Gas generator and method for manufacturing gas generator

The gas generator's design with multiple discharge holes of varying rupture pressures and shapes stabilizes output performance by controlling gas discharge, addressing variability in combustion gas discharge and timing.

JP7795979B2Active Publication Date: 2026-01-08DAICEL CORP
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Patent Information

Application Number
JP2022103652
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-06-28
Publication Date
2026-01-08
Estimated Expiration
2042-06-28

AI Technical Summary

Technical Problem

Existing gas generators face challenges in achieving stable output performance due to variations in combustion gas discharge and discharge time, which affect the reliability of gas generation.

Method used

The gas generator design includes multiple gas discharge holes with different rupture pressures and shapes to control the opening timing, ensuring equal gas discharge amounts and maintaining stable combustion performance by varying the circumferential length and shape of the openings on the inner surface of the housing.

Benefits of technology

This design stabilizes the output performance of the gas generator by controlling the gas discharge amount and timing, preventing sudden pressure drops and ensuring consistent combustion performance.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a gas generator which achieves stable output performance.SOLUTION: In a gas generator, multiple gas discharge holes include at least one first gas discharge hole and at least one second gas discharge hole which have different cleavage pressures for cleaving a closing member. A minimum passage cross sectional area of a gas passage formed by the first gas discharge hole is equivalent to a minimum passage cross sectional area of a gas passage formed by the second gas discharge hole. The first gas discharge hole and the second gas discharge hole are different from each other in at least one of a shape and a circumference of an opening at the inner surface side of a housing.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a gas generator and a method for manufacturing a gas generator. [Background technology]

[0002] Conventionally, a gas generator has been widely used in which an igniter and a gas generating agent are placed inside a housing, the gas generating agent is burned by activating the igniter, and the combustion gas is released to the outside through a plurality of gas exhaust holes formed in the housing.

[0003] The gas generator is configured such that the interior of the housing is kept airtight before activation by blocking multiple gas discharge ports with a blocking member such as sealing tape, and upon activation, the pressure of the combustion gas tears the blocking member open, thereby opening the gas discharge port. In this regard, in order to reliably tear the blocking member open when the gas generator is activated, a technique is known in which the gas discharge port is perforated so that a protrusion (burr) is formed around the periphery of the gas discharge port on the inner wall surface side of the housing, and the area including the gas discharge port and the protrusion is covered with sealing tape (for example, Patent Document 1). [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-241102 Summary of the Invention [Problem to be solved by the invention]

[0005] Incidentally, the output performance of a gas generator is determined by parameters such as the amount of combustion gas discharged and the discharge time, and in order to obtain stable (highly reproducible) output performance, it is important to burn the gas generating agent stably.

[0006] The technique of the present disclosure aims to provide a gas generator with stable output performance. [Means for solving the problem]

[0007] 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 relates to a gas generator. The gas generator according to the present disclosure includes an igniter, a gas generating agent that generates combustion gas by burning when the igniter is activated, a housing that accommodates the igniter and the gas generating agent inside, a plurality of gas discharge holes that penetrate the inside and outside of the housing, and a blocking member that is attached to the inner surface of the housing, the blocking member covering openings of the plurality of gas discharge holes on the inner surface side of the housing before activation of the igniter, thereby blocking the plurality of gas discharge holes, and cleaving under pressure of the combustion gas generated by activation of the igniter, thereby opening the plurality of gas discharge holes. The plurality of gas discharge holes include at least one first gas discharge hole and one second gas discharge hole, which have different rupture pressures for the blocking member, the minimum flow path cross-sectional area of ​​the gas flow path formed by the first gas discharge hole is equal to the minimum flow path cross-sectional area of ​​the gas flow path formed by the second gas discharge hole, and the first gas discharge hole and the second gas discharge hole differ from each other in at least one of the shape and circumferential length of the opening on the inner surface side of the housing.

[0008] According to the gas generator according to the present disclosure, by making the minimum flow path cross-sectional area for controlling the gas discharge amount equal between the first gas discharge hole and the second gas discharge hole, the gas discharge amount per unit time from the first gas discharge hole and the gas discharge amount per unit time from the second gas discharge hole can be made equal. Furthermore, by making at least one of the shape and circumferential length of the openings on the inner surface of the housing different between the first gas discharge hole and the second gas discharge hole, the rupture pressure of the first gas discharge hole and the rupture pressure of the second gas discharge hole can be made different. In other words, it is possible to intentionally set two types of gas discharge holes that have the same internal pressure control function of the housing but different ease of opening. This makes it possible to make the opening timing of the first gas discharge hole and the second gas discharge hole different, thereby suppressing a sudden drop in internal pressure of the housing when the igniter is activated. As a result, the combustion performance of the gas generating agent can be maintained and the output performance of the gas generator can be stabilized.

[0009] In the gas generator according to the present disclosure, the first gas discharge hole and the second gas discharge hole may be closed by the closing member having the same specifications.

[0010] Furthermore, in the gas generator according to the present disclosure, the first gas discharge hole and the second gas discharge hole may be holes having circular cross sections, and the first gas discharge hole and the second gas discharge hole may have different hole diameters at their openings on the inner surface side of the housing.

[0011] Furthermore, in the gas generator according to the present disclosure, the first gas discharge hole and the second gas discharge hole may include a straight portion having a constant cross section in a thickness direction of the housing, and a tapered portion that is continuous with the straight portion and whose cross-sectional area increases with increasing distance from the straight portion in the thickness direction, and one of the first gas discharge hole and the second gas discharge hole may have the tapered portion opening on an inner surface side of the housing and the straight portion opening on an outer surface side of the housing, and the other of the first gas discharge hole and the second gas discharge hole may have the straight portion opening on the inner surface side of the housing and the tapered portion opening on the outer surface side of the housing.

[0012] Moreover, in the gas generator according to the present disclosure, the straight portion may be formed by a sheared surface, and the tapered portion may be formed by a broken surface.

[0013] In the gas generator according to the present disclosure, when the thickness of the housing is t1 and the length of the straight portion in the thickness direction of the housing is t2, <t2 / t1<0.7であってもよい。

[0014] Furthermore, in the gas generator according to the present disclosure, a protrusion that protrudes toward the inside of the housing may be formed on at least a portion of the periphery of the opening on the inner surface side of the housing of only one of the first gas discharge hole and the second gas discharge hole, and the blocking member may be attached to the inner surface of the housing so as to cover the protrusion.

[0015] In the gas generator according to the present disclosure, the periphery of the opening of only one of the first gas discharge hole and the second gas discharge hole on the inner surface side of the housing may be chamfered.

[0016] The technology according to the present disclosure can also be specified as a manufacturing method of a gas generator. That is, the technology of the present disclosure is a manufacturing method of a gas generator including an igniter, a gas generating agent that generates combustion gas by burning when activated by the igniter, a housing that accommodates the igniter and the gas generating agent therein, a plurality of gas discharge holes that penetrate the inside and outside of the housing, and a closing member that closes the plurality of gas discharge holes, the manufacturing method comprising: forming a plurality of gas discharge holes including at least one first gas discharge hole and one second gas discharge hole in the housing such that the rupture pressure of the closing member differs between the first gas discharge hole and the second gas discharge hole; and attaching the closing member to an inner surface of the housing so as to cover openings of the plurality of gas discharge holes on the inner surface side of the housing; The method may be such that the minimum flow path cross-sectional areas of the gas flow paths formed by the second gas discharge holes are equivalent, and at least one of the shape and circumferential length of the openings on the inner surface side of the housing are made different between the first gas discharge hole and the second gas discharge hole.

[0017] Furthermore, in the method for manufacturing a gas generator according to the present disclosure, when forming the plurality of gas discharge holes in the housing, one of the first gas discharge hole and the second gas discharge hole may be formed by punching from the outer surface side of the housing, and the other of the first gas discharge hole and the second gas discharge hole may be formed by punching from the inner surface side of the housing.

[0018] Furthermore, in the method for manufacturing a gas generator according to the present disclosure, when forming the plurality of gas discharge holes in the housing, chamfering may be performed on the opening on the inner surface side of the housing of only one of the first gas discharge hole and the second gas discharge hole.

