Intelligent medical image diagnosis auxiliary device

Through the symmetrically designed lifting rod and limit frame structure, combined with inclination adjustment and LED lamps, the problem of unstable film position in medical imaging diagnostic equipment is solved, precise adjustment and clear observation of film are achieved, and the accuracy and efficiency of diagnosis are improved.

CN120522901AInactive Publication Date: 2025-08-22THE SECOND AFFILIATED HOSPITAL TO NANCHANG UNIV
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Patent Information

Application Number
CN202510665404.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-08-22
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing medical imaging diagnostic auxiliary equipment has poor stability when adjusting the position of medical imaging film, resulting in inaccurate diagnostic results.

Method used

The first lifting rod and the second lifting rod with a symmetrical design form a stable triangular support structure, and the limit frame is used to lateral constraints on the moving frame, combined with the inclination adjustment component and the LED lamp auxiliary light source, the precise position adjustment and clear observation of the film are achieved through the moving component.

Benefits of technology

Effectively prevent the film from shifting during lifting and lowering, improve the accuracy and speed of diagnosis, adapt to the needs of different heights and observation angles, provide stable and uniform light conditions, and improve diagnosis comfort and flexibility.

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Abstract

The invention relates to the technical field of medical imaging, in particular to an intelligent medical imaging diagnosis auxiliary device which comprises a shell, first lifting rods are symmetrically arranged in the shell, and first sliding blocks are hinged to the first lifting rods. A lifting plate, a lifting frame and a lifting frame are arranged above the first lifting rods, second lifting rods are symmetrically arranged on the lifting frame, the second lifting rods are hinged to the first lifting rods adjacent to the second lifting rods, and second sliding blocks are hinged to the second lifting rods. A limiting frame is arranged on the inner bottom wall of the shell, a movable frame is arranged in the limiting frame, a telescopic piece is arranged in the movable frame, a connecting rod is arranged on an output shaft of the telescopic piece, and the two ends of the connecting rod are hinged to the first lifting rods; the connecting rod is in vertical sliding fit with the moving frame. A moving assembly is arranged on one side of the first sliding block. An auxiliary assembly is arranged in the lifting frame. An inclination angle adjusting assembly is arranged on one side of the second sliding block. According to the medical image film lifting device, a stable supporting structure is formed by using the first lifting rod and the second lifting rod which are symmetrical, and deviation of a medical image film in the lifting process is effectively prevented.
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Description

Technical Field

[0001] The present invention relates to the field of medical imaging technology, and in particular to an intelligent medical imaging diagnosis auxiliary device. Background Art

[0002] Medical imaging technology refers to the use of advanced techniques to observe changes in internal organs through non-invasive means. Compared to traditional diagnostic methods, medical imaging not only improves diagnostic accuracy but also offers advantages such as safety, efficiency, speed, and convenience. With the continuous development of medical imaging technology, various types of medical imaging technologies have been widely used in medical practice, demonstrating excellent clinical value and effectiveness, providing important references for medical imaging diagnosis and subsequent scientific treatment.

[0003] Some existing medical imaging diagnostic auxiliary equipment has poor stability when adjusting the position of medical imaging films, which may lead to inaccurate diagnostic results.

[0004] In summary, some existing medical imaging diagnostic auxiliary equipment have poor stability when adjusting the position of medical imaging films, which may lead to inaccurate diagnostic results. This problem has become a difficult problem that needs to be solved urgently in this field. Therefore, it is necessary to propose an intelligent medical imaging diagnostic auxiliary device. Summary of the Invention

[0005] To solve the above problems, the present invention provides an intelligent medical imaging diagnosis auxiliary device. By using a symmetrically designed first lifting rod and a second lifting rod to form a stable triangular support structure, combined with the lateral constraint of the movable frame by the limit frame, the medical imaging film can be effectively prevented from shifting during the lifting process.

