X-ray machine convenient for moving and transporting device

By introducing adjustment components and a sliding support structure into the X-ray machine, the problem of fixed position of the traditional X-ray machine transport device is solved, realizing flexible adjustment and precise position adjustment of the transport components, and improving the accuracy and adaptability of the detection.

CN224076405UActive Publication Date: 2026-04-03GUANGDONG EASYWEIGH EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-11
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The transport device of a traditional X-ray machine is fixedly connected to the machine casing, making it impossible to adjust its position according to the size of the sample to be tested, which affects the accuracy and efficiency of the test.

Method used

An X-ray machine with a mobile transport device was designed. The transport component can be flexibly adjusted in position by adjusting the components. Combined with the support frame and crossbar sliding structure, the transport component can be moved smoothly on a predetermined trajectory and work in conjunction with the X-ray transmitter and receiver.

Benefits of technology

It improves the accuracy and adaptability of testing. The position adjustment of the transport components is simple and stable, and can be precisely adjusted to adapt to different testing needs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an X-ray machine convenient to move a transportation device, which comprises a machine shell, the machine shell is provided with a containing cavity, an X-ray emitter is arranged in the containing cavity, the machine shell is further provided with a mounting groove, a transportation assembly is arranged in the mounting groove, and an adjusting assembly capable of adjusting the position of the transportation assembly is arranged between the machine shell and the transportation assembly. The machine shell is further provided with a receiver assembly capable of receiving X-rays emitted by the X-ray emitter, the receiver assembly penetrates through the adjusting assembly, the adjusting assembly comprises a supporting frame capable of sliding relative to the machine shell, the left end and the right end of the supporting frame are both connected with supporting plates, and the conveying assembly is connected to the two supporting plates. And a cross rod capable of penetrating through the support frame and allowing the support frame to slide is arranged on the shell. According to the X-ray machine facilitating movement of the conveying device, the conveying assembly can be moved conveniently, the conveying assembly can enable materials and the x-ray emitter to correspond to the optimal detection position, and the detection accuracy is improved.
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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 that is easy to move and transport. Background Technology

[0002] X-ray machines are an important food inspection device, widely used in the inspection of various finished food products and packaging. However, traditional X-ray machines have some shortcomings in use, especially in terms of mobility, transportation, and inspection flexibility.

[0003] In existing technologies, the transport device of an X-ray machine is typically fixedly connected to the machine casing, and its position is not adjustable. This means that when testing samples of different sizes, the transport device cannot be flexibly adjusted according to the size of the sample and the testing requirements. For example, when the sample size is large or the testing area is special, the transport device cannot accurately move the sample to the optimal testing position, thus affecting the accuracy and efficiency of the testing. Utility Model Content

[0004] The purpose of this invention is to overcome the problems of the prior art and provide an X-ray machine that is easy to move and transport. This X-ray machine can easily move the transport component, so that the transport component can align the material with the X-ray emitter at the optimal detection position, thereby improving the accuracy of detection.

[0005] To achieve the above objectives, the present invention adopts the following solution:

[0006] An X-ray machine with a mobile transport device includes: a housing, the housing having a receiving cavity, an X-ray transmitter being disposed within the receiving cavity, the housing also having a mounting groove, a transport component being disposed within the mounting groove, an adjustment component being disposed between the housing and the transport component, an adjustment component capable of adjusting the position of the transport component, a receiver component being disposed on the housing capable of receiving X-rays emitted by the X-ray transmitter, the receiver component being disposed through the adjustment component, the adjustment component including a support frame capable of sliding relative to the housing, support plates being connected to both ends of the support frame, the transport component being connected to the two support plates, and a crossbar being disposed on the housing capable of passing through the support frame and allowing the support frame to slide.

[0007] The support frame includes a slider slidably connected to a crossbar, a support seat arranged along the length of the mounting groove on the slider, T-shaped support blocks arranged at the front and rear ends of the support seat, and support plates connected between the left and right sides of the two support blocks. The transport component is detachably connected between the two support plates.

[0008] The support plate is provided with a clearance slot that allows space for the receiver assembly.

