CN111383874A - Cooling structure for klystron - Google Patents

Cooling structure for klystron Download PDF

Info

Publication number
CN111383874A
CN111383874A CN201811615275.0A CN201811615275A CN111383874A CN 111383874 A CN111383874 A CN 111383874A CN 201811615275 A CN201811615275 A CN 201811615275A CN 111383874 A CN111383874 A CN 111383874A
Authority
CN
China
Prior art keywords
klystron
drift tube
cooling structure
magnetic screen
drift
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CN201811615275.0A
Other languages
Chinese (zh)
Other versions
CN111383874B (en
Inventor
冯海平
孙福江
李冬凤
江华溢
符俊杰
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
No 12 Research Institute Of Cetc
Original Assignee
No 12 Research Institute Of Cetc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by No 12 Research Institute Of Cetc filed Critical No 12 Research Institute Of Cetc
Priority to CN201811615275.0A priority Critical patent/CN111383874B/en
Publication of CN111383874A publication Critical patent/CN111383874A/en
Application granted granted Critical
Publication of CN111383874B publication Critical patent/CN111383874B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J23/00Details of transit-time tubes of the types covered by group H01J25/00
    • H01J23/005Cooling methods or arrangements
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01JELECTRIC DISCHARGE TUBES OR DISCHARGE LAMPS
    • H01J23/00Details of transit-time tubes of the types covered by group H01J25/00
    • H01J23/12Vessels; Containers

Landscapes

  • Particle Accelerators (AREA)

Abstract

The invention discloses a cooling structure applied to a klystron, wherein the klystron comprises at least one tubular drift tube; the cooling structure comprises a cavity plate, a water inlet and a water outlet, wherein the cavity plate is perpendicular to the drift tube, is sleeved with the drift tube, is sealed and fixed, and is provided with at least one water inlet and at least one water outlet; the first magnetic screen plate is perpendicular to the drift tube and is sleeved, sealed and fixed with the drift tube; and the collector magnetic screen is hermetically fixed with the cavity plate and the first magnetic screen plate so as to form a space surrounding the drift tube with the cavity plate and the first magnetic screen plate. The cooling structure of the invention can cool the cooling liquid around the tube wall of each drift tube, dissipate the heat of the tube wall of the drift tube in time, improve the cooling efficiency of the cooling structure, ensure the stable work of the klystron, and the cooling structure is easy to assemble. The cooling structure can be applied to cooling structures of all cavities of the multi-injection klystron, and the working stability of the multi-injection klystron is further improved.

