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Mass transfer coefficients reactive measurement

Some of this theoretical thinking may be utilized in reactor analysis and design. Illustrations of gas-liquid reactors are shown in Fig. 19-26. Unfortunately, some of the parameter values required to undertake a rigorous analysis often are not available. As discussed in Sec. 7, the intrinsic rate constant kc for a liquid-phase reaction without the complications of diffusional resistances may be estimated from properly designed laboratory experiments. Gas- and liquid-phase holdups may be estimated from correlations or measured. The interfacial area per unit reactor volume a may be estimated from correlations or measurements that utilize techniques of transmission or reflection of light, though these are limited to small diameters. The combined volumetric mass-transfer coefficient kLa, can be also directly measured in reactive or nonreactive systems (see, e.g., Char-pentier, Advances in Chemical Engineering, vol. 11, Academic Press, 1981, pp. 2-135). Mass-transfer coefficients, interfacial areas, and liquid holdup typical for various gas-liquid reactors are provided in Tables 19-10 and 19-11. [Pg.40]

M. Pons, P. Dantzer, and J. J. Guilleminot, A Measurement Technique and a New Model for the Wall Heat Transfer Coefficient of a Packed Bed of (Reactive) Powder Without Gas Flow, Int. J. Heat Mass Transfer (36/10) 2635,1993. [Pg.923]


See other pages where Mass transfer coefficients reactive measurement is mentioned: [Pg.227]    [Pg.400]    [Pg.222]    [Pg.400]    [Pg.306]    [Pg.295]    [Pg.66]    [Pg.400]    [Pg.593]    [Pg.188]    [Pg.70]    [Pg.769]    [Pg.236]    [Pg.58]   
See also in sourсe #XX -- [ Pg.399 ]




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