AIR BAG DEVICE AND METHOD FOR MANUFACTURING SAME
20210316689 · 2021-10-14
Inventors
Cpc classification
B60R21/203
PERFORMING OPERATIONS; TRANSPORTING
B60R21/237
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R21/203
PERFORMING OPERATIONS; TRANSPORTING
Abstract
To provide an airbag apparatus capable of quickly and assuredly restraining a passenger. In particular, to make it possible to deploy an airbag in a large area to cover the front surface of the steering wheel quickly and smoothly at the initial stage of deploying the airbag. Moreover, to simplify the compression step of the airbag, thereby reducing manufacturing costs. An airbag apparatus according to the first aspect of the present invention is configured such that the airbag is housed as a compressed body which is compressed to collapse. The second aspect of the present invention is a method for manufacturing an airbag apparatus, wherein the method includes the step of forming a compressed body of an airbag by compressing the airbag so as to collapse the airbag without rolling or folding the airbag.
Claims
1. An airbag apparatus housed within a steering wheel, comprising: an inflator which generates inflation gas; and an airbag deployed by the inflation gas to protect a passenger; wherein the airbag is housed as a compressed body which is compressed to collapse.
2. The airbag apparatus according to claim 1, wherein the compressed body comprises: a vertical compressed part which collapses in the direction vertical to the surface that is horizontal to the rim of the steering wheel on the inflator side of the airbag; and a horizontal compressed part which collapses along the surface that is horizontal to the rim at least on the distal side in the deployment direction of the vertical compressed part of the airbag.
3. The airbag apparatus according to claim 2, wherein the end surface of the vertical compressed part opposite the inflator is configured so as to reach the outside of the rim at the initial stage of deploying the airbag.
4. The airbag apparatus according to claim 1, wherein the airbag is molded into a generally circular truncated cone shape by: a generally circular back panel coupled to the inflator; a generally circular front panel which faces the passenger upon deploying the airbag and has a larger diameter than the back panel; and a side panel which is coupled to the back panel and the front panel.
5. The airbag apparatus according to claim 1, wherein the airbag is formed by a generally circular back panel coupled to the inflator as well as by a generally circular front panel which faces the passenger upon deploying the airbag.
6. The airbag apparatus according to claim 4, wherein a portion of the front panel facing the passenger side remains exposed to the outside upon housing the airbag.
7. The airbag apparatus according to claim 6, wherein the exposed part of the front panel comprises at least the front panel central region.
8. The airbag apparatus according to claim 4, wherein the central axis in the vertical direction of the vertical compressed part is formed so as to pass through the central part of the front panel and the back panel.
9. The airbag apparatus according to claim 4, wherein a tether controlling the deployed shape of the airbag is provided inside the airbag; wherein: the tether comprises: a generally circular base part fixed to the central part of the front panel, and at least two string parts extending from the base part to the back panel; and the end part of the string part is coupled to the vicinity of the periphery of the inflator.
10. The airbag apparatus according to claim 4, further comprising a rectifying fabric (which changes the direction of flow of gas ejected from the inflator) within the airbag, wherein a portion of the rectifying fabric is provided in the vicinity of the central part of the front panel.
11. The airbag apparatus according to claim 10, wherein the rectifying fabric comprises: a top plate fabric which is disposed in the vicinity of or in contact with the front panel when the airbag is compressed and housed; and a side surface part which extends from the top plate fabric to the back panel.
12. The airbag apparatus according to claim 11, wherein an opening is provided on the side surface part of the rectifying fabric so as to allow flow in the horizontal direction while the inflation gas ejected from the inflator is repelled by the top plate fabric.
13. The airbag apparatus according to claim 11, wherein the length in the vertical direction of the side surface part of the rectifying fabric is set to a length such that the vertical compressed part protrudes slightly from the horizontal surface of the passenger side end part of the rim of the steering wheel at the initial stage of the deployment.
14. The airbag apparatus according to claim 11, wherein the top plate fabric of the rectifying fabric is disposed near the center of the front panel in the housing state of the airbag.
