• Media type: Book
  • Title: Molecular engineering thermodynamics
  • Contains: 1. Introduction2. The postulates of thermodynamics -- 3. Generalized thermodynamic potentials -- 4. First applications of thermodynamics -- 5. Application to process design: flow systems -- 6. Statistical mechanics -- 7. Molecular interactions -- 8. Fugacity and vapor-liquid equilibrium -- 9. Activity and equilibrium -- 10. Reaction equilibrium -- 11. Thermodynamics of polymers -- 12. Thermodynamics of surfaces.
    Machine generated contents note: 1. Introduction; 2. The postulates of thermodynamics; 3. Generalized thermodynamic potentials; 4. First applications of thermodynamics; 5. Application to process design: flow systems; 6. Statistical mechanics; 7. Molecular interactions; 8. Fugacity and vapor-liquid equilibrium; 9. Activity, vapor-liquid, and liquid-liquid equilibrium; 10. Reaction equilibrium; 11. Thermodynamics of polymers; 12. Thermodynamics of surfaces; Appendix A. Mathematical background; Appendix B. Fluid equations of state; Appendix C. Microscopic balances for open systems; Bibliography; Index.
  • Contributor: De Pablo, Juan J. [Author]; Schieber, Jay D. [Author]
  • imprint: Cambridge: Cambridge Univ. Press, 2014
  • Published in: Cambridge series chemical engineering
  • Extent: XXIII, 480 S.; graph. Darst; 25 cm
  • Language: English
  • ISBN: 9780521765626
  • RVK notation: UG 1000 : Thermodynamik, Klassische Phänomenologie allgemein
  • Keywords: Thermochemie
  • Origination:
  • Footnote: Literaturverz. S. [470] - 476
  • Description: "Building up gradually from first principles, this unique introduction to modern thermodynamics integrates classical, statistical and molecular approaches and is especially designed to support students studying chemical and biochemical engineering. In addition to covering traditional problems in engineering thermodynamics in the context of biology and materials chemistry, students are also introduced to the thermodynamics of DNA, proteins, polymers and surfaces. It includes over 80 detailed worked examples, covering a broad range of scenarios such as fuel cell efficiency, DNA/protein binding, semiconductor manufacturing and polymer foaming, emphasising the practical real-world applications of thermodynamic principles; more than 300 carefully tailored homework problems, designed to stretch and extend students' understanding of key topics, accompanied by an online solution manual for instructors; and all the necessary mathematical background, plus resources summarising commonly used symbols, useful equations of state, microscopic balances for open systems, and links to useful online tools and datasets"--

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  • Status: Loanable