NOVEL BISPHASIC OR MULTIPHASIC PULSE WAVEFORM AND METHOD
20180161584 ยท 2018-06-14
Inventors
- Douglas M. Raymond (Livermore, CA)
- Peter D. Gray (Vallejo, CA, US)
- Walter T. Savage (Concord, CA, US)
- Shelley J. Savage (Concord, CA, US)
Cpc classification
International classification
Abstract
A novel therapeutic biphasic or multiphasic pulse waveform and method are provided. The novel therapeutic biphasic or multiphasic pulse waveform may be used in a defibrillator, or in another medical device that delivers therapeutic electrical stimulation pulses to a patient.
Claims
1. An apparatus, comprising: a generator that generates a waveform having at least one first phase having a first polarity and at least one second phase having a polarity opposite of the first polarity wherein an amplitude of a leading edge of the at least one first phase is less than an amplitude of a leading edge of the at least one second phase; and wherein the at least one first phase has a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope between zero percent and ninety-five percent and the waveform is adjusted based on the phase tilt of the at least one first phase.
2. The apparatus of claim 1, wherein the at least one second phase has a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope between zero percent and ninety-five percent and the waveform is adjusted based on the phase tilt of the at least one second phase.
3. The apparatus of claim 2, wherein the waveform further comprises an inter-phase period between the at least one first phase and the at least one second phase that is adjustable between 0 and 1500 microseconds.
4. An apparatus, comprising: a generator that generates a waveform having at least one first phase having a first polarity and at least one second phase having a polarity opposite of the first polarity wherein an amplitude of a leading edge of the at least one first phase is less than an amplitude of a leading edge of the at least one second phase; and wherein the at least one second phase has a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope between zero percent and ninety-five percent and the waveform is adjusted based on the phase tilt of the at least one second phase.
5. The apparatus of claim 4, wherein the at least one first phase has a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope between zero percent and ninety-five percent and the waveform is adjusted based on the phase tilt of the at least one first phase.
6. The apparatus of claim 5, wherein the waveform further comprises an inter-phase period between the at least one first phase and the at least one second phase that is adjustable between 0 and 1500 microseconds.
7. A method, comprising: generating, by a generator, a waveform having at least one first phase having a first polarity and at least one second phase having a polarity opposite of the first polarity wherein an amplitude of a leading edge of the at least one first phase is less than an amplitude of a leading edge of the at least one second phase, wherein the at least one first phase has a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope; and optimizing the waveform by adjusting the phase tilt of the decay slope of the at least one first phase between zero percent and ninety-five percent.
8. The method of claim 7, wherein the at least one second phase further comprises a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope, and wherein optimizing the waveform further comprises adjusting the phase tilt of the decay slope of the at least one second phase between zero percent and ninety-five percent.
9. The method of claim 8, wherein the waveform further comprises an inter-phase period between the at least one first phase and the at least one second phase that is adjustable between 0 and 1500 microseconds.
10. A method, comprising: generating, by a generator, a waveform having at least one first phase having a first polarity and at least one second phase having a polarity opposite of the first polarity wherein an amplitude of a leading edge of the at least one first phase is less than an amplitude of a leading edge of the at least one second phase, wherein the at least one second phase has a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope; and optimizing the waveform by adjusting the phase tilt of the decay slope of the at least one second phase between zero percent and ninety-five percent.
11. The method of claim 10, wherein the at least one first phase further comprises a rise time of the leading edge, a decay slope from the leading edge to a trailing edge having a time period of the decay slope and a phase tilt of the decay slope, and wherein optimizing the waveform further comprises adjusting the phase tilt of the decay slope of the at least one first phase between zero percent and ninety-five percent.
12. The method of claim 11, wherein the waveform further comprises an inter-phase period between the at least one first phase and the at least one second phase that is adjustable between 0 and 1500 microseconds.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF ONE OR MORE EMBODIMENTS
[0023] The novel biphasic or multiphasic pulse waveform is applicable for use with various medical devices including all defibrillator types: external (manual, semi-automated and fully automated), wearable and implanted. In addition to defibrillators, the medical device may also be cardioverters and external/internal pacers, as well as other types of electrical stimulation medical devices, such as: neuro-stimulators, musculo-skeletal stimulators, organ stimulators and nerve/peripheral nerve stimulators, whether the devices are external or implantable. The biphasic or multiphasic waveform pulse may be particularly useful for any type of defibrillator and examples of the biphasic or multiphasic waveform pulse will be described in the context of a defibrillator for illustration purposes.
[0024] The novel biphasic or multiphasic waveform pulse is a distinctly different family of waveforms compared to the standard biphasic waveforms (see
[0025] The novel biphasic or multiphasic waveform pulse allows for an efficacious pulse waveform to be delivered to the patient at a substantially lower level of total energy than ever before. In preclinical animal trials using the novel biphasic or multiphasic waveform pulse, successful defibrillation has been demonstrated using the novel biphasic or multiphasic waveform pulse, repeatedly, and at significantly lower levels of total delivered energy than the energy required by any current external defibrillators using either the original monophasic pulse or the now traditional biphasic pulse. For example, the novel biphasic or multiphasic waveform pulse may deliver 0.1 to 200 joules to a patient. Furthermore, the time for the waveform pulse delivery is between 1-20 ms and preferably 8-10 ms for the combined first and second phases of the waveform, although for triphasic and quadriphasic waveforms this is preferably in the 8-16 ms range for the entire waveform. For an embodiment in which the generated waveform is being used for nerve stimulation or neuro-stimulation, the waveform period may be on the order of microseconds or shorter.
[0026] The novel biphasic or multiphasic waveform pulse also significantly reduces both the total energy and the current levels that must be discharged into the patient, thus reducing the chance of either skin burns or other damage to the skin, tissue or organs of the patient. The novel biphasic or multiphasic waveform pulse also reduces the maximum amount of energy that a device is required to store and deliver, and it increases the maximum lifespan of any battery powered device due to a more frugal use of the energy stored within it. The novel biphasic or multiphasic waveform pulse also enables the production of smaller devices as a lower total amount of energy is needed to be stored and delivered to the patient.
[0027] The novel biphasic or multiphasic waveform pulse is effective across a wide range of values for multiple variables/characteristics of the novel biphasic or multiphasic waveform pulse. For example,
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[0029] In an additional embodiment, the novel biphasic or multiphasic waveform pulse may have different phase tilts for either or both phases as shown in
[0030] The novel biphasic or multiphasic waveform pulse may be generated in various manners. For example, as shown in
[0031] While the foregoing has been with reference to a particular embodiment of the disclosure, it will be appreciated by those skilled in the art that changes in this embodiment may be made without departing from the principles and spirit of the disclosure, the scope of which is defined by the appended claims.