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1.
黄土坡面细沟形态变化及其与流速之间的关系   总被引:6,自引:9,他引:6  
研究细沟的形态变化特征是认识细沟侵蚀的重要基础,细沟发育过程中细沟形态变化与水流动力学特性之间存在相互影响和相互作用的关系,研究细沟发育过程中细沟形态与水动力学之间的关系,有利于更好地了解细沟侵蚀过程和侵蚀机理。该研究通过室内人工模拟降雨试验,对黄土坡面细沟发育过程中的细沟形态变化及其与流速的关系进行了研究。结果表明:坡面侵蚀过程呈明显的阶段性,坡面细沟形态变化过程与坡面径流含沙量的变化情况基本一致;坡面跌坎发生的临界流速为0.19~0.21 m/s,当坡面径流流速大于这个临界值的时候,坡面会出现跌坎;细沟发育初期,细沟间的距离一定程度上影响细沟的分布,最早出现的细沟之间不会再出现新的跌坎,这一间距范围在12.5~17.5 cm之间;细沟侵蚀过程主要以下切侵蚀和溯源侵蚀为主,沟壁坍塌的侵蚀作用相对较小;细沟流速随时间的变化大致呈先增后减的趋势,细沟流速随细沟宽度的增加而显著减小,这一趋势在4 m坡段尤为明显,二者之间存在显著负相关关系(r=-0.348,P=0.04)。受试验条件所限没有研究细沟深度和流速等其他水动力学参数,以后需要不断改进试验方法来准确测量流速、水深等指标,进一步研究细沟发育过程。  相似文献   

2.
7Be示踪坡耕地次降雨细沟与细沟间侵蚀   总被引:1,自引:2,他引:1  
对于坡面细沟与细沟间侵蚀过程的了解是建立侵蚀预报模型的基础,但传统方法难以对其进行深入研究。利用7Be示踪技术并结合人工模拟降雨,考虑坡脚沉积作用,研究了25°坡耕地径流小区次降雨过程中细沟与细沟间侵蚀动态。结果表明:根据流出径流小区泥沙7Be含量变化计算坡面明显细沟出现时间,由于坡脚沉积作用使得A、B两试验小区这一时间比实际细沟出现分别延迟了45 min和11 min;根据坡面-侵蚀泥沙中7Be总量守恒和泥沙质量平衡原理,坡面细沟间侵蚀及细沟侵蚀在坡面总侵蚀、坡脚沉积区泥沙及流出径流小区泥沙中的比例被定量区分开;总体上,细沟间侵蚀量在径流泥沙中的比例逐渐减少,而细沟侵蚀量逐渐增加。两试验小区中7Be示踪计算坡面细沟侵蚀量和坡脚沉积量与实测值相比相对误差均较小,因此7Be示踪技术可以对土壤侵蚀进行较为准确地定量研究。  相似文献   

3.
放水冲刷条件下工程堆积体边坡径流侵蚀水动力学特性   总被引:9,自引:5,他引:9  
煤炭开采过程形成的工程堆积体可导致严重水土流失。该文以重庆市煤矿工程堆积体为研究对象,该文采用土工试验方法和野外实地放水冲刷试验研究了煤矿工程堆积体边坡径流侵蚀特征及其临界水动力条件。结果表明:1)随着径流侵蚀冲刷过程进行,工程堆积体边坡的径流流速、径流剪切力和径流功率均呈现出程度不一波动现象,其变化范围分别为0.187~0.526 m/s、24.336~126.542 Pa、2.763~46.861 N/(m·s),而阻力系数在2.236~19.337之间波动变化。2)除10 L/min放水条件,工程堆积体边坡产流率、产沙率随径流冲刷过程呈先增加、后稳定变化趋势;在不同放水条件(10~30 L/min)下,边坡产流率依次趋于0.5、3.0、3.8、6.3和9.0 L/min,而产沙率在0~27.51 kg/min之间变化,土壤剥蚀率在9.570~4616.064 g/(m2·min)。3)不同坡度工程堆积体边坡临界径流剪切力及径流功率存在较大差异,面蚀阶段临界径流剪切力和临界径流功率以30°堆积体最小,分别为23.95 Pa和1.76 N/(m·s);而细沟侵蚀阶段以25°堆积体临界径流剪切力最小,以40°堆积体临界径流功率最小;土壤侵蚀速率与径流剪切力、径流功率之间具有显著线性关系。4)在放水条件下(10~30 L/min),工程堆积体径流侵蚀临界坡度分别为34.8°、35°、33.7°、34°、35.2°。研究结果可为煤矿工程堆积体水土流失量预测、水土保持生态修复措施布置提供技术参数和依据。  相似文献   

