Telescopic plane rotation structure and air cylinder

By introducing control components and infrared ranging sensors into the telescopic planar rotation structure, the planar rotation and real-time calibration of the cylinder-driven connecting block are realized, solving the problems of poor support and time-consuming manual adjustment, and improving the degree of automation and stability.

CN224592467UActive Publication Date: 2026-08-04ZHEJIANG DONGTE PNEUMATIC CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG DONGTE PNEUMATIC CO LTD
Filing Date
2025-10-11
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

The existing telescopic planar rotation structure has poor support and requires manual adjustment of parameters, which is time-consuming and labor-intensive.

Method used

Using control components and infrared ranging sensors, the connecting block is driven by a cylinder to move along the limit slide rail, and planar rotation is achieved by combining bearings and rotating rods. The displacement is monitored in real time by infrared ranging sensors, and the controller displays position data to achieve automatic calibration.

Benefits of technology

It improves the support and adjustment efficiency of the telescopic plane rotation structure, enables real-time calibration, and reduces the time and labor required for manual adjustment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224592467U_ABST
    Figure CN224592467U_ABST
Patent Text Reader

Abstract

The utility model relates to a rotary structure technical field especially is a telescopic plane rotary structure and cylinder, including fixed base, the lateral wall of fixed base is installed with control assembly, the outer wall of fixed base is installed with rotary component, the opposite outer wall of fixed base is set up and is limited to slide groove, the control assembly includes controller and infrared range sensor, the controller is installed on the lateral wall of fixed base, the infrared range sensor is installed on the lateral wall of fixed base, drives the connecting block along the limit sliding rail longitudinal movement through the cylinder through the shaft coupling, drives the synchronous translation of sliding base and fixed link; when fixed link is pushed fixed roof through mounting block, mounting block synchronous along the positioning slide rail sliding, make positioning base rotate through the rotary rod around the bearing, form the stable support structure of double fixed link to fixed roof, controller controls infrared range sensor monitoring fixed link's displacement, and the controller displays simultaneously.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of rotating structure technology, specifically to a telescopic planar rotating structure and a cylinder. Background Technology

[0002] The telescopic function of cylinders is quite mature in modern industrial production. Usually, the cylinder is telescopic by pushing the piston rod inside the cylinder with the pressure of compressed gas. This process is relatively simple and reliable and is widely used in various automated equipment and mechanical systems. However, with the continuous advancement of production technology, simple linear motion cylinders can no longer meet the needs of certain specific applications. In many production scenarios, it is not only necessary for the cylinder to complete telescopic motion, but also to rotate in the same horizontal plane. The current telescopic plane rotation structure has poor support, and its simple structure lacks real-time calibration function. Adjusting the rotation structure requires manual parameter adjustment, which is time-consuming and labor-intensive.

[0003] Therefore, a telescopic planar rotation structure and cylinder are needed to improve the above problems. Utility Model Content

[0004] The purpose of this invention is to provide a telescopic planar rotation structure and cylinder to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: A telescopic planar rotation structure includes a fixed base, a control component installed on the side wall of the fixed base, a rotation component installed on the outer wall of the fixed base, and limit grooves formed on the opposite outer walls of the fixed base. The control assembly includes a controller and an infrared ranging sensor. The controller is mounted on the side wall of the fixed base, and the infrared ranging sensor is mounted on the side wall of the fixed base.

[0006] As a preferred embodiment of this utility model, the rotating assembly includes a limiting slide rail and a bearing. The limiting slide rail is provided in two sets and is located on the opposite outer walls of the fixed base, and the limiting slide rail is located on one side of the limiting slide groove.

[0007] As a preferred embodiment of this utility model, a sliding base is installed on the outer wall of the limiting slide rail, and a connecting block is installed on the outer wall of the sliding base.

[0008] As a preferred embodiment of this utility model, a fixing rod is installed on the inner wall of the sliding base, and one end of the fixing rod passes through the limiting slide groove and extends to the outer wall of the limiting slide groove where an installation block is installed.

