Multi-plane imaging CT scanning device

By adopting a double-arm suspended bracket structure and telescopic swing mechanism in CT equipment, the rapid switching of CT equipment under different positions is achieved, solving the problem that existing CT equipment is difficult to support sitting or semi-lying position detection, and improving the multi-position compatibility and safety of the equipment.

CN120167989AActive Publication Date: 2025-06-20SHANGHAI SHUNTAINO MEDICAL EQUIPMENT CO LTD
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Patent Information

Application Number
CN202510662303.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-22
Publication Date
2025-06-20
Estimated Expiration
2045-05-22

AI Technical Summary

Technical Problem

Existing CT equipment is difficult to support sitting or semi-reclining detection, and the rack is large in size and has high installation space requirements, so it cannot adapt to longitudinal tilt scanning in the tilted sitting position of the patient.

Method used

The double-arm suspended bracket structure is adopted, and the linear expansion and contraction of the telescopic swing arm relative to the rotating swing arm is achieved by combining the eccentric swing angle of the cantilever part and the rotation angle adjustment of the scanning ring, which achieves rapid switching between standing and lying posture detection needs.

Benefits of technology

The rapid switching between standing and lying posture detection is realized, the multi-position compatibility, imaging quality and operating efficiency of the scanning device are improved, and the safety and working stability of the device are improved through the failure self-locking device and the gas spring device.

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Abstract

The invention discloses a multi-plane imaging CT scanning device which comprises a scanning ring, a transverse moving frame, a cantilever piece and a telescopic driving mechanism used for driving the cantilever piece to execute telescopic motion, and the cantilever piece comprises two rotating swing arms which are symmetrically arranged about the central axis of the scanning ring and rotationally connected with the transverse moving frame. According to the multi-plane imaging CT scanning device, a double-arm suspension type support structure is adopted, linear stretching and retracting of the telescopic swing arms relative to the rotating swing arm are achieved, the scanning ring is arranged between the two telescopic swing arms in a telescopic mode, and the scanning ring is arranged between the two telescopic swing arms in a rotating mode. In combination with the deflection angle of the cantilever part and the rotation angle adjustment of the scanning ring, the rapid switching under the detection requirements of the standing posture and the lying posture can be realized, and the miniaturization of the scanning device and the improvement of the multi-position compatibility, the imaging quality, the operation efficiency and the like are facilitated.
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Description

Technical Field

[0001] The present invention relates to the technical field of CT devices, and particularly to a CT scanning device for multi-plane imaging. Background Art

[0002] Computed tomography (CT) is a medical imaging technique used to generate cross-sectional images of the human body. It can take multiple X-ray images from different angles and then synthesize tomographic images through computer processing to form detailed two-dimensional or three-dimensional views.

[0003] Most mainstream CT systems use a closed-loop gantry, and patients need to lie flat on a horizontal examination bed for scanning. Although such a structure can ensure imaging stability, it cannot support sitting or semi-recumbent detection.

[0004] There are also some scanning rings that adopt a full-circle rotation design, and their principle is to set multiple adjustment mechanisms to drive the scanning ring. For example, Patent CN207928328U discloses a cone-beam CT multi-directional scanner, including a mainframe gantry, a cone-beam CT scanning device, a scanning gantry, and a rotary drive device. The cone-beam CT scanning device is installed on the frame of the scanning gantry, and the scanning gantry can be flipped inside the mainframe gantry through the rotary drive device. When the scanning gantry is flipped to the horizontal state, standing position scanning of the human body can be performed, and when the scanning gantry is flipped to the vertical state, supine position scanning of the human body can be performed. In the above solution, although 360° continuous scanning can be achieved, the gantry is bulky, requires a large installation space, and cannot adapt to longitudinal tilt scanning in the case of a patient's tilted sitting position, having certain limitations. Summary of the Invention

[0005] In view of the deficiencies of the prior art, the present invention provides a CT scanning device for multi-plane imaging with strong body position compatibility and a compact structure.

[0006] To achieve the above objectives, the present invention is realized through the following technical solutions.

[0007] The present application provides a CT scanning device for multi-plane imaging, including a scanning ring, a transverse movement frame, a cantilever member, and a telescopic drive mechanism for driving the cantilever member to perform telescopic actions: The cantilever member includes two rotating swing arms symmetrically arranged about the central axis of the scanning ring and respectively rotatably connected to the transverse movement frame. The rotating swing arms are telescopically provided with telescopic swing arms, and the scanning ring is rotatably arranged between the two telescopic swing arms; Among them, it further includes a yaw drive assembly for adjusting the rotation angle of the rotating swing arm relative to the transverse movement frame, a rotation unit for driving the scanning ring to rotate relative to the telescopic swing arm, and a telescopic drive mechanism for driving the telescopic swing arm to perform telescopic actions relative to the rotating swing arm; There are two sets of the rotation units, which are respectively fixedly arranged on two telescopic swing arms.

[0008] Further defined, in a CT scanning device for multi-plane imaging as described above, between the two rotating swing arms, a driving bracket is fixedly provided, and the telescopic driving mechanism includes: A lifting shaft, which is rotatably arranged on the rotating swing arm; A telescopic driving motor, which is fixedly arranged on the driving bracket; Wherein, the telescopic swing arm is threadedly connected to the lifting shaft, the telescopic driving motor is coupled to the lifting shaft, and can drive the lifting shaft to rotate on the rotating swing arm.

[0009] Further defined, in a CT scanning device for multi-plane imaging as described above, on the driving bracket, a driving shaft is rotatably arranged, and the central axis of the driving shaft is located on a horizontal plane and is perpendicular to the central axis of the lifting shaft; Wherein, the power output shaft of the telescopic driving motor is parallel to the central axis of the lifting shaft, the driving shaft is coupled to the power output shaft of the telescopic driving motor through a driving adapter, and is respectively coupled to the two lifting shafts through two transition adapters.

[0010] Further defined, in a CT scanning device for multi-plane imaging as described above, it further includes a failure self-locking device for restricting the relative movement between the telescopic swing arm and the rotating swing arm.

[0011] Further defined, in a CT scanning device for multi-plane imaging as described above, the failure self-locking device includes a fixing plate and a supporting seat fixedly arranged on the driving bracket; On the supporting seat, a locking rotating shaft is rotatably arranged, a locking wheel is fixedly arranged on the locking rotating shaft, a driving wheel is fixedly arranged on the driving shaft, and a linkage belt is wound between the locking wheel and the driving wheel; Wherein, a limiter is arranged between the locking rotating shaft and the fixing plate; In a power-off state, the limiter can restrict the rotation of the locking rotating shaft relative to the fixing plate.

[0012] Further defined, in a CT scanning device for multi-plane imaging as described above, it further includes a manual failure backup component for controlling the movement of the telescopic swing arm relative to the rotating swing arm.

[0013] Further defined, in a CT scanning device for multi-plane imaging as described above, the manual failure backup component includes an engaging shaft arranged in parallel with the driving shaft, and an adjusting shaft rotatably arranged on the rotating swing arm and parallel to the lifting shaft; A connection wheel is fixedly arranged on the connection shaft, a linkage belt is wound between the connection wheel, the driving wheel and the locking wheel, and one end of the adjusting shaft away from the telescopic swing arm is coupled to the connection shaft through an adjusting adapter.