4.
Rill erosion is affected by the sand particle content in soil, especially in the wind and water erosion transition region of the Loess Plateau. The sediment transport capacity (STC) is a key parameter in rill erosion research, assessing the impact of aeolian sand intrusion on the STC of rill flow is of importance for a better understanding of rill erosion. This study aimed to assess the effect of aeolian sand intrusion on the STC on sandified loess slopes, with typical slopes and flow discharges, using a flume system which consisting of a sediment-feeding and a sediment-supply/settlement flume. The sediment feeding flume was jointed by 10° higher than that of the sediment measurement flume section. Three flow discharges (2, 4, and 8 L min−1) and four slope gradients (5°, 10°, 15°, and 25°) were used to represent the natural hydrological conditions under three intrusion rates (SIR) of aeolian sands (10%, 20%, and 50%). The results show that STC increased with slope gradient and flow discharge, and the relationship between the STC and the SIR was significantly affected by the slope gradient; the STCs decreased with the SIR on a slope of 5° but increased with the SIR on steep slopes of 15°–25°, implying a significant impact of slope gradient on the relationship between SIR and STC. The SIR of 50% resulted in the highest sediment concentration nearly 1200 kg m−3 on slopes of 25°. On sandified loess slopes of 10%, 20%, and 50% SIR, the STC were about 30%, 46%, and 57% higher than on loess slopes, indicating an increased erosion rate by sand particle intrusion into loess soil. These results highlight the impact of sand intrusion on STC of rill flow and provide deeper insights into the soil loss process on the sandified loess slope.  相似文献   

5.
The magnitude of interrill and rill erosion was determined on the northern slopes of the Uluguru Mountains, Tanzania which is representative for larger areas of East African Arch Mountains, where population pressure is high and land degradation is severe. The aim of the study was to develop a database to support soil conservation in the area. The study was done on two distinct geomorphic units with respect to altitude and hence rainfall distribution pattern: mountain ridges with an altitude ranging from 1000 to 1500 masl and mean annual rainfall of 2300 mm and mountain foothills whose altitude and mean annual rainfall are 550 to 900 masl and 900 mm, respectively. Total soil loss was measured on 36 individual bounded plots measuring 1.2 m × 20 m using Gerlarch troughs on each day with rain from July 2000 to June 2001. The plots were located on six different geopedologic units, nine on mountain ridges and the rest on the mountain foothills. The slope gradient on the terrain ranged from 30% to 70%. The plots were put under maize cultivation as the main crop. Soil loss through rill erosion was estimated by volumetric measurements of rills on each soil erosion plot. The soil loss due to interrill erosion was obtained by subtracting soil loss through rill erosion from the total soil loss measured in the Gerlarch troughs. The results indicate that soil loss due to both interrill and rill erosion was very high with mean soil loss of 69 and 163 t/ha/year, respectively. Rill erosion accounted for about 58% of the total soil loss while interrill erosion contributed to the remaining 42%. Both interrill and rill erosion were higher in the mountain ridges with mean soil loss of 88 t/ha/year and 210 t/ha/year compared to 49 and 116 t/ha/year in the mountain foothills, respectively. Rill erosion was significantly higher (P ≤ 0.001) in all geopedologic units with slope gradient above 40% (mean soil loss ranged between 91 and 258 t/ha/year) compared to interrill erosion with mean soil loss varying from 41 to 115 t/ha/year. In geopedologic units with slope gradient above 60% both interrill and rill erosion were highly active while in geopedologic units with slope gradient below 40% the two processes were less active. The results demonstrate that rill erosion is more important than interrill erosion in the study area particularly where the slope gradient exceeds 40%. The results further show that the major part of the studied area has moderate interrill erosion (10–50 t/ha/year) and severe to very severe (> 100 t/ha/year) rill erosion. This study clarifies the magnitude of interrill and rill erosion which is important for designing soil conservation on agricultural fields.  相似文献   

