KNEE AIRBAG MODULE
20220073028 ยท 2022-03-10
Inventors
Cpc classification
B60R21/231
PERFORMING OPERATIONS; TRANSPORTING
B60R2021/2395
PERFORMING OPERATIONS; TRANSPORTING
B60R21/239
PERFORMING OPERATIONS; TRANSPORTING
B60R21/233
PERFORMING OPERATIONS; TRANSPORTING
B60R2021/23324
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A knee airbag module, comprising an airbag (10) which has plural vertical chambers superimposed in the inflated state, including a middle, upper and lower chamber (18, 20, 16), is filled directly via the middle chamber (18), wherein the lower chamber (16) can be fluid-communicated with the middle chamber via plural overflow openings (28) and a valve device is configured on the overflow openings (28) so that the overflow openings (28) are open at the beginning of the deployment operation and the valve device closes the overflow openings (28) in the course of the deployment operation.
Claims
1. A knee airbag module, comprising an airbag (14) which has plural vertical chambers superimposed in the inflated state, including a middle, upper and lower chamber (18, 20, 16), wherein the middle chamber (18) is directly coupled to the gas generator (23) and is inflated first, wherein the lower chamber (16) can be fluid-communicated with the middle chamber (18) via plural overflow openings (28) and a valve device is configured at the overflow openings (28) so that the overflow openings (28) are open at the beginning of the deployment operation and the valve device closes the overflow openings (28) in the course of the deployment operation.
2. The knee airbag module according to claim 1, wherein the valve device is configured to close the overflow openings (28) not earlier than between 20 ms and 40 ms after ignition of the gas generator (23).
3. The knee airbag module according to claim 1, wherein the valve device is a passive device.
4. The knee airbag module according to claim 1, wherein the valve device is coupled to an actuator (100) which operates the valve device in response to a signal and changes the opening state of the overflow openings (28).
5. The knee airbag module according to claim 1, wherein the valve device includes a tension means moving a closing means over the overflow openings (28) from reaching a predetermined deployment state to close said overflow openings (28).
6. The knee airbag module according to claim 1, wherein a closing means for the overflow openings (28) is formed by at least one flexible wall (32) which is disposed at a partition (24) between the middle chamber (18) and the lower chamber (16) and is released by the tension means prior to fixation.
7. The knee airbag module according to claim 5, wherein the flexible wall (32) is assigned to plural overflow openings (28) to close the latter.
8. The knee airbag module according to claim 5, wherein the valve device comprises a flexible wall (32) and, in an initial state, the flexible wall (32) and/or the partition (24) are folded between the middle chamber (18) and the lower chamber (16) in an overlapping region of the flexible wall (32) and the partition (24), in particular wherein the folding is fixed by a tear seam (38) and the folding is opened from reaching a predetermined inflation state to close the overflow openings (28).
9. A knee airbag module, comprising an airbag (14) that has plural vertical chambers superimposed in the inflated state, including a lower and an upper chamber (16, 20), wherein the lower chamber (16) is directly coupled to the gas generator (23) and is inflated first, wherein between the lower chamber (16) and the legs of the occupant an additional chamber (64) is provided which rests on and is filled via the lower chamber (16), wherein overflow openings (74) decelerating the filling of the additional chamber (64) are provided between the lower chamber and the additional chamber, wherein the thickness (D1) of the airbag in the region of the additional chamber (64) is larger than the maximum thickness (D2) of the upper chamber (20), wherein the thickness (D1) of the airbag in the region of the additional chamber (64) is especially at least 20% above the maximum thickness (D2) of the upper chamber (20).
10. The knee airbag module according to claim 9, wherein the overflow openings (74) are configured to be so small that the additional chamber (64) does not reach the internal pressure of the lower chamber (16).
11. The knee airbag module according to claim 10, wherein the maximum internal pressure of the additional chamber is at least 30% below the maximum internal pressure of the lower chamber (16) during the inflation operation.
12. The knee airbag module according to claim 9, wherein there is provided a valve device configured so that it closes the overflow openings (74) at the beginning of the deployment operation and opens them in the course of the deployment operation.
Description
[0022] Further features and advantages of the invention will be evident from the following description of the subsequent drawings which are referred to, and wherein:
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[0038]
[0039] An airbag 14 includes, for example, three elongate chambers superimposed in the vertical direction X, i.e., a lower chamber 16, a middle chamber 18 and an upper chamber 20, all of which are fluid-communicated with each other. A module housing 21 can receive a gas generator 23 which is directly fluid-coupled to the middle chamber 18 so that the middle chamber 18 is inflated first.
[0040] The lower chamber 16 prevents, in the inflated state, the legs and the tibias from moving upward and thus the legs in total from being straightened during the impact. Further, swaying of the lower extremities is at least reduced. In addition, slamming of the lower extremities into the instrument panel 12 and, resp., the upper limitation of the footwell can be prevented, or at least the intensity of the impact of the lower extremities onto the instrument panel 12 and, resp., the upper limitation of the footwell can be reduced.
[0041] Inside the airbag 14, the chambers 16-20 can be delimited from each other by partitions 22, 24, the partition 22 including numerous and relatively large overflow openings 26. The partition 24, too, includes numerous overflow openings 28 which are visible in
[0042] A valve device 30 is configured to close the overflow openings 28 from reaching a predetermined deployment state, i.e., during deployment.
