X-ray machine with guiding function

By designing the guiding and driving components, the problem of material position deviation in the X-ray machine was solved, enabling orderly material transportation and detection, and improving the accuracy and convenience of detection.

CN224131999UActive Publication Date: 2026-04-17GUANGDONG EASYWEIGH EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG EASYWEIGH EQUIP CO LTD
Filing Date
2025-07-11
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Materials are prone to positional deviations or confusion when entering the X-ray machine, leading to inaccurate detection.

Method used

The system employs a guide assembly and a drive assembly. Through the cooperation of the guide plate and the conveyor belt assembly, it ensures that materials enter the X-ray machine in an orderly manner for inspection. The angle of the guide plate is adjusted by the drive cylinder to control the channel size and constrain the material's trajectory.

Benefits of technology

It enables the orderly transportation and testing of materials, avoids manual adjustments, and improves the accuracy and convenience of testing.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224131999U_ABST
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Abstract

The utility model discloses an X-ray machine with a guiding function, which comprises an X-ray machine body, a material conveying assembly is arranged in the X-ray machine body, a conveying device capable of conveying materials to the material conveying assembly is arranged on one side of the X-ray machine body, the conveying device comprises a machine frame, a conveying belt assembly is arranged on the machine frame, and the conveying belt assembly is connected with the X-ray machine body. The machine frame is further provided with a guide assembly capable of guiding materials, the guide assembly comprises two guide plates rotationally connected to the machine frame, the two guide plates are located on the two sides of the conveying belt assembly, and a channel allowing articles to pass through is formed between the two guide plates. And a driving assembly capable of driving the guide plates to rotate relative to the rack is arranged between the rack and each guide plate. The X-ray machine with the guiding function can guide materials to move directionally so that the materials can move according to a preset route.
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Description

Technical Field

[0001] This utility model relates to the field of X-ray machine technology, and in particular to an X-ray machine with a guiding function. Background Technology

[0002] In traditional X-ray machines, the material loading process presents certain problems. Specifically, before entering the X-ray machine body for inspection, materials typically need to be transported to the material handling assembly inside the machine via a conveyor. However, during loading, materials may be randomly placed on the conveyor, leading to positional deviations or disorder upon entering the X-ray machine. This makes it difficult to ensure that materials enter the X-ray machine body in an orderly manner for inspection, resulting in inspection problems. Utility Model Content

[0003] The purpose of this invention is to overcome the problems of the prior art and provide an X-ray machine with a guiding function that can guide the directional movement of materials so that the materials move along a predetermined route.

[0004] To achieve the above objectives, the present invention adopts the following solution:

[0005] An X-ray machine with guiding function includes: an X-ray machine body, a material conveying assembly disposed within the X-ray machine body, a conveying device disposed on one side of the X-ray machine body capable of conveying materials to the material conveying assembly, the conveying device including a frame, a conveyor belt assembly disposed on the frame, and a guiding assembly disposed on the frame capable of guiding materials, the guiding assembly including two guide plates rotatably connected to the frame, the two guide plates being located on both sides of the conveyor belt assembly, forming a channel between the two guide plates for items to pass through, and a driving assembly disposed between the frame and each guide plate capable of driving the guide plates to rotate relative to the frame.

[0006] The guide plate includes a plate body, on which a rotating shaft is detachably connected. A slot is provided on one side of the plate body for inserting one end of the rotating shaft. A mounting base is provided on the frame, and multiple bearings are provided in the mounting base. The other end of the rotating shaft is inserted into the multiple bearings.

[0007] The drive assembly includes a rotating component connected to the rotating shaft at one end away from the plate. The drive assembly also includes a drive cylinder, which is rotatably connected to the frame. The output shaft of the drive cylinder is rotatably connected to the rotating component, and can drive the rotating component to rotate when the output shaft of the drive cylinder extends outward or retracts, thereby causing the guide plate to rotate relative to the mounting base.

[0008] The frame includes a support frame and two support plates disposed on the support frame, with the two support plates spaced apart. The conveyor belt assembly is detachably connected to the two support plates. The mounting base is disposed on the support plate, and the support plate is provided with a clearance groove that can make way for rotating parts.

[0009] The support plate is also provided with an outwardly extending bracket, and the top of the extension bracket is provided with a placement surface for placing items.

[0010] The support plate is also equipped with a shield that can cover and protect the rotating parts.

