首页> 外文会议>Proceedings of joint international agricultural conference (JIAC 2009) >Modeling Water Infiltration Rate under Conventional Tillage Systems on A Clay Soil using Artificial Neural Networks
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Modeling Water Infiltration Rate under Conventional Tillage Systems on A Clay Soil using Artificial Neural Networks

机译:利用人工神经网络模拟常规耕作制度在粘土上的水分入渗速率

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This study presents the application of artificial neural networks for modeling the parameters of Lewis-Kostiakov infiltration under conventional tillage systems on a clay soil. The conventional tillage systems were moldboard, chisel and rotary plows. Water infiltration rate was defined experimentally by double ring infiltrometer. Artificial neural network estimation indicated strong correlations (R2=0.999) between the parameters of Lewis-Kostiakov infiltration(I=ktn) and affected variables (soil total porosity, soil moisture content, working index and aspect ratio). The simulated data from the developed artificial neural network formulated the parameters of Lewis-Kostiakov infiltration (k and n) as a function of tillage implement weight and width, speed and depth of plowing, tractor nominal power, soil total porosity and soil moisture content with R2 around 0.60.The developed model can help managers of irrigation systems to modify field practices during growing season to conserve irrigation water. The working index has more contribution on constant (k). Meanwhile, soil total porosity has more contribution on constant (n). Using the developed model, infiltration rate could be optimized during seedbed preparation process.
机译:这项研究提出了人工神经网络在模拟传统耕作系统在黏土上的Lewis-Kostiakov入渗参数的应用。传统的耕作系统是刮土机,凿子和旋转犁。通过双环渗透计通过实验确定水的渗透率。人工神经网络估计表明,Lewis-Kostiakov入渗参数(I = ktn)与影响变量(土壤总孔隙度,土壤含水量,工作指数和纵横比)之间具有很强的相关性(R2 = 0.999)。来自发达的人工神经网络的模拟数据将Lewis-Kostiakov入渗参数(k和n)表示为耕作机具的重量和宽度,耕作的速度和深度,拖拉机的额定功率,土壤总孔隙度和土壤含水量的函数。 R2约为0.60。开发的模型可以帮助灌溉系统的管理者在生长季节改变田间实践,以节约灌溉用水。工作指数对常数(k)的贡献更大。同时,土壤总孔隙度对常数(n)的贡献更大。使用开发的模型,可以在苗床准备过程中优化渗透率。

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