Soil Erosion Law of Contour Rotary Tillage of Hillside Tractoron Sloping Land
Abstract
Aiming at the problem of soil tillage erosion (soil migration from the higher side of the sloping land to the lower side) and its unknown mechanism during the contour rotary tillage operation of the slopes in the hilly and mountainous areas of the Loess Plateau. Through the combination of theoretical analysis, simulation test, soil trough and field test, the research on the erosion mechanism of rotary tillage by hillside tractor on sloping land was carried out in depth. Firstly, the parameter equation of soil disturbing volume of H245 standard rotary blade under sloping conditions was constructed, the classical mechanical analysis of the soil disturbing process of the rotary blade was completed, and the main influencing factors of soil erosion were determined: tillage depth, rotary blade shaft speed and rotary tillage forward speed. Then, based on the EDEM simulation software, the soil disturbance law of a single rotary blade and the whole rotary cultivator was studied, and it was concluded that the soil particles moved backwards under the dynamic sliding action of the side cutting edge of the rotary blade. The displacement of soil particles in the shallow layer was the largest, the displacement in the deep layer was the smallest, and the displacement of soil particles in the deep layer near the rotation center of the rotary blade was the largest. The lateral displacement direction of soil was affected by the direction of the tangential edge of the rotary blade, and the bending angle of the tangential edge largely determined the lateral throwing effect of soil particles. The vertical position of soil particles showed a trend of becoming deeper and then shallower as the rotary blade was immersed in the soil. Finally, the single factor and orthogonal tests of rotary tillage were carried out on the spot with the rotational speed of the rotary tiller shaft, the rotational tillage speed and the slope angle as the test factors. The single factor test obtained the law of soil horizontal and lateral displacement changing with the above three factors. The variance analysis of the orthogonal test showed that the factors affecting the lateral displacement of the soil were the slope angle, the rotational speed of the rotary tiller shaft, the speed of the rotary tillage, and the factors affecting the horizontal displacement of the soil were the speed of the rotary tillage, the slope angle, and the rotational speed of the rotary tiller shaft. The regression equation between the soil lateral displacement, the horizontal displacement and the independent variables was obtained by fitting, and the optimal operating parameters combination of the rotary tiller was determined under the five setting slope angles through parameter optimization. The research result can provide good technical guidance for the high-efficiency and low-erosion operation of the existing rotary cultivator in the sloping tillage area of the Loess Plateau, and it can also provide research ideas for the innovative design of the subsequent rotary cultivator for sloping land.
Keywords: hillside tractor, sloping land, contour rotary tillage, tillage erosion law
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LAL R. Soil degradation by erosion [j]. Land Degradation & Development, 2001 , 12(6) ; 519 -539.
YOUNG С J, LIU S, SCHUMACHER J A, et al. Evaluation of a model framework to estimate soil and soil organic carbon redistribution by water and tillage using 137 Cs in two US Midwest agricultural fields [j]. Geoderma, 2014, 232; 437 -448.
