The invention relates to a connection device of a high-voltage power supply and an X-ray tube, and also relates to a corresponding X-ray source containing the connection device, belonging to the field of radiation imaging technology.
The X-ray tube is a vacuum diode working under high voltage. It contains two electrodes: one is a cathode, which is a filament for emitting electrons, and the other is an anode, which is a target for receiving electron bombardment. Both electrodes are sealed in a high vacuum glass or ceramic shell. The X-ray tubes are used in medical diagnosis and treatments, and in industrial technology like nondestructive testing, structural analysis, spectral analysis and negative film exposure of materials.
At present, the high-voltage power supply and the X-ray tube is connected in two main modes: an integral mode and an independent mode. The high-voltage power supply and X-ray tube of the integral mode is an overall structure by encapsulating the X-ray tube in the high-voltage power supply, which are mainly suitable for low-power and small volume applications. In addition, when either of the X-ray tube or the high-voltage power supply fails, it is difficult to repair and disassemble, so the high-voltage power supply and the X-ray tube should be replaced as a whole. The high-voltage power supply and the X-ray tube of the independent mode require high-voltage socket and high-voltage plug to connect the high-voltage power supply and the X-ray tube together, which is mainly suitable for high-power and large volume application scenario. In addition, the total volume and weight of high-voltage power supply and the X-ray tube of the independent mode are relatively large.
The primary technical problem to be solved by the present invention is to provide a connection device of a high-voltage power supply and an X-ray tube.
Another technical problem to be solved by the present invention is to provide a X-ray source including the connection device of a high-voltage power supply and an X-ray tube.
To achieve the foregoing purpose, the following technical solutions are used in the present invention:
According to a first aspect of an embodiment of the present invention, there is provided a connection device of a high-voltage power supply and an X-ray tube, comprising a first connection unit and a second connection unit, the first connection unit for connecting a high-voltage power output terminal of the high-voltage power supply and the second connection unit for connecting the cathode of the X-ray tube;
Preferably, the X-ray tube is placed in an internal cavity of the second connection unit.
Preferably, the first connection unit comprises a third fixing member embedded in the high-voltage power supply housing, and the third fixing member is provided with a plurality of high-voltage power output terminals;
Preferably, the second connection unit comprises a fourth fixing member embedded in the X-ray source housing, and the fourth fixing member is provided with a plurality of power input terminals;
the fourth fixing member embedded in the X-ray source housing, a second insulating filler fills among the fourth fixing member, the second fixing member of the X-ray source housing and the X-ray source housing, and an outer end surface of the second insulating filler flushes with an outer end surface of the second fixing member of the X-ray source housing.
Preferably, the first connection unit comprises a third fixing member embedded in the high-voltage power supply housing, and the third fixing member is provided with a plurality of high-voltage power output terminals;
Preferably, the second connection unit comprises a fourth fixing member embedded in the X-ray source housing, and the fourth fixing member is provided with a plurality of power input terminals;
Preferably, the first connection unit comprises a third fixing member embedded in the high-voltage power supply housing, and the third fixing member is provided with a plurality of high-voltage power output terminals;
Preferably, the second connection unit comprises a fourth fixing member embedded in the X-ray source housing, and the fourth fixing member is provided with a plurality of power input terminals;
Preferably, a first shielding ring surrounds the high-voltage power output terminals; and a second shielding ring surrounds the power input terminals.
Preferably, end surfaces of the high-voltage power output terminals extend outside from an outer end surface of the first insulating filler, end surfaces of the power input terminals are embedded in the second insulating filler and flush with an outer end surface of the second insulating filler.
Preferably, end surfaces of the high-voltage power output terminals are embedded in the first insulating filler, the end surfaces of the power input terminals extends outside from the outer end surface of the second insulating filler.
According to a second aspect of an embodiment of the present invention, there is provided an X-ray source comprising a high-voltage power supply and an X-ray tube, the high-voltage power supply and the X-ray tube being detachably connected together by the connection device.
The connection device of high-voltage power supply and X-ray tube provided by the present invention, by mounting the first connection unit and the second connection unit correspondingly to the high-voltage power supply and X-ray tube respectively, removably plugged together, can not only make the high-voltage power supply and X-ray tube connected together to realize the high-voltage power supply providing high-voltage to the X-ray tube; but also separate the high-voltage power supply and X-ray tube to realize the disassembly and maintenance when either of the high-voltage power supply and X-ray tube fails.
