Rotating gantry beam alignment device, rotating gantry beam alignment method, and particle beam therapy system

The beam alignment device addresses cable wear and disorderly winding in rotating gantry systems by using a spool and wire arrangement unit to guide and separate cables, ensuring reliable power and coolant supply.

JP7790822B2Active Publication Date: 2025-12-23TOSHIBA PLANT SYSTEMS & SERVICES +1
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Patent Information

Application Number
JP2021163944
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-05
Publication Date
2025-12-23
Estimated Expiration
2041-10-05

AI Technical Summary

Technical Problem

The issue with existing rotating gantry systems in particle therapy is the untidy and disorderly winding of cables, which can cause wear and disrupt the supply of power and coolant to the rotating gantry components.

Method used

A beam alignment device with a spool and a wire arrangement unit that includes a frame and rotating bodies to guide and separate cables, preventing disorderly winding and reducing friction, thereby minimizing cable wear.

Benefits of technology

The solution effectively suppresses cable wear and maintains orderly winding, ensuring continuous power and coolant supply to the rotating gantry components, enhancing the reliability of the particle beam therapy system.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a line arrangement technology for a rotary gantry capable of suppressing abrasion of a cable while suppressing irregular winding of the cable.SOLUTION: A line arrangement device 60 for a rotary gantry includes: a rotary gantry 5 that rotates around a horizontal axis 9 facing a horizontal direction and supporting an irradiation nozzle 13 for radiating a particle beam 7 and a transportation part 14 for transporting the particle beam 7 to the irradiation nozzle 13; a plurality of cables 22, one end of which is connected to the rotary gantry 5 and the other end of which is connected to a resting device 30; a spool 23 provided in the rotary gantry 5 for executing winding or unwinding of the cables 22; and a line arrangement unit 61 having a plurality of rotatable rotation bodies 64 provided in a resting state at a position adjacent to the spool 23, separating the plurality of cables 22, and forming a cylindrical shape whose outer peripheral surface comes in contact with the cables 22.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] SUMMARY OF THE INVENTION Embodiments of the present invention relate to techniques for aligning a rotating gantry. [Background technology]

[0002] In particle therapy systems, the use of a rotating gantry treatment table reduces the burden on patients compared to a fixed treatment table because the patient can be irradiated with particle beams while remaining stationary. However, the rotating gantry incorporates many pieces of equipment that rotate along with the rotating gantry. This requires the connection of many cables required for power, control, and communication between the rotating gantry and stationary external equipment. With each rotation of the rotating gantry, cables are wound onto or unwound from spools.

[0003] However, when many cables are installed, they may become untidy. Therefore, there are known techniques to prevent this. For example, there are techniques that separate multiple cables using separators made of flat plates or rods. However, if the separators are made of rigid materials such as flat plates or rods, the cables may rub against these separators, causing wear. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-147451 Summary of the Invention [Problem to be solved by the invention]

[0005] The problem to be solved by the present invention is to provide a wire arrangement technique for a rotating gantry that can suppress cable wear while suppressing disordered winding of the cables. [Means for solving the problem]

[0006] A beam alignment device for a rotating gantry according to an embodiment of the present invention includes a rotating gantry that supports an irradiation nozzle that irradiates a particle beam and a transport unit that transports the particle beam to the irradiation nozzle and rotates around a horizontal axis that faces horizontally; a plurality of cables that have one end connected to the rotating gantry and the other end connected to a stationary device; and a spool that is provided on the rotating gantry and that winds or unwinds the cables. Complex Divide the number of cables Adjustment and a line unit. The wire arrangement unit includes a frame that is provided below the spool in a stationary state and through which the plurality of cables pass, and a plurality of rotating bodies that are rotatably supported by the frame and each have a cylindrical shape with one of the cables in contact with its outer circumferential surface. . [Effects of the Invention]

[0007] According to an embodiment of the present invention, a technique for arranging cables in a rotating gantry is provided that can suppress cable wear while suppressing disordered winding of the cables. [Brief explanation of the drawings]

[0008] [Figure 1] 1 is a plan view showing the overall configuration of a particle beam therapy system according to a first embodiment. [Figure 2] FIG. [Figure 3] FIG. 10 is a side view showing the spool of the rotating gantry. [Figure 4] FIG. 4 is a rear view of the rotating gantry corresponding to the cross section IV-IV in FIG. 3 . [Figure 5] FIG. [Figure 6] FIG. [Figure 7] FIG. [Figure 8] 10 is a flowchart showing a method for aligning a rotating gantry. [Figure 9] FIG. 10 is a rear view of the rotating gantry of the second embodiment. [Figure 10] FIG. 10 is a plan view showing a wire arrangement unit according to a second embodiment. [Figure 11] FIG. 10 is a rear view showing the wire arrangement unit of the second embodiment. [Figure 12]FIG. 11 is a rear view showing the wire arrangement unit of the third embodiment when winding up a cable. [Figure 13] FIG. 11 is a rear view showing the wire arrangement unit of the third embodiment when the cable is being reeled out. [Figure 14] FIG. 10 is a plan view showing a wire arrangement unit according to a fourth embodiment. [Figure 15] FIG. 10 is a perspective view showing a rotating body according to a fourth embodiment. [Figure 16] FIG. 11 is a rear view of the rotating gantry of the fifth embodiment. [Figure 17] FIG. 11 is a plan view showing a wire arrangement unit according to a fifth embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] (First embodiment) Hereinafter, embodiments of a particle beam therapy system and a rotating gantry will be described in detail with reference to the drawings. First, a first embodiment will be described with reference to FIGS. 1 to 8. In the following description, the left side of the pages of FIGS. 2, 3, and 5 will be referred to as the front side (front side) of the rotating gantry, and the right side of the pages will be referred to as the back side (rear side) of the rotating gantry. In the drawings, in a Cartesian coordinate system, the axial direction of the rotating gantry is the Z direction, the vertical direction (up and down direction) perpendicular to this is the Y direction, and the horizontal direction perpendicular to these is the X direction. Note that the X and Y directions may be referred to as the radial direction of the rotating gantry. Furthermore, the direction of rotation around the axis along the outer circumferential surface of the rotating gantry may be referred to as the circumferential direction.

