Infrared thermal imager mounting rack
By combining X, Y, and Z axis adjustment components and locking components, the problem of inconvenient adjustment of the detection position and angle of infrared thermal imagers is solved, realizing flexible detection and high-precision imaging, which is suitable for applications with limited space.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YOFC ADVANCED SEMICONDUCTOR (WUHAN) CO LTD
- Filing Date
- 2025-10-16
- Publication Date
- 2026-07-21
Smart Images

Figure CN224535240U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of infrared detection equipment technology, and in particular to an infrared thermal imager mounting bracket. Background Technology
[0002] An infrared thermal imager is a temperature detection device based on infrared detection technology. Its principle is to receive the infrared energy radiated from the target surface through an optical imaging lens and project it onto the detector, thereby generating a thermal image corresponding to the temperature field of the target surface. Different temperature areas are displayed in different colors or grayscale, making it easy to intuitively identify temperature anomalies.
[0003] Most existing thermal imagers are fixedly installed, meaning they can only detect surfaces in a fixed direction and cannot adjust the detection position or angle. Adjusting the detection position and angle often requires disassembly and reinstallation, which is cumbersome and inefficient. Some manufacturers achieve three-dimensional adjustment by using lead screw and nut assemblies in the X, Y, and Z axes, but these are bulky, costly, and unsuitable for applications with limited space.
[0004] Therefore, there is an urgent need for an infrared thermal imager mounting bracket to solve the above problems. Utility Model Content
[0005] The purpose of this invention is to provide an infrared thermal imager mounting bracket that is compact, low in cost, and improves the flexibility and accuracy of detection.
[0006] To achieve this objective, the present invention adopts the following technical solution:
[0007] Infrared thermal imager mounting bracket, including:
[0008] The substrate is placed on the machine base;
[0009] The X-axis adjustment assembly includes a first base and a first fastener. The first base is slidably disposed on the substrate along the X-axis direction. The first fastener passes through the first base and is threadedly connected to the substrate to lock or unlock the first base.
[0010] The Y-axis adjustment assembly includes a second seat and a second fastener. The second seat is slidably disposed on the first seat along the Y-axis direction. The second fastener passes through the second seat and is threadedly connected to the first seat to lock or unlock the second seat. The second seat is provided with an assembly groove.
[0011] The Z-axis adjustment assembly includes a third seat and a third fastener. At least a portion of the third seat is slidably disposed in the assembly groove along the Z-axis direction. The third fastener passes through the third seat and is threadedly connected to the second seat to lock or unlock the third seat.
[0012] The locking assembly includes a locking seat and a fourth fastener. The locking seat is rotatably connected to the third seat body via the fourth fastener. The fourth fastener is used to adjust the angle of the locking seat relative to the third seat body. The locking seat is provided with a limiting space, and at least part of the infrared thermal imager is limited within the limiting space.
[0013] Optionally, the first base body is provided with two first waist-shaped holes, the two first waist-shaped holes are parallel to each other and both extend along the X-axis direction, the second base body is located between the two first waist-shaped holes, the substrate is provided with a first threaded hole corresponding to the first waist-shaped hole, and the first fastener passes through the first waist-shaped hole and is threadedly engaged with the corresponding first threaded hole.
[0014] Optionally, the first fastener is a first screw, and the sidewall of the first waist-shaped hole is provided with a countersunk, which can abut against the head of the first screw.
[0015] Optionally, one of the substrate and the first base is provided with a first slide rail extending along the X-axis direction, and the other of the substrate and the first base is provided with a first slide groove, wherein the first slide rail and the first slide groove are slidably engaged.
[0016] Optionally, the second base body is provided with a protrusion and two second waist-shaped holes extending along the Y-axis direction. The protrusion is located between the two second waist-shaped holes and is provided with the mounting groove. The first base body is provided with a second threaded hole corresponding to the second waist-shaped hole. The second fastener passes through the second waist-shaped hole and is threadedly engaged with the corresponding second threaded hole.
[0017] Optionally, one of the first seat and the second seat is provided with a second slide rail extending along the Y-axis direction, and the other of the first seat and the second seat is provided with a second slide groove, wherein the second slide rail and the second slide groove are slidably engaged.
