Fundamental Equation of State for Fluid Tetrahydrofuran

被引:6
作者
Fiedler, Felix [1 ]
Karog, Joel [1 ]
Lemmon, Eric W. [2 ]
Thol, Monika [1 ]
机构
[1] Ruhr Univ Bochum, Lehrstuhl Thermodynam, Univ str 150, D-44801 Bochum, Germany
[2] Natl Inst Stand & Technol, Appl Chem & Mat Div, 325 Broadway, Boulder, CO 80305 USA
关键词
Equation of state; Helmholtz energy; Tetrahydrofuran; Thermodynamic properties; THF; EXCESS MOLAR VOLUMES; VAPOR-LIQUID-EQUILIBRIUM; CYCLOHEXANE PLUS TETRAHYDROFURAN; BUBBLE-TEMPERATURE-MEASUREMENTS; ETHYL 1,1-DIMETHYLETHYL ETHER; MIXED-SOLVENT SYSTEMS; GIBBS FREE-ENERGIES; BINARY-MIXTURES; CYCLIC ETHERS; THERMODYNAMIC PROPERTIES;
D O I
10.1007/s10765-023-03258-3
中图分类号
O414.1 [热力学];
学科分类号
摘要
An empirical fundamental equation of state in terms of the Helmholtz energy for tetrahydrofuran is presented. In the validity range from the triple-point temperature up to 550 K and pressures up to 600 MPa, the equation of state enables the calculation of all thermodynamic properties in the liquid, vapor, and super-critical regions including saturation states. Based on an extensive literature review, experimental data are represented within their experimental uncertainty. In the homogeneous liquid phase at atmospheric pressure, the uncertainty in density is 0.015 %, speed of sound is represented with an uncertainty of 0.03 %, and isobaric heat capacity has an uncertainty of 0.4 %. Isobaric heat capacities in the homogeneous vapor phase are described with an uncertainty of 0.2 %. Higher uncertainties occur above atmospheric pressure for all homogeneous properties. Depending on the temperature range, vapor pressure can be calculated with an uncertainty from 0.02 % to 3 %. The extrapolation behavior is evaluated, showing reasonable extrapolation behavior towards extreme conditions.
引用
收藏
页数:43
相关论文
共 50 条
[41]   A new variant of a scaling hypothesis and a fundamental equation of state based on it [J].
Kudryavtseva, I. V. ;
Rykov, V. A. ;
Rykov, S. V. ;
Ustyuzhanin, E. E. .
XXXII INTERNATIONAL CONFERENCE ON INTERACTION OF INTENSE ENERGY FLUXES WITH MATTER (ELBRUS 2017), 2018, 946
[42]   A rigorous calculation of the critical point from the fundamental equation of state for the water plus ammonia mixture [J].
Akasaka, Ryo .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2009, 32 (01) :95-101
[43]   FUNDAMENTAL EQUATION OF STATE OF ARGON, SATISFYING THE SCALING HYPOTHESIS AND WORKING IN THE REGION OF HIGH TEMPERATURES AND PRESSURES [J].
Rykov, S., V ;
Rykov, V. A. ;
Kudryavtseva, I., V ;
Ustyuzhanin, E. E. ;
Sverdlov, A., V .
MATHEMATICA MONTISNIGRI, 2020, 47 :124-136
[44]   Phenomenological Theory of the Critical Point and the Fundamental Equation of State in Physical Variables [J].
Kudryavtseva, I. V. ;
Rykov, S. V. .
RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2024, 98 (11) :2461-2474
[45]   Empirical Fundamental Equation of State for Phosgene Based on Molecular Simulation Data [J].
Rutkai, Gabor ;
Vrabec, Jadran .
JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2015, 60 (10) :2895-2905
[46]   A crossover equation of state for associating fluids [J].
Kiselev, SB ;
Ely, JF ;
Adidharma, H ;
Radosz, M .
FLUID PHASE EQUILIBRIA, 2001, 183 :53-64
[47]   A New Fundamental Equation of State for R1123 and its Applications to Mixture Models for Mixtures with R32 and R1234yf [J].
Akasaka, Ryo ;
Lemmon, Eric W. .
6TH IIR CONFERENCE ON THERMOPHYSICAL PROPERTIES AND TRANSFER PROCESSES OF REFRIGERANTS (TPTPR2021), 2021, :333-340
[48]   A Fundamental Equation of State for 1,1,1,3,3-Pentafluoropropane (R-245fa) [J].
Akasaka, Ryo ;
Zhou, Yong ;
Lemmon, Eric W. .
JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 2015, 44 (01)
[49]   A Fundamental Equation for Calculation of the Thermodynamic Properties of Ethanol [J].
H. E. Dillon ;
S. G. Penoncello .
International Journal of Thermophysics, 2004, 25 :321-335
[50]   A FUNDAMENTAL EQUATION FOR DICHLORODIFLUOROMETHANE (R-12) [J].
PENONCELLO, SG ;
JACOBSEN, RT ;
LEMMON, EW .
FLUID PHASE EQUILIBRIA, 1992, 80 (pt 4) :57-70