PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 7, 2026International Journal of Heat and Fluid Flow0 citationsOpen Access

Direct numerical simulation of turbulent flow of liquid hydrogen with wall boiling

View Full Paper
TYTatsuya YonemuraTOTakashi Ohta

Key Points

  • This study aims to explore the effects of wall boiling on the turbulence of liquid hydrogen in a parallel-plate channel.
  • Conducted direct numerical simulations of turbulent liquid hydrogen.
  • Analyzed turbulence statistics and phase change interactions near the wall.
  • Examined effects of wall heating on turbulence structure and boiling phenomena.
  • Boiling increased wall-normal and spanwise velocities, boosting turbulent kinetic energy by approximately 1.5 times.
  • Turbulence initially enhanced phase change at the wall, followed by a gradual suppression.
  • Boiling modulated wall turbulence towards isotropy, affecting the local flow dynamics.

Abstract

The flow of a cryogenic fluid such as liquid hydrogen can become turbulent, and phase changes can occur owing to variations in wall temperatures, resulting in significant alterations in the flow field. Direct numerical simulations were conducted to investigate turbulent liquid hydrogen with near-wall boiling in a parallel-plate channel. The simulations showed that heating one wall induced boiling within fully developed wall turbulence. The turbulence statistics and the relationship between near-wall turbulence structures and phase change were analyzed in detail. The results demonstrate that boiling phenomena accelerate wall-normal and spanwise velocities that promote the sweep and ejection near the wall, temporarily increasing the turbulent kinetic energy by approximately 1.5 times. Additionally, turbulence influences boiling after an initial transient period, thereby enhancing phase-change. The turbulence statistics indicate that boiling modulates wall turbulence toward isotropy. The local phase change also increases the streamwise velocity near the wall, which in turn reduces the velocity gradient, thereby decreasing the turbulent kinetic energy. Furthermore, the combined effects of these mechanisms reveal a turbulence modulation due to the interaction between the near-wall turbulence structure and the phase change, characterized by turbulence enhancement, followed by its suppression over time. Accurately predicting these phenomena using statistical modeling techniques that treat the turbulence structure as the Reynolds stress is fundamentally challenging, and an appropriate turbulence model is required to reproduce the phenomena observed in this study. • Direct numerical simulation and phase change model of liquid-hydrogen turbulent flow. • Relationship between the turbulence structure and phase change investigated. • Boiling phenomena increase and decrease the turbulent kinetic energy and vortices. • Turbulence promotes a phase change from the wall. • Acceleration of flow near the wall induced by boiling affects the turbulence modulation.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Yonemura et al. (2026) studied this question.

synapsesocial.com/papers/69fc2c1f8b49bacb8b347bc4https://doi.org/10.1016/j.ijheatfluidflow.2026.110449
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Stable Numerical Method Applying a Total Variation Diminishing Scheme for Incompressible Flow2003 · 8 citations
  2. 2Mathematical Basis and Validation of the Full Cavitation Model2002 · 1,625 citations
  3. 3Modulation of Near-Wall Turbulence Structure with Wall Blowing and Suction2002 · 32 citations
  4. 4LES model of flash-boiling and pressure recovery phenomena during release from large-scale pressurised liquid hydrogen storage tank2023 · 24 citations
  5. 5The minimal flow unit in near-wall turbulence1991 · 1,092 citations