Gas generator and airbag device

The gas generator's dual-discharge-hole design addresses performance inconsistencies by adjusting opening pressures and obstructions, ensuring consistent discharge and rapid inflation, while neutralizing thrust in standalone and assembled modes.

JP7745448B2Active Publication Date: 2025-09-29DAICEL CORP
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Patent Information

Application Number
JP2021196784
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-03
Publication Date
2025-09-29
Estimated Expiration
2041-12-03

AI Technical Summary

Technical Problem

Conventional gas generators exhibit a difference in output performance when activated independently and when incorporated into an airbag device due to varying total opening areas of gas discharge holes, leading to inconsistent gas discharge characteristics.

Method used

The gas generator design includes first and second gas discharge holes with different opening pressures, where some first holes are obstructed in the assembled state by the airbag device, ensuring equivalent total opening areas in both states, and utilizing a configuration that neutralizes thrust in standalone mode and deflects gas discharge in the assembled mode.

Benefits of technology

This configuration reduces the difference in output performance between standalone and assembled states, maintaining consistent gas discharge characteristics and preventing unintended movement while ensuring rapid airbag inflation.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a gas generator having a reduced difference in output performance between a separate state and an assembled state.SOLUTION: In a gas generator, a plurality of gas discharge holes includes a plurality of first gas discharge holes and one or a plurality of second gas discharge holes having an opening pressure higher than that of the first gas discharge holes. The opening pressure of the first gas discharge holes and the opening pressure of the second gas discharge holes are set such that: when an igniter is actuated in a separate state which is a state before the gas generator is built into an airbag device, only the plurality of first gas discharge holes of the plurality of gas discharge holes is opened by the pressure of gas; and when the igniter is actuated in an assembled state, the first gas discharge holes except some of the first gas discharge holes and at least some of the second gas discharge holes of the plurality of gas discharge holes are opened by the pressure of the gas.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a gas generator and an airbag device equipped with the gas generator. [Background technology]

[0002] Conventionally, gas generators that are incorporated into airbag devices and supply gas to the airbag for inflating the airbag have been widely used. A known gas generator has an igniter and a gas generating source housed in a housing, and generates gas from the gas generating source upon activation of the igniter, and releases the gas to the outside through multiple gas discharge holes formed in the housing.

[0003] The gas discharge holes are closed by closing members before the igniter is activated. When the igniter is activated, the closing members are torn by the pressure of the gas generated from the gas generating source, thereby opening the gas discharge holes. This allows gas to be discharged from inside the housing. Here, the gas generator may be required to have a neutral thrust acting on it when all of the gas discharge holes are open and gas is discharged. This is to prevent the gas generator from flying away due to the thrust acting on the gas generator caused by the discharge of gas in the event of an unexpected ignition (unexpected ignition) due to a fire, a malfunction of the igniter, or the like before being incorporated into an airbag device, i.e., in a standalone state. On the other hand, when the gas generator is incorporated into an airbag device, it may be required to deflect the discharge direction of gas discharged from the gas generator in a specific direction in order to rapidly inflate the airbag.

[0004] In this regard, Patent Document 1 discloses technology relating to an airbag device using a gas generator. The gas generator of Patent Document 1 has multiple gas discharge holes evenly arranged on the peripheral wall of the housing, and when the gas generator is activated alone, all of the gas discharge holes are opened, thereby neutralizing thrust. Furthermore, the airbag device of Patent Document 1 covers some of the gas discharge holes of the gas generator incorporated in the airbag device with a deflector element, thereby preventing the opening of those gas discharge holes. As a result, when the gas generator incorporated in the airbag device is activated, gas is discharged from the remaining gas discharge holes, resulting in a one-sided gas discharge state and deflecting the gas discharge direction to a predetermined direction. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] US Patent Application Publication No. 2008 / 0131631 Summary of the Invention [Problem to be solved by the invention]

[0006] Generally, the output performance of a gas generator corresponds to the total opening area of ​​the gas discharge holes that are opened when the igniter is activated. In the above-mentioned conventional technology, all of the gas discharge holes are open when the gas generator is activated independently, and only some of the gas discharge holes are open when the gas generator is activated in a state where it is incorporated into an airbag device, so the total opening area of ​​the gas discharge holes differs between the state where the gas generator is activated independently and the state where it is incorporated into an airbag device. Therefore, in the above-mentioned gas generator, a difference occurs in output performance between the state where the gas generator is activated independently and the state where it is incorporated into an airbag device. Generally, gas generators are designed assuming the output performance when all of the gas discharge holes are open, that is, when the gas generator is activated independently. Therefore, it is required to reduce the difference in output performance between the state where the gas generator is activated independently and the state where it is incorporated into an airbag device.

[0007] The technology of the present disclosure has been made in consideration of the above-mentioned problems, and its purpose is to provide a technology that can reduce the difference in output performance of a gas generator used in an airbag device between when the gas generator is in a standalone state and when it is incorporated into an airbag device. [Means for solving the problem]

[0008] In order to solve the above problems, the technology of the present disclosure employs the following configuration: That is, the technology of the present disclosure provides a gas generator that is incorporated into an airbag device and supplies gas to the airbag for inflating the airbag, the gas generator comprising: an igniter, a gas generation source that generates the gas by activation of the igniter, a housing that accommodates the igniter and the gas generation source therein, and a plurality of gas discharge holes that are formed in the housing and are blocked by a blocking member before activation of the igniter, and that open when the blocking member is ruptured by the pressure of the gas generated by activation of the igniter, thereby communicating the inside and outside of the housing, the plurality of gas discharge holes including a plurality of first gas discharge holes and one or more second gas discharge holes having an opening pressure higher than that of the first gas discharge holes, and the plurality of first gas discharge holes are configured such that, in an assembled state in which the gas generator is incorporated into the airbag device, opening of some of the first gas discharge holes by the gas pressure is prevented. the one or more second gas discharge holes are arranged in the housing such that, in the assembled state, opening of at least some of the second gas discharge holes due to the gas pressure is not obstructed by the members of the airbag device; and opening pressures of the first gas discharge holes and the second gas discharge holes are set so that, when the igniter is activated in a standalone state, which is a state before the gas generator is incorporated into the airbag device, only the plurality of first gas discharge holes open due to the gas pressure, and when the igniter is activated in the assembled state, the first gas discharge holes excluding some of the first gas discharge holes and at least some of the second gas discharge holes open due to the gas pressure.

[0009] Furthermore, the above-described gas generator may be configured so that a total opening area of ​​the first gas discharge holes that open when the igniter is activated in the standalone state is equivalent to a total opening area of ​​the first gas discharge holes and the second gas discharge holes that open when the igniter is activated in the assembled state.

[0010] Furthermore, in the above-described gas generator, the number of the part of the first gas discharge holes whose opening is obstructed by the member of the airbag device in the assembled state may be one or more and 2 / 3 or less of the total number of the plurality of first gas discharge holes.

[0011] Furthermore, in the above-described gas generator, the housing may include a cylindrical peripheral wall portion, the plurality of gas discharge holes may be formed in the peripheral wall portion, and in the assembled state, a partial area of ​​the peripheral wall portion in the circumferential direction thereof may be covered by the member of the airbag device, the partial first gas discharge holes may be arranged in areas that are covered by the member of the airbag device in the assembled state, and at least a partial second gas discharge holes may be arranged in areas that are exposed in the assembled state.

[0012] Moreover, in the above-described gas generator, the plurality of gas discharge holes may include a plurality of the second gas discharge holes, the plurality of first gas discharge holes may be arranged at equal intervals along the circumferential direction of the peripheral wall portion, and the plurality of second gas discharge holes may be arranged at equal intervals along the circumferential direction of the peripheral wall portion.

[0013] In the gas generator, when the opening area per one of the first gas discharge holes is X and the number of the first gas discharge holes is Y, the opening area per one of the second gas discharge holes is The area may be 1 / 2X, the number of the second gas discharge holes may be 2Y, and the area of ​​the peripheral wall portion covered by the member of the airbag device may be 1 / 2 of the entire circumference of the peripheral wall portion.