6.
坡面细沟侵蚀断面形态发育影响因素分析及动力特性试验   总被引:7,自引:2,他引:5  
研究细沟形态发育过程对认识细沟侵蚀具有重要作用,该文采用6种坡度(2°、4°、6°、8°、10°、12°),5种流量(8、16、24、32、40 L/min)下的组合冲刷试验,系统研究了坡面细沟横纵断面形态发育影响机制及动力特性。结果表明:细沟宽深比变化范围为3.006~4.884,根据水力最佳断面,细沟水流远未达到稳定。横断面形态系数随坡度的变化范围为0.36~0.522,细沟横断面形态随流量、坡度以及冲刷历时均趋近于梯形水力最佳断面,即阻力最小的断面。随着流程长度的增加,横断面形态由宽深逐渐变窄,横断面形态系数也随之减小。细沟纵断面形态范围为0.60~11.26,且随坡度的增大而增大,与流量相关性不大。综合阻力系数及消能率均与细沟纵断面形态系数呈良好的幂函数关系。  相似文献   

7.
Suhua Fu  Baoyuan Liu  Heping Liu  Li Xu 《CATENA》2011,84(1-2):29-34
Slope gradient is an important factor that affects soil erosion. This study was conducted to investigate the effect of slope gradient on soil erosion and determine the splash contribution to interrill erosion at short steep slopes. An experimental device was used to make simultaneous measurements of interrill splash and wash at 9, 18, 27, 36, 47, 58, 70, 84, and 100% slopes under a constant rainfall intensity of 67 mm h? 1 in a laboratory setting. The specially designed runoff and sediment collection system provided a means of partitioning total splash into four directional components and interrill sediment transport into wash and splash components. The results revealed that the total splash loss, net downslope splash loss and wash loss all increased with slope, and then decreased after a maximum value was reached. The slope factor equation of short slopes in RUSLE matched the wash loss from this study very well when the slope gradient was less than or equal to 58%. The ratio of net downslope splash loss to wash loss increased from 0.21 to 1.33 as the slope gradient increased from 9% to 100%. Taken together, these results indicate that upslope splash loss was a very important component of the total splash loss on gentle slopes and may be neglected on slopes greater than 36%. Splash transport was a significant part of interrill sediment delivery at short steep slopes.  相似文献   

8.
为明确黄绵土在径流冲刷下的细沟侵蚀特征和产流产沙规律,通过细沟模拟,设计3个流量(2,4,8 L/min)和4个坡度(5°,10°,15°,20°),在变坡土槽中进行室内冲刷试验,实测不同坡度和流量下黄绵土在坡面细沟发育过程中产生的最大径流含沙量,并得到其相应的输沙能力(A)。结果表明,当坡度一定时,输沙能力随流量增大呈线性增大,且坡度越大增幅越明显;当流量较小时,输沙能力随坡度增加而缓慢增加,当流量达到8 L/min时,输沙能力随坡度增加的幅度更为明显,但坡度上升到15°以后几乎不再变化,说明流量对输沙能力的影响更为显著。含沙量(c)随沟长(x)的变化规律符合数学模型c=A(1-e-Bx),控制所有流量坡度组合在不同沟长(1,2 m)条件下进行冲刷试验,将冲刷测量得到的径流含沙量与各组合下的输沙能力(A)代入关系式,利用待定系数法计算出不同试验条件下含沙量随沟长变化的衰减系数(B)。研究结果可为黄绵土水土保持研究与实践提供理论基础与科学依据。  相似文献   