[0009] The receiver assembly includes a housing with a cavity and a receiver body disposed within the cavity. The housing is provided with a cover plate that can seal the cavity. The housing is provided with a first slot and a second slot that allow the housing to be snapped into. The second slot and the second slot are respectively disposed on the wall surfaces on both sides of the mounting slot.

[0010] The X-ray emitter is connected to an air guide assembly capable of heat exchange and upward airflow. The housing is also equipped with an exhaust component and an air conditioning component connected to the exhaust component. An isolation plate is also provided on the housing between the air guide assembly and the air conditioning component. A notch is provided between the top of the isolation plate and the inner wall of the housing to form a hot air channel between the air guide assembly, the notch and the exhaust component. A heat dissipation airflow assembly capable of providing cool air to the air guide assembly is provided between the air conditioning component, the isolation plate and the air guide assembly.

[0011] The air guiding assembly includes a mounting bracket connected to the X-ray emitter, a second support plate is provided on the mounting bracket, the second support plate is provided with multiple through holes, multiple guide fans corresponding to the positions of the through holes are also provided above the second support plate, and multiple guide plates are provided below the second support plate, with a ventilation duct for cold air to pass through formed between two adjacent guide plates.

[0012] The heat dissipation airflow assembly includes multiple pipes disposed on the isolation plate and extending toward the air conditioning assembly. The pipes are provided with ventilation channels. The outlet of the ventilation channel is disposed toward the air guide assembly, and the height of the outlet is lower than the height of the air guide assembly. The inlet of the ventilation channel is disposed toward the air conditioning assembly.

[0013] An extension plate extending outward is provided on the side of the pipe near the air conditioning unit.

[0014] The housing includes a shell and a door that can be opened or closed relative to the shell. The receiving cavity is disposed in the shell, and the air extraction component and air conditioning component are disposed on the door. The door is provided with an air outlet that corresponds to the inlet position of the pipe. When the door is closed on the shell, the extension plate is fitted to the door so that the air outlet is aligned and connected with the inlet.

[0015] The exhaust component includes a mounting plate detachably connected to the door, an exhaust fan is mounted on the mounting plate, and the exhaust fan is connected to the air conditioning unit by a pipe.

[0016] Compared with existing technologies, this utility model has the following advantages: When using an X-ray machine with a convenient mobile transport device, the position of the transport component can be flexibly adjusted by adjusting the components. This design allows the transport component to be precisely adjusted according to different detection needs and sample sizes, thereby better cooperating with the X-ray transmitter and receiver components, improving the accuracy and adaptability of the detection. Since the support frame is set on the crossbar, adjustment only requires pushing the support plate, which then allows the support frame to slide left and right along the crossbar. The adjustment method is simple, and the crossbar and support frame work together to ensure that the transport component always moves smoothly on the predetermined trajectory, making it more stable. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the structure of the X-ray machine for easy mobile transportation of this utility model;

[0018] Figure 2 This is one of the structural schematic diagrams of the adjustment components of the X-ray machine for easy mobility and transportation of this utility model;

[0019] Figure 3 This is the second schematic diagram of the adjustment assembly of the X-ray machine for easy mobility and transportation of this utility model;

[0020] Figure 4 This is a schematic diagram of the housing of the adjustment assembly of the X-ray machine for the convenient mobile transportation device of this utility model;

[0021] Figure 5 This is a cross-sectional view of the X-ray machine for the mobile transportation device of this utility model;

[0022] Figure 6 This is a schematic diagram of the heat dissipation airflow assembly of the X-ray machine, which is a portable transportation device according to this utility model.

[0023] Figure 7 This is a schematic diagram of the air guide assembly of the X-ray machine, which is a mobile transportation device according to this utility model;

[0024] Figure 8 This is an exploded view of the air guide assembly of the X-ray machine, which is a mobile transportation device according to this utility model.

[0025] Figure 9 This is an exploded view of the receiver assembly of the X-ray machine, which is a portable transportation device according to this utility model. Detailed Implementation

[0026] The present invention will be further described in detail below with reference to embodiments:

[0027] 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.

