EP2970036A1 - Enhanced slag formation for copper-containing gas generants - Google Patents
Enhanced slag formation for copper-containing gas generantsInfo
- Publication number
- EP2970036A1 EP2970036A1 EP14774422.1A EP14774422A EP2970036A1 EP 2970036 A1 EP2970036 A1 EP 2970036A1 EP 14774422 A EP14774422 A EP 14774422A EP 2970036 A1 EP2970036 A1 EP 2970036A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- equal
- gas generant
- generant composition
- less
- slag
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
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- C—CHEMISTRY; METALLURGY
- C06—EXPLOSIVES; MATCHES
- C06B—EXPLOSIVES OR THERMIC COMPOSITIONS; MANUFACTURE THEREOF; USE OF SINGLE SUBSTANCES AS EXPLOSIVES
- C06B23/00—Compositions characterised by non-explosive or non-thermic constituents
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- C—CHEMISTRY; METALLURGY
- C06—EXPLOSIVES; MATCHES
- C06B—EXPLOSIVES OR THERMIC COMPOSITIONS; MANUFACTURE THEREOF; USE OF SINGLE SUBSTANCES AS EXPLOSIVES
- C06B23/00—Compositions characterised by non-explosive or non-thermic constituents
- C06B23/001—Fillers, gelling and thickening agents (e.g. fibres), absorbents for nitroglycerine
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- C—CHEMISTRY; METALLURGY
- C06—EXPLOSIVES; MATCHES
- C06B—EXPLOSIVES OR THERMIC COMPOSITIONS; MANUFACTURE THEREOF; USE OF SINGLE SUBSTANCES AS EXPLOSIVES
- C06B23/00—Compositions characterised by non-explosive or non-thermic constituents
- C06B23/04—Compositions characterised by non-explosive or non-thermic constituents for cooling the explosion gases including antifouling and flash suppressing agents
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- C—CHEMISTRY; METALLURGY
- C06—EXPLOSIVES; MATCHES
- C06D—MEANS FOR GENERATING SMOKE OR MIST; GAS-ATTACK COMPOSITIONS; GENERATION OF GAS FOR BLASTING OR PROPULSION (CHEMICAL PART)
- C06D5/00—Generation of pressure gas, e.g. for blasting cartridges, starting cartridges, rockets
- C06D5/06—Generation of pressure gas, e.g. for blasting cartridges, starting cartridges, rockets by reaction of two or more solids
Definitions
- the present disclosure relates to enhancing slagging in gas generants containing copper by introducing large particle size endothermic slag-forming components.
- Passive inflatable restraint systems are used in a variety of applications, such as motor vehicles. Certain types of passive inflatable restraint systems minimize occupant injuries by using a pyrotechnic gas generant to inflate an airbag cushion (e.g., gas initiators and/or inflators) or to actuate a seatbelt tensioner (e.g. , micro gas generators), for example. Automotive airbag inflator performance and safety requirements are continually increasing to enhance passenger safety, while concurrently striving to reduce manufacturing costs.
- gas generant selection involves addressing various factors, including meeting current industry performance specifications, guidelines and standards, generating safe gases or effluents, durational stability of the materials, and cost-effectiveness in manufacture, among other considerations. Improved gas generator performance may be achieved in a variety of ways, many of which ultimately depend on the gas generant formulation to provide the desired properties.
- Suitable gas generants provide sufficient gas mass flow in a desired time interval to achieve a required work impulse for the inflating device. Further, gas generants having lower flame temperatures are advantageous. In current designs of automotive airbag inflators, a significant portion of the mass of the inflator is often relegated to heat sink, in combination with filtration systems. This detrimentally impacts the weight of the inflator and thus the efficiency of the system. Hence, for new advanced inflator designs, it is desirable to reduce or minimize filter and heat sink requirements as much as possible. As part of these new designs, cool burning gas generant formulations are advantageous because they reduce heat sink requirements.
- the cool burning gas generant must slag very well, meaning that combustion products form a large integral mass that is retained inside the combustion chamber during combustion and thus does not pass through the filter into the airbag. Accordingly, enhancing formation of slag in various gas generants, especially in cool burning gas generants would be highly desirable to produce lighter, more efficient inflator designs.
- the present disclosure pertains to gas generant compositions comprising copper having improved slagging properties.
- the present disclosure provides a gas generant composition comprising a fuel, an oxidizer comprising basic copper nitrate, and an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ .
- the gas generant composition has a maximum flame temperature at combustion (T c ) of less than or equal to about 1.900K (1,627°C).
- the present disclosure provides a gas generant composition
- a gas generant composition comprising a fuel, at least one oxidizer comprising basic copper nitrate, and an endothermic slag-forming component comprising aluminum hydroxide having an average particle size diameter of greater than or equal to about 150 ⁇ .
- the gas generant composition has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C).
- such a gas generant composition may have a maximum flame temperature at combustion (T c ) of greater than or equal to about 1,350K (1,077°C) to less than or equal to about 1.450K (1, 177°C).
- the present disclosure provides a method of enhancing slag formation for a gas generant composition.
- the method may comprise introducing an endothermic slag-forming component having an average particle diameter size of greater than or equal to about 150 ⁇ to a gas generant composition comprising a fuel and an oxidizer comprising basic copper nitrate.
