The present invention relates to a humidifying device, and more particularly to a humidifying device for humidifying a gas such as air and oxygen supplied to a patient.
Supplying oxygen to a patient has conventionally been practiced in hospitals and the like. Oxygen generated by an oxygen cylinder and the like is supplied to a patient by using a mask and the like. The oxygen supplied from an oxygen cylinder and the like contains little moisture. In supplying the oxygen to an airway such as the nasal cavity of the patient, drying of the airway therefore needs to be prevented. A humidifying device is arranged on the way of the oxygen supply tube, so that humidified oxygen is supplied.
Among commonly known humidifying devices used to humidify oxygen is a nebulizer. This humidifying device is configured to include: a water bottle (container) which contains a liquid such as a medicine-dissolved solution, sterile water, purified water, distilled water, a physiological saline solution, and the like; a dedicated humidifying device adaptor (nebulizer adaptor) which is connected to the water bottle; and the like. The nebulizer adaptor is an adaptor configured to jet out an oxygen gas from an orifice formed in a nozzle member, thereby sucking up the sterile water or the like contained in the water bottle from a suction hole arranged near the orifice and sucking in air, and forming a fine aerosol of the sucked sterile water or the like to humidify a gas containing a high concentration of oxygen so that the humidified gas can be supplied to a patient.
If the water bottle of the sterile water or the like becomes empty, the water bottle needs to be replaced. Many nebulizer adaptors are therefore configured so that the water bottle can be replaced. A conventional nebulizer is configured to include a water supply pipe for sucking up the sterile water or the like from the water bottle to the nebulizer adaptor, and a drain tube for returning water accumulated in the nebulizer adaptor to the water bottle (for example, see Patent Literature 1).
[Patent Literature 1] Japanese Patent Application Laid-Open No. 2012-071011
Conventionally, the sterile water or the like sucked up from the water bottle to the nebulizer adaptor is formed into an aerosol to humidify the oxygen gas, and supplied to the patient with the oxygen gas. However, the sucked sterile water or the like does not all become the aerosol, but resides in part inside the nebulizer adaptor in the form of water droplets. The sterile water or the like residing in the nebulizer adaptor therefore has needed to be returned by using the drain tube or the like.
Depending on conditions such as the state of the patient and the supply amount of oxygen, the sterile water or the like in the water bottle is consumed quickly, and the water bottle has needed to be replaced with a new one frequently. The nebulizer adaptor is thus configured so that the water bottle can be replaced. In replacing the water bottle in the presence of the drain tube described above, the drain tube has needed to be reconnected from the old water bottle to the new water bottle. Since water droplets from the nebulizer adaptor flow constantly through the drain tube as described above, there has been a problem that the water drips from the drain tube when the drain tube is reconnected from the old water bottle to the new water bottle.
The sterile water or the like sucked up from the water bottle to the nebulizer adaptor is formed into an aerosol and mixed with the air taken in from inside the room. Here, germs in the room can also get in. Non-aerosol components of the sterile water or the like mixed with the germs included in the room air reside inside the nebulizer adaptor in the form of droplets. Since such sterile water or the like accumulated in the nebulizer adaptor is let into the water bottle as a drain, the germs in the sterile water or the like enter the water bottle. The water bottle originally contains a liquid, such as sterile water, with little germs in it. Such water bottles are commercially available. However, there has been a problem that if the sterile water or the like returns to the water bottle as a drain, germs can get into the liquid, such as sterile water, in the water bottle.
A heater device may be interposed between the water bottle and the nebulizer adaptor to heat the sterile water or the like while the sterile water or the like contained in the water bottle is sucked up. In such a case, the heater device is configured so that the sterile water or the like makes direct contact with and passes through the interior of the heater device. Therefore, there has been a problem that the heater device or its components need to be subjected to sterilization treatment each time the patient changes.
The present invention has been achieved in view of the foregoing problems, and an object thereof is to provide a humidifying device which prevents germs from getting into the liquid, such as sterile water, in the container, such as a water bottle, during use, and prevent the liquid from dripping when the container is replaced.
(1) To solve the foregoing problems, a humidifying device according to the present invention is a humidifying device including: a suction mechanism configured to suck a liquid for humidification from a container containing the liquid by a negative pressure produced by a gas jetted from a gas jetting part of a nozzle member; a liquid receptor configured to store the liquid sucked by the suction mechanism; and a receptor-side aerosol forming member configured to suck the liquid from the liquid receptor and form an aerosol of the sucked liquid by the negative pressure by using a receptor-side suction passage.
(2) The humidifying device according to the present invention is the humidifying device according to (1) above, wherein the suction mechanism includes a container-side suction member configured to suck the liquid from the container by the negative pressure produced by the gas jetted from the gas jetting part of the nozzle member.
(3) The humidifying device according to the present invention is the humidifying device according to (2) above, wherein: the container-side suction member of the suction mechanism is a container-side aerosol forming member configured to suck the liquid from the container and form an aerosol of the sucked liquid by the negative pressure produced by the gas jetted from the gas jet part of the nozzle member; and the liquid receptor stores at least the liquid discharged from the container-side aerosol forming member.
(4) The humidifying device according to the present invention is the humidifying device according to (1) above, including a suction force control mechanism configured to make capability of the suction mechanism to suck the liquid of the container variable by using a rise or fall of a liquid surface of the liquid stored in the liquid receptor.
