Self-adaptive adjustment molten steel continuous temperature measurement sensor

By combining components such as a moving base, connecting frame, motor, and rotating screw, the adaptive adjustment of the continuous temperature sensor for molten steel is realized, solving the problems of sensor position movement and distance adjustment at different process stages, and improving the adaptability and stability of temperature measurement.

CN224081077UActive Publication Date: 2026-04-03SHENYANG TAIHE METALLURGY MEASUREMENT & CONTROL TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-13
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing continuous temperature sensors for molten steel cannot quickly move to a designated location for temperature measurement, and it is difficult to adjust the distance from the molten steel at different process stages, resulting in poor adaptability and adjustability.

Method used

The system employs a combination of components such as a movable base, connecting frame, motor, rotating screw, ball bearing nut seat, connecting block, connecting shell, cylinder, and lifting plate to achieve automated position adjustment of the sensor, including horizontal and vertical movement. The movement of the lifting plate is controlled by the motor-driven rotating screw and the cylinder, enabling adaptive adjustment of the temperature sensor.

Benefits of technology

This enables the sensor to move rapidly and adjust its distance at different stages of the process, improving the adaptability and adjustability of temperature measurement and ensuring the stability and efficiency of the temperature measurement process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the related technical field of molten steel temperature measurement, in particular to a self-adaptive adjustment molten steel continuous temperature measurement sensor which comprises a moving seat, a connecting frame is fixedly installed on the upper side surface of the moving seat, a motor is fixedly installed on one side surface of the connecting frame, and the output end of the motor is fixedly connected with a rotating screw rod. The outer wall of the rotating screw is sleeved with a ball nut seat in a threaded mode. According to the self-adaptive adjustment molten steel continuous temperature measurement sensor, through the arrangement of the moving seat, the connecting frame, the motor, the rotating screw rod, a ball nut seat, a connecting block, a connecting shell, an air cylinder, a lifting plate and the temperature measurement sensor, if the distance between the temperature measurement sensor and molten steel needs to be adjusted during temperature measurement, the motor can make the rotating screw rod rotate; the ball nut seat can drive the connecting block to move horizontally, the temperature measuring sensor can also be driven to move horizontally, meanwhile, the air cylinder can enable the lifting plate to drive the temperature measuring sensor to do lifting motion, and therefore automatic position adjustment is achieved.
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Description

Technical Field

[0001] This utility model relates to the technical field of molten steel temperature measurement, and in particular to an adaptive adjustment continuous molten steel temperature sensor. Background Technology

[0002] Steel temperature measurement helps optimize production processes. Different stages of steel production require different temperatures. By monitoring the temperature of molten steel in real time, we can understand the current process stage and adjust temperature control parameters as needed. This helps improve production efficiency, reduce production costs, and also helps reduce energy consumption and emissions during production. Therefore, an adaptive, continuously adjustable molten steel temperature sensor is particularly needed.

[0003] However, most existing continuous temperature sensors for molten steel cannot move quickly, which makes it very troublesome to measure the temperature of molten steel at different stages of the process. Secondly, it is not convenient to adjust the position of the temperature sensor from the molten steel during the temperature measurement process, and the adaptability and adjustability are relatively poor. Utility Model Content

[0004] The purpose of this invention is to provide an adaptive and adjustable continuous temperature sensor for molten steel, in order to solve the problems mentioned in the background art. Most of the existing continuous temperature sensors for molten steel cannot move quickly, which is very troublesome when measuring the temperature of molten steel at different process stages. Furthermore, the position of the temperature sensor relative to the molten steel is not convenient to adjust during the temperature measurement process, resulting in poor adaptability and adjustability.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an adaptive adjustable continuous temperature sensor for molten steel, comprising a movable base, a connecting frame fixedly mounted on the upper surface of the movable base, a motor fixedly mounted on one side surface of the connecting frame, a rotating screw fixedly connected to the output end of the motor, a ball bearing nut seat threaded onto the outer wall of the rotating screw, a connecting block fixedly mounted on the outer wall of the ball bearing nut seat, a connecting shell fixedly mounted on the upper surface of the connecting block, a cylinder fixedly mounted inside the connecting shell, a lifting plate fixedly connected to the output end of the cylinder, a temperature sensor fixedly mounted on the upper surface of the lifting plate, and connecting plates fixedly mounted on both sides of the movable base.

