RADIATION TREATMENT DEVICE
20200206537 ยท 2020-07-02
Inventors
Cpc classification
A61N5/1049
HUMAN NECESSITIES
A61N2005/1057
HUMAN NECESSITIES
A61N5/1042
HUMAN NECESSITIES
A61N2005/1061
HUMAN NECESSITIES
A61N5/1084
HUMAN NECESSITIES
International classification
Abstract
The present disclosure discloses a radiation treatment device and pertains to the field of medical appliance technologies. The radiation treatment device includes a radiotherapy unit and an imaging unit. The radiotherapy unit is configured to emit a treatment beam to a to-be-treated region in a patient, wherein the to-be-treated region in the patient is located outside the radiotherapy unit. The imaging unit is arranged adjacent to the radiotherapy unit and is configured to emit an imaging beam to the to-be-treated region in the patient. Without moving the to-be-treated region in a patient, the radiotherapy unit may emit the treatment beam to the to-be-treated region in the patient according to the treatment plan worked out to execute the radiation treatment, such that the accuracy of the radiation treatment is improved.
Claims
1. A radiation treatment device, comprising: a radiotherapy unit, configured to emit a treatment beam to a to-be-treated region in a patient, the to-be-treated region in the patient located outside the radiotherapy unit; and an imaging unit, arranged adjacent to the radiotherapy unit and configured to emit an imaging beam to the to-be-treated region in the patient.
2. The radiation treatment device according to claim 1, wherein the radiotherapy unit comprises a first radiotherapy unit and a second radiotherapy unit, and the imaging unit is located between the first radiotherapy unit and the second radiotherapy unit.
3. The radiation treatment device according to claim 1, wherein the radiotherapy unit comprises a radioactive source, the treatment beam emitted from the radioactive source is focused on an intersection point located outside the radiotherapy unit, and the intersection point coincides with an imaging center of the imaging unit.
4. The radiation treatment device according to claim 3, further comprising: a radioactive source receiving unit configured to receive and store the radioactive source when the radiation treatment device is not in operation.
5. The radiation treatment device according to claim 3, wherein the radiotherapy unit comprises: a shield body, a source body, and a collimating body, the radioactive source is located on the source body, and the treatment beam emitted from the radioactive source is focused on the intersection point through the collimating body.
6. The radiation treatment device according to claim 5, wherein at least one of the source body and the collimating body is rotatable about a rotation axis, and/or is movable along a predetermined trajectory.
7. The radiation treatment device according to claim 6, wherein the imaging unit is arranged on an end surface at an edge of the source body or the collimating body rotatable about the rotation axis.
8. The radiation treatment device according to claim 5, wherein the radiotherapy unit is bowl-shaped or tube-shaped.
9. The radiation treatment device according to claim 5, wherein the radioactive source is distributed on a sector of the source body, or is uniformly distributed on the source body in a spiral shape or in a circle.
10. The radiation treatment device according to claim 5, further comprising a first anti-sagging unit, the first anti-sagging unit being arranged between the shield body and the source body.
11. The radiation treatment device according to claim 10, further comprising a second anti-sagging unit, the second anti-sagging unit being arranged between the source body and the collimating body.
12. The radiation treatment device according to claim 11, wherein the first anti-sagging unit and the second anti-sagging unit are bearings.
13. The radiation treatment device according to claim 5, wherein the radioactive source is arranged on a source case, the source body comprises a source case mounting hole, and the source case is mounted in the source case mounting hole.
14. The radiation treatment device according to claim 13, wherein the shield body comprises a source case shield hole and a source case shield block, and a size of the source case shield hole is greater than or equal to a size of the radioactive source mounting hole, and the source case shield block matches the source case shield hole.
15. The radiation treatment device according to claim 1, wherein the imaging unit comprises an imaging source and an imager, a central axis of an imaging beam emitted from the imaging source deviates from a reference axis, and the reference axis is an axis penetrating through the imaging center and perpendicular to the imager.
16. The radiation treatment device according to claim 1, wherein the imaging unit comprises a shield member arranged adjacent to the radiotherapy unit and configured to shield the treatment beam passing through the intersection point.
17. The radiation treatment device according to claim 16, wherein the shield member is hollow-shaped or sheet-shaped.
18. The radiation treatment device according to claim 1, wherein the imaging unit comprises at least one of: an X-ray apparatus, a CT apparatus, an MRI apparatus, a PET apparatus, an ultrasound apparatus, or a DSA apparatus.
19. The radiation treatment device according to claim 1, further comprising a shield door configured to open or close the radiation treatment device, or to shield the treatment beam emitted from the radiotherapy unit.
20. The radiation treatment device according to claim 1, further comprising a treatment couch arranged at a side of the imaging unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The accompanying drawings are provided for further understanding the technical solutions of the present disclosure and constitute a part of the specification, and, together with the embodiments of the present disclosure, are provided to interpret the technical solutions of the present disclosure, rather than limiting the technical solutions of the present disclosure.
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] Detailed description of embodiments of the present disclosure will be made below with reference to the accompanying drawings to make the objectives, technical solutions and advantages of the present disclosure more apparent.
[0021] It is to be noted that the embodiments of the present disclosure and the features in the embodiments may be arbitrarily combined with each other on a non-conflict basis.
