A mobile industrial environment radiation detection device
Patent Information
- Application Number
- CN202521214717.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-13
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-06-13
AI Technical Summary
[0005]为了克服大多数辐射检测装置,调节检测仪高度和检测间距的结构大部分设置得较为简单,导致装置在移动检测过程中仪器容易因颠簸发生位置偏移,影响检测结果的问题,提出本实用新型
[0015]检测作业时,伸缩第一伸缩杆灵活调节升降台高度,将升降台调节至合适高度,伸缩第二伸缩杆调节连杆位置,移动连杆带动第二滑块沿第二导轨滑动,利用第二滑块连接固定检测仪,从而根据实际检测环境需求灵活调节两组检测仪间距,通过检测台转动连接转轴,转动转轴带动固定板同步旋转,从而带动检测仪旋转进行检测作业,以解决大多数辐射检测装置,调节检测仪高度和检测间距的结构大部分设置得较为简单,调节时的稳定性往往较差,导致装置在移动检测过程中仪器容易因颠簸发生位置偏移,影响检测结果的问题,增强装置实用价值。
Smart Images

Figure CN224745144U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of industrial environmental testing technology, and in particular to a mobile industrial environmental radiation testing device. Background Technology
[0002] Modern industrial production processes often use a large number of electronic devices, which may generate radiation during use. When the radiation parameters in the environment reach a certain value, they can affect people's health. Therefore, it is necessary to use environmental radiation detection devices to detect radiation in the external environment.
[0003] Most current radiation detection devices allow for flexible adjustment of the detector's placement. However, the structures for adjusting the detector's height and detection spacing are generally quite simple, resulting in poor stability during adjustment. This can cause the instrument to shift position due to bumps during movement, affecting the detection results.
[0004] Therefore, to address the difficulty in stabilizing the placement of the detector in existing testing devices, a mobile industrial environmental radiation testing device can be designed. By using multi-directional limiting methods, the placement of the detector can be stably adjusted, ensuring the stability of the instrument's position during the testing process and guaranteeing accurate test data, thereby effectively enhancing the practical value of the device. Utility Model Content
[0005] To overcome the problem that most radiation detection devices have relatively simple structures for adjusting the height and detection spacing, which makes the instrument prone to positional displacement due to bumps during movement and affects the detection results, this utility model is proposed.
[0006] The technical solution of this utility model is as follows: a mobile industrial environmental radiation detection device, comprising a base, a moving component, a detector, a first telescopic rod, a lifting platform, a lifting component, a detection platform, a rotating shaft, a fixed plate, a rotating component, a second telescopic rod, a connecting rod, a second guide rail, a second slider, and a connecting component. The moving component is provided on the bottom surface of the base, the first telescopic rod is provided on one side of the base, the lifting platform is provided at one end of the first telescopic rod, the lifting component is provided on one side of the lifting platform, the detection platform is provided above the lifting platform, the rotating shaft is provided on one side of the detection platform, the fixed plate is provided at one end of the rotating shaft, the rotating component is provided on the bottom surface of the fixed plate, the second telescopic rod is provided on one side of the fixed plate, the connecting rod is provided at one end of the second telescopic rod, the connecting component is provided at both ends of the connecting rod, the second guide rail is provided on the inner side of the fixed plate, the second slider is provided on the outer side of the second guide rail, and the detector is provided on one side of the second slider.
[0007] Preferably, by setting a movable component to flexibly move the base position, the device can be moved within a designated area to carry out comprehensive testing operations. The first telescopic rod extends and retracts, driving the lifting component to control the height of the lifting platform and adjust the platform to a suitable height. The second telescopic rod extends and retracts, adjusting the position of the connecting rod. The moving connecting rod drives the connecting component to move, and the moving connecting component drives the second slider to slide along the second guide rail. The second slider connects and fixes the detector, thereby flexibly adjusting the distance between the two sets of detectors according to the actual testing environment requirements. The rotating component drives the rotating shaft to rotate, and the rotating shaft drives the fixed plate to rotate synchronously, thereby driving the detector to rotate for testing operations. This achieves stable adjustment of the detector's placement position, ensures the stability of the instrument position during the testing process, ensures accurate testing data, and enhances the practical value of the device.
