[0001] The invention relates to an oxygen breathing device, comprising a casing, said casing
accommodating in a non-activated condition an oxygen source, in particular a chemical
oxygen generator or an oxygen pressure tank, a starter device for initiating a flow
of oxygen out of said oxygen source, a buffer connected to said oxygen source, said
buffer being adapted to temporarily store oxygen produced in said oxygen source, at
least one oxygen mask connected via an oxygen supply line to said buffer. A further
aspect of the invention is a method of providing oxygen to passenger of an aircraft
in an emergency situation.
[0002] Oxygen breathing devices of this type are used to supply oxygen to passenger of an
aircraft in an emergency situation like decompression of the cabin of such an aircraft.
In such case, oxygen masks are provided to the passenger, usually by opening a cover
lid of a casing accommodating the components of such oxygen breathing device arranged
above the passenger in the ceiling and dropping out the mask. Either in the course
of opening said cover lid or by an additional action like pulling an oxygen supply
line the oxygen flow from the oxygen source to the oxygen mask is started.
[0003] An example of such an oxygen mask is shown in
US 5,265,597. Said oxygen mask is connected to an oxygen bag serving to modulate the continuous
oxygen flow from the oxygen source to the low pressure side and the periodic inspiration
and expiration cycle of the passenger. By this, the individual breathing cycle of
each passenger is satisfied by the oxygen supply system in that a continuous flow
of oxygen is directed into the oxygen bag and the passenger is allowed to periodically
inspirate said oxygen from the oxygen bag.
[0004] WO 2006/086044 A2 shows another oxygen conservation system for commercial aircraft. In this system,
a plurality of oxygen masks are provided, each mask being associated with a respective
plurality of reservoir bags attached to said masks. All reservoir bags are connected
to a single oxygen source consisting of one or more cylinders of compressed oxygen.
The system such disclosed allows for providing oxygen to a plurality of passengers
and at the same times allows each passenger to conduct his individual breathing cycle
of inspiration and expiration.
[0005] EP 2 127 700 A1 discloses an oxygen breathing mask associated with an oxygen bag which is adapted
to provide oxygen out of the oxygen bag to the passenger in a first section of the
inspiration cycle and to thereafter provide ambient air to the passenger in a second
section of the inspiration cycle. By this, the consumption of oxygen can be reduced
significantly without negatively affecting the oxygen uptake by the passenger since
breathing air inspirated in a late cycle of the inspiration usually does not reach
the lung of the passenger and thus cannot be used for oxygen transfer into the blood
of the passenger.
[0006] EP 2 127 699 A1 and
US 3,981,300 A disclose oxygen breathing systems wherein oxygen is produced by a chemical oxygen
generator and buffered in a pressure tank. These devices, however, are bulky and heavy
and thus increase the space requirement and weight of modern commercial aircraft.
[0007] Finally another known oxygen breathing system is shown in document
WO 2006/088581 A1.
[0008] A problem associated with oxygen supply systems as described above is, however, the
control of oxygen flow in view of the desire to prove a compact design of the system.
In practice, either oxygen pressure tanks or chemical oxygen generators are used as
an oxygen source since these oxygen sources allow for a compact design and ensure
a save storage of the oxygen over a long period of time. However, the chemical reaction
leading to the production of oxygen often cannot be controlled in such a way as to
generate a constant oxygen flow but may rather produce a pulsatile flow with a short
pulse frequency or may produce an inconstant flow over the whole time of oxygen production
in that a period of higher or lower oxygen production may occur at the beginning,
in the middle or at the end of the chemical reaction. Similarly, oxygen flow from
pressure tanks may undergo such pulsatile flow in that a control valve used to control
said flow leads to such pulses or in that due to the constant reduction of the inside
pressure following the release of the oxygen the flow rate is not continuous over
the whole time of oxygen supply. Still further, mechanical influences like shaking,
vibrations acting onto the whole oxygen supply system may produce such pulsatile flow
phenomena or variations in the voltage or current of an electrical energy supply system
used to control the oxygen flow may result in such pulses. In particular in an emergency
situation, such mechanical or electrical influences may be present and thus negatively
affect the oxygen supply to the passenger.
[0009] A general problem associated with such emergency oxygen supply systems for passenger
of an aircraft is resulting from the fact that in modem large commercial aircraft
a very large number of such oxygen supply systems must be provided. Whereas in practice
two or three passengers are supplied via separate masks from one common oxygen source,
the overall weight of the emergency oxygen device and the space required for arranging
such device into the aircraft cabin considerably affects the total performance of
the aircraft by its weight and the cabin space required for it. Thus, a general object
associated with such emergency oxygen systems for passengers in a commercial aircraft
is the desire to reduce the space required to arrange such system in the cabin and
the weight of such system.
