This application claims priority to Chinese Patent Application No. 201811631854.4 filed on Dec. 28, 2018 in the National Intellectual Property Administration of China, the disclosure of which is hereby incorporated herein by reference in its entirety.
The disclosed technology relates to an external grid-controlled hot cathode array electron gun.
Thermal electron emission relies on raising temperature of an object to provide additional energy to electrons inside the object, allowing some high-energy electrons to escape across the barrier of a surface of the object. A hot cathode electron gun is mainly divided into a directly heating type hot cathode electron gun and an indirectly heating type hot cathode electron gun depending on the heating ways. In the indirectly heating type hot cathode electron gun, a filament is not in contact with an emission source, and heat is transferred to the emission source through a heat medium. In the directly heating type hot cathode electron gun, a filament and an emission source are in direct contact with each other.
For a radiation source device that requires multiple electron sources, there is a need to provide an array type electron gun which can achieve effective control of an electron beam.
According to an aspect of the disclosed technology, there is provided an external grid-controlled hot cathode array electron gun, including: an insulated cathode base; a filament, the filament being in form of a strip and mounted on a surface of the cathode base; a plurality of hot cathode emission elements mounted on a surface of the filament facing away from the cathode base; and a grid-controlled structure comprising an insulated grid-controlled structure body and a plurality of through holes provided in the grid-controlled structure body, one side of the grid-controlled structure body abutting against the cathode base so that the filament is held between the grid-controlled structure body and the cathode base, and so that the plurality of hot cathode emission elements on the surface of the filament are inserted into the plurality of through holes, respectively.
In an embodiment of the disclosed technology, the grid-controlled structure further comprises a plurality of grid-controlled switches, and each of said plurality of grid controlled switches is mounted to an end of one of the plurality of through holes of the grid-controlled structure body such that the plurality of grid-controlled switches are capable of controlling the plurality of hot cathode emission element.
In an embodiment of the disclosed technology, each of the grid-controlled switches further comprises a gridding element, a Kovar ring, and a balancer ring and a lead wire; the grid-controlled structure body is provided with a recessed groove at an end of the through hole away from the hot cathode emission elements, an inner diameter of the Kovar ring is greater than an inner diameter of the through hole, and the Kovar ring is received in the recessed groove such that an end surface of the Kovar ring is conformed and jointed to a bottom surface of the recessed groove and an outer wall surface of the Kovar ring is conformed and jointed to an inner wall surface of the recessed groove; the gridding element is accommodated in the Kovar ring and is jointed to the bottom surface of the recessed groove, and the balancer ring is received in the Kovar ring and abuts against the gridding element so as to clamp the gridding element between the balancer ring and the bottom surface of the recessed groove; the lead wire is connected to the Kovar ring.
In an embodiment of the disclosed technology, the grid-controlled structure body is provided with a first lead wire hole matching the lead wire and the cathode base is provided with a second lead wire hole matching the lead wire, one end of the lead wire is connected to the Kovar ring, and the other end sequentially passes through the first lead wire hole and the second lead wire hole to extend to a side of the cathode base facing away from the hot cathode emission elements.
In an embodiment of the disclosed technology, each of the grid-controlled switches further comprises a stop member,
wherein the Kovar ring and the balancer ring are respectively provided with a first position-limit hole portion and a second position-limit hole portion, which are disposed in pair, in a circumferential direction thereof at a junction between the Kovar ring and the balancer ring, the first position-limit hole portion is located at an outer circumference of the Kovar ring, the second position-limit hole portion is located at an inner circumference of the balancer ring, and the first position-limit hole portion and the second position-limit hole portion, which are disposed in pair, together define a position-limit circular hole; and, the grid-controlled structure main body is provided with a mounting hole corresponding to the position-limit circular hole, so that the stop member is inserted into the position-limit circular hole and the mounting hole to fix the Kovar ring and the balancer ring.
In an embodiment of the disclosed technology, the cathode base comprises a through groove, and the filament is mounted to the through groove, a width of the through groove is not less than a width of the filament, and a depth of the through groove is greater than a thickness of the filament; and the grid-controlled structure body includes a projection that cooperates with the through groove to clamp the filament therebetween.
In an embodiment of the disclosed technology, the cathode base comprises a plurality of ridges, a space is defined between every adjacent two of the ridges and the through groove is formed on a top side of each of the plurality of ridges.
In an embodiment of the disclosed technology, a reflective layer is provided, between adjacent two of the ridges, on a surface of the cathode base.
In an embodiment of the disclosed technology, the filament is in a shape of a , and includes a filament body portion sandwiched between the cathode base and the grid-controlled structure body and a filament folded portion extending along two end faces of the cathode base, the two end faces of the cathode base being perpendicular to the surface of the cathode base on which the filament is mounted.
In an embodiment of the disclosed technology, the filament has a width ranged from 1 mm to 2 mm and a thickness ranged from 0.03 mm. 0.05 mm.
The above various embodiments of the disclosed technology provide an aspect, providing an external grid-controlled hot cathode array electron gun, including: an insulated cathode base; a filament, the filament being in form of a strip and mounted on a surface of the cathode base; a plurality of hot cathode emission elements mounted on a surface, facing away from the cathode base, of the filament; a grid-controlled structure comprising an insulated grid-controlled structure body and a plurality of through holes disposed in the grid-controlled structure body; one side of the grid-controlled structure body abuts against the cathode base to clamp the filament between the grid-controlled structure body and the cathode base and the plurality of hot cathode emission elements on the surface of the filament are inserted into the plurality of through holes respectively. The external grid-controlled hot cathode array electron gun of the disclosed technology may be provided with increased or decreased number of electron gun arrays as required, can realize splicing of multiple sets of electron gun arrays, can flexibly meet the needs of radiation source devices requiring multiple electron sources, and have advantages such as a simple manufacturing process, good consistency, fast startup and a long life.
