cost is effectively reduced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention belongs to the technical field of water conservancy equipment, and particularly relates to an adjustable arc gate support structure and its support system. Background Art

[0002] An arc gate is a gate with a part of an arc-shaped surface whose water-retaining surface is a cylindrical surface. Its water-retaining surface is this arc-shaped surface. The supporting hinge of the supporting arm is located at the center of the circle. When opening and closing, the gate rotates around the supporting hinge. Since the total water pressure acting on the gate passes through the center of the circle and does not generate a resistance moment, it is labor-saving to open the gate. In addition, the arc gate does not have a gate slot, does not affect the flow pattern of the orifice, and is not prone to cavitation. During the production and manufacturing process of the arc gate, a support structure is required to support the arc gate.

[0003] Since arc gates have different radian values, and the existing support structures can usually only support gates with specific radian values. This results in that during the manufacturing process, the support structure can only adapt to arc gates with a fixed radian value, thus limiting its scope of application. In order to meet the requirements of different radian values, it is often necessary to prepare multiple support structures, which undoubtedly increases the manufacturing cost. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to provide an adjustable arc gate support structure and its support system, which can adapt to arc gates with multiple radian values to solve the problem of the limited scope of application of the fixed support structure.

[0005] To solve the above technical problem, the technical solution adopted by the present invention is: An adjustable arc gate support structure, comprising: A support platform; A plurality of support mechanisms are equidistantly installed at the top end of the support platform. A plurality of support columns are installed in the middle of the top end of the support platform. Installation mechanisms are installed at the top ends of the plurality of support columns and the top ends of the plurality of support mechanisms. A number of driving mechanisms are installed at the top end of the support platform; The support mechanism includes a support cylinder, a jacking rod, a support disc, reinforcing rib plates, an adjusting screw rod, and a worm gear. The jacking rod is installed inside the support cylinder. The support disc is installed at the bottom end of the support cylinder. Four reinforcing rib plates are provided, and the four reinforcing rib plates are all installed on the lower part of the outer surface of the support cylinder. The bottom ends of the four reinforcing rib plates are all installed on the top end of the support disc. The adjusting screw rod is installed in the middle of the bottom inner wall of the support cylinder through a bearing. The outer surface of the adjusting screw rod is threadedly connected to the inside of the jacking rod. The worm gear is installed on the lower part of the outer surface of the adjusting screw rod.

[0006] Preferably, support rods are commonly installed between the tops of each column of the mounting mechanisms, support pads are installed at the tops of multiple support rods, multiple positioning holes are opened at both ends of multiple support rods, and a controller is installed in the middle of the outer wall of the support platform.

[0007] Preferably, an avoidance hole is opened at the lower part of the outer wall of the support tube, a fixing frame is commonly installed between two adjacent reinforcing rib plates, a spline tube is commonly installed between the inner walls of the two fixing frames through a bearing, a worm is installed in the middle part of the outer surface of the spline tube, and an electromagnetic ring is installed at the top of the support tube.

[0008] Preferably, the worm is located inside the avoidance hole, the worm is meshed with the worm wheel, the electromagnetic ring is electrically connected to the controller, the reinforcing rib plate is provided with an avoidance groove near the avoidance hole, the inner wall of the support tube is provided with two convex strips, the outer wall of the lifting rod is provided with two grooves, and the height of the multiple columns of the support mechanism increases successively from the middle to both sides.

[0009] Preferably, the mounting mechanism includes a mounting frame, a pressure sensor, a through hole, a forward and reverse screw rod, an adjusting handle and a positioning frame, the mounting frame is mounted on the top of the lifting rod, the pressure sensor is mounted on the middle of the bottom inner wall of the mounting frame, two through holes, two adjusting handles and two positioning frames are provided, the two through holes are respectively opened on the inner walls on both sides of the mounting frame, the forward and reverse screw rods are mounted on the lower part of the outer surface of the mounting frame through bearings, the two adjusting handles are respectively mounted on the two ends of the forward and reverse screw rods, and the two positioning frames are respectively mounted on both sides of the outer surface of the forward and reverse screw rods.

[0010] Preferably, the pressure sensor is electrically connected to the controller, the positioning frame is movably connected to the through hole and is snap-fitted to the positioning hole, and the positioning frame is configured as an L-shaped structure.

