EP2809626A1 - Glass compositions and fibers made therefrom - Google Patents
Glass compositions and fibers made therefromInfo
- Publication number
- EP2809626A1 EP2809626A1 EP13703983.0A EP13703983A EP2809626A1 EP 2809626 A1 EP2809626 A1 EP 2809626A1 EP 13703983 A EP13703983 A EP 13703983A EP 2809626 A1 EP2809626 A1 EP 2809626A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- weight percent
- glass
- composition
- glass fibers
- present
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
- 239000000203 mixture Substances 0.000 title claims abstract description 448
- 239000011521 glass Substances 0.000 title claims abstract description 337
- 239000000835 fiber Substances 0.000 title claims description 70
- 239000003365 glass fiber Substances 0.000 claims abstract description 176
- 229910052500 inorganic mineral Inorganic materials 0.000 claims abstract description 112
- 239000011707 mineral Substances 0.000 claims abstract description 112
- 239000010451 perlite Substances 0.000 claims abstract description 47
- 235000019362 perlite Nutrition 0.000 claims abstract description 47
- 239000000463 material Substances 0.000 claims abstract description 29
- 239000002131 composite material Substances 0.000 claims abstract description 23
- 239000008262 pumice Substances 0.000 claims abstract description 15
- VYPSYNLAJGMNEJ-UHFFFAOYSA-N silicon dioxide Inorganic materials O=[Si]=O VYPSYNLAJGMNEJ-UHFFFAOYSA-N 0.000 claims description 73
- 229910052681 coesite Inorganic materials 0.000 claims description 67
- 229910052906 cristobalite Inorganic materials 0.000 claims description 67
- 229910052682 stishovite Inorganic materials 0.000 claims description 67
- 229910052905 tridymite Inorganic materials 0.000 claims description 67
- PNEYBMLMFCGWSK-UHFFFAOYSA-N aluminium oxide Inorganic materials [O-2].[O-2].[O-2].[Al+3].[Al+3] PNEYBMLMFCGWSK-UHFFFAOYSA-N 0.000 claims description 63
- 229910000272 alkali metal oxide Inorganic materials 0.000 claims description 55
- 238000000034 method Methods 0.000 claims description 31
- 150000004706 metal oxides Chemical class 0.000 claims description 30
- DGAQECJNVWCQMB-PUAWFVPOSA-M Ilexoside XXIX Chemical compound C[C@@H]1CC[C@@]2(CC[C@@]3(C(=CC[C@H]4[C@]3(CC[C@@H]5[C@@]4(CC[C@@H](C5(C)C)OS(=O)(=O)[O-])C)C)[C@@H]2[C@]1(C)O)C)C(=O)O[C@H]6[C@@H]([C@H]([C@@H]([C@H](O6)CO)O)O)O.[Na+] DGAQECJNVWCQMB-PUAWFVPOSA-M 0.000 claims description 25
- 239000011734 sodium Substances 0.000 claims description 25
- 229910052708 sodium Inorganic materials 0.000 claims description 24
- 229910052782 aluminium Inorganic materials 0.000 claims description 21
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 claims description 21
- 229910044991 metal oxide Inorganic materials 0.000 claims description 21
- 239000011152 fibreglass Substances 0.000 claims description 19
- 229910052710 silicon Inorganic materials 0.000 claims description 19
- 239000010703 silicon Substances 0.000 claims description 19
- 239000000155 melt Substances 0.000 claims description 18
- 239000006060 molten glass Substances 0.000 claims description 18
- 229920001169 thermoplastic Polymers 0.000 claims description 10
- 238000010438 heat treatment Methods 0.000 claims description 6
- 239000004745 nonwoven fabric Substances 0.000 claims description 6
- 239000002759 woven fabric Substances 0.000 claims description 5
- 229920001187 thermosetting polymer Polymers 0.000 claims description 4
- 239000004634 thermosetting polymer Substances 0.000 claims description 2
- 235000010755 mineral Nutrition 0.000 description 101
- 239000000047 product Substances 0.000 description 53
- 230000002787 reinforcement Effects 0.000 description 27
- NUJOXMJBOLGQSY-UHFFFAOYSA-N manganese dioxide Inorganic materials O=[Mn]=O NUJOXMJBOLGQSY-UHFFFAOYSA-N 0.000 description 22
- CDBYLPFSWZWCQE-UHFFFAOYSA-L Sodium Carbonate Chemical compound [Na+].[Na+].[O-]C([O-])=O CDBYLPFSWZWCQE-UHFFFAOYSA-L 0.000 description 21
- BASFCYQUMIYNBI-UHFFFAOYSA-N platinum Chemical compound [Pt] BASFCYQUMIYNBI-UHFFFAOYSA-N 0.000 description 21
- 238000012360 testing method Methods 0.000 description 20
- 238000005260 corrosion Methods 0.000 description 18
- 230000007797 corrosion Effects 0.000 description 18
- 238000004519 manufacturing process Methods 0.000 description 18
- 230000004580 weight loss Effects 0.000 description 18
- XUIMIQQOPSSXEZ-UHFFFAOYSA-N Silicon Chemical compound [Si] XUIMIQQOPSSXEZ-UHFFFAOYSA-N 0.000 description 17
- -1 nacrite Chemical compound 0.000 description 17
- 229920005989 resin Polymers 0.000 description 16
- 239000011347 resin Substances 0.000 description 16
- 238000004513 sizing Methods 0.000 description 15
- JEIPFZHSYJVQDO-UHFFFAOYSA-N iron(III) oxide Inorganic materials O=[Fe]O[Fe]=O JEIPFZHSYJVQDO-UHFFFAOYSA-N 0.000 description 14
- 235000019738 Limestone Nutrition 0.000 description 13
- 239000006028 limestone Substances 0.000 description 13
- HEMHJVSKTPXQMS-UHFFFAOYSA-M Sodium hydroxide Chemical compound [OH-].[Na+] HEMHJVSKTPXQMS-UHFFFAOYSA-M 0.000 description 12
- QAOWNCQODCNURD-UHFFFAOYSA-N Sulfuric acid Chemical compound OS(O)(=O)=O QAOWNCQODCNURD-UHFFFAOYSA-N 0.000 description 12
- KRKNYBCHXYNGOX-UHFFFAOYSA-N citric acid Chemical compound OC(=O)CC(O)(C(O)=O)CC(O)=O KRKNYBCHXYNGOX-UHFFFAOYSA-N 0.000 description 12
- 239000010459 dolomite Substances 0.000 description 10
- 229910000514 dolomite Inorganic materials 0.000 description 10
- 230000008569 process Effects 0.000 description 10
- XEEYBQQBJWHFJM-UHFFFAOYSA-N Iron Chemical compound [Fe] XEEYBQQBJWHFJM-UHFFFAOYSA-N 0.000 description 9
- 239000000156 glass melt Substances 0.000 description 9
- 238000005516 engineering process Methods 0.000 description 8
- 238000005259 measurement Methods 0.000 description 8
- 229910052697 platinum Inorganic materials 0.000 description 8
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 8
- 239000002253 acid Substances 0.000 description 7
- 239000007795 chemical reaction product Substances 0.000 description 6
- 238000011143 downstream manufacturing Methods 0.000 description 6
- 230000003301 hydrolyzing effect Effects 0.000 description 6
- 239000004615 ingredient Substances 0.000 description 6
- 229920001707 polybutylene terephthalate Polymers 0.000 description 6
- 239000004416 thermosoftening plastic Substances 0.000 description 6
- 238000006243 chemical reaction Methods 0.000 description 5
- 239000003822 epoxy resin Substances 0.000 description 5
- 239000004744 fabric Substances 0.000 description 5
- 238000002844 melting Methods 0.000 description 5
- 230000008018 melting Effects 0.000 description 5
- 229920000647 polyepoxide Polymers 0.000 description 5
- 229920000728 polyester Polymers 0.000 description 5
- 238000012545 processing Methods 0.000 description 5
- 235000017550 sodium carbonate Nutrition 0.000 description 5
- 229910000029 sodium carbonate Inorganic materials 0.000 description 5
- 229910016287 MxOy Inorganic materials 0.000 description 4
- 230000002378 acidificating effect Effects 0.000 description 4
- 229910052783 alkali metal Inorganic materials 0.000 description 4
- 150000001340 alkali metals Chemical class 0.000 description 4
- 238000004455 differential thermal analysis Methods 0.000 description 4
- 239000006066 glass batch Substances 0.000 description 4
- LNEPOXFFQSENCJ-UHFFFAOYSA-N haloperidol Chemical compound C1CC(O)(C=2C=CC(Cl)=CC=2)CCN1CCCC(=O)C1=CC=C(F)C=C1 LNEPOXFFQSENCJ-UHFFFAOYSA-N 0.000 description 4
- 230000007062 hydrolysis Effects 0.000 description 4
- 238000006460 hydrolysis reaction Methods 0.000 description 4
- 229910052742 iron Inorganic materials 0.000 description 4
- NLYAJNPCOHFWQQ-UHFFFAOYSA-N kaolin Chemical compound O.O.O=[Al]O[Si](=O)O[Si](=O)O[Al]=O NLYAJNPCOHFWQQ-UHFFFAOYSA-N 0.000 description 4
- 229910052622 kaolinite Inorganic materials 0.000 description 4
- 239000007788 liquid Substances 0.000 description 4
- 230000009467 reduction Effects 0.000 description 4
- 238000007670 refining Methods 0.000 description 4
- 235000011149 sulphuric acid Nutrition 0.000 description 4
- 229920001567 vinyl ester resin Polymers 0.000 description 4
- 238000009941 weaving Methods 0.000 description 4
- LYCAIKOWRPUZTN-UHFFFAOYSA-N Ethylene glycol Chemical compound OCCO LYCAIKOWRPUZTN-UHFFFAOYSA-N 0.000 description 3
- 239000004743 Polypropylene Substances 0.000 description 3
- 229910000323 aluminium silicate Inorganic materials 0.000 description 3
- HPTYUNKZVDYXLP-UHFFFAOYSA-N aluminum;trihydroxy(trihydroxysilyloxy)silane;hydrate Chemical compound O.[Al].[Al].O[Si](O)(O)O[Si](O)(O)O HPTYUNKZVDYXLP-UHFFFAOYSA-N 0.000 description 3
- 230000015572 biosynthetic process Effects 0.000 description 3
- 229910052593 corundum Inorganic materials 0.000 description 3
- GUJOJGAPFQRJSV-UHFFFAOYSA-N dialuminum;dioxosilane;oxygen(2-);hydrate Chemical compound O.[O-2].[O-2].[O-2].[Al+3].[Al+3].O=[Si]=O.O=[Si]=O.O=[Si]=O.O=[Si]=O GUJOJGAPFQRJSV-UHFFFAOYSA-N 0.000 description 3
- 229910001649 dickite Inorganic materials 0.000 description 3
- 229910052621 halloysite Inorganic materials 0.000 description 3
- 238000002386 leaching Methods 0.000 description 3
- 229910052901 montmorillonite Inorganic materials 0.000 description 3
- 229920001155 polypropylene Polymers 0.000 description 3
- 239000002994 raw material Substances 0.000 description 3
- 229910052604 silicate mineral Inorganic materials 0.000 description 3
- 239000000377 silicon dioxide Substances 0.000 description 3
- 239000007787 solid Substances 0.000 description 3
- 238000007619 statistical method Methods 0.000 description 3
- 229930040373 Paraformaldehyde Natural products 0.000 description 2
- 239000004698 Polyethylene Substances 0.000 description 2
- 239000004734 Polyphenylene sulfide Substances 0.000 description 2
- 238000010521 absorption reaction Methods 0.000 description 2
- 238000000862 absorption spectrum Methods 0.000 description 2
- 229910001491 alkali aluminosilicate Inorganic materials 0.000 description 2
- 230000008901 benefit Effects 0.000 description 2
- 239000011230 binding agent Substances 0.000 description 2
- 239000004566 building material Substances 0.000 description 2
- 239000004568 cement Substances 0.000 description 2
- 230000008859 change Effects 0.000 description 2
- 239000004927 clay Substances 0.000 description 2
- 150000001875 compounds Chemical class 0.000 description 2
- 238000001816 cooling Methods 0.000 description 2
- 238000007380 fibre production Methods 0.000 description 2
- 238000009730 filament winding Methods 0.000 description 2
- 238000001914 filtration Methods 0.000 description 2
- 238000011835 investigation Methods 0.000 description 2
- 238000010309 melting process Methods 0.000 description 2
- 239000005332 obsidian Substances 0.000 description 2
- 238000013001 point bending Methods 0.000 description 2
- 229920006122 polyamide resin Polymers 0.000 description 2
- 229920000573 polyethylene Polymers 0.000 description 2
- 229920000642 polymer Polymers 0.000 description 2
- 229920006324 polyoxymethylene Polymers 0.000 description 2
- 229920000069 polyphenylene sulfide Polymers 0.000 description 2
- 239000000843 powder Substances 0.000 description 2
- 230000003014 reinforcing effect Effects 0.000 description 2
- 239000010865 sewage Substances 0.000 description 2
- 239000002002 slurry Substances 0.000 description 2
- 229920005992 thermoplastic resin Polymers 0.000 description 2
- 229920006337 unsaturated polyester resin Polymers 0.000 description 2
- VHUUQVKOLVNVRT-UHFFFAOYSA-N Ammonium hydroxide Chemical compound [NH4+].[OH-] VHUUQVKOLVNVRT-UHFFFAOYSA-N 0.000 description 1
- ZOXJGFHDIHLPTG-UHFFFAOYSA-N Boron Chemical compound [B] ZOXJGFHDIHLPTG-UHFFFAOYSA-N 0.000 description 1
- 230000005483 Hooke's law Effects 0.000 description 1
- 239000004354 Hydroxyethyl cellulose Substances 0.000 description 1
- 229920000663 Hydroxyethyl cellulose Polymers 0.000 description 1
- 229920001431 Long-fiber-reinforced thermoplastic Polymers 0.000 description 1
- ZLMJMSJWJFRBEC-UHFFFAOYSA-N Potassium Chemical compound [K] ZLMJMSJWJFRBEC-UHFFFAOYSA-N 0.000 description 1
- NPYPAHLBTDXSSS-UHFFFAOYSA-N Potassium ion Chemical compound [K+] NPYPAHLBTDXSSS-UHFFFAOYSA-N 0.000 description 1
- 229910019017 PtRh Inorganic materials 0.000 description 1
- 229920001807 Urea-formaldehyde Polymers 0.000 description 1
- 238000002835 absorbance Methods 0.000 description 1
- 150000007513 acids Chemical class 0.000 description 1
- 239000000654 additive Substances 0.000 description 1
- 239000000853 adhesive Substances 0.000 description 1
- 230000001070 adhesive effect Effects 0.000 description 1
- 229910045601 alloy Inorganic materials 0.000 description 1
- 239000000956 alloy Substances 0.000 description 1
- 239000000908 ammonium hydroxide Substances 0.000 description 1
- 238000005452 bending Methods 0.000 description 1
- 238000009835 boiling Methods 0.000 description 1
- 229910052796 boron Inorganic materials 0.000 description 1
- 125000002091 cationic group Chemical group 0.000 description 1
- VNNRSPGTAMTISX-UHFFFAOYSA-N chromium nickel Chemical compound [Cr].[Ni] VNNRSPGTAMTISX-UHFFFAOYSA-N 0.000 description 1
- 229910052570 clay Inorganic materials 0.000 description 1
- 229920006026 co-polymeric resin Polymers 0.000 description 1
- 239000008199 coating composition Substances 0.000 description 1
- 239000000470 constituent Substances 0.000 description 1
- 238000007796 conventional method Methods 0.000 description 1
- 230000002596 correlated effect Effects 0.000 description 1
- 239000010431 corundum Substances 0.000 description 1
- 239000002178 crystalline material Substances 0.000 description 1
- 239000006063 cullet Substances 0.000 description 1
- 238000009826 distribution Methods 0.000 description 1
- 239000003995 emulsifying agent Substances 0.000 description 1
- 239000010419 fine particle Substances 0.000 description 1
- 230000005484 gravity Effects 0.000 description 1
- 235000019447 hydroxyethyl cellulose Nutrition 0.000 description 1
- 150000002500 ions Chemical class 0.000 description 1
- 229920005610 lignin Polymers 0.000 description 1
- 238000010128 melt processing Methods 0.000 description 1
- 239000011490 mineral wool Substances 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 238000000465 moulding Methods 0.000 description 1
- 229910001120 nichrome Inorganic materials 0.000 description 1
- 239000013307 optical fiber Substances 0.000 description 1
- 239000003002 pH adjusting agent Substances 0.000 description 1
- 239000002245 particle Substances 0.000 description 1
- 229920005668 polycarbonate resin Polymers 0.000 description 1
- 239000004431 polycarbonate resin Substances 0.000 description 1
- 229920001225 polyester resin Polymers 0.000 description 1
- 239000004645 polyester resin Substances 0.000 description 1
- 229920000139 polyethylene terephthalate Polymers 0.000 description 1
- 239000005020 polyethylene terephthalate Substances 0.000 description 1
- ODGAOXROABLFNM-UHFFFAOYSA-N polynoxylin Chemical compound O=C.NC(N)=O ODGAOXROABLFNM-UHFFFAOYSA-N 0.000 description 1
- 229910052700 potassium Inorganic materials 0.000 description 1
- 239000011591 potassium Substances 0.000 description 1
- 229910001414 potassium ion Inorganic materials 0.000 description 1
- 230000035945 sensitivity Effects 0.000 description 1
- 229910001415 sodium ion Inorganic materials 0.000 description 1
- 238000005507 spraying Methods 0.000 description 1
- 229920006230 thermoplastic polyester resin Polymers 0.000 description 1
- 239000002562 thickening agent Substances 0.000 description 1
- 238000010792 warming Methods 0.000 description 1
- 239000000080 wetting agent Substances 0.000 description 1
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B32—LAYERED PRODUCTS
- B32B—LAYERED PRODUCTS, i.e. PRODUCTS BUILT-UP OF STRATA OF FLAT OR NON-FLAT, e.g. CELLULAR OR HONEYCOMB, FORM
- B32B17/00—Layered products essentially comprising sheet glass, or glass, slag, or like fibres
- B32B17/02—Layered products essentially comprising sheet glass, or glass, slag, or like fibres in the form of fibres or filaments
- B32B17/04—Layered products essentially comprising sheet glass, or glass, slag, or like fibres in the form of fibres or filaments bonded with or embedded in a plastic substance
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C13/00—Fibre or filament compositions
- C03C13/006—Glass-ceramics fibres
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C1/00—Ingredients generally applicable to manufacture of glasses, glazes, or vitreous enamels
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C13/00—Fibre or filament compositions
- C03C13/001—Alkali-resistant fibres
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C13/00—Fibre or filament compositions
- C03C13/001—Alkali-resistant fibres
- C03C13/002—Alkali-resistant fibres containing zirconium
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C13/00—Fibre or filament compositions
- C03C13/06—Mineral fibres, e.g. slag wool, mineral wool, rock wool
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/04—Glass compositions containing silica
- C03C3/076—Glass compositions containing silica with 40% to 90% silica, by weight
- C03C3/083—Glass compositions containing silica with 40% to 90% silica, by weight containing aluminium oxide or an iron compound
- C03C3/085—Glass compositions containing silica with 40% to 90% silica, by weight containing aluminium oxide or an iron compound containing an oxide of a divalent metal
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/04—Glass compositions containing silica
- C03C3/076—Glass compositions containing silica with 40% to 90% silica, by weight
- C03C3/083—Glass compositions containing silica with 40% to 90% silica, by weight containing aluminium oxide or an iron compound
- C03C3/085—Glass compositions containing silica with 40% to 90% silica, by weight containing aluminium oxide or an iron compound containing an oxide of a divalent metal
- C03C3/087—Glass compositions containing silica with 40% to 90% silica, by weight containing aluminium oxide or an iron compound containing an oxide of a divalent metal containing calcium oxide, e.g. common sheet or container glass
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/04—Glass compositions containing silica
- C03C3/076—Glass compositions containing silica with 40% to 90% silica, by weight
- C03C3/095—Glass compositions containing silica with 40% to 90% silica, by weight containing rare earths
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C3/00—Glass compositions
- C03C3/04—Glass compositions containing silica
- C03C3/076—Glass compositions containing silica with 40% to 90% silica, by weight
- C03C3/11—Glass compositions containing silica with 40% to 90% silica, by weight containing halogen or nitrogen
- C03C3/112—Glass compositions containing silica with 40% to 90% silica, by weight containing halogen or nitrogen containing fluorine
-
- C—CHEMISTRY; METALLURGY
- C03—GLASS; MINERAL OR SLAG WOOL
- C03C—CHEMICAL COMPOSITION OF GLASSES, GLAZES OR VITREOUS ENAMELS; SURFACE TREATMENT OF GLASS; SURFACE TREATMENT OF FIBRES OR FILAMENTS MADE FROM GLASS, MINERALS OR SLAGS; JOINING GLASS TO GLASS OR OTHER MATERIALS
- C03C4/00—Compositions for glass with special properties
- C03C4/20—Compositions for glass with special properties for chemical resistant glass
-
- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08J—WORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
- C08J5/00—Manufacture of articles or shaped materials containing macromolecular substances
- C08J5/04—Reinforcing macromolecular compounds with loose or coherent fibrous material
- C08J5/0405—Reinforcing macromolecular compounds with loose or coherent fibrous material with inorganic fibres
- C08J5/043—Reinforcing macromolecular compounds with loose or coherent fibrous material with inorganic fibres with glass fibres
-
- D—TEXTILES; PAPER
- D03—WEAVING
- D03D—WOVEN FABRICS; METHODS OF WEAVING; LOOMS
- D03D15/00—Woven fabrics characterised by the material, structure or properties of the fibres, filaments, yarns, threads or other warp or weft elements used
- D03D15/20—Woven fabrics characterised by the material, structure or properties of the fibres, filaments, yarns, threads or other warp or weft elements used characterised by the material of the fibres or filaments constituting the yarns or threads
- D03D15/242—Woven fabrics characterised by the material, structure or properties of the fibres, filaments, yarns, threads or other warp or weft elements used characterised by the material of the fibres or filaments constituting the yarns or threads inorganic, e.g. basalt
- D03D15/267—Glass
Definitions
- the present invention relates to glass compositions and, in particular, to glass compositions for forming fibers.
