Title of article :
Applicability of the common equations of state for modeling hydrogen liquefaction processes in Aspen HYSYS
Author/Authors :
Rezaie Azizabadi, Hamed Faculty of Mechanical Engineering - K.N. Toosi University of Technology - Tehran, Iran , Ziabasharhagh, Masoud Faculty of Mechanical Engineering - K.N. Toosi University of Technology - Tehran, Iran , Mafi, Mostafa Faculty of Mechanical Engineering - Imam Khomeini International University - Qazvin, Iran
Abstract :
Liquid hydrogen will likely play a significant role in the future of energy as its
applications are growing fast. Due to the low efficiency of the existing liquefaction plants,
many studies are dedicated to the liquefaction processes. The accuracy of the simulations
crucially depends on the fluid package and prediction of thermodynamic properties. Four
common equations of state implemented in Aspen HYSYS used for hydrogen liquefaction,
including PR, MBWR, SRK, and BWRS, are investigated to find their accuracy for estimating
volumetric and calorimetric properties, that are essential for precise simulation of hydrogen
liquefaction processes. Results show that MBWR is the best choice for hydrogen liquefaction
processes, which are simulated by Aspen HYSYS. MBWR predicts the thermodynamic
properties of hydrogen and parahydrogen very well, in the whole range of temperature and
pressure typically met in the liquefaction processes. The MBWR performs well in predicting
enthalpy of ortho-para conversion too. Although PR performs better than SRK and BWRS,
none of them yields reliable data in low temperatures, so they could not be applied for
liquefaction processes. However, they may lead to desirable results for processes that
experience higher temperatures range. An innovative, simplified hydrogen liquefaction cycle is
developed to be able to capture the mere effect of EOS on essential performance parameters of
the liquefaction cycles such as SEC and COP. Applying PR and MBWR to the developed cycle
shows that PR compared to MBWR leads to 10% and 4% deviation in SEC and COP,
respectively.
Keywords :
Equation of state , REFPROP , Hydrogen Liquefaction , Modified- Benedict–Webb– Rubin , Aspen HYSYS
Journal title :
Gas Processing Journal