[0018] Optionally, the assembly groove includes a left side wall and a right side wall opposite to each other along the X-axis, and a front side wall connecting the left side wall and the right side wall. The two sides of the third seat are respectively attached to the left side wall and the right side wall, and the front end face of the third seat is attached to the front side wall. The front side wall is provided with a third threaded hole, and the third seat is provided with a third waist-shaped hole extending along the Z-axis. The third fastener passes through the third waist-shaped hole and is threadedly engaged with the corresponding third threaded hole.
[0019] Optionally, the third seat is provided with a rotating connection part, the rotating connection part is provided with a through hole, the locking seat is provided with a first protrusion and a second protrusion, the first protrusion is provided with a first through hole, the second protrusion is provided with a fourth threaded hole, the rotating connection part is sandwiched between the first protrusion and the second protrusion, and the fourth fastener passes through the first through hole, the through hole and the fourth threaded hole in sequence for threaded engagement.
[0020] Optionally, the locking assembly further includes a limiting post, which is height-adjustably disposed on the second seat along the Z-axis direction, and the locking seat can abut against the limiting post.
[0021] Optionally, the locking assembly further includes a fifth fastener, and the locking seat is also provided with a first clamping arm and a second clamping arm. The first clamping arm and the second clamping arm surround the limiting space, and at least part of the infrared thermal imager is inserted in the limiting space. The fifth fastener is used to clamp the infrared thermal imager with the first clamping arm and the second clamping arm.
[0022] Beneficial effects:
[0023] The infrared thermal imager mounting bracket provided by this utility model, by setting up X-axis adjustment components, Y-axis adjustment components, Z-axis adjustment components, and locking components, allows for independent adjustment of the position of the infrared thermal imager in the X-axis, Y-axis, and Z-axis directions, as well as adjustment of the detection angle, simply by tightening or loosening the corresponding fasteners. This simplifies operation, improves detection flexibility, and ensures detection accuracy and imaging precision. The second base has an assembly groove, and the third base slides along the Z-axis into the assembly groove, improving the stability of the third base and making the overall structure compact, thus increasing space utilization and allowing the infrared thermal imager to be placed in confined spaces. The modular design of this infrared thermal imager mounting bracket facilitates assembly and maintenance, effectively reducing manufacturing costs. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the infrared thermal imager mounting bracket provided in a specific embodiment of the present invention from a first-view perspective.
[0025] Figure 2 This is an exploded view of the infrared thermal imager mounting bracket provided in a specific embodiment of this utility model from a first-view perspective;
[0026] Figure 3 This is a schematic diagram of the infrared thermal imager mounting bracket provided in a specific embodiment of the present invention from a second perspective.
[0027] Figure 4 This is a schematic diagram of the infrared thermal imager mounting bracket provided in a specific embodiment of the present invention from a third-person perspective.
[0028] In the picture:
[0029] 100, substrate; 110, first threaded hole; 120, first slide rail;
[0030] 200. X-axis adjustment assembly; 210. First base; 211. First oblong hole; 2111. Countersunk platform; 212. First slide groove; 213. Second threaded hole; 214. Second slide rail;
[0031] 300, Y-axis adjustment assembly; 310, second seat; 311, protrusion; 3111, assembly groove; 3112, third threaded hole; 3113, limiting threaded hole; 312, second oblong hole; 313, second slide groove;
[0032] 400. Z-axis adjustment assembly; 410. Third seat; 411. Rotating connection; 4111. Through hole; 412. Third oblong hole;
[0033] 500, Locking assembly; 501, Limiting space; 510, Locking seat; 511, First protrusion; 5111, First through hole; 512, Second protrusion; 5121, Fourth threaded hole; 520, Fourth fastener; 530, Limiting post; 531, Fourth oblong hole; 540, First retaining arm; 541, First locking part; 550, Second retaining arm; 551, Second locking part. Detailed Implementation
[0034] The present invention will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, the accompanying drawings show only the parts relevant to the present invention, not the entire structure.
