Numerical Simulation and Thermal Analysis of Pressurized Hydrogen Vehicle Cylinders: Impact of Geometry and Phase Change Materials

Authors

  • Mohamed-Amine Babay Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco
  • Mustapha Adar Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco
  • Souad Touairi Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco
  • Ahmed Chebak Green Tech Institute (GTI), Mohammed VI Polytechnic University, Benguerir, Morocco
  • Mustapha Mabrouki Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco

DOI:

https://doi.org/10.37934/arfmts.117.2.7190

Keywords:

Hydrogen refueling, thermal analysis, numerical simulation, CFD, temperature control, fast filling, phase change material

Abstract

This comprehensive study investigates the nuanced aspects of pressurized hydrogen vehicle cylinders during refueling, employing numerical simulation and thermal analysis. The examination encompasses the intricate dynamics influenced by cylinder geometry, mass flow rate variations, and the integration of phase change materials (PCMs). Simulations involving cylinders with diverse length-to-diameter ratios and inlet diameters highlight the impact of these parameters on temperature control. Notably, smaller length-to-diameter ratios prove effective for temperature regulation, while larger inlet diameters mitigate temperature rise. The study further explores the role of varying mass flow rates, revealing that an increasing flow rate during refueling results in the lowest temperature rise. In addition to geometry and mass flow rate considerations, the integration of PCMs is a focal point. Modeling and parametric analysis are employed to assess the feasibility of incorporating these materials. The study contributes valuable insights into optimizing the thermal performance and safety of hydrogen fuel systems. The holistic approach considers the interplay of geometry, mass flow rate dynamics, and the innovative use of PCMs, offering a multifaceted understanding of the factors influencing pressurized hydrogen vehicle cylinders.

Author Biographies

Mohamed-Amine Babay, Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco

mdamine.babay@gmail.com

Mustapha Adar, Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco

adar.mustapha@gmail.com

Souad Touairi, Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco

touairisouad@gmail.com

Ahmed Chebak, Green Tech Institute (GTI), Mohammed VI Polytechnic University, Benguerir, Morocco

ahmed.chebak@um6p.ma

Mustapha Mabrouki, Laboratory of Industrial and Surface Engineering, Faculty of Science and Technologies, Sultan Moulay Slimane University, Beni Mellal, Morocco

mus_mabrouki@yahoo.com

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Published

2024-05-30

How to Cite

Mohamed-Amine Babay, Mustapha Adar, Souad Touairi, Ahmed Chebak, & Mustapha Mabrouki. (2024). Numerical Simulation and Thermal Analysis of Pressurized Hydrogen Vehicle Cylinders: Impact of Geometry and Phase Change Materials. Journal of Advanced Research in Fluid Mechanics and Thermal Sciences, 117(2), 71–90. https://doi.org/10.37934/arfmts.117.2.7190

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Section

Articles