- E-glass and C-glass types comprise melting batch materials consisting primarily of minerals that are crystalline or substantially crystalline in nature. Conversion of these crystalline raw materials to a glassy state requires significant energy to be applied during the melting process. In view of the significant energy investment accompanying crystalline materials, glassy or amorphous minerals have sometimes been used in the production of glass compositions. A glassy or amorphous structure can reduce the amount of energy consumed in the melting process. Glassy minerals such as basalt and obsidian, for example, have been used as significant portions of feedstock for the production of mineral wool.
- Perlite (and its expanded form pumice) is a mineral that naturally occurs in the glassy form. Perlite has not been extensively used as a raw material in glass production, partially because of its compositional parameters.
- the major constituents of perlite are S1O2, AI2O 3 and alkali oxide (R2O).
- S1O2 is typically present in perlite in an amount between about 70 and about 75 weight percent.
- AI2O 3 is typically present in perlite in an amount between about 12 and about 15 weight percent.
- Alkali oxides are typically present in perlite in an amount between about 3 and about 9 weight percent.
- E-glass compositions for example, are well-suited for forming glass fibers. As a result, the majority of glass fibers used in reinforcement applications, such as polymeric reinforcement applications, are formed from E-glass compositions. E-glass compositions generally limit the amount alkali oxides to no more than 2 percent. The high alkali oxide content of perlite is inconsistent with this limitation and renders perlite largely unsuitable for use in batch compositions for the production of E-glass compositions.
- C-glass compositions have also been used to form fibers resistant to corrosion in acidic environments.
- C-glass compositions comprise a high Si0 2 content and a low AI2O 3 content ( ⁇ 8 wt. %).
- the high AI2O 3 content of perlite generally precludes use of perlite in batch compositions for the production of C- glass compositions.
- the present invention provides glass compositions formed from batch compositions comprising significant amounts of one or more glassy minerals, including perlite and/or pumice. In another aspect, the present invention provides glass fibers formed from glass compositions described herein.
- the present invention provides a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the glassy mineral comprising a combination of S1O2 and AI2O 3 is perlite, pumice or mixtures thereof.
- the present invention provides a glass composition formed from a batch composition comprising at least 10 weight percent of a glassy mineral, and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O 2 and AI 2 O 3 in an amount of at least 80 weight percent.
- the glassy mineral comprising a combination of S1O 2 and AI 2 O 3 is perlite, pumice or mixtures thereof.
- the batch comprises at least 10 weight percent of a sodium source.
- a sodium source in some embodiments, comprises sodium carbonate (soda).
- the batch can comprise an additional source or sources of silicon and/or aluminum.
- the batch can comprise at least 10 weight percent of a source of both silicon and aluminum.
- the source of both silicon and aluminum is an aluminum-containing silicate mineral, such kaolinite, dickite, halloysite, nacrite, montmorillonite, or alkali metal aluminosilicates.
- the batch comprises at least 10 weight percent of a source of silicon.
- the batch comprises at least 10 weight percent of a source of aluminum.
- the present invention provides a glass composition comprising 53-64 weight percent S1O 2 , 8-12 weight percent AI 2 O 3 , 8.5-18 weight percent alkali oxide (R 2 O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R 2 O/RO ranging from about 0.15 to about 1.5.
- the glass composition includes 10-12 weight percent AI 2 O 3 .
- the present invention provides a glass composition comprising 53-64 weight percent S1O 2 , 8-12 weight percent AI 2 O 3 , 8.5-18 weight percent alkali oxide (R 2 O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R 2 O/RO ranging from about 0.15 to about 1.7.
- the glass composition includes 10-12 weight percent AI 2 O 3 .
- a R 2 O component comprises a 2 0, K 2 O or L1 2 O or mixtures thereof.
- a glass composition of the present invention comprises a 2 0 in an amount ranging from 6.5 weight percent to about 16 weight percent.
- a glass composition in some embodiments, comprises K 2 O in an amount ranging from 0.5 weight percent to 5 weight percent, from 0.5 weight percent to 4 weigh percent in some
- a glass composition comprises Li 2 0 in an amount up to 2 weight percent.
- a RO component comprises MgO, CaO, SrO, BaO, or ZnO or mixtures thereof.
- a RO component in some embodiments, is present in a glass composition of the present invention in an amount ranging from 7 weight percent to 31 weight percent.
- a glass composition comprises MgO in an amount up to about 5 weight percent.
- a glass composition in some embodiments, comprises CaO in an amount ranging from 7 weight percent to 26 weight percent.
- a glass composition comprises ZnO in an amount up to 3 weight percent.
- Glass compositions of the present invention comprise metal oxides in addition to RO including, but not limited to, Zr0 2 , Ti0 2 , Mn0 2 or La 2 03 or mixtures thereof.
- the present invention provides a glass composition comprising 56-63 weight percent S1O2, 9-12 weight percent AI2O 3 , 12-17 weight percent RO (CaO + MgO), 12-14 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0,
- the present invention provides a glass composition comprising 60-64 weight percent S1O2, 9-12 weight percent AI2O 3 , 7-15 weight percent RO (CaO + MgO), 13-15.5 weight percent R 2 0 ( a 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 03.
- the present invention provides a glass composition comprising 55-63 weight percent S1O2, 9-14 weight percent AI2O 3 , 11-16.5 weight percent RO (CaO + MgO), 14-17 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 03.
- glass compositions of the present invention have an Fe 2 03 content of less than 1 weight percent. Glass compositions, in other embodiments, can comprise less than 0.7 weight percent Fe 2 03.
- Glass compositions are fiberizable.
- glass compositions of the present invention have a forming temperature (Tp) ranging from 1120°C to about 1300°C.
- Tp forming temperature
- the term "forming temperature” means the temperature at which the glass composition has a viscosity of 1000 poise (or "log 3 temperature”).
- glass compositions of the present invention are fiberizable at the forming temperature.
- glass compositions of the present invention have a liquidus temperature (T L ) ranging from about 1020°C to about 1240°C.
- the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention ranges from about 45°C to about 165°C. In some embodiments, the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention is at least 65°C.
- glass compositions of the present invention have a molten density at the forming temperature ranging from 2.35 g/cm 3 to 2.40 g/cm 3 . In some embodiments, glass composition of the present invention have molten density ranging from 2.36 g/cm 3 to 2.38 g/cm 3 .
- Glass compositions of the present invention in some embodiments, have a molten surface tension at the forming temperature ranging from about 390 x 10 "3 N/m to 400 x 10 "3 N/m.
- glass fibers can be formed from some embodiments of the glass compositions of the present invention.
- fibers formed from glass compositions of the present invention have a modulus (E) ranging from about 53 GPa to about 65 GPa.
- fibers formed from glass compositions of the present invention have a specific strength ranging from 1.30-1.35 x 10 5 m.
- Fibers formed from glass compositions of the present invention in some
- a fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from about 0.55 to about 0.60 when exposed to IN H2SO4 (pH 0) at 100°C for one hour.
- a fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from about 0.25 to 0.30 when exposed to 0. IN NaOH (pH 12) at 100°C for one hour.
- glass fibers of the present invention can be continuous.
- a plurality of glass fibers can be gathered as a strand in some embodiments.
- a plurality of glass fibers or a plurality of fiber glass strands can be combined into a roving.
- Some embodiments of the present invention relate to yarn formed from a plurality of glass fibers. While fibers or a plurality of fibers may be referred to as continuous, persons of ordinary skill in the art will appreciate that glass fibers (and likewise, fiber glass strands or rovings) that are referred to as continuous do not have an infinite length as, for example, breaks in production occur, glass fibers are wound into packages, etc.
- glass fibers of the present invention can be chopped to a variety of lengths depending on a number of factors including, for example, the desired use of the glass fibers.
- glass fibers of the present invention can have a length of less than about 105 millimeters.
- Glass fibers, in some embodiments can have a length of less than about 13 millimeters.
- Glass fibers, in some embodiments can be chopped and have a length greater than about 3 millimeters.
- glass fibers can be chopped and have a length greater than about 50 millimeters.
- the plurality of chopped glass fibers can be wet chopped glass fibers such that a sizing composition (or other coating composition) has not dried entirely on the surfaces of the glass fibers.
- Some embodiments of the present invention relate to fabrics comprising a plurality of glass fibers formed from glass compositions of the present invention.
- Such fabrics can be woven fabrics in some embodiments, and non-woven fabrics in other embodiments.
- Glass fibers formed from glass compositions of the present invention can be used in various reinforcement applications.
- glass fibers of the present invention are used in the reinforcement of polymers including thermoplastics and thermosets.
- glass fibers formed from glass compositions of the present invention are used in the reinforcement of building materials including, but not limited to, cement and roofing systems and such as shingles. Other uses are disclosed herein.
- Some embodiments of the present invention relate to a polymeric composite comprising a polymeric material and a plurality of glass fibers in the polymeric material, the plurality of glass fibers being formed from a glass composition of the present invention.
- the polymeric material can be a thermoplastic polymer in some embodiments, and a
- the at least one glass fiber can be chopped as set forth above and have a variety of lengths depending, for example, on the particular polymeric composite.
- the plurality of glass fibers can have a length of less than about 105 millimeters in some embodiments, and less than about 13 millimeters in other embodiments.
- the plurality of glass fibers can have a length of greater than about 50 microns in some embodiments, greater than about 3 millimeters in other embodiments, and greater than about 50 millimeters in other embodiments.
- the plurality of glass fibers can be in the form of a woven fabric and/or a non-woven fabric.
- the present invention provides methods of making glass compositions from batch compositions comprising significant amounts of one or more glassy minerals, including perlite and/or pumice.
- a method of making a glass composition of the present invention comprises providing a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent and heating the batch composition to a temperature sufficient to form the glass composition.
- the batch comprises at least 10 weight percent of an additional source of both silicon and aluminum.
- the batch comprises at least 10 weight percent of an additional source of silicon.
- the batch comprises at least 10 weight percent of an additional source of aluminum.
- the amount of glassy mineral in the batch composition is at least 50 weight percent.
- the batch composition is heated to a temperature of about 1400° C to about 1450° C.
- Figure 1 provides the results of a high temperature differential thermal analysis (DTA) comparing conversion from solid to liquid of fine particulate perlite and a coarse particulate perlite according to one embodiment of the present invention.
- DTA differential thermal analysis
- Figure 2 illustrates an apparatus used in the determination of melt viscosities of glass compositions according to embodiments of the present invention.
- Figure 3 illustrates the position of the thermocouple and the number of turns of the heating coil of a furnace used in the determination of liquidus temperatures (T L ) of glass compositions according to embodiments of the present invention.
- Figure 4 provides temperature-viscosity curves for a glass composition according to one embodiment of the present invention, two commercially available E-glass compositions and a C-glass composition.
- Figure 5 provides molten glass surface tensions as a function of temperature for a glass composition according to one embodiment of the present invention and two commercially available E-glass compositions.
- Figure 6 is a plot of the melt or molten glass density as a function of temperature for a glass composition according to one embodiment of the present invention and two commercially available E-glass compositions.
- Figure 7 is a plot of electrical conductivity as a function of temperature for a glass composition according to one embodiment of the present invention as well as E-glass and C- glass compositions.
- Figure 8 provides energy requirements for conversion of several batch compositions to glass melt compositions according to one embodiment of the present invention.
- Figure 9 is a plot of the absorption spectra for a glass composition according to one embodiment of the present invention as well as E-glass and C-glass compositions.
- the upper corner of Figure 9 illustrates the temperature-viscosity relationship for the various glasses.
- Figure 10 is a plot illustrating the weight loss over time for a glass composition according to one embodiment of the present invention, as well as for various E-glass compositions, when placed in 1 N H2SO4.
- Figure 1 1 is a plot illustrating the weight loss over time for a glass composition according to one embodiment of the present invention, as well as for a boron- free E-glass composition, when placed in sulfuric and citric acid solutions.
- Figure 12 summarizes Weibull statistical analysis of fiber strengths of various glass compositions according to some embodiments of the present invention.
- Figure 13 is a plot illustrating the hydro lytic resistance for a glass composition according to one embodiment of the present invention, as well as E-glass and C-glass compositions.
- Certain embodiments of the present invention can employ the various thermodynamic and processing advantages offered by glassy minerals to provide glass compositions having desirable properties.
- the present invention provides glass compositions formed from batch compositions comprising significant amounts of one or more glassy minerals, including perlite and/or pumice.
- the glass compositions in some embodiments, can be fiberizable glass compositions.
- glass fibers formed from glass compositions of the present invention can demonstrate advantageous properties including, but not limited to, mechanical and corrosion resistant properties equaling or exceeding glass fibers formed from previous compositions, such as E-glass and C-glass compositions.
- the present invention provides a glass composition formed from a batch composition comprising at least 10 weight percent of a glassy mineral, and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the present invention provides a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the glassy mineral comprising a combination of S1O2 and AI2O 3 is perlite, pumice or mixtures thereof.
- the batch composition comprises at least 10 weight percent of a sodium source. In another embodiment, the batch composition comprises at least 12 weight percent of a sodium source.
- compositions of the present invention in some embodiments, comprises sodium carbonate (soda).
- the batch can comprise an additional source or sources of silicon and/or aluminum.
- the batch can comprise at least 10 weight percent of an additional source of both silicon and aluminum.
- the additional source of both silicon and aluminum is an aluminum-containing silicate mineral, such kaolinite, dickite, halloysite, nacrite, montmorillonite, or alkali metal aluminosilicates.
- the batch comprises at least 10 weight percent of a source of silicon.
- the source of silicon can be a silicon-containing mineral, such as silica.
- the batch comprises at least 10 weight percent of a source of aluminum.
- the source of aluminum can be an aluminum- containing mineral, such as corundum.
- the present invention provides a glass composition comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O 3 , 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5.
- a R2O component is not limited to a single compound but can comprise several compounds.
- a R 2 0 component comprises Na 2 0,
- a R2O component can mean a20 only, K2O only, L12O only, a combination of a20 and K2O, a combination of K2O and L12O, a combination of a20 and L12O, or a combination of a20, K 2 0 and Li 2 0.
- a glass composition of the present invention comprises Na 2 0 in an amount ranging from 6.5 weight percent to about 16 weight percent.
- a glass composition in some embodiments, comprises a20 in an amount ranging from 9 weight percent to 14 weight percent. In another embodiment, a glass composition comprises a20 in an amount ranging from 9 weight percent to 13 weight percent. In some embodiments, a glass composition comprises a20 in an amount ranging from 10 weight percent to 12.5 weight percent.
- a glass composition of the present invention comprises K20 in an amount ranging from 0.5 weight percent to 5 weight percent.
- a glass composition of the present invention in some embodiments, comprises K2O in an amount ranging from 0.5 weight percent to 4 weight percent.
- a glass composition of the present invention in some embodiments, comprises K2O in an amount ranging from 2 weight percent to 4 weight percent. In some embodiments, a glass composition comprises K2O in an amount ranging from 2.5 weight percent to 3.5 weight percent.
- a glass composition of the present invention comprises L12O in an amount up to 2 weight percent.
- a glass composition in another embodiment, comprises L12O in an amount ranging from 0.5 weight percent to 1.5 weight percent.
- a RO component comprises MgO, CaO, SrO, BaO or ZnO or mixtures thereof.
- a RO component can comprise MgO only, CaO only, SrO only, BaO only or ZnO only.
- a RO component can comprise any combination of two or more metal oxides of MgO, CaO, SrO, BaO and ZnO.
- a RO component in some embodiments, is present in a glass composition of the present invention in an amount ranging from 7 weight percent to 31 weight percent.
- a glass composition of the present invention comprises MgO in an amount up to 5 weight percent.
- a glass composition in another embodiment, comprises MgO in an amount ranging from 1 weight percent to 4 weight percent.
- a glass composition comprises MgO in an amount ranging from 2 weight percent to 3 weight percent. In some embodiments, a glass composition comprises MgO in an amount ⁇ 1 weight percent. A glass composition, in some embodiments, comprises MgO in an amount ⁇ 0.5 weight percent
- a glass composition of the present invention comprises CaO in an amount ranging from 7 weight percent to 26 weight percent.
- a glass composition in another embodiment, comprises CaO in an amount ranging from 8 weight percent to 20 weight percent.
- a glass composition comprises CaO in an amount ranging from 8 weight percent to 14 weight percent.
- a glass composition in another embodiment, comprises CaO in an amount ranging from 10 weight percent to 14 weight percent.
- a glass composition comprises CaO in an amount ranging from 9 weight percent to 11 weight percent.
- a glass composition comprises ZnO in an amount up to 3 weight percent.
- Glass compositions of the present invention comprise metal oxides in addition to RO including, but not limited to ZrC>2, Ti0 2 , Mn0 2 or La 2 03 or mixtures thereof.
- a glass composition can comprise ZrC>2 in an amount up to 3 weight percent, T1O2 in an amount up to 3 weight percent, Mn0 2 in an amount up to 3 weight percent and/or La 2 0 3 in an amount up to 3 weight percent.
