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A CFD (computational fluid dynamics) study for optimization of gas injector orientation for performance improvement of a dual-fuel diesel engine

机译:CFD(计算流体动力学)研究,用于优化喷油器方向,以改善双燃料柴油发动机的性能

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摘要

A CFD (computational fluid dynamics) study was conducted on a diesel engine (7.4 kW) under dual-fuel mode (diesel-CNG (compressed natural gas), and diesel-H_2 (hydrogen)) for optimization of gas injector orientation (location and angle). The critical distance of gas injector between intake valve axis and injector mounting point is found to be 248.4 mm, 219.3 mm, and 96.8 mm at 1500 rpm, 1800 rpm, and 5000 rpm at 2 bar gas injection pressure. If gas injector is mounted beyond the critical point, the injected gas fuel cannot reach completely into the engine cylinder during suction stroke that may result to power drop and high chance of backfiring due to the gas accumulation. The optimum injector angle at the optimum location is found to be 0° and 225° with reference to axis of intake manifold based on better mixture formation and higher thermal efficiency as compared to other angles. The experimental results have good agreement with simulation results as BTE (brake thermal efficiency) increased from 27.3% with 45° to 28.9% with 225° injector's angle at distance of 245 mm. A methodology for optimization of gas injector orientation for better thermal efficiency is emerged from this study. This study could also be applicable to other fluids including EGR (exhaust gas recirculation).
机译:针对双燃料模式(柴油-CNG(压缩天然气)和柴油-H_2(氢))的柴油发动机(7.4 kW)进行了CFD(计算流体动力学)研究,以优化喷油器的方向(位置和位置)。角度)。发现在2 bar的气体喷射压力下,进气门轴线与喷射器安装点之间的气体喷射器的临界距离为248.4 mm,219.3 mm和96.8 mm,分别为1500 rpm,1800 rpm和5000 rpm。如果将气体喷射器安装在临界点之外,则在吸入冲程期间,喷射的气体燃料将无法完全进入发动机气缸,这可能会导致功率下降以及由于气体积聚而造成高回火的机会。基于与其他角度相比更好的混合物形成和更高的热效率,相对于进气歧管的轴线,在最佳位置处的最佳喷射器角度为0°和225°。实验结果与仿真结果吻合良好,因为BTE(制动热效率)从245mm喷射器角度的45°的27.3%增加到225°喷射器角度的28.9%。这项研究提出了一种优化气体喷射器定向以提高热效率的方法。这项研究也可能适用于其他流体,包括EGR(废气再循环)。

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