This invention relates to a microwave applicator, and in particular to the use of sensors in such an applicator.
International Patent application No. WO95/04385 discloses apparatus for the treatment of menorrhagia which involves applying microwave electromagnetic energy at a frequency which will be substantially completely absorbed by the endometrium, monitoring the temperature to ensure that the endometrium tissue is heated to about 60°, and maintaining the microwave energy for a period of time sufficient to destroy the cells of the endometrium. A temperature sensor, in the form of a thermocouple, is used to monitor the temperature on an ongoing basis during the treatment.
If the thermocouple is constructed of metal, the magnetic field created by the microwaves around the device induces currents and/or direct heating of the thermocouple, which leads to errors in the temperature reading. As a result of this problem, it has been the practice to take temperature readings either when the power is off, which precludes real-time measurement, or using non-metallic sensors, such as fibre-optic sensors, which are much more expensive.
According to the invention, a microwave applicator comprises an applicator head adapted to transmit microwaves, and is characterised by further comprising at least one cancellation element positioned in the magnetic field of the microwaves so as to support induce currents which generate corresponding magnetic cancellation fields to create at least one region with a minimum magnetic field for placement of a sensor therein.
Thus, the microwave applicator can be used with a sensor such as a thermocouple positioned in said region of minimum magnetic field so as to reduce or eliminate the unwanted effects of magnetically induced currents in the sensor.
Preferably, the applicator head incorporates an antenna that transmits the microwaves, and each cancellation element is positioned alongside the antenna. Preferably, the antenna and cancellation element are embedded within a body of dielectric material.
Preferably, the cancellation element is arranged such that the region of minimum magnetic field is positioned close to an external surface of the body of dielectric material.
Preferably, the applicator is powered via a coaxial cable, and the antenna is an extension of the inner conductor of the coaxial cable into the body of dielectric material.
Preferably, the cancellation element is an elongated element which is arranged parallel to the antenna and is shorter in length than the antenna. Preferably, the cancellation element comprises a metallic conductor such as a metallic pin.
Preferably, a sensor such as a temperature sensor is located in the region of minimum magnetic field.
Advantageously, two or more cancellation elements are present within the body of dielectric material. Each element produces a region of minimum magnetic field in the magnetic field surrounding the microwave applicator. Thus multiple sensors may be placed at different locations around the applicator, each sensor being positioned within one of the regions of minimum magnetic field.
The invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
The microwave applicator 2 shown in
The coaxial cable 4 comprises inner and outer concentric conductors 16, 15 with an electrically insulating dielectric material 18 therebetween and with an outer insulating cover.
The applicator head 6 comprises a base 8, to which a body of dielectric material 10 is attached. The base 8 comprises a disc-shaped base wall 14 and a coaxial sleeve 12. The sleeve 12 receives the end 7 of the coaxial cable 4. The radius of the base wall 14 is greater than that of the sleeve 12. The body of dielectric material 10 is attached directly to the face of the base wall 14 opposite the sleeve 12 and projects co-axially from it.
The inner conductor 16 and the electrically insulating dielectric material 18 of the coaxial cable 4 extend beyond the end of the outer conductor 15, through a central aperture 19 in wall 14 and into the body of dielectric material 10. The inner conductor 16 thus forms an antenna 20 within the body of dielectric material 10.
The body of dielectric material 10 presents a smooth interface between antenna 20 and the surrounding body tissue. The dielectric constant of the body of dielectric material 10 is chosen such that a maximum amount of the microwaves propagates into surrounding body tissue under treatment, and internal reflections within the body of dielectric material 10 are minimised. A dielectric constant value of 25 is preferred for this purpose.
Two metallic pins 24 are also embedded within the body of dielectric material 10. They are positioned around the antenna 20 diametrically opposite each other. The pins 24 extend from the base wall 14 into the body of dielectric material 10 parallel to the antenna 20, and are shorter in length than the antenna.
The end of the coaxial cable 4 remote from the applicator head 6 is connected to a microwave power supply (not shown). When power is applied to the coaxial cable 4, microwaves are transmitted by the antenna 10. These microwaves have associated with them a magnetic field. This magnetic field induces currents in each pin 24, and these induced currents, in turn, produce a magnetic field. The induced magnetic field modifies the magnetic field associated with the microwaves, creating a region outwardly of each pin 24 where the magnetic field strength is substantially null.
The pins 24 are sized and positioned so that the regions 26 of substantially null electromagnetic field are close to the surface of the body of dielectric material 10.
In use, a temperature sensor can be fixed to the outside surface of the body of dielectric material 10 within one of the regions 26. Thus, the electromagnetic field surrounding the device does not substantially affect readings taken by such a sensor.
Typically microwave applicator 2 operates at a frequency around 9.2 Ghz and at a power of 30 w, although different frequencies and/or power ratings may be used depending on the application.
In alternative embodiment of the invention there may be just one pin, or two or more, each producing a respective null region for a sensor.
The pins 24 in the above described embodiment are metallic, however the invention is not limited to metallic pins. The pins 24 may be of any material having a sufficient electrical conductivity to influence the magnetic field surrounding the applicator head 6 and to reduce the magnetic field in the regions where it is intended to place a sensor. The pins 24 must also be electrically isolated, having no galvanic connections to other components, only the inductive connection with the electromagnetic field.
Number | Date | Country | Kind |
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0415973.7 | Jul 2004 | GB | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB05/02776 | 7/15/2005 | WO | 00 | 9/17/2007 |