EP0800964A2

An airbag inflator and an airbag apparatus

Abstract

An airbag inflator includes non-azide gas generating propellants (25), surrounding an ignition device (18), disposed inside a housing (17). The gas generating propellants (25) are surrounded by a coolant/filter device (5) having a pressure loss of 0.3x10-2 to 1.5x10-2 kg/cm2 at a flow rate of 100 ℓ/min/cm2. A space (28) is provided between an outer periphery of the coolant/filter device (5) and the housing such that the combustion gas passes through the entire area of the coolant/filter device (5). The coolant/filter device (5) is also surrounded by a swell suppressing layer which prevents the coolant/filter device (5) from swelling due to a combustion of the gas generating propellants (25).

EP0800964A2, drawing sheet 1
Sheet 1 of 21

Term

Term ended

Projected expiry passed 3 April 2017, 9.5 years ago.

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  2. Filed
  3. Published
  4. Projected expiry
  5. Today

358 claims: 52 independent, 306 dependent

  1. 1
    An airbag inflator comprising:a housing having a diffuser shell and a closure shell, the diffuser shell being formed by pressing a metal plate and having gas discharge ports, the closure shell being formed by pressing a metal plate and having a center hole;a non-azide gas generating material in said housing;a central cylinder member installed in the housing, and disposed concentric with the center hole to form an ignition device accommodating chamber, said central cylinder member further having through-holes defined therein;an ignition device in said central cylinder member;and a coolant/filter device disposed surrounding the central cylinder member to define a combustion chamber for said non-azide gas generating material and having a pressure loss of 0.3x10 -2 to 1.5x10 -2 kg/cm 2 at a flow rate of 100 ℓ/min/cm 2 at a normal temperature, said coolant/filter device being adapted to cool combustion gas and arrest combustion particulates resulting from ignition of said gas generating material.
  2. 12
    An airbag apparatus comprising:an airbag inflator including: a housing having a diffuser shell and a closure shell, the diffuser shell being formed by pressing a metal plate and having gas discharge ports, the closure shell being formed by pressing a metal plate and having a center hole;a non-azide gas generating material in said housing;a central cylinder installed in the housing, and disposed concentric with the center hole to form an ignition device accommodating chamber;an ignition device in said accommodating chamber;and a coolant/filter device disposed surrounding the central cylinder member to define a combustion chamber for said non-azide gas generating material and having a pressure loss of 0.3x10 -2 to 1.5x10 -2 kg/cm 2 at a flow rate of 100 ℓ/min/cm 2 at a normal temperature, the coolant/filter device being adapted to cool combustion gas and arrest combustion particulates resulting from ignition of said gas generating material;said airbag apparatus further including: an impact sensor for detecting an impact and outputting an impact detection signal;a control unit for receiving the impact detection signal and outputting a drive signal to the ignition device of said airbag inflator to activate said ignition device and ignite said gas generating material;an airbag to be inflated by admitting gas generated by said airbag inflator;and a module case for accommodating said airbag.
  3. 23
    An airbag inflator comprising:a housing having a diffuser shell and a closure shell, the diffuser shell being formed by pressing a metal plate and having gas discharge ports, the closure shell being formed by pressing a metal plate and having a center hole;a non-azide gas generating material in said housing;a central cylinder member installed in the housing, and disposed concentric with the center hole to form an ignition device accommodating chamber, said central cylinder member further having through-holes defined therein;an ignition device in said accommodating chamber;and a coolant/filter device made of a metal mesh with a wire diameter of 0.3-0.6 mm, having a bulk density of 3.0-5.0 g/cm 3 , disposed surrounding said central cylinder member to define gas generating material accommodating and combustion chambers in said housing, and having the function of cooling combustion gas and arresting combustion particulates resulting from ignition of said non-azide gas generating material.
  4. 34