[0006] Preferably, the rotating screw is connected to the connecting frame bearing, and the rotating screw and the connecting frame form a rotating structure.

[0007] Preferably, a limiting block is fixedly installed on the outer wall of the ball nut seat, and a limiting groove is formed on the inner wall of the connecting frame facing the opening.

[0008] Preferably, the limiting block forms a sliding structure with the connecting frame through the limiting groove.

[0009] Preferably, a connecting groove is formed on one side surface of the connecting plate, and a sliding groove is formed on the opposite side of the side surface of the connecting plate connected to the movable seat. A movable slider is provided inside the sliding groove. A movable plate is fixedly connected to one side surface of the slider. A fixing frame is fixedly installed on one side surface of the movable plate. A screw is connected through one end of the fixing frame. A fixing screw is fixedly connected to one side surface of the slider. A fixing nut is threaded to one end of the fixing screw that passes through the connecting groove.

[0010] Preferably, the slider and the connecting plate form a sliding structure through the sliding groove, and the fixing screw and the connecting plate form a sliding structure through the connecting groove.

[0011] Preferably, two sets of the fixing brackets are fixedly installed on one side surface of the movable plate.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: This adaptive and adjustable continuous temperature sensor for molten steel, through the arrangement of a moving base, connecting frame, motor, rotating screw, ball bearing nut seat, connecting block, connecting shell, cylinder, lifting plate, and temperature sensor, allows the moving base to quickly move the temperature sensor to a designated position before temperature measurement, making temperature measurement very convenient. After moving to the designated position, temperature measurement begins. If it is necessary to adjust the distance between the temperature sensor and the molten steel during the temperature measurement process, the motor can rotate the rotating screw, causing the ball bearing nut seat to move horizontally along with the connecting block, and the temperature sensor will also be moved horizontally. At the same time, the cylinder can also cause the lifting plate to move up and down with the temperature sensor, thus realizing automated position adjustment and making the temperature sensor more adaptable and adjustable. Attached Figure Description

[0013] Figure 1 This is a side view of the appearance structure of this utility model;

[0014] Figure 2 This is a schematic diagram of the interlocking structure of the connecting frame and the limiting groove of this utility model;

[0015] Figure 3 This is a schematic diagram of the interlocking structure of the connecting shell and the cylinder of this utility model;

[0016] Figure 4 This is a schematic diagram of the structure in which the movable plate and the fixed frame of this utility model cooperate with each other.