[0014] Further limited, in a CT scanning device for multi-planar imaging as described above, wherein the manual failure backup component further includes a hand crank; Wherein, the hand crank is detachably connected to one end of the adjusting shaft away from the adjusting adapter and is used to drive the adjusting shaft to rotate.

[0015] Further limited, in a CT scanning device for multi-planar imaging as described above, wherein at least one linkage shaft is rotatably arranged on the driving bracket between the two rotating swing arms, and a linkage wheel is fixedly arranged on the linkage shaft; Wherein, the linkage belt is wound between the driving wheel, the locking wheel, the connection wheel and the linkage wheel.

[0016] Further limited, in a CT scanning device for multi-planar imaging as described above, wherein a gas spring device is fixedly connected between the corresponding rotating swing arm and the telescopic swing arm.

[0017] The present invention has at least the following beneficial effects: 1. Adopting a double-arm suspension bracket structure, through the linear expansion and contraction of the telescopic swing arm relative to the rotating swing arm, combined with the adjustment of the deflection angle of the cantilever member and the rotation angle of the scanning ring, it can realize the rapid switching under the detection requirements of standing and lying postures, which is beneficial to the miniaturization of the scanning device, as well as the improvement of multi-posture compatibility, imaging quality and operation efficiency; 2. Through the failure self-locking device, the extension action of the telescopic swing arm relative to the rotating swing arm can be restricted under this working condition, so as to ensure the position locking of the scanning ring, avoid harm to the patient, and improve the safety of the scanning device; 3. The gas spring device can balance the load between the corresponding rotating swing arm and the telescopic swing arm, ensure that the scanning ring will not freely fall under the fracture state of the cantilever member, avoid harm to the patient, improve the safety of the scanning device, and at the same time buffer the relative position adjustment between the rotating swing arm and the telescopic swing arm, improving the working stability of the device. Description of the Drawings

[0018] Figure 1 It is a schematic structural diagram of the CT scanning system according to the embodiment of the present application; Figure 2 It is a schematic structural diagram of the CT scanning system according to the embodiment of the present application; Figure 3 It is a schematic structural diagram of the CT scanning system according to the embodiment of the present application; Figure 4 It is a schematic structural diagram of the CT scanning device according to the embodiment of the present application; Figure 5 Structural schematic diagrams of the "working frame" and "transverse movement component" in the embodiments of the present application; Figure 6 Structural schematic diagram of the "transverse movement component" part in the embodiments of the present application; Figure 7 Enlarged partial structural schematic diagram of the "transverse movement component" in the embodiments of the present application; Figure 8 Structural schematic diagram of the "cantilever member 630" part in the embodiments of the present application; Figure 9 Enlarged partial structural schematic diagram of the "cantilever member 630" part in the embodiments of the present application; Figure 10 Exploded structural schematic diagram of the "cantilever member 630" part in the embodiments of the present application; Figure 11 Exploded structural schematic diagram of the "rotary drive mechanism" part in the embodiments of the present application; Figure 12 Enlarged partial structural schematic diagram of the "telescopic drive mechanism 620" part in the embodiments of the present application; Figure 13 Structural schematic diagram of the "cantilever member 630" in the extended state and the "scanning ring 500" in the horizontal detection state in the embodiments of the present application; Figure 14 Structural schematic diagram of the "cantilever member 630" in the extended state and the "scanning ring 500" in the longitudinal detection state in the embodiments of the present application; Figure 15 Structural schematic diagram of the "cantilever member 630" in the extended state and the "scanning ring 500" in the longitudinal detection state in the embodiments of the present application; Figure 16 Structural schematic diagram of the "yaw drive assembly 900" part in the embodiments of the present application; Figure 17 Structural schematic diagram of the "yaw drive assembly 900" part in the embodiments of the present application; Figure 18 Structural schematic diagram of the CT scanning system in the initial state in the embodiments of the present application; Figure 19 Structural schematic diagram of the CT scanning system in the initial state in the embodiments of the present application; Figure 20 Structural schematic diagram of the CT scanning system in the horizontal detection state in the embodiments of the present application; Figure 21 Position schematic diagram of the "detection seat assembly 300" of the CT scanning system in the longitudinal detection state in the embodiments of the present application; Figure 22This is a schematic structural diagram of the CT scanning system according to the embodiment of the present application in the longitudinal detection state; Figure 23 This is a detection schematic diagram of the "scanning ring 500" in the embodiment of the present application.

[0019] Reference numerals

[0020] Base plate - 100, mounting frame - 110, detection bed assembly - 200, bed body drive assembly - 210, bed board main body - 220, detection seat assembly - 300, seat drive assembly - 310, seat main body - 320, positioning device - 400, scanning ring - 500, warning unit - 510, transverse movement frame - 610, transverse movement main shaft - 611, transverse movement slider - 612, transverse movement motor - 613, transverse movement drive wheel - 614, transverse movement driven wheel - 615, transverse movement idler wheel - 616, transverse movement drive belt - 617, telescopic drive mechanism - 620, drive support - 621, drive shaft - 622, lifting shaft - 623, drive adapter - 624, transition adapter - 625, drive wheel - 626, cantilever member - 630, rotating swing arm - 631, telescopic swing arm - 632, yaw angle sensing device - 640, gas spring device - 650, rotary drive motor - 661, rotary drive wheel - 662, rotary drive belt - 663, driven lead screw - 664, driven drive wheel - 665, drive seat body - 666, half gear member - 667, adapter fixing plate - 668, limiting member - 669, connecting shaft - 710, connecting wheel - 720, adjusting shaft - 730, adjusting adapter - 731, hand crank member - 732, locking rotating shaft - 810, limiter - 820, fixing plate - 830, locking wheel - 840, support seat - 850, linkage shaft - 860, linkage wheel - 870, linkage belt - 880, yaw drive assembly - 900, yaw motor - 910, yaw power wheel - 911, yaw drive shaft - 920, sliding table - 930, sliding guide rail - 931, first driven slider - 932, transverse movement screw block - 940, fixing block - 950, second driven slider - 960, yaw guide rail - 970, yaw drive pulley - 980, first tensioning pulley - 981, second tensioning pulley - 982, third tensioning pulley - 983, yaw drive belt - 990. Detailed implementation manners

[0021] Next, the technical solutions in the embodiments of the present application will be clearly described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art belong to the scope of protection of the present application.

[0022] The terms "first", "second", etc. in the specification and claims of the present application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the data used in this way can be interchangeable under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described here, and the objects distinguished by "first", "second", etc. are generally of one type, and the number of objects is not limited. For example, the first object can be one or more. In addition, "and / or" in the specification and claims represents at least one of the connected objects, and the character " / " generally indicates that the objects associated with each other are in an "or" relationship.

[0023] The multi-plane imaging CT scanning device provided in the embodiment of the present application is described in detail below through specific embodiments and application scenarios in conjunction with the accompanying drawings.

[0024] Example 1 like Figures 1 to 23 As shown, an embodiment of the present application provides a CT scanning system, including a working frame, a detection bed assembly 200, a detection chair assembly 300, and a scanning ring 500 arranged on the working frame.

[0025] An adjustment unit is provided between the working frame and the scanning ring 500. The adjustment unit can drive the scanning ring 500 to move horizontally between the detection stations of the detection bed assembly 200 and the detection seat assembly 300, and can also drive the scanning ring 500 to rise and fall in the vertical direction and rotate along a predetermined axis.

