Claims
- 1. An alkali-resistant glass material produced by a process comprising the steps of heating a mixture comprising a magnesium silicate and a calcium oxide-containing compound, or a calcium silicate and a magnesium oxide-containing compound to a temperature above the liquidus temperature of the mixture to form a viscous liquid; drawing the viscous liquid to form a fiber; and cooling the fiber to a temperature below the liquidus temperature of the mixture; the resulting fiber consisting essentially of, in approximate weight percent:
- ______________________________________ SiO.sub.2 30-65 MgO 12-18 CaO 12-18 Minor Oxides 5-20______________________________________
- the minor oxides being selected from R.sub.2.sup.a O, R.sup.b O, R.sub.2.sup.c O.sub.3, R.sup.d O.sub.2 and R.sub.2.sup.e O.sub.5, wherein
- R.sup.a =Li, K, Na,
- R.sup.b =Ba, Cd, Pb, Sr,
- R.sup.c =Al, B,
- R.sup.d =Ce, Sn, Ti,
- R.sup.e =Sb, Nb, P, Ta, and
- wherein a single minor oxide is present in an amount up to about 10 weight percent of the glass.
- 2. The alkali-resistant glass material accorrding to claim 1 which is a continuous monofilamentous fiber.
- 3. The alkali-resistant glass material according to claim 2 wherein the fiber is formed by drawing the viscous liquid through an orifice.
- 4. The alkali-resistant glass material according to claim 3 which is a strand formed from a plurality of cooled continuous fibers.
- 5. The alkali-resistant glass material according to claim 4 wherein the strand comprises from 100 to 200 individual fibers.
- 6. The alkali-resistant glass material according to claim 2 wherein the continuous fiber is a monofilamentous fiber of essentially constant diameter and unlimited length.
- 7. The alkali-resistant glass material according to claim 6, wherein the continuous fiber has a nominal diameter of from about 2 to 50 microns.
- 8. The alkali-resistant glass material according to claim 7, wherein the continuous fiber has a nominal diameter of from 10 to 20 microns.
- 9. The alkali-resistant glass material according to claim 1 wherein the mixture contains from about 30 to 63 weight percent magnesium silicate, from 0 to about 45 weight percent silica, from about 21 to 45 weight percent calcium carbonate, and from about 5 to 20 weight percent of an oxide selected from lithium oxide, potassium oxide, sodium oxide, barium oxide, cadmium oxide, lead monoxide, strontium oxide, zinc oxide, alumina, boric oxide, ceric oxide, stannic oxide, titania, zirconia, antimony pentoxide, niobium pentoxide, phosphoric pentoxide, tantalum pentoxide, and combinations thereof wherein any single oxide from the group is added in a maximum amount of about 10 weight percent.
- 10. The alkali-resistant glass material according to claim 9 wherein the magnesium silicate is at least one of olivine, serpentine, forsterite, talc and mixtures thereof, the silica is a free silica or a mixture thereof, and the calcium carbonate is at least one of limestone, calcite, aragonite, dolomite, chalk, whiting and mixtures thereof.
- 11. The alkali-resistant glass material according to claim 10 wherein the magnesium silicate is talc, the silica is sand, and the calcium carbonate is limestone.
- 12. The alkali-resistant glass material according to claim 1 which is a glass wool fiber.
- 13. The alkali-resistant glass material according to claim 1 wherein the source of magnesium oxide is at least one of seawater magnesia, magnesium hydroxide, magnesium carbonate and magnesium silicate, and mixtures thereof.
- 14. The alkali-resistant glass material according to claim 1 wherein the source of calcium oxide is at least one of a naturally occurring for of calcium carbonate, wollastonite, calcium oxide, calcium hydroxide, and mixtures thereof.
- 15. The alkali-resistant glass material according to claim 1 wherein the liquidus temperature of the mixture is from about 900.degree. C. to 1400.degree. C.
- 16. The alkali-resistant glass material according to claim 1 wherein the mixture is heated to from about 100.degree. C. to 200.degree. C. above the liquidus temperature to effect melting of the mixture.
