Technical Field
[0001] The present invention relates to a gas generating composition suitable for an airbag
restraining system of an automobile or the like, a molded article thereof, and an
airbag inflator using them.
Background ART
[0002] Heretofore, compositions containing sodium azide have been often used as airbag gas
generating agents for occupant-protecting devices in automobiles. However, the toxic
effects of sodium azide on the human body [LD50 (oral-rat) = 27 mg/kg) and hazardous
nature thereof at the time of handling have been perceived as problems. As an alternative
to such compositions, therefore, gas generating compositions containing various kinds
of nitrogen-containing organic compounds have been developed as so-called non-azide
gas generating compositions.
[0003] U.S. Pat. No. 4,909,549 discloses a composition that includes a hydrogen-containing
tetrazole, a triazole compound and an oxygen-containing oxidizing agent. U.S. Pat.
No. 4,370,181 discloses a gas generating composition that includes a metal salt of
bitetrazole containing no hydrogen and an oxidizing agent containing no oxygen. U.S.
Pat No. 4,369,079 discloses a gas generating composition that includes a metal salt
of bitetrazole containing no hydrogen and alkali metal nitrate; alkali metal nitrite;
alkaline earth metal nitrate; alkaline earth metal nitrite or a mixture thereof. U.S.
Pat No. 5,542,999 discloses a gas generating agents that includes fuel such as GZT,
triaminonitroguanidine (TAGN), nitroguanidine (NG) or NTO; basic copper nitrate; a
catalyst for decreasing toxic gas and a coolant. JP-A 10-72273 discloses a gas generating
agent that includes a metal salt of bitetrazole; an ammonium salt of bitetrazole;
aminotetrazle and ammonium nitrate.
[0004] However, although azide-based gas generating agents generate only nitrogen in general
after combustion, non-azide-based gas generating compositions have a disadvantage
such that small amounts of toxic carbon monoxide and nitrogen oxides are generated
because each of the composition contains carbon, nitrogen and oxygen in general. In
addition, compared with the azide-based gas generating agents, the non-azide-based
gas generating agents have so high combustion temperatures that they may need a large
amount of coolant in actual use. For reducing produced amounts of toxic carbon monoxide
and nitrogen oxides after combustion, addition of a metal oxide or a DeNOx agent (a
nitrogen-oxide reducing agent) to the gas generating agent is known. For example,
in the case of the gas generating composition as disclosed in DE Pat No. 4,401,213,
a heavy-metal oxide such as V
2O
5/MoO
3 is added as a catalyst for reducing the produced amounts of toxic carbon monoxide
and nitrogen oxides. However, the heavy-metal oxide is considered to be toxic, and
addition of a metal oxide leads to a decrease of efficiency of gas generation from
the gas generating agent.
[0005] WO 98/04507 discloses reduction of the produced amount of a nitrogen oxide in combustion
gas by using a combination of a DeNOx agent such as ammonium sulfate, ammonium carbonate
or urea and a gas generating agent. However, use of ammonium sulfate will generate
toxic sulfur oxide and then ammonium carbonate and urea have problems in their thermal
stability. Furthermore, if the DeNOx agents are added, the oxidizing agent in the
gas generating agent will be consumed and a produced amount of toxic carbon monoxide
is increased.
Disclosure of the Invention
[0006] A purpose of the present invention is to provide a gas generating composition having
small produced amounts of toxic monoxide carbon and nitrogen oxides in combustion
gas of a gas generating agent and having a low combustion temperature; a molded article
thereof and an airbag inflator using the same.
[0007] The inventors of the present invention have completed the present invention by finding
out that the produced amounts of toxic carbon monoxide, ammonium and nitrogen oxides
in combustion gas can be reduced by selecting a specific combination for a gas generating
composition to decrease the combustion temperature.
[0008] As means for solving the problem, the present invention provides a gas generating
composition comprising the following components (a), (b), and (c) and optionally the
component (d) and/or the component (e):
(a) an organic compound as fuel;
(b) an oxygen-containing oxidizing agent;
(c) aluminum hydroxide;
(d) a binder; and
(e) an additive selected from metal oxides and metal carbide.
[0009] Furthermore, as another means for solving the problem, the present invention provides
a molded article of the gas generating composition, which is obtained by molding the
gas generating composition described above, and an airbag inflator using the gas generating
composition described above or the molded article of a gas generating composition
described above.
