The present application is based on, and claims priority from JP Application Serial Number 2020-151921, filed Sep. 10, 2020, the disclosure of which is hereby incorporated by reference herein in its entirety.
The present invention relates to a gas guide apparatus that supplies a gas to a user's face and discharges the gas from near the face.
With the advent of the new coronavirus in recent years, people are wearing masks more frequently. A person wearing a mask can often feel uncomfortable due to the mask sticking to the nose or the mouth.
To resolve the uncomfortable feeling of the mask sticking to the nose or the mouth, a mask main body and an auxiliary spacer to be interposed between the mask main body and the face have been proposed (for example, see Japanese Patent Application Laid-Open No. 2015-019920). The auxiliary spacer is accommodated inside the mask and provides a space between the mask main body and the user's nostrils and mouth.
However, while the aforementioned mask provides a space between the mask main body and the user's nostrils and mouth, the auxiliary spacer surrounding the mouth has a structure not permeable to the outside air. This further increases the ventilation resistance of the mask and makes it hard to breathe.
If the user does intensive exercise with such a mask on, the cardiopulmonary function can be lowered by the ventilation resistance of the mask and his/her life can be endangered.
In view of the foregoing circumstances, the present invention provides a gas guide apparatus that provides a user with a comfortable feel during use of a mask or the like.
The present invention has been achieved in view of the aforementioned object, and provides a gas guide apparatus including: a gas supply unit configured to supply a gas; a gas supply side tube unit configured to guide the gas from the gas supply unit and to have a supply hole to emit the gas supplied from the gas supply unit; and a disposition unit configured to dispose the gas supply side tube unit on a face or a head of a user with the supply hole located near the face or the head of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the gas supply side tube unit so that the supply hole is located in a vicinity area of a mouth of the user.
The gas guide apparatus can include a filter unit located on any of a gas suction path and a gas supply path of the gas supply unit.
Regarding the gas guide apparatus, the supply hole can emit the gas from a band-like emission area formed by a combination of a plurality of holes and/or a slit-like long hole.
Regarding the gas guide apparatus, the band-like emission area of the supply hole can extend in a width direction of the face of the user.
Regarding the gas guide apparatus, the band-like emission area of the supply hole can extend in a length direction of the face of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the supply hole below the mouth of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the supply hole above an eye of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the supply hole on one side of the mouth of the user in a width direction thereof.
Regarding the gas guide apparatus, the supply hole can emit the gas at least from positions on both outer sides of a nose of the user in a width direction thereof.
Regarding the gas guide apparatus, the supply hole can include an upper hole that is located near the nose of the user and emits the gas to a front of the eye, and a lower hole that is located near the nose of the user and emits the gas to a front of the mouth.
The gas guide apparatus can include a guide surface that is opposed to the upper hole in a reference direction and tilts toward the front of the face, with a direction from the upper hole to the eye as the reference direction. The guide surface faces the upper side holes at a location closer to the nose side than the eyes of the user in the reference direction.
Regarding the gas guide apparatus, the disposition unit can include an ear hook portion to be worn on an ear of the user.
Regarding the gas guide apparatus, the disposition unit can include a rear side attachment portion to be worn on a back of the head or a neck of the user astride the back of the head or the neck in a width direction of the back of the head or the neck of the user.
Regarding the gas guide apparatus, the disposition unit can include a cover member engagement structure capable of engagement with a cover member configured to cover at least the mouth of the user to block a droplet from the mouth in an open state where the user is able to breathe freely, and the supply hole can supply the gas to between the cover member and the user.
Regarding the gas guide apparatus, the cover member can be a mask configured to cover the nose and the mouth of the user with a sheet material having enough air permeability for the user to breathe freely, and the cover member engagement structure can include hook portions to be engaged with portions of the mask to be put on both ears.
Regarding the gas guide apparatus, the cover member can be a mask configured to cover the nose and the mouth of the user with a sheet material having enough air permeability for the user to breathe freely, and the disposition unit can include an engagement portion that is positioned on an inner surface side of the mask by being located on the inner surface side of the mask and engaged with an inner surface or a peripheral edge of the mask.
Regarding the gas guide apparatus, the disposition unit can include a three-dimensional frame that is positioned to around the mouth and the nose of the user to cover the mouth and the nose of the user and is convex away from the mouth and the nose of the user to form a space in front of the area from the nose to the mouth of the user, and the mask can be worn over the three-dimensional frame and deformed into a three-dimensional shape convex away from the mouth and the nose of the user.
Regarding the gas guide apparatus, the disposition unit can have an exhaust hole that releases the gas emitted from the supply hole into an inside of the mask out of the mask.
Regarding the gas guide apparatus, the exhaust hole can be positioned to between an inner surface of the mask and the user by the disposition unit.
Regarding the gas guide apparatus, the cover member can be a face guard configured to cover at least the nose and the mouth of the user with a peripheral edge thereof open to outside, and the cover member engagement structure can include a face guard side frame portion that extends around the head of the user and a face guard side attachment portion that attaches the peripheral edge of the face guard to the face guard side frame portion in part.
Regarding the gas guide apparatus, the cover member can be a face guard configured to cover at least the nose and the mouth of the user with a peripheral edge thereof open to outside, and the cover member engagement structure can include a face guard fixing portion to be fixed to the face guard.
The gas guide apparatus can include a cushioning portion configured to, in a state where a part of the peripheral edge of the face guard is open, fill a gap between a rest of the peripheral edge and the user.
The gas guide apparatus can include a duct unit configured to connect the part of the peripheral edge to the gas supply unit.
Regarding the gas guide apparatus, the cover member engagement structure can include a swing mechanism configured to make the face guard swing about a swing axis.
The gas guide apparatus can include a cover member configured to cover the nose and the mouth of the user and the supply hole in a state where the user is able to breathe freely.
Regarding the gas guide apparatus, the cover member can be a mask configured to cover the nose and the mouth of the user with a sheet material having enough air permeability to enable the user to breathe freely.
Regarding the gas guide apparatus, the sheet material of the mask can have enough flexibility to be deformed by exhalation.
Regarding the gas guide apparatus, a pressure inside the cover member under an assumption that the user is in a not-breathing state can be A+0.2 cmH2O or more, where atmospheric pressure is A cmH2O.
Regarding the gas guide apparatus, a pressure inside the cover member under an assumption that the user is in a not-breathing state can be A+3.0 cmH2O or less, where atmospheric pressure is A cmH2O.
Regarding the gas guide apparatus, a minimum value of the pressure inside the cover member can be A−1.0 cmH2O or more, where atmospheric pressure is A cmH2O.
Regarding the gas guide apparatus, a minimum value of the pressure inside the cover member can be greater than or equal to atmospheric pressure.
Regarding the gas guide apparatus, the cover member can be a face guard configured to cover at least the nose and the mouth of the user with a peripheral edge thereof open.
Regarding the gas guide apparatus, the gas supplied from the supply hole to the vicinity area of the mouth of the user can have a flow rate of 20 L/min or more.
The gas guide apparatus can have an exhaust hole that releases the gas emitted from the supply hole.
The gas guide apparatus can include a gas collection side tube unit that has a collection hole for collecting the gas emitted from the supply hole, and a negative pressure generation unit configured to make inside of the gas collection side tube unit negative in pressure, and the disposition unit can dispose the gas collection side tube unit on the face or the head of the user so that the collection hole is located near the face or the head of the user. The gas guide apparatus can include an exhaust portion configured to have an exhaust hole to release the gas emitted from the gas from the supply hole to the outside. The disposition unit disposes the exhaust portion with the exhaust hole located near the face of the user. The disposition unit disposes the gas supply side tube unit and the exhaust portion so that a mouth of the user is located between the supply hole and the exhaust hole. The exhaust portion has a filter portion for the gas released from the exhaust hole to pass through.
Regarding the gas guide apparatus, a flow rate of the gas collected from the collection hole can be less than a flow rate of the gas emitted from the supply hole.
Regarding the gas guide apparatus, the collection hole can be plural and/or formed by a slit-like long hole, the plurality of collection holes and/or the slit-like long hole can form a band-like collection area.
Regarding the gas guide apparatus, the band-like collection area formed by the collection hole can extend in the width direction of the face of the user.
