Ceramifiable composition and making and using same

A ceramifiable composition of organic polymer, silica, and glass fibers forms a self-supporting ceramic structure at elevated temperatures, addressing the limitations of traditional fire-resistant materials by providing stability and mechanical strength during fires.

WO2026030570A1PCT designated stage Publication Date: 2026-02-05AVIENT CORP
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
PCT/US2025/040091
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-07-31
Filing Date
2025-07-31
Publication Date
2026-02-05

AI Technical Summary

Technical Problem

Traditional fire-resistant materials turn into brittle char layers or ashes without self-supporting ability after a fire, failing to maintain structural integrity, and newer technologies like electric vehicle batteries pose higher thermal demands.

Method used

A ceramifiable composition comprising an organic polymer, amorphous silica, an alkaline compound, and glass fibers forms a self-supporting ceramic structure at elevated temperatures, resisting shrinkage and deformation.

Benefits of technology

The composition quickly transforms into a stable ceramic structure with mechanical strength and dimensional stability, maintaining structural integrity during fires, suitable for applications like battery containers and wire & cable insulations.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure IMGF000011_0001
    Figure IMGF000011_0001
  • Figure IMGF000012_0001
    Figure IMGF000012_0001
  • Figure IMGF000013_0001
    Figure IMGF000013_0001
Patent Text Reader

Abstract

Ceramifiable compositions can be configured to form stable structures at elevated temperatures. Such ceramifiable compositions include an organic polymer combined with glass fibers, a silica and an alkaline compound such as metal carbonate.
Need to check novelty before this filing date? Find Prior Art

Description

CERAMIFIABLE COMPOSITION AND MAKING AND USING SAMECROSS-REFERENCE TO RELATED APPLICATIONS

[0001] This application claims priority to and all benefit of U.S. Provisional Patent Application No. 63 / 678,037, filed on July 31, 2024, the entire disclosure of which is fully incorporated herein by reference.TECHNICAL FIELD

[0002] The present disclosure is directed to ceramifiable compositions configured to form stable structures at elevated temperatures. The ceramifiable compositions of the present disclosure include an organic polymer combined with glass fibers, an amorphous silica and an alkaline compound such as a metal carbonate.BACKGROUND

[0003] Each year fire accidents cause loss of life and property. Fire safety is a major concern worldwide and results in increasing fire safety performance globally for appliances, wire & cable, building construction products, etc. Additionally, some regulations require materials maintain their structural integrity for a minimum period of time or minimum temperature during a fire event.

[0004] Further, newer technologies are placing ever increasing demands on fire safety such as electric vehicle (EV) battery and grid storage battery technologies. For example, thermal runaway of lithium ion batteries can generate temperatures of greater than l,000°C and high pressures due to gas build-up in enclosures and containers housing such batteries. However, traditional flame-retarding polymer composites can easily turn into brittle char layers or ashes without any self-supporting ability, especially after experiencing a full-fledged fire. Hence a continuing need exists for fire resistant materials.SUMMARY OF THE DISCLOSURE

[0005] Advantages of the present disclosure include ceramifiable compositions that can be ceramified at or above the decomposition temperature of an organic polymer included in the composition, whichever is higher. The ceramified composition can also be formed at shorted time periods, e.g., within about 5 minutes. Advantageously, the ceramifiable compositions can be formed into ceramic structures, such as a fused glass fiber matrix, that resists shrinking.

[0006] In certain implementations, a ceramifiable composition is provided which includes: (a) an organic polymer; (b) an amorphous silica; (c) an alkaline compound, such as a metal carbonate; and (d) from about 40 wt% to about 80 wt% of a glass fiber, based on a total weight of the ceramifiable composition.

[0007] The organic polymer can include non-reactive organic polymers and can be in a range of from about 20 wt% to about 50 wt% based on the total weight of the ceramifiable composition. The silica can include fumed silica, silica gel, precipitated silica, amorphous silica, or any combination thereof. The silica can be in a range of from about 4 wt% to about 15 wt% based on the total weight of the ceramifiable composition. The alkaline compound can include a metal carbonate such as sodium carbonate, calcium carbonate, potassium carbonate, hydrotalcite, or any combination thereof. Further, the ceramifiable composition can include the alkaline compound in a range of from about 2 wt% to about 10 wt% based on the total weight of the ceramifiable composition.