[0010] 1, reference numeral 1 denotes a particle therapy system of this embodiment. In this particle therapy system 1, a particle beam such as carbon ions is irradiated onto lesion tissue (cancer) of a patient as a subject to perform treatment.

[0011] Radiation therapy technology using particle beam therapy system 1 is also known as heavy ion beam cancer treatment technology. This technology uses carbon ions to pinpoint cancer lesions (affected areas), damaging them while minimizing damage to normal cells. Particle beams are defined as radiation heavier than electrons, including proton beams and heavy ion beams. Heavy ion beams are defined as those heavier than helium atoms.

[0012] Compared to conventional cancer treatments using X-rays, gamma rays, or proton beams, cancer treatments using heavy ion beams have a higher ability to kill cancer lesions, and the radiation dose is low on the surface of the patient's body, with the peak radiation dose at the cancer lesion. This means that the number of irradiations and side effects can be reduced, and the treatment period can be shortened.

[0013] As shown in FIG. 1, a particle beam therapy system 1 includes a beam generator 2, a circular accelerator 3, a beam transport line 4, and a rotating gantry 5.

[0014] The beam generator 2 has an ion source of carbon ions, which are charged particles, and generates a particle beam 7 (Fig. 2) using these carbon ions. The circular accelerator 3 is ring-shaped in a plan view and accelerates the particle beam 7 generated by the beam generator 2. The beam transport line 4 transports the particle beam 7 accelerated by the circular accelerator 3 to the rotating gantry 5. A patient 8 (Fig. 2) who is to be irradiated with the particle beam 7 is placed on the rotating gantry 5.

[0015] In this particle beam therapy system 1, first, a particle beam 7 of carbon ions generated by a beam generator 2 is injected from the beam generator 2 into a circular accelerator 3. This particle beam 7 is accelerated to approximately 70% of the speed of light while circulating approximately one million times around the circular accelerator 3. Then, this particle beam 7 is guided to a rotating gantry 5 via a beam transport line 4.

[0016] The beam generator 2, circular accelerator 3, and beam transport line 4 are equipped with a vacuum duct 6 (beam pipe) whose interior is evacuated. A particle beam 7 travels through the interior of this vacuum duct 6. The vacuum ducts 6 of the beam generator 2, circular accelerator 3, and beam transport line 4 are integrated to form a transport path that guides the particle beam 7 to the rotating gantry 5. In other words, the vacuum duct 6 is a sealed, continuous space with a sufficient degree of vacuum to allow the particle beam 7 to pass through.

[0017] As shown in the cross-sectional view of Figure 2, the rotating gantry 5 is a large cylindrical device. The rotating gantry 5 is installed so that its cylindrical axis 9 faces horizontally. The rotating gantry 5 can rotate around this horizontal axis 9.

[0018] The rotating gantry 5 is supported by a framework 10 of a building that constitutes the treatment facility in which the particle beam therapy system 1 is installed. For example, end rings 11 are fixed to the front and rear of the main body of the rotating gantry 5. Rotational drivers 12 that rotatably support the end rings 11 and include drive motors are provided below the end rings 11. These rotational drivers 12 are supported by the framework 10. The driving force of the rotational drivers 12 is applied to the rotating gantry 5 via the end rings 11, causing the rotating gantry 5 to rotate around the horizontal axis 9.

[0019] The rotating gantry 5 is provided with a vacuum duct 6 extending from the beam transport line 4 (FIG. 1). The vacuum duct 6 is first led from the rear side of the rotating gantry 5 into the interior along its horizontal axis 9. The vacuum duct 6 then extends once outward from the outer circumferential surface of the rotating gantry 5, and then extends again inward of the rotating gantry 5. The tip of this vacuum duct 6 extends to a position close to the patient 8.

[0020] Although not specifically shown, a predetermined rotation mechanism is provided in the vacuum duct 6 at a portion along the horizontal axis 9 of the rotating gantry 5. The portion of the vacuum duct 6 outside this rotation mechanism is stationary, while the portion inside this rotation mechanism rotates together with the rotation of the rotating gantry 5.

[0021] The rotating gantry 5 is also provided with an irradiation nozzle 13 that irradiates the particle beam 7 toward the patient 8, and a transport unit 14 that transports the particle beam 7 to the irradiation nozzle 13. In other words, the irradiation nozzle 13 and the transport unit 14 are supported by the rotating gantry 5.

[0022] Furthermore, the transport section 14 is equipped with superconducting electromagnets 15 that generate magnetic fields that form a path for transporting the particle beam 7. These superconducting electromagnets 15 are, for example, bending electromagnets that change the traveling direction of the particle beam 7 along the vacuum duct 6, or quadrupole electromagnets that control the convergence and divergence of the particle beam 7.

[0023] The irradiation nozzle 13 is provided at the tip of the vacuum duct 6 and irradiates the particle beam 7 guided by the transport unit 14 toward the patient 8. The irradiation nozzle 13 is fixed to the inner peripheral surface of the rotating gantry 5. The particle beam 7 is irradiated from the irradiation nozzle 13 in a direction perpendicular to the horizontal axis 9.

[0024] A treatment space 16 where particle beam therapy is performed is provided inside the rotating gantry 5. A patient 8 is placed on a treatment table 17 provided in this treatment space 16. This treatment table 17 is movable with the patient 8 placed on it. By moving this treatment table 17, the patient 8 can be moved to the irradiation position of the particle beam 7 and aligned. Therefore, the particle beam 7 can be irradiated to an appropriate area of ​​the patient 8, such as the lesion tissue.