[0011] Preferably, the driving mechanism includes a support frame, a mounting bolt, a driver, a driving gear, a rotating gear and a spline shaft, and the support frame, the driver, the driving gear and the rotating gear are each provided with two, and the mounting bolts are provided in plurality, and the plurality of mounting bolts are respectively mounted on the bottom ends of the two support frames, and the two support frames are both mounted on the top end of the supporting platform through the mounting bolts, the two drivers are respectively mounted in the middle of the opposite surfaces of the two support frames, the two driving gears are respectively mounted in the middle of the opposite surfaces of the two support frames through bearings, the two rotating gears are respectively mounted on the upper parts of the opposite surfaces of the two support frames through bearings, and the spline shaft is mounted between the opposite surfaces of the two rotating gears.

[0012] Preferably, the support frame is configured as a T-shaped structure, the driver is electrically connected to the controller, the driving gear is meshed with an adjacent rotating gear, and the opposite surfaces of the two rotating gears are provided with a slot matching the spline shaft.

[0013] A support system for an adjustable radial gate support structure, comprising: Acquisition end, processing end, monitoring and feedback end, and power supply and protection end; The acquisition end includes a pressure sensing unit, a temperature sensing unit and a displacement sensing unit, the processing end includes a signal processing unit, a control unit and an execution unit, the monitoring and feedback end includes a monitoring unit, a feedback unit and a communication unit, and the power supply and protection end includes a power supply unit, a protection unit and a human-machine interface unit; The pressure sensing unit is used to monitor the stress of the supporting structure, the temperature sensing unit is used to monitor the temperature changes of the gate and its surrounding environment, and the displacement sensing unit is used to monitor the small displacement changes of the radial gate during the manufacturing or installation process; The signal processing unit is used to receive and process various sensor signals from the acquisition end, the control unit is used to perform real-time control on the radial gate support structure, and the execution unit is used to drive the support structure to perform actual movement and adjustment according to the instructions of the control unit.

[0014] Preferably, the monitoring unit is used to monitor the operating status and parameters of the support system in real time, the feedback unit is used to feed back the information collected by the monitoring unit and the motion status of the execution unit to the control unit, and the communication unit is responsible for the communication between the support system and other systems or devices; The power supply unit is used to provide a stable power supply for the entire control system, the protection unit is used to monitor the electrical status of the support system and take protective measures when necessary, and the human-machine interface unit is used to provide an intuitive operating interface and display function.

[0015] The present invention can achieve the following beneficial effects: 1. The present invention sets a plurality of supporting mechanisms at the top of the supporting platform. The rotation of the adjusting screw is driven by the worm gear to drive the lifting rod to move upward, thereby supporting the arc gate. In this way, the height of the supporting mechanism can be adjusted. By adjusting the height of each column of the supporting mechanism respectively, different curvatures can be formed to adapt to and support arc gates with different curvatures, thereby meeting the design and production requirements of various arc gates. This design not only expands the application scope of the supporting structure, but also effectively reduces the production cost.

[0016] 2. The invention sets a mounting mechanism at the top of the supporting mechanism, which can monitor the stress condition of a single supporting mechanism in real time through a pressure sensor. The two positioning frames thereon can be driven to move outward by rotating the forward and reverse screw rods, thereby canceling the positioning and fixation of the supporting rod, so that the damaged supporting pad can be removed and replaced. In addition, the mounting mechanism also facilitates the replacement of the supporting mechanism at its bottom.

[0017] 3. The present invention sets a driving mechanism at the lower part of the outer surface of the supporting mechanism. Through the drive of the driver and the meshing transmission of the driving gear and the rotating gear, the spline shaft can drive the spline tube to rotate, thereby realizing the driving adjustment of the supporting mechanism. This design facilitates the synchronous adjustment of a row of supporting mechanisms. In addition, by disassembling the supporting frame and the spline shaft in turn, the disassembly and replacement of a single supporting mechanism can be easily realized. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The present invention will be further described below in conjunction with the accompanying drawings and embodiments: Figure 1 A perspective view of the present invention; Figure 2 A three-dimensional diagram of a row of support assemblies of the present invention; Figure 3 is a three-dimensional diagram of the support mechanism of the present invention; Figure 4 is a cross-sectional view of the support tube of the present invention; Figure 5 For the present invention Figure 3 A magnified view of middle; Figure 6 is a three-dimensional diagram of the mounting mechanism of the present invention; Figure 7 is a three-dimensional diagram of the driving mechanism of the present invention; Figure 8 It is a system flow chart of the present invention.

