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Computational Parametric Study of Fuel Distribution In An Experimental Trapped Vortex Combustor Sector Rig

机译:实验捕获涡旋燃烧室钻机中燃料分布的计算参数研究

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Numerical simulations are performed to predict the flow properties in a liquid spray droplets fueled Trapped Vortex Combustor (TVC) sector rig. The quantities studied include aerodynamics, pressure drop, spray droplets trajectories, evaporation, mixing and combustion, and combustor exit temperature distributions. Previous numerical simulations of this TVC configuration have identified basic flow patterns and performance characteristics, and were generally in good agreement with experimental data. In the current effort, more detailed investigations were performed to understand the sensitivity of the TVC combustor to variations in the liquid fuel injection parameters. The computational model is described, including combustor geometry, boundary conditions for all combustion and cooling air injections, and spray droplets inlet conditions. A key finding is that liquid fuel injection boundary conditions for different types of downstream flows (cavity, high velocity cross flow) require different treatments, even though similar fuel injectors are used. This is evident in the large differences observed in the combustor exit plane pattern factor due to only minor differences in the fueling schemes. Combustor exit temperature profile strongly affects the design for turbine durability. With small changes in the temperature distribution, design modifications for the first turbine vane cooling schemes are required.
机译:进行数值模拟以预测液体喷射液滴中的流动性能燃料被捕获的涡流燃烧器(TVC)扇形钻机。所研究的数量包括空气动力学,压降,喷雾液滴轨迹,蒸发,混合和燃烧,以及燃烧器出口温度分布。此TVC配置的先前数值模拟已经确定了基本的流量模式和性能特征,并且通常与实验数据一致。在目前的努力中,进行更详细的调查以了解TVC燃烧器对液体燃料喷射参数变化的灵敏度。描述了计算模型,包括燃烧器几何形状,用于所有燃烧和冷却空气喷射的边界条件,以及喷射液滴入口条件。关键发现是,即使使用类似的燃料喷射器,不同类型的下游流动(腔体,高速交叉流量)的液体燃料喷射边界条件也需要不同的处理。这在燃烧器出口平面图中观察到的大差异是显而易见的,因为仅加油方案中的小差异。燃烧器出口温度曲线强烈影响涡轮机耐用性的设计。随着温度分布的小变化,需要为第一涡轮叶片冷却方案进行设计改造。

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