The disclosed embodiments of a cooling apparatus and methods for use relate to the field of X-ray tube manufacture and operation. Specifically, the embodiments and methods disclosed relate to mechanisms and methods of cooling X-ray tubes while such tubes are in operation.
X-ray tubes are generally comprised of an outer housing and an insert. The insert typically includes the components necessary to produce X-rays. When X-ray tubes need to be replaced, ordinarily only the insert is replaced by removing an installed insert with components that have failed and placing a new insert into the original housing.
When in use, X-ray tubes produce great amounts of heat that should be eliminated. Heat is a substantial contributor to, or direct cause of, the failure of X-ray tube insert components. Among the components susceptible to failure are those comprising, and in the vicinity of, the insert window.
Current ways of eliminating such heat include the use of a coolant that is substantially or completely transparent to X-rays. This coolant is usually a liquid or other suitable fluid. Commonly, the coolant is pumped into the tube housing at a first end to fill the housing with coolant. This results in the insert being immersed in, or surrounded by, the coolant in the housing. The coolant then absorbs heat generated by the X-ray tube or other insert components. Heated coolant is then removed from the housing at a second end and may be circulated through a heat exchanger to reduce the temperature of the coolant. After the temperature of the heated coolant is reduced, the coolant is then pumped back into the housing at the first end, forming a closed, recirculating system.
A cooling apparatus for X-ray tube inserts is provided. The apparatus comprises a flow director configured to direct at least a portion of a flow of coolant toward a window of an X-ray tube insert.
The flow director may also comprise a flow sleeve to create a generally wedge-shaped coolant flow pattern. Additionally, the flow director may comprise a plurality of nozzles, each configured to direct a portion of the flow of coolant in a generally fan-shaped spray pattern.
The flow director may comprise a plurality of nozzles, wherein a first one of the plurality of nozzles is configured to direct a first portion of the flow of coolant in a first direction, and a second one of the plurality of nozzles is configured to direct a second portion of the flow of coolant in a second direction that is different from the first direction.
The cooling apparatus may include a flow diversion unit configured to divert a portion of the flow of coolant into a coolant-containing region of an X-ray tube housing. Additionally, the apparatus may include a housing configured to receive the cooling apparatus and coolant, a cathode and an anode operatively coupled together to emit radiation and configured to be received by the housing.
A disclosed cooling apparatus for X-ray tube inserts comprises a coolant ingress region configured to receive an incoming coolant flow through a first passage; a coolant diversion region in fluid communication with the coolant ingress region to divert the flow of coolant from the coolant ingress region; and at least one flow director in fluid communication with the coolant diversion region for directing at least a portion of the coolant flow across a surface to be cooled. The apparatus may further include a plurality of flow directors, each in fluid communication with the coolant diversion region for directing at least a portion of the coolant flow across a surface to be cooled. Also, a first one of the plurality of flow directors may be configured to direct a first portion of the coolant flow in a first direction and a second one of the plurality of flow directors is configured to direct a second portion of the coolant flow in a second direction different from the first direction. The flow director may include a nozzle.
An X-ray tube insert is disclosed, comprising a cathode; an anode, operatively coupled to the cathode such that the operation of the cathode and anode produces radiation; a body member including a passage configured to receive a coolant flow through said passage; and a flow sleeve in fluid communication with the body member and configured to direct at least a portion of the coolant flow across a surface to be cooled by the coolant flow. The insert may further comprise a flow diversion unit configured to divert a portion of the flow of coolant into a coolant-containing region of an X-ray tube housing. Additionally, the insert may include a housing configured to receive the cathode, the anode, the flow sleeve, and coolant.
A method of cooling an X-ray tube is disclosed, comprising the steps of apportioning a flow of coolant; directing a first portion of the flow of coolant toward a first region of an X-ray tube apparatus to be cooled; and directing a second portion of the flow of coolant toward a second region of an X-ray tube apparatus to be cooled. The method may be practiced when the first region and the second region are not coextensive. The method may also be practiced when the first region is a region containing an X-ray tube insert window.
The method may further comprise the step of routing a coolant flow to a heat exchanger. Still farther, the method may include the step of directing a third portion of the flow of coolant toward the second region of an X-ray tube apparatus to be cooled.
A cooling apparatus for X-ray tube inserts is disclosed, comprising means for apportioning a flow of coolant; means for directing a first portion of the flow of coolant toward a first region of an X-ray tube apparatus to be cooled; and means for directing a second portion of the flow of coolant toward a second region of an X-ray tube apparatus to be cooled. The apparatus may further be where the first region and the second region are not coextensive. Additionally, the first region may be a region containing an X-ray tube insert window. Also, the apparatus may include means for directing a third portion of the flow of coolant toward the second region of an X-ray tube apparatus to be cooled.
The flow diverting unit 20 is configured to divert some coolant 16 to a coolant diversion line 22 while allowing an undiverted portion of the coolant 16 to enter the interior of the housing 12. The coolant diversion line 22 carries diverted coolant to a flow director 24. The flow director 24 may include a plurality of nozzles 26. Each of the nozzles 26 directs a portion of the diverted coolant in a generally fan-shaped spray 28 over the insert window 30, where the diverted coolant commingles with undiverted coolant in the interior of the housing 12.
An egress coolant line 32 carries coolant 16 to a heat exchanger 34. The heat exchanger 34 includes a coolant pump (not pictured) that circulates coolant 16 throughout the system.
The diverter 56 has a main coolant passage 62 that receives an incoming coolant flow from the center passage 54 of the body 52. The diverter also has a center tube 57 that is generally cylindrical in shape, shares common axis 60, and contains a portion of the center passage 58 of the diverter 56. Bypass passages 64 connect to the main coolant passage 62 and allow a portion of the coolant entering the diverter 56 to exit the flow diverting unit 56.
Coolant that does not exit the flow diverting unit 56 through a bypassing passage continues through the center passage portion of center tube 57 and exits the diverter 56, entering coolant hose 66.
Attached to the wall 108 of the body 102 at the area of openings 110 and 112 are a plurality of nozzles 122. Each nozzle has 2 side walls and a rear wall connected generally at right angles to form a general U-shaped formation where the U is then bent to form an angle such that the channel of the U-shape matches with the notches of wall 108 to provide a fluid communication channel between the coolant passage 120 and the nozzle 122. The end of the nozzle 122 is tapered to narrow the end of the nozzle.
The openings 116 allow the flow of coolant into the coolant passage 120. The coolant then flows through a small opening 110 or a large opening 112 and into nozzle 122. In nozzle 122, the coolant flows through the length of the nozzle and exits at the tapered end of the nozzle.
Coolant flows into the coolant passage 203 of body 202 through coolant ingress openings 216. Coolant then continues to flow through notch 206 into the coolant egress area 214 of the flow sleeve 208 and exits in a generally wedge-shaped flow pattern, as opposed to the generally fan-shaped spray patterns provided by the nozzles of other configurations.
The invention disclosed herein is defined by the claims read by a person of ordinary skill in the art in light of the disclosures made in the specification. Modifications of and alterations to the materials disclosed herein will occur to others upon reading and understanding of the preceding detailed description. It is intended that the invention be construed as including all such modifications and alterations insofar as they come within the scope of the appended claims or the equivalents thereof.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB2005/051859 | 6/7/2005 | WO | 00 | 8/25/2008 |
Publishing Document | Publishing Date | Country | Kind |
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WO2006/003533 | 1/12/2006 | WO | A |
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Number | Date | Country | |
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20080310596 A1 | Dec 2008 | US |
Number | Date | Country | |
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60584205 | Jun 2004 | US |