(5) The humidifying device according to the present invention is the humidifying device according to (4) above, wherein: the suction mechanism includes a discharge port configured to discharge the liquid sucked from the container; and the suction force control mechanism includes a cutoff member configured to move between a cutoff position in which to cut off the discharge port from a flow of the gas jetted from the gas jetting part and a retracted position in which to be retracted from the cutoff position, a floating member configured to float up and down according to the rise or fall of the liquid surface of the liquid stored in the liquid receptor, and a connection member configured to connect the floating member and the cutoff member and cause the cutoff member to move with floating of the floating member.
(6) The humidifying device according to the present invention is the humidifying device according to (5) above, wherein the cutoff member moves between the cutoff position and the retracted position by oscillating about an oscillation shaft.
(7) The humidifying device according to the present invention is the humidifying device according to (4) above, wherein: the suction mechanism includes a container-side suction passage configured to suck and guide the liquid from the container; and the suction force control mechanism includes an air opening port that is capable of opening a middle part of the container-side suction passage to an air side, and an air control valve configured to open and close the air opening port according to the rise or fall of the liquid surface of the liquid stored in the liquid receptor.
(8) The humidifying device according to the present invention is the humidifying device according to (4) above, wherein: the suction mechanism includes a container-side suction passage configured to suck and guide the liquid from the container; and the suction force control mechanism includes a container-side suction passage control valve configured to control passing of the liquid of the container-side suction passage according to the rise or fall of the liquid surface of the liquid stored in the liquid receptor.
(9) The humidifying device according to the present invention is the humidifying device according to (1) above, wherein the suction mechanism includes a communication passage configured to communicate the liquid of the container to the receptor-side suction passage of the receptor-side aerosol forming member, so that the suction mechanism sucks the liquid from the container by using a suction force of the receptor-side aerosol forming member.
(10) The humidifying device according to the present invention is the humidifying device according to (9) above, including a suction force control mechanism configured to make capability of the suction mechanism to suck the liquid of the container variable by using a rise or fall of a liquid surface of the liquid stored in the liquid receptor.
(11) The humidifying device according to the present invention is the humidifying device according to (10) above, wherein the suction force control mechanism includes a control member that is arranged on the receptor-side suction passage and configured to control a suction amount of the liquid of the liquid receptor by using the rise or fall of the liquid surface of the liquid stored in the liquid receptor, and the suction force control mechanism accelerates suction of the liquid of the container through the communication passage by suppressing the suction amount of the liquid of the liquid receptor by the control member.
(12) The humidifying device according to the present invention is the humidifying device according to (11) above, wherein the control member of the suction force control mechanism includes: an opening and closing member configured to move between a closing position where a liquid suction port of the liquid of the liquid receptor in the receptor-side aerosol forming member is closed and an opening position where the liquid suction port is opened; a floating member configured to float up and down according to the rise or fall of the liquid surface of the liquid stored in the liquid receptor; and a connection member configured to connect the floating member and the opening and closing member and cause the opening and closing member to move with floating of the floating member.
(13) The humidifying device according to the present invention is the humidifying device according to (1) above, including a second liquid receptor configured to receive the liquid above a bottom surface of the liquid receptor, wherein the receptor-side aerosol forming member sucks the liquid guided by the second liquid receptor and form an aerosol of the sucked liquid.
(14) The humidifying device according to the present invention is the humidifying device according to (13) above, wherein the second liquid receptor is submerged in the liquid stored in the liquid receptor.
(15) The humidifying device according to the present invention is the humidifying device according to (13) above, wherein the second liquid receptor also serves as a restriction member configured to restrict impingement of the gas jetted from the gas jetting part of the nozzle member on a liquid surface of the liquid receptor.
(16) The humidifying device according to the present invention is the humidifying device according to (1) above, including a heating mechanism configured to heat at least part of the liquid of the liquid receptor or the liquid in the receptor-side aerosol forming member.
(17) The humidifying device according to the present invention is the humidifying device according to (1) above, including an adaptor that is detachably attached to the container, wherein the adaptor includes at least the receptor-side aerosol forming member, the liquid receptor, and the suction mechanism.
(18) The humidifying device according to the present invention is the humidifying device according to (1) above, the humidifying device humidifying and sending the gas containing oxygen to a patient, the humidifying device including a sending unit configured to send out a mixture of the gas and the aerosol.
(19) The humidifying device according to the present invention is the humidifying device according to (1) above, including the container.
The humidifying device according to the present invention includes: the container-side aerosol forming member configured to suck the liquid for humidification from the container containing the liquid and form an aerosol of the sucked liquid by a negative pressure produced by a gas jetted from an orifice of the nozzle member; the liquid receptor configured to store the liquid residing in the form of droplets into which the aerosol turns; and the receptor-side aerosol forming member configured to suck the liquid from the liquid receptor and form an aerosol of the sucked liquid again by the negative pressure. A drain tube for returning the liquid, such as sterile water, accumulated in the humidifying device to the container, such as a water bottle, therefore does not need to be provided. This facilitates replacement of the container, and solves the conventional problem that the liquid drips from the drain tube when the container is replaced.
The humidifying device according to the present invention does not need to include a drain tube for returning a liquid, such as sterile water, accumulated in a nebulizer adaptor to the container, such as a water bottle. Since the liquid, such as sterile water, to be a drain containing germs in the room will not return to the container, such as a water bottle, the problem that germs can get into the liquid in the container is solved.