[0025] The patient 8 is positioned at the horizontal axis 9, and by rotating the rotating gantry 5, the irradiation nozzle 13 can be rotated around the stationary patient 8. For example, the irradiation nozzle 13 can be rotated 185 degrees clockwise (right) or counterclockwise (left) in a rear view around the patient 8 (horizontal axis 9). The particle beam 7 can then be irradiated from any direction around the patient 8. In other words, the rotating gantry 5 is a device that can change the irradiation direction of the particle beam 7 guided by the beam transport line 4 onto the patient 8. Therefore, the particle beam 7 can be irradiated to the affected area from an appropriate direction with higher accuracy while reducing the burden on the patient 8.

[0026] As the particle beam 7 passes through the body of the patient 8, it loses kinetic energy and slows down, and encounters resistance that is approximately inversely proportional to the square of the velocity, causing it to suddenly stop when it slows down to a certain speed. This stopping point of the particle beam 7 is called the Bragg peak, and high energy is emitted from it. By aligning this Bragg peak with the position of the diseased tissue (affected area) of the patient 8, the particle beam therapy system 1 can destroy only the diseased tissue while minimizing damage to normal tissue.

[0027] The treatment space 16 provided inside the rotating gantry 5 is formed to be integrated with the treatment room 18 located in front of the rotating gantry 5. The treatment table 17 is fixed to the floor 19 of the stationary treatment room 18. In other words, even if the rotating gantry 5 and irradiation nozzle 13 are rotated, the position of the treatment table 17 does not change.

[0028] A counterweight 20 is fixed to the outer circumferential surface of the rotating gantry 5 on the side opposite to the part where the transport section 14 is provided. This counterweight 20 is provided to balance the rotating gantry 5 and the transport section 14 at the center. In other words, the weight of the counterweight 20 is set to correspond to the weight of the transport section 14. In addition, below the rotating gantry 5, a weight pit 21 is provided which is recessed in the body 10 and through which the counterweight 20 can pass as the rotating gantry 5 rotates.

[0029] Furthermore, a plurality of cables 22 are led from the outside to the rotating gantry 5. These cables 22 are, for example, power supply cables, signal lines, flexible hoses for coolant, etc., and are provided to supply power and transmit control signals to predetermined devices provided on the rotating gantry 5. These cables 22 include flexible hoses that supply coolant to the superconducting electromagnets 15 of the transportation unit 14.

[0030] A spool 23 is provided at the rear of the rotating gantry 5 to wind or unwind the cable 22 as the rotating gantry 5 rotates. The axis of the spool 23 coincides with the horizontal axis 9 of the rotating gantry 5.

[0031] Below the spool 23, a cable pit 24 is provided, which is formed in a recessed shape in the body 10 and can accommodate the cable 22 hanging down from the spool 23. The width dimension of the cable pit 24 in the X direction is set to be larger than the diameter of the spool 23.

[0032] As shown in the cross-sectional view of Figure 3, spool 23 is provided so as to protrude rearward from the rear part of rotating gantry 5. Spool 23 is a cylindrical part formed to have a diameter smaller than the diameter of the main body of rotating gantry 5. Spool 23 includes one disk-shaped flange 25, multiple disk-shaped flange rings 26, and multiple recessed lanes 27 (Figure 5) that hold cables 22.

[0033] The flange 25 is provided at the rear end of the spool 23. A plurality of flange rings 26 are arranged side by side in the axial direction (Z direction) between the flange 25 and the rotating gantry 5. These flange rings 26 are formed to have a diameter smaller than that of the flange 25. The rear flange ring 26 closest to the flange 25 is provided at a position spaced apart from the flange 25. A plurality of lanes 27 (FIG. 5) are formed between each of the flange rings 26.

[0034] 5, each lane 27 accommodates a plurality of cables 22. For example, two to three cables 22 are accommodated in one lane 27. Note that four or more cables 22 may be accommodated in one lane 27.

[0035] When the cables 22 are wound around the spool 23 in the circumferential direction, the cables 22 are arranged side by side in the axial direction (Z direction) of the spool 23 and in the radial directions (X direction and Y direction) of the spool 23 in accordance with the arrangement of the flange ring 26 and the lanes 27. When the cables 22 hang down from the spool 23, the cables 22 are arranged side by side in the axial direction (Z direction) of the spool 23 and in the horizontal direction (X direction) (FIG. 6).

[0036] The width of each lane 27 may differ depending on the number or thickness of the cables 22 accommodated therein. Also, a single lane 27 may accommodate a plurality of cables 22 of different types or thicknesses.

[0037] Both corners of the peripheral surface 28 of each flange ring 26 are cut away to form chamfered portions 29 (bevels). In other words, the peripheral edge of the flange ring 26 is chamfered to form the chamfered portions 29. In this way, when the cable 22 is housed in the lane 27, the cable 22 is less likely to get caught on the flange ring 26, and the friction or tension on the cable 22 caused by the cable getting caught on the flange ring 26 can be reduced, making it possible to suppress irregular winding.

[0038] For example, the chamfered portions 29 are inclined surfaces that are inclined at an angle of approximately 45° with respect to the protruding direction of the flange ring 26. By providing these chamfered portions 29, the opening of the lane 27 is widened, and the cable 22 can be smoothly accommodated in the lane 27.

[0039] Note that even when the chamfered portion 29 is provided, a portion of the circumferential surface 28 of the flange ring 26 remains. For example, the circumferential surface 28 at the tip of the flange ring 26 remains. In this way, even if the cable 22 gets caught on the flange ring 26, it is possible to prevent the cable 22 from being cut or worn.