[0008] Preferably, the first telescopic rod is located in the center of the upper surface of the base, the rotating shaft is located in the center of the upper surface of the testing platform, the rotating shaft and the testing platform are rotatably connected, two sets of connecting rods are symmetrically arranged, the connecting rods are symmetrically arranged on both sides of the second telescopic rod, two sets of second guide rails are symmetrically arranged, the second slider and the second guide rails are slidably connected, and the connecting rod is located on one side of the second slider.
[0009] Preferably, the moving component includes electric pulleys and a control panel. The bottom surface of the base is provided with electric pulleys, and multiple sets of electric pulleys are symmetrically arranged. The upper surface of the base is provided with a control panel. The electric pulleys and the control panel are electrically connected to each other. The first telescopic rod is electrically connected to the control panel, the second telescopic rod is electrically connected to the control panel, and the detector is wirelessly connected to the control panel.
[0010] Preferably, the lifting assembly includes a first guide rail, a baffle, and a damping shock absorber. The upper surface of the base is provided with the first guide rail, and multiple sets of the first guide rail are symmetrically arranged. The lifting platform is slidably connected to the first guide rail. A baffle is provided at one end of the first guide rail, and the baffle is located above the lifting platform. A damping shock absorber is provided on the upper surface of the lifting platform, and multiple sets of the damping shock absorber are arranged. A testing platform is located at one end of the damping shock absorber.
[0011] Preferably, the rotating assembly includes a rotating motor, the rotating motor is installed on the bottom surface of the testing platform, the output end of the rotating motor is connected to the rotating shaft, and the rotating motor is electrically connected to the control panel.
[0012] Preferably, the rotating assembly also includes a support rod, a T-shaped annular groove, and a T-shaped slider. Support rods are provided on the bottom surfaces of both ends of the fixed plate, a T-shaped annular groove is provided on one side of the testing table, and a T-shaped slider is provided at one end of the support rod. The T-shaped slider and the T-shaped annular groove are interlocked and slidably connected.
[0013] Preferably, the connecting assembly includes an I-shaped connecting block, a sliding groove, and a mounting plate. One end of the second telescopic rod is provided with an I-shaped connecting block, and one end of the connecting rod is rotatably connected to one side of the I-shaped connecting block. A sliding groove is provided on one side of the fixing plate, and two sets of sliding grooves are symmetrically provided. A mounting plate is provided on one side of the second slider, and two sets of mounting plates are symmetrically provided. The other end of the connecting rod is rotatably connected to the mounting plate.
[0014] The beneficial effects of this utility model are:
[0015] During testing, the first telescopic rod is extended to flexibly adjust the height of the lifting platform to a suitable height. The second telescopic rod is extended to adjust the position of the connecting rod, and the moving connecting rod drives the second slider to slide along the second guide rail. The second slider is used to connect and fix the detector, thereby flexibly adjusting the distance between the two sets of detectors according to the actual testing environment requirements. The rotating shaft connected to the rotating platform drives the fixed plate to rotate synchronously, thereby driving the detector to rotate for testing. This solves the problem that most radiation testing devices have relatively simple structures for adjusting the height of the detector and the detection distance, which often result in poor stability during adjustment. This causes the instrument to easily shift position due to bumps during the moving and testing process, affecting the test results. This enhances the practical value of the device. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of a mobile industrial environmental radiation detection device according to this utility model.
[0017] Figure 2 The diagram shown is a three-dimensional structural schematic of the connecting components of a mobile industrial environmental radiation detection device according to this utility model.
[0018] Figure 3 The diagram shown is a three-dimensional structural schematic of the lifting component of a mobile industrial environmental radiation detection device according to this utility model.
[0019] Figure 4 The diagram shown is a three-dimensional cross-sectional view of the lifting platform of a mobile industrial environmental radiation detection device according to this utility model.
