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GLOBAL THREE-DIMENSIONAL SURROGATE MODELING OF GAS TURBINE AERODYNAMIC PERFORMANCE

机译:燃气轮机气动性能的整体三维替代模型

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Turbine blade aerodynamic performance can be accurately predicted using one-dimensional mean-line and two-dimensional through-flow solvers. These predictions have been achieved by coupling one and two-dimensional ideal flow equations with blade aerodynamic loss and flow deviation angle models. These loss and deviation models are largely generated using classical cascade testing which have limitations and constraints. These limitations are associated with testing in general and include scope, time, resources, geometric and operating parameter space, data scatter and uncertainty. The models largely ignore interaction effects and can be subjective. The loss and deviation models also do not incorporate blade features associated with modern turbine blades. The objective of this paper is to study the feasibility of conducting these experiments numerically using three-dimensional turbine blade and constructing global blade performance and loss models. The study looks at a number of competing surrogate modeling techniques and evaluates their performance for optimum blade loss and deviation prediction. The effect of Reynolds number, performance parameter definition, operating condition specification along with the use of extended parameters are investigated to further enhance the surrogate models. The performance map generated using the optimized surrogate models is then validated using a 1.5 stage axial turbine. The results show that numerically generated surrogate models can be used to accurately predict the CFD based axial turbine performance.
机译:涡轮叶片的空气动力性能可以使用一维平均线和二维通流求解器进行精确预测。通过将一维和二维理想流方程与叶片空气动力损失和流偏角模型耦合,可以实现这些预测。这些损失和偏差模型主要是使用经典的级联测试生成的,这些测试具有局限性和局限性。这些限制通常与测试相关,包括范围,时间,资源,几何和操作参数空间,数据散布和不确定性。这些模型很大程度上忽略了交互作用,并且可能是主观的。损耗和偏差模型也没有包含与现代涡轮机叶片相关的叶片特征。本文的目的是研究使用三维涡轮机叶片进行数值实验并构建整体叶片性能和损耗模型的可行性。这项研究着眼于许多竞争性的替代建模技术,并评估了它们的性能,以优化叶片损耗和偏差预测。研究了雷诺数,性能参数定义,操作条件规范以及使用扩展参数的影响,以进一步增强代理模型。然后使用1.5级轴流式涡轮机验证使用优化的替代模型生成的性能图。结果表明,数值生成的替代模型可用于准确预测基于CFD的轴流涡轮机性能。

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