Mammary gland compression device for radiodiagnosis and method of use thereof

By designing a breast compression device for radiological diagnosis, and utilizing components such as a bearing seat plate, a free-spinning cavity, a telescopic cavity, and a curved plate, the device achieves all-round compression and vibration of the breast, solving the problem of the inability to provide all-round compression in existing technologies and improving the effectiveness of breast cancer prevention.

CN114224372BActive Publication Date: 2025-11-07CHENGDU MILITARY GENERAL HOSPITAL OF PLA
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Patent Information

Application Number
CN202111543072.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-12-16
Publication Date
2025-11-07
Estimated Expiration
2041-12-16

AI Technical Summary

Technical Problem

Existing breast compression devices cannot provide comprehensive compression, thus failing to effectively prevent breast cancer.

Method used

A breast compression device for radiological diagnosis was designed, including components such as a bearing seat plate, a free-spinning cavity, a telescopic cavity, a curved plate, and compression components. The curved plate is driven to rotate by the drive component, and combined with the telescopic screw and linkage column, multiple compression balls are used to compress and vibrate the breast in all directions, and the compression intensity and range can be adjusted.

Benefits of technology

It achieves comprehensive compression of the breast, enhancing the effect of breast cancer prevention. The intensity and range of compression can be adjusted according to the user's needs, providing a comprehensive massage effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of breast compression, more particularly to a breast compression device for radiodiagnosis and a method for using the same, which comprises the following steps: Step 1, contacting the breast with the plurality of compression balls and contacting the nipple with the rubber cavity and storing it into the hovering cavity; Step 2, driving the idling cavity to rotate by the driving member, driving the plurality of curved plates to rotate by the rotation of the idling cavity, and contacting the plurality of rotating compression balls with the mammary glands on the breast to complete the compression massage treatment of the mammary glands; Step 3, during the compression treatment of the mammary glands, rotating the telescopic lead screw to adjust the position of the curved bowl cavity, thereby changing the oscillation amplitude of the plurality of compression balls and finally changing the compression strength of the mammary glands; Step 4, changing the position of the bearing seat plate on the support member, contacting the other breast with the plurality of compression balls, and contacting the other nipple with the rubber cavity and storing it into the hovering cavity to complete the compression treatment of the other mammary gland.
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Description

Technical Field

[0001] This invention relates to the field of breast compression technology, and more specifically to a breast compression device for radiological diagnosis and its usage. Background Technology

[0002] In the past two or three decades, every country has been developing rapidly. However, this rapid development has also generated a lot of waste, and waste treatment technology has not kept pace. As a result, the world has been polluted by industry. Industrial pollution refers to the pollution of the environment by waste gas, wastewater, and solid waste generated during industrial production. The pollution is mainly caused by wastewater, waste gas, waste residue, and various noises generated during production. When people inhale wastewater or waste gas, it can cause great harm to their health. According to statistics, the number of cancer patients has been increasing in recent years, which is due to industrial pollution. Breast cancer accounts for the highest proportion of all cancers. Breast cancer can be effectively prevented by changing diet and living environment. It can also be prevented by compression. However, current technology can only perform simple compression treatment on the breast and cannot provide comprehensive compression of the breast. If comprehensive compression of the breast cannot be achieved, it will not be effective in preventing breast cancer. Summary of the Invention

[0003] This invention relates to the field of breast compression technology, and more specifically to a breast compression device for radiological diagnosis and its usage method. Its beneficial effect is that it can compress the breast from all directions, thereby further preventing the occurrence of breast cancer.

[0004] The objective of this invention is achieved through the following technical solution:

[0005] A breast compression device for radiological diagnosis includes a bearing seat plate and a free-spinning cavity rotatably connected to the bearing seat plate. Multiple telescopic cavities are fixedly connected to the free-spinning cavity, and curved plates are slidably connected to each of the multiple telescopic cavities. Multiple compression components are slidably connected to each curved plate.

[0006] Furthermore, the compression member includes a compression ball and a contact ball column fixedly connected to the compression ball, and multiple contact ball columns are slidably connected to multiple curved plates.

