Rigid, non-flexible fiber-reinforced thermal insulation composites

A reinforced composite insulation for thermal batteries, made by compressing aerogel composites, addresses thermal and mechanical limitations, enhancing battery performance and safety by maintaining thermal conductivity and mechanical strength.

JP2026042862APending Publication Date: 2026-03-11ASPEN AEROGELS INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2026-01-05
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

Conventional insulation materials for thermal batteries have limitations in thermal insulation, mechanical integrity, and handling, leading to reduced operational life and increased risk of heat escape, especially in small batteries.

Method used

A non-flexible composite insulation material comprising a metal oxide matrix reinforced with fibrous material, optionally with a polymeric binder and an opacifying compound, is prepared by compressing aerogel composites at controlled temperatures and pressures, resulting in improved thermal conductivity and mechanical strength.

Benefits of technology

The composite insulation extends battery operation time, reduces heat escape, and maintains mechanical integrity, while minimizing volume and weight, suitable for both small and large thermal batteries.

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Abstract

To provide a non-flexible composite insulation material with improved handling properties. [Solution] A non-flexible composite insulation comprising a metal oxide matrix, an opacifying compound, and a fibrous material, wherein the non-flexible composite insulation is reinforced with the fibrous material, and the non-flexible composite insulation has a density within the range of 0.20 g / cc to 1.2 g / cc and a flexural modulus greater than 10,000 psi.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Provisional Application No. 63 / 256,123, filed October 15, 2021, which is incorporated herein by reference in its entirety.

[0002] Government support This invention was made with government support under Grant No. FA9422-17-C-8001 awarded by the US Air Force Nuclear Weapons Center. The government has certain rights in this invention.

[0003] Technical Field The present disclosure relates generally to composite insulation materials for thermal batteries and the like. More specifically, the present disclosure relates to a non-flexible composite insulation material with improved handling comprising a metal oxide matrix reinforced with a fibrous material, its method of preparation, and its use for insulating battery components. [Background technology]

[0004] Thermal batteries are high-temperature power sources that typically operate between 350°C and 600°C. Such batteries use electrochemical cells that are thermally activated to generate electricity. These electrochemical cells generally contain suitable anode and cathode elements separated by an ionically conductive molten salt that is solid and non-conductive at normal or typical operating temperatures. When the battery cell exceeds the melting temperature of the electrolyte, the electrolyte melts or dissolves, becoming conductive, and the battery can function to generate electricity through well-known electrochemical reactions. A representative example of such a thermal battery can be found in U.S. Pat. No. 3,558,363.

[0005] Thermal batteries are used almost exclusively in military and defense applications because they offer extremely high power densities and maintenance-free shelf lives that often exceed 20 years. However, thermal batteries have certain inherent limitations and drawbacks. For example, when a thermal battery cell operates, heat is generated during operation, which can adversely affect nearby environments, such as electronic packaging. Additionally, the battery's useful life and power density are limited by the period during which the electrolyte remains molten. Over time, as heat escapes from the battery, the electrolyte begins to freeze, which can result in increased impedance and ultimately a loss of ionic conduction.

[0006] Battery cell insulation is responsible for retaining heat within the system to keep the electrolyte in solution for as long as possible, and it also ensures safety by preventing heat from adversely affecting the environment of the surrounding system components through heat dissipation.

[0007] Battery cell insulation is responsible for retaining heat within the system to keep the electrolyte in solution for as long as possible. It also ensures safety by preventing heat from adversely affecting the environment of the surrounding system components through heat dissipation. Multiple layers of flexible insulation can be wrapped directly around the cell stack to insulate it axially. This type of flexible insulation can cover the inside, outside, or both the inside and outside surfaces of the battery housing (battery container). If the battery housing has end cover(s) or cap(s), insulating disks made of rigid insulation can be used on the top and bottom of the cell stack to improve insulation.

[0008] Conventional types of insulation, such as foam or fiber sheets, can withstand high temperatures but have relatively low thermal insulation or heat containment capabilities. For such materials, the thickness of the insulation must be increased to provide effective thermal management. However, the space requirements of the battery housing limit the size of the module and the spacing between cells within the module. In particular, for small thermal batteries, the volume of insulation that can be provided becomes limited.

[0009] An example of a currently commercially available insulation material is Microtherm® rigid board / panel, a microporous insulation material available from Promat Inc. (Tisselt, Belgium). Microtherm is a composite insulation material made with microporous silica embedded in glass cloth and silicon carbide as an opacifier. Microtherm® has low thermal conductivity at high temperatures (e.g., 30 mW / mK at 600°C), but is very brittle and generates dust during handling and demolding. Given that thermal batteries tend to be used for specific applications, a given form factor is typically not commonly used for new applications. There is a need for a rigid insulation material with comparable or improved thermal properties, along with better handling and mechanical integrity.

[0010] Thus, there is a need for methods and materials that can be used to enable thermal batteries in general, and small thermal batteries in particular, to continue operating for longer periods after activation. In applications where the operational life of a thermal battery after activation is not an issue, such methods and materials can be used to reduce the volumetric requirements for insulation, thereby allowing for a reduction in the size and mass of the thermal battery and maintaining the safety of the surrounding environment. Summary of the Invention

[0011] Improved insulation materials, such as aerogel, have received some attention for use in long-life thermal batteries. Aerogel materials are known to have heat resistance approximately two to six times greater than other common types of insulation, such as foams and fiberglass. Aerogel can enhance effective shielding and insulation without substantially increasing the thickness of the insulation or adding additional weight.

[0012] It would be desirable to provide reinforced aerogel compositions that have improved performance in various aspects, including stiffness, handling, mechanical integrity, thermal conductivity, etc., both individually and in one or more combinations.

[0013] It is an object of the present disclosure to obviate or mitigate at least one disadvantage of conventional insulating materials useful in thermal batteries and the like.

[0014] Provided herein are non-flexible composite insulating materials and methods for preparing the same for developing effective insulating materials for thermal batteries and the like, which can be used to extend the operating time and performance of the batteries and maintain their thermal safety.

[0015] The non-flexible composite insulation provided herein also reduces the risks associated with the use of thermal batteries due to excess heat escaping into the environment.

[0016] In one aspect, the present disclosure relates to a non-flexible composite insulation material comprising a fibrous material comprising a metal oxide matrix, an opacifying compound, and optionally a polymeric binder, wherein the non-flexible composite insulation material is reinforced with the fibrous material. In some embodiments, the non-flexible composite insulation material has a density greater than about 0.20 g / cc and a flexural modulus greater than about 10,000 psi.

[0017] In another aspect, the present disclosure relates to a non-flexible composite insulation comprising a metal oxide matrix reinforced with embedded fibrous material, the fibrous material optionally including a polymeric binder, and an opacifying compound dispersed throughout the metal oxide matrix. In some embodiments, the non-flexible composite insulation has a density greater than about 0.20 g / cc. In some embodiments, the opacifying compound is present at greater than about 40 wt. % relative to the metal oxide content within the composite insulation.

[0018] In one aspect, provided herein is a thermal battery including a non-flexible composite insulation according to any aspect and embodiment described above or below in this disclosure.

[0019] In another aspect, provided herein is a method of improving the performance of a thermal battery, the method comprising incorporating into the thermal battery a non-flexible composite insulation according to any aspect and embodiment described above or below in this disclosure.

[0020] In one aspect, provided herein is a method for preparing a non-flexible composite insulation, the method comprising: providing a reinforced aerogel composite comprising a fibrous material comprising a metal oxide matrix, an opacifying compound, and, optionally, a polymeric binder; exposing the aerogel composite to a heat treatment in a low-oxygen or air atmosphere, the heat treatment comprising exposure to one or more temperatures between 500°C and 700°C; and mechanically compressing the aerogel composite in a direction perpendicular to the primary direction of the fibrous material, thereby preparing a non-flexible composite insulation. Upon compression, the density of the aerogel composite increases by up to 5-100 times. In some embodiments, the density of the non-flexible composite insulation is about 5-100 times higher than the density of the reinforced aerogel composite. In some embodiments, the reinforced aerogel composite is compressed by less than 80% of its volume. In some embodiments, the reinforced aerogel composite is compressed under a pressure of about 500 psi to about 10,000 psi. In one embodiment, the total heat treatment time is between 1 minute and 120 minutes. In some embodiments, the thermal conductivity of the aerogel composite at 600° C. is substantially unchanged compared to an uncompressed reinforced aerogel composite having substantially the same composition.

[0021] In another aspect, provided herein is a method for producing a non-flexible composite insulation, the method including: providing a casting surface and a planar casting frame (an inner boundary of the casting frame enclosing a casting area on the casting surface); providing a sol-gel solution; combining the sol-gel solution with an opacifying compound; disposing a fibrous material in the casting area; mixing the sol-gel solution with the fibrous material in the casting area; transitioning the sol-gel solution into a gel material, thereby forming a reinforced gel; drying the reinforced gel composition to produce a reinforced aerogel composite; heating the reinforced aerogel composite to a temperature between 500°C and 700°C in a low-oxygen or air atmosphere; and mechanically compressing the aerogel composite under about 500 psi to about 10,000 psi, thereby preparing the non-flexible composite insulation. In some embodiments, the sol-gel solution includes TEOS and / or MTES. In some embodiments, the low-oxygen atmosphere includes less than 5% oxygen by volume. In some embodiments, the drying step includes carbon dioxide. In some embodiments, the sol-gel solution is combined with a well-dispersed opacifying compound.

[0022] The above aspects may include one or more of the following features: In some embodiments, the fibrous material comprises staple fibers, woven materials, nonwoven materials, mats, felts, batting, lofty batting, chopped fibers, or combinations thereof. In one embodiment, substantially all or a portion of the fibrous material is aligned perpendicular to the thickness direction of the non-flexible composite insulation. In another embodiment, substantially all or a portion of the fibrous material is aligned parallel to the thickness direction of the non-flexible composite insulation. In one or more embodiments, the thickness direction of the non-flexible composite insulation is the z-axis direction.

