Molybdenum target detection device based on human engineering

Through the ergonomically designed molybdenum target detection device, which uses a flap-shaped curved imaging plate and an electric compressor with a retractable slide section, the problems of unstable and painful detection in the existing technology are solved, higher imaging accuracy and comfort are achieved, and the individual differences of different patients are adapted.

CN120605033APending Publication Date: 2025-09-09GUANGDONG IND TECHN COLLEGE
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Patent Information

Application Number
CN202510922217.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-04
Publication Date
2025-09-09

AI Technical Summary

Technical Problem

During the detection process, the existing breast mammography X-ray detector causes patients to feel severe pain, unstable detection, inaccurate images, and cannot adapt to the breast tissue size of different patients due to the single force and small area of ​​the electric compressor clamping device, which affects the accuracy and efficiency of the examination results.

Method used

A mammography target detection device based on ergonomics was designed. It used a petal-shaped curved imaging plate combined with an electric compressor with a retractable slide section. Its movement and clamping state were controlled by a control center. The shape and pressure of the compressor were adjusted according to the size of the breast tissue. Automated clamping and stereoscopic imaging were achieved by combining a flexible imaging plate and a high-voltage booster component.

Benefits of technology

It improves the accuracy and stability of detection images, reduces patients' pain, improves examination comfort and efficiency, adapts to individual differences of different patients, and achieves higher adaptability and detection accuracy.

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Abstract

The invention discloses a molybdenum target detection device based on human engineering, which belongs to the technical field of medical engineering and intelligent sensing control, and comprises an electric compressor, a ray emitter and a control center, wherein the electric compressor comprises a plurality of retractable slide rail sections and a slide rail chassis; for any one contraction slide rail section, the contraction slide rail section is slidably clamped with the petal-shaped curved surface imaging plate through a sliding buckle; when the control center recognizes a detection starting signal, the petal-shaped curved surface imaging plate is controlled to move towards the center direction of the sliding rail chassis along the contraction sliding rail section, so that the electric compressor enters a clamping state; when the control center judges that the detected mammary tissue image is effective, a detection ending signal is obtained, the petal-shaped curved surface imaging plate is controlled to move in the opposite direction of the center of the sliding rail base plate along the contraction sliding rail section, and the electric compressor enters a release state. According to the molybdenum target detection device based on the human engineering, it is guaranteed that the detection process is conducted stably, and the image detection precision is effectively improved.
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Description

Technical Field

[0001] The present invention relates to the fields of medical engineering and intelligent sensory control technology, and in particular to a molybdenum target detection device based on ergonomics. Background Art

[0002] A mammography X-ray detector is a diagnostic device that uses low-dose soft X-rays to capture tiny calcifications smaller than 0.1mm in all layers of human breast tissue. The imaging results provide an effective and reliable basis for the early detection and diagnosis of breast cancer. Existing mammography X-ray detectors consist of mechanical and electrical structures. The mechanical portion includes a drive column, a balancing column, and a C-arm (electric compressor, combined handpiece, and film cassette). The electrical portion comprises a high-voltage generator, a high-voltage booster assembly, an X-ray tube, a motor controller, and a panel. To stabilize the tissue under examination, reduce radiation penetration thickness, lower radiation dose, and minimize lesion image overlap, the electric compressor is designed as a rectangular, square, or semicircular flat plate. Together with the underlying breast mount, filter, AEC, and detector, the image receiving device forms a breast tissue examination fixture, exerting a total pressure of approximately 25-40 pounds on the breast tissue under examination.

[0003] However, in the existing mammography X-ray detector, when an electric compressor clamping device is used to apply pressure to the breast tissue, a large pressure load is applied to the examined tissue due to the single force direction and small force area, causing the patient to feel intense pain during the mammography examination, resulting in unstable examination and inaccurate examination images. Moreover, after the examination, the pressure will also cause the patient's breast to have a short-term redness and slight pain. Therefore, many patients are afraid of mammography examinations. In addition, the existing electric compressor cannot accurately adapt to the size and different dimensions of the breast tissue of different patients to fully compress, resulting in the overlap of the lesion and the breast gland image, reducing the accuracy of the examination results. At the same time, the traditional electric compressor takes a long time to adjust the height of the equipment according to the height differences of different patients, has low work efficiency, low adaptability, and requires the assistance of a doctor every time the breast tissue is repositioned for examination, which causes psychological discomfort to the patient. Summary of the Invention

[0004] The present invention provides a molybdenum target detection device based on ergonomics, which can solve the technical problem in the prior art that the unreasonable design of the detection device leads to unstable detection and inaccurate detection images, and realizes the stable progress of the detection process to effectively improve the image accuracy.

