The present invention relates to a noise reduction device for a respiratory apparatus, particularly, for noise reduction at a gas inlet of the respiratory apparatus.
In modern clinical medicine, a respiratory apparatus is commonly used for patients with respiratory illnesses such as acute respiratory distress syndrome, severe asthma and chronic obstructive pulmonary disease, as well as used for anesthesia and respiratory management during surgery, first aid resuscitation, and even domestic use for supportive treatment. A respiratory apparatus is a vital medical device that can prevent and treat respiratory failure, reduce complications and prolong the patient's life.
Current respiratory apparatuses have a number of drawbacks. For example, when air is drawn into a respiratory apparatus by a blower, noise is generated by the friction between the air flow and the gas inlet passage. The noise is particularly obvious when the respiratory apparatus is used in a quiet environment or when the patient is sleeping, potentially causing a physical and mental annoyance to the patient.
There are many designs of a noise reduction device to reduce the noise generated at the gas inlet of the respiratory apparatus. For example, CN101075431A to Hongqing Wang, published on 21 Nov. 2007, discloses a noise reduction device including a gas passage defined by a side wall to direct gas flow into the respiratory apparatus. The gas may only travel an angular distance of 60 degrees before reaching the gas outlet, which is too short for the gas passage to reduce the turbulent gas flow and thus provide an effective noise reduction. Accordingly, it has been found that such a design cannot provide significant noise reduction.
It is therefore desirable to provide an improved noise reduction device for the gas to flow from the gas inlet to the gas outlet in order to reduce noise level at the gas inlet of a respiratory apparatus significantly.
The present invention provides a noise reduction device for a respiratory apparatus to, at least, solve the technical problem of the noise generated by/at the gas inlet of the current respiratory apparatus.
According to an aspect of the present invention, there is provided a noise reduction device for a respiratory apparatus including a body configured to be mounted on the gas inlet of the respiratory apparatus, and a cover configured to be detachably engageable with the body for forming a gas inlet and a gas passage. The body includes a side wall and a gas outlet and the cover includes a guiding member defining at least a part of the gas passage. The guiding member is configured to be coupled with the side wall of the body to form the gas passage between the body and the cover.
According to another aspect of the invention, there is provided a respiratory apparatus including the noise reduction device substantially as described herein. The respiratory apparatus may further include a pressurized gas inlet for supplying a pressurized gas; a chamber in fluid communication with the gas outlet of the noise reduction device and the pressurized gas inlet for mixing atmospheric air and the pressurized gas; and a noise-damping device disposed downstream of the chamber.
Without intending to be limited by theory, it is believed that the noise reduction device in the present invention provides significant advantages over, for example, current noise reduction devices that only allow a gas flow to turn about 60 degrees relative to the gas inlet before discharging at the gas outlet. Specifically, it is believed that the noise reduction device in the present invention may provide a longer path, and in an embodiment herein, a longer spiral passage for the gas to flow from the gas inlet to the gas outlet so as to decrease the turbulence and resistance of gas flow to a larger extent and hence reducing the noise caused by the friction between the turbulent gas flow and the gas inlet of the respiratory apparatus. Moreover, it is believed that the configuration of the guiding member being located on the cover provides an easier and more convenient way to clean the gas passage. The cover can be disengaged from the body and subject to common sterilization methods of medical equipment. Such arrangement may also facilitate replacement of the cover in case abrasion or damage is found on the guiding member which may increase turbulent flow of the incoming gas and thus causes noise.
The figures herein are for illustrative purposes only and are not necessarily drawn to scale.
The present invention relates to a noise reduction device which is useful to minimize the noise generated when a gas, in particular atmospheric air or pressurized gas, enters the associated apparatus such as, but is not limited to, a respiratory apparatus which requires a supply of a gas. The respiratory apparatus may be, but is not limited to, a humidifier, a respirator, a nebulizer, etc.
The gas useful herein typically includes atmospheric air or air enriched with oxygen gas, as desired. The gas herein may be at ambient room temperature, higher than room temperature, or lower that room temperature, as desired. The gas herein may be at the ambient pressure of the surrounding environment, or at a higher pressure than the surrounding environment. The gas herein may be at ambient humidity, more humid than ambient humidity, or drier than ambient humidity, as desired.
Referring to
In this embodiment, the cover 102 and the body 104 may be made of a plastic, such as a thermoset plastic, a resin, a polymeric material, etc. Such plastics are known in the art and typically include materials such as polycarbonate, polyethylene, polypropylene, polyvinyl chloride, acrylonitrile butadiene styrene, polymethyl methacrylate, phenolics, melamine formaldehyde, polysulfone, polyetherimide, polyethylene terephthalate, urea-formaldehyde, polyether ether ketone, and a combination thereof. Furthermore, the plastic may incorporate an anti-microbial compound by, for example, containing a coating, integrating the anti-microbial compound into the plastic, etc.