[0008] The glass fibers can include a variety of glass fibers such as E-glass, A-glass, C- glass, D-glass, S-glass, ECR-glass, AR glass, R-glass, or any combination thereof. The glass fibers can have an average length of at least 2 mm, such as at least 3 mm, 6 mm, 12 mm, and up to about 25 mm and any values therein, such as an average length in a range of from about 0.4 cm to about 1.2 cm.

[0009] The ceramifiable compositions of the present disclosure can be prepared by combining (a) an organic polymer; (b) an amorphous silica; (c) an alkaline compound such as a metal carbonate; and (d) from about 40 wt% to about 80 wt% of a glass fiber, based on a total weight of the ceramifiable composition.

[0010] In some aspects, the composition is configured to form a self-supporting structure upon exposure to a temperature in a range of from about 650 °C to about 1,000 °C, such as upon exposure to a temperature in a range of from about 700 °C to about 900 °C, from about 800 °C to about 850 °C. Such self-supporting structure when aged at 650° C for about 10 minutes can have satisfactory structural integrity, characterized by sufficient mechanical strength to permit handling while maintaining dimensional stability.

[0011] In other implementations, a ceramified composition can be prepared by providing a ceramifiable composition and heating the ceramifiable composition to a temperature of from about 650 °C to about 1000 °C to form a self-supporting structure.

[0012] Advantageously, ceramified compositions of the present disclosure are generally flexible and advantageously can be molded into various articles, shapes and / or included as oneor more layers on various articles, structures, etc. to increase the fire resistance of articles, shapes and / or structures.

[0013] Additional advantages of the present disclosure will become readily apparent to those skilled in this art from the following detailed description, wherein only certain embodiments are shown and described, simply by way of illustration of carrying out certain subject matter. As will be realized, the invention is capable of other and different embodiments, and its several details are capable of modifications in various respects, all without departing from the invention. Accordingly, the drawings and description are to be regarded as illustrative in nature, and not as restrictive.DETAILED DESCRIPTION OF THE DISCLOSURE

[0014] The disclosure may be more fully appreciated by reference to the following description, including the following definitions and examples. Certain features of the disclosed compositions and methods which are described herein in the context of separate aspects, may also be provided in combination in a single aspect. Alternatively, various features of the disclosed compositions and methods that are, for brevity, described in the context of a single aspect, may also be provided separately or in any sub-combination.

[0015] Unless otherwise defined herein, scientific and technical terms used in connection with the present application shall have the meanings that are commonly understood by those of ordinary skill in the art. Further, unless otherwise required by context, singular terms shall include pluralities and plural terms shall include the singular.

[0016] As employed above and throughout the disclosure, the following terms and abbreviations, unless otherwise indicated, shall be understood to have the following meanings.

[0017] As used in the specification including the appended claims, the singular forms “a,” “an,” and “the” include the plural, and reference to a particular numerical value includes at least that particular value, unless the context clearly dictates otherwise.

[0018] As used in the specification including the appended claims, when a range of values is expressed, such range includes from the one particular value and / or to the other particular value. All ranges are inclusive and combinable. Further, reference to values stated in ranges includes each and every value within that range. The term “about” as used herein when referring to a measurable value such as an amount, a temporal duration, and the like, is meant to encompass reasonable variations of the value.

[0019] The present disclosure is directed to ceramifiable compositions (which can also be referred to as a ceramizable compositions) that can generally form stable ceramic structures,e.g., ceramified structures, upon exposure to elevated temperatures such as those experienced during fire conditions. Advantageously, the ceramifiable compositions of the present disclosure can be ceramified into self-supporting structures, i.e., the ceramified self-supporting structures remain rigid and do not undergo significant heat induced deformation or flow. They also undergo little if any shrinkage following elevated temperature exposure. The ceramifiable compositions further can form ceramified compositions relatively quickly and at a lower range of elevated temperatures, e.g., below the softening point of glass fiber used in the composition such as a temperature as low as 650 °C.

