Technical Field of the Invention
[0001] The invention relates to a gas generating composition to be used for a gas generator
for an air bag.
Prior arts
[0002] A gas generating composition comprises fuel, an oxidizing agent and a variety of
additives to be added based on the necessity, and the composition is required to satisfy
that the gas generated by combustion is clean, in other words, the gas contains no
nitrogen oxide (NOx), CO, or the like.
[0003] It has been known that basic copper nitrate (BCN) known as an oxidizing agent decreases
the combustion temperature. because of low combustion heat generation and suppresses
the production amount of NOx and thus has an effect to clean the discharged gas, and
it also has an effect to improve the ignition and the combustion properties and therefore,
it has been used widely as an oxidizing agent.
[0004] However, if the content of BCN as an oxidizing agent is too high, it results in a
problem that the generation amounts of NOx and ammonia are adversely increased.
[0005] A chloric acid compound also well-known as an oxidizing agent causes NOx removal
reaction and becomes a supply source of oxygen required to decompose NOx into nitrogen
and water, and therefore it has been used widely.
[0006] However, if the content of the chloric acid compound as an oxidizing agent is too
much, the supply of oxygen so exceeds as to rather increase the generation amounts
of NOx and mist.
[0007] In
EP-B No. 1,006,096 and
US-A1 No. 2003/0145921, BCN is used as an oxidizing agent to decrease the combustion temperature and accordingly
the discharged gas is cleaned and a satisfactory burning rate is obtained. However,
in EP-B No.
1,006,096 and US-A1 No.
2003/0145921, the use ratio of the perchloric acid salt to BCN is high and the supply of oxygen
becomes excess, so that, the generation amounts of NOx and mist are unsatisfactorily
increased.
[0008] In US-B No.
5, 608,183, as described in EP-B No.
1,006,096, neither sufficient ignition property nor burning rate can be obtained. Further,
normally in this system, so much BCN is contained that the cleanness level of the
discharged gas is low.
[0009] DE-U-29821541 discloses a gas generating composition, which contains a fuel and an oxidizer. At
least 95 wt% of the fuel is a guanidine compound such as guanidine nitrate. The oxidizer
may be a transition metal oxide, a metal chlorate or perchlorate, a metal nitrate,
or a mixture thereof.
[0010] DE-U-29806504 relates to a composition which contains guanidine nitrate, copper oxide, a basic
copper nitrate, and potassium perchlorate.
[0011] DE-A-10225660 relates to a gas generating composition comprising a fuel and an oxidizer, wherein
the fuel may be a guanidine compound. Examples of the oxidizers include transition
metal oxides, alkali metal chlorates or perchlorates, and alkali metal nitrates.
[0012] US-A-4386979 discloses a gas generating composition, which contains a nitrogen-containing compound
as a fuel, an oxidizer, and a coolant. The oxidizer may be an alkali metal chlorate
or perchlorate. The coolant may be a metal hydroxide, an oxide or a hydrated oxide.
[0013] EP-A-509763 discloses a gas generating composition comprising a tetrazole or a tetrazole salt
as a fuel and nitrogen source, an oxidizer and further additives. The oxidizer may
be an alkali metal chlorate or perchlorate.
[0014] EP-A-1241138 discloses a gas generating composition, which comprises a fuel and a basic metal
nitrate, optionally in combination with further additives. The fuel may be a guanidine
derivative. Examples of the additives include binders, slag forming agents, and combustion
improving agents.
Summary of the Invention
[0015] A purpose of the invention is to provide a gas generating composition with a good
ignition property and combustibility and generating suppressed amounts of toxic gases
such as NOx and ammonia at the time of combustion.
[0016] As a means for solving the above-mentioned problems, the invention provides a gas
generating composition comprising A) 20 to 50% by mass of a nitrogen-containing compound
as fuel, wherein the nitrogen-containing compound is at least one selected from tetrazole
compounds, guanidine compounds, triazine compounds and nitroamine compounds, (B) a
basic metal nitrate and (C) a chloric acid compound as oxidizing agents, the chloric
acid compound (C) being at least one selected from the group consisting of (C-1) a
perchloric acid salt and (C-2) a chloric acid salt, the content of the component (C)
being 1 to 5% by mass in the total oxidizing agents, wherein the gas generating composition
has an oxygen balance in the range of -0.02 g/g to +0.02 g/g, wherein the total amount
of (B) and (C) is 40 to 70% by mass in the gas generating composition.
[0017] Preferred embodiments are set forth in the subclaims.
Detailed explanation of the invention
[0018] The composition of the invention has a good ignition property and combustibility
(a high burning rate) and can decrease the generation amounts of NOx and ammonia gas
at the time of combustion, so that the amounts of NOx and ammonia to be contained
in the combustion gas can be suppressed.
