A simplification of gas clathrate hydrate thermochemistry using the Thermodynamic Difference Rule (TDR). Part 3. Heat capacity prediction as compared with experimental C values – Towards further validation of the TDR approach
Author:
Publisher
Elsevier BV
Subject
Physical and Theoretical Chemistry,General Materials Science,Atomic and Molecular Physics, and Optics
Reference15 articles.
1. H.D.B. Jenkins, J. Chem. Thermodyn. 117 (2018) 236–241.
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3. Difference RuleA New Thermodynamic Principle: Prediction of Standard Thermodynamic Data for Inorganic Solvates
4. The Thermodynamic Solvate Difference Rule: Solvation Parameters and Their Use in Interpretation of the Role of Bound Solvent in Condensed-Phase Solvates
5. Extensions and Corollaries of the Thermodynamic Solvate Difference Rule
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1. The thermodynamic difference rule for Gibbs energy of formation values for hydrates and their parents and applying at temperatures over the range: 298.15 ≤ T/K ≤ 900;The Journal of Chemical Thermodynamics;2020-11
2. Expanding thermodynamic databases using the thermodynamic difference rule (TDR). Exemplified by an application to retrieve new thermodynamic data for thorium compounds;The Journal of Chemical Thermodynamics;2020-05
3. The Thermodynamic Difference Rule (TDR) for non-aqueous solvates. Part 2. Review of methodology, investigation and prediction of thermodynamic data for ammoniate solvates, MpXq.nNH3, routes to expand the database;The Journal of Chemical Thermodynamics;2019-08
4. The Thermodynamic Difference Rule (TDR) for non-aqueous solvates. Part 1. Review of methodology, investigation and prediction of thermodynamic data for sulfur dioxide solvates, MpXq.nSO2, routes to expand the database and forecast of future science and technology;The Journal of Chemical Thermodynamics;2019-08
5. A simplification of gas clathrate hydrate thermochemistry using the Thermodynamic Difference Rule (TDR). Part 4. Further extension of the TDR to temperatures other than 298 K and validation of the similarity found between inorganic hydrate and clathrate hydrate TDR equations;The Journal of Chemical Thermodynamics;2018-04
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