Technical contents of the present invention are further described in detail below with reference to the accompanying drawings and specific embodiments.
As shown in
Specifically, the first connection unit 100 can be embedded in the high-voltage power supply output terminal, or be fixed outside the high-voltage power supply output terminal with a first fixing member (not showing). The second connection unit 200 is configured to match with the first connection unit 100, so as to be plugged into the first connection unit 100.
The structure of the first connection unit 100 and the second connection unit 200 will be described in detail through specific embodiments below.
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Among them, the length of the first housing 7 needs to meet the requirements of a creepage distance. That is, along a length direction of the first housing 7,the distance between the end surfaces of the high-voltage power output terminals 4 and the end surface of the first fixing member 8 of the high-voltage power supply housing 1 meets the requirements of the creepage distance.
In addition, the length of the first housing 7 is adjusted according to the high voltage output by the high-voltage module 2. In principle, a length of 1 mm of the first housing 7 is required by 1 kV high voltage. The length of the first housing 7 is thus determined. For example, when the high-voltage module 2 needs to output 5 kV, the length of the first housing 7 should be set to 5 mm.
Wherein, the first fixing part 8 is provided with a through hole communicated with the end surface of the first housing 7. The shape and size of the through hole are the same as the end surface of the first housing 7, so that the first housing 7 can be embedded in the high-voltage power supply housing 1 from the through hole. On condition of the first connection unit 100 embedded in the high-voltage power supply housing 1, high-voltage insulation treatment is applied between the first housing 7 and the high-voltage power supply housing 1, such as filling with insulation fillers like high-voltage oil or high-voltage insulation glue (illustrated as an insulation filler 6 shown in
It should be noted that, during actual production, the first housing 7, the first fixing member 8 and the high-voltage power supply housing 1 can be integral. Alternatively, the one end of the first housing 7 with high-voltage power output terminals 4 and the first shielding ring 5, is embedded in the high-voltage power supply housing 1 through the through hole of the first fixing member 8, the end surface of the first housing 7 is fixed to the first fixing member 8 with seamless connection.
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As can be seen from the above description, the second connection unit 200 is not a solid structure, so its internal cavity can be used as a space for the X-ray tube. In actual processing, the second housing 12, the X-ray tube core 14 and the second fixing member 15 can be processed into one piece by using one-piece molding technology according to the actual needs of users.
Similarly, depending on needs, the second housing, the second fixing member 15 and the X-ray tube are one-piece or individual pieces. The other end of the second housing with the high-voltage power output terminals and the second shielding ring, is embedded into the X-ray tube from the passage of the second fixing member, and the end surface of the second housing and the second fixing member attached together by seamless connection.
In this embodiment, to provide high voltage for the X-ray tube through the high-voltage power supply, it is needed to coat the second connection unit 200 with enough silica gel and then insert the second connection unit 200 to the first connection unit 100, and then fasten the first fixing member 8 and the second fixing member 15 together by bolts or the like to extrude air therebetween. Since the second connection unit 200 is amounted in the X-ray tube and the first connection unit 100 is amounted in the high-voltage power supply, the high-voltage power supply is fixed with the X-ray tube while preventing unexpected discharge of the high-voltage power supply. When the high-voltage power supply or the X-ray tube fails to work, it is needed to remove the bolts on the first fixing member 8 and the second fixing member 15, pull the second connection unit 200 out of the first connection unit 100 to realize separation of the high-voltage power supply and the X-ray tube, so as to facilitate the fault detection and maintenance of the high-voltage power supply or the X-ray tube respectively. Therefore, the high-voltage power supply and the X-ray tube are connected together in the aforementioned way, which not only reduces the installation space of the high-voltage power supply and the X-ray tube, but also facilitates the disassembly and maintenance when either of the high-voltage power supply and the X-ray tube fails.
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In this embodiment, in order to ensure the uniformity of the local electric field, a first shielding ring surrounds the high-voltage power output terminals.
The first fixing member is provided with a through hole communicated with the end surface of the first housing, through which the high-voltage power output terminals can connect the high-voltage module of the high-voltage power supply directly or with a cable. The high-voltage power supply housing, the first housing and the first fixing member are seamless connected, high-voltage oil or high-voltage insulation adhesive are filled between the high-voltage power supply housing and the first housing by high-voltage insulation treatment. Alternatively, depending on needs, the first housing, the high-voltage power supply housing and the first fixing member could be one-piece (integral).