[0040] As shown in FIG. 4, one end of each cable 22 is connected to a spool 23 of the rotating gantry 5, and the other end is connected to a stationary fixing device 30. The fixing device 30 is fixed to, for example, the frame 10. The multiple cables 22 are composed of, for example, power lines for supplying power, signal lines for transmitting control signals, and flexible hoses for supplying coolant. The fixing device 30 is composed of, for example, a power supply, a terminal block, and a pump for supplying coolant. Note that while FIG. 4 is a rear view of the rotating gantry 5, the main body, rotation drive unit 12, transport unit 14, and the like of the rotating gantry 5 are not shown to facilitate understanding.

[0041] One end of each cable 22 is introduced into the rotating gantry 5 through a through-hole 31 formed in the spool 23. The cable 22 is then connected to equipment such as a superconducting electromagnet 15 (FIG. 2) provided on the rotating gantry 5. One end of each cable 22 is fixed to the through-hole 31. Each cable 22 is wound circumferentially around the outer periphery of the spool 23 from the fixed through-hole 31.

[0042] In this embodiment, a flexible hose will be described as an example of the cable 22. The flexible hose is hollow (FIG. 5) and is provided to supply a coolant such as liquid helium or liquid nitrogen to the superconducting electromagnet 15 (FIG. 2). This flexible hose is a pressure-resistant hose with woven metal wires to increase its pressure resistance, and can supply the coolant at a predetermined pressure.

[0043] 3 and 4, the multiple cables 22 are divided into a first group G1 and a second group G2. The first group G1 and the second group G2 may be divided according to the type of cable 22, or according to the device to which the cable 22 is connected. Accordingly, multiple flange rings 26 around which the multiple cables 22 of the first group G1 are wound, and multiple flange rings 26 around which the multiple cables 22 of the second group G2 are wound are provided.

[0044] The cables 22 of the first group G1 and the cables 22 of the second group G2 are wound around the spool 23 in different directions. For example, when the rotating gantry 5 rotates counterclockwise in a rear view, the cables 22 of the first group G1 are wound around the spool 23, and the cables 22 of the second group G2 are unwound from the spool 23. On the other hand, when the rotating gantry 5 rotates clockwise, the cables 22 of the first group G1 are unwound from the spool 23, and the cables 22 of the second group G2 are wound around the spool 23.

[0045] 4, for ease of understanding, only the cables 22 of the first group G1 are shown, and the cables 22 of the second group G2 are not shown. In an actual rear view, the cables 22 of the first group G1 and the cables 22 of the second group G2 hanging down from the spool 23 appear to intersect at the cable pit 24.

[0046] The particle beam therapy system 1 of this embodiment is provided with a wire arrangement device 60 for the rotating gantry 5. This wire arrangement device 60 includes a wire arrangement unit 61. A plurality of cables 22 pass through this wire arrangement unit 61. The wire arrangement device 60 is provided to arrange the plurality of cables 22 and to suppress abrasion of the cables 22 while suppressing a disordered winding state of the cables 22.

[0047] The wiring arrangement units 61 are provided to arrange the cables 22 of the first group G1 and to arrange the cables 22 of the second group G2. To facilitate understanding, Fig. 4 shows only the wiring arrangement unit 61 of the first group G1, and does not show the wiring arrangement unit 61 of the second group G2. The wiring arrangement units 61 of the first group G1 and the second group G2 have the same configuration and are arranged symmetrically with respect to the rotating gantry 5.

[0048] In addition, in Fig. 4, the width of the wire arranging unit 61 is exaggerated to facilitate understanding. However, the actual wire arranging unit 61 is a smaller device than that shown in Fig. 4. This wire arranging unit 61 only needs to have a width that allows at least a plurality of cables 22 to pass through. The width of the wire arranging unit 61 is set appropriately depending on the thickness and number of cables 22 that will pass through.

[0049] A unit stand 62 extending upward from the bottom surface of the cable pit 24 is fixed to the frame 10 in which the cable pit 24 is formed. For example, a pair of unit stands 62 are provided on the left and right sides of one wire arranging unit 61, spaced apart in the X direction. The wire arranging unit 61 is supported near the upper ends of these unit stands 62. In the first embodiment, a connecting portion 63 (FIG. 6) of the wire arranging unit 61 is fixed to the unit stand 62. In other words, the wire arranging unit 61 is provided in a stationary position close to the spool 23.

[0050] The wire arranging unit 61 is provided in a tilted state with respect to the horizontal direction. For example, the wire arranging unit 61 is fixed to the unit stand 62 so that one connecting portion 63 is higher than the other connecting portion 63. In the first embodiment, the wire arranging unit 61 is provided on the outer peripheral surface of the spool 23, ranging from the position where the cable 22 hangs down to a position directly below the center of the spool 23. The wire arranging unit 61 is tilted so that the end closer to the position directly below the center of the spool 23 is lower than the opposite end.

[0051] As shown in Figure 6, the wire arrangement unit 61 has multiple rotating bodies 64 and a frame 65. The rotating bodies 64 are cylindrical members. These rotating bodies 64 constitute guide wheels for guiding the cables 22. These rotating bodies 64 are supported in a rotatable state relative to the frame 65. In other words, these rotating bodies 64 are members that separate the multiple cables 22, have outer circumferential surfaces that are in contact with the cables 22, and are rotatable in response to the movement of the cables 22.

[0052] The rotating body 64 separates the multiple cables 22 lined up in the radial and axial directions of the rotating gantry 5. In this way, the cables 22 are separated in the radial and axial directions of the rotating gantry 5, so that it is possible to sufficiently prevent the cables 22 from being wound in a disordered manner. Note that the rotating body 64 may be configured in any manner as long as it separates the multiple cables 22 lined up in at least one of the radial and axial directions of the rotating gantry 5.

