A new approach for explicit approximation of the Colebrook–White formula for pipe flows

G. Ferreri
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Abstract

A novel approach is presented for explicit assessment of the friction factor of the Darcy–Weisbach formula for a pipe turbulent flow, a topic being especially useful in practical applications requiring a large number of pipes that have to be calculated a great many times in a short time. In such applications, in fact, an explicit formula shortening computation time, with respect to a trial-and-error solution of the Colebrook–White formula, is very advisable. To this aim, in the paper analytical simplicity is pursued besides accuracy, the latter being kept high enough for practical purposes. Unlike previous studies, the ratio between the actual friction factor and that relating to a fully turbulent flow is analysed as a function of the relative roughness and the relative Reynolds number (i.e., the ratio between the actual Reynolds number and the Reynolds number separating the transition regime from the fully turbulent regime). By processing a dataset obtained by systematically solving the C-W formula over suited ranges of the Reynolds number and the relative roughness, two expressions are obtained: a simpler first-step accuracy expression giving generally acceptable accuracy for most engineering practical purposes; and a second-step accuracy expression allowing adequately high accuracy for all situations.
显式逼近管道流动的科尔布鲁克-怀特公式的新方法
本文提出了一种新方法,用于明确评估管道湍流的达西-韦斯巴赫公式摩擦因数,这一主题在需要在短时间内多次计算大量管道的实际应用中尤为有用。事实上,在此类应用中,相对于科尔布鲁克-怀特公式的试错解法,一个可缩短计算时间的显式公式是非常可取的。为此,本文除了追求精确度之外,还追求分析的简洁性,并将精确度保持在足够高的水平,以满足实际需要。与以往研究不同的是,本文将实际摩擦因数与完全湍流摩擦因数之间的比率作为相对粗糙度和相对雷诺数(即实际雷诺数与区分过渡状态和完全湍流状态的雷诺数之间的比率)的函数进行分析。通过处理在合适的雷诺数和相对粗糙度范围内系统求解 C-W 公式所获得的数据集,可以得到两个表达式:一个是较简单的第一步精度表达式,其精度在大多数工程实际用途中基本可以接受;另一个是第二步精度表达式,其精度在所有情况下都足够高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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