- the introducing of the endothermic slag-forming component enhances slag formation during combustion of the gas generant composition by at least 50%.
- Figure 1 is a partial cross-sectional view of an exemplary passenger- side airbag module including an inflator for an inflatable airbag restraint device.
- Figure 2 shows an acceptable particle size distribution for a large particle size endothermic slag-forming aluminum hydroxide for use in accordance with various aspects of the present disclosure.
- Figure 3 shows a macroscopic photograph of a slag formed from a conventional gas generant.
- Figure 4 shows a microscopic photograph of the slag in Figure 3 formed from the comparative example of a conventional gas generant. Magnification is at 50 times.
- Figure 5 shows a macroscopic photograph of a slag formed from a gas generant prepared in accordance with certain aspects of the present disclosure.
- Figure 6 shows a microscopic photograph of the slag in Figure 5 formed from the gas generant prepared in accordance with certain aspects of the present disclosure. Magnification is at 50 times.
- Figure 7 shows a photograph of a slag formed from a comparative conventional gas generant in a post-fire inflator combustion chamber.
- Figure 8 shows a photograph of slag formed from the gas generant prepared in accordance with certain aspects of the present disclosure in a post-fire inflator combustion chamber.
- Example embodiments are provided so that this disclosure will be thorough, and will fully convey the scope to those who are skilled in the art. Numerous specific details are set forth such as examples of specific components, devices, and methods, to provide a thorough understanding of embodiments of the present disclosure. It will be apparent to those skilled in the art that specific details need not be employed, that example embodiments may be embodied in many different forms and that neither should be construed to limit the scope of the disclosure. In some example embodiments, well-known processes, well-known device structures, and well-known technologies are not described in detail.
- ranges are, unless specified otherwise, inclusive of endpoints and include disclosure of all distinct values and further divided ranges within the entire range.
- a range of “from A to B” or “from about A to about B” is inclusive of A and of B. Disclosure of values and ranges of values for specific parameters (such as weight percentages, temperatures, molecular weights, etc.) are not exclusive of other values and ranges of values useful herein. It is envisioned that two or more specific exemplified values for a given parameter may define endpoints for a range of values that may be claimed for the parameter.
- Parameter X is exemplified herein to have value A and also exemplified to have value Z, it is envisioned that Parameter X may have a range of values from about A to about Z.
- disclosure of two or more ranges of values for a parameter (whether such ranges are nested, overlapping or distinct) subsume all possible combination of ranges for the value that might be claimed using endpoints of the disclosed ranges.
- Parameter X is exemplified herein to have values in the range of 1-10, or 2-9, or 3-8, it is also envisioned that Parameter X may have other ranges of values including 1-9, 1-8, 1-3, 1-2, 2-10, 2-8, 2-3, 3-10, and 3-9.
- Example embodiments will now be described more fully with reference to the accompanying drawings.
- Gas generant compositions are drawn to gas generant compositions and methods for enhancing slag formation in such gas generant compositions.
- Gas generants also known as propellants, gas-generating materials, and pyrotechnic materials are used in inflators of airbag modules, such as a simplified exemplary airbag module 30 comprising a passenger compartment inflator assembly 32 and a covered compartment 34 to store an airbag 36 of Figure 1.
- a gas generant material 50 burns to produce the majority of gas products that are directed to the airbag 36 to provide inflation.
- Such devices often use a squib or initiator 40 which is electrically ignited when rapid deceleration and/or collision is sensed.
- the discharge from the squib 40 usually ignites an igniter material 42 that burns rapidly and exothermically, in turn, igniting a gas generant material 50.
- the gas generant 50 can be in the form of a solid grain, a pellet, a tablet, or the like. "Slag” or “clinker” is another name for solid combustion products formed during combustion of the gas generant material.
- the composition of slag is mainly metals and metal oxides. Ideally, the slag will maintain the original shape of the gas generant (e.g. , grain, pellet, or tablet) and be large and easily filtered.
- the inflator design includes a reduced mass filtration system for the purpose of reducing the inflator size and weight such as can be used with cool burning gas generant formulations.
- an exemplary conventional filter system 52 is provided between gas generant 50 and airbag 36.
- the quality and toxicity of the components of the gas produced by the gas generant 50, also referred to as effluent, are important because occupants of the vehicle are potentially exposed to these compounds. It is desirable to minimize the concentration of potentially harmful compounds in the effluent.
- gas generant compositions e.g., 50
- gas generant material selection involves various factors, including meeting current industry performance specifications, guidelines and standards, generating safe gases or effluents, handling safety of the gas generant materials, durational stability of the materials, and cost-effectiveness in manufacture, among other considerations. It is preferred that the gas generant compositions are safe during handling, storage, and disposal, and preferably are azide-free.
- the gas generant typically includes at least one fuel component and at least one oxidizer component, and may include other minor ingredients, that once ignited combust rapidly to form gaseous reaction products (e.g., C0 2 , H 2 0, and N 2 ).
- gaseous reaction products e.g., C0 2 , H 2 0, and N 2 .
- One or more fuel compounds undergo rapid combustion to form heat and gaseous products; e.g., the gas generant burns to create heated inflation gas for an inflatable restraint device or to actuate a piston.
- the gas-generating composition also includes one or more oxidizing components, where the oxidizing component reacts with the fuel component in order to generate the gas product.
