首页> 外文学位 >SOIL MOISTURE AND THE WATER BALANCE IN A BORDER-IRRIGATED FIELD (EVAPOTRANSPIRATION, TIME-INVARIANCE, IRRIGATION, RANK, CROP-TEMPERATURE).
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SOIL MOISTURE AND THE WATER BALANCE IN A BORDER-IRRIGATED FIELD (EVAPOTRANSPIRATION, TIME-INVARIANCE, IRRIGATION, RANK, CROP-TEMPERATURE).

机译:边界灌溉田地的土壤水分和水平衡(蒸发蒸腾,时间变化,灌溉,等级,作物温度)。

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摘要

Sampling and analysis of the soil moisture distribution and the overall water balance in an irrigated area are the central topics of this work. An experimental study was made in a 14-ha, border-irrigated, alfalfa field near Coolidge, in Pinal County, Arizona, during the summer/fall 1983. The water stored in the soil profile and its change with time were normally distributed, with coefficients of variation of about 10 and 25 percent, respectively. Temporal correlations were significant for storage (about .60), but absent in the other, Variograms were calculated to show the spatial structure of the distributions. An analogous statistical description was presented for the alfalfa yield. Also shown is a methodology to infer errors due to the field calibration of the neutron probe.; Another task was to assess a methodology to minimize sample numbers for soil-water storage. Following the ideas of Vachaud and co-workers in France, it was verified that rankings of the measurements were approximately time-preserved. As a consequence, only a few key locations need to be sampled to evaluate the mean in those circumstances. Included also is an approximation to predict confidence intervals for estimating the mean, when such "representative sites" are used.; Using irrigation inflow and rainfall, a procedure is defined to make use of the soil moisture data to evaluate irrigation efficiency and uniformity. Evapotranspiration (ET) distribution can also be assessed by soil moisture measurements, but only conditionally. For example, adaptation of the "field capacity" concept in the field study led to average daily ET rates in the range of 3-11 mm day('-1).; ET and potential ET (PET) were also determined from weather data. Crop temperature was required in the ET calculation. Such a model, developed by Hatfield and co-workers, was judged satisfactory in our application, but not the Penman PET estimates. It is concluded that the ET model is promising, particularly if remote sensing of the temperatures is successful in the future. Also shown as a possibility is the use of plant temperature and pan evaporation data to infer crop water stress.
机译:对灌溉区域的土壤水分分布和总体水平衡进行采样和分析是这项工作的重点。 1983年夏季/秋季,在亚利桑那州Pinal县Coolidge附近的一块14公顷边界灌溉的紫花苜蓿田里进行了一项实验研究。土壤剖面中储存的水分及其随时间的变化呈正态分布,变异系数分别约为10%和25%。时间相关性对于存储来说是重要的(约0.60),但在其他方面则不存在,计算出方差图可以显示分布的空间结构。提出了苜蓿产量的类似统计描述。还显示了一种推断由于中子探针的现场校准而引起的误差的方法。另一个任务是评估一种方法,以减少用于土壤水存储的样本数量。遵循法国Vachaud及其同事的想法,已证实测量的等级大约可以保留时间。因此,在这些情况下,只需采样几个关键位置即可评估均值。当使用这样的“代表位点”时,还包括一个近似值,以预测用于估计平均值的置信区间。利用灌溉流入量和降雨量,定义了一种利用土壤水分数据评估灌溉效率和均匀性的程序。蒸散量(ET)的分布也可以通过土壤湿度的测量来评估,但只能有条件地进行。例如,在田间研究中对“田间容量”概念的适应导致了平均每日ET率在3-11毫米日范围内('-1)。 ET和潜在ET(PET)也从天气数据中确定。 ET计算中需要作物温度。由哈特菲尔德(Hatfield)和他的同事开发的这种模型在我们的应用中被认为是令人满意的,但Penman PET估计却不令人满意。结论是,ET模型是有希望的,特别是如果将来温度遥感成功的话。还显示出利用植物温度和蒸发皿蒸发数据推断作物水分胁迫的可能性。

著录项

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Agriculture Agronomy.
  • 学位 Ph.D.
  • 年度 1984
  • 页码 264 p.
  • 总页数 264
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 农学(农艺学);
  • 关键词

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