[0028] like Figures 1 to 9 As shown, an X-ray machine with a mobile transport device includes: a housing 1, wherein the housing 1 is provided with a receiving cavity 11, wherein an X-ray transmitter 2 is disposed in the receiving cavity 11, the housing 1 is also provided with a mounting groove 12, wherein a transport component 3 is disposed in the mounting groove 12, and an adjustment component 4 is provided between the housing 1 and the transport component 3 to adjust the position of the transport component 3, wherein the housing 1 is also provided with a receiver component 5 capable of receiving X-rays emitted by the X-ray transmitter 2, the receiver component 5 being disposed through the adjustment component 4, the adjustment component 4 including a support frame 41 capable of sliding relative to the housing 1, wherein support plates 42 are connected to both ends of the support frame 41, the transport component 3 being connected to the two support plates 42, and a crossbar 13 being provided on the housing 1 to pass through and allow the support frame 41 to slide.

[0029] When using the X-ray machine with the convenient mobile transport device of this utility model, the position of the transport component 3 can be flexibly adjusted by adjusting component 4. This design allows the transport component to be precisely adjusted according to different detection needs and sample sizes, thereby better cooperating with the work of the X-ray transmitter 2 and receiver component 5, improving the accuracy and adaptability of detection. Since the support frame 41 is set on the crossbar 13, when adjusting, it is only necessary to push the support plate 42, so that the support frame 41 can slide left and right along the crossbar 13. The adjustment method is simple, and the crossbar 13 and the support frame 41 work together to ensure that the transport component 3 always moves smoothly on the predetermined trajectory, making it more stable.

[0030] The support frame 41 includes a slider 411 slidably connected to the crossbar 13. A support seat 412 is provided on the slider 411 along the length of the mounting groove 12. T-shaped support blocks 413 are provided at both ends of the support seat 412. Support plates 42 are connected between the left and right sides of the two support blocks 413. The transport component 3 is detachably connected between the two support plates 42. The support frame 41 is slidably connected to the crossbar 13 via the slider 411 for easy movement. The support seat 412 and the two support blocks 413 facilitate support and improve the overall strength of the support frame 41. The support plates 42 facilitate the installation of the transport component 3. The detachable design of the transport component 3 between the two support plates 42 makes the installation and disassembly of the transport component very convenient and quick.

[0031] The support plate 42 is provided with a clearance groove 421 that can make way for the receiver assembly 5. The clearance groove 421 is provided to make way for the receiver assembly 5 so that the bottom surface of the receiver assembly 5 can rest on the groove wall of the clearance groove 421, and the receiver assembly 5 is supported, resulting in better support.

[0032] The receiver assembly 5 includes a housing 51 with a cavity 511 and a receiver body 52 disposed within the cavity 511. The housing 51 has a cover plate 53 that can seal the cavity 511. The housing 51 has a first slot 15 and a second slot 16 for the housing 51 to be inserted into. The second slot 16 is respectively disposed on the walls on both sides of the mounting slot 12. The first slot 15 and the second slot 16 facilitate the insertion of the receiver assembly 5, allowing it to be quickly connected to the housing 1. The housing 51 and the cover plate 53 protect the receiver body 52.

[0033] The X-ray emitter 2 is connected to an air guide assembly 6 that can exchange heat and guide air upwards. The housing 1 is also provided with an exhaust component 7 and an air conditioning component 8 that communicates with the exhaust component 7. An isolation plate 17 is also provided on the housing 1 between the air guide assembly 6 and the air conditioning component 8. A notch 18 is provided between the top of the isolation plate 17 and the inner wall of the housing 1 so that a hot air channel A is formed between the air guide assembly 6, the notch 18 and the exhaust component 7. A heat dissipation airflow assembly 9 that can provide cold air to the air guide assembly 6 is provided between the air conditioning component 8, the isolation plate 17 and the air guide assembly 6. The air guide assembly 6 exchanges heat with the X-ray emitter 2 and guides the hot air upward. The exhaust component 7 is activated, and the hot air moves along the hot air channel A between the air guide assembly 6, the top notch 18 of the isolation plate 17 and the exhaust component 7, and is directed to the exhaust component 7. The exhaust component 7 transports the hot air to the air conditioning assembly 8. The cold air generated by the air conditioning assembly 8 is accurately delivered to the area of ​​the air guide assembly 6 through the heat dissipation air duct assembly 9, thereby dissipating heat from the X-ray emitter 2.