[0035] In the description of this utility model, unless otherwise explicitly specified and limited, the terms "connected," "linked," and "fixed" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0036] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0037] In the description of this embodiment, the terms "upper," "lower," "left," and "right," etc., refer to the orientation or positional relationship shown in the accompanying drawings. They are used only for ease of description and simplification of operation, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first" and "second" are only used for distinction in description and have no special meaning.
[0038] This embodiment provides an infrared thermal imager mounting bracket, such as... Figures 1-4 As shown, the infrared thermal imager mounting bracket includes a base plate 100, an X-axis adjustment assembly 200, a Y-axis adjustment assembly 300, a Z-axis adjustment assembly 400, and a locking assembly 500. The base plate 100 is mounted on the machine tool. The X-axis adjustment assembly 200 includes a first seat 210 and a first fastener. The first seat 210 is slidably mounted on the base plate 100 along the X-axis direction. The first fastener passes through the first seat 210 and is threadedly connected to the base plate 100 to lock or unlock the first seat 210. The Y-axis adjustment assembly 300 includes a second seat 310 and a second fastener. The second seat 310 is slidably mounted on the first seat 210 along the Y-axis direction. The second fastener passes through the second seat 310 and is threadedly connected to the first seat 210 to lock or unlock the second seat 310. The device is provided with an assembly groove 3111; the Z-axis adjustment assembly 400 includes a third seat 410 and a third fastener, at least a portion of the third seat 410 is slidably disposed in the assembly groove 3111 along the Z-axis direction, and the third fastener passes through the third seat 410 and is threadedly connected to the second seat 310 to lock or unlock the third seat 410; the locking assembly 500 includes a locking seat 510 and a fourth fastener 520, the locking seat 510 is rotatably connected to the third seat 410 through the fourth fastener 520, the fourth fastener 520 is used to adjust the angle of the locking seat 510 relative to the third seat 410, the locking seat 510 is provided with a limiting space 501, at least a portion of the infrared thermal imager is limited within the limiting space 501, thereby ensuring the stability of the infrared thermal imager and ensuring that the infrared thermal imager is aligned with the detection target.
[0039] This infrared thermal imager mounting bracket, equipped with an X-axis adjustment component 200, a Y-axis adjustment component 300, a Z-axis adjustment component 400, and a locking component 500, allows for independent adjustment of the infrared thermal imager's position in the X, Y, and Z axes, as well as its detection angle, simply by tightening or loosening the corresponding fasteners. This simplifies operation, improves detection flexibility, and ensures detection accuracy and imaging precision. The second base 310 is equipped with an assembly slot 3111, and the third base 410 slides along the Z-axis within the assembly slot 3111, enhancing the stability of the third base 410 and resulting in a compact overall structure that improves space utilization, allowing the infrared thermal imager to be placed in confined spaces. The modular design of this infrared thermal imager mounting bracket facilitates assembly and maintenance, effectively reducing manufacturing costs.
[0040] For example, the specific structures of the X-axis adjustment component 200, the Y-axis adjustment component 300 and the Z-axis adjustment component 400 are described with the left-right direction of the substrate 100 as the X-axis direction, the front-back direction of the substrate 100 as the Y-axis direction and the up-down direction of the substrate 100 as the Z-axis direction.
[0041] Optionally, such as Figure 2 As shown, the first seat 210 has two first oblong holes 211, which are parallel to each other and both extend along the X-axis. The second seat 310 is located between the two first oblong holes 211. The substrate 100 has a first threaded hole 110 corresponding to the first oblong holes 211. The first fastener passes through the first oblong hole 211 and is threaded into the corresponding first threaded hole 110. The first oblong hole 211 provides adjustment space along the X-axis, allowing the second seat 310 to slide smoothly along the X-axis, thereby facilitating the adjustment of the infrared thermal imager's position in the X-axis direction. Furthermore, the threaded engagement between the first fastener and the first threaded hole 110 enables quick locking and unlocking, making operation simple.
[0042] Optionally, the first fastener is a first screw, and the side wall of the first waist-shaped hole 211 is provided with a countersunk 2111. The countersunk 2111 can abut against the head of the first screw, which can prevent the head of the first screw from interfering with the second seat 310, ensuring that the second seat 310 will not be obstructed when moving along the Y-axis, improving the smoothness of adjustment, and further making the overall structure more compact and improving space utilization.