[0019] In the figure: 1-support platform; 2-support mechanism; 3-installation mechanism; 4-support rod; 5-support pad; 6-drive mechanism; 7-controller; 8-positioning hole; 9-support column; 21-support cylinder; 22-lifting rod; 23-support disc; 24-reinforcement rib plate; 25-adjusting screw; 26-worm gear; 27-avoidance hole; 28-fixing frame; 29-spline tube; 210-worm; 211-electromagnetic ring; 31-mounting frame; 32-pressure sensor; 33-through hole; 34-positive and negative screw rods; 35-adjusting handle; 36-positioning frame; 61-support frame; 62-mounting bolt; 63-driver; 64-driving gear; 65-rotating gear; 66-spline shaft. DETAILED DESCRIPTION

[0020] Embodiment 1: See also Figures 1 to 7 As shown, an adjustable radial gate support structure comprises: Support platform 1; A plurality of support mechanisms 2 are installed at equal distances on the top of the support platform 1, a plurality of support columns 9 are installed in the middle of the top of the support platform 1, a mounting mechanism 3 is installed on the top of the plurality of support columns 9 and the top of the plurality of support mechanisms 2, and a plurality of driving mechanisms 6 are installed on the top of the support platform 1; The supporting mechanism 2 includes a supporting tube 21, a lifting rod 22, a supporting disc 23, a reinforcing rib plate 24, an adjusting screw 25 and a worm gear 26. The lifting rod 22 is installed inside the supporting tube 21, the supporting disc 23 is installed at the bottom end of the supporting tube 21, four reinforcing rib plates 24 are provided, and the four reinforcing rib plates 24 are all installed at the lower part of the outer surface of the supporting tube 21, and the bottom ends of the four reinforcing rib plates 24 are all installed at the top end of the supporting disc 23. The adjusting screw 25 is installed at the middle part of the bottom inner wall of the supporting tube 21 through a bearing, the outer surface of the adjusting screw 25 is connected to the internal thread of the lifting rod 22, and the worm gear 26 is installed at the lower part of the outer surface of the adjusting screw 25.

[0021] Depend on Figures 1 to 5 It can be seen that support rods 4 are commonly installed between the tops of each row of mounting mechanisms 3, support pads 5 are installed at the tops of multiple support rods 4, multiple positioning holes 8 are opened at both ends of multiple support rods 4, and a controller 7 is installed in the middle of the outer wall of the support platform 1; An avoidance hole 27 is opened at the lower part of the outer wall of the support tube 21, and a fixing frame 28 is installed between two adjacent reinforcing ribs 24. A spline tube 29 is installed between the inner walls of the two fixing frames 28 through a bearing. A worm 210 is installed in the middle of the outer surface of the spline tube 29, and an electromagnetic ring 211 is installed at the top of the support tube 21.

[0022] As can be seen from the above, the worm 210 is driven to rotate by the spline tube 29, and the avoidance hole 27 on the support tube 21 and the avoidance groove on the reinforcing rib plate 24 ensure the smooth rotation of the worm 210. The worm 210 is then engaged with the worm wheel 26 to drive it to rotate. Subsequently, the jacking rod 22 is driven to move upward by adjusting the screw 25. This series of actions enables the support rod 4 to push the support pad 5 to move upward. When the height is adjusted, the controller 7 controls the electromagnetic ring 211 to be energized, so that the electromagnetic ring 211 absorbs the iron jacking rod 22 to achieve locking of the jacking rod 22, which can strengthen the supporting strength of the jacking rod 22, thereby stably supporting the arc gate. In this way, The height of the support mechanism 2 can be adjusted according to needs, and the support pad 5 made of rubber material can adapt to various curved surfaces of arc gates and provide stable support due to its elasticity and wear resistance. In addition, by adjusting the height of each column of the support mechanism 2 respectively, different curvatures can be formed to adapt to and support arc gates with different curvatures, thereby meeting the design and production requirements of various arc gates. This design solves the problem that the existing support structure can only support arc gates with specific curvatures. It not only expands the application scope of the support structure, but also avoids the need to prepare multiple support structures to meet the needs of different curvatures, thereby effectively reducing the production cost.