Regarding the gas guide apparatus, the band-like collection area formed by the collection hole can extend in the length direction of the face of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the gas supply side tube unit and the gas collection side tube unit so that the mouth of the user is located between the supply hole and the collection hole.
Regarding the gas guide apparatus, the disposition unit can dispose the supply hole above the mouth of the user, and dispose the collection hole below the mouth of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the collection hole above the mouth of the user, and dispose the supply hole below the mouth of the user.
Regarding the gas guide apparatus, the disposition unit can dispose the supply hole on one side of the mouth of the user in the width direction, and dispose the collection hole on the other side of the mouth of the user in the width direction.
Regarding the gas guide apparatus, the disposition unit can include a gas supply side frame portion configured to position the supply hole, a gas collection side frame portion configured to position the collection hole, and a connection portion configured to connect the gas supply side frame portion and the gas collection side frame portion.
Regarding the gas guide apparatus, the gas supply unit can include a blower configured to suck a gas and output the gas with a predetermined additional pressure, and the negative pressure generation unit can be configured to make the gas collection side tube unit negative in pressure with a suction force of the blower by connecting the gas collection side tube unit to a suction side of the blower.
Regarding the gas guide apparatus, the gas supply unit can be configured to suck both the gas collected from the gas collection side tube unit and air to supply the gas and the air to the gas supply side tube unit.
The gas guide apparatus can include a filter unit for the gas collected from the collection hole to pass through.
The gas guiding device is configured so that the gas passed through the filter unit can be guided to the suction side of the gas supply unit.
The gas guide apparatus can include a water absorbing member that is capable of retaining water, and the water can be vaporized by the gas emitted from the supply hole.
The gas guide apparatus can include a face side separation member that is located between the water absorbing member and the face of the user to separate the water in the water absorbing member from the face.
The gas guide apparatus can include an outer side separation member that is located on an opposite side of the water absorbing member from the face of the user to suppress movement of the water from the water absorbing member.
The gas guide apparatus can include a neck-specific gas supply side tube unit configured to guide the gas from the gas supply unit and to have a neck side supply hole for emitting the gas supplied from the gas supply unit to near the neck of the user.
The gas guide apparatus can include a neck side water absorbing member that is located near the neck side supply hole and capable of retaining water, and the water can be vaporized by the gas emitted from the neck side supply hole.
Regarding the gas guide apparatus, the disposition unit can include the ear hook portion to be worn on the ear of the user.
Regarding the gas guide apparatus, the disposition unit can include the rear side attachment portion to be worn astride the back of the head or the neck of the user in the width direction of the back of the head or the neck. Regarding the gas guide apparatus, the disposition unit can include an external fixing tool capable of detachably pinching an external member.
The gas guide apparatus can include a pressure measurement unit configured to measure a pressure of the gas emitted from the supply hole, and a control unit including a computer, and the control unit can include a supply flow rate controller configured to control the flow rate of the gas emitted from the supply hole on the basis of a pressure evaluation value derived from a result of a pressure measurement made by the pressure measurement unit.
Regarding the gas guide apparatus, the control unit can include a lower limit threshold determinator configured to determine whether the pressure evaluation value is less than a lower limit threshold, and the supply flow rate controller can increase an amount of gas supply if the lower limit threshold determinator determines that the pressure evaluation value is less than the lower limit threshold.
The gas guide apparatus can include a pressure measurement unit configured to measure a pressure of the gas emitted from the supply hole, and a control unit including a computer, and the control unit can include a collection flow rate controller configured to control an amount of gas collection from the collection hole on the basis of a pressure evaluation value derived from a result of a pressure measurement made by the pressure measurement unit.
The gas guide apparatus can include a control unit including a computer, and the control unit can include a collection flow rate determinator configured to determine the flow rate of the gas collected from the collection hole, and a collection flow rate controller configured to control an amount of gas collection from the collection hole on the basis of a result of a determination made by the collection flow rate determinator.
The gas guide apparatus can include a filter unit located on any of a gas suction path and a gas supply path of the gas supply unit.
Regarding the gas guide apparatus, the gas supply unit can include a blower; the gas guide apparatus can include a power consumption measurement unit configured to measure power consumption of the blower, and a control unit including a computer; and the control unit can include a supply flow rate controller that controls the flow rate of the gas emitted from the supply hole on the basis of an evaluation value derived from a result of a power consumption measurement made by the power consumption measurement unit.
Regarding the gas guide apparatus, the gas supply unit can include a blower; the gas guide apparatus includes a power consumption measurement unit configured to measure power consumption of the blower, and a control unit including a computer; and the control unit can include a collection flow rate controller configured to control an amount of gas collection from the collection hole on the basis of an evaluation value derived from a result of a power consumption measurement made by the power consumption measurement unit.
The present invention also provides a gas guide apparatus including: a gas collection side tube unit configured to have a collection hole for collecting a gas; a negative pressure generation unit configured to make an inside of the gas collection side tube unit negative in pressure; and a disposition unit configured to dispose the gas collection side tube unit on a face of a user with the collection hole located near the face of the user.
According to the gas guide apparatus of the present invention, the gas is supplied to the mouth vicinity area of a user. The gas is therefore supplied to the mouth of the user or the mouth vicinity area even when the user wears a mask. As a result, the user can breathe easily even with the mask on.
Embodiments of the present invention will be described below with reference to the accompanying drawings. In the drawings, parts or members designated by the same reference numerals represent the same or similar parts.
A gas guide apparatus 1 according to a first embodiment of the present invention will be described with reference to
<Gas Supply Unit>
The gas supply unit 2 supplies a gas. The gas supply unit 2 outputs the inputted gas with a predetermined additional pressure. For example, the gas supply unit 2 includes a blower, fan, or other compressor (in a broad sense, blower) in its casing. For example, the gas supply unit 2 is driven by a battery or the like, and is preferably as small in size so as to be able to put in a shirt chest pocket (not shown) of the user 900. The blower preferably has a boosting capability of 5 cmH2O or more, desirably 10 cmH2O or more, and still desirably 20 cmH2O more.
<Gas Supply Side Regulator Valve Unit>
The gas supply side regulator valve unit 3 adjusts the amount of the gas flowing through the gas supply side tube unit 4 (or the amount of the gas emitted from supply holes 50). As shown in
<Gas Supply Side Tube Unit>
The gas supply side tube unit 4 is a tube configured to guide the gas supplied from the gas supply unit 2 via the gas supply side regulator valve unit 3 to the supply holes 50. As shown in
The extended tube portion 5B is a tube for the gas supplied from the gas supply unit 2 via the inlet tube portion 5A to be passed through. As shown in
The inlet tube portion 5A is provided to give a degree of freedom to the installation position of the gas supply unit 2. The inlet tube portion 5A may therefore be omitted and the extended tube portion 5B may be directly connected to the gas supply unit 2 if the gas supply unit 2 (gas supply side regulator valve unit 3) can be located near the face of the user 900. The inlet tube portion 5A and the extended tube portion 5B may be either integrally formed or configured as respectively independent, separate members.
As shown in
The first supply hole group 51 is located near the nose 910 (both outer sides of the nose 910 in a width direction) and/or near the cheeks of the user 900 and emits the gas to the front of the mouth. The second supply hole group 52 is located near the nose 910 and/or the cheeks of the user 900 and emits the gas to the front of the eyes 940.
<Disposition Unit>
In the present embodiment, the disposition unit 6 disposes the extended tube portion 5B on a dorsum of the nose 910 of the user 900 as shown in
As shown in
As shown in
When the head fixing side frame portions 62 are put on the ears 950 of the user 900, the gas supply side frame portion 60 is located astride the dorsum of the nose 910 of the user 900. While the head fixing side frame portions 62 here are described to be put on both ears, a head fixing side frame portion 62 may be formed to be only on one side and be put on only one ear for fixation. Moreover, in the present embodiment the head fixing side frame portions 62 are made of a rigid material, but is not limited to this, the head fixing side frame portions 62 may be omitted and the disposition unit 6 may be provided with rubber straps or strings for fixing to the head. In such a case, the disposition unit 6 can be fixed to the head with the rubber straps or the strings on the ears 950 or around the head.