[0010] The gas generating composition and the molded article thereof have low combustion
temperatures and small produced amounts of carbon monoxide and nitrogen oxides at
the time of combustion.
Embodiment of the Invention
[0011] As the organic compound to use for the component (a) of fuel in the present invention,
it includes at least one compound selected from tetrazole compounds, guanidine compounds,
triazine compounds and nitroamine compounds.
[0012] As the tetrazole compounds, 5-aminotetrazole, bitetrazole ammonium salts and the
like are preferable. The guanidine compounds preferably are guanidine nitrates, amino
guanidine nitrate, nitro guanidine, triamino guanidine nitrate and the like. The triazine
compounds are preferably melamine, cyanuric acid, ammeline, ammelide, ammeland and
the like. The nitroamine compounds are preferably cyclo-1,3,5-trimethylene-2,4,6-trinitramine.
[0013] The oxygen-containing oxidizing agent to use as the component (b) in the present
invention preferably includes at least one selected from: (b-1) basic metal nitrates,
nitrate salts and ammonium nitrates and (b-2) perchlorates and chlorates.
[0014] As the basic metallic nitrates of the component (b-1), at least one selected from
basic copper nitrates, basic cobalt nitrates, basic zinc nitrates, basic manganese
nitrates, basic iron nitrates, basic molybdenum nitrates, basic bismuth nitrates and
basic cerium nitrates can be included.
[0015] For increasing the burning velocity, the basic metal nitrate has preferably an average
particle size of 30 µm or less, more preferably of 10 µm or less. Furthermore, the
average particle sizes were measured by a particle size distribution method with scattered
laser beams. A measured sample is prepared by dispersing a basic metal nitrate in
water and exposing it to ultrasonic waves for 3 minutes. A 50%-accumulated value (D50)
of the number of particles is determined and an average value of two measurements
is taken as an average particle size.
[0016] As the nitrates of the component (b-1), alkali metal nitrates such as potassium nitrate
or sodium nitrate and alkaline earth metal nitrates such as strontium nitrate can
be included.
[0017] The perchlorates and chlorates of the component (b-2) are that having a combustion
promotion action as well as an oxidative action. The oxidative action means a function
to proceed combustion efficiently with oxygen generated during burning and then another
function to decrease the produced amount of toxic gas such as ammonia or carbon monoxide.
The combustion promotion action, on the other hand, means a function to improve ignition
of a gas generating composition and to increase a burning velocity.
[0018] As the perchlorates and chlorates, at least one selected from ammonium perchlorate,
potassium perchlorate, sodium perchlorate, potassium chlorate and sodium chlorate
can be included.
[0019] The aluminum hydroxide to use as the component (c) in the present invention is one
used for condensing floating matters in river water for water-purifying procedures
of public water supply, for a household non-phosphorus detergent and also as an additive
to resin or rubber, having characteristics of a low toxicity and a high decomposition-initiating
temperature.
[0020] Furthermore, it absorbs a large amount of heat when thermally decomposed to generate
aluminum oxide and water. Therefore, the combustion temperature of the gas generating
composition is lowered by incorporating aluminum hydroxide so that the composition
will act to reduce the produced amounts of toxic nitrogen oxide and carbon monoxide
after the combustion. Such reduction of the toxic gas is quite remarkable when the
component (b-2) is used as the oxidizing agent.
[0021] The overall dispersibility of the mixed components (a) to (c) can be improved by
adjusting the average particle size of aluminum hydroxide. Therefore the mixing operation
is made easier and then ignition of the obtained gas generating composition is improved.
[0022] The average particle size of aluminum hydroxide is preferably 0.1 to 70 µm, more
preferably 0.5 to 50 µm, still more preferably 2 to 30 µm. The method for measuring
the average particle size of the alminum hydroide is the same as one used for measuring
the average particle size of the basic metal nitrate.
[0023] The binder to use as the component (d) in the present invention may be a component
to use optionally in combination with the components (a) to (c) or with the components
(a) to (c) and the component (e). It is capable of increasing moldability of the gas
generating composition and also increasing strength of the molded article of a gas
generating composition. When the molding strength of the molded article of a gas generating
composition is not high, there is a possibility that the molded article will be broken
at actual combustion and burn too rapidly, not being able to control.