[0053] The frame 65 is a lattice-shaped member. For example, the frame 65 is provided with a plurality of rod-shaped shafts 66, 67 that rotatably support the rotor 64. The frame 65 is provided with a plurality of shafts 66 that extend in the axial direction (Z direction) of the rotating gantry 5 and are aligned in the radial direction (X direction), and a plurality of shafts 67 that extend in the radial direction (X direction) of the rotating gantry 5 and are aligned in the axial direction (Z direction). These shafts 66, 67 intersect with each other at right angles, forming a plurality of grids 68.

[0054] The cables 22 are individually passed through each of the squares 68. One cable 22 is passed through one square 68. Rotating bodies 64 are rotatably supported on shafts 66, 67 corresponding to the four sides of the square 68. The four rotating bodies 64 are able to come into contact with the outer circumferential surface of one cable 22. In this way, the multiple cables 22 are separated by the squares 68, and the rotating bodies 64 allow the cables 22 to slide. Since the cables 22 are separated and unintended contact between the cables 22 is prevented, it is possible to sufficiently prevent the cables 22 from becoming disorderly.

[0055] That is, the wire arrangement unit 61 has a frame 65 (shafts 66, 67) that rotators 64 that separate the cables 22 in the radial direction (X direction) of the rotating gantry 5 are rotatably supported. In this way, the frame 65 separates the multiple cables 22 in the radial direction, and the rotators 64 allow the cables 22 to slide while sufficiently suppressing the disordered winding state.

[0056] As shown in FIG. 4, in this embodiment, a specific range R in which the cable 22 hangs down from the spool 23 is set in advance. For example, the cable 22 hangs down from the end of the spool 23 in the X direction. A predetermined range including this portion is set as the specific range R. This specific range R is a range in which the cable 22 hangs down almost vertically due to its own weight. The wire arrangement unit 61 is disposed in this specific range R.

[0057] 7, the cable 22 hanging down from the spool 23 passes vertically between the rotors 64 arranged in directions (X direction and Z direction) that intersect with the direction in which the cable 22 extends. In this way, the multiple cables 22 hanging down from the spool 23 can be separated.

[0058] Furthermore, the frame 65 is provided in a tilted state with respect to the horizontal. In rear view, the rotors 64 are provided at different height positions. In other words, the rotors 64 that separate the cables 22 arranged in the radial direction of the rotating gantry 5 are provided at different height positions. In this way, the cables 22 can pass through the wiring arrangement unit 61 while smoothly contacting the rotors 64.

[0059] Next, a method for arranging the rotating gantry 5 using the arranging device 60 will be described with reference to the flowchart of Fig. 8. The above-mentioned drawings will be referred to as appropriate.

[0060] First, in step S1, the rotating gantry 5, which supports the irradiation nozzle 13 that irradiates the particle beam 7 and the transport unit 14 that transports the particle beam 7 to the irradiation nozzle 13, rotates around the horizontal axis 9 that faces horizontally.

[0061] In the next step S2, a spool 23 provided on the rotating gantry 5 winds or unwinds a plurality of cables 22, one end of which is connected to the rotating gantry 5 and the other end of which is connected to a stationary fixing device 30.

[0062] In the next step S3, a wire arrangement unit 61 having a plurality of rotatable cylindrical rotors 64, which are stationary and positioned close to the spool 23 and whose outer circumferential surface is in contact with the cables 22, separates the plurality of cables 22.

[0063] Then, the wire alignment method ends. This wire alignment method is constantly executed and repeated while the rotating gantry 5 is in operation. Note that the above steps are at least a part of the wire alignment method, and other steps may also be included in the wire alignment method.

[0064] In the flowchart of the first embodiment, steps are executed serially, but the order of steps is not necessarily fixed, and some steps may be executed in reverse order. Also, some steps may be executed in parallel with other steps.

[0065] In the first embodiment, the wire dressing device 60 can suppress abrasion of the cable 22 while suppressing a disorderly winding of the cable 22. For example, if a hollow flexible hose is used as the cable 22 to supply coolant, if the flexible hose becomes twisted due to disorderly winding, the supply of coolant to the superconducting magnet 15 will be interrupted. Therefore, in the present embodiment, the flexible hose is prevented from becoming a disorderly winding, and interruptions in the supply of coolant to the superconducting magnet 15 will be prevented.

[0066] In the first embodiment, the wire arranging unit 61 is inclined so that the end closer to the position directly below the center of the spool 23 is lower than the opposite end, but other configurations are also possible. For example, the wire arranging unit 61 may be inclined so that the end closer to the position directly below the center of the spool 23 is higher than the opposite end.

[0067] (Second embodiment) Next, a second embodiment will be described with reference to Figures 9 to 11. Note that the same components as those shown in the above-described embodiment will be assigned the same reference numerals and redundant description will be omitted.

[0068] 9, the wire arranging device 60A of the second embodiment includes two upper and lower wire arranging units 61A and 61B. The connecting portions 63 of each of the wire arranging units 61A and 61B are fixed to a unit stand 62. That is, both wire arranging units 61A and 61B are provided in a stationary state in proximity to the spool 23. The inclinations of both wire arranging units 61A and 61B are the same.

[0069] 10 and 11, the frames 65A, 65B constituting each of the wiring arrangement units 61A, 61B are arranged such that two (multiple) upper and lower stages of the frames 65A, 65B are stacked in the direction in which the cables 22 extend. The distance between the frames 65A, 65B is set appropriately depending on the type, thickness, and hardness (rigidity) of the cables 22. For example, when guiding a cable 22 that is hard and difficult to bend, the distance between the frames 65A, 65B is set to be large so that the cables 22 do not bend significantly at the wiring arrangement units 61A, 61B.