[0023] In some embodiments, the metal oxide comprises silica, alumina, titania, ceria, yttria, vanadia, or any combination thereof. In preferred embodiments, the metal oxide comprises silica.

[0024] In one or more embodiments, the non-flexible composite insulation is a compressed aerogel composite. In one or more embodiments, the metal oxide matrix is ​​a compressed aerogel matrix.

[0025] In some embodiments, the opacifying compound is selected from the following: BC, diatomaceous earth, manganese ferrite, MnO, NiO, SnO, AgO, BiO, TiC, WC, carbon black, titanium oxide, iron titanium oxide, zirconium silicate, zirconium oxide, iron(I) oxide, iron(III) oxide, manganese dioxide, iron titanium oxide (ilmenite), chromium oxide, silicon carbide, or mixtures thereof. In a preferred embodiment, the opacifying compound is silicon carbide. In one or more embodiments, the opacifying compound is present in a range of about 40% to about 60% by weight relative to the metal oxide content within the composite insulation.

[0026] In some embodiments, the fibrous layer comprises organic polymer-based fibers, inorganic fibers, carbon-based fibers, or combinations thereof. In some embodiments, the inorganic fibers are selected from glass fibers, rock fibers, metal fibers, boron fibers, ceramic fibers, basalt fibers, or combinations thereof. In preferred embodiments, the inorganic fibers comprise glass fibers. In more preferred embodiments, the glass fibers are silica-based glass fibers.

[0027] In some embodiments, the polymer binder comprises polyvinyl alcohol.

[0028] In one or more embodiments, the non-flexible composite insulation has an average thickness of less than 10 mm and a thickness variation of less than 10%.

[0029] In one or more embodiments, the non-flexible composite insulation has a thermal conductivity of less than or equal to about 60 mW / m·K at 600°C.

[0030] In one or more embodiments, the non-flexible composite insulation has a density ranging from about 0.20 g / cc to about 1.0 g / cc.

[0031] In one or more embodiments, the non-flexible composite insulation has a flexural modulus in the range of about 10,000 psi to about 100,000 psi.

[0032] In one or more embodiments, the composite is substantially devoid of organic moieties.

[0033] The above-described aspects of the present technology may include one or more of the following features: One or more of the materials of the present technology may advantageously provide a rigid composite insulation material with low thermal conductivity and improved handling. The composite insulation materials disclosed herein may be used to retain heat within a closed system, prevent heat from reaching a closed system, or minimize heat loss within or outside a partially closed system. Such rigid composite insulation materials are useful for use in thermal batteries and the like. Specifically, the rigid composite materials disclosed herein may be used as end cap materials for thermal batteries.

[0034] The non-flexible composites disclosed herein are capable of meeting the mechanical requirements of thermal battery designs while providing superior thermal conductivity compared to existing technology. Additionally, the thickness of the composites provided herein allows for effective thermal management for both small and large thermal batteries where the volumetric requirements for insulation are highly limited.

[0035] The present invention will be more fully understood from the following detailed description read in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0036] [Figure 1A] 1 shows a schematic diagram of a composite insulation material of the present technology; [Figure 1B] 1 shows a schematic diagram of a composite insulation material of the present technology; [Figure 2A] 1 shows a flexible insulation material that can be wrapped around the cell stack to insulate the cell stack axially. [Figure 2B] 1 shows a schematic diagram of a battery housing including a flexible insulating material. [Figure 3A] 1 shows an image of a non-flexible composite insulation material of the present disclosure. [Figure 3B] 1A and 1B illustrate schematic diagrams of end cap(s) of a battery cell housing including a non-flexible composite insulation material of the present disclosure. [Figure 4] 1 shows the compressive stress-strain curves of the non-flexible composite insulation of the present technology against existing refractory ceramic end cap insulation, RS-DR, and RS-200, available from ZIRCAR Refractory Composites, Inc. [Figure 5] 10 shows the thermal conductivity curves of non-flexible composite insulation of the present technology for prototype construction and testing. DETAILED DESCRIPTION OF THE INVENTION

[0037] In one general aspect, the present disclosure provides durable, easy-to-handle aerogel compositions, e.g., reinforced aerogel composites, that have favorable thermal properties, e.g., low thermal conductivity, resistance to heat and fire spread, and favorable properties with respect to compressibility, compressive resilience, and compliance, while minimizing the thickness and weight of the materials used. In another general aspect, the aerogel compositions provided herein are suitable for undergoing thermal treatment, such as firing and / or compacting, to yield the composite insulation materials of the present disclosure.

[0038] According to embodiments presented herein, improved composite insulation materials with extremely low thermal conductivity, good mechanical integrity, and easy handling can be prepared by compressing the aerogel composites described herein. Without wishing to be bound by any theory, this may be primarily due to the finding that aerogel composites can retain or increase their thermal conductivity (usually measured in mW / mK) upon compression, particularly by mechanical means.

[0039] In another aspect, improved composite insulation for thermal battery safety can be prepared by calcining the aerogel composite or compressed aerogel composite described herein. During operation, if the organic moieties are still present, they can decompose and accumulate decomposition products inside the closed system, posing a risk to the safety and performance of the battery. Therefore, the organic moieties can be removed by calcination to improve the safety of the thermal battery. According to embodiments described herein, the composite insulation of the present technology is substantially free of organic moieties. FIGS. 1A and 1B show a composite insulation 100 of the present disclosure, including a metal oxide matrix 200 reinforced with a fibrous material 300. In FIG. 1A, substantially all or a portion of the fibrous material 300 is aligned perpendicular to the thickness of the non-flexible composite insulation 100, which is in the z-axis direction. In FIG. 1B, substantially all or a portion of the fibrous material 300 is aligned randomly (e.g., with multidirectional fiber orientation angles) within the metal oxide matrix 200.

[0040] Aerogels and aerogel composites suitable for compaction and / or sintering can take a variety of forms, including particle-reinforced, fiber-reinforced, or unreinforced aerogels, all of which contain an organic, inorganic, or hybrid aerogel matrix. Preferred forms include a reinforcing material, such as a fiber material. Preferably, the fiber material is dispersed throughout the aerogel matrix. A simple form of fiber-reinforced aerogel composite has the fiber material embedded within the matrix material for various reasons, including improved mechanical performance. The matrix material can be prepared by a sol-gel process, resulting in a polymer network (including inorganic, organic, or inorganic / organic hybrid) that defines a structure with very small pores (on the order of billionths of a meter). Fiber materials added before the polymer gel point during the sol-gel process reinforce the matrix material. The aerogel matrix of the preferred precursor material of the present invention can be organic, inorganic, or a mixture thereof. Wet gels used to prepare aerogels can be prepared via any of the gel-forming techniques known to those skilled in the art; examples include adjusting the pH and / or temperature of a dilute metal oxide sol to the point where gelation occurs (R.K. Iler, Colloid Chemistry of Silica and Silicates, 1954, chapter 6; R.K. Iler, The Chemistry of Silica, 1979, chapter 5; C.J. Brinker and G.W.Scherer, Sol-Gel Science, 1990, chapters 2 and 3, incorporated herein by reference). Examples of materials for forming inorganic aerogels are metal oxides, such as silica, alumina, titania, zirconia, hafnia, yttria, vanadia, and the like. Particularly preferred gels are formed primarily from alcoholic solutions of hydrolyzed silicate esters due to their ready availability and low cost.

[0041] According to embodiments of the present disclosure, a non-flexible composite insulation can be obtained by exposing a fiber-reinforced aerogel composite to a heat treatment in a low-oxygen or air atmosphere; and mechanically compressing the aerogel composite.

[0042] In some examples, incorporating the non-flexible composite insulation materials provided herein into thermal batteries and the like improves battery performance and the operating time of the thermal battery.

[0043] Definition of standard language As used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the content clearly dictates otherwise. As used in this specification and the appended claims, the term "or" is generally used in its sense including "and / or" unless the context clearly indicates otherwise.

[0044] As used herein, "about" means approximately or near, and in the context of a stated numerical value or range, means ±5% of the numerical value. In one embodiment, the term "about" can include conventional rounding to significant figures of the numerical value. Furthermore, the phrase "about 'x' to 'y'" includes "about 'x' to about 'y'."

[0045] As used herein, the term "thermal insulation" refers to a material, e.g., a metal battery container, that reduces the flow of heat to the environment. When an element, e.g., a layer, region, or substrate, is referred to as being "on" or "over" another element, it will be understood that it may be directly on the other element, or that intervening elements may also be present. In contrast, when an element is referred to as being "directly on" or "directly over" another element, no intervening elements are present.

[0046] As used herein, the terms "composition" and "composite" are used interchangeably.

[0047] Aerogels are a type of open-cell porous material that contains a framework of interconnected structures, a corresponding network of pores integrated within the framework, and an interstitial phase within the pore network that is primarily composed of a gas, such as air. Aerogels are typically characterized by low density, high porosity, large surface area, and small pore size. Aerogels can be distinguished from other porous materials by their physical and structural properties.

[0048] Within the context of this disclosure, the terms "aerogel," "aerogel material," or "aerogel matrix" refer to a gel that includes a framework of interconnected structures, has a corresponding network of interconnected pores integrated within the framework, and contains a gas, such as air, as a dispersed interstitial medium, which exhibits the following properties that are attributed to aerogels: (a) an average pore size in the range of about 2 nm to about 100 nm; (b) a porosity of at least 80% or greater; and (c) a porosity of at least about 100 nm. 2 It is characterized by the physical and structural property of a surface area of ​​0.15 μm / g or more (as determined by nitrogen porosimetry testing).

[0049] Thus, the aerogel materials of the present disclosure include any aerogel or other open-cell material that meets the defining elements set forth in the preceding paragraph, including materials that may be otherwise categorized as xerogels, cryogels, ambigels, microporous materials, etc.

