Reducing electrosensation while treating a subject using alternating electric fields by increasing the number of steps in a ramp-up portion of a waveform
Patent Information
- Authority / Receiving Office
- HK · HK
- Patent Type
- Applications
- Current Assignee / Owner
- NOVOCURE GMBH
- Filing Date
- 2026-04-29
- Publication Date
- 2026-07-17
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Abstract
Description
When a transducer array (i.e., an array of electrode elements) is used to apply an alternating electric field to a subject's body, the subject may experience an electrosensory sensation. This electrosensory sensation can be improved by increasing the number of steps taken to ramp the voltage from zero to its peak when an AC voltage is first applied to any given transducer array, and similarly when the alternating electric field changes direction. Abstract
Claims
WHAT IS CLAIMED IS:
1. A method of ameliorating electrosensation while applying an electric field to a target region in a living body, the method comprising: applying an alternating electric field having a frequency between 50 kHz and 1 MHz to the target region during each of a plurality of intervals of time, wherein during each of the intervals of time, an amplitude of the alternating electric field increases stepwise during a first portion of the interval, and the stepwise increase during the first portion of the interval includes at least 170 steps.
2. The method of claim 1, wherein each of the at least 170 steps has a height of less than 1 V.
3. The method of claim 1, wherein during each of the intervals of time, the stepwise increase during the first portion of the interval includes at least 200 steps.
4. The method of claim 1, wherein during each of the intervals of time, the alternating electric field has an amplitude that remains substantially constant during a second portion of the interval that comes after the first portion of the interval.
5. The method of claim 4, wherein during each of the intervals of time, the alternating electric field has an amplitude that decreases stepwise during a third portion of the interval that comes after the second portion of the interval.
6. The method of claim 1, wherein the plurality of intervals of time includes at least 100 intervals of time that all occur within one hour.
7. The method of claim 1, wherein when the first portion of the interval ends during each of the intervals of time, the alternating electric field has an amplitude of at least 1 V / cm in at least a portion of the target region.
8. The method of claim 1, wherein the alternating electric field has a frequency between 100 kHz and 500 kHz.
9. The method of claim 1, wherein the alternating electric field is applied to the target region in a first direction during a first subset of the plurality of intervals of time, and wherein the alternating electric field is applied to the target region in a second direction during a second subset of the plurality of intervals of time, wherein the second direction is offset from the first direction by at least 45°.
10. The method of claim 9, wherein the plurality of intervals of time includes at least 100 intervals of time that all occur within one hour, wherein during each of the intervals of time, the stepwise increase during the first portion of the interval includes at least 200 steps, and wherein when the first portion of the interval ends during each of the intervals of time, the alternating electric field has an amplitude of at least 1 V / cm in at least a portion of the target region.
11. An apparatus comprising: a signal generator having at least one control input, wherein the signal generator is configured to generate a first AC output at a frequency between 50 kHz and 1 MHz, the first AC output having an amplitude that depends on a state of the at least one control input; and a controller configured to send a first set of control signals to the at least one control input during each of a plurality of first intervals of time per hour, wherein the first set of control signals during each of the first intervals of time is configured to increase an amplitude of the first AC output in a stepwise manner during a first portion of the first interval of time, wherein the stepwise increase during the first portion of the first interval of time includes at least 170 steps.
12. The apparatus of claim 11, wherein each of the at least 170 steps has a height of less than 1 V.
13. The apparatus of claim 11, wherein during each of the first intervals of time, the stepwise increase during the first portion of the first interval of time includes at least 200 steps.
14. The apparatus of claim 11, wherein during each of the first intervals of time, the first AC output has an amplitude that remains substantially constant during a second portion of the first interval of time that comes after the first portion of the first interval of time.
15. The apparatus of claim 14, wherein during each of the first intervals of time, the first AC output has an amplitude that decreases stepwise during a third portion of the first interval of time that comes after the second portion of the first interval of time.
16. The apparatus of claim 11, wherein the plurality of first intervals of time includes at least 100 first intervals of time that all occur within one hour.
17. The apparatus of claim 11, wherein the first AC output has a frequency between 100 kHz and 500 kHz.
18. The apparatus of claim 11, wherein the signal generator is further configured to generate a second AC output at a frequency between 50 kHz and 1 MHz, the second AC output having an amplitude that depends on a state of the at least one control input; and wherein the controller is further configured to send a second set of control signals to the at least one control input during each of a plurality of second intervals of time per hour, wherein the second set of control signals during each of the second intervals of time is configured to increase an amplitude of the second AC output in a stepwise manner during a first portion of the second interval of time, wherein the stepwise increase during the first portion of the second interval of time includes at least 170 steps.
19. The apparatus of claim 18, wherein during each of the first intervals of time, the stepwise increase during the first portion of the first interval of time includes at least 200 steps, and wherein during each of the second intervals of time, the stepwise increase during the first portion of the second interval of time includes at least 200 steps.
20. The apparatus of claim 18, wherein during each of the first intervals of time, the first AC output has an amplitude that remains substantially constant during a secondportion of the first interval of time that comes after the first portion of the first interval of time, wherein during each of the second intervals of time, the first AC output has an amplitude that remains substantially constant during a second portion of the second interval of time that comes after the first portion of the second interval of time, wherein the plurality of first intervals of time includes at least 100 first intervals of time that all occur within one hour, and wherein the plurality of second intervals of time includes at least 100 second intervals of time that all occur within the one hour.