[0014] Furthermore, in the above gas generator, when the opening area per one of the first gas discharge holes is X and the number of the first gas discharge holes is Y, the opening area per one of the second gas discharge holes may be 1 / 2X, the number of the second gas discharge holes may be 4Y, and the area of ​​the peripheral wall portion covered by the member of the airbag device may be 2 / 3 of the entire circumference of the peripheral wall portion.

[0015] In the above gas generator, the opening area of ​​each of the first gas discharge holes and the opening area of ​​each of the second gas discharge holes may be equal, the number of the first gas discharge holes and the number of the second gas discharge holes may be equal, and the area of ​​the peripheral wall portion covered by the member of the airbag device may be 1 / 2 of the entire circumference of the peripheral wall portion.

[0016] In the gas generator described above, the opening area of ​​each of the second gas discharge holes may be smaller than the opening area of ​​each of the first gas discharge holes.

[0017] Moreover, in the above-described gas generator, the closing member may include a first closing member that closes the first gas discharge hole, and a second closing member that closes the second gas discharge hole and is separate from the first closing member, and the tensile strength of the second closing member may be greater than the tensile strength of the first closing member.

[0018] Furthermore, in the above-described gas generator, the plurality of first gas discharge holes may be arranged so that thrust acting on the gas generator by the gas discharged from the plurality of first gas discharge holes when the igniter is activated in the single state is neutralized.

[0019] The technology of the present disclosure may also be an airbag device including the gas generator described above.

[0020] Furthermore, the technology of the present disclosure may be a method for operating a gas generator. That is, the technology of the present disclosure is a method for operating a gas generator that is incorporated into an airbag device and supplies gas to the airbag for inflating the airbag, the gas generator including an igniter, a gas generation source that generates the gas by activation of the igniter, a housing that accommodates the igniter and the gas generation source therein, and a plurality of gas discharge holes that are formed in the housing and are blocked by a blocking member before activation of the igniter, and that open when the blocking member is ruptured by the pressure of the gas generated by activation of the igniter, thereby communicating the inside and outside of the housing, the plurality of gas discharge holes including a plurality of first gas discharge holes and one or more second gas discharge holes having an opening pressure higher than that of the first gas discharge holes, and arranging the plurality of first gas discharge holes in the housing so that opening of the first gas discharge holes due to the gas pressure is obstructed by a member of the airbag device; arranging the one or more second gas discharge holes in the housing so that opening of at least some of the second gas discharge holes due to the gas pressure is not obstructed by the member of the airbag device in the assembled state; when the igniter is activated in a standalone state that is a state before the gas generator is incorporated into the airbag device, opening only the plurality of first gas discharge holes of the plurality of gas discharge holes due to the gas pressure, and when the igniter is activated in the assembled state, opening the first gas discharge holes excluding some of the first gas discharge holes and at least some of the second gas discharge holes of the plurality of gas discharge holes due to the gas pressure. The present invention may also be applied to a method for operating a gas generator. [Effects of the Invention]

[0021] According to the technique of the present disclosure, in a gas generator used in an airbag device, it is possible to reduce the difference in output performance between the state of the gas generator alone and the state of the gas generator incorporated in the airbag device. [Brief explanation of the drawings]

[0022] [Figure 1] 1 is an overall view of an airbag device according to an embodiment; [Figure 2] 2 is a cross-sectional view taken along the line AA in FIG. 1. [Figure 3] FIG. 2 is a side view of the gas generator. [Figure 4] FIG. 4 is a cross-sectional view of FIG. 3 taken along line B-B. [Figure 5] 4 is a cross-sectional view taken along CC in FIG. 3. [Figure 6] FIG. 10 is a side view for explaining the positional relationship between the gas generator and the cover portion in an assembled state. [Figure 7] FIG. 7 is a cross-sectional view taken along the line DD in FIG. 6. [Figure 8] 7 is a cross-sectional view of FIG. 6 taken along E-E axis. [Figure 9] FIG. 10 is a cross-sectional view illustrating the state of the first gas discharge hole when the igniter is activated alone. [Figure 10] FIG. 10 is a cross-sectional view illustrating the state of the second gas discharge hole when the igniter is activated alone. [Figure 11] FIG. 10 is a cross-sectional view illustrating the state of the first gas discharge hole when the igniter is activated in the assembled state. [Figure 12] FIG. 10 is a cross-sectional view illustrating the state of the second gas discharge hole when the igniter is activated in the assembled state. [Figure 13] 10 is a cross-sectional view illustrating the arrangement of first gas discharge holes according to Modification 1. FIG. [Figure 14] 10 is a cross-sectional view illustrating the arrangement of second gas discharge holes according to Modification 2. FIG. [Figure 15] 10 is a cross-sectional view illustrating the arrangement of second gas discharge holes according to Modification 3. FIG. [Figure 16] 10 is a cross-sectional view illustrating the arrangement of first gas discharge holes according to Modification 4. FIG. [Figure 17] 10 is a cross-sectional view illustrating the arrangement of second gas discharge holes according to Modification 4. FIG. [Figure 18] 1A to 1C are diagrams showing steps of a method for operating a gas generator. [Figure 19] 1 is a table showing the results of calculating the total opening area of ​​the gas discharge holes opened in Examples 1 to 9. DETAILED DESCRIPTION OF THE INVENTION

[0023] Hereinafter, a gas generator and an airbag device according to embodiments of the present disclosure will be described with reference to the drawings. Note that each configuration and combination thereof in each embodiment is merely an example, and addition, omission, substitution, and other modifications of configurations are possible as appropriate within the scope of the gist of the present invention. The present disclosure is not limited to the embodiments, but is limited only by the claims.

[0024] [Overall configuration] FIG. 1 is an overall view of an airbag device 100 according to an embodiment. FIG. 1 shows the up-down direction of the airbag device 100. FIG. 1 illustrates an airbag designated by reference numeral 10 in an inflated and deployed state. The arrow designated by reference numeral G1 in FIG. 1 indicates the flow of gas. FIG. 2 is a cross-sectional view taken along line AA in FIG. 1. The airbag device 100 according to the embodiment is a side impact protection airbag device (a so-called side airbag device) that is mounted on a vehicle and protects an occupant in the event of a side impact. However, the airbag device according to the present disclosure is not limited to a side airbag device.

[0025] As shown in FIG. 1, the airbag device 100 includes an airbag 10, a gas generator 20, a mounting member 30, and a clip 40. The airbag device 100 is disposed inside the backrest (seatback) of a vehicle seat. When a side collision is detected, the airbag device 100 supplies gas from the gas generator 20 to the airbag 10 to inflate and deploy the airbag 10 between the occupant and a side structure of the vehicle (for example, a vehicle door), thereby protecting the occupant from impact. Each component of the airbag device 100 will be described below.

[0026] [Airbag] The airbag 10 is a bag that is inflated by supplying gas. Reference numeral 10a in Fig. 1 indicates the internal space of the airbag 10. An opening 10b is formed in the upper part of the airbag 10 for inserting a part of the gas generator 20 and a part of the mounting member 30 into the internal space 10a.

[0027] [Gas generator] The gas generator 20 supplies gas to the airbag 10. As shown in FIG. 1, the gas generator 20 is formed in a cylindrical shape as a whole. FIG. 3 is a side view of the gas generator 20. FIG. 3 illustrates the state before the gas generator 20 is incorporated into the airbag device 100 and before the gas generator 20 is activated. In this specification, the state in which the gas generator 20 is independent and before it is incorporated into the airbag device 100 as shown in FIG. 3 is referred to as the independent state. Furthermore, the state in which the gas generator 20 is incorporated into the airbag device 100 as shown in FIG. 1 or 2 is referred to as the assembled state.

[0028] As shown in Fig. 3, the gas generator 20 includes an igniter 1, a gas generating agent 2 that generates combustion gas upon activation of the igniter 1, a housing 3 that accommodates these, and a plurality of gas discharge holes 5 formed in the housing 3. The gas generator 20 burns the gas generating agent 2 by activating the igniter 1, and supplies the combustion gas to the airbag 10 by discharging (releasing) the combustion gas that is a combustion product from the gas discharge holes 5 formed in the housing 3. In this specification, activation of the igniter may be expressed as "activating the gas generator" for convenience.

