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131.
为探究自然降雨下露天蔬菜地土壤侵蚀及氮素养分流失特征,基于径流小区原位观测试验,设置叶菜类和果菜类这2种处理,测定次降雨下不同类型蔬菜地坡面地表径流、侵蚀及其氮素(铵态氮和硝态氮)流失量,探讨露天蔬菜种植坡面土壤侵蚀及氮素流失特征及影响因素.结果表明:(1)果菜类(茄子-辣椒)蔬菜地的地表径流、侵蚀量及铵态氮、硝态氮流失量显著高于叶菜类(油麦菜-红薯叶),是后者的1.27~2.00倍.不同处理下第二季蔬菜坡面地表径流、侵蚀及其铵态氮和硝态氮流失占总流失量的50.86%~68.83%,是第一季蔬菜的1.03~2.04倍.蔬菜地坡面地表径流、侵蚀及其氮素流失集中在6月和7月,地表径流和侵蚀泥沙中氮素主要以地表径流中的硝态氮形式流失.(2)次降雨下,不同处理蔬菜地坡面地表径流、侵蚀及其养分流失在蔬菜生长期内呈波动变化,且流失量主要集中在几场典型降雨.整体上不同处理下第一季蔬菜地表径流和侵蚀泥沙中硝态氮和铵态氮流失量及含量低于第二季蔬菜,果菜类地表径流、侵蚀量及铵态氮、硝态氮流失量高于叶菜类.(3)蔬菜地坡面地表径流、侵蚀及其铵态氮和硝态氮流失量与降雨量和最大30 min降雨强度等降雨参数呈极... 相似文献
132.
流域土壤侵蚀是流域水文—气候—生态的集中表现之一,对生态、环境等有着重大影响,重建过去流域土壤侵蚀强度对理解区域人类活动具有重要意义.本文选取黄土高原西南部高山湖泊——六盘山天池沉积岩芯为研究对象,基于XRF岩芯元素数据分析,结合可靠的AMS 14C年代序列,重建了中晚全新世以来六盘山流域土壤侵蚀强度变化记录.结果显示:5570?—?1600 cal BP,流域土壤侵蚀整体较强,侵蚀强度逐渐减弱,其主要受控于降水变化,也受植被覆盖等因素的影响;随着晚全新世气候逐渐变干,1600 cal BP之后的侵蚀强度整体弱于前一时期,此时段由于人类活动的显著影响,加剧了流域的土壤侵蚀.太阳辐射可能是研究区土壤侵蚀强度变化的初始驱动力,ENSO通过驱动亚洲季风变化影响区域降水,进而直接影响流域土壤侵蚀的强度变化. 相似文献
133.
全球气候变暖极大地影响了地表侵蚀过程,但影响机制尚无统一定论.河流悬浮物是示踪地表侵蚀的常用手段.本文通过分析青海湖流域最大河流布哈河2008?—?2015年的日径流量、悬浮物浓度、气温及降雨数据,讨论了该流域在日、月以及季节尺度下土壤侵蚀对气候变化的响应特征.结果表明:降雨是半干旱布哈河流域土壤侵蚀的主要控制因素,气温通过影响冻融作用控制侵蚀行为.此外,该流域的土壤侵蚀具有明显的季节性差异,大部分的侵蚀发生在雨季.最重要的是,冻融作用导致春季解冻期/雨季前期产生额外的沉积物累积,表现为在相同流量下,沉积物输出明显高于雨季后期.上述结果对深刻认识全球变暖背景下侵蚀的响应机制具有重要的作用. 相似文献
134.