[0019] Therefore, if the composition of the invention is applied to a gas generator for
an air bag, a necessary amount of a gas for expansion can be generated within a time
to reliably protect a passenger and at the same time, the toxic gas amount can remarkably
be suppressed in the gas for expanding the air bag and thus, the safety can be enhanced.
[0020] The fuel to be used in the invention contains a nitrogen-containing compound as the
component (A), and as the nitrogen-containing compound, at least one selected from
tetrazole compounds, guanidine compounds, triazine compounds and nitroamine compounds.
In addition, other than the nitrogen-containing compound, known fuel may be contained
and in such a case, the ratio of the nitrogen-containing compound in the fuel is 20
to 50% by mass.
[0021] As the tetrazoles, 5-aminotetrazole and bitetrazole ammonium are preferable. As the
guanidines, guanidine nitric acid salt (nitric acid guanidine), aminoguanidine nitric
acid salt, nitroguanidine, and triaminoguanidine nitric acid salt are preferable.
As triazines, melamine, cyanuric acid, ammeline, ammelide, and ammeland are preferable.
As nitroamines, cyclo-1,3,5-trimethine-2,4,6-trinitramine is preferable. Among them,
guanidine nitric acid salt is particularly preferable.
[0022] The content of the component (A) is 20 to 50% by mass, and preferably 25 to 50% by
mass.
[0023] The oxidizing agent to be used in the invention includes the basic metal nitrate
(B), the chloric acid compound (C), and additionally other oxidizing agents to be
used based on the necessity.
[0024] An example of the basic metal nitrate of the component (B) can be at least one of
the compounds selected from basic copper nitrate, basic cobalt nitrate, basic zinc
nitrate, basic manganese nitrate, basic iron nitrate, basic molybdenum nitrate, basic
bismuth nitrate, and basic cerium nitrate.
[0025] To increase the burning rate, the basic metal nitrate is preferable to have the average
particle diameter of 30 µm or smaller, more preferably 10 µm or smaller. The average
particle diameter is measured according to a particle size distribution method using
laser scattered beam. The measurement sample is prepared by dispersing the basic metal
nitrate in water and radiating ultrasonic wave for 3 minutes, and 50% cumulative values
(D
50) of the particles are calculated and the average of the values measured twice is
employed as the average particle diameter.
[0026] The chloric acid compound of the component (C) is a component having an oxidizing
function and a combustion promoting function. The oxidizing function means to generate
oxygen during the combustion and accordingly to efficiently promote combustion as
well as to suppress the production amount of the toxic gases such as NOx, ammonia,
carbon monoxide and the like. On the other hand, the combustion promoting function
means to improve the ignition property of the gas generating composition or to improve
the burning rate (enhancing the combustibility).
[0027] The chloric acid compound of the component (C) includes the perchloric acid salt
(C-1) and/or the chloric acid salt (C-2).
[0028] The perchloric acid salt of the component (C-1) may include ammonium perchlorate,
potassium perchlorate, and sodium perchlorate. The chloric acid salt of the component
(C-2) may include chloric acid, potassium chlorate, and sodium chlorate, and among
them, sodium perchlorate is particularly preferable.
[0029] The chloric acid compound of the component (C) is preferable to have the average
particle diameter of 1 to 500 µm, more preferably 2 to 50 µm. The measurement method
of the average particle diameter is the same as that of the average particle diameter
of the component (B).
[0030] The total content of the oxidizing agents of the component (B) and component (C)
is 40 to 70% by mass, more preferably 40 to 60% by mass, and even more preferably
40 to 55% by mass in the gas generating composition.
[0031] The content of the component (C) in the total oxidizing agent is 1 to 5% by mass,
and preferably 2 to 5% by mass. If the content of the component (C) is less than 5%
by mass, the combustion temperature can be lowered.
[0032] The mass ratio (B)/(C) of the basic copper nitrate (B) and the chloric acid compound
(C) in the oxidizing agents is preferably in the range of 3 to 70, more preferably
3 to 25, furthermore preferably 5 to 25, still more preferably 7 to 20, and most preferably
5 to 20.
[0033] If the mass ratio (B)/(C) is in the above ranges, the ignition property of the composition
is improved and the combustibility (the burning rate) is also improved and at the
same time, the production amounts of NOx and ammonia are suppressed at the time of
the combustion and therefore, the combustion gas is clean.
[0034] When known oxidizing agents other than the components (B) and (C) are contained,
the content of the basic copper nitrate (B) in the total oxidizing agents is 50% by
mass or more, preferably 60% by mass or more, and still preferably 70% by mass or
more. If the content of component (B) is in the above range, the ignition property
of the composition is improved and the combustibility (the burning rate) is also improved.