[0050] The aerogel material may also be further characterized by additional physical properties, including: (d) a pore volume of about 2.0 mL / g or greater, particularly about 3.0 mL / g or greater; (e) a density of about 0.50 g / cc or less, particularly about 0.3 g / cc or less, and more particularly about 0.20 g / cc or less; and (f) at least 50% of the total pore volume comprising pores having a pore diameter between 2 and 50 nm. However, these additional properties are not required for a compound to be characterized as an aerogel material.

[0051] As used herein, the term "calcination" refers to a heat treatment process applied to a material to effect a chemical, physical, or structural change in the material, but may also refer to thermal decomposition, phase transformation, or removal of volatile fractions in the material. Calcination processes are typically carried out at temperatures below the melting point of the product material.

[0052] Within the context of this disclosure, the terms "aerogel composition" or "aerogel composite" refer to any composite that includes an aerogel material as a component of the composite. Examples of aerogel compositions include, but are not limited to, fiber-reinforced aerogel composites; aerogel composites containing additive elements such as opacifying agents; aerogel composites reinforced by an open-cell macroporous framework; aerogel-polymer composites; and composites that incorporate aerogel particulates, particles, granules, beads, or powders into solid or semi-solid materials, such as combining them with binders, resins, cements, foams, polymers, or similar solid materials. Aerogel compositions are generally obtained after removing the solvent from the various gel materials disclosed herein. The aerogel compositions thus obtained may undergo further processing or treatment. The various gel materials may also undergo additional processing or treatment otherwise known or useful in the art before undergoing solvent removal (or liquid extraction or drying).

[0053] The aerogel compositions of the present disclosure may include reinforced aerogel compositions. Within the context of the present disclosure, the term "reinforced aerogel composition" refers to an aerogel composition that includes a reinforcing phase within the aerogel material, where the reinforcing phase is not part of the aerogel framework itself. The reinforcing phase may be any material that provides elasticity, conformability, or structural stability to the aerogel material. Examples of well-known reinforcing materials include, but are not limited to, open-cell macroporous framework reinforcement materials, closed-cell macroporous framework reinforcement materials, open-cell membranes, honeycomb reinforcement materials, polymeric reinforcement materials, and fibrous reinforcement materials, such as staple fibers, woven materials, nonwoven materials, needled nonwovens, batting, fabrics, mats, and felts.

[0054] Within the context of this disclosure, the term "fiber-reinforced aerogel composition" refers to a reinforced aerogel composition that includes a fiber-reinforcement material as the reinforcing phase. The fiber-reinforcement material may include, but is not limited to, short fibers, woven materials, nonwoven materials, batts, batting, fibers, mats, felts, or combinations thereof. The fiber-reinforcement material may be selected from organic polymer-based fibers, inorganic fibers, carbon-based fibers, or combinations thereof.Fiber reinforcement materials include polyester, polyolefin terephthalate, poly(ethylene) naphthalate, polycarbonate (e.g., rayon, nylon), cotton (e.g., Lycra manufactured by DuPont), carbon (e.g., graphite), polyacrylonitrile (PAN), oxidized PAN, uncarbonized heat-treated PAN (e.g., manufactured by SGL Carbon SE, Germany), glass or glass fiber-based materials (e.g., S-glass, 901-glass, 902-glass, 475-glass, E-glass), silica-based fibers such as quartz (e.g., Quartz manufactured by Saint-Gobain), Q-felt (Johns Other fiber types include: polyamide fibers such as Manville (manufactured by Unifrax), Saffil (manufactured by Unifrax), Durablanket (manufactured by Unifrax), Duraback (manufactured by Carborundum), Kevlar, Nomex, Sontera (all manufactured by DuPont), and Conex (manufactured by Taijin); polyolefins such as Tyvek (manufactured by DuPont), Dyneema (manufactured by DSM), and Spectra (manufactured by Honeywell); other polypropylene fibers such as Typar and Xavan (both manufactured by DuPont); fluoropolymers such as PTFE, which have trade names such as Teflon (manufactured by DuPont), Goretex (manufactured by WLGORE); and Nicalon (manufactured by COI). The range of materials that can be used for the reinforcement of glass or glass fiber-based fiber reinforcement materials include, but are not limited to, silicon carbide fibers such as those manufactured by Epson Ceramics, ceramic fibers such as Nextel (manufactured by 3M), acrylic polymers, wool, silk, hemp, leather, and suede fibers, PBO-Zylon fibers (manufactured by Tyobo), liquid crystal materials such as Vectan (manufactured by Hoechst), Cambrelle fibers (manufactured by DuPont), polyurethanes, polyamides, wood fibers, boron, aluminum, iron, and stainless steel fibers, and other thermoplastics such as PEEK, PES, PEI, PEK, and PPS. Glass or glass fiber-based fiber-reinforced materials may be manufactured using one or more techniques. In certain embodiments, it is desirable to fabricate them using carding and cross-lapping or airlaid processes.In exemplary embodiments, carded and cross-wrapped glass or glass fiber-based fiber reinforced materials offer certain advantages over airlaid materials. For example, carded and cross-wrapped glass or glass fiber-based fiber reinforced materials can provide consistent material thickness for a given basis weight of the reinforced material. In certain additional embodiments, it may be desirable to further needle the fiber reinforced material, which requires entanglement of the fibers in the z-direction, to improve mechanical and other properties in the final aerogel composition.

[0055] Within the context of this disclosure, the term "binder" or "binding agent" is any material or substance that holds or attracts other materials to form a cohesive whole through mechanical, chemical, adhesive, or cohesive means.

[0056] As used herein, "compress," "compressed," "compression," and other grammatical forms refer to the act of applying pressure to a structure, particularly the act of applying a mechanical force that reduces the volume of the structure and increases its density. As used herein, the term "compressed aerogel matrix" refers to an as-produced aerogel matrix that has been reduced in volume by applying a compressive force. The compressive force may include, but is not limited to, drawing, pressing in a hydraulic press, rolling, etc. The compressive force may be parallel or perpendicular to the primary direction of the fibers dispersed within the aerogel matrix.

[0057] Compressed aerogels and aerogel composites can exhibit higher compressive strength, modulus, and flexural strength, and can maintain or not substantially increase thermal conductivity compared to the uncompressed form. Without wishing to be bound by any theory, after compression, the pore size distribution of the aerogel typically decreases and declines by a significant amount. Despite this phenomenon, the high surface area of ​​aerogels can be essentially unaffected by compression, and thermal conductivity can be improved or not substantially changed (within certain compression ranges, e.g., from about 500 psi to about 10,000 psi).

[0058] Aerogels and aerogel composites suitable for compaction can take a variety of forms, including particle-reinforced, fiber-reinforced, or unreinforced aerogels, all of which contain an organic, inorganic, or hybrid aerogel matrix. A preferred form is a two-phase aerogel composite, where a first phase contains a low-density aerogel matrix and a second phase contains a reinforcing material, such as a fiber material.

[0059] The term "flexural modulus" or "bending modulus of elasticity" is a measure of a material's stiffness / resistance to bending when a force is applied perpendicular to the long dimension of the sample (known as a three-point bend test). Flexural modulus indicates a material's ability to bend. Flexural modulus is expressed as the slope of the initial linear portion of the stress-strain curve and is calculated by dividing the change in stress by the corresponding change in strain. The ratio of stress to strain is therefore a measure of flexural modulus. The international standard unit of flexural modulus is the pascal (Pa or N / m² or m-1.kg.s-²). Practical units are megapascals (MPa or N / mm²) or gigapascals (GPa or kN / mm²). U.S. customary units are pounds-force per square inch (psi).

[0060] Within the context of this disclosure, the terms "non-flexible" or "rigid" refer to a material that has no or limited ability to bend or flex without macrostructural failure. Non-flexible insulation materials of the present disclosure have a flexural modulus in the range of about 10,000 psi to about 100,000 psi.

[0061] Within the context of this disclosure, the terms "additive" or "additive element" refer to materials that can be added to an aerogel composition before, during, or after aerogel production. Additives may be added to modify or improve desirable properties in the aerogel or to counteract undesirable properties in the aerogel. Additives are typically added to the aerogel material either before gelation to a precursor liquid, during gelation to a transition-state material, or after gelation to a solid or semi-solid material. Examples of additives include, but are not limited to, microfibers, fillers, reinforcing agents, stabilizers, thickeners, elastic compounds, opacifying agents, coloring or pigmentation compounds, radiation absorbing compounds, radiation reflecting compounds, fire class additives, corrosion inhibitors, thermally conductive components, components that provide heat capacity, phase change materials, pH adjusters, redox adjusters, HCN mitigators, off-gassing mitigators, conductive compounds, electrical dielectric compounds, magnetic compounds, radar-blocking components, curing agents, anti-shrinkage agents, and other aerogel additives known to those skilled in the art.

[0062] In certain embodiments, the thermal insulation composites provided herein can perform during a high temperature event, for example, can provide thermal protection during a high temperature event as disclosed herein. A high temperature event is a temperature drop of at least about 1 cm for at least 2 seconds. 2 at least about 25 kW / m over a range of 2 , at least about 30 kW / m 2 , at least about 35 kW / m 2 , or at least about 40 kW / m 2 It is characterized by a sustained heat flux of about 40 kW / m 2 Heat fluxes of at least about 10 cm are associated with those resulting from a typical ignition (Behavior of Charring Solids under Fire-Level Heat Fluxes; Milosavljevic, I., Suuberg, EM; NISTIR 5499; September 1994). In special cases, high-temperature events may occur with a duration of at least 1 minute and a heat flux of at least about 10 cm. 2 The heat flux is about 40 kW / m over the area.

