CT system
09799480 · 2017-10-24
Assignee
Inventors
Cpc classification
International classification
H01J35/10
ELECTRICITY
A61B6/00
HUMAN NECESSITIES
Abstract
The embodiments relate to a CT system with a stationary part and a rotatable part, which is supported rotatably in the stationary part. At least one x-ray tube unit cooled by a cooling fluid, an x-ray detector lying opposite the x-ray tube unit, and a cooling device coupled in terms of fluid technology to the x-ray tube unit via a coolant circuit are disposed in the rotatable part. A cooling air channel, through which cooling air is able to be fed into the rotatable part, and an exhaust air channel, through which heated exhaust air is able to be taken away from the rotatable part, are disposed in the stationary part. In accordance with the embodiments, at least one overpressure relief valve is disposed in the coolant circuit, through which the cooling fluid is able to be conveyed away in the exhaust air channel.
Claims
1. A CT system comprising: a stationary part; and a rotatable part supported rotatably in the stationary part, wherein at least one x-ray tube unit cooled by a cooling fluid, an x-ray detector lying opposite the x-ray tube unit, and a cooling device coupled to the x-ray tube unit via a coolant circuit are disposed in the rotatable part, wherein a cooling air channel, through which cooling air is able to be fed into the rotatable part, and an exhaust air channel, through which heated exhaust air is able to be taken away from the rotatable part, are disposed in the stationary part, and wherein at least one overpressure relief valve is disposed in the coolant circuit, through which the cooling fluid is configured to be conveyed away in the exhaust air channel.
2. The CT system as claimed in claim 1, wherein the at least one overpressure relief valve is disposed on an anode-side part of the x-ray tube unit.
3. The CT system as claimed in claim 1, wherein the at least one overpressure relief valve is disposed on the cooling device.
4. The CT system as claimed in claim 1, wherein the at least one overpressure relief valve is disposed in at least one cooling fluid line that runs between the x-ray tube unit and the cooling device.
5. The CT system as claimed in claim 1, wherein the overpressure relief valve is coupled to a steam-carrying pipe.
6. The CT system as claimed in claim 1, wherein the cooling fluid comprises water.
7. The CT system as claimed in claim 6, wherein the cooling fluid further comprises an anti-corrosion agent as an additive.
8. The CT system as claimed in claim 6, wherein the cooling fluid further comprises a frost-protection agent as an additive.
9. The CT system as claimed in claim 1, wherein the cooling fluid comprises an additive.
10. The CT system as claimed in claim 9, wherein the additive is an anti-corrosion agent.
11. The CT system as claimed in claim 9, wherein the additive is a frost-protection agent.
12. The CT system as claimed in claim 1, wherein the cooling air is ambient air and the heated exhaust air is configured to be discharged to an environment.
13. The CT system as claimed in claim 12, wherein the cooling air is configured to be created via a heat exchanger from the heated exhaust air.
14. The CT system as claimed in claim 1, wherein the cooling air is configured to be created via a heat exchanger from the heated exhaust air.
15. The CT system as claimed in claim 1, wherein at least one additional overpressure relief valve is disposed on an anode-side part of the x-ray tube unit.
16. The CT system as claimed in claim 1, wherein at least one additional overpressure relief valve is disposed on the cooling device.
17. The CT system as claimed in claim 1, wherein at least one additional overpressure relief valve is disposed in at least one cooling fluid line that runs between the x-ray tube unit and the cooling device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) The CT (computed tomography) system depicted in
(5) The heat occurring during the creation of the x-ray radiation within the x-ray tube is primarily taken up by the anode. The x-ray tube is therefore cooled during operation by a circulating cooling fluid. In the exemplary embodiments depicted in
(6) Disposed in the stationary part of the CT system are a cooling air channel 6 and an exhaust air channel 7. Via the cooling air channel 6, cooling air is fed into the rotatable part 2. The cooling air cools the x-ray tube unit 3 and the collimator 4, (e.g., takes up heat), and subsequently enters the exhaust air channel 7 as heated exhaust air and then exits from the rotatable part 2.
(7) If a fracture of the vacuum housing occurs during the operation of the x-ray tube unit 3, water gets onto the hot anode. Within a few seconds, a not inconsiderable part of the cooling fluid (e.g., water) evaporates and a large amount of steam arises inside the x-ray tube unit housing 5.
