A quick debugging device for mine temperature sensor
By designing a rapid debugging device for mine temperature sensors, and utilizing the cooperation of support and sliding components, the automated movement and testing of mine temperature sensors are realized, solving the problems of high cost and low efficiency of manual operation in existing technologies, and improving debugging efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUIZHOU ANTUO TECHNOLOGY CO LTD
- Filing Date
- 2025-10-20
- Publication Date
- 2026-08-04
AI Technical Summary
The commissioning process of existing mine temperature sensors requires a large number of workers, which increases labor costs and reduces efficiency.
A rapid debugging device for mine temperature sensors was designed, including a support component, a sliding component, and a debugging component. Through the cooperation of the sliding unit and the suspension unit, the automated movement and testing of the mine temperature sensor can be realized.
It improves the debugging efficiency of mine temperature sensors, reduces labor costs, and realizes automated operation.
Smart Images

Figure CN224594091U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of mine temperature sensor debugging, specifically, it relates to a rapid debugging device for mine temperature sensors. Background Technology
[0002] A mining temperature sensor is a device specifically designed for use in mining industrial environments such as coal mines and metal mines. It is used to monitor and measure the temperature of air, liquids (such as circulating water), equipment surfaces (such as motors and bearings), or specific areas in real time. Its core function is to convert physical temperature values into standard electrical or digital signals and transmit them to the mine safety monitoring system or automated control system. Once the monitored temperature exceeds a preset safety threshold, it will immediately issue an alarm and may even trigger protective measures such as power outages, making it one of the key pieces of equipment for ensuring safe production in mines. Due to the high humidity, corrosive gases, dust, and pollution in the underground environment, the sensitive elements and circuits inside the mining temperature sensor may experience slow changes, probe lag, or distortion, thus affecting its stability and accuracy. Therefore, to ensure the normal operation of the mining temperature sensor, it is necessary to perform regular calibration to promptly identify and correct measurement errors caused by these environmental factors, ensuring consistently accurate readings.
[0003] The current debugging process for mining temperature sensors typically involves testing each sensor probe with debugging equipment, comparing the temperature detected by the sensor with the actual temperature generated by the equipment, and then correcting the sensor's readings based on the actual temperature. This process aims to achieve a mining temperature sensor with higher monitoring accuracy. However, the debugging process often requires manual handling of the sensor and testing of the probe using different temperature chambers. This is inconvenient for manual debugging, often requiring a large number of workers, increasing labor costs, and resulting in low efficiency. Utility Model Content
[0004] To address the issues of high labor costs and low efficiency associated with the commissioning of existing mine temperature sensors, which often require numerous operators, this invention provides a rapid commissioning device for mine temperature sensors, comprising: Support components; A sliding assembly; the sliding assembly includes a sliding unit, a positioning unit, and a suspension unit; the positioning unit is connected to the sliding unit; the suspension unit is connected to the sliding unit; the positioning unit and the suspension unit are spaced apart; the sliding unit is slidably connected to the support assembly; the positioning unit and the suspension unit are respectively spaced apart from the support assembly; The debugging component includes a support component and a sliding component that are vertically spaced apart from the debugging component; the sliding component is located above the debugging component.
[0005] In some embodiments, the support assembly includes a support frame and a first slide rod; both ends of the first slide rod along the axial direction are fixedly connected to the support frame; the axis of the first slide rod is aligned with the height line of the support frame; the sliding unit includes a first baffle, a second baffle, and a first roller; the first baffle includes a first plate body and at least two limiting shafts; the second baffle includes a second plate body and a limiting hole; one end face of the limiting shaft along the axial direction is fixedly connected to the same end face of the first baffle; adjacent limiting shafts are spaced apart; the limiting hole extends from one end face of the second plate body along a straight direction through the other end. The first roller is slidably connected to the first plate portion and the second plate portion by bolts; the first roller is located between the first plate portion and the second plate portion; the positioning unit is connected to the limiting shaft; the limiting shaft is connected to the limiting hole; the positioning unit is located between the first plate portion and the second plate portion; the limiting shaft is located between the first roller and the positioning unit; the first roller is slidably connected to the first slide rod; the first slide rod is located between the first roller and the limiting shaft; the suspension unit is connected to the end face of the first plate portion away from the first roller.
