A temperature detector for use in a batch bin

By designing components such as support boxes, threaded rods, and hydraulic rods, the temperature detector can measure at multiple angles and heights within the batching silo, solving the problem of inconvenient operation in existing technologies and improving the flexibility and accuracy of detection.

CN224594076UActive Publication Date: 2026-08-04ZHENGZHOU NEO LOOP TECH
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHENGZHOU NEO LOOP TECH
Filing Date
2025-06-18
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Existing temperature detectors in the batching silo can only measure temperature at a fixed height or position, which is inconvenient to operate and makes it difficult to accurately detect at different material depths and directions.

Method used

The device employs components such as a support box, threaded rod, upright, connecting plate, and motor. The motor drives the threaded rod to rotate, enabling the detector to move at different heights. Hydraulic rods and gear assemblies are used to adjust the probe at different angles, achieving temperature measurement at multiple angles and heights.

Benefits of technology

It enables flexible measurement of temperature at different heights and angles by the temperature detector in the batching silo, improving the practicality and accuracy of the detection and enabling better detection of temperature changes at different material depths and directions.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the field of temperature detection and provides a temperature detector for use in a batching silo. The detector includes: a support box; a threaded rod, which is mounted on the inner walls of both sides of the support box via bearings, and a sleeve is threaded onto the outer surface of the threaded rod. In use, the external power switch of the bidirectional motor is turned on, causing the output shaft of the bidirectional motor to drive the threaded rod to rotate. By controlling the direction of rotation of the output shaft of the bidirectional motor, the threaded rod can rotate in different directions. When the threaded rod rotates counterclockwise, the sleeve drives the bottom rod to move upward on the outer surface of the threaded rod, further placing the detector body at a higher position. When the threaded rod rotates clockwise, the sleeve drives the bottom rod to move downward on the outer surface of the threaded rod, further placing the detector body at a lower position. Thus, when detecting the temperature inside the batching silo, detection can be performed at different heights, improving the practicality of the detector.
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Description

Technical Field

[0001] This application relates to the field of temperature detection, and in particular to a temperature detector for use in a batching silo. Background Technology

[0002] In many industrial production processes, temperature detection is one of the key links to ensure production quality and equipment safety. Temperature detectors, through probes installed in the production environment, monitor the temperature of materials or equipment in real time and promptly detect potential temperature anomalies. In batching silos, accurate detection of material temperature is crucial for the control of the batching process.

[0003] Most existing temperature detectors use a fixed probe design, which can usually only measure temperature at a fixed height or position. In order to measure temperature at different material layer depths and temperature changes in different directions, it is necessary to manually hold the detector and adjust the height and temperature, which is inconvenient and reduces the practicality of the detector. Utility Model Content

[0004] This application provides a temperature detector for use in a batching silo. When detecting the temperature inside the batching silo, it can perform detection at different height positions, which facilitates temperature measurement at different material layer depths, improves the practicality of the detector, and can perform measurement at different angle positions, allowing for more accurate detection of temperature changes in different directions.

[0005] To achieve the above objectives, this application adopts the following technical solution: a temperature detector for use in a batching silo, the detector comprising:

[0006] Support box;

[0007] A threaded rod is mounted on the inner wall of both sides of the support box via bearings, and a sleeve is threaded onto the outer surface of the threaded rod; the threaded rod can rotate via the bearings.

[0008] The upright is fixedly installed on the inner wall of the support box, and a sliding cylinder is movably sleeved on the outer surface of the upright, which can slide on the outer surface of the upright.

[0009] A connecting plate is fixedly installed on the outer surface of the sleeve and the slide, and a bottom rod is fixedly installed at the center of one side of the connecting plate.

[0010] As a further improvement of this application: an L-shaped rod is fixedly installed on one side of the support box, a bidirectional motor is installed at one end of the L-shaped rod, the output shaft of the bidirectional motor is fixedly installed on one side of the threaded rod, the bottom rod is slidably installed on the inner wall of the support box, and mounting plates are fixedly installed on both sides of the support box.

[0011] As a further improvement of this application: a protruding plate is fixedly provided on one side of the bottom rod, a connecting shaft is provided on the inner wall of the protruding plate through a bearing, a gear is fixedly sleeved on the outer surface of the connecting shaft, and the connecting shaft can rotate through the bearing.

[0012] As a further improvement of this application: a hydraulic rod is installed on one side of the convex plate, a rack is fixedly provided at the output end of the hydraulic rod, the outer surface of the connecting shaft meshes with one side of the rack, a bracket is fixedly sleeved on the outer surface of the connecting shaft, and the output end of the hydraulic rod drives the rack to move.

[0013] As a further improvement of this application: threaded sleeves are fixedly embedded on both sides of the bracket, and fixed rods are threadedly embedded on the inner walls of the two threaded sleeves, and rotating plates are fixedly installed on the opposite sides of the two fixed rods.

