Apparatus for marking irradiation area for handheld x-ray device
11583236 ยท 2023-02-21
Assignee
Inventors
Cpc classification
A61B6/08
HUMAN NECESSITIES
A61B6/4405
HUMAN NECESSITIES
International classification
A61B6/08
HUMAN NECESSITIES
Abstract
Proposed is an apparatus for marking an irradiation area for a hand-held X-ray device, the device including an upper cover, a lower cover, an X-ray radiation unit, a radiation tube, the apparatus, and a lower support, the apparatus including: a cylindrical member; a reflector; a PCB guide; a PCB; an LED light source; and a fastening screw, wherein light emitted from the LED light source is reflected by the reflector and marks the irradiation area on a subject in front of the reflector.
Claims
1. An apparatus for marking an irradiation area for a hand-held X-ray device, the device comprising an upper cover, a lower cover, an X-ray radiation unit, a radiation tube, the apparatus, and a lower support, the apparatus comprising: a cylindrical member; a reflector; a PCB guide; a PCB; an LED light source; and a fastening screw, wherein light emitted from the LED light source is reflected by the reflector and marks the irradiation area on a subject in front of the reflector.
2. The apparatus of claim 1, wherein the cylindrical member comprises: a connection portion being externally threaded in such a manner as to be combined with the X-ray radiation unit; a hollow body member being provided on the connection portion; and a reflector combination portion, with an inclination surface thereof being formed by obliquely cutting off a portion of the hollow body member from the top thereof to close to the connection portion and being brought into contact with the reflector.
3. The apparatus of claim 1, wherein a front surface of the reflector is brought into close contact with a reflector combination protrusion of the PCB guide, a rear surface thereof is brought into close contact with a combination portion of the cylindrical member, and light propagating from the LED light source is reflected by the front surface of the reflector toward the radiation tube.
4. The apparatus of claim 3, wherein the reflector is configured in such a manner that a diameter thereof is minimized to a size that allows all X-rays emitted therebehind to pass through an inclined surface 5 of the reflector.
5. The apparatus of claim 1, wherein the PCB guide comprises: a pair of body members, as guide members supporting the PCB, being combined in a screw-fastened manner with the reflector combination portions, respectively, and extending lengthwise in the form of a rectangle; a pair of combination protrusions protruding from upper surfaces, respectively, of the body members in such a manner as to be brought into close contact with the reflector; a pair of PCB combination members extending downward perpendicularly from end portions, respectively, of the body members in a direction opposite to the reflector; and a pair of screwing grooves being formed in such a manner that the PCB combination member and the PCB are combined with the fastening screws, respectively, in a screw-fastened manner.
6. The apparatus of claim 5, wherein the PCB guide is formed of aluminum.
7. The apparatus of claim 1, wherein for combination with the PCB, the LED light source is bonded with a central portion of the PCB using a heat conductive adhesive.
8. The apparatus of claim 1, further comprising: a pair of screw fastening guidance portions configured to be inward recessed from opposite lateral surfaces, respectively, of one side of the PCB.
9. The apparatus of claim 1, wherein the PCB is formed of aluminum and dissipates heat.
10. The apparatus of claim 1, wherein switches that turn on and off the LED light source and the X-ray radiation unit, respectively, are provided on the lower support.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other objectives, features, and other advantages of the present disclosure will be more clearly understood from the following detailed description when taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
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(10) The hand-held X-ray device can provide simplified portability to a user, compared with a stationary X-ray device. However, when X-ray imaging is performed using a portable hand-held X-ray device, the X-ray beam and a subject are not precisely aligned with each other. Thus, a cone-cut phenomenon or the like occurs frequently.
(11) The X-ray imaging can be performed without causing the cone-cut phenomenon or the like by additionally including a sensor holder for precise alignment. However, the inconvenience of additionally using the sensor holder, the problem in securing a distance to the subject for the X-ray imaging, long-time exposure to X-rays, and the like occur. According to the present disclosure, it is proposed that the apparatus for marking the X-ray irradiation area is provided inside a radiation tube of the hand-held X-ray device in
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(13) The hand-held X-ray device includes an upper cover 100, a lower cover 200, an X-ray radiation unit 300, a radiation tube 400, the apparatus 500 for marking the irradiation area according to the present disclosure, and a lower support 600.