[0005] The present invention provides a molybdenum target detection device based on ergonomics, comprising a balancing column and a driving column, an electric compressor, a ray emitter and a control center, wherein the control center is electrically connected to the ray emitter; wherein:

[0006] The electric compression device includes a plurality of retractable slide rail sections and a slide rail chassis. The plurality of retractable slide rail sections are centrally and symmetrically distributed on the top surface of the slide rail chassis. For any retractable slide rail section, the retractable slide rail section is slidably engaged with the petal-shaped curved imaging plate via a sliding buckle. The bottom surface of the slide rail chassis is vertically movably connected to the side of the balance column.

[0007] The top side surface of the balancing column is vertically fixedly connected to the inner side surface of the driving column;

[0008] The ray emitter is arranged inside the top end of the driving column;

[0009] The control center is electrically connected to the sliding buckle, and the control center is electrically connected to the petal-shaped curved imaging plate;

[0010] When the control center recognizes the start detection signal, the control center controls the petal-shaped curved imaging plate to move along the retracted slide section toward the center of the slide chassis through the sliding buckle, so that the electric compressor enters the clamping state;

[0011] When the control center recognizes the clamping signal, the control center sends a radiation signal to the radiation emitter based on the clamping signal, causing the radiation emitter to emit detection radiation according to a preset radiation pattern, thereby causing the petal-shaped curved imaging plate to acquire an image of the inspected breast tissue based on the detection radiation and feed the image back to the control center.

[0012] When the control center determines that the image of the examined breast tissue is valid, it obtains an end detection signal. Based on the end detection signal, the control center controls the flap-shaped curved imaging plate to move along the retracted slide section in the opposite direction of the center of the slide chassis, so that the electric compressor enters the release state.

[0013] The present invention provides an ergonomically designed molybdenum target detection device, which forms an electric compressor by combining a petal-shaped curved imaging plate with a contraction slide section. The electric compressor moves along the contraction slide section under the action of a control center to achieve contraction and clamping of the electric compressor. The contraction state of the electric compressor can be adjusted according to the size of the breast tissue of the inspection object during the actual inspection process, thereby improving the adaptability, making the inspected tissue more fixed, ensuring the stability of the inspection process, and effectively improving the detection image accuracy. At the same time, the extrusion load pressure can be reduced, alleviating the pain felt by the inspection object.

[0014] Furthermore, it also includes that, for any retractable slide rail section, the sliding buckle is detachably slidably connected in the retractable slide rail section.

[0015] In the above scheme, the detachable sliding connection of the sliding buckle is provided in the retractable slide rail section to achieve the detachability of the petal-shaped curved surface imaging plate. In specific applications, the detachable action can automatically select the number of petal-shaped curved surface imaging plates installed during the operation of the electric compressor to better adapt to the examined breast tissues of different sizes and shapes, improve the accuracy and stability of imaging, and facilitate the inspection and cleaning of the imaging plate.

[0016] Furthermore, the petal-shaped curved imaging plate includes a curved flexible imaging plate, wherein: the curved flexible imaging plate is fixedly connected to the top of the sliding buckle through a connecting rod; the curved flexible imaging plate is electrically connected to the control center, and is used to obtain images of the inspected breast tissue based on the detection rays and feed them back to the control center.

[0017] In the above scheme, a curved flexible imaging plate is used to construct a petal-shaped curved imaging plate, which can adapt to the required petal-shaped curved surface structure, optimize the shape structure of the reconstructed imaging plate from an ergonomic perspective, and realize 3D stereo imaging based on the curved flexible imaging plate, thereby improving more accurate and convenient detection images.

[0018] Furthermore, the petal-shaped curved imaging plate also includes an imaging plate shell, which is wrapped around the outside of the curved flexible imaging plate. The imaging plate shell includes a smooth elastic plane and a lattice-shaped massage particle plane, wherein: the smooth elastic plane is arranged at the upper inner part of the imaging plate shell; the lattice-shaped massage particle plane is arranged at the lower inner part of the imaging plate shell.

[0019] In the above scheme, the outer shell plane of the imaging plate is set as a smooth elastic plane and a lattice massage particle plane. The smooth elastic surface reduces friction and skin damage during the compression of the examined breast tissue, avoids pulling or scratching, and can adapt to the shape of the examined breast tissue, evenly distribute the compression force, and reduce the pain caused by excessive local pressure; the lattice massage particle plane produces a slight massage effect on the skin through its particles when compressing the examined breast tissue, so as to relieve the ischemic discomfort caused by compression and prevent the breast from sliding during the compression process; on the basis of improving the accuracy of the detection image, it reduces the patient's fear of breast mammography, improves the comfort and experience of the examination, and improves work efficiency.