[0011] The conveyor belt assembly includes a connecting frame with a supporting top plate. A first drive roller and a second drive roller are provided at the front and rear ends of the connecting frame. A belt body capable of driving the first drive roller, the second drive roller and the connecting frame is provided between them. The connecting frame assembly is provided with outwardly extending connecting columns. The support plate is provided with a slot for the connecting columns to be inserted. A locking component is provided between the support plate and each connecting column.

[0012] The locking assembly includes a connecting seat, which is provided with a rotating shaft. A handle that can be rotatably connected to the rotating shaft is connected to the shaft. A rotating plate that can be rotatably connected to the handle is connected to the handle. A downwardly protruding flange is provided on the rotating plate. When the handle and the rotating plate are in the locked position, the flange can press down on the connecting post, thereby locking the connecting frame and the support plate.

[0013] The end of the connecting column is provided with a stop, the rotating plate is arc-shaped, and the flange is provided with a locking groove that allows the extension column to be inserted.

[0014] A transmission component capable of driving the conveyor belt assembly is also provided between the frame and the conveyor belt assembly.

[0015] Compared with existing technologies, this utility model has the following advantages: In use, the two guide plates in the guide assembly are located on both sides of the conveyor belt assembly, forming a channel that guides items through the conveyor belt assembly into the material conveying assembly, ensuring that the materials enter the X-ray machine body 1 for inspection in an orderly manner. At the same time, the angle of the guide plates relative to the frame can be adjusted by the drive assembly to expand or shrink the size of the channel. Meanwhile, when the material moves along the conveyor belt assembly, the material can abut against the wall of the guide plate, thereby effectively constraining the trajectory of the material, facilitating the transportation of the material, and making the material move along the predetermined position, making loading more convenient. Moreover, there is no need for manual adjustment of the material position, making it more convenient to use. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of the X-ray machine with guiding function according to this utility model;

[0017] Figure 2 This is a schematic diagram of the transport device for an X-ray machine with guiding function according to this utility model;

[0018] Figure 3 This is a partially enlarged view of the transport device of the X-ray machine with guiding function according to this utility model;

[0019] Figure 4 This is a schematic diagram of the drive assembly of the X-ray machine with guiding function according to this utility model;

[0020] Figure 5 This is a schematic diagram of the conveyor belt assembly of the X-ray machine with guiding function according to this utility model;

[0021] Figure 6 This is a schematic diagram of the locking assembly of the X-ray machine with guiding function according to this utility model;

[0022] Figure 7 This is a schematic diagram of the transmission assembly of the X-ray machine with guiding function according to this utility model. Detailed Implementation

[0023] The present invention will be further described in detail below with reference to embodiments:

[0024] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.

[0025] like Figures 1 to 7 As shown,

[0026] An X-ray machine with guiding function includes: an X-ray machine body 1, a material conveying assembly 2 disposed inside the X-ray machine body 1, a conveying device 3 disposed on one side of the X-ray machine body 1 for conveying materials to the material conveying assembly 2, the conveying device 3 including a frame 31, a conveyor belt assembly 32 disposed on the frame 31, and a guiding assembly 33 disposed on the frame 31 for guiding materials, the guiding assembly 33 including two guide plates 331 rotatably connected to the frame 31, the two guide plates 331 being located on both sides of the conveyor belt assembly 32, a channel 332 for items to pass through being formed between the two guide plates 331, and a driving assembly 34 disposed between the frame 31 and each guide plate 331 for driving the guide plates 331 to rotate relative to the frame 31.

[0027] In use, the two guide plates 331 in the guide assembly 33 are located on both sides of the conveyor belt assembly 32, forming a channel 332. This channel guides items through the conveyor belt assembly 32 and onto the material conveying assembly 2, ensuring that the materials enter the X-ray machine body 1 for inspection in an orderly manner. At the same time, the angle of the guide plates 331 relative to the frame 31 can be adjusted by the drive assembly 34 to expand or shrink the size of the channel 332. Furthermore, when the material moves along the conveyor belt assembly 32, it can abut against the wall of the guide plate 331, thereby effectively constraining the material's trajectory, facilitating material transportation, and allowing the material to move along a predetermined position. This makes loading more convenient and eliminates the need for manual adjustment of the material's position, making it more convenient to use.

[0028] The guide plate 331 includes a plate body 3311, on which a rotating shaft 3312 is detachably connected. A slot 3313 is provided on one side of the plate body 3311, into which one end of the rotating shaft 3312 can be inserted. A mounting base 3314 is provided on the frame 31, and multiple bearings 3315 are provided in the mounting base 3314. The other end of the rotating shaft 3312 is inserted into the multiple bearings 3315.