[0009] As a preferred embodiment of this utility model, a fixed top plate is installed on the outer wall of the mounting block, and the connection between the fixed rod and the limiting slide groove is a sliding connection.

[0010] As a preferred embodiment of this utility model, the bearing is embedded in the outer wall of the fixed base, wherein two sets of bearings are provided and are respectively located on opposite outer walls of the fixed base. A rotating rod is installed on the inner wall of the bearing, a positioning base is installed at one end of the rotating rod, a positioning slide rail is installed on the outer wall of the positioning base, and an installation block is slidably connected to the outer wall of the positioning slide rail.

[0011] As a preferred embodiment of this utility model, the infrared ranging sensor is located directly below the fixed rod, and a groove is provided directly above the infrared ranging sensor and on the outer wall of the fixed rod. The controller is electrically connected to the infrared ranging sensor and the cylinder via wires.

[0012] As a preferred embodiment of this utility model, it also includes a cylinder, wherein two sets of cylinders are provided and are respectively located on the opposite outer walls of the fixed base, wherein the cylinders act on the telescopic plane rotation structure, and one end of the cylinder is connected to a connecting block via a coupling.

[0013] Through the above technical solution, the cylinder is made to operate, and then one end of the cylinder drives the connecting block to move through the coupling. One end of the connecting block moves longitudinally on the outer wall of the limiting slide rail, and then the sliding base moves on the outer wall of the limiting slide rail.

[0014] Compared with the prior art, the beneficial effects of this utility model are: 1. In this utility model, the connecting block is driven by a cylinder via a coupling to move longitudinally along the limiting slide rail, which in turn drives the sliding base and the fixed rod to move synchronously. When the fixed rod pushes the fixed top plate via the mounting block, the mounting block slides synchronously along the positioning slide rail, causing the positioning base to rotate around the bearing via the rotating rod, forming a stable support structure for the fixed top plate by the double fixed rods. The controller controls the infrared ranging sensor to monitor the displacement of the fixed rod, converts the collected electrical signals into position data and displays them, thereby helping to solve the problems of poor support of the current telescopic plane rotation structure, and the simple structure of the telescopic plane rotation structure lacking real-time calibration function. The adjustment of the rotation structure requires manual adjustment of parameters, which is time-consuming and labor-intensive. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the front structure of this utility model; Figure 3 This is a side view of the structure of this utility model.

[0016] In the diagram: 1. Fixed base; 2. Control component; 201. Controller; 202. Infrared ranging sensor; 3. Rotation component; 301. Limiting slide rail; 302. Bearing; 303. Sliding base; 304. Connecting block; 305. Fixed rod; 306. Mounting block; 307. Fixed top plate; 308. Rotating rod; 309. Positioning base; 310. Positioning slide rail; 4. Limiting groove; 5. Cylinder; 6. Coupling. Detailed Implementation

[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0018] To facilitate understanding of this utility model, a more comprehensive description of the utility model will be given below with reference to the accompanying drawings, and several embodiments of the utility model will be provided. However, the utility model can be implemented in many different forms and is not limited to the embodiments described herein. On the contrary, the purpose of providing these embodiments is to make the disclosure of the utility model more thorough and complete.

[0019] For examples, please refer to Figure 1-3 This utility model provides a technical solution: A telescopic planar rotation structure includes a fixed base 1, a control component 2 installed on the side wall of the fixed base 1, a rotation component 3 installed on the outer wall of the fixed base 1, and a limit groove 4 formed on the opposite outer wall of the fixed base 1. In this embodiment, the control component 2 includes a controller 201 and an infrared ranging sensor 202. The controller 201 is mounted on the side wall of the fixed base 1, and the infrared ranging sensor 202 is mounted on the side wall of the fixed base 1.

