IP Library Granted Patent US 8,553,835
Granted Patent B2
US 8,553,835 · App. 12/999,657 · Granted Oct 8, 2013

Computed tomography scanners, x-ray filters and methods thereof

Inventors: Thomas N. Hangartner (Dayton, OH); Sangeetha Alladi (Beavercreek, OH)
Assignee: Wright State University
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Quick Facts
Patent No.
US 8,553,835
App. No.
12/999,657
Granted
Oct 8, 2013
Kind
B2
Abstract

A computed tomography scanner may include a component mounting assembly, an x-ray tube, a filter assembly, and a detector assembly. The filter assembly filters an x-ray fan or cone beam generated by the x-ray tube such that the x-ray beam comprises a high dose portion and one or more low dose portions. The filter assembly reduces the photon count of the low dose portions. The x-ray tube may be coupled to the component mounting assembly at a first end and the detector assembly coupled at a second end that is opposite from the first end. The component mounting assembly is rotatable about a rotation axis. The detector assembly includes an array of individual detector elements capable of detecting x-ray photons of the x-ray beam. The high dose portion strikes a high resolution region of the detector assembly and the low dose portion strikes a low resolution region of the detector assembly.

Claims (74)

1. A computed tomography scanner comprising a component mounting assembly, an x-ray tube, a filter assembly, and a detector assembly, wherein:

the x-ray tube is operable to radiate x-ray photons within an x-ray beam toward the detector assembly;

the x-ray tube is coupled to the component mounting assembly at a first end, and the detector assembly is couple to the component mounting assembly at a second end that is opposite from the first end;

the component mounting assembly is rotatable such that the x-ray tube and the detector assembly are rotatable about a rotation axis within a central opening of the component mounting assembly;

the filter assembly is positioned in a path of the x-ray beam and comprises an x-ray filter with a first filter element and a second filter element and configured to pass x-ray photons propagating toward the detector assembly within a high dose portion of the x-ray beam, and reduce the number of x-ray photons propagating toward the detector assembly in one or more low dose portions of the x-ray beam,

a filter enclosure defining a recess, an x-ray shield component and a filter lid,

the first and second filter elements are slidably positioned within the recess such that a size of the high dose portion of the x-ray beam is defined by a distance of the first filter element from the second filter element,

the x-ray shield component is positioned within the recess, and comprises an x-ray absorbing material that defines an opening through which x-ray photons of the x-ray beam may pass toward the detector assembly, and

the filter lid is coupled to the filter enclosure and comprises a corresponding opening that is aligned with the opening of the x-ray shield component when the filter lid is coupled to the filter enclosure; and

the detector assembly comprises an array of detector elements capable of detecting x-ray photons of the x-ray beam, and configured such that the high dose portion of the x-ray beam strikes a high resolution region of the detector assembly and the one or more low dose portions of the x-ray beam strike one or more low resolution regions of the detector assembly.

2. A computed tomography scanner as claimed in claim 1 wherein a resolution of the high resolution region of the detector assembly is six times as great as a resolution of the low resolution region of the detector assembly, and the x-ray filter is configured such that a photon count in the high dose portion of the x-ray beam is six times as great as a photon count in the low dose portion of the x-ray beam.

3. A computed tomography scanner as claimed in claim 1 wherein the opening of the x-ray shield component is a slit operable to define a shape of the x-ray beam.

4. A computed tomography scanner as claimed in claim 1 wherein the x-ray filter is adjustable to increase and decrease a size of the high dose portion of the x-ray beam.

5. A computed tomography scanner as claimed in claim 1 wherein:

the first filter element and the second filter element are positioned in a filter plane; and

a position of the first filter element and a position of the second filter element is adjustable such that a size of the high dose portion of the x-ray beam is adjustable.

6. A computed tomography scanner as claimed in claim 1 wherein:

the x-ray beam comprises a first low dose portion and a second low dose portion;

the high dose portion of the x-ray beam comprises a high dose fan angle and is located between the first and second low dose portions;

the high dose portion of the x-ray beam is configured to pass through a high interest region within an object, the first low dose portion of the x-ray beam is configured to pass through a first low interest region within the object, and the second low dose portion of the x-ray beam is configured to pass through a second low interest region within the object;

the detector assembly comprises a high resolution region, a first low resolution region, and a second low resolution region;

the detector assembly is positioned on the component mounting assembly such that the high dose portion of the x-ray beam strikes the high resolution region, the first low dose portion of the x-ray beam strikes the first low resolution region, and the second low dose portion of the x-ray beam strikes the second low resolution region; and

the component mounting assembly is operable to rotate about the object by at least 180 degrees plus the high dose fan angle.

7. A computed tomography scanner as claimed in claim 6 wherein:

the computed tomography scanner further comprises a processor module;

each of the individual detector elements is configured to provide a plurality of signals to the processor module corresponding to the number of x-ray photons detected; and

the processor module is configured to receive the signals from the individual detector elements and reconstruct one or more computed tomography images from the received signals.

8. A computed tomography scanner as claimed in claim 1 wherein:

the x-ray beam comprises a single low dose portion and the detector assembly comprises a high resolution region and a single low resolution region;

the high dose portion of the x-ray beam is configured to pass through a high interest region within an object, and the single low dose portion of the x-ray beam is configured to pass through a low interest region within the object;

the detector assembly is positioned on the component mounting assembly such that the high dose portion of the x-ray beam strikes the high resolution region and the single low dose portion of the x-ray beam strikes the single low resolution region; and

the component mounting assembly is operable to rotate approximately 360 degrees about the object.