- Improved gas generator performance in an inflatable restraint system may be achieved in a variety of ways, many of which ultimately depend on the gas generant formulation to provide the desired properties.
- a gas generant provides sufficient gas mass flow in a desired time interval to achieve the required work impulse for an inflating device (e.g., airbag) within the inflatable restraint system.
- an inflating device e.g., airbag
- a temperature of gas generated by the gas generant influences the amount of work gases can do, high gas temperatures may be undesirable because burns and related thermal damage can result.
- high gas temperatures can also potentially lead to an excessive reliance or sensitivity of the gas to heat transfer and excessively rapid deflation profiles, which can likewise be undesirable.
- a cool burning gas generant having combustion flame temperatures of less than approximately 1,900K (1,627°C) has been shown to enable inflator devices with reduced filtration, which operate in a manner that provides adequate restraint and protection, without the risk of burns or injury to an automobile occupant in the event of a crash.
- minimizing flame temperature is advantageous.
- a high flame temperature may be considered anything in excess of about 1,900K (1,627°C) at combustion.
- Advanced inflator design concepts incorporate reduced filter and heat sink mass, as well as reduced containment wall thickness coupled with fiberglass/resin reinforcement to achieve significant weight reduction in the inflator.
- Use of cool burning gas generant formulations reduces heat sink requirements. Additionally, because filter mass is reduced, it is desirable to have a cool burning gas generant that slags very well.
- slagging it is meant that certain solid combustion products generated during burning of the gas generant form a large integral solid mass that is retained inside the combustion chamber during combustion, rather than passing through the filter into the airbag. Traditional slagging agents have been used to achieve this effect.
- a slagging agent is a compound or material, usually inert to combustion, that melts at combustion temperatures and agglomerates or collects all of the solid combustion products together.
- Examples of conventional slagging agents are silicon dioxide, aluminum oxide, glass and other metal oxides that melt at or near the combustion flame temperature.
- the present disclosure provides a relatively cool burning gas generant composition that comprises a fuel and an oxidizer.
- the gas generant composition comprises a fuel and an oxidizer comprising copper.
- the gas generant comprises a fuel and an oxidizer comprising basic copper nitrate.
- the gas generant composition has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C) and in certain other aspects, optionally less than or equal to about 1,700K (1,427°C).
- a large particle size endothermic slag-forming component is introduced to the gas generant composition to significantly enhance formation of slag when such a gas generant component is combusted.
- the endothermic slag-forming component particles preferably have an average particle size diameter of greater than or equal to about 150 ⁇ .
- the endothermic slag-forming component has a decomposition temperature in a range of greater than or equal to about 180°C to less than or equal to about 450°C, meaning that the compound decomposes endothermically within this temperature range, for example, by releasing water or carbon dioxide.
- the endothermic slag-forming component comprises a large particle size aluminum hydroxide (Al(OH)3).
- Al(OH)3 aluminum hydroxide
- the following compounds may be employed as endothermic slag- forming components in gas generant compositions comprising copper: hydromagnesite (Mg 5 (C0 3 )4(OH)2.4H 2 0), Dawsonite (NaAl(OH) 2 C0 3 ), magnesium hydroxide (Mg(OH) 2 ), magnesium carbonate subhydrate (MgOC0 2 H 2 0 ( o .3) ), Bohemite (AIO(OH)), calcium hydroxide (Ca(OH) 2 ), and combinations thereof.
- Each of these compounds decomposes endothermically within the desired temperature range of greater than or equal to about 180°C to less than or equal to about 450°C, as set forth in Table 1 below. Table 1
- the endothermic slag-forming component has specific particle size requirements to provide certain benefits associated with the inventive technology.
- the endothermic slag-forming component comprises a large particle size aluminum hydroxide (Al(OH) 3 ).
- Al(OH) 3 aluminum hydroxide
- the inventive technology contemplates use of aluminum hydroxide having very specific particle size properties, which greatly improves slag formation while also cooling a copper-containing gas generant flame temperature (e.g., a maximum combustion flame temperature lowered to about 1,350K (1,077°C) - 1,450K (1, 177°C).
- endothermic slag-forming component particles e.g., aluminum hydroxide particles
- large particle size it is meant that an average particle size diameter of the endothermic slag-forming component particles (e.g., aluminum hydroxide particles) is greater than or equal to 150 micrometers ( ⁇ ), optionally greater than or equal to about 175 ⁇ , optionally greater than or equal to about 200 ⁇ , optionally greater than or equal to about 225 ⁇ , optionally greater than or equal to about 250 ⁇ , optionally greater than or equal to about 275 ⁇ , and in certain variations greater than or equal to about 300 ⁇ .
- the particle size distribution for the endothermic slag-forming component particles may have a 10% value of greater than or equal to about 100 ⁇ (micrometers); optionally greater than or equal to about 115 ⁇ . In certain variations, the particle size distribution has an average (50%) particle size of greater than or equal to about 150 ⁇ , while also having a 10% value of greater than or equal to about 100 ⁇ . Furthermore, particle size distributions of endothermic slag-forming component particles with 90% values of 200 to 300 ⁇ also provide desired advantages associated with certain aspects of the present teachings.
- One suitable example of a large particle size aluminum hydroxide has a particle size distribution 10% value of about 115 ⁇ , a 50% value of about 158 ⁇ (thus an average particle size diameter of 158 ⁇ ), and a 90% value of about 288 ⁇ .