[0023] Specifically, refer to Figures 1 to 5 As shown, the worm 210 is located inside the avoidance hole 27, the worm 210 is meshed with the worm wheel 26, the electromagnetic ring 211 is electrically connected to the controller 7, the reinforcing rib plate 24 is provided with an avoidance groove near the avoidance hole 27, the inner wall of the support tube 21 is provided with two convex strips, the outer wall of the lifting rod 22 is provided with two grooves, and the height of the multi-row support mechanism 2 increases from the middle to both sides.

[0024] As can be seen from the above, the avoidance hole 27 provides space for the meshing of the worm 210 and the worm wheel 26, so that the worm 210 drives the worm wheel 26 to rotate. The controller 7 can control the power on and off of the electromagnetic ring 211, so that the reinforcing rib plate 24 provides additional space for the worm 210 to avoid interference, and the groove on the lifting rod 22 cooperates with the convex strip on the inner wall of the support tube 21 to provide a guiding or positioning effect, so that the lifting rod 22 can slide stably in the support tube 21. The design and production requirements of arc gates with different curvatures can be met by adjusting the height of each column of support components.

[0025] Embodiment 2: refer to Figure 6 and Figure 7As shown, the mounting mechanism 3 includes a mounting frame 31, a pressure sensor 32, a through hole 33, a positive and negative screw rod 34, an adjusting handle 35 and a positioning frame 36. The mounting frame 31 is mounted on the top of the lifting rod 22, the pressure sensor 32 is mounted on the middle of the bottom inner wall of the mounting frame 31, two through holes 33, two adjusting handles 35 and two positioning frames 36 are provided, and the two through holes 33 are respectively opened on the inner walls on both sides of the mounting frame 31, the positive and negative screw rod 34 is mounted on the lower part of the outer surface of the mounting frame 31 through bearings, the two adjusting handles 35 are respectively mounted on the two ends of the positive and negative screw rod 34, and the two positioning frames 36 are respectively mounted on both sides of the outer surface of the positive and negative screw rod 34; The driving mechanism 6 includes a support frame 61, a mounting bolt 62, a driver 63, a driving gear 64, a rotating gear 65 and a spline shaft 66. There are two support frames 61, two drivers 63, two driving gears 64 and two rotating gears 65, and there are multiple mounting bolts 62. The multiple mounting bolts 62 are respectively installed at the bottom ends of the two support frames 61. The two support frames 61 are both installed on the top of the supporting platform 1 through the mounting bolts 62. The two drivers 63 are respectively installed in the middle of the opposite surfaces of the two support frames 61. The two driving gears 64 are respectively installed in the middle of the opposite surfaces of the two support frames 61 through bearings. The two rotating gears 65 are respectively installed on the upper parts of the opposite surfaces of the two support frames 61 through bearings. The spline shaft 66 is installed between the opposite surfaces of the two rotating gears 65.

[0026] As can be seen from the above, during the use of the support structure, the pressure sensor 32 arranged in the mounting frame 31 can monitor the stress condition of a single support mechanism 2 in real time. When it is necessary to replace a damaged support pad 5, the operator can hold the adjustment handle 35 to drive the positive and negative screw rods 34 to rotate, so that the positive and negative screw rods 34 drive the two positioning frames 36 thereon to move outward, thereby conveniently removing the positioning frame 36 from the positioning hole 8 and retracting it into the through hole 33, canceling the positioning and fixation of the support rod 4. When the multiple mounting mechanisms 3 on the support rod 4 are canceled, the damaged support pad 5 can be removed for replacement. In addition, through the cooperation of the mounting mechanism 3 with the driving mechanism 6, it is also convenient to replace the support mechanism 2 at its bottom end. When it is necessary to replace a single support mechanism 2, the support frame 61 can be removed from the support platform 1 by the mounting bolts 62. Disassemble it, then move the support frame 61 to cancel the engagement between the rotating gear 65 and the spline shaft 66, and then pull the spline shaft 66 out of the spline tube 29, so as to conveniently realize the disassembly and replacement of a single support mechanism 2. At the same time, during the use of the support structure, the driver 63 can be controlled to start by the controller 7, so that the two drivers 63 respectively drive the corresponding driving gears 64 to rotate synchronously, and through the meshing transmission between the gears, the two rotating gears 65 drive the spline shaft 66 to rotate synchronously together, and then the spline shaft 66 drives multiple spline tubes 29 to rotate synchronously. This design is not only convenient for synchronous adjustment of a row of support mechanisms 2, but also has the function of automatically adjusting the support strength. It can automatically adjust the support force of the support mechanism 2 according to the feedback of the pressure sensor 32 to ensure stable support of the arc gate.

