Publication Type Journal Article
Title THERMODYNAMICS OF THE CONSTANT-VOLUME PRINCIPLE FOR CHEMICAL PROCESSES INVOLVING THE SOLVENT
Authors LMPC Albuquerque JC Reis
Groups MTFT
Journal JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS
Year 1991
Month May
Volume 87
Number 10
Pages 1553-1560
Abstract A comprehensive thermodynamic formalism is developed for applying the constant-volume principle to chemical and transport processes in condensed phases involving the solvent stoichiometrically. These processes comprise simple ionization equilibria in solution and rate processes in the bulk (dielectric relaxation, electrical conductivity, self-diffusion, viscosity etc.) described by the transition-state theory. The formalism is based on special partial molar properties and ideal solutions for studies at constant temperature and molar volume. Isochoric standard molar changes in thermodynamic quantities of reaction, DELTA-r(X)(v)o(T, V(m)), are introduced in relation to a model process using specific standard states. Real and ideal isochoric conditions leading to intrinsic isochoric conditions for iso-molar-volume processes are established. Relationships between DELTA-r(X)(v)o(T, V(m)) where X = A, U, S and C(v), and DELTA-r(M)o(T, p) where M = G, H, S and C(p), respectively, are given and shown to be generally equivalent to the traditional equations. A detailed analysis of the isochoric condition proposed by Williams and of the ensuing controversy is made. The concept of activation pressure is discussed. The concepts of constant volume and activation pressure can both be correctly described in terms of the isochoric model processes and special standard states used in the formulation of intrinsic isochoric conditions.
DOI http://dx.doi.org/10.1039/ft9918701553
ISBN
Publisher
Book Title
ISSN 0956-5000
EISSN
Conference Name
Bibtex ID ISI:A1991FN95200010
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