[0014] As a further improvement of this application: clamping plates are movably provided on the opposite sides of the two rotating plates, and one side of the two clamping plates is slidably disposed on one side of the inner wall of the convex plate.

[0015] As a further improvement of this application: a second telescopic plate is fixedly provided on one side of one of the clamping plates, and a first telescopic plate is slidably provided on the inner wall of the second telescopic plate.

[0016] As a further improvement of this application: the first telescopic plate is fixedly installed on one side of another clamping plate, and a detector body is installed on the opposite side of the two clamping plates, and the temperature is detected by the probe on the detector body.

[0017] Compared with the prior art, the advantages and positive effects of this application are as follows:

[0018] 1. In use, the external power switch of the bidirectional motor is turned on, causing the output shaft of the bidirectional motor to drive the threaded rod to rotate. The L-shaped rod supports the bidirectional motor, allowing it to be mounted on the upper side of the support box. The output shaft of the bidirectional motor can rotate in both directions. By controlling the direction of rotation of the output shaft, the threaded rod can rotate in different directions. When the threaded rod rotates counterclockwise, the sleeve drives the bottom rod to move upward on the outer surface of the threaded rod, further positioning the detector body at a high point. When the threaded rod rotates clockwise, the sleeve drives the bottom rod to move downward on the outer surface of the threaded rod, further positioning the detector body at a low point. Thus, when detecting the temperature inside the batching silo, detection can be performed at different heights, facilitating temperature measurement at different material layer depths and improving the practicality of the detector.

[0019] 2. In use, when detecting temperature, the two clamping plates can slide on one side of the inner wall of the bracket, and the first telescopic plate can slide on the inner wall of the second telescopic plate. The detector body is placed on the upper side of the second and first telescopic plates. At this time, rotating the two rotating plates drives the two fixed rods to rotate inside the two threaded sleeves. The two fixed rods can rotate on one side of the two clamping plates, so that the two clamping plates move relative to each other. When the two rotating plates are difficult to rotate, the detector body is further fixed in the middle position of the two clamping plates, completing the installation of the detector body. The connecting shaft can rotate through the bearing, which further allows the detector body mounted on the bracket to rotate. By controlling the hydraulic rod output end to move in different directions, the rack moves, which in turn drives the connecting shaft to rotate in different positions, so that the probe on the bracket and detector body is in different angle positions. Therefore, when measuring temperature, it can be measured at different angle positions, and temperature changes in different directions can be detected more accurately. Attached Figure Description

[0020] Figure 1 This is a frontal three-dimensional structural diagram of a temperature detector for use in a batching silo, as proposed in this application.

[0021] Figure 2 This is a side-view three-dimensional structural diagram of a temperature detector for use in a batching silo, as proposed in this application.

[0022] Figure 3 This is a three-dimensional structural diagram of a temperature detector for use in a batching silo, as proposed in this application, according to Embodiment 2.

[0023] Figure 4 This is a three-dimensional structural diagram of a temperature detector for use in a batching silo, as proposed in this application, according to Embodiment 2.

[0024] Legend: 1. Support box; 2. Mounting plate; 201. Threaded rod; 202. Sleeve; 203. Upright pole; 204. Slide cylinder; 205. Connecting plate; 206. L-shaped rod; 207. Bidirectional motor; 208. Base rod; 3. Protruding plate; 301. Connecting shaft; 302. Bracket; 303. Gear; 304. Hydraulic rod; 305. Threaded sleeve; 306. Fixing rod; 307. Rotating plate; 308. Clamping plate; 309. First telescopic plate; 310. Second telescopic plate; 311. Rack; 312. Detector body. Detailed Implementation

[0025] To better understand the above-mentioned objectives, features, and advantages of this application, the application will be further described below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in the embodiments of this application can be combined with each other.

[0026] Many specific details are set forth in the following description in order to provide a full understanding of this application. However, this application may also be implemented in other ways than those described herein, and therefore this application is not limited to the specific embodiments disclosed in the following specification.

[0027] Example 1, as Figure 1 and Figure 2 As shown, this application provides a temperature detector for use in a batching silo. The detector includes: a support box 1; a threaded rod 201, which is mounted on the inner walls of both sides of the support box 1 via bearings, and a sleeve 202 is threadedly fitted on the outer surface of the threaded rod 201; a vertical rod 203, which is fixedly mounted on the inner wall of the support box 1, and a sliding cylinder 204 is movably fitted on the outer surface of the vertical rod 203; a connecting plate 205, which is fixedly mounted on the outer surfaces of the sleeve 202 and the sliding cylinder 204, and a bottom rod 208 is fixedly mounted at the center of one side of the connecting plate 205; an L-shaped rod 206 is fixedly mounted on one side of the support box 1, a bidirectional motor 207 is mounted on one end of the L-shaped rod 206, the output shaft of the bidirectional motor 207 is fixedly mounted on one side of the threaded rod 201, the bottom rod 208 is slidably mounted on the inner wall of the support box 1, and mounting plates 2 are fixedly mounted on both sides of the support box 1.