[0029] An ignition charge (not shown) is accommodated inside the igniter 1. The igniter 1 is activated by the supply of an ignition current, causing the ignition charge to burn and releasing the combustion products, such as flame and high-temperature gas, to the outside of the igniter 1.

[0030] The gas generating agent 2 is a solid gas generating agent that is ignited by combustion products released from the igniter 1 and burns to generate combustion gas. As the gas generating agent 2, for example, a known agent containing guanidine nitrate (41% by weight), basic copper nitrate (49% by weight), a binder, or an additive can be used. The gas generating agent 2 can be in various shapes, such as granular, pellet, cylindrical, or disk-like. The gas generating agent 2 is an example of a "gas generating source" according to the present disclosure.

[0031] The housing 3 is formed in a cylindrical shape with a closed end. The housing 3 has a cylindrical peripheral wall portion 31 and a cover wall portion 32 that closes the end of the peripheral wall portion 31. The igniter 1 and the gas generating agent 2 are accommodated in an internal space (hereinafter referred to as a combustion chamber) 4 of the housing 3 that is defined by the peripheral wall portion 31 and the cover wall portion 32. Symbol A1 in FIG. 3 indicates the central axis of the peripheral wall portion 31. Hereinafter, the direction along the central axis A1 of the peripheral wall portion 31 will be referred to as the axial direction of the peripheral wall portion 31 (housing 3) and the gas generator 20. Furthermore, the direction around the central axis A1 of the peripheral wall portion 31 will be referred to as the circumferential direction of the peripheral wall portion 31 (housing 3) and the gas generator 20.

[0032] As shown in Fig. 3, a plurality of gas discharge holes 5 are formed in the peripheral wall 31 of the housing 3, which communicate between the combustion chamber 4 inside the housing 3 and the outside of the housing 3. In the generator 20, the gas discharge path from the combustion chamber 4 to the gas discharge holes 5 does not have any points that restrict (choke) the flow of combustion gas, and the amount of combustion gas discharged per unit time is adjusted by the gas discharge holes 5. The multiple gas discharge holes 5 are formed as circular through-holes. However, the shape of the gas discharge holes in the present disclosure is not limited to circular. The multiple gas discharge holes 5 further include multiple first gas discharge holes 51 and multiple second gas discharge holes 52 having diameters smaller than the first gas discharge holes 51. The first gas discharge holes 51 and the second gas discharge holes 52 are formed at positions spaced apart from each other in the axial direction. FIG. 4 is a cross-sectional view taken along line BB of FIG. 3. FIG. 5 is a cross-sectional view taken along line CC of FIG. 3. FIGS. 4 and 5 show cross sections of the gas generator 20 perpendicular to the axial direction. The first gas discharge holes 51 and the second gas discharge holes 52 may be arranged alternately in the circumferential direction, or may be arranged on the same cross section (the same position in the axial direction of the peripheral wall portion 31).

[0033] 4, the multiple first gas discharge holes 51 are arranged at equal intervals along the circumferential direction of the peripheral wall portion 31. In this example, the number of first gas discharge holes 51 is six. Therefore, the angle θ1 between adjacent first gas discharge holes 51 in the circumferential direction about the central axis A1 is 60°. In other words, the six first gas discharge holes 51 are arranged in the peripheral wall portion 31 at equal intervals of 60° about the central axis A1.

[0034] 5, the multiple second gas discharge holes 52 are arranged at equal intervals along the circumferential direction of the peripheral wall portion 31. In this example, the number of second gas discharge holes 52 is 12. Therefore, the angle θ2 between adjacent second gas discharge holes 52 in the circumferential direction about the central axis A1 is 30°. In other words, the 12 second gas discharge holes 52 are arranged in the peripheral wall portion 31 at equal intervals of 30° about the central axis A1.

[0035] As shown in FIGS. 4 and 5 , before the igniter 1 is activated, the multiple gas discharge holes 5 are blocked by a seal tape 6 provided on the inner circumferential surface of the peripheral wall portion 31. The seal tape 6 is made of, for example, aluminum. The seal tape 6 is an example of a “blocking member” according to the present disclosure. In this example, the first gas discharge hole 51 and the second gas discharge hole 52 are blocked by separate seal tapes 6. Hereinafter, the seal tape 6 blocking the first gas discharge hole 51 will be referred to as the first seal tape 61, and the seal tape 6 blocking the second gas discharge hole 52 will be referred to as the second seal tape 62. In this example, the first seal tape 61 and the second seal tape 62 have the same tensile strength and thickness. However, the first seal tape 61 and the second seal tape 62 may have different tensile strengths and thicknesses. Furthermore, the multiple first gas discharge holes 51 and the multiple second gas discharge holes 52 may be blocked together with a single or common seal tape 6.

[0036] The gas discharge hole 5 opens when the sealing tape 6 is torn by the pressure of the combustion gas generated from the gas generating agent 2 by activation of the igniter 1, thereby connecting the inside (combustion chamber 4) of the housing 3 with the outside. This allows the combustion gas to be discharged from the gas discharge hole 5. In this specification, the pressure required to open the gas discharge hole is referred to as the "opening pressure." In other words, the opening pressure is the pressure (burst pressure) required to tear the sealing tape 6. The opening pressure varies depending on the diameter of the gas discharge hole 5 (and thus the opening area per gas discharge hole 5), the tensile strength of the sealing tape 6, and the thickness of the sealing tape 6. Here, the thickness of the sealing tape 6 refers to the thickness of the sealing tape 6 in the gas discharge direction, i.e., the radial direction of the peripheral wall portion 31. When the opening pressure of the gas discharge hole 5 is P, the diameter of the gas discharge hole 5 is D, the tensile strength of the sealing tape 6 is F, and the thickness of the sealing tape 6 is t, the opening pressure P can be expressed by the following equation (1): P [N / mm 2 ]=F[N / mm 2 ]×4×t[mm] / D[mm]···(1)

[0037] Here, let the opening pressure of the first gas discharge hole 51 be P1, and the diameter of the first gas discharge hole 51 be D1 Let the tensile strength of the sealing tape 6 that closes the first gas discharge hole 51 be F1, and the thickness of the sealing tape 6 that closes the first gas discharge hole 51 be t1. Also, let the opening pressure of the second gas discharge hole 52 be P2, the diameter of the second gas discharge hole 52 be D2, the tensile strength of the second sealing tape 62 that closes the second gas discharge hole 52 be F2, and the thickness of the second sealing tape 62 that closes the second gas discharge hole 52 be t2. As described above, in this example, since the second gas discharge hole 52 has a smaller diameter than the first gas discharge hole 51, D1 > D2. That is, the opening area per one of the second gas discharge holes 52 is smaller than the opening area per one of the first gas discharge holes 51. Also, in this example, since the tensile strength F and the thickness t are the same for the first sealing tape 61 and the second sealing tape 62, F1 = F2 and t1 = t2. From these and the above formula (1), P1 < P2. That is, the opening pressure of the second gas discharge hole 52 is higher than the opening pressure of the first gas discharge hole 51.

[0038] [Mounting member] As shown in FIG. ⁰, the mounting member 30 includes a cover portion 301 and a fixing portion 302. The mounting member 30 is a member for attaching the gas generator 20 to a vehicle, and is an example of the "member of the airbag device" according to the present disclosure.

[0039] As shown in FIG. ⁰, the cover portion 301 is formed in a semi-cylindrical shape extending along the axial direction of the gas generator 20. The cover portion 301 extends over substantially the entire area of the peripheral wall portion 31 in the axial direction of the peripheral wall portion 31, and is provided so as to cover a part of the peripheral wall portion 31 in the circumferential direction of the peripheral wall portion 31. Also, the fixing portion 302 is a tongue piece protruding from the outer peripheral surface of the cover portion 301.