[0024] As the binder, at least one selected from carboxymethylcellulose, sodium carboxymethylcellulose,
potassium carboxymethylcellulose, ammonium carboxymethylcellulose, cellulose acetate,
cellulose acetate butyrate, methylcellulose, ethylcellulose, hydroxyethylcellulose,
ethylhydroxyethylcellulose, hydroxypropylcellulose, carboxymethylethylcellulose, micro-crystalline
cellulose, polyacrylamide, an aminated product of polyacrylamide, polyacrylhydrazide,
a copolymer of acrylamide and a metal acrylate, a copolymer of polyacrylamide and
a polyacrylic ester, polyvinyl alcohol, acrylic rubber, guar gum, starch and silicone
can be included.
[0025] The additive, selected from metal oxides and metal carbides, to use as the component
(e) in the present invention, is a component to use optionally in combination with
the components (a) to (c) or with the components (a) to (c) and the component (d)
and is added for assisting the action of aluminum hydroxide, that is, for decreasing
the combustion temperature of the gas generating agent, adjusting the burning velocity
thereof and reducing the produced amount of toxic nitrogen oxide and carbon monoxide
after combustion.
[0026] As the additives, at least one selected from metal oxides such as copper oxide, iron
oxide, zinc oxide, cobalt oxide, manganese oxide, molybdenum oxide, nickel oxide,
bismuth oxide, silica or alumina; metal carbonates or basic metal carbonates such
as cobalt carbonate, calcium carbonate, basic zinc carbonate or basic copper carbonate;
composite compounds of metal oxides or metal hydroxides such as acid clay, porcelain
clay (Kaolin) , talc, bentonite, diatomaceus earth or hydrotalcite; metal acid salts
such as sodium silicate, mica molybdate, cobalt molybdate or ammonium molybdate; molybdenum
disulfide; calcium stearate; silicon nitride or silicon carbide can be included.
[0027] The contents of the respective components included in the gas generating composition
of the present invention and also exemplified compositions thereof are described below.
(1) A composition containing the components (a) to (c)
[0028] The content of the organic compound provided as the component (a) is preferably 10
to 60% by mass, more preferably 5 to 60% by mass, still more preferably 10 to 55%
by mass;
[0029] The content of the oxidizing agent provided as the component (b-1) is preferably
10 to 85% by mass, more preferably 20 to 70% by mass, still more preferably 30 to
60% by mass;
[0030] The content of the oxidizing agent provided as the component (b-2) is preferably
0.5 to 20% by mass, more preferably 1 to 10% by mass, still more preferably 1 to 5%
by mass;
[0031] The content of the aluminum hydroxide provided as the component (c) is preferably
0.1 to 20% by mass, more preferably 3 to 15% by mass, still more preferably 4 to 10%
by mass.
(composition example 1)
[0032]
(a) guanidine nitrate 30-60 mass%
(b) basic copper nitrate 30-60 mass%
(c) aluminum hydroxide 3-10 mass%
(composition example 2)
[0033]
(a) nitroguanidine 25-60 mass%
(b) basic copper nitrate 30-60 mass%
(C) aluminum hydroxide 3-15 mass%
(composition example 3)
[0034]
(a) guanidine nitrate or melamine
(b-1) basic copper nitrate
(b-2) at least one perchlorate selected from sodium perchlorate, potassium perchlorate
and ammonium perchlorate
(C) aluminium hydroxide
(composition example 4)
[0035]
(a) guanidine nitrate or melamine
(b-1) basic copper nitrate
(b-2) sodium chlorate or potassium chlorate
(c) aluminium hydroxide
[0036] (3) A composition containing either one or both of the components (d) and (e) in
addition to the compositions (a) to (c) .
[0037] The content of the component (d) is preferably 20% by mass or less, more preferably
0.5 to 10% by mass, still more preferably 1 to 7% by mass;
[0038] The content of the component (e) is preferably 20% by mass or less, more preferably
1 to 15% by mass, still more preferably 3 to 10% by mass.