The humidifying device according to the present invention includes: the cutoff member configured to oscillate about the oscillation shaft between the cutoff position in which to cut off an ejection port of the container-side aerosol forming member from the orifice and the retracted position in which to be retracted from the cutoff position; the floating member configured to float up and down according to the rise or fall of the liquid surface of the liquid stored in the liquid receptor; and the connection member configured to connect the floating member to the cutoff member with the connection shaft and cause the cutoff member to oscillate with the floating of the floating member. If the amount of the liquid stored in the liquid receptor increases, the humidifying device can thus stop sucking the liquid from the container. This can prevent the amount of the liquid stored in the liquid receptor from continuing to increase.
The humidifying device according to the present invention includes: the container-side suction member configured to suck the liquid for humidification from the container containing the liquid by the negative pressure produced by the gas jetted from the orifice of the nozzle member; the liquid receptor configured to store the liquid sucked by the container-side suction member; and an aerosol forming member configured to suck the liquid from the liquid receptor and form an aerosol of the sucked liquid by the negative pressure. A drain tube for returning the liquid, such as sterile water, accumulated in the humidifying device to the container, such as a water bottle, therefore does not need to be provided. This facilitates the replacement of the container, and solves the conventional problem that the liquid drips from the drain tube when the container is replaced.
The humidifying device according to the present invention does not need to include a drain tube for returning the liquid, such as sterile water, accumulated in the nebulizer adaptor to the container, such as a water bottle. Since the liquid, such as sterile water, to be a drain containing germs in the room will not return to the container, such as a water bottle, the drawback that germs can get into the liquid in the container is solved.
In the humidifying device according to the present invention, if the container-side suction member continues sucking the liquid in the container, such as a water bottle, and the liquid stored in the liquid receptor increases, an outlet of the container-side suction member is submerged in the liquid. This stops the function of sucking up the liquid by the container-side suction member. The liquid stored in the liquid receptor can thus be prevented from overflowing into a horizontal projection portion. As the aerosol forming member sucks up the liquid stored in the liquid receptor, the outlet of the container-side suction member emerges from the liquid surface of the liquid. The function of sucking up the liquid by the container-side suction member is thereby restored.
The humidifying device according to the present invention includes: the cutoff member configured to oscillate about the oscillation shaft between the cutoff position in which to cut off the outlet of the container-side suction member from the orifice and the retracted position in which to be retracted from the cutoff position; the floating member configured to float up and down according to the rise or fall of the liquid surface of the liquid stored in the liquid receptor; and the connection member configured to connect the floating member to the cutoff member with the oscillating shaft and cause the cutoff member to oscillate with the floating of the floating member. If the amount of the liquid stored in the liquid receptor increases, the humidifying device can thus stop sucking the liquid from the container. This can prevent the amount of the liquid stored in the liquid receptor from continuing to increase.
According to the humidifying device of the present invention, excellent effects that germs can be prevented from getting into the liquid, such as sterile water, in the container, such as a water bottle, during use, and the liquid can be prevented from dripping when the container is replaced can be provided.
A nebulizer according to each of embodiments of the present invention will be described below with reference to the drawings.
[First Embodiment] Initially, a configuration of a nebulizer XA1 according to a first embodiment will be described with reference to
The nebulizer (humidifying device) XA1 shown in
A cap 3 to be connected with the foregoing water bottle 1 is arranged on a lower part of the nebulizer adaptor XB1. A screw portion 3a to be threadedly engaged with the screw portion 1b arranged on the outer peripheral side surface of the opening portion 1a of the foregoing water bottle 1 is arranged on an inner side surface of the cap 3.
A gasket 4 is arranged inside the cap 3. If the screw portion 1b and the screw portion 3a are threadedly engaged to connect the nebulizer adaptor XB1 and the water bottle 1, the gasket 4 functions to avoid liquid leak from the connection.
An erected projection portion 5 of cylindrical shape is formed on the nebulizer adaptor XB1 in a direction (perpendicular direction) that becomes vertical when the nebulizer XA1 is positioned upright. This erected projection portion 5 is provided with an oxygen gas supply system. A horizontal projection portion 6 of cylindrical shape is formed on a side of the nebulizer adaptor XB1 away from the erected projection portion 5, in a direction (horizontal direction) that becomes lateral when the nebulizer XA1 is positioned upright. The horizontal projection portion 6 is configured to be able to send out a mixture of air, an oxygen gas, and an aerosol to a patient.
A rotatable adjustment dial 7 is arranged outside the erected projection portion 5. The top of the erected projection portion 5 is closed by a top plate 8. A closed space 9 constituted by the projection portion 5 and the top plate 8 is thus formed inside the erected projection portion 5.
A terminal 11 to which a nut 10 is attached is fitted into the top plate 8. The nut 10 is connected to an outlet member 17 of the oxygen flowmeter XC1 such as shown in
More specifically, a screw portion 10a arranged on the nut 10 and a screw member 17b arranged on the outlet member 17 of the oxygen flowmeter XC1 are threadedly engaged, whereby a connection portion 17a arranged on the outlet member 17 of the oxygen flowmeter XC1 and a connection portion 11a arranged on the terminal 11 are put in close contact with each other. A flow hole 17c arranged in the outlet member 17 of the oxygen flowmeter XC1 and a flow hole 11b arranged in the terminal 11 communicate with each other to supply the oxygen gas from the oxygen flowmeter Xe1 to the terminal 11.