[0007] Furthermore, a sliding plate is slidably connected to the bearing seat plate, and a cup cavity is fixedly connected to the sliding plate, with multiple recessed grooves provided on the cup cavity.

[0008] Furthermore, the breast compression device for radiological diagnosis also includes a telescopic contact cavity and linkage columns. The telescopic contact cavity is fixedly connected to the cup cavity, and multiple linkage columns are provided, each fixedly connected to a multiple cup plate.

[0009] Further, the breast compression device for radiodiagnosis further comprises a telescopic screw rod, which is rotationally connected to the bearing seat plate, and the strip slide plate is in threaded transmission connection with the telescopic screw rod.

[0010] Further, the breast compression device for radiodiagnosis further comprises a fixed strip and a hovering cavity, the fixed strip is fixedly connected to the bearing seat plate, and the hovering cavity is fixedly connected to the fixed strip.

[0011] Further, the breast compression device for radiodiagnosis further comprises a rubber cavity, which is fixedly connected to the front end of the hovering cavity.

[0012] Further, the breast compression device for radiodiagnosis further comprises a driving member, which is connected to the bearing seat plate, and the driving member is fixedly connected to the idle cavity.

[0013] Further, the driving member comprises a linkage pulley and a driving pulley, the linkage pulley is fixedly connected to the idle cavity, the driving pulley is rotationally connected to the bearing seat plate, and the linkage pulley is in transmission connection with the driving pulley through a transmission belt.

[0014] Further, the breast compression device for radiodiagnosis further comprises a support member, which is connected to the bearing seat plate.

[0015] Further, the support member comprises a horizontal support plate, an insertion plate, a rotating screw rod, a linkage slide plate, a sliding plate, and a fixed nut, the horizontal support plate is in sliding connection with the bearing seat plate, two insertion plates are in sliding connection with the horizontal support plate, the rotating screw rod is rotationally connected between the two insertion plates, the linkage slide plate is in threaded connection with the rotating screw rod, the sliding plate is fixedly connected to the bearing seat plate, the linkage slide plate is in sliding connection with the sliding plate, and the fixed nut is in threaded connection below the two insertion plates.

[0016] Further, the method for using the breast compression device for radiodiagnosis comprises the following steps:

[0017] Step 1: Let the breast contact the plurality of compression balls, and let the nipple contact the rubber cavity and store into the hovering cavity;

[0018] Step 2: Use the driving member to drive the idle cavity to rotate, use the rotation of the idle cavity to drive the plurality of curved bowls to rotate, and let the rotating plurality of compression balls contact the mammary glands on the breast, to complete the compression massage treatment of the mammary glands;

[0019] Step 3: When the mammary glands are subjected to compression treatment, the telescopic screw rod can be rotated to adjust the position of the curved bowl cavity, so as to change the oscillation amplitude of the plurality of compression balls, and finally change the compression strength of the mammary glands;

[0020] Step 4: change the position of the bearing seat plate on the support member, let the other breast contact the plurality of compression balls, and let the other nipple contact the rubber cavity and store into the hovering cavity, complete the compression treatment of the other breast. BRIEF DESCRIPTION OF DRAWINGS

[0021] The present application will be further described below in conjunction with the drawings and specific implementation methods.

[0022] Figure 1 is a structural schematic diagram of the breast compression device for radiodiagnosis of the present application;

[0023] Figure 2 is a partial structural schematic diagram of the breast compression device for radiodiagnosis of the present application;

[0024] Figure 3 is a structural schematic diagram of the idling cavity, telescopic cavity, curved plate and compression member of the present application;

[0025] Figure 4 is a structural schematic diagram of the curved plate of the present application;

[0026] Figure 5 is a structural schematic diagram of the nipple protection embodiment of the present application;

[0027] Figure 6 is a structural schematic diagram of the embodiment of the present application driving the plurality of compression balls to oscillate;

[0028] Figure 7 is another structural schematic diagram of the embodiment of the present application driving the plurality of compression balls to oscillate;

[0029] Figure 8 is a cross-sectional structural schematic diagram of the embodiment of the present application driving the plurality of compression balls to oscillate;

[0030] Figure 9 is a structural schematic diagram of the bottom support and fixation embodiment of the present application;

[0031] Figure 10 is a structural schematic diagram of the support member of the present application. DETAILED DESCRIPTION

[0032] The present application will be further described below in conjunction with the drawings and specific implementation methods.