[0063] Within the context of this disclosure, the terms "thermal conductivity" and "TC" refer to a measure of a material or composition's ability to transfer heat between two surfaces on either side of the material or composition, with a temperature difference between the two surfaces. Specifically, thermal conductivity is measured as the heat energy transferred per unit time per unit surface area divided by the temperature difference. It is generally expressed in mW / m * K(meter *It is recorded in SI units as milliwatts per kelvin. The thermal conductivity of the material is determined using the Test Method for Steady-State Thermal Transmission Properties by Means of the Heat Flow Meter Apparatus(ASTM C518,ASTM International,West Conshohocken,PA);Test Method for Steady-State Heat Flux Measurements and Thermal Transmission Properties by Means of the Guarded-Hot-Plate Apparatus(ASTM C177,ASTM International,West Conshohocken,PA);Test Method for Steady-State Heat Transfer Properties of Pipe Insulation(ASTM C335,ASTM International,West Conshohocken,PA);Thin Heater Thermal Conductivity Test(ASTM C1114,ASTM International,West Conshohocken,PA);Standard Test Method for Thermal Transmission Properties of Thermally Conductive Electrical Insulation Materials(ASTM D5470,ASTM International,West Conshohocken,PA);Determination of thermal resistance by means of guarded hot plate and heat flow meter methods(EN 12667,British Standards Institution,United Kingdom);or Determination of steady-state thermal resistance and related properties—Guarded hot plate apparatus (ISO 8203, International Organization for Standardization, Switzerland). Due to different methods that may yield different results, it is understood that within the context of this disclosure, unless expressly stated otherwise, thermal conductivity measurements are taken in accordance with ASTM C518 standard (Test Method for Steady-State Thermal Transmission Properties by Means of the Heat Flow Meter Apparatus) at a temperature of about 37.5°C, at atmospheric pressure in the ambient environment, and under a compressive load of about 2 psi. Measurements reported in accordance with ASTM C518 generally correlate well with any measurements taken in accordance with EN 12667 with any relevant adjustment for compressive load. In certain embodiments, the aerogel material or non-flexible composite insulation material of the present disclosure has a thermal conductivity of about 40 mW / mK or less, about 30 mW / mK or less, about 25 mW / mK or less, about 20 mW / mK or less, about 18 mW / mK or less, about 16 mW / mK or less, about 14 mW / mK or less, about 12 mW / mK or less, about 10 mW / mK or less, about 5 mW / mK or less, or within a range between any two of these values. In certain embodiments, the aerogel material or non-flexible composite insulation material of the present disclosure has a thermal conductivity of about 60 mW / mK or less at 600°C.

[0064] Within the context of this disclosure, the term "density" refers to a measure of the mass per unit volume of an aerogel material or composition. The term "density" generally refers to the apparent density of an aerogel material as well as the bulk density of an aerogel composition. Density is generally measured in kg / m 3The density of an aerogel material or composition may be determined by methods known in the art, including, but not limited to, Standard Test Method for Dimensions and Density of Preformed Block and Board-Type Thermal Insulation (ASTM C303, ASTM International, West Conshohocken, PA); Standard Test Methods for Thickness and Density of Blanket or Batt Thermal Insulations (ASTM C167, ASTM International, West Conshohocken, PA); Determination of the apparent density of preformed pipe insulation (EN 13470, British Standards Institution, United Kingdom); or Determination of the apparent density of preformed pipe insulation (ISO 18098, International Organization for Standardization, Switzerland). Due to different methods that may yield different results, it is understood that within the context of this disclosure, density measurements are taken according to ASTM C167 (Standard Test Methods for Thickness and Density of Blanket or Batt Thermal Insulations) at 2 psi compression for thickness measurements unless otherwise noted. In certain embodiments, the non-flexible composite insulation of the present disclosure has a density ranging from about 0.20 g / cc to about 1.2 g / cc, specifically from about 0.20 g / cc to about 0.80 g / cc, and more specifically from about 0.20 g / cc to about 0.60 g / cc.

[0065] As used herein, the term "substantially" refers to a quantitative condition exhibiting a complete or nearly complete degree or extent of a characteristic or property of interest. As used herein, the term "substantially free" means that an analyte, sample, solution, medium, supplement, excipient, etc. is at least 85%, at least 90%, at least 95%, at least 98%, or at least 98.5%, or at least 99%, or at least 99.5%, or at least 100% free of interfering compounds, impurities, contaminants, or the like.

[0066] As used herein, the term "substantially all" refers to 80% or more, preferably 85% or more, more preferably 90% or more, even more preferably 95% or more, and most preferably 99% or more.

[0067] For optimal thermal insulation, the aerogel or composite insulation of the present disclosure can be opacified to reduce the radiative component of heat transfer. An opacifying compound may be dispersed in the mixture containing the gel precursor at any time prior to gel formation. Examples of opacifying compounds include, but are not limited to, BC, diatomaceous earth, manganese ferrite, MnO, NiO, SnO, AgO, BiO, TiC, WC, carbon black, titanium dioxide, iron titanium oxide, zirconium silicate, zirconium oxide, iron(I) oxide, iron(III) oxide, manganese dioxide, iron titanium oxide (ilmenite), chromium oxide, silicon carbide, or mixtures thereof. The opacifying compound in the composite insulation is present in a range of about 10% to about 80% by weight, preferably about 40% to about 60% by weight, based on the metal oxide content of the composite insulation.

[0068] As used herein, the term "well dispersed" refers to the effect of the opacifying compound present in the sol-gel solution not agglomerating in bulk, and more specifically refers to the opacifying compound being present in the sol-gel solution as single particles or fibers or as small bundles of no more than 3-4 particles or fibers per bundle.

[0069] Aerogel composition Aerogels are described as interconnected structural frameworks most commonly composed of interconnected oligomeric, polymeric, or colloidal particles. Aerogel frameworks can be made from a variety of precursor materials, including inorganic precursor materials (e.g., precursors used to make silica-based aerogels); organic precursor materials (e.g., precursors used to make carbon-based aerogels); hybrid inorganic / organic precursor materials; and combinations thereof.

[0070] Inorganic aerogels are generally formed from metal oxide or metal alkoxide materials. The metal oxide or metal alkoxide materials can be based on the oxide or alkoxide of any metal capable of forming an oxide. Such metals include, but are not limited to, silicon, aluminum, titanium, zirconium, hafnium, yttrium, vanadium, and cerium. Inorganic silica aerogels are traditionally made via the hydrolysis and condensation of silica-based alkoxides (e.g., tetraethoxysilane) or via the gelation of silicic acid or water glass. Other relevant inorganic precursor materials for silica-based aerogel synthesis include, but are not limited to, metal silicates such as sodium silicate or potassium silicate, alkoxysilanes, partially hydrolyzed alkoxysilanes, tetraethoxysilane (TEOS), partially hydrolyzed TEOS, condensation polymers of TEOS, tetramethoxysilane (TMOS), partially hydrolyzed TMOS, condensation polymers of TMOS, tetra-n-propoxysilane, partially hydrolyzed and / or condensation polymers of tetra-n-propoxysilane, polyethylsilicate, partially hydrolyzed polyethylsilicate, monomeric alkylalkoxysilanes, bis-trialkoxyalkyl or arylsilanes, polyhedral silsesquioxanes, or combinations thereof.

[0071] In certain embodiments of the present disclosure, prehydrolyzed TEOS, such as Silbond H-5 (SBH5, Silbond Corp), may be used commercially or may be further hydrolyzed before being incorporated into the gelation process. Partially hydrolyzed TEOS or TMOS, such as polyethyl silicate (Silbond 40) or polymethyl silicate, may also be used commercially or may be further hydrolyzed before being incorporated into the gelation process.

[0072] Inorganic aerogels can also include gel precursors containing at least one hydrophobic group, such as alkyl metal alkoxides, cycloalkyl metal alkoxides, and aryl metal alkoxides, which can impart or improve certain properties to the gel, such as stability and hydrophobicity. Inorganic silica aerogels, specifically, can include hydrophobic precursors such as alkyl silanes or aryl silanes. Hydrophobic gel precursors may be used as primary precursor materials to form the framework of the gel material. However, hydrophobic gel precursors are more commonly used as co-precursors in combination with simple metal alkoxides to form amalgam aerogels. Hydrophobic inorganic precursor materials for silica-based aerogel synthesis include, but are not limited to, trimethylmethoxysilane (TMS), dimethyldimethoxysilane (DMS), methyltrimethoxysilane (MTMS), trimethylethoxysilane, dimethyldiethoxysilane (DMDS), methyltriethoxysilane (MTES), ethyltriethoxysilane (ETES), diethyldiethoxysilane, dimethyldiethoxysilane (DMDES), ethyltriethoxysilane, propyltrimethoxysilane, propyltriethoxysilane, phenyltrimethoxysilane, phenyltriethoxysilane (PhTES), hexamethyldisilazane, and hexaethyldisilazane. Any derivatives of any of the above precursors may also be used, particularly certain polymers of other chemical groups may be added to or crosslinked with one or more of the above precursors.

[0073] Organic aerogels are generally formed from carbon-based polymer precursors. These polymeric materials include, but are not limited to, resorcinol formaldehyde (RF), polyimides, polyacrylates, polymethyl methacrylates, acrylate oligomers, polyoxyalkylenes, polyurethanes, polyphenols, polybutadiene, trialkoxysilyl-terminated polydimethylsiloxanes, polystyrenes, polyacrylonitriles, polyfurfural, melamine-formaldehyde, cresol formaldehyde, phenol-furfural, polyethers, polyols, polyisocyanates, polyhydroxybenzenes, polyvinyl alcohol dialdehyde, polycyanurates, polyacrylamides, various epoxies, agar, agarose, chitosan, and combinations thereof. As an example, organic RF aerogels are generally prepared from the sol-gel polymerization of resorcinol or melamine with formaldehyde under alkaline conditions.

[0074] Organic / inorganic hybrid aerogels are primarily composed of organically modified silica ("ormosil") aerogels. These ormosil materials contain organic components covalently bonded to the silica network. Ormosils are typically formed by the hydrolysis and condensation of an organically modified silane, R-Si(OX)3, with a conventional alkoxide precursor, Y(OX)4. In these formulas, X can represent, for example, CH3, CH5, CH7, or CH9; Y can represent, for example, Si, Ti, Zr, or Al; and R can be any organic fragment, such as methyl, ethyl, propyl, butyl, isopropyl, methacrylate, acrylate, vinyl, or epoxide. The organic components in ormosil aerogels can be dispersed throughout the silica network or chemically bonded to it.