[0070] Furthermore, a lower frame 65B is provided directly below the upper frame 65A. The lower frame 65B may be positioned horizontally offset from the position directly below the upper frame 65A. For example, the lower frame 65B may be positioned in the direction in which the cable 22 bends.

[0071] The upper frame 65A is provided with a plurality of shafts 66 that extend in the axial direction (Z direction) and are aligned in the radial direction (X direction). A rotating body 64A is rotatably supported by these shafts 66. Meanwhile, the lower frame 65B is provided with a plurality of shafts 67 that extend in the radial direction (X direction) and are aligned in the axial direction (Z direction). A rotating body 64B is rotatably supported by these shafts 67.

[0072] These frames 65A, 65B are stacked one on top of the other, so that the shafts 66, 67 form a lattice-like arrangement in plan view. The rotating bodies 64A, 64B supported by the shafts 66, 67 separate the cable 22 in the axial and radial directions. The four rotating bodies 64A, 64B can come into contact with the outer circumferential surface of one cable 22.

[0073] In the second embodiment, a rotor 64A that separates the cables 22 in the radial direction (X direction) of the rotating gantry 5 is provided in one upper frame 65A, and a rotor 64B that separates the cables 22 in the axial direction (Z direction) of the rotating gantry 5 is provided in the other lower frame 65B. In this way, the multiple rotors 64A, 64B can be arranged compactly, and the vertical and horizontal dimensions of the wiring arrangement units 61A, 61B can be reduced.

[0074] Furthermore, since two upper and lower wire arrangement units 61A, 61B are provided, the cable 22 is not bent suddenly at the portion guided by the wire arrangement units 61A, 61B, and wear on the cable 22 can be suppressed.

[0075] In the second embodiment, two upper and lower stages of wire arranging units 61A and 61B are provided, but other configurations are also possible. For example, three or more stages of wire arranging units may be stacked.

[0076] In the second embodiment, the upper and lower wiring arranging units 61A, 61B are inclined at the same angle, but other configurations are also possible. For example, the upper and lower wiring arranging units 61A, 61B may be inclined at different angles. In particular, when viewed from behind, the upper and lower wiring arranging units 61A, 61B may be inclined so as to intersect at right angles with the extension direction of the cables 22.

[0077] (Third embodiment) Next, a third embodiment will be described with reference to Figures 12 and 13. Note that the same components as those shown in the above-described embodiments will be assigned the same reference numerals and redundant description will be omitted.

[0078] As shown in Fig. 12, a wire arranging device 60B of the third embodiment includes two upper and lower wire arranging units 61A, 61B. The upper wire arranging unit 61A is fixed to a unit stand 62. On the other hand, the lower wire arranging unit 61B is supported in a state in which it can move relative to the unit stand 62. Note that the arrangement of the rotors 64A, 64B in each of the wire arranging units 61A, 61B is the same as in the second embodiment (see, for example, Figs. 10 and 11).

[0079] For example, the connecting portion 63 of the upper frame 65A is fixed to the unit stand 62, while the connecting portion 63 of the lower frame 65B is supported via a slit hole 69 formed in the unit stand 62. The slit hole 69 extends in the horizontal direction and serves as a guide portion that guides the lower frame 65B in the horizontal direction.

[0080] The slits 69 are provided at an angle relative to the horizontal. This angle is the same as the angle of the wire arrangement units 61A and 61B. For example, when no load is applied to the lower frame 65B, the lower frame 65B moves diagonally downward (to the left in FIG. 12) due to its own weight.

[0081] 13, when cable 22 is paid out from spool 23 (FIG. 4), lower frame 65B is moved diagonally upward (to the right in FIG. 13) in accordance with the direction of extension of cable 22. For example, when cable 22 is paid out from spool 23, cable 22 bends so as to bulge in a direction away from spool 23, and lower frame 65B moves in accordance with the degree of bending.

[0082] On the other hand, as shown in Figure 12, when cable 22 is wound onto spool 23 (Figure 4), lower frame 65B is moved diagonally downward (to the left in Figure 12) in accordance with the direction in which cable 22 extends. For example, when cable 22 is wound off spool 23, cable 22 bends in a direction in which it is attracted to spool 23, and lower frame 65B moves in accordance with the degree of bending.

[0083] In the third embodiment, the upper frame 65A is fixed, and the lower frame 65B is movable. Therefore, the positional relationship between the two frames 65A and 65B can be adjusted with respect to the direction in which the cable 22 extends, and each of the frames 65A and 65B can be moved to an appropriate position with respect to the cable 22. The cable 22 then passes between the rotating bodies 64A and 64B (FIGS. 10 and 11) at an appropriate angle. In particular, the lower frame 65B is movable in a direction intersecting the direction in which the cable 22 extends. In this way, the frame 65B moves in accordance with the movement of the cable 22, and no load is applied to the cable 22 at the wiring arrangement units 61A and 61B.

[0084] In the third embodiment, the upper frame 65A is fixed and the lower frame 65B is movable, but other configurations are also possible. For example, the lower frame 65B may be fixed and the upper frame 65A may be movable. Also, both the upper and lower frames 65A, 65B may be movable.

[0085] In the third embodiment, the unit stand 62 is provided with slit holes 69 as a configuration for moving the lower frame 65B (wire arrangement unit 61B), but other configurations are also possible. For example, the unit stand 62 may be provided with rails (protrusions) for moving the lower frame 65B.

[0086] (Fourth embodiment) Next, a fourth embodiment will be described with reference to Figures 14 and 15. Note that the same components as those shown in the above-described embodiments will be assigned the same reference numerals and redundant description will be omitted.

[0087] 14, a wire arranging device 60C of the fourth embodiment includes a single-stage wire arranging unit 61C. The arrangement of the wire arranging unit 61C relative to the spool 23 is the same as in the first embodiment (see, for example, FIG. 4).