15. The airbag apparatus according to claim 4, wherein the central axis in the vertical direction of the vertical compressed part passes through the central part of the back panel, and the central part of the front panel is formed so as to be shifted from the central axis.
16. The airbag apparatus according to claim 15, wherein the central part of the front panel is shifted in a more downward direction of the vehicle than the central axis of the vertical compressed part.
17. The airbag apparatus according to claim 15, wherein a tether controlling the deployed shape of the airbag is provided inside the airbag; wherein: the tether comprises: a generally circular base part fixed to the central part of the front panel, and at least two string parts extending from the base part to the back panel; and the end part of the string part is coupled to the vicinity of the periphery of the inflator.
18. The airbag apparatus according to claim 15, further comprising a rectifying fabric (which changes the direction of flow of gas ejected from the inflator) within the airbag, wherein a portion of the rectifying fabric is disposed in the vicinity of the front panel which includes the central axis in the vertical direction of the vertical compressed part.
19. The airbag apparatus according to claim 18, wherein the rectifying fabric comprises: a top plate fabric which is disposed in the vicinity of or in contact with the front panel when the airbag is compressed and housed; and a side surface part which extends from the top plate fabric to the back panel.
20. The airbag apparatus according to claim 19, wherein an opening is provided on the side surface part of the rectifying fabric so as to allow flow in the horizontal direction while the inflation gas ejected from the inflator is repelled by the top plate fabric.
21. The airbag apparatus according to claim 19, wherein the length in the vertical direction of the side surface part of the rectifying fabric is set to a length such that the vertical compressed part protrudes slightly from the horizontal surface of the passenger side end part of the rim of the steering wheel at the initial stage of the deployment.
22. The airbag apparatus according to claim 19, wherein the top plate fabric of the rectifying fabric is disposed in the vicinity of the front panel which includes the central axis in the vertical direction of the vertical compressed part in the housing state of the airbag.
23. A method for manufacturing an airbag apparatus which comprises: an inflator which is housed within a steering wheel and generates inflation gas, and an airbag which protects a passenger when the airbag is deployed by the inflation gas; the method comprising the step of forming a compressed body of the airbag by compressing the airbag so as to collapse the airbag without rolling or folding the airbag.
24. The method for manufacturing an airbag apparatus according to claim 23, wherein the step of forming the compressed body comprises: collapsing a part of the airbag on the inflator side in the direction vertical to the surface that is horizontal to the rim of the steering wheel to form a vertical compressed part; and collapsing the airbag along the surface that is horizontal to the rim at least on the distal side in the deployment direction of the vertical compressed part of the airbag to form a horizontal compressed part.
25. The method for manufacturing an airbag apparatus according to claim 24, wherein, in the step of forming the vertical compressed part, the compression range of the vertical compressed part is set such that the end part of the vertical compressed part opposite the inflator reaches the outside of the rim upon deploying the airbag.
26. The method for manufacturing an airbag apparatus according to claim 24, wherein: the airbag is molded into a generally circular truncated cone shape by: a generally circular back panel coupled to the inflator, a generally circular front panel which faces the passenger upon deploying the airbag and has a larger diameter than the back panel, and a side panel which is coupled to the back panel and the front panel; the vertical compressed part is formed by a portion of the back panel and the side panel; and the horizontal compressed part is formed by the remaining part of the side panel along with the front panel.
27. The method for manufacturing an airbag apparatus according to claim 24, wherein: the airbag is formed by a generally circular back panel coupled to the inflator as well as by a generally circular front panel which faces the passenger upon deploying the airbag; the vertical compressed part is formed by the back panel; and the horizontal compressed part is formed by the remaining part of the back panel along with the front panel.
28. The method for manufacturing an airbag apparatus according to claim 26, wherein, in the step of forming the horizontal compressed part, at least a portion of the surface of the front panel remains exposed to the outside.
29. The method for manufacturing an airbag apparatus according to claim 26, wherein the vertical compressed part is formed so as to include the central part of the front panel and the back panel.