[0075] Aerogel preparation method The preparation of aerogels generally involves: i) forming a sol-gel solution; ii) forming a gel from the sol-gel solution; and iii) extracting the solvent from the gel material by innovative processing and extraction to obtain a dry aerogel material. This process is described in more detail below, particularly in connection with the formation of inorganic aerogels, such as silica aerogels. However, the specific examples and descriptions provided herein are not intended to limit the disclosure to any particular type of aerogel and / or preparation method. The disclosure may include any aerogel formed by any relevant preparation method known to those skilled in the art, unless otherwise indicated.

[0076] The first step in forming inorganic aerogels is the formation of a sol-gel solution by hydrolysis and condensation of a silica precursor, such as, but not limited to, a metal alkoxide precursor, typically in an alcohol-based solvent. Key variables in the formation of inorganic aerogels include the type of alkoxide precursor included in the sol-gel solution, the nature of the solvent, the processing temperature and pH of the sol-gel solution (which can be altered by the addition of acid or base), and the precursor / solvent / water ratio within the sol-gel solution. Controlling these variables during the formation of the sol-gel solution can allow for control of the growth and aggregation of the gel framework during the subsequent transition of the gel material from a "sol" state to a "gel" state. While the properties of the resulting aerogel are influenced by the pH and molar ratio of the reactants of the precursor solution, any pH and any molar ratio that allows for gel formation can be used in the present disclosure.

[0077] The sol-gel solution is formed by mixing at least one gelling precursor with a solvent. Suitable solvents for use in forming the sol-gel solution include lower alcohols with 1 to 6 carbon atoms, particularly 2 to 4 carbon atoms, although other solvents known to those skilled in the art may also be used. Examples of useful solvents include, but are not limited to, methanol, ethanol, isopropanol, ethyl acetate, ethyl acetoacetate, acetone, dichloromethane, and tetrahydrofuran. Multiple solvents can also be combined to achieve a desired level of dispersion or to optimize the properties of the gel material. Therefore, the selection of the optimal solvent for the sol-gel and gel formation steps depends on the specific precursors, fillers, and additives incorporated into the sol-gel solution; the target processing conditions for gelation and liquid extraction; and the desired properties of the final aerogel material.

[0078] Water may also be present in the precursor-solvent solution. Water acts to hydrolyze metal alkoxide precursors to metal hydroxide precursors. The hydrolysis reaction may be as follows (using TEOS in ethanol solvent as an example): Si(OC2H5)4 + 4H2O → Si(OH)4 + 4(C2H5OH). The resulting hydrolyzed metal hydroxide precursor remains suspended in the solvent solution in a "sol" state, either as individual molecules or as small polymerized (or oligomerized) colloidal clusters of molecules. For example, polymerization / condensation of Si(OH)4 precursor may occur as follows: 2Si(OH)4 = (OH)3Si-O-Si(OH)3 + H2O. This polymerization may continue until colloidal clusters of polymerized (or oligomerized) SiO2 (silica) molecules are formed.

[0079] Acids and bases can be incorporated into the sol-gel solution to control the pH of the solution and catalyze the hydrolysis and condensation reactions of the precursor materials. Any acid can be used to catalyze the precursor reaction and achieve a lower pH solution, with exemplary acids including HCl, H2SO4, H3PO4, oxalic acid, and acetic acid. Similarly, any base can be used to catalyze the precursor reaction and achieve a higher pH solution, with exemplary bases including NH4OH.

[0080] A strong base can be used to catalyze the precursor reaction and achieve a higher pH solution. Using a strong base to catalyze the precursor reaction can result in a significantly higher content of hydrophobic inorganic precursor material (e.g., MTES or DMDES) than can be achieved using a weak base (e.g., a base containing NH4OH). Within the context of the present disclosure, the term "strong base" refers to both inorganic and organic bases. For example, a strong base according to embodiments herein includes a cation selected from the group consisting of lithium, calcium, sodium, potassium, rubidium, barium, strontium, and guanidinium. In another example, the basic catalyst used to catalyze the precursor reaction can include a catalytic amount of sodium hydroxide, lithium hydroxide, calcium hydroxide, potassium hydroxide, strontium hydroxide, barium hydroxide, guanidine hydroxide, sodium hydroxide, tetrabutylammonium hydroxide, tetramethylammonium hydroxide, choline hydroxide, phosphonium hydroxide, DABCO, DBU, a guanidine derivative, an amidine, or a phosphazene.

[0081] The thickness of the aerogel compositions of the present disclosure can be 15 mm or less, 10 mm or less, 5 mm or less, 4 mm or less, 3 mm or less, 2 mm or less, 1 mm or less, 0.5 mm or less, 0.3 mm or less, or a range of thicknesses between any combination of the aforementioned thicknesses.

[0082] The aerogel composition can be reinforced with various reinforcing materials to obtain a more elastic composite product. The reinforcing materials can be added to the gel at any point during the gelation process to produce a wet, reinforced gel composition. The wet gel composition can then be dried to produce a reinforced aerogel composition.

[0083] The aerogel composition can include an opacifying agent to reduce the radiative component of heat transfer. The opacifying compound or its precursor can be dispersed in the mixture containing the gel precursor at any time before gel formation. Examples of opacifying compounds include, but are not limited to, boron carbide (BC), diatomaceous earth, manganese ferrite, MnO, NiO, SnO, AgO, BiO, carbon black, graphite, titanium dioxide, iron / titanium oxide, aluminum oxide, zirconium silicate, zirconium oxide, iron(II) oxide, iron(III) oxide, manganese dioxide, iron / titanium oxide (ilmenite), chromium oxide, carbides (e.g., SiC, TiC, or WC), or mixtures thereof. Examples of opacifying compound precursors include, but are not limited to, TiOSO4 or TiOCl2. In some embodiments, the opacifying compound used as an additive can exclude silicon carbide whiskers or fibers. When the aerogel composition is intended for use in an electrical device, such as a battery as a barrier layer or other related application, the composition including the opacifying agent can desirably have a high dielectric strength with high volume and surface resistivity. In such embodiments, the carbon additive used as the opacifying agent can be non-conductive or modified to reduce its conductivity. For example, the opacifying agent can be surface-oxidized to reduce its conductivity. In some embodiments, a carbonaceous additive with inherent conductivity can be used as an opacifying agent in an aerogel composition intended for use in an electrical device. In such embodiments, the conductive carbonaceous additive can be used at a concentration below the percolation threshold to provide a composition with a dielectric strength suitable for use in an electrical device.

[0084] The aerogel composition can include one or more fire class additives. Within the context of this disclosure, the term "fire class additive" refers to a material that has an endothermic effect in the context of a response to a fire and can be incorporated into the aerogel composition. In more specific embodiments, the fire class additive can inhibit the thermal decomposition (T) of the aerogel composition in which the fire class additive is present. d ) than the onset of endothermic decomposition (E D ) and in certain embodiments, the T of the aerogel composition in which the fire class additive is present. d E below 50°C D In other words, the fire class additive E D is (T d -50℃)~(T d +100℃) range:

number

[0085] Prior to, concurrently with, or even subsequent to incorporation into or mixing with a sol (e.g., a silica sol prepared from alkyl silicates or water glass by various methods as understood in the art), the fire class additive can be mixed with or otherwise dispersed in a medium containing ethanol and, optionally, up to 10 vol.% water. The mixture can be mixed and / or stirred as needed to achieve a substantially uniform dispersion of the additive in the medium. Without being bound by theory, utilizing the hydrated forms of the clays referenced above and other fire class additives provides an additional endothermic effect. For example, halloysite clay (commercially available from Applied Minerals, Inc. under the trade name DRAGONITE or from Imerys simply as halloysite), kaolinite clay, is an aluminum silicate clay that, in its hydrated form, has an endothermic effect by releasing water of hydration at elevated temperatures (gas dilution). As another example, carbonates in their hydrated form can release carbon dioxide upon heating or elevated temperatures.

[0086] When referring to the final reinforced aerogel composition, the amount of additive is generally referred to as a weight percent of the final reinforced aerogel composition. The amount of additive in the final reinforced aerogel composition can vary from about 1% to about 50%, from about 1% to about 25%, or from about 10% to about 25% by weight of the reinforced aerogel composition. In exemplary embodiments, the amount of additive in the final reinforced aerogel composition is in the range of about 10% to about 20% by weight of the reinforced aerogel composition. In exemplary embodiments, the amount of additive in the final reinforced aerogel composition, as a weight percent of the composition, is about 1%, about 2%, about 3%, about 4%, about 5%, about 6%, about 7%, about 8%, about 9%, about 10%, about 11%, about 12%, about 13%, about 14%, about 15%, about 16%, about 17%, about 18%, about 19%, about 20%, or a range between any of the foregoing percentages. In certain embodiments, the amount of additive in the final reinforced aerogel composition is about 15% by weight of the reinforced aerogel composition. In certain embodiments, the amount of additive in the final reinforced aerogel composition is about 13% by weight of the reinforced aerogel composition. For example, in some preferred embodiments including additives such as silicon carbide, the total amount of additive present in the aerogel composition is about 10-20% by weight, e.g., about 15% by weight, of the reinforced aerogel composition. As another example, in some preferred embodiments including additives such as silicon carbide, the total amount of additive present in the aerogel composition is about 3-5% by weight, e.g., about 4% by weight, of the reinforced aerogel composition.

[0087] Composite insulation and its preparation Provided herein is a non-flexible composite insulation comprising a fibrous material comprising a metal oxide matrix (e.g., an aerogel matrix), an opacifying compound, and optionally a polymeric binder, wherein the non-flexible composite insulation is reinforced with the fibrous material.

[0088] The composite insulation materials disclosed herein have been optimized according to density, aerogel fiber ratio, additive content, and aerogel chemistry to improve the safety of all types of backup batteries (e.g., thermal batteries, liquid oxyhalide batteries).

