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Improvement of the one-dimensional dissolved-solute convection equation using the QUICKEST-ULTIMATE algorithm

机译:用QUICKEST-ULTIMATE算法改进一维溶质对流方程

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The U.S.-NRC best-estimate system code TRACE adopts a finite volumes, first-order upwind discretization scheme to solve the dissolved-solute convection equation. Such a scheme is known to strongly suffer from numerical diffusion, which can be a significant drawback in analyzing certain safety relevant scenarios in nuclear power plants, e.g. with plugs of solute (or plugs of diluting water) traveling from the loops to the core and thus affecting the reactivity of the system. In such cases, high-order upwind converting schemes are better suited to discretize and solve the solute convection equation. In particular, the explicit QUICKEST (Quadratic Upwind Interpolation for Convective Kinematics with Estimated Streaming Terms) scheme, together with the ULTIMATE (Universal Limiter for Transient Interpolation Modeling of the Advective Transport Equation) limiter, offers an attractive solution, thanks to the overall third-order accuracy, the intrinsic stability of the upwind scheme and the limited increase in computational costs. In order to demonstrate the feasibility and the advantages of the implementation of such a solution strategy in TRACE, the scheme has been implemented in the code and verified for simple geometries (e.g. straight pipes) and for a double T-junction loop, the latter in the context of using a CFD (Computational Fluid dynamics) code coupled with TRACE.
机译:美国-NRC最佳估计系统代码TRACE采用有限体积一阶迎风离散方案来求解溶质对流方程。已知这样的方案强烈地遭受数值扩散,这在分析核电厂中某些与安全有关的情况时可能是一个重大缺点,例如在核电厂中。溶质堵塞物(或稀释水堵塞物)从环流到岩心,从而影响系统的反应性。在这种情况下,高阶迎风转换方案更适合离散化和求解溶质对流方程。特别是,由于整体上第三订单准确性,迎风方案的固有稳定性以及计算成本的有限增加。为了证明在TRACE中实施这种解决方案策略的可行性和优势,该方案已在代码中实施,并针对简单几何形状(例如,直管)和双T形结环进行了验证,后者在CFD(计算流体力学)代码与TRACE结合使用的上下文。

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