This application claims the benefit of Chinese Patent Application No. 201410250942.5 filed on Jun. 6, 2014 in the State Intellectual Property Office of China, the whole disclosure of which is incorporated herein by reference.
Technical Field
The present disclosure relates to technical field of X-ray generators, and particularly to an X-ray generator with adjustable collimation and monolithic construction, which is adopted in X-ray radiating imaging-based security detection, medical treatment and scientific research, etc.
Description of the Related Art
Conventional X-ray generator usually includes parts such as a high-voltage power supply, an X-ray tube and a cooling unit, etc. These parts are relatively independent and are connected by cables and pipes. There are lots of intermediate parts and a large space is occupied. The emitted X-ray beams mostly present in a fan-type shape, and, these beams cannot be adjusted, or else, adjustment of these beams is difficulty and complicated. Especially, in terms of cooling and heat dissipation, common heat dissipation ways such as circulating oil cooling and circulating water cooling are easily susceptible to leakage and thereby are inconvenient in application.
At present, security detection apparatuses and medical treatment equipments are developed to be miniaturization, modularization and high efficiency. In order to achieve this objective, it is desired to provide an X-ray generator with adjustable collimation and monolithic construction.
According to an aspect of the present disclosure, there is provided an X-ray generator with adjustable collimation, comprising:
The above and other features of the present disclosure will become more apparent by describing in detail exemplary embodiments thereof with reference to the accompanying drawings, in which:
Exemplary embodiments of the present disclosure will be described hereinafter in detail with reference to the attached drawings, wherein the like reference numerals refer to the like elements. The present disclosure may, however, be embodied in many different forms and should not be construed as being limited to the embodiment set forth herein; rather, these embodiments are provided so that the present disclosure will be thorough and complete, and will fully convey the concept of the disclosure to those skilled in the art.
In the following detailed description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the disclosed embodiments. It will be apparent, however, that one or more embodiments may be practiced without these specific details. In other instances, well-known structures and devices are schematically shown in order to simplify the drawing.
An object of the present disclosure is to provide an X-ray generator with adjustable collimation and monolithic construction, in order to meet the demand of miniaturization, modularization and high efficiency of an X-ray radiation imaging apparatus.
Core parts including the assembly of X-ray source 200, the collimation adjustment unit 300 and the cooling unit 400, etc., are combined as a monolithic construction and are integrated into a housing 201 for X-ray tube. Rotation movement of the collimation adjustment unit 300 is driven by the servo motor 308 through the driving pulley 304, the transmission belt 306 and the driven pulley 305. The fixing mount 501 is used for mounting the housing 201 for X-ray tube, the servo motor 308 and other components thereon and is formed with corresponding mounting holes. Systemically electrical and automatic control functions are achieved through the anti-oil navigation base 107.
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Optimally, the heat radiating base 204 for the anode may be embedded with a temperature sensor 601 and a temperature switch 602 therein. Referring to
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Specifically, the X-ray tube 203 is communicated with the extended chamber and is filled with insulating oil therein. Referring to
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Moreover, the high voltage generator 100 further comprises a caged positioning spacer 105 fixedly arranged within the extended chamber, the insulating resin plates 104 are fixedly positioned within the extended chamber through the caged positioning spacer 105. Referring to
Specifically, the collimation adjustment unit 300 comprises a rotary Tungsten ring 301 for adjustment purpose, and a drive mechanism for driving a rotation of the rotary Tungsten ring around the front collimator to achieve a X-ray pointwise continuous scanning. The drive mechanism comprises a motor 308 mounted on the fixing mount 501, a driving pulley 304 connected to the motor 308, a driven pulley 305 connected to the rotary Tungsten ring 301, and a transmission belt 306 connected between the driving pulley 304 and the driven pulley 305.
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In addition, the drive mechanism may further comprise a tensioning structure for adjusting degree of tightness of the transmission belt 306. As shown in
According to an embodiment, the X-ray generator may further comprise a mechanical mounting unit 500, and the assembly 200 of X-ray source, the high voltage generator 100, the collimation adjustment unit 300 and the cooling unit 400 are supported at a fixing mount 501 of the mechanical mounting unit 500.
According to an embodiment, the X-ray generator may further comprise a radiation protection unit consisted of a radiation protection layer 205, the front collimator 302 and the rotary Tungsten ring 301 disposed within the X-ray tube and the extended chamber.