[0040] [Assembly state] It should be noted that in the above translation, the "FIG. ⁰" in "As shown in FIG. ⁰" should be replaced with the actual figure number in the original text.As shown in FIG. 1 , in the assembled state, a portion of the gas generator 20, together with a portion of the mounting member 30, is inserted into the internal space 10a through the opening 10b of the airbag 10. The gas generator 20 is fixed to the mounting member 30 together with the edge 10c of the opening 10b by a clip 40, thereby fixing the airbag 10 and the gas generator 20 to the mounting member 30. In the assembled state, all of the gas discharge holes 5 are located in the internal space 10a of the airbag 10, but as will be described later, some of the gas discharge holes 5 are closed by cover portions 301. In addition, in the assembled state, fixing portions 302 of the mounting member 30 are located outside the airbag 10. The airbag device 100 is fixed to a vehicle component (not shown) by using the fixing portions 302.

[0041] FIG. 6 is a side view for explaining the positional relationship between gas generator 20 and cover portion 301 in the assembled state. FIG. 6 illustrates the assembled state before gas generator 20 is activated. FIG. 7 is a DD cross-sectional view of FIG. 6. FIG. 8 is an EE cross-sectional view of FIG. 6. FIGS. 7 and 8 illustrate cross sections perpendicular to the axial direction of gas generator 20. As shown in FIGS. 7 and 8, the region of peripheral wall portion 31 that is covered by cover portion 301 in the assembled state is referred to as first region 3a, and the region that is exposed and not covered by cover portion 301 in the assembled state, i.e., the region excluding first region 3a, is referred to as second region 3b. The angular range of first region 3a in the circumferential direction of peripheral wall portion 31 is referred to as θ3. In this example, θ3 = 180°. That is, cover portion 301 according to this example covers half of peripheral wall portion 31 in the circumferential direction of peripheral wall portion 31. However, the magnitude of θ3 is not limited to this. If the cover portion 301 can cover some of the gas discharge holes, θ3 can be set within a predetermined range.

[0042] As described above, the multiple first gas discharge holes 51 are arranged at equal intervals along the circumferential direction of the peripheral wall portion 31. Therefore, as shown in Fig. 7, in the assembled state, half of the peripheral wall portion 31 in the circumferential direction of the peripheral wall portion 31 is covered by the cover portion 301, so that some of the first gas discharge holes 51 are covered by the cover portion 301, and the remaining first gas discharge holes 51 are not covered by the cover portion 301 and are exposed. In other words, some of the multiple first gas discharge holes 51 are covered by the cover portion 301. One gas discharge hole 51 is disposed in the first region 3a and covered by the cover portion 301, and the remaining first gas discharge holes 51 are disposed in the second region 3b and exposed. Specifically, half of the multiple first gas discharge holes 51 (three holes each) are disposed in the first region 3a and half in the second region 3b.

[0043] Similarly, the multiple second gas discharge holes 52 are also arranged at equal intervals along the circumferential direction of the peripheral wall portion 31. Therefore, as shown in Fig. 8, in the assembled state, half of the peripheral wall portion 31 in the circumferential direction of the peripheral wall portion 31 is covered by the cover portion 301. As a result, of the multiple second gas discharge holes 52, some second gas discharge holes 52 are arranged in the second region 3b in an exposed state, and the remaining second gas discharge holes 52 are arranged in the first region 3a in a blocked state by the cover portion 301. The multiple second gas discharge holes 52 are arranged half in each of the first region 3a and the second region 3b (six holes each).

[0044] Because the first region 3a is covered from the outside by the cover portion 301, the first gas discharge holes 51 and the second gas discharge holes 52 arranged in the first region 3a are inhibited (blocked) from opening due to the pressure of the combustion gas by the cover portion 301. On the other hand, the first gas discharge holes 51 and the second gas discharge holes 52 arranged in the second region 3b that is not covered by the cover portion 301 are not inhibited (blocked) by the cover portion 301 from opening due to the pressure of the combustion gas.

[0045] 1 and 2, in the assembled state, gas generator 20 and mounting member 30 are disposed at the upper end (upper corner) of internal space 10a. Then, as shown in Fig. 2, first region 3a faces upward, and second region 3b faces downward.

[0046] [Gas generator operation] Below, a basic operation of gas generator 20 according to the embodiment will be described. Fig. 9 is a cross-sectional view for describing the state of first gas discharge hole 51 when igniter 1 is activated in a standalone state. Fig. 10 is a cross-sectional view for describing the state of second gas discharge hole 52 when igniter 1 is activated in a standalone state. Fig. 11 is a cross-sectional view for describing the state of first gas discharge hole 51 when igniter 1 is activated in an assembled state. Fig. 12 is a cross-sectional view for describing the state of second gas discharge hole 52 when igniter 1 is activated in an assembled state. In Figs. 9 to 12, a cross section perpendicular to the axial direction of gas generator 20 is shown.

[0047] First, referring to FIGS. 9 and 10 , a description will be given of the case where the igniter 1 is activated in a standalone state. When the igniter 1 is activated, the ignition charge housed in the igniter 1 burns, and the resulting combustion products, such as flame and high-temperature gas, are released into the combustion chamber 4. As a result, when the gas generating agent 2 housed in the combustion chamber 4 burns, high-temperature, high-pressure combustion gas is generated. The generation of combustion gas increases the internal pressure of the combustion chamber 4, and the gas pressure acts on each of the gas discharge holes 5. Here, the opening pressure of the first gas discharge hole 51 is set so that it opens due to the pressure of the combustion gas when the igniter 1 is activated in a standalone state. In other words, the opening pressure of the first gas discharge hole 51 is set to be equal to or lower than the internal pressure of the combustion chamber 4 when the igniter 1 is activated in a standalone state. Therefore, as shown in FIG. 9 , when the igniter 1 is activated in a standalone state, all of the multiple first gas discharge holes 51 are opened. As a result, in a standalone state, combustion gas is discharged from all of the first gas discharge holes 51. Furthermore, the opening pressure of the second gas discharge holes 52 is set so that they are not opened by the pressure of the combustion gas when the igniter 1 is activated in a standalone state. In other words, the opening pressure of the second gas discharge holes 52 is set to be higher than the pressure of the combustion gas when the igniter 1 is activated in a standalone state. Therefore, as shown in Fig. 10, when the igniter 1 is activated in a standalone state, none of the multiple second gas discharge holes 52 are opened, and all of the second gas discharge holes 52 are maintained in a closed state. As a result, in a standalone state, combustion gas is not discharged from any of the second gas discharge holes 52.

[0048] The multiple first gas discharge holes 51 are arranged at equal intervals along the circumferential direction of the peripheral wall portion 31, so when all of the first gas discharge holes 51 are open and combustion gas is discharged therefrom, the discharge directions are opposite to each other. Therefore, the reaction forces caused by the discharge of combustion gas from the respective first gas discharge holes 51 are canceled out. As a result, when the igniter 1 is activated in a standalone state, the thrust acting on the gas generator 20 by the gas discharged from the first gas discharge holes 51 is neutralized. This makes it possible to prevent the gas generator 20 from flying away due to the thrust caused by the discharge of gas when the igniter 1 is activated in a standalone state and an unexpected ignition occurs due to a fire, a malfunction of the igniter 1, or the like.

[0049] Next, a case where the igniter 1 is activated in the assembled state will be described with reference to FIGS. 11 and 12. In the assembled state, for example, when a sensor (not shown) of the vehicle detects an impact, an ignition current is supplied to the igniter 1, and the igniter 1 is activated. Activation of the igniter 1 causes the gas generating agent 2 to burn and generate combustion gas, thereby increasing the internal pressure of the combustion chamber 4. However, the first gas discharge hole 51 arranged in the first region 3a is prevented from opening due to the pressure of the combustion gas by the cover portion 301, and therefore does not open in the assembled state. Therefore, when the igniter 1 is activated in the assembled state, first, as shown in FIG. 11, only the first gas discharge hole 51 arranged in the second region 3b among the multiple first gas discharge holes 51 opens, and combustion gas is discharged.

