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March 18, 2026Energies0 citationsOpen Access

Evaluation of Anisotropic Turbulence Models for Flash-Boiling Ammonia Sprays for Clean Fuel and Conceptual Electric Vehicle Cooling Systems

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MKMongkol KaewbumrungCPChalermpol Plengsa-ArdWPWasan Palasai

Key Points

  • The aim is to evaluate turbulence models for liquid-ammonia spray behavior under various conditions to enhance fuel performance.
  • Numerical simulations of liquid-ammonia spray using Lagrangian particle tracking method.
  • Assessment of various turbulence models including RNG, k-ω, ς − f, and V2F.
  • Investigation of emissions under differing ambient pressures, focusing on flash-boiling and non-flashing conditions.
  • The V2F turbulence model showed the best accuracy and computational efficiency in modeling outcomes.
  • Under strong flash-boiling conditions, droplet temperature dropped to approximately 235 K shortly after exiting the nozzle.
  • Non-flashing conditions exhibited more moderate cooling effects at higher ambient pressures.

Abstract

Ammonia (NH3) has emerged as a promising carbon-free fuel for next-generation green energy systems due to its high hydrogen density, ease of storage and transport, and compatibility with existing infrastructure. These attributes contrast with hydrogen, which presents major challenges related to storage, safety, and high-pressure handling. Thus, ammonia offers a more practical alternative for combustion-based applications. However, its low reactivity and complex vaporization behavior, particularly under flash-boiling conditions, pose challenges for accurate modeling. This study presents a comprehensive numerical investigation of liquid-ammonia spray behavior under a range of ambient pressures, encompassing both flash-boiling and non-flashing conditions. Simulations were conducted using the Lagrangian particle tracking method, coupled with various turbulence models (the renormalization group (RNG) family, k-ω family, ς − f, V2F models) to evaluate their predictive performance. Validation against experimental data for liquid and vapor penetration demonstrated that the V2F model achieved the best overall balance between accuracy and computational efficiency. Under strong flash-boiling conditions (2 bar), rapid droplet breakup and notable cooling were observed, with droplet temperatures decreasing to approximately 235 K within a few millimeters of the nozzle. In contrast, the cooling effect was more moderate under non-flashing conditions at higher ambient pressures (10–15 bar). Although the current findings were based on numerical simulations, experimental studies are ongoing to validate and refine the modeling framework further. This work provided valuable insights into the coupled effects of turbulence, phase change, and thermal transport in superheated ammonia sprays. Future research will build upon these results by extending the model to NH3/H2 dual-fuel systems, refining turbulence-phase interaction models, and exploring the potential application of ammonia-based flash-boiling cooling systems for electric vehicle (EV) battery thermal management.

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Cite This Study

Kaewbumrung et al. (2026) studied this question.

synapsesocial.com/papers/69ba42fb4e9516ffd37a3c22https://doi.org/10.3390/en19061471
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