[0043] Optionally, such as Figure 2 and Figure 3As shown, one of the substrate 100 and the first seat 210 is provided with a first slide rail 120 along the X-axis direction, and the other of the substrate 100 and the first seat 210 is provided with a first slide groove 212. The first slide rail 120 and the first slide groove 212 are slidably engaged, providing a clear guide path for the movement of the first seat 210 in the X-axis direction, ensuring the accuracy of the movement direction of the first seat 210, and reducing the frictional resistance during the sliding process of the first seat 210, making the movement of the first seat 210 more stable and smooth.
[0044] Optionally, the second seat 310 is provided with a protrusion 311 and two second oblong holes 312 extending along the Y-axis. The protrusion 311 is located between the two second oblong holes 312 and is provided with a mounting groove 3111. The first seat 210 is provided with a second threaded hole 213 corresponding to the second oblong holes 312. The second fastener passes through the second oblong holes 312 and is threadedly engaged with the corresponding second threaded hole 213. By providing the second oblong holes 312 extending along the Y-axis, the second seat 310 can be provided with adjustment space along the Y-axis, allowing the second seat 310 to slide smoothly on the first seat 210. Locking or unlocking can be completed by tightening or loosening the second fastener, thereby realizing flexible adjustment of the infrared thermal imager in the Y-axis direction. At the same time, the mounting groove 3111 on the protrusion 311 facilitates the sliding installation of the third seat 410 along the Z-axis, making the overall structure compact, improving space utilization, and ensuring the stability and accuracy of adjustment in each axis.
[0045] Optionally, the protrusion 311 is provided with a relief slope, which is used to avoid the locking seat 510, so as to avoid interference between the locking seat 510 and the protrusion 311, and improve the flexibility of the rotation of the locking seat 510.
[0046] Optionally, one of the first seat 210 and the second seat 310 is provided with a second slide rail 214 along the Y-axis direction, and the other of the first seat 210 and the second seat 310 is provided with a second slide groove 313. The second slide rail 214 and the second slide groove 313 are slidably engaged, which can provide guidance and support for the second seat 310 along the Y-axis direction, so that the second seat 310 can achieve more stable and precise movement in the Y-axis direction, thereby improving the adjustment accuracy and reliability of the infrared thermal imager in this direction.
[0047] Optionally, such as Figure 2 and Figure 3As shown, the assembly groove 3111 includes a left side wall and a right side wall opposite each other along the X-axis, and a front side wall connecting the left side wall and the right side wall. The two sides of the third seat 410 are respectively attached to the left side wall and the right side wall, and the front end face of the third seat 410 is attached to the front side wall. The front side wall is provided with a third threaded hole 3112. The third seat 410 is provided with a third oblong hole 412 extending along the Z-axis. The third fastener passes through the third oblong hole 412 and is threaded into the corresponding third threaded hole 3112, which can effectively limit the displacement of the third seat 410 in the non-Z-axis direction and improve the stability of the third seat 410 in the assembly groove 3111. At the same time, the cooperation between the third oblong hole 412 and the third threaded hole 3112 provides the third seat 410 with adjustment space along the Z-axis direction, and the third fastener realizes the locking or unlocking operation of this adjustment, so that the infrared thermal imager can achieve smooth and controllable movement in the Z-axis direction, further ensuring the accuracy and reliability of the monitoring position adjustment.
[0048] In this embodiment, the first fastener, the second fastener, and the third fastener are all fastening screws, which have the advantages of reliable fastening, simple structure, and low manufacturing and assembly costs. They can further reduce the overall manufacturing cost while ensuring the adjustment and locking effect.
