Imaging system rotating component alignment with iso-center
09848837 · 2017-12-26
Assignee
Inventors
- Rosemarie Sheridan (Mayfield Village, OH, US)
- Samuel Andreas Johanson (Cleveland Heights, OH, US)
- Joshua Samuel Sapp (Chardon, OH, US)
Cpc classification
F16C33/586
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B6/4291
HUMAN NECESSITIES
F16C35/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B6/4429
HUMAN NECESSITIES
A61B6/4435
HUMAN NECESSITIES
F16C2316/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An imaging system (100) includes an annular bearing (404) with an iso-center (406). The annular bearing includes a stationary side (404.sub.1) and a rotatable side (404.sub.2) with at least one alignment feature (420). The imaging system further includes a rotating gantry (410) mechanically coupled to the rotatable side. The imaging system further includes an imaging component (412, 416, 418). The imaging components includes at least one complementary alignment feature (602, 804) that is complementary to the at least one alignment feature (420, 802, 1200) of the rotatable side. The rotating gantry is between the imaging component and the rotatable side, and the imaging component is aligned with the iso-center through the at least one alignment feature and the at least one complementary alignment feature.
Claims
1. An imaging system, comprising: an annular bearing with an iso-center, the annular bearing including: a stationary side; and a rotatable side with at least one alignment feature; a rotating gantry mechanically coupled to the rotatable side; and an imaging component, including: at least one complementary alignment feature that is complementary to the at least one alignment feature of the rotatable side, wherein the rotating gantry is between the imaging component and the rotatable side, and the imaging component is aligned with the iso-center through the at least one alignment feature and the at least one complementary alignment feature.
2. The imaging system of claim 1, wherein the imaging component is not mechanically fastened to the rotating gantry.
3. The imaging system of claim 1, wherein the imaging component is mechanically fastened to the rotatable side.
4. The imaging system of claim 3, wherein the imaging component is fastened through the at least one alignment feature.
5. The imaging system of claim 4, further comprising: an alignment device, wherein the imaging component is aligned and fastened via the alignment device, which physically engages both the at least one alignment feature and the at least one complementary alignment feature.
6. The imaging system of claim 5, wherein the alignment device includes a screw or a bolt.
7. The imaging system of claim 5, wherein the alignment device includes at least two sub-alignment devices.
8. The imaging system of claim 5, wherein the alignment device includes a single alignment device.
9. The imaging system of claim 1, further comprising: an alignment device, wherein the alignment device extends through both the at least one alignment feature and the at least one complementary alignment feature to align the rotating gantry and the imaging component.
10. The imaging system of claim 9, wherein the imaging component is mechanically fastened to the rotating gantry.
11. The imaging system of claim 10, wherein the alignment device remains in the at least one alignment feature and the at least one complementary alignment feature to align the rotating gantry and the imaging component after the imaging component is mechanically fastened to the rotating gantry.
12. The imaging system of claim 10, wherein the alignment device is removed from the at least one alignment feature and the at least one complementary alignment feature to align the rotating gantry and the imaging component after the imaging component is mechanically fastened to the rotating gantry.
13. The imaging system of claim 1, wherein the imaging component includes at least one of a detection system, a radiation source or a collimator.
14. The imaging system of claim 1, wherein the alignment feature provides a mechanical stop such that when the complementary alignment feature is held aligned therewith, the imaging component is held aligned with the iso-center and is inhibited from translating and rotating.
15. A method, comprising: providing at least a sub-portion of an imaging system in which at least a detection system of the sub-portion is spatially aligned with and rotates with a rotating portion of an annular bearing of the sub-portion such that the detection system is spatially aligned with an iso-center of the rotating portion, and wherein a rotating gantry of the sub-portion is between the detection system and the rotating portion, and the detection system is automatically spatially aligned with the iso-center when the detection system is fastened to the rotating portion through a fastening device.
16. The method of claim 15, wherein the detection system is not fastened to the rotating gantry.
17. The method of claim 15, wherein the detection system is also fastened to the rotating gantry.
18. The method of claim 15, wherein the rotating gantry does not affect the alignment of the detection system and the rotating portion.
