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Numerical Analysis of Energy Flow Paths in Exhaust Gas Turbochargers by Means of Conjugate Heat Transfer

机译:共轭传热的废气涡轮增压器能量流路数值分析

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Heat transfer effects play a significant role in assessing the performance of automotive turbochargers. Thermal effects are becoming increasingly relevant due to reduced machine sizes and increased exhaust gas temperatures. In this work, a study of the individual energy flows is conducted by simulation of a complete turbocharger comprising compressor (d_c = 51 mm), turbine, and bearing housing using conjugate heat transfer. Special focus is given to the analysis of the various heat flows occurring in the machine aiming to identify the major heat transfer paths and their sensitivity with respect to varying operating conditions. Cooling of the bearing housing is shown to be a powerful thermal isolator mitigating the heat transferred to the compressor by up to 60%. Moreover, the rotating speed largely dictates the amount of heat transfer in the compressor and the direction of the heat flow: Whereas at low speeds (22% of max. speed), 117W are introduced into the fluid and 338 W are being discharged from the fluid at maximum speed. At high speed operation, the heat transfer is shown to be insignificant compared to the aerodynamic work. At low speeds, however, it can reach up to 35% of the aerodynamic work. While the turbine inlet temperature largely governs the overall heat that is lost from the exhaust gas passing the turbine (from 630 W at 300 ℃ up to 3.72 kW at 1050 ℃). only a minor effect on the compressor heat transfer is detected.
机译:传热效应在评估汽车涡轮增压器的性能中起着重要作用。由于减小的机器尺寸和增加的排气温度,热效应变得越来越重要。在这项工作中,通过模拟一个完整的涡轮增压器对单个能量流进行了研究,该涡轮增压器包括压缩机(d_c = 51 mm),涡轮和使用共轭传热的轴承箱。特别关注分析机器中发生的各种热流,以识别主要的传热路径及其对变化的工况的敏感性。轴承箱的冷却被证明是一种强大的隔热装置,可将传递给压缩机的热量降低多达60%。此外,转速在很大程度上决定着压缩机中的传热量和热流的方向:而在低速(最大速度的22%)下,117W被引入到流体中,而338W正在从流体中排出。以最大速度注入液体。在高速运转下,与空气动力相比,传热是微不足道的。但是,在低速时,它可以达到空气动力学功的35%。涡轮机的入口温度在很大程度上控制着通过涡轮机的废气损失的全部热量(从300℃的630 W到1050℃的3.72 kW)。仅检测到对压缩机传热的微小影响。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2017年第6期|061901.1-061901.9|共9页
  • 作者单位

    Institute for Combustion Engines, RWTH Aachen University, Forckenbeckstraße 4, Aachen 52074, Germany;

    Institute for Combustion Engines, RWTH Aachen University, Forckenbeckstraße 4, Aachen 52074, Germany;

    Institute for Combustion Engines, RWTH Aachen University, Forckenbeckstraße 4, Aachen 52074, Germany;

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