[0043] The valve device 30 comprises a flexible wall 32 constituting a closing means. The flexible wall 32 is stitched to the partition 24 on the side of the middle chamber 18, as shown in
[0044] In addition, the flexible wall 32 is folded in parallel to the longitudinal direction of the alignment of the overflow openings 28. The corresponding folding is evident from
[0045] In the overlapping region of the partition 24 and the flexible wall 32, the partition 24 is equally folded, said folding 40 extends preferably in parallel to the folding 36 and is fixed in this region by a further tear seam 42 so that also the folding 40 is maintained over a period during deployment of the airbag 14.
[0046] The flexible wall 32 includes openings 44 being aligned, in the initial state, with the overflow openings 28 so that, in the initial state, the overflow openings 28 are exposed.
[0047] After deploying the airbag 14, gas flows into the middle chamber 18 and via the relatively large overflow openings 26 into the upper chamber 20 as well as via the overflow openings 28 into the lower chamber 16.
[0048] As soon as a particular deployment state of the airbag 14 is achieved, such a great force is exerted in the direction Y on the tear seams 38, 42 that the tear seams 38, 42 are destroyed and the folds 36, 40 are opened. By displacing the flexible wall 32 relative to the partition 24, the openings 44 are displaced toward the overflow openings 28 so that they are covered, as shown in
[0049] Thus, the chamber 16 is not filled with the pressure that would be present in the case of permanently open overflow openings 28. This means that the lower chamber 16 has a lower maximum pressure than the remaining chambers 18, 20, preferably by at least 40%.
[0050] In the embodiment according to
[0051] The embodiments according to
[0052] In order to ensure that the valve device is not closed before a predetermined force and a predetermined deployment state are reached, there is provided a tear seam 38 which maintains and positions a folding 36 in the partition 24 and, if present, in the flexible wall placed above the latter in the initial state.
[0053]
[0054] In the embodiment according to
[0055] The flexible wall 32 takes the shape of a tongue tightly connected to the partition 24 at one end via the seam 34. At the opposite end of the tongue, tethers or at least one tether 48 extending through interruptions in the seam 34 are/is provided.
[0056]
[0057] The tether 48 has an excess length so that initially it is not tension-loaded, when the airbag is not yet largely deployed, as can be seen from the state of the partially inflated chamber 16 shown in
[0058] A star-shaped closing means, equally in the form of a flexible wall 32, is shown in
[0059] At the beginning of the deployment operation, gas can flow, as shown in
[0060] Instead of the valve devices passively actuated in the preceding embodiments, the valve device can be moved by an electrically operable pyrotechnical actuator 100 symbolically shown in
[0061]
[0062] Inflation takes place from the lower end 62 of the lower chamber 16, wherein an additional chamber 64 resting on and being filled via the lower chamber 16 is provided between the lower chamber 16 and the legs of the occupant.
[0063] Between the lower chamber 16 and the additional chamber 64, a partition 72 having overflow openings 74 is provided. In the shown embodiment, the thickness D1 of the airbag 14 in the region of the additional chamber 64 is larger than the maximum thickness D2 of the upper chamber 18, wherein the thickness D1 and the thickness D2 are measured in parallel to each other, namely perpendicularly to a fictitious support plane E with which the rear side of the inflated airbag 14 would fictitiously rest. Thus, the shown airbag is L-shaped in a side view.
[0064] Between the lower chamber 16 and the upper chamber 20, optionally there may not only be provided the constriction 76 but also a partition 78 having openings 80 through which gas can flow.
[0065] The partition 72 and the relatively small overflow openings 74 prevent the internal pressure of the additional chamber 64 from reaching the internal pressure of the lower chamber 16 during the entire inflation operation and, in one embodiment, said internal pressure is at least 30% below the maximum internal pressure of the lower chamber 16.
[0066] In this case, too, a valve device may be provided similarly to that of the afore-described examples. In contrast to the preceding embodiments, in this case the overflow openings 74 are initially closed, however, by the valve device such as a flexible wall 82 and are opened in the course of the deployment operation. For this purpose, one or more tethers 84 may be provided, for example. The flexible wall 82 is fastened to the partition 72 for example by a permanent seam 86.
[0067] The additional chamber 64 can be filled later by said valve device, in one embodiment not earlier than 20 ms to 40 ms after triggering the gas generator 23, for example.
[0068] This additional chamber 64 helps reduce a swaying movement and avoid overstretching of the knee. Due to the slow deployment of the additional chamber 64, the additional chamber becomes less aggressive together with the lower chamber 16.
[0069] The variant according to claim 15 illustrates a mid-mounted module having a lower chamber 16, a middle chamber 18 through which inflation takes place and an upper chamber 20. In the upper chamber 20 an inner airbag 90 including one or more outlet openings 92 is provided. Said outlet openings 92 are operated via a valve device 94, for example via a tether 96 which opens the valve device from a particular deployment state and allows gas to flow from the inner airbag 90 into the upper chamber 20 so that the volume in the upper region is increased; for, in the case of restraint, the volume of the chamber 20 and of the inner airbag 90 are available. In this case, too, overflow into the chamber 20 occurs with a delay, because the peeling of the valve device 94 from the outlet openings 94 will not begin before a predetermined deployment state of the inner airbag 90.