[0020] Furthermore, it also includes a high-pressure boosting component, a retractable pressure tube and a solenoid valve, and the high-pressure boosting component and the solenoid valve are arranged inside the balancing column, wherein; the head end of the retractable pressure tube is fixedly connected to the output end of the high-pressure boosting component through the solenoid valve; the tail end of the retractable pressure tube is fixedly connected to the connecting rod; the high-pressure boosting component is electrically connected to the control center; the solenoid valve is electrically connected to the control center; the solenoid valve is used to control the on and off of the head end of the retractable pressure tube and the output end of the high-pressure boosting component under the action of the control center; the high-pressure boosting component is used to output high pressure under the action of the control center to control the extension and retraction of the retractable pressure tube, so as to control the movement of the petal-shaped curved imaging plate along the retractable slide rail section based on the extension and retraction of the retractable pressure tube.

[0021] In the above scheme, by designing a high-pressure boosting component, a retractable pressure tube and a solenoid valve, when the control center controls the solenoid valve to open, the high-pressure boosting component outputs high pressure to cause the retractable pressure tube to contract, thereby guiding the petal-shaped curved surface imaging plate to rotate toward the axis of the electric compressor, that is, along the retracted slide section toward the center of the slide chassis or in the opposite direction, thereby realizing the movement control of the petal-shaped curved surface imaging plate in the electric compressor during the detection process, and further realizing the control of the clamping state of the electric compressor.

[0022] Furthermore, a pressure pipe groove is provided on the side of the retractable slide rail section, and the tail end of the retractable pressure pipe passes through the pressure pipe groove and is fixedly connected to the connecting rod.

[0023] In the above solution, a pressure pipe groove is designed in the slide rail chassis, so that the tail end of the retractable pressure pipe is placed in the pressure pipe groove and then fixedly connected to the connecting rod, thereby avoiding entanglement and other faults during the operation of the electric compressor.

[0024] Furthermore, the electric compressor also includes a pressure sensor, wherein: the pressure sensor is located on the side of the retracted slide section, and the pressure sensor probe is arranged on the inner side of the petal-shaped curved surface imaging plate; the pressure sensor is electrically connected to the control center, and is used to detect the pressure signal and feed it back to the control center. When the pressure signal meets the preset pressure threshold, a stop signal is triggered, and the control center controls the petal-shaped curved surface imaging plate to stop moving based on the stop signal.

[0025] In the above scheme, a pressure sensor is set in the electric compressor to detect the pressure on the inner side of the flap-shaped curved imaging plate in real time, that is, the clamping status of the inspected breast tissue is confirmed according to the pressure. When the preset pressure threshold is reached, it indicates that the inspected breast tissue has been stably clamped by the electric compressor, and the imaging detection process can be carried out, realizing automatic fixed control processing of the clamping process, improving detection efficiency and improving the experience of the inspection process.

[0026] Furthermore, it also includes a rotating motor, a winding rope and a cylindrical body, and the rotating motor and the cylindrical body are arranged inside the balancing column, wherein: the rotating end of the rotating motor is fixedly connected to the cylindrical body; the head end of the winding rope is fixedly wound around the cylindrical body, and the tail end of the winding rope is fixedly connected to the bottom of the slide rail chassis; the rotating motor is electrically connected to the control center, so as to rotate under the action of the control center to control the length of the tail end of the winding rope, thereby controlling the vertical movement of the electric compressor.

[0027] Furthermore, it also includes a motor fixing device and a fixed pipe groove, which are arranged inside the balancing column, wherein: the motor fixing device is fixedly connected to the rotating motor, and the fixed pipe groove is fixedly connected to both ends of the columnar body.

[0028] Furthermore, it also includes a moving platform, the bottom of the moving platform is movably connected to the side of the balance column, the top of the moving platform is fixedly connected to the bottom of the slide rail chassis, and the tail end of the winding rope is fixedly connected to the bottom of the slide rail chassis through the moving platform.

[0029] In the above scheme, adaptive adjustment of the height of the electric compressor is achieved by setting a rotating motor, a body-wound rope and a cylindrical body, and combined with a fixing device and a mobile platform, the stability of the overall detection device in the adjustment control process is improved. It can adapt to different detection scenarios and can adjust the height conveniently and independently according to the height difference of the inspection object, further improving the inspection efficiency and improving the experience of the inspection process.

[0030] The present invention provides a molybdenum target detection device based on ergonomics. The electric compressor can realize automatic clamping, adjustment of the compressor shape and pressure area, and adaptive adjustment of the hanging height. It can better adapt to the individual height differences of the patients being examined and the shape and size differences of the examined breast tissues. In view of the particularity and privacy of medical examination tissues, the electric compressor of the new molybdenum target detector is optimized and reconstructed from the perspective of ergonomics. On the basis of improving the accuracy of the detection image, the fear of the patient about the mammary gland molybdenum target examination is reduced, the examination comfort and experience are improved, and the detection efficiency is improved. A flexible curved imaging plate is used to design a petal-shaped curved imaging plate to obtain and collect three-dimensional image information, which can be restored to the actual three-dimensional image through image recognition processing and positioning, making the structure more concise and effectively improving the detection accuracy. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] In order to more clearly illustrate the technical solution of the present application, the following is a brief introduction to the drawings required for use in the implementation. Obviously, the drawings described below are only some implementation methods of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0032] Figure 1 This embodiment provides a schematic diagram of an electric compressor;