Description

Cooling structure for klystron
Technical Field
The invention relates to the field of klystron tool design, in particular to a cooling structure for a klystron.
Background
The klystron is a power amplifier device which converts the kinetic energy of electron beam into microwave energy by utilizing the interaction of high-speed electron beam and microwave signal. The application range of the klystron is very wide, almost all satellite communications use the klystron as a final amplifier, and one or a plurality of klystrons are used as high-power amplifiers for generating high-frequency transmission pulses in most radar systems. In addition, the klystron can be used in some high power amplifiers, such as the driver stage of a quadrature field amplifier, among other devices.
In the working process of the klystron, high voltage and high frequency are needed to be added to the klystron, a part of electrons are emitted to the drift tube, and certain heat can be generated at some parts of the body of the klystron, so that a cooling system needs to be added to heat source parts such as a cavity, a collector and an output window of the klystron, the generated heat can be rapidly taken away by water flow, and the temperature of the heat source parts can be maintained at a rated working temperature. Especially, the electron beam arrives this section region of collector behind the output chamber because the electron beam loses some energy through the output chamber, owing to receive the influence that the magnetic field descends, the electron beam is easy to appear dispersing simultaneously, and this section region of drift tube relatively speaking can produce more heat, if the heat that this tip region produced can not in time be dispelled, the temperature of drift tube body can rise gradually, and when the temperature rose to certain degree, intraductal part can be burnt out, destroys the intraductal structure and leads to the klystron ineage to become invalid. The quality of the cooling effect has a direct influence on the use of the klystron.
In the prior art, those skilled in the art have used a drift tube by forming a plurality of through holes in a metal monolithic structure. The common cooling structure is also used for cooling the integral structure of metal, the cooling liquid cannot reach the tube wall of the drift tube, and the cooling efficiency is not high. With the development of the multi-beam klystron towards a high power and wide frequency band, the drift tube body in the region from the output cavity to the collector electrode bears higher heat, and the cooling structure provided by the prior art is difficult to dissipate the heat of the drift tube in the region in time, so that the klystron is easy to work unstably or even damaged.
In order to overcome the technical defects in the prior art, a cooling structure for a high-power multi-beam klystron needs to be designed.
Disclosure of Invention
The invention aims to provide an efficient cooling structure of a klystron.
According to an aspect of the present invention, there is provided a cooling structure of a klystron, the klystron including at least one tubular drift tube; the cooling structure comprises a cavity plate, a water inlet and a water outlet, wherein the cavity plate is perpendicular to the drift tube, is sleeved with the drift tube, is sealed and fixed, and is provided with at least one water inlet and at least one water outlet; the first magnetic screen plate is perpendicular to the drift tube and is sleeved, sealed and fixed with the drift tube; and the collector magnetic screen is hermetically fixed with the cavity plate and the first magnetic screen plate so as to form a space surrounding the drift tube with the cavity plate and the first magnetic screen plate.
Preferably, the cooling structure further comprises a baffle ring disposed between the cavity plate and the first magnetic shield plate, the baffle ring having a plurality of slots formed therein.
Preferably, the cooling structure further comprises at least one middle magnetic shield plate having a plurality of through holes formed thereon, each middle magnetic shield plate being perpendicular to the drift tube and being sealingly fixed to the drift tube in a sleeved manner.
Preferably, the first magnetic screen plate and each intermediate magnetic screen plate are respectively fixed with a baffle ring, and each baffle ring is formed with a plurality of slots.
Preferably, the klystron includes a plurality of tubular drift tubes, the plurality of slots being respectively radially disposed adjacent the drift tubes.
Preferably, the drift tube and the cavity plate are respectively made of oxygen-free copper, and a tungsten layer is preferably formed on the inner surface of the drift tube.
Preferably, the collector magnetic shield and each magnetic shield are made of iron, and preferably, the magnetic shield surface is formed with a copper layer formed by pressure diffusion welding.
Preferably, the drift tube is brazed to the magnetic shield.
Preferably, the baffle ring is made of oxygen-free copper.
According to yet another aspect of the present invention, there is provided a klystron including a cooling structure of the klystron as described above.
The invention has the following beneficial effects:
according to the cooling structure of the klystron, the drift tube between the output cavity of the klystron and the collector is designed into the tubular drift tube, and the cavity plate, the magnetic screen plate and the collector magnetic screen form a space surrounding the drift tube, so that cooling liquid in the space can surround the drift tube to cool the tube wall, the heat of the tube wall of the drift tube can be dissipated timely, the cooling efficiency of the cooling structure on the drift tube is improved, and the stable work of the klystron is ensured. The cooling structure can be assembled with the high-frequency part of the klystron and the collector by brazing, and the preparation process is simple. The cooling structure can be applied to a single-injection klystron and can also be applied to a multi-injection klystron, and the working stability of the multi-injection klystron is effectively improved. The cooling structure of the invention can form a plurality of spaces around the drift tube by further providing the middle magnetic shield on which a plurality of through holes are formed, thereby prolonging the contact time of the cooling liquid and the tube wall of the drift tube, leading the cooling liquid to more fully dissipate the heat of the tube wall and further improving the cooling efficiency. Furthermore, the collector magnetic screen and each magnetic screen plate are made of iron, and copper layers formed by pressure diffusion welding are formed on the surfaces of the collector magnetic screen and each magnetic screen plate, so that the welding airtightness of the magnetic screen plates and the drift tube can be ensured. The tubular drift tube is formed by oxygen-free copper, and the tungsten layer is formed on the inner surface of the tubular drift tube, so that the electron bombardment resistance of the drift tube can be improved, and the working stability of the klystron is ensured. Furthermore, the cooling structure of the invention also comprises a baffle ring arranged between the cavity plate and the magnetic shield plate or between the magnetic shield plates, which is used for supporting the cavity plate and the magnetic shield plates, ensuring enough space to ensure that the cooling liquid is fully contacted with the tube wall of the drift tube, and ensuring the stability of the cooling structure. Through being provided with a plurality of flutings on keeping off the ring, the coolant liquid can directly reach each drift tube pipe wall through the fluting, ensures that every drift tube can both be cooled.
Drawings
Fig. 1 is a sectional view of a cooling structure in a preferred embodiment provided by the present invention.
FIG. 2 is a top view of a support ring of the present invention.
Detailed Description
In order to more clearly illustrate the invention, the invention is further described below with reference to preferred embodiments and the accompanying drawings. Similar parts in the figures are denoted by the same reference numerals. It is to be understood by persons skilled in the art that the following detailed description is illustrative and not restrictive, and is not to be taken as limiting the scope of the invention.
In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of one or more embodiments. It may be evident, however, that such embodiment(s) may be practiced without these specific details.
In known klystrons, a plurality of through holes are typically formed in a metal monolithic structure to serve as drift tubes, and cooling of the drift tubes is accomplished by cooling the metal monolithic structure. The cooling liquid of the cooling structure can not reach the root of the drift tube, and the cooling efficiency is poor. For a high-power multi-beam klystron, the structure is more complex, the heat quantity borne by a drift tube body in a region from an output cavity to a collector is higher, and the cooling structure provided by the prior art cannot dissipate the heat quantity of the drift tube in the region in time, so that the klystron is unstable in work and even damaged easily. The cooling structure is an improvement of the conventional cooling structure, and the drift tubes are arranged in a split manner and are provided with spaces which enable cooling liquid to surround all the drift tubes, so that the tube walls of the drift tubes are effectively cooled.
The cooling structure according to the preferred embodiment of the present invention will be explained in detail with reference to fig. 1.
As shown in fig. 1, the preferred embodiment provides a cooling structure for a klystron, unlike the prior art in which a plurality of through holes are formed in a metal block-shaped integral structure for forming a drift tube, the klystron according to the embodiment of the invention includes at least one tubular drift tube 11, for example, a single tubular drift tube is provided for a single-injection klystron, the single tubular drift tube is located at the center of the klystron, or a plurality of tubular drift tubes 11 are provided for a multi-injection klystron, and the plurality of tubular drift tubes 11 are arranged in a split manner and are arranged in a circular ring shape. The cooling structure comprises a cavity plate 12, wherein a plurality of through holes corresponding to the drift tube are formed on the cavity plate, so that the cavity plate 12 is perpendicular to the drift tube 11 and is sleeved, sealed and fixed with the drift tube 11. The cavity plate is formed with at least one water inlet 121 and at least one water outlet 122, and it is to be understood that the cooling structure of the present invention is also cooled using cooling water or other cooling liquid. The cavity plate 12 may be a disk shape as shown in the preferred embodiment, or may be other shapes as long as it is perpendicular to the drift tube and is sleeved and sealed with the drift tube. The cooling structure further comprises a first magnetic screen plate 13, wherein a plurality of through holes corresponding to the drift tube are formed on the first magnetic screen plate 13, so that the first magnetic screen plate 13 can be perpendicular to the drift tube 11 and is sleeved with the drift tube 11 to be sealed and fixed. The cooling structure further comprises a collector magnetic shield 14, wherein the collector magnetic shield 14 is arranged relatively close to the collector so as to ensure that the electron beam is focused in the region from the output cavity to the collector without generating a divergence phenomenon. The collector magnetic screen 14 is located at the periphery of the first magnetic screen 13, surrounds the first magnetic screen 13, and is fixed with the first magnetic screen 13 in a sealing manner, the position of the collector magnetic screen 14 corresponding to the cavity plate 12 is provided with a first positioning groove 141, and the collector magnetic screen is fixed with the cavity plate 12 in a sealing manner through the first positioning groove 141, so that the transverse shearing force applied to the cavity plate in the working process of the