Airbag apparatus
11325558 · 2022-05-10
Assignee
Inventors
Cpc classification
B60R2021/2615
PERFORMING OPERATIONS; TRANSPORTING
B60R2021/23308
PERFORMING OPERATIONS; TRANSPORTING
B60R21/262
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60R21/233
PERFORMING OPERATIONS; TRANSPORTING
B60R21/262
PERFORMING OPERATIONS; TRANSPORTING
B60R21/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An airbag apparatus may include: an inflator configured to jet gas in case of a collision of a vehicle; a first cushion inflated by the gas jetted by the inflator, and configured to support the head of a passenger in case of a head-on collision of the vehicle; a second cushion connected to the first cushion so as to be supported by the first cushion, and configured to suppress the head of the passenger from moving in a diagonal direction in case of an oblique collision of the vehicle; a connection tube configured to connect the first and second cushions such that the gas of the inflator moves from the first cushion to the second cushion; and a control tether connected to the first cushion and the connection tube.
Claims
1. An airbag apparatus comprising: an inflator configured to jet gas in case of a collision of a vehicle; a first cushion inflated by the gas jetted by the inflator, and configured to support a head of a passenger in case of a head-on collision of the vehicle; a second cushion connected to and supported by the first cushion and configured to suppress the head of the passenger from moving in a diagonal direction in case of an oblique collision of the vehicle; a connection tube mounted on an inner surface of the second cushion and configured to connect the first and second cushions and direct the gas jetted by the inflator from the first cushion to the second cushion; and a control tether connected to the first cushion and the connection tube.
2. The airbag apparatus of claim 1, wherein the connection tube is configured as a pair of connection tubes which are disposed on the inner surface of the second cushion so as to face each other.
3. The airbag apparatus of claim 2, wherein the control tether connects the pair of connection tubes.
4. The airbag apparatus of claim 1, wherein the connection tube is formed in a hollow cylinder shape.
5. The airbag apparatus of claim 1, wherein the second cushion is eccentrically disposed on an inboard side of the first cushion so as to avoid the head of the passenger in case of a head-on collision of the vehicle.
6. The airbag apparatus of claim 1, further comprising a connection tether part configured to connect the first and second cushions so as to restrict the second cushion from being pushed to the outside of the first cushion by the weight of the head of the passenger.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS
(8) Hereinafter, an airbag apparatus will be described below with reference to the accompanying drawings through various exemplary embodiments. It should be noted that the drawings are not to precise scale and may be exaggerated in thickness of lines or sizes of components for descriptive convenience and clarity only.
(9) Furthermore, the terms as used herein are defined by taking functions of the invention into account and can be changed according to the custom or intention of users or operators. Therefore, definition of the terms should be made according to the overall disclosures set forth herein.
(10)
(11) Referring to
(12) The inflator 100 jets gas in case of a collision of a vehicle. The inflator 100 may be mounted in the first cushion 200.
(13) The first cushion 200 is connected to the inflator 100, and supports the head H of a passenger in case of a head-on collision of the vehicle. The first cushion 200 is inflated by the gas jetted by the inflator 100. The first cushion 200 may be formed in a rectangular box shape when completely deployed. The first cushion 200 is supported by an instrument panel (not illustrated) at the inside front of the vehicle.
(14) The second cushion 300 is connected to the first cushion 200 so as to be supported by the first cushion 200, and suppresses the head H of the passenger from moving in a diagonal direction in case of an oblique collision of the vehicle. That is, in case of the oblique collision of the vehicle, the second cushion 300 supports one side of the head H of the passenger while blocking the one side of the head H of the passenger. Therefore, the second cushion 300 may prevent the head H of the passenger from being turned while pushed to one side (left side in
(15) Since the head H of the passenger is prevented from being turned in case of an oblique collision of the vehicle, the head H or neck of the passenger may be prevented from being injured. Furthermore, the size of the first cushion 200 may not be increased in order to protect the head H of the passenger, or the increase in size of the first cushion 200 may be minimized.
(16) The second cushion 300 is eccentrically disposed on the inboard side of the first cushion 200 in order to avoid the head H of a passenger in case of a head-on collision of the vehicle. The inboard side indicates the central area of the vehicle in the widthwise direction thereof. The width (the widthwise length of the vehicle) of the second cushion 300 is set to a value equal to or less than a half of the width of the first cushion 200. Although the second cushion 300 is deployed while inflated to the rear side in case of a head-on collision of the vehicle, the second cushion 300 may prevent the head H of the passenger from being pushed to the rear side, thereby preventing the neck of the passenger from being injured or bent to the rear side.
(17) The airbag apparatus in accordance with the embodiment of the present disclosure further includes a connection tether part 600 which connects the first and second cushions 200 and 300 so as to restrict the second cushion 300 from spreading to the inboard side when the second cushion 300 is deployed.
(18) At this time, one end (right end in
(19) In case of an oblique collision of the vehicle, the connection tether part 600 and the second cushion 300 are deformed in a stepwise manner while absorbing the weight of the head H of the passenger. That is, the head H of the passenger is primarily constrained by the connection tether part 600, and then secondarily constrained by the second cushion 300. Therefore, since the time required for constraining the head H of the passenger is shortened in case of an oblique collision of the vehicle, a turn of the head H of the passenger may be suppressed to prevent an injury to the head H or neck of the passenger.
(20) Furthermore, when the head H of the passenger is obliquely moved in a diagonal direction of the vehicle in case of an oblique collision of the vehicle, the connection tether part 600 may pull the second cushion 300 toward the first cushion 200 using a support force (reaction force) of the first cushion 200, thereby preventing the head H of the passenger from getting away or separating from the second cushion 300. Therefore, the sizes of the first and second cushions 200 and 300 may not be increased in order to protect the head H of the passenger.