    An airbag apparatus comprising:an airbag inflator including: a housing having a diffuser shell and a closure shell, the diffuser shell being formed by pressing a metal plate and having gas discharge ports, the closure shell being formed by pressing a metal plate and having a center hole;a non-azide gas generating material in said housing;a central cylinder member installed in the housing, and disposed concentric with the center hole to form an ignition device accommodating chamber, said central cylinder member further having through-holes defined therein;a ignition device in said accommodating chamber;and a coolant/filter device made of a metal mesh with a wire diameter of 0.3-0.6 mm, having a bulk density of 3.0-5.0 g/cm 3 , disposed surrounding the central cylinder member to define gas generating material accommodating and combustion chambers in said housing, and having the functions of cooling combustion gas and arresting combustion particulates resulting from ignition of said gas generating material;an impact sensor for detecting an impact and outputting an impact detection signal;a control unit for receiving said impact detection signal and outputting a drive signal to said ignition device of the airbag inflator to actuate said ignition device and ignite said gas generating material;an airbag to be inflated by admitting gas generated by said airbag inflator;and a module case for accommodating said airbag.
  5. 45
    An inflator for an airbag comprising:a housing having a plurality of gas-discharge ports, an ignition device installed in the housing, a gas-generating material installed around the ignition device and a coolant/filter device installed around the gas-generating material;said gas generating material being a solid non-azide material ignitable by said igniter to produce combustion gas having a linear burn rate no greater than 30 mm/sec under a pressure of 70 kg/cm 2 ;and said coolant/filter device having a pressure loss of 0.3x10 -2 to 1.5x10 -2 kg/cm 2 at a flow rate of 100 ℓ/min/cm 2 at a normal temperature and acting to convey said combustion gas to said discharge ports and to cool said combustion gas and arrest therein to minimize the particulate content of gas discharged by said inflator into a said airbag.
  6. 53
    An airbag inflator for inflating airbags in driver seat, front passenger seat, and side impact applications comprising:a housing having a plurality of gas discharge ports having a total open area A t ;an ignition device installed in the housing;a solid gas generating material having a known surface area A installed in the housing and ignitable by the ignition device to produce a combustion gas;and a coolant/filter device accommodating the solid gas generating material and adapted to cool the combustion gas and arrest combustion contaminant particulates from said gas;wherein the ratio of the total surface area A of the solid gas generating material to the sum A t of open areas of the gas discharge ports, A/At, of said inflator is (a) 100-300 for an airbag for a driver's seat, (b) 80-240 for an airbag for a front passenger seat and (c) 250-3600 for an airbag for side collision protection.
  7. 69
    An airbag inflator for an airbag of the pyrotechnological type comprising:a non-azide gas generating material;a housing containing said gas generating material and having gas discharge ports;an ignition device for igniting said gas generating material to produce combustion gas and combustion particulates;and a coolant/filter device for entrapping combustion particulates of said gas generating material;said coolant/filter device and said non-azide gas generating material cooperating to limit the combustion particulates discharged from said discharge ports to 2 g or less.
  8. 86
    An airbag apparatus comprising at least:an impact sensor for detecting an impact;an airbag inflator for an airbag that is activated when said impact sensor has detected an impact to generate a gas;and an airbag that inflates upon the introduction of a gas generated by said airbag inflator;wherein said airbag inflator is constructed according to any one of claims 69-71.
  9. 87
    A coolant/filter device for confining a gas generating material in an airbag inflator housing and cooling and arresting particles contained in combustion gas generated by ignition of said gas generating material, comprising:a plurality of metal mesh laminates, each comprising flat plaited metallic mesh;said laminates being radially laminated in an annular configuration;and said laminates being compressed in both radial and axial directions to provide desired pressure loss and filtration characteristics for said coolant/filter device.
  10. 92
    An airbag inflator comprising:a housing having a diffuser shell and a closure shell, the diffuser shell having a plurality of gas discharge ports formed therein, the closure shell forming a space in combination with the diffuser shell;a coolant/filter device defining a combustion chamber in combination with the housing and adapted to cool a combustion gas and arrest combustion particulates from said combustion gas generated in said combustion chamber;an igniter installed in the combustion chamber;and a solid gas generating material disposed adjacent to the igniter, having a decomposition initiation temperature of 330°C or lower and a combustion temperature of 2000°K or higher, said material being ignitable by said igniter to produce the combustion gas.
