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Silicate glass fibers structural

Molecular structure of zirconium-silicate glass fiber materials... [Pg.44]

Molecular structure of Zr-silicate glass fibers material is studied by means of NMR and IRS. The high thermal-, and chemical stability are caused by formation of framework stmcture consisting of ZtflV) ions (cormectors) connected with Si04 tertahedra. [Pg.50]

MMVF are synthetic fibers with glasslike structures. The term usually refers to silicate-based glass fibers, because these compositions form the largest volume of fibers produced. However, in addition to fiberglass and fused silica (Si02), there are other amorphous fibers used in commerce alumina (AI2O3) and silica combinations, rock and slag wool, as well as fibers with nonsilicate compositions such as carbon. Many of these amorphous fibers have proprietary names. [Pg.80]

All industrially important glass fibers arc manufactured from silicate melts. They retain their glassy X-ray amorphous structure in the solid state. [Pg.366]

Mineral Wool Mineral wool is a low-cost silicate fiber spun from molten slag in steel refineries. It is widely used as thermal insulation in housing and apphances. Since its composition and structure are not well controlled, it is not comparable with chopped glass fibers however, it is sometimes used as a partial replacement for them. Jim Walters Processed Mineral Fiber (PMF) in particular has been reported for such apphcations. [Pg.337]

Amperometric cells, sensors using, 22 271 Amperometric measurements, 14 612 Amphetamine, 3 89-90 Amphibole asbestos, 1 803 3 288 crystal structure, 3 297-298 exposure limits, 3 316 fiber morphology, 3 294-295 silicate backbone, 3 296 Amphibole potassium fluorrichterite, glass- ceramics based on, 12 637 Amphiphile-oil-water-electrolyte phase diagram, 16 427-428 Amphiphile-oil-water phase diagrams,... [Pg.53]

Examples of inert or extender fillers include china clay (kaolin), talc, and calcium carbonate. Calcinm carbonate is an important filler, with a particle size of about 1 pm. It is a natural product from sedimentary rocks and is separated into chalk, limestone, and marble. In some cases, the calcium carbonate may be treated to improve interaction with the thermoplastic. Glass spheres are also used as thermoplastic fillers. They may be either solid or hollow, depending on the particular application. Talc is a filler with a lamellar particle shape. It is a namral, hydrated magnesium silicate with good slip properties. Kaolin and mica are also natural materials with lamellar structures. Other fillers include woUastonite, silica, barium sulfate, and metal powders. Carbon black is used as a filler primarily in the rnbber industry, but it also finds application in thermoplastics for conductivity, for UV protection, and as a pigment. Fillers in fiber form are often used in thermoplastics. Types of fibers inclnde cotton, wood flour, fiberglass, and carbon. Table 1.3 shows the fillers and their forms. An overview of some typical fillers and their effect on properties is shown in Table 1.4. Considerable research interest exists for the incorporation of nanoscale fillers into polymers. This aspect will be discussed in later chapters. [Pg.20]


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