19. An imaging system, comprising: an annular bearing with an iso-center, the annular bearing including: a stationary side; and a rotatable side with at least one alignment feature; a rotating gantry mechanically coupled to the rotatable side; an imaging component, including: at least one complementary alignment feature that is complementary to the at least one alignment feature of the rotatable side; and an alignment device, wherein the rotating gantry is between the imaging component and the rotatable side, and the imaging component is automatically spatially aligned with the iso-center when the alignment device is installed concurrently in both the at least one alignment feature and the at least one complementary alignment feature.
Description
(1) The invention may take form in various components and arrangements of components, and in various steps and arrangements of steps. The drawings are only for purposes of illustrating the preferred embodiments and are not to be construed as limiting the invention.
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(16) Referring to
(17) An annular bearing 404 includes a first bearing sub-portion 404.sub.1 and a second bearing sub-portion 404.sub.2, and defines an iso-center 406 (or a center of the annular bearing 404). The first bearing sub-portion 404.sub.1 is mechanically fixed at a static location within the stationary gantry 402. The second bearing sub-portion 404.sub.2 is rotatably coupled to the first bearing sub-portion 404.sub.1 and rotates an examination region 408 about a longitudinal or z-axis. The bearing 404 can be a ball bearing, an air bearing, and/or other bearing.
(18) A rotating gantry 410 is mounted to the second bearing sub-portion 404.sub.2. A detection system 412, including a radiation sensitive detector array 414, is mounted to the second bearing sub-portion 404.sub.2 and/or the rotating gantry 410. A radiation source 416 and a collimator 418 are located opposite the detection system 412, across from the examination region 408. The radiation source 416 emits radiation that is collimated by the collimator 418 and detected by the detection system 412, which generates projection data indicative thereof
(19) As described in greater detail below, the second bearing sub-portion 404.sub.2 includes at least one alignment feature 420, which is used to spatially align at least one component (e.g., the detection system 412, the radiation source 416, the collimator 418 and/or other component(s)) with respect to the iso-center 406. For explanatory purposes, clarity, and sake of brevity, one alignment feature 420 is shown in
(20) Generally, the alignment feature 420 provides a mechanical stop such that when a complementary alignment feature of a component (e.g., the detection system 412, the radiation source 416, etc.) being aligned with the second sub-portion of the bearing 404.sub.2 and the iso-center 406 engages the alignment feature 420, the component is not free to translates or rotate, and is accurately held at a pre-determined alignment position. At this position, the component can be affixed to the second sub-portion of the bearing 404.sub.2 and/or other structure of the system 400. It is to be appreciated that the feature 420 on the second bearing sub-portion 404.sub.2 allows for aligning a component with the bearing 404, and not the rotating gantry 410, which allows for removing the rotating gantry 410 from the tolerance stack up chain. In this way there is substantially less inherent misalignment, which may become more critical as the detection system pixel size becomes smaller. In addition, removing the tight machining tolerances on the rotating gantry 410 may decrease the cost of the rotating gantry 410 and the overall system by allowing for the use of components with less inherent accuracy.
(21) A patient support 422, such as a couch, supports an object or subject in the examination region 408. The support 422 is configured to move the object or subject for loading, scanning, and/or unloading the object or subject. A computing system or computer serves as an operator console 424. The console 424 allows an operator to control operation of the system 400. A reconstructor 426 reconstructs the projection data and generates reconstructed volumetric image data indicative thereof.
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(23) In this embodiment, the alignment feature 420 includes N sub-alignment features 420.sub.1, . . . , 420.sub.N. In the illustrated embodiment, a first sub-alignment feature 420.sub.1 is located on one side of the iso-center 406 and a second sub-alignment feature 420.sub.N is located on an opposing side of the iso-center 406. In a variation, the sub-alignment features 420.sub.1 and 420.sub.N are located on the same side of the iso-center 406. The illustrated location is not limiting.
(24) The detection system 412 includes complementary alignment features, including a first complementary alignment feature 602.sub.1 and a second complementary alignment feature 602.sub.N. In the illustrated examples, the first and second sub-alignment features 420.sub.1 and 420.sub.N and the first and second complementary alignment features 602.sub.1 and 602.sub.N are accurately machined holes, which spatially align with each other, and when aligned with each other, align the detection system 412 with the iso-center 406.
