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Estimation of Vadose Zone Water Flux from Multi-Functional Heat Pulse Probe Measurements

机译:从多功能热脉冲探针测量估算渗流区水通量

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摘要

A small multi-functional heat pulse probe (MFHPP) was applied to further develop measurement methodologies to improve on water flux estimations for unsaturated soils. The temperature responses of four thermistors surrounding a central heater in a 2.7-cm diam. probe were analyzed by the heat transport equation to estimate thermal properties and convective heat flow. Volumetric heat capacity, water content, and thermal diffusivity were estimated from the horizontally placed thermistors, neglecting the convective flow effects in the transverse direction, whereas the water flux density was estimated from the temperature responses to the vertically placed thermistors. A parameter optimization technique was employed to fit the most likely parameters to the relevant analytical solutions. Falling head and multi-step outflow experiments yielded independently obtained water flux measurements. Results showed that the estimated volumetric water content corresponded well with independent gravimetric measurements with a RMSE of 0.0056 m3 m–3, across a wide range of water fluxes smaller than 0.5 m d–1. Thermal diffusivity values as obtained with the MFHHP also agreed well with independently measured thermal diffusivity values, for water flux density values smaller than 2 m d–1. For saturated conditions, the estimated water fluxes from the MFHPP measurements were accurate in the range between 0.056 and 27.0 m d–1, with a R of 0.995 and RSME of 0.0952 log(m d–1) (0.52 m d–1). For unsaturated flow, MFHHP estimations significantly overestimated water flux density for flux values smaller than 0.10 m d–1. Within these limitations, we conclude that MFHPP methodologies are now available, making possible simultaneous estimation of thermal diffusivity and water flux density in unsaturated soils.
机译:应用小型多功能热脉冲探针(MFHPP)进一步开发了测量方法,以改进对非饱和土壤水通量的估算。围绕中央加热器的四个热敏电阻在2.7厘米 直径中的温度响应 。通过热传输方程对探针进行了分析,以 估算热性质和对流热流。从水平放置的热敏电阻估计 的容积 热容量,水含量和热扩散率,而忽略了横向的对流 根据对垂直放置的热敏电阻的温度响应来估算水的通量密度。使用参数优化 技术使最可能的参数适合 相关的分析解决方案。落差和多步 流出实验产生了独立获得的水通量 测量值。结果表明,估计的体积水含量 与独立的重量测量 具有很好的一致性,RMSE为0.0056 m 3 m –3 ,在小于0.5 md –1 的各种水 通量中。对于小于2 md 值,用MFHHP获得的热扩散率值 也与独立 测量的热扩散率值非常吻合。 > –1 。对于饱和条件, 根据MFHPP测量得出的估计水通量 在0.056至27.0 md -1 范围内准确,其中 R为0.995,RSME为0.0952 log(md –1 )(0.52 md –1 )。 对于非饱和流,对于小于0.10 md –1 的通量值,MFHHP估计显着高估了 水通量密度。 在这些限制内,我们得出结论:MFHPP方法学 现在可用,可以同时估算非饱和土壤中的 热扩散率和水通量密度。

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  • 来源
    《Soil Science Society of America Journal》 |2005年第3期|599-606|共8页
  • 作者单位

    Faculty of Life and Environmental Science, Shimane Univ., Matsue 690-8504, Japan,Dep. of Agronomy, Kansas State Univ., Manhattan, KS, 66506;

    Hydrology, Dep. of Land, Air and Water Resources, Univ. of California, Davis, CA, 95616,Dep. of Agronomy, Kansas State Univ., Manhattan, KS, 66506;

    Geological Institute, Copenhagen Univ., Copenhagen, Denmark,Dep. of Agronomy, Kansas State Univ., Manhattan, KS, 66506;

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