IP Library Granted Patent US 9,737,734
Granted Patent B2
US 9,737,734 · App. 15/073,471 · Granted Aug 22, 2017

Charged particle translation slide control apparatus and method of use thereof

Inventors: Susan L. Michaud (Brewster, MA); Stephen L. Spotts (Argyle, TX)
A61N5/1077G21K1/08G21K1/10A61N2005/1087A61N2005/1095A61N2005/1096G21K5/04H01J35/14
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Quick Facts
Patent No.
US 9,737,734
App. No.
15/073,471
Granted
Aug 22, 2017
Kind
B2
Abstract

The invention comprises a system for patient specific control of charged particles in a charged particle beam path using one or more trays inserted into the charged particle beam path, such as at the exit port of a gantry nozzle in close proximity to a tumor of a patient. Each tray holds an insert, such as a patient specific insert for controlling the energy, focus depth, and/or shape of the charged particle beam. Examples of inserts include a range shifter, a compensator, an aperture, a ridge filter, and a blank. Trays in a tray assembly are optionally retracted into an output nozzle of a charged particle cancer treatment system. Optionally and preferably, each tray communicates a held and positioned insert to a main controller of the charged particle cancer therapy system.

Claims (61)

1. A method for adjusting a charged particle beam traversing along a charged particle beam path, comprising the steps of:

providing a charged particle system, comprising:

an accelerator;

a beamline from said accelerator to an output nozzle; and

a tray assembly;

longitudinally retracting said tray assembly along the charged particle beam path into said output nozzle;

inserting a first tray into a first slot of said tray assembly, said first tray configured with a first insert comprising a patient specific charged particle beam adjustment material;

inserting a second tray into a second slot of said tray assembly;

attaching a second insert to said second tray prior to said step of longitudinally retracting;

inserting a third tray into a third slot of said tray assembly;

attaching a third insert to said third tray prior to said step of longitudinally retracting; and

after said step of inserting said third tray, performing said step of longitudinally retracting said tray assembly along the charged particle beam path into said output nozzle, said step of longitudinally retracting further comprising the step of:

prior to operation of said charged particle system, moving said first slot and not said second slot or said third slot of said tray assembly into said output nozzle,

wherein each of said first insert, said second insert, and said third insert comprise any of:

a patient specific range shifter element comprising a standard thickness of a charged particle beam slowing material;

a patient specific ridge filter, comprising a charged particle beam focusing element; and

a patient specific blocking material comprising an aperture therethrough, said blocking material blocking the charged particle beam outside of the aperture.

2. The method of claim 1 , said step of inserting further comprising the steps of:

establishing a first electromechanical connection between a first identifier element, affixed to said first tray, and a first receiver, affixed to said tray assembly; and

said first identifier element communicating at least one property of said first insert to said charged particle system via said first electromechanical connection.

3. The method of claim 2 , said step of communicating further comprising the step of:

identifying a patient specific insert installed in said first tray using information digitally stored in said first identifier.

4. The method of claim 2 , said step of communicating further comprising the step of:

identifying a blank insert installed in said first tray using information digitally stored in said first identifier.

5. The method of claim 2 , said step of communicating further comprising the step of:

identifying all of: occupancy, type of insert, and slot position to a main controller of said charged particle system.

6. The method of claim 1 , said step of longitudinally retracting further comprising the step of:

moving both said first slot and said second slot and not moving said third slot of said tray assembly into a zone circumferentially defined by said output nozzle.

7. A method for adjusting a charged particle beam traversing along a charged particle beam path, comprising the steps of:

providing a charged particle system, comprising:

an accelerator;

a beamline from said accelerator to an output nozzle; and

a tray assembly;

longitudinally retracting said tray assembly along the charged particle beam path into said output nozzle;

inserting a first tray into a first slot of said tray assembly, said first tray configured with a first insert comprising a patient specific charged particle beam adjustment material;

inserting a second tray into a second slot of said tray assembly;

attaching a second insert to said second tray prior to said step of longitudinally retracting;

inserting a third tray into a third slot of said tray assembly;

attaching a third insert to said third tray prior to said step of longitudinally retracting;

after said step of inserting said third tray, performing said step of longitudinally retracting said tray assembly along the charged particle beam path into said output nozzle; and

said step of longitudinally retracting said tray assembly substantially removing steric limitation of said tray assembly between said output nozzle and a patient,

wherein each of said first insert, said second insert, and said third insert comprise any of:

a patient specific range shifter element comprising a standard thickness of a charged particle beam slowing material;

a patient specific ridge filter, comprising a charged particle beam focusing element; and

a patient specific blocking material comprising an aperture therethrough, said blocking material blocking the charged particle beam outside of the aperture.

8. The method of claim 2 , said step of communicating further comprising the step of:

directly communicating with a main controller of said charged particle system without communication through a sub-assembly not directly in communication with said main controller.

9. An apparatus for adjusting a charged particle beam traversing a charged particle beam path, comprising:

a charged particle system, comprising:

an accelerator;

a beamline from said accelerator to an output nozzle; and

a tray assembly longitudinally retractable along the charged particle beam path into said output nozzle; and

a first tray insertable into a first slot of said tray assembly, said first tray configured with a patient specific charged particle beam adjustment insert during use; and

a second patient specific tray insertable into a second slot of said tray assembly,

wherein said first slot comprises a first height at least ten percent larger than said second slot, wherein a difference in slot height removes errors associated with a first tray intended for said first slot being inserted into said second slot.

10. The apparatus of claim 9 , further comprising:

a third patient specific tray insertable into a third slot of said tray assembly.

11. The apparatus of claim 10 , said first slot further comprising:

a radial orientation:

relative to the charged particle beam path through said output nozzle; and

for insertion of said first patient specific tray.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2023
From: MICHAUD, SUSAN L; SPOTTS, STEPHEN L
To: PROTOM INTERNATIONAL HOLDING CORPORATION
Reel/Frame 062373/0388 →
Continuity (14)
Continuation In Part 14860577 · Sep 21, 2015
Continuation 14223289 · Mar 24, 2014
Continuation In Part 14216788 · Mar 17, 2014
Continuation In Part 13572542 · Aug 10, 2012
Continuation In Part 12425683 · Apr 17, 2009
Continuation In Part 15073471
Continuation In Part 12687387 · Jan 14, 2010
Continuation In Part 12425683
Continuation In Part 15073471
Continuation In Part 12985039 · Jan 5, 2011
Provisional Application 61055395 · May 22, 2008
Provisional Application 61308621 · Feb 26, 2010
Provisional Application 62304839 · Mar 7, 2016
Related Publication 20160199670A1 · Jul 14, 2016