[0020] As used herein a ceramifiable composition is an organic polymer, an amorphous silica, an alkaline compound and glass fiber composition that is configured to convert to a ceramic structure, i.e., a fused silicate glass fiber matrix, at elevated temperatures, e.g., at temperatures that are below the softening point of the glass fiber used in the composition such as a temperature 350 °C and up to and including about 1,000 °C. The amorphous silica appears to fuse together and with the glass fibers, and the alkaline compound appears to facilitate fusing the glass fibers and silica. Additional optional ingredients can also be included in the ceramifiable composition.

[0021] The ceramifiable compositions disclosed herein may advantageously convert to a ceramic structure at a temperature as low as 650 °C. While the composition is ceramifiable at temperatures up to and including 1,000 °C, it should be understood that ceramification may occur at temperatures above 1,000 °C. For example, fires may produce hotter temperatures than 1,000 °C and ceramification is possible under these conditions. Advantageously, ceramifiable compositions of the present disclosure are generally flexible and advantageously can be molded into various articles, shapes and / or included as one or more layers on various articles, structures, etc. to increase the fire resistance of articles, shapes and / or structures. In one aspect, ceramifiable compositions of the present disclosure can form, or be included on, a battery container or battery enclosure, fire resistance panels, wire & cable insulations, etc.

[0022] The ceramifiable compositions of the present disclosure include: (a) an organic polymer; (b) an amorphous silica; (c) an alkaline compound such as a metal carbonate; and (d) glass fibers. The ceramifiable compositions of the present disclosure include a significant amount of glass fibers, e.g., at least about 40 wt% based on a total weight of the ceramifiable composition. By including such a significant content of glass fibers, the ceramifiable composition can form fused glass matrix when exposed to elevated temperatures which results in a structure that resists significant shrinkage. In certain aspects, the composition can include at least 40 wt%, 45 wt%, 50 wt% and up to and including about 70wt% or about 80 wt% glassfibers based on the total weight of the ceramifiable composition. The amount of glass fibers in the composition can further include ranges from about 40 wt% to about 80 wt% and any ranges therein.

[0023] Advantageously, the glass fibers used in the composition have a relatively high softening point (e.g., greater than or equal to 700 °C) to resist deformation upon exposure to elevated temperatures. For example the glass fibers can include one or more of E-glass (softening point of approximately 846 °C), A-glass (softening point of approximately 705 °C), C-glass (softening point of approximately 750 °C), D-glass (softening point of approximately 771 °C), S-glass (softening point of approximately 1056 °C), ECR-glass (softening point of approximately 882 °C), AR glass (softening point of approximately 773 °C), R-glass (softening point of approximately 952 °C), or any combination thereof.

[0024] In some implementations, the glass fibers used in the composition should have sufficient length to form a fused matrix upon exposure to elevated temperatures. For example, the glass fibers can have an average length of at least 2 mm, such as at least 3 mm, 6 mm, 12 mm and up to about 25 mm and any values therein. In some aspects, the glass fibers can have a length ranging from about 5 mm to about 2 cm, such as from about 0.4 cm to about 1.2 cm. In some aspects, the glass fibers can have a wide distribution of lengths. In some aspects, the glass fibers can include two or more fibers of any of the average lengths previously described. Due to fiber attrition in blending operations, fiber length and average fiber length may be determined from the fiber starting length prior to any mixing or blending steps.

[0025] Further, in some aspects the ceramifiable composition of the present disclosure can include glass fiber reinforced long fiber thermoplastic. Such glass fiber reinforced long fiber thermoplastic can be prepared as continuous filaments of fiber, which are melt-impregnated with thermoplastic polymer in a pultrusion process that creates a high performance bond. These unidirectional fiber-reinforced strands are then cut into, for example, 1 / 2 inch (12 mm) composite pellets for convenient processing into net shapes via injection molding. Higher aspect ratio fiber reinforcement through the full length of the pellets results in more robust properties than short / chopped glass fiber filled compounds. An average length of glass fiber in glass fiber reinforced long fiber thermoplastic that can be used in the compositions of the present disclosure includes a range of 2 mm to 25 mm. In some aspects, the glass fibers can include a blend of long and short fibers or have a wide distribution of lengths.