运用137Cs和210Pbex联合示踪技术,考察青藏高原三江源区东西样带137Cs和210Pbex面积浓度的背景值和变化特征,以及东西样带土壤侵蚀速率、分布特征和主要影响因素. 结果表明:①青藏高原三江源区东西样带137Cs和210Pbex面积浓度背景值分别为453~1 714和2 612~7 377 Bq/m2,137Cs和210Pbex背景值从西向东样带随海拔高度的变化差异明显.137Cs(x)和210Pbex(y)面积浓度的背景值区域分布呈显著线性相关,相关性关系式为y3.587 2x+1 463.4,R20.951 7.②长江源区沱沱河137Cs的示踪结果表明,以沱沱河为中心的长江源区是典型的风蚀区,年侵蚀速率2.5 t/(hm2·a),该区是青藏高原重要的沙尘暴源区之一.③黄河源区玛多典型坡面137Cs和210Pbex的示踪结果表明,近40年来,玛多畜牧业为主的人类活动造成的土壤扰动比自然因素的影响大.④玛沁东倾沟乡和军牧场的比较研究结果表明,玛沁东倾沟乡高山草甸的水土保持效果较好,而玛沁军牧场的畜牧业活动造成了地表土壤的强烈扰动.⑤玛沁军功镇典型水蚀地貌土壤剖面137Cs和210Pbex的结果表明,20世纪50—60年代,该区的极端暴雨事件导致了严重的水土流失,土壤剖面中出现137Cs和210Pbex的空白区. 植被破坏导致玛沁军功镇出现了严重水蚀,净侵蚀速率为8.0 t/(hm2·a).⑥近40年来,随着人类活动的加剧和全球气候变暖,导致青藏高原三江源区出现了沙尘暴的传输源地. 相似文献
135.
136.
C. Santhi J. G. Arnold J. R. Williams W. A. Dugas R. Srinivasan L. M. Hauck 《Journal of the American Water Resources Association》2001,37(5):1169-1188
ABSTRACT: The State of Texas has initiated the development of a Total Maximum Daily Load program in the Bosque River Watershed, where point and nonpoint sources of pollution are a concern. Soil Water Assessment Tool (SWAT) was validated for flow, sediment, and nutrients in the watershed to evaluate alternative management scenarios and estimate their effects in controlling pollution. This paper discusses the calibration and validation at two locations, Hico and Valley Mills, along the North Bosque River. Calibration for flow was performed from 1960 through 1998. Sediment and nutrient calibration was done from 1993 through 1997 at Hico and from 1996 through 1997 at Valley Mills. Model validation was performed for 1998. Time series plots and statistical measures were used to verify model predictions. Predicted values generally matched well with the observed values during calibration and validation (R2≥ 0.6 and Nash‐Suttcliffe Efficiency ≥ 0.5, in most instances) except for some underprediction of nitrogen during calibration at both locations and sediment and organic nutrients during validation at Valley Mills. This study showed that SWAT was able to predict flow, sediment, and nutrients successfully and can be used to study the effects of alternative management scenarios. 相似文献
137.
Kristin Bunte Steven R. Abt 《Journal of the American Water Resources Association》2001,37(4):1001-1014
ABSTRACT: Improved sampling techniques are needed to increase the accuracy of pebble‐count particle‐size distributions used for stream studies in gravel‐bed streams. However, pebble counts are prone to operator errors introduced through subjective particle selection, serial correlation, and inaccurate particle‐size measurements. Errors in particle‐size measurements can be minimized by using a gravel template. Operator influence on particle selection can be minimized by using a sampling frame, 60 by 60 cm, in which sampling points are identified by the cross points of thin elastic bands. Serial correlation can be minimized by adjusting the spacing between the cross points and setting it equal to the dominant large particle size (=D95). In a field test in a cobble‐bed stream, the sampling frame developed in this study produced slightly coarser size distributions, particularly in the cobble range, than the traditional heel‐to‐toe walk that selects particles with a blind touch at the tip of the boot. The sampling frame produced more similar sampling results between two operators than heel‐to‐toe walks. The difference between the two sampling methods is attributed to an unbiased selection of fine and coarse particles when using the sampling frame. 相似文献
138.
Modeling carbon sequestration under zero tillage at the regional scale. I. The effect of soil erosion 总被引:3,自引:0,他引:3
Thomas Gaiser Karl Stahr Norbert Billen Mohammad Abdel-Razek Mohammad 《Ecological modelling》2008,218(1-2):110-120
Zero tillage is recognized as a potential measure to sequester carbon dioxide in soils and to reduce CO2 emissions from arable lands. An up-scaling approach of the output of the Environmental Policy Integrated Climate (EPIC) model with the information system SLISYS-BW has been used to estimate the CO2-mitigation potential in the state of Baden-Württemberg (SW-Germany). The state territory of 35,742 km2 is subdivided into eight agro-ecological zones (AEZ), which have been further subdivided into a total of 3976 spatial response units. Annual CO2-mitigation rates where estimated from the changes in soil organic carbon content comparing 30 years simulations under conventional and zero tillage. Special attention was given to the influence of tillage practices on the losses of organic carbon through soil erosion, and consequently on the calculation of CO2-mitigation rates. Under conventional tillage, mean carbon losses through erosion in the AEZ were estimated to be up to 0.45 Mg C ha−1 a−1. The apparent CO2-mitigation rate for the conversion from conventional to zero tillage ranges from 0.08 to 1.82 Mg C ha−1 a−1 in the eight AEZ, if the carbon losses through soil erosion are included in the calculations. However, the higher carbon losses under conventional tillage compared to zero tillage are composed of both, losses through enhanced CO2 emissions, and losses through intensified soil erosion. The adjusted net CO2-mitigation rates of zero tillage, subtracting the reduced carbon losses through soil erosion, are between 0.07 and 1.27 Mg C ha−1 a−1 and the estimated net mitigation rate for the entire state amounts to 285 Gg C a−1. This equals to 1045 Gg CO2-equivalents per year with the cropping patterns in the reference year 2000. The results call attention to the necessity to revise those estimation methods for CO2-mitigation which are exclusively or predominantly based on the measurements of differential changes in total soil organic carbon without taking into account the tillage effects on carbon losses through soil erosion. 相似文献
139.
