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The value of point-scale measurements of soil moisture in planetary boundary layer simulations.

机译:在行星边界层模拟中土壤水分的点标度测量值。

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摘要

A characteristic of the land surface which modulates the partitioning of available solar energy into fluxes of energy (latent, sensible, and ground heat fluxes) is soil moisture. This partitioning occurs directly through evaporation from bare soil and indirectly through vegetation transpiration. In turn, the surface fluxes of energy contribute to the development of the planetary boundary layer (PBL; the greater the partitioning toward sensible heating, the deeper the boundary layer, and vice versa). In order to simulate properly the development of the PBL using numerical models, accurate and representative values of soil moisture must be obtained.; In April 1999, the Norman Mesonet site (NORM) was upgraded to include sensors to measure latent, sensible, and ground heat fluxes, as well as net radiation. In addition, over 2,000 discrete soil samples were collected within a 20 x 20 m enclosure encompassing the Norman Mesonet site between 1 June 1999 and 15 August 1999. These samples were collected to provide point-scale observations of soil-water content for field calibration of in situ (Campbell Scientific model 229-L) soil moisture sensors installed at NORM and to determine the naturally occurring spatial and temporal variability of soil moisture conditions within the outline of the Norman Mesonet site.; One component of this study focuses on the relationship between soil moisture and atmospheric processes at and near NORM using both automated and field samples of hydrologic and atmospheric parameters. The results indicate that, on days with strong radiative forcing and weak shear in the lower troposphere, soil water content in the root-zone was linearly correlated with daily-maximum values of sensible heat flux and latent heat flux.; This study also investigates the sensitivity of ground heat flux estimates at NORM to naturally occurring variability in soil-water content from field samples as well as instrumentation biases associated with the in situ soil moisture sensors. Results indicate that differences in ground heat flux estimates varied by up 20% due to sampling or instrumentation biases. Furthermore, closure of the surface energy budget varied by up to 8% due to these differences in ground heat flux estimates.; Finally, using the Oregon State University one-dimensional, coupled atmospheric-plant-soil model, PBL conditions were examined at NORM during July 1999. Results indicate that latent and sensible heat fluxes in the model simulations varied by as much as 300 W m-2 due to naturally occurring variability of soil-water content determined from field samples and biases occurring in the in situ measurements. Furthermore, ground heat flux values derived by the model varied as much as 50 W m-2.
机译:土地表面的特征是将可用太阳能分配成能量流(潜热,显热和地面热通量),将其作为土壤水分。这种分配直接通过从裸露土壤蒸发而发生,而间接通过植被蒸腾发生。反过来,能量的表面通量也有助于行星边界层的发展(PBL;向显热分配的越大,边界层越深,反之亦然)。为了使用数值模型正确模拟PBL的发育,必须获得准确的代表性土壤水分值。 1999年4月,对Norman Mesonet站点(NORM)进行了升级,以包括用于测量潜热通量,感热通量和地面热通量以及净辐射的传感器。此外,在1999年6月1日至1999年8月15日期间,围绕着Norman Mesonet场地,在20 x 20 m的围墙内收集了2,000多份离散的土壤样品。这些样品的收集是为了对土壤含水量进行点规模观测,以进行田间校准。在NORM安装了原位(Campbell Scientific 229-L型)土壤湿度传感器,并确定了诺曼·梅索尼特场地轮廓内土壤湿度条件的自然时空变化。这项研究的一个重点是使用自动和现场水文和大气参数样本,研究NORM及其附近的土壤湿度与大气过程之间的关系。结果表明,在对流层下部辐射强迫强,剪切力弱的日子,根区土壤含水量与感热通量和潜热通量的日最大值呈线性关系。这项研究还调查了NORM地面热通量估计值对田间样品中土壤水分含量自然变化以及与原位土壤湿度传感器相关的仪器偏差的敏感性。结果表明,由于采样或仪器偏差,地面热通量估算值的差异最多可变化20%。此外,由于地面热通量估算值的这些差异,关闭的地表能量收支变化了8%。最后,使用俄勒冈州立大学的一维耦合大气-植物-土壤模型,在NORM于1999年7月检查了PBL条件。结果表明,模型模拟中的潜热通量和感热通量相差300 W m- 2是由于从田间采样确定的土壤含水量的自然变化和现场测量中出现的偏差。此外,由模型导出的地热通量值变化高达50 W m-2。

著录项

  • 作者

    Basara, Jeffrey Brent.;

  • 作者单位

    The University of Oklahoma.;

  • 授予单位 The University of Oklahoma.;
  • 学科 Physics Atmospheric Science.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 225 p.
  • 总页数 225
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 大气科学(气象学);
  • 关键词

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