Investigation on heat transfer characteristics and flow performance of Methane at supercritical pressures

Hong Wei Xian, A. N. Oumer, F. Basrawi, Rizalman Mamat, A. A. Abdullah

Research output: Contribution to journalConference articlepeer-review

1 Citation (Scopus)

Abstract

The aim of this study is to investigate the heat transfer and flow characteristic of cryogenic methane in regenerative cooling system at supercritical pressures. The thermo-physical properties of supercritical methane were obtained from the National institute of Standards and Technology (NIST) webbook. The numerical model was developed based on the assumptions of steady, turbulent and Newtonian flow. For mesh independence test and model validation, the simulation results were compared with published experimental results. The effect of four different performance parameter ranges namely inlet pressure (5 to 8 MPa), inlet temperature (120 to 150 K), heat flux (2 to 5 MW/m2) and mass flux (7000 to 15000 kg/m2s) on heat transfer and flow performances were investigated. It was found that the simulation results showed good agreement with experimental data with maximum deviation of 10 % which indicates the validity of the developed model. At low inlet temperature, the change of specific heat capacity at near-wall region along the tube length was not significant while the pressure drop registered was high. However, significant variation was observed for the case of higher inlet temperature. It was also observed that the heat transfer performance and pressure drop penalty increased when the mass flux was increased. Regarding the effect of inlet pressure, the heat transfer performance and pressure drop results decreased when the inlet pressure is increased.

Original languageEnglish
Article number012061
JournalIOP Conference Series: Materials Science and Engineering
Volume342
Issue number1
DOIs
Publication statusPublished - 6 Apr 2018
EventInternational Conference on Innovative Technology, Engineering and Sciences 2018 - Pekan, Pahang, Malaysia
Duration: 1 Mar 20182 Mar 2018

ASJC Scopus subject areas

  • General Materials Science
  • General Engineering

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