[0019] Furthermore, in the method for manufacturing a gas generator according to the present disclosure, when attaching a closing member to the inner surface of the housing, the first gas discharge hole and the second gas discharge hole may be closed by the closing member having the same specifications. [Effects of the Invention]

[0020] According to the technique of the present disclosure, it is possible to provide a gas generator with stable output performance. [Brief explanation of the drawings]

[0021] [Figure 1] FIG. 1 is a vertical cross-sectional view showing a state before activation of a gas generator according to a first embodiment. [Figure 2] 2 is a cross-sectional view taken along the line AA in FIG. 1. [Figure 3] FIG. 3 is an enlarged cross-sectional view illustrating the shape of a first small hole according to the first embodiment. [Figure 4] 5 is a diagram showing the shape of an opening of a first small hole on the inner surface side of a housing according to the first embodiment. FIG. [Figure 5] 4 is an enlarged cross-sectional view illustrating the shape of a second small hole according to the first embodiment. FIG. [Figure 6] 5 is a diagram showing the shape of an opening of a second small hole on the inner surface side of a housing according to the first embodiment. FIG. [Figure 7] 4 is a flowchart of a method for manufacturing the gas generator according to the first embodiment. [Figure 8] 5A to 5C are cross-sectional views illustrating a method for forming a first small hole according to the first embodiment. [Figure 9] 5A to 5C are cross-sectional views illustrating a method for forming second small holes according to the first embodiment. [Figure 10] 10 is an enlarged cross-sectional view illustrating the shape of a second small hole according to a first modification of the first embodiment. FIG. [Figure 11] 10 is an enlarged cross-sectional view illustrating the shape of a first small hole according to Modification 2 of Embodiment 1. FIG. [Figure 12] 10 is an enlarged cross-sectional view illustrating the shape of a second small hole according to Modification 2 of Embodiment 1. FIG. [Figure 13] FIG. 10 is an enlarged cross-sectional view illustrating the shape of a first small hole according to a second embodiment. [Figure 14] FIG. 10 is an enlarged cross-sectional view illustrating the shape of a second small hole according to the second embodiment. [Figure 15] 10A and 10B are diagrams showing examples of the shape of an opening of a small hole on the inner surface side of a housing. DETAILED DESCRIPTION OF THE INVENTION

[0022] A gas generator according to an embodiment of the present disclosure will be described below with reference to the drawings. In the embodiment described below, a mode in which the technology according to the present disclosure is applied to a gas generator (inflator) for an airbag will be described. However, the use of the technology according to the present disclosure is not limited to this, and it may be applied to a gas generator for a seat belt retractor, for example. Each configuration and combination thereof in each embodiment is an example, and any suitable configuration may be used within the scope of the gist of the present invention. The present disclosure is not limited by the embodiments, but is limited only by the scope of the claims.

[0023] <Embodiment 1> The following describes embodiment 1. Embodiment 1 corresponds to an embodiment in which, among possible embodiments of the technology disclosed herein, the circumferential length of the opening of the first gas discharge hole on the inner surface side of the housing is different from the circumferential length of the opening of the second gas discharge hole on the inner surface side of the housing.

[0024] FIG. 1 is a longitudinal cross-sectional view showing a state before activation of gas generator 100 according to the first embodiment. FIG. 1 shows a cross-section along the central axis of housing 1, indicated by reference symbol CA1. Gas generator 100 according to the first embodiment is configured as a so-called dual-type gas generator equipped with two igniters. However, the technology according to the present disclosure is not limited to this. In other words, the gas generator according to the present disclosure may be a so-called single-type gas generator equipped with only one igniter, or may be a gas generator equipped with three or more igniters.

[0025] [Overall configuration] 1, the gas generator 100 includes a first ignition device 4, a first inner cylindrical member 5, a transfer charge 6, a second ignition device 7, a second inner cylindrical member 8, a filter 9, a first gas generating agent 110, a second gas generating agent 120, a housing 1 that accommodates these, a plurality of gas discharge holes H1 that penetrate the inside and outside of the housing 1, and a sealing tape S1 that closes the plurality of gas discharge holes H1. The gas generator 100 is configured to combust the first gas generating agent 110 by activating a first igniter 41 provided in the first ignition device 4, combust the second gas generating agent 120 by activating a second igniter 71 provided in the second ignition device 7, and to release the combustion gas that is a combustion product thereof from the plurality of gas discharge holes H1 formed in the housing 1. Here, the direction along the central axis CA1 of housing 1 is defined as the up-down direction of gas generator 100, with the upper shell side indicated by reference numeral 2 (i.e., the upper side in FIG. 1) being the upper side of gas generator 100, and the lower shell side indicated by reference numeral 3 (i.e., the lower side in FIG. 1) being the lower side of gas generator 100. Each component of gas generator 100 will be described below. Note that in this specification, the activation of an igniter included in an ignition device may be expressed as "the ignition device is activated" or "the gas generator is activated" for convenience.

[0026] [housing] The housing 1 is formed by joining an upper shell 2 and a lower shell 3, each formed in a substantially cylindrical shape with a bottom and made of metal, with their open ends facing each other, to form a short cylindrical shape that includes a cylindrical peripheral wall portion indicated by reference numeral 11 and has both axial ends closed. The central axis CA1 in Figure 1 is the central axis of the peripheral wall portion 11.

[0027] The upper shell 2 has a cylindrical upper peripheral wall 21 and a top plate 22 that closes the upper end of the upper peripheral wall 21. A joint 23 extending radially outward is connected to the lower end of the upper peripheral wall 21. The lower shell 3 has a cylindrical lower peripheral wall 31 and a bottom plate 32 that closes the lower end of the lower peripheral wall 31. A joint 33 extending radially outward is connected to the upper end of the lower peripheral wall 31. A first mounting hole 32a for mounting the first ignition device 4 to the bottom plate 32 and a second mounting hole 32b for mounting the second ignition device 7 to the bottom plate 32 are formed in the bottom plate 32.

[0028] The joint portion 23 of the upper shell 2 and the joint portion 33 of the lower shell 3 are overlapped and joined by laser welding or the like to form a short cylindrical housing 1 with both axial ends closed. The upper peripheral wall portion 21 of the upper shell 2 and the lower peripheral wall portion 31 of the lower shell 3 form a cylindrical peripheral wall portion 11 that connects the top plate portion 22 and the bottom plate portion 32. In other words, the housing 1 is made up of the cylindrical peripheral wall portion 11 and the top plate portion 22 provided on one end side of the peripheral wall portion 11. and a bottom plate portion 32 provided at the other end thereof so as to face the top plate portion 22. A first combustion chamber 10 is defined by the peripheral wall portion 11, the top plate portion 22, the bottom plate portion 32, and a second inner cylindrical member 8, which will be described later. A first ignition device 4, a first inner cylindrical member 5, an enhancer charge 6, a filter 9, and a first gas generating agent 110 are arranged in the first combustion chamber 10.

[0029] [Ignition device] As shown in FIG. 1 , the first ignition device 4 is fixed to a first mounting hole 32a formed in the bottom plate portion 32 of the lower shell 3. The first ignition device 4 includes a first igniter 41. The second ignition device 7 is fixed to a second mounting hole 32b formed in the bottom plate portion 32 of the lower shell 3. The second ignition device 7 also includes a second igniter 71. The first igniter 41 and the second igniter 71 each contain an ignition charge (not shown) therein, and are activated by the supply of an ignition current to combust the ignition charge and release the combustion products to the outside. The first igniter 41 and the second igniter 71 are examples of an "igniter" according to the present disclosure. The first ignition device 4 and the second ignition device 7 operate independently of each other. When the second ignition device 7 is activated, the second ignition device 7 is activated simultaneously with the activation of the first ignition device 4 or at a predetermined timing after the activation of the first ignition device 4. The gas generator 100 is able to emit a large amount of combustion gas to the outside with various output profiles compared to a so-called single-type gas generator, by combustion of the first gas generating agent 110 by activation of the first ignition device 4 and combustion of the second gas generating agent 120 by activation of the second ignition device 7. Note that the second ignition device 7 does not always operate; for example, the gas generator 100 can operate only the first ignition device 4 without activating the second ignition device 7 if the impact is weak, or can simultaneously activate the first ignition device 4 and the second ignition device 7 if the impact is strong, depending on the impact detected by a sensor (not shown).

[0030] [Inner cylinder material] The first inner cylinder member 5 is a cylindrical member with a bottom that extends from the bottom plate portion 32 toward the top plate portion 22, and includes a cylindrical surrounding wall portion 51 and a cover wall portion 52 that closes one end of the surrounding wall portion 51. The first ignition device 4 is fitted or press-fitted into the other end of the surrounding wall portion 51, thereby attaching the first inner cylinder member 5 to the bottom plate portion 32. As shown in FIG. 1 , the first ignition device 4 is surrounded by the surrounding wall portion 51, thereby forming a transfer chamber 53 between the first inner cylinder member 5 and the first ignition device 4. The transfer chamber 53 contains a transfer charge 6 that burns when the first ignition device 4 is activated. In addition, the surrounding wall portion 51 of the first inner cylinder member 5 has a plurality of communication holes h1 that communicate its internal space (i.e., the transfer chamber 53) with the external space. Before the first ignition device 4 is activated, the communication hole h1 is closed by a sealing tape (not shown).

[0031] The second inner cylinder member 8 is a bottomed, cylindrical member extending from the bottom plate portion 32 toward the top plate portion 22, and includes a cylindrical surrounding wall portion 81 and a lid wall portion 82 closing one end of the surrounding wall portion 81. The second ignition device 7 is fitted or press-fitted into the other end of the surrounding wall portion 81, thereby attaching the second inner cylinder member 8 to the bottom plate portion 32. As shown in FIG. 1 , the second inner cylinder member 8 has a second combustion chamber 20 formed therein in which the second ignition device 7 and a second gas generating agent 120 that burns upon activation of the second ignition device 7 are disposed. Furthermore, the surrounding wall portion 81 of the second inner cylinder member 8 has a plurality of communication holes h2 formed therein that communicate the internal space (i.e., the second combustion chamber 20) with the external space (i.e., the first combustion chamber 10). The communication holes h2 are closed with sealing tape (not shown) before the second ignition device 7 is activated.

