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THE ASYMMETRIC TWIN SCROLL TURBINE FOR EXHAUST GAS TURBOCHARGERS

机译:排气涡轮增压器的不对称双涡轮机

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Current turbocharged diesel engines use exhaust gas recirculation (EGR) to effectively meet emission standards. With exhaust gas recirculation it is possible to keep the nitrogen oxide (NOx) emissions to a minimum, largely by lowering the local peak temperatures in the combustion chamber. Exhaust gas transportation from the exhaust side to the air side can be realized in different ways. All have in common that, a drop of pressure from the exhaust to the air is needed. In this paper the high pressure exhaust gas recirculation concept will be discussed, where the exhaust gases are transported from the upstream side of the turbocharger turbine to the downstream side of the charge air cooler. In this concept a negative pressure difference between turbine inlet and engine intake is needed, leading to inefficient gas exchange and, in the end, increasing fuel consumption.In order to keep the overall fuel consumption increase as low as possible, some of the current 6-cylinder Mercedes-Benz truck engines, that have EGR, are equipped with the so-called asymmetric twin scroll turbine to provide the most efficient exhaust gas transportation. In this design concept the negative pressure difference between engine intake and turbine inlet is generated in just one of the two exhaust branches. Thus, whilst some cylinders are operated with a high exhaust gas backpressure, others are operated with a fuel-saving low exhaust gas back-pressure. The different back-pressures in the two exhaust branches are created by designing each flow path of the twin scroll turbine differently. The exhaust branch with the higher back-pressure needs a turbine scroll with a much smaller flow parameter than the exhaust branch with the lower back-pressure. As both flow paths are coupled to the same turbine wheel, the flow parameter is modified using the design parameters of the scrolls. This produces two totally different turbine concepts in one turbine housing. The turbine path with the higher flow parameter has a classical radial turbine reaction value of 0.5. This flow path can thus be optimized for maximum efficiency in comparison with other radial turbines. In contrast, the turbine path with the lower flow parameter combined with the turbine wheel is operated with a reaction value approaching zero. This flow path tends to need an axial turbine with a high flow direction change like an impulse turbine, even if a radial turbine wheel is used. Operating a radial turbine wheel under this boundary condition needs new development steps to improve the turbine with regard to mechanical feasibility and thermodynamic efficiency.This paper describes the principle mechanism of the asymmetric twin scroll turbine. Detailed engine cycle simulations give a brief introduction into the main advantages of asymmetric turbines in combination with exhaust gas recirculation. Hot gas test stand studies show the principle characteristics of this turbine type and the numerical flow simulations give a detailed insight into the flow phenomena in the turbine. The key design values will be discussed and the future outlook indicates the next development steps that will be required.
机译:当前的涡轮增压柴油机使用废气再循环(EGR)来有效满足排放标准。通过废气再循环,可以通过最大程度地降低燃烧室中的局部峰值温度来将氮氧化物(NOx)排放量保持在最低水平。从排气侧到空气侧的排气运输可以以不同的方式实现。所有人都有一个共同点,那就是需要从排气到空气降低压力。在本文中,将讨论高压废气再循环概念,其中废气从涡轮增压器涡轮的上游侧输送到增压空气冷却器的下游侧。在此概念中,需要在涡轮机进气口和发动机进气口之间产生负压差,从而导致气体交换效率低下,最终增加燃料消耗。 为了使总的燃油消耗尽可能地降低,目前一些具有EGR的六缸梅赛德斯·奔驰卡车发动机配备了所谓的不对称双涡旋涡轮,以提供最有效的废气运输。在这种设计方案中,发动机进气口和涡轮进气口之间的负压差仅在两个排气支路之一中产生。因此,尽管一些气缸以高排气背压运行,而另一些气缸以节省燃料的低排气背压运行。通过对双涡旋涡轮的每个流路进行不同的设计,可以在两个排气支路中产生不同的背压。具有较高背压的排气支路需要比具有较低背压的排气支路的涡轮机涡流具有更小的流量参数。 压力。由于两个流动路径都耦合到同一涡轮机叶轮,因此使用涡旋的设计参数可以修改流动参数。这在一个涡轮机壳体中产生了两种完全不同的涡轮机概念。流量参数较高的涡轮路径的经典径向涡轮反力值为0.5。因此,与其他径向涡轮机相比,可以优化该流动路径以实现最大效率。相反,具有较低流量参数的涡轮机路径与涡轮机叶轮一起以接近零的反作用值运行。即使使用径向涡轮机叶轮,该流动路径也倾向于需要具有高流动方向变化的轴向涡轮机,如脉冲涡轮机。在这种边界条件下操作径向涡轮机叶轮需要新的开发步骤,以在机械可行性和热力学效率方面改善涡轮机。 本文介绍了非对称双涡旋涡轮的原理机理。详细的发动机循环模拟简要介绍了不对称涡轮机与废气再循环相结合的主要优点。热气试验台的研究表明了这种涡轮机的原理特性,数值流模拟对涡轮机中的流动现象提供了详细的了解。将讨论关键的设计价值,未来的展望表明了将需要的下一步开发步骤。

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