Apparatus and method for reducing radiation exposure from an X-ray tube

A movable shielding system for x-ray tubes addresses the inadequacies of fixed shields by using radiation-absorbing materials to reduce radiation leakage and scatter, achieving substantial protection for medical staff.

JP7721545B2Active Publication Date: 2025-08-12EGG MEDICAL INC
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Patent Information

Application Number
JP2022549639
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-19
Filing Date
2021-02-19
Publication Date
2025-08-12
Estimated Expiration
2041-02-19

AI Technical Summary

Technical Problem

Existing shielding systems for x-ray tubes do not adequately protect medical personnel from radiation leakage and scatter, as they are fixed and do not adapt to the x-ray tube's position, leading to significant exposure risks.

Method used

A shielding system composed of radiation-absorbing material that surrounds the x-ray tube housing, moves with it, and is tailored to absorb varying levels of radiation based on emission patterns, using layered materials and fasteners for attachment.

Benefits of technology

The system significantly reduces radiation leakage by 85% on average and over 95% at peak locations, providing dynamic protection for medical personnel.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A radiation absorbing shield shaped to fit and surround the X-ray tube housing to protect medical staff from radiation leaking through the X-ray tube housing of the C-arm. The shield is attached to the X-ray tube housing so that it moves with the X-ray tube housing and provides protection regardless of the orientation of the C-arm.
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Description

Related Applications

[0001] This application claims the benefit of priority to U.S. Provisional Patent Application No. 62 / 978,745, filed February 19, 2020, and entitled "Device For Reducing Radiation Exposure From X-Ray Tubes," which is incorporated herein by reference in its entirety. [Background technology]

[0002] Medical or industrial x-rays are typically generated from an x-ray tube. In an invasive radiology, cardiology, or vascular surgery laboratory, the x-ray tube is typically mounted in a tube housing that is positioned on a C-arm gantry below the patient. The patient lies on a table above the x-ray tube. An x-ray detector is positioned on the other side of the C-arm, above the patient. X-rays generated by the x-ray tube are emitted through an opening in the tube housing, pass through the patient, and reach the x-ray detector.

[0003] X-ray tubes contain a cathode and an anode. The anode is typically made of a tungsten alloy. A large applied voltage difference between the cathode and anode causes electrons from the anode to rapidly enter the tungsten cathode. These high-energy electrons displace electrons within tungsten atoms, resulting in the emission of high-energy photons in the X-ray frequency range. Photons typically have energies between 30 keV and 110 keV. The photons are emitted in almost all directions from the cathode. Most are reabsorbed (heated) by the cathode material, and the remainder are emitted from the cathode. A typical X-ray tube is housed in a chamber that blocks the emission of X-ray photons except for allowing them to be emitted through an opening in the top of the housing.

[0004] During procedures using x-rays, medical personnel are exposed to radiation from a variety of sources:

[0005] scattered radiation

[0006] A small fraction of the photons pass through the patient and reach the X-ray detector. Most of the X-ray photons emitted from the aperture of the X-ray tube interact with atoms in the air, the X-ray table, and the patient, and are re-emitted in all directions at lower energies (frequencies). This secondary radiation is called scattered radiation. Scattered radiation is primarily due to interactions between X-ray photons and electrons in the medium through which they pass. Each component has its own unique X-ray interaction, ultimately scattering the X-ray photons in all directions. The scattered photons (regardless of the scattering mechanism) have lower energy than the original photon.

[0007] Scattered photons deviate from the path of the main x-ray beam emitted from the opening in the tube housing, resulting in internal radiation to the body and radiation exposure to anyone around the patient. The intensity and energy level of these scattered rays depend on the intensity and energy of the x-rays emitted from the tube housing, the amount and type of medium through which the x-rays pass (such as the type of tissue and the path length through the patient), and anyone in the vicinity of the main beam path.

[0008] Scattered radiation is a significant health risk for medical personnel in X-ray rooms. Radiation exposure is associated with increased rates of cancer, eye cataracts, and hypertension. Medical personnel typically wear "lead aprons" to block harmful X-ray photons.

