WO2005000754A1 - High temperature resistant vitreous inorganic fiber - Google Patents
High temperature resistant vitreous inorganic fiber Download PDFInfo
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- WO2005000754A1 WO2005000754A1 PCT/US2004/020340 US2004020340W WO2005000754A1 WO 2005000754 A1 WO2005000754 A1 WO 2005000754A1 US 2004020340 W US2004020340 W US 2004020340W WO 2005000754 A1 WO2005000754 A1 WO 2005000754A1
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- weight percent
- lanthanide series
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- series element
- calcia
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Classifications
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- 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
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- 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
-
- 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
- C03C2213/00—Glass fibres or filaments
- C03C2213/02—Biodegradable glass fibres
Definitions
- a high temperature resistant vitreous fiber, useful as a heat or sound insulating material is provided, which has a use temperature at least up to 1000°C.
- the high temperature resistant fiber is easily manufacturable, exhibits low shrinkage, retains good mechanical strength after exposure to the service temperature, and is non-durable in physiological fluids.
- 2017344 describes a glass fiber having physiological solubility formed from glasses containing as required components silica, calcia and Na 2 O, as preferred components, magnesia and KiO, and as optional components boria, alumina, titania, iron oxides, and fluoride.
- International Publication No. WO 90/02713 describes mineral fibers which are soluble in saline solutions, the fibers having a composition including silica, alumina, iron oxide, calcia, magnesia, Na- ⁇ O and K2O.
- 5,108,957 describes glass compositions useful for forming fibers which are able to be degraded in a physiological medium containing as required components silica, calcia, Na-jO plus K-2O, and boria, and optionally alumina, magnesia, fluoride and P 2 O5. It describes the presence of phosphorus as having the effect of increasing the rate of decomposition of the fibers in a physiological medium.
- Canadian Patent Application No. 2043699 describes fibers which decompose in the presence of a physiological medium, which contain silica, alumina, calcia, magnesia, P 2 O5, optionally iron oxide, and Na2 ⁇ plus K-2O. ,
- French Patent Application No. 2662687 describes mineral fibers which decompose in the presence of a physiological medium, which contain silica, alumina, calcia, magnesia, P 2 Os, iron oxide and Na2 ⁇ plus K2O plus TiO 2 .
- U.S. Patent No. 4,604,097 describes a bioabsorbable glass fiber comprising generally a binary mixture of calcia and phosphorous pentoxide, but having other constituents such as calcium fluoride, water, and one or more oxides such as magnesia, zinc oxide, strontium oxide, sodium oxide, potassium oxide, lithium oxide or aluminum oxide.
- International Publication No. WO 92/07801 describes a bioabsorbable glass fiber comprising phosphorous pentoxide, and iron oxide. A portion of the P 2 Os may be replaced by silica, and a portion of the iron oxide may be replaced by alumina.
- the fiber contains a divalent cation compound selected from Ca, Zn and/or Mg, and an alkali metal cation compound selected from Na, K, and/or Li.
- U.S. Patent 5,055,428 describes a soda lime aluminoboro-silicate glass fiber composition which is soluble in a synthetic lung solution. Alumina content is decreased with an increase in boria, and an adjustment in silica, calcia, magnesia, KJO and optionally NazO. Other components may include iron oxide, titania, fluorine, barium oxide and zinc oxide.
- International Publication No. WO 87/05007 describes an inorganic fiber having solubility in saline solution and including silica, calcia, magnesia, and optionally alumina.
- International Publication No. WO 89/12032 describes an inorganic fiber having extractable silicon in physiological saline solution and including silica, calcia, optionally magnesia, alkali metal oxides, and one or more of alumina, zirconia, titania, boria and iron oxides.
- WO 93/15028 describes vitreous fibers that are saline soluble which in one usage crystallize to diopside upon exposure to 1000°C and/or 800°C for 24 hours and have the composition described in weight percent of silica 59-64, alumina 0-3.5, calcia 19-23 and magnesia 14-17, and which in another usage crystallize to wollastonite/pseudowollasto- ⁇ ite and have the composition described in weight percent of silica 60-67, alumina 0-3.5, calcia 26-35 and magnesia 4-6.
- WO 03/059835 discloses a calcium-silicate fiber containing 1.3-1.5 weight percent L 2O 3 .
- a product based on non-durable fiber chemistry is marketed by Unifrax
- U.S. Patent Nos. 5,332,699, 5,421,714, 5,994,247, and 6,180,546 are directed to high temperature resistant, soluble inorganic fibers.