As shown in
If the adjustment dial 7 is rotated to oppose the windows 7a to the windows 5a, openings communicating with the closed space 9 are formed. More specifically, the rotation position of the adjustment dial 7 can be adjusted to adjust the area of the openings to the closed space 9, whereby the amount of intake air can be adjusted.
Returning to
With the nozzle member 12 and the diffuser 14 arranged as described above, the oxygen gas jetted from the orifice 12a of the nozzle member 12 passes through the diffuser 14 at high speed. The air residing in the closed space 9 is thus sucked to flow toward the diffuser 14. Here, air is sucked according to the area of the openings formed by the windows 7a and the windows 5a formed corresponding to the rotation position of the adjustment dial 7, and passes through the diffuser 14.
The nozzle member 12 is fitted onto the end of the terminal 11 on the water bottle 1 side. The orifice 12a is formed in the extremity of the nozzle member 12. The ejection port 13a of the container-side aerosol forming member 13 is arranged near the orifice 12a of the nozzle member 12. Since the nozzle member 12 and the container-side aerosol forming member 13 have different functions, the members may be configured as two different members and may be combined with each other.
However, the positional relationship between the oxygen gas jetted from the orifice 12a of the nozzle member 12 and the ejection port 13a for ejecting the liquid 2 is subtle and difficult to adjust. Therefore, the nozzle member 12 and the container-side aerosol forming member 13 are preferably integrally configured.
Similarly, the nozzle member 12 and the receptor-side aerosol forming member 16 may be configured as two different members and may be combined with each other. However, the positional relationship between the oxygen gas jetted from the orifice 12a of the nozzle member 12 and the ejection port 16a for ejecting the liquid 2 is subtle and difficult to adjust. Therefore, the nozzle member 12 and the receptor-side aerosol forming member 16 are preferably integrally configured. In other words, the nozzle member 12, the container-side aerosol forming member 13, and the receptor-side aerosol forming member 16 are preferably integrally configured.
The container-side aerosol forming member 13 is arranged inside the diffuser 14 which is arranged in a housing 15 of the nebulizer adaptor XB1. The ejection port 13a of the liquid 2 is formed near the orifice 12a of the nozzle member 12. A container-side suction passage 13b for sucking up the liquid 2 is formed to be continued from the ejection port 13a. The lower end of the container-side suction passage 13b extends to near the inner bottom of the water bottle 1. A liquid suction port 13c at the lower end is inserted in the liquid 2 such as sterile water, and can efficiently suck up the liquid 2 such as sterile water. More specifically, the container-side aerosol forming member 13 serves as a suction mechanism for sucking the liquid 2 from the water bottle 1 containing the liquid for humidification by a negative pressure produced by the gas.
A liquid receptor 15a is arranged in a lower part of the housing 15 of the nebulizer adaptor XB1. The liquid 2 from the ejection port 13a of the container-side aerosol forming member 13 is formed into an aerosol by the negative pressure produced by the oxygen gas jetted from the orifice 12a of the nozzle member 12, and humidifies the oxygen gas. The mixture of the air, the oxygen gas, and the aerosol can be sent out to the patient from the horizontal projection portion 6. The liquid receptor 15a can store the liquid 2 that remains inside the nebulizer adaptor XB1 in the form of droplets without being guided to the outside, other than the moisture of the liquid 2 guided to the outside.
The receptor-side aerosol forming member 16 is further formed inside the diffuser 14 which is arranged in the housing 15 of the nebulizer adaptor XB1. The ejection port 16a of the liquid 2 of the receptor-side aerosol forming member 16 is formed near the orifice 12a of the nozzle member 12. A receptor-side suction passage 16b for sucking up the liquid 2 is formed to be continued from the ejection port 16a. The lower end of the receptor-side suction passage 16b extends to near the bottom of the foregoing liquid receptor 15a, where a liquid suction port 16c is arranged.
The liquid 2 that is not guided to the outside and accumulated as droplets in the liquid receptor 15a in the lower part of the housing 15 of the nebulizer adaptor XB1, other than the moisture of the liquid 2 guided to the outside, is sucked from the liquid suction port 16c. The liquid 2 passes through the receptor-side suction passage 16b and is ejected from the ejection port 16a of the liquid 2 of the receptor-side aerosol forming member 16 in the form of aerosol. The aerosol is mixed with the liquid 2 ejected from the foregoing container-side aerosol forming member 13 in an aerosol form, and sent out from the horizontal projection portion 6 to the patient as a mixture of the air, the oxygen gas, and the aerosol.
The positional relationship between the ejection port 13a of the liquid 2 of the container-side aerosol forming member 13 and the ejection port 16a of the liquid 2 of the receptor-side aerosol forming member 16 is such that the receptor-side aerosol forming member 16 is placed in a position to not interfere with the formation of the aerosol and the humidification of the oxygen gas by the liquid 2 from the ejection port 13a of the liquid 2 of the container-side aerosol forming member 13.
For example,
The performance of the highest priority to the container-side aerosol forming member 13 is that the liquid 2 ejected in an aerosol form humidifies the oxygen gas, and a mixture of the air, the oxygen gas, and the aerosol is sent out from the horizontal projection portion 6 to the patient. In addition, the container-side suction passage 13b for sucking up the liquid 2, connected to the ejection port 13a, extends to near the inner bottom of the water bottle 1 at the lower end and is considerably long. The container-side aerosol forming member 13 therefore needs a somewhat large negative pressure to suck up the liquid 2 from the lower part of the water bottle 1.