The cavity 108 may house a filter 115 (shown as a dotted line) therein. The filter 115 may be provided to filter dust, pollen, mold, bacteria, etc. from the gas, particularly atmospheric air, before the gas enters the respiratory apparatus. In an embodiment where the filter 115 is detachably arranged in the cavity 108 of the body 104, the filter 115 can be replaced with a new one either randomly or regularly so as to keep the filtered gas free from, or at least with a reduced amount of, dust, pollen, mold, bacteria, etc. This is particularly advantageous when the respiratory apparatus is used for clinical applications. It is also believed that the filter 115 can also act as a noise suppressor to reduce the noise generated in the cavity 108 when the gas passes through the noise reduction device (see
In this embodiment, the gas outlet 106 is radially offset and is supported by a supporting structure 116 which has a plurality of upright protrusions 118 on the inner surface 112 connecting to the gas outlet 106. The gas outlet 106 may be aligned with the gas pathway in the respiratory apparatus, thereby reducing the formation of turbulence. One skilled in the art would appreciate that the gas outlet 106 may be positioned at the centre of the cavity 108 to achieve the similar purpose.
The cavity 108 may further include a converging portion 120 on the inner surface 112 which converges towards the gas outlet 106 so as to facilitate the gas flow. In addition to guiding the flow of the gas towards the gas outlet 106, the supporting structure 116 may also help to hold the filter 115 in place. Without intending to be limited by theory, it is also believed that the upright protrusions 118 and supporting structure 116 may further enhance the structural integrity of the body 104 and/or the cover (see
In the embodiment of
Turning to the cover 102, with reference to
The cover 102 has a guiding member 136 being configured to extend substantially perpendicularly from the inner surface 126. The guiding member 136 itself defines at least a part of a gas passage 138, and is configured in a way to form the gas passage 138 between the body (see
Preferably, the area enclosed by the guiding member 136 is at least twice than area of the gas outlet 106 in order to increase the effective filtering area of the filter 115 and reduce gas resistance, thereby further reducing noise production.
In this embodiment, the guiding member 136 is substantially in form of a C-shape. The guiding member 136 has a fourth end portion 140 and a fifth end portion 142 defining an opening 144 aligning with the open portion 134 and to be closed by the side wall 110 of the body (see
The fourth end portion 140 and the second end portion 130 together define a flow deflecting portion 148 being a part of the gas passage 138 to provide an enlarged section for an increased level of gas entry, and facilitate a spiral flow of the gas into the gas passage. The flow deflecting portion 148 may also avoid transmission of noise from the blower inside the respiratory apparatus to the outside environment.
In this embodiment, the cover 102 is detachably engageable with the body (see
In this figure, the outer surface 154 of the body 104 shows the gas outlet 106 which is to be mounted to a respiratory apparatus (see
Referring to
During operation, a gas, typically atmospheric air, is drawn to the gas inlet 156 preferably by a blower of the respiratory apparatus, where the gas travels from the flow deflecting portion 148 of a wider cross section to the gas passage 138 of a narrower cross section for a smoother gas flow by maintaining or even reducing gas resistance. The gas then flows through the gas passage 138, the gap 143, and to the opening 144. The gas then passes through the filter (see
Referring to
It is believed that the noise reduction device 100 in the present invention can provide obvious noise reduction effect by decreasing the turbulence and resistance of gas flow to a larger extent and thus reducing the noise caused by the friction between the fluctuated gas flow and the gas inlet of the respiratory apparatus. Moreover, the configuration of the guiding member 136 being located on the cover 102 provides an easier and more convenient way to clean the gas passage 138. The cover 102 can be disengaged from the body 104 and subject to common sterilization methods of medical equipment. Such arrangement also facilitates replacement of the cover 102 in case abrasion or damage is found on the guiding member 136 which may increase turbulent flow of the incoming gas and thus causes noise.
It should be understood that the above only illustrates and describes examples whereby the present invention may be carried out, and that modifications and/or alterations may be made thereto without departing from the spirit of the invention.
It should also be understood that certain features of the invention, which are, for clarity, described in the context of separate embodiments, may also be provided in combination in a single embodiment. Conversely, various features of the invention which are, for brevity, described in the context of a single embodiment, may also be provided separately, or in any suitable subcombination.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2019/090387 | 6/6/2019 | WO | 00 |