[0027] Preferably, reference Figure 6 and Figure 7 As shown, the pressure sensor 32 is electrically connected to the controller 7, the positioning frame 36 is movably connected to the through hole 33 and is engaged with the positioning hole 8, and the positioning frame 36 is arranged as an L-shaped structure; the support frame 61 is arranged as a T-shaped structure, the driver 63 is electrically connected to the controller 7, the driving gear 64 is meshed with the adjacent rotating gear 65, and the opposite surfaces of the two rotating gears 65 are provided with a slot matching the spline shaft 66.

[0028] As can be seen from the above, real-time transmission of pressure data is achieved, which is processed or controlled by the controller 7 to achieve flexible movement of the positioning frame 36 in the through hole 33 and be fixed on the positioning hole 8. The L-shaped positioning frame 36 is convenient for limiting it on the mounting frame 31, thereby enhancing the stability of the positioning frame 36. The T-shaped support frame 61 can provide a larger support area or connection point, thereby enhancing the strength and stability of the overall structure. The controller 7 issues instructions to achieve precise control of the driver 63, realize torque transmission between gears to drive the rotating gear 65 to rotate, and is conducive to the firm connection between the rotating gear 65 and the spline shaft 66.

[0029] Embodiment three: refer to Figure 8 As shown, a support system for an adjustable radial gate support structure comprises: Acquisition end, processing end, monitoring and feedback end, and power supply and protection end; The acquisition end includes a pressure sensing unit, a temperature sensing unit and a displacement sensing unit, the processing end includes a signal processing unit, a control unit and an execution unit, the monitoring and feedback end includes a monitoring unit, a feedback unit and a communication unit, and the power supply and protection end includes a power supply unit, a protection unit and a human-machine interface unit; The pressure sensing unit is used to monitor the stress of the supporting structure, the temperature sensing unit is used to monitor the temperature changes of the gate and its surrounding environment, and the displacement sensing unit is used to monitor the small displacement changes of the radial gate during the manufacturing or installation process; The signal processing unit is used to receive and process various sensor signals from the acquisition end, the control unit is used to perform real-time control on the radial gate support structure, and the execution unit is used to drive the support structure to perform actual movement and adjustment according to the instructions of the control unit; The monitoring unit is used to monitor the operating status and parameters of the support system in real time, the feedback unit is used to feed back the information collected by the monitoring unit and the motion status of the execution unit to the control unit, and the communication unit is responsible for the communication between the support system and other systems or devices; The power supply unit is used to provide a stable power supply for the entire control system, the protection unit is used to monitor the electrical status of the support system and take protective measures when necessary, and the human-machine interface unit is used to provide an intuitive operating interface and display function.

[0030] As can be seen from the above, during the use of the entire support system, the pressure sensing unit can monitor the stress of the support structure, ensure that the structure always operates within a safe range, and provide real-time pressure data. These data can be used to deeply analyze the stress characteristics of the gate under different working conditions. The temperature sensing unit is responsible for monitoring the temperature changes of the gate and its surrounding environment to ensure that the gate material works within an appropriate temperature range, and at the same time evaluate the potential impact of temperature changes on the performance of the gate material (such as strength and stiffness). The displacement sensing unit provides accurate displacement data of the radial gate during the manufacturing process. These data are crucial for analyzing the deformation or movement trend of the gate, and can assist the control unit in position adjustment to ensure that the gate always maintains the correct position and angle; the signal processing unit is responsible for receiving and processing signals from the acquisition end. The processed signals will serve as an important basis for the decision-making and judgment of the control system. The control unit intelligently controls the radial gate support structure based on real-time data and analysis results, and the execution unit accurately drives the support structure to make necessary movements and adjustments according to the instructions of the control unit; the monitoring unit can monitor the operating status and closing of the support system in real time. The key parameters ensure the stable operation of the system, and assist users in fault diagnosis and troubleshooting, thereby improving the maintainability of the system. Through the feedback unit, the information collected by the monitoring unit and the motion status of the execution unit can be fed back to the control unit in a timely manner, providing real-time feedback signals, so that the control unit can adjust the control strategy in time to cope with various situations. The communication unit ensures real-time data exchange and information sharing between the support system and other related systems, and supports a variety of communication protocols and interfaces, thereby improving the compatibility and scalability of the system; the power supply unit can provide a stable power supply for the system in various environments to ensure the normal operation and stability of the system. The protection unit can detect abnormal situations and quickly cut off the power supply or start the backup power supply when necessary to prevent equipment damage or casualties. The human-machine interface unit enables users to easily input control instructions, adjust control parameters and monitor the operating status of the system in real time, which greatly improves the operability and user experience of the system; in summary, the support system realizes the precise control and safety monitoring of the radial gate support structure through the mutual cooperation and close coordination of its internal units.

