IP Library Granted Patent US 12,268,538
Granted Patent B2
US 12,268,538 · App. 18/245,854 · Granted Apr 8, 2025

Computer tomograph and method for operating a computer tomograph

Inventor: Zahra Mohammadi (Erlangen, DE)
Assignee: ESSPEN GMBH
A61B6/4014A61B6/4021A61B6/4435A61B6/4275A61B6/4405H01J35/30H01J2235/068
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Quick Facts
Patent No.
US 12,268,538
App. No.
18/245,854
Granted
Apr 8, 2025
Kind
B2
Abstract

A computer tomograph includes a static radiator-detector ring, which is constructed from an odd number of radiator-detector elements, of which a single one is displaceable, with opening of the radiator-detector ring. The displaceable element the other radiator-detector elements together defining a C-shape. Each radiator-detector element has an anode arrangement for the emission of X-rays, which extends over an angle α of at least 0.9×360°/n on the circumference of the radiator-detector ring. A detector is provided for detection of X-ray radiation, which extends within the same radiator-detector element over an angle β of at least 0.95×360°/n. Each anode arrangement is part of a radiator arrangement including multiple electron emitters, in which each electron emitter is configured, in cooperation with an electrode arrangement, to generate a focal spot at one of at least three selectable positions on the anode arrangement.

Claims (18)

1. A computer tomograph, comprising a static radiator-detector ring, which is constructed from an odd number (n) of radiator-detector elements, of which a single radiator-detector element is displaceable, with opening of the radiator-detector ring, the displaceable radiator-detector element with the remaining radiator-detector elements together defining a C-shape, wherein each radiator-detector element has an anode arrangement provided for the emission of X-rays, which extends over an angle α of at least 0.9×360°/n on a circumference of the radiator-detector ring, and a detector provided for detection of X-ray radiation, which extends within the same radiator-detector element over an angle β of at least 0.95×360°/n, and wherein each anode arrangement is part of a radiator arrangement comprising a plurality of electron emitters, in which each electron emitter is configured, in cooperation with an electrode arrangement, to generate a focal spot at one of at least three selectable positions on the anode arrangement.

2. The computer tomograph as claimed in claim 1 , wherein the radiator-detector element displaceable in relation to the remaining radiator-detector ring is displaceable in an axial direction of the radiator-detector ring and, in an axially displaced state, is slidable in a tangential direction along the radiator-detector elements arranged overall in a C-shape.

3. The computer tomograph as claimed in claim 1 , wherein the radiator-detector elements have emitters configured for field emission of electrons, in particular emitters comprising carbon nanotubes.

4. The computer tomograph as claimed in claim 3 , wherein each radiator-detector element has at least one emitter of a first type and at least one emitter of a second type.

5. The computer tomograph as claimed in claim 4 , wherein the different emitter types within a radiator-detector element differ from one another with regard to materials and/or geometry.

6. The computer tomograph as claimed in claim 3 , wherein the radiator-detector elements are configured for switching between different X-ray frequencies and/or X-ray doses, wherein each focal spot is equally selectable as a source of all settable X-ray frequencies and X-ray doses.

7. The computer tomograph as claimed in claim 1 , wherein the radiator-detector ring is attached in an adjustable manner to a movable device frame.

8. The computer tomograph as claimed in claim 1 , wherein the radiator-detector ring comprises at least five radiator elements and at most nine radiator elements, wherein all radiator-detector elements, including the displaceable radiator-detector element, cover angular ranges of equal size.

9. The computer tomograph as claimed in claim 1 , wherein between the most distant focal spots of the same anode arrangement, an angle γ of at least 0.85×α is enclosed on the circumference of the radiator-detector ring and from each of the possible focal spot positions, a fan-shaped X-ray beam is alignable on at least two radiator-detector elements diametrically opposite to the focal spot on the radiator-detector ring.

10. The computer tomograph as claimed in claim 1 , wherein the radiator-detector elements are configured to simultaneously generate at least two mutually offset focal spots on the circumference of the radiator-detector ring.

11. The computer tomograph as claimed in claim 1 , wherein the radiator-detector elements have emitters comprising carbon nanotubes configured for field emission of electrons.

12. A method for operating a computer tomograph, which comprises a non-rotating radiator-detector ring which is constructed from an odd number (n) of radiator-detector elements, of which a single radiator-detector element is configured to open the radiator-detector ring, wherein a plurality of electron emitters is arranged both in the fixed radiator-detector elements and in the radiator-detector element to be opened, which are each configured, with the aid of electrodes influencing electron beams, to generate a focal spot having a variable position on an anode associated with the radiator-detector element, so that a total number of possible focal spot positions corresponds to a multiple of the number of electron emitters, and wherein the maximum angular distance between two focal spot positions arranged adjacent to one another within the same radiator-detector element in the circumferential direction of the radiator-detector ring is less than the minimum angular distance between focal spot positions of two adjacent radiator-detector elements, comprising the following steps:

positioning the radiator-detector ring around an examination object, wherein the radiator-detector ring is closed, at the latest, in a position provided for carrying out an X-ray examination,

directing a fan-shaped X-ray beam, which originates from a first focal spot, onto the examination object, wherein X-ray radiation is detected by detectors of at least two radiator-detector elements,

generating a second focal spot, which is offset by a first differential angle in relation to the first focal spot on the circumference of the radiator-detector ring,

generating further focal spots, which are each offset on the circumference of the radiator-detector ring in relation to the previous focal spot by a differential angle, wherein a differential absolute value between two successive differential angles is less than a difference between a minimum angular distance between focal spot positions in adjacent radiator-detector elements and a maximum angular distance between two adjacent focal spot positions within the same radiator-detector element.

13. The method as claimed in claim 12 , wherein multiple revolutions around the central axis of the radiator-detector ring are defined by successive switching between different focal spot positions, wherein all possible focal spot positions have only been assumed after a plurality of revolutions.

14. The method as claimed in claim 13 , wherein focal spots are generated in mutually differing settings of different electrodes influencing electron beams during each individual revolution.

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 Mar 21, 2023
From: MOHAMMADI, ZAHRA
To: ESSPEN GMBH
Reel/Frame 063051/0243 →
Priority Claims (1)
DE 102020124474.6 · Sep 19, 2020 · national
Continuity (1)
Related Publication 20230337995A1 · Oct 26, 2023
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