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Discharge coefficient for rectangular notch using a dimensional analysis technique

机译:使用尺寸分析技术的矩形缺口的放电系数

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The rectangular weir (notch) is a common device used to regulate and measure discharge in irrigation projects. The current research was based mainly on laboratory experiments studying the hydraulic characteristics of rectangular notches. Four rectangular notches were used in this research in different models. Notches for all models were designed with the same shape, arrangement, and width (4 cm), but differed in height, with examples at 6, 8, 10, and 12 cm. The main objective of this research was to study the influence of rectangular notch dimensions and upstream water depth on discharge coefficients. The results obtained from this research indicate that the relationship between the discharge coefficient and the upstream water depth is a power function. The values of the discharge coefficient increase with increases in the values of the upstream water depth. The relationship between the discharge coefficient and the Reynolds number is also a power function, and an increase in the Reynolds number leads to a decreased discharge coefficient. In addition, when the value of the Reynolds number is high (turbulent flow), the values of the discharge coefficient converge to an approximately constant value. The flow in all runs was subcritical and the relationship between discharge coefficient and Froude number was also found to be a power function. An increase in Froude number thus leads to a decrease in discharge coefficient. The slope of the discharge coefficient-Froude number curve values gradually decreases until the value the discharge coefficient reaches an approximately constant value. A dimensional analysis technique was used to estimate the values of the discharge coefficient for various rectangular notch dimensions, and an empirical equation for discharge coefficient estimating was derived using regression procedure. This equation has a coefficient of determination R~2 of 0.955.
机译:矩形堰(缺口)是用于调节和测量灌溉工程中的常用装置。目前的研究主要基于研究矩形凹口的液压特性的实验室实验。在不同模型中使用了四个矩形凹口。所有型号的缺口都是具有相同形状,布置和宽度(4厘米),但高度不同,实施例在6,8,10和12cm。本研究的主要目的是研究矩形切口尺寸和上游水深度对放电系数的影响。从该研究获得的结果表明,放电系数和上游水深之间的关系是功率功能。放电系数的值随上游水深度的值的增加而增加。放电系数和雷诺数之间的关系也是功率函数,并且雷诺数的增加导致放电系数减小。另外,当雷诺数的值高(湍流)时,放电系数的值会聚到近似恒定的值。所有运行中的流量都是子临界的,并且还发现放电系数和FRoude号之间的关系是功率功能。因此,FRoude号的增加导致放电系数的降低。放电系数-Froude数曲线值的斜率逐渐减小,直到放电系数的值达到近似恒定的值。使用尺寸分析技术来估计各种矩形凹口尺寸的放电系数的值,以及使用回归过程导出放电系数估计的经验方程。该等式具有0.955的确定系数R〜2。

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