[0088] A frame 65C of the wire arrangement unit 61C is provided with a plurality of shafts 66 extending in the axial direction (Z direction) and aligned in the radial direction (X direction). A rotor 64C is rotatably supported by these shafts 66.

[0089] As shown in Fig. 15, each rotor 64C has a recess 70 formed on its outer circumferential surface with which the cable 22 comes into contact. In other words, these rotors 64C form a saddle-shaped guide wheel for guiding the cable 22. For example, one rotor 64C has a shape such that the tips of a truncated cone are attached to both ends of a central cylindrical portion. At least two rotors 64C can hold one cable 22 by sandwiching it from the radial direction (X direction).

[0090] In the fourth embodiment, the recess 70 is formed on the outer peripheral surface of the rotor 64C, which prevents the cable 22 from shifting from the position where it is in contact with the rotor 64C. For example, a part of the outer periphery of the cable 22 is loosely fitted into the recess 70 of the rotor 64C, which prevents the cable 22 from shifting laterally (in the direction in which the shaft 66 extends).

[0091] Furthermore, in order to hold one cable 22, it is only necessary to provide two rotating bodies 64C arranged so as to sandwich the cable 22 from the radial direction (X direction), which makes it possible to reduce the number of rotating bodies 64C installed in one wire arrangement unit 61C.

[0092] (Fifth embodiment) Next, a fifth embodiment will be described with reference to Figures 16 and 17. Note that the same components as those shown in the above-described embodiments will be assigned the same reference numerals and redundant description will be omitted.

[0093] 16, a wire arranging device 60D of the fifth embodiment includes a single-stage wire arranging unit 61D. The wire arranging unit 61D is fixed to a unit stand 62.

[0094] In the fifth embodiment, the wire arranging unit 61D is disposed so as to be displaced in the horizontal direction from the specific range R in which the cable 22 hangs down from the spool 23. For example, the wire arranging unit 61D is disposed so as to be displaced in the radial direction (X direction) away from the spool 23. In other words, the wire arranging unit 61D is disposed so as to be displaced in the direction away from the fixing device 30.

[0095] As shown in Fig. 17, a frame 65D of the wire arrangement unit 61D is provided with a plurality of shafts 66 extending in the axial direction (Z direction) and aligned in the radial direction (X direction). Rotating bodies 64C are rotatably supported by these shafts 66. As in the fourth embodiment, the rotating bodies 64C are formed with recesses 70 (Fig. 15) on their outer circumferential surfaces with which the cables 22 come into contact. These rotating bodies 64C are saddle-shaped guide wheels.

[0096] 16 and 17, the frame 65D of the wire arrangement unit 61D is positioned so as to be displaced horizontally from the specific range R, so that the cable 22 is wound onto the spool 23 from an obliquely downward direction. The cable 22 is also unwound from the spool 23 obliquely downward. The cable 22 always comes into contact with each of the rotating bodies 64C from one direction.

[0097] When frame 65D is displaced in a direction away from spool 23, a load is applied to cable 22 due to its own weight, moving it closer to spool 23. For example, a force that tries to move cable 22 to the left side of the paper in Figure 17 acts on cable 22. Therefore, cable 22 always contacts the same surface on the outer circumferential surface of each rotating body 64C.

[0098] In the fifth embodiment, the cable 22 hanging down from the spool 23 passes vertically between the rotors 64C arranged in a direction intersecting the extension direction of the cable 22, and the cable 22 contacts the rotor 64C from one direction in either the winding or unwinding state. In this way, the cable 22 contacts one surface of the rotor 64C in either the winding or unwinding state, which reduces the number of rotors 64C installed. In other words, only one rotor 64C is required to guide one cable 22. This simplifies the configuration of the wire arrangement unit 61D and allows for a compact configuration.

[0099] Furthermore, cable 22 extends from spool 23 to fixing device 30 via wire arrangement unit 61D. When wire arrangement unit 61D is displaced in a direction away from fixing device 30, cable 22 takes a longer route to extend from spool 23 to fixing device 30. Therefore, cable 22 arranged in cable pit 24 is moved to an upward position, in other words, is lifted, and as a result, the depth dimension of cable pit 24 can be set shallower.

[0100] The amount of displacement (distance) by which the wire arranging unit 61D is displaced horizontally from the specific range R is set appropriately according to the state of the cable 22. It is set appropriately according to the type, thickness, and hardness (rigidity) of the cable 22. For example, it is set based on the curvature of the cable 22 when it hangs down from the spool 23 and bends, so that the cable 22 does not buckle and ride up on the wire arranging unit 61D. Furthermore, wire arranging may be performed using a plurality of wire arranging units 61D that differ depending on the type of cable 22. In this case, the amount of displacement (distance) of each wire arranging unit 61D may be set to a different value depending on the type of cable 22.

[0101] The rotating gantry line alignment device has been described based on the first to fifth embodiments, but the configuration applied in any one of the embodiments may be applied to other embodiments, or the configurations applied in each embodiment may be combined.

[0102] Although the above-described embodiment exemplifies a facility that performs heavy ion cancer therapy, the above-described embodiment can also be applied to other facilities. For example, the above-described embodiment may be applied to a facility that performs proton cancer therapy.

[0103] According to at least one of the embodiments described above, by providing a wiring arrangement unit that separates multiple cables and has multiple rotatable cylindrical rotors whose outer surfaces are in contact with the cables, it is possible to suppress cable wear while suppressing cable disorderly winding.