[0017] In the diagram: 1. Movable seat; 2. Connecting frame; 3. Motor; 4. Rotating screw; 5. Ball bearing nut seat; 6. Connecting block; 7. Connecting shell; 8. Cylinder; 9. Lifting plate; 10. Temperature sensor; 11. Limiting block; 12. Limiting groove; 13. Connecting plate; 14. Connecting groove; 15. Slide groove; 16. Sliding block; 17. Movable plate; 18. Fixed frame; 19. Screw; 20. Fixed screw; 21. Fixed nut. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] Please see Figure 1-4 This utility model provides a technical solution: an adaptive adjustable continuous temperature sensor for molten steel, including a movable base 1, a connecting frame 2 fixedly mounted on the upper surface of the movable base 1, a motor 3 fixedly mounted on one side surface of the connecting frame 2, a rotating screw 4 fixedly connected to the output end of the motor 3, a ball nut seat 5 threaded onto the outer wall of the rotating screw 4, a connecting block 6 fixedly mounted on the outer wall of the ball nut seat 5, a connecting shell 7 fixedly mounted on the upper surface of the connecting block 6, a cylinder 8 fixedly mounted inside the connecting shell 7, a lifting plate 9 fixedly connected to the output end of the cylinder 8, a temperature sensor 10 fixedly mounted on the upper surface of the lifting plate 9, and connecting plates 13 fixedly mounted on both sides of the movable base 1. The sensor is connected via the movable base 1, connecting frame 2, motor 3, rotating screw 4, ball nut seat 5, and connecting block 6. 6. The arrangement of the connecting shell 7, cylinder 8, lifting plate 9, temperature sensor 10, and connecting plate 13 allows the movable seat 1 to quickly move the temperature sensor 10 to the designated position before temperature measurement, making temperature measurement very convenient. After moving to the designated position, temperature measurement begins. If it is necessary to adjust the distance between the temperature sensor 10 and the molten steel during temperature measurement, the motor 3 can rotate the rotating screw 4. At this time, the ball nut seat 5 will move the connecting block 6 and the connecting shell 7 horizontally. The temperature sensor 10, which is fixedly installed on the lifting plate 9 at the upper end of the connecting shell 7, will also be moved horizontally. At the same time, the cylinder 8 can also make the lifting plate 9 move the temperature sensor 10 up and down. This achieves automated position adjustment, making the temperature sensor 10 more adaptable and adjustable.

[0020] Furthermore, the rotating screw 4 is connected to the connecting frame 2 by a bearing, and the rotating screw 4 and the connecting frame 2 form a rotating structure. With the setting of the rotating screw 4, the ball nut seat 5 will also be moved horizontally when the rotating screw 4 rotates, thereby adjusting the horizontal position of the temperature sensor 10.

[0021] Furthermore, a limiting block 11 is fixedly installed on the outer wall of the ball nut seat 5, and a limiting groove 12 is opened on the inner wall of the connecting frame 2 facing the opening. Through the setting of the ball nut seat 5, the ball nut seat 5 can move the temperature sensor 10 horizontally through the connecting shell 7 and the lifting plate 9, and can automatically adjust the position of the temperature sensor 10, making it more adaptable and adjustable.

[0022] Furthermore, the limiting block 11 forms a sliding structure with the connecting frame 2 through the limiting groove 12. With the setting of the limiting block 11 and the limiting groove 12, the movement of the ball nut seat 5 can be limited when the limiting block 11 slides in the limiting groove 12.

[0023] Furthermore, a connecting groove 14 is formed on one side surface of the connecting plate 13, and a sliding groove 15 is formed on the opposite side of the side surface of the connecting plate 13 connected to the movable seat 1. A movable slider 16 is arranged inside the sliding groove 15. A movable plate 17 is fixedly connected to one side surface of the slider 16, and a fixing bracket 18 is fixedly installed on one side surface of the movable plate 17. A screw 19 is connected through one end of the fixing bracket 18. A fixing screw 20 is fixedly connected to one side surface of the slider 16, and one end of the fixing screw 20 that passes through the connecting groove 14 is threadedly connected to... The fixing nut 21, along with the connecting plate 13, connecting groove 14, sliding groove 15, slider 16, moving plate 17, fixing frame 18, screw 19, fixing screw 20, and fixing nut 21, allows the fixing nut 21 to be released when the moving seat 1, carrying the temperature sensor 10, moves to the designated position. At this time, the slider 16 slides down in the sliding groove 15, and the moving plate 17 lowers the fixing frame 18. The fixing frame 18 is then fixed in the designated position with screw 19, preventing the moving seat 1 from moving and making temperature measurement more stable.

[0024] Furthermore, the slider 16 forms a sliding structure with the connecting plate 13 through the slide groove 15, and the fixing screw 20 forms a sliding structure with the connecting plate 13 through the connecting groove 14. With the setting of the slide groove 15 and the slider 16, when the slider 16 slides in the slide groove 15, the moving plate 17 can be lifted and lowered, so that the fixing frame 18 can be horizontally supported on the ground.