On the other hand, the role of the receptor-side aerosol forming member 16 is to form the liquid 2 accumulated as droplets in the liquid receptor 15a in the lower part of the housing 15 of the nebulizer adaptor XB1, without being guided to the outside, into an aerosol again and send out the aerosol to the patient in combination with the liquid 2 ejected in an aerosol form from the container-side aerosol forming member 13. The priority of the role of the receptor-side aerosol forming member 16 is somewhat lower than that of the function of the container-side aerosol forming member 13. In addition, the receptor-side suction passage 16b of the receptor-side aerosol forming member 16 extends to near the bottom of the liquid receptor 15a. The distance from the liquid suction port 16c arranged at the lower end to the ejection port 16a of the liquid 2 is small. The negative pressure for sucking up the liquid 2 therefore may be smaller than the negative pressure needed for the container-side aerosol forming member 13.
Then, the ejection port 13a of the liquid 2 of the container-side aerosol forming member 13 is arranged in a position where the negative pressure is relatively large in the graphs of the negative pressure shown in
The nebulizer XA1 described above includes the container-side aerosol forming member 13 configured to suck the liquid 2 from the water bottle 1 containing the liquid 2 for humidification and form an aerosol of the sucked liquid 2 by the negative pressure produced by the oxygen gas jetted from the orifice 12a of the nozzle member 12, the liquid receptor 15a configured to store the liquid 2 residing in the form of droplets into which the aerosol turns, and the receptor-side aerosol forming member 16 configured to suck the liquid 2 from the liquid receptor 15a and form the sucked liquid 2 into an aerosol again by the negative pressure. A drain tube for returning the liquid 2, such as sterile water, accumulated in the nebulizer XA1 to the container, such as the water bottle 1, therefore does not need to be provided. This facilitates the replacement of the container, such as the water bottle 1, and solves the conventional problem that the liquid 2 drips from the drain tube when the container is replaced.
The nebulizer XA1 does not need to include a drain tube for returning the liquid 2, such as sterile water, accumulated in the nebulizer adaptor XB1 to the container, such as the water bottle 1. Since the liquid 2, such as sterile water, to be a drain containing germs in the room will not return to the container, such as the water bottle 1, the drawback that the germs can get into the liquid in the container is solved.
[Second Embodiment] Next, a configuration of a nebulizer XD1 according to a second embodiment will be described with reference to
The nebulizer (humidifying device) XD1 shown in
An ejection port 26a of an aerosol forming member 26 is arranged in a position to be affected by the oxygen gas jetted from the orifice 12a of the nozzle member 12. Since the nozzle member 12 and the aerosol forming member 26 have different functions, the members may be configured as two different members and may be combined with each other.
However, the positional relationship between the oxygen gas jetted from the orifice 12a of the nozzle member 12 and the ejection port 26a for jetting the liquid 2 is subtle and difficult to adjust. Therefore, the nozzle member 12 and the aerosol forming member 26 are preferably integrally configured.
A container-side suction member 23 is arranged below the diffuser 14 which is arranged in the housing 15 of the nebulizer adaptor XE1. An outlet 23a of the liquid 2 is formed in the extremity of the container-side suction member 23. A passage 23b for sucking up the liquid 2 is formed to be continued from the outlet 23a. The lower end of the passage 23b extends to near the inner bottom of the water bottle 1. The lower end is inserted in the liquid 2 such as sterile water, and can efficiently suck up the liquid 2 such as sterile water. In the present invention, a concept including both the ejection port (mainly intended for the formation of an aerosol) described in the first embodiment and the foregoing outlet (not mainly intended for the formation of an aerosol) in the second embodiment is defined as a discharge port. This container-side suction member 23 serves as a suction mechanism configured to suck the liquid 2 from the water bottle 1 by the negative pressure produced by the gas.
The liquid 2 is discharged from the outlet 23a of the container-side suction member 23 by the negative pressure produced by the oxygen gas jetted from the orifice 12a of the nozzle member 12. The liquid receptor 15a can store the liquid 2.
The aerosol forming member 26 is formed inside the diffuser 14 which is arranged in the housing 15 of the nebulizer adaptor XE1. The ejection port 26a of the liquid 2 of the aerosol forming member 26 is formed near the orifice 12a of the nozzle member 12. The lower end of the aerosol forming member 26 extends to near the bottom of the foregoing liquid receptor 15a, where a liquid suction port 26c is arranged.
The liquid 2 that is discharged from the outlet 23a of the container-side suction member 23 and accumulated in the liquid receptor 15a in the lower part of the housing 15 of the nebulizer adaptor XE1 is sucked from the liquid suction port 26c. The liquid 2 passes through a receptor-side suction passage 26b and is ejected from the ejection port 26a of the liquid 2 of the receptor-side aerosol forming member 26 in the form of aerosol. The resulting mixture of the air, the oxygen gas, and the aerosol is sent out from the horizontal projection portion 6 to the patient.
The positional relationship between the outlet 23a of the liquid 2 of the container-side suction member 23 and the ejection port 26a of the liquid 2 of the aerosol forming member 26 is such that the container-side suction member 23 is placed in a position to not interfere with the formation of the aerosol and the humidification of the oxygen gas by the liquid 2 from the ejection port 26a of the liquid 2 of the aerosol forming member 26.
