Thermophysical properties of the biofuel components: A mini-guide to the critical properties, heat capacities, and thermal conductivities

被引:1
|
作者
Nikitin, Eugene D. [1 ]
机构
[1] Russian Acad Sci, Inst Thermal Phys, Ural Branch, 107a Amundsen St, Ekaterinburg 620016, Russia
关键词
Compilation; Biofuels; Experimental data; Critical properties; Heat capacity; Thermal conductivity; LIQUID CRITICAL PROPERTIES; ACID METHYL-ESTERS; PRESSURE PHYSICOCHEMICAL PROPERTIES; CRITICAL-POINT MEASUREMENTS; CRITICAL-TEMPERATURES; ETHYL-ESTERS; THERMODYNAMIC PROPERTIES; UNSTABLE SUBSTANCES; OXYGEN COMPOUNDS; VAPOR-PRESSURES;
D O I
10.1016/j.fluid.2024.114035
中图分类号
O414.1 [热力学];
学科分类号
摘要
Experimental data on the critical temperature, critical pressure, heat capacity, and thermal conductivity of the compounds involved in the production of biofuels have been compiled and critically evaluated. The compilation contains the critical temperature and critical pressure of 56 compounds, the heat capacity of 63 compounds, and the thermal conductivity of 35 compounds and covers the period from 1886 to September 2023. The recommended values of the critical temperatures and pressures have been determined. The parameters of correlating polynomials for the temperature dependence of heat capacities and thermal conductivities have been obtained. The compounds under consideration are the components of biofuels or platform chemicals. Some methyl and ethyl esters of saturated and unsaturated acids, furanic compounds, levulinic acid and alkyl levulinates, gammavalerolactone, alpha-angelica lactone, triglycerides, and several alkyl pentanoates are among the compounds studied.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Thermophysical and thermoelastic properties of pseudoalloys: thermal and electrical conductivities
    Novikov, V.V.
    Klimenko, V.S.
    High Temperature, 1988, : 203 - 207
  • [2] Critical properties, heat capacities, and thermal diffusivities of four saturated triglycerides
    Bogatishcheva, Nataliya S.
    Faizullin, Mars Z.
    Popov, Alexander P.
    Nikitin, Eugene D.
    JOURNAL OF CHEMICAL THERMODYNAMICS, 2017, 113 : 308 - 314
  • [3] Thermophysical properties of limestone as a function of origin (Part 1): Specific heat capacities
    Silva, Monica
    Specht, Eckehard
    Schmidt, Juergen
    ZKG INTERNATIONAL, 2010, 63 (02): : 55 - 62
  • [4] Synthesis, heat transport mechanisms and thermophysical properties of nanofluids: A critical overview
    Awais M.
    Bhuiyan A.A.
    Salehin S.
    Ehsan M.M.
    Khan B.
    Rahman M.H.
    International Journal of Thermofluids, 2021, 10
  • [5] Krytox GPL102 Oil as Reference Fluid for High Viscosities: High Pressure Volumetric Properties, Heat Capacities, and Thermal Conductivities
    Comunas, Maria J. P.
    Gacino, Felix M.
    Cabaleiro, David
    Lugo, Luis
    Fernandez, Josefa
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2015, 60 (12): : 3660 - 3669
  • [6] Effect of Thermophysical Properties of the Heater Substrate on Critical Heat Flux in Pool Boiling
    Raghupathi, Pruthvik A.
    Kandlikar, Satish G.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2017, 139 (11):
  • [7] Evaluation of thermophysical properties and structure of heat dissipation sheets as thermal interface materials
    Tajima, Kazuki
    Taguchi, Hitoshi
    Jeong, Chan Yang
    Akiyama, Haruhisa
    AIP ADVANCES, 2022, 12 (10)
  • [8] Improved thermophysical properties of Graphene Ionanofluid as heat transfer fluids for thermal applications
    Kanti P.
    Minea A.A.
    Sharma K.V.
    Revanasiddappa M.
    Journal of Ionic Liquids, 2022, 2 (02):
  • [9] Enhanced thermophysical properties of NEILs as heat transfer fluids for solar thermal applications
    Paul, Titan C.
    Morshed, A. K. M. M.
    Fox, Elise B.
    Khan, Jamil A.
    APPLIED THERMAL ENGINEERING, 2017, 110 : 1 - 9
  • [10] The Thermophysical Properties (Heat Capacity and Thermal Expansion) of Single-Crystal Silicon
    V. M. Glazov
    A. S. Pashinkin
    High Temperature, 2001, 39 : 413 - 419