- An example of such an acceptable particle size for an aluminum hydroxide that fulfills the requirements for use in accordance with the present technology is shown in Figure 2, which has an average particle size diameter as described just above.
- relatively large particles provide the desirable slagging ability to the gas generant compositions comprising copper.
- gas generants are provided that have desirable compositions that result in superior performance characteristics in an inflatable restraint device, while reducing overall cost of gas generant and inflator assembly production.
- an improved cool burning gas generant composition is provided that has a maximum combustion temperature (T c ) (also expressed as maximum combustion flame temperature) of less than or equal to about 1,900K (1,627°C).
- the maximum combustion temperature is less than or equal to about 1.800K (1,527°C), optionally less than or equal to about 1.700K (1,427°C), optionally less than or equal to about 1,600K (1,327°C) and in certain variations, less than or equal to about 1,500K (1,227°C).
- the flame temperature during combustion for a cool burning gas generant is greater than or equal to about 1.300K (1,027°C) to less than or equal to about 1.700K (1,427°C).
- the gas generant may have a high mass density in various embodiments.
- the gas generant has a theoretical mass density of greater than or equal to about 2 g/cm , optionally greater than or equal to about 2.25 g/cm 3 , optionally greater than or equal to about 2.5 g/cm , and in certain variations, optionally greater than or equal to about 2.75 g/cm 3 .
- the gravimetric gas yield of the gas generant is relatively high.
- the gravimetric gas yield is greater than or equal to about 1.8 moles/100 grams of gas generant.
- the gravimetric gas yield is greater than or equal to about 1.9 moles/100 g of gas generant, optionally greater than or equal to about 2.0 moles/100 g of gas generant, optionally greater than or equal to about 2.1 moles/100 g of gas generant, optionally greater than or equal to about 2.2 moles/100 g of gas generant, optionally greater than or equal to about 2.3 moles/100 g of gas generant, optionally greater than or equal to about 2.4 moles/100 g of gas generant, optionally greater than or equal to about 2.5 moles/100 g of gas generant, and in certain variations, optionally greater than or equal to about 2.6 moles/100 g of gas generant.
- the product of gravimetric gas yield and density is
- the volumetric gas yield of a gas generant is optionally greater than or equal to about 5.0 moles/100 cm of gas generant. In other embodiments, the volumetric gas yield is greater than or equal to about 5.1 moles/100 cm 3 of gas generant, optionally greater than or equal to about 5.2 moles/100 cm of gas generant, optionally greater than or equal to about 5.3 moles/100 cm of gas generant, optionally greater than or equal to about 5.4 moles/100 cm of gas generant, optionally greater than or equal to about 5.5 moles/100 cm of gas generant, and in certain variations, optionally greater than or equal to about 5.6 moles/ 100 cm 3 of gas generant.
- the present technology provides enhanced slag formation for cool burning gas generants.
- the disclosure provides a gas generant composition comprising copper having good slag forming capabilities.
- the gas generant composition may comprise at least one fuel, at least one oxidizer comprising copper, a large particle size endothermic slag-forming component, and optionally minor amounts of conventional gas generant additives.
- Materials are generally categorized as gas generant fuels due to their relatively low burn rates, and are often combined with one or more oxidizers in order to obtain desired burn rates and gas production.
- a fuel component may be combined with additional components in the gas generant, such as co-fuels or oxidizers.
- fuels known in the art can be used with the present technology and are generally selected to impart certain desirable characteristics to the gas generant formulation, such as gas yield, burning rate, thermal stability, and low cost.
- These fuels can be organic compounds containing two or more of the elements: carbon (C), hydrogen (H), nitrogen (N), and oxygen (O).
- the fuels can also include transition metal salts and transition metal nitrate complexes. In certain variations, preferred transition metals are copper and/or cobalt.
- a fuel is selected for the inventive gas generant compositions so that when combusted with certain oxidizers comprising copper, such as basic copper nitrate, a resulting maximum combustion flame temperature (T c ) falls within a range of greater than or equal to about 1,400K (1,127°C) to less than or equal to 1.900K (1,627°C).
- Examples of fuels useful for gas generants according to the present teachings are selected from the group consisting of guanidine nitrate, copper bis guanylurea dinitrate, hexamine cobalt (III) nitrate, copper diammine bitetrazole, and combinations thereof. Fuels may be used singly or in combination with other co-fuels to impart the desired combustion characteristics.
- a suitable gas generant composition optionally includes greater than or equal to about 25% to less than or equal to about 70% by weight; optionally greater than or equal to about 30% to less than or equal to about 55% of all fuel components in the total gas generant composition .
- the gas generant formulations include an oxidizer comprising copper as a main oxidizer.
- a particularly suitable oxidizer for the gas generant compositions of the present disclosure is basic copper nitrate.
- Basic copper nitrate has a high oxygen-to-metal ratio and good slag forming capabilities upon burn.
- a suitable gas generant composition optionally includes greater than or equal to about 25% to less than or equal to about 75% by weight of the oxidizer, such as basic copper nitrate; optionally greater than or equal to about 30% to less than or equal to about 60% by weight of the oxidizer, such as basic copper nitrate, in the total gas generant composition.
