This invention relates to magnetrons.
A magnetron is a microwave power source in which electrons travel in a vacuum between a cathode and an anode in a magnetic field. Energy is built up in resonance cavities due to the electron movement and extracted from the magnetron for the required application. In higher power systems, the potential difference between the cathode and anode may be tens of kilovolts. Usually, the anode is earthed and the cathode held negative with respect to the anode, the cathode being connected via a cathode lead structure to an external power source to maintain the correct cathode voltage and often also to supply heater current for a cathode heater. At higher output power levels there may be issues concerning RF leakage, electrical breakdown and accessibility of high voltage parts to users.
According to a first aspect of the invention, a magnetron comprises: a cathode; a cathode supply lead structure connected to the cathode; a connector for electrically connecting to the lead structure and adapted for connection to an external power supply; an electrically conductive casing surrounding the connector; and electrically insulating material included within the casing and at least partially surrounding the connector.
Use of the electrically insulating material and including the connector as an integral part of the magnetron provide a particularly compact device. This is valuable for applications such as radiotherapy machines where the magnetron is mounted on a moving gantry and space is limited. The socket casing creates a controlled environment where the electrically insulating material improves voltage hold-off, prevents ionization of air and reduces electromagnetic leakage, enabling the magnetron to be operated at relatively high voltages with smaller path lengths between parts of the magnetron at high potential differences. For example, in one embodiment, the magnetron is operable with a cathode voltage in the range of 20 kV to 120 kV. The improved breakdown characteristics from the invention are advantageous where the magnetron is deployed at altitude, for example, between 3000 and 5000 metres above sea level. The compact size eases shipping and handling and requires less warehouse space than might otherwise be the case.
RF leakage from cathode supply lead structure is significantly reduced by the casing, such that there is no risk of interference with external system elements.
In one embodiment, the casing is earthed and may be electrically connected to the anode. This eliminates the need for a user to provide/maintain external clearances to the magnetron. This allows a system incorporating the magnetron to be more compact. An earthed casing also eliminates the presence of exposed high voltage terminals which may otherwise present a risk to personnel. The casing may be integral with the connector. The connector may be positioned in different locations relative to the casing. For example, in one embodiment it is arranged on the longitudinal axis of a cylindrical casing. In another embodiment, it is integral with the cylindrical wall of a cylindrical casing. This ability to re-position the connector gives improved design flexibility and can also be useful when retrofitting the magnetron into a pre-existing system.
In one embodiment, the electrically insulating material at least partially surrounds the cathode supply lead structure. The electrically insulating material may be, for example, at least one of: silicone rubber; ferrite-loaded rubber; resin; oil; and arc suppressant gas. Other materials may also be suitable. Some insulating materials may also provide RF absorption, reducing the risk of RF energy building up within the casing. A combination of insulating materials may be used together, for example, solid insulating material around part of the magnetron and arc suppressant gas being included in the remainder of the casing volume.
In one embodiment, the electrically insulating material is a first solid material surrounded by a second resiliently deformable solid material. The first solid material may be arranged, for example, to closely conform to parts at cathode potential to give good breakdown and leakage performance and the second solid material provides cushioning to reduce movement and allow for thermal expansion during use.
Where the insulating material is a solid, it may encapsulate at least part of the lead structure.
The insulating material may be at least two sections joined together, for example, two sections could be pushed together when the device is assembled rather than being provided a single block of insulator. This can be useful in allowing access for maintenance purposes, for example, and for manufacturing the magnetron.
In one embodiment, the casing is in two separable sections. This facilitates manufacture and access to the cathode supply lead structure. An RF seal may be included at the join between the casing sections. The seal may be a gasket, tape, weld, RF choke or take some other form. The casing may be in more than two separable sections.
In one embodiment, the connector comprises a socket adapted to receive a male external power connector. In another embodiment, the connector comprises a plug adapted to receive a female external power connector. A connector may include both a socket and a plug or only a socket or only a plug. A connector allowing connection using a plug and socket configuration can afford a secure mechanism and ease of use for an operator when connecting to an external power supply.
In one embodiment, the cathode supply lead structure is radially extensive relative to the cathode, sometimes referred to as a sidearm arrangement. The sidearm insulator can be glass or ceramic but ceramic permits the sidearm to be shorter in length giving a more compact device. In an alternative arrangement, the cathode supply lead structure is arranged in the direction of the cathode longitudinal axis.
In one embodiment, the cathode supply lead structure comprises two substantially parallel conductors.
In one embodiment, a container is located between the connector and the cathode supply lead structure and at least one electrical component is housed within the container. The electrically insulating material may surround the container to prevent or reduce the risk of voltage breakdown and RF leakage. The container may be electrically conductive and at cathode supply voltage during operation.
In one embodiment, a fixing mechanism is included on the casing for securing an external conductor from the external power supply.
A magnetron in one embodiment is operable at a current of between 0 to 1 kA.
In one embodiment, at least one electrical component is enclosed within the casing and forms part of the magnetron and cathode supply circuit. The component or components may include resistors and capacitors that form an integrated matching circuit for the magnetron when the magnetron is connected to an external modulator. This enables the magnetron performance to be matched with the modulator output by matching, for example, characteristics such as voltage, resistance, inductance and capacitance.
According to a second aspect of the invention, a microwave system comprises: a magnetron in accordance with the first aspect of the invention, a power supply and an electrical conductor connecting the power supply to the cathode via the cathode supply lead structure and the connector. The electrical conductor may have earth screening.
Some embodiments of the present invention will now be described by way of example only, and with reference to the accompanying drawings, in which:
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The leads 6 and 7 are vacuum sealed to a ceramic sidearm arrangement 8 to create the vacuum envelope and are connected to a connector 9 which is configured as a socket 10 to receive an external power supply connection. The socket wall 11 is of dielectric material. The leads 6 and 7 outside the vacuum envelope of the magnetron and the connector 9 are encapsulated in potting material 12 which in this case is silicone rubber.
A cylindrical metal casing 13 surrounds the socket 11 and cathode supply lead structure 5 within the sidearm arrangement 8. The socket 10 is integral with the casing 13 which is electrically connected to the magnetron anode 3 at 64 and the connector 9 at 65, being earthed during operation. The casing is made up of a first part 14 and a second part 15, with a seal between them 66.
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A cathode supply lead structure 22 is sealed to a surrounding ceramic insulator 23 included in a sidearm structure and forming part of the magnetron vacuum envelope. Two leads 24 and 25 of the cathode supply lead structure 22 extend through the solid insulating material 17 to the socket 16.
During operation, an external power supply is connected to the magnetron via an electrical conductor 27 having a plug lead supply structure 28 and which terminates in a plug 29. The plug 29 is configured to conform to the internal shape of the socket 16 and electrically connect the plug lead supply structure 28 and the cathode supply lead structure 22. The plug lead supply structure 28 is surrounded by dielectric material 30 and an electrically conductive sheath 31 with a flange 32 by which the sheath 31 is mechanically fixed to the casing 19 and earthed through electrical contact with the casing 19.
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The present invention may be embodied in other specific forms without departing from its 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.
Number | Date | Country | Kind |
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1901384.6 | Jan 2019 | GB | national |