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Axisymmetric Weakly Compressible Transient Pipe Flow and Water Hammer Control

机译:轴对称弱可压缩瞬态管道流量和水锤控制

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The transient flow in a long cylindrical pipe caused by the motion of a valve is a subject of significant interest in wide engineering applications. Despite the partial success of existing theoretical models in explaining certain transient flow phenomena, they can hardly predict the evolution of strong water hammer, in particular the one downstream the valve caused by its closing (reversed water hammer). We attack this important problem by a new theory based on the unsteady axisymmetric and compressible Navier-Stokes equations, so that the viscous effect and inevitable coupling between the pressure wave and vortical wave can be fully taken into account. The weak compressibility of water naturally permits applying perturbation approach, of which the leading-order transient solution is found to be in excellent agreement with the result of direction simulation of the original N-S equation. We establish a simple connection between the valve motion and adjacent pressure in reversed water hammer, which enables the optimization of the valve motion to minimize the strength of the water hammer. Extension of the present laminar theory to turbulent flow with cavitation is being investigated and will be reported elsewhere.
机译:由阀门运动引起的长圆柱管中的瞬态流动是在宽工程应用中有兴趣的主题。尽管现有理论模型的部分成功解释了某些瞬态流动现象,但它们几乎无法预测强水锤的演变,特别是由其关闭(反向水锤)引起的瓣膜下游的一个。通过基于非定常的轴对称和可压缩Navier-Stokes方程,通过一种新的理论攻击这一重要问题,使得压力波和涡旋之间的粘性效果和不可避免的耦合可以完全考虑。水自然允许施用扰动方法的弱可压缩性,其中发现前导瞬态解决方案与原始N-S方程的方向模拟结果非常一致。我们在反向水锤中的阀运动和相邻压力之间建立了简单的连接,这使得阀门运动能够最小化水锤的强度。正在研究目前层状理论与空化的湍流延伸,并将在其他地方报告。

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