[0026] Advantageously, a wide variety of organic polymers can be used to form the ceramifiable compositions of the present disclosure. The organic polymer that can be used for such compositions include generally non-reactive organic polymers, such as a polyolefin, e.g.,a polyethylene, polypropylene, or any combination thereof. By contrast, reactive organic polymers are organic polymers having polar groups therein that can more readily decompose into carbonyl or hydroxyl containing compounds upon exposure to elevated temperatures. The reactive polymer includes, without limitation, a polyvinyl butyral (PVB), a recycled polyvinyl butyral, a polyamide, a thermoplastic polyurethane, an aliphatic polyketone, polycarbonate, a polyester, a polyethylene terephthalate, a polybutylene terephthalate, a polyvinyl alcohol, a polyvinyl acetate, an ethylene-vinyl alcohol copolymer, an ethylene-vinyl acetate copolymer, or any combination thereof.

[0027] Polyolefins suitable for use as the non-reactive organic polymers include homopolymers and copolymers prepared from olefin monomers. Olefin monomers can include, by way of example and not limitation, straight-chain or branched aliphatic C2-C20 olefins, such as ethylene, propylene, 1 -butene, 1 -pentene, 3 -methyl- 1 -butene, 4-methyl-l - pentene, 3 -methyl- 1- pentene, 1 -hexene, 1 -octene, 1 -decene, 1 -dodecene, 1 -tetradecene, 1 -hexadecene, 1 -octadecene, and 1-eicosene.

[0028] The polyolefin of the present disclosure may be a polyethylene homopolymer or copolymer. The polyethylene copolymer can be an ethylene / a- olefin copolymer in the form of a block copolymer or a random copolymer.

[0029] The polyolefin of the present disclosure may be a polypropylene homopolymer or copolymer. The poly polypropylene ethylene copolymer can be a propylene / a- olefin copolymer in the form of a block copolymer or a random copolymer.

[0030] The amount of the organic polymer in the composition can be at least 20 wt%, based on the total weight of the ceramifiable composition, such as at least 25 wt%, 30 wt%, 35 wt% and up to and including 50 wt% such as in a range of from about 20 wt% to about 50 wt%, based on the total weight of the ceramifiable composition.

[0031] Ceramifiable compositions of the present disclosure further include an amorphous silica, such as one or more of fumed silica, silica gel, precipitated silica, amorphous silica, or any combination thereof. It is believed that the silica in the composition facilitates fusing of glass fibers in the composition at elevated temperatures. In some aspects, the silica has a surface and free silanol groups located on the surface. It is known that free (isolated or geminal) silanol group has stretching band at -940 cm’1in FTIR. Such free surface silanol groups can facilitate condensation reactions among silica and glass fibers. In some aspects, the silica can have a diameter in a range of from about 3 nm to about 150 nm. For example, precipitated silica and fumed silica can have primary structures with an average diameter of about 5 nm to 100 nm and agglomerated average diameters of about 1 pm to 40 pm. The ceramifiablecompositions of the present disclosure can include silica in an amount of at least 4 wt%, such as at least 6 wt%, 8 wt%, 10 wt%, 12 wt%, and any amounts therebetween, based on the total weight of the ceramifiable composition. For example, a ceramifiable composition can include silica in a range of from about 4 wt% to about 12 wt% and any ranges therebetween.

[0032] Ceramifiable compositions of the present disclosure further include an alkaline compound such as a metal carbonate. It is believed that the alkaline compound, e.g., metal carbonate, in the composition can activate surfaces of the silica and glass fiber, as well as optional metal silicates that may be included in the ceramifiable composition, which in turn facilitate silanol condensation reactions and fusing of silica and glass fibers to themselves and to each other. The alkaline compound may also catalyze decomposition of certain organic polymers, which may further activate the silica surface by generating more silanol groups.

