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Finite-Volume Solutions to the Water-Hammer Equations in Conservation Form Incorporating Dynamic Friction Using the Godunov Scheme

机译:使用Godunov格式结合动力摩擦的守恒形式水锤方程的有限体积解

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Although derived from the principles of conservation of mass and momentum, the water-hammer equations integrating dynamic friction are almost never expressed in conservative form. This is because the pressure and volume discharge are used as variables but these are not conserved quantities, especially when the one-dimensional velocity profile is distorted from its assumed steady state shape due to the large accelerations imposed on the fluid particles across the cross section. This paper presents the derivation of the water-hammer equations in conservation form incorporating dynamic friction. With the dynamic friction taken into account, a source term appears in the basic partial differential equations as presented by Guinot. The numerical algorithm implements the Godunov approach to one-dimensional hyperbolic systems of conservation laws on a finite-volume stencil. Two case studies are used to illustrate the influence of the various formulations. A comparative study between the analytical solution, the numerical solution with quasi-steady friction only, the numerical solution with dynamic friction, and the measurements has been presented. The results indicate that the dynamic friction formulation reduces the peak water hammer pressures when compared with a quasi-steady representation.
机译:尽管从质量和动量守恒的原理中得出,但结合了动态摩擦的水锤方程几乎从未以保守的形式表示。这是因为压力和体积流量被用作变量,但不是守恒量,特别是当一维速度分布由于在横截面上施加在流体粒子上的加速度大而从其假定的稳态形状变形时。本文提出了包含动态摩擦的守恒形式的水锤方程的推导。考虑到动摩擦,源项出现在Guinot提出的基本偏微分方程中。数值算法在有限体积的模板上将Godunov方法应用于守恒律的一维双曲系统。通过两个案例研究来说明各种配方的影响。给出了解析解,仅具有准稳态摩擦的数值解,具有动态摩擦的数值解与测量之间的比较研究。结果表明,与准稳态表示相比,动摩擦公式降低了峰值水锤压力。

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