- temperature resistance as expressed by shrinkage characteristics that are important in fibers that are used in insulation, it is also required that the fibers have mechanical strength characteristics during and following exposure to the use or service temperature, that will permit the fiber to maintain its structural integrity and insulating characteristics in use.
- High temperature resistant refractory vitreous inorganic fibers are provided which are non-durable in physiological fluids.
- the fibers are more soluble in simulated lung fluid than standard aluminosilicate refractory ceramic fibers, and exhibit a temperature use limit of up to at least 1000°C or greater. These fibers retain mechanical strength up to the service temperatures.
- the fibers meeting the requirements of being fiberizable, high temperature resistant, and non-durable in physiological fluids, have been identified in which the fiber compositions contain silica (SiO 2 ), magnesia (MgO), calcia (CaO), and at least one compound containing lanthanum or a lanthanide series element.
- the fiber contains silica in an amount that is greater than 71.25 weight percent. According to other embodiments, the fiber contains silica in the range of 71.25 to about 86 weight percent.
- a low shrinkage, refractory, vitreous inorganic fiber based on a calcium-magnesium-silicate system having a use temperature up to at least 1000°C, which maintains mechanical integrity after exposure to the use temperature and which is non-durable in physiological fluids, such as lung fluid.
- the non-durable refractory vitreous inorganic fiber comprises the fiberization product of about 71.25 to about 86 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.75 weight percent calcia, and greater than 0 to about 6 weight percent of a lanthanide series element-containing compound.
- the lanthanide series element- containing compound may be, for example, an oxide of a lanthanide series element.
- the non-durable refractory vitreous inorganic fiber comprises the fiberization product of about 71.25 to about 86 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.75 weight percent calcia, greater than 0 to about 6 weight percent of a lanthanide series element-containing compound and, optionally, zirconia. If zirconia is present in the fiberization melt, then it is generally present in the range of greater than 0 to about 11 weight percent.
- the non-durable refractory vitreous inorganic fiber comprises the fiberizatipn product of about 71.25 to about 86 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.75 weight percent calcia, about greater than 0 to about 6 weight percent of a lanthanide series element-containing compound, and less than about 1 weight percent iron oxide impurity, calculated as Fe2 ⁇ 3 .
- the fibers contain less than about 2 weight percent alumina (AI2O3).
- a process for the production of high temperature resistant vitreous inorganic fiber having a use temperature up to at least 1000°C, which maintains mechanical integrity up to the service temperature and which is non-durable in physiological fluids comprising: forming a melt with the ingredients comprising silica, magnesia, calcia, a compound containing lanthanum or a lanthanide series element, and producing fibers from the melt.
- the process for the production of the high temperature resistant vitreous inorganic fiber having a use temperature up to at least 1000°C, which maintains mechanical integrity up to the service temperature and which is non-durable in physiological fluids comprises: forming a melt with the ingredients comprising of about 71.25 to about 86 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.75 weight percent calcia, and about greater than 0 to about 6 weight percent of a compound containing lanthanum or a lanthanide series element, and producing fibers from the melt.
- a process is further provided for the production of high temperature resistant glass fiber having a use temperature up to at least 1000°C, which maintains mechanical integrity up to the service temperature and which is non-durable in physiological fluids comprising: forming a melt with ingredients comprising about 71.25 to about 86 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about
- the non-durable inorganic vitreous fiber comprises the fiberization product of greater than 71.25 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.75 weight percent calcia, greater than 0 to 6 weight percent of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to about 11 weight percent zirconia.
- Viscosity modifiers which, when added to the melt, affect the melt viscosity so as to approximate the profile, or shape, of the viscosity/temperature curve of a melt that is readily fiberizable, as discussed below.
- the present invention further provides a high temperature resistant, non-durable inorganic vitreous fiber that maintains mechanical integrity after exposure to the service temperature, comprises the fiberization product of about 71.5 to about 79 weight percent silica, greater than 0 to about 16.5 weight percent magnesia, about 9 to about 27 weight percent calcia, greater than 0 to 6 weight percent of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to about 5 weight percent zirconia.
- the fiber optionally contains not more than about 2 weight percent alumina. In other embodiments, the fiber contains from 0 to about 1 weight percent iron oxides, calculated as Fe2O 3 .