[0010] It is an object of the invention to provide an emergency oxygen supply system for
a passenger aircraft which fulfils the above demand for low weight and space requirement
and at the same time provides oxygen to a passenger in a convenient manner over the
whole time of the emergency situation where the oxygen supply system is able to provide
oxygen.
[0011] This object is solved according to the invention by an oxygen breathing device as
claimed in 1.
[0012] According to the invention, a flexible buffer is provided in the oxygen breathing
device and connected to the oxygen source. The flexible buffer is provided as a bag
or a bladder and may preferably be a seamless bag or bladder, whereas bladders having
a seam are useful, too. With the oxygen device according to the invention, the functional
properties of the rigid volume inside the oxygen source itself, which alone or in
combination with a further rigid volume is used to compensate and damp discontinuous
oxygen release from the oxygen source like e.g. a pulsatile flow is improved in that
beside said rigid buffer volume inside the oxygen source a flexible buffer volume
is provided. This flexible buffer volume does not require significant space within
the casing accommodating the components of the oxygen breathing device in a non-activated
condition, where no oxygen is to be supplied to the passenger. However, in an activated
condition, where oxygen is to be supplied to the passenger, the flexible buffer can
expand and thus provide the function of compensating or damping discontinuous oxygen
production from the oxygen source. According to the invention, the flexible buffer
is arranged in the casing or outside in particular in a non-activated condition of
the device and is further arranged in the casing or close to the casing in the activated
condition. The flexible buffer may thus be fixed within the casing in both the activated
and non-activated condition and expand into a space in the casing which is given free
by releasing the oxygen masks out of the casing. In another embodiment the flexible
buffer may expand into a space outside the casing since a cover lid which released
said oxygen mask(s) of the casing is no longer present or opened. In a still further
embodiment, the flexible buffer may be arranged partially or completely outside said
casing and expand outside this casing as this was enabled due to opening or removing
of a cover lid in the course of releasing the oxygen mask out of the casing.
[0013] The flexible buffer according to the invention may be combined with an oxygen pressure
tank or a chemical oxygen generator. In both cases, the advantage of compensating
and damping discontinuous oxygen release from such oxygen source is achieved. Further,
the flexible buffer according to the invention may combined with any oxygen mask,
in particular with an oxygen mask having an oxygen bag associated thereto. In particular
oxygen masks comprising an oxygen bag allow for compensating the periodic breathing
cycle with the continuous flow of oxygen out of the oxygen source as compensated and
damped by the flexible buffer. This is of particular relevance if more than one oxygen
mask is provided since in such case the oxygen bag associated with such masks will
allow individual breathing cycles for each passenger and is thus associated to the
passenger behavior, whereas the flexible buffer allows for compensation and damping
of discontinuous oxygen release out of the oxygen source and is thus associated with
the single oxygen source used for supply of the more than one oxygen masks. In such
case, one single flexible buffer is provided and the oxygen is directed to more than
one oxygen mask with associated more than one oxygen bags.
[0014] In particular, it is preferred to have a direct and substantially or completely unrestricted
flow connection between the oxygen source and the flexible buffer and to have a restricted
flow connection between the oxygen source and the oxygen mask. Such restriction may
be achieved by a small orifice or the like to provide a constant and small flow rate
of oxygen to the oxygen mask. In such case, such restricted flow will be provided
to an oxygen bag associated with such oxygen mask as well, whereas the flexible buffer
does not have such a flow restriction.
[0015] Generally, oxygen flowing from the oxygen source may flow to said oxygen mask via
said flexible buffer or may flow from the oxygen source to said oxygen mask having
the flexible buffer in a bypass arrangement to receive oxygen out of the line connecting
the oxygen source with the oxygen mask and releasing oxygen into said line in case
that the pressure in the line falls below the pressure in the flexible buffer.
[0016] The pressure inside the flexible buffer may be in the range of 5 to 8 barg and may
even reach 10 barg in regular use. It is to be understood that the flexible buffer
may be defined in such a way and made from such an elastic material that it is not
only expanded to an inflated condition by said pressure but also the buffer material
is stretched to only such an extent that this stretching is reversed when the pressure
inside the buffer decreases. However, when using certain stiffer materials, there
may be no or only minimal mechanical stretching of the buffer material.
[0017] Preferably, the flexible buffer is made from a polymer material, in particular a
copolymer, a blended polymer or a polymer composite. The material may be coated and
thus the flexible buffer may be a two-layer or a multi-layer construction to fulfill
requirements regarding mechanical strength and impermeability. The material of the
flexible buffer may be selected from a list containing polyurethane or aramide foil,
glass fibre or aramide fibre coated with Polyurethane or silicone (polysiloxane).