[0006] In some embodiments, the support assembly further includes a second slide rod; the sliding unit further includes a second roller; the second roller is movably connected to the first plate portion and the second plate portion by bolts; both ends of the second slide rod are respectively fixedly connected to the support frame; the central axis of the first slide rod is parallel to the central axis of the second slide rod in the vertical direction; the central axis of the first slide rod and the central axis of the second slide rod are located in the same plane; the second roller is slidably connected to the second slide rod; the second slide rod is located between the second roller and the positioning unit.
[0007] In some embodiments, the positioning unit includes a connecting block, a connecting rod, a positioning plate, and a plurality of insertion holes; one end of the connecting rod is fixedly connected to the connecting block, and the other end is fixedly connected to one end face of the positioning plate; the insertion holes extend vertically from one end of the positioning plate through the other end face of the positioning plate; the insertion holes are spaced apart from the connecting rod; and adjacent insertion holes are spaced apart.
[0008] In some embodiments, the suspension unit includes a hanging plate and a plurality of hooks; one end face of the hanging plate is fixedly connected to the first plate body, and the other end face is fixedly connected to the hooks; adjacent hooks are spaced apart.
[0009] In some embodiments, the debugging assembly includes a first constant temperature oil bath machine, a second constant temperature oil bath machine, and a third constant temperature oil bath machine; the first constant temperature oil bath machine, the second constant temperature oil bath machine, and the third constant temperature oil bath machine are spaced apart along the axial direction of the first slide bar.
[0010] To address the issues of existing mine temperature sensors requiring numerous workers for commissioning, leading to increased labor costs and low efficiency, this invention offers the following advantages: By adding a sliding unit, a positioning unit, and a suspension unit; connecting the positioning unit to the sliding unit; connecting the suspension unit to the sliding unit; setting the positioning unit and the suspension unit at intervals; sliding the sliding unit to the support assembly; and setting the positioning unit and the suspension unit at intervals with the support assembly respectively; and by suspending multiple mining temperature sensors on the suspension unit, when debugging the mining temperature sensors, the movement of the sliding unit can move the mining temperature sensors above the corresponding constant temperature bath to test the probes of the mining temperature sensors, which greatly improves the debugging efficiency. This solves the problem that existing mining temperature sensors may require a large number of workers to operate during the debugging process, resulting in increased labor costs and low efficiency. Attached Figure Description
[0011] Figure 1 A schematic diagram of a planar structure for a rapid debugging device for a temperature sensor used in mining; Figure 2 This is a perspective view of a rapid debugging device for a mining temperature sensor in some embodiments; Figure 3 This is a perspective view of a rapid debugging device for a mining temperature sensor in some embodiments; Figure 4 This is a schematic diagram of the planar structure of the sliding component; Figure 5 for Figure 4 Partial diagram of the explosion; Figure 6 This is a 3D view of the sliding component.
[0012] In the diagram: 100-Support assembly; 110-Support frame; 120-First slide rod; 130-Second slide rod; 200-Sliding assembly; 210-Sliding unit; 211-First baffle; 2111-First plate body; 2112-Limiting shaft; 212-Second baffle; 2121-Second plate body; 2122-Limiting hole; 213-First roller; 214-Second roller; 220-Positioning unit; 221-Connecting block; 222-Connecting rod; 223-Positioning plate; 224-Insertion hole; 230-Suspension unit; 231-Hanging plate; 232-Hook; 300-Debugging assembly; 310-First constant temperature oil bath machine; 320-Second constant temperature oil bath machine; 330-Third constant temperature oil bath machine; 340-Mining temperature sensor; 341-Temperature sensor body; 342-Probe. Detailed Implementation
[0013] The present disclosure will now be discussed with reference to several exemplary embodiments. It should be understood that these embodiments are discussed only to enable those skilled in the art to better understand and thus implement the present disclosure, and are not intended to imply any limitation on the scope of the disclosure.
[0014] As used herein, the term "comprising" and its variations are to be interpreted as open-ended terms meaning "including but not limited to". The term "based on" is to be interpreted as "at least partially based on". The terms "one embodiment" and "an embodiment" are to be interpreted as "at least one embodiment". The term "another embodiment" is to be interpreted as "at least one other embodiment". The terms "upper", "lower", "left", "right", "front", "rear", "top", "bottom", "inner", "outer", "vertical", "horizontal", "lateral", "longitudinal", etc., indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments and are not intended to limit the indicated devices, elements, or components to having a specific orientation or being constructed and operated in a specific orientation. Furthermore, some of the above terms may be used to indicate other meanings besides orientations or positional relationships; for example, the term "upper" may in some cases indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application according to the specific circumstances. In addition, the terms "installed", "set up", "equipped with", "connected", and "linked" should be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, elements, or components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances. Furthermore, the terms "first," "second," etc., are mainly used to distinguish different devices, elements, or components (the specific types and structures may be the same or different), and are not used to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.