30. The method for manufacturing an airbag apparatus according to claim 26, wherein the central axis in the vertical direction of the vertical compressed part passes through the central part of the back panel, and the central part of the front panel is formed so as to be shifted from the central axis.
31. The method for manufacturing an airbag apparatus according to claim 30, wherein the central part of the front panel is shifted in a more downward direction of the vehicle than the central axis of the vertical compressed part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
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[0045]
[0046]
EMBODIMENT OF THE INVENTION
[0047] Embodiments for carrying out the present invention will hereinafter be described with reference to the accompanying drawings.
[0048]
[0049] As will hereinafter be described in detail, the airbag 14 is housed as a compressed body which is compressed to collapse. Herein, the “compressed body” means an airbag 14 mass which is formed by crumpling the airbag in order to form the airbag into a desired compressed shape without being regularly folded or rolled. That is, this means that a compression step having regularity such as folding and rolling may be included; however, the main part of the formed compressed body must minimally include a mass which is irregularly collapsed and molded.
[0050] The compressed body (14) according to the airbag includes: a vertical compressed part 14V which collapses in the direction vertical to the surface that is horizontal to a rim 16 of the steering wheel on the inflator 12 side of the airbag 14; and a horizontal compressed part 14H which collapses parallel to the surface that is horizontal to the rim 16 at least on the distal side in the deployment direction of the vertical compressed part 14V of the airbag 14.
[0051] Note that in the following description of the compression step and the deployment operation of the airbag, “horizontal” basically refers to the direction H parallel to the surface of the rim (rim surface), while “vertical” basically refers to the direction V vertical to the surface.
Example 1
[0052]
[0053] As illustrated in
[0054] As illustrated in
[0055] As illustrated in
[0056] The tether 28 includes: a generally circular base part 28a concentrically disposed and fixed to the central part of the front panel 144; and at least two string parts 28b, 28c extending from the base part 28a towards the back panel 142 side. The end parts of the string parts 28b, 28c are coupled to the vicinity of the periphery of the inflator 12. One end of the reinforcing fabrics 30a, 30b is coupled to the string parts 28b, 28c of the tether 28 by sewing, while the other end of the reinforcing fabrics 30a, 30b is coupled to the inner surface of the front panel 144 by sewing.
[0057] The presence of the tether 28 further stabilizes the deployment behavior of the airbag 14. That is, by adjusting the inflation range (thickness) in the vertical direction, the shape (thickness, surface area, etc.) of the airbag 14 can be adjusted upon the full deployment thereof.
[0058]
[0059] In the present example, upon compressing the airbag 14 from the state illustrated in
[0060] Next, as illustrated in
[0061] Moreover, in the step of forming the vertical compressed part 14V, as illustrated in
[0062] Next, as illustrated in
[0063] Here, in the step of forming the horizontal compressed part 14H, at least a portion of the surface of the front panel 144 remains exposed to the outside. For example, the central part 28a of the tether 28 and the periphery thereof are preferably seen on the surface.
[0064] In the step of forming the horizontal compressed part 14H, for example, a push plate may be used to separately push and collapse in the X direction and the Y direction, alternately push and collapse, or simultaneously push and collapse.
[0065] As described above, in the present example, the airbag 14 employed is housed in the form of a compressed body which is simply compressed, with no need for any operation including repeatedly folding the airbag 14 along a predetermined fold line and rolling the airbag so that it is not shifted to the periphery of the core, making it possible to significantly simplify the manufacturing process.
[0066]
[0067] As the inflator 12 is activated and the inflation gas causes the airbag 14 to start being deployed, as illustrated in
[0068] In this manner, the inflation gas released from the inflator 12 first causes the tip part of the vertical compressed part 14V to be deployed towards the passenger side, such that the front surface of the airbag 14 protrudes from the rim surface at the very initial stage.
[0069] Further, in the present example, by aligning the center of the back panel 142 (on the small diameter side of the truncated cone) with the center of the front panel 144 (on the large diameter side) in the vertical direction, the vertical compressed part 14V is easily linearly deployed in the vertical direction, making it possible to improve the deployment speed and stabilize the deployment behavior. For example, this also allows situations to be avoided in which the vertical compressed body 14V meanders before being deployed.