- 17. The alkali-resistant glass material according to claim 16 wherein the mixture is then cooled to a temperature above the liquidus temperature where the viscous liquid has a melt viscosity of from about 100 to 2000 poise.
- 18. The alkali-resistant glass material according to claim 1 wherein the viscous liquid is drawn into a fiber by extrusion through an orifice.
- 19. The alkali-resistant glass material according to claim 18 wherein the extrusion step is by gravity or pressure extrusion.
- 20. The alkali-resistant glass material according to claim 18 wherein the orifice has a diamter of from 2 to 10 millimeters.
- 21. The alkali-resistant glass material according to claim 1 wherein the drawn fiber is cooled to a temperature below the liquidus temperature of the mixture by a counter-currently flowing gas stream.
- 22. A fiber-reinforced cementitious product containing fibers of the alkali-resistant glass material of claim 1.
- 23. The fiber-reinforced cementitious product of claim 22 wherein the fibers of the alkali-resistant glass material are present at a level of from about 1 to 20 weight percent of the cementitious product.
- 24. The fiber-reinforced cementitious product of claim 23 wherein the fibers of the alkali-resistant glass material are present at a level of from about 2 to 10 weight percent of the cementitious product.
- 25. An alkali-resistant glass material coated with a layer of an alkali-resistant polymer produced by a process comprising the steps of heating a mixture comprising a magnesium silicate and a calcium oxide-containing compound, or a calcium silicate and a magnesium oxide-containing compound to a temperature above the liquidus temperature of the mixture to form a viscous liquid; drawing the viscous liquid to form a fiber; cooling the fiber to a temperature below the liquidus temperature of the mixture; the resulting fiber consisting essentially of, in approximate weight percent:
- ______________________________________ SiO.sub.2 30-65 MgO 12-18 CaO 12-18 Minor Oxides 6-20______________________________________
- the minor oxides being selected from R.sub.2.sup.a O, R.sup.b O, R.sub.2.sup.c O.sub.3, R.sup.d O.sub.2 and R.sub.2.sup.e O.sub.5, wherein
- R.sup.a =Li, K, Na,
- R.sup.b =Ba, Cd, Pb, Sr,
- R.sup.c =Al, B,
- R.sup.e =Sb, Nb, P, Ta, and
- wherein a single minor oxide is present in an amount up to about 10 weight percent of the glass; and
- coating the fiber with a layer of the alkali-resistant polymer.
- 26. The alkali-resistant glass material according to claim 25 which is a continuous monofilamentous fiber.
- 27. The alkali-resistant glass material according to claim 7 wherein the alkali-resistant polymer is ethylene-vinyl chloride co-polymer or butadiene-styrene co-polymer.
- 28. The alkali-resistant glass material according to claim 25 wherein the fiber is coated with a layer of alkali-resistant polymer by passing the fiber over a sponge saturated with a solution of the polymer and then allowing the solvent of the solution to evaporate and the polymer to cure.
- 29. The alkali-resistant glass material according to claim 28 wherein the polymer coating is from 2 to 20 weight percent of the coated fiber and has a thickness of from about 0.2 to 2.0 microns.
- 30. The alkali-resistant glass material according to claim 25 wherein a sizing agent is applied to the fiber prior to coating the fiber with a layer of the alkali-resistant polymer.
- 31. A fiber-reinforced cementitious product containing alkali-resistant-polymer-coated fibers of the alkali-resistant glass material of claim 7.
- 32. The fiber-reinforced cementitious product of claim 31 wherein the alkali-resistant-polymer-coated fibers of the alkali-resistant glass material are present at a level of from about 1 to 20 weight percent of the cementitious product.
- 33. The fiber-reinforced cementitious product of claim 32 wherein the alkali-resistant-polymer-coated fibers of the alkali-resistant glass material are present at a level of from about 2 to 10 weight percent of the cementitious product.
Parent Case Info
This is a continuation of application Ser. No. 867,827, filed on May 28, 1986, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
867827 |
May 1986 |
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