IP Library Granted Patent US 10,849,575
Granted Patent B2
US 10,849,575 · App. 16/349,244 · Granted Dec 1, 2020

Computer tomograph

Inventor: Zahra Mohammadi (Erlangen, DE)
Assignee: ESSPEN GmbH
A61B6/4014A61B6/035A61B6/4405A61B6/587H01J35/065H01J35/13H01J2235/068
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Quick Facts
Patent No.
US 10,849,575
App. No.
16/349,244
Granted
Dec 1, 2020
Kind
B2
Abstract

A computer tomograph ( 1 ) for X-ray imaging includes a rotationally fixed gantry ( 2 ) that is displaceable at most in the axial direction (z). A plurality of X-ray emitters ( 3 ) and X-ray detectors ( 4 ) is arranged in the gantry ( 2 ) in a fixed manner about a central geometrical axis (z), in each case opposite to one another and offset with respect to each other in the direction of the central axis (z). The X-ray emitters ( 3 ) have cathodes ( 5 ) as electron emitters, which are separately connected to emitter controls ( 25 ) and cooperate with a common extraction grid ( 26 ) connected upstream of at least one focusing electrode ( 27 ). In comparison to conventional computer tomographs having rotating or rigidly arranged technical X-ray components, the computer tomograph ( 1 ) has a light and compact design.

Claims (21)

1. A computer tomograph for X-ray imaging, comprising a rotationally fixed gantry, in which a plurality of X-ray emitters, radiation influencers, and X-ray detectors is distributed in a fixed manner about a central geometrical axis, wherein said X-ray emitters and X-ray detectors are opposite to one another and offset with respect to each other in a direction of the central axis, and wherein the X-ray emitters have cathodes as electron emitters, the cathodes being separately connected to emitter controls and cooperate with a common extraction grid connected upstream of at least one focusing electrode as a radiation inducer;

wherein the emitter controls operate the plurality of X-ray emitters, radiation influencers and X-ray detectors to generate a first set of projection images taken from different projection directions and to take at least one additional set of projection images from additional projection directions, wherein the additional projection directions at least partially match the projection directions of the first set of projection images;

wherein the emitter controls determine a similarity level between two projection images taken from matching projection directions; and wherein frequency of selected projection directions depends on the similarity level of projection images taken from the respective projection directions at subsequent points in time.

2. The computer tomograph according to claim 1 , wherein the gantry is displaceable only in the direction of the central axis.

3. The computer tomograph according to claim 1 , wherein the X-ray emitters and the X-ray detectors fully enclose the central axis.

4. The computer tomograph according to claim 3 , wherein the X-ray emitters and the X-ray detectors are arranged on a circle.

5. The computer tomograph according to claim 3 , wherein the X-ray emitters and the X-ray detectors are arranged in at least three rows of equal length, wherein said rows form a regular polygon.

6. The computer tomograph according to claim 1 , wherein the X-ray emitters comprise nanorod-containing cathodes for field emission of electrons.

7. The computer tomograph according to claim 6 , wherein the X-ray emitters include carbon nanotubes as nanorods.

8. The computer tomograph according to claim 1 , wherein the X-ray detectors comprise direct solid-state detectors for detecting X-ray radiation.

9. The computer tomograph according to claim 1 , wherein at least eight cathodes are assigned to a common extraction grid.

10. The computer tomograph according to claim 1 , comprising at least two different cathodes.

11. The computer tomograph according to claim 1 , comprising a rigid, liquid-cooled anode.

12. A method for operating a computer tomograph, comprising a rotationally fixed gantry in which a plurality of X-ray emitters, radiation influencers, and X-ray detectors are rigidly arranged, wherein the X-ray emitters comprise multiple electron emitters cooperating with a common anode, and in which slice images are generated from projection images of a changing examination object, having the following features:

Generating a first set of projection images taken from different projection directions,

Taking at least one additional set of projection images from additional projection directions, wherein the additional projection directions at least partially match the projection directions of the first set of projection images,

Determining the level of similarity between two projection images taken from matching projection directions,

Generating other projection images, wherein frequency of selected projection directions depends on a level of similarity of projection images taken from the respective projection directions at subsequent points in time.

13. The method according to claim 12 , wherein projection images are created from a specific projection direction, wherein the more frequently the lower a level of similarity between projection images taken from the respective projection direction is at subsequent points in time.

14. The method according to claim 12 , wherein both an emission current (I E ) of the electron emitter and anode voltage (U A ) are varied in successive X-ray pulses.

15. The method according to claim 14 , wherein the X-ray radiation emitted is varied by at least 100 steps in wavelength and dose per pulse during examination of an examination object.

Assignments (3)
NUNC PRO TUNC ASSIGNMENT Recorded Aug 6, 2026
From: MOHAMMADI, ZAHRA, DR.
To: STRETTA IMAGING GMBH
Reel/Frame 075548/0754 →
NUNC PRO TUNC ASSIGNMENT Recorded Aug 12, 2025
From: ESSPEN GMBH
To: MOHAMMADI, ZAHRA, DR.
Reel/Frame 071992/0444 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2019
From: MOHAMMADI, ZAHRA
To: ESSPEN GMBH
Reel/Frame 049784/0608 →
Priority Claims (1)
DE 10 2016 013 533 · Nov 12, 2016 · national
Continuity (1)
Related Publication 20200187882A1 · Jun 18, 2020