[0089] The amount of additive in the non-flexible composite insulation can vary from about 40% to about 80%, about 40% to about 70%, or about 40% to about 60% by weight of the metal oxide content in the composite insulation. In exemplary embodiments, the amount of additive in the non-flexible composite insulation as a weight percent of the metal oxide content is about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, or a range between any of the aforementioned percentages. For example, in some preferred embodiments including additives such as silicon carbide, the total amount of additive present in the non-flexible composite insulation is about 40% by weight of the metal oxide matrix. In certain embodiments, the additive may be of multiple types. One or more fire-class additives may be present in the non-flexible composite insulation. In some preferred embodiments including an aluminum silicate fire class additive, the additive is present in the non-flexible composite insulation at about 60-80% by weight relative to the metal oxide content.

[0090] Inflexible composite insulation typically has a density greater than about 0.20 g / cc and a flexural modulus greater than about 10,000 psi. For example, the density of the inflexible composite insulation may range from about 0.20 g / cc to about 1.2 g / cc, specifically from about 0.20 g / cc to about 0.80 g / cc, and more specifically from about 0.20 g / cc to about 0.60 g / cc.

[0091] Provided herein is a non-flexible composite insulation comprising a metal oxide matrix (e.g., an aerogel matrix reinforced with embedded fibrous material), the fibrous material optionally comprising a polymeric binder, and an opacifying compound dispersed throughout the metal oxide matrix. In some embodiments, the non-flexible composite insulation has a flexural modulus greater than about 10,000 psi, and the opacifying compound is present in an amount greater than about 40% by weight relative to the metal oxide content within the composite insulation.

[0092] In some embodiments, substantially all or a portion of the fibrous material is aligned along the xy plane within the metal oxide matrix. In one embodiment, substantially all or a portion of the fibrous material is aligned perpendicular to the thickness direction of the non-flexible composite insulation. In another embodiment, substantially all or a portion of the fibrous material is aligned parallel to the thickness direction of the non-flexible composite insulation. In one or more embodiments, the thickness direction of the non-flexible composite insulation is the z-axis direction.

[0093] In some embodiments, substantially all or part of the fiber material is randomly aligned within the metal oxide matrix.

[0094] The non-flexible composite insulation materials disclosed herein can be obtained by exposing a fiber-reinforced aerogel composite to a thermal treatment (e.g., calcination in a low-oxygen or air atmosphere); and / or mechanically compressing the aerogel composite. Without wishing to be bound by theory, some or all of the physicochemical and / or mechanical properties of the aerogel composites described herein may be altered by thermal treatment and / or compression. In some examples, the porosity (e.g., pore size, porosity, density, thermal conductivity, and / or flexural modulus) of the non-flexible composite insulation materials disclosed herein may differ from that of a fiber-reinforced aerogel composite having substantially the same composition that has not been subjected to calcination and / or compression.

[0095] In some embodiments, the density of the non-flexible composite insulation is about 5 to 100 times greater than the density of the reinforced aerogel composite that has not been subjected to sintering and / or compaction.

[0096] In some embodiments, the thermal conductivity of the aerogel composite at 600° C. is substantially unchanged compared to an uncompressed reinforced aerogel composite having substantially the same composition.

[0097] In some embodiments, the composite insulation of the present disclosure is substantially devoid of organic moieties.

[0098] In some embodiments, the composite insulation of the present disclosure is a mechanically compressed material.

[0099] In exemplary embodiments, the composite insulation has a thickness ranging from about 0.02 mm to about 10 mm. For example, the composite may have a thickness ranging from about 0.5 mm to about 10 mm. As another example, the composite may have a thickness ranging from about 0.5 mm to about 5 mm. As another example, the composite may have a thickness of about 2 mm, about 3 mm, or about 4 mm.

[0100] Provided herein are methods for preparing a non-flexible composite insulation, the methods including: providing a reinforced aerogel composite including a fibrous material having a metal oxide matrix, an opacifying compound, and, optionally, a polymeric binder; exposing the aerogel composite to a heat treatment in a low-oxygen or air atmosphere, the heat treatment including exposure to one or more temperatures between 500°C and 700°C; and mechanically compressing the aerogel composite, thereby preparing the non-flexible composite insulation. In some embodiments, the density of the aerogel composite is increased by up to 10-100 times.

[0101] In some embodiments, the thermal conductivity of the non-flexible composite insulation at room temperature, 100°C, 200°C, 300°C, 400°C, 500°C, and 600°C is substantially unchanged compared to an uncompressed reinforced aerogel composite having substantially the same composition.

[0102] In certain embodiments, the non-flexible composite insulation of the present disclosure has an onset of thermal decomposition of about 300°C or higher, about 320°C or higher, about 340°C or higher, about 360°C or higher, about 380°C or higher, about 400°C or higher, about 420°C or higher, about 440°C or higher, about 460°C or higher, about 480°C or higher, about 500°C or higher, about 550°C or higher, about 600°C or higher, or within a range of any two of these values.

[0103] In some embodiments, the total time for heat treatment is from 1 minute to 360 minutes, preferably from 1 minute to 120 minutes, hi some embodiments, the heat treatment is in the range of from 3 minutes to 50 minutes, or from 5 minutes to 45 minutes.

[0104] In some embodiments, the aerogel composite is compressed to less than 80% of its volume to form the composite insulation of the present disclosure, hi some embodiments, the aerogel composite is compressed under a pressure of about 1000 psi to about 10,000 psi.

[0105] Provided herein is a method for producing a non-flexible composite insulation material, the method comprising: providing a casting surface and a planar casting frame (an inner boundary of the casting frame encircling a casting area on the casting surface); providing a sol-gel solution; disposing a fibrous material in the casting area; mixing the sol-gel solution with the fibrous material in the casting area; transitioning the sol-gel solution into a gel material, thereby forming a reinforced gel; drying the reinforced gel composition to produce a reinforced aerogel composite; heating the reinforced aerogel composite to a temperature between 300°C and 700°C, preferably between 500°C and 700°C, in a low-oxygen or air atmosphere; and mechanically compressing the aerogel composite at about 1000 psi to about 10,000 psi, thereby preparing a non-flexible composite insulation material. In some embodiments, the sol-gel solution comprises TEOS and / or MTES.

[0106] In some embodiments, the drying comprises a supercritical fluid, hi some embodiments, the drying step comprises carbon dioxide.

[0107] In some embodiments, the low-oxygen or air atmosphere contains between 0.1% and 5% oxygen by volume.

[0108] Use of composite insulation in thermal batteries. The present disclosure provides a thermal battery comprising the non-flexible composite insulation disclosed herein.

[0109] According to embodiments of the present disclosure, the performance and operating life of thermal batteries may be increased by incorporating the non-flexible composite insulation provided herein.

[0110] A thermal battery includes multiple stacked electrochemical cells within a suitable battery housing. FIG. 2B shows an exemplary battery housing 500. The battery housing houses a spare battery, such as a thermal battery. The housing can be a metal, a metal alloy, or a combination thereof. Non-limiting examples of suitable metals include stainless steel, titanium, titanium alloy, nickel, nickel alloy, nickel-plated steel, aluminum, aluminum alloy, copper, copper alloy, or any combination thereof. In some embodiments, the container has the form or shape of a plate, blade, grid, or panel. In some embodiments, the housing has a cylindrical shape.

[0111] The cell stack of a thermal battery can be insulated against heat loss by wrapping it in multiple layers of soft, flexible insulating blankets, as shown in Figures 2A and 2B. The insulated cell stack is then inserted into and sealed in a battery housing 500. The insulating material of the present disclosure can cover the inner surface 510, the outer surface 520, or both the inner surface 510 and the outer surface 520 of the battery housing 500 (battery container).

[0112] The battery housing can include an open top or a closed top. The battery container 500 can also include an open bottom or a closed bottom. If one or more ends (top or bottom) are open, covers can be included on the ends 530 and 540, which can include one or more metals. The exemplary rigid composite insulation of the present disclosure shown in FIG. 3A can cover one or more surfaces (inside and outside) of the end cover.

[0113] Composite insulation is applied as a single layer or as a multi-layer stackup, which may use different densities and / or compositions for each layer.

[0114] The composite insulation is applied to the battery container by any method, such as spraying, rolling, casting, or painting, which provides a hard, substantially hard, or rigid coating.

[0115] The composite insulation may include one or more layers. The layers may be the same or different. For example, one layer may be a composite insulation of the present technology and another layer may be a ceramic layer. The other layer may be selected from materials having a melting point of at least about 2600°F (1426°C) or within the range of about 3450°F to about 4980°F (about 1900°C to about 2750°C).

[0116] In addition to thermal batteries, the composite insulation materials disclosed herein are suitable for battery enclosures of other types of reserve batteries, such as liquid oxyhalide batteries, where various problems can be solved with the composite insulation materials disclosed herein.

[0117] Composite insulation according to embodiments of the present disclosure can be formed into a variety of end products, including, but not limited to, shapes that fit the inner end caps of thermal batteries. In the simplest configuration, the composite insulation can take the form of a sheet, panel, or disk. Sheets can be formed continuously or semi-continuously, for example, as a roll product, or sheets of the desired size and shape can be cut or otherwise formed from a larger sheet. In some embodiments, the sheet material can be used to form the inner end cap insulation. In some embodiments, the sheet material can be used to form a thermal barrier between battery cells. In other configurations, the composite insulation can be formed into, for example, a pouch to accommodate pouch cells of the battery, or a cylinder to accommodate cylindrical battery cells.

[0118] The composite insulation of the present disclosure can be formed into a variety of three-dimensional shapes, including panels, pipe preforms, half-shell preforms, elbows, joints, pouches, cylinders, and other shapes typically required in industrial and commercial insulation applications. In one embodiment, the composite insulation is formed into the desired shape before the gel precursor material is infused.

[0119] The composite insulation of the present disclosure may have an average thickness of less than 5 mm and a thickness variation of less than 10%.

