Patent classifications
A61N5/1079
Beam station treatment planning and radiation delivery methods
Described herein are methods for beam station delivery of radiation treatment, where the patient platform is moved to a series of discrete patient platform locations or beam stations that are determined during treatment planning, stopped at each of these locations while the radiation source rotates about the patient delivering radiation to the target regions that intersect the radiation beam path, and then moving to the next location after the prescribed dose of radiation (e.g., in accordance with a calculated fluence map) for that location has been delivered to the patient.
BEAM STATION TREATMENT PLANNING AND RADIATION DELIVERY METHODS
Described herein are methods for beam station delivery of radiation treatment, where the patient platform is moved to a series of discrete patient platform locations or beam stations that are determined during treatment planning, stopped at each of these locations while the radiation source rotates about the patient delivering radiation to the target regions that intersect the radiation beam path, and then moving to the next location after the prescribed dose of radiation (e.g., in accordance with a calculated fluence map) for that location has been delivered to the patient.
Radiation therapy system
A radiation therapy system comprises a beam delivery system located in a treatment room. The beam delivery system comprises a particle accelerator for generating a radiation beam, and a positioning apparatus for moving the particle accelerator to any one of a plurality of treatment locations in said treatment room. The system includes a plurality of waiting rooms each having a patient support apparatus that is movable between a waiting state in which it is located in the respective waiting room, and a treatment state in which it is located in a respective one of the treatment locations in the treatment room. The positioning apparatus comprises a counterbalanced lever which carries the particle accelerator. The particle accelerator is preferably a proton accelerator producing a proton beam.
DELIVERY OF RADIATION BY COLUMN AND GENERATING A TREATMENT PLAN THEREFOR
An example method of treating a target using particle beam includes directing the particle beam along a path at least part-way through the target, and controlling an energy of the particle beam while the particle beam is directed along the path so that the particle beam treats at least interior portions of the target that are located along the path. While the particle beam is directed along the path, the particle beam delivers a dose of radiation to the target that exceeds one (1) Gray-per-second for a duration of less than five (5) seconds. A treatment plan may be generated to perform the method.
COLLIMATOR AND ENERGY DEGRADER FOR A PARTICLE THERAPY SYSTEM
An example system includes a particle accelerator to produce a particle beam to treat a patient and a carrier having openings including a first opening and a second opening. The carrier is made of a material that inhibits transmission of the particle beam and the carrier is located between the particle accelerator and the patient. A control system is configured to control movement of the particle beam to the first opening to enable at least part of the particle beam to reach the patient, to change an energy of the particle beam while the particle beam remains stationary at the first opening, and to control movement of the particle beam from the first opening to the second opening. The example system also includes an energy degrader that includes at least some boron carbide.
Particle beam treatment system and method for renewing facilities of particle beam treatment system
To provide a particle beam treatment system and a method for renewing facilities of the particle beam treatment system with which the facilities can be renewed efficiently. A particle beam treatment system 1 includes a charged particle beam generation device 2 that generates a charged particle beam Bm, a first irradiation device 4(1) that irradiates the charged particle beam to a predetermined irradiation target, a first beam transportation device 3(1) that transports the charged particle beam from the charged particle beam generation device 2 to the first irradiation device 4(1), and a first vacuum valve 33(1) that is arranged in the first beam transportation device 3(1).
BEAM IRRADIATION SYSTEM AND CONTROL METHOD THEREOF
Provided is a beam irradiation system and a control method thereof. The beam irradiation system includes: a first irradiation chamber and a second irradiation chamber; a beam generation device to generate a beam and emit the beam to the first or second irradiation chambers; a system control module including a first control sub-module capable of controlling the beam generation device to emit the beam to the first irradiation chamber, and a second control sub-module capable of controlling the beam generation device to emit the beam to the second irradiation chamber; and a beam control module connected between the beam generation device and the system control module. For the first and second control sub-modules, one is capable of controlling the beam generation device through the beam control module when the beam control module is not occupied by the other, such that the same beam irradiation system controls multiple irradiation chambers respectively.
Medical source of neutrons, nuclear reactor for a medical neutron source, and method of application of a medical neutron source
A coolant having a set temperature is fed into the nuclear reactor core of a medical neutron source, which is in a subcritical state. The nuclear reactor core is transitioned from the subcritical state to a critical state until the nominal power of the nuclear reactor is achieved. A neutron output channel is opened in order to conduct a neutron therapy session, and the operation of the reactor is maintained at nominal power while the neutron therapy session is conducted. At the end of the session, the neutron output channel is closed at the same time as the reactor core is transitioned to a subcritical state. The temperature of the coolant entering the core is maintained unchanged and equal to a set temperature, both when the core is transitioned to a critical state and during the operation of the nuclear reactor at nominal power.
Collimator and energy degrader for a particle therapy system
An example system includes a particle accelerator to produce a particle beam to treat a patient and a carrier having openings including a first opening and a second opening. The carrier is made of a material that inhibits transmission of the particle beam and the carrier is located between the particle accelerator and the patient. A control system is configured to control movement of the particle beam to the first opening to enable at least part of the particle beam to reach the patient, to change an energy of the particle beam while the particle beam remains stationary at the first opening, and to control movement of the particle beam from the first opening to the second opening. The example system also includes an energy degrader that includes at least some boron carbide.
Delivery of radiation by column and generating a treatment plan therefor
An example method of treating a target using particle beam includes directing the particle beam along a path at least part-way through the target, and controlling an energy of the particle beam while the particle beam is directed along the path so that the particle beam treats at least interior portions of the target that are located along the path. While the particle beam is directed along the path, the particle beam delivers a dose of radiation to the target that exceeds one (1) Gray-per-second for a duration of less than five (5) seconds. A treatment plan may be generated to perform the method.