[0049] Optionally, such as Figure 2 As shown, the third seat 410 is provided with a rotating connecting part 411, and the rotating connecting part 411 is provided with a through hole 4111. The locking seat 510 is provided with a first protrusion 511 and a second protrusion 512. The first protrusion 511 is provided with a first through hole 5111, and the second protrusion 512 is provided with a fourth threaded hole 5121. The rotating connecting part 411 is sandwiched between the first protrusion 511 and the second protrusion 512. The fourth fastener 520 passes through the first through hole 5111, the through hole 4111 and the fourth threaded hole 5121 in sequence and is threadedly engaged, so that the locking seat 510 can be rotated and adjusted relative to the third seat 410, thereby flexibly changing the monitoring angle of the infrared thermal imager. The fourth fastener 520, through the engagement of the through hole 4111 and the threaded hole, can reliably lock the position of the locking seat 510 after tightening, avoiding displacement or loosening during the monitoring process, and ensuring the stability of imaging and the accuracy of monitoring results.
[0050] Optionally, such as Figure 3 and Figure 4As shown, the locking assembly 500 also includes a limiting post 530, which is height-adjustable on the second seat 310 along the Z-axis. The locking seat 510 can abut against the limiting post 530, effectively limiting its rotation range during adjustment and preventing excessive rotation of the locking seat 510 from causing deviation or damage to the infrared thermal imager's monitoring angle. Simultaneously, the adjustable height of the limiting post 530 along the Z-axis allows for flexible setting of the limiting position according to different application requirements, further improving the stability and reliability of the locking assembly 500 during angle adjustment.
[0051] Optionally, the locking assembly 500 includes a limiting screw, a limiting threaded hole 3113 is provided on the side of the protrusion 311, and a fourth oblong hole 531 is provided on the limiting post 530 along the Z-axis direction. The limiting screw passes through the fourth oblong hole 531 and is threadedly engaged with the limiting threaded hole 3113. By tightening or loosening the limiting screw, the height of the limiting post 530 can be adjusted, thereby limiting the rotation range of the locking seat 510 and improving the safety of the infrared thermal imager.
[0052] Optionally, the locking assembly 500 further includes a fifth fastener. The locking seat 510 is also provided with a first clamping arm 540 and a second clamping arm 550. The first clamping arm 540 and the second clamping arm 550 surround and form a limiting space 501. At least part of the infrared thermal imager is inserted into the limiting space 501. The fifth fastener is used to clamp the infrared thermal imager with the first clamping arm 540 and the second clamping arm 550, thereby ensuring the stability of the infrared thermal imager and improving the detection accuracy.
[0053] In this embodiment, a notch is provided between the first end of the first arm 540 and the first end of the second arm 550. The second end of the first arm 540 and the second end of the second arm 550 are respectively provided with a first locking part 541 and a second locking part 551. The first locking part 541 is provided with a second through hole, and the second locking part 551 is provided with a fifth threaded hole. The fifth fastener passes through the second through hole and is threadedly connected to the fifth threaded hole, so that the first arm 540 and the second arm 550 are tightly clamped to the outer wall of the infrared thermal imager.
[0054] Obviously, the above embodiments of this utility model are merely examples for clearly illustrating the present utility model, and are not intended to limit the implementation of the present utility model. Those skilled in the art can make various obvious changes, readjustments, and substitutions without departing from the protection scope of this utility model. It is neither necessary nor possible to exhaustively describe all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the protection scope of the claims of this utility model.
Claims
1. An infrared thermal imager mounting bracket, characterized in that, include: A substrate (100) is disposed on the machine base; The X-axis adjustment assembly (200) includes a first seat (210) and a first fastener. The first seat (210) is slidably disposed on the substrate (100) along the X-axis direction. The first fastener passes through the first seat (210) and is threadedly connected to the substrate (100) to lock or unlock the first seat (210). The Y-axis adjustment assembly (300) includes a second seat (310) and a second fastener. The second seat (310) is slidably disposed on the first seat (210) along the Y-axis direction. The second fastener passes through the second seat (310) and is threadedly connected to the first seat (210) to lock or unlock the second seat (310). The second seat (310) is provided with an assembly groove (3111). Z-axis adjustment assembly (400) includes a third seat (410) and a third fastener. At least part of the third seat (410) is slidably disposed in the assembly groove (3111) along the Z-axis direction. The third fastener passes through the third seat (410) and is threadedly connected to the second seat (310) to lock or unlock the third seat (410). The locking assembly (500) includes a locking seat (510) and a fourth fastener (520). The locking seat (510) is rotatably connected to the third seat (410) via the fourth fastener (520). The fourth fastener (520) is used to adjust the angle of the locking seat (510) relative to the third seat (410). The locking seat (510) is provided with a limiting space (501), and at least part of the infrared thermal imager is confined within the limiting space (501).