9. A computed tomography scanner as claimed in claim 8 wherein:

the computed tomography scanner further comprises a processor module;

each of the individual detector elements is configured to provide a plurality of signals to the processor module corresponding to the number of x-ray photons detected; and

the processor module is configured to receive the signals from the individual detector elements and reconstruct one or more computed tomography images from the received signals.

10. A computed tomography scanner as claimed in claim 1 wherein:

the computed tomography scanner further comprises a base having a pedestal;

the component mounting assembly comprises a rotating plate rotatably coupled to the pedestal and a translating plate moveably coupled to the rotating plate such that the translating plate is moveable in a translating axis; and

the translating plate is configured to concurrently translate along the translation axis while the rotating plate rotates about the rotation axis such that the high dose portion of the x-ray beam passes substantially through an eccentrically located high interest region within an object positioned within the path of the x-ray beam.

11. An x-ray filter assembly for use in a computed tomography scanner comprising an x-ray filter and an x-ray shield component, wherein:

the x-ray filter comprises:

a first filter element,

a second filter element,

a filter enclosure defining a recess and a filter lid,

the filter lid is coupled to the filter enclosure and comprises a corresponding opening that is aligned with an opening of the x-ray shield component and a filter opening when the filter lid is coupled to the filter enclosure,

the first and second filter elements are slidably positioned within the recess such that a size of the filter opening is defined by a distance of the first filter element from the second filter element, and

the x-ray shield component is positioned within the recess in a plane in front of or behind the first and second filter elements;

the x-ray shield component comprises an x-ray absorbing material that prevents passage of x-ray photons and defines an opening through which x-ray photons may pass such that the x-ray shield component shapes an x-ray beam comprising the x-ray photons that pass through the opening;

the x-ray filter comprises the filter opening and a filter portion, and is positioned in front of or behind the x-ray shield component along a path of the x-ray beam; and

the x-ray filter is configured to allow x-ray photons propagating toward a detector assembly to pass through the filter opening to form a high dose portion of the x-ray beam, and reduce a number of x-ray photons propagating toward the detector assembly through the filter portion to form one or more low dose portions of the x-ray beam.

12. An x-ray filter assembly as claimed in claim 11 wherein the filter opening of the x-ray filter is adjustable to increase and decrease the size of the high dose portion of the x-ray beam.

13. An x-ray filter assembly as claimed in claim 11 wherein:

the first filter element and the second filter element are positioned in a filter plane; and

a position of the first filter element and a position of the second filter element is adjustable such that the size of the filter opening and the high dose portion of the x-ray beam is adjustable.

14. A method of generating a computed tomography image of an object comprising:

generating an x-ray beam with an x-ray tube, wherein the x-ray beam comprises a plurality of x-ray photons propagating toward a detector assembly;

filtering the x-ray beam with a filter assembly such that the x-ray beam comprises at least one high dose portion and at least one low dose portion, wherein the high dose portion propagates toward the detector assembly through a high interest region within the object, and the low dose portion has a lower a number of x-ray photons than the high dose portion and propagates toward the detector assembly through a low interest region within the object, the filter assembly comprising:

a first filter element,

a second filter element,

a filter enclosure defining a recess and a filter lid,

the first and second filter elements are slidably positioned within the recess such that a size of a filter opening is defined by a distance of the first filter element from the second filter element,

an x-ray shield component is positioned within the recess in a plane in front of or behind the first and second filter elements, and

the filter lid is coupled to the filter enclosure and comprises a corresponding opening that is aligned with an opening of the x-ray shield component and the filter opening when the filter lid is coupled to the filter enclosure;

rotating the x-ray tube and the detector assembly about the object;

detecting x-ray photons of the high dose portion of the x-ray beam in a high resolution region of the detector assembly and detecting x-ray photons of the low dose portion of the x-ray beam in a low resolution region of the detector assembly; and

constructing the computed tomography image from the detected x-ray photons of the detector assembly.

15. A method as claimed in claim 14 wherein the method further comprises concurrently translating the x-ray tube and the detector assembly such that the high dose portion of the x-ray beam passes substantially through an eccentrically located high interest region.

16. A method as claimed in claim 14 wherein:

the x-ray beam is filtered such that the at least one low dose region of the x-ray beam comprises a first low dose region and a second low dose region, and the at least one high dose region of the x-ray beam comprises a single high dose region having a fan angle and is located between the first and second low dose regions; and

the method further comprises rotating the x-ray tube and the detector assembly about the object by at least 180 degrees plus the high dose fan angle.

17. A method as claimed in claim 14 wherein:

the x-ray beam is filtered such that the at least one low dose region of the x-ray beam comprises a single low dose region and the at least one high dose region of the x-ray beam comprises a single high dose region; and

the method further comprises rotating the x-ray tube and the detector assembly approximately 360 degrees about the object.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 6, 2011
From: HANGARTNER, THOMAS N.; ALLADI, SANGEETHA
To: WRIGHT STATE UNIVERSITY
Reel/Frame 026080/0313 →
Continuity (2)
Provisional Application 61073541 · Jun 18, 2008
Related Publication 20110261926A1 · Oct 27, 2011