- a high temperature resistant, non-durable inorganic fiber which maintains mechanical integrity after exposure to the service temperature, comprises the fiberization product of about 71.5 to about 76.1 weight percent silica, greater than 0 to about 16.5 weight percent magnesia, about 9.25 to about 28 weight percent calcia, greater than 0 to 6 weight percent of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to 5 weight percent zirconia.
- the process for the production of low shrinkage, high temperature resistant inorganic fiber having a use temperature up to at least 1000°C, which maintains mechanical integrity after exposure to the use temperature and which is non-durable in physiological fluids including forming a melt with ingredients comprising about 71.5 to about 79 weight percent silica, greater than 0 to about 16.5 weight percent magnesia, about 9 to about 27 weight percent calcia, greater than 0 to 6 weight percent of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to about 5 weight percent zirconia.
- the process for the production of low shrinkage,, high temperature resistant inorganic fiber having a use temperature up to at least 1000°C, which maintains mechanical integrity after exposure to the use temperature and which is non-durable in physiological fluids including forming a melt with ingredients comprising 71.5 to about 76.1 weight percent silica, greater than 0 to about 16.5 weight percent magnesia, about 9.25 to about 28 weight percent calcia, greater than 0 to 6 weight percent of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to about 5 weight percent zirconia.
- melt compositions utilized to produce the fibers of the present invention provide a melt viscosity suitable for blowing or spinning fiber, and for imparting mechanical strength to the resultant fibers after exposure to service temperature.
- a high temperature resistant fiber containing article is provided selected from bulk fibers, blankets, needled blankets, papers, felts, cast shapes, vacuum cast forms, and compositions, said article comprising the inventive low shrinkage, high temperature resistant inorganic fiber.
- a method of insulating an article including disposing on, in, near or around the article, a thermal insulation material having a service temperature up to at least 1000°C, which maintains mechanical integrity after exposure to the use temperature and which is non-durable in physiological fluids, said insulation material comprising the fiber of any of the above described embodiments.
- FIG. 1A is a viscosity vs. temperature curve of a melt chemistry for a commercially available, spun aluminosilicate fiber.
- FIG. IB is a viscosity vs. temperature curve of a melt chemistry for a commercially available, blown aluminosilicate fiber.
- a low shrinkage, high temperature resistant vitreous inorganic fiber having a use temperature over at least 1000°C, which maintains mechanical integrity up to the use temperature and which is non-durable in physiological fluids, comprising the fiberization product of silica, magnesia, calcia, and lanthanum or a lanthanide series element-containing compound is provided.
- the inorganic vitreous fiber is useful as a heat (thermal) or sound (acoustical) insulation material.
- the fiber to be produced In order for an inorganic composition to be a viable candidate for producing a satisfactory high temperature inorganic fiber product, the fiber to be produced must be manfacturable, sufficiently soluble in physiological fluids, and capable of surviving high temperatures with minimal shrinkage and minimal loss of integrity.
- “Viscosity” refers to the ability of a glass melt to resist flow or shear stress. The viscosity-temperature relationship is critical in dete-rmining whether it is possible to fiberize a given glass composition. An optimum viscosity curve would have a low viscosity (5-50 poise) at the fiberization temperature and would gradually increase as the temperature decreased.
- the melt is not sufficiently viscous (i.e., too thin) at the fiberization temperature, the result is a short, thin fiber, with a high proportion of unfiberized material (shot). If the melt is too viscous at the fiberization temperature, the resulting fiber will be extremely coarse (high diameter) and short.
- Viscosity is dependent upon melt chemistry, which is also affected by elements or compounds that act as viscosity modifiers.
- the lanthanum or lanthanide series element-containing compound acts as viscosity modifier which permit fibers to be blown or spun. It is necessary, however, that such viscosity modifiers, either by type or amount, do not adversely impact the solubility, shrink resistance, or mechanical strength of the blown or spun fiber.
- Fiber integrity is an important property, since fiber must support its own weight in any application and must also be able to resist abrasion due to moving air or gas. Indications of fiber integrity and mechanical strength are provided by visual and tactile observations, as well as mechanical measurement of these properties of after- service temperature exposed fibers.
- the fiber has a compressive strength within a target range comparable to that of a standard, commercial aluminosilicate fiber, and additionally has high compression recovery, or resiliency.
- the fibers of the present invention are significantly less durable than normal refractory ceramic fiber, such as aluminosilicates (about 50/50 weight percent) and alumino-zirconia-silicates or AZS (about 30/16/54 weight percent) in simulated lung fluid.