[0018] The flexible buffer may preferably have a volume in the expanded condition of 0.2
to 0.3 liter per oxygen mask supplied by the oxygen system, in particular 0,25liter
per oxygen mask. However, in particular when using an oxygen pressure tank as oxygen
source, the volume of the flexible buffer may preferably be at least 1 liter to cover
a single breath of a user.
[0019] According to a first preferred embodiment said buffer is at least partially inflated
into a space inside the casing given free by release of said at least one oxygen mask.
This embodiment is particularly preferred because the flexible buffer is kept inside
a casing partially or completely and thus the risk of damage to the flexible buffer
is significantly reduced. In this embodiment, in particular that space inside the
casing, where the oxygen mask(s) are stored in the non-activated condition can be
used for the expansion of the flexible buffer in the activated condition after the
masks have been released out of the casing.
[0020] According to a further preferred embodiment a plurality of oxygen masks are provided
inside said casing in a non-activated condition and a corresponding plurality of oxygen
supply lines is provided for connecting each of said oxygen masks to a manifold, said
manifold being connected to said buffer via a central oxygen line. With this embodiment,
the flow of oxygen follows a route from the oxygen source to a manifold and finally
to more than one oxygen masks, wherein the flexible buffer is connected to said line
between the oxygen source and the manifold directly or in a bypass configuration.
In such a configuration, the flexible buffer provides compensation and damping of
a discontinuous oxygen release out of the oxygen source whereas oxygen bags associated
with each of the plurality of oxygen masks allow for an individual inspiration and
expiration cycle of each passenger under the constant flow of oxygen to and from the
manifold.
[0021] According to a further preferred embodiment an oxygen flow control unit is interconnected
between said oxygen source and said buffer and adapted to control the flow of oxygen
to the oxygen mask(s). Such oxygen flow control unit may be adapted for electrically
driven control or mechanically driven control and may further comprise a sensor for
sensing the pressure inside the aircraft cabin, i.e. the ambient pressure to control
the flow depending on the specific decompression situation.
[0022] According to a further preferred embodiment the oxygen breathing device is further
improved by an oxygen flow bypass line starting at the oxygen source and ending in
direct connection with the oxygen mask(s), wherein said oxygen flow bypass line preferably
is connected directly to each single oxygen supply line of each oxygen mask. Such
an oxygen flow bypass line allows for a direct transfer of the oxygen out of the oxygen
source to the oxygen mask(s), which is in particular relevant in case of failure of
any of the components of the system interconnected between the oxygen source and the
oxygen mask(s). Thus, such oxygen flow bypass line circumvents in particular the flexible
buffer and, if present, a flow control unit and preferably even a manifold for distributing
the oxygen flow to a plurality of oxygen masks and is directly connected to each mask
for supplying oxygen to it.
[0023] This embodiment may be further improved in that the flow bypass line comprises a
safety valve adapted to be closed for blocking oxygen flow through the flow bypass
line as long as the pressure difference calculated as pressure on the valve side facing
to the oxygen source minus pressure on the valve side facing to the oxygen mask(s)
is below a predetermined level and to open for allowing oxygen flow through the flow
bypass line as soon as said pressure difference is equal to or exceeds said predetermined
level. Such a safety valve may be a spring biased check valve or the like and is incorporated
into the device in order to prevent oxygen flow via the bypass line under regular
function of the components of the device. The safety valve will open a flow through
said bypass line in case of irregular function and in particular blocking of the regular
oxygen flow path through the components of the device.
[0024] According to a further preferred embodiment the flexible oxygen buffer is connected
in a bypass configuration to a flow line connecting the chemical oxygen source with
the oxygen mask(s). This particular embodiment allows for a significant compensation
and damping of discontinuities in the release of oxygen but at the same time prevents
any problems arising from blockage or the like of the flexible buffer with regard
to oxygen supply to the oxygen masks since the flexible bag is not part of the direct
flow path of oxygen from the oxygen source to the oxygen masks.
[0025] According to a still further embodiment of the invention, a flow restrictor in each
single oxygen supply line is provided. Such flow restrictor is usually arranged in
a short distance in flow direction before the oxygen mask or an oxygen bag associated
with such an oxygen mask and ensures a constant flow of oxygen to the passenger which
is sufficient for regular requirements of the passenger and prevents any panic-related
hyperventilation effects resulting from too much or too less oxygen intake of the
passenger.
[0026] In particular, such flow restrictor is arranged between a flexible buffer and an
oxygen mask or, if present, an oxygen bag associated with such oxygen mask in the
single oxygen supply line.
[0027] A further aspect of the invention is a method for providing oxygen to a passenger
of an aircraft according to claim 9.
[0028] Such a method is particularly useful for a secure and convenient supply of oxygen
to a passenger and at the same time allows for a compact and light weight construction
of the oxygen supply system used for conducting such method. It is to be understood
that in particular the oxygen breathing device as explained beforehand may work according
to such a method for providing oxygen.