<Upper Guide Unit>
As shown in
As shown in
<Filter Unit>
As shown in
<Pressure Measurement Unit>
The pressure measurement unit 9 measures the pressure of the gas supplied from the supply holes 50 to the front of the nose 910 or the mouth 920 of the user 900 at a given position. In the present embodiment, as shown in
<Control Unit>
As shown in
In the present embodiment, the control unit 10 controls the fan rotation speed of the blower in the gas supply unit 2 and the opening and closing operations of the gas supply side regulator valve unit 3 on the basis of measurement results obtained by the pressure measurement unit 9. Specifically, as shown in
The respiration determinator 106 determines an expiration state and an inspiration state of the user 900 on the basis of a respiration waveform obtained from the measurement result of the pressure measurement unit 9. Pressure noise waveforms irrelevant to the respiration waveform can be removed by referring to the respiration determinator 106. As will be described in detail below, the supply flow rate controller 109 can change the supply flow rate on the basis of inspiratory and expiratory time signals determined by the respiration determinator 106.
The lower limit threshold determinator 107 determines whether a pressure evaluation value calculated by using the pressure measured by the pressure measurement unit 9 falls below a lower limit threshold S1. Various values can be used as the pressure evaluation value. In the present embodiment, the minimum value of an inspiratory pressure inside the mask 800 with reference to the atmospheric pressure is used as the pressure evaluation value. The minimum value may be an average of inspiratory minimum values of a plurality of respiratory waveforms. An average pressure value obtained by averaging all high and low pressure values may be used as the pressure evaluation value. While an absolute pressure value can be used as the pressure evaluation value, it is preferable for a differential value with reference to the atmospheric pressure to be used. The lower limit threshold S1 is therefore also preferably a differential value with reference to the atmospheric pressure, although an absolute pressure value may be used.
The upper limit threshold determinator 108 determines whether a pressure evaluation value calculated by using the pressure measured by the pressure measurement unit 9 exceeds an upper limit threshold S2. Like the lower limit threshold determinator 107, the upper limit threshold determinator 108 can use various values as the pressure evaluation value. In the present embodiment, a maximum value of the expiratory pressure inside the mask 800 with reference to the atmospheric pressure is used. While the pressure evaluation value can be an absolute pressure value, it is preferable for a differential value with reference to the atmospheric pressure to be used. Again, the upper limit threshold S2 is therefore preferably a differential value with reference to the atmospheric pressure, although an absolute pressure value may be used.
The supply flow rate controller 109 increases the flow rate of the gas supplied from the supply holes 50 if the lower limit threshold determinator 107 determines that the minimum pressure inside the mask 800 falls below the lower limit threshold S1. As a result, the minimum pressure inside the mask 800 increases to reach or exceed the lower limit threshold S1. Specifically, the supply flow rate controller 109 increases the amount of the gas supplied to the extended tube portion 5B by opening the gas supply side output port part 31 of the gas supply side regulator valve unit 3 and closing the atmosphere open side output port part 32 thereby adjusting the opening and closing ratio between the two port parts. The amount of the gas supply can also be increased by increasing the fan rotation speed of the blower.
The supply flow rate controller 109 reduces the flow rate of the gas supplied from the supply holes 50 if the upper limit threshold determinator 108 determines that the maximum pressure inside the mask 800 exceeds the upper limit threshold S2. As a result, the maximum pressure inside the mask 800 falls to or below the upper limit threshold S2. Specifically, the supply flow rate controller 109 reduces the amount of the gas supplied to the extended tube portion 5B by closing the gas supply side output port 31 of the gas supply side regulator valve unit 3 and opening the atmosphere open side output port part 32 thereby adjusting the opening and closing ratio between the two port parts. The amount of the gas supply can also be reduced by reducing the fan rotation speed of the blower. Note that if both the upper limit threshold determinator 108 and the lower limit threshold determinator 107 make the determination operations at the same time, preferably, priority is given to control by the lower limit threshold determinator 107.
Moreover, the supply flow rate controller 109 can increase the supply flow rate when the user 900 is breathing in, and reduce the supply flow rate when the user 900 is breathing out. The inhalation time and exhalation time are determined by the respiration determinator 106.
<Mask Engagement Structure>
As shown in
It is preferable that the sheet material (filter material) of the mask 800 also have enough flexibility to be deformed by exhalation. Some masks 800 have enough rigidity to maintain their molded cup shape during wearing. However, such high-rigidity masks are less used considering portability and storage convenience in daily life. The present embodiment can add various functions while using an exhalation-deformable flexible mask 800 used for general purposes.
The mask 800 is worn in such a position that the nose 910 and the mouth 920 of the user 900 and at least the first supply hole group 51 of the extended tube portion 5B are covered by the mask 800. In the present embodiment, the head fixing side frame portions 62 of the disposition unit 6 serve also as the mask engagement structure 11. The mask engagement structure 11 includes first guide portions 113, hook portions 114, and second guide portions 115. The first guide portions 113 guide string portions 810 of the mask 800 to be put on the ears 950 of the user 900 from the front to behind the ears 950 of the user 900. The hook portions 114 are portions to be engaged with the string portions 810 of the mask 800 guided behind by the first guide portions 113, and which catch the string portions 810 of the mask 800. The second guide portions 115 guide the string portions 810 of the mask 800 from behind to the front of the ears 950 of the user 900.
More specifically, as shown in
As shown in
As shown in
As shown in
As shown in
<Detailed Description of Pressure Control by Control Unit>
Next, pressure control by the control unit 10 will be described. A solid line A1 in
Such a load during respiration tends to tire the user 900 using the mask 800. In particular, the flexible mask 800 easily deformable by pressure variations gives the user 900 a somewhat stuffy feel since the mask 800 approaches the mouth during inhalation resulting in the increase in the pressure drop range on the negative pressure side. The internal pressure of the mask 800 with reference to the atmospheric pressure (0) typically varies in the range of −1.0 cmH2O to +1.0 cmH2O, more specifically −0.5 cmH2O to +0.5 cmH2O, depending on the porosity (ventilation resistance) of the mask 800.
A dotted line A2 represents a pressure variation model in a case where the user 900 does intensive exercise (hyperactive state) with only the mask 800 on. In the hyperactive state, the amount of ventilation per respiration increases, and thus the range of pressure variations increases compared to the steady state represented by the solid line A1. For example, the negative pressure can exceed −0.5 cmH2O or even −1.0 cmH2O. The positive pressure can also exceed +0.5 cmH2O or even +1.0 cmH2O. Too wide a range of pressure variations can cause a deterioration of the lung function.
A solid line B1 in
With the gas guide apparatus 1, the control unit 10 controls the amount of the gas supply of the gas supplied from the supply holes 50 to the internal space of the mask 800. As a result, the internal pressure of the mask 800 increases. The control unit 10 controls the amount of the gas supply to increase the internal pressure by 0.2 cmH2O or more, preferably 0.4 cmH2O or more, with reference to the pressure variation model A1 of
Specifically, assuming a state where the user 900 is not breathing (non-breathing state), the control unit 10 controls the amount of the gas supply so that the internal pressure of the mask 800 is atmospheric pressure+0.2 cmH2O or more, preferably 0.4 cmH2O or more.
Meanwhile, the control unit 10 controls the amount of the gas supply so that the range of the increase in the internal pressure with reference to the pressure variation model A1 is 3.0 cmH2O or less, preferably 2.0 cmH2O or less, and more preferably 1.5 cmH2O or less.
The control unit 10 preferably increases the internal pressure of the mask 800 so that the internal pressure will not become negative during respiration. While the mask 800 itself is unable to prevent the intrusion of viruses, maintaining a positive pressure inside can suppress the intrusion of viruses through the main body of the mask 800 and gaps around.
To obtain the aforementioned range of the increase in the internal pressure, it is preferable that the gas be supplied from the supply holes 50 to inside the mask 800 at 20 L/min or more, and more preferably 40 L/min or more. Meanwhile, it is preferable that the gas be supplied from the supply holes 50 to inside the mask 800 at 60 L/min or less, and more preferably 50 L/min or less. Note that the supply flow rate needs to be changed depending on the sheet material of the mask 800 and a gap formed between the mask 800 and the user 900. It is preferably that the gas be supplied at 30 L/min to 50 L/min. The gas also plays a role in positively agitating the space inside the mask 800.