[0006] In order to achieve the above-mentioned purpose, the technical solution of the present invention is as follows: an intelligent medical imaging diagnosis auxiliary device, comprising a shell, with an inlet and a outlet symmetrically opened on both sides of the shell, an observation window fixedly connected to the top of the shell, and a controller, the controller is electrically connected to a cloud processor, and the inner bottom wall of the shell is symmetrically hinged with a first lifting rod, and the end of the first lifting rod away from the inner bottom wall of the shell is hinged with a first slider.

[0007] A lifting plate is provided above the first lifting rod, and an upper sliding groove is symmetrically opened at the bottom of the lifting plate. The first sliding block is horizontally slidably matched with the bottom of the lifting plate through the upper sliding groove adjacent to it. One side of the lifting plate is fixedly connected to the lifting frame, and the top of the lifting frame is hinged with a lifting frame. The lifting plate, lifting frame and lifting frame are all vertically slidably matched with the inner side wall of the shell. The bottom of the lifting frame is symmetrically hinged with a second lifting rod, and the middle part of the second lifting rod is hinged with the middle part of the first lifting rod adjacent to it. The inner bottom wall of the shell is symmetrically opened with a sliding groove, and the end of the second lifting rod away from the lifting frame is hinged with a second slider, and the second slider is horizontally slidably matched with the inner bottom wall of the shell through the sliding groove adjacent to it.

[0008] The inner bottom wall of the shell is fixedly connected to the limit frame, and the inner side wall of the limit frame is laterally slidingly matched with the mobile frame. The inner bottom wall of the mobile frame is fixedly connected to the telescopic part. The controller is used to control the extension and retraction of the telescopic part output shaft. The telescopic part output shaft is fixedly connected to a connecting rod, and both ends of the connecting rod are respectively hinged to the side walls of the first lifting rod adjacent to it; sliding holes are opened on both side walls of the mobile frame, and the connecting rod is vertically sliding matched with the mobile frame through the sliding holes.

[0009] One side of one of the first sliding blocks is provided with a moving component for moving the position of the medical imaging film.

[0010] Auxiliary components for assisting medical staff in viewing medical imaging films are provided in the lifting frame.

[0011] One side of one of the second sliding blocks is provided with an inclination adjustment component for adjusting the inclination of the lifting frame.

[0012] The technical principles of the above solution are as follows:

[0013] Medical personnel place the patient's medical imaging film onto the lifting plate through the access port and control the controller to extend the telescopic output shaft. This shaft drives the connecting rod upward, which in turn swings the first lifting rod upward. The first lifting rod then drives the lifting plate upward, which in turn drives the lifting frame upward. As the first lifting rod swings upward, it swings the connecting rod along with it, driving the movable frame to move laterally.

[0014] When the lifting frame moves upward, it drives the second lifting rod to swing. When the first lifting rod and the second lifting rod swing, they respectively drive the first slider and the second slider to move horizontally. The first slider drives the moving component to operate and move the medical imaging film into the lifting frame. The second slider drives the inclination adjustment component to operate and adjust the inclination of the lifting frame, thereby adjusting the inclination of the auxiliary component.

[0015] The medical staff starts the auxiliary component through the controller, and the auxiliary component assists the medical staff in viewing the medical imaging film. After the viewing is completed, the medical staff turns off the auxiliary component through the controller and controls the output shaft of the telescopic part to retract, so that the diagnostic auxiliary device returns to its initial state.

[0016] The above scheme has the following beneficial effects:

[0017] 1. The present invention forms a stable triangular support structure by using a symmetrically designed first lifting rod and a second lifting rod. Together with the lateral constraint of the movable frame by the limit frame, the medical imaging film can be effectively prevented from shifting during the lifting process.

[0018] 2. The present invention assists medical personnel in viewing medical imaging films by lifting the auxiliary components provided in the frame, so that medical personnel can view the medical imaging films more clearly, thereby improving the accuracy and speed of diagnosis.