[0026] The predetermined axis is specifically a horizontal line passing through the central axis of the scanning ring 500 . Driven by the adjustment unit, the scanning ring 500 can cooperate with the detection bed assembly 200 to perform lying posture detection, or cooperate with the detection chair assembly 300 to perform standing posture detection.

[0027] It is understandable that if Figure 23 As shown, when performing a lying position detection, since the patient is horizontal on the detection bed assembly 200, the adjustment component drives the scanning ring 500 to move to the corresponding position of the detection bed assembly 200 and lifts it to align with the horizontal direction of the patient, and at the same time rotates the scanning ring 500 along the predetermined axis to the level of the central axis, and finally the adjustment component drives the scanning ring 500 to pass through the patient on the detection bed assembly 200, thereby completing the detection action; when performing a standing position detection, the patient's upper body stands at a right angle and sits on the detection chair assembly 300, the adjustment component drives the scanning ring 500 to move to the corresponding position of the detection bed assembly 200 and aligns it with the patient longitudinally, and then rotates the scanning ring 500 along the predetermined axis to the level of the central axis and the ground, and finally the adjustment component drives the scanning ring 500 to lift and pass through the patient on the detection chair assembly 300, thereby completing the detection action.

[0028] It should be noted that the standing posture includes the standing state and the state where the upper body in the sitting posture is straightened, which is specifically determined based on the patient's detection scheme and will not be elaborated here.

[0029] In the embodiment of the present application, by using the above CT scanning system, the adjustment unit can drive the scanning ring 500 to move between the detection stations of the detection bed assembly 200 and the detection seat assembly 300, and can quickly adjust the scanning plane angle according to the patient's detection posture to ensure the accurate alignment of the central axis of the scanning ring 500 with the anatomical axis of the patient's body position. It has strong body position adaptability and can effectively improve the space utilization rate.

[0030] In a preferred embodiment, the angular range of the rotation of the scanning ring 500 along the predetermined axis is specifically greater than 90°.

[0031] Among them, the scanning ring 500 can rotate along the predetermined axis until the central axis is in a horizontal or vertical state.

[0032] In a preferred embodiment, the predetermined axis is specifically a horizontal line passing through the geometric center point of the scanning ring 500.

[0033] It should be noted that the scanning ring 500 is a ring-shaped structure, and the geometric center point is defined as satisfying the radial and axial symmetries of the scanning ring 500 at the same time. By setting the orientation of the predetermined axis, the rotation stroke range of the scanning ring 500 can be reduced, and the space occupied during the adjustment of the scanning ring 500 can be further reduced.

[0034] In a preferred embodiment, as Figures 1 to 3 , Figure 5 , Figures 18 to 22 shown, the working frame includes a bottom plate 100 and a mounting frame 110 fixedly arranged on the top of the bottom plate 100.

[0035] Among them, the adjustment unit is arranged on the mounting frame 110, and the detection bed assembly 200 and / or the detection seat assembly 300 are fixedly arranged on the top of the bottom plate 100.

[0036] It can be understood that the setting form of the working frame is not limited to the above one. For example, the mounting frame 110 can be directly set on the ground, or the working frame can be set as a wall, and the adjustment unit is directly arranged on the wall structure, as long as the installation of the adjustment unit and the scanning ring 500 can be realized, which will not be elaborated here.

[0037] In a preferred embodiment, the adjustment unit includes a transverse movement component arranged on the mounting frame 110, a telescopic unit fixedly connected to the transverse movement component, and a rotation unit.

[0038] Among them, the lateral movement component is used for adjusting the position of the scanning ring 500 in the horizontal direction, the telescopic unit is used for adjusting the position of the scanning ring 500 in the vertical direction, and the rotating unit is used for rotating the scanning ring 500 along a predetermined axis.

[0039] In a preferred embodiment, as Figures 1 to 8 、 Figures 12 to 22 shown, the lateral movement component includes a lateral movement frame 610 fixedly connected to the scanning ring 500, and a lateral movement driving device disposed between the mounting frame 110 and the lateral movement frame 610.

[0040] In a preferred embodiment, as Figures 1 to 7 、 Figures 18 to 22 shown, the lateral movement driving device includes a lateral movement motor 613 fixedly connected to the mounting frame 110, a lateral movement main shaft 611 rotatably disposed on the mounting frame 110 and coupled to the lateral movement motor 613, and a lateral movement slider 612 fixedly disposed on the lateral movement frame 610 and threadedly connected to the lateral movement main shaft 611.

[0041] It can be understood that the lateral movement motor 613 can drive the lateral movement motor 613 to rotate. When the lateral movement motor 613 rotates, it can drive the lateral movement slider 612 to move along the axis of the lateral movement motor 613, thereby driving the lateral movement frame 610 and the scanning ring 500 to move synchronously, and further driving the position adjustment of the scanning ring 500 in the horizontal direction.

[0042] In a preferred embodiment, as Figures 5 to 7 shown, a lateral movement driving wheel 614 is fixedly provided on the power output shaft of the lateral movement motor 613, a lateral movement driven wheel 615 is fixedly provided on the lateral movement main shaft 611, and a lateral movement driving belt 617 is wound between the lateral movement driving wheel 614 and the lateral movement driven wheel 615.

[0043] It can be understood that when the lateral movement driving wheel 614 rotates, it can drive the lateral movement main shaft 611 and the lateral movement driven wheel 615 to rotate synchronously through the lateral movement driving belt 617.

[0044] In a preferred embodiment, as Figure 3 shown, two mutually parallel lateral movement main shafts 611 are rotatably provided on the mounting frame 110, lateral movement driven wheels 615 are respectively fixedly provided on the two lateral movement main shafts 611, and the lateral movement driving belt 617 is wound between the lateral movement driving wheel 614 and the two lateral movement driven wheels 615.

[0045] In a preferred embodiment, as Figure 5 、 Figure 6 shown, at least one lateral movement idler wheel 616 is rotatably provided on the mounting frame 110.

[0046] Among them, the transverse movement drive belt 617 is wound between the transverse movement drive wheel 614, the transverse movement driven wheel 615, and the transverse movement idler wheel 616.

[0047] It can be understood that through the transverse movement idler wheel 616, the transmission stability of the transverse movement drive belt 617 can be improved, the sway caused by the too long suspended part of the transverse movement drive belt 617 can be reduced, and the accuracy of the transverse movement control of the scanning ring 500 can be improved.

[0048] In a preferred embodiment, as Figures 1 to 4 , Figures 18 to 22 shown, the telescopic unit includes a telescopic bracket and a telescopic drive mechanism 620 for driving the telescopic bracket to perform telescopic actions.

[0049] Among them, the fixed end of the telescopic bracket is installed on the transverse movement frame 610, the scanning ring 500 is rotatably arranged on the telescopic end of the telescopic bracket, and the rotating unit is fixedly arranged on the telescopic end of the telescopic bracket.

[0050] In a preferred embodiment, as Figures 1 to 4 , Figure 8 , Figure 10 , Figure 11 , Figures 13 to 15 , Figures 18 to 22 shown, the telescopic drive mechanism 620 includes a lifting shaft 623 rotatably arranged on the fixed end of the telescopic bracket and a telescopic drive motor fixedly arranged on the fixed end of the telescopic bracket.

[0051] Among them, the telescopic end of the telescopic bracket is threadedly connected to the lifting shaft 623, the telescopic drive motor is coupled to the lifting shaft 623, and can drive the lifting shaft 623 to rotate on the fixed end of the telescopic bracket.