[0032] [filter] 1, the filter 9 is formed in a cylindrical shape and is disposed in the first combustion chamber 10 so as to surround the first gas generating agent 110 and have the gas discharge holes H1 positioned radially outward. In other words, the filter 9 is disposed between the first gas generating agent 110 and the plurality of gas discharge holes H1 so as to surround the first gas generating agent 110. The filter 9 has an upper end surface that abuts against and is supported by the top plate portion 22 of the upper shell 2, and a lower end surface that abuts against and is supported by the bottom plate portion 23 of the lower shell 3. The filter 9 is supported by abutting against the portion 32. This filter 9 cools the combustion gas by removing heat from the combustion gas when the combustion gas of the first gas generating agent 110 and the second gas generating agent 120 passes through the filter 9. In addition to the function of cooling the combustion gas, the filter 9 also has the function of filtering the combustion gas by collecting combustion residues contained in the combustion gas.

[0033] [Transfer powder] As the enhancer charge 6, in addition to known black powder, a gas generant having good ignition properties and a higher combustion temperature than the first gas generant 110 can be used. The combustion temperature of the enhancer charge 6 can be set in the range of 1700 to 3000°C. As such an enhancer charge 6, known substances containing, for example, nitroguanidine (34% by weight) and strontium nitrate (56% by weight) can be used. Furthermore, the enhancer charge 6 can be in various shapes, such as granular, pellet, cylindrical, or disk shape.

[0034] [Gas Generator] The first gas generating agent 110 generates combustion gas by burning in response to activation of the first igniter 41. The second gas generating agent 120 generates combustion gas by burning in response to activation of the second igniter 71. A gas generating agent with a relatively low combustion temperature can be used for the first gas generating agent 110 or the second gas generating agent 120. The combustion temperature of the first gas generating agent 110 or the second gas generating agent 120 can be set in the range of 1000 to 1700°C. For such first gas generating agent 110 or second gas generating agent 120, 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. Furthermore, the first gas generating agent 110 or the second gas generating agent 120 can be in various shapes, such as granular, pellet, cylindrical, or disk shape.

[0035] [Gas exhaust hole] As shown in Fig. 1, a plurality of gas discharge holes H1 are formed in the peripheral wall 11 of the housing 1, aligned in the circumferential direction, penetrating the inside and outside of the housing 1. The gas discharge holes H1 penetrate from the inner surface 11a (the inner peripheral surface of the peripheral wall 11) of the housing 1 to the outer surface 11b (the outer peripheral surface of the peripheral wall 11). The internal space of the housing 1 (first combustion chamber 10) and the external space of the housing 1 are connected via the gas discharge holes H1. As a result, the gas discharge holes H1 form a flow path for discharging combustion gas from the inside of the housing 1 to the outside.

[0036] Here, in this specification, the cross-sectional area of ​​the gas flow path formed by the gas discharge hole H1 is defined as the area of ​​a cross section perpendicular to the flow direction of the combustion gas. In the first embodiment, the direction in which the gas discharge hole H1 penetrates the housing 1, i.e., the thickness direction of the housing 1, is the flow direction of the combustion gas. The smallest cross-sectional area in the gas flow path is defined as the minimum flow path cross-sectional area. In the gas discharge hole H1, the point with the minimum flow path cross-sectional area becomes the rate-limiting (restriction) point for gas discharge. In other words, the amount of gas discharged per unit time from the gas discharge hole H1 is determined by the minimum flow path cross-sectional area. The internal pressure of the housing 1 can be controlled by adjusting the number of opened gas discharge holes and the amount of gas discharged per unit time from the gas discharge holes.

[0037] As shown in Fig. 1, the plurality of gas discharge holes H1 are configured to include a plurality of large holes 12 and a plurality of small holes 13 having different minimum flow path cross-sectional areas. In gas generator 100 according to embodiment 1, large holes 12 have a larger minimum flow path cross-sectional area than small holes 13. Therefore, the amount of gas discharged per unit time from large holes 12 is greater than that from small holes 13. As shown in Fig. 1, in peripheral wall portion 11, a plurality of large holes 12 are arranged side by side in the circumferential direction, and a plurality of small holes 13 are arranged side by side in the circumferential direction at positions below the plurality of large holes 12. However, the arrangement of large holes 12 and small holes 13 is not limited to this.

[0038] [Sealing tape] As shown in FIG. 1 , a sealing tape S1 is attached to the inner surface 11a of the housing 1. The sealing tape S1 is an example of a "blocking member" according to the present disclosure. The sealing tape S1 is a strip-shaped member having, for example, a metal base layer with an adhesive layer formed on one side thereof, and is attached to the inner surface 11a of the housing 1 by adhering the adhesive layer to the inner surface 11a. The base layer is preferably made of aluminum, but may also be made of stainless steel or copper. The adhesive layer may be made of a known synthetic resin adhesive. As the adhesive, silicone-based, rubber-based, or epoxy-based adhesives are preferred in terms of heat resistance and adhesiveness. However, the material of the sealing tape S1 is not limited to the above.

[0039] 1, the sealing tape S1 closes the gas discharge holes H1 by being attached to the inner surface 11a while covering the openings of the gas discharge holes H1 on the inner surface 11a side of the housing 1. Before the first igniter 41 is activated, the gas discharge holes H1 are closed by the sealing tape S1, thereby preventing outside air (moisture) from entering the inside of the housing 1 through the gas discharge holes H1, and the inside of the housing 1 is maintained airtight.

[0040] 1, in the first embodiment, the large holes 12 and the small holes 13 are closed with separate seal tapes S1. All of the large holes 12 are closed together with one seal tape S1, and all of the small holes 13 are closed together with another seal tape S1. Note that each of the multiple gas discharge holes H1 may be closed with a separate seal tape, or all of the gas discharge holes H1 may be closed together with one seal tape.

[0041] When the first igniter 41 is activated, the sealing tape S1 ruptures under the pressure of the generated gas, thereby opening the multiple gas discharge holes H1. Herein, the pressure required to rupture the blocking member (in this example, the sealing tape S1) at each gas discharge hole and open the gas discharge hole is defined as the "rupture pressure." When the blocking member ruptures, the blocking member is pressed against the periphery of the opening of the gas discharge hole on the inner surface of the housing under the pressure of the combustion gas and is sheared along the periphery. Therefore, the rupture pressure of the blocking member at each gas discharge hole is determined according to the specifications of the blocking member and the properties of the opening of the gas discharge hole. The specifications of the blocking member specifically refer to the tensile strength and thickness of the blocking member. The lower the tensile strength of the blocking member or the thinner the blocking member, the lower the rupture pressure. Furthermore, the properties of the opening of the gas discharge hole specifically refer to the shape and periphery (length of the periphery) of the opening of the gas discharge hole on the inner surface of the housing. The shape of the opening includes the planar shape of the periphery of the opening as well as any protrusions or chamfers formed on the periphery of the opening. If protrusions are formed on the periphery of the opening, the rupture pressure will be lower, and if the periphery of the opening is chamfered, the rupture pressure will be higher. Furthermore, the longer the periphery of the opening, the lower the rupture pressure will be.

[0042] In gas generator 100 according to the first embodiment, the rupture pressure of seal tape S1 at large hole 12 is set to be lower than the rupture pressure of seal tape S1 at small hole 13. In setting the rupture pressures of large hole 12 and small hole 13, for example, the circumferential length of the opening of large hole 12 on the inner surface 11a side of housing 1 may be longer than the circumferential length of the opening of small hole 13 on the inner surface 11a side, or seal tape S1 closing large hole 12 may be thinner than seal tape S1 closing small hole 13.

[0043] [First and second small holes] Fig. 2 is a cross-sectional view taken along line AA in Fig. 1. Fig. 2 shows a cross section perpendicular to central axis CA1 of gas generator 100 before activation. For convenience, first ignition device 4, second ignition device 7, and joints 23, 33 are omitted from Fig. 2.

[0044] 2, the plurality of small holes 13 includes a plurality of first small holes 13a and a plurality of second small holes 13b. The first small holes 13a are an example of the "first gas discharge holes" according to the present disclosure. The second small holes 13b are an example of a "second gas discharge hole" according to the present disclosure. The first small holes 13a and the second small holes 13b are arranged alternately at equal intervals in the circumferential direction in the peripheral wall 11 of the housing 1.

