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Simplified Approach for the Optimal Sizing of Throttled Air Chambers

机译:节流气室最佳尺寸的简化方法

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Among water hammer damping devices, air chambers are often used in pumping plants to reduce pressure surges to acceptable values. The chamber is more effective if a throttling device is used, resulting in a reduction of the required volume. Design charts for a simple and fast sizing of air volume and orifice diameter are available in the literature using the rigid column theory (incompressible flow) and the De Sparre rule. Nevertheless, in many cases the pressure pattern is far from being constant during the first quarter of the transient period and lower pressures can be attained; furthermore, the rigid column model is not able to reproduce elastic phenomena arising from throttling, and so water hammer equations should be used instead. Although orifice induced pressure waves are evident only in the first part of the transient, differences between air chamber pressure and pipe pressure can be quite significant. Negative pressure surge should be limited because column separation and cavitation could occur as a consequence of low pressures. Because the maximum down surge inferred from the design charts does not ensure safe design, a simplified approach was proposed in this paper to design throttled air chambers under the elastic hypothesis. The analysis showed small deviations between the minimum pressure and the design pressure, unlike the inelastic approach, which exhibits even very large differences with water hammer equations.
机译:在水锤阻尼装置中,气室通常用于抽水设备中,以将压力波动减小到可接受的值。如果使用节流装置,则腔室更有效,从而减少了所需的体积。文献中使用刚性柱理论(不可压缩流量)和De Sparre规则提供了用于简单快速地确定风量和孔口直径的设计图。然而,在许多情况下,在过渡时期的第一季度,压力模式远非恒定,可以实现较低的压力;此外,刚性柱模型不能重现节流引起的弹性现象,因此应改用水锤方程。尽管孔口感应的压力波仅在瞬态的第一部分中可见,但气室压力和管道压力之间的差异可能非常明显。应限制负压波动,因为低压可能导致色谱柱分离和气蚀。由于从设计图表推断出的最大向下喘振不能确保安全的设计,因此本文提出了一种简化的方法来根据弹性假设设计节气门。分析显示最小压力与设计压力之间的偏差很小,这与非弹性方法不同,非弹性方法与水锤方程的差异甚至很大。

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