(composition example 5)
[0039]
(a) nitroguanidine
(b) strontium nitrate
(c) aluminium hydroxide
(d) sodium carboxymethylcellulose or guar gum
(composition example 6)
[0040]
(a) nitroguanidine
(b) basic copper nitrate
(c) aluminium hydroxide
(d) guar gum
(composition example 7)
[0041]
(a) melamine
(b) basic copper nitrate
(c) aluminium hydroxide
(d) sodium carboxymethylcellulose or guar gum
(composition example 8)
[0042]
(a) guanidine nitrate
(b) basic copper nitrate
(c) aluminium hydroxide
(d) sodium carboxymethylcellulose or guar gum
(composition example 9)
[0043]
(a) a mixed fuel of 2 or 3 components selected from guanidine nitrate, nitroguanidine
and melamine
(b) basic copper nitrate
(c) aluminium hydroxide
(d) sodium carboxymethylcellulose or guar gum
(composition example 10)
[0044]
(a) guanidine nitrate or melamine
(b-1) basic copper nitrate
(b-2) at least one perchlorate selected from sodium perchlorate, potassium perchlorate
and ammonium perchlorate
(c) aluminium hydroxide
(d) sodium carboxymethylcellulose or guar gum
(composition example 11)
[0045]
(a) guanidine nitrate or melamine
(b-1) basic copper nitrate
(b-2) sodium chlorate or potassium perchlorate
(a) aluminium hydroxide
(d) sodium carboxymethylcellulose or guar gum
[0046] The gas generating composition of the present invention can be molded in a desired
shape, for example a molded article in the shape of a single-perforated cylinder,
a porous cylinder or a pellet.
[0047] The molded article can be manufactured by adding and mixing water or an organic solvent
with a gas generating composition and subjecting the resultant mixture to an extrusion
molding (a single-perforated or porous cylindrical-shaped molded article) or by subjecting
the mixture to a compression molding with a tablet machine or the like (a pellet-shaped
molded article). The single-perforated or porous cylindrical-shaped molded article
may be either one having a through-hole in the long direction or one having no through-hole
but a recess.
[0048] The gas generating composition of the present invention and the molded article obtained
therefrom can be applied to, for example, an airbag inflator for a driver seat, an
airbag inflator for a passenger seat, a side-airbag inflator, an inflatable curtain
inflator, a knee-bolster inflator, an inflatable seatbelt inflator, a tubular system
inflator and a pretensioner gas generator in each of various kinds of vehicles.
[0049] The inflator using the gas generating composition of the present invention or the
molded article obtained therefrom may be either of a pyro type in which gas is supplied
only from the gas generating agent or a hybrid type in which the gas is supplied from
both compression gas such as argon and the gas generating agent.
[0050] Furthermore, the gas generating composition of the present invention or the molded
article obtained therefrom may be used as an igniting agent referred to as an enhancer
agent (or a booster) for transferring energy from a percussion cap or a squib to the
gas generating agent.
Examples
[0051] Hereinafter, the present invention will be described in more detail with reference
to examples. However, the present invention is not limited to these examples.
Examples 1 to 27 and Comparative Examples 1 to 7
[0052] Gas generating compositions having compositions shown in Table 1 were prepared. A
combustion temperature and a gas-generating efficiency (unit: mol / 100 g represents
the number of moles of the generated gas per 100 g of the composition gas) were obtained
on these compositions, based on theoretical calculation. The results are shown in
Table 1.