[0022]
[0023] The radiation treatment device in the embodiments of the present disclosure emits an imaging beam to the to-be-treated region T in the patient by using the imaging unit 20 to obtain an image of the to-be-treated region T in the patient. A treatment plan is worked out on the basis of the image of the to-be-treated region T in the patient. The radiotherapy unit 10 also may emit a treatment beam to the same to-be-treated region T. That is, the radiotherapy unit 10 and the imaging unit 20 have the same projection target, i.e., the to-be-treated region T. Therefore, without moving the to-be-treated region T in the patient, the radiotherapy unit 10 may emit the treatment beam to the to-be-treated region T in the patient according to the treatment plan worked out to execute the radiation treatment, such that the accuracy of the radiation treatment is improved.
[0024] Furthermore, in the process of the radiation treatment, the radiation treatment device may perform imaging while performing treatment, and may perform real-time image-guided radiation treatment on the to-be-treated region T in the patient, so as to ensure the to-be-treated region T to always correspond to the treatment location in the treatment plan.
[0025] In the embodiments of the present disclosure, the radiotherapy unit 10 may be an intensity modulated radiation treatment apparatus, a cyberknife (x-ray knife), or a multi-source focused radiation treatment apparatus, etc. The imaging unit 20 may be at least one of the apparatuses that follow: an X-ray apparatus, a cone beam CT (CBCT) apparatus, a computed tomography (CT) apparatus, a magnetic resonance imaging (MRI) apparatus, a positron emission computed tomography (PET) apparatus, an ultrasound apparatus, or a digital subtraction angiography (Digital Subtraction Angiography, DSA) apparatus.
[0026] Further, there may be a plurality of radiotherapy units 10. As shown in
[0027] When the radiotherapy unit 10 is the multi-source focused radiation treatment apparatus, as shown in
[0028] It is to be understood that the to-be-treated region T may include one or more to-be-treated targets, and each time the radiation treatment is performed, the intersection point I where the plurality of treatment beams are focused coincides with one of the targets.
[0029] Further, as shown in
[0030] The shield body 101 of the radiotherapy unit 10 generally is made of a shielding material such as lead or tungsten. The radiotherapy unit 10 has a large total weight. Due to the action of gravity, as shown in
[0031] To align or not align the collimation channel 1031 of the collimating body 103 with a plurality of radioactive sources S, that is, to turn on or off the radioactive sources, at least two possible examples below may be adopted.
[0032] In a possible example, as shown in
[0033] When the collimation channel 1031 of the collimating body 103 is aligned with the plurality of radioactive sources S, if the source body 102 and the collimating body 103 rotate together about the rotation axis RA, rays (treatment beams) emitted by the radioactive sources S irradiate the target at different angles, which may prevent normal tissues around the target from being exposed to ray irradiation for a long time.
[0034] In another possible example, as shown in
[0035] It is to be noted here that the first example is described taking a bowl-shaped radiotherapy unit 10 as an example, and the second example is described taking a tube-shaped radiotherapy unit 10 as an example. Of course, the radiotherapy unit 10 may have other structures, and the shape or the like of the radiotherapy unit 10 is not specifically limited in the embodiments of the present disclosure.
[0036] For ease of installation or replacement of the radioactive source, a bowl-shaped radiotherapy unit 10 is taken as an example. As shown in
[0037] In addition, the above-mentioned radioactive sources S may be uniformly distributed in a spiral shape on the source body 102, or may be divided into a plurality of groups, which are all distributed on a sector of the source body 102. Each group of radioactive sources is distributed in the direction of the rotation axis RA, or each group of radioactive sources is uniformly distributed in a circle of an annular shield member 201 of the source body 102.
[0038] No matter the radioactive source is turned on or off in whatever way, the treatment beam passing through the intersection point I may leak out. Therefore, as shown in
[0039] The above-mentioned shield member 201 is hollow-shaped (for example, ring-shaped) or sheet-shaped (for example, C-shaped). When the shield member 201 is sheet-shaped, the shield member 201 may rotate with the radioactive source S at any time to shield the rays (treatment beams) emitted by the radioactive source S. However, the thickness of the shield member 201, the size of a hollow-shaped intermediate opening, and the size of the sheet may be set according to the direction and intensity of the treatment beam passing through the intersection point I.
[0040] Further, the imaging unit 20 also includes an imaging source 202 and an imager 203. In a possible example, as shown in
[0041] Further, to increase an imaging volume, as shown in
[0042] Further, the radiation treatment device also includes a shield door 50 configured to open or close the radiation treatment device, or to shield the treatment beam emitted from the radiotherapy unit 10.Taking the bowl-shaped radiotherapy unit 10 as shown in
[0043] When the radiotherapy unit 10 in the above embodiment is of a partial shield design, to prevent the radioactive source S from leaking out when the radiotherapy unit 10 is not in use, as shown in
[0044] As shown in
[0045] The above is merely for the convenience of understanding the technical solution of the present disclosure by those skilled in the art, and is not intended to limit the present disclosure. All modifications, equivalent substitutions and improvements made within the spirit and principle of the present disclosure shall fall within the protection scope of the present disclosure.