[0029] The method may be further improved according to the subject matter of claims 11 -
13 . To this regard, it is to be understood that the specific aspects and advantages
of these embodiments of the method may be related to the corresponding aspects of
the oxygen breathing device as explained above and reference is made to the description
of these aspects to this regard.
[0030] A preferred embodiment of the invention is explained referring to the single figure,
wherein the figure shows a schematic view of a preferred embodiment of the oxygen
breathing device according to the invention.
[0031] In the Figure, a chemical oxygen generator 3 is provided which incorporates a chemical
agent which can be activated to produce oxygen in a chemical reaction. An oxygen system
starter 2 is attached to the chemical oxygen generator. This oxygen system starter
can be activated by an electrical signal and upon receipt of such electrical signal,
the oxygen system starter initiates the chemical reaction inside the chemical oxygen
generator 3.
[0032] The chemical oxygen generator 3 is connected via a first central oxygen line section
3a to a flow control unit 4. This flow control unit 4 is adapted to mechanically detect
the ambient pressure and to control the flow of oxygen depending on said ambient pressure.
[0033] The flow control unit 4 is connected via a second central oxygen line section 4a
to a flexible oxygen buffer 5. The flexible buffer is made from polyurethane. Said
flexible oxygen buffer 5 is arranged close to the flow control unit 4 and the chemical
oxygen generator 3 in that the line sections 3a and 4a are rather short. Thus, the
flexible oxygen buffer 5 will stay inside a casing which accommodates all components
of the oxygen breathing device in both an activated and a non-activated condition
of the device wherein in the non-activated condition some components are outside said
casing.
[0034] The flexible buffer is in a flat, non-expanded condition in the non-activated condition
of the oxygen breathing device and may be partially or completely expanded to an expanded
condition in the activated condition of the oxygen breathing device.
[0035] The flexible oxygen buffer 5 is connected via a third central oxygen line section
5a to a manifold 10. This manifold 10 distributes the oxygen received from the third
central oxygen line section 5a to a total of three individual oxygen supply hoses
11a - c. Each of said oxygen supply hoses 11a - c comprises a flow restrictor orifice
12a - c to restrict the flow of oxygen through each hose to a certain flow rate.
[0036] Each oxygen supply hose 11a - c is connected to an oxygen mask 13a - c, respectively.
It is to be understood that each oxygen supply hose 11a - c may direct the flow of
oxygen to an oxygen bag 14 a - c associated with each oxygen mask.
[0037] Still further, an oxygen bypass line is provided starting at a second exit of the
chemical oxygen generator 3 and ending in three connections 14a - c which are positioned
between the flow restrictor orifices 12a - c and the oxygen masks 13a - c or the oxygen
bags 14a - c, respectively. The oxygen flow bypass line 8 incorporates a safety valve
7 which is a spring biased check valve. This safety valve 7 is mounted into said oxygen
flow bypass line in such a way that only if a predetermined level of pressure difference
between the oxygen generator 3 and the oxygen masks 13a - c is exceeded in such a
way that the oxygen pressure inside the oxygen generator exceeds the pressure in the
oxygen masks to a certain amount, the safety valve opens and enables flow via the
oxygen flow bypass line.
[0038] The function of the preferred embodiment is as follows: In a non-activated condition,
all components of the oxygen breathing device are accommodated in a casing and the
casing is completely filled by these components, wherein the flexible oxygen buffer
is in a flat, non-expanded condition. After activation of the oxygen breathing device,
a cover lid or any other part of the casing is released and opens or falls off the
casing to allow the oxygen masks 13a - c to fall out of the casing or to be taken
out of the casing. The flexible oxygen buffer remains inside the casing and expands
into the space given free by the oxygen masks. This expansion takes place inside the
casing and may even partially take place into a space outside the casing. A constant
oxygen flow free of pulses and controlled depending on the ambient pressure is provided
to the oxygen masks 13a - c thereafter.
1. Oxygen breathing device, comprising a casing, said casing accommodating in a non-activated
condition
- an oxygen source (3), in particular a chemical oxygen generator or an oxygen pressure
tank,
- a starter device (2) for initiating a flow of oxygen out of said oxygen source,
- a buffer (5) connected to said oxygen source, said buffer being adapted to temporarily
store oxygen produced in said oxygen source,
- at least one oxygen mask (13 a - c) connected via an oxygen supply line to said
buffer,
wherein said buffer is a flexible bag (5) which is arranged in a deflated condition
in said casing in said non- activated condition and
wherein in an activated condition, wherein said starter device was activated for initiating
a flow of oxygen from said oxygen source
- said at least one oxygen mask is placed outside the casing and connected via said
oxygen supply line to said oxygen source for directing oxygen from said oxygen source
to said at least one oxygen mask,
- said buffer is at least partially inflated into a space given free by release of
said at least one oxygen mask
characterized in that
- a plurality of oxygen masks are provided inside said casing in a non-activated condition
and
- a corresponding plurality of oxygen supply lines is provided for connecting each
of said oxygen masks to a manifold (10),
- said manifold being connected to said buffer via a central oxygen line.