[0009] Quantitative measurements of the above factors have been made and used to guide medical personnel in the use of protective devices, but such devices generally provide a one-size-fits-all level of protection and are not designed for specific energy levels or scatter patterns.

[0010] X-ray tube housing leakage

[0011] It has been thought that the majority of X-ray exposure to medical personnel comes from scattered radiation from the patient, air, or X-ray table, with X-ray photon leakage from the X-ray tube housing being negligible.

[0012] Applicant has tested the effectiveness of x-ray tube housings in preventing radiation leakage from the housing. Any leakage from the housing is significant because it results in unnecessary exposure of staff in the imaging room to radiation below the x-ray table. "Lead aprons" and other protective gear typically extend to the knee or mid-calf, leaving the long bones of the lower leg, ankles, feet, muscles, and skin exposed to significant x-ray radiation.

[0013] Research has shown that x-ray tube housings routinely leak significant levels of radiation. For example, the radiation leakage from a Philips Allura tube housing is shown in Table 1 below. JPEG0007721545000001.jpg85166

[0014] Further measurements have proven that leakage from the tube housing accounts for approximately 20% of the total radiation emitted or scattered below the X-ray table. To put this in perspective, the average radiation exposure of medical personnel standing next to a patient during fluoroscopy for a medical procedure is approximately 400 μSv / h to 4000 μSv / h, with 20% of this radiation coming from the X-ray tube housing. This represents a considerable health risk for medical personnel.

[0015] The average leakage from a tube housing is not uniform across the surface of the housing. For example, the leakage from a Philips tube housing varies from approximately 20 μSv / h to over 1,000 μSv / h. The average photon energy of the leakage from this tube housing is also about 40 keV to 60 keV, depending on the location of the X-ray photon leakage from the housing.

[0016] Shielding for x-ray photons exists and is widely used. It ranges from clothing worn by medical personnel to shields suspended from the ceiling or table. However, these devices do not move with the x-ray tube; therefore, they must be positioned between the x-ray tube and the medical personnel. Movement of the medical personnel or x-ray tube necessitates repositioning of the shielding. Additionally, significant shielding of the imaging room would be required to block the radiation emissions measured around the entire circumference of the tube housing in the study mentioned above.

[0017] As discussed above, there is a great need for a shielding system that can be used to prevent radiation leakage from the x-ray tube housing. There is also a need for a shielding system that moves with the x-ray tube, thereby reducing the amount of fixed shielding in the room, in order to adequately protect medical professionals. OBJECTS AND SUMMARY OF THE INVENTION

[0018] The invention described herein addresses these challenges by providing a shielding system that surrounds the x-ray tube, is attached to the x-ray tube, and moves with the x-ray tube regardless of the x-ray tube's position relative to personnel and other objects in the room, thereby significantly reducing both radiation leakage through the x-ray tube and the scatter resulting from that radiation leakage.

[0019] According to one embodiment of the present invention, a shield for reducing radiation leakage through an x-ray tube is provided that includes a radiation absorbing material shaped to surround the x-ray tube housing without obstructing an opening in the housing.

[0020] In at least one embodiment, the radiation absorbing material of the shield has a layered structure.

[0021] In at least one embodiment, the radiation absorbing material of the shield has at least two layers.

[0022] In at least one embodiment, the radiation absorbing material of the shield comprises at least one radiopaque polymer layer bonded to at least one flexible protective material layer.

[0023] In at least one embodiment, the shield includes fasteners that can be used to attach the shield to an x-ray tube housing.

[0024] In at least one embodiment, the shield further includes an adhesive for adhering the shield to an x-ray tube housing.

[0025] In at least one embodiment, the shield is constructed from a flexible material that is configured to wrap around the x-ray tube housing and fasten to itself via fasteners such as hook-and-loop or other fasteners.

