GAS GENERATOR COMPRISING REAGENT GASES
20230339423 · 2023-10-26
Inventors
Cpc classification
B60R21/274
PERFORMING OPERATIONS; TRANSPORTING
B60R2021/2612
PERFORMING OPERATIONS; TRANSPORTING
B60R2021/2685
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Gas generator comprising: a first chamber having first pressurized gases and a first outlet port, a second chamber with second pressurized gases and a second outlet port, a diffusion zone, arranged to receive and diffuse towards an airbag the first pressurized gases and the second pressurized gases, wherein the first pressurized gases and the second pressurized gases are arranged to react together once they are mixed, characterized in that the gas generator comprises at least one deflector arranged to impose on the first pressurized gases a first discharge trajectory in the separate diffusion zone of a second discharge trajectory of the second pressurized gases.
Claims
1. A gas generator comprising: a first chamber having first pressurized gases and a first outlet port closed by first breakable sealing means, a second chamber with second pressurized gases and a second outlet port closed by second breakable sealing means, a diffusion zone, arranged to receive and diffuse towards an airbag the first pressurized gases and the second pressurized gases when the first breakable sealing means and the second breakable sealing means are broken, wherein the first pressurized gases and the second pressurized gases are arranged to react together once they are mixed, characterized in that the gas generator comprises at least one deflector arranged to impose on the first pressurized gases a first discharge trajectory in the separate diffusion zone of a second discharge trajectory of the second pressurized gases.
2. The gas generator according to claim 1, wherein said at least one deflector is arranged to limit a mixture between the first pressurized gases and the second pressurized gases in the diffusion zone.
3. The gas generator according to claim 1, wherein said at least one deflector is a deformable tab formed in a wall of the first chamber and/or of the second chamber.
4. The gas generator according to claim 3, wherein said at least one deflector is arranged to occupy: before the operation of the gas generator: a support position wherein it cooperates with the first or second breakable sealing means to close the first or the second outlet port, respectively, during the operation of the gas generator: a screen position, wherein, after breaking the first or second frangible sealing means, the deflector, moved from the support position, forms a screen for the first pressurized gases and/or the second pressurized gases.
5. The gas generator according to claim 1, comprising a first deflector and a second deflector.
6. The gas generator according to claim 5, wherein the first deflector and the second deflector are formed by inclined tongues.
7. The gas generator according to claim 5, wherein the first deflector and the second deflector are arranged to impose opposite, and preferably radially opposite, discharge directions to the first pressurized gases and to the second pressurized gases.
8. The gas generator according to claim 5, wherein the first deflector and the second deflector are formed respectively by a portion of the first chamber and by a portion of the second chamber, and the first chamber the second chamber have identical structures.
9. The gas generator according to claim 5, wherein: the first deflector comprises a first anchoring or hinge portion on the first chamber, and the second deflector comprises a second anchoring or hinge portion on the second chamber, wherein the first anchoring or hinge portion and the second anchoring or hinge portion are angularly offset with respect to an axis of the gas generator.
10. The gas generator according to claim 9, wherein the angular offset is at least 45°, preferably at least 90° and very preferentially at least 150°.
11. The gas generator according to claim 1, wherein the first breakable sealing means and/or the second breakable sealing means comprise a cover, preferably a supported cover, preferably a cover supported by said at least one deflector.
12. The gas generator according to claim 1, comprising at least one pyrotechnic igniter, arranged between the first chamber and the second chamber.
13. The gas generator according to claim 1, comprising a diffuser delimiting the diffusion zone, arranged between the first chamber and the second chamber.
14. A safety module, comprising: a gas generator according to claim 1, a housing, an airbag, wherein said at least one deflector is arranged to: direct the first pressurized gases, preferably hydrogen, towards the airbag, and/or, direct the second pressurized gases, preferably oxygen, towards the housing.
15. A motor vehicle comprising a gas generator according to claim 1.
Description
DESCRIPTION OF THE FIGURES
[0054] Other features and advantages of the present invention will become more apparent upon reading the following detailed description of an embodiment of the invention, which is provided by way of example but in no manner limited thereto, and illustrated by the attached drawings, in which:
[0055] [
[0056] [
[0057] [
[0058] [
[0059] [
DETAILED DESCRIPTION OF EMBODIMENT(S)
[0060]
[0061] The diffuser 30 comprises diffusion holes 31, and supports two ignition sub-assemblies 41 and 42 forming activation means 40 of the gas generator.