[0033] Figure 2 This embodiment provides a schematic diagram of an electric compressor in a fully closed state;

[0034] Figure 3 This embodiment provides a schematic diagram of a contraction plate unit;

[0035] Figure 4 This embodiment provides a schematic diagram of a slide rail chassis of a molybdenum target detection device based on ergonomics;

[0036] Figure 5 This embodiment provides a side cross-sectional schematic diagram of a molybdenum target detection device based on ergonomics;

[0037] Figure 6 This embodiment provides a schematic diagram of a molybdenum target detection device based on ergonomics;

[0038] In the figure: 1. Retractable slide rail section; 2. Petal-shaped curved imaging plate; 3. Connecting rod; 4. Slide rail chassis; 5. Smooth elastic plane; 6. Dot matrix massage particle plane; 7. Sliding buckle; 8. Pressure sensor; 9. Pressure pipe groove; 10. Retractable pressure pipe; 11. Driving column; 12. Balancing column; 13. Electric compressor; 14. Moving platform; 15. Ray emitter; 16. Motor fixing device; 17. Rotating motor; 18. Fixed pipe groove; 19. Body rope; 20. Solenoid valve; 21. Baffle. DETAILED DESCRIPTION

[0039] To make the objectives, technical solutions, and advantages of this application more clear, the technical solutions in this application will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are only part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of this application.

[0040] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this application belongs; the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above-mentioned figure descriptions are intended to cover non-exclusive inclusions.

[0041] In the description of the embodiments of this application, the technical terms "first" and "second" are used only to distinguish different objects and should not be understood to indicate or imply relative importance or implicitly specify the quantity, specific order, or primary and secondary relationship of the indicated technical features. In the description of the embodiments of this application, the meaning of "plurality" is more than two, unless otherwise clearly and specifically defined.

[0042] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0043] In the description of the embodiments of this application, the term "and / or" is simply a description of the association relationship between associated objects, indicating that three relationships can exist. For example, A and / or B can represent the following three situations: A exists alone, A and B exist simultaneously, and B exists alone. In addition, the character " / " in this document generally indicates that the associated objects are in an "or" relationship.

[0044] In the description of the embodiments of the present application, the term "multiple" refers to more than two (including two). Similarly, "multiple groups" refers to more than two groups (including two groups), and "multiple pieces" refers to more than two pieces (including two pieces).

[0045] In the description of the embodiments of the present application, unless otherwise expressly specified or limited, technical terms such as "installed," "connected," "connected," and "fixed" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; internal connections between two components or interactions between two components. Those skilled in the art can understand the specific meanings of the above terms in the embodiments of the present application based on specific circumstances.

[0046] Example 1:

[0047] This embodiment provides an ergonomically designed molybdenum target detection device, comprising a balancing column and a driving column, an electric compressor, a ray emitter, and a control center, wherein the control center is electrically connected to the ray emitter; wherein:

[0048] The electric compression device includes a plurality of retractable slide rail sections and a slide rail chassis. The plurality of retractable slide rail sections are centrally and symmetrically distributed on the top surface of the slide rail chassis. For any retractable slide rail section, the retractable slide rail section is slidably engaged with the petal-shaped curved imaging plate via a sliding buckle. The bottom surface of the slide rail chassis is vertically movably connected to the side of the balance column.

[0049] The top side surface of the balancing column is vertically fixedly connected to the inner side surface of the driving column;

[0050] The ray emitter is arranged inside the top end of the driving column;

[0051] The control center is electrically connected to the sliding buckle, and the control center is electrically connected to the petal-shaped curved imaging plate;

[0052] When the control center recognizes the start detection signal, the control center controls the petal-shaped curved imaging plate to move along the retracted slide section toward the center of the slide chassis through the sliding buckle, so that the electric compressor enters the clamping state;

[0053] When the control center recognizes the clamping signal, the control center sends a radiation signal to the radiation emitter based on the clamping signal, causing the radiation emitter to emit detection radiation according to a preset radiation pattern, thereby causing the petal-shaped curved imaging plate to acquire an image of the inspected breast tissue based on the detection radiation and feed the image back to the control center.

[0054] When the control center determines that the image of the examined breast tissue is valid, it obtains an end detection signal. Based on the end detection signal, the control center controls the flap-shaped curved imaging plate to move along the retracted slide section in the opposite direction of the center of the slide chassis, so that the electric compressor enters the release state.

[0055] This embodiment provides an ergonomically designed molybdenum target detection device, which forms an electric compressor by combining a petal-shaped curved imaging plate with a retractable slide rail segment. The electric compressor moves along the retractable slide rail segment under the control of a control center to achieve retraction and clamping of the electric compressor. The retracted state of the electric compressor can be adjusted according to the size of the breast tissue of the subject being inspected during the actual inspection process, thereby improving the adaptability, making the inspected tissue more fixed, ensuring the stability of the inspection process, and effectively improving the accuracy of the inspection image. At the same time, the extrusion load pressure can be reduced, alleviating the pain felt by the subject being inspected.