The nebulizer XD1 described above includes the container-side suction member 23 configured to suck the liquid 2 from the water bottle 1 containing the liquid 2 for humidification by the negative pressure produced by the oxygen gas jetted from the orifice 12a of the nozzle member 12, the liquid receptor 15a configured to store the liquid 2 sucked by the container-side suction member 23, and the aerosol forming member 26 configured to suck the liquid 2 from the liquid receptor 15a and form an aerosol of the sucked liquid 2 by the negative pressure. A drain tube for returning the liquid 2, such as sterile water, accumulated in the nebulizer XD1 to the container, such as the water bottle 1, therefore does not need to be provided. This facilitates the replacement of the container, and solves the conventional problem that the liquid 2 drips from the drain tube when the container is replaced.
The nebulizer XD1 does not need to include a drain tube for returning the liquid 2, such as sterile water, accumulated in the nebulizer adaptor XE1 to the container, such as the water bottle 1. Since the liquid 2, such as sterile water, to be a drain containing germs in the room will not return to the container, such as the water bottle 1, the drawback that the germs can get into the liquid 2 in the container is solved.
In the nebulizer XD1, if the container-side suction member 23 continues sucking in the liquid 2 in the water bottle 1 and the liquid surface of the liquid 2 stored in the liquid receptor 15a rises, the outlet 23a of the container-side suction member 23 is submerged in the liquid 2. This stops the function of sucking up the liquid 2 by the container-side suction member 23. The liquid 2 accumulated in the liquid receptor 15a is thereby prevented from overflowing into the horizontal projection portion 6. As the aerosol forming member 26 sucks up the liquid 2 stored in the liquid receptor 15a, the liquid surface of the liquid 2 falls and the outlet 23a of the container-side suction member 23 emerges from the liquid surface of the liquid 2. The function of sucking up the liquid 2 by the container-side suction member 23 is thereby restored.
[Third Embodiment] Next, a configuration of a nebulizer XF1 according to a third embodiment will be described with reference to
The nebulizer (humidifying device) XF1 shown in
As shown in
The nebulizer adaptor XG1 includes a suction force control mechanism configured to make the capability of the suction mechanism (container-side aerosol forming member 13) to suck the liquid 2 variable by using a rise or fall of the liquid surface of the liquid 2 stored in the liquid receptor 15a. As the suction force control mechanism, the present embodiment includes the valve 30 configured to open and close the ejection port 13a of the container-side aerosol forming member 13. The valve 30 includes a cutoff member 31, a floating member 32, and a connection member 33.
The cutoff member 31 oscillates about an oscillation shaft 34 between a cutoff position (position shown by the solid lines in
The floating member 32 floats on the liquid surface of the liquid 2 stored in the liquid receptor 15a, and floats up and down according to the rise or fall of the liquid surface. The connection member 33 connects the floating member 32 to the cutoff member 31 with the oscillation shaft 34. The connection member 33 makes the cutoff member 31 to oscillate with the floating of the floating member 32.
In such a nebulizer XF1, if the container-side aerosol forming member 13 continues sucking up the liquid 2 in the water bottle and the liquid surface of the liquid 2 stored in the liquid receptor 15a rises, the floating member 32 floats up. The cutoff member 31 oscillates to the cutoff position, and the function of sucking up the liquid 2 by the container-side aerosol forming member 13 stops. The liquid 2 accumulated in the liquid receptor 15a is thereby prevented from overflowing into the horizontal projection portion 6 (see
As shown in
[Fourth Embodiment] Next, a configuration of a nebulizer XH1 according to a fourth embodiment will be described with reference to
The nebulizer (humidifying device) XH1 shown in
The nebulizer adaptor XI1 includes the valve 40 configured to cut off the ejection port 13a of the container-side aerosol forming member 13 from the flow of the gas jetted from the orifice 12a. The valve 40 is of an “oblique slide system” in which the flow of the oxygen gas itself jetted from the orifice 12a is cut off in front of the ejection port 13a. Specifically, the valve 40 includes a cutoff member 41, a floating member 42, and a connection member 43.
The cutoff member 41 makes an oblique sliding movement between a cutoff position (position shown by the dashed-dotted lines in
The floating member 42 floats on the liquid surface of the liquid 2 stored in the liquid receptor 15a, and floats up and down according to the rise or fall of the liquid surface. Guide grooves 43a to be guided by guide pins 44 formed on the housing (not shown) of the nebulizer adaptor XI1 are formed in the connection member 43. This connection member 43 connects the floating member 42 to the cutoff member 41, and causes the cutoff member 41 to make a sliding movement with the floating of the floating member 42.
[Fifth Embodiment] Next, a configuration of a nebulizer XJ1 according to a fifth embodiment will be described with reference to
The nebulizer (humidifying device) XJ1 shown in
The nebulizer adaptor XK1 includes the valve 50 configured to open and close the ejection port 13a of the container-side aerosol forming member 13. The valve 50 is of a “vertical slide system” for blocking the ejection port 13a. Specifically, the valve 50 includes a cutoff plate 51, a float ring 52 which is a floating member, and a connection member 53 configured to connect the cutoff plate 51 and the float ring 52.
The cutoff plate 51 is integrally configured with the float ring 52 and makes a sliding movement with the float ring 52. The cutoff plate 51 thus makes a vertical sliding movement between a cutoff position (position shown by the dashed-dotted lines in
The float ring 52 is slidably fitted onto the container-side aerosol forming member 13 and the receptor-side aerosol forming member 16 which are integrally configured. The float ring 52 floats on the liquid surface of the liquid 2 stored in the liquid receptor 15a, and floats up and down according to the rise or fall of the liquid surface. The float ring 52 thereby causes the cutoff plate 51 to make a vertical sliding movement.