[0045] In gas generator 100 according to the first embodiment, the amount of gas discharged per unit time is equivalent between first small hole 13a and second small hole 13b, but the rupture pressure of seal tape S1 at first small hole 13a and the rupture pressure of seal tape S1 at second small hole 13b are made slightly different. Details will be described later, but in gas generator 100 according to the first embodiment, the properties of the opening on the inner surface 11a side of small hole 13 are set so that the rupture pressure of seal tape S1 at first small hole 13a is lower than the rupture pressure of seal tape S1 at second small hole 13b. However, this does not limit the magnitude relationship between the rupture pressure of the first gas discharge hole (first small hole) and the rupture pressure of the second gas discharge hole (second small hole) in the technology according to the present disclosure. Furthermore, in the technology according to the present disclosure, it is not essential that there be a plurality of first gas exhaust holes and a plurality of second gas exhaust holes, and it is sufficient that the plurality of gas exhaust holes include at least one first gas exhaust hole and one second gas exhaust hole with different rupture pressures for the blocking member. Furthermore, the arrangement of the first gas exhaust holes and the second gas exhaust holes in the technology according to the present disclosure is not limited to the above, and for example, a plurality of first gas exhaust holes and a plurality of second gas exhaust holes may be unevenly distributed.

[0046] Fig. 3 is an enlarged cross-sectional view illustrating the shape of the first small hole 13a according to the first embodiment. Fig. 3 illustrates the cross section BB of Fig. 2. In Fig. 3, reference numeral 13a1 denotes the opening of the first small hole 13a on the inner surface 11a side of the housing 1, and reference numeral 13a2 denotes the opening of the first small hole 13a on the outer surface 11b side of the housing 1. The first small hole 13a according to the first embodiment is formed as a hole having a circular (perfect circle) cross section perpendicular to the thickness direction (gas flow direction) of the housing 1. The opening 13a1 of the first small hole 13a is covered with a sealing tape S1.

[0047] As shown in FIG. 3 , the first small hole 13a includes a straight portion 131 and a tapered portion 132. The straight portion 131 is formed so that its cross section (cross-sectional shape and cross-sectional area) is constant in the thickness direction of the housing 1. The inner wall surface 131a forming the straight portion 131 has a cylindrical shape with a constant diameter in the thickness direction of the housing 1. The tapered portion 132 is continuous with the straight portion 131 and is formed so that its cross-sectional area increases with increasing distance from the straight portion 131 in the thickness direction of the housing 1. The inner wall surface 132a forming the tapered portion 132 has a cylindrical shape whose diameter increases with increasing distance from the straight portion 131 in the thickness direction of the housing 1. In the first small hole 13a according to the first embodiment, the tapered portion 132 opens toward the inner surface 11a of the housing 1, and the straight portion 131 opens toward the outer surface 11b of the housing 1. The tapered portion 132 of the first small hole 13a opens toward the inner surface 11a, thereby forming an opening 13a1. The straight portion 131 of the first small hole 13a opens to the outer surface 11b, thereby forming an opening 13a2. As will be described in detail later, the first small hole 13a according to the first embodiment is formed by punching from the outer surface 11b side of the housing 1. The inner wall surface 131a of the straight portion 131 is formed as a shear surface formed by the punching process. The inner wall surface 132a of the tapered portion 132 is formed as a fracture surface formed by the punching process. The shear surface is formed as a relatively smooth surface with a metallic luster, while the fracture surface is formed as a relatively rough surface without a metallic luster.

[0048] As shown in FIG. 3, the cross-sectional area of ​​the gas flow path formed by the first small hole 13a is smallest at the straight portion 131. That is, in the first small hole 13a, the straight portion 131 acts as a throttle for gas discharge. The minimum flow path cross-sectional area of ​​the first small hole 13a is defined as A1. Cross-sectional view C1 in FIG. 3 shows a cross section perpendicular to the thickness direction of the housing 1 at the straight portion 131. As shown in cross-sectional view C1, in the first small hole 13a according to embodiment 1, the cross-sectional area of ​​the straight portion 131 is the minimum flow path cross-sectional area A1.

[0049] Fig. 4 is a diagram showing the shape of opening 13a1 of first small hole 13a on the inner surface 11a side of housing 1 according to embodiment 1. As shown in Fig. 4, the planar shape of the periphery of opening 13a1 of first small hole 13a is circular. The diameter of opening 13a1 is D1, and the periphery of opening 13a1 (the length of the periphery of opening 13a1) is P1.

[0050] Fig. 5 is an enlarged cross-sectional view illustrating the shape of the second small hole 13b according to the first embodiment. Fig. 5 illustrates the CC cross section of Fig. 2. In Fig. 5, reference numeral 13b1 denotes the opening of the second small hole 13b on the inner surface 11a side of the housing 1, and reference numeral 13b2 denotes the opening of the second small hole 13b on the outer surface 11b side of the housing 1. Like the first small hole 13a, the second small hole 13b according to the first embodiment is formed as a hole having a circular cross section perpendicular to the thickness direction (gas flow direction) of the housing 1. The opening 13b1 of the second small hole 13b is covered with a sealing tape S1.

[0051] Similar to the first small hole 13a, the second small hole 13b includes a straight portion 131 formed by a sheared surface and a tapered portion 132 formed by a broken surface. The diameter of the straight portion 131 of the second small hole 13b is equal to the diameter of the straight portion 131 of the first small hole 13a. In the second small hole 13b according to the first embodiment, unlike the first small hole 13a, the straight portion 131 opens toward the inner surface 11a of the housing 1, and the tapered portion 132 opens toward the outer surface 11b of the housing 1. The straight portion 131 of the second small hole 13b opens toward the inner surface 11a, thereby forming an opening 13b1. The tapered portion 132 of the second small hole 13b opens toward the outer surface 11b, thereby forming an opening 13b2. The second small holes 13b according to the first embodiment are formed by punching from the inner surface 11a side of the housing 1, in contrast to the first small holes 13a, as will be described in detail later.

[0052] As shown in FIG. 5, the cross-sectional area of ​​the gas flow path formed by the second small hole 13b is smallest at the straight portion 131, as with the first small hole 13a. That is, in the second small hole 13b as well, the straight portion 131 acts as a throttle for gas discharge. The minimum flow path cross-sectional area of ​​the second small hole 13b is designated as A2. Cross-sectional view C2 in FIG. 5 shows a cross section perpendicular to the thickness direction of the housing 1 at the straight portion 131. As shown in cross-sectional view C2, in the second small hole 13b according to embodiment 1, the cross-sectional area of ​​the straight portion 131 is the minimum flow path cross-sectional area A2.

[0053] 6 is a diagram showing the shape of the opening 13b1 of the second small hole 13b on the inner surface 11a side of the housing 1 according to the first embodiment. 6 As shown in Fig. 1, the planar shape of the periphery of opening 13b1 of second small hole 13b is circular, similar to opening 13a1 of first small hole 13a. The diameter of opening 13b1 is D2, and the periphery of opening 13b1 (the length of the periphery of opening 13b1) is P2.

[0054] Here, the first small hole 13a and the second small hole 13b are compared in terms of the minimum flow path cross-sectional area and the properties of the opening on the inner surface 11a side of the housing 1. As described above, the first small hole 13a and the second small hole 13b have the smallest flow path cross-sectional area at the straight portion 131, which has the same diameter. Therefore, the minimum flow path cross-sectional area A1 of the first small hole 13a and the minimum flow path cross-sectional area A2 of the second small hole 13b are equivalent. In other words, A1 = A2. Therefore, the first small hole 13a and the second small hole 13b have the same gas discharge amount per unit time. Furthermore, as shown in FIGS. 4 and 6, the opening 13a1 of the first small hole 13a and the opening 13b1 of the second small hole 13b are both circular and the same shape. Here, the opening 13a1 of the first small hole 13a is formed by a tapered portion 132, while the opening 13b1 of the second small hole 13b is formed by a straight portion 131, so the opening 13a1 of the first small hole 13a and the opening 13b1 of the second small hole 13b have different diameters. Specifically, the diameter D1 of the opening 13a1 is larger than the diameter D2 of the opening 13b1. Since D1>D2, the perimeter P1 of the opening 13a1 of the first small hole 13a is larger than the diameter D2 of the opening 13b1. The perimeter P1 is longer than the perimeter P2 of the opening 13b1 of the second small hole 13b. In other words, P1 > P2. Therefore, the tearing pressure of the seal tape S1 at the first small hole 13a is lower than the tearing pressure of the seal tape S1 at the second small hole 13b. As a result, the first small hole 13a is easier to open than the second small hole 13b.

[0055] [Gas generator manufacturing method] Next, the gas generator according to the first embodiment manufacturing However, the method for manufacturing a gas generator according to the present disclosure is not limited to the following method. FIG. 7 is a flowchart of a method for manufacturing a gas generator according to embodiment 1. As shown in FIG. 7, the method for manufacturing a gas generator according to embodiment 1 manufacturing The method includes a preparation step in step S101, a gas discharge hole formation step in step S102, a closing member attachment step in step S103, and an assembly step in step S104.

[0056] First, in the preparation process of step S101, the first ignition device 4, the first inner cylindrical member 5, the transfer charge 6, the second ignition device 7, the second inner cylindrical member 8, the filter 9, the upper shell 2, the lower shell 3, the first gas generating agent 110, the second gas generating agent 120, and the sealing tape S1 are prepared.