(21) When the head H of the passenger applies a load to the connection tether part 600 and the first cushion 200 in case of a head-on collision of the vehicle, the connection tether part 600 and the first cushion 200 absorb the weight of the head H of the passenger in a stepwise manner. At this time, when the first cushion 200 is contracted forward by the weight of the head H of the passenger, the reaction force of the second cushion 300 pulls the connection tether part 600. Thus, the weight of the head H of the passenger may be buffered by the tensile force of the connection tether part 600 and the reaction force of the second cushion 300.
(22) The connection tether part 600 is disposed on the rear sides of the first and second cushions 200 and 300, such that the head H of the passenger comes in contact with the connection tether part 600. Therefore, when the head H of the passenger collides with the first or second cushion 200 or 300, the connection tether part 600 may primarily buffer the weight of the head H of the passenger.
(23) The connection tether part 600 may be a cotton tether 610 (see
(24) The connection tether part 600 may include a plurality of line tethers to connect the first and second cushions 200 and 300. Furthermore, the connection tether part 600 may be one line tether to connect the first and second cushions 200 and 300. Both sides of the line tether 610 are connected to the first and second cushions 200 and 300 by the connection sewing parts 650, respectively. The line tether indicates a string-shaped or band-shaped tether which is slim and long. The number of line tethers may be properly designed according to the heights of the first and second cushions 200 and 300 or the size of the vehicle.
(25) The connection tube 400 connects the first and second cushions 200 and 300 such that the gas of the inflator 100 moves from the first cushion 200 to the second cushion 300. Through the connection tube 400, the gas of the first cushion 200 is moved to the second cushion 300. A vent part (not illustrated) through which gas is discharged from the second cushion 300 may be disposed at an end of the connection tube 400.
(26) The connection tube 400 is mounted on an inner surface of the second cushion 300. The connection tube 400 is configured as a pair of connection tubes 400 which are disposed on the inner surface of the second cushion 300 so as to face each other. As the pair of connection tubes 400 are disposed on the inner surface of the second cushion 300, the gas may be rapidly moved from the first cushion 200 to the second cushion 300.
(27) The connection tube 400 is formed in a hollow cylinder shape. Alternatively, the connection tube 400 may be formed in a hollow polygonal cylinder shape. As the connection tube 400 is formed in a hollow shape, the gas may be easily moved from the first cushion 200 to the second cushion 300.
(28) One side (bottom side in
(29) Hereafter, the operation of the airbag apparatus in accordance with the embodiment of the present disclosure will be described. In the following descriptions, an operation of the airbag apparatus in case of an oblique collision of the vehicle and an operation of the airbag apparatus in case of a head-on collision will be sequentially described.
(30) First, the operation of the airbag apparatus in case of an oblique collision of the vehicle will be described.
(31) Referring to
(32) The second cushion 300 is completely deployed before the first cushion 200 (see
(33) Due to the oblique collision of the vehicle, the head H of the passenger is moved forward in a diagonal direction (see
(34) Furthermore, the head H of the passenger presses the connection tube 400 adjacent to the second cushion 300 while pressing the second cushion 300, thereby preventing the gas from leaking through the vent part of the second cushion 300. Thus, the pressure of the second cushion 300 is increased to restrict the behavior of the head H of the passenger. Since the head H is prevented from being rotated in case of an oblique collision of the vehicle, the head H or neck may be prevented from being injured.
(35) When the head H of the passenger is obliquely moved to the inboard side of the vehicle, the connection tether part 600 pulls the second cushion 300 toward the first cushion 200 (outboard side) using a support force F2 of the second cushion 300. Thus, the head H may be prevented from getting away from the second cushion 300.
(36) In case of an oblique collision of the vehicle, the weight of the head H may be first absorbed by a tensile force F2 of the connection tether part 600, and then absorbed by a buffering force F1 of the second cushion 300. At this time, the connection tether part 600 primarily absorbs the weight of the head H of the passenger through a pulling force of the first cushion 200, and the second cushion 300 secondarily absorbs the impact of the head H of the passenger while deformed by the weight of the head H of the passenger. The weight of the head H, transferred to the second cushion 300, is transferred to the first cushion 200 and thus tertiarily absorbed.
(37) Next, the operation of the airbag apparatus in case of a head-on collision of the vehicle will be described.
(38) Referring to
(39) As the first cushion 200 is deformed by the weight of the head H of the passenger, the connection tether part 600 is pulled by the second cushion 300. Therefore, the weight of the head H of the passenger is primarily absorbed by a tensile force F4 of the connection tether part 600, and secondarily absorbed by a buffering force F3 of the first cushion 200.
(40) The airbag apparatus in accordance with the embodiment of the present disclosure can prevent the head H of a passenger from being turned in case of an oblique collision of the vehicle, thereby preventing an injury to the head H or neck.
(41) In accordance with the embodiment of the present disclosure, the second cushion 300 may be eccentrically disposed on the inboard side of the first cushion 200 so as to avoid the head H of the passenger in case of a head-on collision of the vehicle, which makes it possible to prevent the neck of the passenger from being injured or bent to the rear side by the second cushion 300.
(42) Furthermore, since the first and second cushions 200 and 300 can be deployed by one inflator 100, the number of parts and the manufacturing cost can be reduced.
(43) Furthermore, the use of one inflator 100 can reduce the size of the first cushion 200 in which the inflator 100 is housed.
(44) Although exemplary embodiments of the disclosure have been disclosed for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the disclosure as defined in the accompanying claims. Thus, the true technical scope of the disclosure should be defined by the following claims.