[0052] It can be understood that when the telescopic drive motor drives the lifting shaft 623 to rotate, the telescopic end of the telescopic bracket can move axially along the lifting shaft 623, so as to realize the movement of the telescopic end of the telescopic bracket relative to the fixed end, and further realize the position adjustment of the scanning ring 500 in the vertical direction.

[0053] In a preferred embodiment, as Figures 1 to 4 , Figure 8 , Figure 10 , Figure 11 , Figures 13 to 15 , Figures 18 to 22 shown, a drive shaft 622 is rotatably provided on the fixed end of the telescopic bracket, and the central axis of the drive shaft 622 is located on a horizontal plane and is perpendicular to the central axis of the lifting shaft 623.

[0054] Among them, the power output shaft of the telescopic drive motor is parallel to the central axis of the lifting shaft 623. The drive shaft 622 is coupled to the power output shaft of the telescopic drive motor through a drive adapter 624 and coupled to the lifting shaft 623 through a transition adapter 625.

[0055] It can be understood that when the power output shaft of the telescopic drive motor rotates, it can drive the drive shaft 622 to rotate through the drive adapter 624, and the drive shaft 622 further drives the lifting shaft 623 to rotate through the transition adapter 625, so as to realize the position adjustment of the scanning ring 500 in the vertical direction.

[0056] In a preferred embodiment, as Figures 1 to 4 , Figures 8 to 15 , Figures 18 to 22 shown, the rotating unit includes a rotary drive motor 661 and a transmission seat body 666 fixedly arranged at the telescopic end of the telescopic bracket. A driven lead screw 664 coupled to the power output shaft of the rotary drive motor 661 is rotatably arranged on the transmission seat body 666.

[0057] The rotating unit further includes a half gear member 667 rotatably arranged at the telescopic end of the telescopic bracket. A transfer fixing plate 668 is fixedly connected to the half gear member 667, and the scanning ring 500 is fixedly arranged on the transfer fixing plate 668.

[0058] Among them, the central axis of the driven lead screw 664 is perpendicular to the predetermined axis, and the outer tooth surface of the half gear member 667 is meshed with the driven lead screw 664.

[0059] It can be understood that when the rotary drive motor 661 drives the driven lead screw 664 to rotate, the driven lead screw 664 can drive the half gear member 667 to rotate, so as to drive the scanning ring 500 to rotate relative to the telescopic bracket.

[0060] It should be noted that the setting form of the rotating unit is not limited to the above one. For example, it can also be set to arrange a gear member meshed with the outer tooth surface of the half gear member 667 on the power output shaft of the rotary drive motor 661, that is, directly drive the half gear member 667 to rotate through the rotary drive motor 661. However, in this setting form, the load on the rotary drive motor 661 is relatively large. By arranging the driven lead screw 664 perpendicular to the rotation axis of the scanning ring 500, the supporting ability for the scanning ring 500 can be improved, and a self-locking structure can be set for the meshing and matching form of the driven lead screw 664 and the half gear member 667, further improving the rotation adjustment reliability of the scanning ring 500.

[0061] In a preferred embodiment, as Figures 1 to 4 , Figures 8 to 15 , Figures 18 to 22As shown, a rotary drive wheel 662 is fixedly provided on the power output shaft of the rotary drive motor 661, a driven drive wheel 665 is fixedly provided on the driven lead screw 664, and a rotary transmission belt 663 is wound between the rotary drive wheel 662 and the driven drive wheel 665.

[0062] It can be understood that when the rotary drive motor 661 drives the rotary drive wheel 662 to rotate, the driven lead screw 664 can be driven to rotate synchronously through the rotary transmission belt 663.

[0063] In a preferred embodiment, as Figure 11 shown, two limiting members 669 are fixedly provided on the half gear member 667, and the two limiting members 669 can respectively abut against the transmission seat body 666 when the half gear member 667 rotates to limit the rotation angle range of the scanning ring 500.

[0064] It can be understood that the rotation limiting structure of the scanning ring 500 is not limited to the above one, as long as it can satisfy the angular rotation of the scanning ring 500 within a predetermined range, which will not be elaborated here.

[0065] In a preferred embodiment, as Figure 1 、 Figure 2 、 Figures 13 to 15 、 Figures 18 to 22 shown, the fixed end of the telescopic bracket is rotatably arranged on the transverse movement frame 610, and the adjusting unit further includes a yaw drive assembly 900 for adjusting the rotation angle of the telescopic bracket relative to the transverse movement frame 610.

[0066] It can be understood that after adjusting the relative angle between the telescopic bracket and the transverse movement frame 610 through the yaw drive assembly 900, the scanning ring 500 can be driven to yaw synchronously. Through the yaw of the scanning ring 500, the central axis of the scanning ring 500 can form an angle with the horizontal plane, so as to be applicable to the inclined sitting posture of the patient and further improve the practicability of the CT scanning system.

[0067] In a preferred embodiment, as Figure 1 、 Figure 2 、 Figures 18 to 22 shown, at least one positioning device 400 is further fixedly provided on the bottom plate 100.

[0068] It can be understood that the positioning device 400 is used for scanning and positioning of the patient in the lying posture.

[0069] In a preferred embodiment, as Figure 1 、 Figure 2 、 Figures 18 to 22As shown, the detection bed assembly 200 includes a bed driving assembly 210 and a bed board main body 220 fixedly arranged on the action execution end of the bed driving assembly 210. The bed driving assembly 210 can drive the bed board main body 220 to rotate on a horizontal plane.

[0070] The detection seat assembly 300 includes a seat driving assembly 310 and a seat main body 320 fixedly arranged on the action execution end of the seat driving assembly 310. The seat driving assembly 310 can drive the seat main body 320 to traverse in a predetermined direction.

[0071] Wherein, the predetermined direction is specifically set to be perpendicular to the traversing direction of the scanning ring 500.

[0072] As Figures 18 to 20 shown, when performing the lying posture detection, the bed board main body 220 rotates to extend along the traversing direction of the scanning ring 500, the seat main body 320 traverses to deviate from the traversing track of the scanning ring 500, and the scanning ring 500 is in a lateral detection state, that is, the central axis matches the extending direction of the bed board main body 220. The telescopic bracket extends so that the scanning ring 500 corresponds to the position of the bed board main body 220. At the same time, the traversing assembly drives the traversing frame 610 to traverse horizontally, thereby driving the scanning ring 500 to pass through the bed board main body 220 to realize the detection action on the patient; As Figure 21 、 Figure 22 shown, when performing the standing posture detection, the bed board main body 220 rotates to be perpendicular to the traversing direction of the scanning ring 500, the seat main body 320 traverses to the traversing track of the scanning ring 500, and the scanning ring 500 is in a longitudinal detection state, that is, the central axis matches the extending direction of the patient's body on the seat main body 320. At the same time, the traversing assembly drives the traversing frame 610 to traverse horizontally, so that the scanning ring 500 moves to the corresponding position of the seat main body 320, and then the telescopic bracket extends, driving the scanning ring 500 to pass through the seat main body 320 to realize the detection action on the patient.

[0073] In the embodiment of the present application, by adopting the above CT scanning system, through the orientation adjustment of the bed board main body 220 and the seat main body 320 in different detection states, it can provide an avoidance space for the traversing, lifting and angle adjustment of the scanning ring 500, improve the space utilization rate, and is beneficial to further reducing the occupied volume of the scanning system, so that it can be applied to a standard scanning room.