[0019] 3. The inclination adjustment component of the present invention allows medical staff to adjust the inclination of the auxiliary component according to actual needs to adapt to the needs of different heights, sitting postures or observation angles, further improving the comfort and flexibility of use.

[0020] Furthermore, the moving assembly includes a moving block fixedly connected to one side of one of the first sliders, an L-shaped moving plate fixedly connected to the top of the moving block, and the bottom of the moving plate is laterally slidably engaged with the top of the lifting plate.

[0021] Beneficial Effects: The moving assembly allows for more precise position adjustment of medical imaging films within the device. The movement of the moving block drives the first slider and the film on the lifting plate connected thereto to move horizontally, thereby achieving precise control of the film's position.

[0022] Furthermore, the auxiliary components include several LED lamp tubes fixedly connected to the bottom wall of the lifting frame, the controller is used to control the opening and closing of the LED lamp tubes, and a transparent placement plate is fixedly connected to the inner wall of the lifting frame, and the placement plate is located above the LED lamp tubes.

[0023] Benefits: LED tubes, acting as auxiliary light sources, provide stable and uniform light, illuminating the medical imaging film on the placement board. This lighting condition helps medical staff observe details on the film more clearly, thereby improving diagnostic accuracy.

[0024] Furthermore, the inclination adjustment assembly includes an extrusion rod fixedly connected to one of the side walls of the second sliders, an extrusion box is fixedly connected to the inner bottom wall of the shell, the extrusion rod extends through the side wall of the extrusion box away from the second slider and is fixedly connected to an extrusion plate in the extrusion box, and a columnar airbag is fixedly connected to the inner bottom wall of the shell below the lifting frame, and the extrusion box and the columnar airbag are connected to each other.

[0025] Beneficial effects: Through the tilt adjustment component, medical staff can quickly adjust the viewing angle of medical imaging films without moving the entire device or changing their own position, thereby saving time and improving diagnostic efficiency.

[0026] Furthermore, a display screen is fixedly connected to the top of the shell, and a camera is fixedly connected to the top wall inside the shell. The controller is used to receive image information taken by the camera and send the image information to the cloud processor. The cloud processor searches for case information that is the same as the content in the medical imaging film, and sends the found case information to the controller, which displays it through the display screen.

[0027] Beneficial Effects: The camera captures medical imaging film in real time and quickly transmits it to the cloud processor via the controller. The cloud processor can quickly find case information that matches the medical imaging film, providing immediate diagnostic assistance to medical staff. Furthermore, the display screen can intuitively display the case information returned by the cloud processor, providing reference for medical staff to make more accurate decisions.

[0028] Furthermore, a rubber layer is fixedly connected to the surface of the extruded plate.

[0029] Beneficial effect: The rubber layer has good sealing performance, so that the extrusion plate can better squeeze out the gas inside the extrusion box when squeezing the gas in the extrusion box.

[0030] Furthermore, an anti-slip pad is fixedly connected to the bottom of the shell.

[0031] Beneficial effect: The anti-slip pad can increase the friction between the housing and the placement surface, effectively preventing the diagnostic auxiliary device from sliding or shifting during use, and ensuring the stability and accuracy of the diagnostic process.

[0032] Furthermore, both the inlet and the outlet are hinged with hinged plates.

[0033] Beneficial effects: The design of the hinged plate allows the inlet and outlet to be opened and closed flexibly. When the hinged plate is closed, it can effectively prevent dust, dirt or other impurities from entering the interior of the device, keeping the interior of the device clean and hygienic.

[0034] Furthermore, a protective plate is laterally slidably fitted on the top of the housing, and the observation window and the display screen are both located in the movement path of the protective plate.

[0035] Benefits: The protective plate enhances the durability of the viewing window and display, reduces repair or replacement costs due to accidental damage, and extends the service life of the diagnostic aid.

[0036] Furthermore, a handle is fixedly connected to the outer side wall of the shell.

