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By Ronald Loehman

Ceramics are, in a common definition, fabrics that encompass man-made, inorganic, non-metallic strong fabric -- both present in a crystalline kingdom or non-crystalline nation (i.e., glasses). fabrics characterization ideas are used to make sure

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C. Sorrell and B. ), Trans Tech Publ. , Switzerland, 1988, pp. 791–795. indd 41 41 2/15/10 3:19 PM 25 CRC Handbook of Chemistry and Physics. 56th ed. (R. C. ) CRC Press, Cleveland, 1975, pp. F85–F86. 26 D. W. Matson and R. D. Smith. J. Am. Ceramic Soc. 72 (6), 871–881, 1989. 27 D. W. Matson, J. L. Fulton, R. C. Petersen, and R. D. Smith. Ind. Engr. Chem. Res. 26, 2298–2306, 1987. 28 C. Pommier, K. Chhor, J. F. Bocquet, and M. Barj. Matl. Res. Bull. 25, 213– 221, 1990. 29 D. J. Rader and T. J. O’Hern.

Powder physical characteristics such as particle size distribution, particle morphology, surface area, and state of agglomeration are of critical importance in establishing a powder’s processability and activity toward sintering (see Chapter 5 by Ewsuk). ). 25 M H2O and 10–4 M HCl to electrostatically stabilize the suspension. 43) the sol–gel synthesis method. As shown by the examples used in this chapter, a wide range of techniques are required to characterize both the solution chemistry that occurs during particle synthesis and the processes involved in particle nucleation, growth, and agglomeration.

Pietronero and E. ) North-Holland, Amsterdam, 1986, pp. 39–45. 29 E. Matijevic. Acc. Chem. Res. 14, 22–29, 1981. 30 C. M. Flynn, Jr. Chem. Rev. 84, 31–41, 1984. 31 M. A. Blesa and E. Matijevic. Advances in Colloid and Interface Science. 29, 173–221, 1989. 32 J. K. Bailey, M. L. Mecartney, and C. J. Brinker. J. , in press. 33 R. Mohanty, S. Bhandarkar, and J. Estrin. AIChE J. 36, 1536–1544, 1990. 34 P. Chiang, M. C. Donohue, and J. Katz. J. Colloid Interface Sci. 122, 251– 265, 1988. 35 S. Bhandarkar, R.

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