- a glass composition can comprise T1O2 in an amount up to 1 weight percent.
- the present invention provides a glass composition comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O 3 , 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7.
- the present invention provides a glass composition comprising 56-63 weight percent S1O2, 9-12 weight percent AI2O 3 , 12-17 weight percent RO (CaO + MgO), 12-14 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0,
- the present invention provides a glass composition comprising 60-64 weight percent S1O2, 9-12 weight percent AI2O 3 , 7-15 weight percent RO (CaO + MgO), 13-15.5 weight percent R 2 0 ( a 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 0 3 .
- the present invention provides a glass composition comprising 55-63 weight percent S1O2, 9-14 weight percent AI2O 3 , 11-16.5 weight percent RO (CaO + MgO), 14-17 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 0 3 .
- glass compositions of the present invention have an Fe 2 03 content of less than 1 weight percent. Glass compositions, in other embodiments, can comprise less than 0.7 weight percent Fe 2 03.
- Glass compositions of the present invention in some embodiments, have a forming temperature (Tp )ranging from about 1120°C to about 1300°C. In another embodiment, glass compositions of the present invention have a forming temperature ranging from about 1150°C to about 1250°C. In some embodiments, glass compositions have a forming temperature ranging from about 1200°C to about 1240°C.
- Tp forming temperature
- Glass compositions of the present invention in some embodiments, have a liquidus temperature ranging from about 1020°C to about 1240°C. In another embodiment, glass compositions of the present invention have a liquidus temperature ranging from about 1070°C to about 1200°C. In some embodiments, glass compositions of the present invention have a liquidus temperature ranging from about 11 10°C to about 1 150°C.
- the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention ranges from about 45°C to about 165°C. In some embodiments, the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention is at least 65°C.
- glass compositions of the present invention have a molten density at the forming temperature ranging from 2.35 g/cm 3 to 2.40 g/cm 3 . In some embodiments, glass compositions of the present invention have molten density ranging from 2.36 g/cm 3 to 2.38 g/cm 3 . As discussed further herein, in some embodiments, molten densities of some glass compositions of the present invention are 5% to 7% lower than the molten densities of some E-glass compositions. As a result, glass fibers formed from some glass compositions of the present invention are lighter per unit volume in comparison to some
- E-glass fibers Lighter glass fibers can be advantageous in many applications, particularly material reinforcement applications, such as polymeric reinforcement applications, where weight savings are often highly desirable. Moreover, as a result of lower densities, glass fibers formed from some glass compositions of the present invention can have larger diameters in comparison to some E-glass fibers of the same weight, thereby providing enhanced mechanical properties.
- glass compositions of the present invention in some embodiments, have a molten surface tension at the forming temperature ranging from about 390 x 10 "3 N/m to
- glass compositions of the present invention can be produced from batch compositions comprising a significant amount of one or more glassy minerals, including perlite and/or pumice. In being produced from batch compositions comprising a significant amount of glassy minerals, glass compositions of the present invention can realize sizable energy savings in some embodiments. As discussed further herein, in some embodiments, production of a melt of a glass composition of the present invention requires up to 33% less energy in comparison to that required to produce a melt of some E-glass compositions.
- a method of producing a glass composition comprises providing a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of Si0 2 and AI2O 3 in an amount of at least 80 weight percent and heating the batch composition to a temperature sufficient to form a melt of the glass composition.
- a method of producing a glass composition comprises providing a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent and heating the batch composition to a temperature sufficient to form a melt of the glass composition.
- the batch composition is heated to a temperature of about 1400° C to about 1450° C.
- the batch can comprise at least 10 weight percent of an additional source of both silicon and aluminum.
- the source of both silicon and aluminum is an aluminum-containing silicate mineral, such kaolinite, dickite, halloysite, nacrite, montmorillonite, or alkali metal aluminosilicates.
- the batch can comprise at least 10 weight percent of an additional source of silicon. In some embodiments, the batch can comprise at least 10 weight percent of an additional source of aluminum
- the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of Si02 and A1203 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of Si02 and A1203 in an amount of at least 80 weight percent.
- a glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent is perlite, pumice or mixtures thereof.
- Perlite and/or pumice used in the production of glass compositions of the present invention in some embodiments, is provided in particulate or powder form.
- additional energy savings can be realized by using perlite and/or pumice compositions having fine particle sizes as opposed to coarser particle sizes.
- Figure 1 illustrates the results of a high temperature differential thermal analysis (DTA) comparing the conversion from solid to liquid of a fine particulate perlite (about 200 mesh) and a coarse particulate perlite (about 45 mesh).
- DTA differential thermal analysis
- the fine particulate perlite requires less energy during conversion from solid to liquid in comparison to the coarse particulate perlite, although both the fine and the coarse particulate perlite are glassy or amorphous at room temperature. Moreover, the fine particulate perlite begins liquid formation at a lower temperature than the coarse particulate perlite.
- batch compositions of the present invention comprise at least 10 weight percent of a sodium source. In some embodiments, batch compositions comprise at least 12 weight percent of a sodium source.
- a suitable sodium source for use in batch compositions of the present invention in some embodiments, comprises sodium carbonate (soda).
- batch compositions used to produce glass compositions of the present invention further comprise other minerals including, but not limited to, limestone, dolomite or mixtures thereof.
- a batch composition further comprises up to 17 weight percent limestone.
- a batch composition further comprises up to 13 weight percent dolomite.
- glass fibers can be formed from any of the glass compositions of the present invention.
- Glass fibers according to the various embodiments of the present invention can be formed using any process known in the art for forming glass fibers, and more desirably, any process known in the art for forming essentially continuous glass fibers.
- the glass fibers according to non-limiting embodiments of the present invention can be formed using direct- melt or indirect-melt fiber forming methods. These methods are well known in the art and further discussion thereof is not believed to be necessary in view of the present disclosure. See, e.g., K. L. Loewenstein, The Manufacturing Technology of Continuous Glass Fibers. 3 rd Ed., Elsevier, N.Y., 1993 at pages 47-48 and 117-234.
- the present invention provides a glass fiber comprising a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the present invention provides a glass fiber comprising a glass composition formed from a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 48 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 10 weight percent of an additional source of both silicon and aluminum. In some embodiments, the batch comprises at least 10 weight percent of an additional source of silicon. In some embodiments, the batch comprises at least 10 weight percent of an additional source of aluminum.
- the present invention provides a glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O 3 , 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5.
- the glass composition includes 10-12 weight percent AI2O 3 .
- the present invention provides a glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O 3 , 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7.
- the glass composition includes 10-12 weight percent AI2O 3 .
- the present invention provides a glass fiber comprising 56-63 weight percent Si0 2 , 9-12 weight percent A1 2 0 3 , 12-17 weight percent RO (CaO + MgO), 12- 14 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0,
- the present invention provides a glass fiber comprising 60-64 weight percent Si0 2 , 9-12 weight percent AI2O 3 , 7-15 weight percent RO (CaO + MgO), 13- 15.5 weight percent R 2 0 (Na 2 0 + K 2 0) ), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 C>3.
- the present invention provides a glass fiber comprising 55-63 weight percent Si0 2 , 9-14 weight percent A1 2 0 3 , 11-16.5 weight percent RO (CaO + MgO), 14-17 weight percent R 2 0 ( a 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 0 3 .
- fibers formed from glass compositions of the present invention have a modulus (E) ranging from about 53.0 GPa to about 65.0 GPa. In another embodiment, fibers formed form glass compositions of the present invention have a modulus (E) ranging from about 56 GPa to about 62 GPa. Moreover, in some embodiments, fibers formed from glass compositions of the present invention have a specific strength ranging from 1.30-1.35 x 10 5 m.
- Fibers formed from glass compositions of the present invention in some
- a glass fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from 0.55 to 0.60 when exposed to IN H 2 S0 4 (pH 0) at 96°C for one hour.
- a glass fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from 0.60 to 1.70 when exposed to IN H 2 S0 4 (pH 0) at 96°C for one hour.
- a fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from about 0.25 to about 0.30 when exposed to 0. IN NaOH (pH 12) at 96°C for one hour.
- a fiber formed from a glass composition of the present invention in some embodiments, has a weight loss (wt.%) ranging from 0.35 to 0.85 when exposed to 0. IN NaOH (pH 12) at 96°C for one hour.
- glass fibers according to some embodiments of the present invention can be useful in structural reinforcement applications.
- glass fibers according to some embodiments of the present invention can be useful in structural reinforcement applications.
- glass fibers of the present invention are used in the reinforcement of polymers including thermoplastics and thermosets.
- glass fibers formed from glass compositions of the present invention can be used in the reinforcement of building materials including, but not limited to, cement and roofing systems such as shingles.
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising a glass composition a formed from a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O 3 in an amount of at least 80 weight percent.
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O 3 , 8.5- 18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5.
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O 3 , 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7.
- the glass composition includes 10-12 weight percent AI2O 3 .
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 56-63 weight percent Si0 2 , 9-12 weight percent AI2O 3 , 12-17 weight percent RO (CaO + MgO), 12-14 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 C> 3 .
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 60-64 weight percent Si0 2 , 9-12 weight percent Al 2 0 3 , 7-15 weight percent RO (CaO + MgO), 13-15.5 weight percent R 2 0 (Na 2 0 + K 2 0) ), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 03.
- the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 55-63 weight percent Si0 2 , 9-14 weight percent Al 2 0 3 , 11- 16.5 weight percent RO (CaO + MgO), 14-17 weight percent R 2 0 (Na 2 0 + K 2 0), 0-2 weight percent Li 2 0, 0-3 weight percent ZnO, 0-3 weight percent Zr0 2 , 0-3 weight percent Mn0 2 and 0-3 weight percent La 2 0 3 .
- Polymeric composites according to the various embodiments of the present invention can be made by any method known in the art for making polymeric composites.
- polymeric composites according to the present invention can be made by impregnating woven fabrics or non-woven fabrics or mats of glass fibers with a polymeric material and then curing the polymeric material.
- continuous glass fibers and/or chopped glass fibers comprising glass compositions of the present invention can be disposed in the polymeric material.
- the polymeric material can be cured subsequent to receiving the continuous or chopped glass fibers.
- glass fibers formed from glass compositions of the present invention can be provided as wet chop products for use in, for example, roofing and automotive applications.
- glass fibers of the present invention can be provided as wet chop products having diameters and chop lengths suitable for various such applications.
- Non-limiting examples of various chopped fiber glass properties are provided in Table 1 below:
- Product Nos. 1 and 2 might be used, for example and without limitation, in high end light weight polypropylene reinforcement applications such as automotive headliners and instrument panels.
- Product Nos. 3-5 might be used, for example and without limitation, in residential roofing shingle reinforcement and in some embodiments, can offer desirable tensile and tear strengths.
- Product No. 6 might be used, for example and without limitation, in high end commercial roofing shingle reinforcement and in some embodiments, can offer desirable tensile and tear strengths.
- Product Nos. 7 and 8 might be used, for example and without limitation, in high end residential roofing shingle reinforcement and in some embodiments, can offer desirable tensile and tear strengths.
- sizing compositions known to those of skill in the art can be used on such fiber glass products depending on the type of product, compatibility with the resin system to be reinforced, the ultimate end product, downstream processing steps, and other factors.
- sizing compositions can be selected that are compatible with acid white water paper-making systems.
- sizing compositions can be designed for compatibility with polypropylene reinforcement manufacturing.
- glass fibers formed from glass compositions of the present invention can be provided as direct rovings or gun rovings.
- Direct rovings are understood to comprise a single bundle of continuous fibers combined into a discrete strand.
- Gun rovings can be formed from a plurality of direct wovings, for example, by assembling the direct rovings into a roving package.
- Direct rovings and gun rovings comprising such glass fibers in some embodiments, may be used in applications where corrosion resistance is desirable. Non-limiting examples of such applications can include grating, deck panels, truck door panels, dunnagebars, sewage treatment components, and other structural shapes.
- Direct rovings comprising glass fibers of the present invention can be used in a number of downstream processes including, without limitation, filament winding, multi-axial weaving, pultrusion, and other processes in which direct rovings are used.
- Non-limiting examples of various direct roving or gun roving fiber glass properties are provided in Table 2 below:
- 9-11, 13, and 15-16 can be continuous fiber, single strand rovings that can be used in pultrusion applications.
- Such Products can be used to reinforce, for example, polyester, vinylester, and epoxy resins.
- these Products can be coated with a sizing composition that is compatible with a variety of resin systems including, without limitation, polyester, vinylester, and epoxy resins.
- end products resulting from pultrusion processes include, without limitation, grating, deck panels, truck door panels, dunnagebars, sewage treatment components, and other standard structural shapes.
- Product Nos. 12 and 14 can be continuous fiber, single strand rovings that can be used in filament winding, pultrusion, weaving, and non-woven fabric applications. Such Products can be used to reinforce, for example, polyester, vinylester, and epoxy resins. Thus, in some such embodiments, these Products can be coated with a sizing composition that is compatible with a variety of resin systems including, without limitation, polyester, vinylester, and epoxy resins.
- Product 17 is an example of a product that can be used as a gun roving in contact molding applications.
- the Product can be formulated for use with unsaturated polyester resin systems and can be suitable for use with a wide variety of spraying equipment.
- the Product can be coated with a sizing composition that is compatible with an unsaturated polyester resin while providing rapid wet through and complete wet out.
- Product 18 is a fiber glass strand that can be combined with other strands to provide a high end count roving for use in long blade cutter systems to produce, for example and without limitation, fine, evenly distributed chopped fiber layers on multi-axial, unidirectional, and/or randomly-oriented reinforcing mats.
- the Products can be coated with a sizing composition that is compatible with polyester and epoxy resin systems.
- glass fibers formed from glass compositions of the present invention can be provided as chopped strands for use in a wide variety of resin systems and fabrication processes.
- the chopped strands can be used to form composites where hydrolysis resistance is desired.
- Non-limiting examples of various chopped fiber glass properties are provided in Table 3 below:
- Such products can have broad application as reinforcements.
- Product No. 19 is a chopped strand that can be used to reinforce, for example, a wide range of polyamide resins.
- the Product can be coated with a sizing composition that is compatible with various polyamide resins.
- the Product can combine excellent feeding characteristics, high gloss, and/or desirable dry-as- molded mechanical properties.
- the Product in some embodiments, can provide desirable hydrolysis resistance in ethylene glycol-based cooling systems and/or desirable performance in impact-modified resins. Examples of potential end-use products incorporating the Product can include, without limitation, transportation components, electrical and electronic appliance components, and computer housings and components.
- Product No. 20 is a chopped strand that can be used to reinforce, for example, a variety of thermoplastic polyester resins.
- the Product can also provide desirable
- thermoplastics including, without limitation, sytrenic copolymer resins, polycarbonate resins, polybutylene terephthalate (PBT) resins, polyethylene terpephthalate (PET) resins, polyoxymethylene (POM) resins, and
- the Product can be coated with a sizing composition that is compatible with such resins.
- potential end-use products incorporating the Product can include, without limitation, transportation components, electrical and electronic appliance components, and computer housings and components.
- Product No. 21 is a chopped strand that can be used to reinforce, for example, a variety of thermoplastic polybutylene terephthalate (PBT) resins.
- the Product can be coated with a sizing composition that is compatible with such resins.
- the Product can be used, for example and without limitation, in high end applications where mechanical properties are important.
- the Product can combine desirable feeding characteristics, desirable hydrolysis resistance, and/or desirable dry-as-molded mechanical properties. Examples of potential end-use products incorporating the Product can include, without limitation, transportation components, electrical and electronic appliance components, and computer housings and components.
- glass fibers formed from glass compositions of the present invention can be provided as yarns for use in the weaving of fabrics.
- Such fabrics can be used, for example, in filtration applications, high temperature applications, and other industrial uses.
- Non-limiting examples of various yarn properties are provided in Table 4 below:
- the yarns can be texturized yarns or bobbin/plied yarns depending on the desired application.
- Texturized yarns are understood to those of skill in the art to be continuous, single end or multi-end, product that have been volumized to provide higher bulk, thickness, and coverage per weight than standard fiber glass yarns.
- Such texturized yarns can be used, for example, in weaving high temperature and filtration fabrics, as well as other industrial uses.
- Bobbin yarns typically comprise a single strand of continuous fibers that have been twisted and wound on a bobbin. Such yarns can have high heat resistance, low moisture absorbency, and/or superior electrical properties.
- glass fibers formed from glass compositions of the present invention can be provided as long fiber reinforcements (e.g., having a length of 3 mm or more in some embodiments, greater than 50 mm in some embodiments, or up to about 25 mm in some embodiments).
- long fiber reinforcements can be used, for example, in the reinforcement of thermoplastic polymers such as thermoplastic polyethylene and
- polypropylene and thermoplastic polyesters such as polybutylene terephthalate (PBT) or polyethylene terephthalate (PET).
- PBT polybutylene terephthalate
- PET polyethylene terephthalate
- the long fiber reinforcements can be used, for example, in granular long-fiber technology (G-LFT) processes, direct long-fiber technology processes, and/or continuous long-fiber technology (C-LFT) processes.
- G-LFT granular long-fiber technology
- C-LFT continuous long-fiber technology
- the fiber glass product can be used in the various LFT processes to reinforce thermoplastic polymers and can, in some embodimens, permit molders to produce structural or semi-structural parts.
- Examples of such parts can include, for example, car instrument panels, inside panels of doors, and floor covers.
- Examples 1 through 6 of glass compositions of the present invention provided in Table I were prepared by providing mixtures of ingredients covering 65-72 weight percent perlite, 0-22 weight percent dolomite, 6-35 weight percent limestone and 0-8 weight percent soda.
- the specific amounts of perlite, dolomite, limestone and/or soda used to produce Examples 1 through 6 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition.
- Examples 7 through 13 of glass compositions of the present invention provided in Table II were prepared by providing mixtures of ingredients covering 69-71 weight percent perlite, 6-20 weight percent limestone and 7-10 weight percent soda.
- the specific amounts of perlite, limestone and soda used to produce Examples 7 through 13 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 7 through 13.
- Examples 14 through 19 of glass compositions of the present invention provided in Table III were prepared by providing mixtures of ingredients covering 69-72 weight percent perlite, 0-13 weight percent dolomite, 3-17 weight percent limestone and 7-10 weight percent soda.
- the specific amounts of perlite, limestone, soda and/or dolomite used to produce Examples 14 through 19 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 14 through 19.
- Examples 20 through 37 of glass compositions of the present invention provided in Table IV were prepared by providing mixtures of ingredients covering 68-73 weight percent perlite, 0-13 weight percent dolomite, 4-16 weight percent limestone and 12-17 weight percent soda.
- the specific amounts of perlite, limestone, soda and/or dolomite used to produce Examples 20 through 37 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 20 through 37.
- Example 38 provided in Table V was prepared in accordance with the glass composition of Example 12 above, except 1 wt% Li 2 0 was used to replace 1 wt% Na 2 0 and any Sb 2 0 3 used during refining was removed.
- the glass composition of Example 39 in Table V was prepared in accordance with the glass composition of Example 12 above, except ZnO was used to replace 1 wt% Na 2 0 and 1 wt% CaO and any Sb 2 0 3 used during refining was removed.
- Examples 40 through 71 of glass compositions of the present invention provided in Table VI were prepared in accordance with the glass composition of Example 12 above, except the glass compositions were designed to include various combinations of Li 2 0, La 2 0 3 , ⁇ 2, Ti02, ⁇ ⁇ ⁇ and ZrC>2.
- Various amounts of L12CO3, La 2 03, Mn02, Ti0 2 , ZnO and ⁇ (3 ⁇ 4 were incorporated into the batch composition of Example 12 to produce Examples 39-70.
