This application is a national stage of PCT International Application No. PCT/EP2008/008123, filed Sep. 25, 2008, which claims priority under 35 U.S.C. §119 to German Patent Application No. 10 2007 052 247.0, filed Nov. 2, 2007, the entire disclosure of which is herein expressly incorporated by reference.
The invention relates to a support structure for vehicle airbag.
Such airbags are known from the series-production of motor vehicles, especially of passenger vehicles. After having been used initially in particular to protect the driver or the passenger, for some years they have also been used widely as lateral airbags in the region of the side doors, as head airbags in the region of the lateral glazing or at another location within the motor vehicle.
A particular ambition with the development of airbags is thereby amongst others to arrange the airbag in its restraint position as large and as optimal as possible, so that it has a beneficial restraint effect. Additionally, it shall be achieved by a beneficial OoP behavior (out of position) of the airbag that a vehicle occupant is held back even with a poor or unusual sitting posture in the case of a collision, without experiencing unnecessary loads by the airbag itself. A deployment behavior of the airbag to the restraint position shall be achieved by a beneficial LRD behavior (low risk development), by means of which the seat occupant is affected in a correspondingly low manner.
It is thus an object of the present invention to create a support structure for an airbag of the type mentioned at the outset, by means of which the protective properties of the airbag can be improved further.
This and other objects and advantages are achieved by the support structure according to the invention, which can be moved or enlarged from a storage position to a restraint position by a gas flow, and which comprises a plurality of hollow bodies connected to each other that form a channel system, with means being provided for the targeted influencing of the gas flow are provided within the channel system. In other words, a framework- or frame-like support structure is for example presently provided in the restraint position, which consists of a plurality of hollow bodies—for example tube bodies. The latter are connected with to each other in a gas-guiding channel system. To improve the protective function of the airbag in a targeted manner, means are provided within the channel system for the targeted influencing of the gas flow, by means of which for example the filling time, the filling sequence, the deployment behavior, the OoP behavior and the LRD behavior of the support structure or of the airbag can be influenced in a targeted manner. It can be seen that these measures all serve for the improved protective function of the airbag.
By the targeted influencing of the gas flow, it can thereby be achieved for example that individual partial regions of the support structure are supplied in a temporally different manner or with different pressure. It is thereby possible, for example, to achieve targeted movement or deployment shapes of the support structure or of the airbag. By the targeted influencing of the gas flow by effecting a different pressure, the restraining effect of the support structure can also be influenced.
The support structure itself is preferably surrounded by a casing or the like, so that ambient air enclosed within the support structure can be consulted for the restraining effect. This takes place, for example, in that, during the impact of the seat occupant on the airbag in the restraint position, the internal pressure is built up within the support structure provided with the covering, whereby the restraint results. It is thereby of particular importance that the pressure builds up in the volume enclosed within the support structure as efficiently as possible.
In a further arrangement of the invention, it has further been shown to be advantageous if at least one guide element is arranged within the channel system, by means of which the gas flow shall be guided. It is thus possible in a simple manner during the deployment or moving of the airbag to the restraint position, to carry out for example a division of the gas flow between individual hollow bodies or partial regions of the channel system. Depending on how far the guide surface projects into a corresponding hollow body, a volume flow can thus be determined, which shall further flow in one direction or the other. Altogether, a simple possibility for the targeted influencing of the gas flow is thus created.
In a further development of the invention, the at least one guide element is provided in the region of a connection of two hollow bodies of the channel system in a preferred manner, so as to thus carry out in an indirect manner a division of two partial gas flows between two partial gas flows, which are to be guided to the respective hollow bodies.
In a further advantageous embodiment, it is provided that at least one closure element is arranged within the channel system, for closing an associated hollow body. A flow in a corresponding hollow body or of a partial region of the support structure can thus be avoided or stopped in a targeted manner, wherein a deflection of the gas flow to another partial region of the support structure can be realized by this closure. It is obvious that the sequence or the deployment behavior of the support structure or of the airbag can again be influenced hereby in a targeted manner. A stopping or deflection of the gas flow for influencing the filling sequence is hereby possible.
