Updated on 2026/08/25

Information

 

写真a

 
WANG BICHENG
 
Organization
Faculty of Engineering Department of Mechanical Engineering Assistant Professor
Title
Assistant Professor

Papers

  • Mechanism of the rapid generation of superheated and saturated steam using a water-containing porous material Reviewed

    Wang Bicheng, Yutaro Umehara, Mikako Tanaka, Ryo Kobayashi, Soichiro Hida, Atsuro Eto, Shoji Mori

    Applied Thermal Engineering   257   124172   2024.12   ISSN:1359-4311 eISSN:1873-5606

     More details

    Authorship:Lead author   Language:English   Publishing type:Research paper (scientific journal)  

    DOI: 10.1016/j.applthermaleng.2024.124172

  • Rapid generation of ethanol vapor using liquid-containing porous media

    BICHENG WANG, YAN FU, UMEHARA Yutaro, MORI Shoji

    The Proceedings of the National Symposium on Power and Energy Systems   2023.27 ( 0 )   B122   2023   eISSN:24242950

     More details

    Language:Japanese   Publisher:The Japan Society of Mechanical Engineers  

    <p>To promote the "Basic Hydrogen Strategy" first formulated by Japan [1], hydrogen storage technology based on toluene and methylcyclohexane (MCH) reversible reaction has received widespread attention due to its convenience in hydrogen transport. Superheated vaporization is a necessary process for the catalytic dehydrogenation of MCH, and a novel method with a simple structure to generate superheated water steam quickly and efficiently have been proved in our previous study. However, the start-up response and efficiency of this porous media steam generator has not yet been clarified while using organic fluid. As MCH is toxic to human body, ethanol, which has similar physical properties to MCH, was used in our experiment. Compared to the water, ethanol with lower latent heat has better performance in generating superheated vapor rapidly and efficiently, which also proves that the proposed vapor generator is suitable for the MCH reaction. Considering both heat transfer and fluid flow in the porous media, the energy utilization efficiency and surface temperature were analyzed using one-dimensional models.</p>

    DOI: 10.1299/jsmepes.2023.27.b122

    CiNii Research