[0029] The mounting base 3314 facilitates the installation of the rotating shaft 3312, which is rotatably connected by the bearing 3315, allowing the plate 3311 to rotate relative to the frame 31, thereby adjusting the size and position of the channel 332.

[0030] The drive assembly 34 includes a rotating member 341 connected to the end of the rotating shaft 3312 away from the plate 3311. The drive assembly 34 also includes a drive cylinder 342, which is rotatably connected to the frame 31. The output shaft of the drive cylinder 342 is rotatably connected to the rotating member 341, and when the output shaft of the drive cylinder 342 extends or retracts, it can drive the rotating member 341 to rotate, thereby causing the guide plate 331 to rotate relative to the mounting base 3314. Through the connection between the output shaft of the drive cylinder 342 and the rotating member 341, the drive assembly 34 achieves precise control of the angle of the guide plate 331. When the output shaft of the drive cylinder 342 extends or retracts, it can drive the rotating member 341 to rotate, thereby driving the guide plate 331 to rotate around the rotating shaft 3312 relative to the mounting base 3314.

[0031] The frame 31 includes a support frame body 311 and two support plates 312 disposed on the support frame body 311, with a gap between the two support plates 312. The conveyor belt assembly 32 is detachably connected to the two support plates 312, and the mounting base 3314 is disposed on the support plate 312. The support plate 312 is provided with a clearance groove 3121 to allow space for the rotating component 341. The frame 31 consists of the support frame body 311 and the support plates 312, with the conveyor belt assembly 32 detachably connected to the two support plates 312. This modular design makes the connection between the various components more flexible, facilitating the installation, maintenance, and replacement of the equipment. The clearance groove 3121 on the support plate 312 provides sufficient space for the rotating component 341, preventing interference between the rotating component and the support plate during movement.

[0032] The support plate 312 is also provided with an outwardly extending support bracket 313, and the top of the extension bracket 313 is provided with a placement surface 3131 for placing items. The function of the extension bracket 313 and the placement surface 3131 is to place items. When the material is damaged externally, the material is transferred to the extension bracket 313 and the placement surface 3131 by the guidance of two guide plates 331.

[0033] The support plate 312 is also provided with a shield 4 that can shield and protect the rotating component 341. The shield 4 is used to protect the rotating component 341 and the connection between the rotating component 341 and the rotating shaft 3312, to prevent foreign objects from entering and being hit by other objects, thus providing better protection.

[0034] The conveyor belt assembly 32 includes a connecting frame 321 with a supporting top plate. A first drive roller 322 and a second drive roller 323 are provided at the front and rear ends of the connecting frame 321. A belt body 324, capable of driving the first drive roller 322, the second drive roller 323, and the connecting frame 321, is provided between them. The connecting frame 321 assembly includes outwardly extending connecting posts 3211. A support plate 312 is provided with slots 3122 for the connecting posts 3211 to engage. Locking components 5 are provided between the support plate 312 and each connecting post 3211. When the first drive roller 322 and the second drive roller 323 rotate, the belt body 324 rotates, thereby transporting the material on the belt body 324. The connecting column 3211 of the connecting frame 321 and the slot 3122 of the support plate 312 form a positioning fit. During installation, the connecting column 3211 only needs to be slid into the slot 3122 to complete the pre-positioning. The locking component 5 is used to lock the connecting frame 321 and the support plate 312 together.

[0035] The locking assembly 5 includes a connecting seat 51, which is provided with a rotating shaft 52. A handle 53, which is rotatably connected to the rotating shaft 52, is connected to the handle 53. A rotating plate 54, which is rotatably connected to the handle 53, is provided with a downwardly protruding flange 55. When the handle 53 and the rotating plate 54 are in the locked position, the flange 55 can press down on the connecting post 3211, thereby locking the connecting frame 321 and the support plate 312. When the handle plate 53 and the rotating plate 54 are in the locked position, the flange 55 on the rotating plate 54 can directly press down on the extension 1131 of the support plate assembly 113, ensuring that the support plate assembly 113 and the connecting plate 112 are firmly locked. By rotating the handle plate 53 and the rotating plate 54 in the opposite direction, the flange 55 is disengaged from the connecting post 3211, releasing the pressure on the connecting post 3211, and the entire conveyor belt assembly 32 can be detached from the support plate 312.

[0036] The end of the connecting column 3211 is provided with a stop 3212, the rotating plate 54 is arc-shaped, and the flange 55 is provided with a locking groove 551 for the extension column to be inserted. The stop 3212 is limited in the vertical direction by the flange 55, which completely prevents relative sliding between the support plate assembly 113 and the connecting plate 112 in the locked state.