[0056] During implementation, the flap-shaped curved imaging plate acquires images of the breast tissue under examination based on detection radiation. The examination process is divided into two parts: upper and lower quadrant examination and left and right quadrant examination. After the electric compressor enters the clamping state, the flap-shaped curved imaging plate stops moving and remains stationary for 3-5 seconds, collecting and transmitting upper and lower quadrant examination images. Maintaining the clamping state, the ray emitter only needs to be rotated 90 degrees to begin left and right quadrant examination, which is then collected and transmitted via the flap-shaped curved imaging plate. The upper and lower quadrant examination images and the left and right quadrant examination images are then processed and combined into a three-dimensional image of the breast tissue under examination by the control center. After obtaining the image of the breast tissue under examination, the control center generates a test image report. If the test image report is recognized as valid, the breast tissue under examination is deemed valid.

[0057] In practice, an ergonomically designed mammography device includes a pair of electric compressors to simultaneously perform imaging examinations of all quadrants of bilateral breast tissue. The control center includes an electronic control module specifically designed to control the driving, connection, transmission, and compression of a novel electric compression clamping device for the mammography device, which is comprised of a petal-shaped curved imaging plate within the electric compressors. The petal-shaped curved imaging plate is a retractable, curved plate shaped like a petal.

[0058] Optionally, the invention also includes that, for any retractable slide rail section, the sliding buckle is detachably slidably connected in the retractable slide rail section.

[0059] In the specific implementation process, several petal-shaped curved imaging plates are usually composed of: 5-6 petal-shaped curved retractable plates with a size of 150 (length) * 70 (width) * 10 (compressed plate thickness) mm. The retractable plates are installed in the retractable slide rail section in sequence. In actual application, the number of installed retractable plates can be increased or decreased by disassembling with sliding buckles.

[0060] Optionally, the petal-shaped curved imaging plate includes a curved flexible imaging plate, wherein: the curved flexible imaging plate is fixedly connected to the top of the sliding buckle through a connecting rod; the curved flexible imaging plate is electrically connected to the control center, and is used to obtain images of the inspected breast tissue based on the detection rays and feed them back to the control center.

[0061] During the specific implementation process, a curved flexible imaging plate is used to construct a petal-shaped curved imaging plate, which can adapt to the required petal-shaped curved surface structure, optimize the shape structure of the reconstructed imaging plate from an ergonomic perspective, and realize 3D stereo imaging based on the curved flexible imaging plate, thereby improving more accurate and convenient detection images.

[0062] Optionally, the petal-shaped curved imaging plate also includes an imaging plate shell, which is wrapped around the outside of the curved flexible imaging plate. The imaging plate shell includes a smooth elastic plane and a lattice-shaped massage particle plane, wherein: the smooth elastic plane is arranged at the upper inner part of the imaging plate shell; the lattice-shaped massage particle plane is arranged at the lower inner part of the imaging plate shell.

[0063] In the specific implementation process, this embodiment adopts a circular slide rail chassis, and the electric compressor is released as follows: Figure 1 As shown, the electric compressor includes a plurality of contraction slide rail sections 1, a plurality of flap-shaped curved imaging plates 2, a connecting rod 3, and a slide rail chassis 4, wherein the flap-shaped curved imaging plate 2 includes an imaging plate shell, and the imaging plate shell includes a smooth elastic surface 5 and a lattice-shaped massage particle surface 6, wherein the top view is as shown Figure 1 (a) shows the side view. Figure 1 (b) shows the main view. Figure 1 (c) As shown. The electric compressor is in a fully closed state. Figure 2 As shown, the top view is as Figure 2 (a) shows the side view. Figure 2 (b) shows the main view. Figure 2 (c) As shown. The petal-shaped curved imaging plate 2, the connecting rod 3 and the sliding buckle 7 together constitute the contraction plate unit. Figure 3 As shown, Figure 3 (a) is the side view of the contraction plate unit, Figure 3 (b) is the front view of the contraction plate unit. Figure 3 (c) is the top view of the contraction plate unit. Figure 3 (d) is the front view of the contraction plate unit.

[0064] Optionally, it also includes a high-pressure boosting component, a retractable pressure tube and a solenoid valve, and the high-pressure boosting component and the solenoid valve are arranged inside the balancing column, wherein; the head end of the retractable pressure tube is fixedly connected to the output end of the high-pressure boosting component through the solenoid valve; the tail end of the retractable pressure tube is fixedly connected to the connecting rod 3; the high-pressure boosting component is electrically connected to the control center; the solenoid valve is electrically connected to the control center; the solenoid valve is used to control the on and off of the head end of the retractable pressure tube and the output end of the high-pressure boosting component under the action of the control center; the high-pressure boosting component is used to output high pressure under the action of the control center to control the extension and retraction of the retractable pressure tube, so as to control the movement of the petal-shaped curved imaging plate 2 along the retractable slide rail section 1 based on the extension and retraction of the retractable pressure tube.

