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冻土观测及误差分析 被引量:1
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作者 陈晨 谢飞 +11 位作者 庞蓝青 王磊 刘德强 魏强 祖天时 周沿彤 曹瑞 马昊天 王大卫 齐振 孙佳明 李炳昆 《现代农业科技》 2018年第7期238-238,240,共2页
介绍了冻土器及冻土观测方法,并从清原国家基本气象站(54259站)的实际工作情况出发,分析了造成实际观测中冻土器损坏、观测操作方式不规范、地表覆盖物长势过旺以及外管与土壤间存在空隙4个误差的原因,根据《地面气象观测规范》对冻土... 介绍了冻土器及冻土观测方法,并从清原国家基本气象站(54259站)的实际工作情况出发,分析了造成实际观测中冻土器损坏、观测操作方式不规范、地表覆盖物长势过旺以及外管与土壤间存在空隙4个误差的原因,根据《地面气象观测规范》对冻土观测的要求,提出了避免造成误差的相应措施,以期为相关人员提供参考。 展开更多
关键词 冻土 冻土观测 冻土误差 观测记录
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Influence of Ice on Soil Elemental Characterization via Portable X-Ray Fluorescence Spectrometry 被引量:4
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作者 D.C.WEINDORF N.BAKR +6 位作者 Y.ZHU A.MCWHIRT C.L.PING G.MICHAELSON C.NELSON K.SHOOK S.NUSS 《Pedosphere》 SCIE CAS CSCD 2014年第1期1-12,共12页
Field portable X-ray fluorescence (PXRF) spectrometry has become an increasingly popular technique for in-situ elemental characterization of soils. The technique is fast, portable, and accurate, requiring minimal sa... Field portable X-ray fluorescence (PXRF) spectrometry has become an increasingly popular technique for in-situ elemental characterization of soils. The technique is fast, portable, and accurate, requiring minimal sample preparation and no consumables. However, soil moisture 〉 20% has been known to cause fluorescence denudation and error in elemental reporting and few studies have evaluated the presence of soil moisture in solid form as ice. Gelisols (USDA Soil Taxonomy), permafrost-affected soils, cover a large amount of the land surface in the northern and southern hemispheres. Thus, the applicability of PXRF in those areas requires further investigation. PXRF was used to scan the elemental composition (Ba, Ca, Cr, Fe, K, Mn, Pb, Rb, Sr, Ti, Zn, and Zr) of 13 pedons in central and northern Alaska, USA. Four types of scans were completed: 1) in-situ frozen soil, 2) re-frozen soil in the laboratory, 3) melted soil/water mixture in the laboratory, and 4) moisture-corrected soil. All were then compared to oven dry soil scans. Results showed that the majority of PXRF readings from in-situ, re-frozen, and melted samples were significantly underestimated, compared to the readings on oven dry samples, owing to the interference expected by moisture. However, when the moisture contents were divided into 〉 40% and 〈 40〈 groups, the PXRF readings under different scanning conditions performed better in the group with 〈 40% moisture contents. Most elements of the scans on the melted samples with 〈 40% moisture contents acceptably compared to those of the dry samples, with R2 values ranging from 0.446 (Mn) to 0.930 (St). However, underestimation of the melted samples was still quite apparent. Moisture-corrected sample PXRF readings provided the best correlation to those of the dry, ground samples as indicated by higher R2 values, lower root mean square errors (RMSEs), and slopes closer to 1 in linear regression equations. However, the in-situ (frozen) sample scans did not differ appreciably from the melted sample scans in their correlations to dry sample scans in terms of R2 values (0.81 vs. 0.88), RMSEs (1.06 vs. 0.85), and slopes (0.88 vs. 0.92). Notably, all of those relationships improved for the group with moisture contents 〈 40%. 展开更多
关键词 Gelisols MOISTURE PERMAFROST proximal sensing regression
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