Table 1
| : |
composition (ratio: mass %) |
burning velocity (k) |
gas yield (mol/100g) |
| Com. Ex. 1 |
NQ/Sr(NO3)2 (56.9/43.1) |
2647 |
2.96 |
| Ex. 1 |
NQ/Sr(NO3)2/Al(OH)3(54.1/40.9/5) |
2502 |
2.90 |
| Ex. 2 |
NQ/Sr(NO3)2/Al(OH)3(51.3/38.7/10) |
2341 |
2.84 |
| Ex. 3 |
NQ/Sr(NO3)2/Al(OH)3(48.6/36.4/15) |
2279 |
2.80 |
| Com. Ex. 2 |
NQ/BCN (51.3/48.7) |
2270 |
2.87 |
| Ex. 4 |
NQ/BCN/Al(OH)3 (48.8/46.2/5) |
2131 |
2.83 |
| Ex. 5 |
NQ/BCN/Al(OH)3 (46.4/43.6/10) |
1991 |
2.78 |
| Ex. 6 |
NQ/BCN/Al(OH)3 (43.9/41.1/15) |
1852 |
2.74 |
| Com. Ex. 3 |
GN/BCN (53.4/46.6) |
1911 |
3.01 |
| Ex. 7 |
GN/BCN/Al(OH)3 (52.8/42.2/5) |
1619 |
3.04 |
| Ex. 8 |
GN/BCN/Al(OH)3 (50.2/39.8/10) |
1527 |
2.99 |
| Ex. 9 |
GN/BCN/Al(OH)3 (47.5/37.5/15) |
1419 |
2.94 |
| Com. Ex. 4 |
melamine/BCN (20.8/79.2) |
1503 |
2.14 |
| Ex. 10 |
melamine/BCN/Al(OH)3 (20.6/74.4/5) |
1358 |
2.19 |
| Ex. 11 |
melamine/BCN/Al(OH)3 (19.5/70.5/10) |
1282 |
2.17 |
| Ex. 12 |
melamine/BCN/Al(OH)3 (18.5/66.5/15) |
1164 |
2.16 |
| Com. Ex. 5 |
NQ/Sr(NO3)2/CMCNa (38.4/52.2/9.4) |
2494 |
2.65 |
| Ex. 13 |
NQ/Sr(NO3)2/Al(OH)3/CMCNa (35.7/49.9/5/9.4) |
2328 |
2.60 |
| Ex. 14 |
NQ/Sr(NO3)2/Al(OH)3/CMCNa (32.9/47.7/10/9.4) |
2252 |
2.55 |
| Ex. 15 |
NQ/Sr(NO3)2/Al(OH)3/CMCNa (30.2/45.4/15/9.4) |
2104 |
2.49 |
| Com. Ex. 6 |
NQ/BCN/guar gum (39.4/55.6/5) |
2097 |
2.68 |
| Ex. 16 |
NQ/BCN/Al(OH)3/guar gum (37.0/53.0/5/5) |
1950 |
2.64 |
| Ex. 17 |
NQ/BCN/Al(OH)3/guar gum (34.5/50.5/10/5) |
1806 |
2.6 |
| Ex. 18 |
NQ/BCN/Al(OH)3/guar gum (32.0/48.0/15/5) |
1663 |
2.55 |
| Com. Ex. 7 |
GN/BCN/guar gum (42.7/52.3/5) |
1678 |
2.86 |
| Ex. 19 |
GN/BCN/Al(OH)3/guar gum (40.0/50.0/5/5) |
1564 |
2.80 |
| Ex. 20 |
GN/BCN/Al(OH)3/guar gum (37.3/47.7/10/5) |
1451 |
2.75 |
| Ex. 21 |
GN/BCN/Al(OH)3/guar gum (34.7/45.3/15/5) |
1358 |
2.70 |
| Ex. 22 |
melamine/BCN/Al(OH)3/CMCNa (17.8/74.2/5/3) |
1358 |
2.15 |
| Ex. 23 |
melamine/BCN/Al(OH)3/CMCNa (16.7/70.3/10/3) |
1292 |
2.14 |
| Ex. 24 |
melamine/BCN/Al(OH)3/CMCNa (15.7/66.3/15/3) |
1177 |
2.13 |
| Ex. 25 |
melamine/BCN/Al(OH)3/guar gum (17.5/74.5/5/3) |
1358 |
2.16 |
| Ex. 26 |
melamine/BCN/Al(OH)3/guar gum (16.4/70.6/10/3) |
1281 |
2.15 |
| Ex. 27 |
melamine/BCN/Al(OH)3/guar gum (15.4/66.6/15/3) |
1166 |
2.14 |
[0053] In Table 1, GN is guanidine nitrate, NQ is nitroguanidine, BCN is basic copper nitrate
and CMCNa is sodium carboxymethylcellulose. The other tables are also shown in the
same manner. The average particle size of basic copper nitrate of Table 1 is 4.7 µm
(applied to the other tables) and the average particle size of aluminum hydroxide
is 11 µm (applied to the other tables).
[0054] The combustion temperatures of the compositions of Examples 1 to 27, including added
aluminum hydroxide, are lower than those of the corresponding Comparative Examples
1 to 7 containing no aluminum hydroxide.
