Acta Agriculturae Zhejiangensis ›› 2026, Vol. 38 ›› Issue (7): 1420-1431.DOI: 10.3969/j.issn.1004-1524.20250379
• Environmental Science • Previous Articles Next Articles
LI Pengcheng1(
), JIANG Xiaohu1,2,*(
), YE Tiejun3, ZHAO Zhihao1, KANG Zijian1, GUO Jinpeng1, WU Mingliang1,2
Received:2025-05-15
Online:2026-07-25
Published:2026-08-20
CLC Number:
LI Pengcheng, JIANG Xiaohu, YE Tiejun, ZHAO Zhihao, KANG Zijian, GUO Jinpeng, WU Mingliang. Study on soil water movement and optimal design of furrow-ridge structure in low-lying cold waterlogged fields[J]. Acta Agriculturae Zhejiangensis, 2026, 38(7): 1420-1431.
Add to citation manager EndNote|Ris|BibTeX
URL: http://www.zjnyxb.cn/EN/10.3969/j.issn.1004-1524.20250379
Fig.1 Schematic diagram of oilseed rape planting furrow-ridge d, Furrow width, b, Furrow depth; β, Inclination angle of furrow sidewall; d1, Furrow base width; w, Ridge surface width.
Fig.4 Photos of field experiment a, Rotary tilling, furrowing, and ridge formation; b, Diagram of a trencher; c, Schematic diagram of moisture sensor location. 1-8 in panel b show plow tail wing, trapezoidal connecting plate, base plate, plow center wing, triangular connecting plate, soil-breaking surface, reinforcing rib and plow column in sequence. 1-6 in panel c show 6 sensors.
| 试验因素 Test factor | 设定值 Setting value | 失水率/% Water loss rate/% |
|---|---|---|
| 开沟深度/cm | 20 | 40.97 |
| Furrow depth/cm | 25 | 40.90 |
| 30 | 41.32 | |
| 35 | 39.40 | |
| 沟壁倾角/(°) | 30 | 42.69 |
| Inclination angle of | 40 | 42.25 |
| furrow sidewall/(°) | 50 | 41.32 |
| 60 | 40.34 | |
| 厢面宽度/cm | 120 | 41.53 |
| Ridge surface width/cm | 140 | 43.83 |
| 160 | 42.88 | |
| 180 | 42.70 |
Table 1 Water loss rate under different conditions
| 试验因素 Test factor | 设定值 Setting value | 失水率/% Water loss rate/% |
|---|---|---|
| 开沟深度/cm | 20 | 40.97 |
| Furrow depth/cm | 25 | 40.90 |
| 30 | 41.32 | |
| 35 | 39.40 | |
| 沟壁倾角/(°) | 30 | 42.69 |
| Inclination angle of | 40 | 42.25 |
| furrow sidewall/(°) | 50 | 41.32 |
| 60 | 40.34 | |
| 厢面宽度/cm | 120 | 41.53 |
| Ridge surface width/cm | 140 | 43.83 |
| 160 | 42.88 | |
| 180 | 42.70 |
| 编号 No. | 开沟深度/cm Furrow depth/cm | 沟壁倾角/(°) Inclination angle of furrow sidewall/(°) | 厢面宽度/cm Ridge surface width/cm | 失水率/% Water loss rate/% | 沟深稳定性系数/% Furrow depth stability coefficient/% |
|---|---|---|---|---|---|
| 1 | 30 | 40 | 180 | 37.904 2 | 94.510 0 |
| 2 | 30 | 40 | 140 | 39.391 7 | 91.673 3 |
| 3 | 30 | 50 | 160 | 37.537 5 | 88.400 0 |
| 4 | 30 | 50 | 160 | 37.616 7 | 83.162 9 |
| 5 | 35 | 40 | 160 | 37.508 3 | 84.020 0 |
| 6 | 30 | 60 | 160 | 38.820 8 | 97.226 7 |
| 7 | 25 | 50 | 160 | 37.250 0 | 87.772 0 |
| 8 | 30 | 50 | 140 | 37.279 2 | 90.190 0 |
| 9 | 25 | 50 | 180 | 37.375 0 | 88.388 0 |
| 10 | 35 | 40 | 160 | 37.358 3 | 86.860 0 |
| 11 | 25 | 50 | 160 | 37.320 8 | 86.904 0 |
| 12 | 30 | 50 | 140 | 36.687 5 | 89.553 3 |
| 13 | 25 | 50 | 180 | 36.683 3 | 87.784 0 |
| 14 | 35 | 60 | 140 | 35.220 8 | 86.508 6 |
| 15 | 30 | 50 | 160 | 35.158 3 | 86.273 3 |
| 16 | 35 | 60 | 180 | 36.450 0 | 85.145 7 |
| 17 | 30 | 60 | 160 | 36.312 5 | 96.666 7 |
Table 2 Experimental design and results
| 编号 No. | 开沟深度/cm Furrow depth/cm | 沟壁倾角/(°) Inclination angle of furrow sidewall/(°) | 厢面宽度/cm Ridge surface width/cm | 失水率/% Water loss rate/% | 沟深稳定性系数/% Furrow depth stability coefficient/% |
|---|---|---|---|---|---|
| 1 | 30 | 40 | 180 | 37.904 2 | 94.510 0 |
| 2 | 30 | 40 | 140 | 39.391 7 | 91.673 3 |
| 3 | 30 | 50 | 160 | 37.537 5 | 88.400 0 |
| 4 | 30 | 50 | 160 | 37.616 7 | 83.162 9 |
| 5 | 35 | 40 | 160 | 37.508 3 | 84.020 0 |
| 6 | 30 | 60 | 160 | 38.820 8 | 97.226 7 |