[0120] As mentioned above, the battery container and optional end cover can be made of a metal or metal alloy. Non-limiting examples of suitable metals include stainless steel, titanium, titanium alloys, nickel, nickel alloys, nickel-plated steel, aluminum, aluminum alloys, copper, copper alloys, or any combination thereof.

[0121] Method / Method / Results The non-flexible composite insulation of the present disclosure has low thermal conductivity, good mechanical integrity, and ease of handling. The composite is designed to withstand significant compressive forces during installation and use.

[0122] The non-flexible composite insulation material of the present disclosure is designed by considering the fiber type, aerogel fiber ratio, additive content, firing temperature, and the possibility of delamination after compaction. Materials made according to the present disclosure have advantages over currently available materials, such as RS-DR and Zircal-45. For example, the insulation material of the present technology has lower thermal conductivity at 600°C compared to RS-DR and Zircal-45, while also having better handling properties.

[0123] The composite insulation materials disclosed herein are optimized for minimal and most predictable adverse effects on battery cell assemblies according to density, aerogel fiber ratio, additive content, and aerogel chemistry. For example, the aerogel fiber ratio and additive content used to prepare the non-flexible composite insulation materials disclosed herein resulted in composite insulation materials with densities ranging from about 0.20 g / cc to about 1.0 g / cc. The amount of additives (e.g., opacifiers and / or fire-classifying additives) in the non-flexible composite insulation materials can be about 40% by weight or more relative to the metal oxide content in the composite insulation materials.

[0124] 4 shows the stress-strain curves of exemplary composite insulation materials disclosed herein for a battery prototype (ECI-A, B, and C, with various densities ranging from about 0.20 g / cc to about 1.2 g / cc) relative to existing refractory ceramic end cap insulation materials (RS-DR and RS-200, available from ZIRCAR Refractory Composites, Inc.). Prior to testing the mechanical performance of the exemplary composite insulation materials, ECI-A, B, and C were compressed under different pressures to obtain material thicknesses of 3.8 mm, 0.9 mm, and 0.9 mm, respectively.

[0125] Exemplary composite insulation materials include silica aerogel (TEOS / MTES) with approximately 40% silica by weight, Quartz glass fiber reinforcement, and silicon carbide. Materials were cast at thicknesses of 4 to 5 mm. Materials were designed to match existing insulation materials to achieve final thicknesses of approximately 4.2 mm, approximately 1.0 mm, and approximately 1.0 mm to approximately 4.2 mm (Figures 2A, 2B, 3A, 3B, and 4). Exemplary composite insulation materials can be further classified into two classes: one pre-compressed at 1,000 psi and the other compressed at approximately 10,000 psi. In addition to meeting the mechanical expectations of the candidate composite insulation materials, their thermal conductivity performance is significantly lower than existing materials such as RS-DR and Zircal-45. FIG. 5 shows the thermal conductivity of four exemplary composite insulation materials (having densities of 0.48 g / cc, 0.45 g / cc, 0.26 g / cc, and 0.29 g / cc) for various temperatures from 100°C to 700°C. The four composite insulation materials presented in FIG. 5 according to embodiments of the present disclosure were compressed under different pressures (6400 psi, 7900 psi, 800 psi, and 1400 psi) to obtain material thicknesses of 3.1 mm, 1.4 mm, 4.1 mm, and 2.0 mm, respectively, before measuring thermal conductivity. The thermal conductivity of the exemplary material shown in FIG. 5 is less than 60 mW / mK at 600°C. For comparison, RS-DR has a thermal conductivity (TC) of 649 mW / mK at 600°C, while Zircal-45 has a TC of 117 mW / mK at the same temperature.

[0126] The prepared non-flexible composite insulation was machined to the required prototype dimensions for end cap insulation and installed within the cell structure for testing. Non-flexible composite insulation materials of the present disclosure having thicknesses of approximately 1 mm and 4.2 mm were used to build and test prototypes. Open-circuit evaluations were performed at a pre-conditioned temperature of 117°F for approximately 50 minutes. The units were opened and the quality of the insulation was evaluated. No signs of damage, cracking, or delamination were observed for any units containing the composite insulation materials disclosed herein.

[0127] In describing exemplary embodiments, specific terms are used for the sake of clarity. For purposes of description, each specific term is intended to include, at a minimum, all technical and functional equivalents that operate in a similar manner to accomplish a similar purpose. Furthermore, in some cases where a particular exemplary embodiment includes multiple system elements, apparatus components, or method steps, those elements, components, or steps may be replaced with a single element, component, or step. Similarly, a single element, component, or step may be replaced with multiple elements, components, or steps that serve the same purpose. Furthermore, while exemplary embodiments have been shown and described with reference to specific embodiments thereof, those skilled in the art will recognize that various substitutions and changes in form and detail may be made without departing from the scope of the invention. Furthermore, other embodiments, features, and advantages are within the scope of the present disclosure. Some of the embodiments of the invention related to the present invention are shown below. [Embodiment 1] 1. A non-flexible composite insulation comprising a fibrous material having a metal oxide matrix, an opacifying compound, and optionally a polymeric binder, wherein the non-flexible composite insulation is reinforced with the fibrous material, and wherein the non-flexible composite insulation has a density greater than about 0.20 g / cc and a flexural modulus greater than about 10,000 psi. [Embodiment 2] 1. A non-flexible composite insulation comprising a metal oxide matrix reinforced with embedded fibrous material, the fibrous material optionally comprising a polymeric binder, an opacifying compound dispersed throughout the metal oxide matrix, the non-flexible composite insulation having a density greater than about 0.20 g / cc, and the opacifying compound present in an amount greater than about 40% by weight relative to the metal oxide content within the composite insulation. [Embodiment 3] 3. The non-flexible composite insulation of embodiment 2, wherein substantially all or a portion of the fibrous material is aligned perpendicular to the thickness of the metal oxide matrix. [Embodiment 4] 3. The non-flexible composite insulation of claim 1 or 2, wherein the metal oxide comprises silica, alumina, titania, ceria, yttria, vanadia, or any combination thereof. [Embodiment 5] 5. The non-flexible composite insulation of embodiment 4, wherein the metal oxide matrix comprises silica. [Embodiment 6] 3. The non-flexible composite insulation of claim 1 or 2, wherein the metal oxide is a compressed aerogel matrix. [Embodiment 7] 3. The non-flexible composite insulation of claim 1 or 2, wherein the opacifying compound is selected from BC, diatomaceous earth, manganese ferrite, MnO, NiO, SnO, AgO, BiO, TiC, WC, carbon black, titanium oxide, iron titanium oxide, zirconium silicate, zirconium oxide, iron (I) oxide, iron (III) oxide, manganese dioxide, iron titanium oxide (ilmenite), chromium oxide, silicon carbide, or mixtures thereof. [Embodiment 8] 8. The non-flexible composite insulation of embodiment 7, wherein the opacifying compound is silicon carbide. [Embodiment 9] 3. The non-flexible composite insulation of claim 1 or 2, wherein the fibrous layer comprises organic polymer-based fibers, inorganic fibers, carbon-based fibers, or a combination thereof. [Embodiment 10] 10. The non-flexible composite insulation of embodiment 9, wherein the inorganic fibers are selected from glass fibers, rock fibers, metal fibers, boron fibers, ceramic fibers, basalt fibers, or combinations thereof. [Embodiment 11] 11. The non-flexible composite insulation of claim 10, wherein the inorganic fibers comprise glass fibers. [Embodiment 12] 12. The non-flexible composite insulation of claim 11, wherein the glass fibers are silica-based glass fibers. [Embodiment 13] 3. The non-flexible composite insulation of claim 1 or 2, wherein the fibrous layer comprises staple fibers, a woven material, a nonwoven material, a mat, a felt, a batt, a lofty batt, a chopped fiber, or a combination thereof. [Embodiment 14] 3. The non-flexible composite insulation of claim 1 or 2, wherein the polymeric binder comprises polyvinyl alcohol. [Embodiment 15] 3. The non-flexible composite insulation of embodiment 1 or 2, having an average thickness of less than 10 mm and a thickness variation of less than 10%. [Embodiment 16] 3. The non-flexible composite insulation of embodiment 1 or 2, having a thermal conductivity of about 60 mW / m·K or less at 600° C. [Embodiment 17] 3. The non-flexible composite insulation of embodiment 1 or 2, having a density in the range of about 0.20 g / cc to about 1.0 g / cc. [Embodiment 18] 3. The non-flexible composite insulation of embodiment 1 or 2, having a flexural modulus in the range of about 10,000 psi to about 100,000 psi. [Embodiment 19] 3. The non-flexible composite insulation of embodiment 1 or 2, wherein the composite is substantially devoid of organic moieties. [Embodiment 20] 3. A non-flexible composite insulation according to claim 1 or 2, wherein the composite is a mechanically compressed material. [Embodiment 21] 3. The non-flexible composite insulation of claim 1 or 2, wherein the opacifying compound is present in a range of about 40% to about 60% by weight relative to the metal oxide content within the composite insulation. [Embodiment 22] 10. A thermal battery comprising the non-flexible composite insulation of any one of the preceding embodiments. [Embodiment 23] 10. A method of improving the performance of a thermal battery, comprising incorporating into said thermal battery the non-flexible composite insulation material of any one of the preceding embodiments. [Embodiment 24] 1. A method for preparing a non-flexible composite insulation material, comprising: a. providing a reinforced aerogel composite comprising a fibrous material comprising a metal oxide matrix, an opacifying compound, and optionally a polymeric binder; b. exposing the aerogel composite to a heat treatment in a low-oxygen or air atmosphere, the heat treatment comprising exposure to one or more temperatures between 500°C and 700°C; and c. mechanically compressing the aerogel composite in a direction perpendicular to the primary direction of the fiber material, thereby preparing the non-flexible composite insulation. The method comprising: [Embodiment 25] 25. The method of claim 24, wherein the density of the non-flexible composite insulation is about 5 to 100 times greater than the density of the reinforced aerogel composite. [Embodiment 26] 25. The method of claim 24, wherein the thermal conductivity of the non-flexible composite insulation at 600°C is substantially unchanged compared to an uncompressed reinforced aerogel composite having substantially the same composition. [Embodiment 27] 25. The method of embodiment 24, wherein the total time for the heat treatment is from 1 minute to 120 minutes. [Embodiment 28] 25. The method of embodiment 24, wherein the aerogel composite is compressed to less than 80% of its volume. [Embodiment 29] 25. The method of embodiment 24, wherein the aerogel composite is compressed under a pressure of from about 500 psi to about 10,000 psi. [Embodiment 30] 25. The method of embodiment 24, wherein the metal oxide matrix comprises silica. [Embodiment 31] 25. The method of embodiment 24, wherein the metal oxide matrix is ​​a compressed aerogel matrix. [Embodiment 32] 25. The method of claim 24, wherein the opacifying compound is present in a range of about 40% to about 60% by weight relative to the metal oxide content in the non-flexible composite insulation. [Embodiment 33] 1. A method of making a non-flexible composite insulation material, comprising: a. providing a casting surface and a flat casting frame, the inner boundary of the casting frame surrounding a casting area on the casting surface; b. providing a sol-gel solution; c. combining the sol-gel solution with an opacifying compound; d. disposing the fibrous material in the casting area; e. mixing the sol-gel solution with the fibrous material in the casting area; f. transferring the sol-gel solution into a gel material, thereby forming a reinforced gel; g. drying the reinforced gel composition to form a reinforced aerogel composite; h. Heating the reinforced aerogel composite to a temperature of 500°C to 700°C in a low-oxygen atmosphere or air atmosphere; and i. mechanically compressing the aerogel composite under about 500 psi to about 10,000 psi, thereby preparing the non-flexible composite insulation. The method comprising: [Embodiment 34] 34. The method of embodiment 33, wherein the sol-gel solution comprises TEOS and / or MTES. [Embodiment 35] 34. The method of embodiment 33, wherein the low-oxygen atmosphere comprises less than 5% oxygen by volume. [Embodiment 36] 34. The method of embodiment 33, wherein said drying comprises carbon dioxide. [Embodiment 37] 34. The method of claim 24 or claim 33, wherein the non-flexible composite insulation has a density in the range of about 0.20 g / cc to about 1.0 g / cc. [Embodiment 38] 34. The method of claim 24 or claim 33, wherein the non-flexible composite insulation has a flexural modulus in the range of about 10,000 psi to about 100,000 psi. [Embodiment 39] 34. The method of claim 33, wherein the opacifying compound is present in a range of about 40% to about 60% by weight relative to the metal oxide content in the non-flexible composite insulation.

