IP Library › Patent Application 14925725
Patent Application
App. No. 14/925,725

METHOD OF MEASURING CARDIAC RELATED PARAMETERS NON-INVASIVELY VIA THE LUNG DURING SPONTANEOUS AND CONTROLLED VENTILATION

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Quick Facts
Patent No.
US None
App. No.
14/925,725
Abstract

An apparatus to measure pulmonary blood flow and cardiac output (Q) comprising: a) a breathing circuit which, at exhalation, keeps exhaled gas separate from inhaled gas and at inhalation, when V E is greater than first gas set (FGS) flow, results in a subject inhaling FGS first and then a second gas set (SGS), for the balance of inhalation; b) a gas sensor for monitoring gas concentrations at the patient-circuit interface; c) a gas flow control means for controlling the rate of FGS flow into the breathing circuit; d) machine intelligence consisting of a computer or logic circuit capable of controlling the gas flow control means which receives the output of the gas sensor means and outputs pulmonary blood flow.

Claims (11)

1 - 61 . (canceled)

62 . A method of identifying alveolar ventilation ({dot over (V)} A ) in a subject, the method comprising:

(1) using a breathing circuit configured to:

i. on exhalation by the subject, keep exhaled gas substantially separate from inhaled gas, and

ii. on inhalation by the subject, when minute ventilation ({dot over (V)} E ) of the subject is less than a first gas set (FGS) flow, first provide FGS flow to the subject, and then provide a balance of the minute ventilation that is substantially a second gas set (SGS);

(2) setting the FGS flow into the breathing circuit at a rate greater than the subject's minute ventilation ({dot over (V)} E );

(3) measuring an end tidal CO 2 concentration (P ET CO 2 ) in a steady state;

(4) progressively lowering the FGS flow into the circuit, either breath by breath or continuously, until after a time equal to a recirculation time of CO 2 within the subject after a rise in P ET CO 2 values above a threshold value is observed;

(5) deriving {dot over (V)} A as the rate of FGS flow at a point of the intersection between two lines comprising:

(a) an average P ET CO 2 in steady state; and

(b) a line fit to the P ET CO 2 values after the rise in P ET CO 2 values begins until the recirculation time.