This invention relates to Non Invasive Positive Pressure Ventilation (NIPPV) treatment apparatus for the provision of assisted ventilation. Particularly, the invention concerns the control of treatment pressure supplied to a subject.
NIPPV apparatus function to supply a patient with a supply of clean breathable gas (usually air, with or without supplemental oxygen) at a therapeutic pressure or pressures, at appropriate times during the subject's breathing cycle. The therapeutic pressure is also known as the ventilation pressure.
NIPPV apparatus typically include a flow generator, an air filter, a mask, an air delivery conduit connecting the flow generator to the mask, various sensors and a microprocessor-based controller. The flow generator may include a servo-controlled motor and an impeller. The flow generator may also include a valve capable of discharging air to atmosphere as a means for altering the pressure delivered to the patient as an alternative to motor speed control. The sensors measure, amongst other things, motor speed, gas volumetric flowrate and outlet pressure. The apparatus may optionally include a humidifier in the air delivery circuit. The controller may include data storage capacity with or without integrated data retrieval and display functions.
In this specification, NIPPV apparatus will be referred to as “assisted ventilation devices” which, in the broadest form, need not include all of the component features mentioned above.
Assisted ventilation devices are used for the treatment of many conditions, for example respiratory insufficiency or failure due to lung, neuromuscular or musculoskeletal disease and diseases of respiratory control.
Common to all forms of assisted ventilation is the need to control the pressure being applied to the patient. It is a known prior art technique to detect the peak pressure and compare it against a maximum threshold value. If the threshold value is exceeded an alarm state occurs, and corrective action may be taken. This corrective action can be a short-term reduction in supplied pressure, followed by an increase back to the previous pressure.
The present invention is directed to providing an alternative, advantageous approach to the problem of overpressure.
The invention discloses a method for controlling operation of an assisted ventilation device supplying pressurised gas to a patient, the method comprising the steps of: determining a relatively longterm average of pressure of gas supplied to said patient; and controlling the pressure supplied by said ventilation device with regard to said longterm average.
The invention further discloses a method for detecting the occurrence of a potential or actual overpressure during assisted ventilation, comprising the steps of determining a relatively longterm average of ventilation pressure, and determining whether the average approaches or exceeds a threshold value as being indicative of a potential or actual overpressure occurring.
The invention further discloses a method for controlling operation of an assisted ventilation device supplying pressurised gas to a patient, the method comprising the steps of: measuring the currently delivered pressure; determining a relatively longterm average of the measured pressure; comparing said average against a threshold value; and if the threshold value is approached or exceeded, controlling the pressure supplied by the device.
The invention yet further discloses assisted ventilation apparatus for detecting a potential or actual overpressure condition, comprising: a blower to supply pressurised gas to a conduct, and in turn to a patient mask for connection with the entrance to a patient's airways: a pressure sensor to detect the delivered pressure of gas in the conduit or at the mask, and provide a signal thereof; and a controller receiving said pressure signal and having control over operation of the blower and operable to determine a relatively longterm average of the pressure signal and to control the supplied pressure with regard to said longterm average.
The invention yet further discloses assisted ventilation apparatus for detecting a potential or actual overpressure condition, comprising: a blower to supply pressurised gas to a conduit, and in turn to a patient mask for connection with the entrance to a patient's airways; a pressure sensor to detect the delivered pressure of gas in the conduit or at the mask, and provide a signal thereof; and a controller, receiving the pressure signal and having control over operation of the blower, and operable to determine a relatively longterm average of the pressure signal, compare the average against a threshold value, and if the threshold value is approached or exceeded, to control the blower and thus the supplied pressure.
In one preferred form, an alarm state exists when said threshold is approached or exceeded, and on the occurrence of an alarm state, the assisted ventilation apparatus issues an alarm. Additionally or alternatively, the blower can be controlled to be switched-off or to be placed in a low pressure standby mode (for example 4 CMHZO).
The invention further discloses a method for controlling operation of an assisted ventilation device supplying pressurised gas to a patient, the method comprising the steps of: determining a relatively longterm average of supplied pressure; and controlling said supplied pressure as a function of a waveform template, a target patient ventilation and said longterm average.
In relation to control of supplied pressure, the blower can be controlled to limit or reduce the supplied pressure. The reduction can be a non-linear function of time and/or pressure. Particularly, the degree of control can be stronger/greater as the threshold value is approached.
The longterm average can, in one form, be of the order of minutes.
Alternatively, the average can be over ten or more breaths.
The threshold can be required to be exceeded for a minimum period of time before the alarm state is assessed as occurring.
The invention is advantageous in that it approaches the problem of overpressure from a relatively longer time scale than in the prior art. This is considered to be a more appropriate approach to the medical conditions that attend overpressure in assisted ventilation. For example, sustained overpressure causes a decrease in cardiac output, which would go largely untreated by the prior art arrangement discussed above.
An assisted ventilation device embodying one form of the invention is shown in
It is to be understood that the mask could equally be replaced with a tracheotomy tube, endotracheal tube, nasal pillows, or other means of making a sealed connection between the air delivery means and the subject's airway.
In general terms, the invention is concerned with determining a relatively longterm average of ventilation pressure and avoiding occurrence of overpressure with regard thereto.
In one embodiment, the microprocessor 16 determines the long-term average of the actual treatment pressure, p, and compares this against a threshold or maximum value, FMAX, IF the threshold value is exceeded then corrective action may be taken.
The corrective action can be to issue an alarm, to switch-off the assisted ventilation device, to reduce the treatment pressure, or to control the blower in a more complex manner, an example of which is described in more detail below.
As shown in
If the output from the comparator 36 is ‘true’, an indication that the low-pass filter signal exceeds PmaX, a “reduce” pressure signal is sent to the servo 19 (shown in
In another embodiment, implemented in software, the avoidance of overpressure is approached as the continuous monitoring of pressure as a function of the longterm average of the pressure. Referring once again to
In one form, K=1. [2a] In other forms, k=k′, low pass filtered with time constant of 5 seconds [2b] where: and linearly in between.
The purpose of making K NONLINEAR ON P is to provide strong control as P″, AX is approached, with less effect further away from PMAX THE purpose of low pass filtering is to reduce distortion of the within-breath pressure-time profile.
The pressure modulation amplitude, A (CM H2O) is given by: where g is a constant, VUE is the minute ventilation, and VTGT is the target ventilation. A may be truncated to lie between A″,C and Amin. F IS a function of at least one of time, t, and respiratory airflow, v, chosen to produce the desired pressure waveform. A range of functions is known to those skilled in the art. One example function corresponding to a spontaneous mode bi-level ventilator is: >01,v {[5a]f(v,t)=0 otherwise Another example function is: 1, Ti<{[5bv,t)=0, otherwise where: t′=t modulo Tnot T, =duration of inspiration TOUT=duration of a breath This corresponds to a “timed-mode” bilevel ventilator, with P=PO during expiration; and P=PO+A during inspiration A number of simulations have been performed to demonstrate an embodiment of the invention in practise.
In
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Number | Date | Country | Kind |
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PQ0198 | May 1999 | AU | national |
Number | Date | Country | |
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Parent | 10981243 | Nov 2004 | US |
Child | 13208833 | US | |
Parent | 09936854 | Jan 2002 | US |
Child | 10981243 | US |