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ON THE COUPLING OF DESIGNER EXPERIENCE AND MODULARITY IN THE AEROTHERMAL DESIGN OF TURBOMACHINERY

机译:涡轮机热力设计中设计者经验与模块的耦合

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The turbomachinery aerodynamic design process is characterized both by its complexity and the reliance on designer experience for success.Complexity has led to the design being decomposed into modules; the specification of their interfaces is a key outcome of preliminary design and locks-in much of the final performance of the machine. Yet preliminary design is often heavily influenced by previous experience.While modularity makes the design tractable, it complicates the appropriate specification of the module interfaces to maximize whole-system performance: coupling of modularity and designer experience may reduce performance. This paper sets out to examine how such a deficit might occur and to quantify its cost in terms of efficiency.Two disincentives for challenging decomposition decisions are discussed. The first is where tried-and-tested engineering "rules of thumb" accord between modules: the rational engineer will find alluring a situation where each module can be specified in a way that maximizes its efficiency in isolation. The second is where there is discontinuity in modeling fidelity, and hence difficulty in accurately assessing performance exchange rates, between modules.In order to both quantify and reduce the potential cost of this coupling we have recast the design problem in such a way that what were previously module interface constraints become key system design variables.An example application of our method to the design of a generic turbofan core compression system is introduced. It is shown that nearly 1 percentage point equivalent compressor adiabatic efficiency can be saved.
机译:涡轮机械的空气动力学设计过程既具有复杂性,又具有对设计者成功经验的依赖。 复杂性导致设计被分解成模块。接口的规范是初步设计的关键成果,并锁定了机器的大部分最终性能。然而,初步设计通常会受到先前经验的严重影响。 虽然模块化使设计易于处理,但它使模块接口的适当规范复杂化,从而最大化了整个系统的性能:模块化和设计人员经验的结合可能会降低性能。本文着手研究这种赤字是如何发生的,并根据效率来量化其成本。 讨论了有挑战性的分解决策的两种抑制措施。第一个是模块之间经过实践检验的工程“经验法则”:合理的工程师会发现一种诱人的情况,即可以以最大化其隔离效率的方式指定每个模块。第二个是建模保真度不连续的地方,因此很难准确评估模块之间的性能交换率。 为了量化和减少这种耦合的潜在成本,我们以以前模块接口的约束成为关键系统设计变量的方式重塑了设计问题。 介绍了我们的方法在通用涡扇核心压缩系统设计中的示例应用。结果表明,可以节省近1个百分点的压缩机绝热效率。

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