[0033] The present application will be further described below in conjunction with the drawings and specific implementation methods. Figures 1-4The breast compression device for radiodiagnosis comprises a bearing seat plate 301, an idle cavity 101, telescopic cavities 102, curved friction plates 103 and compression members, the idle cavity 101 is rotatably connected to the bearing seat plate 301 through bearings, the telescopic cavities 102 and the curved friction plates 103 are provided in plurality, the plurality of telescopic cavities 102 are uniformly fixedly connected to the idle cavity 101 through welding, the plurality of curved friction plates 103 are respectively slidably connected in the plurality of telescopic cavities 102, and the plurality of curved friction plates 103 are slidably connected with the plurality of compression members through cylinders.

[0034] Further, the bearing seat plate 301 serves as a bearing connection, can provide a rotating space for the idle cavity 101, the idle cavity 101 can provide a connecting space for the plurality of telescopic cavities 102 and drive the plurality of telescopic cavities 102 to rotate, the plurality of telescopic cavities 102 are provided with limiting devices, the plurality of curved friction plates 103 cannot be separated from the plurality of telescopic cavities 102, the plurality of telescopic cavities 102 can provide a sliding space for the plurality of curved friction plates 103, and the curved friction plates 103 can provide a sliding space for the plurality of compression members, the plurality of curved friction plates 103 are driven to rotate by the rotation of the plurality of telescopic cavities 102, the plurality of curved friction plates 103 driven to rotate can drive the plurality of compression members to rotate, the plurality of compression members can contact the breast, and the plurality of compression members can perform compression treatment on the breast when rotating.

[0035] The utility model will be described in detail below with reference to the accompanying drawings Figures 1-4 The compression member comprises compression balls 201 and contact ball columns 202, the compression balls 201 are fixedly connected with the contact ball columns 202 through welding, the compression member is provided in plurality, and the plurality of contact ball columns 202 are slidably connected on the plurality of curved friction plates 103.

[0036] Further, the plurality of compression balls 201 can contact the breast, when the plurality of curved friction plates 103 rotate, the plurality of compression balls 201 can be driven to rotate, and the plurality of compression balls 201 driven to rotate can perform compression treatment on the breast, complete massage treatment on the breast, the plurality of contact ball columns 202 are all sleeved with springs I, the elastic force generated by the springs I acts on the plurality of contact ball columns 202, drives the contact ball columns 202 to move outward, makes the plurality of compression balls 201 contact the plurality of curved friction plates 103, so that the plurality of compression balls 201 have a space to move inward.

[0037] The utility model will be described in detail below with reference to the accompanying drawings Figures 1-4 And 6-8 are described in detail, the breast compression device for radiodiagnosis further comprises a strip sliding plate 302, a curved bowl cavity 303 and recess grooves 304, the strip sliding plate 302 is slidably connected on the bearing seat plate 301 through a strip hole, the curved bowl cavity 303 is fixedly connected on the strip sliding plate 302 through welding, and the recess grooves 304 are provided in plurality.

[0038] Further, the strip slide plate 302 plays a connecting role, and can provide a connecting space for the curved bowl cavity 303. The curved bowl cavity 303 can provide a setting space for the plurality of recessed grooves 304. When the plurality of contact ball columns 202 rotate, the plurality of contact ball columns 202 will enter the plurality of recessed grooves 304 in sequence. At this time, the plurality of contact ball columns 202 will sequentially contact the curved bowl cavity 303, and then enter the recessed grooves 304. The plurality of contact ball columns 202 will move forward and backward. The plurality of contact ball columns 202 can drive the plurality of compression balls 201 to move forward and backward, so that the plurality of compression balls 201 play a role of vibrating and pressing the breast. The plurality of recessed grooves 304 are each provided with a round chamfer, so that the plurality of contact ball columns 202 can conveniently enter and exit the plurality of recessed grooves 304.

