IP Library Patent Application 14884119
Patent Application
App. No. 14/884,119

X-RAY COMPUTED TOMOGRAPHY APPARATUS

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Quick Facts
Patent No.
US None
App. No.
14/884,119
Abstract

To solve the problems described above, an X-ray computed tomography apparatus includes an X-ray tube, a scintillator, a photoelectric convertor, a thermal storage material, a rotating portion, a rotating mechanism, and image generating circuitry. The X-ray tube generates an X-ray. The scintillator converts the X-ray generated by the X-ray tube into light. The photoelectric convertor generates an electric signal based on the light obtained by conversion by the scintillator. The thermal storage material is attached to the photoelectric convertor, and absorbs heat. To the rotating portion, the X-ray tube, the scintillator, the photoelectric convertor, and the thermal storage material are attached. The rotating mechanism rotates the rotating portion around a subject. The image generating circuitry generates an image based on the electric signal generated by the photoelectric convertor.

Claims (44)

1 . An X-ray computed tomography (CT) apparatus comprising:

an X-ray tube configured to generate an X-ray;

a scintillator configured to convert the X-ray generated by the X-tube into light;

a photoelectric convertor configured to generate an electric signal based on the light obtained by conversion by the scintillator;

a thermal storage material configured to be attached to the photoelectric convertor, and that absorbs heat;

a rotating portion to which the X-ray tube, the scintillator, the photoelectric convertor, and the thermals storage material are attached;

a rotating mechanism configured to rotate the rotating portion around a subject; and

image generating circuitry configured to generate an image based on the electric signal generated by the photoelectric convertor.

2 . The X-ray CT apparatus according to claim 1 further comprising:

a cooling portion configured to cool the thermals storage material; and

a base on which the cooling portion is arranged, and that supports the rotating portion and is set on a surface of a floor, wherein

the rotating mechanism rotates, when rotation is to be stopped, the rotating portion by such an angle that the thermal storage material and the cooling portion are positioned close to each other, and

the cooling portion cools the thermal storage material when rotation of the rotating portion is stopped.

3 . The X-ray CT apparatus according to claim 1 , wherein

the thermal storage material absorbs heat that is generated at the photoelectric convertor, and is a latent-heat storage material that maintains temperature of the photoelectric convertor at a melting temperature of the thermal storage material.

4 . The X-ray CT apparatus according to claim 2 , wherein

the thermal storage material absorbs heat that is generated at the photoelectric convertor, and is a latent-heat storage material that maintains temperature of the photoelectric convertor at a melting temperature of the thermal storage material.

5 . The X-ray CT apparatus according to claim 2 , wherein

the cooling portion controls an amount of heat of the thermal storage material to be cooled so that the temperature of the thermal storage material is maintained at a melting temperature.

6 . The X-ray CT apparatus according to claim 3 , wherein

the latent-heat storage material includes at least one of paraffin, calcium chloride hydrate, sodium sulfide hydrate, sodium thiosulfate hydrate, and sodium acetate hydrate.

7 . The X-ray CT apparatus according to claim 4 , wherein

the latent-heat storage material includes at least one of paraffin, calcium chloride hydrate, sodium sulfide hydrate, sodium thiosulfate hydrate, and sodium acetate hydrate.

8 . The X-ray CT apparatus according to claim 1 further comprising

a heat conducting mechanism configured to conduct heat generated by the photoelectric convertor to the thermal storage material, wherein

the heat conducting mechanism includes

a Peltier device that has an endothermic surface and an exothermic surface, and that absorbs heat generated at the photoelectric convertor by the endothermic surface to dissipate to the thermal storage material that is connected to the exothermic surface when an electric current is applied;

a temperature sensor that measures temperature of the photoelectric convertor; and

a temperature controller that applies an electric current to the Peltier device based on the temperature measured by the temperature sensor.

9 . The X-ray CT apparatus according to claim 2 , comprising

a temperature sensor configured to measure temperature of the photoelectric convertor, wherein

the cooling portion cools the thermal storage material based on the temperature of the photoelectric convertor measured by the temperature sensor.

10 . The X-ray CT apparatus according to claim 2 comprising

a temperature sensor configured to measure temperature of the photoelectric convertor, wherein

the X-ray tube suspends generation of an X-ray when the temperature of the photoelectric convertor measured by the temperature sensor exceeds a predetermined value;

the rotating mechanism stops rotation of the rotating portion when the temperature of the photoelectric convertor measured by the temperature sensor exceeds the predetermined value;

the cooling portion starts cooling when the temperature of the photoelectric convertor measured by the temperature sensor exceeds the predetermined value.

11 . The X-ray CT apparatus according to claim 1 , wherein

the photoelectric convertor is a silicone photomultiplier.

12 . The X-ray CT apparatus according to claim 1 further comprising:

a heat conductor configured to transfer heat accumulated in the thermal storage material to a predetermined region of the rotating portion; and

a base on which the cooling portion is arranged, and that supports the rotating portion and is set on a surface of a floor, wherein

the rotating mechanism rotates, when rotation is to be stopped, the rotating portion by such an angle that a predetermined region of the rotating portion and the cooling portion are positioned close to each other, and

the cooling portion cools the predetermined region of the rotating portion when rotation of the rotating portion is stopped.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2016
From: KABUSHIKI KAISHA TOSHIBA
To: TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 039133/0915 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 15, 2015
From: KATO, TOORU; NAKAI, HIROAKI; HAYASHI, MIKIHITO
To: KABUSHIKI KAISHA TOSHIBA; TOSHIBA MEDICAL SYSTEMS CORPORATION
Reel/Frame 036801/0747 →