[0057] Next, in step S102, a gas discharge hole forming process, multiple gas discharge holes H1 are formed in the housing 1 so that the rupture pressure of the sealing tape S1 is different between the first small holes 13a and the second small holes 13b. Specifically, multiple large holes 12 and multiple small holes 13 are formed by punching the upper peripheral wall portion 21 of the upper shell 2. A punch with a larger diameter is used to punch the large holes 12 than the punch used to punch the small holes 13. This makes the minimum flow path cross-sectional area of ​​the large holes 12 larger than the minimum flow path cross-sectional area of ​​the small holes 13. As a result, the large holes 12 emit more gas per unit time than the small holes 13.

[0058] Furthermore, when forming the multiple small holes 13, punching is performed so that the tearing pressure of the seal tape S1 at the first small hole 13a and the tearing pressure of the seal tape S1 at the second small hole 13b are different from each other. FIG. 8 is a cross-sectional view illustrating a method for forming the first small hole 13a according to the first embodiment. FIG. 9 is a cross-sectional view illustrating a method for forming the second small hole 13b according to the first embodiment. The first small hole 13a and the second small hole 13b are formed by punching using a punch of the same diameter. Reference numeral 200 in FIGS. 8 and 9 indicates the punch used for the processing. As shown in FIG. 8, the first small hole 13a is formed by punching from the outer surface 11b side of the housing 1. As a result, in the first small hole 13a, a straight portion 131 due to a shear surface is formed on the outer surface 11b side of the housing 1, and a tapered portion 132 due to a fracture surface is formed on the inner surface 11a side of the housing 1. 9, the second small holes 13b are formed by punching from the inner surface 11a side of the housing 1. As a result, in the second small holes 13b, a straight portion 131 is formed on the inner surface 11a side of the housing 1, and a tapered portion 132 is formed on the outer surface 11b side of the housing 1.

[0059] In the gas discharge hole forming process, a punch 200 having the same diameter is used for the first small hole 13a and the second small hole 13b, so that the straight portion 131 having the same diameter is formed in each of the first small hole 13a and the second small hole 13b. As a result, the minimum flow path cross-sectional area A1 of the first small hole 13a and the minimum flow path cross-sectional area A2 of the second small hole 13b are equivalent. Furthermore, in the gas discharge hole forming process, the punching direction is opposite for the first small hole 13a and the second small hole 13b, so that the positional relationship between the straight portion 131 and the tapered portion 132 is reversed between the first small hole 13a and the second small hole 13b. As a result, the circumferential lengths of the opening 13a1 of the first small hole 13a and the opening 13b1 of the second small hole 13b are different from each other. In this example, the perimeter P1 of the opening 13a1 of the first small hole 13a is longer than the perimeter P2 of the opening 13b1 of the second small hole 13b.

[0060] Next, in step S103, a closing member is attached, and the sealing tape S1 is attached to the inner surface 11a of the housing 1 so as to cover the openings of the gas discharge holes H1 on the inner surface 11a side of the housing 1. This closes the gas discharge holes H1. In this example, one sealing tape S1 closes all of the large holes 12, and another sealing tape S1 closes all of the small holes 13. Therefore, the first small holes 13a and the second small holes 13b are closed by sealing tape S1 of the same specifications.

[0061] Next, in the assembly process of step S104, the first ignition device 4 and the second ignition device 7 are attached to the lower shell 3, the first inner cylindrical member 5 filled with the transfer charge 6 is fixed to the first ignition device 4, and the second inner cylindrical member 8 filled with the second gas generating agent 120 is fixed to the second ignition device 7. Thereafter, a filter 9 is placed in the lower shell 3, and the inside of the filter 9 is filled with the first gas generating agent 110. Finally, the upper shell 2 is placed over the lower shell 3, and the joint portion 23 of the upper shell 2 and the joint portion 33 of the lower shell 3 are overlapped and joined by laser welding or the like, thereby forming the housing 1. In this manner, the gas generator 100 is assembled.

[0062] [Operation] The basic operation of gas generator 100 according to embodiment 1 will be described below with reference to Fig. 1. In this example, a case will be described in which second ignition device 7 is activated later than first ignition device 4 (that is, after first ignition device 4 is activated).

[0063] When a sensor (not shown) detects an impact, an ignition current is supplied to the first igniter 41 of the first ignition device 4, activating the first igniter 41. The ignition charge housed in the first igniter 41 then burns, and the resulting combustion products, such as flame and high-temperature gas, are released into the transfer chamber 53. This causes the transfer charge 6 housed in the transfer chamber 53 to burn, generating combustion gas within the transfer chamber 53. When the sealing tape blocking the communication hole h1 of the surrounding wall portion 51 of the first inner cylindrical member 5 is torn by the pressure of the combustion gas from the transfer charge 6, the combustion gas is discharged to the outside of the transfer chamber 53 through the communication hole h1. The combustion gas from the transfer charge 6 then comes into contact with the first gas generating agent 110 arranged around the surrounding wall portion 51, igniting the first gas generating agent 110. The combustion of the first gas generating agent 110 generates high-temperature, high-pressure combustion gas within the first combustion chamber 10. The sealing tape S1 is ruptured by the pressure of the combustion gas, thereby opening a plurality of gas discharge holes H1. The combustion gas passes through the filter 9, whereby the combustion gas is cooled and combustion residue is collected. The combustion gas of the first gas generating agent 110, cooled and filtered by the filter 9, is discharged to the outside of the housing 1 through the plurality of gas discharge holes H1.

[0064] Next, when the second igniter 71 of the second ignition device 7 is activated, the second gas generating agent 120 accommodated in the second combustion chamber 20 burns, generating combustion gas within the second combustion chamber 20. When the seal tape closing the communication hole h2 of the surrounding wall portion 81 of the second inner cylindrical member 8 is torn by the pressure of the combustion gas from the second gas generating agent 120, the combustion gas is discharged through the communication hole h2 into the first combustion chamber 10. The combustion gas from the second gas generating agent 120 is cooled and filtered by the filter 9, and then discharged to the outside of the housing 1 through the multiple gas discharge holes H1.

[0065] The combustion gases from the first gas generating agent 110 and the second gas generating agent 120 flow into an airbag (not shown) after being released to the outside of the housing 1. When the airbag inflates, a cushion is formed between the occupant and a hard structure, protecting the occupant from impact.

[0066] [Opening timing] Generally, the combustion performance of a gas generant tends to improve as the temperature or pressure around the gas generant increases. In other words, in a low temperature and low pressure environment, the combustion of the gas generant becomes sluggish. Therefore, for example, when operating at a high temperature (high temperature operation) and when operating at a low temperature (low pressure), In order to minimize the difference in output performance of the gas generator between low and high temperature operation and to stabilize output performance, it is necessary to maintain the internal pressure of the housing during low temperature operation, especially in the initial stage when the gas generating agent begins to burn.

[0067] As described above, in the gas generator 100 according to the first embodiment, the rupture pressure of the seal tape S1 at the large hole 12 is set to be lower than the rupture pressure of the seal tape S1 at the small hole 13. For example, assume that the first igniter 41 and the second igniter 71 are activated simultaneously during low-temperature operation, causing the first gas generating agent 110 and the second gas generating agent 120 to all combust. In this case, in the initial stage, as the internal pressure of the housing 1 increases, only the large hole 12 of the multiple gas discharge holes H1 opens. This causes some of the combustion gas to be discharged, reducing the internal pressure of the housing 1, but because the small hole 13 is closed, the combustion performance of the gas generating agent is maintained. Then, as the internal pressure of the housing 1 further increases as the gas generating agent burns, the small hole 13 opens with a delay after the large hole 12. However, if all of the small holes 13 (all of the first small holes 13a and all of the second small holes 13b) were to open at once, there would be a concern that the internal pressure of the housing 1 would drop suddenly, resulting in a decline in the combustion performance of the gas generating agent. In contrast, in the gas generator 100 according to the first embodiment, the rupture pressure of the seal tape S1 is made slightly different between the first small holes 13a and the second small holes 13b, thereby making the ease of opening different between the first small holes 13a and the second small holes 13b. Therefore, the first small holes 13a, which have a relatively low rupture pressure, open relatively early, and the second small holes 13b, which have a relatively high rupture pressure, open relatively late. By making the opening timing of the first small holes 13a and the second small holes 13b different so that all of the small holes 13 do not open at once, a sudden drop in the internal pressure of the housing 1 is suppressed, and the combustion performance of the gas generating agent is maintained.