[0031] Application examples: This design is specially applied to the production environment of radial gates. In view of the large size of radial gates, the support platform 1 is needed to ensure its stability during the production process. This design can achieve uniform support for the radial gates by cleverly setting up multiple array-distributed support mechanisms 2. The height of these support mechanisms 2 can be flexibly adjusted by the driving mechanism 6 to adapt to radial gates with different curvatures, thereby greatly expanding the scope of application and reducing the production cost. In addition, this design also introduces an installation mechanism 3, which is not only convenient for the rapid disassembly and replacement of worn or damaged support pads 5, but also convenient for the repair or replacement of damaged support mechanisms 2, which significantly extends the service life of the support structure and reduces maintenance costs. By setting up the driving mechanism 6, it can achieve synchronous adjustment of the height of each column of support mechanisms 2, which is both accurate and rapid. Moreover, the driving mechanism 6 is designed to be detachable, which further facilitates the disassembly and replacement process of a single support mechanism 2. Finally, through the close cooperation between the support system and all the above mechanisms, not only the precise control of the support structure of the radial gate is achieved, but also a comprehensive safety monitoring function is integrated to ensure the safety and stability of the radial gate during the production process.

[0032] The above embodiments are only preferred technical solutions of the present invention and should not be regarded as limiting the present invention. The protection scope of the present invention shall be the technical solutions recorded in the claims, including equivalent replacement solutions of the technical features in the technical solutions recorded in the claims. That is, equivalent replacement improvements within this scope are also within the protection scope of the present invention.

Claims

1. An adjustable radial gate support structure, characterized in that: include: A support platform (1), wherein a plurality of support mechanisms (2) are equidistantly mounted on the top of the support platform (1), a plurality of support columns (9) are mounted in the middle of the top of the support platform (1), a mounting mechanism (3) is mounted on the top of the plurality of support columns (9) and the top of the plurality of support mechanisms (2), and a plurality of drive mechanisms (6) are mounted on the top of the support platform (1); The support mechanism (2) comprises a support tube (21), a lifting rod (22), a support disc (23), a reinforcing rib plate (24), an adjusting screw (25) and a worm gear (26); the lifting rod (22) is mounted inside the support tube (21); the support disc (23) is mounted at the bottom end of the support tube (21); the reinforcing rib plate (24) is mounted at the lower part of the outer surface of the support tube (21); the bottom end of the reinforcing rib plate (24) is mounted at the top end of the support disc (23); the adjusting screw (25) is mounted at the middle part of the bottom inner wall of the support tube (21) via a bearing; the adjusting screw (25) is threadedly connected to the lifting rod (22); and the worm gear (26) is mounted at the lower part of the outer surface of the adjusting screw (25).

2. The adjustable radial gate support structure according to claim 1, characterized in that: Support rods (4) are commonly installed between the top ends of each row of mounting mechanisms (3), support pads (5) are installed at the top ends of the plurality of support rods (4), a plurality of positioning holes (8) are provided at both ends of the plurality of support rods (4), and a controller (7) is installed in the middle of the outer wall of the support platform (1).

3. The adjustable radial gate support structure according to claim 2, characterized in that: An avoidance hole (27) is provided at the lower portion of the outer wall of the support tube (21); a fixing frame (28) is installed between two adjacent reinforcing rib plates (24); a spline tube (29) is installed between the inner walls of the two fixing frames (28) via a bearing; a worm (210) is installed at the middle portion of the outer surface of the spline tube (29); and an electromagnetic ring (211) is installed at the top end of the support tube (21).

4. The adjustable radial gate support structure according to claim 3, characterized in that: The worm (210) is located inside the avoidance hole (27), the worm (210) is meshed with the worm wheel (26), the electromagnetic ring (211) is electrically connected to the controller (7), the reinforcing rib plate (24) is provided with an avoidance groove near the avoidance hole (27), the inner wall of the support tube (21) is provided with two convex strips, the outer wall of the lifting rod (22) is provided with two grooves, and the height of the multiple columns of the support mechanism (2) increases from the middle to both sides.