- the gas generant may include combinations of oxidizers, such that the oxidizer comprising copper may be nominally considered to be a primary oxidizer, so that additional oxidizers are referred to as a secondary oxidizer, and the like.
- the gas generant composition may comprise an oxidizer comprising a perchlorate-containing compound (a compound including a perchlorate group (C10 4 ⁇ )).
- the gas generant compositions may be substantially free of perchlorate- containing compounds. However, if such perchlorate-containing compounds are present in relatively small amounts, alkali, alkaline earth, and ammonium perchlorates are contemplated for use in the gas generant compositions.
- perchlorate oxidizers include alkali metal perchlorates and ammonium perchlorates, such as ammonium perchlorate (NH 4 CIO 4 ), sodium perchlorate (NaC10 4 ), potassium perchlorate (KC10 4 ), lithium perchlorate (LiC10 4 ), magnesium perchlorate (Mg(C10 4 ) 2 ), and combinations thereof.
- perchlorate oxidizers are present in the gas generant, it is preferably at less than about 3% by weight of the total gas generant composition.
- a perchlorate containing oxidizer is present in certain embodiments at about 0.1% to about 3% by weight; and optionally about 0.5 to about 2% by weight of the gas generant.
- the gas generant composition further comprises an endothermic slag-forming component having a large particle size.
- the endothermic slag-forming component is selected from the group consisting of: aluminum hydroxide, hydromagnesite, Dawsonite, magnesium hydroxide, magnesium carbonate subhydrate, Bohemite, calcium hydroxide, and combinations thereof.
- the endothermic slag-forming component may be present at greater than or equal to about 5% by weight to less than or equal to about 20% by weight of a total gas generant composition; optionally at greater than or equal to about 7% to less than or equal to about 18%; optionally at greater than or equal to about 8% to less than or equal to about 16%; and in certain variations, greater than or equal to about 10% to less than or equal to about 15% by weight of a total gas generant composition.
- a gas generant composition may optionally include additional components known to those of skill in the art. Such additives typically function to improve the handling or other material characteristics of the slag which remains after combustion of the gas generant material; and improve ability to handle or process pyrotechnic raw materials.
- additional ingredients for the gas generant composition may be selected from the group consisting of: flow aids, pressing aids, metal oxides, and combinations thereof. If minor ingredients are included in the gas generant, they may be cumulatively present at less than or equal to about 4% by weight of the total gas generant composition.
- such an additive may be selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof is present in a gas generant composition, in certain variations each respective additive is present at greater than or equal to 0% to less than or equal to about 3% by weight; optionally greater than or equal to about 0.1% to less than or equal to about 2% by weight, and in certain variations, optionally greater than or equal to about 0.5% to less than or equal to about 1% by weight of the gas generant, so that the total amount of additives is less than or equal to about 4%.
- Press aids used during compression processing include lubricants and/or release agents, such as graphite, calcium stearate, magnesium stearate, molybdenum disulfide, tungsten disulfide, graphitic boron nitride, may be optionally included in the gas generant compositions, by way of non-limiting example.
- Conventional flow aids may also be employed, such as high surface area fumed silica.
- the gas generant compositions may optionally include a metal oxide that serves as a viscosity modifying compound or an additional slag forming agent (in addition to the endo thermic slag-forming component described above).
- Suitable metal oxides may include silicon dioxide, cerium oxide, ferric oxide, titanium oxide, zirconium oxide, bismuth oxide, molybdenum oxide, lanthanum oxide and the like.
- a gas generant composition according to certain aspects of the present disclosure comprises a fuel component, an oxidizer comprising basic copper nitrate, and an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ .
- a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C).
- the gas generant composition may further comprise a co-oxidizer, such as a perchlorate-based compound.
- a gas generant composition comprises greater than or equal to about 5% to less than or equal to about 70% by weight of the gas generant composition, an oxidizer comprising basic copper nitrate present at greater than or equal to about 25% to less than or equal to about 75% by weight of the gas generant composition, a co-oxidizer comprising a perchlorate-based compound present at greater than or equal to 0% to less than or equal to about 3% by weight of the gas generant composition, and an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ present at greater than or equal to about 5% to less than or equal to about 20% by weight of the gas generant composition.
- the gas generant composition may further comprise an additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof, wherein a cumulative amount of the additive(s) is greater than or equal to 0% to less than or equal to about 4% of the gas generant composition.
- the inventive gas generant formulations are cool burning and show a significant improvement in slagging, as will be discussed in greater detail below.
- a gas generant composition comprises a fuel selected from the group consisting of: guanidine nitrate, copper bis guanylurea dinitrate, hexamine cobalt (III) nitrate, copper diammine bitetrazole, and combinations thereof, present at greater than or equal to about 25% to less than or equal to about 70% by weight.
- the gas generant also comprises an oxidizer comprising basic copper nitrate present at greater than or equal to about 25% to less than or equal to about 75% by weight of the gas generant composition.
- the gas generant composition may further comprise a co-oxidizer, such as a perchlorate-based compound present at greater than or equal to 0% to less than or equal to about 3%.
- the gas generant includes an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ selected from the group consisting of: aluminum hydroxide, hydromagnesite, Dawsonite, magnesium hydroxide, magnesium carbonate subhydrate, Bohemite, calcium hydroxide, and combinations thereof, which is present at greater than or equal to about 5% to less than or equal to about 20% by weight of the gas generant composition.