(14) The hand-held X-ray device includes the apparatus 500 for marking the irradiation area, in the middle of a pathway to the subject. The apparatus 500 for marking the irradiation area in advance marks the irradiation area that guides X-rays, emitted from the X-ray radiation unit 300, toward the subject. Thus, the X-rays pass through the radiation tube 400 and precisely reach the subject.
(15) An LED light source is included in the apparatus 500 for marking the irradiation area. When the LED light source is operated before the X-rays are emitted, light emitted from the LED light source in advance marks the irradiation area to be irradiated with the X-rays passing through the radiation tube 400, on the subject.
(16) The irradiation area marked on the subject by the light emitted by the LED light source can be viewed in advance. Thus, while viewing the irradiation area, it can be checked whether or not the irradiation area is exactly the same as an area, on which the X-Ray imaging is required, of the subject. If not, a fine adjustment can be made for exact positioning of the irradiation area. If the irradiation area to be irradiated with the X-rays is exactly the same as the area, on which the X-ray imaging is required, of the subject, the X-ray radiation unit 300 emits the X-rays and thus performs the X-ray imaging.
(17) Desirably, the LED light source and the X-ray radiation unit 300 have respective operation switches on the lower support 600. Desirably, in addition to the operation switches, the lower support 600 may further include a power supply (not illustrated) supplying power to the apparatus 500 for marking the illumination area.
(18) The apparatus 500 for marking the irradiation area, illustrated in
(19) The cylindrical member 510 is configured to include a connection portion 511, a hollow body member 512, and a reflector combination portion 513. The connection portion 511 is externally threaded in such a manner as to be combined with the X-ray radiation unit 300. The hollow body member 512 is provided on the connection portion 511. An inclination surface of the reflector combination portion 513, formed by obliquely cutting off a portion of the hollow body member 512 from the top thereof to close to the connection portion 511, is brought into contact with the reflector 520.
(20) The reflector 520 is configured in such a manner that a diameter thereof is minimized to a size that allows all X-rays emitted therebehind to pass through an inclined surface of the reflector 520.
(21) A front surface of the reflector 520 is brought into close contact with a reflector combination protrusion 532 of the PCB guide 530 that will be described below, and a rear surface thereof is brought into close contact with a combination portion 513 of the cylindrical member 510.
(22) Light propagating from the LED light source 550 is reflected by the front surface of the reflector 520 toward the radiation tube 400.
(23) The reflector 520 allows all X-rays emitted from the X-ray radiation unit 300 therebehind to pass through.
(24) The PCB guide 530 is configured to include: a pair of body members 531, as guide members supporting the PCB 540, being combined in a screw-fastened manner to the reflector combination portions 513, respectively, of the cylindrical member 510, and extending lengthwise in the form of a rectangle; a pair of combination protrusions 532 protruding from upper surfaces, respectively, of the body members 531 in such a manner as to be brought into close contact with the reflector 520; a pair of PCB combination members 533 extending perpendicularly from end portions, respectively, of the body members 531 in a direction opposite to the reflector 520; and a pair of screwing grooves 534 formed in such a manner that the PCB combination member 533 and the PCB 540 are combined with the fastening screws 560, respectively, in a screw-fastened manner.
(25) Desirably, the PCB guide 530 is formed of aluminum in such a manner as to dissipate heat.
(26) The PCB 540 is also formed of aluminum in such a manner as to dissipate heat. For combination with the PCB 540, the LED light source 550 is bonded with the central portion of the PCB 540 using a heat conductive adhesive.
(27) Screw fastening guidance portions 541 are further provided in such a manner as to be inward recessed from opposite lateral surfaces, respectively, of one side of the PCB 540. Thus, with the fastening screw 560, the PCB 540 and the PCB guide 530 can be combined with each other in a screw-fastened manner.
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(29) As illustrated in
(30) In a case where the center portion indicated on the irradiation area is not exactly the same as that of the area, on which the X-ray imaging is required, of the patient, even when the X-ray imaging is performed, an image sensor may not precisely capture an image of an affected area of the patient, or an opaque or bright white image may be generated due to the cone-cut phenomenon.
(31) Therefore, with the apparatus for marking the irradiation area to the present disclosure, when the center portion of the irradiation area marked by the light emitted by the LED light source is precisely aligned with that of the affected area of the patient and then the X-ray beam is emitted, a precise clear image of the affected area of the patient can be obtained by performing the X-ray imaging.
(32) Although the specific embodiment of the present disclosure has been described for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the disclosure as disclosed in the accompanying claims.