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INFLUENCE OF ALTERNATIVE FUELS ON THE LINER METAL TEMPERATURES IN A V2500 COMBUSTOR

机译:替代燃料对V2500燃烧器中衬里金属温度的影响

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To reach ambitions emission goals, the use of sustainable aviation fuels (SAFs) is a short-term option in current aero engines. The combustion of such fuels can, due to their low soot formation, have an impact on the thermal radiation inside the combustor. This in turn can affect the combustor liner temperatures, which are directly linked to the lifetime of the combustor. To study the impact of SAFs, the authors numerically simulated the flow inside a V2500 aero engine combustor using an OpenFOAM-based solver capable of capturing multi-physics phenomena such as combustion, conjugate heat transfer, thermal radiation and soot formation. The complex cooling system of the V2500 combustor makes the evaluation of the wall temperatures extremely challenging. To achieve results with the resources available, the authors replaced the densely packed pins inside the cooling channel with a boundary condition. This boundary condition was derived from a highly detailed simulation of a section of the cooling system. With this model reduction, the wall temperatures could be evaluated at four operating points. Back-to-back comparisons of the predicted wall temperatures with pictures of deteriorated combustor hardware out of the field operation reveals the plausibility of the numerical results. Finally, this numerical model was extended to include the effects of thermal radiation and soot formation. To predict the combustion of Jet-A, both models were used with settings derived from former validation simulations. The SAF combustion with extremely low sooting level was mimicked by deactivating the soot formation completely. The comparison of the radiation source term reveals - as expected - locally a higher radiation emission in areas where soot is formed in the combustor. As consequence, this leads to higher net radiative heat flux into the combustor liners. However, due to its minor importance in the overall energy balance, this change did not lead to significantly different liner temperatures.
机译:为了达到雄心弹排放目标,使用可持续航空燃料(SAFS)是当前航空发动机的短期选择。由于它们的低烟灰形成,这种燃料的燃烧可以对燃烧器内的热辐射产生影响。这又可以影响燃烧器衬里温度,该温度直接连接到燃烧器的寿命。为研究SAFS的影响,作者使用能够捕获多物理现象(如燃烧,缀合物传热,热辐射和烟灰形成)的OpenFoam的求解器来数值模拟V2500 Aero发动机燃烧器内的流量。 V2500燃烧器的复杂冷却系统使壁温的评估极其具有挑战性。为了实现可用资源的结果,作者用边界条件更换了冷却通道内的密集包装销。该边界条件是从冷却系统的一部分部分的高度详细模拟来源的。通过这种模型,可以在四个操作点评估壁温度。使用劣化的燃烧器硬件图片的预测壁温度的背靠背比较出现场操作揭示了数值结果的合理性。最后,该数值模型扩展到包括热辐射和烟灰形成的影响。为了预测Jet-A的燃烧,两种模型都与从前验证模拟导出的设置使用。通过完全停用烟灰形成,模仿具有极低烟灰水平的SAF燃烧。辐射源术语的比较显示 - 如预期的 - 局部地是在燃烧器中形成烟灰区域的较高辐射发射。结果,这导致更高的净辐射热通量进入燃烧器衬里。然而,由于其在整体能量平衡中轻微重要性,这种变化不会导致显着不同的衬里温度。

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