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Accordingly, the abovementioned X-ray generator comprises the high voltage generator which applies a voltage across both ends of the X-ray tube, the assembly of X-ray source which includes the front collimator and the radiation protection unit, the rotary collimation adjustment unit which is used to adjust the X-ray, the heat tube cooling unit for cooling the anode of the X-ray tube, and the mechanical mounting unit for providing supports and fixations. The high voltage generator is disposed within the extended chamber of the housing for the X-ray tube, and the cooling unit is independently mounted. All the abovementioned parts are integrated into a compact and monolithic construction.
That is, the X-ray generator with adjustable collimation according to embodiments of the present disclosure comprises the high voltage generator, the assembly of X-ray source, the collimation adjustment unit, the cooling unit and the mechanical mounting unit, which are integrated as a whole. Accordingly, it has a combined monolithic construction, adopts the heat tube cooling and adjusts the fan-type X-ray beams into continuous pencil-type X-ray beams by using of the front collimator and the rotary collimation adjustment unit, achieving dynamic pointwise scanning on an object to be checked.
According to the abovementioned embodiments, the high voltage generator supplies a direct current high voltage between the cathode and the anode of the X-ray tube such that high energy electrons generated at the cathode impacts the anode to emit the X-ray beams. The high voltage generator is disposed within the extended chamber of the housing for X-ray tube such that it is integrally formed with the assembly of X-ray source, with pure transformer insulating oil filled within the housing.
According to the abovementioned embodiments, a UY-type ferrite magnetic core may be used as the filament transformer, an R-type ferrite magnetic core, which is low in stray flux and leakage inductance and high in magnetic permeability, may be used as the high voltage transformer, the high voltage circuit is of an annular layout, and high voltage output is achieved in a multistage rectification voltage-multiplying way. The filament transformer, the high voltage transformer and the high voltage circuit are disposed at sides of the insulating resin plates facing in the same one direction. Three protruded fixing supports are provided at the peripheral portion of each of the resin plates, and the central portion is hollowed such that the insulating oil passes therethrough. An annular positioning boss is formed on an inner side of the radiation protection lead layer. The three annular insulating resin plates are located in position by the caged positioning spacer. Direct current high voltage output is connected to the X-ray tube through a connector. The control system is connected through an anti-oil navigation connector.
According to the abovementioned embodiments, the assembly of X-ray source comprises the cylindrical housing for the X-ray tube, the assembly boss, the heat radiating base for the anode of the X-ray tube, the radiation protection layer, the filter cover made of polycarbonate, the end cover for sealing the cathode, the vacuum oil holes and the tympan, etc. The heat radiating base for the anode is used as an end seal cover and has a finished and slightly protruding slightly heat-transfer surface. The anode-side seal ring is made of oxygen-free copper material, which avoids deformation caused by overheat. The seal ring 209 is also formed with vacuum oil holes 210 thereon, in order to ensure performance of the insulating oil inside. Concave filter cover is made of polycarbonate, and is used to restrict a thickness of an oil layer at a beam port of the X-ray tube and itself has well X-ray penetrability, enhancing effective output dose of the X-ray. The housing for the X-ray tube has a fan-type port of certain angle in accordance with flare angle characteristics of the X-ray tube such that the X-ray beams are effectively generated once direct current high voltage is applied across both ends of the X-ray tube.
According to the abovementioned embodiments, the heat radiating base for the anode is made of oxygen-free copper material, which not only is of a relatively large size in whole, but also has a laterally extended end that increases heat capacity and heat radiating area. In addition, it is also used as an end cover for sealing the anode within the housing for X-ray tube.
According to the abovementioned embodiments, the end cover for sealing the cathode is cooperated with a flexible tympan to create a chamber therebetween. During operation of the X-ray generator, the insulating oil is expanded when being heated, and contracted when being cooled, correspondingly, the tympan will be squeezed from the insulating oil side or from the ambient environment side. Here, a vent opening formed in the end cover for the cathode is used to act as a release channel so as to obtain a pressure balance. The vent opening is formed with internal thread therein, and a protective bolt with a through hole therein is assembled in the vent opening. Once an oil leakage fault occurs, the protective bolt is screwed into the vent opening such that the through hole is blocked, preventing leakage of the insulating oil. In addition, the tympan and the end cover together work as a sealing ring.