[0039] The breast compression device for radiodiagnosis will be described below in detail with reference to the accompanying drawings. Figures 1-4 And 6-8, the breast compression device for radiodiagnosis further comprises a telescopic contact cavity 305 and a plurality of linkage columns 306. The telescopic contact cavity 305 is fixedly connected in the curved bowl cavity 303 by welding. The plurality of linkage columns 306 are fixedly connected on the plurality of curved friction plates 103 by welding.

[0040] Further, the telescopic contact cavity 305 has a telescopic function. The plurality of linkage columns 306 can enter the recesses on the telescopic contact cavity 305. The plurality of telescopic cavities 102 are each provided with a spring II. The elastic force generated by the spring II can act on the curved friction plate 103, so that the curved friction plate 103 has a tendency to move outward. When the plurality of curved friction plates 103 rotate, the plurality of linkage columns 306 will oscillate and move with the plurality of recesses on the telescopic contact cavity 305, so as to drive the plurality of curved friction plates 103 to shield, so as to change the positions of the plurality of compression balls 201. At this time, the plurality of compression balls 201 can not only rotate, but also can telescope and oscillate at the same time, so as to further improve the compression treatment of the plurality of compression balls 201 on the breast, so as to better massage the breast, so as to further reduce the occurrence of breast cancer. In addition, the length of the telescopic contact cavity 305 can be adjusted according to the situation of the user. The telescopic contact cavity 305 can be separated from the plurality of linkage columns 306. At this time, the transverse oscillation of the plurality of compression balls 201 will disappear, so as to reduce the compression strength.

[0041] The breast compression device for radiodiagnosis will be described below in detail with reference to the accompanying drawings. Figure 1 、 6 -8, the breast compression device for radiodiagnosis further comprises a telescopic screw rod 307. The telescopic screw rod 307 is rotatably connected on the bearing seat plate 301 through a hole. The strip slide plate 302 is threadedly connected with the telescopic screw rod 307.

[0042] Further, the position of the strip slide plate 302 can be adjusted by rotating the telescopic screw 307, so as to change the position of the curved bowl cavity 303. When the position of the curved bowl cavity 303 is changed, the positions of the plurality of recessed grooves 304 are also changed. When the positions of the plurality of recessed grooves 304 are changed, the amplitude of the oscillation of the plurality of contact ball columns 202 can be further changed, so as to change the compression strength of the plurality of compression balls 201 on the breast. According to the actual situation of the user, the position of the curved bowl cavity 303 can be changed, and finally the compression strength is adjusted.

[0043] The breast compression device for radiodiagnosis will be described below in detail in combination with the accompanying drawings. Figure 1 、 2 and 5. The breast compression device for radiodiagnosis further comprises a fixed strip 401 and a hovering cavity 402. The fixed strip 401 is fixedly connected to the bearing seat plate 301 by welding. The hovering cavity 402 is fixedly connected to the fixed strip 401 by welding. The hovering cavity 402 is rotatably connected in the idle cavity 101.

[0044] Further, the fixed strip 401 plays a fixing role, and the nipple can be placed in the hovering cavity 402, thereby playing a protection role. When the breast is compressed, the rotating idle cavity 101 will not contact the nipple, thereby preventing the nipple from being rubbed when the breast is compressed.

[0045] The breast compression device for radiodiagnosis will be described below in detail in combination with the accompanying drawings. Figure 1 、 2 and 5. The breast compression device for radiodiagnosis further comprises a rubber cavity 403. The rubber cavity 403 is fixedly connected to the front end of the hovering cavity 402 by a plurality of screws.

[0046] Further, the rubber cavity 403 is used to contact the breast, and the nipple is stored in the hovering cavity 402, so that the hovering cavity 402 is prevented from directly contacting the breast, thereby further playing a protection role and preventing the breast from directly contacting the hovering cavity 402.

[0047] The breast compression device for radiodiagnosis will be described below in detail in combination with the accompanying drawings. Figure 1 、 2 , 7 and 9. The breast compression device for radiodiagnosis further comprises a driving member. The driving member is connected to the bearing seat plate 301. The driving member is fixedly connected to the idle cavity 101 by welding.