[0035] The composition of the invention may further contain the component (D) of a metal
hydroxide, a hydrated metal oxide, or a combination thereof as a coolant. The coolant
has a function for lowering the combustion temperature. The component (D) greatly
absorbs heat when it is thermally decomposed and produced an oxide and water. Therefore,
addition of the component (D) is effective to decrease the combustion temperature
of the composition and suppress the production amounts of toxic NOx and carbon monoxide.
[0036] An example of the metal hydroxide of the component (D) can be magnesium hydroxide,
aluminum hydroxide, calcium hydroxide, zirconium hydroxide, cobalt hydroxide and copper
hydroxide, and an example of the hydrated metal oxide can be hydrated aluminum oxide.
[0037] By adjusting an average particle diameter, the component (D) can improve the entire
dispersibility when the components (A) to (C) are mixed, so that the mixing work is
made easy and the ignition property of the obtained composition can be improved.
[0038] The average particle diameter of the component (D) is preferably 0.1 to 70 µm, more
preferably 0.5 to 50 µm, and even more preferably 2 to 30 µm. The measurement method
of the average particle diameter is the same measurement method of the average particle
diameter of the component (B).
[0039] The content of the component (D) in the gas generating composition is preferably
1 to 15% by mass, more preferably 3 to 12% by mass, and even more preferably 5 to
10% by mass.
[0040] If necessary, the composition of the invention may contain a binder. The binder is
a component to be used together with the components (A) to (C) based on the necessity
and is a component to improve the formability of the composition and increase the
strength of a molded article of the gas generating agent. If the strength of a molded
article of the gas generating agent is insufficient, it may occur that the molded
article breaks at the time of actual combustion and is burned too intensely to control
the combustion.
[0041] The binder may be at least one compound selected from carboxymethyl cellulose, carboxymethyl
cellulose sodium salt, carboxymethyl cellulose potassium salt, carboxymethyl cellulose
ammonium salt, cellulose acetate, cellulose acetate butyrate, methyl cellulose, ethyl
cellulose, hydroxyethyl cellulose, ethyl hydroxyethyl cellulose, hydroxypropyl cellulose,
carboxymethyl ethyl cellulose, microcrystalline cellulose, polyacrylamide, amino compounds
of polyacrylamide, polyacrylhydrazine, acrylamide-metal acrylate copolymer, polyacrylamidepoly(acrylic
acid ester) copolymer, polyvinyl alcohol, acrylic rubber, guar gum, starch, and silicone.
[0042] The content of the binder is preferably not more than 10 part by mass to 100 part
by mass of the total of the components (A) to (C).
[0043] The composition of the invention may further contain an additive selected from metal
oxides and metal carbonates, based on the necessity. The additive may be added for
the purpose to assist the function of the component (D), that is, to decrease the
combustion temperature of the composition, adjust the burning rate and suppress the
production amounts of the toxic nitrogen oxide and carbon monoxide after combustion.
[0044] The additive may be 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;
complex compounds of metal oxides or hydroxides such as Japanese acid clay, kaolin,
talc, bentonite, diatomaceous earth or hydrotalcite; metal acid salts such as sodium
silicate, mica molybdenic acid salt, cobalt molybdate or ammonium molybdate; molybdenum
disulfide, calcium stearate, silicon nitride, and silicon carbide.
[0045] The content of the additives is preferably not more than 10 part by mass to 100 part
by mass of the total of the components (A) to (C).
[0046] The composition of the invention has an oxygen balance in the range of -0.02 g/g
to +0.02 g/g, preferably -0.01 g/g to +0.01 g/g, and more preferably -0.006 g/g to
+0.006 g/g. The oxygen balance is the mass (expressed as +) of oxygen produced in
the case of complete combustion of 1 gram of the gas generating composition or the
mass (expressed as -) of oxygen needed in the case of complete combustion and can
be calculated by adding up products of the oxygen balances and the contents (% by
mass) of the respective components of the gas generating composition.
[0047] If the oxygen balance is in the above range, the production amounts of NOx and ammonia
can be decreased, so that the combustion gas becomes clean.
[0048] The composition of the invention can be molded into a desired shape, and it may be
molded into a single-perforated cylinder, a perforated (porous) cylinder or a pellet.
[0049] These molded articles can be produced by an extrusion-molding method (for a single-perforated
cylinder and a perforated (porous) cylinder) comprising the steps of adding water
or an organic solvent to the composition and extruding the mixture, or by a compression-molding
method (for a pellet) comprising the steps of compressing the above mixture using
a pelletizer. The single-perforated cylinder and the perforated (porous) cylinder
may have either of a longitudinal through-hole or a hollow without penetrating.
[0050] The composition of the invention and molded articles obtained therefrom may be used
for an inflator for a driver side, an inflator for a passenger side next to a driver
seat, an inflator for a side air bag, an inflator for an inflatable curtain, an inflator
for a knee bolster, an inflator for an inflatable seat belt, an inflator for a tubular
system and an inflator for a pretensioner of a variety of vehicles.