[0050] Here, in the assembled state, the first gas discharge holes 51 arranged in the first region 3a are not open, and therefore the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the assembled state is smaller than the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the standalone state. Therefore, immediately after the igniter 1 is activated in the assembled state, that is, at the point in time when only the first gas discharge holes 51 in the second region 3b are open and the second gas discharge holes 52 have not yet opened, it is more difficult for combustion gas to be discharged from the gas generator 20 than in the state of Fig. 9. As a result, the internal pressure of the combustion chamber 4 immediately after the igniter 1 is activated in the assembled state is higher than the internal pressure of the combustion chamber 4 when the igniter 1 is activated in the standalone state (i.e., the state of Fig. 9). In this embodiment, the opening pressure of the second gas discharge holes 52 is set so that the second gas discharge holes 52 rupture when the internal pressure of the combustion chamber 4 is higher than the internal pressure when the igniter 1 is activated in a standalone state and lower than the internal pressure expected when only the first gas discharge holes 51 in the second region 3b are open when the igniter 1 is activated in an assembled state. On the other hand, the second gas discharge holes 52 arranged in the first region 3a are prevented from opening due to the pressure of the combustion gas by the cover portion 301, and therefore do not open in the assembled state. Therefore, when the igniter 1 is activated in the assembled state, after the first gas discharge holes 51 arranged in the second region 3b open, only the second gas discharge holes 52 arranged in the second region 3b open out of the multiple second gas discharge holes 52, as shown in FIG. 12 , and the combustion gas is discharged.

[0051] As described above, when the igniter 1 is activated in the assembled state, of the multiple gas discharge holes 5, only the gas discharge holes 5 (first gas discharge hole 51 and second gas discharge hole 52) arranged in the second region 3b are opened, and combustion gas is discharged. As a result, in the assembled state, the combustion gas discharged from the gas generator 20 is deflected in the direction facing the second region 3b. As shown in FIG. 2, in the assembled state, the gas generator 20 is arranged at the upper end (upper corner) of the internal space 10a of the airbag 10, and the second region 3b faces downward. Therefore, when the gas generator 20 is activated, combustion gas is discharged downward from the second region 3b, allowing the airbag 10 to inflate quickly.

[0052] [Actions and Effects] As described above, the gas generator 20 according to the embodiment comprises the igniter 1, the gas generating agent 2 that generates combustion gas upon activation of the igniter 1, the housing 3 that accommodates the igniter 1 and the gas generating agent 2 therein, and a plurality of gas discharge holes 5 formed in the housing 3. Furthermore, the plurality of gas discharge holes 5 are closed by the sealing tape 6 before activation of the igniter 1, and the sealing tape 6 is ruptured by the pressure of the combustion gas generated from the gas generating agent upon activation of the igniter 1. 30。 Gas generator 20 is configured so that the opening of some of the first gas discharge holes 51 due to the pressure of the combustion gas is obstructed by mounting member 30, thereby communicating the inside and outside of housing 3. Furthermore, the plurality of gas discharge holes 5 include a plurality of first gas discharge holes 51 and a plurality of second gas discharge holes 52 having a higher opening pressure than first gas discharge holes 51. Furthermore, the plurality of first gas discharge holes 51 are arranged in housing 3 such that, in the assembled state of gas generator 20, the opening of some of the second gas discharge holes 52 due to the pressure of the combustion gas is not obstructed by mounting member 30 (that is, so that the second gas discharge holes 52 can be opened by the pressure of the combustion gas). Furthermore, the opening pressures of first gas discharge holes 51 and second gas discharge holes 52 are set so that, when igniter 1 is activated in a standalone state of gas generator 20, only the plurality of first gas discharge holes 51 are all opened by the pressure of the combustion gas. Furthermore, the opening pressures of the first gas discharge holes 51 and the second gas discharge holes 52 are set so that when the igniter 1 is activated in the assembled state, all of the multiple gas discharge holes 5 except for the first gas discharge holes 51 and the second gas discharge holes 52 are opened by the pressure of the combustion gas.

[0053] According to such gas generator 20, in the standalone state, all of the plurality of first gas discharge holes 51 are open, and in the assembled state, only the first gas discharge holes 51 excluding some of the first gas discharge holes 51 of the plurality of first gas discharge holes 51 are open, thereby making it possible to differ the direction of the combustion gas discharged from the gas generator 20 between the standalone state and the assembled state. For example, as in this example, in the standalone state, the combustion gas is discharged radially so that the thrust acting on the gas generator 20 is neutral, and in the assembled state, the discharge direction of the combustion gas is deflected so that the airbag 10 can be quickly inflated. On the other hand, in the assembled state, the number of open first gas discharge holes 51 is smaller than the number of open first gas discharge holes 51 in the standalone state, and therefore the total opening area of ​​the open first gas discharge holes 51 is also reduced compared to the standalone state. In contrast, in gas generator 20 according to the embodiment, none of second gas discharge holes 52 are open in the standalone state, and some of the second gas discharge holes 52 are open in the assembled state, thereby reducing the difference between the total opening area of ​​gas discharge holes 5 that are open in the standalone state and the total opening area of ​​gas discharge holes 5 that are open in the assembled state. In general, the output performance of a gas generator corresponds to the total opening area of ​​the gas discharge holes that are open when the igniter is activated. According to gas generator 20 according to the embodiment, by reducing the difference between the total opening area of ​​gas discharge holes 5 that are open in the standalone state and the total opening area of ​​gas discharge holes 5 that are open in the assembled state, it is possible to reduce the difference in output performance between the standalone state and the assembled state. The output performance of a gas generator is designed assuming operation in the standalone state, and therefore, by reducing the difference in output performance between the standalone state and the assembled state, it is possible to obtain output performance that is close to the design value even in the assembled state.

[0054] The total number of gas exhaust holes 5, the number of first gas exhaust holes 51, the number of second gas exhaust holes 52, the number of first gas exhaust holes 51 and second gas exhaust holes 52 covered by cover portion 301 in the assembled state, the arrangement of first gas exhaust holes 51 and second gas exhaust holes 52, and the opening area of ​​each first gas exhaust hole 51 and second gas exhaust hole are not limited to the above-mentioned embodiments.

[0055] Furthermore, in gas generator 20 according to the embodiment, by making the opening area per second gas discharge hole 52 smaller than the opening area per first gas discharge hole 51, the opening pressure (rupture pressure) of second gas discharge hole 52 can be made higher than the opening pressure of first gas discharge hole 51. Note that the diameter (opening area) per second gas discharge hole 52 may be made equal to the diameter (opening area) per first gas discharge hole 51, and the tensile strength F2 of second seal tape 62 may be made greater than the tensile strength F1 of first seal tape 61. Also, the diameter per second gas discharge hole 52 may be made equal to the diameter per first gas discharge hole 51, and the thickness t2 of second seal tape 62 may be made greater than the thickness t1 of first seal tape 61. Furthermore, by adjusting both the diameter (opening area) of gas discharge hole 52 and the specifications (tensile strength, thickness, etc.) of seal tape 61, The opening pressure of each of the second gas exhaust holes 52 can also be adjusted. The pressure can be made higher than the opening pressure of the first gas exhaust hole 51. Note that, in adjusting the thickness t of the sealing tape 6, a plurality of sealing tapes may be stacked to form one sealing tape 6, and the thickness t may be adjusted by changing the number of overlapping sealing tapes.

[0056] Furthermore, gas generator 20 according to the embodiment is configured such that, in the assembled state, a partial circumferential region of peripheral wall portion 31 of housing 3 is covered by cover portion 301 of mounting member 30. Some of first gas discharge holes 51 are arranged in first region 3a that is covered by cover portion 301 in the assembled state, and some of second gas discharge holes 52 are arranged in second region 3b that is exposed in the assembled state. This makes it possible, in the assembled state, to achieve a state in which the opening of some of first gas discharge holes 51 due to the pressure of combustion gas is obstructed, and a state in which the opening of some of second gas discharge holes 52 due to the pressure of combustion gas is not obstructed.