Examples 28 to 33
[0055] Gas generating compositions having compositions shown in Table 2 were prepared. These
compositions were tested by an explosive performance examination method of JIS K4810-1979
in term of friction sensitivity and drop hammer sensitivity. Results are shown in
Table 2.

[0056] In Examples 28 to 33, the friction sensitivities are higher than 353 N and the drop
hammer sensitivities are 40 cm or more. Therefore, the friction drop hammer sensitivities
are so insufficient that a good safety can be attained at the time of handling.
Examples 34 to 44
[0057] Gas generating compositions having compositions shown in Table 3 were prepared. These
compositions were molded in the shape of strand and were subjected to the measurements
of burning velocity at a pressure of 4,900, 6,860 or 8,820 kPa in nitrogen atmosphere.
Burning velocity at 6,860 kPa and pressure index between 4,900 and 8,820 kPa are shown
in Table 3. The pressure index was calculated from the following equation: rb = αPn
(wherein rb: burning velocity, α: coefficient, P: pressure, and n: pressure index).
Table 3
| |
composition (ratio: mass %) |
burning velocity (mm/sec) |
pressure index |
| Ex. 34 |
NQ/Sr(NO3)2/Al(OH)3/CMCNa (35.3/50.3/5.0/9.4) |
11.20 |
0.52 |
| Ex. 35 |
NQ/Sr(NO3)2/Al(OH)3/CMCNa (34.2/49.4/7.0/9.4) |
10.35 |
0.62 |
| Ex.36 |
NQ/Sr(NO3)2/Al(OH)3/CMCNa (33.1/48.5/9.0/9.4) |
9.47 |
0.58 |
| Ex. 37 |
NQ/BCN/Al(OH)3/guar gum(37.0/53.0/5.0/5.0) |
13.75 |
0.19 |
| Ex.38 |
NQ/BCN/Al(OH)3/guar gum (34.5/50.5/10.0/5.0) |
12.87 |
0.24 |
| Ex. 39 |
NQ/BCN/Al(OH)3/guar gum (32.2/55.8/5.0/7.0) |
13.74 |
0.30 |
| Ex. 40 |
NQ/BCN/Al(OH)3/guar gum (29.8/53.2/10.0/5.0) |
11.28 |
0.33 |
| Ex. 41 |
GN/BCN/Al(OH)3/CMCNa (41.3/48.7/5.0/5.0) |
7.32 |
0.22 |
| Ex. 42 |
GN/BCN/Al(OH)3/guar gum (40.0/50.0/5.0/5.0) |
7.33 |
0.27 |
| Ex.43 |
melamine/BCN/Al(OH)3/guar gum(17.5/74.5/5/3) |
13.98 |
0.18 |
| Ex. 44 |
melamine/BCN/Al(OH)3/guar gum (16.4/70.6/3/10) |
10.15 |
0.20 |
[0058] As described above, each of the numeric values represented in Examples 34 to 44 shows
that practical conditions for the inflator gas generating compositions are satisfied.
Examples 45 to 53
[0059] Gas generating compositions having compositions shown in Table 4 were prepared. These
compositions were molded in the shape of 2 g of strand. Each of the strands was displaced
in a closed gas bombé of one litter. Nitrogen gas was purged therein. The pressure
was elevated up to 6, 860 Pa with nitrogen and the strand was ignited by passage of
an electric current through a nichrome wire to burn the strand completely. After approximately
20 seconds from the electrification, the combustion gas was sampled into a gas-sampling
bag and was immediately analyzed in terms of concentrations of NO, NO
2, CO and CO
2.

Examples 54 to 70 and Comparative Examples 8 to 10
[0060] Gas generating compositions having compositions shown in Table 5 were prepared. A
combustion temperature based on theoretical calculation and a gas yield (the unit
of mol / 100 g represents the number of moles of the generated gas per 100 g of the
composition) were obtained about the compositions. Results are shown in Table 5.

[0061] The combustion temperatures of the compositions, with added aluminum hydroxide, of
Examples 54 to 70 are lower than those of Comparative Examples 8 to 10 containing
no aluminum hydroxide.