[0015] This embodiment discloses a rapid debugging device for a mine temperature sensor 340, such as... Figure 1 , Figure 2 , Figure 3 As shown, it may include: Support component 100; A sliding component 200 includes a sliding unit 210, a positioning unit 220, and a suspension unit 230. The positioning unit 220 is connected to the sliding unit 210. The suspension unit 230 is connected to the sliding unit 210. The positioning unit 220 and the suspension unit 230 are spaced apart. The sliding unit 210 is slidably connected to the support component 100. The positioning unit 220 and the suspension unit 230 are respectively spaced apart from the support component 100. The debugging component 300 includes the support component 100 and the sliding component 200, which are vertically spaced apart from the debugging component 300; the sliding component 200 is located above the debugging component 300.
[0016] In this embodiment, by adding a sliding unit 210, a positioning unit 220, and a suspension unit 230; the positioning unit 220 is connected to the sliding unit 210; the suspension unit 230 is connected to the sliding unit 210; the positioning unit 220 and the suspension unit 230 are spaced apart; the sliding unit 210 is slidably connected to the support assembly 100; the positioning unit 220 and the suspension unit 230 are spaced apart from the support assembly 100 respectively; by suspending multiple mine temperature sensors 340 on the suspension unit 230, when debugging the mine temperature sensors 340, the movement of the sliding unit 210 can move the mine temperature sensors 340 above the corresponding constant temperature bath to test the probes of the mine temperature sensors 340, thus greatly improving the debugging efficiency. This solves the problem that existing mine temperature sensors 340 may require many workers to operate during debugging, resulting in increased labor costs and low efficiency; in this embodiment, as Figure 1 , Figure 2 As shown, the mining temperature sensor 340 includes a temperature sensor body 341 and a probe 342 (temperature sensor probe); the temperature sensor body 341 and the probe are connected by a wire. This mining temperature sensor 340 is a known type of mining temperature sensor 340. In some cases, the probe 342 is housed inside the temperature sensor body 341. When it is necessary to adjust the mining temperature sensor 340, the probe 342 can be pulled out.
[0017] In some embodiments of this utility model, such as Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6As shown, the support assembly 100 includes a support frame 110 and a first slide rod 120; both ends of the first slide rod 120 along the axial direction are fixedly connected to the support frame 110; the axis of the first slide rod 120 is aligned with the height line of the support frame 110; the sliding unit 210 includes a first baffle 211, a second baffle 212, and a first roller 213; the first baffle 211 includes a first plate body 2111 and at least two limiting shafts 2112; the second baffle 212 includes a second plate body 2121 and a limiting hole 2122; one end face of the limiting shaft 2112 along the axial direction is fixedly connected to the same end face of the first baffle 211; adjacent limiting shafts 2112 are spaced apart; the limiting hole 2122 passes through the other end face of the second plate body 2121 along a straight line; the first roller 213... The first roller 213 is slidably connected to the first plate portion 2111 and the second plate portion 2121 by bolts; the first roller 213 is located between the first plate portion 2111 and the second plate portion 2121; the positioning unit 220 is connected to the limiting shaft 2112; the limiting shaft 2112 is connected to the limiting hole 2122; the positioning unit 220 is located between the first plate portion 2111 and the second plate portion 2121; the limiting shaft 2112 is located between the first roller 213 and the positioning unit 220; the first roller 213 is slidably connected to the first slide rod 120; the first slide rod 120 is located between the first roller 213 and the limiting shaft 2112; the suspension unit 230 is connected to the end face of the first plate portion 2111 away from the first roller 213.
[0018] In this embodiment, the mine temperature sensor 340 can be moved to a predetermined position by sliding the first roller 213, thereby making it easier to debug the mine temperature sensor 340.