[0028] By adopting the above technical solution, the support box 1 is installed on the inner wall of the warehouse through two mounting plates 2. The slide cylinder 204 can slide on the outer surface of the upright 203. The slide cylinder 204 is connected to the sleeve 202 through the connecting plate 205. Thus, when the threaded rod 201 rotates in different directions, the sleeve 202 moves up and down on the outer surface of the threaded rod 201. The external power switch of the bidirectional motor 207 is turned on, which causes the output shaft of the bidirectional motor 207 to drive the threaded rod 201 to rotate. The L-shaped rod 206 provides support for the bidirectional motor 207, allowing the bidirectional motor 201 to rotate. 7 is installed on the upper side of the support box 1, and the output shaft of the bidirectional motor 207 can rotate in both directions. By controlling the direction of rotation of the output shaft of the bidirectional motor 207, the threaded rod 201 rotates in different directions. When the threaded rod 201 rotates counterclockwise, the sleeve 202 drives the bottom rod 208 to move upward on the outer surface of the threaded rod 201, further making the detector body 312 a high point position. When the threaded rod 201 rotates clockwise, the sleeve 202 drives the bottom rod 208 to move downward on the outer surface of the threaded rod 201, further making the detector body 312 a low point position.

[0029] Example 2, as Figure 1 , Figure 3 and Figure 4As shown, a protruding plate 3 is fixedly installed on one side of the bottom rod 208. A connecting shaft 301 is installed on the inner wall of the protruding plate 3 via a bearing. A gear 303 is fixedly sleeved on the outer surface of the connecting shaft 301. A hydraulic rod 304 is installed on one side of the protruding plate 3. A rack 311 is fixedly installed at the output end of the hydraulic rod 304. The outer surface of the connecting shaft 301 meshes with one side of the rack 311. A bracket 302 is fixedly sleeved on the outer surface of the connecting shaft 301.

[0030] By adopting the above technical solution, the two clamping plates 308 can slide on one side of the inner wall of the bracket 302, and the first telescopic plate 309 can slide on the inner wall of the second telescopic plate 310. The detector body 312 is placed on the upper side of the second telescopic plate 310 and the first telescopic plate 309. At this time, rotating the two rotating plates 307 drives the two fixing rods 306 to rotate inside the two threaded sleeves 305. The two fixing rods 306 can rotate on one side of the two clamping plates 308, so that the two clamping plates 308 move relative to each other. When the two rotating plates 307 are difficult to rotate, the detector body 312 is further fixed in the middle position of the two clamping plates 308, thus completing the installation of the detector body 312.

[0031] like Figure 3 and Figure 4 As shown, threaded sleeves 305 are fixedly embedded on both sides of the bracket 302. Fixed rods 306 are threadedly embedded on the inner walls of the two threaded sleeves 305. Rotating plates 307 are fixedly installed on the opposite sides of the two fixed rods 306. Clamping plates 308 are movably installed on the opposite sides of the two rotating plates 307. One side of the two clamping plates 308 is slidably installed on one side of the inner wall of the protruding plate 3. A second telescopic plate 310 is fixedly installed on one side of one clamping plate 308. A first telescopic plate 309 is slidably installed on the inner wall of the second telescopic plate 310. The first telescopic plate 309 is fixedly installed on one side of the other clamping plate 308. The detector body 312 is installed on the opposite side of the two clamping plates 308.

[0032] By adopting the above technical solution, the temperature inside the chamber is detected by the probe on the detector body 312. The connecting shaft 301 can rotate through the bearing, which further allows the detector body 312 mounted on the bracket 302 to rotate. By controlling the output end of the hydraulic rod 304 to move to different positions, the rack 311 is further moved, which in turn causes the gear 303 to drive the connecting shaft 301 to rotate to different positions, so that the bracket 302 drives the probe on the detector body 312 to be at different angle positions.