(25) As shown in
(26) An alignment device 608, when installed in the machined holes 420.sub.1, 420.sub.N, 602.sub.1 and 602.sub.N aligns the detection system 412 with the iso-center 406, or center of the second portion of the bearing 404.sub.2. The illustrated device 602 includes a fastener such as a screw, a bolt, a rivet, etc., which mechanically engages the holes 420.sub.1, 420.sub.N, 602.sub.1 and 602.sub.N and physically fastens the second sub-portion of the bearing 404.sub.2 and the detection system 412 together. The device 608 may install from the second portion of the bearing 404.sub.2 or the detection system 412 side.
(27) In
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(29) Returning to
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(31) With this variation, the detection system 412 would first be aligned to the second sub-portion of the bearing 404.sub.2 using the holes 420.sub.1, 420.sub.N, 602.sub.1 and 602.sub.N and the device 608. Then, the detection system 412 is mechanically coupled through the mounting features 702 and 704 (e.g., with a bolt, a screw, a rivet, etc.) to the rotating gantry 410. In this embodiment, the device 608 is a pin, rod, or the like. The pins or rods can remain in the holes 420.sub.1, 420.sub.N, 602.sub.1 and 602.sub.N or be removed (as shown).
(32) The latter may facilitate achieving a more uniform bearing load, which may facilitate preserving bearing life. With this embodiment, since the components are aligned to each other accurately through the at least two features 420.sub.1 and 420.sub.2, the mounting features 702 and 704 can be less accurate, relative to a configuration in which the features 702 and 704 are also used to align the components. The rotating gantry 410 is of course mechanically mounted to the second sub-portion of the bearing 404.sub.2.
(33) In a variation, the detection system 412 can be mounted to both the second sub-portion of the bearing 404.sub.2 and the rotating gantry 410. In this variation and/or in one or more other embodiments disclosed herein, the detection system 412 can be mounted to the second sub-portion of the bearing 404.sub.2 through a mechanism other that the alignment feature 420, or through the alignment feature 420 and at least one additional mechanism.
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(35) In another variation,
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(37) The feature 1200 includes a first elongate member 1202 that extends horizontally and a second elongate member 1204 that extends vertically (with reference to the illustrated orientation). The first member 1202 has a first end 1206 and a second end 1208, and the second member 1204 has a first end 1210 and a second end 1212. In
(38) As discussed herein, the alignment feature 1200 provides a mechanical stop such that when a complementary feature of a component (e.g., the detection system 412, the radiation source 416, etc.) being aligned with the second sub-portion of the bearing 404.sub.2 and the iso-center 406 engages the alignment feature 1200, the component is not free to translates or rotate, but maintained at a particular pre-determined location. In this example, the member 1202 and 1204, in combination, inhibit translation and rotation, when engages with complementary members of a component being aligned with the iso-center 406.
(39) It is to be understood that the geometry of the illustrated single alignment feature 1200 is not limiting. For example, in other instances the members 1202 and 1204 may be curved, irregular, etc. Furthermore, the single alignment feature 1200 may include more than two members.
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(41) It is to be appreciated that the ordering of the acts is not limiting. As such, other orderings are contemplated herein. In addition, one or more acts may be omitted and/or one or more additional acts may be included.
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(43) At 1302, a bearing for a rotating gantry of an imaging system is obtained.
(44) At 1304, the bearing is mounted to a stationary portion frame of the imaging system. The bearing includes a stationary portion and a rotatable portion.
(45) At 1306, a rotatable frame is mounted to the rotatable portion of the bearing.
(46) At 1308, a detection system is aligned with iso-center of the bearing via alignment features of the bearing and complementary alignment features of the detection system. One or more other components can also be aligned as such.
(47) At 1310, the detection system is mounted to the bearing via the alignment features and the complementary alignment features.
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(49) At 1402, a bearing for a rotating gantry of an imaging system is obtained.
(50) At 1404, the bearing is mounted to a stationary portion frame of the imaging system. The bearing includes a stationary portion and a rotatable portion.
(51) At 1406, a rotatable frame is mounted to the rotatable portion of the bearing.
(52) At 1408, a detection system is aligned with iso-center of the bearing via alignment features of the bearing and complementary alignment features of the detection system. One or more other components can also be aligned as such.
(53) At 1410, the detection system is mounted to the rotating frame.
(54) The invention has been described with reference to the preferred embodiments. Modifications and alterations may occur to others upon reading and understanding the preceding detailed description. It is intended that the invention be constructed as including all such modifications and alterations insofar as they come within the scope of the appended claims or the equivalents thereof.