[0051] The inflators using the composition of the invention and the molded article obtained
from the composition may be a pyrotechnic type in which the gas is supplied only from
gas generating agent or a hybrid type in which both of compressed gas such as argon
and gas from the gas generating agent are supplied.
[0052] The composition of the invention and the molded article obtained from the composition
may be used as an igniting agent, so-called an enhancer (or a booster), for transmitting
the energy of a detonator or a squib to the gas generating agent.
Examples
Examples 1 and 2 and Comparative Examples 1 to 3
[0053] The gas generating compositions shown in Table 1 were produced. Their oxygen balances,
the combustion temperatures based on the theoretical calculation, and gas outputs
(the unit, mol/100 g, means the mole number of the generated gas per 100 g of each
composition) were measured. The results are shown in Table 1.
Table 1
| |
Composition (composition ratio: % by mass) |
Oxygen balance (g/g) |
Combustion temperature (K) |
Gas generation efficiency (mol/100 g) |
| Comparative Example 1 |
NQ/Sr(NO3)2 (56.9/43.1) |
0 |
2647 |
2.96 |
| Comparative Example 2 |
GN/BCN (53.4/46.6) |
0 |
1911 |
3.01 |
| Comparative Example 3 |
GN/BCN/KClO4 (56.26/33.74/10) |
0 |
2173 |
3.38 |
| Example 1 |
GN/BCN/CMCNa/KClO4 (44.1/48.4/5/2.5) |
-0.009 |
1844 |
2.88 |
| Example 2 |
GN/BCN/CMCNa/NaClO4 (44.37/48.13/5/2.5) |
-0.009 |
1856 |
2.89 |
[0054] In Table 1, NQ stands for nitroguanidine, GN stands for guanidine nitric acid, BCN
stands for basic copper nitrate, and CMCNa stands for carboxymethyl cellulose sodium
salt. They are similarly shown in the other tables.
[0055] The combustion temperatures of Examples 1 and 2 are lower than those of corresponding
Comparative Examples 1 to 3.
Examples 3 and 4
[0056] The gas generating compositions shown in Table 2 were produced. The friction sensitivity
test and drop hammer sensitivity test with respect to the compositions were conducted
according to the explosive performance test method of JIS K4810-1979. The results
are shown in Table 2.
Table 2
| |
Composition (composition ratio: % by mass) |
Friction sensitivity (N) |
Drop hammer sensitivity (cm) |
| Example 3 |
GN/BCN/CMCNa/KClO4 (44.1/48.4/5/2.5) |
>353 |
>600 |
| Example 4 |
GN/BCN/CMCNa/NaClO4 (44.37/48.13/5/2.5) |
>353 |
>60 |
[0057] The compositions of Examples 3 and 4 were found having the friction sensitivity exceeding
353 N and the drop hammer sensitivity exceeding 60 cm, and they are insensitive in
the friction sensitivity and the drop hammer sensitivity, and thus they have high
handling safety.
Example 5
[0058] 1,888.5 g of guanidine nitric acid salt, 2,269 g of basic copper nitrate, 500 g of
aluminum hydroxide, 250 g of CMCNa, 100 g of sodium perchlorate, and 700 g of water
were loaded to a mixer and mixed all together. The mixture was extruded by an extruder,
cut, and dried to obtain a single hole type gas generating composition having the
outer diameter of 4.25 mm, the inner diameter of 1.10 mm, and the length of 4.08 mm.
40.3 g of the gas generating composition was air-tightly sealed in a chamber having
the inner diameter of 57 mm and the height of 32 mm to produce an inflator for a test.
[0059] Using the inflator, a well-known 60-liter tank test (e.g. disclosed in column 22
of JP-A No.
2001-97176) and a discharged gas test of a 2800-liter tank were carried out. The 2800-liter
tank test was carried out by setting the inflator in a tank made of an iron and having
a capacity of 2,800 liters; igniting the inflator; measuring the concentrations of
NO, NO
2, CO and NH
3 in the tank after 3 minutes, 15 minutes, and 30 minutes from the ignition; and determining
the average values of the respective moments as the respective gas concentrations.
[0060] As a result, in the 60-liter tank test, the inner pressure of the inflator was 16.8
MPa and the tank pressure was 185.2 KPa and these values were satisfying the conditions
for practical use. The result of the 2800-liter tank test is shown in Table 3.
Table 3
| |
NO2 |
NO |
CO |
NH3 |
| Discharged gas concentration (ppm: on the basis of mole number) |
0 |
7 |
70 |
8.5 |
[0061] The concentrations of NO, NO
2, CO, and NH
3 shown in Table 3 were found extremely low, and thus it was confirmed that the safety
to a passenger is high when the gas generating composition is burned to expand an
air bag.