1. Technical Field
The present disclosure relates to a gas flow detector, and more particularly, to a gas flow detector used in a positive airway pressure apparatus (PAPA).
2. Description of Related Art
Obstructive sleep apnea (OSA) occurs when the muscles in the back of people's throat relax, resulting in difficulty in breathing or blockage in the airway. The OSA may cause snoring or upper airway resistance syndrome (UARS), and may even cause deadly intermittent apnea for patients in sleeping time.
In the study, it is found that there is 10% of population in the world suffering from the OSA, but only few of them are under proper treatments. For the patients, the OSA not only is life-threatening, but also may increases the risk of chronic diseases like hypertension or heart disease due to the bad sleeping quality.
Generally, the conventional PAPA includes a gas flow detector having a conduit. The gas flow detector is used to regulate the gas flow rate introduced into the conduit by detecting the gas pressure in the conduit, in which the conventional conduit is made of rigid materials.
However, when the rigid materials are used in the conduit to detect gas pressure, the slope of gas pressure to gas flow rate is so large that it exceeds the detection limitation (2.0 hPa) of gas pressure of a detector at high gas flow rate (>140 LPM), for increasing the resolution at low gas flow rate (20-80 LPM), as shown in
The present disclosure provides a gas flow detector and a positive airway pressure apparatus containing the same, so as to solve the problems of the prior art and increase the resolution at low gas flow rate.
One embodiment of the present disclosure is to provide a gas flow detector. The gas flow detector comprises a conduit, a first pressure gauge and a second pressure gauge.
The conduit comprises a flexible pipe, a first connecting pipe and a second connecting pipe. The flexible pipe comprises a contraction portion, a throat and an expanding portion. In which, the throat is sandwiched between the contraction portion and the expanding portion, and the inner diameter of the throat is smaller than the inner diameters of the contraction portion and the expanding portion. The first connecting pipe and the second connecting pipe are respectively connected to the contraction portion and the expanding portion of the flexible pipe.
The first pressure gauge is configured to measure the gas pressure of the first connecting pipe, and the second pressure gauge is configured to measure the gas pressure of the throat of the flexible pipe. The gas flow rates of the first connecting pipe and the throat of the flexible pipe are calculated based on the difference of gas pressures read from the first pressure gauge and the second pressure gauge.
Another embodiment of the present disclosure is to provide a positive airway pressure apparatus (PAPA). The PAPA comprises a flow generator, the said gas flow detector, a respirator and a control circuit.
The flow generator is configured to generate a positive pressure gas flow. The first connecting pipe of the conduit of the gas flow detector is connected to the flow generator, so as to introduce the positive pressure gas flow into the flexible pipe. The respirator is connected to the second connecting pipe of the conduit of the gas flow detector, such that the positive pressure gas flow is able to be introduced into the airway of a person under treatment and the airway is kept in positive pressure. The control circuit is electrically connected to the flow generator, and to the first pressure gauge and the second pressure gauge of the gas flow detector. The positive pressure gas flow of the flow generator is regulated by the pressure values read from the first pressure gauge and the second pressure gauge.
According to one example of the present disclosure, the Shore hardness of the flexible pipe is in a range of HS10-HS90.
According to one example of the present disclosure, the material of the flexible pipe is an elastomer comprising silicone, rubber, polyurethane, latex or polytetrafluoroethylene (PTFE).
According to one example of the present disclosure, the material of the first connecting pipe, the second connecting pipe or the both comprise flexible material or rigid material.
According to one example of the present disclosure, the material of the first connecting pipe, the second connecting pipe or the both are same as that of the flexible pipe.
According to one example of the present disclosure, the gas flow detector further comprises a honeycomb structure positioned in the throat of the flexible pipe, wherein the throat has a cross-section in a honeycomb shape.
According to one example of the present disclosure, the first pressure gauge is positioned on the inner wall of the first connecting pipe.
According to one example of the present disclosure, the pipe wall of the first connecting pipe further comprises a first through-hole, and the first pressure gauge is connected to the first through-hole to measure the gas pressure of the first connecting pipe.
According to one example of the present disclosure, the second pressure gauge is positioned on the inner wall of the throat of the flexible pipe.
According to one example of the present disclosure, the pipe wall of the throat of the flexible pipe further comprises a second through-hole, and the second pressure gauge is connected to the second through-hole to measure the gas pressure of the is throat of the flexible pipe.
According to one example of the present disclosure, the respirator is a full-face mask, a nasal mask or a nasal pillow mask.
For a more complete understanding of the present invention, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:
The embodiments of the gas flow detector and a positive airway pressure apparatus (PAPA) containing the same of the present disclosure are discussed in detail below, but not limited the scope of the present disclosure. The same symbols or numbers are used to the same or similar portion in the drawings or the description. And the applications of the present disclosure are not limited by the following embodiments and examples which the person in the art can apply in the related field.
Thus, the flexible pipe 410 has the structure and properties of a Venturi tube, in which the gas pressure and the gas flow rate of the throat 412 and the contraction portion 411 have a relationship (Formula 1) as following:
Wherein P1 is the gas pressure (hPa) of the contraction portion 411,
According to one example of the present disclosure, the pipe wall of the throat 412 further comprises a second through-hole 414 providing a detecting point of gas pressure to detect the gas pressure of the flexible pipe 410, shown as
In
In particular, under a constant gas flow rate, if the thickness of the pipe wall becomes thicker, the impedance of the flow is greater. Conversely, if the thickness of the pipe wall is thinner, the impedance becomes smaller. Therefore, the best curve of the gas flow rate to the gas pressure is able to be regulated by varying the thickness of the pipe wall of the portions in the flexible pipe 410.
According to one example of the present disclosure, the Shore hardness of the flexible pipe 410 is in a range of HS10-HS90. According to one example of the present disclosure, the material of the flexible pipe 410 is an elastomer comprising silicone, rubber, polyurethane, latex or polytetrafluoroethylene (PTFE), but not to limit.
The first connecting pipe 420 is connected to the contraction portion 411 of the flexible pipe 410; and the second connecting pipe 430 is connected to the expanding portion 413 of the flexible pipe 410. In which, the materials of the first connecting pipe 420, the second connecting pipe 430 or the both comprise flexible materials or rigid materials. According to one example of the present disclosure, the materials of the first connecting pipe 420, the second connecting pipe 430 or the both are same as that of the flexible pipe 410. According to one example of the present disclosure, the pipe wall of the first connecting pipe 420 further comprises a first through-hole 421 providing a detecting point of gas pressure to detect the gas pressure of the first connecting pipe 420.
However,
The flow generator 810 is configured to generate a positive pressure gas flow 811. The first connecting pipe 420 of the conduit 400 in the gas flow detector 500, refer to
The control circuit 830 is electrically connected to the flow generator 810 and the first pressure gauge 510 and the second pressure gauge 520 of the gas flow detector 500. After the first pressure gauge 510 and the second pressure gauge 520 respectively detect and read out the gas pressure of the first connecting pipe 420 and the flexible pipe 410, the control circuit 830 may regulate the positive pressure gas flow 811 output from the flow generator 810, so as to satisfy the necessary of the user 840.
Although embodiments of the present disclosure and their advantages have been described in detail, they are not used to limit the present disclosure. It should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the present disclosure. Therefore, the protecting scope of the present disclosure should be defined as the following claims.