- each of the glass compositions of Examples 39-70 also included 0.09 wt% SO 3 , 0.27-0.28 wt% F and 0.53-0.55 wt% Fe 2 0 3 .
- Examples 72 through 74 of glass compositions of the present invention provided in Table VII may be prepared by providing mixtures of ingredients covering 11-41 weight percent perlite, 0-55 weight percent dolomite, 12-17 weight percent limestone, 0-30 weight percent alkali aluminosilicate mineral, 34-56 weight percent silica, 0-19 weight percent clay (kaolinite), and 1-3 weight percent rouge.
- the specific amounts of perlite, dolomite, alkali aluminosilicate mineral, silica, clay and/or rouge used to produce Examples 72 through 74 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals are heated to a temperature of about 1400° C to obtain molten glass compositions. The molten glass compositions are cooled to provide glass compositions of Examples 72 through 74.
- Examples 75 and 76 of glass compositions of the present invention provided in Table VIII may be prepared by providing mixtures of ingredients covering 69.8-70.4 weight percent perlite, 13.3-14.3 weight percent soda ash, 15.4-17.1 weight percent limestone. For Example 76, 0.3 weight percent manganese dioxide was added. The specific amounts of perlite, soda ash, limestone, and manganese dioxide to produce Examples 75-76 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of the glass composition. Mixtures of the minerals are heated to a temperature of about 1400° C to obtain the molten glass composition. The molten glass composition is cooled to provide the glass compositions of Examples 75 - 76.
- melt properties of several glass compositions of Examples 1 through 71 were investigated. Investigation of the melt properties of glass compositions of the present invention assisted in the determination of how various compositional parameters affect processing considerations including forming temperatures (T F ) and liquidus (T L )
- the apparatus (1) for measuring melt viscosity comprised a platinum ball (2) with a diameter of 16 mm.
- the platinum ball (2) was hung on a thin platinum wire (6) with the help of a special bracket/holder (1 1) attached to the right scale of the analytical balance. Initially, the first the end of the platinum wire (6) was attached to the bracket/holder at point A. After warming the furnace (9), the platinum ball was placed in the sample melt inside the crucible (3) and the first end of the wire was attached to the bracket/holder at point B to locate the platinum ball (2) in the center of the melt.
- the distance between the platinum ball (2) and the walls of the crucible (3) was 13-15 mm. If the distance were smaller, it would affect the precision of the measurement.
- the movement of the platinum ball (3) in the melt was performed by changing the weight of the rider.
- the speed of the movement of the ball in the melt was defined in relative numbers of the balance indicator shift that was observed on the balance scale.
- the balance indicator moved 100 points to both sides from zero position, the ball in the melt shifted 1.7 mm from the central position up and down.
- the sensitivity of the balance was 10 mg per 100 points.
- a Pt/PtRh thermocouple was placed in the furnace next to the crucible (3) and provided automatic temperature control of the furnace.
- the hot end of another thermocouple (5) was inside the crucible (10) filled with AI2O 3 powder. This thermocouple was connected with the potentiometer to control the furnace temperature at the set point.
- the temperature control had a precision ⁇ 1.5°C.
- the platinum ball (2) moved from a marked upper position in the melt to a lower marked position under its gravity, the time of which was recorded using a stopwatch with the precision within 0.1 second.
- the time of the balance scale shift to 20 - 60 scale divisions was measured depending on the viscosity of the melt.
- the speed of the platinum ball (2) movement was taken as an average value of six measurements.
- V velocity
- G weight
- Table IX summarizes measured liquidus temperature (TL) and reference temperature of forming (T F ) defined by melt viscosity of 1000 Poise for glass compositions of Examples 1-22.
- Glass compositions of Examples 1-6 demonstrated liquidus temperatures greater than 1240°C, the upper limit of the gradient temperature furnace setting. As a result, no viscosity measurements were made for these compositions for a determination of forming temperature.
- several glass compositions displayed desirable melt properties by having lower liquidus and forming temperatures while maintaining a difference in liquidus temperature and forming temperature of at least 65°C.
- Examples 18, 20 and 21 each provided a forming temperature under 1222°C while maintaining a difference in liquidus and forming temperature of at least 75°C.
- Table X summarizes measured liquidus temperature (T L ) and the forming (T F ) temperature for glass compositions of Examples 40 through 71 as a function of weight percent of Li 2 0 in the glass compositions.
- Li 2 0 plays a significant role in lowering the liquidus and forming temperatures of glass compositions of the present invention with minimum reductions in forming and liquidus temperatures being 30°C and 43 °C respectively.
- Table XI summarizes the measured liquidus temperature (T L ) and reference temperature of forming (T F ) defined by melt viscosity of 1000 Poise for the glass composition of Examples 75-76.
- Figure 4 provides temperature-viscosity curves for the glass composition of Example 18, two E-glass compositions and a C-glass composition. From Figure 4, it is noted that the temperature-viscosity characteristics of the glass composition of Example 18 are similar to those of the C-glass composition. Moreover, the viscosity change for the glass composition of Example 18 is not as steep as that provided for the E-glass compositions. As a result, the glass composition of claim 18 can be characterized as a "long" glass whereas the E-glass compositions are "short” glasses. Longer glasses, such as Example 18, in principle, favor fine filament production forming due to less forming tension as a result of slower reduction in melt viscosity over the forming temperature range right after fiber exit from the forming tip.
- Figure 5 further illustrates the reduction in forming tension by providing molten glass surface tensions as a function of temperature for the glass composition of Example 22 in comparison two E-glass compositions .
- the glass composition of Example 22 at the forming temperature has 9% and 14% lower surface tension than the E- glass compositions.
- Figure 6 is a plot of the melt or molten glass density as a function of temperature for the glass composition of Example 22 in comparison with two E-glass compositions.
- the glass composition of Example 22 demonstrated a temperature dependency (slope) similar to the E-glass compositions but had a molten density 5% and 7% lower than the E-glass compositions respectively.
- glass fibers formed from some glass compositions of the present invention are lighter per unit volume in comparison to some E-glass fibers. Lighter glass fibers can be advantageous in many applications, particularly material reinforcement application, such as polymeric reinforcement applications, where weight savings are highly desirable.
- glass fibers formed from some glass compositions of the present invention can have larger diameters in comparison to some E-glass fibers of the same weight, thereby providing enhanced mechanical properties.
- Figure 7 is a plot of electrical conductivity as a function of temperature for the glass composition of Example 25 in comparison with E-glass and C-glass compositions.
- the glass composition of Example 25 and the C-glass composition display much higher electrical conductivities than the E-glass due to their significantly higher alkali metal content.
- the melt conductivity of an inorganic glass composition is generally dominated by the mobile ions of sodium and potassium.
- electrical melting technology is only used as a secondary boost system for E-glass processing.
- electrical melting technology has been used as a primary energy for the processing of C-glass compositions. Given that glass compositions of the present invention, in some embodiments, demonstrate higher melt conductivities than some C-glass compositions, electrical melting technology may find application to processing glass compositions of the present invention.
- glass compositions of the present invention formed from batch compositions comprising perlite and/or pumice require less energy for converting the batch composition to a glass melt composition.
- Figure 8 provides the energy required to convert the batch composition comprising perlite to the glass melt composition of Example 12.
- Figure 8 also provides the energy required to convert an E-glass batch composition to the associated glass melt.
- the energy required to convert the batch composition of Example 12 into a glass melt composition was 20% less than the energy required to convert the E-glass batch composition to glass melt composition.
- the energy required to convert a second E-glass batch composition to a glass melt composition was also compared with the energy required to convert the batch composition of Example 12 into a glass melt composition.
- the energy required to convert the batch composition of Example 12 was about 33% percent lower than the energy to convert the second E-glass batch composition to a glass melt composition.
- Figure 9 is a plot of the absorption spectra for the glass composition of Example 75 as well as for an E-glass composition and a C-glass composition.
- the absorption due to the presence of Fe 2+ in the compositions is visible as a large broad band located between 700 and 1500 nm.
- Example 75 has a larger absorption due to Fe 2+ than either of the other glasses, which indicates that heat will dissipate more quickly from the molten glass which advantageously facilitates the formation of glass fibers for high fiber production throughput needs, as compared with the C-glass sample as both have a similar relationship between viscosity and temperature as shown in the insert of Figure 9.
- the slightly lower concentration of Fe 2+ (or the lower absorbance at 1000 nm or lower glass cooling rate) of the E-glass is expected to have a similar throughput as the glass composition according to Example 75, but higher than that of C-glass.
- Acid and Alkaline Corrosion Resistance Fibers formed from glass compositions of the present invention were made in a laboratory using a single tip bushing set up. To compare with commercial glass fiber corrosion resistance under the same testing conditions, AR-, C-, ECR- and E-glass fibers were also made using the same method using cullet.
- Example 75 The corrosion resistance of glass fibers made from a glass composition according to the embodiment of the present invention in Example 75 was also evaluated in comparison with several E-glass compositions (E-glass compositions with 0 weight % B2O 3 , 0.7 weight % B2O 3 , and 1.3 weight % B2O 3 ). Fibers formed from the glass composition of Example 75 were made in a laboratory using a single tip bushing set up. The various E-glass fibers were commercially available glass fibers.
- FIG. 10 is a plot illustrating the weight loss over time for the glass fiber made from the composition of Example 75 compared to the various E-glass compositions. As shown in Figure 10, the acid resistance of the glass fiber made from Example 75, according to one embodiment of the present invention, was similar to the boron- free E-glass fiber samples and significantly superior to the boron-containing E-glass fiber samples.
- the corrosion resistance of glass fibers made from the glass composition of Example 75 was also compared to the corrosion resistance of 0% B2O 3 E-glass fibers in citric acid as well as sulfuric acid.
- the glass fibers formed from the glass composition of Example 75 were prepared as described above in connection with Figure 10.
- the 0% B2O 3 E-glass fibers were collected from IN OFIBER ® CR glass commercially available from PPG Industries, Inc.
- Glass fiber resistance to corrosion was evaluated in terms of the relative sample percent weight loss after leaching test. Testing was administered by placing a fiber sample in a 1 N H2SO4 solution at 96° C for 2, 12, and 24 hour periods. In addition, corrosion resistance to citric acid was evaluated in a separate test by placing a fiber sample in a 50% citric acid solution at 96 0 C for 2, 12, and 24 hour periods. All of the tests were performed by keeping the ratio of solution volume to the sample mass or volume (5,000 m 2 ) constant. 50 ml of the solution and 1.375 grams of glass fibers (filament diameter - 22 ⁇ ) were used for each test. Triplicate samples were tested to determine average sample weight losses.
- Figure 11 is a plot illustrating the weight loss over time for the glass fibers made from the composition of Example 75 compared to the boron-free E-glass fibers.
- the glass fiber made from Example 75 according to one embodiment of the present invention, showed comparable resistance to sulfuric acid to boron-free E-glass fiber samples.
- the Example 75 glass fiber sample advantageously exhibited a weight loss of -3-3.5% after 24 hours in both acids.
- Tensile strengths of fibers formed from the glass composition of Example 37 of the present invention were measured by drawing 10-um diameter fibers from a single tip bushing in laboratory. The fibers were subsequently tested by applying tensile force to the fibers from both ends within the same day of fiber forming.
- Figure 12 summarizes Weibull statistical analysis of the fiber strength with an average of about 3050 MPa and standard error of 22.4 MPa for sample size of 57. Except for the tail, the strength fit the single Weibull distribution well suggesting a single failure mode dominates the fiber failure.
- Fibers formed the glass compositions of Examples 75 and 76 were also measured for fiber density, strength, and modulus using the same methods described above. Table XIV provides the mean values for density, tensile strength and modulus for these fibers.
- Fibers formed from the glass compositions of Examples 37, 75 and 76 exhibited good mechanical properties. Fibers formed from the glass compositions of Example 75 and 76, for example, exhibited strength and modulus values similar to E-glass fibers.
- the hydrolytic resistance of glass fibers according to the embodiment of the present invention of Example 75 was evaluated in relation to E-glass fibers and C-glass fibers.
- the glass fibers were treated in 80% relative humidity at 50° C for an extended period of time in a humidity and temperature controlled oven.
- the fiber failure strain of the fibers at a time of fiber breakage was measured using a two-point bending procedure similar to the procedure described in S.T. Gulati, "Strength Measurement of Optical Fibers by Bending," J. Am. Ceram. Soc, 69[11] 815-21 (1986). From the failure strain, fiber strength (or stress at failure) was calculated using Hooke's Law (using a fiber modulus values from the separate measurement by the sonic method described above).
- Figure 13 is a plot illustrating the hydrolytic resistance of the fibers by showing the fiber failure stress values over time for the Example 75 glass fibers, the C-glass fibers, and the E-glass fibers.
- the slopes of the lines represent the resistances of the fibers to hydrolysis by moisture (water).
- the C-glass fibers had a higher slope than both the Example 75 glass fibers and the E-glass fibers, which indicates that the C-glass fibers have a lower resistance to moisture (water) attack.
- similar slopes were found for both the E-glass fibers and the Example 75 glass fibers.
- Example 75 glass fibers demonstrated a higher hydrolytic resistance to moisture (water) attack than the C-glass fibers, as well as a hydrolytic resistance to moister (water) comparable to that of the E-glass fibers.
- glass fibers according to some embodiments of the present invention are formed using furnaces, forehearths, bushings, and/or other fiber- forming equipment used in the production of E-glass.
- Table XV illustrates various fiber glass strands according to some embodiments of the present inventions that were
- the glass fibers were formed from the glass composition of Example 75.
- the glass fibers according to Example 75 were formed using a 200-tip bushing as a pilot trial using convention commercial fiber glass manufacturing equipment used in the production of E-glass fibers.
- Example 75 Glass 100% E-glass, 75% E-glass and 25% Ex. 75 glass, 50% E-glass and 50% Ex. 75 glass, 25% E-glass and 75% Ex. 75 glass, and 100% Ex. 75 glass.
- the glass fiber samples for the handsheet formation are shown in Table XVI below.
- the wet chop handsheets were formed using conventional techniques by dispersing the specified amount of glass fibers in a white water slurry to form a mat.
- the white water slurry included a thickening agent (water-soluble hydroxyethylcellulose ( atrasol 250HR), a pH modifier (ammonium hydroxide), a wetting agent (Katapol cationic emulsifier), an adhesive (lignin), and water.
- a thickening agent water-soluble hydroxyethylcellulose ( atrasol 250HR)
- a pH modifier ammonium hydroxide
- a wetting agent Kerapol cationic emulsifier
- an adhesive lignin
- Desirable characteristics which can be exhibited by embodiments of the present invention, can include, but are not limited to, the provision of new glass compositions that utilize glassy minerals; the provision of new glass compositions that utilize perlite; the provision of batch compositions requiring less energy to form melts of glass compositions; the provision of new glass compositions demonstrating significant differences in liquidus and forming temperatures; the provision of glass fibers having reduced weights without a concomitant reduction in mechanical properties; the provision of glass fibers demonstrating desirable acid and alkaline corrosion resistance properties, the provision of glass fibers that can be used in a variety of end-use applications, and others.
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Abstract
Some embodiments of the present invention provide fiberizable glass compositions formed from batch compositions comprising amounts of one or more glassy minerals, including perlite and/or pumice. Some embodiments of the present invention related to glass fibers formed from such batch compositions, and composites and other materials incorporating such glass fibers.
Description
GLASS COMPOSITIONS AND FIBERS MADE THEREFROM
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims priority to United States Provisional Patent Application Serial No. 61/594,426, filed on February 3, 2012, and is also a continuation-in-part of United Patent Application Serial No. 13/365,590, filed February 3, 2012, which is a continuation-in-part application of United States Patent Application Serial No. 12/534,490, filed August 3, 2009, each of which is hereby incorporated by reference as though fully set forth herein.
FIELD OF THE INVENTION
The present invention relates to glass compositions and, in particular, to glass compositions for forming fibers.
BACKGROUND OF THE INVENTION
Large scale commercial production of continuous glass fibers (E-glass and C-glass types) comprises melting batch materials consisting primarily of minerals that are crystalline or substantially crystalline in nature. Conversion of these crystalline raw materials to a glassy state requires significant energy to be applied during the melting process. In view of the significant energy investment accompanying crystalline materials, glassy or amorphous minerals have sometimes been used in the production of glass compositions. A glassy or amorphous structure can reduce the amount of energy consumed in the melting process. Glassy minerals such as basalt and obsidian, for example, have been used as significant portions of feedstock for the production of mineral wool.
An associated disadvantage with some glassy minerals, however, is the high iron content of such minerals. Basalt and obsidian both comprise relatively large amounts of iron, thereby making their resulting melts highly energy absorbing. As a result, use of
conventional gas fired furnaces is typically impractical for melt processing of these minerals. Electrical melting can be used to process glassy minerals of high iron content, but this is often a constraint in high volume glass fiber production as compared with conventional gas fired furnace technology. Raw materials used in the production of E-glass and C-glass fibers are generally low in iron, thereby permitting the use of large scale gas fired furnaces.
Perlite (and its expanded form pumice) is a mineral that naturally occurs in the glassy form. Perlite has not been extensively used as a raw material in glass production, partially because of its compositional parameters. The major constituents of perlite are S1O2, AI2O3 and alkali oxide (R2O). S1O2 is typically present in perlite in an amount between about 70 and about 75 weight percent. AI2O3 is typically present in perlite in an amount between
about 12 and about 15 weight percent. Alkali oxides are typically present in perlite in an amount between about 3 and about 9 weight percent. These parameters conflict with the compositional requirements of several widely used glass compositions, including, for example, those of E-glass and C-glass.
E-glass compositions, for example, are well-suited for forming glass fibers. As a result, the majority of glass fibers used in reinforcement applications, such as polymeric reinforcement applications, are formed from E-glass compositions. E-glass compositions generally limit the amount alkali oxides to no more than 2 percent. The high alkali oxide content of perlite is inconsistent with this limitation and renders perlite largely unsuitable for use in batch compositions for the production of E-glass compositions.
Moreover, C-glass compositions have also been used to form fibers resistant to corrosion in acidic environments. In order to resist acidic corrosion, C-glass compositions comprise a high Si02 content and a low AI2O3 content (< 8 wt. %). The high AI2O3 content of perlite generally precludes use of perlite in batch compositions for the production of C- glass compositions.
SUMMARY
In one aspect, the present invention provides glass compositions formed from batch compositions comprising significant amounts of one or more glassy minerals, including perlite and/or pumice. In another aspect, the present invention provides glass fibers formed from glass compositions described herein.
In some embodiments, the present invention provides a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the glassy mineral comprising a combination of S1O2 and AI2O3 is perlite, pumice or mixtures thereof.
In other embodiments, the present invention provides a glass composition formed from a batch composition comprising at least 10 weight percent of a glassy mineral, and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80
weight percent. In some further embodiments, the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the glassy mineral comprising a combination of S1O2 and AI2O3 is perlite, pumice or mixtures thereof.
Moreover, in some embodiments, the batch comprises at least 10 weight percent of a sodium source. A sodium source, in some embodiments, comprises sodium carbonate (soda).
In some embodiments, such as, for example, those where lower amounts of a glassy mineral are used, the batch can comprise an additional source or sources of silicon and/or aluminum. In some such embodiments, the batch can comprise at least 10 weight percent of a source of both silicon and aluminum. In some such embodiments, the source of both silicon and aluminum is an aluminum-containing silicate mineral, such kaolinite, dickite, halloysite, nacrite, montmorillonite, or alkali metal aluminosilicates. In some embodiments, the batch comprises at least 10 weight percent of a source of silicon. In some embodiments, the batch comprises at least 10 weight percent of a source of aluminum.
