IP Library › Granted Patent US 12,181,618
Granted Patent B2
US 12,181,618 · App. 17/786,193 · Granted Dec 31, 2024

Radiological instrument with a pulse shaper circuit

Inventors: Christoph Herrmann (Aachen, DE); Yoad Yagil (Haifa, IL); Roger Steadman Booker (Aachen, DE)
Assignee: KONINKLIJKE PHILIPS N.V.
G01T1/24A61B6/03A61B6/4208
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Quick Facts
Patent No.
US 12,181,618
App. No.
17/786,193
Granted
Dec 31, 2024
Kind
B2
Abstract

Disclosed herein is a radiological instrument ( 100, 200, 300, 400, 600, 700, 800 ) comprising at least one pulse shaper circuit ( 102 ) configured for a direct conversion radiation detector ( 108 ). The at least one pulse shaper circuit comprises an amplifier ( 110 ). The pulse shaper further comprises a feedback circuit ( 118 ) connected in parallel with the amplifier; a first switching unit ( 120 ) connected in series with the feedback circuit; a second switching unit ( 122 ) connected in parallel with the amplifier; a discriminator circuit ( 124 ) that provides a discriminator signal ( 128 ) when the output exceeds a controllable signal threshold; and a control unit ( 124 ) for controlling the first switching unit and the second switching unit, wherein the control unit controls the second switching unit such that a substantial part of the signal is integrated, when the second switching unit is closed.

Claims (47)

1. A radiological instrument, comprising:

at least one pulse shaper circuit, wherein the at least one pulse shaper circuit is configured for receiving an input signal from a direct conversion radiation detector, wherein the at least one pulse shaper circuit comprises:

a shaper input configured for receiving the input signal;

a shaper output configured for providing an output signal in response to the input signal;

an amplifier with an amplifier input connected to the shaper input and an amplifier output connected to the shaper output, wherein the amplifier is configured as an integrator;

a feedback circuit connected in parallel with the amplifier and configured for continuously resetting the integrator;

a first switch connected in series with the feedback circuit and configured for disabling the feedback circuit when open;

a second switch connected in parallel with the amplifier and configured for resetting the integrator when closed;

a discriminator circuit connected to the amplifier output, wherein the discriminator circuit is configured for providing a discriminator signal when the amplifier output exceeds a controllable signal threshold; and

a controller configured to control the first switch and the second switch, wherein the controller controls the second switch such that a substantial part of the signal is integrated, when the second switch is closed; wherein the controller is a timing circuit configured for controlling the first switch and the second switch, wherein the timing circuit is configured for receiving the discriminator signal, wherein the timing circuit is configured for opening the first switch upon receiving the discriminator signal, wherein the timing circuit is configured for closing the second switch after a first delay, wherein the timing circuit is configured for opening the second switch after a second delay after closing the second switch, wherein the timing circuit is configured for closing the first switch after a third delay.

2. The radiological instrument of claim 1 , wherein the radiological instrument comprises a direct conversion radiation detector for each of the at least one pulse shaper circuit.

3. The radiological instrument of claim 2 , wherein the direct conversion radiation detector is any one of the following: a cadmium zinc telluride detector, a cadmium telluride detector, an amorphous selenium detector, a silicon doped with lithium detector, and germanium doped with lithium detector.

4. The radiological instrument of claim 1 , wherein the at least one pulse shaper circuit further comprises a feedback capacitance connected between the amplifier input and the amplifier output, wherein the feedback circuit is configured for continuously resetting the integrator by continuously discharging the feedback capacitance, and wherein the second switch is configured for resetting the integrator by short circuiting the feedback capacitance.

5. The radiological instrument of claim 1 , wherein the second switch is configured as a short circuit.

6. The radiological instrument of claim 1 , wherein the feedback circuit is a current source.

7. The radiological instrument of claim 1 , wherein the feedback circuit is a discharge resistance, wherein the second switch is in series with a short circuit resistance, wherein the short circuit resistance is less than the discharge resistance.

8. The radiological instrument of claim 1 , wherein the radiological instrument comprises at least one radiation detector array comprising or connected to multiple of the at least one pulse shaper circuits.

9. A method of operating an imaging system, comprising:

providing pulse shaper circuits;

receiving, by the pulse shaper circuits, an input signal from a separate direct conversion radiation detector;

providing an output signal in response to the input signal;

connecting an amplifier to the shaper, wherein the amplifier is configured as an integrator;

connecting a feedback circuit in parallel with the amplifier, the feedback circuit being configured for continuously resetting the integrator;

connecting a first switch in series with the feedback circuit, the first switch being configured for disabling the feedback circuit when open;

connecting a second switch in parallel with the amplifier, the second switch being configured for resetting the integrator when closed;

connecting a discriminator circuit to the amplifier output, wherein the discriminator circuit is configured to provide a discriminator signal when an amplifier output exceeds a controllable signal threshold;

controlling the first switch and the second switch, wherein the second switch is controlled such that a substantial part of the signal is integrated when the second switch is closed;

receiving the discriminator signal;

opening the first switch upon receiving the discriminator signal;

closing the second switch after a first delay;

opening the second switch after a second delay after closing the second switch;

closing the first switch after a third delay.

10. A non-transitory computer-readable medium for storing executable instructions, which cause a method to be performed to operate an imaging system, the method comprising:

providing pulse shaper circuits;

receiving, by the pulse shaper circuits, an input signal from a separate direct conversion radiation detector;

providing an output signal in response to the input signal;

connecting an amplifier to the shaper, wherein the amplifier is configured as an integrator;

connecting a feedback circuit in parallel with the amplifier, the feedback circuit being configured for continuously resetting the integrator;

connecting a first switch in series with the feedback circuit, the first switch being configured for disabling the feedback circuit when open;

connecting a second switch in parallel with the amplifier, the second switch being configured for resetting the integrator when closed;

connecting a discriminator circuit to the amplifier output, wherein the discriminator circuit is configured to provide a discriminator signal when an amplifier output exceeds a controllable signal threshold;

controlling the first switch and the second switch, wherein the second switch is controlled such that a substantial part of the signal is integrated when the second switch is closed;

receiving the discriminator signal;

opening the first switch upon receiving the discriminator signal;

closing the second switch after a first delay;

opening the second switch after a second delay after closing the second switch;

closing the first switch after a third delay.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2022
From: HERRMANN, CHRISTOPH; YAGIL, YOAD; STEADMAN BOOKER, ROGER
To: KONINKLIJKE PHILIPS N.V.
Reel/Frame 060227/0366 →
Priority Claims (1)
EP 19219191 · Dec 23, 2019 · regional
Continuity (1)
Related Publication 20230029181A1 · Jan 26, 2023