9.
Rill erosion easily occurs on tilled surfaces because the soil shear resistance is less than the runoff shear stress. However, rill erosion formation and evolution on tilled surfaces under upslope inflow conditions remain unclear. The objective of this study was to investigate the rill formation process and rill erosion amount on tilled surfaces via flow scouring under different inflow rates (4, 6, and 8 L min−1) at a 15° slope. Close-range photogrammetric technology was applied to measure the rill morphology during the experiments. The results suggested that the rill formation process due to inflow could be divided into two distinct stages, namely, before and after runoff reached the downslope end, i.e., stages I and II, respectively. At stage I, runoff washed soil particles along the downslope direction. In this process, due to limited transport capacity of runoff, washed soil particles were deposited at the runoff head and formed a soil mound, which blocked the flow path, after which the runoff direction changed within the 6.7°− 50.6° range with an average moving distance of 0.62 m. As a result, a curved rill and a series of soil mounds were left on the surface. The inflow rate affected rill morphology by influencing the runoff direction change angle and runoff moving distance between the mounds on the surface. Herein, the rill formation process is referred to as downslope-trending erosion by inflow (DTEI). At stage II, runoff reached the downslope end, and a rill channel was formed throughout the slope. Thereafter, DTEI was largely reduced, and headward erosion was strengthened. As a result, the rill morphology quickly changed, such as the rill depth and rill width, which gradually increased with ongoing headward erosion. During DTEI, the rill paths were curved due to sediment deposition, and the sediment deposition conditions varied under the different inflow rates. Therefore, the rill curvature (RC) differed (1.039 ± 0.014). The RC decreased with headward erosion progression at stage II. The total sediment yield (TSY) increased with increasing inflow rate. Under inflow rates ranging from 4 to 6 L min−1 and 6–8 L min−1, the TSY increased 2.1–2.4 times. Consequently, DTEI on tilled surfaces significantly affects the initial rill morphology and evolution at the later stage. Hence, on slopes, its role should be considered in rill erosion assessment.  相似文献   

10.
黄土区坡耕地细沟间侵蚀和细沟侵蚀的研究   总被引:19,自引:5,他引:14       下载免费PDF全文
郑粉莉 《土壤学报》1998,35(1):95-103
利用人工模拟降雨试验,通过在径流小区上覆盖纱网消除雨滴动能和增加雨滴除落高度来增加雨滴功能,并采用翻耕裸露作对照的试验处理,对黄土区坡耕地细沟间侵蚀和细沟侵蚀过程及其机理进行了研究。结果表明,坡面侵蚀产沙过程可明显的分为四个阶段,即溅蚀,细沟间侵蚀、细沟侵蚀和雨后径流侵蚀阶段。  相似文献   

11.
间歇降雨对红壤坡面土壤侵蚀特征的影响   总被引:2,自引:2,他引:2  
自然条件下降雨多以间歇形式出现,而坡面土壤侵蚀又是一个渐变发育的复杂过程。通过3个雨强(60,90,120 mm/h)、5个坡度(5°,10°,15°,20°,25°)下的15场室内模拟降雨,研究一、二次降雨条件下不同雨强、坡度及降雨量对红壤坡面径流和侵蚀过程的影响,探讨间歇降雨条件下坡面侵蚀发育过程及其主要影响因素的变化。结果表明:(1)二次降雨的产流时间相比一次降雨均提前,一次降雨径流总量受到雨强、坡度和降雨量的共同影响,15°坡度是径流总量变化的一个转折点,二次降雨时降雨量的作用减弱,各雨强下的最大相差倍数减小,各坡度之间的倍数差距也减小。(2)一次降雨发生细沟侵蚀最主要的动力是降雨强度,大雨强、陡坡情况下细沟侵蚀更容易产生,而15°坡度对细沟侵蚀的产生具有重要作用,此时若发生细沟侵蚀,坡面侵蚀则多以细沟侵蚀为主,二者侵蚀量呈正比例函数关系,二次降雨的细沟侵蚀量和一次降雨过程中细沟发育情况相关,一次降雨的细沟发育越剧烈,二次降雨的细沟侵蚀量越少,此时细沟侵蚀量和总侵蚀量呈一次函数关系。总体来说,侵蚀总量的变化和细沟发育所处阶段紧密相关。(3)间歇降雨条件下,不同雨强、坡度、降雨量对坡面土壤径流和侵蚀过程的影响存在差异;同时,一次降雨土壤径流和侵蚀的变化对后期二次降雨径流和侵蚀的发展具有重要影响,使得在不同土壤侵蚀发展阶段,雨强、坡度、降雨量等因子对坡面土壤径流和侵蚀影响的程度也随之改变。  相似文献   