In another embodiment, the present invention provides a glass composition comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5. In some such embodiments, the glass composition includes 10-12 weight percent AI2O3.
In another embodiment, the present invention provides a glass composition comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7. In some such embodiments, the glass composition includes 10-12 weight percent AI2O3.
In some embodiments, a R2O component comprises a20, K2O or L12O or mixtures thereof. In some embodiments, a glass composition of the present invention comprises a20 in an amount ranging from 6.5 weight percent to about 16 weight percent. A glass composition, in some embodiments, comprises K2O in an amount ranging from 0.5 weight percent to 5 weight percent, from 0.5 weight percent to 4 weigh percent in some
embodiments, and from 2 weight percent to 4 weight percent in further embodiments. In some embodiments, a glass composition comprises Li20 in an amount up to 2 weight percent.
In some embodiments, a RO component comprises MgO, CaO, SrO, BaO, or ZnO or mixtures thereof. A RO component, in some embodiments, is present in a glass composition of the present invention in an amount ranging from 7 weight percent to 31 weight percent. In one embodiment, a glass composition comprises MgO in an amount up to about 5 weight percent. A glass composition, in some embodiments, comprises CaO in an amount ranging from 7 weight percent to 26 weight percent. In some embodiments, a glass composition comprises ZnO in an amount up to 3 weight percent.
Glass compositions of the present invention, in some embodiments, comprise metal oxides in addition to RO including, but not limited to, Zr02, Ti02, Mn02 or La203 or mixtures thereof.
In another embodiment, the present invention provides a glass composition comprising 56-63 weight percent S1O2, 9-12 weight percent AI2O3, 12-17 weight percent RO (CaO + MgO), 12-14 weight percent R20 (Na20 + K20), 0-2 weight percent Li20,
0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In another embodiment, the present invention provides a glass composition comprising 60-64 weight percent S1O2, 9-12 weight percent AI2O3, 7-15 weight percent RO (CaO + MgO), 13-15.5 weight percent R20 ( a20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In another embodiment, the present invention provides a glass composition comprising 55-63 weight percent S1O2, 9-14 weight percent AI2O3, 11-16.5 weight percent RO (CaO + MgO), 14-17 weight percent R20 (Na20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In some embodiments, glass compositions of the present invention have an Fe203 content of less than 1 weight percent. Glass compositions, in other embodiments, can comprise less than 0.7 weight percent Fe203.
Glass compositions, according to some embodiments of the present invention are fiberizable. In some embodiments, glass compositions of the present invention have a forming temperature (Tp) ranging from 1120°C to about 1300°C. As used herein, the term "forming temperature" means the temperature at which the glass composition has a viscosity of 1000 poise (or "log 3 temperature"). In some embodiments, glass compositions of the present invention are fiberizable at the forming temperature. Moreover, in some
embodiments, glass compositions of the present invention have a liquidus temperature (TL) ranging from about 1020°C to about 1240°C. In some embodiments, the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention ranges from about 45°C to about 165°C. In some embodiments, the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention is at least 65°C.
In some embodiments, glass compositions of the present invention have a molten density at the forming temperature ranging from 2.35 g/cm3 to 2.40 g/cm3. In some embodiments, glass composition of the present invention have molten density ranging from 2.36 g/cm3 to 2.38 g/cm3.
Glass compositions of the present invention, in some embodiments, have a molten surface tension at the forming temperature ranging from about 390 x 10"3 N/m to 400 x 10"3 N/m.
As provided herein, glass fibers can be formed from some embodiments of the glass compositions of the present invention. In some embodiments, fibers formed from glass compositions of the present invention have a modulus (E) ranging from about 53 GPa to about 65 GPa. Moreover, in some embodiments, fibers formed from glass compositions of the present invention have a specific strength ranging from 1.30-1.35 x 105 m.
Fibers formed from glass compositions of the present invention, in some
embodiments, also demonstrate acidic and alkaline corrosion resistance. In one embodiment, for example, a fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from about 0.55 to about 0.60 when exposed to IN H2SO4 (pH 0) at 100°C for one hour. In another embodiment, a fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from about 0.25 to 0.30 when exposed to 0. IN NaOH (pH 12) at 100°C for one hour.
In some embodiments, glass fibers of the present invention can be continuous. A plurality of glass fibers can be gathered as a strand in some embodiments. In some embodiments, a plurality of glass fibers or a plurality of fiber glass strands can be combined into a roving. Some embodiments of the present invention relate to yarn formed from a plurality of glass fibers. While fibers or a plurality of fibers may be referred to as continuous, persons of ordinary skill in the art will appreciate that glass fibers (and likewise, fiber glass strands or rovings) that are referred to as continuous do not have an infinite length as, for example, breaks in production occur, glass fibers are wound into packages, etc.
Some embodiments of the present invention related to chopped glass fibers formed from glass compositions of the present invention. As set forth below, glass fibers of the present invention can be chopped to a variety of lengths depending on a number of factors including, for example, the desired use of the glass fibers. In some embodiments, glass fibers of the present invention can have a length of less than about 105 millimeters. Glass fibers, in some embodiments, can have a length of less than about 13 millimeters. Glass fibers, in some embodiments, can be chopped and have a length greater than about 3 millimeters. In some embodiments, glass fibers can be chopped and have a length greater than about 50 millimeters. In some embodiments, the plurality of chopped glass fibers can be wet chopped glass fibers such that a sizing composition (or other coating composition) has not dried entirely on the surfaces of the glass fibers.
Some embodiments of the present invention relate to fabrics comprising a plurality of glass fibers formed from glass compositions of the present invention. Such fabrics can be woven fabrics in some embodiments, and non-woven fabrics in other embodiments.
Glass fibers formed from glass compositions of the present invention can be used in various reinforcement applications. In some embodiments, glass fibers of the present invention are used in the reinforcement of polymers including thermoplastics and thermosets. In some embodiments, glass fibers formed from glass compositions of the present invention are used in the reinforcement of building materials including, but not limited to, cement and roofing systems and such as shingles. Other uses are disclosed herein.
Some embodiments of the present invention relate to a polymeric composite comprising a polymeric material and a plurality of glass fibers in the polymeric material, the plurality of glass fibers being formed from a glass composition of the present invention. The polymeric material can be a thermoplastic polymer in some embodiments, and a
thermosetting polymer in other embodiments. The at least one glass fiber can be chopped as set forth above and have a variety of lengths depending, for example, on the particular polymeric composite. For example, the plurality of glass fibers can have a length of less than about 105 millimeters in some embodiments, and less than about 13 millimeters in other embodiments. The plurality of glass fibers can have a length of greater than about 50 microns in some embodiments, greater than about 3 millimeters in other embodiments, and greater than about 50 millimeters in other embodiments. In some embodiments, the plurality of glass fibers can be in the form of a woven fabric and/or a non-woven fabric.
In another aspect, the present invention provides methods of making glass compositions from batch compositions comprising significant amounts of one or more glassy minerals, including perlite and/or pumice.
In one embodiment, a method of making a glass composition of the present invention comprises providing a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent and heating the batch composition to a temperature sufficient to form the glass composition. In some embodiments, the batch comprises at least 10 weight percent of an additional source of both silicon and aluminum. In some embodiments, the batch comprises at least 10 weight percent of an additional source of silicon. In some embodiments, the batch comprises at least 10 weight percent of an additional source of aluminum. In some embodiments, the amount of glassy mineral in the batch composition is at least 50 weight percent. In some embodiments, the batch composition is heated to a temperature of about 1400° C to about 1450° C.
These and other embodiments are presented in greater detail in the detailed description which follows.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 provides the results of a high temperature differential thermal analysis (DTA) comparing conversion from solid to liquid of fine particulate perlite and a coarse particulate perlite according to one embodiment of the present invention.
Figure 2 illustrates an apparatus used in the determination of melt viscosities of glass compositions according to embodiments of the present invention.
Figure 3 illustrates the position of the thermocouple and the number of turns of the heating coil of a furnace used in the determination of liquidus temperatures (TL) of glass compositions according to embodiments of the present invention.
Figure 4 provides temperature-viscosity curves for a glass composition according to one embodiment of the present invention, two commercially available E-glass compositions and a C-glass composition.
Figure 5 provides molten glass surface tensions as a function of temperature for a glass composition according to one embodiment of the present invention and two commercially available E-glass compositions.
Figure 6 is a plot of the melt or molten glass density as a function of temperature for a glass composition according to one embodiment of the present invention and two commercially available E-glass compositions.
Figure 7 is a plot of electrical conductivity as a function of temperature for a glass composition according to one embodiment of the present invention as well as E-glass and C- glass compositions.
Figure 8 provides energy requirements for conversion of several batch compositions to glass melt compositions according to one embodiment of the present invention.
Figure 9 is a plot of the absorption spectra for a glass composition according to one embodiment of the present invention as well as E-glass and C-glass compositions. The upper corner of Figure 9 illustrates the temperature-viscosity relationship for the various glasses.
Figure 10 is a plot illustrating the weight loss over time for a glass composition according to one embodiment of the present invention, as well as for various E-glass compositions, when placed in 1 N H2SO4.
Figure 1 1 is a plot illustrating the weight loss over time for a glass composition according to one embodiment of the present invention, as well as for a boron- free E-glass composition, when placed in sulfuric and citric acid solutions.
Figure 12 summarizes Weibull statistical analysis of fiber strengths of various glass compositions according to some embodiments of the present invention.
Figure 13 is a plot illustrating the hydro lytic resistance for a glass composition according to one embodiment of the present invention, as well as E-glass and C-glass compositions.
DETAILED DESCRIPTION
Unless indicated to the contrary, the numerical parameters set forth in the following specification are approximations that can vary depending upon the desired properties sought to be obtained by the present invention. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.
Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the invention are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. Any numerical value, however, inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements. Moreover, all ranges disclosed herein are to be understood to encompass any and all subranges subsumed therein. For example, a stated range of "1 to 10" should be considered to include any and all subranges between (and inclusive of) the minimum value of 1 and the maximum value of 10; that is, all subranges beginning with a
minimum value of 1 or more, e.g. 1 to 6.1, and ending with a maximum value of 10 or less, e.g., 5.5 to 10. Additionally, any reference referred to as being "incorporated herein" is to be understood as being incorporated in its entirety.
It is further noted that, as used in this specification, the singular forms "a," "an," and "the" include plural referents unless expressly and unequivocally limited to one referent.
Certain embodiments of the present invention can employ the various thermodynamic and processing advantages offered by glassy minerals to provide glass compositions having desirable properties. In one aspect, the present invention provides glass compositions formed from batch compositions comprising significant amounts of one or more glassy minerals, including perlite and/or pumice. The glass compositions, in some embodiments, can be fiberizable glass compositions. In some embodiments, glass fibers formed from glass compositions of the present invention can demonstrate advantageous properties including, but not limited to, mechanical and corrosion resistant properties equaling or exceeding glass fibers formed from previous compositions, such as E-glass and C-glass compositions.
Various embodiments of the present invention provide glass compositions, including, without limitation, fiberizable glass compositions. In some embodiments, the present invention provides a glass composition formed from a batch composition comprising at least 10 weight percent of a glassy mineral, and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some further embodiments, the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent.
In some embodiments, the present invention provides a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent.
In some embodiments, the glassy mineral comprising a combination of S1O2 and AI2O3 is perlite, pumice or mixtures thereof.
Moreover, in some embodiments, the batch composition comprises at least 10 weight percent of a sodium source. In another embodiment, the batch composition comprises at least 12 weight percent of a sodium source. A suitable sodium source for use in batch
compositions of the present invention, in some embodiments, comprises sodium carbonate (soda).
In some embodiments, such as, for example, those where lower amounts of a glassy mineral are used, the batch can comprise an additional source or sources of silicon and/or aluminum. In some such embodiments, the batch can comprise at least 10 weight percent of an additional source of both silicon and aluminum. In some such embodiments, the additional source of both silicon and aluminum is an aluminum-containing silicate mineral, such kaolinite, dickite, halloysite, nacrite, montmorillonite, or alkali metal aluminosilicates. In some embodiments, the batch comprises at least 10 weight percent of a source of silicon. In some such embodiments, the source of silicon can be a silicon-containing mineral, such as silica. In some embodiments, the batch comprises at least 10 weight percent of a source of aluminum. In some such embodiments, the source of aluminum can be an aluminum- containing mineral, such as corundum.
In another embodiment, the present invention provides a glass composition comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5.
In some embodiments, a R2O component is not limited to a single compound but can comprise several compounds. In some embodiments, a R20 component comprises Na20,
K2O or L12O or mixtures thereof. Moreover, in some embodiments and without limitation, a R2O component can mean a20 only, K2O only, L12O only, a combination of a20 and K2O, a combination of K2O and L12O, a combination of a20 and L12O, or a combination of a20, K20 and Li20.
In some embodiments, a glass composition of the present invention comprises Na20 in an amount ranging from 6.5 weight percent to about 16 weight percent. A glass composition, in some embodiments, comprises a20 in an amount ranging from 9 weight percent to 14 weight percent. In another embodiment, a glass composition comprises a20 in an amount ranging from 9 weight percent to 13 weight percent. In some embodiments, a
glass composition comprises a20 in an amount ranging from 10 weight percent to 12.5 weight percent.
In some embodiments, a glass composition of the present invention comprises K20 in an amount ranging from 0.5 weight percent to 5 weight percent. A glass composition of the present invention, in some embodiments, comprises K2O in an amount ranging from 0.5 weight percent to 4 weight percent. A glass composition of the present invention, in some embodiments, comprises K2O in an amount ranging from 2 weight percent to 4 weight percent. In some embodiments, a glass composition comprises K2O in an amount ranging from 2.5 weight percent to 3.5 weight percent.
In some embodiments, a glass composition of the present invention comprises L12O in an amount up to 2 weight percent. A glass composition, in another embodiment, comprises L12O in an amount ranging from 0.5 weight percent to 1.5 weight percent.
In some embodiments, a RO component comprises MgO, CaO, SrO, BaO or ZnO or mixtures thereof. In some embodiments, a RO component can comprise MgO only, CaO only, SrO only, BaO only or ZnO only. In some embodiments, a RO component can comprise any combination of two or more metal oxides of MgO, CaO, SrO, BaO and ZnO. A RO component, in some embodiments, is present in a glass composition of the present invention in an amount ranging from 7 weight percent to 31 weight percent.
In one embodiment, a glass composition of the present invention comprises MgO in an amount up to 5 weight percent. A glass composition, in another embodiment, comprises MgO in an amount ranging from 1 weight percent to 4 weight percent. In some
embodiments, a glass composition comprises MgO in an amount ranging from 2 weight percent to 3 weight percent. In some embodiments, a glass composition comprises MgO in an amount <1 weight percent. A glass composition, in some embodiments, comprises MgO in an amount <0.5 weight percent
In some embodiments, a glass composition of the present invention comprises CaO in an amount ranging from 7 weight percent to 26 weight percent. A glass composition, in another embodiment, comprises CaO in an amount ranging from 8 weight percent to 20 weight percent. In some embodiments, a glass composition comprises CaO in an amount ranging from 8 weight percent to 14 weight percent. A glass composition, in another embodiment, comprises CaO in an amount ranging from 10 weight percent to 14 weight percent. In some compositions, a glass composition comprises CaO in an amount ranging from 9 weight percent to 11 weight percent.
In some embodiments, a glass composition comprises ZnO in an amount up to 3 weight percent.
Glass compositions of the present invention, in some embodiments, comprise metal oxides in addition to RO including, but not limited to ZrC>2, Ti02, Mn02 or La203 or mixtures thereof. In some embodiments, a glass composition can comprise ZrC>2 in an amount up to 3 weight percent, T1O2 in an amount up to 3 weight percent, Mn02 in an amount up to 3 weight percent and/or La203 in an amount up to 3 weight percent. In some embodiments, a glass composition can comprise T1O2 in an amount up to 1 weight percent.
In another embodiment, the present invention provides a glass composition comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7.
In another embodiment, the present invention provides a glass composition comprising 56-63 weight percent S1O2, 9-12 weight percent AI2O3, 12-17 weight percent RO (CaO + MgO), 12-14 weight percent R20 (Na20 + K20), 0-2 weight percent Li20,
0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In another embodiment, the present invention provides a glass composition comprising 60-64 weight percent S1O2, 9-12 weight percent AI2O3, 7-15 weight percent RO (CaO + MgO), 13-15.5 weight percent R20 ( a20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In another embodiment, the present invention provides a glass composition comprising 55-63 weight percent S1O2, 9-14 weight percent AI2O3, 11-16.5 weight percent RO (CaO + MgO), 14-17 weight percent R20 (Na20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In some embodiments, glass compositions of the present invention have an Fe203 content of less than 1 weight percent. Glass compositions, in other embodiments, can comprise less than 0.7 weight percent Fe203.
Glass compositions of the present invention, in some embodiments, have a forming temperature (Tp )ranging from about 1120°C to about 1300°C. In another embodiment, glass compositions of the present invention have a forming temperature ranging from about 1150°C
to about 1250°C. In some embodiments, glass compositions have a forming temperature ranging from about 1200°C to about 1240°C.
Glass compositions of the present invention, in some embodiments, have a liquidus temperature ranging from about 1020°C to about 1240°C. In another embodiment, glass compositions of the present invention have a liquidus temperature ranging from about 1070°C to about 1200°C. In some embodiments, glass compositions of the present invention have a liquidus temperature ranging from about 11 10°C to about 1 150°C.
In some embodiments, the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention ranges from about 45°C to about 165°C. In some embodiments, the difference between the forming temperature and the liquidus temperature of a glass composition of the present invention is at least 65°C.
In some embodiments, glass compositions of the present invention have a molten density at the forming temperature ranging from 2.35 g/cm3 to 2.40 g/cm3. In some embodiments, glass compositions of the present invention have molten density ranging from 2.36 g/cm3 to 2.38 g/cm3. As discussed further herein, in some embodiments, molten densities of some glass compositions of the present invention are 5% to 7% lower than the molten densities of some E-glass compositions. As a result, glass fibers formed from some glass compositions of the present invention are lighter per unit volume in comparison to some
E-glass fibers. Lighter glass fibers can be advantageous in many applications, particularly material reinforcement applications, such as polymeric reinforcement applications, where weight savings are often highly desirable. Moreover, as a result of lower densities, glass fibers formed from some glass compositions of the present invention can have larger diameters in comparison to some E-glass fibers of the same weight, thereby providing enhanced mechanical properties.
Additionally, glass compositions of the present invention, in some embodiments, have a molten surface tension at the forming temperature ranging from about 390 x 10"3 N/m to
400 x 10"3 /m.
As provided herein, glass compositions of the present invention can be produced from batch compositions comprising a significant amount of one or more glassy minerals, including perlite and/or pumice. In being produced from batch compositions comprising a significant amount of glassy minerals, glass compositions of the present invention can realize sizable energy savings in some embodiments. As discussed further herein, in some embodiments, production of a melt of a glass composition of the present invention requires
up to 33% less energy in comparison to that required to produce a melt of some E-glass compositions.
Glass compositions of the present invention can be produced by several methods. In one embodiment, a method of producing a glass composition comprises providing a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of Si02 and AI2O3 in an amount of at least 80 weight percent and heating the batch composition to a temperature sufficient to form a melt of the glass composition. In other embodiments, a method of producing a glass composition comprises providing a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent and heating the batch composition to a temperature sufficient to form a melt of the glass composition. In some embodiments, the batch composition is heated to a temperature of about 1400° C to about 1450° C. In some embodiments, such as, for example, those where lower amounts of a glassy mineral are used, the batch can comprise at least 10 weight percent of an additional source of both silicon and aluminum. In some such embodiments, the source of both silicon and aluminum is an aluminum-containing silicate mineral, such kaolinite, dickite, halloysite, nacrite, montmorillonite, or alkali metal aluminosilicates. In some embodiments, the batch can comprise at least 10 weight percent of an additional source of silicon. In some embodiments, the batch can comprise at least 10 weight percent of an additional source of aluminum
In some embodiments, the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of Si02 and A1203 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of Si02 and A1203 in an amount of at least 80 weight percent.
