Multi-angle mounting structure of thermal imager
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI XIONGCUI CONSTRUCTION ENGINEERING CO LTD
- Filing Date
- 2024-12-13
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]通常在对热像仪进行安装时,为了保障热像仪的稳定,采用的是固定式安装方式,当需要调节热像仪的角度时,需要重新寻找符合安装角度的安装物进行安装操作,就会导致需要花费大量的时间在寻找合适的安装物上,造成热像仪的安装效率降低,同时增加调整热像仪角度的难度,导致热像仪在使用过程中的实用性降低
[0013]1、本实用新型通过安装套筒可以进行旋转,调整支撑箱的位置,增加安装板朝向的多方位性,增加热像仪的灵活度,同时在调节组件的配合下使支撑杆进行上下移动,配合固定座使安装板向上偏转,调节安装板以及热像仪的倾斜角度,同时将安装套筒反向安装,即可将安装板向下倾斜,同时两组安装孔可以提供多组不同方向上对热像仪的安装方式,提升热像仪安装调整的灵活性。
Smart Images

Figure CN224607426U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of thermal imager installation technology, specifically a multi-angle installation structure for a thermal imager. Background Technology
[0002] Infrared thermal imaging technology has applications in both military and civilian sectors, originating in the military and gradually transitioning to civilian use. In civilian applications, it's generally called a thermal imager, primarily used in research and development, industrial inspection, and equipment maintenance. It also has wide applications in fire prevention, night vision, and security. Simply put, a thermal imager converts the invisible infrared energy emitted by an object into a visible thermal image. Different colors in the thermal image represent different temperatures of the object being measured.
[0003] Typically, thermal imagers are installed in a fixed manner to ensure stability. When the angle of the thermal imager needs to be adjusted, a suitable mounting object must be found, which results in a significant amount of time being spent searching for a suitable object. This reduces the installation efficiency of the thermal imager and increases the difficulty of adjusting the angle, thereby reducing its practicality during use. Utility Model Content
[0004] The purpose of this utility model is to provide a multi-angle mounting structure for a thermal imager. By mounting a sleeve on a columnar object, the orientation of the support box and the mounting plate can be adjusted by rotation. Then, by rotating the worm gear, the movable block is driven to move up and down on the threaded rod under the action of the threaded sleeve, thereby adjusting the support rod and solving the problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a multi-angle mounting structure for a thermal imager, comprising a mounting plate for mounting the thermal imager, a mounting sleeve provided on the back of the mounting plate, a support box fixed to the outer side of the mounting sleeve, a fixing seat fixed on the back of the mounting plate, and the fixing seat and the support box being movably connected via a movable shaft, a support rod being movably connected to the back of the mounting plate via the movable seat, the end of the support rod away from the mounting plate penetrating into the inner cavity of the support box, an adjustment component for moving and adjusting the support rod being provided in the inner cavity of the support box, and a tightening component for tightening the mounting sleeve being provided at both ends of the mounting sleeve.
[0006] Preferably, the adjusting assembly includes a threaded rod that rotates within the support box cavity via a bearing, a movable block that is threadedly connected to the outer side of the threaded rod via a threaded sleeve, and the outer side of the movable block that is movably connected to the end of the support rod away from the mounting plate via a movable seat. A worm gear is rotatably connected to the inner cavity of the support box via a bearing, and a worm wheel that meshes with the worm gear is fixed to the outer side of the threaded rod.
[0007] Preferably, the tightening assembly includes tightening plates fixed to both ends of the mounting sleeve. Both ends of the mounting sleeve are threadedly connected to internally threaded sleeves. The inner diameter of one end of the internally threaded sleeve is the same as the inner diameter of the mounting sleeve, and the inner wall of the internally threaded sleeve is arranged in multiple inclined sections.
[0008] Preferably, the inner cavity of the support box is provided with two sets of limiting grooves, and the inner cavity of the limiting groove is slidably connected to a limiting block. The limiting block passes through the limiting groove and is fixed to the outside of the movable block.
[0009] Preferably, both ends of the worm gear pass through the support box and are fixed with torsion handles, and the outer side of the torsion handles is provided with anti-slip texture.
[0010] Preferably, the mounting plate has two sets of mounting holes on the side away from the support box, and the two sets of mounting holes are deflected with the center of the mounting plate as the center.
[0011] Preferably, a positioning post is fixed on the back of the mounting plate, and a positioning hole that aligns with the positioning post is provided on the outer side of the support box.
[0012] Compared with the prior art, the beneficial effects of this utility model are:
[0013] 1. This utility model allows for rotation of the mounting sleeve, adjusting the position of the support box, increasing the versatility of the mounting plate's orientation, and enhancing the flexibility of the thermal imager. Simultaneously, with the assistance of the adjustment components, the support rod can move up and down, and in conjunction with the fixing seat, the mounting plate can be tilted upwards, adjusting the tilt angle of the mounting plate and the thermal imager. Furthermore, by reversing the mounting sleeve, the mounting plate can be tilted downwards. The two sets of mounting holes provide multiple mounting methods for the thermal imager in different directions, improving the flexibility of thermal imager installation and adjustment.
