EP2425794A1

Electromagnetic field applicator array with integral field sensors for implicit correction of mutual coupling and mismatch

Abstract

The invention concerns a system for producing specific field distributions in a defined volume or region. The system comprises an array of electromagnetic field generating elements each with an integrated sensor for measuring the phase and amplitude of the current flowing in a metallic element (antenna or coil) or field in a slot based element, a measurement device to enable measurement of both phase and amplitude of the electrical signals from the sensors with sufficient dynamic range for quantification of the signal, a multi channel radio frequency power source with individually controllable amplitude and phase to excite each of the electromagnetic field generating elements, and a feedback controller enabling controlled adjustment of the amplitude and phase of the radio frequency power source based on the signals from the sensors. The system controls the outputs of a multi channel radio frequency power source such that the current in a metallic or the field in a slot based electromagnetic field generating elements provide the desired electromagnetic field values and the superposition of the fields produced by each electromagnetic field generating element produces said specific electromagnetic field distribution in said defined volume or region. As the signal picked up by each sensor is directly related to the phase and amplitude of the current or field in the associated electromagnetic field generating element and hence the electromagnetic field generated by the array elements, where the current or field measured is the sum of both the applied (from the radio frequency power source) and secondary excitations from mutual coupling and reflections hence the measured value represents the ideal excitation in the absence of mutual coupling, reflections and mismatch. The feedback controller modifies the direct excitation such that the total excitation is the ideal array excitation without coupling or mismatch. The invention implicitly corrects for the coupling and mismatch without explicit knowledge of, and calculation based on, the mutual coupling and mismatch, termed the coupling matrix, such that changes in the coupling matrix due to presence of objects or changes thereof are inherently taken into account. Additionally, by sequentially exciting each element in turn the invention can directly determine the exact mutual coupling matrix of the array even in the presence of variations in source impedance and undefined cable lengths such that initial excitation amplitudes and phases can be calculated to allow rapid adjustment to the desired values. A particular application of interest is in radio frequency hyperthermia applicator systems.

EP2425794A1, drawing sheet 1
Sheet 1 of 7

Term

5 yearsto projected expiry

Projected expiry 6 September 2031, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