[0070] Next, as illustrated in
Example 2
[0071]
[0072] In Example 1, the airbag 114 is configured by the back panel 142, the front panel 144, and the side panel 146. In contrast, in Example 2, the airbag 214 is configured by the back panel 242 and the front panel 244, with no side panels employed. In addition, as illustrated in
[0073] In the present example, upon compressing the airbag 214 from the state illustrated in
[0074] Next, as illustrated in
[0075] Subsequently, as illustrated in
Example 3
[0076]
[0077] In Example 3, a rectifying fabric 300 which changes the direction of flow of gas ejected from the inflator 12 is provided within the airbag 14. For example, the rectifying fabric 300 includes: a top plate fabric 302 which is formed in a parachute shape (umbrella shape, arbor shape) so as to reflect gas (which is ejected from the inflator 12) on the inner surface of the ceiling part; and a side surface part 306 (which extends from the top plate fabric 302 towards the back panel 142 side). The side surface part 306 is provided with an opening 304 that allows the inflation gas ejected from the inflator 12 to be reflected on the inner surface of the top plate fabric 302, flow in the horizontal direction, and be guided in the side panel 146 direction (lateral direction).
[0078] As illustrated in
[0079] By setting the maximum height H1 of the rectifying fabric 300 in this manner, the rectifying fabric 300 extends in the vertical direction along with the vertical compressed part 14V at the initial stage of deploying the airbag 14, with the airbag 14 protruding slightly from the rim surface of the steering wheel. During the initial deployment, the presence of the rectifying fabric 300 causes most of the inflation gas ejected from the inflator 12 to be oriented vertically upward such that the top plate fabric 302 of the rectifying fabric 300 acts to push the front plate fabric 302 of the rectifying fabric 300 vertically upward in the vicinity of the center of the inner surface of the front panel 144, thereby promoting the upward vertical deployment of the airbag at the initial deployment of the airbag 14. In addition, in order to help expand and deploy the airbag 14 along the rim surface in the horizontal direction, gas can be subsequently primarily released in the horizontal direction from the opening 304 provided on the side part 306 of the rectifying fabric 300 such that the airbag 14 can cover the rim surface early. This at least temporarily covers the rim 16 with the airbag 14 prior to the full deployment of the airbag 14. Consequently, even if the passenger potentially approaches the steering wheel direction prior to the full deployment of the airbag 14 during a collision (emergency) of the vehicle, the airbag 14 can avoid situations in which the passenger contacts (collides with) the steering wheel. Subsequently, the airbag 14 can be fully deployed to assuredly restrain the passenger while further reducing damage to the passenger.
Example 4
[0080]
[0081] The airbag 414 used in Example 4 includes a back panel 442, a front panel 444, and a side panel 446. In the present example, the central axis C1 in the vertical direction of a vertical compressed part 414H passes through the center of the back panel 442 and further through the center of the top plate fabric 302 of the rectifying fabric 300. However, the central axis C1 is formed such that it does not pass through the center C0 of the front panel 444, that is, the center C0 is formed so as to be shifted from the central axis C1. At this time, the central part C0 is formed so as to be shifted in the downward direction of the vehicle (the abdomen of the passenger, in the knee direction), that is, in the 6 o'clock direction when the steering wheel is viewed as a clock face.
[0082]
[0083] As the inflator 12 is activated and the inflation gas causes the airbag 14 to start being deployed, as illustrated in
[0084] Next, as illustrated in
[0085] In this example, the central part C0 of the front panel 442 is shifted in the abdominal direction (downward direction) of the passenger relative to the central axis C1 which vertically extends from the center of the inflator 12 through the back panel 446 of the airbag. Therefore, as illustrated in
[0086] While the present invention has been described with reference to the abovementioned illustrative embodiments, many equivalent changes and variations will be obvious to those skilled in the art from the present disclosure. Therefore, the abovementioned illustrative embodiments of the present invention are presumably illustrative and not limiting. Without departing from the spirit and scope of the present invention, the described embodiments may take on various modifications.