- the gas generant composition comprises an additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof, where a cumulative amount of the additive(s) is greater than or equal to 0% to less than or equal to about 4% of the gas generant composition.
- Such a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C) and can achieve a resultant flame temperature of between about 1.350K (1,077°C) to 1.450K (1,177°C).
- a gas generant composition comprises a fuel comprising guanidine nitrate present at greater than or equal to about 25% to less than or equal to about 70% by weight.
- the gas generant also includes an oxidizer comprising basic copper nitrate at greater than or equal to about 25% to less than or equal to about 75% by weight of the gas generant composition.
- a co-oxidizer is optionally present, for example a co-oxidizer that comprises a perchlorate-based compound present at greater than or equal to 0% to less than or equal to about 3% by weight of the gas generant composition.
- the gas generant includes an endothermic slag-forming component comprising aluminum hydroxide (Al(OH) 3 ) having an average particle size diameter of greater than or equal to about 150 ⁇ present at greater than or equal to about 5% to less than or equal to about 20% by weight of the gas generant composition.
- a gas generant composition optionally comprises an additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof, where a cumulative amount of the additive(s) is greater than or equal to 0% to less than or equal to about 4% of the gas generant composition.
- Such a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C) and can achieve a resultant flame temperature of between about 1.350K (1,077°C) to 1.450K (1,177°C).
- a gas generant composition according to certain aspects of the present disclosure consists essentially of a fuel component, an oxidizer comprising basic copper nitrate, and an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ .
- Such a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C).
- a gas generant composition consists essentially of greater than or equal to about 25% of a fuel to less than or equal to about 70% by weight of the gas generant composition, an oxidizer comprising basic copper nitrate present at greater than or equal to about 25% to less than or equal to about 75% by weight of the gas generant composition, a co-oxidizer comprising a perchlorate-based compound present at greater than or equal to 0% to less than or equal to about 3% by weight of the gas generant composition, and an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ present at greater than or equal to about 5% to less than or equal to about 20% by weight of the gas generant composition and an optional additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof, wherein a cumulative amount of the additive(s) is greater than or equal to 0% to less than or equal to about 4% of the gas generant composition.
- a gas generant composition consists essentially of a fuel selected from the group consisting of: guanidine nitrate, copper bis guanylurea dinitrate, hexamine cobalt (III) nitrate, copper diammine bitetrazole, and combinations thereof; an oxidizer comprising basic copper nitrate; a co-oxidizer comprising a perchlorate-based compound present at greater than or equal to 0% to less than or equal to about 3% by weight of the gas generant composition; an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ selected from the group consisting of: aluminum hydroxide, hydromagnesite, Dawsonite, magnesium hydroxide, magnesium carbonate subhydrate, Bohemite, calcium hydroxide, and combinations thereof; and an optional additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof.
- Such a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C) and can achieve a resultant flame temperature of between about 1.350K (1,077°C) to 1.450K (1,177°C).
- a gas generant composition consists essentially of a fuel selected from the group consisting of: guanidine nitrate, copper bis guanylurea dinitrate, hexamine cobalt (III) nitrate, copper diammine bitetrazole, and combinations thereof, present at greater than or equal to about 25% to less than or equal to about 70% by weight; an oxidizer comprising basic copper nitrate present at greater than or equal to about 25% to less than or equal to about 75% by weight of the gas generant composition; a co-oxidizer comprising a perchlorate -based compound present at greater than or equal to 0% to less than or equal to about 3% by weight of the gas generant composition; an endothermic slag-forming component having an average particle size diameter of greater than or equal to about 150 ⁇ selected from the group consisting of: aluminum hydroxide, hydromagnesite, Dawsonite, magnesium hydroxide, magnesium carbonate subhydrate, Bohemite, calcium hydroxide, and combinations
- Such a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C) and can achieve a resultant flame temperature of between about 1,350K (1,077°C) to 1,450K (1,177°C).
- a gas generant composition consists essentially of a fuel comprising guanidine nitrate, an oxidizer comprising basic copper nitrate, a co-oxidizer comprising a perchlorate-based compound, an endothermic slag- forming component comprising aluminum hydroxide (Al(OH)3) having an average particle size diameter of greater than or equal to about 150 ⁇ , and an optional additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof.
- a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C).
- a gas generant composition consists essentially of a fuel comprising guanidine nitrate, an oxidizer comprising basic copper nitrate, an endothermic slag-forming component comprising aluminum hydroxide (Al(OH) 3 ) having an average particle size diameter of greater than or equal to about 150 ⁇ , and an optional additive selected from the group consisting of: flow aids, press aids, metal oxides, and combinations thereof.
- the fuel comprising guanidine nitrate is present at greater than or equal to about 25% to less than or equal to about 70% by weight.
- the oxidizer comprising basic copper nitrate can be present at greater than or equal to about 25% to less than or equal to about 75% by weight of the gas generant composition.
- the aluminum hydroxide is present at greater than or equal to about 5% to less than or equal to about 20% by weight of the gas generant composition.
- the additive or additives may be present in a cumulative total amount of greater than or equal to 0% to less than or equal to about 4% of the gas generant composition.
- Such a gas generant composition preferably has a maximum flame temperature at combustion (T c ) of less than or equal to about 1.900K (1,627°C).