2. The infrared thermal imager mounting bracket according to claim 1, characterized in that, The first seat (210) is provided with two first waist-shaped holes (211), the two first waist-shaped holes (211) are parallel to each other and both extend along the X-axis direction, the second seat (310) is located between the two first waist-shaped holes (211), the base plate (100) is provided with a first threaded hole (110) corresponding to the first waist-shaped hole (211), and the first fastener passes through the first waist-shaped hole (211) and is threadedly engaged with the corresponding first threaded hole (110).
3. The infrared thermal imager mounting bracket according to claim 2, characterized in that, The first fastener is a first screw, and the side wall of the first waist-shaped hole (211) is provided with a countersunk (2111), which can abut against the head of the first screw.
4. The infrared thermal imager mounting bracket according to claim 1, characterized in that, One of the substrate (100) and the first seat (210) is provided with a first slide rail (120) extending along the X-axis direction, and the other of the substrate (100) and the first seat (210) is provided with a first slide groove (212), and the first slide rail (120) slides in cooperation with the first slide groove (212).
5. The infrared thermal imager mounting bracket according to claim 1, characterized in that, The second seat (310) is provided with a protrusion (311) and two second waist-shaped holes (312) extending along the Y-axis. The protrusion (311) is located between the two second waist-shaped holes (312). The protrusion (311) is provided with the mounting groove (3111). The first seat (210) is provided with a second threaded hole (213) corresponding to the second waist-shaped hole (312). The second fastener passes through the second waist-shaped hole (312) and is threadedly engaged with the corresponding second threaded hole (213).
6. The infrared thermal imager mounting bracket according to claim 1, characterized in that, One of the first seat (210) and the second seat (310) is provided with a second slide rail (214) extending along the Y-axis direction, and the other of the first seat (210) and the second seat (310) is provided with a second slide groove (313), and the second slide rail (214) slides in cooperation with the second slide groove (313).
7. The infrared thermal imager mounting bracket according to claim 1, characterized in that, The assembly groove (3111) includes a left side wall and a right side wall opposite to each other along the X-axis, and a front side wall connecting the left side wall and the right side wall. The two sides of the third seat (410) are respectively attached to the left side wall and the right side wall. The front end face of the third seat (410) is attached to the front side wall. The front side wall is provided with a third threaded hole (3112). The third seat (410) is provided with a third waist-shaped hole (412) extending along the Z-axis. The third fastener passes through the third waist-shaped hole (412) and is threaded into the corresponding third threaded hole (3112).
8. The infrared thermal imager mounting bracket according to claim 1, characterized in that, The third seat (410) is provided with a rotating connection part (411), the rotating connection part (411) is provided with a through hole (4111), the locking seat (510) is provided with a first protrusion (511) and a second protrusion (512), the first protrusion (511) is provided with a first through hole (5111), the second protrusion (512) is provided with a fourth threaded hole (5121), the rotating connection part (411) is sandwiched between the first protrusion (511) and the second protrusion (512), and the fourth fastener (520) passes through the first through hole (5111), the through hole (4111) and the fourth threaded hole (5121) in sequence for threaded engagement.
9. The infrared thermal imager mounting bracket according to any one of claims 1-8, characterized in that, The locking assembly (500) further includes a limiting post (530), which is height-adjustably disposed on the second seat (310) along the Z-axis direction, and the locking seat (510) can abut against the limiting post (530).
10. The infrared thermal imager mounting bracket according to any one of claims 1-8, characterized in that, The locking assembly (500) further includes a fifth fastener. The locking seat (510) is also provided with a first clamping arm (540) and a second clamping arm (550). The first clamping arm (540) and the second clamping arm (550) surround and form the limiting space (501). At least part of the infrared thermal imager is inserted in the limiting space (501). The fifth fastener is used to clamp the infrared thermal imager with the first clamping arm (540) and the second clamping arm (550).