[0048] Further, the driving member is used to rotate the idle cavity 101, drive the rotation of the plurality of curved slide plates 103, ensure that the plurality of contact ball columns 202 are rotated to press the breast, and prevent breast cancer.

[0049] The driving member comprises a linkage pulley 501 and a driving pulley 502, the linkage pulley 501 is fixedly connected to the idle cavity 101 by welding, the driving pulley 502 is rotatably connected to the bearing seat plate 301 through a shaft, and the linkage pulley 501 and the driving pulley 502 are drivingly connected through a transmission belt.

[0050] Further, the bearing seat plate 301 is fixedly connected with a speed reducer motor, the output shaft of the speed reducer motor is fixedly connected with the driving pulley 502, and the speed reducer motor can drive the driving pulley 502 to rotate after being started, the driving pulley 502 drives the linkage pulley 501 to rotate through the transmission belt, the rotating linkage pulley 501 drives the idle cavity 101 to rotate, and the plurality of compression balls 201 are driven to rotate to compress the mammary glands, the linkage pulley 501 and the driving pulley 502 play a role in transmitting power, and the rotation of the idle cavity 101 can be realized.

[0051] The following will be described in detail in combination with the accompanying drawings. Figure 9 And 10 The breast compression device for radiodiagnosis further comprises a supporting member, and the supporting member is connected to the bearing seat plate 301.

[0052] Further, the supporting member can provide a connecting space for the bearing seat plate 301, and two bearing seat plates 301 can be connected to the supporting member, so that the two mammary glands on the two breasts can be compressed at the same time, time can be saved, but the manufacturing cost of the device is increased, and the number of bearing seat plates 301 connected to the supporting member can be adjusted according to the living conditions of the user.

[0053] The supporting member comprises a horizontal support plate 601, an insertion plate 701, a rotating lead screw 702, a linkage sliding plate 703, a sliding plate 704 and a fixing nut 705, the horizontal support plate 601 is slidingly connected to the bearing seat plate 301 through a groove, two insertion plates 701 are slidingly connected to the horizontal support plate 601 through holes, the rotating lead screw 702 is rotatably connected between the two insertion plates 701 through a bearing, the linkage sliding plate 703 is threadedly connected to the rotating lead screw 702, the sliding plate 704 is fixedly connected to the bearing seat plate 301 through welding, the linkage sliding plate 703 is slidingly connected to the sliding plate 704 through a square shaft, and the fixing nut 705 is threadedly connected below the two insertion plates 701.

[0054] Further, the cross support plate 601 is provided with a sliding groove, and the bearing seat plate 301 is slidably connected in the sliding groove of the cross support plate 601. Two bearing seat plates 301 are slidably connected in the sliding groove, so that the two breasts can be simultaneously pressed. The two insertion plates 701 provide a rotating space for the rotating lead screw 702. The rotating lead screw 702 drives the linkage sliding plate 703 to move. The two fixed nuts 705 are used to fix the two insertion plates 701, and the two insertion plates 701 are convenient to disassemble. The linkage sliding plate 703 is slidably connected with the sliding plate 704 through a square shaft. The cross support plate 601 is fixedly connected with a base. The rotating lead screw 702 drives the linkage sliding plate 703 to move. The rotating linkage sliding plate 703 drives the bearing seat plate 301 to move through the sliding plate 704, so as to change the position of the bearing seat plate 301. The two breasts are respectively contacted with two groups of multiple pressing balls 201, and the two nipples are respectively contacted with two rubber cavities 403 and stored in two hovering cavities 402.

[0055] The specific embodiments of the present application will be described below with reference to the accompanying drawings. Figures 1-10 The method for using the breast pressing device for radiodiagnosis includes the following steps:

[0056] Step 1: The breast is contacted with the multiple pressing balls 201, and the nipple is contacted with the rubber cavity 403 and stored in the hovering cavity 402.

[0057] Step 2: The idling cavity 101 is driven to rotate by the driving member. The multiple curved plates 103 are driven to rotate by the rotation of the idling cavity 101. The multiple pressing balls 201 are contacted with the mammary glands on the breast, and the pressing massage of the mammary glands is completed.