Since the gas guide apparatus 1 maintains the internal pressure of the mask 800 positive during inhalation, the inhalation resistance to the user wearing the mask 800 becomes substantially the same as that of no mask. This provides a comfortable feel during extended use. In the steady state, the lower limit value of the pressure variation model represented by the solid line A1 does not fall below the lower limit threshold S1, and the upper limit value does not exceed the upper limit threshold S2.
A solid line C in
As shown by the double-dotted dashed line B2, when the user enters the hyperactive state while the control mode is maintained as in the steady state of
As a result, despite the intensive exercise with the mask 800 on, the inhalation resistance to the user becomes close to that of no mask. This provides a comfortable feel during extended use. Note that the lower limit control is given priority although the upper limit value of the pressure variation model shown by the solid line C in
A solid line D in
Here, the lower limit threshold S1 is set within the range of −0.2 cmH2O from the atmospheric pressure. However, it is preferable that the lower limit threshold S1 be set within the range of, e.g., −0.5 cmH2O to +0.5 cmH2O, more preferably within the range of −0.3 cmH2O to +0.3 cmH2O, and still more preferably within the range of −0.1 cmH2O to +0.1 cmH2O. It is also desirable that the lower limit threshold S1 be set to or below the atmospheric pressure (0.0 cmH2O).
The pressure variation waveforms shown in
<Other Advantages of Gas Guide Apparatus>
For example, suppose that the user 900 is running with the mask 800 on, and the amount of inhalation is greater than usual. In such a case, as shown in
The gas supplied into the mask 800 has been passed through the filter unit 8 and is rid of viruses. Since the clean gas is constantly supplied into the mask 800, infection risk to the user can be reduced even if there are viruses suspended in the ambient atmosphere. Moreover, since the mask 800 itself is made of an air permeable material, the clean gas supplied inside makes the internal pressure of the mask 800 positive and continues gradually leaking out through the material of the mask 800. This can reduce the risk of intrusion of viruses from the outside through the material of the mask 800. Meanwhile, the mask 800 can reliably prevent droplets produced by the user's coughs, sneezes, and the like from being released to the outside. At the same time, the clean gas emitted from the second supply hole group 52 flows upward in front of the eyes of the user 900 as an air curtain. This can reduce the intrusion of viruses and the like into the eyes of the user 900.
The gas supplied into the mask 800 can also cool the internal space of the mask 800 itself. Making the pressure inside the mask 800 positive so that the supplied gas leaks out from the portions in contact with the user's skin, these contacting portions can also be cooled down. This can provide a comfortable feel during use.
Moreover, since the gas guide apparatus 1 according to the present embodiment supplies the gas to the internal space of the mask 800, which has enough air permeability for natural respiration, the internal pressure of the mask 800 will not increase excessively. In other words, unlike artificial respirators and respiratory support devices such as a CPAP, the gas guide apparatus 1 does not assist the user's respiration itself but has the function of controlling the environment outside the mouth during natural respiration. The gas guide apparatus 1 therefore will not affect the user's cardiopulmonary function even if the blower stops due to a dead battery.
While the advantages to the user 900 wearing the mask 800 have been described above, the gas guide apparatus 1 according to the present embodiment is also effective for the user 900 not wearing the mask 800. Suppose that the user 900 wears the gas guide apparatus 1 according to the present embodiment as shown in
As a modification of the gas guide apparatus 1 according to the present embodiment,
While the user 900 may wear the disposition unit 6 (gas supply side frame portion 60) on the ears 950 of the user 900, the user 900 can also wear the disposition unit 6 above the eyes 940 of the user 900 in the length direction H of the face, around the head of the user 900 as shown in
The support holes 50 constituting the first supply hole group 51 according to the present modification are each directed so that the emitted gas passes through the eye vicinity area 990 and the mouth vicinity area 930. The disposition unit 6 (gas supply side frame portion 60) may include a lower guide portion 72 so that the gas emitted from the first supply hole group 51 passes through the eye vicinity area 990 and the mouth vicinity area 930.
The lower guide portion 72 includes a guide surface 73 configured to guide the emitted gas to the eye vicinity area 990 and the mouth vicinity area 930. The guide surface 73 has a section opposed to the first supply hole group 51. The tilt angle of the section with reference to the length direction H of the face decreases with distance downward from a starting point above the first supply hole group 51 in the length direction H of the face. The emitted gas is deflected by the section of the guide surface 73 toward the eye vicinity area 990 and the mouth vicinity area 930.
The gas guide apparatus 1 according to the present modification, the emitted gas from the first supply hole group 51 forms an air curtain 200 in the face vicinity areas of the user 900 to prevent viruses and the like from intruding into the body via the face of the user 900.
As shown in
The air curtain 200 emitted from the supply holes 50 therefore descends along the inside (face-side) surface of the face guard 819, and the gas of the air curtain 200 is released to the outside from the open ends that are both the side edges and the lower edge. Since the face guard 819 has the closed structure on the upper edge side, intake of outside air from above related to the air curtain 200 can be prevented. This makes the intrusion of viruses from outside to the inside of the face guard 819 difficult. Note that if the face guard 819 is used, the gas emitted from the supply holes 50 is preferably made to impinge on the face guard 819, whereby the gas can be passed along the surface of the face guard 819.
Next, a gas guide apparatus 1 according to a second embodiment of the present invention will be described with reference to
The gas guide apparatus 1 according to the present embodiment includes a face guard engagement structure 12 instead of the mask engagement structure 11 according to the first embodiment. The face guard engagement structure 12 is a structure included in the disposition unit 6 and capable of engagement with the face guard 820. With the face guard 820 engaged with the face guard engagement structure 12, the user 900 wears the face guard 820 so that the nose 910 and the mouth 920 of the user 900 and the extended tube portion 5B are covered therewith. As shown in
As shown in
The face guard side fame portion 120 includes a swing mechanism 122. The swing mechanism 122 is configured to let an object swing about a (not-shown) swing axis extending the width direction W of the face of the user 900.
The face guard side attachment portion 121 is configured to attach the top end of the face guard 820 or the vicinity thereof to the swing mechanism 122 (face guard side frame portion 120). This makes the face guard 820 swingable in a front-to-back direction as shown by the arrow R in
As shown in
With the two head fixing side frame portions 62 on both ears 950 of the 900, the gas supply side frame portion 60 is located astride the dorsum of the nose 910 of the user 900. As shown in
According to the gas guide apparatus 1 of the second embodiment, the lower air curtain 200 formed by the gas emitted from the first supply hole group 51 directed downward descends along the inside (face-side) surface of the face guard 820 while the gas is released to the outside from the open ends at both side edges and the lower edge of the face guard 820. The gas emitted from the second supply hole group 52 forms the upper air curtain 200 flowing upward on the upper edge side of the face guard 820. This can prevent the intake of outside air from above in a manner linked with the lower air curtain 200. This makes the intrusion of viruses outside into the inside of the face guard 820 difficult.
A gas guide apparatus 1 according to a third embodiment of the present invention will be described with reference to
As shown in
<Gas Collection Side Tube Unit>
The gas collection side tube unit 13 is a tube having a plurality of collection holes 130 for collecting the gas emitted from the supply holes 50. The gas collection side tube unit 13 includes a collection side extended tube portion 14A and an outlet tube portion 14B. One end of the outlet tube portion 14B is continuous with the collection side extended tube portion 14A. The other end is continuous with the negative pressure generation unit 2A (implemented by the gas supply unit 2) via the gas collection side regulator valve unit 15 and the filter unit 8. For example, the outlet tube portion 14B is made of a resin tube. Examples of the resin include silicone.
The mouth 920 of the user 900 is positioned between the collection holes 130 and the supply holes 50. In other words, the gas supplied from the supply holes 50 passes in front of the mouth and reaches the collection holes 130.
The collection side extended tube portion 14A is continuous with the outlet tube portion 14B at one end and closed at the other end. For example, the collection side extended tube portion 14A is made of a resin tube. Examples of the resin include silicone.