[0014] 2. This utility model, through the setting of the torsion handle, allows the worm gear to be rotated and adjusted from both sides of the support box. Then, the self-locking structure of the worm wheel and the worm gear is used to achieve the stability of the mounting plate. Attached Figure Description
[0015] Fig. 1 This is a three-dimensional structural diagram of the present invention;
[0016] Fig. 2 This is a schematic diagram of the unfolded three-dimensional structure of this utility model;
[0017] Fig. 3 This is a side view cross-sectional three-dimensional structural diagram of the support box of this utility model;
[0018] Fig. 4 This is a three-dimensional structural diagram of the mounting sleeve and tightening assembly of this utility model.
[0019] The following are the labels in the diagram: 1. Mounting plate; 2. Mounting sleeve; 3. Support box; 4. Fixed base; 5. Support rod; 6. Adjusting assembly; 61. Threaded rod; 62. Moving block; 63. Worm gear; 64. Worm wheel; 7. Tightening assembly; 71. Tightening plate; 72. Internal threaded sleeve; 8. Limit groove; 9. Limit block; 10. Torque handle; 11. Mounting hole; 12. Positioning pin; 13. Positioning hole. Detailed Implementation
[0020] 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.
[0021] This utility model provides, for example Figs. 1-4 The multi-angle mounting structure of a thermal imager shown includes a mounting plate 1 for mounting the thermal imager, a mounting sleeve 2 on the back of the mounting plate 1, a support box 3 fixed to the outside of the mounting sleeve 2, a fixing seat 4 fixed to the back of the mounting plate 1, and the fixing seat 4 and the support box 3 are movably connected by a movable shaft. A support rod 5 is movably connected to the back of the mounting plate 1 through the movable seat. The end of the support rod 5 away from the mounting plate 1 extends into the inner cavity of the support box 3. An adjustment component 6 for moving and adjusting the support rod 5 is provided in the inner cavity of the support box 3. Tightening components 7 for tightening the mounting sleeve 2 are provided at both ends of the mounting sleeve 2.
[0022] The mounting sleeve 2 can be rotated to adjust the position of the support box 3, increasing the versatility of the mounting plate 1 and enhancing the flexibility of the thermal imager. Simultaneously, with the cooperation of the adjustment component 6, the support rod 5 can be moved up and down, and with the cooperation of the fixing seat 4, the mounting plate 1 can be tilted upwards, adjusting the tilt angle of the mounting plate 1 and the thermal imager. At the same time, by reversing the installation of the mounting sleeve 2, the mounting plate 1 can be tilted downwards. In addition, the two sets of mounting holes 11 can provide multiple installation methods for the thermal imager in different directions, improving the flexibility of thermal imager installation and adjustment.
[0023] The adjusting assembly 6 includes a threaded rod 61 that rotates within the cavity of the support box 3 via a bearing. A movable block 62 is threadedly connected to the outer side of the threaded rod 61 via a threaded sleeve. The outer side of the movable block 62 is movably connected to the end of the support rod 5 away from the mounting plate 1 via a movable seat. A worm gear 63 is rotatably connected to the cavity of the support box 3 via a bearing. A worm wheel 64 that meshes with the worm gear 63 is fixed to the outer side of the threaded rod 61. The worm gear 63 drives the worm wheel 64, causing the worm wheel 64 to rotate the threaded rod 61. The movable block 62, in conjunction with the threaded sleeve, moves within the cavity of the support box 3 along the axial direction of the threaded rod 61. The movable block 62 then moves the support rod 5 to adjust the support angle of the mounting plate 1.
[0024] The tightening assembly 7 includes tightening plates 71 fixed to both ends of the mounting sleeve 2. Both ends of the mounting sleeve 2 are threadedly connected to internally threaded sleeves 72. The inner diameter of one end of the internally threaded sleeve 72 is the same as the inner diameter of the mounting sleeve 2. The inner wall of the internally threaded sleeve 72 is arranged in multiple inclined sections. By moving the internally threaded sleeve 72 at both ends of the mounting sleeve 2, the internally threaded sleeve 72 squeezes the tightening plates 71 to fit against the mounting object. Then, the mounting sleeve 2 is fitted against the mounting object. The adjustment of the mounting sleeve 2 can be achieved by rotating the internally threaded sleeve 72.
[0025] The inner cavity of the support box 3 is provided with two sets of limiting grooves 8. The inner cavity of the limiting groove 8 is slidably connected to the limiting block 9. The limiting block 9 passes through the limiting groove 8 and is fixed to the outside of the movable block 62. By sliding the limiting block 9 in the inner cavity of the limiting groove 8, the movable block 62 can be easily limited, ensuring that the movable block 62 will not rotate with the threaded sleeve on the outside of the threaded rod 61, so as to avoid the breakage of the connecting rod.