[0026] One aspect of the present invention is a method for reducing radiation exposure to medical personnel attending an x-ray examination, comprising coating multiple surfaces of an x-ray tube housing with a radiation absorbing material.

[0027] In at least one embodiment, a method of the present invention includes forming the radiation absorbing material in a shape configured to surround an x-ray tube housing without obstructing an x-ray aperture in the x-ray tube housing, and securing the radiation absorbing material to the x-ray tube housing.

[0028] In at least one embodiment, the method includes heating the radiation absorbing material, placing the radiation absorbing material in a mold having the shape, and fusing together multiple polymer layers of the radiation absorbing material.

[0029] In at least one embodiment, the method of the present invention includes forming the radiation absorbing material in a shape configured to surround an x-ray tube housing without obstructing an x-ray aperture in the x-ray tube housing. Includes , it is,The method includes placing the radiation absorbing material in a mold having the shape and heating the radiation absorbing material to fuse the polymer layers of the radiation absorbing material into the desired shape.

[0030] In at least one embodiment, the method includes wrapping a flexible sheet of the radiation absorbing material around the x-ray tube housing and securing the radiation absorbing material in place, thereby covering multiple surfaces of the x-ray tube housing with the radiation absorbing material.

[0031] In at least one embodiment, the method of the present invention includes fixing the radiation absorbing material in place by fixing the radiation absorbing material to itself.

[0032] In at least one embodiment, the method includes securing the radiation absorbing material in place by wrapping a belt around a surface of the x-ray tube housing opposite the opening.

[0033] In at least one embodiment, the method of the present invention includes bonding the radiation absorbing material to the x-ray tube housing.

[0034] Another aspect of the invention is an apparatus for protecting staff near operating x-ray equipment having an x-ray tube housing, the apparatus including: a layer of radiation absorbing material configured to cover one or more surfaces of the x-ray tube housing to prevent radiation leaking through the x-ray tube housing from reaching the staff; and fasteners for attaching the radiation absorbing material to the surfaces such that the radiation absorbing material moves with the x-ray tube housing. [Brief explanation of the drawings]

[0035] The above and other aspects, features and advantages of the present invention will become apparent from the following description of embodiments of the invention, with reference to the accompanying drawings.

[0036] [Figure 1]1 shows a conventional C-arm, which is an example of a device that the present invention covers.

[0037] [Figure 2] 1 is a perspective view of one embodiment of the present invention;

[0038] [Figure 3] 1 is a cross-sectional view of one embodiment of a material of the present invention.

[0039] [Figure 4] FIG. 1 is a plan view of an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0040] Specific embodiments of the present invention will now be described with reference to the accompanying drawings. However, the present invention can be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. The terminology used in the detailed description of the embodiments shown in the accompanying drawings is not intended to be limiting of the present invention. In the drawings, like numbers refer to like elements.

[0041] Referring now to the drawings, and initially to Figure 1, which shows an example of a C-arm for reference, a C-arm fluoroscope 10 generally includes a C-arm 12 having an X-ray tube 14 on one end and a flat panel detector 16 on the opposite end from the X-ray tube 14.

[0042] FIG. 2 illustrates one embodiment of the present invention. This embodiment includes a special shield 20 composed of radiation-absorbing material that surrounds the X-ray tube housing 14 and absorbs X-ray photons that leak from the housing and from the shielding system around the patient. The amount and type of X-ray absorbing material may be designed to match the amount and energy of tube housing photon leakage in the area around the patient and on the surface of the housing. The tube housing shield 20, described above, is placed over the X-ray tube housing 14 in a manner that rotates around the patient and prevents X-ray photon leakage in all directions.

[0043] 2 also shows that the shield 20 is shaped to fit the X-ray tube housing 14 of a given particular C-arm model. For example, if the X-ray tube 14 is cylindrical, the shield 20 will also be cylindrical. Also shown is a strap-like fastener 22. The strap includes a hook-and-loop fastener 26 that wraps around the bottom of the X-ray tube 14 and connects to a corresponding hook-and-loop fastener section 24 on the shield 20.