[0074] In a preferred embodiment, as Figure 23 shown, it further includes a warning unit 510 for safely monitoring the detection state between the scanning ring 500 and the patient.

[0075] It can be understood that the warning unit 510 can be set as a visual monitoring device with a monitoring plane, which can be fixedly arranged at the telescopic end of the telescopic bracket to maintain the relative position with the scanning ring 500. The monitoring plane can be set as the end face of the scanning ring 500 close to the patient side, so as to monitor the penetration of the scanning ring 500, or the monitoring plane can be set as the axial extension plane of the cavity of the scanning ring 500, so as to monitor whether there will be position interference on the moving path of the scanning ring 500, ensure the safety during the operation of the scanning ring 500, and avoid harm to the patient.

[0076] In a preferred embodiment, the scanning ring 500 adopts the scanning ring structure in a Chinese patent with the publication number of CN114631836B, a mobile rail CT, for example, the inside of the scanning ring 500 can include a rotor assembly and a stator assembly, and a rotor drive assembly is arranged between the rotor assembly and the stator assembly.

[0077] Or the matching structure between the scanning ring 500 and the telescopic bracket adopts the relevant technologies in the above patent. For example, components such as a control box, an operation panel, a cable rope, a cable handle, a cable hook, a camera, and a scanning radar can be arranged inside the telescopic bracket.

[0078] Of course, the structure of the scanning ring 500 in this embodiment is not limited to the above one, as long as it can realize the CT detection of the patient, which will not be elaborated here.

[0079] Embodiment 2 As Figures 1 to 23 shown, the embodiment of the present application provides a CT scanning device for multi-plane imaging, which can be applied to the CT scanning system in Embodiment 1 above, including a scanning ring 500, a transverse moving frame 610, a cantilever member 630, and a telescopic driving mechanism 620 for driving the cantilever member 630 to perform telescopic actions.

[0080] The cantilever member 630 includes two rotating swing arms 631 that are symmetrically arranged about the central axis of the scanning ring 500 and are respectively rotatably connected to the transverse moving frame 610. The telescopic swing arm 632 is telescopically arranged on the rotating swing arm 631. The scanning ring 500 is rotatably arranged between the two telescopic swing arms 632, and there are two sets of rotating units that are respectively fixedly arranged on the two telescopic swing arms 632.

[0081] Among them, it further includes a yaw driving component 900 for adjusting the rotation angle of the rotating swing arm 631 relative to the transverse moving frame 610, a rotating unit for driving the scanning ring 500 to rotate relative to the telescopic swing arm 632, and a telescopic driving mechanism 620 for driving the telescopic swing arm 632 to perform telescopic actions relative to the rotating swing arm 631.

[0082] It can be understood that, as Figure 23As shown, when performing the lying position detection, the telescopic drive mechanism 620 drives the scanning ring 500 to rise and fall until it is aligned with the patient in the horizontal direction. At the same time, the scanning ring 500 is rotated along a predetermined axis until the central axis is horizontal. Finally, the adjustment assembly drives the scanning ring 500 to pass through the patient to complete the detection action. When performing the standing position detection, the adjustment assembly drives the scanning ring 500 to move until it is longitudinally aligned with the patient. The scanning ring 500 is rotated along a predetermined axis until the central axis is perpendicular to the ground. The telescopic drive mechanism 620 drives the scanning ring 500 to rise and fall through the patient to be detected to complete the detection action.

[0083] In the embodiment of the present application, the above CT scanning device for multi-plane imaging is adopted. A double-arm suspension bracket structure is used. Through the linear expansion and contraction of the telescopic swing arm 632 relative to the rotating swing arm 631, combined with the yaw angle of the cantilever member 630 and the rotation angle adjustment of the scanning ring 500, rapid switching under the standing and lying position detection requirements can be achieved, which is beneficial to the miniaturization of the scanning device, as well as the improvement of multi-position compatibility, imaging quality, and operation efficiency.

[0084] In a preferred embodiment, as Figures 1 to 4 , Figure 8 , Figure 10 , Figures 13 to 15 , Figures 18 to 22 shown, a drive bracket 621 is fixedly provided between the two rotating swing arms 631. The telescopic drive mechanism 620 includes a lifting shaft 623 rotatably provided on the rotating swing arm 631 and a telescopic drive motor fixedly provided on the drive bracket 621.

[0085] Among them, the telescopic swing arm 632 is threadedly connected to the lifting shaft 623. The telescopic drive motor is coupled to the lifting shaft 623 and can drive the lifting shaft 623 to rotate on the rotating swing arm 631.

[0086] It can be understood that when the telescopic drive motor drives the lifting shaft 623 to rotate, the telescopic swing arm 632 can move axially along the lifting shaft 623, thereby realizing the movement of the telescopic swing arm 632 relative to the rotating swing arm 631, and further realizing the position adjustment of the scanning ring 500 in the vertical direction.

[0087] In a preferred embodiment, as Figures 1 to 4 , Figure 8 , Figure 10 , Figures 13 to 15 , Figures 18 to 22 shown, a drive shaft 622 is rotatably provided on the drive bracket 621. The central axis of the drive shaft 622 is located on a horizontal plane and is perpendicular to the central axis of the lifting shaft 623.

[0088] Among them, the power output shaft of the telescopic drive motor is parallel to the central axis of the lifting shaft 623. The drive shaft 622 is coupled to the power output shaft of the telescopic drive motor through a drive adapter 624 and is coupled to the two lifting shafts 623 through two transition adapters 625 respectively.

[0089] It can be understood that when the power output shaft of the telescopic drive motor rotates, it can drive the drive shaft 622 to rotate through the drive adapter 624, and the drive shaft 622 further drives the lifting shaft 623 to rotate through the transition adapter 625, so as to realize the position adjustment of the scanning ring 500 in the vertical direction.

[0090] In a preferred embodiment, as Figures 1 to 4 , Figure 8 , Figure 10 , Figures 13 to 15 , Figures 18 to 22 shown, it further includes a failure self-locking device for restricting the relative movement between the telescopic swing arm 632 and the rotating swing arm 631.

[0091] It can be understood that when the telescopic drive motor fails or loses power, since the telescopic swing arm 632 is connected to the scanning ring 500 and realizes telescoping through the lifting shaft 623, when the lifting shaft 623 loses rotational limit, the telescopic swing arm 632 will descend under the action of gravity, posing a great safety hazard. Through the failure self-locking device, the extending action of the telescopic swing arm 632 relative to the rotating swing arm 631 can be restricted under this working condition, so as to ensure the position locking of the scanning ring 500, avoid harm to the patient, and improve the safety of the scanning device.

[0092] In a preferred embodiment, as Figures 1 to 4 , Figure 8 , Figure 10 , Figures 12 to 15 , Figures 18 to 22 shown, the failure self-locking device includes a fixing plate 830 and a support seat 850 fixedly arranged on the drive bracket 621. A locking rotating shaft 810 is rotatably arranged on the support seat 850. A locking wheel 840 is fixedly arranged on the locking rotating shaft 810. A driving wheel 626 is fixedly arranged on the drive shaft 622. A linkage belt 880 is wound between the locking wheel 840 and the driving wheel 626.

[0093] Among them, a stopper 820 is fixedly arranged between the locking rotating shaft 810 and the fixing plate 830. In the power-off state, the stopper 820 can restrict the rotation of the locking rotating shaft 810 relative to the fixing plate 830, so as to restrict the relative movement between the telescopic swing arm 632 and the rotating swing arm 631.