[0020] In this embodiment, the rotating assembly 3 includes a limiting slide rail 301 and a bearing 302. Two sets of limiting slide rails 301 are provided and located on opposite outer walls of the fixed base 1. The limiting slide rails 301 are located on one side of the limiting groove 4. A sliding base 303 is installed on the outer wall of the limiting slide rail 301. A connecting block 304 is installed on the outer wall of the sliding base 303. A fixing rod 305 is installed on the inner wall of the sliding base 303. One end of the fixing rod 305 passes through the limiting groove 4 and extends to the outer wall of the limiting groove 4 where an mounting block 3 is installed. 06. A fixed top plate 307 is installed on the outer wall of the mounting block 306. The connection between the fixed rod 305 and the limiting slide groove 4 is a sliding connection. The bearing 302 is embedded in the outer wall of the fixed base 1. There are two sets of bearings 302, which are located on opposite outer walls of the fixed base 1. A rotating rod 308 is installed on the inner wall of the bearing 302. A positioning base 309 is installed at one end of the rotating rod 308. A positioning slide rail 310 is installed on the outer wall of the positioning base 309. The mounting block 306 is slidably connected to the outer wall of the positioning slide rail 310.

[0021] In this embodiment, a cylinder 5 is also included. Two sets of cylinders 5 are provided and are located on opposite outer walls of the fixed base 1. The cylinder 5 acts on the telescopic plane rotation structure, and one end of the cylinder 5 is connected to a connecting block 304 via a coupling 6.

[0022] Based on the above structural features and connection relationships, when the fixed rod 305 moves the fixed top plate 307 via the mounting block 306, and the mounting block 306 moves simultaneously on the outer wall of the positioning slide rail 310, the positioning slide rail 310 moves the positioning base 309, which in turn causes the positioning base 309 to rotate on the outer wall of the bearing 302 via the rotating rod 308. At this time, the two sets of fixed rods 305 support and fix the fixed top plate 307 via the mounting block 306, resulting in good stability of the fixed top plate 307. The infrared ranging sensor 202 is located directly below the fixed rod 305. A groove is provided on the outer wall of the fixed rod 305 directly above the infrared ranging sensor 202. The controller 201 is connected to the infrared ranging sensor 202 by wires in an electrical connection manner, which enables the device to be powered on, thereby enabling the controller 201 to control the infrared ranging sensor 202 to operate.

[0023] The working process of this utility model is as follows: When the telescopic plane rotation structure and cylinder designed in this solution are working or running, the controller 201 is connected to the infrared ranging sensor 202 through the wire and the connection method is electrical connection, so that the device is powered on, and then the controller 201 controls the infrared ranging sensor 202 to be powered on and operated. By turning on the controller 201, the cylinder 5 is made to run, and one end of the cylinder 5 drives the connecting block 304 to move through the coupling 6. A sliding base 303 is installed on the outer wall of the limiting slide rail 301. Under the action of the connecting block 304 installed on the outer wall of the sliding base 303, one end of the connecting block 304 moves the sliding base 303 longitudinally on the outer wall of the limiting slide rail 301. Then the sliding base 303 moves on the outer wall of the limiting slide rail 301. An installation block 306 is installed on the outer wall of the limiting slide groove 4 through one end of the fixed rod 305. A fixed top plate 307 is installed on the outer wall of the installation block 306. The connection between the fixed rod 305 and the limiting slide groove 4 is a sliding connection. Under the action of the sliding base 303 driving the fixed rod 305 to move longitudinally, the fixed rod 305 will move longitudinally. The bearings 302 are embedded in the outer wall of the fixed base 1. Two sets of bearings 302 are provided and located on opposite outer walls of the fixed base 1. A rotating rod 308 is installed on the inner wall of the bearing 302. A positioning base 309 is installed at one end of the rotating rod 308. A positioning slide rail 310 is installed on the outer wall of the positioning base 309. An installation block 306 is slidably connected to the outer wall of the positioning slide rail 310. When the fixed rod 305 moves the fixed top plate 307 through the installation block 306, the installation block 306 moves on the outer wall of the positioning slide rail 310, which in turn moves the positioning base 309. This causes the positioning base 309 to rotate on the outer wall of the bearing 302 through the rotating rod 308. At this time, the two sets of fixed rods 305 support and fix the fixed top plate 307 through the installation block 306, resulting in good stability of the fixed top plate 307. The infrared ranging sensor 202 is controlled by the controller 201. When the fixed rod 305 moves longitudinally, the infrared ranging sensor 202 measures the distance to the fixed rod 305 in real time. At the same time, the infrared ranging sensor 202 generates an electrical signal, which is transmitted to the controller 201 through a wire. The controller 201 then generates real-time data on the displacement of the fixed rod 305 and displays the data so that the operator can judge the position of the structure. This helps to solve the problems of poor support of the current telescopic plane rotation structure, the simple structure of the telescopic plane rotation structure without real-time calibration function, and the need for manual adjustment of parameters for the adjustment of the rotation structure, which is time-consuming and labor-intensive.

