Structural Analysis of Profiled Tubes for a Turbofan Engine Supercritical-CO2 Bottoming Cycle Heat Exchanger

J. Rengel, Florian Jacob, A. Rolt, V. Sethi
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Abstract

The EU Horizon 2020 ULTIMATE project aims to mitigate one of the greatest loss sources in modern turbofans: the heat in core exhaust gases. The introduction of a closed-circuit recuperated bottoming cycle, using supercritical CO2 (S-CO2) as a working fluid that is heated by the exhaust gases, has been shown to be a feasible option. Involute spiral heat exchangers have been studied for intercoolers and cooled cooling air systems. However, placing them in the core exhaust and using S-CO2 implies significant mechanical design challenges from the elevated temperatures and high internal pressures. The studied scenario considers a heat exchanger of 60% effectiveness, with an internal fluid pressure of 32 MPa. The primary objective is to minimise the total mass of the heat exchanger tubes. The work is focused on studying elliptical tubes and an alternative multi-arc cross-section design with internal webs that is more structurally efficient. A parametric analysis of the proposed geometry has been conducted to capture the influence of each of the geometric variables on the resulting stresses. The alloy Ti-6Al-4V is selected as the tube material and the results show that for a 400 MPa maximum allowable stress, a chord of 10 mm, a chord to thickness ratio of eight and a mi nimum wall thickness of 0.2 mm, the minimum tube weight is 20.5 g/m.
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涡扇发动机超临界co2底循环换热器异形管结构分析
欧盟地平线2020终极项目旨在减轻现代涡轮风扇最大的损失来源之一:核心废气中的热量。使用超临界CO2 (S-CO2)作为被废气加热的工作流体,采用闭路回收底循环已被证明是一个可行的选择。研究了渐开线螺旋换热器在中间冷却器和冷却空气系统中的应用。然而,将它们放置在核心排气口并使用S-CO2意味着来自高温和高内压的重大机械设计挑战。所研究的场景考虑了一个效率为60%的热交换器,内部流体压力为32 MPa。主要目标是使热交换器管的总质量最小化。工作重点是研究椭圆管和一种结构效率更高的带内腹板的多弧截面设计。对所提出的几何形状进行了参数分析,以捕捉每个几何变量对所产生的应力的影响。管材选用Ti-6Al-4V合金,结果表明:在最大允许应力为400 MPa、弦长为10 mm、弦厚比为8、最小壁厚为0.2 mm的条件下,管材的最小重量为20.5 g/m。
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