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Potential of Exhaust Energy Use for Charge Air Cooling in Supercharged Diesel Engines

机译:增压柴油发动机中电荷空气冷却的潜力

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A rough estimate of the energy components in internal combustion engines for motor vehicles indicates that the total fuel energy is converted to one-third each into mechanical energy, engine coolant heat and exhaust energy. This large share of waste heat in the exhaust motivates various attempts to recover the remaining exergy in the exhaust. Intensifying charge air cooling by an exhaust-heat-driven cooling system provides a promising approach to engine waste heat recovery. The exhaust energy is most suitable for this recovery effort due to its higher temperature level in comparison to engine coolant. A further decreasing of charge air temperature provides an additional degree of freedom, which expands the boundaries concerning engine application. In diesel engines, this intensified charge air cooling decreases cylinder temperature level, which can be used to reduce nitrogen oxide emissions in the raw exhaust at constant brake efficiency or vice versa to improve brake efficiency at constant nitrogen oxide emissions. Simulation results from the diesel engine described in this paper show a decrease of nitrogen oxide emission up to 37% at constant brake efficiency. Leaving the level of nitrogen oxide emissions unchanged led to an increase of the brake efficiency up to 4.7%.
机译:用于机动车辆的内燃机中的能量分量的粗略估计表明,总燃料能量被转换为三分之一的机械能,发动机冷却剂热量和排气能。这种大量的废热在排气中的热量刺激了各种尝试,以恢复排气中的残留物。通过排气热驱动的冷却系统冷却充电空气冷却提供了发动机废热回收的有希望的方法。与发动机冷却剂相比,由于其较高的温度水平,排气能量最适合于这种恢复努力。进一步降低的电荷空气温度提供了额外的自由度,这扩大了发动机应用的边界。在柴油发动机中,这种强化电荷空气冷却降低了汽缸温度水平,可用于减少恒定制动效率的原料排气中的氮氧化物排放,反之亦然,以提高恒定氮氧化物排放的制动效率。本文中描述的柴油发动机的仿真结果表明,在恒定的制动效率下,氮氧化物排放量可降低至37%。留下氮氧化物排放水平不变导致制动效率的增加高达4.7%。

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