[0034] The air guiding assembly 6 includes a mounting bracket 61 connected to the X-ray emitter 2. A second support plate 62 is mounted on the mounting bracket 61, and the second support plate 62 has multiple through holes 621. Above the second support plate 62, multiple guide fans 63 corresponding to the positions of the through holes 621 are also provided. Below the second support plate 62, multiple guide plates 64 are provided, and a ventilation channel 641 is formed between adjacent guide plates 64 to allow cold air to pass through. The second support plate 62 and its through holes 621 on the mounting bracket 61 provide a basic channel for airflow. The guide fans 63 above the second support plate 62 guide the cold air and exchange heat through the guide plates 64. The cold air gradually becomes hot air and moves towards the notch 18 under the guidance of the guide fans 63. The ventilation channel 641 formed by the specifically arranged guide plates 64 precisely constrains and guides the flow of cold air, ensuring that the cold air passes through the multiple guide plates 64 in a concentrated and orderly manner, improving heat dissipation efficiency.

[0035] The heat dissipation airflow assembly 9 includes multiple pipes 91 disposed on the isolation plate 17 and extending towards the air conditioning assembly 8. Each pipe 91 has a ventilation channel 911. The outlet 9111 of the ventilation channel 911 faces the air guide assembly 6, and the height of the outlet 9111 is lower than the height of the air guide assembly 6. The inlet 9112 of the ventilation channel 911 faces the air conditioning assembly 8. The heat dissipation airflow assembly 9 receives cold air through the multiple pipes 91 disposed on the isolation plate 17, with the inlet 9112 of the ventilation channel 911 facing the air conditioning assembly 8 and the outlet 9111 facing the air guide assembly 6. The design of the outlet 9111 being lower than the height of the air guide assembly 6 allows cold air to pass from bottom to top through the guide plate 64, thereby achieving heat exchange.

[0036] An extension plate 92 is provided on the side of the pipe 91 adjacent to the air conditioning component 8, which extends outward and increases the contact area.

[0037] The housing 1 includes a shell 19 and a door 1a that can be opened or closed relative to the shell 19. The receiving cavity 11 is disposed on the shell 19, and the air extraction component 7 and the air conditioning component 8 are disposed on the door 1a. The door 1a is provided with an air outlet 101 that corresponds to the position of the inlet 9112 of the pipe 91. When the door 1a is closed on the shell 19, the extension plate 92 is correspondingly attached to the door 1a so that the air outlet 101 is aligned and connected with the inlet 9112. This design allows the door 1a to be opened freely. When the door 1a is open, the air outlet 181 of the door 1a is misaligned with the inlet 9112, and cold air cannot enter the inlet 9112. When the door 1a is closed, the air outlet 181 of the door 1a is aligned and connected with the inlet 9112, and the extension plate 92 is correspondingly attached to the door 1a, at which time the cold air is poured into the pipe 91.

[0038] The exhaust component 7 includes a mounting plate 71 detachably connected to the door 1a. An exhaust fan 72 is mounted on the mounting plate 71, and the exhaust fan 72 is connected to the air conditioning component 8 via a pipe 91. The mounting plate 71 facilitates the quick installation of the exhaust fan 72 onto the door 1a.

[0039] 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 that is easy to move and transport, characterized in that, Include: The shell (1), the shell (1) is provided with containing cavity (11), containing cavity (11) is provided with X-ray emitter (2), the shell (1) is further provided with mounting groove (12), the mounting groove (12) is provided with transport assembly (3), the shell (1) and transport assembly (3) between the adjusting assembly (4) capable of adjusting the position of transport assembly (3) is provided, the shell (1) is further provided with receiver assembly (5) capable of receiving the X-ray emitted by X-ray emitter (2), the receiver assembly (5) is arranged through adjusting assembly (4), the adjusting assembly (4) includes support frame (41) capable of sliding relative to shell (1), the left and right ends of support frame (41) are connected with support plate (42), the transport assembly (3) is connected to two support plates (42), the shell (1) is provided with horizontal rod (13) capable of passing through support frame (41) and sliding for support frame (41).