[0037] Beneficial effects: The handle enables medical personnel to easily hold and carry the entire diagnostic assisting device, making the diagnostic assisting device more flexible.

[0038] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0039] Figure 1 This is an axonometric diagram of the intelligent medical imaging diagnosis auxiliary device of the present invention.

[0040] Figure 2 for Figure 1 Schematic diagram of the cross section along the AA direction.

[0041] Figure 3 This is an axonometric diagram of the internal structure of the intelligent medical imaging diagnosis auxiliary device of the present invention.

[0042] Figure 4 It is a top cross-sectional schematic diagram of the extrusion box in the intelligent medical imaging diagnosis auxiliary device of the present invention.

[0043] The figure marks in the drawings of the specification include: 1. shell; 2. handle; 3. hinged plate; 4. observation window; 5. display screen; 6. camera; 7. first lifting rod; 8. first slider; 9. lifting plate; 10. lifting frame; 11. lifting frame; 12. second lifting rod; 13. second slider; 14. limit frame; 15. moving frame; 16. connecting rod; 17. moving block; 18. moving plate; 19. placement plate; 20. extrusion rod; 21. extrusion box; 22. extrusion plate; 23. cylindrical airbag; 24. protective plate. DETAILED DESCRIPTION

[0044] The following is further described in detail through specific implementation methods:

[0045] Example 1:

[0046] As attached Figure 1 、 Figure 2 、 Figure 3 and Figure 4 As shown: An intelligent medical imaging diagnosis auxiliary device includes a shell 1, a handle 2 is welded on the outer wall of the shell 1, an inlet and an outlet are symmetrically opened on both sides of the shell 1, and a hinged plate 3 is hinged at the inlet and the outlet. An observation window 4 is embedded in the top of the shell 1, and it also includes a controller, which is electrically connected to a cloud processor.

[0047] A display screen 5 is embedded in the top of the shell 1, and a camera 6 is fixedly connected to the top wall of the shell 1 by screws. The controller is used to receive image information taken by the camera 6 and send the image information to the cloud processor. The cloud processor searches for case information that is identical to the content in the medical imaging film, and sends the found case information to the controller, which displays it through the display screen 5.

[0048] The inner bottom wall of the shell 1 is symmetrically hinged with first lifting rods 7 , and one end of the first lifting rods 7 away from the inner bottom wall of the shell 1 is hinged with a first sliding block 8 .

[0049] A lifting plate 9 is provided above the first lifting rod 7, and an upper slide groove is symmetrically opened at the bottom of the lifting plate 9. The first slider 8 slides horizontally with the bottom of the lifting plate 9 through the upper slide groove adjacent to it. A lifting frame 10 is integrally formed on one side of the lifting plate 9, and a lifting frame 11 is hinged on the top of the lifting frame 10. The lifting plate 9, the lifting frame 10 and the lifting frame 11 are all vertically slidably matched with the inner wall of the outer shell 1. A second lifting rod 12 is symmetrically hinged at the bottom of the lifting frame 10, and the middle part of the second lifting rod 12 is hinged to the middle part of the first lifting rod 7 adjacent to it. The inner bottom wall of the outer shell 1 has symmetrical downward grooves, and the end of the second lifting rod 12 away from the lifting frame 10 is hinged with a second slider 13, and the second slider 13 slides horizontally with the inner bottom wall of the outer shell 1 through the downward groove adjacent to it.

[0050] A limit frame 14 is welded to the inner bottom wall of the housing 1. A movable frame 15 is laterally slidably engaged with the inner sidewall of the limit frame 14. A telescopic member is bolted to the inner bottom wall of the movable frame 15. A controller controls the extension and retraction of the telescopic member's output shaft. A connecting rod 16 is bolted to the telescopic member's output shaft. The ends of the connecting rod 16 are hinged to the adjacent sidewalls of the first lifting rod 7. Sliding holes are formed on both side walls of the movable frame 15, through which the connecting rod 16 vertically slides with the movable frame 15. In this embodiment, the telescopic member is an electric telescopic rod.