  11. 106
    An inflator for an airbag comprising:a housing having a plurality of gas-discharge ports, an ignition device installed in the housing, a gas-generating material installed around the ignition device and a coolant/filter device installed around the gas-generating material;said housing having an outer peripheral wall containing said gas discharge ports;said coolant/filter device surrounding and confining said gas generating material;said coolant/filter device having an outer periphery further defining a space between said outer periphery and the interior of said outer peripheral wall of said housing;said space enhancing uniformity of the flow of combustion gas throughout said coolant/filter device resulting from combustion of said gas generating material;and said coolant/filter device acting to cool said combustion gas and arrest particulates contained therein, prior to the discharge of said gas from said gas discharge ports of said housing.
  12. 110
    The inflator of any one of claims 106 to 109, wherein said gas generating material has a solid composition and is disposed adjacent to said igniter in said combustion chamber;said gas generating material having a decomposition initiation temperature of 330°C or lower and a combustion temperature of 2000°K or higher.
  13. 111
    The inflator of any one of claims 106 to 109, wherein said space defined by said coolant/filter device and said outer peripheral wall of said housing is annular in cross-section having an area S t ;wherein the total open area of said discharge ports is A t ;and    wherein the ratio S t /A t is no less than 1.
  14. 113
    An airbag apparatus comprising:an airbag inflator of any one of claims 106 to 109;an impact sensor for detecting an impact and outputting an impact detection signal;a control unit for receiving the impact detection signal and outputting a drive signal to the ignition device in said airbag inflator;an airbag to be inflated by admitting a gas thereto generated by said airbag inflator;and a module case for accommodating said airbag.
  15. 117
    The method of forming an annular coolant/filter device for cooling and filtering particulates from combustion gases generated in an airbag inflator, comprising:providing a sheet of metal mesh;forming said sheet into a cylinder;repetitively folding one end of said cylinder outwardly of itself and toward the opposite end of said cylinder to form an annular multi-layer body;and compressing said multi-layer body in a forming die to impart desired gross density, pressure loss, and dimensional characteristics thereto.
  16. 120
    The method of any one of claims 117 to 119, wherein said metal mesh is formed of metal wire having a wire diameter of 0.3 to 0.6 mm.
  17. 121
    The method of any one of claims 117 to 119, wherein said metal is stainless steel.
  18. 123
    The method of any one of claims 117 to 119, including the further step of providing an external swell suppressing layer on the outer periphery of said coolant/filter device.
  19. 126
    The method of forming an annular coolant/filter device for cooling and filtering particulates from combustion gas generated in an airbag inflator comprising:forming a metal mesh into a cylinder;pressing said cylinder in the radial direction to form a plate member;rolling said plate member into a multi-layer cylindrical body;and compressing said multi-layer cylindrical body in a forming die to impart desired gross density, pressure loss and dimensional characteristics thereto.
  20. 129
    The method of any one of claims 126 to 128, wherein the gross density characteristic imparted to said coolant/filter device is from 3.0 to 5.0 g/cm 3 .
  21. 130
    The method of any one of claims 126 to 128, wherein the desired pressure loss characteristic is 0.3x10 -2 to 1.5x10 -2 kg/cm 2 at normal temperature at a flow rate of 10 ℓ/min/cm 2 .
  22. 131
    The method of any one of claims 126 to 128, wherein said metal mesh is formed of metal wire having a wire diameter of 0.3 to 0.6 mm.
  23. 132
    The method of any one of claims 126 to 128, wherein said metal is stainless steel.
  24. 133
    The method of any one of claims 126 to 128, wherein said desired dimensions imparted to said annular coolant/filter device are an inside diameter of 30 to 55 mm, an outer diameter of 40 to 65 mm, and a height of 19 to 37.6 mm.
  25. 134
    The method of any one of claims 126 to 128, including the further step of providing an external swell suppressing layer on the outer periphery of said coolant/filter device.
  26. 137
    The method of controlling the flow of gas from a gas generator to an airbag associated therewith comprising:providing an inflator housing;placing a combustible gas generating material in said housing;providing a plurality of diffusion openings in said inflator housing in communication with said gas generating material and said airbag;and correlating the total area of said diffusion openings and the characteristics of said gas generating material such that said total area/volume of gas generated is in the range of 0.50 to 2.50 cm 2 /mol and the maximum internal pressure in said housing created by said gas is in the range of 100 to 300 kg/cm 2 .