12.
Soil and water conservation practices are used widely to prevent soil erosion and protect soil and water resources, which is significant for ecological restoration and food security. However, rill evolution processes, erosion and deposition characteristics and critical hydrodynamic parameters need more research. In order to investigate the effect of soil and water conservation practices on soil erosion dynamics, simulated rainfall experiments were undertaken in a laboratory on 15° loess slopes with engineering measures (fish-scale pits, FSPs), tillage measures (artificial digging, AD; contour ploughing, CP) and bare slope (CK). The results showed that: (1) during rill erosion, hillslopes with FSPs, CP and AD were more likely to develop wide and shallow rills, while a bare slope (CK) was more likely to develop narrow and deep rills. At the end of the experiment (cumulative rainfall was about 150 mm), headward retreat erosion dominated the AD slope (maximum rill length: 3.27 m), side-wall expansion erosion dominated the CP slope (maximum rill width: 0.522 m) and bed incision erosion dominated the CK (maximum rill depth: 0.09 m); (2) soil and water conservation practices reduced surface erosion and sediment transport and runoff velocity. However, the positive effects disappeared when rainfall amounts exceeded 82.5, 105 and 127.5 mm for FSPs, CP and AD, respectively; (3) for runoff kinetic energy and runoff shear strength of 3 J and 1.5 N/m2, respectively, soil and water conservation measures had greater anti-erosion abilities than CK; (4) as rainfall duration increased, surface roughness, runoff rate and sediment concentration increased on the CK and FSP treatments, but decreased on the CP and AD treatments. This study has important implications for managing different soil and water conservation measures based on rainfall conditions and offers a deeper understanding of soil erosion processes.  相似文献   

13.
This research aims to improve erosion control practice in the Loess Plateau, by studying the surface erosion processes, including splash, sheet/interrill and rill erosion in four contrasting soils under high rainfall intensity (120 mm h−1) with three-scale indoor artificial experiments. Four contrasting soils as sandy loam, sandy clay loam, clay loam and loamy clay were collected from different parts of the Loess Plateau. The results showed that sediment load was significantly impacted by soil properties in all three sub-processes. Splash rate (4.0–21.6 g m−2∙min−1) was highest in sandy loam from the north part of the Loess Plateau and showed a negative power relation with the mean weight diameter of aggregates after 20 min of rainfall duration. The average sediment load by sheet/interrill erosion (6.94–42.86 g m−2∙min−1) was highest in clay loam from middle part of the Loess Plateau, and the stable sediment load after 20 min showed a positive power relation with the silt content in soil. The average sediment load increased dramatically by rill and interrill erosion (21.03–432.16 g m−2∙min−1), which was highest in loamy clay from south part of the Loess Plateau. The average sediment load after the occurrence of rill showed a positive power relation with clay content and a negative power relation with soil organic matter content. The impacts of slope gradient on the runoff rate and sediment load also changed with soil properties. The critical factors varied for different processes, which were the aggregate size for splash erosion, the content of silt particles and slope gradient for sheet/interrill erosion, and the content of clay particles, soil organic matter and slope gradient for rill erosion. Based on the results of the experiments, specific erosion control practices were proposed by targeting certain erosion processes in areas with different soil texture and different distribution of slope gradient. The findings from this study should support the improvement of erosion prediction and cropland management in different regions of the Loess Plateau.  相似文献   

14.
不同土壤坡面细沟侵蚀差异与其影响因素   总被引:11,自引:1,他引:11  
采用室内纯净水人工模拟降雨试验,在坡度为10°、15°、20°、25°坡面,土槽为5 m、10 m两种规格,对两种土壤((土娄)土与黄绵土)分别进行雨强为1.5 mm min-1,的降雨实验,利用三维激光扫描仪对每一场降雨后的坡面进行监测,分析不同坡度对细沟侵蚀的影响,比较两种土壤坡面细沟侵蚀的差异,以及其差异的影响因子.结果表明:(土娄)土土壤颗粒以粉粒与黏粒为主,粉粒占总质量的64.12%,黏粒为28.42%.黄绵土的土壤颗粒以粉粒为主占总质量的67.95%,黏粒与沙粒含量较少,黏粒占14.52%,沙粒占17.53%.在相同条件下,(土娄)土降雨过程中人渗缓慢,产流时间、坡面流速均快于黄绵土,跌坎出现时间也较早,使其更容易产生细沟.(土娄)土的径流量高于黄绵土,在降雨过程中,径流稳定时间较早.(土娄)土侵蚀量高于黄绵土,(土娄)土产沙率呈增加趋势,黄绵土含沙量变化不明显.从坡面细沟发育来看,(土娄)土坡面细沟成平行状分布,黄绵土细沟为较宽树枝状.  相似文献   

