Patents Assigned to Mevion Medical Systems, Inc.
  • Patent number: 9185789
    Abstract: An example particle accelerator includes a coil to provide a magnetic field to a cavity; a cryostat comprising a chamber for holding the coil, where the coil is arranged in the chamber to define an interior region of the coil and an exterior region of the coil; magnetic structures adjacent to the cryostat, where the magnetic structures have one or more slots at least part-way therethrough; and one or more magnetic shims in one or more corresponding slots. The one or more magnetic shims are movable to adjust a position of the coil by changing a magnetic field produced by the magnetic structures.
    Type: Grant
    Filed: September 27, 2013
    Date of Patent: November 10, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, Jan Van der Laan, Kenneth P. Gall, Stanislaw P. Sobczynski
  • Patent number: 9155186
    Abstract: An example particle accelerator may include the following: a voltage source to sweep a radio frequency (RF) voltage in a cavity to accelerate particles from a plasma column, where the cavity has a magnetic field causing particles accelerated from the plasma column to move orbitally within the cavity, and where the magnetic field has flux that bows at edges of the cavity; a regenerator to provide a magnetic field bump within the cavity to thereby change successive orbits of the particles accelerated from the plasma column so that, eventually, particles output to an extraction point, where the regenerator is located at a radius in the cavity relative to the plasma column; and ferromagnetic arrangements located in the cavity proximate to the radius, where each ferromagnetic arrangement provides a magnetic field bump, and where ferromagnetic arrangements adjacent to the regenerator are separated from the regenerator by a space.
    Type: Grant
    Filed: September 27, 2013
    Date of Patent: October 6, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, Kenneth P. Gall, Jan Van der Laan, Charles D. O'Neal, III, Ken Yoshiki Franzen
  • Publication number: 20150231411
    Abstract: An example particle therapy system includes: a particle accelerator to output a beam of charged particles; and a scanning system to scan the beam across at least part of an irradiation target. An example scanning system includes: a scanning magnet to move the beam during scanning; and a control system (i) to control the scanning magnet to produce uninterrupted movement of the beam over at least part of a depth-wise layer of the irradiation target so as to deliver doses of charged particles to the irradiation target; and (ii) to determine, in synchronism with delivery of a dose, information identifying the dose actually delivered at different positions along the depth-wise layer.
    Type: Application
    Filed: February 20, 2014
    Publication date: August 20, 2015
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Charles D. O'Neal, III, Adam C. Molzahn
  • Publication number: 20150174429
    Abstract: A particle therapy system includes a particle accelerator to output a particle beam; and a scanning system for the particle accelerator to scan the particle beam across at least part of an irradiation target. The scanning system is configured to scan the particle beam in two dimensions that are at an angle relative to a direction of the particle beam. A structure defines an edge. The structure is controllable to move in the two dimensions relative to the irradiation target such that at least part of the structure is between at least part of the particle beam and the irradiation target. The structure includes a material that inhibits transmission of the particle beam.
    Type: Application
    Filed: December 20, 2013
    Publication date: June 25, 2015
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, Mark R. Jones
  • Patent number: 8970137
    Abstract: A synchrocyclotron includes magnetic structures to provide a magnetic field to a cavity, a particle source to provide a plasma column to the cavity, where the particle source has a housing to hold the plasma column, and where the housing is interrupted at an acceleration region to expose the plasma column, and a voltage source to provide a radio frequency (RF) voltage to the cavity to accelerate particles from the plasma column at the acceleration region.
    Type: Grant
    Filed: November 8, 2013
    Date of Patent: March 3, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Gerrit Townsend Zwart
  • Patent number: 8952634
    Abstract: A synchrocyclotron comprises a resonant circuit that includes electrodes having a gap therebetween across the magnetic field. An oscillating voltage input, having a variable amplitude and frequency determined by a programmable digital waveform generator generates an oscillating electric field across the gap. The synchrocyclotron can include a variable capacitor in circuit with the electrodes to vary the resonant frequency. The synchrocyclotron can further include an injection electrode and an extraction electrode having voltages controlled by the programmable digital waveform generator. The synchrocyclotron can further include a beam monitor. The synchrocyclotron can detect resonant conditions in the resonant circuit by measuring the voltage and or current in the resonant circuit, driven by the input voltage, and adjust the capacitance of the variable capacitor or the frequency of the input voltage to maintain the resonant conditions.
    Type: Grant
    Filed: October 22, 2009
    Date of Patent: February 10, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Alan Sliski, Kenneth Gall
  • Patent number: 8941083
    Abstract: An apparatus includes a yoke having a first end and a second end. The yoke is configured to hold a device that includes an aperture and a range compensation structure. A catch arm is pivotally secured to the first end of the yoke. The catch arm includes a locking feature. The locking feature and the second end of the yoke interface, respectively, to a first retention feature and a second retention feature defined by the aperture and the range compensation structure. The locking feature is configured to interface to the first retention feature and the second end of the yoke is configured to interface to the second retention feature.