[0094] In a preferred embodiment, in the power-off state, the limiter 820 can limit the one-way rotation of the locking rotating shaft 810 relative to the fixed plate 830, thereby restricting the extension movement of the telescopic swing arm 632 relative to the rotating swing arm 631.

[0095] In a preferred embodiment, the limiter 820 is specifically configured as an electromagnetic pawl and ratchet structure, that is, an elastic electromagnetic pawl member is fixedly arranged on the fixed plate 830, and a ratchet member is arranged on the locking rotating shaft 810. When in the power-off state, the elastic electromagnetic pawl member is powered off and meshes with the ratchet member under the action of its own elastic force, thereby realizing the one-way braking of the locking rotating shaft 810 relative to the fixed plate 830; in the normal working state, the elastic electromagnetic pawl member is powered on and disengages from the ratchet member under the action of magnetic force, so as not to interfere with the rotation of the drive shaft 622.

[0096] It can be understood that the setting form of the failure self-locking device is not limited to the above one. For example, a clutch or other forms of self-locking structures can also be adopted, as long as the failure protection between the rotating swing arm 631 and the telescopic swing arm 632 can be ensured, which will not be elaborated here.

[0097] In a preferred embodiment, as Figures 1 to 4 、 Figure 8 、 Figure 10 、 Figures 12 to 15 、 Figures 18 to 22 shown, a manual failure backup component is further included for manually controlling the telescopic movement of the telescopic swing arm 632 relative to the rotating swing arm 631.

[0098] It can be understood that when the telescopic drive motor fails or loses power, the failure self-locking device is activated and restricts the one-way rotation of the locking rotating shaft 810 relative to the fixed plate 830, thereby restricting the extension movement of the telescopic swing arm 632 relative to the rotating swing arm 631. At this time, the manual failure backup component can control the retraction of the rotating swing arm 631 relative to the telescopic swing arm 632, so as to move the scanning ring 500 to the non-working area and improve the overall safety redundancy of the device.

[0099] In a preferred embodiment, as Figures 1 to 4 、 Figures 8 to 10 、 Figures 12 to 15 、 Figures 18 to 22 shown, the manual failure backup component includes an engagement shaft 710 arranged in parallel with the drive shaft 622, and an adjustment shaft 730 rotatably arranged on the rotating swing arm 631 and parallel to the lifting shaft 623.

[0100] An engagement wheel 720 is fixedly arranged on the engagement shaft 710, a linkage belt 880 is wound between the drive wheel 626, the locking wheel 840, and the engagement wheel 720, and one end of the adjustment shaft 730 away from the telescopic swing arm 632 is coupled to the engagement shaft 710 through an adjustment adapter 731.

[0101] Among them, the manual failure backup component further includes a hand crank member 732, which is detachably connected to one end of the adjusting shaft 730 away from the adjusting adapter 731 and is used to manually drive the rotation of the adjusting shaft 730.

[0102] In a preferred embodiment, as Figure 12 shown, at least one linkage shaft 860 is rotatably provided on the driving bracket 621, and a linkage wheel 870 is fixedly provided on the linkage shaft 860.

[0103] Among them, the linkage belt 880 is wound between the driving wheel 626, the locking wheel 840, the connecting wheel 720, and the linkage wheel 870.

[0104] It can be understood that the structural setting form of the manual failure backup component is not limited to the above one. Through the cooperation of the detachable hand crank member 732 and the adjusting shaft 730, it is convenient for the staff to operate. After the telescopic driving motor fails or loses power, the position of the scanning ring 500 can be quickly adjusted to ensure the safety performance of the device.

[0105] In a preferred embodiment, as Figures 1 to 3 , Figure 8 , Figures 12 to 15 , Figures 18 to 22 shown, a gas spring device 650 is fixedly connected between the corresponding rotating swing arm 631 and the telescopic swing arm 632.

[0106] It can be understood that the gas spring device 650 can balance the load between the corresponding rotating swing arm 631 and the telescopic swing arm 632, ensure that the scanning ring 500 will not freely fall in the fracture state of the cantilever member 630, avoid harm to the patient, improve the safety of the scanning device, and at the same time buffer the relative position adjustment between the rotating swing arm 631 and the telescopic swing arm 632, improving the working stability of the device.

[0107] In a preferred embodiment, as Figure 23 shown, it further includes an early warning unit 510 for safely monitoring the detection state between the scanning ring 500 and the patient.

[0108] It can be understood that the early warning unit 510 can be set as a visual monitoring device with a monitoring plane. It can be fixedly provided on the telescopic swing arm 632 to maintain the relative position with the scanning ring 500. The monitoring plane can be set as the end face of the scanning ring 500 close to the patient to monitor the penetration of the scanning ring 500, or the monitoring plane can be set as the axial extension plane of the cavity of the scanning ring 500 to monitor whether there will be position interference on the moving path of the scanning ring 500, ensuring the safety of the scanning ring 500 during the working process and avoiding harm to the patient.

[0109] In a preferred embodiment, the scanning ring 500 adopts the scanning ring structure in a Chinese patent with the publication number CN114631836B, namely, a mobile rail CT. For example, the interior of the scanning ring 500 can include a rotor assembly and a stator assembly, and a rotor drive assembly is provided between the rotor assembly and the stator assembly.

[0110] Alternatively, the cooperation structure between the scanning ring 500 and the cantilever member 630 adopts the related technology in the above patent. For example, components such as a control box, an operation panel, a cable rope, a cable handle, a cable hook, a camera, and a scanning radar can be provided inside the cantilever member 630.

[0111] Of course, the structure of the scanning ring 500 in this embodiment is not limited to the above one, as long as it can achieve CT detection of patients, which will not be elaborated here.

[0112] Embodiment 3 As Figures 1 to 23 shown, the embodiment of the present application provides a CT scanning device, which can be applied to the CT scanning system in Embodiment 1 above, including a scanning ring 500, a transverse movement frame 610, and a telescopic bracket. The fixed end of the telescopic bracket is rotatably provided on the transverse movement frame 610, and the scanning ring 500 is rotatably provided on the telescopic end of the telescopic bracket.

[0113] It further includes a yaw drive assembly 900 for adjusting the rotation angle of the telescopic bracket relative to the transverse movement frame 610. The yaw drive assembly 900 includes a yaw drive shaft 920, a sliding table 930, and a driven adapter. The yaw drive shaft 920 is rotatably provided on the transverse movement frame 610, the sliding table 930 is slidably provided on the fixed end of the telescopic bracket, the driven adapter is rotatably connected to the sliding table 930 and is threadedly connected to the yaw drive shaft 920.

[0114] Wherein, the central axis of the yaw drive shaft 920 is located on a horizontal plane and extends along the yaw direction of the telescopic bracket, and the sliding direction of the sliding table 930 is parallel to the telescopic direction of the telescopic bracket.

[0115] It can be understood that when the yaw drive shaft 920 rotates relative to the transverse movement frame 610, the driven adapter axially moves along the yaw drive shaft 920 under the action of the thread. As the driven adapter moves, the telescopic bracket yaws relative to the transverse movement frame 610, and at the same time, the sliding table 930 slides relative to the fixed end of the telescopic bracket, so as to adapt to the relative position change between the telescopic bracket and the driven adapter.