15.
为研究黄土坡面细沟侵蚀规律,探究水流剥蚀能力的室内测算方法,以黄绵土为研究对象,设置2,4,6,8 L/min 4个流量,5°,10°,15°,20°4个坡度,土槽长度为12 m,进行室内径流冲刷试验,得到黄绵土坡面细沟侵蚀的临界沟长和输沙能力,基于二者之间的函数关系,推导出剥蚀能力的计算公式,以此研究不同试验条件下临界沟长、输沙能力和剥蚀能力的变化规律,并验证方法的准确性。结果表明:在设计水力工况条件下,黄绵土坡面细沟侵蚀的临界沟长的变化范围在5.33~11.12 m,且临界沟长随流量和坡度的增加而缩短;输沙能力随流量和坡度的增大而增大;剥蚀能力与流量之间存在明显的线性关系,与坡度之间存在较好的对数关系。试验方法与其他方法相比,操作便捷、结果吻合度高,能较好地确定黄土区细沟侵蚀的剥蚀能力。研究结果可进一步完善黄土坡面细沟侵蚀理论。  相似文献   

16.
为研究矿区土质道路径流产沙及细沟形态发育特征,在野外调查的基础上,设计坡度(3°、6°、9°、12°)和雨强(0.5、1.0、2.5、2.0、2.5、3.0 mm/min)2个处理,在野外建立不同坡度的道路小区,采用人工模拟降雨的方法,测定了不同处理道路径流产沙参数和细沟形态指标。结果表明:1)各坡度道路径流率为1.12~8.24 L/min,与雨强线性关系极显著,随坡度变化不显著;除0.5 mm/min雨强3°~9°坡及1.0 mm/min雨强3°坡道路径流流态为层流外,其余为紊流,雨强-坡度交互作用(I×S)对流态影响显著;阻力系数只与坡度相关。2)各坡度道路剥蚀率为0.92~324.46 g/(m2·s),与雨强、坡度和径流率呈极显著幂函数关系(R2=0.968,P0.01),道路土壤发生剥蚀的临界剪切力和临界径流功率分别为2.15 N/m2和0.41 W/(m2·s)。3)3°道路以片状侵蚀为主,6°~12°道路细沟发育,细沟宽深比、复杂度、割裂度和细沟密度分别为1.80~3.75、1.07~1.55、0.20%~10.33%和0.067~2.01 m/m2,细沟发育程度是雨强和坡度交互作用(I×S)的结果。4)6°~12°道路细沟侵蚀量占总侵蚀量比例为18.0%~57.16%,总侵蚀量与细沟宽深比、细沟复杂度、细沟割裂度和细沟密度均呈显著的函数关系(R2=0.35~0.96,P≤0.01),割裂度是影响土质道路总侵蚀量的最佳细沟形态因子。结果可为矿区土质道路水土保持工程设计及生产安全提供参数支持。  相似文献   

17.
褐土与棕壤坡耕地细沟侵蚀发生的阶段性水沙变化   总被引:3,自引:0,他引:3  
为深入探究辽西低山丘陵区坡耕地土壤侵蚀机理,以该区的典型土壤类型褐土和棕壤为研究对象,采用室内人工降雨模拟试验,研究3种坡度(5°,10°,15°)和3种降雨强度(40,60,80 mm/h)下细沟侵蚀发生的阶段性水沙变化过程。结果表明:褐土与棕壤坡面侵蚀过程可划分为3个阶段,即细沟侵蚀之前阶段、跌坎发育阶段和细沟侵蚀快速发育阶段;细沟侵蚀之前的面蚀阶段,同一坡度条件下,褐土与棕壤随雨强的增加,坡面流速呈增大趋势,而在同一雨强条件下,坡度对流速的影响并无明显规律;细沟侵蚀阶段,当坡度一定条件下,褐土与棕壤细沟内、细沟间的流速随雨强的增加而增大,当雨强一定时,褐土与棕壤随坡度的增加细沟间流速增加;细沟侵蚀阶段流速表现为细沟内流速坡面流速细沟间流速;细沟侵蚀快速发育阶段2种土壤产生的径流量占总径流量的80%以上,土壤侵蚀量占总侵蚀量均在70%以上,且棕壤对总体侵蚀量的贡献更稳定,更易发生细沟侵蚀。整场降雨的侵蚀方式是面蚀向细沟侵蚀的转变,坡面一旦发生侵蚀,细沟侵蚀对坡面总侵蚀的贡献更大。  相似文献   