[Sixth Embodiment] Next, a configuration of a nebulizer XL1 according to a sixth embodiment will be described with reference to
The suction force control mechanism of the nebulizer adaptor XM1 also has a function of maintaining the liquid surface of the liquid 2 stored in the liquid receptor 15a in a prescribed position. Specifically, if the liquid surface of the liquid 2 in the liquid receptor 15a reaches the prescribed position, the suction force control mechanism reduces the suction capability of the container-side aerosol forming member 13. On the other hand, if the liquid surface of the liquid 2 in the liquid receptor 15a falls below the prescribed position, the suction force control mechanism increases the suction capability of the container-side aerosol forming member 13. Specifically, the suction force control mechanism includes the valve 30 configured to make an opening and closing operation vertically above the ejection port 13a and thereby prevent the oxygen jetted from the orifice 12a from impinging on the ejection port 13a of the container-side aerosol forming member 13. As shown in
As shown in
[Seventh Embodiment] Next, a configuration of a nebulizer XN1 according to a seventh embodiment will be described with reference to
This nebulizer (humidifying device) XN1 includes a nebulizer adaptor XO1, a heater device 60, and a water bottle (container) 1.
The heater device 60 heats at least the liquid 2 in the liquid receptor 15a from outside. The liquid suction port 16c of the receptor-side aerosol forming member 16 preferentially sucks part of the liquid 2 near the surface layer (liquid surface) in the liquid receptor 15a. Since the high-temperature liquid 2 heated by the heater device 60 resides near the liquid surface, such a liquid 2 can be preferentially sucked to quickly increase the humidifying temperature.
The nebulizer adaptor XO1 further includes a second liquid receptor 110 capable of receiving the liquid 2 aside from the liquid receptor 15a, vertically beneath the ejection port 16a and above the liquid surface in the liquid receptor 15a. The second liquid receptor 110 is a plate member that is fixed to the receptor-side aerosol forming member 16 or the container-side aerosol forming member 13 and extends in a horizontal direction (or oblique direction). The second liquid receptor 110 is not able to receive a large amount of liquid 2 but can preferentially retain the liquid 2 dripping from the container-side aerosol forming member 13 on the surface. The second liquid receptor 110 has a notch (or opening) 110a near the receptor-side aerosol forming member 16. The second liquid receptor 110 can let the retained liquid 2 flow down along the peripheral wall of the receptor-side aerosol forming member 16 via the notch 110a.
As shown in
On the other hand, as shown in
The second liquid receptor 110 also serves as a restriction member configured to restrict the impingement of the gas jetted from the orifice 12a of the nozzle member 12 on the liquid surface of the liquid receptor 15a. This restriction member can receive the gas jetted from the orifice 12a to suppress rippling of the liquid surface of the liquid receptor 15a due to the jetting of the gas. Since the second liquid receptor 110 functions as the restriction member, the heated liquid 2 in the liquid receptor 15a heated by the heater device 60 can reside still near the liquid surface. Only the warm liquid can thus be stably and efficiently sucked from the liquid suction port 16c of the receptor-side aerosol forming member 16.
While the second liquid receptor 110 here is described to a plate member, the second liquid receptor 110 may be configured in a dish-like or container-like shape as shown in
While the second liquid receptor 110 is described to be arranged above the liquid surface (at full liquid time) of the liquid receptor 15a, the present invention is not limited thereto. For example, as shown in
[Eighth Embodiment] Next, a configuration of a nebulizer XP1 according to an eighth embodiment will be described with reference to
In the nebulizer adaptor XQ1, the ejection port 13a of the container-side aerosol forming member 13 is arranged as a suction force control mechanism, at approximately the same height as the prescribed liquid level. In other words, the nebulizer adaptor XQ1 is of “submersion type” in which the ejection port 13a is blocked by the liquid surface of the liquid 2.
In the state shown in
In the present embodiment, the ejection port 13a of the container-side aerosol forming member 13 is located closer to the liquid surface side. The ejection port 13a is thus farther from the orifice 12a, and the negative pressure may become insufficient. In such a case, the flow of the oxygen gas may be branched to form a second orifice aside from the orifice 12a corresponding to the ejection port 16a of the receptor-side aerosol forming member 16. The second orifice and the ejection port 13a of the container-side aerosol forming member 13 arranged near the prescribed liquid level may be located close to each other.
[Ninth Embodiment] Next, a configuration of a nebulizer XR1 according to a ninth embodiment will be described with reference to
The nebulizer adaptor XS1 includes, as a suction force control mechanism, a valve 56 which is arranged on the way of the container-side suction passage 13b of the container-side aerosol forming member 13, and a driving member 57 configured to oscillate according to the rise or fall of the liquid 2 by using buoyancy and switch ON/OFF the valve 56. The valve 56 moves toward and away from the container-side suction passage 13b to close and open the flow channel of the container-side suction passage 13b. As shown in
In such embodiments, the suction force control mechanism is described to switch the sucking function of the container-side aerosol forming member 13 by using the buoyancy of the liquid 2 or the liquid itself. However, the present invention is not limited thereto. For example, the liquid surface (liquid level) of the liquid 2 may be electrically measured, and the measurement result may be used to switch ON/OFF the flow of the container-side suction passage 13b by an electrical valve. If the liquid is sucked up from the water bottle by an electrical pump, the pump function may be switched ON/OFF to control the liquid surface by utilizing measurement results of the liquid surface.