In a further arrangement of the invention, it is provided that at least one cross sectional change of an associated hollow body is provided within the channel system. This cross sectional change can thereby be provided in an extremely localized or partial manner, or can also take place over longer path progressions of the hollow body. By this measure, the flow resistance within the respective hollow body or the respective partial region of the support structure can be adapted correspondingly to the appropriate distribution. In other words, the flow behavior of the gas flow can be influenced correspondingly by the targeted cross sectional change, so as to for example generate a corresponding filing sequence or a corresponding deployment behavior. The targeted cross sectional change of the associated hollow body can also be used for influencing the flow and/or pressure ratios in the hollow bodies, in order to for example cause or avoid constrictions in a targeted manner, which can be caused by the Bernoulli effect.
It has further been shown to be advantageous if at least one valve is arranged within the channel system as a means for influencing the gas flow, by means of which valve the gas flow can be adjusted. A membrane functioning in the same manner would naturally also be conceivable instead of a valve. By means of such a valve it is thus possible to adjust a different pressure in individual hollow body sections or partial regions of the channel system. It is thereby for example possible to use part of the gas filling or of the gas flow for filling and heating the restraint volume, while another part remains in the support structure or in the channel system, so as to achieve a restraint effect or re-establishment of the restraint volume. With a labyrinth and/or obstacle construction which can be generated thereby, the deployment sequence and speed can be controlled correspondingly. In a further arrangement of the invention, the at least one valve can thereby also be formed as a check valve.
In a further development of the invention, it is additionally provided that at least one closure element is arranged within the channel system, by means of which an associated hollow body can be closed. It would thereby be particularly conceivable to use a flap or the like instead of a valve, by means of which a gas flow can flow through the hollow body in one direction, but not in the other direction.
It has finally been shown to be advantageous in a further embodiment of the invention if at least one hollow body of the channel system has a nominal bending location. The OoP behavior and the LRD behavior can also be influenced hereby in a beneficial manner.
This is especially characterized in that a plurality of hollow bodies are provided, which are connected to each other, that form a channel system, wherein a plurality of the hollow bodies forms an outer structure of the support structure, and wherein at least one hollow body is provided, by means of which hollow bodies of the outer structure are connected to each other. Accordingly, at least one hollow body is provided, which not only proceeds at the outer surface or surface of the support structure, but also through its restraint volume. Hereby, corresponding partial regions of the outer structure of the support structure can be connected to each other in a suitable manner, so as to optimize the deployment and possibly also the support behavior of the support structure or of the airbag. Thus, a shortcut can be created by means of the hollow body projecting through the restraint volume so as to optimize the deployment and the support behavior of the support structure or of the airbag. Furthermore, the at least one hollow body, which passes through the restraint volume, can be used for the supporting or stiffening of the support structure or of the airbag.
It has finally been shown to be advantageous if a gas generator which generates the gas flow is connected to a plurality of hollow bodies, so as to achieve a fast distribution of the medium within the channel system.
Other objects, advantages and novel features of the present invention will become apparent from the following detailed description of the invention when considered in conjunction with the accompanying drawings.
A passenger seat 20 can be seen in parts from the interior of the passenger motor vehicle, on which seat the passenger is positioned. The seat occupant 22 is positioned by being strapped in by a safety belt 24.
Furthermore, a dashboard 26 can be seen in parts, from which a passenger airbag 28, to be shown in more detail in the following, has been moved or enlarged from a storage position, in which it is arranged in an airbag module 30 within the dashboard 26, to a restraint position shown here. Accordingly, an accident scenario is shown in
In conjunction with
The hollow bodies 36 connected to each other in a framework manner, by individual compartments of the support structure are thus created, which are filled by planar elements 40. These planar elements 40 consist of a flexible material, for example a fabric or rubber material. The planar elements 40 form a covering 42 altogether, by means of which a restraint volume 44 is enclosed which is enclosed by the support structure 32.
