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土壤凍結(jié)對(duì)黃土細(xì)溝水流流速的影響
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國(guó)家自然科學(xué)基金重點(diǎn)項(xiàng)目(41230746)


Effect of Soil Freeze on Flow Velocity in Loess Rills
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    摘要:

    細(xì)溝水流流速是凍土和未凍土坡面水文過程的重要參數(shù),,與凍融坡面土壤侵蝕和泥沙輸移密切相關(guān),。試驗(yàn)在長(zhǎng)8m,、寬0.1m,、深0.12m的土槽內(nèi)填裝深度為0.05m的陜西安塞黃綿土坡面進(jìn)行,。設(shè)定坡度為5°,、10°,、15°,、20°,流量為1,、2,、4,、8L/min,通過測(cè)量?jī)鐾僚c未凍土坡面細(xì)溝水流前鋒流經(jīng)整個(gè)土槽所用時(shí)間,,計(jì)算水流的前沿流速,,對(duì)比2種坡面上水流前沿流速的關(guān)系,研究?jī)鼋Y(jié)對(duì)水流流速的影響,,同時(shí)采用電解質(zhì)示蹤法計(jì)算水流的優(yōu)勢(shì)流速,,分析優(yōu)勢(shì)流速與前沿流速的關(guān)系。不同工況下,,凍土坡面前沿流速在0.260~0.843m/s之間,,未凍土坡面水流前沿流速在0.175~0.552m/s之間;凍土和未凍土坡面上,,隨坡度,、流量的增大,前沿流速增大,,增大率在緩坡(5°~10°,、10°~15°)時(shí)逐漸減小,流量較?。?,、2、4L/min)時(shí),,流量增大,,坡度對(duì)前沿流速增大率的影響也逐漸減小,;坡度和流量對(duì)凍土坡面水流前沿流速的影響大于對(duì)未凍土坡面水流前沿流速的影響,;凍土和未凍土坡面前沿流速均隨坡度和流量的增大近似呈冪函數(shù)增大;在試驗(yàn)條件下,,凍土坡面前沿流速和優(yōu)勢(shì)流速比未凍土坡面大43%和40%,;凍土和未凍土坡面上優(yōu)勢(shì)流速和前沿流速的比值分別為0.61和0.63,表明該系數(shù)可以用于標(biāo)定前沿流速,。試驗(yàn)結(jié)果可為凍土坡面與未凍土坡面水流動(dòng)力過程研究提供參考,。

    Abstract:

    Water flow velocity along an eroding rill over frozen and non-frozen slopes is of great importance for understanding rill erosion hydrodynamics, which is closely related to erosion of freeze thaw soils and sediment transport. A series of flume experiments were conducted with loess soil from Ansai, Shaanxi Province. Flow velocities were measured in a stainless steel flume which was 8 m long, 0.1m wide, and 0.12m high. The experiments involved five slope gradients (5°, 10°, 15° and 20°),four flow rates (1L/min, 2L/min, 4L/min and 8L/min), with three replicates. Time intervals for water flow running from the top of the flume to the bottom end, covering a total length of 8m was measured to calculate the velocities under different slopes and different flow rates, for both frozen soil and non-frozen soil slopes. The peak velocities were also gained by the data of conductivity changed with time by the electrolyte tracer method during the experiment. The leading edge velocities over frozen soil were between 0.260m/s and 0.843m/s and that of non-frozen were between 0.175m/s and 0.552m/s. Leading edge velocities over frozen soil and non-frozen soil were both increased with the increase of slope gradients and flow rate, the increasing rate of leading edge velocity was decreased with the increase of slope gradient or flow rate under gentle slope(5°~10°, 10°~15°) and low flow rate(1L/min , 2L/min and 4L/min). Over frozen and non-frozen soils, the velocity was increased faster on gentle slopes than that on steep slopes and under low flow rate than that under high flow rate. The power function fitted the leading edge velocity very well for all the experimental conditions over frozen and non-frozen soils. The slope and the flow rate had greater effect on velocity over frozen soil slopes than over non-frozen soil. The result demonstrated that leading edge velocities and peak velocities over frozen soil were faster than that of non-frozen soil under all slopes and flowrates, the ratio of flow velocities over frozen soil and non-frozen soil was 1.43 and 1.40. The ratio of peak velocities and leading edge velocities over frozen and non-frozen slopes were 0.61 and 0.63. The experiment showed that the method for flow velocity measurement was reasonable, and it can also be widely used. The results can provide a data set for flow dynamics research over frozen soil and non-frozen soil.

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陳麗燕,雷廷武,班云云,高源.土壤凍結(jié)對(duì)黃土細(xì)溝水流流速的影響[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2018,49(4):282-289,,191. CHEN Liyan, LEI Tingwu, BAN Yunyun, GAO Yuan. Effect of Soil Freeze on Flow Velocity in Loess Rills[J]. Transactions of the Chinese Society for Agricultural Machinery,2018,49(4):282-289,,191.

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  • 收稿日期:2017-08-30
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  • 在線發(fā)布日期: 2018-04-10
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