2. Oxygen breathing device according to claim 1, wherein
- said buffer is at least partially inflated into a space inside the casing given
free by release of said at least one oxygen mask.
3. Oxygen breathing device according to any of the preceding claims, wherein
- each of said oxygen masks is connected to a flexible oxygen bag (14 a - c),
- said oxygen supply line (11 a - c) being interconnected between said buffer (5)
and said oxygen bag (14 a - c).
4. Oxygen breathing device according to any of the preceding claims, wherein
- an oxygen flow control unit (4) is interconnected between said oxygen source (3)
and said at least one oxygen mask (13 a - c), in particular said flexible buffer (5)
and adapted to control the flow of oxygen to the oxygen mask(s).
5. Oxygen breathing device according to any of the preceding claims, characterized by an oxygen flow bypass line (8) starting at the oxygen source (3) and ending in direct
connection with the oxygen mask(s) (13a - c), wherein said oxygen flow bypass line
preferably is connected directly to each single oxygen supply line.
6. Oxygen breathing device according to the preceding claim 5, wherein the flow bypass
line comprises a safety valve(7) adapted
- to be closed for blocking oxygen flow through the flow bypass line (8) as long as
the pressure difference calculated as pressure on the valve side facing to the oxygen
source minus the valve side facing to the oxygen mask(s) is below a predetermined
level and
- to open for allowing oxygen flow through the flow bypass line as soon as said pressure
difference is equal to or exceeds said predetermined level.
7. Oxygen breathing device according to any of the preceding claims, characterized in that the flexible oxygen buffer is connected in a bypass configuration to a flow line
connecting the chemical oxygen source with the oxygen mask(s).
8. Oxygen breathing device according to any of the preceding claims, characterized by a flow restrictor (12 a - c) in each single oxygen supply line.
9. A method for providing oxygen to a passenger of an aircraft, comprising the steps
of:
- arranging an oxygen source (3), a flexible buffer (5) and at least one oxygen mask
(13 a - c) in a casing in a non activated condition, releasing said at least one oxygen
mask out of said casing upon receipt of an activation signal,
- starting oxygen flow from said oxygen source by electrically or mechanically activating
a starter (2) associated with said oxygen source,
- expanding said flexible buffer at least partially by introducing oxygen from said
oxygen source into said flexible buffer, wherein said at least partial expansion preferably
occupies space within said casing which was occupied by said at least one oxygen mask
before releasing of said at least one oxygen mask,
- directing oxygen from said oxygen source to said at least one oxygen mask.
characterized in that the method further comprises
- distributing the flow of oxygen in flow direction behind said flexible buffer to
a plurality of oxygen masks.
10. The method of claim 9 , further comprising the steps of:
- Providing the flow of oxygen to at least one oxygen bag, wherein one oxygen bag
is associated with each oxygen mask, to continuously fill said oxygen bag and allowing
a passenger to breath the oxygen content of said oxygen bag during inspiration.
11. The method of the preceding claim 10, wherein oxygen temporarily stored in said flexible
buffer is directed to said oxygen bag.
12. The method of any of the preceding claims 9-11, wherein oxygen is transmitted directly
from the chemical oxygen source to the at least one oxygen mask in case that a pressure
difference calculated as a pressure in the oxygen source minus a pressure in the oxygen
mask(s) is equal to or above a predetermined level.
13. The method of any of the preceding claims 9-12 , wherein the oxygen flow from the
oxygen source to the oxygen mask is controlled by a flow control unit, wherein if
dependent on claim 12, said control only takes place in case that said pressure difference
according to claim 12 is below said predetermined level.
