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首页> 外文期刊>International Journal of Pressure Vessels and Piping >Further investigation on the water-hammer control branching strategy in pressurized steel-piping systems
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Further investigation on the water-hammer control branching strategy in pressurized steel-piping systems

机译:加压钢管系统水锤控制分支策略的进一步研究

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The branching design strategy was recognized as being a practical technique for water-hammer surge control in pressurized steel-piping systems. This strategy is based on adding a branched polymeric short-section at the transient sensitive region of an existing steel piping system. On the other hand, design practices require numerical solvers that are both accurate and computationally efficient. Accordingly, this paper revisited the implementation of the branching design strategy using a1-Dunconventional water-hammer model based upon the Ramos formulation to benefit from its simplified representations of unsteady friction effects and pipe wall behavior. The transient solver was performed using the Fixed Gird Method of Characteristics (FG-MOC). The transient solver effectiveness was demonstrated by comparing the obtained numerical results with pertinent experimental ones quoted in the literature; further, computational savings were significantly carried out via the selected formulation. The proposed design strategy was implemented within two kinds of boundary conditions initiating water-hammer up- and down-surge waves. In addition, two types of polymeric materials, including high- or low-density polyethylene (HDPEorLDPE), were utilized for the branched short-section. Results evidenced the potential of the branching design strategy to attenuate excessive pressure -rise and -drop, while safeguarding existing pressurized piping system configurations. Furthermore, the study of the dependency of the short-section material and size on the attenuation rate of pressure -rise and -drop evidenced that a higher wave speed of the branched short-section provided a higher attenuation rate of pressure -rise and -drop, and helped estimate near-optimal values for the short-section length and diameter.
机译:分支设计策略被认为是加压钢管系统中的水锤浪涌控制的实用技术。该策略基于在现有钢管系统的瞬态敏感区域中添加分支聚合物短截面。另一方面,设计实践需要准确和计算效率的数值求解器。因此,本文重新判断了使用基于Ramos配方的A1-Dunconvental水锤模型的分支设计策略的实施,从其简化的不稳定摩擦效应和管壁行为中受益。使用特性(FG-MOC)的固定GIRD方法进行瞬态求解器。通过将所得数值结果与文献中引用的相关实验结果进行比较来证明瞬态求解器效果;此外,通过所选配方显着进行计算储蓄。所提出的设计策略在两种边界条件下实施,启动水锤上升和下喘振波。另外,两种类型的聚合物材料,包括高密度或低密度聚乙烯(HDPEORLDPE),用于支化的短截面。结果证明了分支设计策略的潜力,以衰减过度压力的压力和-DROP,同时保护现有的加压管道系统配置。此外,对短段材料和尺寸对压力 - 衰减率和-Drop的衰减率的研究证明了支化短截面的较高波速提供了更高的压力衰减率和-Drop ,并帮助估计短截面长度和直径的接近最佳值。

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