Claims
- 1. A fluidic volume-cycled respirator circuit which contains no piston-bellows assembly, said fluidic volume-cycled respirator comprising
- a breathing gas source;
- an input valve connected to said breathing gas source;
- a property independent fluidic oscillator flowmeter which is connected to said input valve and directly to a patient;
- a means which transmits gas flow frequency signals from the flowmeter to a tidal volume selection controller;
- a tidal volume selection controller which is connected to said means and to said input valve; and
- a return transmitting line equipped with a pressure sensor running from the patient to said tidal volume selection controller.
- 2. A fluidic volume-cycled respirator circuit in accordance with claim 1, wherein said tidal volume selection controller is electronic.
- 3. A fluidic volume-cycled respirator circuit in accordance with claim 1, wherein said tidal volume selection controller comprises a frequency counter, a pressure switch, and a time-cycle timer.
- 4. A fluidic volume-cycled respirator circuit in accordance with claim 1, wherein said fluidic oscillator flowmeter is a true volume flowmeter.
- 5. A fluidic volume-cycled respirator circuit in accordance with claim 1, wherein said flowmeter has no moving parts.
- 6. A method for accommodating the complete respiratory needs of a patient wherein said method comprises
- providing a breathing gas source connected to a breathing gas inlet valve;
- opening said gas inlet valve so as to allow breathing gas to be forced therethrough and subsequently through a property independent, fluidic oscillator flowmeter;
- delivering said breathing gas exiting from said fluidic oscillator flowmeter directly to said patient;
- monitoring the flow of said breathing gas by a transmitting means which transmits the oscillator frequency count of said breathing gas to a tidal volume controller;
- closing said valve once a preset oscillator frequency count is reached;
- sensing negative pressure produced by an inspiratory effort from said patient using a pressure sensor;
- communicating said negative pressure to said total volume controller which instructs aid breathing gas inlet valve to open; and
- repeating the breathing cycle;
- wherein said flowmeter converts the breathing gas flow rate to a frequency signal which is converted into said frequency counts by the use of said transmitting means; and wherein said tidal volume controller operates said breathing gas inlet valve causing said valve to close once said preset oscillator frequency count is reached.
RIGHTS OF THE GOVERNMENT
The invention described herein may be manufactured, used and licensed by or for the U.S. Government without payment to us of any royalty thereon.
US Referenced Citations (37)
Non-Patent Literature Citations (1)
Entry |
Davison, E. L., "Application of Fluidics in Medical Breathing Apparatus", uidics Quarterly, pp. 11-26. |