Unsteady RANS simulations of under-expanded hydrogen jets for internal combustion engines

IF 8.1 2区 工程技术 Q1 CHEMISTRY, PHYSICAL International Journal of Hydrogen Energy Pub Date : 2024-11-28 DOI:10.1016/j.ijhydene.2024.11.242
Giovanni Caramia, Riccardo Amirante, Pietro De Palma
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Abstract

Hydrogen can be considered a suitable fuel for heavy-duty reciprocating internal combustion engines (ICEs) in order to limit carbon dioxide emissions. The low volumetric power density of hydrogen and the backfire problem suggest to employing the direct injection technology with relatively high nozzle pressure ratios (NPRs). This paper provides the analysis of under-expanded hydrogen jet dynamics using an open-source high-fidelity simulation tool based on the OpenFOAM framework. The unsteady Reynolds-averaged Navier–Stokes (URANS) equations are solved by an efficient pressure-based solver for compressible flow. URANS equations are attractive for fast engineering analysis of 3D engine cycle and optimization, where large eddy simulation (LES) is too computationally expensive. The accuracy of the simulations is enhanced by employing the weighted essentially non-oscillatory (WENO) approach for the spatial discretization, considering schemes from second-order to fourth-order accuracy. Those schemes are embedded in a pressure-implicit with splitting of operators (PISO) algorithm, obtaining a very robust and accurate numerical method for compressible multi-species flows, which can be shared in an open access framework. Hydrogen injection in air is simulated, with several values of the NPR typical of direct injection ICE in the low-medium range, 8.5NPR30. The main features of the developing jet are analyzed, such as barrel shock dimensions, cone angle and hydrogen–air mixing. The results are validated with respect to experimental and LES data available in the recent literature, demonstrating the efficiency and the accuracy of the employed URANS approach and evaluating its limits.
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内燃机欠膨胀氢射流的非定常RANS模拟
为了限制二氧化碳的排放,氢可以被认为是重型往复式内燃机(ICEs)的合适燃料。由于氢气的体积功率密度低,且存在回火问题,建议采用较高喷嘴压力比的直接喷射技术。本文使用基于OpenFOAM框架的开源高保真仿真工具对欠膨胀氢射流动力学进行了分析。采用基于压力的高效可压缩流求解器求解非定常reynolds -average Navier-Stokes (URANS)方程。URANS方程对于3D发动机循环和优化的快速工程分析具有吸引力,而大涡模拟(LES)的计算成本太高。采用加权本质非振荡(WENO)方法进行空间离散,考虑从二阶到四阶精度方案,提高了模拟的精度。这些方案嵌入到压力隐式算子分裂(PISO)算法中,得到了一个非常鲁棒和精确的可压缩多物种流数值方法,可以在开放访问框架中共享。对空气中氢气的喷射进行了模拟,在低-中范围内得到了几种典型的直接喷射内燃机的NPR值,8.5≤NPR≤30。分析了发展中射流的主要特征,如筒体激波尺寸、锥角和氢气-空气混合。根据最近文献中可用的实验和LES数据验证了结果,证明了所采用的URANS方法的效率和准确性,并评估了其局限性。
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来源期刊
International Journal of Hydrogen Energy
International Journal of Hydrogen Energy 工程技术-环境科学
CiteScore
13.50
自引率
25.00%
发文量
3502
审稿时长
60 days
期刊介绍: The objective of the International Journal of Hydrogen Energy is to facilitate the exchange of new ideas, technological advancements, and research findings in the field of Hydrogen Energy among scientists and engineers worldwide. This journal showcases original research, both analytical and experimental, covering various aspects of Hydrogen Energy. These include production, storage, transmission, utilization, enabling technologies, environmental impact, economic considerations, and global perspectives on hydrogen and its carriers such as NH3, CH4, alcohols, etc. The utilization aspect encompasses various methods such as thermochemical (combustion), photochemical, electrochemical (fuel cells), and nuclear conversion of hydrogen, hydrogen isotopes, and hydrogen carriers into thermal, mechanical, and electrical energies. The applications of these energies can be found in transportation (including aerospace), industrial, commercial, and residential sectors.
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