The disposition unit 6 disposes the collection side extended tube portion 14A on the face of the user 900 (between under the mouth and the chin) in parallel with the width direction W of the face of the user 900. The outlet tube portion 14B is configured to give a degree of freedom to the installation position of the negative pressure generation unit 2A. The outlet tube portion 14B may therefore be omitted and the negative pressure generation unit 2A may be directly connected to the collection side extended tube portion 14A if the negative pressure generation unit 2A can be located near the face of the user 900.
The collection side extended tube portion 14A includes the plurality of collection holes 130 for collecting ambient gas. The collection holes 130 are holes through the peripheral wall of the collection side extended tube portion 14A, and communicate with the inside and outside of the collection side extended tube portion 14A. A collection hole group 131 that is a group of the plurality of collection holes 130 is located so that the collection holes 130 are arranged in a row along the axial direction (longitudinal direction) of the collection side extended tube portion 14A. The collection hole group 131 forms a band-like collection area for sucking in the gas in a band-like form in its entirety. Note that the number of collection holes 130 may be one. The collection hole(s) 130 may be shaped as a long hole or holes. The collection side extended tube portion 14A and the outlet tube portion 14B may be either integrally formed or configured as respectively independent, interconnectable separate members. If both are separate members, they are connected by means of a connection. The connection means consists, for example, of an independent connection member or a dedicated connection structure.
<Gas Collection Side Regulator Valve Unit>
The gas collection side regulator valve unit 15 adjusts the amount of the gas flowing toward the negative pressure generation unit 2A (or the amount of the gas collected from the collection holes 130), and/or adjusts the types of gas to be guided to the negative pressure generation unit 2A. The gas supply side regulator valve unit 3 and the gas collection side regulator valve unit 15 can independently control the amount of the gas supply and the amount of the gas collection, respectively.
As shown in
As described above, the outlet tube portion 14B is connected to the negative pressure generation unit 2A via the gas collection side regulator valve unit 15. This makes the inside of the outlet tube portion 14B and the collection side extended tube portion 14A negative in pressure.
<Negative Pressure Generation Unit>
The negative pressure generation unit 2A is constituted by the suction side of the blower in a broad sense (gas supply unit 2). The gas collection side tube unit 13 (outlet tube portion 14B) is connected to the negative pressure generation unit 2A, so that the gas collection side tube unit 13 (outlet tube portion 14B) is made negative in pressure by the suction force of the blower in a broad sense (gas supply unit 2). In the present embodiment, the gas collection side tube unit 13 (outlet tube portion 14B) is connected to the negative pressure generation unit 2A via the gas collection side regulator valve unit 15 and the filter unit 8.
<Disposition Unit>
As shown in
As shown in
As shown in
As shown in
<Filter Unit>
The filter unit 8 according to the present embodiment is located on the gas collection side path (gas suction path). Some of viruses in the exhaled air collected by the gas collection side tube unit 13 are removed by the filter unit 8 before the exhaled air is released into the atmosphere.
<Control Unit>
As shown in
Moreover, the collection flow rate controller 110 controls to increase the flow rate of the gas collected from the collection holes 130 if the upper limit threshold determinator 108 determines that the maximum pressure inside the mask 800 exceeds the upper limit threshold S2. As a result, the maximum pressure inside the mask 800 falls to or below the upper limit threshold S2. Specifically, the collection flow rate controller 110 controls to increase the amount of the gas collection by opening the gas collection side input port part 150 of the gas collection side regulator valve unit 15 and closing the atmosphere open side input port part 151 thereby adjusting the opening and closing ratio between the port parts 150 and 151, so that the negative pressure applied to the collection holes 130 increases. The amount of the gas collection can also be increased by increasing the fan rotation speed of the blower. Note that if both the upper limit threshold determinator 108 and the lower limit threshold determinator 107 make the determination operations at the same time, preferably, priority is given to control by the lower limit threshold determinator 107.
Furthermore, the collection flow rate controller 110 can controls to increase the amount of the gas collection when the user 900 is breathing out, and reduce the amount of the gas collection when the user 900 is breathing in. The exhalation and inhalation of the user 900 are determined by the respiration determinator 106. Specifically, when the user 900 is breathing out, the collection flow rate controller 110 controls to positively collect the exhaled air from the collection holes 130 by opening the gas collection side input port part 150 and closing the atmosphere open side input port part 151 thereby adjusting the opening and closing ratio between the port parts 150 and 151. On the other hand, during inhalation, the collection flow rate controller 110 controls to direct fresh air from the atmosphere open side input port part 151 into the gas supply unit 2 (negative pressure generation unit 2A) by closing the gas collection side input port part 150 and opening the atmosphere open side input port part 151 thereby adjusting the opening and closing ratio between the port parts 150 and 151. Since the gas supplied to the user 900 during inhalation includes not only the circulating gas but also fresh air taken in from outside, the cooling effectiveness inside the mask 800 can be increased and the oxygen content of the gas can be maintained.
The gas collected by the gas collection side tube unit 13 is all filtered through the filter unit 8 before the gas is either released to the atmosphere from the atmosphere open side output port part 32 of the gas supply side regulator valve unit 3 or circulated into the mask 800 via the gas supply side tube unit 4. If the user himself/herself is infected with a virus or the like, viruses present in the exhaled air collected by the gas collection side tube unit 13 are removed by the filter unit 8 before the exhaled air is released into the atmosphere. This filtration can reduce virus diffusion to the surroundings.
The internal pressure of the mask 800 is determined by the ratio between the amount of the gas supply from the supply holes 50 and the amount of the gas collection from the collection hole 130. In the present embodiment, only the amount of the gas supply may therefore be controlled with the amount of the gas collection constant, or conversely, only the amount of the gas collection may be controlled with the amount of the gas supply constant. Both the amount of the gas supply and the amount of the gas collection may be controlled at the same time.
The collection flow rate determinator 111 determines the flow rate of the gas collected from the collection hole 130. For example, the collection flow rate determinator 111 calculates the flow rate of the gas collected from the collection hole 130 from the detection value of a not-shown flow rate sensor, the fan rotation speed of the blower in the gas supply unit 2, and the opening and closing ratios of the gas supply side regulator valve unit 3 and the gas collection side regulator valve unit 15, etc. The collection flow rate determinator 111 further derives a collection amount evaluation value for the gas in the mask 800 from the aforementioned values. If the collection amount evaluation value is determined to be lower than a predetermined lower limit threshold by the collection flow rate determinator 111, only the amount of the gas collection is increased while the internal pressure of the mask 800 is maintained within a predetermined range (control target values) by the collection flow rate controller 110. This gas collection increase is accomplished by increasing the fan rotation speed of the blower, opening the gas supply side output port part 31 of the gas supply side regulator valve unit 3, and/or opening the gas collection side input port part 150 of the gas collection side regulator valve unit 15, under the control of the collection flow rate controller 110.
On the other hand, if the collection amount evaluation value is determined to be higher than a predetermined upper limit threshold by the collection flow rate determinator 111, the amount of the gas collection is reduced while the internal pressure of the mask 800 is maintained within the predetermined range (control target values) by collection flow rate controller 110. This gas collection decrease is accomplished by reducing the fan rotation speed of the blower, closing the gas supply side output port part 31 of the gas supply side regulator valve unit 3, and/or closing the gas collection side input port part 150 of the gas collection side regulator valve unit 15, under the control of the collection flow rate controller 110. Note that the amount of the gas collection can also be adjusted on the basis of the user's instructions input from a not-shown input interface.
The greater the amount of the gas collection, the higher the performance for exhausting (collecting) the exhaled air in the mask 800 can be made. In view of maintaining the internal pressure of the mask 800 within the control target values, the amount of the gas supply is also increased as the amount of the gas collection increases. As a result, the cooling effectiveness inside of the mask 800 due to the introduction of outside air increases as well. This also leads to enhanced cleaning of the air inside the mask 800 and the space in front of the face.
The amount of the gas collection (may also be referred to as the amount of air circulation in the mask 800) is set to 20% or more (specifically, 4 L/min or more) of the instantaneous discharge flow rate of the exhaled air (typically, 20 to 30 L/min). The amount of the gas collection is preferably set to 50% or more (specifically, 10 L/min or more). The amount of the gas collection is more preferably set to 80% or more (specifically, 16 L/min or more). In the present embodiment, the amount of the gas collection is set to 20 L/min. With such a setting, most of the exhaled air can be quickly collected from the collection holes 130. This can collect viruses and the like in the exhaled air through the filter unit 8, and can thus reduce the amount of viruses leaking out of the mask 800.