Examples 71 to 79
[0062] Gas generating compositions having compositions shown in Table 6 were prepared. These
compositions were tested by an explosive performance examination method of JIS K4810-1979
in terms of friction sensitivity and drop hammer sensitivity. Results are shown in
Table 6.
Table 6
| |
composition (ratio:mass %) |
friction sensitivity (N) |
drop hammer sensitivity (cm) |
| Ex. 71 |
GN/BCN/Al(OH)3/NH4ClO4 (50.0/35.0/10/5) |
>353 |
>60 |
| Ex. 72 |
GN/BCN/Al(OH)3/NH4ClO4 /CMCNa (38.40/41.60/10/5/5) |
>353 |
>60 |
| Ex. 73 |
GN/BCN/Al(OH)3/KClO4 /CMCNa (39.48/40.52/10/5/5) |
>353 |
>60 |
| Ex. 74 |
GN/BCN/Al(OH)3/NaClO4 /CMCNa (40.03/39.97/10/5/5) |
>353 |
>60 |
| Ex. 75 |
GN/BCN/Al(OH)3/NaClO4 /CMCNa (41.02/36.48/10/7.5/5) |
>353 |
>60 |
| Ex. 76 |
GN/BCN/Al(OH)3/NaClO3/CMCNa (38.86/41.14/10/5/5) |
>353 |
>60 |
| Ex. 77 |
GN/BCN/Al(OH)3/KClO3/CMCNa (39.39/40.16/10/5/5) |
>353 |
50-60 |
| Ex. 78 |
melamine/BCN /Al(OH)3/NH4ClO4 /CMCNa (15.38/64.62/10/5/5) |
> 353 |
>60 |
| Ex. 79 |
melamine/BCN /Al(OH)3/NaClO4 /CMCNa (15.59/64.41/10/5/5) |
>353 |
>60 |
[0063] In Examples 71 to 79, the friction sensitivities are higher than 353 N and the drop
hammer sensitivities are 50 cm or more. Therefore, the friction drop hammer sensitivities
are so insufficient that a high safety can be attained at the time of handling.
Examples 80 to 84
[0064] Gas generating compositions having compositions shown in Table 7 were prepared. The
compositions were molded in the shape of strand and subjected to measurements of burning
velocity at pressure of 4,900, 6,860 or 8,820 kPa in a nitrogen atmosphere. Burning
velocity at 6,860 kPa and pressure index between 4,900 and 8,820 kPa were shown in
Table 7. The pressure index was calculated from the following equation: rb = αPn (wherein
rb: burning velocity, α: coefficient, P: pressure, and n: pressure index).
Table 7
| |
composition (ratio:mass %) |
burning velocity (mm/sec) |
pressure index |
| Ex. 80 |
GN/BCN/Al(OH)3/KClO4 /CMCNa (39.48/40.52/10/5/5) |
7.78 |
0.30 |
| Ex. 81 |
GN/BCN/Al(OH)3/NH4ClO4 /CMCNa (38.40/41.60/10/5/5) |
7.86 |
0.40 |
| Ex. 82 |
GN/BCN/Al(OH)3/NaClO4 /CMCNa (40.03/39.97/10/5/5) |
8.12 |
0.28 |
| Ex. 83 |
GN/BCN/Al(OH)3/KClO3/CMCNa (38.86/41.14/10/5/5) |
7.56 |
0.27 |
| Ex. 84 |
GN/BCN/Al(OH)3/NaClO3/CMCNa (39.39/40.16/10/5/5) |
9.16 |
0.30 |
[0065] As described above, each of the numeric values represented in Examples 80 to 84 shows
that practical conditions for the inflator gas generating compositions are satisfied.
In addition, the burning velocity was increased by containing the component (d), compared
with the burning velocity (7.32 mm/sec.) of Example 41 (GN/BCN/Al (OH)
3/CMCNa) in Table 3 containing no component (d) .
[0066] The increase in burning velocity allows more selected methods of manufacturing the
gas generating agent. For instance, the molded article of a gas generating composition
is required to be thin so that the gas generating agent is completely combusted within
a predetermined time when the burning velocity is small. Molding into pellets by a
compression molding or the like, on the other hand, is involved in difficulty in tabletting
too thin pellets.
A large burning velocity will solve such a problem in molding.