[0065] During the specific implementation process, by designing a high-pressure boosting component, a retractable pressure tube and a solenoid valve, when the control center controls the solenoid valve to open, the high-pressure boosting component outputs high pressure to cause the retractable pressure tube to contract, thereby guiding the petal-shaped curved surface imaging plate 2 to rotate toward the axis of the electric compressor, that is, along the contraction slide section 1 toward the center of the slide chassis 4 or in the opposite direction, thereby realizing the movement control of the petal-shaped curved surface imaging plate 2 in the electric compressor during the detection process, and further realizing the control of the clamping state of the electric compressor.

[0066] Optionally, a pressure pipe groove is further provided on the side of the retractable slide rail section 1 , and the tail end of the retractable pressure pipe passes through the pressure pipe groove and is fixedly connected to the connecting rod 3 .

[0067] In the specific implementation process, a pressure pipe groove is designed in the slide rail chassis 4, so that the tail end of the retractable pressure pipe is placed in the pressure pipe groove and then fixedly connected to the connecting rod 3, thereby avoiding entanglement and other faults during the operation of the electric compressor.

[0068] Optionally, the electric compressor also includes a pressure sensor, wherein: the pressure sensor is located on the side of the retracting slide section 1, and the pressure sensor probe is arranged on the inner side of the flap-shaped curved imaging plate 2; the pressure sensor is electrically connected to the control center, and is used to detect the pressure signal and feed it back to the control center. When the pressure signal meets the preset pressure threshold, a stop signal is triggered, and the control center controls the flap-shaped curved imaging plate 2 to stop moving based on the stop signal.

[0069] In the specific implementation process, this embodiment provides a circular slide chassis with four retractable slide sections. Figure 4 As shown, Figure 4 (a) is the front view, Figure 4 (b) is a cross-sectional view of the slide rail chassis 4, Figure 4 (c) is a top view of the slide rail chassis 4, Figure 4 (d) is a front view of the slide chassis 4, where the pressure sensor 8 and pressure pipe groove 9 are set on the side of the retractable slide section, and the tail end of the retractable pressure pipe 10 is set in the pressure pipe groove 9. The four retractable slide sections 1 are distributed radially symmetrically (center) on the slide chassis 4.

[0070] Optionally, it also includes a rotating motor, a winding rope and a cylindrical body, and the rotating motor and the cylindrical body are arranged inside the balancing column, wherein: the rotating end of the rotating motor is fixedly connected to the cylindrical body; the head end of the winding rope is fixedly wound and connected to the cylindrical body, and the tail end of the winding rope is fixedly connected to the bottom of the slide rail chassis 4; the rotating motor is electrically connected to the control center, so as to rotate under the action of the control center to control the length of the tail end of the winding rope, thereby controlling the vertical movement of the electric compressor.

[0071] In a specific implementation process, when in use, the electric compressor is pulled out by rotating the motor in the forward direction or by manpower to reach the patient's examination position, and can adapt to the patient's examination position without blind spots. When use is finished, the electric compressor can be retracted by simply starting the motor in the reverse direction. First, the electric compressor is highly adaptable to movement.

[0072] Optionally, it also includes a motor fixing device and a fixed pipe groove, which are arranged inside the balancing column, wherein: the motor fixing device is fixedly connected to the rotating motor, and the fixed pipe groove is fixedly connected to both ends of the columnar body.

[0073] Optionally, it also includes a moving platform, the bottom of which is movably connected to the side of the balance column, the top of the moving platform is fixedly connected to the bottom of the slide rail chassis 4, and the tail end of the body rope is fixedly connected to the bottom of the slide rail chassis 4 through the moving platform.

[0074] During the specific implementation process, the detection process of the inspected breast tissue is divided into two parts: upper and lower quadrant detection and left and right quadrant detection: when the upper and lower quadrant detection begins, the control center controls the solenoid valve to open, and the high pressure guides the petal-shaped curved imaging plate 2 through the retractable pressure tube 10 to start moving toward the center in the contraction slide section 1. The space inside the petal-shaped curved imaging plate 2 gradually decreases and the pressure gradually increases. The dot matrix massage particle plane 6 clamps and fixes the inspected breast tissue; when the pressure sensor 8 detects that the contraction pressure reaches the specified value, that is, the preset pressure threshold, the petal-shaped curved imaging plate 2 stops moving. The device is fixed for 3 to 5 seconds, and the petal-shaped curved surface imaging plate 2 collects and transmits the detection images of the upper and lower quadrants. When the left and right quadrant detection begins, the clamping device remains in the same state, and only the ray emitter needs to be rotated 90 degrees, and the left and right quadrant detection images are collected and transmitted through the petal-shaped curved surface imaging plate 2. After the control center judges and analyzes the formation of a valid image of the inspected breast tissue and its detection image report, the solenoid valve is closed to reduce the pressure in the retractable pressure tube 10, and the petal-shaped curved surface imaging plate 2 moves along the slide rail in the opposite direction to the center. The petal-shaped curved surface imaging plate 2 opens, releasing the inspected breast tissue, and the detection is completed.