  27. 139
    The method of either of claims 137 and 138, wherein the total area of said diffusion openings is 1.00 to 1.50 cm 2 /mol.
  28. 147
    The method of either of claims 137 and 138, in which the gas generating material placed in said housing is a non-azide gas generating material.
  29. 148
    The method of either of claims 137 and 138, in which the housing is dimensioned to provide an internal volume of 130 cc or less when said inflator is for use with a driver's side airbag apparatus.
  30. 149
    The method of either of claims 137 and 138, which includes the step of sealing the diffusion openings with a readily frangible moisture proof layer to preclude moisture deterioration of said gas generating material.
  31. 150
    The method of either of claims 137 and 138, wherein said readily frangible moisture proof layer is a material having such characteristics as to rupture in response to combustion of said gas generating material without controlling the maximum internal pressure created in said housing by said generated gas.
  32. 151
    The method of either of claims 137 and 138, wherein said diffusion openings are sized in groups with at least two respective circle equivalent diameters.
  33. 152
    The method of either of claims 137 and 138, wherein said diffusion openings are provided in an array of between 12 and 20 such openings circumferentially of said housing.
  34. 153
    The method of either of claims 137 and 138, which further includes selecting a non-azide gas generating material which has a linear combustion velocity of 30 mm/sec or less under a pressure of 70 kg/cm 2 .
  35. 154
    The method of controlling the internal pressures and quality of a predetermined amount of gas produced in a pyrotechnic airbag inflator housing comprising:providing a housing having a combustion chamber and an igniter associated with that chamber;providing a combustible gas generating material in said combustion chamber;providing a coolant/filter structure surrounding said gas generating material in said combustion chamber;providing a plurality of gas discharge ports in said housing to convey generated gas toward an airbag at the exterior of said housing;correlating the total open area of said plurality of discharge ports and the characteristics of said gas generating material to control the maximum internal pressures generated in said housing by combustion of said gas generating material;and further correlating the characteristics of said coolant/filter structure with the characteristics of said gas generating material for producing combustion contaminants, to effect entrapment of particulates of combustion in said coolant/filter structure to a predetermined degree.
  36. 157
    The method of any one of claims 154 to 156, wherein each of said discharge ports has a circle equivalent diameter of 2 to 5 mm.
  37. 158
    The method of any one of claims 154 to 156, wherein the volume of said housing internally of said discharge ports is correlated with the combustion characteristics of said gas generating material.
  38. 166
    The method of any one of claims 154 to 156, wherein said discharge ports are sized to include ports of at least two different size openings.
  39. 167
    The method of any one of claims 154 to 156, which further includes sealing said discharge ports with a frangible moisture blocking sealing tape having substantially no controlling effect on said maximum interval pressure range.
  40. 184
    The method of any one of claims 154 to 156, wherein said coolant/filter structure is provided with a pressure loss of 0.3x10 -2 to 1.5 x 10 -2 kg/cm 2 at a flow rate of 100 ℓ/min/cm 2 at a normal temperature.
  41. 187
    The method of 186, wherein said housing volume is 120 cc or less.
  42. 189
    The method of any one of claims 154 to 156, wherein the housing has an outer wall containing said discharge ports;and including the further step of providing a space between the coolant/filter structure and the said circumferential wall to enhance the uniformity of flow of gas from said gas generating material throughout the entire body of said coolant/filter device.
  43. 192
    The method of maximizing the gas output of an airbag inflator while minimizing the physical size thereof comprising:forming an inflator housing having an internal volume of no greater than 130 cc;and charging said housing with a solid gas generating material having a decomposition initiation temperature of 330°C or lower and a combustion temperature of 2000°K or higher.
  44. 195