[0026] Both ends of the worm 63 pass through the support box 3 and are fixed with a torsion handle 10. The outer side of the torsion handle 10 is provided with anti-slip texture. The torsion handle 10 allows the worm 63 to be rotated and adjusted from both sides of the support box 3. Then, the self-locking structure between the worm wheel 64 and the worm 63 is used to stabilize the mounting plate 1.
[0027] Two sets of mounting holes 11 are provided on the side of the mounting plate 1 away from the support box 3. The two sets of mounting holes 11 are obtained by deflection with the center of the mounting plate 1 as the center. The setting of the two sets of mounting holes 11 facilitates alignment with the mounting structure on the thermal imager and realizes multi-directional and multi-angle combination.
[0028] A positioning post 12 is fixed on the back of the mounting plate 1, and a positioning hole 13 is provided on the outside of the support box 3 to align with the positioning post 12. The positioning post 12 and the positioning hole 13 are provided to ensure the stability between the mounting plate 1 and the support box 3 and to prevent the mounting plate 1 from shaking due to poor stability during the deflection process.
[0029] In practical use, the mounting sleeve 2 is placed on the cylindrical mounting object. The installation height and the orientation of the support box 3 and the mounting plate 1 are adjusted according to the installation requirements. Then, the internal threaded sleeve 72 is rotated to squeeze the tightening plate 71. The tightening sleeve then fits against the cylindrical mounting object to fix the mounting sleeve 2. At the same time, the torsion handle 10 is rotated to drive the worm 63 to rotate. The worm 63 drives the threaded rod 61 to rotate through the worm wheel 64. Then, the threaded rod 61 drives the movable block 62 to slide upward in the support box 3 through the threaded sleeve. At this time, the movable block 62 drives the support rod 5 to deflect and move. Then, the support rod 5 drives the mounting plate 1 to rotate around the fixed seat 4 to adjust the tilt angle of the mounting plate 1. Finally, the thermal imager is installed on the mounting plate 1 through the mounting hole 11 as required.
[0030] 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 multi-angle mounting structure for a thermal imager, comprising a mounting plate (1) for mounting the thermal imager, characterized in that: The mounting plate (1) has a mounting sleeve (2) on its back side. A support box (3) is fixed to the outside of the mounting sleeve (2). A fixing seat (4) is fixed to the back side of the mounting plate (1). The fixing seat (4) and the support box (3) are movably connected by a movable shaft. A support rod (5) is movably connected to the back side of the mounting plate (1) through a movable seat. The end of the support rod (5) away from the mounting plate (1) extends into the inner cavity of the support box (3). An adjustment component (6) for moving and adjusting the support rod (5) is provided in the inner cavity of the support box (3). Both ends of the mounting sleeve (2) are provided with a tightening component (7) for tightening the mounting sleeve (2).
2. The multi-angle mounting structure of a thermal imager according to claim 1, characterized in that: The adjusting assembly (6) includes a threaded rod (61) that rotates within the cavity of the support box (3) via a bearing. A movable block (62) is threadedly connected to the outer side of the threaded rod (61) via a threaded sleeve. The outer side of the movable block (62) is movably connected to the end of the support rod (5) away from the mounting plate (1) via a movable seat. A worm gear (63) is rotatably connected to the cavity of the support box (3) via a bearing. A worm wheel (64) that meshes with the worm gear (63) is fixed to the outer side of the threaded rod (61).
3. The multi-angle mounting structure of a thermal imager according to claim 1, characterized in that: The tightening assembly (7) includes tightening plates (71) fixed to both ends of the mounting sleeve (2). Both ends of the mounting sleeve (2) are threaded with internal thread sleeves (72). The inner diameter of one end of the internal thread sleeve (72) is the same as the inner diameter of the mounting sleeve (2). The inner wall of the internal thread sleeve (72) is arranged in multiple inclined sections.
4. The multi-angle mounting structure of a thermal imager according to claim 1, characterized in that: The inner cavity of the support box (3) is provided with two sets of limiting grooves (8). The inner cavity of the limiting groove (8) is slidably connected to a limiting block (9). The limiting block (9) passes through the limiting groove (8) and is fixed to the outside of the movable block (62).
5. The multi-angle mounting structure of a thermal imager according to claim 2, characterized in that: Both ends of the worm (63) pass through the support box (3) and are fixed with a torsion handle (10). The outside of the torsion handle (10) is provided with anti-slip texture.
6. The multi-angle mounting structure of a thermal imager according to claim 1, characterized in that: The mounting plate (1) has two sets of mounting holes (11) on the side away from the support box (3). The two sets of mounting holes (11) are obtained by deflecting around the center of the mounting plate (1).
7. The multi-angle mounting structure of a thermal imager according to claim 1, characterized in that: The mounting plate (1) has a positioning post (12) fixed on its back, and the support box (3) has a positioning hole (13) on its outer side that aligns with the positioning post (12).