klystron is reduced. The collector magnetic screen 14, the cavity plate 12 and the first magnetic screen plate 13 form a space surrounding the drift tube 11, and the space is used for cooling liquid around the wall of the drift tube 11. When cooling liquid is introduced from the water inlet, the cooling liquid flows into the space from the water inlet and reaches the wall of each drift tube, and after the accommodating space is filled with the cooling liquid, the cooling liquid flows out through the water outlet on the cavity plate. Through the cooling structure of this preferred embodiment for the coolant liquid can encircle drift tube pipe wall direct cooling, carries out abundant heat exchange with the drift tube pipe wall, in time dissipates the heat of drift tube pipe wall, improves the cooling efficiency of cooling structure to the drift tube, guarantees the steady operation of speed adjusting pipe. According to the cooling structure, the cooling structure can be independently applied to the part between the output cavity of the klystron and the collector, the assembly with the klystron high-frequency band and the collector is easy to realize, and the assembly with the high-frequency structure realized by the existing blocky metal can be realized. Meanwhile, the cooling structure can also be expanded to the cooling structure of each cavity of the multi-injection klystron, so that the working stability of the multi-injection klystron is further improved. According to the klystron cooling structure of the present invention, the drift tube 11 and the cavity plate 12 may be made of oxygen-free copper, respectively. Preferably, a tungsten layer is formed on the inner surface of the drift tube 11, so that the resistance of the drift tube to electron bombardment can be improved. The magnetic screen plate and the collector magnetic screen are made of iron, for example, and meet the requirement of the klystron on a magnetic field.
As a preferred embodiment of the present invention, the cooling structure further comprises a baffle ring 15 disposed between the cavity plate 12 and the first magnetic shield plate 13, and the baffle ring 15 may be made of oxygen-free copper. The first magnetic screen plate 13 is provided with a positioning slot 131, and the baffle ring 15 is positioned by the positioning slot 131 and fixed with the cavity plate 12. The transverse shearing force for positioning the baffle ring through the positioning groove 131 can be reduced, the baffle ring 15 can support the cavity plate and the magnetic screen plate, sufficient space is ensured to enable cooling liquid to be in full contact with the wall of the drift tube, and the stability of a cooling structure is ensured. As shown in fig. 2, a plurality of radial slots 151 are formed in the baffle ring 15, and the slots may be uniformly distributed or arranged adjacent to the drift tubes, so that the cooling liquid reaches the walls of the drift tubes 11 through the slots 151, thereby ensuring that each drift tube is sufficiently cooled.
According to another preferred embodiment of the present invention, the cooling structure further comprises at least one intermediate magnetic shield 16 having a plurality of through holes formed therein, the intermediate magnetic shield being disposed perpendicular to the drift tube 11 and sealingly fitted with said drift tube 11. The intermediate magnetic screen plate 16 is made of an iron material, and meets the requirement of the region on a magnetic field. The middle magnetic screen plate 16 divides a single space into a plurality of multi-layer spaces surrounding the drift tube 11, other through holes formed in the middle magnetic screen plate provide communication of the spaces of all layers, and after the spaces of all layers are filled with cooling liquid, the cooling liquid flows out from the water outlet, so that the contact time of the cooling liquid and the tube wall of the drift tube is prolonged, the heat of the tube wall is fully dissipated by the cooling liquid, and the cooling efficiency is further improved under the condition that the requirements of the region on the magnetic field are met. Further, retaining rings 15 are respectively fixed between the first magnetic screen plate 13 and the intermediate magnetic screen plate 16, between the intermediate magnetic screen plates, and between the intermediate magnetic screen plates and the cavity plate, as shown in fig. 2, a plurality of slots 151 are formed on each retaining ring 15. And the middle magnetic screen plate is provided with a positioning groove for fixing the baffle ring. In the preferred embodiment of the present invention where the multi-beam klystron includes a plurality of tubular drift tubes, the plurality of slots 151 may be respectively disposed radially adjacent to the drift tubes 11. The structure can ensure that the cooling liquid is fully contacted with the wall of each drift tube while ensuring the space stability. In addition, the diameters of the baffle rings can be the same or different, and the baffle rings can be selected by the skilled in the art according to the needs.
Further, in order to ensure the air tightness of the welding between the intermediate magnetic screen plate and the drift tube, the surfaces of the first magnetic screen plate 13 made of iron and each intermediate magnetic screen plate 16 are provided with copper layers 17 formed by pressure diffusion welding. The drift tube 11 is brazed with the first magnetic screen 13 and each intermediate magnetic screen 16.
There is further provided in accordance with a preferred embodiment of the present invention a klystron including a cooling structure as described above.
The advantages of the klystron over the prior art are the same as the advantages of the cooling structure over the prior art, and are not described in detail here.
It will be apparent that various other modifications and adaptations of the present invention will be apparent to those skilled in the art upon reading the foregoing disclosure without departing from the spirit and scope of the invention, and it is intended that all such modifications and adaptations come within the scope of the appended claims.