[0019] In some embodiments of this utility model, such as Figure 3 , Figure 4 , Figure 5 , Figure 6 As shown, the support assembly 100 further includes a second slide rod 130; the sliding unit 210 further includes a second roller 214; the second roller 214 is movably connected to the first plate portion 2111 and the second plate portion 2121 by bolts; both ends of the second slide rod 130 are fixedly connected to the support frame 110 respectively; the central axis of the first slide rod 120 is parallel to the central axis of the second slide rod 130 in the vertical direction; the central axis of the first slide rod 120 and the central axis of the second slide rod 130 are located in the same plane; the second roller 214 is slidably connected to the second slide rod 130; the second slide rod 130 is located between the second roller 214 and the positioning unit 220.
[0020] In this embodiment, by setting the second slide bar 130 and the second roller 214, the mine temperature sensors 340 can be moved relatively smoothly when a large number of mine temperature sensors 340 are suspended on the suspension unit 230. It can be imagined that, since the positions of the first roller 213 and the second roller 214 are set as described above, the first roller 213 can slide on the first slide bar 120 and the second roller 214 can slide on the second slide bar 130. When the position of the mine temperature sensors 340 suspended on the suspension unit 230 is asymmetrical with respect to the center line of gravity of the sliding component 200, the first roller 213 and the second roller 214 can achieve a relatively regular suspension of the mine temperature sensors 340 while maintaining good contact with the first slide bar 120 and the second slide bar 130 respectively, thereby facilitating the picking and putting away of the mine temperature sensors 340.
[0021] In some embodiments of this utility model, such as Figure 4 , Figure 5 , Figure 6 As shown, the positioning unit 220 includes a connecting block 221, a connecting rod 222, a positioning plate 223, and a plurality of insertion holes 224; one end of the connecting rod 222 is fixedly connected to the connecting block 221, and the other end is fixedly connected to one end face of the positioning plate 223; the insertion hole 224 extends vertically through one end of the positioning plate 223 and passes through the other end face of the positioning plate 223; the insertion holes 224 and the connecting rod 222 are spaced apart; adjacent insertion holes 224 are spaced apart.
[0022] In this embodiment, the mine temperature sensor 340 is an existing mine temperature sensor 340. Its probe 342 can be pulled out from the temperature sensor body 341 and inserted into the socket 224. In this embodiment, the probe 342 is usually provided with a baffle to prevent the probe 342 from falling completely into the debugging component 300. In this embodiment, the baffle of the probe 342 can abut against the positioning plate 223 to temporarily position the probe 342. It is conceivable that when the probe 342 needs to be tested, the probe 342 can be removed from the positioning plate 223. In this embodiment, the size and number of sockets 224 can be set according to actual needs so as to accommodate probes 342 of different models of mine temperature sensors 340.
[0023] In some embodiments of this utility model, such as Figure 1 , Figure 2 , Figure 6 As shown, the suspension unit 230 includes a hanging plate 231 and a plurality of hooks 232; one end face of the hanging plate 231 is fixedly connected to the first plate body 2111, and the other end face is fixedly connected to the hooks 232; adjacent hooks 232 are spaced apart.
[0024] In this embodiment, the number of hooks 232 can be set according to actual needs.
[0025] In some embodiments of this utility model, such as Figure 1 , Figure 2 , Figure 3 As shown, the debugging component 300 includes a first constant temperature oil bath machine 310, a second constant temperature oil bath machine 320, and a third constant temperature oil bath machine 330; the first constant temperature oil bath machine 310, the second constant temperature oil bath machine 320, and the first constant temperature oil bath machine 310 are spaced apart along the axial direction of the first slide bar 120.
[0026] In this embodiment, the first constant temperature oil bath machine 310, the second constant temperature oil bath machine 320, and the third constant temperature oil bath machine 330 are all existing conventional equipment applications. While the names of the first constant temperature oil bath machine 310, the second constant temperature oil bath machine 320, and the third constant temperature oil bath machine 330 may differ from existing equipment, their functions are identical. Given that using a constant temperature oil bath machine to debug the mining temperature sensor 340 is a relatively conventional technique; for example, in some cases, the third constant temperature oil bath machine 330 can generate a temperature as low as -30℃ for the probe 342 to detect; the second constant temperature oil bath machine 320 can generate a temperature of 0℃... A temperature of 95°C is used for the detection of probe 342; the first constant temperature oil tank machine 310 can generate a maximum temperature of 300°C for the detection of probe 342. The mining temperature sensor 340 detects different temperature values through probe 342 and compares them with the actual temperature values generated by the first constant temperature oil tank machine 310, the second constant temperature oil tank machine 320, and the third constant temperature oil tank machine 330, so that the mining temperature sensor 340 can be further debugged. Therefore, in this embodiment, the details of how the first constant temperature oil tank machine 310, the second constant temperature oil tank machine 320, and the third constant temperature oil tank machine 330 debug the mining temperature sensor 340 will not be described in detail.