[0044] FIG. 3 is a cross-sectional view of one embodiment of the layered material structure 30 of the shield 20. In one embodiment, the shield is comprised of one or more radiopaque polymer layers, such as layers 32, 34, and 36 shown in FIG. 3, glued, bonded, welded, or otherwise joined and shaped to conform to the contours of the x-ray tube housing. These polymer layers 32, 34, and 36 are bonded together and to an outer layer 38 and / or inner layer 40 of flexible protective material, such as vinyl. X-ray photon absorption (and shielding) can vary based on the thickness of the radiation-absorbing material. For example, for cardiac x-rays, shielding near the patient's chest is estimated at 1 mm of lead equivalent absorption. Shielding decreases to 0.75 mm of lead equivalent on either side of the sled. The fused material may be glued together into a single sheet or multiple pieces.

[0045] For example, by heating the polymer and vinyl together, the material can be shaped to fit various x-ray tube designs. In a heated state, the multiple polymer layers fuse together and to the one or more protective layers, creating an extremely durable material that is easy to cut and shape. The staggered edges of such a polymer-vinyl cover allow it to be secured into a three-dimensional shape that encloses the tube housing without the need for additional adhesives or stitching. Holes in the stitching can lead to photon leakage. In one embodiment, a mold is created with the desired size and dimensions of the x-ray tube housing. The material is heated and placed in the mold, or alternatively, the material is placed in the mold and then heated and cooled. The multiple layers of material are secured together to maintain the desired shape.

[0046] In this manner, the above-described materials are formed into a three-dimensional shape that conforms to the contours of the x-ray tube housing, allowing x-ray photons to be emitted from the aperture toward the patient and detector, while reducing photon emission from the tube housing.

[0047] Figure 4 shows an embodiment 50 that may be used with x-ray tubes of simpler shapes, such as cylindrical or rectangular. The shield 50 is in the form of a flexible band that can be wrapped around the x-ray tube housing and secured in a variety of ways (e.g., hook-and-loop fasteners, buckles, zippers, adhesives, etc.) Figure 4 shows typical hook-and-loop fastener parts 54 and 56.

[0048] If an adhesive is used, it is contemplated that the shielding material may be provided in a manner that allows it to be molded and temporarily or permanently adhered directly to the x-ray tube.

[0049] Because the level of X-ray photon emission from the tube housing varies at different locations in the housing, the X-ray absorption of the cover is tailored to improve absorption where there is more leakage from the housing. There are two main ways to achieve this improvement. The first is to thicken the photon absorbing material (by using a thicker radiopaque polymer layer or by gluing multiple layers together) in areas of high emission. The thicker the material, the more photons it will absorb.

[0050] The second method is to use specific x-ray absorbing elements with different densities in specific parts of the tube housing. The reason for using these different materials is that the energy of x-ray photons emitted from the tube housing can vary depending on where in the tube housing the emission occurs. Higher energies usually occur near the x-ray aperture. The efficiency of photon absorption by x-ray absorbing elements varies with different photon energies. Matching the elemental composition of the x-ray absorbing material to the x-ray emission profile increases the absorption efficiency.

[0051] Other embodiments

[0052] X-ray absorption by large atoms is well documented. Similar shields can be made with only X-ray absorbing elements, without the need for polymer bonding. In another embodiment, the shield surrounding the tube housing can be made of lead, copper, or other metals. Varying the thickness of the metal can provide variability in photon absorption relative to the housing. Adding other elements to the shield body, or adding polymers containing various elements, can provide additional shielding against emissions of various energy levels.

[0053] Example 1

[0054] figure 2 Data collected using the apparatus of embodiment 20 demonstrates the effectiveness of the present invention in reducing radiation leakage through the x-ray tube 14. The data in Table 2 shows the radiation emitted from the tube housing when the system described above is fitted with a dedicated shield. JPEG0007721545000002.jpg69166

[0055] Data shows that the shield dramatically reduces radiation emitted from the tube housing, as designed. On average across the entire tube housing, the radiation protection system prevents 85% of radiation leakage from reaching the patient and examination staff. At the peak radiation leakage location on the tube housing, the radiation protection system reduces radiation leakage by more than 95%.