    Type: Grant
    Filed: August 18, 2011
    Date of Patent: January 27, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: James M. Stark, Stanley J. Rosenthal, Miles S. Wagner, Michael J. Ahearn
  • Patent number: 8933650
    Abstract: A synchrocyclotron includes magnetic structures that define a resonant cavity, a source to provide particles to the resonant cavity, a voltage source to provide radio frequency (RF) voltage to the resonant cavity, a phase detector to detect a difference in phase between the RF voltage and a resonant frequency of the resonant cavity that changes over time, and a control circuit, responsive to the difference in phase, to control the voltage source so that a frequency of the RF voltage substantially matches the resonant frequency of the resonant cavity.
    Type: Grant
    Filed: November 30, 2007
    Date of Patent: January 13, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Charles D. O'Neal, III, Adam C. Molzahn, John J. Vincent
  • Patent number: 8927950
    Abstract: An example particle accelerator includes the following: a resonant cavity in which particles are accelerated, where the resonant cavity has a background magnetic field having a first shape; and an extraction channel for receiving particles output from the resonant cavity. The extraction channel comprises a series of focusing regions to focus a beam of received particles. At least one of the focusing regions is a focusing element configured to alter a shape of the background magnetic field to a second shape that is substantially opposite to the first shape in the presence of a magnetic field gradient resulting from reduction of the background magnetic field from the resonant cavity to the extraction channel.
    Type: Grant
    Filed: September 27, 2013
    Date of Patent: January 6, 2015
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Gerrit Townsend Zwart, Jan Van der Laan, Charles D. O'Neal, III, Ken Yoshiki Franzen
  • Patent number: 8916843
    Abstract: A system includes a patient support and an outer gantry on which an accelerator is mounted to enable the accelerator to move through a range of positions around a patient on the patient support. The accelerator is configured to produce a proton or ion beam having an energy level sufficient to reach a target in the patient. An inner gantry includes an aperture for directing the proton or ion beam towards the target.
    Type: Grant
    Filed: June 25, 2012
    Date of Patent: December 23, 2014
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Kenneth Gall, Stanley Rosenthal, Gordon Row, Michael Ahearn
  • Patent number: 8907311
    Abstract: A system includes a patient support and an outer gantry on which an accelerator is mounted to enable the accelerator to move through a range of positions around a patient on the patient support. The accelerator is configured to produce a proton or ion beam having an energy level sufficient to reach a target in the patient. An inner gantry includes a robotic arm capable of directing an aperture for directing the proton or ion beam towards the target.
    Type: Grant
    Filed: November 22, 2011
    Date of Patent: December 9, 2014
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Kenneth Gall, Stanley Rosenthal, Gordon Row, Michael Ahearn
  • Patent number: 8791656
    Abstract: An example particle accelerator includes a magnet to generate a magnetic field, where the magnet includes first superconducting coils to pass current in a first direction to thereby generate the first magnetic field, and where the first magnetic field is at least 4 Tesla (T). The example particle accelerator also includes an active return system including second superconducting coils. Each of the second superconducting coils surrounds, and is concentric with, a corresponding first superconducting coil. The second superconducting coils are for passing current in a second direction that is opposite to the first direction to thereby generate a second magnetic field having a magnetic field of at least 2.5 T. The second magnetic field has a polarity that is opposite to a polarity of the first magnetic field.
