This invention relates to magnetrons.
Referring to
The transformer operates at mains frequency, but this is a disadvantage, because the insulation between primary and secondary is heavy and bulky.
It would be preferred to operate transformer 14 at high frequency, because the size and weight of the transformer would be greatly reduced.
However, this would have the disadvantage of causing significant heating and power loss because power will be dissipated in the material of the alloy sleeves 11, 12.
Thus, a high frequency supply from the secondary of the transformer 14 would generate a high frequency alternating current travelling along the core 8 and returning along the flared region 10. Since Kovar is a ferromagnetic material, significant magnetic flux would be generated circulating through the bulk of the sleeve 12, also alternating at high frequency. This in turn would generate currents in the sleeve 12, which would cause power loss. The same situation applies to sleeve 11.
It has been proposed in JP3187129 to provide a capacitor type HV input terminal to a magnetron, which input terminal is coated with a conductive layer and carries a high frequency filament current.
The invention provides a magnetron, in which the cathode includes two parts joined by sleeves of ferrous alloy spaced by a sleeve of insulating material, the ferrous alloy sleeves having magnetic flux induced in them, in use, from a high frequency supply for heating the cathode, and the ferrous alloy sleeves having a surface coating of conductive material.
The coating enables the power loss caused by the cathode heater currents induced by the magnetic flux by the high frequency supply to be reduced in the ferrous alloy sleeves.
One way of carrying out the invention will now be described in detail, by way of example, with reference to the accompanying drawings, in which:
Like reference numerals have been given to like parts throughout all the drawings.
The magnetron of the invention differs from the known magnetron by virtue of the type of filament (cathode) heater power supply, and by virtue of the sleeves 11, 12. Only the sleeve 12 is illustrated (sleeve 11 will be the same), because the remainder of the magnetron is as illustrated in
In accordance with the invention, the input of the transformer 14 is driven by a high frequency switched mode power supply D, instead of being driven at mains frequency. The bulk of the isolation transformer is thus greatly reduced compared to one operating at mains frequency.
Also, in accordance with the invention, the sleeves 11, 12 are of Kovar as before, but now have a surface coating of conductive material 15.
Referring to
Because the currents in the sleeve and the core are high frequency, the induced magnetic field will be a high frequency alternating field, and the induced currents i will likewise be high frequency. It follows that, due to the skin effect, those high frequency currents i will predominantly be carried in the surface coating of conductive material, and very little will be carried by the Kovar itself. Hence, there will be little if any heating and losses in the body of the Kovar itself.
An advantage of the arrangement is that the same performance can be attained from the magnetron as with previous heater supplies operating at mains frequency, but the heater supply and isolation transformer are now provided by smaller, lighter and cheaper components (for example, an isolation transformer operating at 50 or 60 Hz can weigh about 100 kg, while one operating at 15 kHz can weigh only 1 kg).
It is convenient to coat the entire inner and outer curved surfaces of the sleeves with conductive material, but this is not essential. For example, the sleeves may be coated only on the inner curved surface, or only on the outer curved surface. Furthermore, whether the coating is on one curved surface or both, it is not necessary for the coating to be complete. For example, the coating could be in the form of strands of conductive material extending in an axial direction, or could be in the form of a mesh. Copper is preferred for the conductive material, but conducting material other than copper could be used, for example, silver or any other material with low resistivity.
In the case of copper, a uniform coating thickness on the inner and outer curved surfaces of from 1 micron (10−6 m) to 50 microns, preferably from 5 microns to 30 microns, may be provided.
Furthermore, it is not necessary for the material of the sleeves bearing the conductive with that of the insulating sleeve may be used, for example, the nickel-iron group of alloys.
The frequency of the switched mode power supply D can be in the range of from 1 kHz to 1 MHz, but is preferably in the range of from 10 kHz to 500 kHz. The power supply C does not have to be switched mode. Other designs of high frequency supply may instead be used.
Number | Date | Country | Kind |
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1005119.1 | Mar 2010 | GB | national |
This application is a National Stage Application of International Application No. PCT/GB2011/050616, filed Mar. 25, 2011, which claims the priority of Great Britain Patent Application No. 1005119.1, filed Mar. 26, 2010.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB2011/050616 | 3/25/2011 | WO | 00 | 12/18/2012 |