[0116] In the embodiments of the present application, by adopting the above CT scanning device, the yaw drive assembly 900 is set as a lateral drive structure, so that the telescopic axis of the telescopic bracket forms an angle with the central axis of the yaw drive shaft 920, so that the load center can directly act on the axial direction of the yaw drive shaft 920. Compared with the traditional rotary drive scheme, it can effectively improve the anti-overturning moment and bearing capacity of the telescopic bracket in the yaw state, and ensure the support stability and scanning accuracy of the tilt scanning ring 500.

[0117] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, two yaw drive shafts 920 are rotatably arranged on the transverse frame 610, and the two yaw drive shafts 920 are symmetrically arranged with respect to the central axis of the scanning ring 500.

[0118] In a preferred embodiment, taking the telescopic bracket in the vertical state as the reference benchmark, the yaw angle of the telescopic bracket relative to the transverse frame 610 is specifically set to ±15°.

[0119] It should be noted that the yaw angle range of the telescopic bracket relative to the transverse frame 610 can depend on the moving stroke of the driven adapter on the yaw drive shaft 920, that is, the maximum yaw angles respectively correspond to the two stroke endpoints of the driven adapter on the yaw drive shaft 920.

[0120] Of course, the yaw angle range of the telescopic bracket relative to the transverse frame 610 can also be set to be controlled by the rotation of the yaw drive shaft 920, that is, the yaw angle of the telescopic bracket relative to the transverse frame 610 is monitored by a sensor, and the rotation of the yaw drive shaft 920 is restricted when the predetermined angle is reached, so as to realize the control of the yaw angle of the telescopic bracket relative to the transverse frame 610.

[0121] As Figure 13 shown, the telescopic bracket is in the extended state, and the scanning ring 500 is in the lateral detection state, that is, the central axis matches the body extension direction of the patient in the lying position. The telescopic bracket is in the yaw state relative to the transverse frame 610, and the yaw angle is 15°.

[0122] As Figure 14 、 Figure 15 shown, the telescopic bracket is in the extended state, and the scanning ring 500 is in the longitudinal detection state, that is, the central axis matches the body extension direction of the patient in the standing position (standing or sitting). The telescopic bracket is in the yaw state relative to the transverse frame 610, and the yaw angle is 15°.

[0123] It can be understood that by the yaw angle of the telescopic bracket relative to the transverse movement frame 610 and in combination with the rotation angle of the scanning ring 500 relative to the telescopic bracket, it is possible to achieve tilt detection at a certain angle with respect to the horizontal or vertical direction, so as to cope with the detection in the case where the body has an angle in the standing or lying posture of the patient, and improve the overall applicability of the device.

[0124] In a preferred embodiment, as Figures 1 to 4 、 Figures 13 to 22 shown, the driven adapter includes a transverse movement screw block 940 threadedly connected to the yaw drive shaft 920, and a fixed block 950 fixedly connected to the transverse movement screw block 940 and rotatably connected to the sliding table 930.

[0125] In a preferred embodiment, as Figure 16 shown, a yaw guide rail 970 parallel to the central axis of the yaw drive shaft 920 is fixedly provided on the transverse movement frame 610, and a second driven slider 960 slidably connected to the yaw guide rail 970 is fixedly provided on the driven adapter.

[0126] It can be understood that through the sliding guidance between the second driven slider 960 and the yaw guide rail 970, the movement stability of the driven adapter can be improved, thereby improving the yaw adjustment accuracy of the scanning ring 500.

[0127] It should be noted that the guiding structure of the driven adapter is not limited to the above one. For example, a guide rod slidably connected to the fixed block 950 is provided on the transverse movement frame 610, as long as it can guide the translation of the driven adapter along the axial direction of the yaw drive shaft 920, which will not be elaborated here.

[0128] In a preferred embodiment, as Figure 8 、 Figure 10 shown, a sliding guide rail 931 is fixedly provided on the fixed end of the telescopic bracket, and a first driven slider 932 slidably connected to the sliding guide rail 931 is fixedly provided on the sliding table 930.

[0129] Among them, the extending direction of the sliding guide rail 931 is parallel to the telescopic direction of the telescopic bracket.

[0130] In a preferred embodiment, it further includes a yaw drive assembly for driving the yaw drive shaft 920 to rotate relative to the transverse movement frame 610.

[0131] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, the yaw drive assembly includes a yaw motor 910 fixedly provided on the transverse movement frame 610, and the power output shaft of the yaw motor 910 is coupled to the yaw drive shaft 920.

[0132] In a preferred embodiment, as Figures 1 to 5 、Figures 13 to 22 As shown, a yaw drive wheel 980 is fixedly provided on the yaw drive shaft 920, and a yaw power wheel 911 is fixedly provided on the power output shaft of the yaw motor 910. A yaw drive belt 990 is wound between the yaw drive wheel 980 and the yaw power wheel 911.

[0133] It can be understood that when the yaw motor 910 drives the yaw power wheel 911 to rotate, it can drive the yaw drive wheel 980 and the yaw drive shaft 920 to rotate synchronously through the yaw drive belt 990, so as to realize the yaw control of the telescopic bracket.

[0134] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, it further includes an auxiliary guide wheel assembly disposed between the yaw power wheel 911 and the yaw drive wheel 980.

[0135] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, the auxiliary guide wheel assembly includes a first tension wheel 981 rotatably disposed on the transverse movement frame 610. The central axis of the first tension wheel 981 is parallel to the yaw drive shaft 920, and the scanning ring 500 is symmetric about the central axis of the first tension wheel 981.

[0136] Wherein, the yaw drive belt 990 is wound between the yaw drive wheel 980, the first tension wheel 981 and the yaw power wheel 911.

[0137] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, the auxiliary guide wheel assembly further includes two groups of second tension wheels 982 rotatably disposed on the transverse movement frame 610. The central axis of the second tension wheel 982 is on the same horizontal plane as the central axis of the first tension wheel 981. The yaw drive belt 990 is wound between the yaw drive wheel 980, the first tension wheel 981, the second tension wheel 982 and the yaw power wheel 911.

[0138] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, each group of second tension wheels 982 includes at least one second tension wheel 982.

[0139] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22 shown, the two groups of second tension wheels 982 are symmetrically arranged about the central axis of the first tension wheel 981.

[0140] In a preferred embodiment, as Figures 1 to 5 、 Figures 13 to 22As shown, the auxiliary guide wheel assembly further includes at least one third tension wheel 983 rotatably arranged on the transverse movement frame 610, and the yaw transmission belt 990 is wound around the yaw transmission wheel 980, the first tension wheel 981, the second tension wheel 982, the third tension wheel 983, and the yaw power wheel 911.

[0141] It can be understood that the setting form of the auxiliary guide wheel assembly is not limited to the above one, as long as the power transmission between the yaw power wheel 911 and the yaw drive shaft 920 can be achieved, which will not be elaborated here.

[0142] In a preferred embodiment, as Figures 1 to 5 , Figures 13 to 22 shown, it further includes a yaw angle sensing device 640 for monitoring the yaw angle of the telescopic bracket relative to the transverse movement frame 610.

[0143] In a preferred embodiment, the yaw angle sensing device 640 is specifically set as an angle encoder, and the angle encoder is arranged at the corresponding position of the rotating shaft between the telescopic bracket and the transverse movement frame 610.

[0144] It can be understood that the setting form of the yaw angle sensing device 640 is not limited to the above one. For example, the yaw angle of the telescopic bracket can also be directly calculated by monitoring the relative position of the driven fitting on the yaw drive shaft 920, as long as the yaw angle monitoring of the telescopic bracket can be achieved, which will not be elaborated here.

