首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >COMBINATION OF TURBOCHARGER AND INDUSTRIAL TECHNOLOGIES FOR THE DEVELOPMENT OF AN IMPROVED MIXED-FLOW TURBINE DESIGN
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COMBINATION OF TURBOCHARGER AND INDUSTRIAL TECHNOLOGIES FOR THE DEVELOPMENT OF AN IMPROVED MIXED-FLOW TURBINE DESIGN

机译:涡轮增压器和工业技术的组合,为改进的混流式涡轮机设计开发

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A new mixed-flow radial turbine design for industrial applications was developed and experimentally investigated. The presented mixed-flow turbine recovers energy in industrial processes, which have unused pressurized, hot off-gas available. The design parameter values are very similar to the ones of mixed-flow turbines for turbocharger applications. Consequently, a turbocharger design was used as starting basis. The mechanical requirements of the industrial application are less challenging for the turbine design. It was possible to extend the design space of the blades far beyond the typical radial fiber constraint, which is usually used to fulfill the mechanical restrictions. This gives more freedom for the parameters used in the blade geometry generation. The final design has an increased efficiency and operating range. In addition to a maximized design point efficiency, a wide operating range is one of the major requirements concerning the turbine performance. During the development process of the radial turbine's wheel, an automated optimization was used. Due to the competitive design targets, multiple objectives and constrains were formulated. To satisfy the off-design efficiency requirements, each geometry was analyzed by means of six operating points. The mechanical integrity was checked by directly coupled FE simulations. The final design is further investigated and the reasons for the gained improvements are discussed. An experimental investigation of a prototype confirmed the numerically predicted improvements. A comparison of the measurements and the numerical results are shown. The objective of the paper is to show the possible potentials in efficiency and operating range of radial turbines with low mechanical restrictions. In many energy recovery applications, the operating conditions are well known and within clearly defined boundaries. For these applications, it is possible to engineer mixed-flow turbines primarily from the aerodynamical point of view ans secondly from the mechanical one. In the following described work, it was possible, starting from a good turbocharger design, to increase the turbine's performance. An automatic multi-point and multi-physics optimization was set up to reach the performance improvements.
机译:开发了一种用于工业应用的新的混合流动径向涡轮机设计和实验研究。呈现的混流式涡轮机在工业过程中恢复能量,其具有未使用的加压,热废气。设计参数值与用于涡轮增压器应用的混合流动涡轮机非常相似。因此,涡轮增压器设计用作开始基础。工业应用的机械要求对涡轮机设计不太具挑战性。可以延长远远超出典型的径向光纤约束的刀片的设计空间,这通常用于满足机械限制。这为刀片几何生成中使用的参数提供了更多自由度。最终设计具有提高的效率和工作范围。除了最大化的设计点效率之外,宽的操作范围是涡轮机性能的主要要求之一。在径向涡轮车轮的开发过程中,使用自动化优化。由于竞争设计目标,配制了多种目标和约束。为了满足非设计效率要求,通过六个操作点分析每个几何形状。通过直接耦合FE模拟检查机械完整性。进一步调查了最终设计,讨论了获得改进的原因。原型的实验研究证实了数值预测的改进。显示了测量和数值结果的比较。本文的目的是展示具有低机械限制的径向涡轮机的效率和操作范围的可能潜力。在许多能量恢复应用中,操作条件是众所周知的,并且在明确定义的边界内。对于这些应用,可以将混合流动涡轮机主要来自来自机械的混合流动涡轮机。在以下描述的工作中,可以从良好的涡轮增压器设计开始,从而提高涡轮机的性能。设置自动多点和多物理优化以达到性能改进。

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