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Fiber Science

K. Kohata, M. Miyagawa, A. Takaoka, and H. Kawai, Proceedings of the International Symposium on Fiber Science and Technology, Hakone, Japan, August 24—25, 1985, Society of Eiber Science and Technology, Tokyo, p. 270. [Pg.301]

M. Ahmed, Poljpropjlene Fibers Science and Technology, Elsevier Science Publishing Co., Inc., New York, 1982, pp. 344—346. [Pg.323]

M. Lewin, in M. Lewin and S. SeUo, eds.. Handbook of Fiber Science and Technology Chemical Processing of Fibers andFabrics, Vol. 2, Part B, Marcel Dekker, Inc., New York, 1984, pp. 1—141. [Pg.481]

G. M. Bryant and H. T. Walter, in Handbook of Fiber Science and Technology, Marcel Dekker, New York, 1983. [Pg.433]

A. Ahmed, Polypropylene Fibers—Science and Technology, Elsevier, Amsterdam, the Netherlands, 1982. [Pg.423]

H. F. Mark, S. M. Adas, and E. Cemia, eds., Man-Made Fibers Science and Technology, 3 Vols., Wiley-Interscience, New York, 1967—1968. [Pg.265]

Ahmed M (1982) Polypropylene fibers-Science and technology Elsevier, Amsterdam... [Pg.218]

Nosek, T.M., Fender, K. Y., Godt, R.E. (1987). It is diprotonated inorganic phosphate that depresses force in skinned skeletal muscle fibers. Science 236. 191-193. [Pg.278]

Handbook of fiber science and technobgy, Vol. 1, Chemical processing, Ed. M Lewin and S B Sello (New York Marcel Dekker, 1983). [Pg.291]

The University of Manchester Institute of Science and Technology, Department of Polymer and Fiber Science, Manchester, M60 1QD, England... [Pg.377]

Koziol K, Vilatela, Moisala A, Motta M, Cunniff P, Sennett M, et al. High-performance carbon nanotube fiber. Science. 2007 Dec 21 318(5858) 1892-5. [Pg.253]

Akitsu, H., Norimoto, M., Morooka, T. and Rowell, R.M. (1993a). Effect of humidity on vibrational properties of chemically modified wood. Wood and Fiber Science, 25(3), 250-260. [Pg.201]

Chen, G.C. (1992a). Fungal resistance of loblolly pine reacted with para-toluene, sulfonyl chloride or isocyanate. Wood and Fiber Science, 24(2), 161-167. [Pg.204]

Chow, P., Bao, Z., Youngquist, J.A., Rowell, R.M., Muehl, J.H. and Krzysik, A.M. (1996b). Properties of hardboards made from acetylated aspen and southern pine. Wood and Fiber Science, 28(2), 252-258. [Pg.205]

Chowdhury, M.J.A. and Humphrey, P.E. (1999). The effect of acetylation on the shear strength development kinetics of phenolic resin-to-wood bonds. Wood and Fiber Science, 31(3), 293-299. [Pg.205]

Clemons, C., Young, R.A. and Rowell, R.M. (1992). Moisture sorption properties of composite boards from esterified aspen fiber. Wood and Fiber Science, 24(3), 353-363. [Pg.205]

Feist, W.C. and Sell, J. (1987). Weathering behaviom of dimensionally stabilized wood by heating under pressme of nitrogen gas. Wood and Fiber Science, 19(2), 183-195. [Pg.206]

Feist, W.C., Rowell, R.M. and Ellis, W.D. (1991a). Moisture sorption and accelerated weathering of acetylated and methacrylated aspen. Wood and Fiber Science, 23(1), 128-136. [Pg.207]

Hon, D.N.S. (1995). Stabilization of wood color is acetylation blocking effective Wood and Fiber Science, 27(4), 360-367. [Pg.210]

Inoue, M., Ogata, S., Kawai, S., RoweU, R.M. and Norimoto, M. (1993b). Eixation of compressed wood using melamine - formaldehyde resin. Wood and Fiber Science, 25(4), 404—410. [Pg.211]

Kumar, S. (1994). Chemical modification of wood. Wood and Fiber Science, 26(2), 270-280. [Pg.213]

Lu, J.Z., Wu, Q. and McNabb, H.S. (2000). Chemical coupling in wood fiber and polymer composites a review of coupling agents and treatments. Wood and Fiber Science, 32(1), 88-104. [Pg.214]

Mitchell, P.H. (1988). Irreversible property changes of small loblolly pine specimens heated in air, nitrogen, or oxygen. Wood and Fiber Science, 20(3), 320-355. [Pg.217]


See other pages where Fiber Science is mentioned: [Pg.269]    [Pg.334]    [Pg.335]    [Pg.335]    [Pg.364]    [Pg.262]    [Pg.265]    [Pg.441]    [Pg.276]    [Pg.143]    [Pg.143]    [Pg.289]    [Pg.432]    [Pg.214]    [Pg.219]   
See also in sourсe #XX -- [ Pg.129 ]




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