(8) In order to discharge steam 9 arising during a fracture of the vacuum housing from the tube unit housing 5 in a defined manner, the CT system has at least one overpressure relief valve 8. In the exemplary embodiment depicted, a single overpressure relief valve 8 is disposed on an anode-side part of the x-ray tube unit 3. The steam 9 is conveyed away explicitly via the overpressure relief valve 8 into the exhaust air channel 7, via which the heated exhaust air is discharged.
(9)
(10) In the CT system depicted in
(11) Disposed in the rotatable part 2, as well as the x-ray tube unit 3 with the associated collimator 4 already described in
(12) Via the coolant feed line 11, the coolant is fed to the x-ray tube unit 2 and via the coolant drainage line 12 the heated cooling fluid is fed back into the cooling device 13.
(13) The stationary part 1 is held by a force fit connection in the carrier body 16. Disposed in the carrier body 16 are a cooling module 17 and a feed channel 18.
(14) The cooling model 17 contains a fan 19 that sucks in ambient air and blows said air in via the feed channel 18 as cooling air into the cooling air channel 6. This type of air cooling thus involves an open cooling system, in which the components 3 and 4 as well as 10 to 15 disposed in the rotatable part 2 are cooled directly during operation by ambient air.
(15) The cooling air fed via the cooling air channel 6 into the rotatable part 2 (e.g., ambient air) cools the components 3 and 4 as well as 10 to 15 disposed in the rotatable part 2, such as the x-ray tube unit 3 and the cooling device 13. The cooling air here takes up heat and subsequently exits from the rotatable part 2 via the exhaust air channel 7 as heated exhaust air. The heated exhaust air is thus discharged to the environment.
(16) Disposed within the rotatable part 2, in the beam path between the x-ray tube unit 3 and the x-ray detector 10, is a support table 21 on which an examination object (e.g., patient, workpiece, baggage) may be supported.
(17) With the CT system in accordance with
(18) Disposed in the rotatable part 2, as well as the a x-ray tube unit 3 with the associated collimator 4 already described in
(19) The cooling fluid is fed via the coolant feed line 11 to the x-ray tube unit 2 and the heated cooling fluid is fed back via the coolant drainage line 12 into the cooling device 13.
(20) The stationary part 1 is held by a force-fit connection in the carrier body 16. Disposed in the carrier body 16 are a cooling module 17 and a feed channel 18.
(21) Disposed in the cooling module 17 are a fan 19 and also a heat exchanger 20. The fan 19 blows cooling air into the cooling air channel 6 via the feed channel 18.
(22) The cooling air fed via the cooling air channel 6 into the rotatable part 2 cools the components 3 and 4 as well as 10 to 15 disposed in the rotatable part 2, such as the x-ray tube unit 3 and the cooling device 13. The cooling air takes up heat here and subsequently exits from the rotatable part 2 via the exhaust air channel 7 as heated exhaust air and is fed back into the cooling module 17. In the cooling module 17, a re-cooling of the heated exhaust air takes place in the heat exchanger 20. After the re-cooling of the heated exhaust air, the air is again available as cooling air for cooling the components 3 and 4 as well as 10 to 15 disposed in the rotatable part 2.
(23) By contrast with the exemplary embodiment depicted in
(24) Disposed in the rotatable part 2 in the beam path between x-ray tube unit 3 and x-ray detector 10 is a support table 21 on which an examination object (e.g., patient, workpiece, baggage) may be supported.
(25) Although the invention has been explained in greater detail by two exemplary embodiments, the invention is not restricted by the two exemplary embodiments depicted in
(26) It is to be understood that the elements and features recited in the appended claims may be combined in different ways to produce new claims that likewise fall within the scope of the present invention. Thus, whereas the dependent claims appended below depend from only a single independent or dependent claim, it is to be understood that these dependent claims may, alternatively, be made to depend in the alternative from any preceding or following claim, whether independent or dependent, and that such new combinations are to be understood as forming a part of the present specification.
(27) While the present invention has been described above by reference to various embodiments, it may be understood that many changes and modifications may be made to the described embodiments. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that all equivalents and/or combinations of embodiments are intended to be included in this description.