In the second connection unit provided in the present embodiment, a plurality of power input terminals (function as a socket) are provided at one end of the second housing, and an end surface at the other end of the second housing is flush with the second fixing member of the X-ray tube housing and is fastened with the second fixing member. The second fixing member is provided with a passage communicated with the end surface the second housing. The shape and size of the passage are the same as the end surface of the second housing, so as to allow the second housing insert the X-ray tube and allow the high-voltage insulation treatment (filling with high-voltage oil, high-voltage insulation adhesive, or the like) between the second housing and the X-ray tube. In addition, the power input terminals and the cathode of the X-ray tube insert connect in the same way as in embodiment 1, which is redundant to be specified here.
In this embodiment, in order to ensure the uniformity of the local electric field, a second shielding ring surrounds the high-voltage power output terminals.
Similarly, in actual processing, the second housing, the second fixing member and the X-ray tube housing can be processed into one piece using one-piece molding technology according to the actual needs of users; after the end of the second housing set with power input terminal and the second shielding ring is embedded into the X-ray tube housing through the through hole of the second fixing member, the port of the other end of the second housing and the second fixing member can be fixed together in a seamless connection.
In this embodiment, to provide high voltage for the X-ray tube through the high-voltage power supply, it is needed to coat the first connection unit 100 and the second connection unit 200 with enough silica gel and then insert the first connection unit 100 to the second connection unit 200, and then fasten the first fixing member and the second fixing member together by bolts or the like to extrude air therebetween. Since the second connection unit 200 is amounted in the X-ray tube and the first connection unit 100 is amounted in the high-voltage power supply, the high-voltage power supply is fixed with the X-ray tube while preventing unexpected discharge of the high-voltage power supply. When the high-voltage power supply or the X-ray tube fails to work, it is needed to remove the bolts on the first fixing member and the second fixing member, pull the second connection unit 200 out of the first connection unit 100 to realize separation of the high-voltage power supply and the X-ray tube, so as to facilitate the fault detection and maintenance of the high-voltage power supply or the X-ray tube respectively. Therefore, the high-voltage power supply and the X-ray tube are connected together in the aforementioned way, which not only reduces the installation space of the high-voltage power supply and the X-ray tube, but also facilitates the disassembly and maintenance when either of the high-voltage power supply and the X-ray tube fails.
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Alternatively, the outer surface of the insulating filler 6 filled among the third fixing member 16, the first fixing member 8 and the high-voltage power supply housing 1 extends a preset distance outwardly from the first fixing member 8, the outer surface of the insulating filler 13 filled among the forth fixing member 18, the second fixing member 15 and the X-ray source housing 17 extends inwardly for a preset distance from the outer surface of the second fixing member 15, which equals to the preset distance between the outer surface of the insulating filler 6 and the first fixing member 8, so as to ensure that the first connection unit 100 and the second connection unit 200 are plugged together after the high-voltage power output terminals are inserted into the power input terminals 9 (as shown in
Alternatively, the outer surface of the insulating filler 6 filled among the third fixing member 16, the first fixing member 8 and the high-voltage power supply housing 1 extend inwardly from the first fixing member 8 of the high-voltage power supply housing 1, the outer surface of the insulating filler 13 filled among the fourth fixing member 18, the second fixing member 15 and the X-ray source housing 17 extends a preset distance outwardly from the outer surface of the second fixing member 15. which equals to the preset distance between the outer surface of the insulating filler 6 and the outer surface of the first fixing member 8, so as to ensure that the first connection unit 100 and the second connection unit 200 are plugged together after the high-voltage power output terminals 4 are inserted into the power input terminals 9.