[0068] [Actions and Effects] As described above, gas generator 100 according to embodiment 1 comprises housing 1 that accommodates first igniter 41 and first gas generating agent 110 therein, a plurality of gas discharge holes H1 that penetrate the inside and outside of housing 1, and seal tape S1 attached to inner surface 11a of housing 1. Before activation of gas generator 100, seal tape S1 covers the openings of the plurality of gas discharge holes H1 on the inner surface 11a side of housing 1, thereby closing off the plurality of gas discharge holes H1, and opens the plurality of gas discharge holes H1 by rupturing under the pressure of combustion gas generated within housing 1 upon activation of gas generator 100. The plurality of gas discharge holes H1 include at least one first small hole 13a and one second small hole 13b, which have different rupture pressures for seal tape S1. The minimum flow path cross-sectional area A1 of the gas flow path formed by the first small hole 13a is equal to the minimum flow path cross-sectional area A2 of the gas flow path formed by the second small hole 13b, and the first small hole 13a and the second small hole 13b have different circumferential lengths of their openings on the inner surface 11a side of the housing 1 so that their rupture pressures are different.

[0069] According to gas generator 100 configured as described above, by making the minimum flow path cross-sectional area for controlling the gas discharge amount equal between first small hole 13a and second small hole 13b, the amount of gas discharged per unit time through first small hole 13a and the amount of gas discharged per unit time through second small hole 13b can be made equal. Furthermore, by making the circumferential lengths of the openings on inner surface 11a side of housing 1 different between first small hole 13a and second small hole 13b, the bursting pressures of first small hole 13a and second small hole 13b can be made different from each other. In other words, it is possible to intentionally set two types of gas discharge holes that have the same internal pressure control function of housing 1 but different ease of opening. As a result, the timing of opening of first small hole 13a and second small hole 13b can be made different, thereby suppressing a sudden drop in internal pressure in housing 1 at the initial stage of operation of gas generator 100. As a result, the combustion performance of the gas generating agent can be maintained, and the output performance of the gas generator 100 can be stabilized.

[0070] Furthermore, in gas generator 100 according to the first embodiment, first small hole 13a and second small hole 13b are closed with seal tape S1 of the same specifications. Instead, the difference in rupture pressure is caused by the difference in the properties (perimeter) of the opening 13a1 of the first small hole 13a and the opening 13b1 of the second small hole 13b. This eliminates the need to use different specifications for the seal tape S1 for the first small hole 13a and the second small hole 13b, making it possible to block all small holes 13 with a common (single) seal tape S1. However, in the technology disclosed herein, the specifications of the blocking member for the first gas discharge hole and the second gas discharge hole may be different from each other.

[0071] Note that gas generator 100 according to the first embodiment is configured so that the bursting pressure of first small hole 13a is lower than the bursting pressure of second small hole 13b, but in the technology according to the present disclosure, the magnitude relationship between the bursting pressure of the first gas discharge hole and the bursting pressure of the second gas discharge hole is not limited to the above. The bursting pressure of the first gas discharge hole may be higher than the bursting pressure of the second gas discharge hole. Also, in gas generator 100 according to the first embodiment, large hole 12 and small hole 13 having different minimum flow path cross-sectional areas are included in the plurality of gas discharge holes H1, but in the technology according to the present disclosure, it is not essential that there be a plurality of types of gas discharge holes having different minimum flow path cross-sectional areas.

[0072] Furthermore, in the technology according to the present disclosure, the multiple gas discharge holes may include, in addition to the first gas discharge hole and the second gas discharge hole, a gas discharge hole having the same minimum flow path cross-sectional area but a different rupture pressure of the closing member from the first gas discharge hole and the second gas discharge hole. That is, there may be three or more types of gas discharge holes having the same minimum flow path cross-sectional area but different rupture pressures of the closing member.

[0073] In gas generator 100 according to the first embodiment, first small hole 13a and second small hole 13b are formed as holes having a circular cross section, and first small hole 13a and second small hole 13b have openings (13a1, 13b1) on the inner surface 11a side of housing 1 with diameters (D1, D2) that are different between first small hole 13a and second small hole 13b. This makes it possible to make the perimeters (P1, P2) of the openings on the inner surface 11a side of housing 1 different between first small hole 13a and second small hole 13b. Note that, in the technology according to the present disclosure, the cross-sectional shapes of the first gas discharge hole and second gas discharge hole and the shapes of the openings of the first gas discharge hole and second gas discharge hole are not limited to circles, and various shapes such as oval, elliptical, polygonal, etc., as will be described later, can be employed.

[0074] Moreover, the first small hole 13a and the second small hole 13b according to the first embodiment include a straight portion 131 having a constant cross section in the thickness direction of the housing 1, and a tapered portion 132 that is continuous with the straight portion 131 and whose cross-sectional area increases with increasing distance from the straight portion 131 in the thickness direction. In one of the first small hole 13a and the second small hole 13b (first small hole 13a), the tapered portion 132 opens toward the inner surface 11a of the housing 1, and the straight portion 131 opens toward the outer surface 11b of the housing 1. In the other (second small hole 13b), the straight portion 131 opens toward the inner surface 11a of the housing 1, and the tapered portion 132 opens toward the outer surface 11b of the housing 1. In this way, by configuring the positional relationship between the straight portion 131 and the tapered portion 132 to be reversed between the first small hole 13a and the second small hole 13b, it is possible to make the rupture pressure of the sealing tape S1 different between the first small hole 13a and the second small hole 13b while maintaining the same minimum flow path cross-sectional area. Note that in the technology disclosed herein, the second gas discharge hole (second small hole 13b) may have a tapered portion opening on the inner surface side of the housing and a straight portion opening on the outer surface side of the housing, and the first gas discharge hole (first small hole 13a) may have a straight portion opening on the inner surface side of the housing and a tapered portion opening on the outer surface side of the housing.

[0075] In addition, in the gas generator 100 according to Embodiment 1, the straight portion 131 is formed by a cross-sectional shape, and the tapered portion 132 is formed by a fracture surface. The gas discharge hole H1 having such a straight portion 131 and tapered portion 132 can be preferably formed by punching. However, in the technology according to the present disclosure, the method of forming the first gas discharge hole and the second gas discharge hole in the housing is not limited to punching. For example, the first gas discharge hole and the second gas discharge hole may be drilled.

[0076] Here, as shown in FIGS. 3 and 5, let the thickness of the housing 1 be t1, and the length of the straight portion 131 of the small hole 13 in the thickness direction of the housing 1 be t2. At this time, it is also possible to set 0.3 < t2 / t1 < 0.7. Such a gas discharge hole H1 can be preferably formed by punching. However, in the technology according to the present disclosure, the relationship between the thickness of the housing and the length of the straight portion is not limited to the above.

[0077] In addition, the manufacturing method of the gas generator 100 according to Embodiment 1 includes a step of forming a plurality of gas discharge holes H1 including at least one each of the first small holes 13a and the second small holes 13b in the housing 1, and a step of attaching a sealing tape S1 to the inner surface 11a of the housing 1 so as to cover the opening on the inner surface 11a side of the housing 1 in the plurality of gas discharge holes H1. In the step of forming a plurality of gas discharge holes H1 in the housing 1, the minimum flow path cross-sectional area A1 of the gas flow path formed by the first small hole 13a and the minimum flow path cross-sectional area A2 of the gas flow path formed by the second small hole 13b are made equal, and the first small hole 13a and the second small hole 13b are used to make the circumferences of the openings on the inner surface 11a side of the housing 1 different from each other. Thus, in the manufacturing method of the gas generator 100, a plurality of gas discharge holes H1 are formed in the housing 1 so that the cracking pressures of the sealing tape S1 are different between the first small hole 13a and the second small hole 13b. By such a manufacturing method, the opening timings are made different between the first small hole 13a and the second small hole 13b, and a rapid internal pressure drop of the housing 1 can be suppressed. That is, a gas generator 100 with stable output performance can be manufactured.

[0078] Furthermore, in the manufacturing method for gas generator 100 according to embodiment 1, in the step of forming multiple gas discharge holes H1 in housing 1, first small holes 13a are formed by punching from the side of outer surface 11b of housing 1, and second small holes 13b are formed by punching from the side of inner surface 11a of housing 1. That is, first small holes 13a and second small holes 13b are punched in opposite directions. This makes it possible to make the circumferential lengths of the openings of first small holes 13a and second small holes 13b on the side of inner surface 11a of housing 1 different from each other. Note that this difference in the circumferential lengths of the openings of the gas discharge holes on the side of inner surface 11a of housing 1 may be applied to large hole 12 in addition to first small hole 13a and second small hole 13b.

[0079] [Modification of the first embodiment] The following describes gas generator 100 according to a modification of embodiment 1. In describing the modification, differences from the aspect described in Figures 1 to 9 will be mainly described, and detailed description of similar points will be omitted.

[0080] [Modification 1 of Embodiment 1] Fig. 10 is an enlarged cross-sectional view for explaining the shape of second small hole 13b according to Modification 1 of Embodiment 1. Fig. 10 shows a cross section corresponding to Fig. 5. Also, cross-sectional view C3 in Fig. 10 shows a cross section perpendicular to the thickness direction of housing 1 at second small hole 13b.

[0081] The second small holes 13b according to the first modification are formed as holes with a circular cross section. The second small holes 13b according to the first modification are different from the second small holes 13b shown in FIG. 5 in that the cross section is constant from the opening 13b1 on the inner surface 11a side of the housing 1 to the opening 13b2 on the outer surface 11b side. In other words, the second small holes 13b according to the first modification do not have the tapered portion 132 as shown in FIG. 5. Therefore, the cross-sectional area of ​​the gas flow path formed by the second small holes 13b according to the first modification is constant at the minimum flow path cross-sectional area A2 in the thickness direction of the housing 1.

