Claims
- 1. A neuromuscular monitoring system using phonomyography, comprising:
means for applying muscle-activating stimulation signals to a patient's body via at least one electrode; means for sensing pressure waveform signals produced by a patient's muscle in response to the applied stimulation signals; and means for processing the sensed pressure waveform signals, and means for displaying data, from the processing means, related to the sensed pressure waveform signals.
- 2. A neuromuscular monitoring system using phonomyography, comprising:
at least one neurostimulator to apply muscle-activating stimulation signals to a patient's body via at least one electrode; at least one pressure waveform sensor to detect pressure waveform signals produced by a patient's muscle in response to the applied stimulation signals; and a processor of the detected pressure waveform signals and a display of data, from the processor, related to the detected pressure waveform signals.
- 3. The neuromuscular monitoring system of claim 2, wherein the data displayed through the display is selected from the group consisting of: raw pressure waveform signals detected through said at least one pressure waveform sensor, amplitudes of the pressure waveform signals, and ratios of said amplitudes.
- 4. The neuromuscular monitoring system of claim 2, further comprising an amplifier for amplifying the pressure waveform detected by said at least one pressure waveform sensor.
- 5. The neuromuscular monitoring system of claim 2, comprising a controller connected to said at least one neurostimulator and to said at least one pressure waveform sensor, said controller incorporating the processor and display.
- 6. The neuromuscular monitoring system of claim 5, wherein the controller includes a laptop computer.
- 7. The neuromuscular monitoring system of claim 5, wherein said controller includes a pocket computer.
- 8. The neuromuscular monitoring system of claim 2, wherein said at least one neurostimulator includes a plurality of neurostimulators respectively associated to different muscles of the patient.
- 9. The neuromuscular monitoring system of claim 2, wherein said at least one pressure waveform sensor includes a plurality of pressure waveform sensors respectively associated to different muscles of the patient.
- 10. The neuromuscular monitoring system of claim 2, wherein said at least one pressure waveform sensor has a detection frequency bandwidth ranging from about 2 Hz to about 10 Hz.
- 11. The neuromuscular monitoring system of claim 10, wherein said at least one pressure waveform sensor comprises at least one microphone.
- 12. The neuromuscular monitoring system of claim 2, wherein the muscle-activating stimulation signals comprises single stimulation signals.
- 13. The neuromuscular monitoring system of claim 5, wherein the controller is so configured as to:
before the administration of a relaxant to the patient:
apply a predetermined muscle-activating stimulation signal to the patient's body through said at least one neurostimulator and via said at least one electrode; sample the pressure waveform signal detected by said at least one pressure waveform sensor in response to the applied predetermined stimulation signal; measure a reference amplitude (Aref) of the sampled signal; after a relaxant has been administered to the patient:
apply the predetermined muscle-activating stimulation signal through said at least one neurostimulator and via said at least one electrode; sample the pressure waveform signal detected by said at least one pressure waveform sensor in response to the applied predetermined stimulation signal; measure an amplitude (A) of the response signal; calculate a ratio A/Aref; and display the calculated ratio.
- 14. The neuromuscular monitoring system of claim 2, wherein the muscle-activating stimulation signals comprises train-of-four twitches.
- 15. The neuromuscular monitoring system of claim 5, wherein the muscle-activating stimulation signals comprise train-of-four twitches, and wherein the controller is so configured as to:
measure a peak-to-peak amplitude of a pressure waveform signal detected by said at least one pressure waveform sensor in response to a first pulse of the train-of-four (T1); measure a peak-to-peak amplitude of a pressure waveform signal detected by said at least one pressure waveform sensor in response a fourth pulse of the train-of-four (T4); calculate a ratio T4/T1; and display the calculated ratio.
- 16. A neuromuscular monitoring method using phonomyography, comprising:
providing at least one pressure waveform sensor; positioning said at least one pressure waveform sensor at a predetermined position of a patient's body; providing at least one electrode; positioning said at least one electrode at a predetermined position of the patient's body; applying a muscle-activating stimulation signal to the patient's body via said at least one electrode; sampling a pressure waveform signal detected by said at least one pressure waveform sensor in response to the applied muscle-activating stimulation signal; measuring a reference amplitude (Aref) of the sampled signal; after a relaxant has been administered: applying a subsequent muscle-activating stimulation signal to the patient's body via said at least one electrode; sampling a subsequent pressure waveform signal detected by said at least one pressure waveform sensor in response to the subsequent muscle-activating stimulation signal; measuring an amplitude (A) of the subsequent pressure waveform signal; calculating a ratio A/Aref; and displaying the calculated ratio.
- 17. The neuromuscular monitoring method of claim 16, wherein applying a muscle-activating stimulation signal comprises applying a single pulse stimulation signal.
- 18. The neuromuscular monitoring method of claim 16, wherein measuring an amplitude comprises measuring a peak-to-peak amplitude.
- 19. A neuromuscular monitoring method using phonomyography, comprising:
providing at least one pressure waveform sensor; positioning said at least one pressure waveform sensor at a predetermined position of a patient's body; providing at least one electrode; positioning the at least one electrode at a predetermined position of the patient's body; applying muscle-activating stimulation signals to the patient's body via said at least one electrode; sampling pressure waveform signals detected by said at least one pressure waveform sensor in response to the applied muscle-activating stimulation signals; processing the detected pressure waveform signals; and displaying data, from the act of processing, related to the detected pressure waveform signals.
- 20. The neuromuscular monitoring method of claim 19, wherein:
processing the detected pressure waveform signals comprises measuring amplitudes of the detected pressure waveform signals; and displaying data comprises displaying the detected pressure waveform signals and the measured amplitudes.
- 21. The neuromuscular monitoring method of claim 19, wherein applying muscle-activating stimulation signals comprises applying train-of-four twitches.
- 22. The neuromuscular monitoring method of claim 20, wherein applying muscle-activating stimulation signals comprises applying train-of-four twitches, and wherein measuring amplitudes of the detected pressure waveform signals comprises:
measuring a peak-to-peak amplitude of the pressure waveform signal detected by said at least one pressure waveform sensor in response to a first pulse of each train-of-four (T1); measuring a peak-to-peak amplitude of the pressure waveform signal detected by said at least one pressure waveform sensor in response to a fourth pulse of the same train-of-four (T4); and calculating a ratio T4/T1.
- 23. The neuromuscular monitoring method of claim 22, wherein displaying the measured amplitudes comprises displaying T4/T1 calculated ratio.
PRIORITY CLAIM
[0001] The Application claims benefit of the U.S. Provisional Application Ser. No. 60/431,736 filed on Dec. 9, 2002 which is expressly incorporated herein, by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60431736 |
Dec 2002 |
US |