In some embodiments, a glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent is perlite, pumice or mixtures thereof. Perlite and/or pumice used in the production of glass compositions of the present invention, in some
embodiments, is provided in particulate or powder form. In some embodiments, additional energy savings can be realized by using perlite and/or pumice compositions having fine particle sizes as opposed to coarser particle sizes. Figure 1 illustrates the results of a high temperature differential thermal analysis (DTA) comparing the conversion from solid to liquid of a fine particulate perlite (about 200 mesh) and a coarse particulate perlite (about 45 mesh). As illustrated in Figure 1, the fine particulate perlite requires less energy during conversion from solid to liquid in comparison to the coarse particulate perlite, although both the fine and the coarse particulate perlite are glassy or amorphous at room temperature. Moreover, the fine particulate perlite begins liquid formation at a lower temperature than the coarse particulate perlite.
Moreover, in some embodiments, batch compositions of the present invention comprise at least 10 weight percent of a sodium source. In some embodiments, batch compositions comprise at least 12 weight percent of a sodium source. A suitable sodium source for use in batch compositions of the present invention, in some embodiments, comprises sodium carbonate (soda).
In some embodiments, batch compositions used to produce glass compositions of the present invention further comprise other minerals including, but not limited to, limestone, dolomite or mixtures thereof. In one embodiment, for example, a batch composition further comprises up to 17 weight percent limestone. In another embodiment, a batch composition further comprises up to 13 weight percent dolomite.
As provided herein, glass fibers can be formed from any of the glass compositions of the present invention. Glass fibers according to the various embodiments of the present invention can be formed using any process known in the art for forming glass fibers, and more desirably, any process known in the art for forming essentially continuous glass fibers. For example, although not limiting herein, the glass fibers according to non-limiting embodiments of the present invention can be formed using direct- melt or indirect-melt fiber forming methods. These methods are well known in the art and further discussion thereof is not believed to be necessary in view of the present disclosure. See, e.g., K. L. Loewenstein, The Manufacturing Technology of Continuous Glass Fibers. 3rd Ed., Elsevier, N.Y., 1993 at pages 47-48 and 117-234.
In one embodiment, the present invention provides a glass fiber comprising a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In
some embodiments, the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent.
In another embodiment, the present invention provides a glass fiber comprising a glass composition formed from a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 48 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some further embodiments, such as, for example, those where lower amounts of a glassy mineral are used, the batch composition comprises at least 10 weight percent of an additional source of both silicon and aluminum. In some embodiments, the batch comprises at least 10 weight percent of an additional source of silicon. In some embodiments, the batch comprises at least 10 weight percent of an additional source of aluminum.
In another embodiment, the present invention provides a glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5. In some such embodiments, the glass composition includes 10-12 weight percent AI2O3.
In another embodiment, the present invention provides a glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7. In some such embodiments, the glass composition includes 10-12 weight percent AI2O3.
In another embodiment, the present invention provides a glass fiber comprising 56-63 weight percent Si02, 9-12 weight percent A1203, 12-17 weight percent RO (CaO + MgO), 12- 14 weight percent R20 (Na20 + K20), 0-2 weight percent Li20,
0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In another embodiment, the present invention provides a glass fiber comprising 60-64 weight percent Si02, 9-12 weight percent AI2O3, 7-15 weight percent RO (CaO + MgO), 13- 15.5 weight percent R20 (Na20 + K20) ), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La2C>3.
In another embodiment, the present invention provides a glass fiber comprising 55-63 weight percent Si02, 9-14 weight percent A1203, 11-16.5 weight percent RO (CaO + MgO), 14-17 weight percent R20 ( a20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In some embodiments, fibers formed from glass compositions of the present invention have a modulus (E) ranging from about 53.0 GPa to about 65.0 GPa. In another embodiment, fibers formed form glass compositions of the present invention have a modulus (E) ranging from about 56 GPa to about 62 GPa. Moreover, in some embodiments, fibers formed from glass compositions of the present invention have a specific strength ranging from 1.30-1.35 x 105 m.
Fibers formed from glass compositions of the present invention, in some
embodiments, also demonstrate acidic and alkaline corrosion resistance. In one embodiment, for example, a glass fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from 0.55 to 0.60 when exposed to IN H2S04 (pH 0) at 96°C for one hour. In another embodiment, a glass fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from 0.60 to 1.70 when exposed to IN H2S04 (pH 0) at 96°C for one hour.
In another embodiment, a fiber formed from a glass composition of the present invention has a weight loss (wt.%) ranging from about 0.25 to about 0.30 when exposed to 0. IN NaOH (pH 12) at 96°C for one hour. A fiber formed from a glass composition of the present invention, in some embodiments, has a weight loss (wt.%) ranging from 0.35 to 0.85 when exposed to 0. IN NaOH (pH 12) at 96°C for one hour.
Although not limiting herein, glass fibers according to some embodiments of the present invention can be useful in structural reinforcement applications. In some
embodiments, glass fibers of the present invention are used in the reinforcement of polymers including thermoplastics and thermosets. In some embodiments, glass fibers formed from glass compositions of the present invention can be used in the reinforcement of building materials including, but not limited to, cement and roofing systems such as shingles. Other uses and applications for various embodiments of glass fibers formed from glass
compositions of the present invention are discussed below.
In one embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising a glass composition formed from a batch composition comprising at least 50 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 65 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 68 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent.
In another embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising a glass composition a formed from a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, wherein the glassy mineral comprises a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In some embodiments, the batch composition comprises at least 25 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent. In another embodiment, the batch composition comprises at least 40 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent.
In another embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5- 18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.5. In another embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 53-64 weight percent S1O2, 8-12 weight percent AI2O3, 8.5-18 weight percent alkali oxide (R2O) component and a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7. In some such embodiments, the glass composition includes 10-12 weight percent AI2O3.
In another embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 56-63 weight percent Si02, 9-12 weight percent AI2O3, 12-17 weight percent RO (CaO + MgO), 12-14 weight percent R20 (Na20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La2C>3.
In another embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 60-64 weight percent Si02, 9-12 weight percent Al203, 7-15 weight percent RO (CaO + MgO), 13-15.5 weight percent R20 (Na20 + K20) ), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
In another embodiment, the present invention provides a polymeric composite comprising a polymeric material and at least one glass fiber in the polymeric material, the at least one glass fiber comprising 55-63 weight percent Si02, 9-14 weight percent Al203, 11- 16.5 weight percent RO (CaO + MgO), 14-17 weight percent R20 (Na20 + K20), 0-2 weight percent Li20, 0-3 weight percent ZnO, 0-3 weight percent Zr02, 0-3 weight percent Mn02 and 0-3 weight percent La203.
Polymeric composites according to the various embodiments of the present invention can be made by any method known in the art for making polymeric composites. For example, in one embodiment, polymeric composites according to the present invention can be made by impregnating woven fabrics or non-woven fabrics or mats of glass fibers with a polymeric material and then curing the polymeric material. In another embodiment, continuous glass fibers and/or chopped glass fibers comprising glass compositions of the present invention can be disposed in the polymeric material. Depending on the identity of the polymeric material, the polymeric material can be cured subsequent to receiving the continuous or chopped glass fibers.
Exemplary uses and applications for various embodiments of glass fibers formed from glass compositions of the present invention will now be discussed. The potential uses and applications, as well as the fiber glass properties, identified below are not intended to be exclusive, and persons of ordinary skill in the art can generally identify other uses and applications for such glass fibers, as well as variations in fiber diameter and tex
(grams/kilometer) of the fiber glass products to be used in such applications.
Wet Chop Products
In some embodiments, glass fibers formed from glass compositions of the present invention can be provided as wet chop products for use in, for example, roofing and automotive applications. For example, glass fibers of the present invention can be provided as wet chop products having diameters and chop lengths suitable for various such applications. Non-limiting examples of various chopped fiber glass properties are provided in Table 1 below:
Table 1
In general, such products can have broad application as reinforcements. Product Nos.
1 and 2 might be used, for example and without limitation, in high end light weight polypropylene reinforcement applications such as automotive headliners and instrument panels. Product Nos. 3-5 might be used, for example and without limitation, in residential roofing shingle reinforcement and in some embodiments, can offer desirable tensile and tear strengths. Product No. 6 might be used, for example and without limitation, in high end commercial roofing shingle reinforcement and in some embodiments, can offer desirable tensile and tear strengths. Product Nos. 7 and 8 might be used, for example and without limitation, in high end residential roofing shingle reinforcement and in some embodiments, can offer desirable tensile and tear strengths.
Various sizing compositions known to those of skill in the art can be used on such fiber glass products depending on the type of product, compatibility with the resin system to be reinforced, the ultimate end product, downstream processing steps, and other factors. For example, in connection with roofing shingle reinforcement, sizing compositions can be selected that are compatible with acid white water paper-making systems. As another example, sizing compositions can be designed for compatibility with polypropylene reinforcement manufacturing.
Roving and Gun Roving Products
In some embodiments, glass fibers formed from glass compositions of the present invention can be provided as direct rovings or gun rovings. Direct rovings are understood to comprise a single bundle of continuous fibers combined into a discrete strand. Gun rovings can be formed from a plurality of direct wovings, for example, by assembling the direct rovings into a roving package. Direct rovings and gun rovings comprising such glass fibers, in some embodiments, may be used in applications where corrosion resistance is desirable. Non-limiting examples of such applications can include grating, deck panels, truck door panels, dunnagebars, sewage treatment components, and other structural shapes. Direct rovings comprising glass fibers of the present invention can be used in a number of downstream processes including, without limitation, filament winding, multi-axial weaving, pultrusion, and other processes in which direct rovings are used. Non-limiting examples of various direct roving or gun roving fiber glass properties are provided in Table 2 below:
Table 2
In general, such products can have broad application as reinforcements. Product Nos.
9-11, 13, and 15-16 can be continuous fiber, single strand rovings that can be used in pultrusion applications. Such Products can be used to reinforce, for example, polyester, vinylester, and epoxy resins. Thus, in some such embodiments, these Products can be coated with a sizing composition that is compatible with a variety of resin systems including, without limitation, polyester, vinylester, and epoxy resins. Examples of end products resulting from pultrusion processes include, without limitation, grating, deck panels, truck door panels, dunnagebars, sewage treatment components, and other standard structural shapes.
Product Nos. 12 and 14 can be continuous fiber, single strand rovings that can be used in filament winding, pultrusion, weaving, and non-woven fabric applications. Such Products
can be used to reinforce, for example, polyester, vinylester, and epoxy resins. Thus, in some such embodiments, these Products can be coated with a sizing composition that is compatible with a variety of resin systems including, without limitation, polyester, vinylester, and epoxy resins.
Product 17 is an example of a product that can be used as a gun roving in contact molding applications. In some embodiments, the Product can be formulated for use with unsaturated polyester resin systems and can be suitable for use with a wide variety of spraying equipment. Thus, in some such embodiments, the Product can be coated with a sizing composition that is compatible with an unsaturated polyester resin while providing rapid wet through and complete wet out.
Product 18 is a fiber glass strand that can be combined with other strands to provide a high end count roving for use in long blade cutter systems to produce, for example and without limitation, fine, evenly distributed chopped fiber layers on multi-axial, unidirectional, and/or randomly-oriented reinforcing mats. In some embodiments, the Products can be coated with a sizing composition that is compatible with polyester and epoxy resin systems.
As indicated above, various sizing compositions known to those of skill in the art can be used on such fiber glass products depending on the type of product, compatibility with the resin system to be reinforced, the ultimate end product, downstream processing steps, and other factors.
Chopped Strand Products
In some embodiments, glass fibers formed from glass compositions of the present invention can be provided as chopped strands for use in a wide variety of resin systems and fabrication processes. In some embodiments, the chopped strands can be used to form composites where hydrolysis resistance is desired. Non-limiting examples of various chopped fiber glass properties are provided in Table 3 below:
Table 3
In general, such products can have broad application as reinforcements. Product No. 19 is a chopped strand that can be used to reinforce, for example, a wide range of polyamide resins. Thus, in some such embodiments, the Product can be coated with a sizing
composition that is compatible with various polyamide resins. In some embodiments, the Product can combine excellent feeding characteristics, high gloss, and/or desirable dry-as- molded mechanical properties. The Product, in some embodiments, can provide desirable hydrolysis resistance in ethylene glycol-based cooling systems and/or desirable performance in impact-modified resins. Examples of potential end-use products incorporating the Product can include, without limitation, transportation components, electrical and electronic appliance components, and computer housings and components.
Product No. 20 is a chopped strand that can be used to reinforce, for example, a variety of thermoplastic polyester resins. The Product can also provide desirable
reinforcement properties when reinforcing other thermoplastics including, without limitation, sytrenic copolymer resins, polycarbonate resins, polybutylene terephthalate (PBT) resins, polyethylene terpephthalate (PET) resins, polyoxymethylene (POM) resins, and
polyphenylene sulfide (PPS) resins. Thus, in some such embodiments, the Product can be coated with a sizing composition that is compatible with such resins. Examples of potential end-use products incorporating the Product can include, without limitation, transportation components, electrical and electronic appliance components, and computer housings and components.
Product No. 21 is a chopped strand that can be used to reinforce, for example, a variety of thermoplastic polybutylene terephthalate (PBT) resins. Thus, in some such embodiments, the Product can be coated with a sizing composition that is compatible with such resins. The Product can be used, for example and without limitation, in high end applications where mechanical properties are important. In some embodiments, the Product can combine desirable feeding characteristics, desirable hydrolysis resistance, and/or desirable dry-as-molded mechanical properties. Examples of potential end-use products incorporating the Product can include, without limitation, transportation components, electrical and electronic appliance components, and computer housings and components.
As indicated above, various sizing compositions known to those of skill in the art can be used on such fiber glass products depending on the type of product, compatibility with the resin system to be reinforced, the ultimate end product, downstream processing steps, and other factors.
Specialty Yarns
In some embodiments, glass fibers formed from glass compositions of the present invention can be provided as yarns for use in the weaving of fabrics. Such fabrics can be used, for example, in filtration applications, high temperature applications, and other
industrial uses. Non-limiting examples of various yarn properties are provided in Table 4 below:
Table 4
The yarns can be texturized yarns or bobbin/plied yarns depending on the desired application. Texturized yarns are understood to those of skill in the art to be continuous, single end or multi-end, product that have been volumized to provide higher bulk, thickness, and coverage per weight than standard fiber glass yarns. Such texturized yarns can be used, for example, in weaving high temperature and filtration fabrics, as well as other industrial uses.
Bobbin yarns typically comprise a single strand of continuous fibers that have been twisted and wound on a bobbin. Such yarns can have high heat resistance, low moisture absorbency, and/or superior electrical properties.
Various sizing compositions known to those of skill in the art can also be used on such fiber glass products depending on the type of product, compatibility with the resin system to be reinforced, the ultimate end product, downstream processing steps, and other factors.
Long Fiber Thermoplastic Reinforcements
In some embodiments, glass fibers formed from glass compositions of the present invention can be provided as long fiber reinforcements (e.g., having a length of 3 mm or more in some embodiments, greater than 50 mm in some embodiments, or up to about 25 mm in some embodiments). Such long fiber reinforcements can be used, for example, in the reinforcement of thermoplastic polymers such as thermoplastic polyethylene and
polypropylene and thermoplastic polyesters such as polybutylene terephthalate (PBT) or polyethylene terephthalate (PET). The long fiber reinforcements can be used, for example, in granular long-fiber technology (G-LFT) processes, direct long-fiber technology processes, and/or continuous long-fiber technology (C-LFT) processes. One non-limiting example of fiber glass properties for such applications is provided in Table 5 below:
Table 5
The fiber glass product can be used in the various LFT processes to reinforce thermoplastic polymers and can, in some embodimens, permit molders to produce structural or semi-structural parts. Examples of such parts can include, for example, car instrument panels, inside panels of doors, and floor covers.
Various sizing compositions known to those of skill in the art can also be used on such fiber glass products depending on the type of product, compatibility with the resin system to be reinforced, the ultimate end product, downstream processing steps, and other factors.
Various non-limiting embodiments of the present invention will now be illustrated in the following, non-limiting examples.
Examples
Examples 1 through 6 of glass compositions of the present invention provided in Table I were prepared by providing mixtures of ingredients covering 65-72 weight percent perlite, 0-22 weight percent dolomite, 6-35 weight percent limestone and 0-8 weight percent soda. The specific amounts of perlite, dolomite, limestone and/or soda used to produce Examples 1 through 6 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition.
Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 1 through 6.
Table I - Glass Compositions
Ex. Si02 A1203 CaO MgO Na20 K2O R20 Fe203 Ti02 so3 F MxOy
1 59.29 10.84 20.37 3.00 2.82 3.06 5.88 0.48 0.14 0.00 0.00 0.00
2 59.29 10.84 19.37 4.00 2.82 3.06 5.88 0.48 0.14 0.00 0.00 0.00
3 59.29 10.84 18.87 4.50 2.82 3.06 5.88 0.48 0.14 0.00 0.00 0.00
4 59.29 10.84 18.37 5.00 2.82 3.06 5.88 0.48 0.14 0.00 0.00 0.00
5 54.41 9.95 25.68 4.00 2.76 2.59 5.38 0.47 0.14 0.00 0.00 0.00
6 59.29 10.84 23.37 0.00 2.82 3.06 5.88 0.48 0.14 0.00 0.00 0.00
Examples 7 through 13 of glass compositions of the present invention provided in Table II were prepared by providing mixtures of ingredients covering 69-71 weight percent perlite, 6-20 weight percent limestone and 7-10 weight percent soda. The specific amounts of
perlite, limestone and soda used to produce Examples 7 through 13 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 7 through 13.
Table II - Glass Compositions
Ex. Si<¾ A1203 CaO MgO Na20 K20 R20 Fe203 Ti02 S<¾ F MxOy
7 62.66 11.46 9.28 2.98 9.20 3.23 12.43 0.51 0.14 0.25 0.30 0.00
8 61.11 11.17 14.03 0.00 9.29 3.15 12.42 0.49 0.14 0.32 0.30 0.00
9 62.61 11.45 11.26 0.00 10.19 3.23 13.42 0.51 0.14 0.32 0.30 0.00
10 61.13 11.17 13.04 0.00 10.19 3.23 13.42 0.49 0.14 0.32 0.30 0.00
11 58.93 10.76 12.57 0.00 10.34 2.60 13.22 0.47 3.00 0.09 0.28 0.95*
12 58.93 10.76 12.57 0.00 10.34 2.60 13.22 0.47 1.08 0.09 0.28 2.87*
13 57.47 10.78 9.12 0.00 10.44 3.05 13.49 0.62 0.15 0.09 0.28 8.00*
* Zr02 and Ti02 were added to the batch composition used to produce the glass composition.
Examples 14 through 19 of glass compositions of the present invention provided in Table III were prepared by providing mixtures of ingredients covering 69-72 weight percent perlite, 0-13 weight percent dolomite, 3-17 weight percent limestone and 7-10 weight percent soda. The specific amounts of perlite, limestone, soda and/or dolomite used to produce Examples 14 through 19 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 14 through 19.
