ELECTRICAL ARRANGEMENTS
20210305000 · 2021-09-30
Assignee
Inventors
- Stuart William Andrews (Colchester, GB)
- Thomas Samuel Christopher (Colchester, GB)
- Daniel James Clay (Essex, GB)
Cpc classification
H01J5/02
ELECTRICITY
H01J7/24
ELECTRICITY
International classification
Abstract
An electrical arrangement, which may, for example be a magnetron, has a sealed chamber 12 and electrically insulating fluid contained within the chamber. A temperature expansion compensation bladder comprising a helical tube 13 is located within the chamber 12, the helical tube 13 having an end 15 open to ambient atmosphere outside the chamber 12 and having a closed end 14 within the chamber.
Claims
1. An electrical arrangement comprising: a sealed chamber; electrically insulating fluid contained within the chamber; a temperature expansion compensation bladder comprising a helical tube located within the chamber, the helical tube having an end open to ambient atmosphere outside the chamber and having a closed end within the chamber.
2. A magnetron comprising: a sealed chamber; electrically insulating fluid contained within the chamber; a temperature expansion compensation bladder comprising a helical tube located within the chamber, the helical tube having an end open to ambient atmosphere outside the chamber and having a closed end within the chamber.
3. The magnetron of claim 2 and comprising: a magnetron cathode; an electrical connector for connection to an external power source; a sidearm located within the chamber, the sidearm including an elongate envelope having a longitudinal axis and containing connections to the magnetron cathode; and high voltage leads connected between the sidearm and the electrical connector, the helical tube being located at least partially around the high voltage leads and extensive in the direction of the longitudinal axis of the sidearm.
4. The magnetron as claimed in claim 2 wherein the ambient atmosphere is air.
5. The magnetron as claimed in claim 2 wherein the electrically insulating fluid is a liquid.
6. The magnetron as claimed in claim 2 wherein the magnetron is at least one of: stored, transported and operated in an ambient temperature in the range −40 Celsius to +90 Celsius.
7. The magnetron as claimed in claim 6 wherein the magnetron is at least one of: stored, transported and operated in an ambient temperature in the range −25 Celsius to +70 Celsius.
8. The magnetron as claimed in claim 2 and including a support structure for holding the helical tube in position, the support structure allowing movement of the tube as it expands and contracts with changing temperature.
9. The magnetron as claimed in claim 8 wherein the support structure includes a plurality of support rods extensive in a longitudinal axial direction and a mechanical fixing arrangement to fix the tube to the plurality of support rods.
10. The magnetron as claimed in claim 9 wherein the support rods are of non-electrically conductive material.
11. The magnetron as claimed in claim 9 wherein the mechanical fixing arrangement comprises support cables.
12. The magnetron as claimed in claim 8 wherein the support structure is a cylindrical member located between the tube and high voltage leads supplying the magnetron cathode.
13. The magnetron as claimed in claim 12 wherein the cylinder is of electrically conductive material and is at ground during operation, the wall of the sealed chamber being electrically conductive and at ground during operation.
14. The magnetron as claimed in claim 2 and there being an electrical field across the helical tube during operation of the magnetron.
15. The magnetron as claimed in claim 2 and operable such that the cathode potential is maintained in the range −20 kV to −120 kV and the anode is at ground.
16. The magnetron as claimed in claim 2 wherein the wall of the sealed chamber is electrically conductive and at ground during operation of the magnetron.
17. A modulator system comprising: a sealed chamber; electrically insulating fluid contained within the chamber; a temperature expansion compensation bladder comprising a helical tube located within the chamber, the helical tube having an end open to ambient atmosphere outside the chamber and having a closed end within the chamber.
18. The modulator system of claim 17 and including a cylindrical structure within the space bounded by the helical tube and coaxial with the helical tube to provide electrical shielding.
Description
DESCRIPTION OF THE DRAWINGS
[0020] Some embodiments of the present invention will now be described by of example only, and with reference to the accompanying drawings, in which:
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] With reference to
[0029] A helical tube 3 is located within the chamber. It is formed from a material which is impervious to the insulating fluid and is capable of expanding and contracting. A plastics material may be suitable for the tube 3. The tube 3 has a sealed end 4 within the chamber 1 and an open end 5 which passes through, and is hermetically sealed to, the chamber wall and is open to ambient atmosphere, which typically is air.
[0030] When the temperature increase, which may be due to changes in the external environment and/or temperature increases during operation of the electrical arrangement, the insulating fluid 2 expands. The tube 3 contracts, allowing the fluid to take up a greater volume within the chamber and releasing any build-up of pressure which would otherwise occur. As the temperature drops, the volume of the oil reduces and the tube expands accordingly.
[0031] With reference to
[0032] The sidearm 9 is housed within a sealed chamber 12 which is shown in cross section. The chamber 12 is of an electrically conductive material and maintained at ground during operation. The HV leads 10 are at a potential in the range −20 kV to −120 kV. The chamber is filled with a dielectric material to prevent breakdown between the HV leads 10 and the wall of the chamber 12.
[0033] A helical tube 13 is contained within the chamber 12 and surrounds the HV leads 10 and external connector 11. The tube 13 has a sealed end 14 within the chamber and an open end 15 which is open to the ambient atmosphere, typically air.
[0034]
[0035] As the temperature increases, the dielectric fluid expands and the tube 13 contracts to compensate for the increased volume required by the dielectric fluid.
[0036] With reference to
[0037] With reference to
[0038] During operation, the chamber 23 is held at ground as is the cylindrical support 20 as it is in electrical contact with the chamber wall. The arrangement ensures that there is no electrical field within the part of the chamber occupied by the tube 19 and thus ionisation of the air within the tube is not a concern.
[0039] With reference to
[0040] An optional cylindrical screen 30 shown in
[0041] The present invention may be embodied in other specific forms without departing from its spirit or essential characteristics. The described embodiments are to be considered in all respects only as illustrative and not restrictive. The scope of the invention is, therefore, indicated by the appended claims rather than by the foregoing description. All changes that come within the meaning and range of equivalency of the claims are to be embraced within their scope.