[0025] Furthermore, two sets of fixing brackets 18 are fixedly installed on one side surface of the moving plate 17. With the setting of fixing brackets 18, screws 19 can fix fixing brackets 18 in a designated position, so that the moving seat 1 cannot move and the temperature measurement is more stable.

[0026] Working principle: During the temperature measurement process, if it is necessary to adjust the distance between the temperature sensor 10 and the molten steel, the motor 3 can rotate the screw 4. At this time, the ball nut seat 5 will move horizontally with the connecting block 6 and the connecting shell 7. The temperature sensor 10, which is fixedly installed on the lifting plate 9 at the upper end of the connecting shell 7, will also be moved horizontally. At the same time, the cylinder 8 can also make the lifting plate 9 move up and down with the temperature sensor 10. When the moving seat 1 moves the temperature sensor 10 to the designated position, the fixing nut 21 is released. At this time, the slider 16 slides down in the slide groove 15, and the moving plate 17 will bring down the fixing frame 18. After the fixing frame 18 is supported in the designated position, it is fixed with screws 19. At the same time, the fixing nut 21 is tightened to fix the position of the slider 16 and the moving plate 17.

[0027] 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 self-adjusting continuous temperature sensor of molten steel, comprising a mobile seat (1), characterized in that: The upper surface of the mobile seat (1) is fixedly installed with a connecting frame (2), one side surface of the connecting frame (2) is fixedly installed with a motor (3), the output end of the motor (3) is fixedly connected with a rotating screw rod (4), the outer wall of the rotating screw rod (4) is threadedly sleeved with a ball nut seat (5), the outer wall of the ball nut seat (5) is fixedly installed with a connecting block (6), the upper surface of the connecting block (6) is fixedly installed with a connecting shell (7), the inside of the connecting shell (7) is fixedly installed with a gas cylinder (8), the output end of the gas cylinder (8) is fixedly connected with a lifting plate (9), the upper surface of the lifting plate (9) is fixedly installed with a temperature sensor (10), both side surfaces of the mobile seat (1) are fixedly installed with a connecting plate (13).

2. The self-adjusting continuous temperature sensor for molten steel according to claim 1, wherein: The rotating screw rod (4) is bearing connected with the connecting frame (2), and the rotating screw rod (4) and the connecting frame (2) constitute a rotating structure.

3. The self-adjusting continuous temperature sensor for molten steel according to claim 1, wherein: The outer wall of the ball nut seat (5) is fixedly installed with a limiting block (11), and the connecting frame (2) is provided with a limiting groove (12) in the inner wall of the side facing the opening.

4. The self-adjusting continuous temperature sensor for molten steel according to claim 3, wherein: The limiting block (11) and the connecting frame (2) constitute a sliding structure through the limiting groove (12).

5. The self-adjusting continuous temperature sensor for molten steel according to claim 1, wherein: One side surface of the connecting plate (13) is provided with a connecting groove (14), and the opposite side surface of the connecting plate (13) connected with the mobile seat (1) is provided with a sliding groove (15), the inside of the sliding groove (15) is provided with a movable sliding block (16), one side surface of the sliding block (16) is fixedly connected with a moving plate (17), one side surface of the moving plate (17) is fixedly installed with a fixing frame (18), one end of the fixing frame (18) is penetratingly connected with a screw (19), one side surface of the sliding block (16) is fixedly connected with a fixing screw rod (20), and one end of the fixing screw rod (20) penetrating the connecting groove (14) is threadedly connected with a fixing nut (21).

6. The self-adjusting continuous temperature sensor for molten steel according to claim 5, wherein: The sliding block (16) and the connecting plate (13) constitute a sliding structure through the sliding groove (15), and the fixing screw rod (20) and the connecting plate (13) constitute a sliding structure through the connecting groove (14).

7. The self-adjusting continuous temperature sensor for molten steel according to claim 5, wherein: The fixing frame (18) is fixedly installed with two groups on one side surface of the moving plate (17).