[0027] The working principle of this utility model is as follows: When debugging the mine temperature sensor 340, the temperature sensor body 341 is suspended on the hook 232 and the probe 342 is confined in the socket 224. By pushing the sliding component 200, the mine temperature sensor 340 can be moved above the corresponding constant temperature oil tank machine. Then, the probe 342 is removed and inserted into the corresponding constant temperature oil tank machine for temperature detection, and the mine temperature sensor 340 is further debugged.
[0028] Those skilled in the art will understand that the above embodiments are specific examples of implementing this disclosure, and in practical applications, various changes can be made in form and detail without departing from the spirit and scope of this disclosure.
Claims
1. A rapid debugging device for a mining temperature sensor, characterized in that, include: Support components; Sliding component; The sliding assembly includes a sliding unit, a positioning unit, and a suspension unit; The positioning unit is connected to the sliding unit; the suspension unit is connected to the sliding unit; the positioning unit and the suspension unit are spaced apart; the sliding unit is slidably connected to the support component; the positioning unit and the suspension unit are respectively spaced apart from the support component; The debugging component includes a support component and a sliding component that are vertically spaced apart from the debugging component; the sliding component is located above the debugging component.
2. The rapid commissioning device for mine temperature sensors of claim 1, wherein, The support assembly includes a support frame and a first slide rod; both ends of the first slide rod along the axial direction are fixedly connected to the support frame; the axis of the first slide rod is aligned with the height line of the support frame; the sliding unit includes a first baffle, a second baffle, and a first roller; the first baffle includes a first plate body and at least two limiting shafts; the second baffle includes a second plate body and a limiting hole; one end face of the limiting shaft along the axial direction is fixedly connected to the same end face of the first baffle; adjacent limiting shafts are spaced apart; the limiting hole extends from one end face of the second plate body along a straight direction through the other end face; the... The first roller is slidably connected to the first plate portion and the second plate portion by bolts; the first roller is located between the first plate portion and the second plate portion; the positioning unit is connected to the limiting shaft; the limiting shaft is connected to the limiting hole; the positioning unit is located between the first plate portion and the second plate portion; the limiting shaft is located between the first roller and the positioning unit; the first roller is slidably connected to the first slide rod; the first slide rod is located between the first roller and the limiting shaft; the suspension unit is connected to the end face of the first plate portion away from the first roller.
3. The rapid commissioning device for mine temperature sensors of claim 2, wherein, The support assembly further includes a second slide rod; the sliding unit further includes a second roller; the second roller is movably connected to the first plate portion and the second plate portion by bolts; both ends of the second slide rod are respectively fixedly connected to the support frame; the central axis of the first slide rod is parallel to the central axis of the second slide rod in the vertical direction; the central axis of the first slide rod and the central axis of the second slide rod are located in the same plane; the second roller is slidably connected to the second slide rod; the second slide rod is located between the second roller and the positioning unit.
4. The rapid commissioning device for mine temperature sensors of claim 3, wherein, The positioning unit includes a connecting block, a connecting rod, a positioning plate, and multiple insertion holes; one end of the connecting rod is fixedly connected to the connecting block, and the other end is fixedly connected to one end face of the positioning plate; the insertion holes extend vertically from one end of the positioning plate through the other end face of the positioning plate. The insertion holes are spaced apart from the connecting rods; adjacent insertion holes are spaced apart.
5. The rapid commissioning device for mine temperature sensors of claim 4, wherein, The suspension unit includes a hanging plate and multiple hooks; one end of the hanging plate is fixedly connected to the first plate body, and the other end is fixedly connected to the hooks; adjacent hooks are spaced apart.
6. The rapid commissioning device for mine temperature sensors of claim 5, wherein, The debugging components include a first constant temperature oil bath machine, a second constant temperature oil bath machine, and a third constant temperature oil bath machine; the first constant temperature oil bath machine, the second constant temperature oil bath machine, and the third constant temperature oil bath machine are spaced apart along the axial direction of the first slide bar.