According to the abovementioned embodiments, the collimation adjustment unit comprises rotary Tungsten ring, front collimator, angular contact bearing, driving pulley, driven pulley, transmission belt, lock nut and servo motor. The rotary Tungsten ring is formed with several small throughholes therein and is fixed onto the driven pulley. The front collimator is fixedly bound around the outer surface of the housing for the X-ray tube. The angular contact bearing is embedded inside the driven pulley and is braced around the outer surface of the housing for the X-ray tube while being locked by the lock nut. Under the action of the servo motor 308, the driven pulley is driven by the driving pulley and brings the angular contact bearing to rotate, here, the Tungsten ring is driven to be rotated around the front collimator, achieving X-ray pointwise continuous scanning. The mentioned collimation adjustment unit is simplified in structure, low in power consumption, and small in noise, and has good spot characteristics, reduced penumbral effect and improved image resolution.
According to the abovementioned embodiments, the front collimator has certain thickness and is embedded within the concave filter cover made of polycarbonate. The front collimator is made of heavy metal oxide, bismuth oxide, which is easily machined, has high voltage insulation and radiation protection characteristic, and also meets the environmental requirements. Other materials, such as lead oxide, may be used. The Tungsten ring is equipped with guard ribs at both sides thereof and owns good radiation protection effect. The inner protection layer of the housing for the X-ray tube, the front collimator and the rotary Tungsten ring together constitute an effectively Labyrinth radiation protection unit, preventing leakage of the X-ray so as to meet safety requirements.
According to the abovementioned embodiments, the cooling unit adopts heat radiation via heat tube and is consisted of heat tubes, fixed clamping plates, thermal conductive substrate, heat radiating fins and silent fan. In order to avoid target ablation due to overheat of the anode of the X-ray tube, heat tube, which is an efficient heat conductor that transfers heats by means of evaporation and condensation of liquid within fully enclosed vacuum tube, is used. Generally, it has an L-type configuration. The evaporation end of the heat tube is fixed by the thermal conductive substrate and is configured to sufficiently contacted with the slightly protruding heat-transfer surface of the heat radiating base, while the condensation end is welded with a plurality of layers of large-sized heat radiating fins. The silent fan, together with the suction fan mounted above the radiation protection unit, takes away the hot air and brings sucks the cool air, which forms a smooth air channel, thereby taking away the heats generated at the anode quickly and effectively. That is, the cooling unit consisted of heat tubes is smart in structure, small in cost, stable in operation, easy to maintenance, and has a low power consumption, reduced fault points, and an novel and practicable effect.
Alternatively, the heat tubes may be directly secured to the heat radiating base for the anode.
According to the abovementioned embodiments, the mechanical mounting unit is provided to integrate these abovementioned functional units together into a monolithic construction. The mechanical mounting unit comprises fixing mount, outer radiation protection unit, frame for the motor, fastening screw, expansion sleeve, etc. The fixing mount is used to assemble the housing for the X-ray tube and its peripheral components together and is provided externally with the radiation protection unit, achieving the modularization. The mechanical mounting unit is processed with good processing technology and precision, in order to ensure well spot characteristics of the adjusted X-ray beams and assembled effect.
In addition, the X-ray generator according to the embodiments may further comprise minitype temperature switch and temperature sensor embedded within the heat radiating base for the anode, inverter circuit controlling module, related electrically controlling interface, proximity switch, etc.
Accordingly, the X-ray generator according to the embodiments has the following advantages. Firstly, the high voltage generator is incorporated into the inside of the housing for the X-ray tube, and, the high voltage generator, the assembly of X-ray source, the collimation adjustment unit and the cooling unit are integrated as a compact and monolithic construction, facilitating miniaturization, modularization and high efficiency of the X-ray security detection apparatuses and achieving a novel and practicable l design. Secondly, the X-ray beams are adjustable to continuous pencil-type X-ray beams for dynamic scanning, achieving well spot characteristics and small penumbra effect and improved image resolution. Thirdly, the cooling unit consisted of heat tubes which are independently assembled, works in cooperation with effective design of air channel, achieving a clean and stable configuration and reduction of system faults.
Although several exemplary embodiments have been shown and described, it would be appreciated by those skilled in the art that various changes or modifications may be made in these embodiments without departing from the principles and spirit of the disclosure, the scope of which is defined in the claims and their equivalents.
Number | Date | Country | Kind |
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2014 1 0250942 | Jun 2014 | CN | national |
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