[0033] In some aspects, the alkaline compound can be one or more of an alkali metal carbonate, such as sodium carbonate, potassium carbonate, calcium carbonate, hydrotalcite, or any combination thereof. The ceramifiable compositions of the present disclosure can include the alkaline compound in an amount of at least 2 wt%, such as at least 3 wt%, 3.5 wt%, 4 wt%, 4.5 wt%, 5 wt% and up to about 10 wt% any amounts therebetween, based on the total weight of the ceramifiable composition. For example, a ceramifiable composition can include the alkaline compound in a range of from about 2 wt% to about 10 wt% based on the total weight of the ceramifiable composition.

[0034] In an implementation of the present disclosure, a molar ratio of silica to alkaline compound is from about 1.5: 1 to about 6: 1, preferably about 2: 1 to about 5: 1, and more preferably about 3 : 1 to about 4: 1. It is believed that the alkaline compound can catalyze silanol condensation reaction. However, higher alkaline content could also weaken the silicate glass network. Therefore, there seems to be a certain silica to alkaline compound ratio in the ceramifiable compositions of the present disclosure that leads to a quick formation of silicate glass network with good thermal and mechanical properties when exposed to elevated temperatures, such as those that occur during a fire.

[0035] The ceramifiable compositions of the present disclosure can further include optional additives, which can improve thermal and / or mechanical characteristic of the ceramifiable composition, the ceramified structure formed after exposure to elevated temperatures, or both the ceramifiable composition and the ceramified structure. For example, the ceramifiable compositions of the present disclosure can include, based on the total weight of the composition, greater than 0 wt% to about 20 wt% additives, about 0.5 wt% to about 15 wt% additives, or 2% to about 12 wt% additives. Such additives can be one or more of a metalsilicate (e.g., calcium silicate, magnesium silicate, aluminum silicate, wollastonite, and sepiolite), antioxidants, flame retardants, thermally conductive additives, electrically conductive additives and combinations thereof. Exemplary metal silicates include calcium silicate, magnesium silicate, aluminum silicate, wollastonite, sepiolite, or any combination thereof. For example, the ceramifiable compositions of the present disclosure can include, based on the total weight of the composition, greater than 0 wt% to about 20 wt% metal silicates, about 0.5 wt% to about 15 wt% metal silicates, 1% to about 12 wt% metal silicates, 2% to about 10 wt% metal silicates, 3% to about 8 wt% metal silicates, or 4% to about 6 wt% metal silicates. Additives such as the above metal silicates can improve thermal and mechanical properties of the resulting ceramified composition after exposure to elevated temperatures.

[0036] Use of an organic polymer in the ceramifiable compositions of the present disclosure advantageously allows ready manufacture of the compositions. For example, the ceramifiable composition of the present disclosure can be prepared by combining: (a) the organic polymer; (b) the amorphous silica; (c) the alkaline compound (e.g., metal carbonate); and (d) the glass fibers (e.g., from about 40 wt% to about 80 wt% of a glass fiber, based on a total weight of the ceramifiable composition). Such a combination can be carried out by mixing the ingredients sequentially or components together in a mixer such as in an extruder to form the composition in various forms such as in sheets, layers, pellets, etc. that can be applied to articles and structures, or as a molded article.

[0037] The ceramifiable compositions of the present disclosure find use in many applications that desire a material to impart fire-resistance. Advantageously, the ceramifiable compositions of the present disclosure can exhibit limited change in shape following exposure to elevated temperatures such as those likely to be encountered in a fire condition. An advantage of the ceramifiable compositions of the present disclosure is that they can resist shrinking after exposure to elevated temperatures. While the organic polymer component of the composition decomposes, the glass fibers and silica components tend to fuse together to form a ceramified composition including a fused silicate glass fiber matrix. For example, the ceramifiable compositions of the present disclosure can resist shrinking as determined by measuring the dimension changes of a test specimen in which the reduction is less than 10%, such as less than 5% and even less than 1% after exposing the test specimen to elevated temperatures at 650 °C or at or above the softening point of the glass fiber used in the composition (e.g., at or above 846 °C such as at 1,000 °C), whichever is higher.