[0024] The infrared ranging sensor 202 and controller 201 used in this utility model are both existing known electrical devices and can be purchased and used directly on the market. Their structure, circuit and control principle are all existing known technologies. Therefore, the structure, circuit and control principle of the infrared ranging sensor 202 and controller 201 will not be described in detail here.

[0025] All standard parts used in this application can be purchased from the market. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art and are also general components, which are common knowledge in this field.

[0026] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A telescopic planar rotation structure, comprising a fixed base (1), characterized in that: A control component (2) is installed on the side wall of the fixed base (1), a rotating component (3) is installed on the outer wall of the fixed base (1), and a limit groove (4) is opened on the opposite outer wall of the fixed base (1). The control component (2) includes a controller (201) and an infrared ranging sensor (202). The controller (201) is mounted on the side wall of the fixed base (1), and the infrared ranging sensor (202) is mounted on the side wall of the fixed base (1).

2. The telescopic planar rotation structure according to claim 1, characterized in that: The rotating assembly (3) includes a limiting slide rail (301) and a bearing (302). The limiting slide rail (301) is provided in two sets and is located on the opposite outer wall of the fixed base (1). The limiting slide rail (301) is located on one side of the limiting slide groove (4).

3. The telescopic planar rotation structure according to claim 2, characterized in that: A sliding base (303) is installed on the outer wall of the limiting slide rail (301), and a connecting block (304) is installed on the outer wall of the sliding base (303).

4. The telescopic planar rotation structure according to claim 3, characterized in that: A fixing rod (305) is installed on the inner wall of the sliding base (303). One end of the fixing rod (305) passes through the limiting slide groove (4) and extends to the outer wall of the limiting slide groove (4) where an installation block (306) is installed.

5. The telescopic planar rotation structure according to claim 4, characterized in that: A fixed top plate (307) is installed on the outer wall of the mounting block (306), and the connection between the fixed rod (305) and the limiting slide groove (4) is a sliding connection.

6. The telescopic planar rotation structure according to claim 5, characterized in that: The bearing (302) is embedded in the outer wall of the fixed base (1). There are two sets of bearings (302) located on opposite outer walls of the fixed base (1). A rotating rod (308) is installed on the inner wall of the bearing (302). A positioning base (309) is installed at one end of the rotating rod (308). A positioning slide rail (310) is installed on the outer wall of the positioning base (309). An installation block (306) is slidably connected to the outer wall of the positioning slide rail (310).

7. The telescopic planar rotation structure according to claim 6, characterized in that: The infrared ranging sensor (202) is located directly below the fixed rod (305). A groove is provided on the outer wall of the fixed rod (305) directly above the infrared ranging sensor (202). The controller (201) is connected to the infrared ranging sensor (202) via a wire and the connection method is electrical connection.

8. A cylinder, characterized in that, The telescopic plane rotation structure as described in claim 7 is further comprising a cylinder (5), wherein two sets of cylinders (5) are provided and are respectively located on the opposite outer walls of the fixed base (1), wherein the cylinder (5) acts on the telescopic plane rotation structure, and one end of the cylinder (5) is connected to a connecting block (304) via a coupling (6).