Table III - Glass Compositions
Ex. Si02 A1203 CaO MgO Na20 20 R20 Fe203 Ti02 S03 F MxOy
14 62.62 11.45 10.77 0.00 10.69 3.23 13.92 0.51 0.14 0.30 0.30 0.00
15 61.91 11.38 7.99 3.00 11.21 3.27 14.48* 0.60 0.14 0.20 0.00 1.0#/0.30*
16 63.65 11.93 4.39 2.56 13.04 3.37 16.41 0.70 0.17 0.20 0.00 0.00
17 61.14 11.17 12.05 0.00 11.26 3.15 14.41 0.49 0.14 0.30 0.30 0.00
18 61.65 11.29 10.94 0.00 11.73 3.18 14.92 0.52 0.14 0.25 0.30 0.00
19 61.65 11.29 7.96 2.98 11.73 3.18 14.92 0.52 0.14 0.30 0.25 0.00
# 1 wt% Li20 replaced 1 wt% Na20; Sb203 used in refining removed
Sb203 used for refining
Examples 20 through 37 of glass compositions of the present invention provided in Table IV were prepared by providing mixtures of ingredients covering 68-73 weight percent perlite, 0-13 weight percent dolomite, 4-16 weight percent limestone and 12-17 weight percent soda. The specific amounts of perlite, limestone, soda and/or dolomite used to
produce Examples 20 through 37 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of each glass composition. Mixtures of the minerals were subsequently heated to a temperature of about 1400°C to obtain molten glass compositions. The molten glass compositions were cooled to provide glass compositions of Examples 20 through 37.
Table IV - Glass Compositions
Ex. Si02 A1203 CaO MgO Na20 K20 R20 Fe203 Ti02 S<¾ F MxOy
20 61.14 11.17 11.05 0.00 12.26 3.15 15.41 0.49 0.14 0.30 0.30 0.00
21 60.78 11.10 11.65 0.00 12.31 3.13 15.44 0.50 0.14 0.20 0.20 0.00
22 60.74 11.09 8.65 2.99 12.31 3.13 15.44 0.50 0.14 0.20 0.25 0.00
23 61.01 10.77 8.25 2.97 12.30 3.91 16.20 0.58 0.07 0.02 0.12 0.00
24 60.64 10.71 8.80 2.96 12.22 3.88 16.10 0.58 0.07 0.02 0.12 0.00
25 60.94 10.76 8.79 2.54 12.28 3.90 16.18 0.58 0.07 0.02 0.12 0.00
26 60.22 10.63 9.15 2.52 10.54 3.86 14.40 2.88 0.07 0.02 0.11 0.00
27 60.92 10.76 8.24 2.97 12.28 3.90 16.18 0.58 0.07 0.18 0.12 0.00
28 60.55 10.69 8.78 2.96 12.20 3.88 16.08 0.58 0.07 0.18 0.12 0.00
29 60.84 10.74 8.77 2.54 12.26 3.90 16.15 0.58 0.07 0.18 0.12 0.00
30 60.12 10.62 9.13 2.51 10.53 3.85 14.38 2.88 0.07 0.17 0.11 0.00
31 55.33 9.77 12.86 5.38 4.59 3.54 8.13 0.54 0.06 0.07 0.11 7.75*
32 58.03 10.25 13.49 5.64 4.81 3.71 8.53 0.56 0.07 0.07 0.11 3.25*
33 55.59 9.82 6.17 3.06 10.03 3.56 13.59 0.53 0.06 0.07 0.11 11.01**
34 62.34 14.32 11.20 0.38 9.04 2.17 11.21 0.34 0.04 0.11 0.06 0.00
35 62.87 11.50 7.98 0.00 13.25 3.24 16.50 0.51 0.14 0.30 0.20 0.00
36 61.14 11.17 10.06 0.00 13.25 3.15 16.40 0.49 0.14 0.30 0.30 0.00
37 60.25 11.01 9.00 1.98 12.70 3.54 16.24 0.81 0.03 0.12 0.00 0.00
B203 used as additives
* ZnO used to replace 1 wt% Na20 and 1 wt% CaO plus Sb203 removal The glass composition of Example 38 provided in Table V was prepared in accordance with the glass composition of Example 12 above, except 1 wt% Li20 was used to replace 1 wt% Na20 and any Sb203 used during refining was removed. The glass composition of Example 39 in Table V was prepared in accordance with the glass composition of Example 12 above, except ZnO was used to replace 1 wt% Na20 and 1 wt% CaO and any Sb203 used during refining was removed.
Table V - Glass Compositions
39 61.93 11.34 6.99 3.00 10.29 3.20 13.49 0.52 0.14 0.30 0.30 2.00
Examples 40 through 71 of glass compositions of the present invention provided in Table VI were prepared in accordance with the glass composition of Example 12 above, except the glass compositions were designed to include various combinations of Li20, La203,
Μηθ2, Ti02, ΖηΟ and ZrC>2. Various amounts of L12CO3, La203, Mn02, Ti02, ZnO and ΖΓ(¾ were incorporated into the batch composition of Example 12 to produce Examples 39-70. Moreover, each of the glass compositions of Examples 39-70 also included 0.09 wt% SO3, 0.27-0.28 wt% F and 0.53-0.55 wt% Fe203.
Table VI - Glass Compositions
Ex. Si<¾ A1203 CaO MgO Na20 K20 R20 Li20 ZnO Zr02 Ti02 La203 Mn02
40 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 0.91 0.91 2.74 0.91 2.74
41 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 2.74 0.91 2.74 0.91 0.91
42 57.22 10.52 7.38 2.77 10.33 3.01 13.34 1.38 0.92 2.77 0.92 0.92 0.92
43 54.70 10.06 7.06 2.65 9.87 2.87 12.75 0.44 2.65 0.88 2.65 2.65 2.65
44 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 2.67 0.89 0.89 2.67 2.67
45 53.29 9.80 6.88 2.58 9.62 2.80 12.42 1.29 2.58 2.58 2.58 2.58 2.58
46 54.70 10.06 7.06 2.65 9.87 2.87 12.75 0.44 2.65 2.65 2.65 0.88 2.65
47 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 0.89 2.67 2.67 0.89 2.67
48 58.85 10.82 7.59 2.85 10.62 3.09 13.72 0.47 0.95 0.95 0.95 0.95 0.95
49 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 0.91 2.74 0.91 2.74 0.91
50 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 2.74 0.91 0.91 2.74 0.91
51 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 2.67 0.89 2.67 2.67 0.89
52 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 2.67 2.67 0.89 2.67 0.89
53 54.70 10.06 7.06 2.65 9.87 2.87 12.75 0.44 2.65 2.65 0.88 2.65 2.65
54 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 0.91 0.91 2.74 2.74 0.91
55 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 0.89 0.89 2.67 2.67 2.67
56 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 0.89 2.67 2.67 2.67 0.89
57 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 0.91 2.74 0.91 0.91 2.74
58 57.22 10.52 7.38 2.77 10.33 3.01 13.34 1.38 2.77 0.92 0.92 0.92 0.92
59 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 2.67 0.89 2.67 0.89 2.67
60 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 0.91 0.91 0.91 2.74 2.74
61 57.22 10.52 7.38 2.77 10.33 3.01 13.34 1.38 0.92 0.92 2.77 0.92 0.92
62 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 2.67 2.67 2.67 0.89 0.89
63 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 2.74 2.74 0.91 0.91 0.91
64 54.70 10.06 7.06 2.65 9.87 2.87 12.75 0.44 0.88 2.65 2.65 2.65 2.65
65 57.22 10.52 7.38 2.77 10.33 3.01 13.34 1.38 0.92 0.92 0.92 0.92 2.77
66 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 0.89 2.67 0.89 2.67 2.67
67 54.70 10.06 7.06 2.65 9.87 2.87 12.75 0.44 2.65 2.65 2.65 2.65 0.88
68 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 2.74 0.91 0.91 0.91 2.74
69 55.18 10.15 7.12 2.67 9.96 2.90 12.86 1.34 2.67 2.67 0.89 0.89 2.67
70 57.22 10.52 7.38 2.77 10.33 3.01 13.34 1.38 0.92 0.92 0.92 2.77 0.92
71 56.70 10.43 7.32 2.74 10.23 2.98 13.21 0.46 0.91 2.74 2.74 0.91 0.91
Examples 72 through 74 of glass compositions of the present invention provided in Table VII may be prepared by providing mixtures of ingredients covering 11-41 weight percent perlite, 0-55 weight percent dolomite, 12-17 weight percent limestone, 0-30 weight percent alkali aluminosilicate mineral, 34-56 weight percent silica, 0-19 weight percent clay (kaolinite), and 1-3 weight percent rouge. The specific amounts of perlite, dolomite, alkali aluminosilicate mineral, silica, clay and/or rouge used to produce Examples 72 through 74 were determined by reference to the compositional parameters of each mineral in relation to
the desired compositional parameters of each glass composition. Mixtures of the minerals are heated to a temperature of about 1400° C to obtain molten glass compositions. The molten glass compositions are cooled to provide glass compositions of Examples 72 through 74.
Table VII - Glass Compositions
_ Ex. _ Si02 A1203 CaO MgO Na20 K2O Ti02 Fe20:
61.60 10.64 "TiTff" ~ θ 56~ IliF 2.38 o.oi 0.44
73 61.56 10.68 11.08 0.59 13.58 2.08 0.02 0.42
74 62.44 10.70 10.51 1.76 12.91 0.70 0.37 0.61
Examples 75 and 76 of glass compositions of the present invention provided in Table VIII may be prepared by providing mixtures of ingredients covering 69.8-70.4 weight percent perlite, 13.3-14.3 weight percent soda ash, 15.4-17.1 weight percent limestone. For Example 76, 0.3 weight percent manganese dioxide was added. The specific amounts of perlite, soda ash, limestone, and manganese dioxide to produce Examples 75-76 were determined by reference to the compositional parameters of each mineral in relation to the desired compositional parameters of the glass composition. Mixtures of the minerals are heated to a temperature of about 1400° C to obtain the molten glass composition. The molten glass composition is cooled to provide the glass compositions of Examples 75 - 76.
Table VIII - Glass Compositions
Ex. Si02 A1203 CaO MgO Na20 K20 Ti02 Fe203 Mn02
75 61.43 10.64 10.48 0.18 12.82 4.00 0.04 0.46 0.00
76 61.20 10.60 10.40 0.20 12.81 3.99 0.04 0.47 0.32
I. Melt Properties
The melt properties of several glass compositions of Examples 1 through 71 were investigated. Investigation of the melt properties of glass compositions of the present invention assisted in the determination of how various compositional parameters affect processing considerations including forming temperatures (TF) and liquidus (TL)
temperatures of the glass compositions.
The measurement of melt viscosity for determining forming temperatures of various glass compositions of the present invention was done by the counter-balance method over the viscosity range of 102 - 105 Poise. The apparatus used to execute the method was calibrated using NIST standard glass. Figure 2 shows schematics of the apparatus.
The apparatus (1) for measuring melt viscosity comprised a platinum ball (2) with a diameter of 16 mm. The platinum ball (2) was hung on a thin platinum wire (6) with the help
of a special bracket/holder (1 1) attached to the right scale of the analytical balance. Initially, the first the end of the platinum wire (6) was attached to the bracket/holder at point A. After warming the furnace (9), the platinum ball was placed in the sample melt inside the crucible (3) and the first end of the wire was attached to the bracket/holder at point B to locate the platinum ball (2) in the center of the melt. The distance between the platinum ball (2) and the walls of the crucible (3) was 13-15 mm. If the distance were smaller, it would affect the precision of the measurement.
The movement of the platinum ball (3) in the melt was performed by changing the weight of the rider. The speed of the movement of the ball in the melt was defined in relative numbers of the balance indicator shift that was observed on the balance scale. When the balance indicator moved 100 points to both sides from zero position, the ball in the melt shifted 1.7 mm from the central position up and down. The sensitivity of the balance was 10 mg per 100 points. A Pt/PtRh thermocouple was placed in the furnace next to the crucible (3) and provided automatic temperature control of the furnace. The hot end of another thermocouple (5) was inside the crucible (10) filled with AI2O3 powder. This thermocouple was connected with the potentiometer to control the furnace temperature at the set point. The temperature control had a precision ±1.5°C.
During the testing, the platinum ball (2) moved from a marked upper position in the melt to a lower marked position under its gravity, the time of which was recorded using a stopwatch with the precision within 0.1 second. The time of the balance scale shift to 20 - 60 scale divisions was measured depending on the viscosity of the melt. The speed of the platinum ball (2) movement (per scale division/seconds) was taken as an average value of six measurements.
Using the velocity (V) - weight (G) data, a plot of V - G was constructed for each glass composition under investigation, all of which showed straight lines passing through the point of origin of the V - G coordinates. The slope k of each line was correlated with melt viscosity in a form of:
= a*log (tgA) + b
where a (1.09) and b (0.87) were constants determined from cell calibration using a NIST standard glass (710A). The relative error in defining viscosity was within 3% over the viscosity range, 2.5 < logr| < 3.5, and within 4 - 6% over the range, logr| < 2.5 and > 3.5.
The measurement of glass composition liquidus temperature (TL) was conducted in a tube type gradient furnace with maximum temperature 1250°C. The furnace chamber had a dimension of 480 mm in length and 50 mm in diameter. The geometry and dimension of the furnace were close to those recommended by the ASTM C829 - 81. Figure 3 illustrates the position of the thermocouple and the number of turns of the heating coil. The coil was made of NiCr resistance alloy wires with diameter of 2 mm.
Table IX summarizes measured liquidus temperature (TL) and reference temperature of forming (TF) defined by melt viscosity of 1000 Poise for glass compositions of Examples 1-22. Glass compositions of Examples 1-6 demonstrated liquidus temperatures greater than 1240°C, the upper limit of the gradient temperature furnace setting. As a result, no viscosity measurements were made for these compositions for a determination of forming temperature. Moreover, several glass compositions displayed desirable melt properties by having lower liquidus and forming temperatures while maintaining a difference in liquidus temperature and forming temperature of at least 65°C. Examples 18, 20 and 21 each provided a forming temperature under 1222°C while maintaining a difference in liquidus and forming temperature of at least 75°C.
Table IX - Melt Properties of Glass Compositions
Example TL TF Delta T (Tp -TL)
(°C) (°C) (°C)
1 1235 1226 -9
2 >1240
3 >1240
4 >1240
5 >1240
6 >1240
7 1296
8 1190 1265 75
9 1290
10 1185 1246 61
1 1 1190 1236 46
12 1130 1265 135
13 1185 1224 39
14 1155 1248 93
15 1085 1250 165
16 1170 1225 55
17 1180 1204 24
18 1135 1222 87
19 1090 1252 162
20 1140 1220 80
21 1130 1205 75
22 1120 1262 142
Table X summarizes measured liquidus temperature (TL) and the forming (TF) temperature for glass compositions of Examples 40 through 71 as a function of weight percent of Li20 in the glass compositions. As provided in Table X, Li20 plays a significant role in lowering the liquidus and forming temperatures of glass compositions of the present invention with minimum reductions in forming and liquidus temperatures being 30°C and 43 °C respectively.
Table X - Melt Properties of Glass Compositions
Table XI summarizes the measured liquidus temperature (TL) and reference temperature of forming (TF) defined by melt viscosity of 1000 Poise for the glass composition of Examples 75-76.
Table XI - Melt Properties of Glass Composition
Example TL TF Delta T (TF -TL)
(°C) (°C) (°C)
75 1 137 1225 88
76 1 139 1228 89
Figure 4 provides temperature-viscosity curves for the glass composition of Example 18, two E-glass compositions and a C-glass composition. From Figure 4, it is noted that the temperature-viscosity characteristics of the glass composition of Example 18 are similar to those of the C-glass composition. Moreover, the viscosity change for the glass composition of Example 18 is not as steep as that provided for the E-glass compositions. As a result, the glass composition of claim 18 can be characterized as a "long" glass whereas the E-glass compositions are "short" glasses. Longer glasses, such as Example 18, in principle, favor fine filament production forming due to less forming tension as a result of slower reduction in melt viscosity over the forming temperature range right after fiber exit from the forming tip.
Figure 5 further illustrates the reduction in forming tension by providing molten glass surface tensions as a function of temperature for the glass composition of Example 22 in
comparison two E-glass compositions . As provided in Figure 5, the glass composition of Example 22 at the forming temperature has 9% and 14% lower surface tension than the E- glass compositions.
Figure 6 is a plot of the melt or molten glass density as a function of temperature for the glass composition of Example 22 in comparison with two E-glass compositions. As provided in Figure 6, the glass composition of Example 22 demonstrated a temperature dependency (slope) similar to the E-glass compositions but had a molten density 5% and 7% lower than the E-glass compositions respectively. As a result, glass fibers formed from some glass compositions of the present invention are lighter per unit volume in comparison to some E-glass fibers. Lighter glass fibers can be advantageous in many applications, particularly material reinforcement application, such as polymeric reinforcement applications, where weight savings are highly desirable. Moreover, as a result of lower densities, glass fibers formed from some glass compositions of the present invention can have larger diameters in comparison to some E-glass fibers of the same weight, thereby providing enhanced mechanical properties.
Figure 7 is a plot of electrical conductivity as a function of temperature for the glass composition of Example 25 in comparison with E-glass and C-glass compositions. As provided in Figure 7, the glass composition of Example 25 and the C-glass composition display much higher electrical conductivities than the E-glass due to their significantly higher alkali metal content. The melt conductivity of an inorganic glass composition is generally dominated by the mobile ions of sodium and potassium. As a result of low sodium and potassium ion content in E-glass compositions, electrical melting technology is only used as a secondary boost system for E-glass processing. However, electrical melting technology has been used as a primary energy for the processing of C-glass compositions. Given that glass compositions of the present invention, in some embodiments, demonstrate higher melt conductivities than some C-glass compositions, electrical melting technology may find application to processing glass compositions of the present invention.
Additionally, glass compositions of the present invention formed from batch compositions comprising perlite and/or pumice, in some embodiments, require less energy for converting the batch composition to a glass melt composition. Figure 8 provides the energy required to convert the batch composition comprising perlite to the glass melt composition of Example 12. Figure 8 also provides the energy required to convert an E-glass batch composition to the associated glass melt. As shown in Figure 8, the energy required to convert the batch composition of Example 12 into a glass melt composition was 20% less
than the energy required to convert the E-glass batch composition to glass melt composition. The energy required to convert a second E-glass batch composition to a glass melt composition was also compared with the energy required to convert the batch composition of Example 12 into a glass melt composition. The energy required to convert the batch composition of Example 12 was about 33% percent lower than the energy to convert the second E-glass batch composition to a glass melt composition.
Figure 9 is a plot of the absorption spectra for the glass composition of Example 75 as well as for an E-glass composition and a C-glass composition. The absorption due to the presence of Fe2+ in the compositions is visible as a large broad band located between 700 and 1500 nm. Example 75 has a larger absorption due to Fe2+ than either of the other glasses, which indicates that heat will dissipate more quickly from the molten glass which advantageously facilitates the formation of glass fibers for high fiber production throughput needs, as compared with the C-glass sample as both have a similar relationship between viscosity and temperature as shown in the insert of Figure 9. As illustrated in the viscosity change for the E-glass sample is faster than both the Example 75 and the C-glass samples. Thus, the slightly lower concentration of Fe2+ (or the lower absorbance at 1000 nm or lower glass cooling rate) of the E-glass is expected to have a similar throughput as the glass composition according to Example 75, but higher than that of C-glass.
II. Acid and Alkaline Corrosion Resistance Fibers formed from glass compositions of the present invention were made in a laboratory using a single tip bushing set up. To compare with commercial glass fiber corrosion resistance under the same testing conditions, AR-, C-, ECR- and E-glass fibers were also made using the same method using cullet.