Claims (10)

1. A cooling structure of a klystron is characterized in that,
the klystron comprises at least one tubular drift tube;
the cooling structure includes:
the cavity plate is perpendicular to the drift tube, is sleeved and sealed with the drift tube and is fixed with the drift tube in a sealing way, and is provided with at least one water inlet and at least one water outlet;
a first magnetic screen plate which is perpendicular to the drift tube and is sleeved, sealed and fixed with the drift tube,
and the collector magnetic screen is hermetically fixed with the cavity plate and the first magnetic screen plate so as to form a space surrounding the drift tube with the cavity plate and the first magnetic screen plate.
2. The cooling structure of a klystron as set forth in claim 1 further comprising a baffle ring disposed between said cavity plate and said first magnetic shield, said baffle ring having a plurality of slots formed therein.
3. The klystron cooling structure of claim 1 further comprising at least one intermediate magnetic shield having a plurality of through holes formed therein, each intermediate magnetic shield being perpendicular to the drift tube and being sealingly nested with the drift tube.
4. The cooling structure of a klystron as defined in claim 3 wherein said first and intermediate magnetic screens have retaining rings fixed thereto, each retaining ring having a plurality of slots formed therein.
5. The cooling structure of a klystron as set forth in claim 2 or 4, wherein said klystron comprises a plurality of tubular drift tubes, said plurality of slots being respectively disposed radially adjacent to the drift tubes.
6. The cooling structure of a klystron as set forth in claim 1, wherein said drift tube and said cavity plate are each made of oxygen-free copper, preferably, a tungsten layer is formed on an inner surface of said drift tube.
7. The cooling structure of a klystron as set forth in claim 1 or 3, wherein the collector magnetic shield and each magnetic shield plate are made of iron, preferably the magnetic shield plate surface is formed with a copper layer formed by pressure diffusion welding.
8. The klystron cooling structure of claim 1 or 5, wherein the drift tube is brazed to the magnetic shield.
9. The cooling structure of a klystron as set forth in claim 2 or 5, wherein said baffle ring is made of oxygen-free copper.
10. A klystron, comprising the cooling structure of the klystron of claim 1.
CN201811615275.0A 2018-12-27 2018-12-27 Cooling structure for klystron Active CN111383874B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201811615275.0A CN111383874B (en) 2018-12-27 2018-12-27 Cooling structure for klystron