1. Sauerstoff-Atemvorrichtung, umfassend ein Gehäuse, wobei das Gehäuse in einem nichtaktivierten
Zustand unterbringt:
- eine Sauerstoffquelle (3), insbesondere eine chemische Sauerstoff-Erzeugungsvorrichtung
oder ein Sauerstoff-Drucktank,
- eine Startvorrichtung (2) um einen Fluss von Sauerstoff aus der Sauerstoffquelle
zu initiieren,
- ein Pufferelement (5), der mit der Sauerstoffquelle verbunden ist, wobei das Pufferelement
ausgebildet ist, zeitweise Sauerstoff zu lagern, der in der Sauerstoffquelle produziert
worden ist,
- mindestens eine Sauerstoffmaske (13 a - c), die durch eine Sauerstoff-Versorgungsleitung
mit dem Pufferelement verbunden ist,
wobei
das Pufferelement ein flexibler Sack (5) ist, der in einem entleerten Zustand in dem
Gehäuse in dem nichtaktivierten Zustand angeordnet ist und
wobei
in einem aktivierten Zustand, wobei die Startvorrichtung aktiviert wurde, um einen
Fluss von Sauerstoff von der Sauerstoffquelle zu initiieren,
- die mindestens eine Sauerstoffmaske außerhalb des Gehäuses platziert und über die
Sauerstoff-Versorgungsleitung mit der Sauerstoffquelle verbunden ist, um Sauerstoff
von der Sauerstoffquelle zu der mindestens einen Sauerstoffmaske zu leiten,
- das Pufferelement mindestens teilweise in einen Raum aufgeblasen ist, der durch
das Lösen der mindestens einen Sauerstoffmaske freigegeben ist
dadurch gekennzeichnet, dass
- eine Mehrzahl von Sauerstoffmasken innerhalb des Gehäuses in einem nichtaktivierten
Zustand bereitgestellt sind und
- eine entsprechende Mehrzahl von Sauerstoff-Versorgungsleitungen bereitgestellt sind,
um jede von den Sauerstoffmasken mit einem Verteilelement (10) zu verbinden,
- wobei das Verteilelement mit dem Pufferelement über eine zentrale Sauerstoffleitung
verbunden ist.
2. Sauerstoff-Atemvorrichtung nach Anspruch 1, wobei
- das Pufferelement mindestens teilweise in einen Raum innerhalb des Gehäuses aufgeblasen
ist, der durch Lösen der mindestens einen Sauerstoffmaske freigegeben wird.
3. Sauerstoff-Atemvorrichtung nach einem der vorhergehenden Ansprüche, wobei
- jede von den Sauerstoffmasken mit einem flexiblen Sauerstoffsack (14 a - c) verbunden
ist,
- die Sauerstoff-Versorgungsleitung (11 a - c) zwischen dem Pufferelement (5) und
dem Sauerstoffsack (14 a - c) verbunden ist.
4. Sauerstoff-Atemvorrichtung nach einem der vorhergehenden Ansprüche, wobei
- eine Sauerstofffluss-Steuerungseinheit (4) zwischen der Sauerstoffquelle (3) und
der mindestens einen Sauerstoffmaske (13 a - c), insbesondere dem flexiblen Pufferelement
(5), verbunden ist und ausgebildet ist, den Fluss von Sauerstoff an die Sauerstoffmaske(n)
zu steuern.
5. Sauerstoff-Atemvorrichtung nach einem der vorhergehenden Ansprüche,
gekennzeichnet durch eine Sauerstofffluss-Nebenleitung (8), die an der Sauerstoffquelle (3) beginnt und
in direkter Verbindung mit der/den Sauerstoffmaske(n) (13 a - c) endet, wobei die
Sauerstofffluss-Nebenleitung vorzugsweise direkt mit jeder einzelnen Sauerstoff-Versorgungsleitung
verbunden ist.
6. Sauerstoff-Atemvorrichtung nach dem vorhergehenden Anspruch 5, wobei die Fluss-Nebenleitung
ein Sicherheitsventil (7) umfasst, das ausgebildet ist
- geschlossen zu sein, um Sauerstofffluss durch die Fluss-Nebenleitung (8) zu blockieren,
solange die Druckdifferenz, die berechnet wird als Druck an der Ventilseite, die zu
der Sauerstoffquelle gewandt ist, minus die Ventilseite, die zu der/den Sauerstoffmaske(n)
gewandt ist, unter einem vorbestimmten Niveau ist und
- zu öffnen, um Sauerstofffluss durch die Fluss-Nebenleitung zu ermöglichen sobald
die Druckdifferenz gleich dem vorbestimmten Niveau ist oder dieses übersteigt.
7. Sauerstoff-Atemvorrichtung nach einem der vorhergehenden Ansprüche,
dadurch gekennzeichnet, dass das flexible Sauerstoff-Pufferelement in einer Nebenschlusskonfiguration mit einer
Flussleitung verbunden ist, die die chemische Sauerstoffquelle mit der/den Sauerstoffmaske(n)
verbindet.
8. Sauerstoff-Atemvorrichtung nach einem der vorhergehenden Ansprüche,
gekennzeichnet durch einen Flussbegrenzer (12 a - c) in jeder einzelnen Sauerstoff-Versorgungsleitung.