[0038] In addition, the ceramifiable compositions of the present disclosure can be ceramified into self-supporting structures, i.e., the ceramified, self-supporting structures remain rigid and do not undergo significant heat induced deformation or flow. For example, the ceramifiable compositions of the present disclosure can be configured to form self- supporting structures upon heating the ceramifiable composition to a temperature in a range from about 650 °C to about 1,000 °C, from about 650 °C to about 900 °C, or from about 650 °C to about 850 °C. Further, such self-supporting structures can be formed in a relatively short period of time upon exposure to the elevated temperatures such as within about 5 minutes (300 seconds). In other aspects, such self-supporting structures can be formed upon exposure to the elevated temperatures on or after 300 seconds. In some aspects, such self-supporting structures, when aged at 650 °C for about 10 minutes, can have a flexural strength of greater than or equal to 75 psi.

[0039] As explained above, the organic polymer that can be used for ceramifiable compositions of the present disclosure include reactive organic polymers, and generally non- reactive organic polymers. The reactive organic polymers more readily decompose into carbonyl or hydroxyl containing compounds upon exposure to elevated temperatures and thus generally allow formation of a ceramified composition at lower temperatures. When the ceramifiable composition includes a non-reactive organic polymer, higher temperatures are generally employed to form the ceramified composition, e.g., the ceramifiable composition can be configured to form a self-supporting structure upon heating it to a temperature in a range of from about 650 °C to about 1000 °C or from about 650 °C to about 900 °C to form a self- supporting structure. In either case, self-supporting structures can be formed in a relatively short period of time, e.g., on or after 300 seconds.EXAMPLES

[0040] The following examples are intended to further illustrate certain aspects of the subject technology and are not limiting in nature. Those skilled in the art will recognize, or be able to ascertain, using no more than routine experimentation, numerous equivalents to the specific substances and procedures described herein.

[0041] Samples of ceramifiable compositions according to the present disclosure were prepared by mixing all raw materials in a twin screw extruder (18 or 27 mm, L / D = 60). Polymers or polymer blends were fed at the main feed (barrel 1). The ceramifiable additives (silica and sodium carbonate for these experiments) and other powder additives (antioxidant, flame retardant, etc.) if any, were pre-mixed and side-fed after the first mixing zone (barrel 4).The glass fiber was side-fed after the second mixing zone (barrel 7). The extruder screw rotated at 350 rpm. Typical extrusion temperature profile of the selected polymer or polymer blend was used. The extrudate was cooled on the belt and pelletized, for later injection or compression molding.

[0042] Example 1

[0043] A number of ceramifiable compositions were prepared and are denoted Compositions A and B in Table 1 below. The ceramifiable compositions included polypropylene (PP) as the organic polymer, glass fibers, an amorphous silica and sodium carbonate as the alkaline compound. An antioxidant and wollastonite were also included in certain compositions. The flexural strength of the ceramic structure, which was formed after exposing the compositions to elevated temperatures as described in the ceramification test below, was determined after cooling the samples to room temperature. It was observed that both samples (Compositions A and B) showed good thermal shock resistance, where no cracks were observed during the cooling to room temperature.

[0044] Comparative Examples

[0045] Comparative compositions were also prepared using the same apparatus and process as described above. The comparative compositions C*-E* are provided in Table 1 below.Table 11maleic anhydride grafted PP2no cohesive structure formed3could not test due to excessive shrinkage4percentage change in length, negative number indicates shrinkage, positive number indicates expansion5percentage change in width, negative number indicates shrinkage, positive number indicates expansion6percentage change in height, negative number indicates shrinkage, positive number indicates expansion7percentage change in total volume, negative number indicates shrinkage, positive number indicates expansion

[0046] Ceramification Test

[0047] The ceramification test was carried out by placing a sample composition in a preheated muffle furnace at temperatures of 350 °C, 650 °C, and 1000 °C for 10 minutes, then taken out of the muffle furnace and air-cooled. The nominal size of the sample (length x width x height) was 25.4 x 12.7 x 3.2 mm.

[0048] Flexural strength of ceramic structure

[0049] The flexural strength of the ceramic structure formed after exposure to elevated temperatures is determined by three-point bend test. A span length of 18 mm and cross head speed of 0.2 mm / minute were used.