[0104] Although several embodiments of the present invention have been described, these embodiments are presented as examples and are not intended to limit the scope of the invention. These embodiments can be implemented in various other forms, and various omissions, substitutions, modifications, and combinations can be made without departing from the spirit of the invention. These embodiments and modifications thereof are intended to be included within the scope and spirit of the invention, as well as within the scope of the invention described in the claims and their equivalents. [Explanation of symbols]

[0105] 1...particle beam therapy system, 2...beam generator, 3...circular accelerator, 4...beam transport line, 5...rotating gantry, 6...vacuum duct, 7...particle beam, 8...patient, 9...horizontal axis, 10...body, 11...end ring, 12...rotation drive unit, 13...irradiation nozzle, 14...transport unit, 15...superconducting magnet, 16...treatment space, 17...treatment table, 18...treatment room, 19...floor, 20...counterweight, 21...weight pit, 22...cable, 23...spool, 24...cable pit, 25...flange ji, 26... flange ring, 27... lane, 28... peripheral surface, 29... chamfered portion, 30... fixing device, 31... penetration portion, 60 (60A, 60B, 60C, 60D)... wire arrangement device, 61 (61A, 61B, 61C, 61D)... wire arrangement unit, 62... unit stand, 63... connecting portion, 64 (64A, 64B, 64C)... rotating body, 65 (65A, 65B, 65C, 65D)... frame, 66, 67... shaft portion, 68... grid, 69... slit hole, 70... recess, G1... first group, G2... second group, R... specific range.

Claims

1. a rotating gantry supporting an irradiation nozzle that irradiates a particle beam and a transport unit that transports the particle beam to the irradiation nozzle, the rotating gantry rotating around a horizontal axis facing horizontally; a plurality of cables having one end connected to the rotating gantry and the other end connected to a stationary device; a spool provided on the rotating gantry for winding or unwinding the cable; a wiring arrangement unit that separates the plurality of cables; Equipped with The wire arrangement unit includes: a frame that is stationary and disposed below the spool and through which the cables pass; a plurality of rotating bodies each having a cylindrical shape with one of the cables in contact with an outer circumferential surface thereof and rotatably supported by the frame; having Rotating gantry alignment device.

2. The rotating body separates the cables arranged in at least one of a radial direction and an axial direction of the rotating gantry.

2. The rotating gantry wire alignment device according to claim 1.

3. The wire arrangement unit is disposed in a specific area where the cable hangs down from the spool, The cable hanging down from the spool passes vertically between the rotating bodies arranged in a direction intersecting the extending direction of the cable.

3. The wire alignment device for a rotating gantry according to claim 1 or 2.

4. the wire arrangement unit is disposed horizontally displaced from a specific range in which the cable hangs down from the spool, The cable hanging down from the spool passes vertically between the rotating bodies arranged in a direction intersecting the extending direction of the cable, and the cable comes into contact with the rotating bodies from one direction in either the winding or unwinding state.

3. The wire alignment device for a rotating gantry according to claim 1 or 2.

5. The rotating body has a recess formed on the outer circumferential surface with which the cable comes into contact. The wire alignment device for a rotating gantry according to any one of claims 1 to 4.

6. The rotating body divides the cables in the radial direction of the rotating gantry. The wire alignment device for a rotating gantry according to any one of claims 1 to 5.

7. The wiring unit has a lattice-shaped frame in which the cables are individually passed through each square and the rotor is rotatably supported on at least one side of the square. The wire alignment device for a rotating gantry according to any one of claims 1 to 6.

8. The frame is provided in a state inclined relative to the horizontal direction, the plurality of rotating bodies separating the plurality of cables arranged in the radial direction of the rotating gantry are provided at different height positions; 8. The wire alignment device for a rotating gantry according to claim 6 or 7.

9. The plurality of frames are stacked in the direction in which the cable extends. The wire alignment device for a rotating gantry according to any one of claims 6 to 8.

10. Among the plurality of frames, at least one stage of the frame is provided with the rotating body that separates the cables in the radial direction of the rotating gantry, the rotating body that separates the cables in the axial direction of the rotating gantry is provided on all remaining stages of the frames among the plurality of frames; 10. The rotating gantry wire alignment device according to claim 9.

11. At least one of the frames is movable in a direction intersecting the direction in which the cable extends.

11. The wire alignment device for a rotating gantry according to claim 9 or 10.

12. At least two levels of the frame are provided, stacked vertically, and the upper level frame is fixed and the lower level frame is movable. The wire alignment device for a rotating gantry according to any one of claims 9 to 11.

13. Two stages of the frame are provided, stacked one above the other, the rotating body that partitions the cables in the radial direction of the rotating gantry is provided on one of the upper stage frames, the rotating body that separates the cables in the axial direction of the rotating gantry is provided on the other lower stage frame; The wire alignment device for a rotating gantry according to any one of claims 9 to 12.

14. the transport unit includes a superconducting electromagnet that generates a magnetic field that forms a path along which the particle beam is transported; at least one of the cables is a flexible hose that supplies coolant to the superconducting electromagnet; The wire alignment device for a rotating gantry according to any one of claims 1 to 13.

15. a rotating gantry supporting an irradiation nozzle for irradiating a particle beam and a transport unit for transporting the particle beam to the irradiation nozzle, rotating around a horizontal axis facing horizontally; a spool mounted on the rotating gantry for winding or unwinding a plurality of cables, one end of which is connected to the rotating gantry and the other end of which is connected to a stationary device; A wiring unit partitions the plurality of cables; Including, The wire arrangement unit includes: a frame that is stationary and disposed below the spool and through which the cables pass; a plurality of rotating bodies each having a cylindrical shape with one of the cables in contact with an outer circumferential surface thereof and rotatably supported by the frame; having How to align the rotating gantry.

16. a wire alignment device for the rotating gantry according to any one of claims 1 to 14; a treatment table that moves and positions a patient at an irradiation position of the particle beam guided by the transport unit in a direction perpendicular to the horizontal axis; a beam generator for generating the particle beam; an accelerator that accelerates the particle beam; Equipped with Particle therapy system.

Citation Information

Patent Citations

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