- normal refractory ceramic fiber such as aluminosilicates (about 50/50 weight percent) and alumino-zirconia-silicates or AZS (about 30/16/54 weight percent) in simulated lung fluid.
- the non-durable refractory vitreous fibers are made by standard glass and ceramic fiber manufacturing methods.
- Raw materials such as silica, any suitable source of magnesia such as enstatite, forsterite, magnesia, magnesite, calcined magnesite, magnesium zirconate, periclase, steatite, or talc, any suitable source of calcia such as lime, dolomite or wollastonite, and any suitable source of zirconia such as baddeleyite, magnesium zirconate, zircon or zirconia, are delivered in selected proportions from bins to a furnace where they are melted and blown using a fiberization nozzle, or spun, either in a batch or a continuous mode.
- magnesia such as enstatite, forsterite, magnesia, magnesite, calcined magnesite, magnesium zirconate, periclase, steatite, or talc
- any suitable source of calcia such as lime, dolomite or wollastonite
- zirconia such as bad
- the viscosity of the melt may optionally be controlled by the presence of viscosity modifiers, sufficient to provide the fiberization required for the desired applications.
- the viscosity modifiers may be present in the raw materials which supply the main components of the melt, or may, at least in part, be separately added. Desired particle size of the raw materials is determined by furnacing conditions, including furnace size (SEF), pour rate, melt temperature, residence time, and the like.
- a compound containing a lanthanide series element can be effectively utilized to enhance the viscosity of a fiber melt containing silica, magnesia and calcia, thereby improving the fiberizability of the fiber melt.
- the use of the lanthanide element- containing compound enhances viscosity and improves fiberization without adversely impacting the thermal performance, solubility, or mechanical integrity of the resultant fiber product.
- Useful lanthanide series elements include La, Ce, Pr, Nd, Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu and mixtures thereof.
- the element Y resembles many of the lanthanide series elements and is found with them in nature. For purposes of this specification, the element Y is to be considered to be included in the lanthanide series elements.
- compounds containing the lanthanides elements La, Ce, Pr, Nd or combinations thereof can be added to the fiber melt.
- a particularly useful lanthanide series element that can be added to the fiber melt is La.
- the compound containing a lanthanide series element may include, without limitation, lanthanide series element-containing bromides, lanthanide series element-containing chlorides, lanthanide series element-containing lanthanide series element- containing fluorides, lanthanide series element-containing phosphates, lanthanide series element-containing nitrates, lanthanide series element-containing nitrites, lanthanide series element-containing oxides, and lanthanide series element- containing sulfates.
- the oxides of the lanthanide series elements are useful for enhancing the viscosity of a fiber melt containing silica, magnesia, and calcia to improve the melt fiberizability.
- a particularly useful oxide of a lanthanide series element is La2 ⁇ 3.
- La2 ⁇ 3 is commonly referred to in the chemical arts as “lanthanum” or “lanthanum oxide” and, therefore, these terms may be used interchangeably in the specification.
- mixtures of lanthanide series element-containing compounds can be used in the fiber melt to enhance melt viscosity. Chemically, the lanthanide series elements are very similar and tend to be found together in ore deposits.
- the term "misch metal” is used to designate a naturally occurring mixture of lanthanide series elements. Further refining is required to separate the convert the misch metal oxide into its constituent misch metal oxides. Thus, misch metal oxide itself may be used as the lanthanide series element-containing compound in the fiber melt.
- alumina is a viscosity modifier
- the inclusion of alumina in the fiber melt chemistry results in a reduction in the solubility of the resulting fiber in physiological saline solutions. It is, therefore, desirable to limit the amount of alumina present in the fiber melt chemistry to at least below about 2 weight percent, and, if possible, with raw materials used, to less than about 1 weight percent.
- One approach to testing whether a fiber of a defined composition can be readily manufactured at an acceptable quality level is to determine whether the viscosity curve of the experimental chemistry matches that of a known product which can be easily fiberized.
- the addition of lanthanum oxide to a calcium-magnesium-silicate melt enhances fiberization by extending the viscosity curve of the melt to lower temperatures and high viscosities.
- the shape of the viscosity vs. temperature curve for a glass composition is representative of the ease with which a melt will fiberize and thus, of the quality of the resulting fiber (affecting, for example, the fiber's shot content, fiber diameter, and fiber length). Glasses generally have low viscosity at high temperatures. As temperature decreases, the viscosity increases. The value of the viscosity at a given temperature will vary as a function of composition, as will the overall steepness of the viscosity vs. temperature curve.