[0057] Furthermore, in gas generator 20 according to the embodiment, a plurality of first gas discharge holes 51 are arranged at equal intervals along the circumferential direction of peripheral wall portion 31. This makes it possible to neutralize the thrust acting on gas generator 20 by the combustion gas discharged from the plurality of first gas discharge holes 51 when igniter 1 is activated in a standalone state. This makes it possible to prevent gas generator 20 from flying away due to the thrust caused by the discharge of combustion gas when accidental ignition occurs in a standalone state due to a fire, a malfunction of igniter 1, or the like.

[0058] The arrangement of first gas discharge holes 51 such that the thrust acting on gas generator 20 when igniter 1 is activated in the standalone state is neutral is not limited to that shown in FIG. 4 etc., and all first gas discharge holes 51 do not have to be arranged at equal intervals along the circumferential direction. FIG. 13 is a cross-sectional view for explaining the arrangement of first gas discharge holes 51 according to Modification 1. FIG. 13 illustrates gas generator 20 before activation in the standalone state, and shows a cross section perpendicular to the axial direction of gas generator 20. In Modification 1 shown in FIG. 13 , a plurality of first gas discharge holes 51 are arranged such that, when central axis A1 is the point of symmetry in a view in the axial direction of peripheral wall portion 31, another first gas discharge hole 51 is located at a position point-symmetrical with respect to each first gas discharge hole 51. This arrangement of first gas discharge holes 51 also makes it possible to neutralize the thrust acting on gas generator 20 when igniter 1 is activated in the standalone state.

[0059] FIG. 14 is a cross-sectional view illustrating the arrangement of second gas discharge holes 52 according to Modification 2. FIG. 15 is a cross-sectional view illustrating the arrangement of second gas discharge holes 52 according to Modification 3. FIGS. 14 and 15 illustrate gas generator 20 in an assembled state before activation, and illustrate a cross section perpendicular to the axial direction of gas generator 20. In Modification 2 shown in FIG. 14, no second gas discharge holes 52 are arranged in first region 3a, and a plurality of second gas discharge holes 52 are arranged in second region 3b. In Modification 3 shown in FIG. 15, no second gas discharge hole 52 is arranged in first region 3a, and only one second gas discharge hole 52 is arranged in second region 3b. As shown in FIGS. 14 and 15, it is sufficient that at least one second gas discharge hole 52 is arranged in second region 3b of peripheral wall portion 31, and all second gas discharge holes 52 may be arranged in second region 3b. In other words, it is sufficient that there is at least one second gas discharge hole 52 whose opening due to the pressure of the combustion gas is not obstructed in the assembled state, and there is no need for there to be any second gas discharge hole 52 whose opening is obstructed by the mounting member 30. The technology according to the present disclosure is such that the multiple gas discharge holes include one or more second gas discharge holes, and the one or more second gas discharge holes are arranged in the housing so that the opening due to the pressure of the combustion gas of at least some of the one or more second gas discharge holes is not obstructed by members of the airbag device.

[0060] Fig. 16 is a cross-sectional view for explaining the arrangement of first gas discharge holes 51 according to Modification 4. Fig. 17 is a cross-sectional view for explaining the arrangement of second gas discharge holes 52 according to Modification 4. In Figs. 16 and 17, gas generator 20 in an assembled state before activation is illustrated, and a cross section perpendicular to the axial direction of gas generator 20 is illustrated. Modification 4 shown in Figs. 16 and 17 In the fourth modification, the angle range θ3 of the first region 3a in the circumferential direction of the peripheral wall portion 31 is θ3 = 240°. That is, the cover portion 301 according to the fourth modification covers two-thirds of the peripheral wall portion 31 in the circumferential direction of the peripheral wall portion 31. As a result, two-thirds of the total number of first gas discharge holes 51 and second gas discharge holes 52 are each covered by the cover portion 301. As shown in FIG. 16 , in the fourth modification, four of the six first gas discharge holes 51 are arranged in the first region 3a, and two of the first gas discharge holes 51 are arranged in the second region 3b. Furthermore, as shown in FIG. 17 , eight of the twelve second gas discharge holes 52 are arranged in the first region 3a, and four of the second gas discharge holes 52 are arranged in the second region 3b.

[0061] The shape of the housing and the position of the gas exhaust hole according to the present disclosure are not limited to the above-described embodiments. The housing does not have to be cylindrical, and the gas exhaust hole does not have to be formed in the peripheral wall.

[0062] [How the gas generator works] Fig. 18 is a diagram showing the steps of a method for operating gas generator 20. As shown in Fig. 18, the method for operating a gas generator according to the embodiment includes a step of forming a gas discharge hole (step S10) and a step of opening the gas discharge hole (step S20).

[0063] First, in step S10, a plurality of first gas discharge holes 51 and one or more second gas discharge holes 52 having a higher opening pressure than the first gas discharge holes 51 are formed in the housing 3. In step S10, the plurality of first gas discharge holes 51 are arranged in the housing 3 so that, in the assembled state, the opening of some of the first gas discharge holes 51 due to the pressure of the combustion gas is obstructed by the mounting member 30. Also, in step S10, one or more second gas discharge holes 52 are arranged in the housing 3 so that, in the assembled state, the opening of at least some of the second gas discharge holes 52 due to the pressure of the combustion gas is not obstructed.

[0064] Next, in step S20, when the igniter 1 is activated while the gas generator 20 is in a standalone state, only the plurality of first gas discharge holes 51 are all opened by the pressure of the combustion gas. Also, in step S20, when the igniter 1 is activated while the gas generator 20 is in an assembled state, the first gas discharge holes 51 excluding some of the first gas discharge holes 51 of the plurality of gas discharge holes 5 and at least some of the second gas discharge holes 52 are opened by the pressure of the combustion gas.

[0065] By operating the gas generator 20 in the above manner, the difference between the total opening area of ​​the gas discharge holes 5 that are open in the standalone state and the total opening area of ​​the gas discharge holes 5 that are open in the assembled state can be reduced, and the difference in output performance between the standalone state and the assembled state can be reduced.

[0066] [Example] Examples of the airbag device 100 according to the embodiment will be described below. Fig. 19 is a table showing the results of calculating the total opening area of ​​the gas discharge holes 5 in Examples 1 to 9. In Examples 1 to 9, the multiple first gas discharge holes 51 are arranged at equal intervals along the circumferential direction of the peripheral wall portion 31, and the multiple second gas discharge holes 52 are arranged at equal intervals along the circumferential direction of the peripheral wall portion 31.

[0067] In Figure 19, "Opening area per gas exhaust hole [mm 2 ]" is the opening area per one first gas exhaust hole 51 or the opening area per one second gas exhaust hole 52. In FIG. 19, the numerical values ​​listed in the "Quantity [pieces]" column are the numbers of the first gas exhaust holes 51 and the numbers of the second gas exhaust holes 52. In FIG. 19, the numerical values ​​listed in the "Total opening area of ​​gas exhaust holes [mm 2 The numerical values ​​listed in the "[Number of holes]" column are the total opening area of ​​all first gas exhaust holes 51, the total opening area of ​​all second gas exhaust holes 52, and the total opening area of ​​all first gas exhaust holes 51 and second gas exhaust holes 52 (i.e., the total opening area of ​​all gas exhaust holes 5). In Figure 19, "Total opening area of ​​gas exhaust holes in a single state [mm 219, the numerical values ​​shown in the column "Total opening area of ​​gas discharge holes that open in assembled state [mm ]" are the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is actuated in a standalone state, the total opening area of ​​the second gas discharge holes 52 that open when the igniter 1 is actuated in a standalone state, and the total opening area of ​​the first gas discharge holes 51 and the second gas discharge holes 52 that open when the igniter 1 is actuated in a standalone state. 2 The numerical values ​​listed in the "]" column are the total opening area of ​​the first gas exhaust holes 51 that open when the igniter 1 is activated in the assembled state, the total opening area of ​​the second gas exhaust holes 52 that open when the igniter 1 is activated in the assembled state, and the total opening area of ​​the first gas exhaust holes 51 and the second gas exhaust holes 52 that open when the igniter 1 is activated in the assembled state.