2. The x-ray machine of claim 1, wherein, The support frame (41) includes a sliding block (411) connected to the horizontal rod (13), the sliding block (411) is provided with a support seat (412) arranged along the length direction of the mounting groove (12), the front and rear ends of the support seat (412) are provided with T-shaped support blocks (413), the left and right sides of the two support blocks (413) are connected with the support plates (42), and the transport assembly (3) is detachably connected between the two support plates (42).

3. The x-ray machine of claim 1, wherein, The support plate (42) is provided with a clearance groove (421) capable of providing space for the receiver assembly (5).

4. The x-ray machine of claim 1, wherein, The receiver assembly (5) includes a housing (51) having a cavity (511) and a receiver body (52) arranged in the cavity (511), the housing (51) is provided with a cover plate (53) capable of closing the cavity (511), the shell (1) is provided with a first clamping groove (15) and a second clamping groove (16) capable of clamping the housing (51), and the second clamping groove (16) and the second clamping groove (16) are arranged on the wall surface on both sides of the mounting groove (12).

5. The x-ray machine of claim 1, wherein, The X-ray emitter (2) is connected with a wind guide assembly (6) capable of heat exchange and upward air guide, the shell (1) is further provided with an air extraction component (7) and an air conditioning assembly (8) communicated with the air extraction component (7), the shell (1) is further provided with a partition plate (17) between the air guide assembly (6) and the air conditioning assembly (8), the top of the partition plate (17) and the inner wall surface of the shell (1) are provided with a gap (18), so that the hot air channel (A) is formed between the air guide assembly (6), the gap (18) and the air extraction component (7), the air conditioning assembly (8), the partition plate (17) and the air guide assembly (6) are provided with heat dissipation air path assembly (9) capable of providing cold air for air guide assembly (6).

6. The x-ray machine of claim 5, wherein, The air guiding assembly (6) comprises a mounting bracket (61) connected to the X-ray emitter (2), a second support plate (62) is arranged on the mounting bracket (61), a plurality of through holes (621) are arranged on the second support plate (62), a plurality of guiding fans (63) corresponding to the positions of the through holes (621) are further arranged above the second support plate (62), and a plurality of guide plates (64) are arranged below the second support plate (62), and a ventilation channel (641) capable of allowing cold air to pass through is formed between two adjacent guide plates (64).

7. The x-ray machine of claim 5, wherein, The heat dissipation air path assembly (9) comprises a plurality of pipes (91) arranged on the isolation plate (17) and extending towards the air conditioner assembly (8), the pipes (91) are provided with ventilation channels (911), outlets (9111) of the ventilation channels (911) are arranged towards the air guiding assembly (6), the height of the outlets (9111) is lower than the height of the air guiding assembly (6), and inlets (9112) of the ventilation channels (911) are arranged towards the air conditioner assembly (8).

8. The mobile transport facilitated x-ray machine of claim 7, wherein, The pipes (91) are provided with outwardly extending extension plates (92) on the side close to the air conditioner assembly (8).

9. The mobile transport- facilitating x-ray machine of claim 8, wherein, The cabinet (1) comprises a shell (19) and a door body (1a) capable of being opened or closed relative to the shell (19), the accommodating cavity (11) is arranged on the shell (19), the air suction component (7) and the air conditioner assembly (8) are arranged on the door body (1a), the door body (1a) is provided with an air outlet (101) capable of corresponding to the position of the inlet (9112) of the pipe (91), and when the door body (1a) is closed on the shell (19), the extension plate (92) is correspondingly attached to the door body (1a), so that the air outlet (101) is aligned with the inlet (9112) and is in communication.

10. The x-ray machine of claim 5, wherein, The air suction component (7) comprises a mounting plate (71) detachably connected to the door body (1a), the mounting plate (71) is provided with an air suction fan (72), and the air suction fan (72) is connected with the pipe (91) between the air conditioner assembly (8).