- Comparative Example 1 has a conventional smaller size of aluminum hydroxide particle, while Example 2 is prepared in accordance with certain aspects of the present teachings.
- the ingredients for the gas generant and their properties for both Comparative Example 1 and Example 2 are given in Table 2.
- the combustion slag in Figure 4 shows spheres of molten copper and spheres of aluminum oxide loosely associated with each other, which results in very weak slag that falls apart and can breach the filter and enter the airbag during deployment.
- the combustion slag in Figure 6 shows large spheres of aluminum oxide coated and surrounded by a molten copper matrix. This results in slag with greater structural strength that resists coming apart and breaching the filter during combustion. While not limiting the present disclosure to any particular theory, it is believed that a larger particle size aluminum hydroxide stays cooler longer during combustion, for example, due to reduced surface area and slower heat transfer, as compared to smaller particles of aluminum hydroxide. The cooler surfaces thus can provide a site for molten copper to condense on as it is formed resulting in an improved slagging product.
- Gas generants of Comparative Example 1 and Example 2 described in the context of Example 1 are also pressed into 0.25" diameter x 0.060" tablets, loaded into a driver side automotive airbag inflator, and deployed into a 60 liter tank. After deployment, the tank is washed down and the wash water collected. The insoluble particulate is captured on a filter and weighed after drying. Any soluble particulate is precipitated by evaporation of the wash water and weighed. The total particulate escaping the combustion filter is determined by adding the weights of the soluble and insoluble particulate found in the tank. This value is called the "tank wash value.”
- Tank wash values for gas generants from Comparative Example 1 and Example 2 are given in Table 3.
- Table 3 [0064] As shown in Table 3, the amount of particulate escaping the filter is greatly reduced when using the inventive gas generant from Example 2 (having a large particle size aluminum hydroxide), as compared to gas generant from Comparative Example 1 (having a small particle size aluminum hydroxide). For example, a minimum reduction of tank wash value (and thus enhancement of slag formation) is 64%, while a maximum reduction of tank wash value is 87%. An average reduction in tank wash value is 78%. Thus, by introducing large particle size aluminum hydroxide in accordance with certain aspects of the present disclosure, a significant enhancement in slag formation occurs for gas generant compositions.
- the present disclosure provides a method of enhancing slag formation for a gas generant composition.
- the method comprises introducing an endothermic slag-forming component having an average particle diameter size of greater than or equal to about 150 ⁇ to a gas generant composition that comprises copper.
- the gas generant comprises a fuel and an oxidizer comprising copper.
- the gas generant comprises a fuel and an oxidizer comprising basic copper nitrate. Any of the gas generant compositions described previously above are contemplated. Similarly, any of the endothermic slag- forming components described previously are contemplated for use in these methods.
- the introducing of the endothermic slag-forming component enhances slag formation during combustion of the gas generant composition by at least 50%, as measured by reduced tank wash values.
- such methods desirably enhance slag formation by at least 55%, optionally by at least 60%, optionally by at least 63%, optionally by at least 64%, optionally by at least 65%, optionally by at least 70%, optionally by at least 75%, optionally by at least 78%, optionally by at least 80%, optionally by at least 85%, and in certain variations, optionally by at least 87%.
- the gas generant composition to which the endothermic slag-forming component is added has a maximum flame temperature at combustion (T c ) of less than or equal to about 1,900K (1,627°C), where the fuel is selected from the group consisting of: guanidine nitrate, copper bis guanylurea dinitrate, hexamine cobalt (III) nitrate, copper diammine bitetrazole, and combinations thereof.
- the endothermic slag-forming component may be selected from the group consisting of: aluminum hydroxide, hydromagnesite, Dawsonite, magnesium hydroxide, magnesium carbonate subhydrate, Bohemite, calcium hydroxide, and combinations thereof.
- the maximum flame temperature at combustion (T c ) of the gas generant is greater than or equal to about 1,350K (1,077°C) to less than or equal to about 1,450K (1,177°C).
- the endothermic slag-forming component introduced to the gas generant which enhances slag formation, comprises aluminum hydroxide and is present at greater than or equal to about 5% by weight to less than or equal to about 20% by weight of a total gas generant composition.
- introducing a large particle size aluminum hydroxide, for example, with an average particle diameter size of greater than or equal to about 150 ⁇ , into a gas generant provides a desirably cool burning gas generant that has superior, enhanced slag formation.
