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Design of Counter-rotating Turbine to Improve the Off-design Performance of Turbo-compounding Systems

机译:设计反向旋转涡轮以提高涡轮复合系统的偏离设计性能

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Engine turbo-compounding (TC) is an effective technology to improve the engine efficiency and cut down CO_2 emission. A power turbine downstream of the conventional turbocharger turbine is used to recover the exhaust energy and transfer it into mechanical work. However, the performance of turbo-compound system deteriorates seriously at engine off-design points. It is mainly caused by the fact that the designs of turbocharger turbine and power turbine are independent from each other, failing to consider the effects of upstream swirls on the downstream power turbine performance. Analysis showed that the off-design conditions, off-design incidence loss, transition duct loss and non-uniformity inlet loss contributed to the deterioration performance of power turbine at off-design conditions. Among these reasons, the incidence loss played significant effect on power turbine's performance. The current research aims to improve the turbo-compounding performance at engine off-design conditions by counter-rotating turbine (CRT) configuration. CRT consists of a radial-flow turbocharger turbine and an axial-flow power turbine with counter-rotating direction. The main purpose is to decrease the incidence loss and turning loss in the power turbine stator by CRT. Performance comparisons between the counter- and co-rotating turbines have also been conducted. First, meanline analysis was carried out to investigate the influences of design parameters on the velocity triangles and turbine performance. Analysis shows that counter-rotating turbine requires the design of high reaction radial turbine. Then, the 1D preliminary design starts and it is followed by 3D detail design. Finally, the computational fluids dynamic (CFD) method was used to evaluate the counter-rotating turbines performance. Results show that the designed counter-rotating turbine improves the off-design performance effectively, with 3.8% increase of power turbine efficiency points at 1200rpm condition. Further analysis on the flow field was conducted and it was found that the flow angle distribution at upstream turbine exit was highly non-uniformity along the span. To weaken the non-uniformity may be a potential way to further improve the performance of turbo-compounding systems.
机译:发动机涡轮复合(TC)是提高发动机效率并减少CO_2排放的有效技术。传统涡轮增压器涡轮机下游的动力涡轮机用于回收废气能量并将其转化为机械功。但是,涡轮复合系统的性能在发动机非设计点严重恶化。主要原因是涡轮增压器和动力涡轮的设计相互独立,没有考虑上游涡流对下游动力涡轮性能的影响。分析表明,在设计外条件下,设计外条件,设计外入射损耗,过渡管道损耗和进气口不均匀性是导致涡轮机性能下降的原因。在这些原因中,入射损失对动力涡轮的性能产生了重大影响。当前的研究旨在通过反向旋转涡轮(CRT)配置来提高发动机在非设计状态下的涡轮复合性能。 CRT由具有反向旋转方向的径向流涡轮增压器涡轮机和轴流功率涡轮机组成。主要目的是通过CRT减少动力涡轮定子中的入射损耗和旋转损耗。反向旋转和同向旋转涡轮之间的性能比较也已进行。首先,进行平均线分析以研究设计参数对速度三角形和涡轮性能的影响。分析表明,反向旋转涡轮需要设计高反作用力径向涡轮。然后,开始进行1D初步设计,然后进行3D详细设计。最后,使用计算流体动力学(CFD)方法评估反向旋转涡轮机的性能。结果表明,设计的反向旋转涡轮机有效地改善了非设计性能,在1200rpm条件下,功率涡轮机效率点提高了3.8%。对流场进行了进一步分析,发现上游涡轮出口处的流角分布沿跨度高度不均匀。减弱不均匀性可能是进一步改善涡轮复合系统性能的潜在方法。

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