- the viscosity curve of melt of silica, magnesia and lanthanum or a lanthanide series element-containing compound has a viscosity that approximates the target viscosity curve of FIG 1 A for the commercially available, spun aluminosilicate fiber.
- the non-durable vitreous inorganic fibers are made by standard manufacturing methods.
- the raw materials which generally comprise greater than 71.25 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.5 weight percent calcia, greater than 0 to about 6 weight percent of a compound containing a lanthanide series element and, optionally, zirconia, are delivered to the melt as discussed above for blowing or spinning.
- the sum of the amount silica, magnesia, calcia, lanthanide series element-containing compound, and incidental impurities from raw materials, in weight percent does exceed 100 weight percent.
- the non-durable, inorganic fiber comprises the fiberization product of greater than 71.25 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about 28.5 weight percent calcia, greater than 0 to about 6 of a compound containing lanthanum or a lanthanide series element and, optionally, zirconia. Additional elements or compounds may be utilized as viscosity modifiers which, when added to the melt, affect the melt viscosity so as to approximate the profile, or shape, of the viscosity/temperature curve of a melt that is readily fiberizable, without having a detrimental affect on the fiber properties.
- the non-durable vitreous inorganic fiber comprises the fiberization product of about 71.5 to about 79 weight percent silica, greater than 0 to about 16.5 weight percent magnesia, about 9 to about 27 weight percent calcia, greater than 0 to about 6 of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to about 5 weight percent zirconia; about 71.5 to about 76.1 weight percent silica, 0 to about 16.5 weight percent magnesia, and about 9.25 to about 28 weight percent calcia, greater than 0 to about 6 of a compound containing lanthanum or a lanthanide series element and, optionally, 0 to about 5 weight percent zirconia; and about 72 to about 75 weight percent silica, greater than 0 to about 16.5 weight percent magnesia, about 9.25 to about 28 weight percent calcia, greater than 0 to about 6 of a compound containing lanthanum or a lanthanide series element and, optionally, 0
- the operable silica level is greater than 71.25 weight percent, in the range of greater than 71.25 to about 86 weight percent silica, with the upper level of silica limited only by manufacturability. This is contrary to the teachings in the art, which state that calcia-containing inorganic fibers having silica levels above 71.24 weight percent are not manufacturable.
- the non-durable refractory vitreous inorganic fiber comprises the fiberization product of about 71.25 to about 86 weight percent silica, greater than 0 to about 20 weight percent magnesia, about 5 to about, 28.75 weight percent calcia, and about greater than 0 to about 6 weight percent of a compound, such as an oxide, containing a lanthanide series element, wherein the fiber contains substantially no alkali metal oxide.
- the fibers contain substantially no alkali metal, greater than trace impurities.
- trace impurities refers to those amounts of a substance in the fiberization product that are not intentionally added to the fiber melt, but which may be present in the raw starting materials from which the fibers are produced.
- the fiber contains no more than about 2 weight percent alumina.
- the fiber contains not more than about 1 weight percent iron oxides (calculated Fe 2 O 3 ).
- the fiber may be manufactured with existing fiberization technology and formed into multiple product forms, including but not limited to bulk fibers, fiber- containing blankets, papers, felts, vacuum cast shapes and composites.
- the fiber may be used in combination with conventional materials utilized in the production of fiber- containing blankets, vacuum cast shapes and composites, as a substitute for conventional refractory ceramic fibers.
- the fiber may be used alone or in combination with other materials, such as binders and the like, in the production of fiber-containing paper and felt.
- the fiber is soluble in the simulated physiological lung fluid, thus minimizing concerns over fiber inhalation.
- the high temperature resistant refractory glass fibers are readily manufacturable from a melt having a viscosity suitable for blowing or spinning fiber, and are non-durable in physiological fluids are provided.
- the high temperature resistant refractory glass fibers are non-durable in physiological fluids, and exhibit low shrinkage at the use temperature. It should be appreciated that the present invention is not limited to the specific embodiments described above, but includes the following variations, modifications and equivalent embodiments. The embodiments disclosed separately are not necessarily in the alternative, as various embodiments of the invention may be combined to provide desired characteristics or results.