[0020] Explanation of reference numerals in the attached drawings: 1. Base; 101. Electric pulley; 102. Control panel; 2. First telescopic rod; 3. Lifting platform; 301. First guide rail; 302. Baffle; 303. Damping shock absorber; 4. Testing platform; 5. Rotating shaft; 501. Rotating motor; 502. Support rod; 503. T-shaped annular groove; 504. T-shaped slider; 6. Fixing plate; 7. Second telescopic rod; 8. Connecting rod; 9. Second guide rail; 10. Second slider; 1001. I-shaped connecting block; 1002. Slide groove; 1003. Mounting plate; 11. Testing instrument. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Please see Figure 1 and Figure 2 This utility model provides an embodiment: a mobile industrial environmental radiation detection device, including a base 1, a moving component, a detector 11, a first telescopic rod 2, a lifting platform 3, a lifting component, a detection platform 4, a rotating shaft 5, a fixing plate 6, a rotating component, a second telescopic rod 7, a connecting rod 8, a second guide rail 9, a second slider 10, and a connecting component. The moving component is provided on the bottom surface of the base 1. The first telescopic rod 2 is provided on one side of the base 1, positioned at the center of the upper surface of the base 1. A lifting platform 3 is provided at one end of the first telescopic rod 2. A lifting component is provided on one side of the lifting platform 3. A detection platform 4 is provided above the lifting platform 3. A rotating shaft 5 is provided on one side of the detection platform 4. The rotating shaft 5 is positioned on the detector... At the center of the upper surface of the measuring platform 4, the rotating shaft 5 is rotatably connected to the testing platform 4. A fixed plate 6 is provided at one end of the rotating shaft 5, and a rotating component is provided on the bottom surface of the fixed plate 6. A second telescopic rod 7 is provided on one side of the fixed plate 6, and a connecting rod 8 is provided at one end of the second telescopic rod 7. Two sets of connecting rods 8 are symmetrically arranged on both sides of the second telescopic rod 7. Connecting components are provided at both ends of the connecting rod 8. A second guide rail 9 is provided on the inner side of the fixed plate 6, and two sets of the second guide rail 9 are symmetrically arranged. A second slider 10 is provided on the outer side of the second guide rail 9. The second slider 10 is slidably connected to the second guide rail 9. The connecting rod 8 is provided on one side of the second slider 10, and a detector 11 is provided on one side of the second slider 10.
[0023] Please see Figure 3In this embodiment, the moving component includes an electric pulley 101 and a control panel 102. The bottom surface of the base 1 is provided with electric pulleys 101, and multiple sets of electric pulleys 101 are symmetrically arranged. The upper surface of the base 1 is provided with the control panel 102. The electric pulleys 101 and the control panel 102 are electrically connected to each other. The first telescopic rod 2 is electrically connected to the control panel 102, and the second telescopic rod 7 is electrically connected to the control panel 102. The detector 11 is wirelessly connected to the control panel 102. The control panel 102 controls the rotation of the electric pulleys 101, flexibly controlling the forward direction and speed of the base 1. The lifting component includes a first guide rail 301, a baffle 302, and a damping shock absorber 303. The base 1... The upper surface of the lifting platform 3 is provided with a first guide rail 301, and multiple sets of the first guide rail 301 are symmetrically arranged. The lifting platform 3 is slidably connected to the first guide rail 301. A baffle 302 is provided at one end of the first guide rail 301, and the baffle 302 is located above the lifting platform 3. A damping shock absorber 303 is provided on the upper surface of the lifting platform 3, and multiple sets of the damping shock absorber 303 are arranged. The testing platform 4 is located at one end of the damping shock absorber 303. When adjusting the height of the lifting platform 3, the lifting platform 3 slides up and down along the first guide rail 301. The first guide rail 301 ensures the stable lifting and lowering of the lifting platform 3. The baffle 302 limits the rising height of the lifting platform 3. When moving for testing, the damping shock absorber 303 provides shock absorption and buffering for the testing platform 4 to ensure the stable operation of the testing work.