[0050] Comparative composition C*, which contains the ceramifiable additives (silica and sodium carbonate) but no glass fiber could not form a cohesive ceramic structure after exposure to elevated temperatures. After exposure to elevated temperatures, only a thin friable crust remained for comparative composition C. This indicates that glass fiber serves as a refractory building block and was critical to the formation of a stable ceramic structure. The comparative compositions D* and E* contained glass fiber but lacked the amorphous silica and the alkaline compound sodium carbonate. While comparative compositions D* and E* could form a cohesive structure after exposure to elevated temperature of 1000 °C, both samples shrank more than 50%, and flexural strength could not be measured. At 650 °C, both samples failed to form a cohesive structure, disintegrating upon gentle handling.

[0051] In contrast to the comparative compositions, sample prepared from composition A formed a strong ceramic structure, having flex strength exceeding 75 psi after exposure to elevated temperatures above 650 °C. Furthermore, the sample also exhibited very little shrinkage (<5%). Even at lower temperature of 350 °C, the ceramic structure formed achieved a flex strength of 58 psi. It is believed that the free silanol groups on the surface of the silicawere able to react with free silanol groups on other silica and / or glass fiber surfaces to quickly build-up a silicate glass network that prevents the glass fiber in the compositions from shrinking at temperatures above its softening point. It is believed that the alkaline compound, sodium carbonate, can facilitate the silanol condensation reaction. Composition B also demonstrated the formation of robust ceramic structure, exhibiting flexural strength exceeding 75 psi following exposure to elevated temperature of 1000 °C. At a lower temperature of 650 °C, a cohesive yet significantly weaker structure was formed, as evidenced in the reduced flexural strength. It is believed that at a constant level of ceramifiable additives, an increased content of glass fiber is needed to enhance the mechanical strength of the resulting ceramic structure.

[0052] Example 2

[0053] Formation of self-supporting structure that will not undergo significant flow or deformation during a fire is a consideration for a flame barrier material. A number of compositions (see Table 2 below) were prepared and tested according to UL 94 flammability test. While samples were not able to achieve a UL 94 V0 rating, sample with ceramifiable additives (silica and sodium carbonate) (composition F) did not drip during the test. The comparative samples without ceramifiable additives (compositions G* and H*) dripped during the test. This indicates that the ceramifiable additives enable samples to form a ceramic structure that could support its own weight and resist flow induced deformation.Table 21maleic anhydride grafted PP.

[0054] Only certain features and aspects of the present disclosure and examples of their versatility are shown and described in the present disclosure. It is to be understood that the technology disclosed herein is capable of use in various other combinations and environmentsand is capable of changes or modifications. Thus, for example, those skilled in the art will recognize, or be able to ascertain, using no more than routine experimentation, numerous equivalents to the specific substances, procedures and arrangements described herein. Such equivalents are considered to be within the scope of the invention and are covered by the following claims.

Claims

WHAT IS CLAIMED IS:

1. A ceramifiable composition, comprising:(a) an organic polymer, wherein the organic polymer comprises a non-reactive polymer;(b) a silica;(c) an alkaline compound; and(d) from about 30 wt% to about 80 wt% of a glass fiber, based on a total weight of the ceramifiable composition.

2. The ceramifiable composition of claim 1, wherein the composition comprises the organic polymer in a range of from about 20 wt% to about 50 wt% based on the total weight of the ceramifiable composition.

3. The ceramifiable composition of claim 1, wherein the non-reactive polymer comprises a polyolefin.

4. The ceramifiable composition of claim 1, wherein the non-reactive polymer comprises a polyethylene, polypropylene, or any combination thereof.

5. The ceramifiable composition of any one of the preceding claims, wherein the silica comprises fumed silica, silica gel, precipitated silica, amorphous silica, or any combination thereof.

6. The ceramifiable composition of any one of the preceding claims, wherein the silica comprises silica gel.

7. The ceramifiable composition of any one of the preceding claims, wherein the silica has a diameter in a range of from about 3 nm to about 150 nm.

