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Laplace transform finite volume modeling of water hammer along fluid-structure interaction

机译:拉普拉斯沿流体结构相互作用水锤改造有限体积建模

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Water hammer or propagation of pressure waves generates profound forces through pipelines of industrial high pressure processes which causes structural vibration of the pipe in both radial and axial directions. To model the sudden rupture of a pipeline system the fluid-structure interaction, FSI, is taken into account by coupling the structural vibration equations to the fluid dynamic equation. In this paper, Laplace transform finite volume, LTFV, which is a new technique along the finite element method is developed to treat fluid transient and the structural vibration equations respectively.To evaluate the numerical results, a Thermal Hydraulic Test Loop (THTL facility) which has been designed and constructed for experimental research on the physical phenomena, characteristics and performance of the safety systems involved in plants is used. To conduct tests for representing a sudden break condition in the loop, the THTL facility has been equipped by devices and sensors to record pressure and vibration signals during simulated accidents. Under steady condition, by an electrical signal an electric valve, Break valve, is opened and simultaneously pressure along pipe vibration signals close to valve is recorded. Comparing the experimental data to results from numerical modeling validated the implemented method. (C) 2019 Elsevier Ltd. All rights reserved.
机译:水锤或压力波的传播通过工业高压过程的管道产生深刻的力,这导致管道的结构振动在径向和轴向方向上。为了模拟管道系统的突然破裂,通过将结构振动方程耦合到流体动力学方程,考虑流体结构相互作用FSI。在本文中,开发了Laplace变换有限体积,LTFV,即沿着有限元方法的新技术,分别分别处理流体瞬态和结构振动方程。评估数值结果,热液压测试回路(THTL设施)已经设计和构建用于对物理现象的实验研究,使用植物中涉及的安全系统的特性和性能。为了对循环表示的突然断裂条件进行测试,THTL设施已经通过设备和传感器配备,以在模拟事故期间记录压力和振动信号。在稳定条件下,通过电信号通过电信号,打开断开阀,并记录沿着靠近阀门的管道振动信号同时压力。将实验数据与数值模型的结果进行比较验证了实现的方法。 (c)2019 Elsevier Ltd.保留所有权利。

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