[0082] In the first modification, the first small holes 13a shown in FIG. 3 and the second small holes 13b shown in FIG. 10 are combined so that the minimum flow path cross-sectional areas (A1, A2) are equal to each other. Diameter D1 of opening 13a1 on the inner surface 11a side of small hole 13a is larger than diameter D2 of opening 13b1 on the inner surface 11a side of second small hole 13b. As a result, circumferential length P1 of opening 13a1 of first small hole 13a is longer than circumferential length P2 of opening 13b1 of second small hole 13b, and therefore the bursting pressure of first small hole 13a is lower than the bursting pressure of second small hole 13b. As described above, in gas generator 100 pertaining to modification 1 as well, first small hole 13a and second small hole 13b have the same minimum flow path cross-sectional area but the bursting pressures of the blocking members are different from each other.

[0083] [Modification 2 of Embodiment 1] FIG. 11 is an enlarged cross-sectional view illustrating the shape of the first small hole 13a according to Modification 2 of Embodiment 1. FIG. 11 illustrates a cross section equivalent to FIG. 3. An end view E1 of FIG. 11 illustrates an opening 13a2 of the first small hole 13a on the outer surface 11b side of the housing 1. FIG. 12 is an enlarged cross-sectional view illustrating the shape of the second small hole 13b according to Modification 2 of Embodiment 1. FIG. 12 illustrates a cross-section equivalent to FIG. 5. An end view E2 of FIG. 12 illustrates an opening 13b1 of the second small hole 13b on the inner surface 11a side of the housing 1. The first small hole 13a and the second small hole 13b according to Modification 2 are formed as holes with circular cross sections. The first small hole 13a according to Modification 2 is formed so that the cross-sectional area increases from the opening 13a2 on the outer surface 11b side of the housing 1 toward the opening 13a1 on the inner surface 11a side. On the other hand, the second small hole 13b according to the second modification is formed so that the cross-sectional area increases from the opening 13b1 on the inner surface 11a side of the housing 1 to the opening 13b2 on the outer surface 11b side. In other words, the first small hole 13a and the second small hole 13b according to the second modification do not have the straight portion 131 as shown in Figures 3 and 5, and the taper directions are opposite to each other.

[0084] 11, the first small hole 13a according to Modification 2 has the smallest flow path cross-sectional area at an opening 13a2 on the outer surface 11b side of the housing 1. Also, as shown in FIG. 12, the second small hole 13b according to Modification 2 has the smallest flow path cross-sectional area at an opening 13b1 on the inner surface 11a side of the housing 1.

[0085] In Modification 2, the minimum flow path cross-sectional area A1 of first small hole 13a and the minimum flow path cross-sectional area A2 of second small hole 13b are equivalent. Therefore, diameter D1 of opening 13a1 on the inner surface 11a side of first small hole 13a is larger than diameter D2 of opening 13b1 on the inner surface 11a side of second small hole 13b. As a result, circumferential length P1 of opening 13a1 of first small hole 13a is longer than circumferential length P2 of opening 13b1 of second small hole 13b, so the bursting pressure of first small hole 13a can be made lower than the bursting pressure of second small hole 13b. As described above, in gas generator 100 according to Modification 2 as well, first small hole 13a and second small hole 13b have equivalent minimum flow path cross-sectional areas but different bursting pressures of the blocking members. 10 to 12 may also be applied to the large holes 12, and two types of large holes 12 may be provided that have the same minimum flow path cross-sectional area but slightly different burst pressures.

[0086] <Embodiment 2> Gas generator 100 according to embodiment 2 will be described below. Embodiment 2 corresponds to an embodiment in which, among possible embodiments of the technology according to the present disclosure, the shape of the opening of the first gas discharge hole on the inner surface side of the housing and the shape of the opening of the second gas discharge hole on the inner surface side of the housing are different from each other. In the description of embodiment 2, differences from the embodiment 1 described in Figures 1 to 12 will be mainly described, and a detailed description of similar points will be omitted.

[0087] Fig. 13 is an enlarged cross-sectional view illustrating the shape of the first small hole 13a according to the second embodiment. Fig. 13 illustrates a cross section corresponding to Fig. 3. Also, cross-sectional view C4 in Fig. 13 illustrates a cross section perpendicular to the thickness direction of the housing 1 at the first small hole 13a. Fig. 14 is an enlarged cross-sectional view illustrating the shape of the second small hole 13b according to the second modification of the first embodiment. 1414 shows a cross section corresponding to FIG. 5. Also, cross section C5 in FIG. 14 shows a cross section perpendicular to the thickness direction of the housing 1 at the second small hole 13b. The first small hole 13a and the second small hole 13b are formed as holes with a circular cross section, and the cross section is constant from the opening on the inner surface 11a side to the opening on the outer surface 11b side of the housing 1. In the second embodiment, the minimum flow path cross-sectional area A1 of the first small hole 13a and the minimum flow path cross-sectional area A2 of the second small hole 13b are equal to each other.

[0088] As shown in FIG. 12 , a protrusion 133 that protrudes toward the inside of the housing 1 is formed on the periphery of the opening 13a1 of the first small hole 13a on the inner surface 11a side of the housing 1 according to the second embodiment. The protrusion 133 is, for example, a burr that occurs during the processing of the first small hole 13a. For example, in the process of forming the multiple gas discharge holes H1 in the housing 1, the first small hole 13a is perforated from the outer surface 11b side of the housing 1 by punching or drilling, and the burr that occurs at the opening 13a1 on the inner surface 11a side of the housing 1 is left unremoved, thereby forming the protrusion 133. As shown in FIG. 13 , the sealing tape S1 is attached to the inner surface 11a of the housing 1 so as to cover the protrusion 133. When the gas generating agents 110, 120 combust during operation of the gas generator 100, the sealing tape S1 is pressed against the periphery of the opening 13a1 of the first small hole 13a by the pressure of the combustion gas. At this time, the protrusions 133 press the seal tape S1 by piercing it, making it easier for the seal tape S1 to tear compared to when the protrusions 133 are not formed. In other words, the formation of the protrusions 133 reduces the tearing pressure of the seal tape S1 at the first small hole 13a.

[0089] As shown in Fig. 14, a chamfered portion 134 is formed by C-chamfering around the periphery of the opening 13b1 of the second small hole 13b on the inner surface 11a side of the housing 1 in the second embodiment. For example, in the process of forming the multiple gas discharge holes H1 in the housing 1, the second small hole 13b can be drilled from the outer surface 11b side of the housing 1 by punching or drilling, and the opening 13b1 on the inner surface 11a side of the housing 1 can be chamfered to form the chamfered portion 134. The chamfered portion 134 is not limited to a C-chamfered shape and may have other shapes, such as an R-chamfered shape. As shown in Fig. 13, the sealing tape S1 is attached to the inner surface 11a of the housing 1 so as to cover the chamfered portion 134. When the gas generating agents 110, 120 burn, the pressure of the combustion gas presses the sealing tape S1 against the periphery of the opening 13b1 of the second small hole 13b, but because the corners of the periphery are rounded by the chamfered portion 134, shear force is less likely to act on the sealing tape S1 than in a case where the chamfered portion 134 is not formed, making the sealing tape S1 less likely to tear. In other words, the formation of the chamfered portion 134 increases the tearing pressure of the sealing tape S1 at the second small hole 13b.

[0090] As described above, in gas generator 100 according to embodiment 2, in the step of forming a plurality of gas discharge holes H1 in housing 1, the shapes of the openings of first small hole 13a and second small hole 13b on the side of inner surface 11a of housing 1 are made different from each other. Therefore, also in gas generator 100 according to embodiment 2, first small hole 13a and second small hole 13b have the same minimum flow path cross-sectional area but different rupture pressures of sealing tape S1. This enables the output performance of gas generator 100 to be stabilized.

[0091] In the second embodiment, the first small hole 13a has a protrusion 133 and the second small hole 13b has a chamfered portion 134, but the technology according to the present disclosure is not limited to this. By forming a protrusion on at least a part of the periphery of the opening on the inner surface side of the housing in only one of the first gas discharge hole (first small hole 13a) and the second gas discharge hole (second small hole 13b), it is possible to make the rupture pressure of the first gas discharge hole and the second gas discharge hole different from each other. For example, by drilling one of the first gas discharge hole and the second gas discharge hole from the outer surface side of the housing by punching or drilling, and drilling the other from the inner surface side of the housing by punching, at least a part of the opening on the inner surface side of the housing in only one of the first gas discharge hole and the second gas discharge hole can be made different from each other. A protrusion can be formed on the opening of the first gas discharge hole or the second gas discharge hole. Furthermore, by chamfering the periphery of the opening of only one of the first gas discharge hole or the second gas discharge hole on the inner surface side of the housing, the burst pressure of the first gas discharge hole and the second gas discharge hole can be made different from each other. Furthermore, the shapes shown in Figures 13 and 14 may also be applied to the large hole 12, and two types of large hole 12 with the same minimum flow path cross-sectional area but slightly different burst pressures may be provided.