8. The ceramifiable composition of any one of the preceding claims, wherein the composition comprises silica in a range of from about 4 wt% to about 15 wt%, based on the total weight of the ceramifiable composition.

9. The ceramifiable composition of any one of the preceding claims, wherein the alkaline compound comprises sodium carbonate, calcium carbonate, potassium carbonate, hydrotalcite, or any combination thereof.

10. The ceramifiable composition of any one of the preceding claims, wherein the composition comprises the alkaline compound in a range of from about 2 wt% to about 10 wt%, based on the total weight of the ceramifiable composition.

11. The ceramifiable composition of any one of the preceding claims, wherein a molar ratio of silica to alkaline compound is from about 1.5: 1 to about 6: 1.

12. The ceramifiable composition of any one of the preceding claims, wherein the glass fiber comprises E-glass, A-glass, C-glass, D-glass, S-glass, ECR-glass, AR glass, R-glass, or any combination thereof.

13. The ceramifiable composition of claim 12, wherein the glass fiber has an average length in a range of from about 0.3 cm to about 1.5 cm.

14. The ceramifiable composition of any one of the preceding claims, wherein the glass fiber has a softening point of greater than or equal to 700° C.

15. The ceramifiable composition of any one of the preceding claims, wherein the glass fiber comprises glass fiber reinforced long fiber thermoplastic.

16. The ceramifiable composition of claim 15, wherein the average length of glass fiber in glass fiber reinforced long fiber thermoplastic is in the range of 5 mm to 25 mm.

17. The ceramifiable composition of any one of the preceding claims, wherein the ceramifiable composition further comprises, based on the total weight of the composition, greater than 0 wt% to about 20 wt% additives.

18. The ceramifiable composition of claim 17, wherein the additives comprise metal silicates, calcium silicates, magnesium silicates, aluminum silicates, wollastonite, sepiolite, or any combination thereof.

19. The ceramifiable composition of claim 17, wherein the additives comprise metal silicates.

20. The ceramifiable composition of any one of the preceding claims, wherein the ceramifiable composition is configured to form a self-supporting structure upon exposure to a temperature in a range of from about 650 °C to about 1000 °C.

21. The ceramifiable composition of any one of the preceding claims, wherein the ceramifiable composition is configured to form a self-supporting structure upon exposure to a temperature in a range of from about 650 °C to about 900 °C.

22. The ceramifiable composition any one of the preceding claims, wherein the ceramifiable composition is configured to form a self-supporting structure upon exposure to a temperature in a range of from about 650 °C to about 850 °C.

23. The ceramifiable composition of any one of claims 18-20, wherein the composition is configured to form the self-supporting structure upon exposure to the temperature on or after 300 seconds.

24. The ceramifiable composition of any one of the preceding claims, wherein the silica has a surface and free silanol groups located on the surface.

25. A molded article comprising, the ceramifiable composition of any one of the preceding claims.

26. A battery enclosure comprising, the ceramifiable composition of any one of the preceding claims.

27. A method of preparing a ceramified composition comprising: providing a ceramifiable composition, comprising:(a) a non-reactive polymer;(b) a silica;(c) an alkaline compound; and(d) from about 40 wt% to about 70 wt% of a glass fiber, based on a total weight of the ceramifiable composition; and heating the ceramifiable composition to a temperature of at least about 650 °C to form a self-supporting structure.

28. The method of claim 27, wherein the ceramifiable composition is heated to a temperature of from about 650 °C to about 1,000 °C.

29. The method of claim 27, wherein the ceramifiable composition is heated to a temperature of from about 650 °C to about 900 °C.

30. The method of claim 27, wherein the ceramifiable composition is heated to a temperature of from about 650 °C to about 850 °C.

31. A method of preparing a ceramifiable composition comprising:Combining: (a) a non-reactive polymer; (b) a silica; (c) an alkaline compound; and (d) from about 40 wt% to about 70 wt% of a glass fiber, based on a total weight of the ceramifiable composition, to form the ceramifiable composition.

Citation Information

Patent Citations

  • Battery Assembly, Ceramifiable Composition, and Method of Making the Same

    US20230369694A1

  • Thermally insulative compositions for coating a vehicle

    US20240247158A1