[0075] The present embodiment provides a molybdenum target detection device based on ergonomics, which overcomes the shortcomings of the existing technology. The clamping method and structure of the electric compressor of the new molybdenum target detector are optimized based on ergonomics, increasing the contact area between the imaging plate in the electric compressor and the breast tissue to be detected, making the detected tissue more fixed and improving the image accuracy; reducing the extrusion load pressure and alleviating the pain of the inspected subject. A curved flexible imaging plate is used to acquire images under radiation, and real-time feedback is provided to the control center to realize the integration of the electric compressor and the image receiver, which can achieve three-dimensional imaging and provide more accurate and convenient detection images. At the same time, the new molybdenum target detector electric compressor of this embodiment can adjust the shape and pressure area of ​​the compressor according to the size and dimensions of the breast tissue of the inspected subject, and has a high degree of adaptability. In addition, the electric compressor and the balance column are installed in a suspended telescopic connection manner. The height and fixed detection device can be easily and independently adjusted according to the height difference of the inspected subject, thereby improving the inspection efficiency and the experience of the inspection process. By optimizing and reconstructing the mechanical and electrical parts of the existing breast mammography X-ray detector, especially the ergonomic design of the connection structure and imaging method of the electric compressor of the core detection device, the accuracy of image detection can be improved and the physical pain and psychological discomfort of breast examination patients can be reduced.

[0076] Example 2:

[0077] Based on the above embodiment, this embodiment provides a molybdenum target detection device using a pair of electric compressors, the side sectional view of which is as follows: Figure 5 As shown, its main view is as follows Figure 6 As shown, the side cross-sectional view of the molybdenum target detection device when the electric compressor is in a fully closed state is as follows Figure 5 As shown in (a), it includes a driving column 11, a balancing column 12, an electric compressor 13 suspended in pairs below the driving column 11 and on the side of the balancing column 12, a moving platform 14, a ray emitter 15, a motor fixing device 16, a rotating motor 17, a fixed pipe groove 18, a body rope 19, a cylindrical body and a solenoid valve 20; wherein a baffle 21 is also provided on the driving column 11. A side sectional view of the molybdenum target detection device when the electric compressor is in the released open state is shown in FIG. Figure 5 (b) shown.

[0078] In the specific implementation process, the molybdenum target detection device using a pair of electric compressors provided in this embodiment can be combined with an image recognition and analysis system. In view of the particularity and privacy of medical detection organizations, the clamping device of the electric compressor of the new molybdenum target detector and the image recognition and analysis system are optimized and reconstructed from an ergonomic perspective. On the basis of improving the accuracy of the detection image, the fear of patients about breast molybdenum target examinations is reduced, the comfort and experience of the examination are improved, and the work efficiency of medical staff is improved. At the same time, it adapts to the AIGC era, making the hardware structure of medical detection equipment more concise and humanized, and facilitating the software performance to be more information-based and intelligent, laying the foundation for building a big data platform for exploring multiple intelligent medical application scenarios and developing multi-scenario AI medical images based on supervised algorithm training to generate analysis reports for AI active detection. It can be applied to the development of innovative application scenarios based on new ergonomic flexible materials and intelligent sensory control materials.

[0079] It should be noted that the device embodiments described above are merely illustrative, and some or all of the modules may be selected according to actual needs to achieve the purpose of the present embodiment. Furthermore, in the drawings of the device embodiments provided by the present invention, the connection relationship between modules indicates that they have a communication connection, which may be implemented as one or more communication buses or signal lines. Those skilled in the art can understand and implement the present invention without inventive effort.

[0080] The above is a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications are also considered to be within the scope of protection of the present invention.