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201811615275.0A CN111383874B (en) 2018-12-27 2018-12-27 Cooling structure for klystron

Publications (2)

Publication Number Publication Date
CN111383874A true CN111383874A (en) 2020-07-07
CN111383874B CN111383874B (en) 2021-10-22

Family

ID=71220841

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201811615275.0A Active CN111383874B (en) 2018-12-27 2018-12-27 Cooling structure for klystron

Country Status (1)

Country Link
CN (1) CN111383874B (en)

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4049995A (en) * 1975-05-07 1977-09-20 English Electric Valve Co., Ltd. Resonant cavity tubes
US4099133A (en) * 1976-02-05 1978-07-04 English Electric Valve Company Limited Klystron amplifiers
US9013104B1 (en) * 2013-04-22 2015-04-21 Calabazas Creek Research, Inc. Periodic permanent magnet focused klystron
CN207217462U (en) * 2017-09-04 2018-04-10 湖北汉光科技股份有限公司 Velocity modulation tube chamber cooling structure

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4049995A (en) * 1975-05-07 1977-09-20 English Electric Valve Co., Ltd. Resonant cavity tubes
US4099133A (en) * 1976-02-05 1978-07-04 English Electric Valve Company Limited Klystron amplifiers
US9013104B1 (en) * 2013-04-22 2015-04-21 Calabazas Creek Research, Inc. Periodic permanent magnet focused klystron
CN207217462U (en) * 2017-09-04 2018-04-10 湖北汉光科技股份有限公司 Velocity modulation tube chamber cooling structure

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
薛明 等: "大功率速调管收集极流固耦合换热数值模拟", 《电子与信息学报》 *

Also Published As

Publication number Publication date
CN111383874B (en) 2021-10-22

Similar Documents

Publication Publication Date Title
CN114023617B (en) Annular multi-electron-beam radiation source based on cold cathode
US7302044B2 (en) X-ray generator tube comprising an orientable target carrier system
US3293480A (en) Pole piece and collector assembly for high frequency electron discharge device with cooling ribs
EP1930936A1 (en) X-ray tube
CN111383874B (en) Cooling structure for klystron
CN111383872B (en) Cooling structure for klystron
KR20100082781A (en) Device for dissipating lost heat, and ion accelerator arrangement comprising such a device
US3876901A (en) Microwave beam tube having an improved fluid cooled main body
US3274429A (en) High frequency electron discharge device with heat dissipation means
CN116844931B (en) X-ray tube, cathode chassis assembly and tube core assembly thereof
CN106816804B (en) Micro-channel metal foam disc-shaped laser crystal cooling device
CN116669274A (en) Scanning type liquid cooling X-ray transmission conversion target, electron accelerator and electronic equipment
US4684844A (en) Liquid cooled stationary anode tubes
EP2873086B1 (en) Cooling arrangement for x-ray generator
AU2002352352A1 (en) Electron collector
CN104900467A (en) Radial radiating beam electron gun suitable for radial logarithmic spiral microstrip slow-wave line
US3250947A (en) Discharge device having electron grids with heights rising substantially above the grid support rims
US5418427A (en) Internally cooled forward wave crossed field amplifier anode vane
CN109755084A (en) X-band bimodulus multiple-beam klystron
CN210535622U (en) X-ray tube anode cooling structure
JPS60243930A (en) Electron tube having cathode cooler
CN217719490U (en) Kovar core column grid-control X-ray tube
US2653259A (en) Electron discharge device anode
US2528849A (en) High-power electron discharge device
CN116759279A (en) Liquid cooling radiating folding waveguide slow wave structure and traveling wave tube

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant