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Carbon, wear

Reasons for use abrasion resistance, cost reduction, electric conductivity (metal fibers, carbon fibers, carbon black), EMI shielding (metal and carbon fibers), electric resistivity (mica), flame retarding properties (aluminum hydroxide, antimony trioxide, magnesium hydroxide), impact resistance improvement (small particle size calcium carbonate), improvement of radiation stability (zeolite), increase of density, increase of flexural modulus, impact strength, and stiffness (talc), nucleating agent for bubble formation, permeability (mica), smoke suppression (magnesium hydroxide), thermal stabilization (calcium carbonate), wear resistance (aluminum oxide, silica carbide, wollastonite)... [Pg.50]

Oxahc acid is not flammable but its decomposition products, both formic acid and carbon monoxide, are toxic and flammable. Its dust and mist are irritating, especially under prolonged contact. Personnel who handle oxahc acid should wear mbber gloves, aprons, protection masks or goggles, etc, to avoid skin contact and inhalation. Adequate ventilation also should be provided in areas in which oxahc acid dust fumes are present. [Pg.461]

Wear owing to corrosion and/or erosion can be particularly dangerous. For example, as carbon steel corrodes, the reduced wall thickness can eventually lead to a stmctural failure. This problem can be compounded through erosive wear of the silo wall. [Pg.557]

The durabihty and versatility of steel are shown by its wide range of mechanical and physical properties. By the proper choice of carbon content and alloying elements, and by suitable heat treatment, steel can be made so soft and ductile that it can be cold-drawn into complex shapes such as automobile bodies. Conversely, steel can be made extremely hard for wear resistance, or tough enough to withstand enormous loads and shock without deforming or breaking. In addition, some steels are made to resist heat and corrosion by the atmosphere and by a wide variety of chemicals. [Pg.373]

The reaction between urea and Aiming sulfuric acid is rapid and exothermic. It may proceed with violent boiling unless the reaction temperature is controlled. The reactants are strongly acidic. Therefore, operators should wear suitable protective gear to guard against chemical hazard. Special stainless steel, mbber lining, fiber-reinforced plastics, and polyvinyl chloride and carbon equipment are used. [Pg.63]

Titanium carbide may also be made by the reaction at high temperature of titanium with carbon titanium tetrachloride with organic compounds such as methane, chloroform, or poly(vinyl chloride) titanium disulfide [12039-13-3] with carbon organotitanates with carbon precursor polymers (31) and titanium tetrachloride with hydrogen and carbon monoxide. Much of this work is directed toward the production of ultrafine (<1 jim) powders. The reaction of titanium tetrachloride with a hydrocarbon-hydrogen mixture at ca 1000°C is used for the chemical vapor deposition (CVD) of thin carbide films used in wear-resistant coatings. [Pg.118]


See other pages where Carbon, wear is mentioned: [Pg.231]    [Pg.81]    [Pg.613]    [Pg.341]    [Pg.80]    [Pg.83]    [Pg.613]    [Pg.231]    [Pg.81]    [Pg.613]    [Pg.341]    [Pg.80]    [Pg.83]    [Pg.613]    [Pg.80]    [Pg.347]    [Pg.222]    [Pg.15]    [Pg.425]    [Pg.401]    [Pg.73]    [Pg.124]    [Pg.457]    [Pg.13]    [Pg.71]    [Pg.242]    [Pg.486]    [Pg.496]    [Pg.496]    [Pg.130]    [Pg.136]    [Pg.189]    [Pg.541]    [Pg.18]    [Pg.305]    [Pg.449]    [Pg.65]    [Pg.250]    [Pg.539]    [Pg.390]    [Pg.393]    [Pg.397]    [Pg.399]    [Pg.498]    [Pg.89]    [Pg.194]    [Pg.198]    [Pg.216]    [Pg.285]    [Pg.295]    [Pg.7]   
See also in sourсe #XX -- [ Pg.363 ]




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