[0068] In Examples 1 to 3, the opening area per one of the first gas discharge holes 51 and the second gas discharge holes 52 is not changed, but the numbers thereof are varied. In Example 1, the opening area per one of the first gas discharge holes 51 is set to 10 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 5 [mm 2 In Example 2, the opening area per one first gas exhaust hole 51 was set to 10 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 5 [mm 2 ], the number of first gas exhaust holes 51 was 6 [pieces], and the number of second gas exhaust holes 52 was 12 [pieces]. In Example 3, the opening area per first gas exhaust hole 51 was 10 [mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 5 [mm 2 ], the number of first gas exhaust holes 51 was 3, and the number of second gas exhaust holes 52 was 12. In Examples 1 to 3, the burst pressure of each of the first gas exhaust holes 51 and the second gas exhaust holes 52 was adjusted by varying the opening area of ​​the exhaust holes.

[0069] In Examples 4 to 6, the opening area per hole is changed without changing the number of first gas exhaust holes 51 and second gas exhaust holes 52. In Example 4, the opening area per hole of the first gas exhaust holes 51 is set to 18 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 3 [mm 2 In Example 5, the opening area per one first gas exhaust hole 51 was 15 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is set to 6 [mm 2 In Example 6, the opening area per first gas exhaust hole 51 was set to 10 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 8 [mm 2 ], the number of first gas exhaust holes 51 was 3, and the number of second gas exhaust holes 52 was 12. In Examples 4 to 6, the burst pressure of each of the first gas exhaust holes 51 and the second gas exhaust holes 52 was adjusted by varying the opening area of ​​the exhaust holes.

[0070] In Examples 7 to 9, the numbers of the first gas exhaust holes 51 and the second gas exhaust holes 52 and the opening area per hole are varied. In Example 7, the opening area per first gas exhaust hole 51 is 12 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 12 [mm 2 In Example 8, the opening area per one first gas exhaust hole 51 was 10 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 10 [mm 2 In Example 9, the opening area per first gas exhaust hole 51 was 8 mm 2 ], and the opening area of ​​each second gas discharge hole 52 is 8 [mm 2], the number of first gas discharge holes 51 was 8, and the number of second gas discharge holes 52 was 8. In Examples 7 to 9, the burst pressure of each of first gas discharge holes 51 and second gas discharge holes 52 was adjusted by varying the tensile strength of the sealing tape that blocked the discharge holes.

[0071] Fig. 19 shows the total opening area of ​​the gas discharge holes that are open in the assembled state when the angle range θ3 of the first region 3a covered by the mounting member 30 is changed for each of Examples 1 to 9. As shown in Fig. 19, for each of Examples 1 to 9, the total opening area of ​​the gas discharge holes that are open in the assembled state was calculated when θ3 = 270°, θ3 = 240°, θ3 = 180°, θ3 = 120°, and θ3 = 90°.

[0072] The total opening area of ​​the gas discharge holes that are open in the assembled state was calculated using the following formulas (2) to (4). [Total opening area of ​​first gas discharge holes 51 open in assembled state [mm 2 ]]=[total opening area of ​​all first gas discharge holes 51 [mm 2 ]]×θ3[°] / 360° (2) [Total opening area of ​​the second gas discharge holes 52 that are open in the assembled state [mm 2 ]]=[total opening area of ​​all second gas discharge holes 52 [mm 2 ]]×θ3[°] / 360° (3) [Total opening area of ​​the first gas discharge hole 51 and the second gas discharge hole 52 that are open in the assembled state [mm 2 ]]=[total opening area of ​​the first gas discharge holes 51 that are open in the assembled state [mm 2 ]] + [total opening area of ​​second gas discharge holes 52 open in assembled state [mm 2 ]]···(4)

[0073] In the single state, all of the first gas discharge holes 51 are opened by the pressure of the combustion gas, and therefore, as shown in Fig. 19, the total opening area of ​​the first gas discharge holes 51 that are open in the single state is equal to the total opening area of ​​all of the first gas discharge holes 51. In addition, in the single state, none of the second gas discharge holes 52 are open, and therefore, as shown in Fig. 19, the total opening area of ​​the second gas discharge holes 52 that are open in the single state is 0 [mm 2 ].

[0074] Here, when the opening area per first gas discharge hole 51 is X and the number of first gas discharge holes 51 is Y, the opening area per second gas discharge hole 52 may be 1 / 2X, the number of second gas discharge holes 52 may be 2Y, and first region 3a covered by cover portion 301 may be 1 / 2 of the entire circumference of peripheral wall portion 31. This makes it possible to make the total opening area of ​​first gas discharge holes 51 that open when igniter 1 is activated in a standalone state equivalent to the total opening area of ​​first gas discharge holes 51 and second gas discharge holes 52 that open when igniter 1 is activated in an assembled state. In FIG. 19 , the case where θ3 = 180° in Example 2 satisfies the above condition.

[0075] Furthermore, when the opening area per first gas discharge hole 51 is X and the number of first gas discharge holes 51 is Y, the opening area per second gas discharge hole 52 may be 1 / 2X, the number of second gas discharge holes 52 may be 4Y, and first region 3a covered by cover portion 301 may be 2 / 3 of the entire circumference of peripheral wall portion 31. This also makes it possible to make the total opening area of ​​first gas discharge holes 51 that open when igniter 1 is activated in the standalone state equivalent to the total opening area of ​​first gas discharge holes 51 and second gas discharge holes 52 that open when igniter 1 is activated in the assembled state. In Figure 19, the case where θ3 = 240° in Example 3 satisfies the above condition.

[0076] Alternatively, the opening area per first gas discharge hole 51 may be equal to the opening area per second gas discharge hole 52, the number of first gas discharge holes 51 may be equal to the number of second gas discharge holes 52, and the first region 3a covered by the cover portion 301 may be half the entire circumference of the peripheral wall portion 31. This also makes it possible to make the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in a standalone state equal to the total opening area of ​​the first gas discharge holes 51 and the second gas discharge holes 52 that open when the igniter 1 is activated in an assembled state. In FIG. 19, the above condition is satisfied in the case of θ3=180° in Examples 7 to 9. do.

[0077] As described above, when θ3 = 180° in Example 2, θ3 = 240° in Example 3, and θ3 = 180° in Examples 7 to 9, the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the standalone state is equivalent to the total opening area of ​​the first gas discharge holes 51 and the second gas discharge holes 52 that open when the igniter 1 is activated in the assembled state. In other words, the total opening area of ​​the gas discharge holes 5 that open in the standalone state is equivalent to the total opening area of ​​the gas discharge holes 5 that open in the assembled state. This makes it possible to further reduce the difference in output performance between the standalone state and the assembled state.

[0078] Here, in order to open only the first gas discharge hole 51 and not the second gas discharge hole 52 in the standalone state, it is necessary to provide a certain degree of difference between the opening pressure of the second gas discharge hole 52 and the opening pressure of the first gas discharge hole 51. On the other hand, in order to open both the first gas discharge hole 51 and the second gas discharge hole 52 arranged in the second region 3b that is not covered by the cover portion 301 in the assembled state, it is necessary to keep the difference between the opening pressure of the second gas discharge hole 52 and the opening pressure of the first gas discharge hole 51 within a certain degree. For example, consider a case where the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the assembled state is half the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the standalone state. When calculating the internal pressure of the combustion chamber 4 taking into account only the area ratio, the internal pressure of the combustion chamber 4 when only the first gas discharge hole 51 in the second region 3b of the multiple gas discharge holes 5 is open when the igniter 1 is activated in an assembled state is expected to be twice the internal pressure of the combustion chamber 4 when the igniter 1 is activated alone. However, in reality, gas is generated for a certain period of time due to the combustion of the gas generating agent 2, so the internal pressure ratio is expected to be more than twice. Taking this into consideration, the ratio of the opening pressure of the second gas discharge hole 52 to the opening pressure of the first gas discharge hole 51 can be set to approximately 1.25 to 3.0. In this way, the upper limit of the opening pressure ratio is expected to vary depending on the specifications of the gas generator, and can be set taking into consideration the amount of gas generated per unit time.