ZHANG Jiaqiong, YANG Mingyi, LIU Zhang, et al. A review of tillage erosion research [ J ]. Science of Soil and Water Conservation, 2016,14( 1 ) ; 144 - 150. (in Chinese)
WANG Zhanli, SHAO Ming'an. Modeling on tillage erosion in Loess Region of China [ J ] . Transactions of the CSAE, 2001 , 17( 1 ) : 53 -57. (in Chinese)
WANG Zhanli, SHAO Ming'an, LI Yong. Study on the soil redistribution induced by tillage erosion in Loess Region of China [J]. Plant Nutrition and Fertilizer Science, 2002, 18(2) : 168 - 172. (in Chinese)
WANG Zhanli, SHAO Ming’an. Effects of tillage erosion on soil nutrients in Loess Sloping Land of China[J]. Transactions of the CSAE, 2002, 18(6) : 63 -67. (in Chinese)
ZHAO Pengzhi, CHEN Xiangwei, W ANG Enheng. Quantitative assessment of tillage erosion on typical sloping field in black soil area of Northeast China [J ]. Transactions of the CSAE, 2016, 32(12): 151 - 157. (in Chinese)
FAN Hongzhu, ZHANG Jianhui, WANG Yong, et al. Tillage erosion impacts on soil aggregate associated carbon in mountainous region slope farmland of Northern Sichuan [J ]. Transactions of the Chinese Society for Agricultural Machinery, 2015, 46(11): 157 -164. (in Chinese)
LI Fucheng, HUA Xiaoye, HUANG Qiang. Effects of tillage depth on tillage erosion by rotary cultivator plough on the steep land in purple soil [ J ] - Research of Soil and Water Conservation, 2016,23(4) ;1 -5. (in Chinese)
LI Fucheng, HUA Xiaoye, W ANG Bin. Rate and pattern of tillage erosion by rotary cultivator on the steep land of purple soil [J]. Science of Soil and Water Conservation, 2016,14 ( 1 ) ;71 -78. (in Chinese)
ZHENG Kan, LI Yufei, XIA Junfang, et al. Design and experiment of land leveling blade roller of ditching and rotary tiller with gradual spiral angle [ J ]. Transactions of the Chinese Society for Agricultural Machinery, 2021, 52(5 ) : 63 - 73. (in Chinese)
ZENG Zhiwei, MA Xu, CAO Xiulong, et al. Critical review of applications of discrete element method in agricultural engineeringf [J ]. Transactions of the Chinese Society for Agricultural Machinery, 2021 , 52(4) ;1 -20. (in Chinese)
MA Shuai, XU Liming, YUAN Quanchun, et al. Calibration of discrete element simulation parameters of grapevine antifreezing soil and its interaction with soil-cleaning components[ J ]. Transactions of the CSAE, 2020, 36( 1 ) : 40 -49. (in Chinese)
UCGUL M, FIELKE J M, SAUNDERS C. Three-dimensional discrete element modelling of tillage; determination of a suitable contact model and parameters for a cohesionless soil [ J ]. Biosystems Engineering, 2014, 121(3) : 105 - 117.
AIKINS К A, UCGUL M, BARR J B, et al. Determination of discrete element model parameters for a cohesive soil and validation through narrow point opener performance analysis[J]. Soil and Tillage Research, 2021 , 213; 105123.
MILKEVYCH V, MUNKHOLM L J, CHEN Y, et al. Modelling approach for soil displacement in tillage using discrete element method [J ]. Soil and Tillage Research, 2018, 183(3 - 4);60 - 71.
SUN Jingbin, LIU Qi, YANG Fuzeng, et al. Calibration of discrete element simulation parameters of sloping soil on the Loess Plateau and its interaction with rotary tillage components [ J ]. Transactions of the Chinese Society for Agricultural Machinery, 2022, 53( 1 ) : 119 - 129. (in Chinese)
FANG Huimin, JI Changying, FARMAN A С, et al. Analysis of soil dynamic behavior during rotary tillage based on distinct element method[J]. Transactions of the Chinese Society for Agricultural Machinery, 2016, 47 (3) ; 22 -28. (in Chinese)
GUO Jun, JI Changying, FANG Huimin, et al. Experimental analysis of soil and straw displacement after up-cut and down-cut rotary tillage [ J ]. Transactions of the Chinese Society for Agricultural Machinery, 2016, 47(5) : 21 -26. (in Chinese)
LIU J, CHEN Y, LOBB D A, et al. Soil-straw-tillage tool interaction; field and soil bin study [ J ]. Canadian Biosystem Engineering, 2007, 49 :2. 1 -2.6.
LIU J, CHEN Y, KUSHWAHA R L. Effect of tillage speed and straw length on soil and straw movement by a sweep[J]. Soil & Tillage Research, 2010, 109(1): 9 — 16.
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