世界三大黑土区水土流失与防治比较分析 总被引:18,自引:2,他引:16
论文首先明晰了黑土及黑土区的概念与范围界定,将中国东北黑土区分为典型黑土区与黑土区两个层次。在此基础上对世界三大黑土区在成土条件,开发利用过程、水土流失及水土流失防治模式方面进行了对比分析。通过比较分析认为:在自然条件上虽然三大黑土区具有一定的相似性,但我国东北黑土区由于地势起伏相对较大,更易遭受水土流失的危害;国外两大黑土区大规模的开发利用比我国黑土区相对早一些,大规模的农业开垦与不合理的耕作方式是世界三大黑土区水土流失与土地退化的主要原因;国外两大黑土区主要以风蚀为主,我国东北黑土区则是以水蚀为主,但风蚀面积也较大;国外两大黑土区在耕作制度、土地使用政策、水土保持资金投入、水土保持宣传教育及科学试验等方面已经采取了相对有效的措施,我国在这些方面还相对滞后。通过对国外黑土区水土流失治理的借鉴与思考,提出了我国东北黑土区在水土流失防治方面亟待解决的几个问题。 相似文献
140.
George N. Zaimes Richard C. Schultz Thomas M. Isenhart 《Journal of the American Water Resources Association》2008,44(4):935-947
Abstract: Phosphorus and sediment are major nonpoint source pollutants that degrade water quality. Streambank erosion can contribute a significant percentage of the phosphorus and sediment load in streams. Riparian land‐uses can heavily influence streambank erosion. The objective of this study was to compare streambank erosion along reaches of row‐cropped fields, continuous, rotational and intensive rotational grazed pastures, pastures where cattle were fenced out of the stream, grass filters and riparian forest buffers, in three physiographic regions of Iowa. Streambank erosion was measured by surveying the extent of severely eroding banks within each riparian land‐use reach and randomly establishing pin plots on subsets of those eroding banks. Based on these measurements, streambank erosion rate, erosion activity, maximum pin plot erosion rate, percentage of streambank length with severely eroding banks, and soil and phosphorus losses per unit length of stream reach were compared among the riparian land‐uses. Riparian forest buffers had the lowest streambank erosion rate (15‐46 mm/year) and contributed the least soil (5‐18 tonne/km/year) and phosphorus (2‐6 kg/km/year) to stream channels. Riparian forest buffers were followed by grass filters (erosion rates 41‐106 mm/year, soil losses 22‐47 tonne/km/year, phosphorus losses 9‐14 kg/km/year) and pastures where cattle were fenced out of the stream (erosion rates 22‐58 mm/year, soil losses 6‐61 tonne/km/year, phosphorus losses 3‐34 kg/km/year). The streambank erosion rates for the continuous, rotational, and intensive rotational pastures were 101‐171, 104‐122, and 94‐170 mm/year, respectively. The soil losses for the continuous, rotational, and intensive rotational pastures were 197‐264, 94‐266, and 124‐153 tonne/km/year, respectively, while the phosphorus losses were 71‐123, 37‐122, and 66 kg/km/year, respectively. The only significant differences for these pasture practices were found among the percentage of severely eroding bank lengths with intensive rotational grazed pastures having the least compared to the continuous and rotational grazed pastures. Row‐cropped fields had the highest streambank erosion rates (239 mm/year) and soil losses (304 tonne/km/year) and very high phosphorus losses (108 kg/km/year). 相似文献