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Impact of fluid viscoelasticity on the pressure wave in laminar fluid hammer in helical tubes-an experimental study

机译:螺旋管中层流锤压力波的液体粘弹性的影响 - 实验研究

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The fluid hammer phenomenon can cause severe damages to the hydraulic systems. As its potential exists in systems with viscoelastic fluids as the working fluid, investigating the impact of viscoelasticity on this phenomenon has been the primary target of this study. The built experimental setup includes copper and low-density polyethylene tubes, and dilute polyacrylamide solutions are implemented as the viscoelastic fluid. Results indicated that the viscoelasticity signifies the pressure wave attenuation. The pressure wave damping rate was 14.67% more considerable in the 400 ppm solution than water. Increasing the Deborah number by 41.59% in copper tube, and 38.72% in polyethylene tube led to 21.05 and 3.96% rise in the wave rate of attenuation, respectively. The same growth in Deborah number has caused a descending trend in the acoustic wave speed relative to water, by 0.88% decrease in the copper and 2.90% decrease in the polyethylene tube. Also, despite the results with water in the copper tube, the time distance of subsequent peaks was unequal in tests with viscoelastic fluids.
机译:流体锤现象可能对液压系统造成严重损坏。由于其潜力存在于粘弹性液体作为工作流体的系统中,研究粘弹性对这种现象的影响是本研究的主要目标。建造的实验装置包括铜和低密度聚乙烯管,并稀释聚丙烯酰胺溶液作为粘弹性液。结果表明粘弹性表示压力波衰减。在400ppm溶液中,压力波阻尼率比水分更大的14.67%。将Deborah数量增加41.59%在铜管中,聚乙烯管中的38.72%,分别引起了21.05和3.96%的波浪衰减率。 Deborah次数的同样增长导致声波速度相对于水的下降趋势,铜的减少0.88%,聚乙烯管减少2.90%。此外,尽管铜管中的水有水,但随后峰的时间距离在粘弹性液体的试验中不等。

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