Claims

1. 1. A non-flexible composite insulation material comprising a metal oxide matrix, an opacifying compound, and a fibrous material, the non-flexible composite insulation material being reinforced with the fibrous material, the non-flexible composite insulation material having a density in the range of 0.20 g / cc to 1.2 g / cc and a flexural modulus greater than 10,000 psi.

2. 1. A non-flexible composite insulation comprising a metal oxide matrix reinforced with embedded fibrous material, an opacifying compound dispersed throughout the metal oxide matrix, the non-flexible composite insulation having a density in the range of 0.20 g / cc to 1.2 g / cc, and the opacifying compound present in an amount greater than 40 wt. % relative to the metal oxide content within the composite insulation.

3. 3. The non-flexible composite insulation of claim 2, wherein substantially all or a portion of the fibrous material is aligned perpendicular to the thickness of the metal oxide matrix.

4. 3. The non-flexible composite insulation material of claim 1 or 2, wherein the metal oxide comprises silica, alumina, titania, ceria, yttria, vanadia, or any combination thereof.

5. 5. The non-flexible composite insulation of claim 4, wherein the metal oxide matrix comprises silica.

6. 3. The non-flexible composite insulation of claim 1 or 2, wherein the metal oxide is in a compressed aerogel matrix.

7. The opacifying compound is selected from the group consisting of BC, diatomaceous earth, manganese ferrite, MnO, NiO, SnO, and Ag. 2 O, Bi 2 O 3 3. The non-flexible composite insulation material of claim 1, wherein the insulating material is selected from TiC, WC, carbon black, titanium oxide, iron titanium oxide, zirconium silicate, zirconium oxide, iron (I) oxide, iron (III) oxide, manganese dioxide, iron titanium oxide (ilmenite), chromium oxide, silicon carbide, or mixtures thereof.

8. 8. The non-flexible composite insulation of claim 7, wherein the opacifying compound is silicon carbide.

9. 3. The non-flexible composite insulation of claim 1 or 2, wherein the fibrous material comprises organic polymer-based fibers, inorganic fibers, carbon-based fibers, or combinations thereof.

10. 10. The non-flexible composite insulation of claim 9, wherein the inorganic fibers are selected from glass fibers, rock fibers, metal fibers, boron fibers, ceramic fibers, basalt fibers, or combinations thereof.

11. 11. The non-flexible composite insulation material of claim 10, wherein the inorganic fibers comprise glass fibers.

12. 12. The non-flexible composite insulation of claim 11, wherein the glass fibers are silica-based glass fibers.

13. 3. The non-flexible composite insulation of claim 1 or 2, wherein the fibrous material comprises staple fibers, woven materials, nonwoven materials, mats, felts, batting, lofty batting, chopped fibers, or combinations thereof.

14. 3. The non-flexible composite insulation of claim 1 or 2, wherein the fibrous material includes a polymeric binder.

15. 15. The non-flexible composite insulation of claim 14, wherein the polymeric binder comprises polyvinyl alcohol.

16. 3. A non-flexible composite insulation according to claim 1 or 2 having an average thickness of less than 10 mm and a thickness variation of less than 10%.

17. 3. The non-flexible composite insulation material of claim 1 or 2, having a thermal conductivity of 60 mW / m·K or less at 600°C.

18. 3. The non-flexible composite insulation of claim 1 or 2, having a density in the range of 0.20 g / cc to 1.0 g / cc.

19. 3. The non-flexible composite insulation of claim 1 or 2, having a flexural modulus in the range of 10,000 psi to 100,000 psi.

20. 3. The non-flexible composite insulation of claim 1 or 2, wherein the composite is devoid of organic moieties.

21. 3. A non-flexible composite insulation according to claim 1 or 2, wherein the composite is a mechanically compressed material.

22. 3. A non-flexible composite insulation according to claim 1 or 2, wherein the opacifying compound is present in the range of 40% to 60% by weight relative to the metal oxide content within the composite insulation.

23. A thermal battery comprising the non-flexible composite insulating material of claim 1 or 2.

24. 10. A method of improving the performance of a thermal battery, said method comprising incorporating into said thermal battery the non-flexible composite insulation material of claim 1 or 2.

25. 1. A method for preparing a non-flexible composite insulation material, comprising: a. providing a reinforced aerogel composite comprising a metal oxide matrix, an opacifying compound, and a fiber material; b. exposing the reinforced aerogel composite to a heat treatment in a low-oxygen or air atmosphere, wherein the heat treatment comprises exposure to one or more temperatures between 500°C and 700°C; and c) mechanically compressing the reinforced aerogel composite in a direction perpendicular to the primary direction of the fiber material, thereby preparing the non-flexible composite insulation. The method comprising:

26. The method of claim 25 , wherein the fibrous material comprises a polymeric binder.

27. 26. The method of claim 25, wherein the density of the non-flexible composite insulation is 5 to 100 times greater than the density of the reinforced aerogel composite.

28. 26. The method of claim 25, wherein the thermal conductivity of the non-flexible composite insulation at 600°C is unchanged compared to an uncompressed reinforced aerogel composite having the same composition.

29. 26. The method of claim 25, wherein the total time for the heat treatment is from 1 minute to 120 minutes.

30. 26. The method of claim 25, wherein the reinforced aerogel composite is compressed to less than 80% of its volume.

31. 26. The method of claim 25, wherein the reinforced aerogel composite is compressed under a pressure of 500 psi to 10,000 psi.

32. 26. The method of claim 25, wherein the metal oxide matrix comprises silica.

33. 26. The method of claim 25, wherein the metal oxide matrix is ​​a compressed aerogel matrix.

34. 26. The method of claim 25, wherein the opacifying compound is present in the range of 40% to 60% by weight relative to the metal oxide content in the non-flexible composite insulation.

35. 1. A method of making a non-flexible composite insulation material, comprising: a. providing a casting surface and a flat casting frame, the inner boundary of the casting frame enclosing a casting area on the casting surface; b. Providing a sol-gel solution; c. combining the sol-gel solution with an opacifying compound; d. placing a fibrous material in the casting area; e. mixing the sol-gel solution with the fibrous material in the casting area; f. transferring the sol-gel solution into a gel material, thereby forming a reinforced gel; g. drying the reinforced gel composition to form a reinforced aerogel composite; h. Heating the reinforced aerogel composite to a temperature of 500°C to 700°C in a low-oxygen or air atmosphere; i. mechanically compressing the reinforced aerogel composite under 500 psi to 10,000 psi, thereby preparing the non-flexible composite insulation. The method comprising:

36. 36. The method of claim 35, wherein the sol-gel solution comprises TEOS and / or MTES.

37. 36. The method of claim 35, wherein the low-oxygen atmosphere comprises less than 5% oxygen by volume.

38. 36. The method of claim 35, wherein the drying comprises carbon dioxide.

39. 36. The method of claim 25 or claim 35, wherein the non-flexible composite insulation has a density in the range of 0.20 g / cc to 1.0 g / cc.

40. 36. The method of claim 25 or claim 35, wherein the non-flexible composite insulation has a flexural modulus in the range of 10,000 psi to 100,000 psi.

41. 36. The method of claim 35, wherein the opacifying compound is present in the range of 40% to 60% by weight relative to the metal oxide content in the non-flexible composite insulation.

Citation Information

Patent Citations

  • Aerogel insulation panels and manufacturing thereof

    US20170326849A1