<Detailed Description of Pressure Control and Flow Rate Control by Control Unit>
Next, control by the control unit 10 will be described with reference to
In the gas guide apparatus 1, the control unit 10 controls each part to supplies the gas from the supply holes 50 into the internal space of the mask 800 while collecting the gas from the collection holes 130. As indicated by a supply flow rate K1 in
The control unit 10 controls the amount of the gas supply to cause an internal pressure increase of 0.2 cmH2O or more, preferably 0.4 cmH2O or more, with reference to the pressure variation model X1 of
In particular, the control unit 10 preferably controls the amount of the gas supply to increase the pressure and thus prevent the internal pressure of the mask 800 from becoming negative during respiration. While the mask 800 itself is unable to prevent the intrusion of viruses, maintaining the internal pressure of the mask 800 at positive pressure can suppress the intrusion of viruses through the main body of the mask 800 or gaps around.
To obtain the aforementioned range of the increase in the internal pressure, substantially 30 L/min to 60 L/min of the gas is preferably supplied from the supply holes 50 into the mask 800. In other words, the supply flow rate K1 and the collection flow rate K2 are set to have a difference of 30 L/min to 60 L/min.
While the internal pressure of the mask 800 during inhalation is maintained positive as in
The collection flow rate has been described to change at a given time. However, the control unit 10 may also preferably control the collection flow rate (flow rate of the air curtain 200) to decrease during inhalation time and control the collection flow rate (flow rate of the air curtain 200) to increase during exhalation time as shown in
A solid line B1 in
As shown by a dot dashed line M1 in
In such a manner, the collection efficiency of the exhaled air can be increased by increasing the substantial amount of the gas supply (difference between the amount of the gas supply and the amount of the gas collection) during inhalation time to increase the internal pressure of the mask 800 and reducing the substantial amount of the gas supply during exhalation time to reduce the internal pressure of the mask 800 while maintaining a constant flow rate through the air curtain 200.
A solid line C1 in
As shown by a dot dashed line N1 in
Consequently, during inhalation time when the pressure inside the mask 800 is likely to become negative, substantially 30 L/min of the gas is supplied into the mask 800. This increases the internal pressure of the mask 800 into a positive pressure. By contrast, during exhalation time when the pressure inside the mask 800 is likely to become positive, substantially −10 L/min of the gas is supplied (i.e., the gas is sucked). The internal pressure shifts to negative pressures due to decreased internal pressure compared to when the user 900 wears only the mask 800, and the exhaled air of the user 900 is efficiently collected. Even during the exhalation time, the exhaled air can be efficiently collected since the air curtain 200 is formed inside the mask 800.
For example, suppose that a user 900 who clearly is already infected with a virus lives a daily life in a clean atmospheric environment. In such a case, the control mode of
While the aforementioned description has dealt with the case of wearing the mask 800, the user 900 may wear the face guard 820 as in a modification shown in
Moreover, 70 L/min of the gas may be supplied from the supply holes 50 as shown by a solid line R3 in
A mode where the amount of the gas collection is set to be greater than the amount of the gas supply as shown in
Incidentally, it is conceivable that pores in the main body of the mask 800 can be reduced in size to give the mask 800 a function of capturing viruses by itself. However, such a mask 800 is extremely expensive and not practical for everyday use with frequent replacement. Furthermore, the user would experience ventilation resistance of the mask 800 so high that the mask 800 would hinder daily life.
According to the present embodiment, the mask 800 and the face guard 820 are to be frequently replaced and can be configured to have only the effect of blocking droplets such as saliva droplets. Meanwhile, both viral infection of and viral spread from the user 900 himself/herself can be suppressed in a compatible manner by supplying a clean gas to the limited space inside the mask 800 or the face guard 820 and collecting and filtering the contaminated gas released from the user 900 as exhaled air.
Next, a gas guide apparatus 1 according to a fourth embodiment of the present invention will be described with reference to
As shown in
The collection side extended tube portion 14A may be located above the eyes 940 of the user 900 in the length direction H of the face (on the forehead). In such a case, the gas emitted from the supply holes 50 of the extended tube portion 5B passes through not only the mouth vicinity area 930 but also the eye vicinity area and is collected from the collection holes 130 if the mask 800 is detached and a face guard is adopted. With such a configuration, an air curtain 200 composed of a flow of air is formed in the eye vicinity area as well. Viruses flying toward the eyes 940 are therefore blown upward by the air curtain 200. This can prevent the viruses from getting into the eyes 940.
A gas guide apparatus 1 according to a fifth embodiment of the present invention will be described with reference to
In the present embodiment, as shown in
As shown in
Similarly, the gas collection side frame portion 63 holding the collecting side extended tube portion 14A with the gas collection side attachment portions 64 and the collection-specific head fixing side frame portion 65 configured to fix the gas collection side frame portion 63 to the head are located on the side of the other ear of the user 900. One end of the collection-specific head fixing side frame portion 65 is continuous with one end of the gas collection side frame portion 63. The other end of the collection-specific head fixing side frame portion 65 is continuous with the other end of the gas collection side frame portion 63. The collection-specific head fixing side frame portion 65 extending from the one end of the gas collection side frame portion 63 passes over the ear 950 of the user 900 from the front to behind the ear 950. The collection-specific head fixing side frame portion 65 turns around behind the ear 950, passes under the ear 950 from behind to the front of the ear 950, and is continuous with the other end of the gas collection side frame portion 63.
As shown in
The gas guide apparatus 1 according to the present embodiment passes the gas through the mouth vicinity area 930 in the width direction W of the face of the user 900. This can increase the internal pressure of the mask 800 and prevent the mask 800 from sticking to the face. The air curtain 200 can also be formed in the mouth vicinity area 930 even with the mask 800 off.
A gas guide apparatus 1 according to a sixth embodiment of the present invention will be described with reference to
As shown in
In the present embodiment, the mask 800 is preferably made of a water absorbing or hydrophilic material. When the user 900 wears the mask 800 moistened, the gas emitted from the supply holes 50 agitates the gas inside the mask 800, and the moisture in the mask 800 is vaporized by the airflow. The resulting heat of vaporization can cool the internal space of the mask 800. Meanwhile, the air permeable portion 805 is preferably made of a water repellent material. If the air permeable portion 805 is made of a water absorbing material, the moisture of the mask 800 is absorbed by the air permeable portion 805 in contact with the skin. This makes the skin wet all the time and roughens the skin. The water repellent material is intended to avoid such a trouble.
A gas guide apparatus 1 according to a seventh embodiment of the present invention will be described with reference to
As shown in
The water absorbing member holding unit 81 also serves as a face side separation member that is interposed between the water absorbing member 80 and the user 900 to separate the water absorbing member 80 from the user 900. This prevents the moisture of the water absorbing member 80 from being in contact with the skin of the user 900 all the time to roughen the skin.
The gas guide apparatus 1 further includes an outer side separation member 82 that is located on the opposite side of the water absorbing member 80 from the face of the user 900, i.e., on the mask 800 side to prevent the moisture of the water absorbing member 80 from moving to the mask 800. In other words, the outer side separation member 82 is located between the mask 800 and the water absorbing member 80 to prevent the mask 800 from getting wet. In the present embodiment, the outer side separation member 82 is a water repellent resin film, and covers the outer surface of the water absorbing member 80. The outer side separation member 82 is fixed to the gas supply side frame portion 60 of the disposition unit 6 or the extended tube portion 5B. The gas emitted from the first supply hole group 51 of the extended tube portion 5B passes through the gap between the outer surface of the water absorbing member 80 and the outer side separation member 82 to vaporize the moisture of the water absorbing member 80. The resulting heat of vaporization can cool the internal space of the mask 800. The face side separation member 81 and the outer side separation member 82 may have structures different from the foregoing. For example, the face side separation member 81 and the outer side separation member 82 may be made of resin-molded three-dimensional mesh sheets or the like to positively pass the gas while suppressing moisture movement.
Although not shown in the drawings, a water supply tank may be located on the disposition unit 6 or outside to replenish the water absorbing member 80 with water. The water can be conveyed from the water supply tank to the water absorbing member 80 by using a water supply tube, a water permeable material causing capillary action, and the like.