Glass fiber resistance to corrosion was evaluated in terms of the relative sample percent weight loss after leaching test. Testing was administered by boiling a fiber strand at 96° C for one hour in sulfuric acid or sodium hydroxide solutions under various pH conditions. All of the tests were performed by keeping the ratio of solution volume to the sample mass or volume (5,000 m2) constant. 50 ml of the solution and 1.375 grams of glass fibers (filament diameter - 22 μιη) were used for each test. Triplicate samples were tested to determine average sample weight losses. The results of the acid and alkaline corrosion resistance testing are provided in Table XII.
Table XII - Acid and Alkaline Corrosion Resistance Results (% Weight Loss)
1 The average determined from three individual tests and standard deviation is not greater than 0.1 %.
2 C-glass (wt%): 66 Si02, 5.5 A1203, 10.4 CaO, 3.6 MgO, 0.3 Fe203, 0.2 K20, 12.5 Na20, 0.5F and 0.2 S03. AR-glass (wt%): 57 Si02, 3.2 A1203, 15 Zr02, 4.2 CaO, 0.1 MgO, 0.1 Fe203, 0.1 20, 12 Na20, 0.5 F and 0.23 S03.
The corrosion resistance of glass fibers made from a glass composition according to the embodiment of the present invention in Example 75 was also evaluated in comparison with several E-glass compositions (E-glass compositions with 0 weight % B2O3, 0.7 weight % B2O3, and 1.3 weight % B2O3). Fibers formed from the glass composition of Example 75 were made in a laboratory using a single tip bushing set up. The various E-glass fibers were commercially available glass fibers.
Glass fiber resistance to corrosion was evaluated in terms of the relative sample percent weight loss after leaching test. Testing was administered by placing a fiber sample in a 1 N H2SO4 solution at 96° C for 2, 12, and 24 hour periods. All of the tests were performed by keeping the ratio of solution volume to the sample mass or volume (5,000 m2) constant. 50 ml of the solution and 1.375 grams of glass fibers (filament diameter - 22 μιη) were used for each test. Triplicate samples were tested to determine average sample weight losses. Figure 10 is a plot illustrating the weight loss over time for the glass fiber made from the composition of Example 75 compared to the various E-glass compositions. As shown in
Figure 10, the acid resistance of the glass fiber made from Example 75, according to one embodiment of the present invention, was similar to the boron- free E-glass fiber samples and significantly superior to the boron-containing E-glass fiber samples.
The corrosion resistance of glass fibers made from the glass composition of Example 75 was also compared to the corrosion resistance of 0% B2O3 E-glass fibers in citric acid as well as sulfuric acid. The glass fibers formed from the glass composition of Example 75 were prepared as described above in connection with Figure 10. The 0% B2O3 E-glass fibers were collected from IN OFIBER® CR glass commercially available from PPG Industries, Inc.
Glass fiber resistance to corrosion was evaluated in terms of the relative sample percent weight loss after leaching test. Testing was administered by placing a fiber sample in a 1 N H2SO4 solution at 96° C for 2, 12, and 24 hour periods. In addition, corrosion resistance to citric acid was evaluated in a separate test by placing a fiber sample in a 50% citric acid solution at 960 C for 2, 12, and 24 hour periods. All of the tests were performed by keeping the ratio of solution volume to the sample mass or volume (5,000 m2) constant. 50 ml of the solution and 1.375 grams of glass fibers (filament diameter - 22 μιη) were used for each test. Triplicate samples were tested to determine average sample weight losses. Figure 11 is a plot illustrating the weight loss over time for the glass fibers made from the composition of Example 75 compared to the boron-free E-glass fibers. As shown in Figure 11, the glass fiber made from Example 75, according to one embodiment of the present invention, showed comparable resistance to sulfuric acid to boron-free E-glass fiber samples. The Example 75 glass fiber sample advantageously exhibited a weight loss of -3-3.5% after 24 hours in both acids.
III. Mechanical Testing
Tensile strengths of fibers formed from the glass composition of Example 37 of the present invention were measured by drawing 10-um diameter fibers from a single tip bushing in laboratory. The fibers were subsequently tested by applying tensile force to the fibers from both ends within the same day of fiber forming. Figure 12 summarizes Weibull statistical analysis of the fiber strength with an average of about 3050 MPa and standard error of 22.4 MPa for sample size of 57. Except for the tail, the strength fit the single Weibull distribution well suggesting a single failure mode dominates the fiber failure.
Fiber sonic tensile modulus was measured by drawing 30-um diameter fibers comprising the glass composition of Example 37 of the present invention from a single tip bushing in laboratory. Fiber density was also measured using a pycnometer. The elastic
modulus (or Young's modulus) was calculated using E = pC2 where E, p, and C are modulus, density, and sound velocity, respectively. Fibers of two sets were formed at two different temperatures, the first set at 1000 Poise melt viscosity (Low T Forming) and the second set at 50°C higher than the first set. (High T Forming) Table XIII summarizes the statistical analysis of the fiber modulus with an average of about 56.8 GPa and 61.5 GPa for low and high forming temperature cases, respectively.
Table XIII - Sonic Modulus
Statistics Low T High T Formini
Forming
Mean (GPa) 56.79 61.47
Std Dev (GPa) 4.41 6.73
Std Err Mean 0.99 1.37
(GPa)
upper 95% Mean 58.86 64.31
lower 95%) Mean 54.73 58.62
Sample Size N 20 24
Fiber Diameter 29.96 ± 0.36 30.17 ± 0.42
(μιη)
Fiber Density 2.536 ± 0.006 2.521 ± 0.028
Fibers formed the glass compositions of Examples 75 and 76 were also measured for fiber density, strength, and modulus using the same methods described above. Table XIV provides the mean values for density, tensile strength and modulus for these fibers.
Table XIV
Fibers formed from the glass compositions of Examples 37, 75 and 76 exhibited good mechanical properties. Fibers formed from the glass compositions of Example 75 and 76, for example, exhibited strength and modulus values similar to E-glass fibers.
rv. Hydrolytic Resistance
The hydrolytic resistance of glass fibers according to the embodiment of the present invention of Example 75 was evaluated in relation to E-glass fibers and C-glass fibers. The glass fibers were treated in 80% relative humidity at 50° C for an extended period of time in a humidity and temperature controlled oven. At various times, the fiber failure strain of the fibers at a time of fiber breakage was measured using a two-point bending procedure similar
to the procedure described in S.T. Gulati, "Strength Measurement of Optical Fibers by Bending," J. Am. Ceram. Soc, 69[11] 815-21 (1986). From the failure strain, fiber strength (or stress at failure) was calculated using Hooke's Law (using a fiber modulus values from the separate measurement by the sonic method described above). For each glass composition at a given treatment time, 20 samples were tested. During the test at room temperature, the chamber of the two-point bending apparatus was controlled at a humidity of 50%. Figure 13 is a plot illustrating the hydrolytic resistance of the fibers by showing the fiber failure stress values over time for the Example 75 glass fibers, the C-glass fibers, and the E-glass fibers. The slopes of the lines represent the resistances of the fibers to hydrolysis by moisture (water). The C-glass fibers had a higher slope than both the Example 75 glass fibers and the E-glass fibers, which indicates that the C-glass fibers have a lower resistance to moisture (water) attack. On the other hand, similar slopes were found for both the E-glass fibers and the Example 75 glass fibers. The slopes of both the Example 75 glass fibers and the E-glass fibers were also less than that of the C-glass fibers. In short, the Example 75 glass fibers demonstrated a higher hydrolytic resistance to moisture (water) attack than the C-glass fibers, as well as a hydrolytic resistance to moister (water) comparable to that of the E-glass fibers. V. Exemplary Chopped Strand Applications
One advantage of glass fibers according to some embodiments of the present invention is that the fibers can be formed using furnaces, forehearths, bushings, and/or other fiber- forming equipment used in the production of E-glass. Table XV illustrates various fiber glass strands according to some embodiments of the present inventions that were
manufactured using E-glass fiber-forming equipment and potential applications in which the fibers could be used. The glass fibers were formed from the glass composition of Example 75. The glass fibers according to Example 75 were formed using a 200-tip bushing as a pilot trial using convention commercial fiber glass manufacturing equipment used in the production of E-glass fibers.
Table XV - Glass Fiber Samples
Sample Yardage Fiber Diameter LOI Moisture Application
No. (microns) (%) (%)
1 7336 18.247 0.1 7.2 Wet Chop - Light Weight
2 7849 17.575 0.2 8.2 Wet Chop - Roofing
3 7591 17.758 0.46 N/A Chop Strand - Thermoplastic Resin 1
4 7623 17.493 0.57 N/A Chop Strand - Thermoplastic Resin 2
5 4510 20.275 0.1 7.6 Wet Chop - Light Weight
6 4588 20.921 0.1 6.2 Wet Chop - Roofing
In connection with potential uses of glass fibers according to some embodiments of the present invention in wet chop applications, a variety of wet chop handsheets were generated using varying amounts of E-glass fibers and glass fibers formed from the glass composition of Example 75 ("Ex. 75 Glass"): 100% E-glass, 75% E-glass and 25% Ex. 75 glass, 50% E-glass and 50% Ex. 75 glass, 25% E-glass and 75% Ex. 75 glass, and 100% Ex. 75 glass. The glass fiber samples for the handsheet formation are shown in Table XVI below.
Table XVI
The wet chop handsheets were formed using conventional techniques by dispersing the specified amount of glass fibers in a white water slurry to form a mat. The white water slurry included a thickening agent (water-soluble hydroxyethylcellulose ( atrasol 250HR), a pH modifier (ammonium hydroxide), a wetting agent (Katapol cationic emulsifier), an adhesive (lignin), and water. After the mat was formed, a conventional urea- formaldehyde binder was applied. The mat was then dried. The finished mat comprised 80-85% fibers and 15-20% binder by weight.
Various properties of the finished mats were measured and are reflected in Table XVII below.
Table XVII - Handsheet Performance
Desirable characteristics, which can be exhibited by embodiments of the present invention, can include, but are not limited to, the provision of new glass compositions that utilize glassy minerals; the provision of new glass compositions that utilize perlite; the provision of batch compositions requiring less energy to form melts of glass compositions; the provision of new glass compositions demonstrating significant differences in liquidus and forming temperatures; the provision of glass fibers having reduced weights without a concomitant reduction in mechanical properties; the provision of glass fibers demonstrating desirable acid and alkaline corrosion resistance properties, the provision of glass fibers that can be used in a variety of end-use applications, and others.
It is to be understood that the present description illustrates aspects of the invention relevant to a clear understanding of the invention. Certain aspects of the invention that would be apparent to those of ordinary skill in the art and that, therefore, would not facilitate a better understanding of the invention have not been presented in order to simplify the present description. Although the present invention has been described in connection with certain embodiments, the present invention is not limited to the particular embodiments disclosed,
but is intended to cover modifications that are within the spirit and scope of the invention, as defined by the appended claims.
Claims
1. A fiberizable glass composition formed from a batch composition, the batch composition comprising:
at least 10 weight percent of a glassy mineral, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent;
at least 5 weight percent of a sodium source.
2. A fiberizable glass composition comprising:
53-64 weight percent S1O2;
8-12 weight percent AI2O3;
8.5-18 weight percent alkali oxide (R2O) component; and
a metal oxide (RO) component, wherein the metal oxide component is present in an amount to provide a mass ratio of R2O/RO ranging from about 0.15 to about 1.7.
3. The fiberizable glass composition of claim 1, wherein the batch composition comprises at least 10 weight percent of a source of both silicon and aluminum.
4. The fiberizable glass composition of claim 1, wherein the batch composition comprises at least 10 weight percent of a source of silicon.
5. The fiberizable glass composition of claim 1, wherein the batch composition comprises at least 10 weight percent of a source of aluminum.
6. The fiberizable glass composition of claim 1, wherein the batch composition comprises at least 25 weight percent of the glassy mineral.
7. The fiberizable glass composition of claim 1, wherein the batch composition comprises at least 40 weight percent of the glassy mineral.
8. The fiberizable glass composition of claim 1, wherein the batch composition comprises at least 10 weight percent of the sodium source.
9. The fiberizable glass composition of claim 1, wherein the glassy mineral comprises perlite, pumice or mixtures thereof.
10. The fiberizable glass composition of claim 2, wherein the RO component is present in an amount ranging from 7 weight percent to 31 weight percent.
11. The fiberizable glass composition of claim 2, wherein the RO component comprises a mixture of CaO and MgO .
12. The fiberizable glass composition of claim 2, wherein the RO component comprises CaO in an amount ranging from 7 to 26 weight percent.
13. The fiberizable glass composition of claim 2, wherein the RO component comprises MgO in an amount up to 5 weight percent.
14. The fiberizable glass composition of claim 2, wherein the R2O component comprises a20 in an amount ranging from 6.5 to 16 weight percent
15. The fiberizable glass composition of claim 2, wherein the R2O component comprises K2O in an amount ranging from 0.5 to 4 weight percent.
16. A plurality of glass fibers formed from the fiberizable glass composition of any of claims 1-15.
17. The plurality of glass fibers of claim 16, wherein the glass fibers have a length of less than about 105 millimeters.
18. The plurality of glass fibers of claim 16, wherein the glass fibers have a length of less than about 13 millimeters.
19. The plurality of glass fibers of claim 16, wherein the glass fibers have a length of greater than about three millimeters.
20. The plurality of glass fibers of claim 16, wherein the glass fibers have a length of greater than about fifty millimeters.
21. A fiber glass strand comprising the plurality of glass fibers of claim 16.
22. A roving comprising the plurality of glass fibers of claim 16.
23. A yarn comprising the plurality of glass fibers of claim 16.
24. A woven fabric comprising the plurality of glass fibers of claim 16.
25. A non-woven fabric comprising the plurality of glass fibers of claim 16.
26. A polymeric composite comprising:
a polymeric material; and
a plurality of glass fibers formed from the fiberizable glass composition of any of claims 1-15.
27. The polymeric composite of claim 26, wherein the plurality of glass fibers have a length of less than about 105 millimeters.
28. The polymeric composite of claim 26, wherein the plurality of glass fibers have a length of less than about 13 millimeters.
29. The polymeric composite of claim 26, wherein the plurality of glass fibers have a length of greater than about fifty microns.
30. The polymeric composite of claim 26, wherein the plurality of glass fibers have a length of greater than about fifty millimeters.
31. The polymeric composite of claim 26, wherein the plurality of glass fibers are in the form of a non-woven fabric.
32. The polymeric composite of claim 26, wherein the plurality of glass fibers are in the form of a woven fabric.
33. The polymeric composite of claim 26, wherein the polymeric material comprises a thermoplastic polymer.
34. The polymeric composite of claim 26, wherein the polymeric material comprises a thermosetting polymer.
35. A roofing product comprising a plurality of glass fibers formed from the fiberizable glass composition of any of claims 1-15.
36. A method of producing a glass fiber comprising:
providing a batch composition comprising at least 10 weight percent of a glassy mineral and at least 5 weight percent of a sodium source, the glassy mineral comprising a combination of S1O2 and AI2O3 in an amount of at least 80 weight percent;
heating the batch composition to form a melt of the glass composition;
extruding the molten glass through a bushing to form a glass fiber.
37. The method of claim 36, wherein the batch composition is heated to a fiber forming temperature ranging from about 1 120° C to about 1300° C.
38. The method of claim 36, wherein the batch composition comprises at least 25 weight percent of the glassy mineral.
39. The method of claim 36, wherein the batch composition comprises at least 40 weight percent of the glassy mineral.
40. The method of claim 36, wherein the batch composition comprises at least 10 weight percent of the sodium source.
41. The method of claim 36, wherein the glassy mineral comprises perlite, pumice or mixtures thereof.
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201261594426P | 2012-02-03 | 2012-02-03 | |
| US13/365,590 US9593038B2 (en) | 2009-08-03 | 2012-02-03 | Glass compositions and fibers made therefrom |
| PCT/US2013/024271 WO2013116596A1 (en) | 2012-02-03 | 2013-02-01 | Glass compositions and fibers made therefrom |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP2809626A1 true EP2809626A1 (en) | 2014-12-10 |
Family
ID=47710358
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP13703983.0A Withdrawn EP2809626A1 (en) | 2012-02-03 | 2013-02-01 | Glass compositions and fibers made therefrom |
Country Status (4)
| Country | Link |
|---|---|
| EP (1) | EP2809626A1 (en) |
| CN (2) | CN104169229A (en) |
| RU (1) | RU2660687C2 (en) |
| WO (1) | WO2013116596A1 (en) |
Families Citing this family (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US9446983B2 (en) | 2009-08-03 | 2016-09-20 | Ppg Industries Ohio, Inc. | Glass compositions and fibers made therefrom |
| CN107887552A (en) * | 2017-10-12 | 2018-04-06 | 浙江畅通科技有限公司 | A kind of preparation method of modified AGM dividing plates |
| CN107887556A (en) * | 2017-10-12 | 2018-04-06 | 浙江畅通科技有限公司 | A kind of high-tensile AGM dividing plates |
| CN107879636A (en) * | 2017-10-12 | 2018-04-06 | 浙江畅通科技有限公司 | A kind of preparation method of compound glass microfibre |
| CN108545949B (en) * | 2018-06-04 | 2019-08-13 | 泰安顺茂新材料技术有限公司 | Fiberizable glass composition and method of making |
| CN109020188A (en) * | 2018-09-20 | 2018-12-18 | 泰山玻璃纤维有限公司 | The method that glass fiber waste silk returns kiln reprocessing |
| CN117447085B (en) * | 2023-10-26 | 2024-09-24 | 泰安顺茂新材料集团有限公司 | High-modulus corrosion-resistant glass fiber composition and glass fiber |
Family Cites Families (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CA2023352A1 (en) * | 1989-08-21 | 1991-02-22 | Raymond Charles Srail | Compression molded flame retardant and high impact strength ultra high molecular weight polyethylene composition |
| EP1015396A1 (en) * | 1997-06-23 | 2000-07-05 | Corning Incorporated | Composition for optical waveguide article and method for making continuous clad filament |
| US6746160B2 (en) * | 2000-07-31 | 2004-06-08 | Nippon Electric Glass Co., Ltd. | Preliminary member of optical device component with optical fiber |
| US20070220922A1 (en) * | 2006-03-23 | 2007-09-27 | Bauer Jon F | Method for making glass fibers |
| US20100116179A1 (en) * | 2008-10-15 | 2010-05-13 | Baker Charles H | Polyurethane composite matrix material and composite thereof |
| US9556059B2 (en) * | 2009-08-03 | 2017-01-31 | Hong Li | Glass compositions and fibers made therefrom |
-
2013
- 2013-02-01 EP EP13703983.0A patent/EP2809626A1/en not_active Withdrawn
- 2013-02-01 CN CN201380013694.6A patent/CN104169229A/en active Pending
- 2013-02-01 CN CN201810439937.7A patent/CN108585521A/en active Pending
- 2013-02-01 WO PCT/US2013/024271 patent/WO2013116596A1/en not_active Ceased
- 2013-02-01 RU RU2014135793A patent/RU2660687C2/en not_active IP Right Cessation
Non-Patent Citations (1)
| Title |
|---|
| See references of WO2013116596A1 * |
Also Published As
| Publication number | Publication date |
|---|---|
| WO2013116596A1 (en) | 2013-08-08 |
| CN104169229A (en) | 2014-11-26 |
| RU2660687C2 (en) | 2018-07-09 |
| RU2014135793A (en) | 2016-04-10 |
| CN108585521A (en) | 2018-09-28 |
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