[0079] In consideration of the above, the number of some of the multiple first gas discharge holes 51 whose openings are obstructed by the cover portion 301 in the assembled state may be one or more and two-thirds or less of the total number of the multiple first gas discharge holes 51. In this way, the ratio of the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the assembled state to the total opening area of ​​the first gas discharge holes 51 that open when the igniter 1 is activated in the standalone state is equal to or greater than one-third and less than one. Furthermore, taking into consideration the generation of gas due to combustion of the gas generating agent 2, the ratio of the opening pressure of the second gas discharge hole 52 to the opening pressure of the first gas discharge hole 51 can be set to approximately 1.25 to 6.0.

[0080] <Other> While preferred embodiments of the present disclosure have been described above, each aspect disclosed herein may be combined with any other feature disclosed herein. In the above-described embodiment, the technology of the present disclosure has been described as being applied to a pyroelectric gas generator that generates combustion gas by burning a solid gas generating agent. However, the technology of the present disclosure is not limited to pyroelectric gas generators. The gas generator may be a stored gas generator that uses pre-stored pressurized gas as a gas generation source and discharges gas by opening a gas outlet upon activation of an igniter. Alternatively, the technology of the present disclosure may be a hybrid system that combines the pyroelectric and stored gas systems. Since the technology of the present disclosure is configured to adjust the amount of gas discharged via a gas discharge port, it can be suitably used in pyroelectric gas generators that choke the gas discharge port. [Explanation of symbols]

[0081] 100 Airbag device 10 Airbags 20 Gas Generator 30 Mounting material 1 igniter 2. Gas generator (gas generator) 3. Housing 31 Peripheral wall section 3a 1st area 3b 2nd area 4 Combustion chamber 5 Gas exhaust hole 51 First gas exhaust hole 52 Second gas exhaust hole 6 Sealing tape (blocking material) 61 First sealing tape (first closing member) 62 second seal tape (second closing member)

Claims

1. A gas generator that is incorporated into an airbag device and supplies gas to the airbag for inflating the airbag, An igniter, a gas generation source that generates the gas by activation of the igniter; a housing that accommodates the igniter and the gas generating source therein; a plurality of gas discharge holes formed in the housing and blocked by blocking members before activation of the igniter, the blocking members being ruptured by the pressure of the gas generated by activation of the igniter, thereby opening the gas discharge holes and allowing communication between the inside and outside of the housing; the plurality of gas exhaust holes include a plurality of first gas exhaust holes and one or a plurality of second gas exhaust holes having an opening pressure higher than that of the first gas exhaust holes, the plurality of first gas discharge holes are arranged in the housing such that, in an assembled state in which the gas generator is incorporated into the airbag device, opening of some of the first gas discharge holes due to the gas pressure is obstructed by members of the airbag device, the one or more second gas discharge holes are arranged in the housing such that, in the assembled state, opening of at least some of the second gas discharge holes due to the gas pressure is not obstructed by the member of the airbag device, an opening pressure of the first gas discharge holes and an opening pressure of the second gas discharge holes are set so that, when the igniter is activated in a standalone state, which is a state before the gas generator is incorporated into the airbag device, only the plurality of first gas discharge holes are opened by the gas pressure, and, when the igniter is activated in the assembled state, the first gas discharge holes excluding some of the first gas discharge holes and at least some of the second gas discharge holes are opened by the gas pressure. Gas generator.

2. a total opening area of ​​the first gas discharge holes that open when the igniter is activated in the stand-alone state is equal to a total opening area of ​​the first gas discharge holes and the second gas discharge holes that open when the igniter is activated in the assembled state; 2. The gas generator according to claim 1.

3. the number of the first gas discharge holes whose openings are obstructed by the member of the airbag device in the assembled state is one or more and two-thirds or less of the total number of the plurality of first gas discharge holes, 3. A gas generator according to claim 1 or 2.

4. The housing includes a cylindrical peripheral wall portion, the plurality of gas discharge holes are formed in the peripheral wall portion, In the assembled state, a partial area of ​​the peripheral wall portion in the circumferential direction of the peripheral wall portion is covered by the member of the airbag device, some of the first gas discharge holes are arranged in an area that is covered by the member of the airbag device in the assembled state, and at least some of the second gas discharge holes are arranged in an area that is exposed in the assembled state. A gas generator according to any one of claims 1 to 3.

5. the plurality of gas exhaust holes include the plurality of second gas exhaust holes, the plurality of first gas discharge holes are arranged at equal intervals along the circumferential direction of the peripheral wall portion, The plurality of second gas discharge holes are arranged at equal intervals along the circumferential direction of the peripheral wall portion.

5. The gas generator according to claim 4.

6. When the opening area per one of the first gas discharge holes is X and the number of the first gas discharge holes is Y, The opening area of ​​each of the second gas discharge holes is ½X, The number of the second gas exhaust holes is 2Y, The area of ​​the peripheral wall portion covered by the member of the airbag device is 1 / 2 of the entire circumference of the peripheral wall portion.

6. The gas generator according to claim 5.

7. When the opening area per one of the first gas discharge holes is X and the number of the first gas discharge holes is Y, The opening area of ​​each of the second gas discharge holes is ½X, The number of the second gas exhaust holes is 4Y, The area of ​​the peripheral wall portion covered by the member of the airbag device is 2 / 3 of the entire circumference of the peripheral wall portion.

6. The gas generator according to claim 5.

8. an opening area of ​​each of the first gas discharge holes is equal to an opening area of ​​each of the second gas discharge holes; the number of the first gas discharge holes is equal to the number of the second gas discharge holes, The area of ​​the peripheral wall portion covered by the member of the airbag device is 1 / 2 of the entire circumference of the peripheral wall portion.

6. The gas generator according to claim 5.

9. an opening area of ​​each of the second gas discharge holes is smaller than an opening area of ​​each of the first gas discharge holes; 2. The gas generator according to claim 1.

10. the closing member includes a first closing member that closes the first gas discharge hole, and a second closing member that closes the second gas discharge hole and is separate from the first closing member, The tensile strength of the second closing member is greater than the tensile strength of the first closing member.

2. The gas generator according to claim 1.

11. the plurality of first gas discharge holes are arranged such that thrust acting on the gas generator by the gas discharged from the plurality of first gas discharge holes when the igniter is activated in the single state is neutralized. A gas generator according to any one of claims 1 to 10.

12. An airbag device comprising the gas generator according to any one of claims 1 to 11.

13. A method for operating a gas generator that is incorporated into an airbag device and supplies gas to the airbag for inflating the airbag, comprising: the gas generator comprises an igniter, a gas generation source that generates the gas by activation of the igniter, a housing that accommodates the igniter and the gas generation source therein, and a plurality of gas discharge holes that are formed in the housing and are closed by closing members before activation of the igniter, and that open when the closing members are ruptured by pressure of the gas generated by activation of the igniter, thereby communicating the inside and outside of the housing, forming a plurality of gas discharge holes in the housing, the plurality of gas discharge holes including a plurality of first gas discharge holes and one or a plurality of second gas discharge holes having an opening pressure higher than that of the first gas discharge holes; disposing the plurality of first gas discharge holes in the housing so that, in an assembled state in which the gas generator is incorporated into the airbag device, opening of some of the first gas discharge holes due to the gas pressure is obstructed by members of the airbag device; disposing the one or more second gas discharge holes in the housing so that, in the assembled state, opening of at least some of the second gas discharge holes due to the gas pressure is not obstructed by the member of the airbag device; when the igniter is activated in a standalone state, which is a state before the gas generator is incorporated into the airbag device, only the plurality of first gas discharge holes among the plurality of gas discharge holes are opened by the gas pressure, and when the igniter is activated in the assembled state, the first gas discharge holes excluding some of the first gas discharge holes and at least some of the second gas discharge holes among the plurality of gas discharge holes are opened by the gas pressure. How a gas generator works.

Citation Information

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