5. The adjustable radial gate support structure according to claim 1, characterized in that: The mounting mechanism (3) comprises a mounting frame (31), a pressure sensor (32), a through hole (33), a forward and reverse screw rod (34), an adjustment handle (35) and a positioning frame (36); the mounting frame (31) is mounted on the top end of the lifting rod (22); the pressure sensor (32) is mounted on the middle part of the bottom inner wall of the mounting frame (31); two through holes (33), two adjustment handles (35) and two positioning frames (36) are each provided; the two through holes (33) are respectively opened on the inner walls on both sides of the mounting frame (31); the forward and reverse screw rod (34) is mounted on the lower part of the outer surface of the mounting frame (31) via a bearing; the two adjustment handles (35) are respectively mounted on the two ends of the forward and reverse screw rod (34); and the two positioning frames (36) are respectively mounted on the two sides of the outer surface of the forward and reverse screw rod (34).

6. The adjustable arc gate support structure according to claim 5, characterized in that: The pressure sensor (32) is electrically connected to the controller (7); the positioning frame (36) is movably connected to the through hole (33) and is snap-fitted to the positioning hole (8); the positioning frame (36) is configured as an L-shaped structure.

7. The adjustable arc gate support structure according to claim 1, characterized in that: The driving mechanism (6) comprises a support frame (61), a mounting bolt (62), a driver (63), a driving gear (64), a rotating gear (65) and a spline shaft (66). The support frame (61), the driver (63), the driving gear (64) and the rotating gear (65) are provided with a plurality of mounting bolts (62), the plurality of mounting bolts (62) are respectively mounted on the bottom ends of the two support frames (61), the two support frames (61) are both mounted on the top end of the supporting platform (1) through the mounting bolts (62), the two drivers (63) are respectively mounted on the middle parts of the opposite surfaces of the two support frames (61), the two driving gears (64) are respectively mounted on the middle parts of the opposite surfaces of the two support frames (61) through bearings, the two rotating gears (65) are respectively mounted on the upper parts of the opposite surfaces of the two support frames (61) through bearings, and the spline shaft (66) is mounted between the opposite surfaces of the two rotating gears (65).

8. The adjustable radial gate support structure according to claim 7, characterized in that: The support frame (61) is configured as a T-shaped structure, the driver (63) is electrically connected to the controller (7), the driving gear (64) is meshed with an adjacent rotating gear (65), and the opposing surfaces of the two rotating gears (65) are provided with a slot matching the spline shaft (66).

9. A support system for an adjustable radial gate support structure, using an adjustable radial gate support structure according to any one of claims 1 to 8, characterized in that: include: Acquisition end, processing end, monitoring and feedback end, and power supply and protection end; The acquisition end includes a pressure sensing unit, a temperature sensing unit and a displacement sensing unit, the processing end includes a signal processing unit, a control unit and an execution unit, the monitoring and feedback end includes a monitoring unit, a feedback unit and a communication unit, and the power supply and protection end includes a power supply unit, a protection unit and a human-machine interface unit; The pressure sensing unit is used to monitor the stress of the supporting structure, the temperature sensing unit is used to monitor the temperature changes of the gate and its surrounding environment, and the displacement sensing unit is used to monitor the small displacement changes of the radial gate during the manufacturing or installation process; The signal processing unit is used to receive and process various sensor signals from the acquisition end, the control unit is used to perform real-time control on the radial gate support structure, and the execution unit is used to drive the support structure to perform actual movement and adjustment according to the instructions of the control unit.

10. The support system of the adjustable radial gate support structure according to claim 9, characterized in that: The monitoring unit is used to monitor the operating status and parameters of the support system in real time, the feedback unit is used to feed back the information collected by the monitoring unit and the motion status of the execution unit to the control unit, and the communication unit is responsible for the communication between the support system and other systems or devices; The power supply unit is used to provide a stable power supply for the entire control system, the protection unit is used to monitor the electrical status of the support system and take protective measures when necessary, and the human-machine interface unit is used to provide an intuitive operating interface and display function.

Citation Information

Cited By

  • Radial gate servomotor oil cylinder bracket and intercepting gate, method

    CN122590173A