[0058] Step 3: When the mammary glands are pressed, the telescopic lead screw 307 is rotated to adjust the position of the curved bowl cavity 303, so as to change the oscillation amplitude of the multiple pressing balls 201, and finally change the pressing strength of the mammary glands.

[0059] Step 4: The position of the bearing seat plate 301 on the supporting member is changed. The other breast is contacted with the multiple pressing balls 201, and the other nipple is contacted with the rubber cavity 403 and stored in the hovering cavity 402. The pressing of the other mammary gland is completed.

Claims

1. Breast compression apparatus for radiodiagnosis, characterized in that: Including bearing seat plate (301) and idle cavity (101) rotationally connected on bearing seat plate (301), idle cavity (101) is fixedly connected with multiple telescopic cavities (102), multiple telescopic cavities (102) are all slidably connected with curved friction plates (103), multiple compression members are slidably connected on each curved friction plate (103); The compression member comprises a compression ball (201) and a contact ball column (202) fixedly connected with the compression ball (201), and multiple contact ball columns (202) are slidably connected on multiple curved friction plates (103); The bearing seat plate (301) is slidably connected with a strip slide plate (302), the strip slide plate (302) is fixedly connected with a curved bowl cavity (303), and multiple recess grooves (304) are arranged on the curved bowl cavity (303); The curved bowl cavity (303) is fixedly connected with a telescopic touch cavity (305), and multiple linkage columns (306) are fixedly connected on multiple curved friction plates (103); The bearing seat plate (301) is rotationally connected with a telescopic lead screw (307), and the telescopic lead screw (307) is in threaded transmission connection with the strip slide plate (302); The telescopic touch cavity (305) has a telescopic function, multiple recess grooves are arranged on the telescopic touch cavity (305), multiple linkage columns (306) can enter the recess grooves on the telescopic touch cavity (305), and multiple springs II are arranged in multiple telescopic cavities (102), the elastic force generated by the springs II can act on the curved friction plates (103), so that the curved friction plates (103) have a tendency of outward movement, when multiple curved friction plates (103) rotate, multiple linkage columns (306) will oscillate and move along with multiple recess grooves on the telescopic touch cavity (305), so as to drive multiple curved friction plates (103) to shield, so as to change the positions of multiple compression balls (201), and multiple compression balls (201) can not only rotate, but also can be telescopic and oscillate at the same time.

2. The breast compression device for radiodiagnosis according to claim 1, characterized in that: The bearing seat plate (301) is fixedly connected with a fixed strip (401), the fixed strip (401) is fixedly connected with a hovering cavity (402), and the hovering cavity (402) is rotationally connected in the idle cavity (101).

3. The breast compression device for radiodiagnosis according to claim 2, characterized in that: The front end of the hovering cavity (402) is fixedly connected with a rubber cavity (403).

4. The breast compression device for radiodiagnosis according to claim 1, characterized in that: The bearing seat plate (301) is connected with a driving member, and the driving member is fixedly connected to the idle cavity (101).

5. The breast compression device for radiodiagnosis according to claim 1, characterized in that: The bearing seat plate (301) is connected with a supporting member.

6. A method of using the breast compression apparatus for radiodiagnosis according to claim 4, characterized in that: The method comprises the following steps: Step 1: contact the breast with multiple compression balls (201), and store the nipple into the hovering cavity (402) through the rubber cavity (403); Step 2: drive the idle cavity (101) to rotate by using the driving member, drive multiple curved friction plates (103) to rotate by using the rotation of the idle cavity (101), and contact the rotating multiple compression balls (201) with the mammary glands on the breast, so as to complete the compression massage treatment of the mammary glands; Step 3: when the mammary glands are compressed, the telescopic lead screw (307) can be rotated to adjust the position of the curved bowl cavity (303), so as to change the oscillation amplitude of multiple compression balls (201), and finally change the compression strength of the mammary glands; Step 4: Change the position of the bearing seat plate (301) on the support member, let the other breast contact the plurality of compression balls (201), and let the other nipple contact the rubber cavity (403) and store into the hovering cavity (402), complete the compression treatment of the other breast.

Citation Information

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