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Numerical analysis of flow interaction of turbine system in two-stage turbocharger of internal combustion engine

机译:内燃机两级涡轮增压器中涡轮系统流动相互作用的数值分析

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To reach the goal of energy conservation and emission reduction, high intake pressure is needed to meet the demand of high power density and high EGR rate for internal combustion engine. Present power density of diesel engine has reached 90KW/L and intake pressure ratio needed is over 5. Two-stage turbocharging system is an effective way to realize high compression ratio. Because turbocharging system compression work derives from exhaust gas energy. Efficiency of exhaust gas energy influenced by design and matching of turbine system is important to performance of high supercharging engine. Conventional turbine system is assembled by single-stage turbocharger turbines and turbine matching is based on turbine MAP measured on test rig. Flow between turbine system is assumed uniform and value of outlet physical quantities of turbine are regarded as the same as ambient value. However, there are three-dimension flow field distortion and outlet physical quantities value change which will influence performance of turbine system as were demonstrated by some studies. For engine equipped with two-stage turbocharging system, optimization of turbine system design will increase efficiency of exhaust gas energy and thereby increase engine power density. However flow interaction of turbine system will change flow in turbine and influence turbine performance. To recognize the interaction characteristics between high pressure turbine and low pressure turbine, flow in turbine system is modeled and simulated numerically. The calculation results suggested that static pressure field at inlet to low pressure turbine increases back pressure of high pressure turbine, however efficiency of high pressure turbine changes little; distorted velocity field at outlet to high pressure turbine results in swirl at inlet to low pressure turbine. Clockwise swirl results in large negative angle of attack at inlet to rotor which causes flow loss in turbine impeller passages and decreases turbine efficiency. However negative angle of attack decreases when inlet swirl is anti-clockwise and efficiency of low pressure turbine can be increased by 3% compared to inlet condition of clockwise swirl. Consequently flow simulation and analysis are able to aid in figuring out interaction mechanism of turbine system and optimizing turbine system design.
机译:为了达到节能和减排的目标,需要高进入压力来满足内燃机高功率密度和高EGR率的需求。柴油发动机的当前功率密度已达到90kW / L和所需的进气量率超过5.两级涡轮增压系统是实现高压缩比的有效方法。因为涡轮增压系统压缩工作来自废气能量。由涡轮系统设计和匹配影响的废气能效率对高增压发动机的性能非常重要。传统的涡轮机系统由单级涡轮增压器涡轮机组装,涡轮机匹配基于试验台上测量的涡轮机图。涡轮机系统之间的流动被假设均匀,并且出口物理量的涡轮机的值被认为与环境值相同。然而,存在三维流场失真和出口物理量值,这将影响涡轮机系统的性能,如一些研究所证明的。对于配备两级涡轮增压系统的发动机,涡轮系统设计的优化将提高排气能量的效率,从而提高发动机功率密度。然而,涡轮系统的流动相互作用将改变涡轮机的流动并影响涡轮机性能。为了识别高压涡轮机和低压涡轮机之间的相互作用特性,在数值上建模和模拟涡轮系统的流动。计算结果表明,低压涡轮机入口处的静压场增加了高压涡轮机的反压力,但高压涡轮机的效率很少;出口到高压涡轮机的扭曲速度场导致入口处的旋转到低压涡轮机。顺时针旋流在入口到转子的大量攻角导致涡轮机叶轮通道中的流量损失并降低涡轮机效率。然而,当入口涡流是逆时针并且低压涡轮机的效率相比,与顺时针涡流的入口条件相比,当入口涡流是逆时针时,逆时针的效率可以增加3%。因此,流动仿真和分析能够帮助涡轮机系统的相互作用机制和优化涡轮系统设计。

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