首页> 外文会议>ASME Turbine Technical Conference and Exposition >AN INTEGRATED CONJUGATE COMPUTATIONAL APPROACH FOR EVALUATING THE AEROTHERMAL AND THERMOMECHANICAL PERFORMANCE OF DOUBLE-WALL EFFUSION COOLED SYSTEMS
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AN INTEGRATED CONJUGATE COMPUTATIONAL APPROACH FOR EVALUATING THE AEROTHERMAL AND THERMOMECHANICAL PERFORMANCE OF DOUBLE-WALL EFFUSION COOLED SYSTEMS

机译:一种综合共轭计算方法,用于评估双壁积液冷却系统的空气热机械性能

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The drive to further increase gas turbine thermal efficiency and specific power output continue to elevate core temperatures well beyond the natural capabilities of the metals employed in their manufacture necessitating increasingly complex cooling systems. One such cooling mechanism is the double-wall, effusion-cooled system which combines in a very compact format, many cooling aspects already implemented in gas turbine cooling. Todate, thermomechanical stresses have provided one of the more significant challenges in the implementation of these systems and needs to be considered - alongside aerothermal performance - at the initial stages of design. This paper presents a novel computational method that has been developed to allow an integrated assessment of both the aerothermal and thermomechanical performance of double-wall cooling geometries. A decoupled conjugate method was developed in which internal cooling performance was ascertained via a conjugate CFD model in which the mainstream flow was not simulated. Instead, external film cooling performance was assessed via a superposition method that was developed and applied to a two-dimensionally varying correlation allowing streamwise film development to be modelled. Results of both the internal and external cooling simulations were then utilised in a conduction model to develop a complete thermal assessment of the geometry. The calculated temperature distribution was used in a thermomechanical FEA analysis permitting an insight into the stress field developed within the double-wall geometry under thermal load. The developed method was demonstrated in the assessment of seven circular pedestal, double-wall geometries in which a range of geometric parameters were investigated. The results provide an insight into the effect of varying these parameters on both the aerothermal performance of the selected geometries, along with the effect on the thermomechanical stress field developed.
机译:进一步提高燃气涡轮机热效率和特定功率输出的驱动器继续升高核心温度,远远超出其制造中所采用的金属的自然能力,所以需要越来越复杂的冷却系统。一种这样的冷却机构是双壁的流入冷却系统,其以非常紧凑的形式结合,许多冷却方面已经在燃气涡轮机冷却中实施。百合,热机械应力为实施这些系统的实施方案提供了一个更为重大的挑战,并且需要考虑 - 在设计的初始阶段以及在设计的初始阶段。本文提出了一种新颖的计算方法,已经开发,以允许对双壁冷却几何形状的空气热和热机械性能进行综合评估。开发了一种去耦的共轭方法,其中通过缀合的CFD模型确定内部冷却性能,其中没有模拟主流流动。相反,通过开发的叠加方法评估外部膜冷却性能,并施加到二维变化的相关性,允许建模流动膜显影。然后利用内部和外部冷却模拟的结果在传导模型中,以开发几何形状的完整热评估。计算的温度分布用于热机械的FEA分析,允许在热负荷下欣赏到在双壁几何形状内开发的应力场。在评估七个圆形基座,双壁几何形状的评估中证明了开发的方法,其中研究了一系列几何参数。结果介绍了改变这些参数对所选几何形状的空气性能的影响,以及对发育的热机械应力场的影响。

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