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Effects of drip irrigation circuit design and lateral line lengths: I—On pressure and friction loss

机译:滴灌管路设计和侧线长度的影响:I—对压力和摩擦损失的影响

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摘要

Laboratory tests were conducted at the Irrigation Devices and Equipment’s Test Laboratory, Agricultural Engineering Research Institute, Agriculture Research Center, Giza, Egypt. The experimental design of laboratory experiments was split in randomized complete block design with three replicates. Laboratory tests carried out on three irrigation lateral lines of 40, 60, 80 m under the following three drip irrigation circuit (DIC) designs; 1) one manifold for lateral lines or closed circuits with one manifold of drip irrigation system (CM1DIS); 2) closed circuits with two manifolds for lateral lines (CM2DIS), and 3) traditional drip irrigation system (TDIS) as a control. The aims of the work were to study the effect of drip irrigation circuits (DIC) and lateral lines lengths (LLL; where): (LLL1 = 40 m, LLL2 = 60 m, and LLL3 = 80 m) on pressure head (PH) and friction loss (FL). Regarding to LLL and according to PH values, DIC designs could be ranked in the following ascending order: TDIS u3c CM1DIS u3c CM2DIS. The differences in PH among DIC de-signs were significant at the 1% level. The de-pressive effects of LLL on PH could be ranked in the following ascending order: LLL1 u3c LLL2 ≤ LLL3. Differences in PH among LLL treatments were significant at the 1% level except that be-tween LLL2 and LLL3. The effects of interactions among: DIC × LLL on PH were significant at the 1% level with some exceptions. The highest value of PH (9.5 m) and the lowest one (6.05 m) were achieved in the interactions of CM2DIS × LLL1 and TDIS × LLL3, respectively. The shapes of the energy gradient lines were affected by DIC and LLL treatments used through their effect on ΔH/H ratio. However, they followed similar trends. According to the FL values, DIC and LLL treatments could be ranked in the following descending orders TDIS u3e CM1DIS u3e CM2DIS and LLL1 u3e LLL2 u3e LLL3. The differences in FL among DIC and LLL were significant and the effects of interactions among DIC × LLL on FL were significant at the 1% level. The maximum and mi- nimum values of FL were obtained in the inter-actions: TDIS × LLL3 and CM2DIS × LLL1, respectively. Therefore, the CM2DIS system is recommended for use where technically feasible.
机译:实验室测试是在埃及吉萨农业研究中心农业工程研究所的灌溉设备和设备测试实验室进行的。将实验室实验的实验设计分为三个重复的随机完整模块设计。在以下三个滴灌回路(DIC)设计下,在40、60、80 m的三个灌溉侧线上进行了实验室测试; 1)一个用于侧向管线或闭合回路的歧管,以及一个滴灌系统(CM1DIS)的歧管; 2)带有两个用于侧管的歧管的闭合回路(CM2DIS),以及3)传统的滴灌系统(TDIS)作为控制。该工作的目的是研究滴灌回路(DIC)和侧线长度(LLL;其中):(LLL1 = 40 m,LLL2 = 60 m,LLL3 = 80 m)对压头(PH)的影响和摩擦损失(FL)。关于LLL并根据PH值,DIC设计可以按以下升序排列:TDIS u3c CM1DIS u3c CM2DIS。 DIC设计之间的PH差异在1%的水平上很显着。 LLL对PH的抑制作用可按以下升序排列:LLL1 u3c LLL2≤LLL3。 LLL处理之间的PH差异在1%的水平上显着,除了LLL2和LLL3之间。 DIC×LLL之间的相互作用对PH的影响在1%的水平上是显着的,但有一些例外。在CM2DIS×LLL1和TDIS×LLL3的相互作用中,分别获得了最高的PH值(9.5 m)和最低的PH值(6.05 m)。能量梯度线的形状受DIC和LLL处理对ΔH/ H比的影响而受到影响。但是,他们遵循类似的趋势。根据FL值,可以按以下降序对DIC和LLL处理进行排序:TDIS u3e CM1DIS u3e CM2DIS和LLL1 u3e LLL2 u3e LLL3。 DIC和LLL之间的FL差异显着,DIC×LLL之间的相互作用对FL的影响在1%的水平上具有显着性。在相互作用中分别获得了FL的最大值和最小值:TDIS×LLL3和CM2DIS×LLL1。因此,建议在技术上可行的情况下使用CM2DIS系统。

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