[0033] Working principle: When detecting the temperature of the batching silo, the probe on the detector body 312 detects the temperature inside the silo. In use, the support box 1 is installed on the inner wall of the silo via two mounting plates 2. The slide cylinder 204 can slide on the outer surface of the upright 203. The slide cylinder 204 is connected to the sleeve 202 via the connecting plate 205. Thus, when the threaded rod 201 rotates in different directions, the sleeve 202 moves up and down on the outer surface of the threaded rod 201. Turning on the external power switch of the bidirectional motor 207 causes the output shaft of the bidirectional motor 207 to drive the threaded rod 201 to rotate. The L-shaped rod 206 provides support for the bidirectional motor 207. The bidirectional motor 207 is mounted on the upper side of the support box 1, and the output shaft of the bidirectional motor 207 can rotate in both directions. By controlling the direction of rotation of the output shaft of the bidirectional motor 207, the threaded rod 201 rotates in different directions. When the threaded rod 201 rotates counterclockwise, the sleeve 202 drives the bottom rod 208 to move upward on the outer surface of the threaded rod 201, further placing the detector body 312 at a high point. When the threaded rod 201 rotates clockwise, the sleeve 202 drives the bottom rod 208 to move downward on the outer surface of the threaded rod 201, further placing the detector body 312 at a low point. Thus, when detecting the temperature inside the batching silo, different high and low points can be detected. The detector is positioned at a specific location to facilitate temperature measurement at different material layer depths, improving its practicality. During temperature detection, the two clamping plates 308 can slide on one side of the inner wall of the bracket 302, and the first telescopic plate 309 can slide on the inner wall of the second telescopic plate 310. The detector body 312 is placed on top of the second telescopic plate 310 and the first telescopic plate 309. Rotating the two rotating plates 307 causes the two fixed rods 306 to rotate inside the two threaded sleeves 305. The two fixed rods 306 can rotate on one side of the two clamping plates 308, allowing the two clamping plates 308 to move relative to each other. When the two rotating plates 307 are difficult to rotate, further... The detector body 312 is fixed in the middle of the two clamping plates 308, completing the installation of the detector body 312. The connecting shaft 301 can rotate through the bearing, which further allows the detector body 312 mounted on the bracket 302 to rotate. By controlling the output end of the hydraulic rod 304 to move to different positions, the rack 311 is further moved, which in turn causes the gear 303 to drive the connecting shaft 301 to rotate to different positions. This allows the bracket 302 to move the probe on the detector body 312 to different angle positions, so that when measuring temperature, measurements can be taken at different angle positions, and temperature changes in different directions can be detected more accurately.

[0034] The above are merely preferred embodiments and are not intended to limit the present invention in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of the present invention without departing from the scope of the present invention shall still fall within the protection scope of the present invention.

Claims

1. A temperature detector for use in a batching silo, characterized in that, The detector includes: Support box (1); The threaded rod (201) is mounted on the inner walls of both sides of the support box (1) via bearings, and a sleeve (202) is threaded onto the outer surface of the threaded rod (201). The upright (203) is fixedly installed on the inner wall of the support box (1), and a sliding cylinder (204) is movably sleeved on the outer surface of the upright (203). A connecting plate (205) is fixedly disposed on the outer surface of the sleeve (202) and the slide (204), and a bottom rod (208) is fixedly disposed at the center of one side of the connecting plate (205). An L-shaped rod (206) is fixedly disposed on one side of the support box (1). A bidirectional motor (207) is installed at one end of the L-shaped rod (206). The output shaft of the bidirectional motor (207) is fixedly disposed on one side of the threaded rod (201). The bottom rod (208) is slidably disposed on the inner wall of the support box (1). Mounting plates (2) are fixedly disposed on both sides of the support box (1). A protruding plate (3) is fixedly disposed on one side of the bottom rod (208). A connecting shaft (301) is provided on the inner wall of the convex plate (3) via a bearing. A bracket (302) is fixedly sleeved on the outer surface of the connecting shaft (301). Threaded sleeves (305) are fixedly embedded on both sides of the bracket (302). Fixed rods (306) are threadedly embedded on the inner walls of the two threaded sleeves (305). A rotating plate (307) is fixedly provided on the opposite side of the two fixed rods (306). A clamping plate (308) is movably provided on the opposite side of the two rotating plates (307). One side of the two clamping plates (308) is slidably provided on one side of the inner wall of the convex plate (3). A detector body (312) is installed on the opposite side of the two clamping plates (308).

2. A temperature detector for use in a batching silo according to claim 1, characterized in that: A gear (303) is fixedly sleeved on the outer surface of the connecting shaft (301).

3. A temperature detector for use in a batching silo according to claim 2, characterized in that: A hydraulic rod (304) is installed on one side of the convex plate (3), and a rack (311) is fixedly provided at the output end of the hydraulic rod (304). The outer surface of the connecting shaft (301) is engaged with one side of the rack (311).

4. A temperature detector for use in a batching silo according to claim 3, characterized in that: A second telescopic plate (310) is fixedly provided on one side of one of the clamps (308), and a first telescopic plate (309) is slidably provided on the inner wall of the second telescopic plate (310).

5. A temperature detector for use in a batching silo according to claim 4, characterized in that: The first telescopic plate (309) is fixedly mounted on one side of another clamping plate (308).