18 claims: 2 independent, 16 dependent

  1. 1
    A system for producing a predetermined electromagnetic field distribution in a defined volume or region, comprising a multi-channel radio frequency or microwave power source (18) connected to an array (19) of electromagnetic field generating elements (26), and a feedback controller (27) for controlling the radio frequency or microwave power source (18) to achieve the desired electromagnetic field produced by each element (26) such that the superposition of the fields produced by each electromagnetic field generating element produces said predetermined electromagnetic field distribution in said defined volume, the feedback to the controller (27) being the amplitude and phase of the electromagnetic field generated by each of the generating elements, characterised in that current or field (electric, magnetic or electromagnetic) sensors (4) are integrated into each electromagnetic field generating element (26) for sensing directly the element excitation and hence indirectly the amplitude and phase of the electromagnetic field generated by each of the generating elements (26), said sensors (4) being interconnected with a measurement device (20) for determining the amplitude and phase of the signals from each sensor (4) and hence the electromagnetic field produced by each element (26).
  2. 4
    A system according to any one of claims 1 to 3, in which the electromagnetic field generating elements (26) are provided with a feed port (3) to which radio frequency power from outputs (11) is applied, and one or more integrated sensors (4) for measuring the phase and amplitude of current flowing in a metallic element or field in a slot-based element (2) (which is the analogue of the current in a metal element), the output of the sensors being an electrical signal which is a measure of said current or field.
  3. 5
    A system according to any one of claims 1 to 4, in which the electromagnetic field generating elements (26) are situated into an array (19) of arbitrary configuration such that each element(26) may be excited by the radio frequency power output (11) of one channel of the radio frequency power source (18) and such that the electrical signal from the integrated sensors (4) of the field generating elements (26) is proportional to the radio frequency current (or field in the case of slot) in each element (2).
  4. 6
    A system according to any one of claims 1 to 5, in which the electromagnetic field generating elements (26) having integrated current (or field in the case of slot based elements) sensors (4) provide a direct indication of the relative amplitude and phase of the electromagnetic field produced by each electromagnetic field generating element in the presence of mutual coupling between elements and hence afford control of the applied fields in the presence of mutual coupling.
  5. 7
    A system according to any one of claims 1 to 6, in which the measurement device (20) is of sufficient dynamic range to enable measurement of both phase and amplitude of the electrical signals from the sensors (4).
  6. 8
    A system according to any one of the preceding claims in which the measurement device (20) is an In-phase/Quadrature (IQ) demodulator (14) or vector voltmeter, whereby multiplication of the measured electrical signals by a calibration factor can enable the electromagnetic field produced by each individual electromagnetic field generating element (26) to be quantified.
  7. 9
    A system according to any one of claims 1 to 8, in which each electromagnetic field generating element (26) is integrated with a channel of the measurement device (20) to form a module such that each module may be provided with an individual identity or serial number such that calibration data can be seamlessly assigned to each electromagnetic field generating element, modules may be exchanged to enable rapid repair and / or servicing, and whereby the individual identity provides 'plug and play' capability with automatic detection of different hardware and assignment of calibration data.
  8. 10
    A system according to any one of claims 1 to 9, in which the feedback controller (27) enables adjustment of the amplitude and phase (8) of each individual channel of the multi channel radio frequency power source (18) such that the electromagnetic field radiating element (26) currents (or fields in the case of slot based elements) sensed by the sensors (4) and measured by the measurement device (20) are the desired currents or fields.
  9. 11
    A system according to any one of claims 1 to 10, adapted to focus radio frequency energy into one or more dielectric objects or one or multiple regions of said one or more dielectric objects, in order to excite atoms, molecules or cellular structures or to elevate the temperature within said one or more objects or one or multiple regions within the dielectric object or objects.
  10. 12
    A system according to any one of claims 1 to 11, adapted to induce fields and currents into a human patient or specific regions within the patient to excite atoms, molecules, nerves or other chemical or cellular mechanisms.
  11. 13
    A system according to any one of claims 1 to 10, adapted to locate objects in space.
  12. 14
    A system according to any one of claims 1 to 13, in which control of the multi-channel radio frequency power source (18) connected to the array of electromagnetic field generating elements (19) in which the sensed currents (or fields in the case of slot based elements) are the desired current or field levels of the ideal array(19) without coupling or mismatch, implicitly correcting for the mutual coupling between and mismatch of the electromagnetic field generating elements without explicit knowledge of, and calculation based on, the mutual coupling and mismatch.
  13. 15
    A system according to any one of claims 1 to 14, in which changes in the mutual coupling and mismatch due to presence of dielectric or metallic objects (e.g., patient, water bolus (25), support structures) or changes in the position of these objects are inherently taken into account.
  14. 16
    A system according to any one of claims 1 to 15, in which the mutual coupling and mismatch, described in terms of a coupling matrix, of an arbitrary array (19) of electromagnetic field generating elements (26) can be determined directly by excitation (11) of each electromagnetic field generating element (26) in turn by a single channel of the multi channel radio frequency power source (18) and using the currents or fields measured by all the channels the measurement system(20) from all the integrated sensors(4) the coupling matrix for the array can be determined more accurately than by the use of standard network analysis methods as the non-ideal output impedances of each amplifier and connecting cable lengths are inherently accounted for.
  15. 17
    A system according to any one of claims 1 to 16 in which the coupling matrix is used to calculate the initial amplitudes and phases of the radio frequency outputs (11) of the multi channel radio frequency power source (18) and the currents or fields measured by the measurement system (20) from the current or field sensors (4) integral to the electromagnetic field generating elements (26) and the feedback controller (27) used to fine tune the system to provide the desired currents or fields in the electromagnetic field generating elements.
  16. 18
    A system according to any one of claims 1 to 17 in which each radio frequency output(11) from the multi channel radio frequency power source (18) that connects to individual electromagnetic field generating elements (26) can be connected in any order to the array (19) of electromagnetic field generating elements and the integrated current or field sensor (4) used to determine which radio frequency output is connected to which electromagnetic field generating element and define the correct mapping between output and element eliminating incorrect electromagnetic field generation due to incorrect interconnection.