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- Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Engineering & Computer Science (AREA)
- Combustion & Propulsion (AREA)
- Air Bags (AREA)
- Feeding, Discharge, Calcimining, Fusing, And Gas-Generation Devices (AREA)
Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/799,559 US20140261927A1 (en) | 2013-03-13 | 2013-03-13 | Enhanced slag formation for copper-containing gas generants |
| PCT/US2014/020750 WO2014158891A1 (en) | 2013-03-13 | 2014-03-05 | Enhanced slag formation for copper-containing gas generants |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP2970036A1 true EP2970036A1 (en) | 2016-01-20 |
| EP2970036A4 EP2970036A4 (en) | 2016-11-16 |
| EP2970036B1 EP2970036B1 (en) | 2018-09-26 |
Family
ID=51522099
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP14774422.1A Active EP2970036B1 (en) | 2013-03-13 | 2014-03-05 | Enhanced slag formation for copper-containing gas generants |
Country Status (5)
| Country | Link |
|---|---|
| US (2) | US20140261927A1 (en) |
| EP (1) | EP2970036B1 (en) |
| JP (1) | JP6261713B2 (en) |
| CN (1) | CN105008310B (en) |
| WO (1) | WO2014158891A1 (en) |
Families Citing this family (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP6970190B2 (en) | 2016-05-23 | 2021-11-24 | ジョイソン セーフティー システムズ アクウィジション エルエルシー | Gas generation compositions and their production and use methods |
| JP2019135195A (en) * | 2016-06-09 | 2019-08-15 | 国立大学法人 東京大学 | Low temperature gas generation agent composition |
| CN108250006B (en) * | 2018-02-11 | 2019-08-09 | 湖北航鹏化学动力科技有限责任公司 | Reduce gas generant composition, preparation method, application and gas generator that combustion temperature keeps pattern |
| US20200308077A1 (en) | 2019-03-29 | 2020-10-01 | Autoliv Asp, Inc. | Gas generant compositions comprising melamine oxalate for use in automotive restraint devices |
| US11548834B2 (en) | 2019-03-29 | 2023-01-10 | Autoliv Asp, Inc. | Gas generant compositions comprising a thermally stable crystalline hydrate compound for cooling combustion flame temperature and improving ballistic performance |
| US11680027B2 (en) | 2019-03-29 | 2023-06-20 | Autoliv Asp, Inc. | Cool burning hydrate fuels in gas generant formulations for automotive airbag applications |
| US12264115B2 (en) | 2019-08-02 | 2025-04-01 | Autoliv Asp, Inc. | Ignition booster compositions and methods of making the same |
| US11370384B2 (en) | 2019-08-29 | 2022-06-28 | Autoliv Asp, Inc. | Cool burning gas generant compositions with liquid combustion products |
Family Cites Families (16)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3912562A (en) * | 1973-09-10 | 1975-10-14 | Allied Chem | Low temperature gas generator propellant |
| US5656793A (en) * | 1994-05-09 | 1997-08-12 | Eiwa Chemical Ind. Co., Ltd. | Gas generator compositions |
| US5817972A (en) * | 1995-11-13 | 1998-10-06 | Trw Inc. | Iron oxide as a coolant and residue former in an organic propellant |
| US6039820A (en) * | 1997-07-24 | 2000-03-21 | Cordant Technologies Inc. | Metal complexes for use as gas generants |
| JP2001192288A (en) * | 1999-06-25 | 2001-07-17 | Nippon Kayaku Co Ltd | Gas generating agent composition |
| CZ20021056A3 (en) * | 1999-09-27 | 2002-10-16 | Daicel Chemical Industries, Ltd. | Basic metal nitrate, process of its preparation and preparation with a gas-producing agent |
| US6964716B2 (en) * | 2002-09-12 | 2005-11-15 | Daicel Chemical Industries, Ltd. | Gas generating composition |
| JP4302442B2 (en) * | 2002-09-12 | 2009-07-29 | ダイセル化学工業株式会社 | Gas generant composition |
| JP4672975B2 (en) * | 2002-10-31 | 2011-04-20 | ダイセル化学工業株式会社 | Gas generant composition |
| US20050016646A1 (en) * | 2003-07-25 | 2005-01-27 | Barnes Michael W. | Chlorine-containing gas generant compositions including a copper-containing chlorine scavenger |
| US8101033B2 (en) * | 2004-07-26 | 2012-01-24 | Autoliv Asp, Inc. | Alkali metal perchlorate-containing gas generants |
| JP4794813B2 (en) * | 2003-11-21 | 2011-10-19 | ダイセル化学工業株式会社 | Gas generant composition |
| US7887650B2 (en) * | 2006-03-02 | 2011-02-15 | Daicel Chemical Industries, Ltd. | Gas generating composition |
| JP5422096B2 (en) * | 2006-11-02 | 2014-02-19 | 株式会社ダイセル | Gas generant composition |
| US8815029B2 (en) * | 2008-04-10 | 2014-08-26 | Autoliv Asp, Inc. | High performance gas generating compositions |
| JP5275862B2 (en) * | 2008-04-11 | 2013-08-28 | 株式会社ダイセル | Gas generant composition |
-
2013
- 2013-03-13 US US13/799,559 patent/US20140261927A1/en not_active Abandoned
-
2014
- 2014-03-05 WO PCT/US2014/020750 patent/WO2014158891A1/en not_active Ceased
- 2014-03-05 JP JP2016500663A patent/JP6261713B2/en active Active
- 2014-03-05 CN CN201480012821.5A patent/CN105008310B/en active Active
- 2014-03-05 EP EP14774422.1A patent/EP2970036B1/en active Active
-
2019
- 2019-12-23 US US16/725,744 patent/US20200207681A1/en not_active Abandoned
Also Published As
| Publication number | Publication date |
|---|---|
| WO2014158891A1 (en) | 2014-10-02 |
| EP2970036B1 (en) | 2018-09-26 |
| US20140261927A1 (en) | 2014-09-18 |
| CN105008310A (en) | 2015-10-28 |
| JP2016514084A (en) | 2016-05-19 |
| CN105008310B (en) | 2017-08-25 |
| JP6261713B2 (en) | 2018-01-17 |
| EP2970036A4 (en) | 2016-11-16 |
| US20200207681A1 (en) | 2020-07-02 |
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