[0062] The gas generator of
[0063]
[0067] In more detail, the first chamber 10 is formed by a first chamber bottom 12 and a first cap 13 having a filling orifice closed by a first pin 18, the first chamber 10 comprises a first outlet port 16 (visible on
[0068] The second chamber 20 is formed in turn by a second chamber bottom 22 and a second cap 23 having a filling orifice closed by a second pin 28, the second chamber 20 comprises a second outlet port 26 (visible in
[0069] As regards the diffuser 30, this latter supports the ignition sub-assemblies 41 and 42 and encloses a support and opening mechanism, comprising especially a slider 51 which supports (in the position represented in
[0070] As seen hereinbefore, the first pressurized gases 11 and the second pressurized gases 21 can react together and during the operating sequence, it is possible to note the points below: [0071] during storage, the first pressurized gases 11 and the second pressurized gases 21 are each in their respective chamber, [0072] during activation, the first tongue 15 and the second tongue 25 tilt and force the rupture of the first cover 14 and of the second cover 24, [0073] from that moment on, the first pressurized gases 11 and the second pressurized gases 21 can be discharged towards the diffusion zone, [0074] then, the first pressurized gases 11 and the second pressurized gases 21 escape from the diffuser 30 and force the airbag to start to unfold, [0075] the airbag is deployed and is gradually pressurized, [0076] the first pressurized gases 11 and the second pressurized gases 21 can react together throughout the operation, as soon as the mixing conditions allowing a combustion reaction of the first and second pressurized gases are met, that is in the diffusion zone (in the diffuser 30) and/or in the airbag.
[0077] It is also possible to note that just after the rupture of the first cover 14 and of the second cover 24, the airbag is forced to start unfolding and, in turn, pushes the protective housing that must also open: the forces exerted on the airbag and on the housing are sizable and must be managed to prevent excessively violent ruptures or deployment. It must be borne in mind that the first pressurized gases 11 and the second pressurized gases 21 may react together, which increases the forces exerted on the parts in question.
[0078] For this purpose, it is proposed to direct the first pressurized gases 11 and the second pressurized gases 21 in a specific manner to limit their combustion reaction in the first moments of the operation. In more detail, it is intended that the first tongue 15 and the second tongue 25 are used to form deflectors which impose trajectories on the first pressurized gases 11 and the second pressurized gases 21 in the diffusion zone which are different. Thus, the mixing of the first pressurized gases 11 and the second pressurized gases 21 is reduced, which reduces the possibilities of combustion reaction.
[0079] The proposed construction is to angularly orient the first tongue 15 and the second tongue 25 in accordance with different radial directions, as shown in
[0080] Consequently, in the diffusion zone, the first pressurized gases 11 and the second pressurized gases 21 follow different paths as soon as they exit the first chamber 10 and the second chamber 20, which limits their mixing, in particular inside the diffuser 30.
[0081] As shown in
[0082] The applicant noticed that it was advantageous to choose to direct the hydrogen directly toward the airbag 60, and oxygen directly toward the wall of the housing 70. In fact, in such a case, the combustion reaction is incomplete and less exothermic, which further limits the rate of rise in pressure. In more detail, oxygen is the limiting factor, and the hydrogen directed to the airbag first cannot fully react. The products of the combustion reaction are water (H.sub.2O) and hydrogen peroxide (H.sub.2O.sub.2). Heat production is lower and the gases are heated less and therefore less pressurized. The mechanical aggressiveness of the gases leaving the diffuser 30 is therefore reduced.
[0083]
[0084] It may be noted that the curve of the gas generator of
INDUSTRIAL APPLICATION
[0085] A gas generator according to the present invention, and its manufacture, are capable of industrial application.
[0086] It will be understood that various modifications and/or improvements which are obvious to a person skilled in the art may be made to the different embodiments of the invention described in the present description without departing from the scope of the invention. In particular, it may be noted that the deflectors herein are tongues directly formed in the wall of the chamber, but other implementations may be provided, with additional or distinct components. It is also possible to provide complex shapes, such as U-shaped channels for guiding the gases which exit one of the chambers. Other opening devices can be considered and also a single ignition sub-assembly.