9. Verfahren zum Bereitstellen von Sauerstoff an einen Passagier eines Luftfahrzeugs,
umfassend die Schritte:
- Anordnen einer Sauerstoffquelle (3), ein flexibles Pufferelement (5) und mindestens
eine Sauerstoffmaske (13 a - c) in einem Gehäuse in einem nichtaktivierten Zustand,
- Lösen der mindestens einen Sauerstoffmaske aus dem Gehäuse beim Empfangen eines
Aktivierungssignals,
- Starten eines Sauerstoffflusses von der Sauerstoffquelle durch elektrisches oder
mechanisches Aktivieren einer Startvorrichtung (2), die zu der Sauerstoffquelle gehört,
- mindestens teilweises Ausdehnen des flexiblen Pufferelements durch einführen von
Sauerstoff von der Sauerstoffquelle in das flexible Pufferelement, wobei die mindestens
teilweise Ausdehnung vorzugsweise Raum innerhalb des Gehäuses belegt, der vor dem
Lösen der mindestens einen Sauerstoffmaske durch die mindestens eine Sauerstoffmaske
belegt war,
- Leiten von Sauerstoff von der Sauerstoffquelle zu der mindestens einen Sauerstoffmaske
dadurch gekennzeichnet, dass das Verfahren weiter umfasst
- Verteilen des Flusses von Sauerstoff in Flussrichtung hinter das flexible Pufferelement
an eine Mehrzahl von Sauerstoffmasken.
10. Verfahren nach Anspruch 9, weiter umfassend die Schritte:
- Bereitstellen des Flusses von Sauerstoff an mindestens einen Sauerstoffsack, wobei
zu jeder Sauerstoffmaske ein Sauerstoffsack gehört, um den Sauerstoffsack kontinuierlich
zu füllen und einem Passagier zu ermöglichen, den Sauerstoffinhalt des Sauerstoffsacks
während der Einatmung zu atmen.
11. Verfahren nach dem vorhergehenden Anspruch 10, wobei Sauerstoff, der zeitweise in
dem flexiblen Pufferelement gelagert wird, zu dem Sauerstoffsack geleitet wird.
12. Verfahren nach einem der vorhergehenden Ansprüche 9-11, wobei Sauerstoff direkt von
der chemischen Sauerstoffquelle zu der mindestens einen Sauerstoffmaske übertragen
wird, für den Fall, dass eine Druckdifferenz, die berechnet wird als ein Druck in
der Sauerstoffquelle minus ein Druck in der/den Sauerstoffmaske(n), gleich einem vorbestimmten
Niveau ist oder größer als dieses ist.
13. Verfahren nach einem der vorhergehenden Ansprüche 9-12, wobei der Sauerstofffluss
von der Sauerstoffquelle zu der Sauerstoffmaske von einer Flusssteuerungseinheit gesteuert
wird, wobei, wenn der Anspruch von Anspruch 12 abhängig ist, die Steuerung nur für
den Fall stattfindet, dass die Druckdifferenz nach Anspruch 12 unter dem vorbestimmten
Niveau liegt.
1. Dispositif respiratoire à oxygène, comprenant un carter, ledit carter logeant dans
un état non activé
- une source d'oxygène (3), en particulier un générateur d'oxygène chimique ou un
réservoir d'oxygène sous pression,
- un dispositif de démarrage (2) pour amorcer un débit d'oxygène à partir de ladite
source d'oxygène,
- un tampon (5) relié à ladite source d'oxygène, ledit tampon étant conçu pour stocker
temporairement l'oxygène produit dans ladite source d'oxygène,
- au moins un masque à oxygène (13 a - c) relié via une conduite d'alimentation en
oxygène audit tampon,
dans lequel ledit tampon est un sac flexible (5) qui est placé dans un état dégonflé
dans ledit carter dans ledit état non activé et
dans lequel dans un état activé, dans lequel ledit dispositif de démarrage a été activé
pour amorcer un débit d'oxygène depuis ladite source d'oxygène
- ledit au moins masque à oxygène est placé à l'extérieur du carter et relié via ladite
conduite d'alimentation en oxygène à ladite source d'oxygène pour diriger l'oxygène
de ladite source d'oxygène vers ledit au moins un masque à oxygène,
- ledit tampon est au moins partiellement gonflé dans un espace libéré par la libération
dudit au moins un masque à oxygène
caractérisé en ce que
- une pluralité de masques à oxygène sont placés à l'intérieur dudit carter dans un
état non activé et
- une pluralité correspondante de conduites d'alimentation en oxygène est prévue pour
relier chacun desdits masques à oxygène à un collecteur (10),
- ledit collecteur étant relié audit tampon via une conduite d'oxygène centrale.
2. Dispositif respiratoire à oxygène selon la revendication 1, dans lequel
- ledit tampon est au moins partiellement gonflé dans un espace à l'intérieur du carter
libéré par la libération dudit au moins un masque à oxygène.