[0092] [Modification of the second embodiment] In the second embodiment, the planar shapes of the peripheries of the openings on the inner surface 11a side of the housing 1 may be different between the first small hole 13a and the second small hole 13b. FIG. 15 shows examples of the shapes of the openings on the inner surface 11a side of the housing 1 in the small hole 13. FIG. 15(A) shows a circular opening, FIG. 15(B) shows an elliptical opening, FIG. 15(C) shows a rectangular opening, and FIG. 15(D) shows a square opening. Note that the shapes shown in FIG. 15 are merely examples. In addition to the shapes shown in FIG. 15, various shapes such as ovals and polygons other than squares can be used for the opening shapes.

[0093] For example, the opening 13a1 of the first small hole 13a and the opening 13b1 of the second small hole 13b may each be selected from the shapes shown in Figures 15(A) to 15(D). This allows the first small hole 13a and the second small hole 13b to have different tearing pressures for the sealing tape S1. For example, the first small hole 13a may be an elliptical hole with a constant cross-section, and the second small hole 13b may be a circular hole with a constant cross-section and a flow path cross-sectional area equivalent to that of the first small hole 13a. When compared with the same area, the ellipse has a longer perimeter than the circle. Furthermore, for example, the first small hole 13a may be a rectangular hole with a constant cross-section, and the second small hole 13b may be a square hole with a constant cross-section and a flow path cross-sectional area equivalent to that of the first small hole 13a. When compared with the same area, the rectangle has a longer perimeter than the square. In both of the above examples, the perimeter P1 of the opening 13a1 of the first small hole 13a is longer than the perimeter P2 of the opening 13b1 of the second small hole 13b. In other words, the first small hole 13a and the second small hole 13b can be made different not only in the shape of the opening on the inner surface 11a side of the housing 1 but also in the perimeter of the opening, thereby suitably differentiating the bursting pressure. Note that this difference in shape can also be applied to the large hole 12, and two types of large hole 12 may be provided that have the same minimum flow path cross-sectional area but slightly different burst pressures.

[0094] <Other> Although preferred embodiments of the present disclosure have been described above, each aspect disclosed herein can be combined with any other feature disclosed herein. In the first embodiment, the first and second gas discharge holes have different circumferential lengths at the openings on the inner surface of the housing, and in the second embodiment, the openings have different shapes. However, both the shape and circumferential length of the openings may be different between the first and second gas discharge holes. In other words, the technology disclosed herein is sufficient as long as at least one of the shape and circumferential length of the openings on the inner surface of the housing is different between the first and second gas discharge holes. Even if there are multiple gas discharge holes with different opening shapes or circumferential lengths on the inner surface of the housing, differences in shape and circumferential length that are recognized as being within the processing tolerances of the gas discharge holes are excluded from the technology disclosed herein. Furthermore, in the above-described embodiment, a so-called dual-type gas generator having two igniters has been exemplified, but even when the technology according to the present disclosure is applied to a so-called single-type gas generator having only one igniter, such as that shown in FIG. 1 of JP 2019-156107 A, effects similar to those of the above-described embodiment can be obtained. For example, consider a case in which a single-type gas generator is provided with at least two types of gas discharge holes (first gas discharge hole and second gas discharge hole) that have the same gas discharge amount per unit time (function of controlling the internal pressure of the housing) but different rupture pressures of the blocking member (ease of opening). Even in this case, the opening timing of the first gas discharge hole and the timing of the second gas discharge hole can be adjusted during operation of the gas generator. Hole Since the opening timing is different, that is, the gas discharge holes open in multiple stages, it is possible to suppress a sudden drop in internal pressure during low temperature operation, for example, and to achieve combustion performance similar to that at room temperature or high temperature. Note that the technology according to the present disclosure aims to control the internal pressure of the housing during gas generator operation, and so long as it is used in a way that allows the timing at which the first gas discharge hole and the second gas discharge hole open to be adjusted, its application is not limited to cases where the environmental temperatures during operation are different as in the above-described embodiment. [Explanation of symbols]

[0095] 100 Gas Generator 1. Housing 41 First igniter (example of an igniter) 110 First gas generating agent (an example of a gas generating agent) H1 Gas exhaust hole 13a First small hole (an example of a first gas exhaust hole) 13b Second small hole (an example of a second gas exhaust hole) S1 Sealing tape (an example of a blocking material)

Claims

1. An igniter, a gas generating agent that generates combustion gas by burning in response to activation of the igniter; a housing that accommodates the igniter and the gas generating agent therein; a plurality of gas exhaust holes passing through the housing from the inside to the outside; a blocking member attached to the inner surface of the housing, which covers openings of the plurality of gas discharge holes on the inner surface side of the housing before activation of the igniter to block the plurality of gas discharge holes, and which ruptures under pressure of the combustion gas generated by activation of the igniter to open the plurality of gas discharge holes, the plurality of gas discharge holes include at least one first gas discharge hole and one second gas discharge hole, the blocking member having different rupture pressures; a minimum cross-sectional area of ​​a gas flow path formed by the first gas discharge hole is equal to a minimum cross-sectional area of ​​a gas flow path formed by the second gas discharge hole; the first gas discharge hole and the second gas discharge hole are different from each other in at least one of the shape and circumferential length of the openings on the inner surface side of the housing; Gas generator.

2. the first gas discharge hole and the second gas discharge hole are closed by the closing member having the same specifications; 2. The gas generator according to claim 1.

3. the first gas exhaust hole and the second gas exhaust hole are holes having a circular cross section, the first gas discharge hole and the second gas discharge hole have openings on the inner surface side of the housing with different hole diameters; 3. A gas generator according to claim 1 or 2.

4. the first gas discharge hole and the second gas discharge hole include a straight portion having a constant cross section in a thickness direction of the housing, and a tapered portion that is continuous with the straight portion and whose cross-sectional area increases with increasing distance from the straight portion in the thickness direction, one of the first gas discharge hole and the second gas discharge hole has a tapered portion that opens to an inner surface side of the housing and a straight portion that opens to an outer surface side of the housing, the other of the first gas discharge hole and the second gas discharge hole has the straight portion opening to the inner surface side of the housing and the tapered portion opening to the outer surface side of the housing; 3. A gas generator according to claim 1 or 2.

5. The straight portion is formed by a shear surface, The tapered portion is formed by a fractured surface.

5. The gas generator according to claim 4.

6. When the thickness of the housing is t1 and the length of the straight portion in the thickness direction of the housing is t2, 0.3<t2 / t1<0.7; 5. The gas generator according to claim 4.

7. a protrusion that protrudes toward the inside of the housing is formed on at least a part of a periphery of an opening of only one of the first gas discharge hole and the second gas discharge hole on the inner surface side of the housing, The blocking member is attached to the inner surface of the housing so as to cover the protrusion.

3. A gas generator according to claim 1 or 2.

8. a peripheral edge of an opening of only one of the first gas discharge hole and the second gas discharge hole on the inner surface side of the housing is chamfered; 3. A gas generator according to claim 1 or 2.

9. A method for manufacturing a gas generator comprising: an igniter; a gas generating agent that generates combustion gas by burning when the igniter is activated; a housing that accommodates the igniter and the gas generating agent inside; a plurality of gas discharge holes that penetrate the housing from inside to outside; and a closing member that closes the plurality of gas discharge holes, forming a plurality of gas discharge holes including at least one first gas discharge hole and one second gas discharge hole in the housing such that the first gas discharge hole and the second gas discharge hole have different bursting pressures for the closing member; and attaching the closing member to the inner surface of the housing so as to cover openings of the plurality of gas discharge holes on the inner surface side of the housing, When the plurality of gas discharge holes are formed in the housing, the minimum flow path cross-sectional area of ​​the gas flow path formed by the first gas discharge hole and the minimum flow path cross-sectional area of ​​the gas flow path formed by the second gas discharge hole are made equal, and at least one of the shape and circumferential length of the openings on the inner surface side of the housing is made different between the first gas discharge hole and the second gas discharge hole. A method for manufacturing a gas generator.

10. In forming the plurality of gas discharge holes in the housing, forming one of a first gas discharge hole and a second gas discharge hole by punching from an outer surface side of the housing; the other of the first gas discharge hole and the second gas discharge hole is formed by punching a hole from the inner surface side of the housing. A method for manufacturing the gas generator according to claim 9.

11. In forming the plurality of gas discharge holes in the housing, chamfering an opening of only one of the first gas discharge hole and the second gas discharge hole on the inner surface side of the housing; A method for manufacturing the gas generator according to claim 9.

12. In attaching a closing member to the inner surface of the housing, the first gas discharge hole and the second gas discharge hole are closed by the closing member having the same specifications. A method for manufacturing the gas generator according to any one of claims 9 to 11.

Citation Information

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