Measurement and Prediction of Hydrocarbon Dew Points of Synthetic Natural Gas Mixtures

被引:3
|
作者
Mu, Liang [1 ]
Cui, Qingyan [1 ]
机构
[1] Fuzhou Univ, Coll Chem Engn, Fuzhou 350116, Fujian, Peoples R China
来源
JOURNAL OF CHEMICAL AND ENGINEERING DATA | 2018年 / 63卷 / 11期
关键词
PENG-ROBINSON EQUATION; HYDRATE FORMATION CONDITIONS; GENERALIZED ALPHA-FUNCTION; CUBIC EQUATION; PHASE-BEHAVIOR; OF-STATE; THERMODYNAMIC PROPERTIES; WATER; METHANOL; CURVES;
D O I
10.1021/acs.jced.8b00706
中图分类号
O414.1 [热力学];
学科分类号
摘要
It is very important to predict the condensation of liquid hydrocarbons when transporting natural gas with pipelines in industry. Using a high-pressure transparent sapphire cell, the hydrocarbon dew points of eight synthetic natural gas mixtures were measured with the isothermal pressure search method. The test temperature ranges from 234.5 to 295.35 K and the pressure ranges from 1.706 to 11.495 MPa, and the results were used to evaluate the prediction performance of SRK and PR EOSs. The measured results showed that the cricondentherm and cricondenbar decrease with the increasing CH4 concentration; however, they present an increasing trend with the increasing concentration of other hydrocarbon components (C2H6 and C3+). It was found that 0.98 mol % changes in the n-C-5 concentration lead to the cricondentherm decreasing by 22 K, and 0.46 mol % changes in the n-C-6 concentration result in the cricondentherm reducing by 27 K. Correspondingly, the cricondenbar decreased by 1.9 and 2.7 MPa, respectively. In industry, a heavy hydrocarbon can be absorbed with low-volatility oil before proceeding with a pipeline, which can prevent the condensation of liquid hydrocarbons. For the dew point prediction by EOS, the PR calculation exhibited good agreement with the experimental data, and the average absolute deviations were within 0.791.53% while the SRK calculation evidently deviated from the measured values.
引用
收藏
页码:4226 / 4233
页数:8
相关论文
共 50 条
  • [41] Viscosity of Natural-Gas Mixtures: Measurements and Prediction
    M. J. Assael
    N. K. Dalaouti
    V. Vesovic
    International Journal of Thermophysics, 2001, 22 : 61 - 71
  • [42] Viscosity of natural-gas mixtures: Measurements and prediction
    Assael, MJ
    Dalaouti, NK
    Vesovic, V
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2001, 22 (01) : 61 - 71
  • [43] Comparative Study of Equations of State for the Dew Curves Calculation in High Pressure Natural Gas Mixtures
    Prieto Jimenez, Natalia
    Gonzalez Silva, German
    Chaves Guerrero, Alex
    LOGOS CIENCIA & TECNOLOGIA, 2019, 11 (01): : 152 - +
  • [44] PREDICTION OF VISCOSITIES OF HYDROCARBON MIXTURES
    AASBERGPETERSEN, K
    KNUDSEN, K
    FREDENSLUND, A
    FLUID PHASE EQUILIBRIA, 1991, 70 (2-3) : 293 - 308
  • [45] Dew points of quaternary ethane plus carbon dioxide plus water plus methanol mixtures -: Measurement and modelling
    Jarne, C
    Blanco, ST
    Avila, S
    Berro, C
    Otín, S
    Velasco, I
    CANADIAN JOURNAL OF CHEMISTRY, 2005, 83 (03) : 220 - 226
  • [46] Water dew points of binary nitrogen plus water and propane plus water mixtures.: Measurement and correlation
    Blanco, ST
    Velasco, I
    Rauzy, E
    Otín, S
    FLUID PHASE EQUILIBRIA, 1999, 161 (01) : 107 - 117
  • [47] Measurement of H-Lw-V and Dissociation Enthalpy of Carbon Dioxide Rich Synthetic Natural Gas Mixtures
    Sabil, Khalik M.
    Nasir, Qazi
    Partoon, Bezhad
    Seman, Akbar A.
    JOURNAL OF CHEMICAL AND ENGINEERING DATA, 2014, 59 (11): : 3502 - 3509
  • [48] Boiling points and critical properties of hydrocarbon mixtures
    Smith, RL
    Watson, KM
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1937, 29 : 1408 - 1414
  • [49] Experimental measurement and theoretical prediction for lower flammability limits of ternary hydrocarbon mixtures
    Qi, Chang
    He, Meng
    Ning, Ye
    Chen, Sheng
    Yan, Xingqing
    Wang, Yalei
    Yu, Xiaozhe
    Yu, Jianliang
    PROCESS SAFETY PROGRESS, 2022, 41 (03) : 581 - 590
  • [50] Dew points of air-gasoline mixtures from distillation curves
    Bridgeman, OC
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1928, 20 (01): : 821 - 826