[0145] In a preferred embodiment, as Figures 1 to 22 shown, it further includes a rotating unit for driving the scanning ring 500 to rotate relative to the telescopic end of the telescopic bracket, and / or a telescopic drive mechanism 620 for driving the telescopic bracket to perform telescopic actions.

[0146] In a preferred embodiment, the rotation angle range of the scanning ring 500 relative to the telescopic end of the telescopic bracket is specifically set to be greater than 90°.

[0147] Among them, the scanning ring 500 can rotate along a predetermined axis until the central axis is in a horizontal or vertical state.

[0148] It can be understood that through the yaw control of the telescopic bracket by the yaw drive assembly 900 and the rotation control of the scanning ring 500 by the rotating unit, the scanning operation of patients in different postures can be adapted, greatly improving the practicability of the scanning device.

[0149] In a preferred embodiment, as Figure 23 shown, it further includes an early warning unit 510 for safely monitoring the detection state between the scanning ring 500 and the patient.

[0150] It can be understood that the warning unit 510 can be set as a visual monitoring device with a monitoring plane, which can be fixedly arranged at the telescopic end of the telescopic bracket, so as to maintain the relative position with the scanning ring 500. The monitoring plane can be set as the end face of the scanning ring 500 close to the patient, so as to monitor the penetration of the scanning ring 500, or the monitoring plane can be set as the axial extension plane of the cavity of the scanning ring 500, so as to monitor whether there will be position interference on the moving path of the scanning ring 500, ensure the safety of the scanning ring 500 during operation, and avoid harm to the patient.

[0151] In a preferred embodiment, the scanning ring 500 adopts the scanning ring structure in a Chinese patent with the publication number CN114631836B, a mobile rail CT, for example, the interior of the scanning ring 500 can include a rotor assembly and a stator assembly, and a rotor drive assembly is arranged between the rotor assembly and the stator assembly.

[0152] Or the cooperation structure between the scanning ring 500 and the telescopic bracket adopts the relevant technologies in the above patent. For example, components such as a control box, an operation panel, a cable rope, a cable handle, a cable hook, a camera, and a scanning radar can be arranged inside the telescopic bracket.

[0153] Of course, the structure of the scanning ring 500 in this embodiment is not limited to the above one, as long as it can achieve CT detection of the patient, which will not be elaborated here.

[0154] It should be noted that in this article, the term "including", "comprising" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of another identical element in the process, method, article or device including that element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of the present application is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in a reverse order according to the functions involved. For example, the described methods may be performed in an order different from that described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.

[0155] The embodiments of the present application have been described above in conjunction with the accompanying drawings. However, the present application is not limited to the above specific embodiments. The above specific embodiments are merely illustrative rather than restrictive. Under the inspiration of the present application, those of ordinary skill in the art can also make many forms without departing from the purpose of the present application and the scope protected by the claims, and all of them fall within the protection scope of the present application.

Claims

1. A CT scanning device for multi-planar imaging, characterized in that, It includes a scanning ring, a traversing frame, a cantilever member, and a telescopic driving mechanism for driving the cantilever member to perform telescopic movements: The cantilever member includes two rotating swing arms symmetrically arranged about the central axis of the scanning ring and respectively rotatably connected to the traversing frame. The rotating swing arms are telescopically provided with telescopic swing arms, and the scanning ring is rotatably arranged between the two telescopic swing arms; Among them, it further includes a yaw driving assembly for adjusting the rotation angle of the rotating swing arm relative to the traversing frame, a rotating unit for driving the scanning ring to rotate relative to the telescopic swing arm, and a telescopic driving mechanism for driving the telescopic swing arm to perform telescopic movements relative to the rotating swing arm; There are two groups of the rotating units and they are respectively fixedly arranged on the two telescopic swing arms.

2. The CT scanning device for multi-planar imaging according to claim 1, characterized in that, A driving bracket is fixedly arranged between the two rotating swing arms. The telescopic driving mechanism includes: A lifting shaft rotatably arranged on the rotating swing arm; A telescopic driving motor fixedly arranged on the driving bracket; Among them, the telescopic swing arm is threadedly connected to the lifting shaft, and the telescopic driving motor is coupled to the lifting shaft and can drive the lifting shaft to rotate on the rotating swing arm.

3. The CT scanning device for multi-planar imaging according to claim 2, characterized in that, A driving shaft is rotatably arranged on the driving bracket. The central axis of the driving shaft is located on a horizontal plane and is perpendicular to the central axis of the lifting shaft; Among them, the power output shaft of the telescopic driving motor is parallel to the central axis of the lifting shaft. The driving shaft is coupled to the power output shaft of the telescopic driving motor through a driving adapter and is coupled to the two lifting shafts respectively through two transition adapters.

4. The CT scanning device for multi-planar imaging according to claim 3, characterized in that, It further includes a failure self-locking device for restricting the relative movement between the telescopic swing arm and the rotating swing arm.

5. The CT scanning device for multi-planar imaging according to claim 4, characterized in that, The failure self-locking device includes a fixing plate and a supporting seat fixedly arranged on the driving bracket; A locking rotating shaft is rotatably arranged on the supporting seat. A locking wheel is fixedly arranged on the locking rotating shaft. A driving wheel is fixedly arranged on the driving shaft. A linkage belt is wound between the locking wheel and the driving wheel; Among them, a limiter is arranged between the locking rotating shaft and the fixing plate; In a power-off state, the limiter can restrict the rotation of the locking rotating shaft relative to the fixing plate.

6. The CT scanning device for multi-planar imaging according to any one of claims 1 to 5, characterized in that, It further includes a manual failure backup assembly for controlling the movement of the telescopic swing arm relative to the rotating swing arm.

7. The CT scanning device for multi-planar imaging according to claim 6, characterized in that, The manual failure backup assembly includes an engagement shaft arranged in parallel with the driving shaft and an adjustment shaft rotatably arranged on the rotating swing arm and parallel to the lifting shaft; An engagement wheel is fixedly arranged on the engagement shaft. A linkage belt is wound between the engagement wheel, the driving wheel, and the locking wheel. The end of the adjustment shaft far from the telescopic swing arm is coupled to the engagement shaft through an adjustment adapter.

8. The CT scanning device for multi-planar imaging according to claim 7, characterized in that, The manual failure backup assembly further includes a hand crank; Among them, the hand crank is detachably connected to the end of the adjustment shaft far from the adjustment adapter and is used to drive the adjustment shaft to rotate.

9. The CT scanning device for multi-planar imaging according to claim 7, characterized in that, At least one linkage shaft is rotatably arranged on the driving bracket between the two rotating swing arms. A linkage wheel is fixedly arranged on the linkage shaft; Among them, the linkage belt is wound between the driving wheel, the locking wheel, the engagement wheel, and the linkage wheel.

10. The CT scanning device for multi-planar imaging according to claim 1, characterized in that, A gas spring device is fixedly connected between the corresponding rotating swing arm and the telescopic swing arm.

Citation Information

Patent Citations

  • Medical CT (computed tomography) machine

    CN103549970A

  • Apparatus and method for providing patient imaging

    CN104684480A

  • Rotary deflection type shooting and imaging robot applied to inner spherical surface defect detection

    CN111505019A

  • Movable cone beam scanner system

    CN116509427A

  • X-ray diagnostic device

    JP2000254114A