[0051] One side of one of the first sliders 8 is provided with a moving component for moving the position of the medical imaging film.

[0052] The moving assembly includes a moving block 17 welded to one side of one of the first sliders 8 , and an L-shaped moving plate 18 is integrally formed on the top of the moving block 17 . The bottom of the moving plate 18 is laterally slidably engaged with the top of the lifting plate 9 .

[0053] Auxiliary components for assisting medical personnel in viewing medical imaging films are provided in the lifting frame 11 .

[0054] The auxiliary components include an LED lamp tube fixedly connected to the inner bottom wall of the lifting frame 11 by several screws. The controller is used to control the opening and closing of the LED lamp tube. A transparent placement plate 19 is embedded in the inner wall of the lifting frame 11 and the placement plate 19 is located above the LED lamp tube.

[0055] One side of one of the second sliders 13 is provided with an inclination adjustment component for adjusting the inclination of the lifting frame 11.

[0056] The tilt adjustment assembly includes an extrusion rod 20 welded to the side wall of one of the second sliders 13, and the inner bottom wall of the outer shell 1 is fixedly connected with an extrusion box 21 by bolts. The end of the extrusion rod 20 away from the second slider 13 passes through the side wall of the extrusion box 21 and extends to the extrusion box 21 to form an integral extrusion plate 22. A cylindrical airbag 23 is fixedly bonded to the inner bottom wall of the outer shell 1 below the lifting frame 11, and the extrusion box 21 and the cylindrical airbag 23 are connected to each other.

[0057] The specific implementation process is as follows: the medical staff opens the hinged plate 3 at the entrance, and puts the patient's medical imaging film into the shell 1 through the entrance, so that it is located on the lifting plate 9 after entering the shell 1.

[0058] Medical personnel control the controller to extend the output shaft of the electric telescopic rod, causing it to move upward, which in turn drives the connecting rod 16 to swing upward. The connecting rod 16 drives the first lifting rod 7 to swing upward, which in turn drives the lifting plate 9 to move upward, which in turn drives the lifting frame 10 to move upward. The lifting frame 10 drives the second lifting rod 12 to swing upward, which in turn drives the lifting frame 11 to move upward. As the first lifting rod 7 swings, it drives the connecting rod 16 to swing with it, which in turn drives the movable frame 15 to move laterally, causing it to slide laterally within the limiting frame 14.

[0059] like Figure 3 As shown, since the middle part of the first lifting rod 7 is hinged to the middle part of the second lifting rod 12 adjacent thereto, when the first lifting rod 7 and the second lifting rod 12 swing, the first slider 8 and the second slider 13 will slide horizontally in the upper slide groove and the lower slide groove respectively.

[0060] When one of the first sliders 8 slides horizontally in the upper slide groove, it will drive the moving block 17 to move horizontally with it, and the moving block 17 will drive the moving plate 18 to move horizontally, pushing the medical imaging film on the lifting plate 9 into the lifting frame 11, thereby adjusting the position of the medical imaging film.

[0061] When one of the second sliders 13 slides laterally in the lower groove, it drives the squeezing rod 20 to move laterally with it, which in turn drives the squeezing plate 22 to move laterally in the squeezing box 21. At this time, a piston structure is formed in the squeezing box 21. During the lateral movement, the squeezing plate 22 squeezes the gas in the squeezing box 21 into the cylindrical airbag 23, causing it to expand. After the expansion, the cylindrical airbag 23 lifts the lifting frame 11, causing it to form an inclination angle, providing medical staff with a better observation angle.

[0062] Medical staff control the LED light tube to light up through the controller, so that it illuminates the medical imaging film from below. At this time, the camera 6 captures the image of the medical imaging film, obtains image information, and sends the image information to the controller. The controller sends the image information to the cloud processor, which searches for case information that is the same as the content in the medical imaging film and sends the found case information to the controller, which displays it through the display screen 5.