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Abstract
Description
Claims
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| AU2004252156A AU2004252156B2 (en) | 2003-06-27 | 2004-06-25 | High temperature resistant vitreous inorganic fiber |
| EP04777050A EP1648837A4 (en) | 2003-06-27 | 2004-06-25 | High temperature resistant vitreous inorganic fiber |
| CA2530274A CA2530274C (en) | 2003-06-27 | 2004-06-25 | High temperature resistant vitreous inorganic fiber |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US48342703P | 2003-06-27 | 2003-06-27 | |
| US60/483,427 | 2003-06-27 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2005000754A1 true WO2005000754A1 (en) | 2005-01-06 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2004/020340 Ceased WO2005000754A1 (en) | 2003-06-27 | 2004-06-25 | High temperature resistant vitreous inorganic fiber |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US7468336B2 (en) |
| EP (1) | EP1648837A4 (en) |
| AU (1) | AU2004252156B2 (en) |
| CA (1) | CA2530274C (en) |
| WO (1) | WO2005000754A1 (en) |
Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| WO2008065363A1 (en) | 2006-11-28 | 2008-06-05 | The Morgan Crucible Company Plc | Inorganic fibre compositions |
| EP2213634A1 (en) | 2007-11-23 | 2010-08-04 | The Morgan Crucible Company Plc | Inorganic fibre compositions |
| US8163377B2 (en) | 2005-11-10 | 2012-04-24 | The Morgan Crucible Company Plc | High temperature resistant fibres |
| EP4375254A3 (en) * | 2011-09-09 | 2024-08-14 | Electric Glass Fiber America, LLC | Glass compositions and fibers made therefrom |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| GB2383793B (en) * | 2002-01-04 | 2003-11-19 | Morgan Crucible Co | Saline soluble inorganic fibres |
| US8517083B2 (en) * | 2007-12-14 | 2013-08-27 | Refractory Specialties, Incorporated | System, apparatus and method for manufacturing metal ingots |
| BR112014014087A2 (en) * | 2011-12-19 | 2017-06-13 | Unifrax I Llc | high temperature resistant inorganic fiber |
| JP6639380B2 (en) | 2013-03-15 | 2020-02-05 | ユニフラックス ワン リミテッド ライアビリティ カンパニー | Inorganic fiber |
| BR112017000909B1 (en) | 2014-07-16 | 2022-07-12 | Unifrax I Llc | INORGANIC FIBER WITH INCREASED SHRINKAGE AND STRENGTH |
| US10023491B2 (en) | 2014-07-16 | 2018-07-17 | Unifrax I Llc | Inorganic fiber |
| EP3169637B1 (en) | 2014-07-17 | 2020-03-04 | Unifrax I LLC | Inorganic fiber with improved shrinkage and strength |
| US9919957B2 (en) | 2016-01-19 | 2018-03-20 | Unifrax I Llc | Inorganic fiber |
| US10882779B2 (en) | 2018-05-25 | 2021-01-05 | Unifrax I Llc | Inorganic fiber |
| CN116568647A (en) * | 2020-12-11 | 2023-08-08 | 尤尼弗瑞克斯 I 有限责任公司 | High temperature resistant inorganic fiber with low biopersistence |
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Cited By (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US8163377B2 (en) | 2005-11-10 | 2012-04-24 | The Morgan Crucible Company Plc | High temperature resistant fibres |
| WO2008065363A1 (en) | 2006-11-28 | 2008-06-05 | The Morgan Crucible Company Plc | Inorganic fibre compositions |
| US8088701B2 (en) | 2006-11-28 | 2012-01-03 | The Morgan Crucible Company Plc | Inorganic fibre compositions |
| EP2213634A1 (en) | 2007-11-23 | 2010-08-04 | The Morgan Crucible Company Plc | Inorganic fibre compositions |
| EP4375254A3 (en) * | 2011-09-09 | 2024-08-14 | Electric Glass Fiber America, LLC | Glass compositions and fibers made therefrom |
Also Published As
| Publication number | Publication date |
|---|---|
| EP1648837A1 (en) | 2006-04-26 |
| US7468336B2 (en) | 2008-12-23 |
| EP1648837A4 (en) | 2010-07-21 |
| CA2530274C (en) | 2012-08-14 |
| AU2004252156A1 (en) | 2005-01-06 |
| US20050032619A1 (en) | 2005-02-10 |
| CA2530274A1 (en) | 2005-01-06 |
| AU2004252156B2 (en) | 2009-03-12 |
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