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In the present embodiment, as shown in
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Specifically, the first connection unit 100 provided by the present embodiment is different from that in embodiment 3 in that, one ends of each high-voltage power output terminals 4 connect the high-voltage module 2 of the high-voltage power supply through cable 3 or connect directly, and the other ends of the high-voltage power output terminals 4 are embedded in the filled insulating filler and flush with the outer end surface of the insulating filler. This structure is similar to the structure of the power input terminals 9 of the second connection unit 200 provided by embodiment 3 shown in
The third fixing member 16 is embedded in the high-voltage power supply housing 1, and insulation filler such as high-voltage oil or high-voltage insulation glue is filled among the third fixing member 16, the first fixing member 8 and the high-voltage power supply housing 1. The outer end surface of the filled insulating filler 6 flushes with the outer end surface of the first fixing member 8. Alternatively, the outer end surface of the filled insulating filler 6 extends a preset distance outwardly from the end surface of the first fixing member 8. Alternatively, the outer end surface of the filled insulating filler 6 extend a preset distance inwardly from the outer end surface of the first fixing member 8.
The second connection unit 200 of the present embodiment differs from that in the embodiment 3 that one end of the power input terminals 9 connect the cathode of the X-ray tube insert 14 through the cable 11 or connect directly; and the other end of the power input terminal 9 protrude outside from the filled insulating filler. This structure is similar to the structure of the high-voltage power output terminals 4 of the first connection unit 100 provided by the embodiment 3 as shown in
Alternatively, the outer end surface of the insulating filler 6 filled among the third fixing member 16, the first fixing member 8 and the high-voltage power supply housing 1 extends a preset distance outwardly from the end surface of the first fixing member 8, the outer end surface of the insulating filler 13 filled among the fourth fixing member 18,the second fixing member 15 and the X-ray source housing 17 extend inwardly from the outer end surface of the second fixing member 15 of the X-ray source housing 17. The preset distance between The outer end surface of the insulating filler 13 and the outer end surface of the second fixing member 15 equals to the preset distance from the outer end surface of the insulating filler 6 protruding outwardly from the outer end surface of the first fixing member 8, to ensure that the end surfaces of the first connection unit 100 and the second connection unit 200 abut against each other after the power input terminals 9 are inserted into the high-voltage power output terminals 4.
Alternatively, the outer end surface of the insulating filler 6 filled among the third fixing member 16, the first fixing member 8 and the high-voltage power supply housing 1 extend inwardly from the end surface of the first fixing member 8, the outer end surface of the insulating filler 13 filled among the fourth fixing member 18, the second fixing member 15 and the X-ray source housing 17 extends a preset distance outwardly from the end surface of the second fixing member 15, which equals to the preset distance between the outer end surface of the insulating filler 6 and the outer end surface of the first fixing member 8, to ensure that the end surfaces of the first connection unit 100 and the second connection unit 200 abut against each other after the power input terminals 9 are inserted into the high-voltage power output terminals 4.
In the present embodiment, as shown in
It should be emphasized that each embodiment or variant of the present invention is described in a relevant manner, and the same similar parts between each embodiment or variant can be referred to each other, and each embodiment or variant focuses on the differences from other embodiments, but they are all realized based on the working principle of the above connection device.
The present invention also provides an X-ray source comprising the connection device. The X-ray source comprises a high-voltage power supply and an X-ray tube connected together with aforesaid connection device. The high-voltage power supply, the X-ray tube and the connection device could be individual pieces and be sold independently. Alternatively, the high-voltage power supply and the X-ray tube connected together with the connection device to form an integral X-ray source for sales. The structures of the high-voltage power supply and the X-ray tube, and the working principle of the X-ray source are conventional technologies, which will not be redundantly provided here.
In summary, the connection device of high-voltage power supply and X-ray tube provided by the present invention, by mounting the first connection unit and the second connection unit correspondingly to the high-voltage power supply and X-ray tube respectively, removably plugged together, can not only make the high-voltage power supply and X-ray tube connected together to realize the high-voltage power supply providing high-voltage to the X-ray tube; but also separate the high-voltage power supply and X-ray tube to realize the disassembly and maintenance when either of the high-voltage power supply and X-ray tube fails.
The connection device of the high-voltage power supply and the X-ray tube, and the corresponding X-ray source provided in the present invention are described above in detail. For a person of ordinary skill in the art, any obvious change made to the present invention without departing from the essential content of the present invention shall fall within the protection scope of the patent of the present invention.
Number | Date | Country | Kind |
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202010525711.6 | Jun 2020 | CN | national |
202021058175.5 | Jun 2020 | CN | national |
Number | Date | Country | |
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Parent | PCT/CN2021/099341 | Jun 2021 | WO |
Child | 18064704 | US |