In the present embodiment, an atomization unit configured to atomize the water from the water supply tank may be located inside the mask 800. The water supply tank may be located outside the mask 800. The atomization unit may be either located instead of and at the position of the water absorbing member 80, or located at a different position from the water absorbing member 80. The internal space of the mask 800 can thus be filled with air containing a sufficient amount of moisture, whereby the throat of the user 900 can be moistened. An ultrasonic atomizer can be disposed as the atomization unit.
A gas guide apparatus 1 according to an eighth embodiment of the present invention will be described with reference to
As shown in
The gas guide apparatus 1 further includes a neck side water absorbing member 580 that is located around the neck and can retain water. In the present embodiment, the neck side water absorbing member 580 is an annular member made of cloth, nonwoven fabric, sponge, a water absorbing polymer, or the like. The neck side water absorbing member 580 is located around the neck to cover the outside of the neck side supply holes 550. The gas emitted from the neck side supply holes 550 is released to the outside through the inner peripheral surface of the neck side water absorbing member 580, and thus vaporizes the moisture of the neck side water absorbing member 580. The resulting heat of vaporization can cool the neck, areas where the cervical arteries run in particular. This can reduce the chance of heatstroke. The neck-specific gas supply side tube unit 500 and the neck side water absorbing member 580 may have structures and shapes different from the foregoing. While the case of guiding the gas to near the neck of the user 900 or its vicinity has been described here, the present invention is not limited thereto. The gas may be guided into clothes or a hat through tube piping to add a cooling effectiveness.
While the user 900 has been described to wear the mask 800 or the face guard 820, this is not restrictive. A cover member other than the mask 800 and the face guard 820 may be used. The cover member desirably has enough air permeability or openness for the user 900 to breathe freely even if the blower of the gas supply unit 2 stops. In other words, the cover member covers at least the mouth 920 of the user 900 to block droplets from the mouth 920 in an open state where the user 900 can breathe freely. There can be various sizes of cover members, like one with a size enough to cover the nose 910 and the mouth 920 of the user 900 and one with a size enough to cover the eyes 940, the nose 910, and the mouth 920 of the user 900. The cover member preferably has a size enough to cover at least the mouth 920, and more preferably at least the nose 910 and the mouth 920. The cover member blocks droplets from the mouth 920 of the user 900. In such a case, the cover member is attached to the gas guide apparatus 1 according to the present invention so that the nose 910 and the mouth 920 of the user 900 and the supply holes 50 are covered therewith. A structure capable of engagement with the cover member will be referred to as a cover member engagement structure. Cover member engagement structures include the mask engagement structure 11 and the face guard engagement structure 12.
A gas guide apparatus 1 according to a ninth embodiment of the present invention will be described below with reference to
As shown in
The cover portion 161 has vents 163 therethrough. A plurality of vents 163 are arranged along the length direction H of the face of the user 900 in areas of the cover portion 161 corresponding to both sides of the mouth 920 when the user 900 wears the three-dimensional frame 16. Vents 163 are also formed in an area of the cover portion 161 corresponding to between the mouth 920 and a chin 1100. Moreover, the center area of the cover portion 161 has openings (four vents 161E) greater than the vents 163 nearby.
As shown in
As shown in
In this sense, the three-dimensional frame 16 functions as an engagement unit configured to position the disposition unit 6 to a predetermined position with respect to the mask 800. The three-dimensional frame 16 may be simply pressed against the face of the user 900 by the pressing force of the mask 800, and thereby positioned between the mask 800 and the user 900. The three-dimensional frame 16 may be fixed to the inner surface 850 side of the mask 800 by a fixing member such as a hook and a tape so that the three-dimensional frame 16 will not move from where it is positioned.
The gas supplied from the supply holes 50 of the extended tube portion 5B flows from the space 165 formed between the opposed surface 161A and the mouth 920 and nose 910 (including the mouth vicinity area 930 and the nose vicinity area 960) to both sides in the width direction W of the face of the user 900, downward in the length direction H of the face of the user 900, and toward the center area of the mask 800 through the surrounding vents 163 and the four openings (vents 161E). The gas is then discharged from the other edges of the mask 800 and the center area of the mask 800 to the outside. When the user 900 repeats breathing with the mask 800 on, the air in the aforementioned space 165 becomes hot. The configuration of the gas guide apparatus 1 according to the present embodiment can discharge the hot air to the outside while agitating the entire hot air with the gas supplied from the supply holes 50. The temperature in the space 165 can thereby be lowered. In particular, the three-dimensional frame 16 also forms small gaps near both cheeks covered by the mask 800 and near the ears. The gas supplied from the supply holes 50 can thus flow to both cheeks inside the mask 800 and agitate the air inside the mask 800, thereby efficiently lowering the heat inside the mask 800.
If the water absorbing member 80 (see
When the mask 800 is worn on the face of the user 900, the mask 800 typically makes close contact with the face at and near both ends of the mask 800 in the width direction. The air between the mask 800 and the face can thus be difficult to discharge to the outside from both ends of the mask 800 in the width direction. To reliably discharge the air to the outside, the three-dimensional frame 16 preferably includes exhaust pipes 164 extending from portions corresponding to vents 163 to outside the mask 800 as shown in
When the user 900 wears the mask 800 over the three-dimensional frame 16 as shown in
The three-dimensional frame 16 is preferably made of a resin, and more preferably a flexible resin in particular.
A gas guide apparatus 1 according to a tenth embodiment of the present invention will be described below with reference to
As shown in
The gas supply side frame portion 60 (disposition unit 6) and the extended tube portion 5B are fixed to the face guard 819 via the face guard engagement structure 12. As shown in
The face guard fixing portions 125 may have any configuration as long as the gas supply side frame portion 60 (disposition unit 6) or the extended tube portion 5B can be fixed to the attachment band unit 818.
In the present embodiment, as shown in
There is another cushioning portion 126 above the extended tube portion 5B in the length direction H of the face of the user 900. This cushioning portion 126 extends in the width direction W of the face of the user 900, and fills and closes the gap between the transparent resin plate 817 and the face of the user 900 on the upper side in the length direction H of the face of the user 900. As a result, the gas flowing to the upper side of the face of the user 900 is blocked by the cushioning portion 126.
The cushioning portions 126 are preferably made of a soft material since the cushioning portions 126 touch the face of the user 900. Examples of the soft material include air impermeable materials such as silicone and rubber. The soft material is preferably flexible because deformation along the face of the user 900 is preferable in terms of eliminating the gaps.
Other examples of the soft material may include air permeable materials such as sponge. If the cushioning portions 126 are made of an air permeable material, some of the air between the transparent resin plate 817 and the user 900 is released to the outside through the cushioning portions 126. This gives the user 900 a cool feel at the sides of the face since the air passes beside the face of the user 900.
The gas guide apparatus 1 according to the present embodiment includes a duct unit 17. The duct unit 17 is intended for the gas supply unit 2 to collect the air between the transparent resin plate 817 and the face of the user 900. The duct unit 17 guides the air between the transparent resin plate 817 and the face of the user 900 to the gas supply unit 2. At least part of the lower peripheral edge of the transparent resin plate 817 is connected to the gas supply unit 2 via the duct unit 17.
In the present embodiment, the duct unit 17 is made of a sheet member 170. The top end of the sheet member 170 or its vicinity is connected to the transparent resin plate 817 at or near the lower peripheral edge of the transparent resin plate 817. The sheet member 170 is extended to the gas supply unit 2 to cover the gas supply unit 2. As shown in
In
The sheet member 170 may be made of either a deformable material such as cloth and a film, or a nondeformable material.
The duct unit 17 configured as described above is a so-called simplified duct constituted by cooperation of the sheet member 170 and the body of the user 900. However, this is not restrictive, and the duct unit 17 may be made of a tube that can constitute a duct by itself.