[0024] Please see Figure 2 and Figure 4In this embodiment, the rotating assembly includes a rotating motor 501, a support rod 502, a T-shaped annular groove 503, and a T-shaped slider 504. The rotating motor 501 is provided on the bottom surface of the detection table 4. The output end of the rotating motor 501 is connected to the rotating shaft 5. The rotating motor 501 is electrically connected to the control panel 102. Support rods 502 are provided on the bottom surfaces of both ends of the fixed plate 6. A T-shaped annular groove 503 is provided on one side of the detection table 4. A T-shaped slider 504 is provided at one end of the support rod 502. The T-shaped slider 504 and the T-shaped annular groove 503 are interlocked and slidably connected. The rotating motor 501 drives the rotating shaft 5 to rotate, and the rotating shaft 5 drives the fixed plate 6 to rotate. The T-shaped slider 504 is fixedly connected by the support rod 502. While the fixed plate 6 is rotating, the T-shaped slider 504 slides along the T-shaped annular groove 503 to ensure the stable rotation of the fixed plate 6. The connecting assembly includes an I-shaped connecting block 1001. The system includes a slide groove 1002 and a mounting plate 1003. One end of the second telescopic rod 7 is provided with an I-shaped connecting block 1001. One end of the connecting rod 8 is rotatably connected to one side of the I-shaped connecting block 1001. A slide groove 1002 is provided on one side of the fixed plate 6. Two sets of slide grooves 1002 are symmetrically provided. A mounting plate 1003 is provided on one side of the second slider 10. Two sets of mounting plates 1003 are symmetrically provided. The other end of the connecting rod 8 is rotatably connected to the mounting plate 1003. One end of the connecting rod 8 is rotatably connected through the I-shaped connecting block 1001, and the other end of the connecting rod 8 is rotatably connected through the mounting plate 1003 to ensure stable displacement of the connecting rod 8. The extension and retraction of the second telescopic rod 7 pushes and pulls the connecting rod 8, causing the connecting rod 8 to pull the second slider 10 to slide along the second guide rail 9, which drives the mounting plate 1003 to slide along the slide groove 1002. At the same time, it drives the detector 11 to slide synchronously along the slide groove 1002, stabilizing and adjusting the placement spacing of the detector 11.
[0025] When adjusting the detection height, the control panel 102 sends a telescopic command to the first telescopic rod 2 to extend and retract the first telescopic rod 2 to adjust the height of the lifting platform 3, and drive the lifting platform 3 to slide up and down along the first guide rail 301. The baffle 302 limits the maximum rising height of the lifting platform 3.
[0026] When adjusting the detection spacing, the control panel 102 sends a telescopic command to the second telescopic rod 7. The telescopic rod 7 adjusts the position of the I-shaped connecting block 1001, causing the connecting rod 8 to rotate around the mounting plate 1003. Moving the connecting rod 8 drives the second slider 10 to slide along the second guide rail 9, which in turn drives the detector 11 to slide along the slide groove 1002.
[0027] During the inspection operation, the control panel 102 sends a running command to the rotating motor 501, which drives the rotating shaft 5 to rotate. The rotating shaft 5 drives the fixed plate 6 to rotate. At the same time, the T-shaped slider 504 on the support rod 502 slides in the T-shaped annular groove 503, which drives the detector 11 to rotate synchronously.
[0028] Subsequently, the control panel 102 sends an operating command to the electric pulley 101, which rotates the electric pulley 101 to move the position of the base 1. At the same time, the damping shock absorber 303 is used to buffer and reduce the vibration of the test platform 4. The detector 11 detects the environmental radiation and sends the detection value to the control panel 102 for display. The radiation data can be observed in real time through the control panel 102.
[0029] Through the above steps, the position of the base 1 is flexibly moved by the movable component, allowing the device to move within a designated area for comprehensive testing. The first telescopic rod 2 extends and retracts, driving the lifting component to control the height of the lifting platform 3, adjusting the platform 3 to a suitable height. The second telescopic rod 7 extends and retracts, adjusting the position of the connecting rod 8. The moving connecting rod 8 drives the connecting component to move, which in turn drives the second slider 10 to slide along the second guide rail 9. The second slider 10 connects and fixes the detector 11, thus flexibly adjusting the distance between the two sets of detectors 11 according to the actual testing environment requirements. The rotating shaft 5 is connected to the rotating platform 4, and the rotating component drives the rotating shaft 5 to rotate. The rotating shaft 5 drives the fixing plate 6 to rotate synchronously, thereby driving the detector 11 to rotate for testing. This stabilizes the placement of the detector 11, ensuring the instrument's position is stable during the testing process and guaranteeing accurate testing data.
[0030] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A mobile industrial environmental radiation detection device, comprising a base (1), a moving component, and a detector (11), characterized in that: It also includes a first telescopic rod (2), a lifting platform (3), a lifting assembly, a testing platform (4), a rotating shaft (5), a fixing plate (6), a rotating assembly, a second telescopic rod (7), a connecting rod (8), a second guide rail (9), a second slider (10), and a connecting assembly. A moving assembly is provided on the bottom surface of the base (1). A first telescopic rod (2) is provided on one side of the base (1). A lifting platform (3) is provided at one end of the first telescopic rod (2). A lifting assembly is provided on one side of the lifting platform (3). A testing platform is provided above the lifting platform (3). 4) A rotating shaft (5) is provided on one side of the testing table (4). A fixed plate (6) is provided at one end of the rotating shaft (5). A rotating component is provided on the bottom surface of the fixed plate (6). A second telescopic rod (7) is provided on one side of the fixed plate (6). A connecting rod (8) is provided at one end of the second telescopic rod (7). A connecting component is provided at both ends of the connecting rod (8). A second guide rail (9) is provided on the inner side of the fixed plate (6). A second slider (10) is provided on the outer side of the second guide rail (9). A detector (11) is provided on one side of the second slider (10).
2. A mobile industrial environment radiation detection apparatus according to claim 1, wherein: The first telescopic rod (2) is located in the center of the upper surface of the base (1), the rotating shaft (5) is located in the center of the upper surface of the testing table (4), the rotating shaft (5) and the testing table (4) are rotatably connected to each other, two sets of connecting rods (8) are symmetrically arranged, the connecting rods (8) are symmetrically arranged on both sides of the second telescopic rod (7), two sets of second guide rails (9) are symmetrically arranged, the second slider (10) and the second guide rail (9) are slidably connected to each other, and the connecting rod (8) is located on one side of the second slider (10).
3. The mobile industrial environment radiation detection apparatus of claim 1, wherein: The moving component includes an electric pulley (101) and a control panel (102). The bottom surface of the base (1) is provided with an electric pulley (101), and multiple sets of electric pulleys (101) are symmetrically arranged. The upper surface of the base (1) is provided with a control panel (102). The electric pulleys (101) and the control panel (102) are electrically connected to each other. The first telescopic rod (2) is electrically connected to the control panel (102). The second telescopic rod (7) is electrically connected to the control panel (102). The detector (11) is wirelessly connected to the control panel (102).
4. The mobile industrial environment radiation detection apparatus of claim 1, wherein: The lifting assembly includes a first guide rail (301), a baffle (302), and a damping shock absorber (303). The upper surface of the base (1) is provided with the first guide rail (301), and multiple sets of the first guide rail (301) are symmetrically arranged. The lifting platform (3) is slidably connected to the first guide rail (301). A baffle (302) is provided at one end of the first guide rail (301), and the baffle (302) is located above the lifting platform (3). A damping shock absorber (303) is provided on the upper surface of the lifting platform (3), and multiple sets of the damping shock absorber (303) are arranged. A testing platform (4) is located at one end of the damping shock absorber (303).
5. A mobile industrial environment radiation detection apparatus according to claim 3, wherein: The rotating assembly includes a rotating motor (501). The rotating motor (501) is installed on the bottom surface of the testing table (4). The output end of the rotating motor (501) is connected to the rotating shaft (5). The rotating motor (501) is electrically connected to the control panel (102).
6. A mobile industrial environment radiation detection device according to claim 5, characterized in that: The rotating assembly also includes a support rod (502), a T-shaped annular groove (503) and a T-shaped slider (504). The bottom surfaces of both ends of the fixed plate (6) are provided with support rods (502), and a T-shaped annular groove (503) is provided on one side of the detection table (4). A T-shaped slider (504) is provided at one end of the support rod (502), and the T-shaped slider (504) and the T-shaped annular groove (503) are interlocked and slidably connected.
7. A mobile industrial environment radiation detection device according to claim 1, characterized in that: The connecting assembly includes an I-shaped connecting block (1001), a slide groove (1002), and a mounting plate (1003). One end of the second telescopic rod (7) is provided with an I-shaped connecting block (1001). One end of the connecting rod (8) is rotatably connected to one side of the I-shaped connecting block (1001). One side of the fixing plate (6) is provided with a slide groove (1002). Two sets of slide grooves (1002) are symmetrically provided. One side of the second slider (10) is provided with a mounting plate (1003). Two sets of mounting plates (1003) are symmetrically provided. The other end of the connecting rod (8) is rotatably connected to the mounting plate (1003).