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首页> 外文期刊>International Journal of Process Systems Engineering >Unsteady Reynolds-averaged Navier-Stokes: toward accurate prediction of turbulent mixing phenomena
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Unsteady Reynolds-averaged Navier-Stokes: toward accurate prediction of turbulent mixing phenomena

机译:非稳态雷诺平均Navier-Stokes:精确预测湍流混合现象

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摘要

Traditional steady-state simulation and turbulence modelling are not always reliable. Even relatively simple flow conditions phenomena such as buoyancy, flow oscillations and turbulent mixing can necessitate the use of computationally expensive unsteady simulation. Under these circumstances, the unsteady Reynolds-averaged Navier-Stokes (URANS) approach can offer accurate solutions without the prohibitive computational expenditure of large eddy simulation (LES) or direct numerical simulation (DNS). A particular benefit of the URANS methodology over LES type approaches is that it does not require complex boundary formulations at inflow or outflow boundary conditions. In order to test this methodology, the URANS approach is applied to three challenging nuclear engineering scenarios in which turbulent mixing plays a major role: parallel jets, fuel bundles and T-junctions. For each case, the capability of the methodology to accurately reproduce the flow field was assessed, and the results demonstrated that URANS holds promise to be the industrial standard in nuclear engineering applications that do not involve buoyancy.
机译:传统的稳态仿真和湍流建模并不总是可靠的。即使是相对简单的流动条件现象,例如浮力,流动振荡和湍流混合,也可能需要使用计算上昂贵的不稳定模拟。在这种情况下,不稳定的雷诺平均Navier-Stokes(URANS)方法可以提供准确的解决方案,而无需花费大量的涡旋模拟(LES)或直接数值模拟(DNS)进行计算。相对于LES类型方法,URANS方法的一个特殊好处是,在流入或流出边界条件下,不需要复杂的边界公式。为了测试这种方法,URANS方法被应用于三种具有挑战性的核工程场景,其中湍流混合起主要作用:平行射流,燃料束和T型结。对于每种情况,都评估了该方法精确再现流场的能力,结果表明URANS有望成为核工程应用中不涉及浮力的工业标准。

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