[0056] While the present invention has been described above with reference to specific embodiments and applications, those skilled in the art can, in light of this teaching, create additional embodiments and modifications without departing from the spirit of the invention as set forth in the claims or beyond its scope. It should therefore be understood that the drawings and descriptions herein are provided by way of example to facilitate understanding of the invention and should not be construed as limiting its scope.

Claims

1. 1. A shield for reducing radiation leakage through an X-ray tube, comprising: a plurality of radiation absorbing layers and at least one protective layer, the radiation absorbing layers being shaped to surround an X-ray tube housing without blocking an opening in the X-ray tube housing, the radiation absorbing layers including a plurality of X-ray absorbing elements with different densities at specific portions of the X-ray tube housing to match an X-ray emission profile of X-ray photon energy emitted from the X-ray tube housing.

2. The shield of claim 1 , further comprising a fastener usable to attach the shield to an x-ray tube housing.

3. 10. The shield of claim 1, further comprising an adhesive for adhering the shield to an x-ray tube housing.

4. 10. The shield of claim 1, wherein the shield comprises a flexible material configured to wrap around an x-ray tube housing and fasten to itself via fasteners.

5. The shield of claim 4, wherein the fastener comprises a hook-and-loop fastener.

6. 1. A method for reducing radiation exposure to medical personnel attending an X-ray examination, comprising covering multiple surfaces of an X-ray tube housing with a shield comprising multiple radiation-absorbing layers and at least one protective layer, wherein covering multiple surfaces of the X-ray tube housing with the shield comprises forming the multiple radiation-absorbing layers and the at least one protective layer in a shape configured to surround the X-ray tube housing without blocking an X-ray aperture of the X-ray tube housing and securing the shield to the X-ray tube housing, wherein forming the multiple radiation-absorbing layers and the at least one protective layer in a shape configured to surround the X-ray tube housing without blocking an X-ray aperture of the X-ray tube housing comprises heating the multiple radiation-absorbing layers, placing the multiple radiation-absorbing layers in a mold having the shape, and fusing polymers of the multiple radiation-absorbing layers.

7. 7. The method of claim 6, wherein covering multiple surfaces of the x-ray tube housing with the shield comprises wrapping a flexible sheet of the shield around the x-ray tube housing and fixing the shield in place.

8. The method of claim 7 , wherein securing the shield in place comprises securing the shield to itself.

9. 8. The method of claim 7, wherein securing the shield in place comprises wrapping a belt around a surface of the x-ray tube housing opposite an x-ray opening.

10. The method of claim 7 , wherein fixing the shield in place comprises adhesively bonding the shield to the x-ray tube housing.

11. 1. Apparatus for protecting staff in the vicinity of operating x-ray equipment having an x-ray tube housing, comprising: a plurality of radiation absorbing layers configured to cover one or more surfaces of the x-ray tube housing and to prevent radiation leaking through the x-ray tube housing from reaching the staff member; a fastener for attaching the plurality of radiation absorbent layers to the surface such that the plurality of radiation absorbent layers move with the x-ray tube housing, the fastener including a first end fixedly attached to a first side of the shield and a second end removably attached to a second side of the shield, the fastener wrapped around a bottom of the x-ray tube housing.

12. 12. The apparatus of claim 11, wherein the x-ray absorption of the shield is adjusted to provide increased absorption when leakage from the x-ray tube housing is high.

13. 13. The apparatus of claim 12, wherein the shielding provides thicker photon absorbing material in areas of the x-ray tube housing where photon emission levels are high.

14. 13. The apparatus of claim 12, wherein the plurality of radiation absorbing layers includes a plurality of x-ray absorbing elements with different densities for distinct portions of the x-ray tube housing to match an x-ray emission profile of x-ray photon energies emitted from the x-ray tube housing.

Citation Information

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