This can especially also be seen in
A number of the hollow bodies 36 is thereby connected to a gas generator 46, by means of which a gas flow can be generated in the case of a collision of the motor vehicle, which flows into the channel system 34 of the support structure 32. The support structure 32 or the airbag 28 is thereby altogether moved from the airbag module 30 or the dashboard 26 from its storage position to its restraint position. In other words, the individual hollow bodies 36 of the channel system 64 are inflated or unfolded by the gas flow. The planar elements 40 of the covering 42 of the airbag are also deployed in conjunction with this enlargement or deployment of the support structure 32, so as to fill the corresponding compartments 38 or to limit the restraint volume 44 of the airbag 28 to the outside.
By the corresponding activation of the gas generator 46, a gas flow is generated thus, whereby the support structure 32 is deployed. Simultaneously therewith, the restraint volume 44 limited by the support structure 32 or the covering 42 is mounted thereby, which is filled with ambient air in one embodiment, which is present at ambient pressure. This can for example take place in that corresponding openings 48 within the covering 42 or the planar elements 40 are provided. The inner pressure of the covering 42 is in this case in principle rather smaller than with conventional airbags. This inner pressure increases however for the restraint, if the seat occupant 22—as shown in FIG. 1—moves into the airbag 28 by forward dislocation. By the volume reduction resulting in such a manner, the inner pressure within the covering 42 of the restraint volume 44 increases, whereby a restraint of the seat occupant 22 is generated. It is thereby particularly important that this pressure build-up for the restraint takes place as efficiently as possible.
It has to be considered within the scope of the invention that gas from the gas generator could also flow into the restraint volume 44 or the covering 42, so as to increase the inner pressure of the airbag hereby.
In order to achieve a particularly beneficial positioning and a particularly beneficial OoP behavior or an advantageous LRD behavior, means to be explained in more detail for the targeted influencing or interruption of the gas flow generated by the gas generator 48 in the case of a collision are further provided in the channel system 34.
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The special feature with the embodiments according to
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The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.
Number | Date | Country | Kind |
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10 2007 052 247 | Nov 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2008/008123 | 9/25/2008 | WO | 00 | 7/15/2010 |
Publishing Document | Publishing Date | Country | Kind |
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WO2009/056201 | 5/7/2009 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3784225 | Fleck et al. | Jan 1974 | A |
3843150 | Harada et al. | Oct 1974 | A |
3960386 | Wallsten | Jun 1976 | A |
3970328 | Wallsten | Jul 1976 | A |
4076277 | Kuwakado et al. | Feb 1978 | A |
4500114 | Grey, Jr. | Feb 1985 | A |
5542695 | Hanson | Aug 1996 | A |
6402191 | Sinnhuber | Jun 2002 | B1 |
6439605 | Ariyoshi | Aug 2002 | B2 |
6616179 | Tanase et al. | Sep 2003 | B2 |
7021652 | Kumagai et al. | Apr 2006 | B2 |
7264268 | Ehrke | Sep 2007 | B2 |
7448645 | Bederka et al. | Nov 2008 | B2 |
7552942 | Fischer et al. | Jun 2009 | B2 |
7618061 | Eckelberg | Nov 2009 | B2 |
7926838 | Honda et al. | Apr 2011 | B2 |
20030141710 | Zahn et al. | Jul 2003 | A1 |
20040174003 | Dominissini | Sep 2004 | A1 |
20050062268 | Inoue et al. | Mar 2005 | A1 |
20060197320 | Abe | Sep 2006 | A1 |
20070252367 | Zhong et al. | Nov 2007 | A1 |
20090322062 | Bauer et al. | Dec 2009 | A1 |
20100327568 | Baumann et al. | Dec 2010 | A1 |
20110049846 | Hirth et al. | Mar 2011 | A1 |
20110248487 | Burczyk et al. | Oct 2011 | A1 |
Number | Date | Country |
---|---|---|
2 406 501 | Aug 1974 | DE |
198 22 227 | Nov 1999 | DE |
1 340 656 | Sep 2003 | EP |
1 477 372 | Nov 2004 | EP |
2002-515370 | May 2002 | JP |
2003-54348 | Feb 2003 | JP |
2003-523882 | Aug 2003 | JP |
WO 2006061131 | Jun 2006 | WO |
WO 2007045952 | Apr 2007 | WO |
Number | Date | Country | |
---|---|---|---|
20100276918 A1 | Nov 2010 | US |