Examples 85 to 89
[0067] Gas generating compositions having compositions shown in Table 8 were prepared. The
compositions were molded into 2 g of strand. Each of the strands was displaced in
a closed gas bombé of one litter. Nitrogen gas was purged therein. The pressure was
elevated up to 6,860 Pa with nitrogen and the strand was ignited by passage of an
electric current through a nichrome wire to burn the strand completely. After approximately
20 seconds from the electrification, the combustion gas was sampled into a gas-sampling
bag and was immediately analyzed in terms of concentrations of NO, NO
2, NH
3, CO, and CO
2. Results are shown in Table 8.

1. A gas generating composition comprising the following components (a), (b) and (c)
and optionally the component (d) and/or the component (e):
(a) an organic compound as fuel,
(b) an oxygen-containing oxidizing agent,
(c) aluminum hydroxide,
(d) a binder
(e) an additive selected from metal oxides and metal carbides.
2. The gas generating composition as set forth in claim 1, comprising 10 to 60% by mass
of the component (a), 10 to 85% by mass of the component (b), 0.1 to 20% by mass of
the component (c), 20% by mass or less of the component (d) and 20% by mass or less
of the component (e).
3. The gas generating composition as set forth in claim 1 or 2, wherein the organic compound
(a) used as fuel is at least one selected from the group consisting of tetrazole compounds,
guanidine compounds, triazine compounds and nitroamine compounds.
4. The gas generating composition as set forth in any one of claims 1 to 3, wherein the
basic metal nitrate (b) is at least one selected from the group consisting of a basic
copper nitrate, a basic cobalt nitrate, a basic zinc nitrate, a basic manganese nitrate,
a basic iron nitrate, a basic molybdenum nitrate, a basic bismuth nitrate and a basic
cerium nitrate.
5. The gas generating composition as set forth in any one of claims 1 to 4, comprising,
as the component (b), at least one oxidizing agent selected from the group consisting
of (b-1) basic metal nitrates, nitrates and ammonium nitrate and (b-2) perchlorates
and chlorates.
6. The gas generating composition as set forth in any one of claims 1 to 5, wherein the
perchlorate and chlorate (b-2) is at least one selected from the group consisting
of ammonium perchlorate, potassium perchlorate, sodium perchlorate, potassium chlorate
and sodium chlorate.
7. The gas generating composition as set forth in any one of claims 1 to 6, wherein the
binder of the component (d) is at least one selected from the group consisting of
carboxymethylcellulose, sodium carboxymethylcellulose, potassium carboxymethylcellulose,
ammonium carboxymethylcellulose, cellulose acetate, cellulose acetate butyrate, methylcellulose,
ethylcellulose, hydroxyethylcellulose, ethylhydroxyethylcellulose, hydroxypropylcellulose,
carboxymethylethylcellulose, micro-crystalline cellulose, polyacrylamide, aminated
products of polyacrylamide, polyacrylhydrazide, a copolymer of acrylamide and a metal
salt acrylate, a copolymer of polyacrylamide and a polyacrylic ester, polyvinyl alcohol,
acrylic rubber, guar gum, starch and silicone.
8. The gas generating composition as set forth in any one of claims 1 to 7, wherein the
additive of the component (e) is at least one selected from the group consisting of
metal oxides including copper (II) oxide, iron oxide, zinc oxide, cobalt oxide, manganese
oxide, molybdenum oxide, nickel oxide, bismuth oxide, silica or alumina; metal hydroxides
including cobalt hydroxide or iron hydroxides; metallic carbonate or basic metallic
carbonate including cobalt carbonate, calcium carbonate, basic zinc carbonates or
basic copper carbonates; composite compounds of metal oxides or hydroxides including
acid clay, kaolin, talc, bentonite, diatomaceous earth, or hydrotalcite; metallic
acid salts including sodium silicate, mica molybdate, cobalt molybdate or ammonium
molybdate; silicone; molybdenum disulfide; calcium stearate; silicon nitride and silicon
carbide.
9. A molded article of a gas generating composition having a single-perforated cylindrical
shape, a porous cylindrical shape or a pellet shape, the molded article being obtained
from the gas generating composition as set forth in any one of claims 1 to 8.
10. An airbag inflator using the gas generating composition as set forth in any one of
claims 1 to 8 or the molded article of a gas generating composition as set forth in
claim 9.