    Type: Grant
    Filed: May 31, 2013
    Date of Patent: July 29, 2014
    Assignee: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, James Cooley
  • Publication number: 20140094371
    Abstract: An example particle accelerator includes a coil to provide a magnetic field to a cavity; a cryostat comprising a chamber for holding the coil, where the coil is arranged in the chamber to define an interior region of the coil and an exterior region of the coil; magnetic structures adjacent to the cryostat, where the magnetic structures have one or more slots at least part-way therethrough; and one or more magnetic shims in one or more corresponding slots. The one or more magnetic shims are movable to adjust a position of the coil by changing a magnetic field produced by the magnetic structures.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, Jan Van der Laan, Kenneth P. Gall, Stanislaw P. Sobczynski
  • Publication number: 20140094641
    Abstract: An example particle accelerator includes the following: a resonant cavity in which particles are accelerated, where the resonant cavity has a background magnetic field having a first shape; and an extraction channel for receiving particles output from the resonant cavity. The extraction channel comprises a series of focusing regions to focus a beam of received particles. At least one of the focusing regions is a focusing element configured to alter a shape of the background magnetic field to a second shape that is substantially opposite to the first shape in the presence of a magnetic field gradient resulting from reduction of the background magnetic field from the resonant cavity to the extraction channel.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Gerrit Townsend Zwart, Jan Van der Laan, Charles D. O'Neal, III, Ken Yoshiki Franzen
  • Publication number: 20140094640
    Abstract: An example particle accelerator includes the following: a voltage source to provide a radio frequency (RF) voltage to a cavity to accelerate particles from a plasma column, where the cavity has a magnetic field causing particles accelerated from the plasma column to move orbitally within the cavity; an extraction channel to receive the particles accelerated from the plasma column and to output the received particles from the cavity; and a regenerator to provide a magnetic field bump within the cavity to thereby change successive orbits of the particles accelerated from the plasma column so that, eventually, particles output to the extraction channel. The magnetic field is at least 6 Tesla and the magnetic field bump is at most 2 Tesla.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Gerrit Townsend Zwart, Jan Van der Laan, Charles D. O'Neal, III, Ken Yoshiki Franzen
  • Publication number: 20140091734
    Abstract: An example particle therapy system includes a particle accelerator to output a particle beam, where the particle accelerator includes: a particle source to provide pulses of ionized plasma to a cavity, where each pulse of the particle source has a pulse width corresponding to a duration of operation of the particle source to produce the corresponding pulse, and where the particle beam is based on the pulses of ionized plasma; and a modulator wheel having different thicknesses, where each thickness extends across a different circumferential length of the modulator wheel, and where the modulator wheel is arranged to receive a precursor to the particle beam and is configured to create a spread-out Bragg peak for the particle beam
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Stanley Rosenthal, Thomas C. Sobczynski, Adam C. Molzahn
  • Publication number: 20140094638
    Abstract: In an example, a synchrocyclotron includes a particle source to provide pulses of ionized plasma to a cavity; a voltage source to provide a radio frequency (RF) voltage to the cavity to accelerate particles from the plasma column outwardly; and an extraction channel to receive a beam of particles from the cavity for output from the particle accelerator. The particle source is configured to control pulse widths of the ionized plasma in order to control an intensity of the beam of particles. This example synchrocyclotron may include one or more of the following features, either alone or in combination.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Gerrit Townsend Zwart, Jan Van der Laan, Adam C. Molzahn, Charles D. O'Neal, III, Thomas C. Sobczynski, James Cooley
  • Publication number: 20140094639
    Abstract: An example particle accelerator includes a coil to provide a magnetic field to a cavity; a particle source to provide a plasma column to the cavity; a voltage source to provide a radio frequency (RF) voltage to the cavity to accelerate particles from the plasma column, where the magnetic field causes particles accelerated from the plasma column to move orbitally within the cavity; an enclosure containing an extraction channel to receive the particles accelerated from the plasma column and to output the received particles from the cavity; and a structure arranged proximate to the extraction channel to change an energy level of the received particles.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, Kenneth P. Gall, Jan Van der Laan, Stanley Rosenthal, Michael Busky, Charles D O'Neal, III, Ken Yoshiki Franzen
  • Publication number: 20140094643
    Abstract: An example particle therapy system includes the following: a gantry that is rotatable relative to a patient position; a particle accelerator mounted to the gantry, where the particle accelerator is for outputting a particle beam essentially directly to the patient position; and a control system to receive a prescription and to generate machine instructions for configuring one or more operational characteristics of the particle therapy system. At least one of the operational characteristics relates to a rotational angle of the gantry relative to the patient position.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Kenneth P. Gall, Stanley Rosenthal, Thomas C. Sobczynski, Adam C. Molzahn, Charles D. O'Neal, III, James Cooley
  • Publication number: 20140094637
    Abstract: An example particle accelerator may include the following: a voltage source to sweep a radio frequency (RF) voltage in a cavity to accelerate particles from a plasma column, where the cavity has a magnetic field causing particles accelerated from the plasma column to move orbitally within the cavity, and where the magnetic field has flux that bows at edges of the cavity; a regenerator to provide a magnetic field bump within the cavity to thereby change successive orbits of the particles accelerated from the plasma column so that, eventually, particles output to an extraction point, where the regenerator is located at a radius in the cavity relative to the plasma column; and ferromagnetic arrangements located in the cavity proximate to the radius, where each ferromagnetic arrangement provides a magnetic field bump, and where ferromagnetic arrangements adjacent to the regenerator are separated from the regenerator by a space.
    Type: Application
    Filed: September 27, 2013
    Publication date: April 3, 2014
    Applicant: Mevion Medical Systems, Inc.
    Inventors: Gerrit Townsend Zwart, Kenneth P. Gall, Jan Van der Laan, Charles D. O'Neal, III, Ken Yoshiki Franzen