18.
以长江中上游典型侵蚀性土壤紫色土为研究对象,采用变坡限定性细沟土槽,研究不同流量、坡度和沟长情况下,紫色土细沟侵蚀特征,并量化了细沟侵蚀参数。结果表明:细沟侵蚀受水流水力特征、土壤性质和坡面影响,随着水流含沙量的增大,细沟侵蚀速率呈现减小趋势;流量越大,坡度越陡,细沟水流的剥蚀率越大,造成细沟侵蚀速率也越大。在5L/min的小流量下,细沟侵蚀速率受剥蚀率限制与含沙量没有出现线性关系,15,25L/min流量下,细沟侵蚀速率与含沙量呈线性相关。侵蚀速率在细沟开始处最大,随沟长的增大,水流能量消耗于挟带泥沙而迅速减小,相关性分析得到侵蚀速率与沟长呈指数递减,相关系数R2变化于0.45~0.98之间。通过回归分析得到试验条件下,紫色土细沟土壤可蚀性均值为0.005 3s/m,临界剪切力均值为2.92Pa。研究结果对于坡面土壤侵蚀物理模型的建立和推广应用提供数据支撑,为紫色土坡面侵蚀研究提供借鉴。  相似文献   

19.
选择裸露砒砂岩坡面为研究对象,基于野外径流小区冲刷试验结合三维激光扫描技术,研究3种流量(60,100,200 L/h)与4个坡度(5°,10°,20°,30°)组合冲刷下砒砂岩区坡面细沟形态演变特征及径流侵蚀产沙机制。结果表明:坡面细沟在坡下最先发育,随着冲刷流量和坡面坡度的增大而向上延伸;细沟出现的时间随着坡度的增加而缩短;10°坡面上细沟的形态表现为"宽浅型",最大宽深比为0.038,20°坡面细沟的形态为"深窄型",最小宽深比为0.017;随着冲刷强度和坡度的增加,细沟宽深比变小,而细沟数量、细沟密度、细沟复杂度、细沟割裂度等指标均增大。坡度和冲刷强度共同影响着坡面产沙率变化,随着坡度和冲刷强度的提升坡面产沙率表现为先增后减的趋势。细沟宽深比与坡面产沙量呈现极显著负相关(-0.935,P0.01),细沟密度与细沟割裂度与产沙量呈显著正相关关系(0.888,0.944,P0.01)。  相似文献   

20.
为研究激光扫描和摄影测量技术在监测坡面侵蚀演变过程中的精度及适用性,该研究利用近景摄影测量技术和三维激光扫描技术对长历时条件下坡面侵蚀演变过程进行监测,获取不同时段的坡面微地形数据,基于坡面高精度数字高程模型(Digital Elevation Model,DEM)对坡面侵蚀演变过程进行分析,探究2种非接触式测量方法在坡面侵蚀监测中的适用性和精确度。结果表明:1)按主导侵蚀方式的不同,坡面侵蚀过程可分为片蚀阶段、细沟发育阶段和细沟成熟阶段;2)2种非接触式测量方法均能够精确的对坡面侵蚀产沙过程进行监测,最大相对误差为-16.82 %,2种方法在坡面侵蚀量测量方面有很好的适用性。3)近景摄影测量技术在坡面侵蚀产沙监测、细沟深度测量和坡面微地形模拟方面要优于三维激光扫描技术。该研究可土壤坡面侵蚀监测方法的选择提供参考。  相似文献   

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