[0063] The medical staff uses the case information on the display screen 5 as a reference and further observes the patient's medical imaging film through the observation window 4. Finally, the medical staff makes a comprehensive judgment on the patient's condition based on the specific situation observed and the case information displayed on the display screen 5 to obtain the final result.

[0064] After obtaining the final result, the medical staff controls the output shaft of the electric telescopic rod to slowly retract through the controller, so that the diagnosis auxiliary device gradually returns to its initial state, and opens the hinged plate 3 at the outlet to take out the patient's medical imaging film.

[0065] By using the symmetrically designed first lifting rod 7 and the second lifting rod 2, a stable triangular support structure is formed. Combined with the lateral constraint of the movable frame 15 by the limit frame 14, the medical imaging film can be effectively prevented from shifting during the lifting process.

[0066] Example 2:

[0067] The difference from embodiment 1 is that a rubber layer is fixedly bonded to the surface of the extrusion plate 22 .

[0068] The specific implementation process is as follows: when the extrusion rod 20 drives the extrusion plate 22 to move horizontally and squeezes the gas in the extrusion box 21 to the cylindrical airbag 23, under the sealing effect of the rubber layer, the extrusion plate 22 can squeeze the gas in the extrusion box 21 more stably, thereby increasing its extrusion stability.

[0069] Example 3:

[0070] The difference from embodiment 2 is that a non-slip pad is fixedly bonded to the bottom of the housing 1 .

[0071] The specific implementation process is as follows: when medical staff places the diagnostic auxiliary device on a flat surface, the design of the anti-slip pad reduces the possibility of the diagnostic auxiliary device falling, thereby protecting it.

[0072] Example 4:

[0073] As attached Figure 1 As shown, the difference from embodiment 3 is that a protective plate 24 is laterally slidably fitted on the top of the housing 1 , and the observation window 4 and the display screen 5 are both located in the movement path of the protective plate 24 .

[0074] The specific implementation process is as follows: when the diagnostic auxiliary device is not in use, the protective plate 24 is located directly above the observation window 4 and the display screen 5, which can protect the observation window 4 and the display screen 5 and reduce damage to the observation window 4 and the display screen 5 caused by external factors.

[0075] Obviously, the above embodiments are merely examples for clarity of explanation and are not intended to limit the implementation methods. Those skilled in the art will readily appreciate that other variations or modifications based on the above descriptions are possible. It is not necessary and impossible to enumerate all implementation methods here. Obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.

Claims

1. An intelligent medical imaging diagnostic auxiliary device, comprising a housing (1), wherein the housing (1) has an inlet and an outlet symmetrically opened on both sides, and an observation window (4) fixedly connected to the top of the housing (1), characterized in that: It also includes a controller electrically connected to a cloud processor, a first lifting rod (7) symmetrically hinged to the inner bottom wall of the housing (1), and a first slider (8) hinged to one end of the first lifting rod (7) away from the inner bottom wall of the housing (1); A lifting plate (9) is provided above the first lifting rod (7), and an upper sliding groove is symmetrically opened at the bottom of the lifting plate (9), and the first slider (8) slides with the bottom of the lifting plate (9) horizontally through the upper sliding groove adjacent to it. A lifting frame (11) is fixedly connected to one side of the lifting plate (9), and the top of the lifting frame (10) is hinged with a lifting frame (11). The lifting plate (9), the lifting frame (10) and the lifting frame (11) are vertically slidably matched with the inner wall of the shell (1). A second lifting rod (12) is symmetrically hinged at the bottom of the lifting frame (10), and the middle part of the second lifting rod (12) is hinged with the middle part of the first lifting rod (7) adjacent to it. The inner bottom wall of the shell (1) is symmetrically opened with a sliding groove, and the end of the second lifting rod (12) away from the lifting frame (10) is hinged with a second slider (13), and the second slider (13) slides with the inner bottom wall of the shell (1) horizontally through the sliding groove adjacent to it. The inner bottom wall of the housing (1) is fixedly connected to a limit frame (14), the inner side wall of the limit frame (14) is laterally slidably matched with a moving frame (15), the inner bottom wall of the moving frame (15) is fixedly connected to a telescopic member, a controller is used to control the telescopic movement of an output shaft of the telescopic member, a connecting rod (16) is fixedly connected to the output shaft of the telescopic member, and both ends of the connecting rod (16) are respectively hinged to the side walls of the first lifting rod (7) adjacent thereto; sliding holes are provided on both side walls of the moving frame (15), and the connecting rod (16) is vertically slidably matched with the moving frame (15) through the sliding holes; One side of one of the first sliders (8) is provided with a moving component for moving the position of the medical imaging film; An auxiliary component for assisting medical personnel in viewing medical imaging films is provided in the lifting frame (11); One side of one of the second sliding blocks (13) is provided with an inclination adjustment component for adjusting the inclination of the lifting frame (11).

