期刊文献+

Significance of Transients in Soil Temperature Series 被引量:1

Significance of Transients in Soil Temperature Series
在线阅读 下载PDF
导出
摘要 The primary objective of this study was to investigate the impact of observation scale on the estimation of soil thermal properties.Transients are usually filtered out and ignored when classical Fourier approaches are used to deconstruct and model temperature time series.It was hypothesized that examination of such transients may be more important in identifying and quantifying short-term perturbations in internal soil heat transfer induced by agronomic disturbances. Data-logged temperatures were collected at 10-minute intervals from thermistor probes installed at 10 and 25 cm depths in isolated areas of two grassed plots.One plot(6T)had been treated twice with 6 Mg ha^(-1)composted turkey litter as received.The other plot(NPK)was fertilized at the same time with NPK fertilizer.Various methods were used to analyze the series to obtain apparent soil thermal diffusivity(D-value)at various time scales.Results supported the hypothesis that short-term differences in internal soil heat transfer between the 6T and NPK plots were more manifest and effectively captured by estimated D-values calculated from the monthly and daily partial series.The 6T plot had higher soil organic matter content than the NPK plot and had lower apparent soil thermal diffusivity.Diurnal soil temperature amplitudes, required to calculate the mean D-values from partial series,were more effectively obtained using a temperature change rate method.The more commonly used Fourier analysis tended to be effective for this purpose when the partial series reasonably presented well-defined diurnal patterns of increasing and decreasing temperatures. The primary objective of this study was to investigate the impact of observation scale on the estimation of soil thermal properties. Transients are usually filtered out and ignored when classical Fourier approaches are used to deconstruct and model temperature time series. It was hypothesized that examination of such transients may be more important in identifying and quantifying short-term perturbations in internal soil heat transfer induced by agronomic disturbances. Data-logged temperatures were collected at 10-minute intervals from thermistor probes installed at 10 and 25 cm depths in isolated areas of two grassed plots. One plot (6T) had been treated twice with 6 Mg ha^-1 composted turkey litter as received. The other plot (NPK) was fertilized at the same time with NPK fertilizer. Various methods were used to analyze the series to obtain apparent soil thermal diffusivity (D-value) at various time scales. Results supported the hypothesis that short-term differences in internal soil heat transfer between the 6T and NPK plots were more manifest and effectively captured by estimated D-values calculated from the monthly and daily partial series. The 6T plot had higher soil organic matter content than the NPK plot and had lower apparent soil thermal diffusivity. Diurnal soil temperature amplitudes, required to calculate the mean D-values from partial series, were more effectively obtained using a temperature change rate method. The more commonly used Fourier analysis tended to be effective for this purpose when the partial series reasonably presented well-defined diurnal patterns of increasing and decreasing temperatures.
出处 《Pedosphere》 SCIE CAS CSCD 2007年第6期766-775,共10页 土壤圈(英文版)
关键词 Fourier analysis organic matter SOIL temperature series thermal diffusivity 土壤 温度变化 傅立叶分析 有机物质 热扩散
  • 相关文献

参考文献20

  • 1Arshad, M. A. and Azooz, R. H. 1996. Tillage effects on soil thermal properties in a semiarid cold region. Soil Sci. Soc. Am. J. 60:561-567.
  • 2Bachmann, J., Horton, R., Ren, T. and van der Ploeg, R. R. 2001. Comparison of thermal properties of four wettable and four water-repellent soils. Soil Sci. Soc. Am. J. 65:1675-1679.
  • 3Ball, D. F. 1964. Loss-on-ignition as an estimate of organic matter and organic carbon in non-calcareous soil. J. Soil Sci. 15: 84-92.
  • 4Carslaw, H. S. and Jaeger, J. C. 1959. Conduction of Heat in Solids. Clarendon Press, Oxford. 510pp.
  • 5Chatfield, C. 1996. The Analysis of Time Series. Chapman and Hall, New York.
  • 6Davies, B. E. 1974. Loss-on-ignition as an estimate of soil organic matter. Soil Sci. Soc. Am. Proc. 38: 150-151.
  • 7de Vries, D. A. 1963. Thermal properties of soils. In van Wijk, W. R. (ed.) Physics of Plant Environment. North-Holland Publishing Co., Amsterdam. pp. 210-235.
  • 8de Vries, D. A. 1975. Heat Transfer in Soils. In de Vries, D. A. and Afgan, N. H. (eds.) Heat and Mass Transfer in the Biosphere. Scripta Book Co., Washington, DC. pp. 5 -28.
  • 9Ekwue, E. I., Stone, R. J., Maharaj, V. V. and Bhagwat, D. 2005. Thermal conductivity and diffusivity of four trinidadian soils as affected by peat content. Trans. of ASAE. 48:1803-1815.
  • 10Feddes, R. A. 1973. Some physical aspects of heat transfer in soil. Acta Hort. 27: 189-196.

同被引文献3

引证文献1

二级引证文献8

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部