Claims

1. A molybdenum target detection device based on ergonomics, comprising a balancing column and a driving column, characterized in that: The device comprises an electric compressor, a ray emitter and a control center, wherein the control center is electrically connected to the ray emitter; wherein: The electric compressor includes a plurality of retractable slide rail sections and a slide rail chassis, wherein the plurality of retractable slide rail sections are centrally symmetrically distributed on the top surface of the slide rail chassis; for any retractable slide rail section, the retractable slide rail section is slidably engaged with the petal-shaped curved imaging plate via a sliding buckle; the bottom surface of the slide rail chassis is vertically movably connected to the side surface of the balancing column; The top side surface of the balancing column is vertically fixedly connected to the inner side surface of the driving column; The ray emitter is arranged inside the top end of the driving column; The control center is electrically connected to the sliding buckle, and the control center is electrically connected to the petal-shaped curved imaging plate; When the control center recognizes the start detection signal, the control center controls the petal-shaped curved imaging plate to move along the contraction slide section toward the center of the slide chassis through the sliding buckle, so that the electric compressor enters a clamping state; When the control center recognizes the clamping signal, the control center sends a radiation signal to the radiation emitter based on the clamping signal, causing the radiation emitter to emit detection radiation according to a preset radiation pattern, thereby causing the petal-shaped curved imaging plate to acquire an image of the inspected breast tissue based on the detection radiation and feed the image back to the control center. When the control center determines that the image of the examined breast tissue is valid, an end detection signal is obtained. Based on the end detection signal, the control center controls the flap-shaped curved imaging plate to move along the retracted slide section in the opposite direction of the center of the slide chassis, so that the electric compressor enters a released state.

2. The ergonomically designed molybdenum target detection device according to claim 1, wherein: It also includes that, for any retractable slide rail segment, the sliding buckle is detachably slidably connected in the retractable slide rail segment.

3. The ergonomically designed molybdenum target detection device according to claim 1, wherein: The petal-shaped curved imaging plate comprises a curved flexible imaging plate, wherein: The curved flexible imaging plate is fixedly connected to the top of the sliding buckle via a connecting rod; The curved flexible imaging plate is electrically connected to the control center and is used to acquire images of the inspected breast tissue based on the detection rays and feed the images back to the control center.

4. The ergonomically designed molybdenum target detection device according to claim 3, wherein: The petal-shaped curved imaging plate further includes an imaging plate housing, which is wrapped around the outside of the curved flexible imaging plate. The imaging plate housing includes a smooth elastic plane and a lattice-shaped massage particle plane, wherein: The smooth elastic plane is arranged on the upper inner side of the imaging plate housing; The dot matrix massage particle plane is arranged at the lower inner part of the imaging plate shell.

5. The ergonomically designed molybdenum target detection device according to claim 3, wherein: It also includes a high-pressure boosting component, a retractable pressure tube and a solenoid valve, wherein the high-pressure boosting component and the solenoid valve are arranged inside the balance column, wherein; The head end of the telescopic pressure tube is fixedly connected to the output end of the high-pressure boosting component through the solenoid valve; the tail end of the telescopic pressure tube is fixedly connected to the connecting rod; The high-voltage boost component is electrically connected to the control center; The solenoid valve is electrically connected to the control center; The solenoid valve is used to control the connection and disconnection between the head end of the telescopic pressure tube and the output end of the high-pressure boosting component under the action of the control center; The high-pressure boosting assembly is used to output high pressure under the action of the control center to control the extension and contraction of the telescopic pressure tube, so as to control the movement of the petal-shaped curved imaging plate along the contraction slide rail section based on the extension and contraction of the telescopic pressure tube.

6. The ergonomically designed molybdenum target detection device according to claim 5, wherein: A pressure pipe groove is also provided on the side of the retractable slide rail section, and the tail end of the retractable pressure pipe passes through the pressure pipe groove and is fixedly connected to the connecting rod.

7. The ergonomically designed molybdenum target detection device according to claim 1, wherein: The electric compressor further comprises a pressure sensor, wherein: The pressure sensor is located on the side of the contraction slide section, and the pressure sensor probe is arranged on the inner side of the petal-shaped curved imaging plate; The pressure sensor is electrically connected to the control center and is used to detect a pressure signal and feed it back to the control center. When the pressure signal meets a preset pressure threshold, a stop signal is triggered. The control center controls the petal-shaped curved imaging plate to stop moving based on the stop signal.

8. The ergonomically designed molybdenum target detection device according to claim 1, wherein: It also includes a rotating motor, a body-wound rope and a cylindrical body, wherein the rotating motor and the cylindrical body are arranged inside the balancing column, wherein: The rotating end of the rotating motor is fixedly connected to the cylindrical body; The head end of the body-wrap rope is fixedly wound and connected to the cylindrical body, and the tail end of the body-wrap rope is fixedly connected to the bottom of the slide rail chassis; The rotary motor is electrically connected to the control center so as to rotate under the action of the control center to control the tail end length of the body-wrapped rope, thereby controlling the vertical movement of the electric compressor.

9. The ergonomically designed molybdenum target detection device according to claim 8, wherein: It also includes a motor fixing device and a fixing pipe groove, which are arranged inside the balancing column, wherein: The motor fixing device is fixedly connected to the rotating motor, and the fixing pipe groove is fixedly connected to both ends of the cylindrical body.

10. The ergonomically designed molybdenum target detection device according to claim 8, wherein: It also includes a moving platform, the bottom of which is movably connected to the side of the balance column, the top of which is fixedly connected to the bottom of the slide rail chassis, and the tail end of the winding rope is fixedly connected to the bottom of the slide rail chassis through the moving platform.