2. The intelligent medical imaging diagnosis auxiliary device according to claim 1, characterized in that: The moving assembly includes a moving block (17) fixedly connected to one side of one of the first sliders (8), an L-shaped moving plate (18) fixedly connected to the top of the moving block (17), and the bottom of the moving plate (18) is laterally slidably matched with the top of the lifting plate (9).

3. The intelligent medical imaging diagnosis auxiliary device according to claim 2, characterized in that: The auxiliary components include a plurality of LED light tubes fixedly connected to the inner bottom wall of the lifting frame (11); a controller is used to control the opening and closing of the LED light tubes; a transparent placement plate (19) is fixedly connected to the inner side wall of the lifting frame (11); and the placement plate (19) is located above the LED light tubes.

4. The intelligent medical imaging diagnosis auxiliary device according to claim 3, characterized in that: The tilt adjustment assembly includes an extrusion rod (20) fixedly connected to the side wall of one of the second sliders (13); an extrusion box (21) is fixedly connected to the inner bottom wall of the housing (1); an end of the extrusion rod (20) away from the second slider (13) passes through the side wall of the extrusion box (21) and extends to the inside of the extrusion box (21) where an extrusion plate (22) is fixedly connected; a columnar air bag (23) is fixedly connected to the inner bottom wall of the housing (1) below the lifting frame (11); and the extrusion box (21) and the columnar air bag (23) are communicated with each other.

5. The intelligent medical imaging diagnosis auxiliary device according to claim 4, characterized in that: A display screen (5) is fixedly connected to the top of the housing (1), and a camera (6) is fixedly connected to the top wall of the housing (1). The controller is used to receive image information captured by the camera (6) and send the image information to a cloud processor. The cloud processor searches for case information that is identical to the content in the medical imaging film and sends the found case information to the controller, which displays it through the display screen (5).

6. The intelligent medical imaging diagnosis auxiliary device according to claim 5, characterized in that: A rubber layer is fixedly connected to the surface of the extrusion plate (22).

7. The intelligent medical imaging diagnosis auxiliary device according to claim 6, characterized in that: An anti-skid pad is fixedly connected to the bottom of the housing (1).

8. The intelligent medical imaging diagnosis auxiliary device according to claim 7, characterized in that: Both the inlet and the outlet are hinged with hinged plates (3).

9. The intelligent medical imaging diagnosis auxiliary device according to claim 8, characterized in that: A protective plate (24) is laterally slidably engaged with the top of the housing (1), and the observation window (4) and the display screen (5) are both located in the movement path of the protective plate (24).

10. The intelligent medical imaging diagnosis auxiliary device according to claim 9, characterized in that: A handle (2) is fixedly connected to the outer side wall of the housing (1).