    The method of anyone of claims 154 to 156, which further includes providing a peripheral space between the outer periphery of the said coolant/filter structure and the interior of a wall of said housing containing said plurality of discharge ports for enhancing the uniformity of flow through said coolant/filter device of combustion gas from said combustion chamber toward said discharge ports.
  45. 272
    An airbag inflator according to any one of claims 1, 23, 45, 53, 69, 87, 92, and 106, wherein said airbag inflator is disposed on a steering wheel of a vehicle.
  46. 273
    An airbag inflator according to any one of claims 1, 23, 45, 53, 69, 87, 92, and 106, wherein said airbag inflator is disposed inside a passenger-side dashboard of a vehicle.
  47. 287
    An inflator for an airbag comprising:a housing having a plurality of gas-discharge ports, an ignition device installed in the housing, a gas-generating material installed around the ignition device and a coolant/filter device installed around the gas-generating material;said gas generating material being a solid non-azide material ignitable by said igniter to produce combustion gas;and said coolant/filter device having a pressure loss of 0.3x10 -2 to 1.5x10 -2 kg/cm 2 at a flow rate of 100 ℓ/min/cm 2 at a normal temperature and acting to convey said combustion gas to said discharge ports and to cool said combustion gas and arrest therein to minimize the particulate content of gas discharged by said inflator into a said airbag.
  48. 317
    An airbag inflator for an airbag, comprising:a housing which includes a diffuser shell and a closure shell, said diffuser shell having a circular portion with no holes formed therein, a circumferential wall portion formed at an outer circumference of the circular portion and having gas discharge ports formed therein, and a flange portion extending radially outwardly at a free end of said circumferential wall portion, said closure shell, together with said diffuser shell, forms a space therein and has a circular portion, a center hole formed at a center of said circular portion, a circumferential wall portion formed at an outer circumference of said circular portion and a flange portion extending radially outwardly at a free end of said circumferential wall portion, and said ignition device is installed in said center hole of said closure shell.
  49. 328
    An inflator for an airbag comprising:a housing having a plurality of gas-discharge ports, an ignition device installed in the housing, a gas-generating material installed around the ignition device and a coolant/filter device installed around the gas-generating material;and said gas generating material being a solid non-azide material ignitable by said igniter to produce combustion gas, wherein said coolant/filter device has a flame-resisting plate disposed to face through-holes in a central cylinder member and covering an inner circumferential surface of said coolant/filter device, said through-holes being adapted to pass flames from said igniter to said combustion chamber.
  50. 332
    An inflator for an airbag comprising:a housing having a top plate, a bottom plate, and a circumferential outer wall containing a plurality of gas discharge ports;an ignition device installed in said housing;a gas-generating material installed around said ignition device, said gas generating material being a solid non-azide material ignitable by said igniter to produce combustion gas;a coolant/filter device installed around said gas-generating material;an annular shield extending over at least a junction between said coolant/filter device and at least one of said top plate and said bottom plate within said combustion chamber to preclude a short pass of said combustion gas to said discharge ports between said coolant/filter device and at least on of said top plate and said bottom plate.
  51. 339
    An inflator for an airbag comprising:a housing having a plurality of gas-discharge ports;an ignition device installed in said housing;a gas-generating material installed around said ignition device, said gas generating material being a solid non-azide material ignitable by said igniter to produce combustion gas;a coolant/filter device installed around said gas-generating material;and a perforated basket disposed between said gas generating material and an inner circumferential surface of said coolant/filter device.
  52. 352
    An inflator for an airbag comprising:a housing having a plurality of gas-discharge ports;an ignition device installed in said housing;a gas-generating material installed around said ignition device, said gas generating material being a solid non-azide material ignitable by said igniter to produce combustion gas;and a coolant/filter device installed around said gas-generating material, wherein the total area of said gas-discharge ports per volume of combustion gas generated within said inflator is in the range of 0.5 to 2.50 cm 2 /mol and the maximum internal pressure in said inflator is controlled thereby in a range of 100-300 kg/cm 2 .
Independent claims52