3. Dispositif respiratoire à oxygène selon l'une quelconque des revendications précédentes,
dans lequel
- chacun desdits masques à oxygène est relié à un sac à oxygène flexible (14 a - c),
- ladite conduite d'alimentation en oxygène (11 a - c) étant interconnectée entre
ledit tampon (5) et ledit sac à oxygène (14 a - c).
4. Dispositif respiratoire à oxygène selon l'une quelconque des revendications précédentes,
dans lequel
- un régulateur de débit d'oxygène (4) est interconnecté entre ladite source d'oxygène
(3) et ledit au moins un masque à oxygène (13 a - c), en particulier ledit tampon
flexible (5) et conçu pour réguler le débit d'oxygène vers le(s)dit(s) masque(s) à
oxygène.
5. Dispositif respiratoire à oxygène selon l'une quelconque des revendications précédentes,
caractérisé par une conduite de dérivation de débit d'oxygène (8) partant de la source d'oxygène
(3) et se terminant en liaison directe avec le(s) masque(s) à oxygène (13 a - c),
dans lequel ladite conduite de dérivation de débit d'oxygène est reliée de préférence
directement à chaque conduite d'alimentation en oxygène individuelle.
6. Dispositif respiratoire à oxygène selon la revendication précédente 5, dans lequel
la conduite de dérivation de débit comprend une soupape de sûreté (7) conçue
- pour être fermée pour bloquer le débit d'oxygène à travers la conduite de dérivation
de débit (8) tant que la différence de pression calculée en tant que la pression sur
le côté de la soupape orienté vers la source d'oxygène moins la pression sur le côté
de la soupape orienté vers le(s) masque(s) à oxygène est en dessous d'un niveau prédéterminé
et
- pour s'ouvrir pour permettre le débit d'oxygène à travers la conduite de dérivation
de débit dès que ladite différence de pression est égale audit niveau prédéterminé
ou le dépasse.
7. Dispositif respiratoire à oxygène selon l'une quelconque des revendications précédentes,
caractérisé en ce que le tampon à oxygène flexible est relié dans une configuration de dérivation à une
conduite d'écoulement reliant la source d'oxygène chimique et le(s) masque(s) à oxygène.
8. Dispositif respiratoire à oxygène selon l'une quelconque des revendications précédentes,
caractérisé par un réducteur de débit (12 a - c) dans chaque conduite d'alimentation en oxygène individuelle.
9. Procédé de fourniture d'oxygène à un passager d'un avion, comprenant les étapes suivantes
:
- la mise en place d'une source d'oxygène (3), d'un tampon flexible (5) et d'au moins
un masque à oxygène (13 a - c) dans un carter dans un état non activé,
- la libération dudit au moins un masque à oxygène hors dudit carter à la réception
d'un signal d'activation,
- le démarrage d'un débit d'oxygène à partir de ladite source d'oxygène en activant
électriquement ou mécaniquement un démarreur (2) associé à ladite source d'oxygène,
- la dilatation dudit tampon flexible au moins partiellement en introduisant de l'oxygène
depuis ladite source d'oxygène dans ledit tampon flexible, dans lequel ladite dilatation
au moins partielle occupe de préférence l'espace au sein dudit carter qui était occupé
par ledit au moins un masque à oxygène avant libération dudit au moins un masque à
oxygène,
- l'orientation de l'oxygène de ladite source d'oxygène vers ledit au moins un masque
à oxygène,
caractérisé en ce que le procédé comprend en outre
- la distribution du débit d'oxygène dans la direction d'écoulement à l'arrière dudit
tampon flexible à une pluralité de masques à oxygène.
10. Procédé selon la revendication 9, comprenant en outre les étapes suivantes :
- la fourniture du débit d'oxygène à au moins un sac à oxygène, dans lequel un sac
à oxygène est associé à chaque masque à oxygène, pour remplir en continu ledit sac
à oxygène et permettant à un passager d'inhaler le contenu d'oxygène dudit sac à oxygène
au cours de l'inspiration.
11. Procédé selon la revendication précédente 10, dans lequel l'oxygène stocké temporairement
dans ledit tampon flexible est dirigé vers ledit sac à oxygène.
12. Procédé selon l'une quelconque des revendications précédentes 9 à 11, dans lequel
l'oxygène est transmis directement de la source d'oxygène chimique à l'au moins un
masque à oxygène dans le cas où une différence de pression calculée en tant que pression
dans la source d'oxygène moins une pression dans le(s) masque(s) à oxygène est supérieure
ou égale à un niveau prédéterminé.
13. Procédé selon l'une quelconque des revendications précédentes 9 à 12, dans lequel
le débit d'oxygène de la source d'oxygène au masque à oxygène est régulé par un régulateur
de débit, dans lequel si la revendication est dépendante de la revendication 12, ladite
régulation n'a lieu que dans le cas où ladite différence de pression selon la revendication
12 est en dessous dudit niveau prédéterminé.