The cushioning portions 126 according to the present embodiment can also be employed for other embodiments. For example, as shown in
A gas guide apparatus 1 according to an eleventh embodiment of the present invention will be described below with reference to
In the other embodiments, the pressure measurement unit 9 directly measures the pressure in front of the nose 910 or the mouth 920 of the user 900, and the control unit 10 controls the flow rate of the blower on the basis of the magnitude of the measurement value. In the present embodiment, the pressure measurement unit 9 does not directly measure the pressure in front of the nose 910 or the mouth 920 of the user 900, and the control unit 10 controls the flow rate of the gas sent by the blower on the basis of the power consumption of the blower.
If the pressure in front of the nose 910 or the mouth 920 of the user 900 is high, not much gas can be supplied through the supply holes 50 of the extended tube portion 5B. As a result, the flow rate of the gas sent by the blower inevitably decreases and the power consumption of the blower decreases. On the other hand, if the pressure in front of the nose 910 or the mouth 920 of the user 900 is low, a lot of the gas can be supplied through the supply holes 50 of the extended tube portion 5B. As a result, the flow rate of the gas sent by the blower increases and the power consumption of the blower increases. According to this principle, the pressure in front of the nose 910 or the mouth 920 of the user 900 is considered to be high if the power consumption of the blower is high. The pressure in front of the nose 910 or the mouth 920 of the user 900 is considered to be low if the power consumption of the blower is low.
In the present embodiment, the control unit 10 indirectly predicts the pressure state in front of the nose 910 or the mouth 920 of the user 900 on the basis of the value of the power consumption of the blower, and controls the flow rate of the gas sent by the blower. Specifically, the control unit 10 reduces the flow rate of the gas sent by the blower if the pressure in front of the nose 910 or the mouth 920 of the user 900 is high. The control unit 10 increases the flow rate of the gas sent by the blower in the other case.
As shown in
The measurement result obtained by the power consumption measurement unit 18 can be regarded as the measurement result obtained by the pressure measurement unit 9 if the relationship between the power consumption of the blower and the pressure in front of the nose 910 or the mouth 920 of the user 900 has been determined by measurement and a function or a conversion table for converting the power consumption of the blower into the pressure has been derived in advance. The pressure evaluation value and the lower limit threshold S1 of the lower limit threshold determinator 107, and the pressure evaluation value and the upper limit threshold S2 of the upper limit threshold determinator 108, can therefore be paraphrased with power consumption-related values obtained by converting the respective pressure-related values determined in the first embodiment into power consumption of the blower.
More specifically, the lower limit threshold determinator 107 determines whether the evaluation value calculated by using the power consumption of the blower measured by the power consumption measurement unit 18 falls below the lower limit threshold S1. The upper limit threshold determinator 108 determines whether the evaluation value calculated by using the power consumption of the blower measured by the power consumption measurement unit 18 exceeds the upper limit threshold S2. The supply flow rate controller 109 controls to increases the flow rate of the gas supplied from the supply holes 50 if the lower limit determination unit 107 determines that the aforementioned evaluation value falls below the lower limit threshold S1. The supply flow rate controller 109 controls to reduce the flow rate of the gas supplied from the supply holes 50 if the upper limit threshold determinator 108 determines that the evaluation value exceeds the upper limit threshold S2. Note that the supply flow rate controller 109 can remove the effects of increases and decreases in the power consumption of the blower irrelevant to respiration by referring to the determination result of the respiration determinator 106, as noise. The evaluation value, the lower limit threshold S1, and the upper limit threshold S2 may be ones related to power consumption, or ones obtained by converting power consumption into pressure using the above-mentioned function, conversion table, or the like.
A gas guide apparatus 1 according to a twelfth embodiment of the present invention will be described below with reference to
The gas guide apparatus 1 according to the present embodiment is based on the gas guide apparatus 1 according to the ninth embodiment, from which the components configured to supply a gas are removed. The gas guide apparatus 1 according to the present embodiment includes the disposition unit 6, the gas collection side tube unit 13, and the negative pressure generation unit 2A.
The disposition unit 6 is constituted by the three-dimensional frame 16. Since the three-dimensional frame 16 has been described in conjunction with the gas guide apparatus 1 according to the ninth embodiment, a description thereof will be omitted. The gas collection side tube unit 13 is constituted by an exhaust tube 164. The exhaust tube 164 is disposed by the three-dimensional frame 16 so that the space 165 formed by the three-dimensional frame 16 communicates with the space outside the mask 800. More specifically, the exhaust pipe 164 is disposed by the three-dimensional frame 16 so that its own internal space is connected to the space 165 near the face of the user 900 and an outlet opening is in the space outside the mask 800. The exhaust tube 164 is disposed so that an inlet opening (exhaust hole 164A) of the exhaust tube 164 is located in the space 165 near the face of the user 900. As a result, the internal space of the exhaust pipe 164 is opened to the space 165 through the exhaust hole 164A.
In the present embodiment, the exhaust tube 164 extends from a lower part of the three-dimensional frame 16 constituting the portion below the mouth 920 of the user 900 to below the chin 1100. The exhaust tube 164 is connected to the negative pressure generation unit 2A. The three-dimensional frame 16 and the exhaust pipe 164 may be either integrally formed or configured as respectively independent, separate members.
The negative pressure generation unit 2A makes the inside of the exhaust tube 164 negative in pressure. In the present embodiment, the negative pressure generation unit 2A is implemented by the gas supply unit 2 accommodated in the casing 210. Like the tenth embodiment, the casing 210 also accommodates the gas collection side regulator valve unit 15, the filter unit 8, the gas supply side regulator valve unit 3, and the control unit 10 aside from the gas supply unit 2 serving also as the negative pressure generation unit 2A. The air in the space 165 formed by the three-dimensional fame 16 is thereby always emitted to the outside. In the present embodiment, the presence of the three-dimensional frame 16 provides a wide space in the mask 800 despite the gas in the mask 800 being positively exhausted to the outside. The user therefore will not get an uncomfortable feel. Moreover, since the outside air can be positively taken into the mask 800 via the mask 800, the internal space can always be maintained in a cool state.
The gas guide apparatuses 1 according to the present embodiment and the modification without the negative pressure generation unit 2A are also included in the scope of the present invention. Specifically, the inside of the exhaust tube 164 or the outlet tube portion 14B does not necessarily need to be made negative in pressure by the negative pressure generation unit as in other embodiments. Instead, the opening of the exhaust tube 164 or the outlet tube portion 14B outside the mask 800 may be simply located open to the external space. In such a case, the air in the internal space of the mask 800 is naturally released to the outside through the exhaust tube 164 or the outlet tube portion 14B.
A gas guide apparatus 1 according to a thirteenth embodiment of the present invention will be described with reference to
In the present embodiment, as shown in
The exhaust portion 140 is provided with a filter portion (not shown) that is configured to capture viruses contained in the air passing through the exhaust portion 140. As a result, viruses can be removed from the air passing through the exhaust portion 140.
The filter portion has some airflow resistance because it has a virus-capturing structure inside. In a mask with a low degree of adhesion to the user 900, the exhaled air of the user 900 is not released from the filter portion, which has some ventilation resistance, but is released from the gap between the user 900 and the mask 800 near the outer edge. Therefore, the gas guide apparatus 1 according to the present embodiment is effective when the user 900 wears a mask 800 that has a high degree of adhesion to the user 900. The mask 800 that has a high degree of close contact to the user 900 has its own outer edge or the vicinity thereof in close contact with the skin of the user 900, so that there is almost no gap formed between the mask 800 and the user 900. Such a mask 800 is made of a material such as silicon, for example.
The gas guide apparatus 1 according to the present embodiment passes the gas through the mouth vicinity area 930 in the width direction W of the face of the user 900. This can prevent the mask 800 from sticking to the face.
The disposition unit 6 can be of any configuration as long as the extended tube portion 5B and the exhaust portion 140 are arranged as described above. For example, As shown in
As shown in
As shown in
The exhaust side second portion 145 has an exhaust opening 146 for exhausting the gas passing through the exhaust passage to the outside. The mask 800 shown in
Free combinations of each components of the gas guide apparatuses 1 according to the aforementioned first to thirteenth embodiments, or a free combinations of component pieces that are part of each components, are also included in the scope of the present invention.
It will be understood that the gas guide apparatus according to the present invention is not limited to the aforementioned embodiments, and various modifications can be made thereto without departing from the gist of the present invention.
Number | Date | Country | Kind |
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2020-151921 | Sep 2020 | JP | national |