Description of the disclosed technology by referring the drawings below will make other objects and advantages of the disclosed technology be apparent and be favor of complete understanding of the disclosed technology.
The technical solutions of the disclosed technology will be further specifically described below by way of embodiments and with reference to the accompanying drawings. In the description, the same or similar reference numerals indicate the same or similar parts. The description of the embodiments of the disclosed technology made with reference to the accompanying drawings is intended to illustrate the general inventive concept of the disclosure, and should not be construed as a limitation of the disclosure.
In the following detailed description, numerous specific details are set forth for convenient of interpretation so as to understand the embodiments of the disclosed technology. It may be appreciated that one or more embodiments may be practiced without these specific details. Additionally, structures and devices may be shown diagrammatically in the drawings.
According to the disclosed technology, there is provided an external grid-controlled hot cathode array electron gun, which includes: an insulated cathode base; a filament in form of a strip, mounted on a surface of the cathode base; a plurality of hot cathode emission elements mounted on a surface of the filament facing away from the cathode base; and a grid-controlled structure comprising an insulated grid-controlled structure body and a plurality of through holes disposed in the grid-controlled structure body; wherein a side of the grid-controlled structure body abuts against the cathode base such that the filament is held or clamped between the grid-controlled structure body and the cathode base and that the plurality of hot cathode emission elements on the surface of the filament are inserted into the plurality of through holes respectively.
In an exemplary embodiment of the disclosed technology, as shown in
In another embodiment, as shown in
In the embodiments shown in
In still another embodiment, the hot cathode emission elements 1 are evenly disposed on the surface of the filament 2 along the length direction of the filament 2. With this configuration, the filament 2 can uniformly heat each of the hot cathode emission elements 1 so that the respective hot cathode emission elements 1 have a same starting time, thereby obtaining a plurality of electron beams having good uniformity while preventing the hot cathode emission elements 1 from being damaged due to local overheating and thereby ensuring a long life of the hot cathode emission elements 1.
In an exemplary embodiment, a surface of the cathode base 3 facing the filament 2 is provided with a through groove 32, and the filament 2 is mounted in the through groove 32. A width of the through groove 32 is not less than the width of the filament 2, and the depth of the through groove 32 is greater than a thickness of the filament 2. Further, the grid-controlled structure 4 is provided with a projection on the surface facing the cathode base 3 to match the through groove 32. The projection is provided to match the through groove 32 to clamp the filament 2 therebetween. The through groove 32 may penetrate through the cathode base 3 along the length direction of the cathode base 3. The cathode base 3 is made of alumina ceramic and thereby has a good hardness, a high temperature resistance, good electrical insulation and heat insulation. The through groove 32 is used to position the filament 2 and cooperate with the grid-controlled structure 4. In order to obtain a better fixation of the filament 2 in the through groove 32, a bottom surface of the through groove 32 is matched with the surface of the filament 2 facing the through groove 32 so as to conform to the surface of the filament 2. In the embodiment as shown in
According to an embodiment of an aspect of the disclosure, as shown in
Referring to
In an exemplary embodiment, as shown in
In order to increase heating efficiency of the filament, in accordance with an embodiment of the disclosed technology, as shown in
In one embodiment, the grid-controlled structure 4 further includes a plurality of grid-controlled switches 42, each being mounted to an end of a corresponding one of the plurality of through holes of the grid-controlled structure body 44 such that the plurality of grid-controlled switches 42 may control the plurality of hot cathode emission elements 1 respectively. In one embodiment, the number of the grid-controlled switches 42 is equal to the number of the hot cathode emission elements 1 and also to the number of the through holes.
Referring to
In an exemplary embodiment, the grid-controlled structure body 44 is provided with a first lead wire hole 442 matching with the lead wire 424, and the cathode base 3 is provided with a second lead wire hole 31 matching with the lead wire 424. One end of the lead wire 424 is connected to the Kovar ring 422, and the other end sequentially passes through the first lead wire hole 442 and the second lead wire hole 31 to the side of the cathode base 3 facing away from the hot cathode emission elements 1. As shown in
In one embodiment, as shown in
The external grid-controlled hot cathode array electron gun of the disclosure may be provided with increased or decreased number of electron gun arrays as required, can realize splicing multiple sets of electron gun arrays, can flexibly meet the needs of radiation source devices requiring multiple electron sources, and have advantages such as a simple manufacturing process, good consistency, fast startup and long life.
It will be understood by those skilled in the art that the embodiments described above are exemplary and can be modified by those skilled in the art, and the structures described in the various embodiments may be combined freely without conflict in terms of structure or principle.
The accompanying drawings are referred to describe the disclosed technology and however, they are intended to be illustrative of the preferred embodiments of the disclosure, instead of limiting the disclosed technology.
While some embodiments of the present general inventive concept have been shown and described, it will be understood by those of ordinary skill in the art may modify the embodiments without departing away from the present general inventive concept, and the scope is defined by the claims and their equivalents.
Number | Date | Country | Kind |
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201811631854.4 | Dec 2018 | CN | national |