A detection imaging assembly mounting structure

By combining the support frame and the fixing components, the problem of inconvenient installation and cumbersome disassembly of X-ray digital imaging equipment during the detection process is solved, enabling quick and easy installation and disassembly of the detection imaging components, thus improving the flexibility and efficiency of the equipment.

CN224680420UActive Publication Date: 2026-08-25SICHUAN DIPAIRUI TECH CO LTD
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Patent Information

Application Number
CN202521664825.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-06
Publication Date
2026-08-25
Estimated Expiration
2035-08-06

AI Technical Summary

Technical Problem

Existing X-ray digital imaging equipment is inconvenient to install and move during the detection process, and the installation and disassembly of the detection imaging components are cumbersome and time-consuming when switching between integrated and split modes.

Method used

The system employs a combination structure of a support frame and fasteners. The support frame is fixed to the bottom of the detection imaging component, and the clamping plate is connected by screws and crossbars. The clamping plate hooks onto the convex plate of the base to achieve quick installation and disassembly. The crossbar is raised and lowered using a knob to lock and unlock.

Benefits of technology

It enables rapid installation and disassembly of the detection imaging components, simplifies the operation process, and improves the flexibility and efficiency of the equipment in different modes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of detection imaging assembly mounting structure, it is related to installation fixed technical field, and it includes: support frame is fixed in the bottom of detection imaging assembly, the bottom opening of support frame is set, and its four inner walls are all provided with protruding plate;Base sequentially includes bottom plate, rectangular frame and backing plate, backing plate top is equipped with placing groove, bottom is equipped with through groove, placing groove is communicated with through groove, placing groove is used to place support frame, and the inner wall of each through groove is equipped with horizontal U-shaped plate, and the two inner walls between U-shaped plate are equipped with cylinder;Fixed part includes screw rod, cross and four clamps, screw rod is screwed through bottom plate, screw rod top is rotatably connected to cross bottom, and the four supporting plates of cross are rotatably connected one clamp respectively, clamp is located in corresponding U-shaped plate, and the side of corresponding protruding plate of clamp is equipped with hook plate, for hooking the top of protruding plate, and be equipped with inclined groove on clamp, and cylinder is matched in inclined groove. The present scheme can improve the efficiency of detection imaging assembly installation or disassembly.
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Description

Technical Field

[0001] This utility model relates to the field of installation and fixing technology, and in particular to an installation structure for a detection imaging component. Background Technology

[0002] Accidents involving critical transportation pipelines, such as oil and gas pipelines, can cause not only enormous economic losses but also incalculable harm to society and the environment. Typically, X-ray digital imaging equipment is used to inspect these pipelines and facilitate timely repair of damaged areas. However, existing X-ray digital imaging equipment is a large, integrated system, which presents challenges in installation and relocation, and it cannot handle the complex conditions of pipelines on-site, resulting in unsatisfactory inspection results.

[0003] To address the aforementioned issues, CN2021225894780 provides a multifunctional X-ray digital imaging device. This device is designed as a split unit, with the controller assembly and the detection imaging component connected via a bridging assembly and mounted together on a gear ring. The power mechanism, in conjunction with the gear ring, enables the imaging device to automatically rotate and perform detection. In complex on-site situations, the imaging device can be separated. Simply use elastic straps to attach the detection imaging component to the pipe, and then connect the controller assembly and the detection imaging component using connecting cables, thus enabling staged detection.

[0004] However, the above solution has the following problems: the detection imaging component is fixedly connected to the adjustment component by multiple screws. The adjustment component is located at the end of the bridging component and is used to adjust the height of the detection imaging component. When the device is switched between integrated and split modes, the installation and disassembly process of the detection imaging component is very cumbersome and time-consuming. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model provides a mounting structure for a detection imaging component, thereby improving the efficiency of installing or disassembling the detection imaging component.

[0006] In order to achieve the purpose of this utility model, the following solution is proposed: An imaging component mounting structure includes a base, a support frame, and a fixing component.

[0007] The support frame is fixedly installed at the bottom of the detection imaging component. The bottom of the support frame is open, and its four inner walls are provided with protruding plates. The base consists of a base plate, a rectangular frame, and a support plate from bottom to top. The support plate has a placement groove at the top and a through groove at the bottom. The placement groove and the through groove are connected, and the length and width of the former are greater than the length and width of the latter, respectively. The placement groove is used to place the support frame. Each through groove has a horizontal U-shaped plate on its inner wall, and a cylinder is provided between the two inner walls of the U-shaped plate. The fastener includes a screw, a cross, and four clamping plates. The screw is threaded through the base plate and its top is rotatably connected to the bottom of the cross. Each of the four support plates of the cross is rotatably connected to a clamping plate. The clamping plates are located inside the corresponding U-shaped plates. The side of the clamping plate facing the corresponding convex plate has a hook plate for hooking the top of the convex plate. The clamping plate has a slanted groove, and the cylinder matches in the slanted groove. When the cross moves upward, it is used to flip the clamping plate and release the hook plate from locking.

[0008] Furthermore, a knob is provided at the bottom of the screw.

[0009] Furthermore, the two sides of the clamp are tightly attached to the two inner walls of the U-shaped plate.

[0010] Furthermore, handle grooves are provided on the opposite side walls of the support frame.

[0011] The advantages of this utility model are as follows: the detection imaging component is placed in the placement slot, and only one knob needs to be rotated to complete the installation and fixation of the detection imaging component; when it is necessary to disassemble the detection imaging component, simply rotate the knob in the other direction to unlock it. The entire installation or disassembly process is very simple and quick. Attached Figure Description

[0012] Figure 1 An external structural diagram of the detection imaging component mounting structure is shown; Figure 2 A structural diagram of the base's interior is shown; Figure 3 A side view of the mounting structure of the detection imaging component is shown; Figure 4 A partial schematic diagram shows the hook plate hooking onto the convex plate; Figure 5 A partial schematic diagram of the hook plate disengaging from the convex plate is shown. Detailed Implementation

[0013] like Figure 1 , Figure 2 As shown, this embodiment provides a detection imaging component mounting structure, including a base 1, a support frame 2, and a fixing component 3.

[0014] Specifically, such as Figure 1 , Figure 4 As shown, the support frame 2 is fixedly installed at the bottom of the detection imaging component. The bottom of the support frame 2 is open, and each of the four inner walls of the support frame 2 is provided with a protruding plate 21. More precisely, the protruding plate 21 is located at the bottom of the support frame 2.

[0015] Specifically, such as Figure 1 , Figure 2 , Figure 4As shown, the base 1 includes a base plate 11, a rectangular frame 12, and a support plate 13. The rectangular frame 12 is fixedly mounted on the top of the base plate 11, and the support plate 13 is fixedly mounted on the top of the rectangular frame 12. The top of the support plate 13 is provided with a placement groove 131, and the bottom of the support plate 13 is provided with a through groove 132. Figure 2 The four inner walls of the through groove 132 correspond one-to-one with the four inner walls of the rectangular frame 12 and have the same size. The placement groove 131 is connected to the through groove 132, and the length and width of the former are greater than the length and width of the latter, that is, a step is formed inside the support plate 13. The placement groove 131 is used to place the support frame 2, and the size of the placement groove 131 matches the size of the support frame 2. Each through groove 132 has a horizontal U-shaped plate 14 on its inner wall. The opening of the U-shaped plate 14 faces the inner wall of the corresponding through groove 132. A cylinder 15 is provided between the two inner walls of the U-shaped plate 14.

[0016] Specifically, such as Figures 2-4 As shown, the fastener 3 includes a screw 31, a cross 32, and four clamping plates 33. The base plate 11 has a threaded hole, and the screw 31 is threaded through the threaded hole of the base plate 11. The bottom of the screw 31 has a knob 311, and the top of the screw 31 is rotatably connected to the bottom of the cross 32. The four support plates of the cross 32 are rotatably connected to a clamping plate 33. The clamping plate 33 is located inside the corresponding U-shaped plate 14, and the two sides of the clamping plate 33 are respectively in close contact with the two inner walls of the U-shaped plate 14. The side of the clamping plate 33 facing the corresponding convex plate 21 has a hook plate 34, which is used to hook the top of the convex plate 21. The clamping plate 33 has a sloping groove 331. Along the opening direction of the U-shaped plate 14, the sloping groove 331 is inclined downward, and the cylinder 15 is matched in the corresponding sloping groove 331.

[0017] The disassembly principle is as follows: Figure 4 In the view, the cylinder 15 is at the highest point of the inclined groove 331, and the hook plate 34 hooks the top of the protruding plate 21. When it is necessary to release the lock of the hook plate 34, the operator rotates the knob 311 to cause the cross 32 to move upward. Because the clamping plate 33 is confined within the U-shaped plate 14, and the bottom end of the clamping plate 33 is rotatably connected to the cross 32, therefore... Figure 4 In the view, as the cross 32 moves upward, it causes the clamp 33 to flip to the left until... Figure 5 In this state, the cylinder 15 is located at the lowest point of the inclined groove 331, and the hook plate 34 is disengaged from the protrusion plate 21.

[0018] Instructions for use: When clamp 33 is in position Figure 2When the device is in the correct position, the operator places the imaging assembly into the placement slot 131; more precisely, the operator places the support frame 2 into the placement slot 131. The operator then rotates knob 311, causing the cross 32 to move downwards. When knob 311 can no longer be rotated, it indicates that the hook plate 34 has hooked onto the protrusion 21, thus completing the installation of the imaging assembly. When the imaging assembly needs to be disassembled, the operator rotates knob 311 again, causing the cross 32 to move upwards, until knob 311 can no longer be rotated, indicating that the hook plate 34 has disengaged from the protrusion 21, and the imaging assembly and support frame 2 can then be removed. Throughout the above process, both the installation and disassembly of the imaging assembly are very simple and quick.

[0019] To facilitate the transport of the detection imaging components, such as Figure 1 As shown, in this embodiment, handle grooves 24 are provided on both opposite side walls of the support frame 2 so that workers can hold it.

[0020] Two additional points are added here: ① In the multifunctional X-ray digital imaging device, the base 1 can be installed on the adjustment component. The adjustment component has been disclosed in CN2021225894780, and its structure will not be described in detail here; ② The support frame 2 can be pre-fixed to the bottom of the detection imaging component by multiple screws. The support frame 2 only needs to be installed once. In subsequent use of the multifunctional X-ray digital imaging device, whether it adopts the integrated mode or the split mode, there is no need to disassemble the support frame 2.

[0021] The above embodiments are only used to illustrate the technical concept and features of this utility model, and are not intended to be unique or to limit this utility model. Those skilled in the art should understand that various changes or equivalent substitutions made to this utility model without departing from its scope are all within the protection scope of this utility model.

Claims

1. A mounting structure for a detection imaging component, characterized in that, Includes base (1), support frame (2), and fastener (3); The support frame (2) is fixedly installed at the bottom of the detection imaging component. The bottom opening of the support frame (2) is provided, and the four inner walls are provided with protruding plates (21). The base (1) includes a bottom plate (11), a rectangular frame (12) and a support plate (13) from bottom to top. The support plate (13) has a placement groove (131) at the top and a through groove (132) at the bottom. The placement groove (131) and the through groove (132) are connected, and the length and width of the former are greater than the length and width of the latter, respectively. The placement groove (131) is used to place the support frame (2). Each through groove (132) has a horizontal U-shaped plate (14) on its inner wall, and a cylinder (15) is provided between the two inner walls of the U-shaped plate (14). The fastener (3) includes a screw (31), a cross (32) and four clamps (33). The screw (31) is threaded through the base plate (11). The top of the screw (31) is rotatably connected to the bottom of the cross (32). The four support plates of the cross (32) are rotatably connected to a clamp (33). The clamp (33) is located in the corresponding U-shaped plate (14). The clamp (33) has a hook plate (34) on the side facing the corresponding convex plate (21) for hooking the top of the convex plate (21). The clamp (33) has a slanted groove (331). The cylinder (15) is matched in the slanted groove (331). When the cross (32) moves up, it is used to flip the clamp (33) and release the lock of the hook plate (34).

2. The mounting structure for the detection imaging component according to claim 1, characterized in that, A knob (311) is provided at the bottom of the screw (31).

3. The mounting structure for the detection imaging component according to claim 1, characterized in that, The two sides of the clamp (33) are tightly attached to the two inner walls of the U-shaped plate (14).

4. The mounting structure for the detection imaging component according to claim 1, characterized in that, The support frame (2) has handle grooves (24) on its opposite side walls.