[0037] A transmission component 6, capable of driving the conveyor belt assembly 32, is also provided between the frame 31 and the conveyor belt assembly 32. The transmission component 6 is a rotating wheel-driven belt assembly or a transmission gear assembly, used to drive the conveyor belt assembly 32.

[0038] The present invention has been described in detail above. However, modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, any modifications or improvements that do not depart from the spirit of the present invention are within the protection scope of the present invention.

Claims

1. An X-ray machine with a guiding function, characterized in that, include: X-ray machine body (1), the X-ray machine body (1) is provided with a material conveying assembly (2), and a conveying device (3) is provided on one side of the X-ray machine body (1) to transport materials to the material conveying assembly (2). The conveying device (3) includes a frame (31), a conveyor belt assembly (32) is provided on the frame (31), and a guide assembly (33) is provided on the frame (31) to guide materials. The guide assembly (33) includes two guide plates (331) rotatably connected to the frame (31). The two guide plates (331) are located on both sides of the conveyor belt assembly (32), and a channel (332) is formed between the two guide plates (331) to allow items to pass through. A drive assembly (34) is provided between the frame (31) and each guide plate (331) to drive the guide plates (331) to rotate relative to the frame (31).

2. The X-ray machine with guiding function according to claim 1, characterized in that, The guide plate (331) includes a plate body (3311), on which a rotating shaft (3312) is detachably connected. A slot (3313) is provided on one side of the plate body (3311) for inserting one end of the rotating shaft (3312). A mounting base (3314) is provided on the frame (31), and multiple bearings (3315) are provided in the mounting base (3314). The other end of the rotating shaft (3312) is inserted into the multiple bearings (3315).

3. The X-ray machine with guiding function according to claim 2, characterized in that, The drive assembly (34) includes a rotating member (341) connected to the end of the rotating shaft (3312) away from the plate (3311). The drive assembly (34) also includes a drive cylinder (342), which is rotatably connected to the frame (31). The output shaft of the drive cylinder (342) is rotatably connected to the rotating member (341), and when the output shaft of the drive cylinder (342) extends outward or retracts, it can drive the rotating member (341) to rotate, thereby causing the guide plate (331) to rotate relative to the mounting base (3314).

4. The X-ray machine with guiding function according to claim 3, characterized in that, The frame (31) includes a support frame (311) and two support plates (312) disposed on the support frame (311). The two support plates (312) are spaced apart. The conveyor belt assembly (32) is detachably connected to the two support plates (312). The mounting base (3314) is disposed on the support plate (312). The support plate (312) is provided with a clearance groove (3121) that can make way for the rotating part (341).

5. The X-ray machine with guiding function according to claim 4, characterized in that, The support plate (312) is also provided with an outwardly extending support (313), and the top of the extension support (313) is provided with a placement surface (3131) for placing items.

6. The X-ray machine with guiding function according to claim 4, characterized in that, The support plate (312) is also provided with a shield (4) that can cover and protect the rotating part (341).

7. The X-ray machine with guiding function according to claim 4, characterized in that, The conveyor belt assembly (32) includes a connecting frame (321) with a supporting top plate. The connecting frame (321) has a first drive roller (322) and a second drive roller (323) at its front and rear ends. A belt body (324) capable of driving the first drive roller (322), the second drive roller (323) and the connecting frame (321) is provided between them. The connecting frame (321) assembly is provided with an outwardly extending connecting post (3211). The support plate (312) is provided with a slot (3122) into which the connecting post (3211) can be inserted. A locking assembly (5) is provided between the support plate (312) and each connecting post (3211).

8. The X-ray machine with guiding function according to claim 7, characterized in that, The locking assembly (5) includes a connecting seat (51), the connecting seat (51) is provided with a rotating shaft (52), the rotating shaft (52) is connected to a handle (53) that can be rotated relative to it, the handle (53) is connected to a rotating plate (54) that can be rotated relative to it, the rotating plate (54) is provided with a downward protruding flange (55), when the handle (53) and the rotating plate (54) are in the locked position, the flange (55) can press down on the connecting post (3211) so that the connecting frame (321) and the support plate (312) are locked.

9. The X-ray machine with guiding function according to claim 8, characterized in that, The end of the connecting column (3211) is provided with a stop (3212), the rotating plate (54) is arc-shaped, and the flange (55) is provided with a locking groove (551) that allows the extension column to be inserted.

10. The X-ray machine with guiding function according to claim 1, characterized in that, A transmission component (6) capable of driving the conveyor belt assembly (32) is also provided between the frame (31) and the conveyor belt assembly (32).