[Tenth Embodiment] Next, a configuration of a nebulizer XT1 according to a tenth embodiment will be described with reference to
As shown in
The suction force control mechanism includes an air opening port 13d which is formed in the middle of the container-side suction passage 13b, above the liquid level of the liquid receptor 15a at full liquid time, and an air control valve 70 configured to open and close the air opening port 13d. The air opening port 13d is an opening having a circular cross section, perpendicularly intersecting with the container-side suction passage 13b. The air opening port 13d makes the container-side suction passage 13b communicate with the air.
The air control valve 70 includes an opening and closing member 71, a floating member 72, and a connection member 73. As shown in
As shown in
[Eleventh Embodiment] Next, a configuration of a nebulizer XV1 according to an eleventh embodiment will be described with reference to
The nebulizer adaptor XW1 includes a receptor-side aerosol forming member 16. The receptor-side aerosol forming member 16 includes an ejection port 16a which is arranged near the orifice 12a of the nozzle member 12, a liquid suction port 16c configured to open in the liquid 2 of the liquid receptor 15a, and a receptor-side suction passage 16b configured to make the ejection port 16a and the liquid suction port 16c communicate with each other.
A communication passage 80 configured to communicate the liquid 2 in the water bottle 1 to the receptor-side suction passage 16b is further provided as a suction mechanism configured to suck the liquid 2 from the water bottle 1. The upper end of the communication passage 80 serves as a confluent port 80a to join the receptor-side suction passage 16b. The lower end of the communication passage 80 serves as a liquid suction port 80c configured to suck the liquid 2 of the water bottle 1. In the present embodiment, the receptor-side suction passage 16b and the communication passage 80 are connected in series, and the liquid suction port 16c having a circular (or cylindrical) cross section is formed in the side surface. If a negative pressure is applied to the ejection port 16a of the receptor-side aerosol forming member 16, the liquid 2 of the liquid receptor 15a is therefore attempted to be sucked from the liquid suction port 16c of the receptor-side suction passage 16b, and the liquid 2 in the water bottle 1 is attempted to be sucked from the liquid suction port 80c of the communication passage 80 at the same time. In other words, in such a structure, the suction force of the ejection port 16a of the receptor-side aerosol forming member 16 is used to suck the liquid 2 from the water bottle 1.
The present embodiment further includes a suction force control mechanism configured to make the capability of the suction mechanism to suck the liquid 2 of the water bottle 1 variable by using the rise or fall of the liquid surface of the liquid 2 stored in the liquid receptor 15a. Various configurations may be employed for such a suction force control mechanism. For example, as shown in
Specifically, the control member 90 according to the present embodiment includes an opening and closing member 91 configured to move between a closing position for closing the liquid suction port 16c of the liquid 2 of the liquid receptor 15a and an opening position for opening the liquid suction port 16c, a floating member 92 configured to float up and down according to the rise or fall of the liquid surface of the liquid 2 stored in the liquid receptor 15a, and a connection member 93 configured to connect the floating member 92 and the opening and closing member 91 and make the opening and closing member 91 move with the floating of the floating member 92.
As shown in
As shown in
On the other hand, as shown in
In the foregoing embodiment, the confluent port 80a of the communication passage 80 is described to be arranged under the liquid surface of the liquid 2 accumulated in the liquid receptor 15a. However, the present invention is not limited thereto, and the confluent port 80a may join the receptor-side suction passage 16b at any point. For example, like an application example shown in
In the foregoing embodiment, the suction force control mechanism is described to adjust the suction force of the water bottle 1 by blocking the liquid suction port 16c. However, the present invention is not limited thereto. For example, like a suction force control mechanism shown in FIGS. 31 and 32, a three-way valve 95 may be arranged on the confluent port 80a of the communication passage 80. The three-way valve 95 may be rotated by the floating member 92 and the connection member 93 to switch between the state shown in
The present invention is not limited to the foregoing embodiments, and various modifications may be made without departing from the gist and technical idea thereof. The configuration of each embodiment or each modification may be applied to other embodiments and other modifications as far as possible.
More specifically, in the foregoing embodiments, the positions, sizes (dimensions), shapes, materials, directions, numbers, and the like of the components may be changed as appropriate.
In the foregoing third embodiment, the foregoing fourth embodiment, and the foregoing fifth embodiment, the valves 30, 40, and 50 are described to open and close the ejection port 13a of the container-side aerosol forming member 13. However, the present invention is not limited thereto, and the valves may be configured to open and close the outlet of the container-side suction member.
XA1, XD1, XF1, XH1, XJ1 nebulizer (humidifying device)
XB1, XE1, XG1, XI1, XK1 nebulizer adaptor (adaptor)
XC1 oxygen flowmeter
1 water bottle (container)
2 liquid such as sterile water
3 cap
4 gasket
5 erected projection portion
6 horizontal projection portion (sending unit)
7 adjustment dial
8 top plate
9 closed space
10 nut
11 terminal
12 nozzle member
12
a orifice
13 container-side aerosol forming member
14 diffuser
15 housing of nebulizer adaptor
15
a liquid receptor
16 receptor-side aerosol forming member
17 outlet member of oxygen flowmeter
23 container-side suction member
26 aerosol forming member
31 cutoff member
32 floating member
33 connection member
34 oscillation shaft
Number | Date | Country | Kind |
---|---|---|---|
2014-109889 | May 2014 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2015/065430 | 5/28/2015 | WO | 00 |