| 7 | 25 | 50 | 160 | 37.250 0 | 87.772 0 |
| 8 | 30 | 50 | 140 | 37.279 2 | 90.190 0 |
| 9 | 25 | 50 | 180 | 37.375 0 | 88.388 0 |
| 10 | 35 | 40 | 160 | 37.358 3 | 86.860 0 |
| 11 | 25 | 50 | 160 | 37.320 8 | 86.904 0 |
| 12 | 30 | 50 | 140 | 36.687 5 | 89.553 3 |
| 13 | 25 | 50 | 180 | 36.683 3 | 87.784 0 |
| 14 | 35 | 60 | 140 | 35.220 8 | 86.508 6 |
| 15 | 30 | 50 | 160 | 35.158 3 | 86.273 3 |
| 16 | 35 | 60 | 180 | 36.450 0 | 85.145 7 |
| 17 | 30 | 60 | 160 | 36.312 5 | 96.666 7 |
| [1] | 吕豪豪, 刘玉学, 杨生茂, 等. 南方地区冷浸田分类比较及治理策略[J]. 浙江农业学报, 2015, 27(5): 822-829. |
| Lyu H H, Liu Y X, Yang S M, et al. Classification comparison and improvement techniques of cold waterlogged paddy in Southern District, China[J]. Acta Agriculturae Zhejiangensis, 2015, 27(5): 822-829. | |
| [2] | 邓绍欢, 曾令涛, 关强, 等. 基于最小数据集的南方地区冷浸田土壤质量评价[J]. 土壤学报, 2016, 53(5): 1326-1333. |
| Deng S H, Zeng L T, Guan Q, et al. Minimum dataset-based soil quality assessment of waterlogged paddy field in South China[J]. Acta Pedologica Sinica, 2016, 53(5): 1326-1333. | |
| [3] | 王飞, 林诚, 李清华, 等. 江南冷浸田治理利用研究进展[J]. 中国生态农业学报, 2016, 24(9): 1151-1160. |
| WANG F, LIN C, LI Q H, et al. A review on improvement and utilization of southern cold-waterlogged paddy fields in China[J]. Chinese Journal of Eco-Agriculture, 2016, 24(9): 1151-1160. | |
| [4] | 曾建新, 龚向胜, 余政军, 等. 南方稻区冷浸田及综合种养开发利用技术[J]. 中国稻米, 2022, 28(6): 102-106. |
| Zeng J X, Gong X S, Yu Z J, et al. Development and utilization technology of cold coaked field and comprehensive planting and breeding in southern rice area[J]. China Rice, 2022, 28(6): 102-106. | |
| [5] | 古丽孜叶·哈力克, 艾力江·麦麦提, 杨英, 等. 不同开沟深度对甜瓜幼苗生长及果实的影响[J]. 中国瓜菜, 2024, 37(8): 136-145. |
| Guliziye H, Ailijiang M, Yang Y, et al. Effects of different furrow depths on the seedling growth and fruit of melon[J]. China Cucurbits and Vegetables, 2024, 37(8): 136-145. | |
| [6] | 聂卫波. 畦沟灌溉水流运动模型与数值模拟研究[D]. 杨凌: 西北农林科技大学, 2009. |
| Nie W B. Research on water flow model and numerical simulation for border and furrow irrigation[D]. Yangling: Northwest A & F University, 2009. | |
| [7] | 翟士旭. 宽垄沟灌灌水后土壤水分运动试验及模拟研究[D]. 郑州: 华北水利水电大学, 2019. |
| Zhai S X. Experiment and simulation of soil water movement after wide ridge furrow irrigation[D]. Zhengzhou: North China University of Water Resources and Electric Power, 2019. | |
| [8] | 王自奎, 吴普特, 赵西宁, 等. 模拟垄沟灌溉土壤水分入渗特性试验研究[J]. 干旱地区农业研究, 2011, 29(3): 24-28. |
| Wang Z K, Wu P T, Zhao X N, et al. Simulation experiment on soil water infiltration characteristics under ridge-furrow irrigation[J]. Agricultural Research in the Arid Areas, 2011, 29(3): 24-28. | |
| [9] | Yu Y, Weihermüller L, Klotzsche A, et al. Sequential and coupled inversion of horizontal borehole ground penetrating radar data to estimate soil hydraulic properties at the field scale[J]. Journal of Hydrology, 2021, 596: 126010. |
| [10] | 刘洪光, 白振涛, 李开明. 基于HYDRUS-2D模型的膜下滴灌暗管排水棉田土壤盐分变化[J]. 农业工程学报, 2021, 37(2): 130-141. |
| Liu H G, Bai Z T, Li K M. Soil salinity changes in cotton field under mulched drip irrigation with subsurface pipes drainage using HYDRUS-2D model[J]. Transactions of the Chinese Society of Agricultural Engineering, 2021, 37(2): 130-141. | |
| [11] | 周晓冰, 栾永霞, 林青, 等. 数值反演模型模拟层状土壤水力性质[J]. 土壤学报, 2021, 58(5): 1214-1223. |
| Zhou X B, Luan Y X, Lin Q, et al. Numerical inversion-based simulation of hydraulic properties of stratic soil[J]. Acta Pedologica Sinica, 2021, 58(5): 1214-1223. | |
| [12] | Wang H F, Zhu X A, Zakari S, et al. Assessing the effects of plant roots on soil water infiltration using dyes and hydrus-1D[J]. Forests, 2022, 13(7): 1095. |
| [13] | Kandelous M M, ŠimŮnek J. Numerical simulations of water movement in a subsurface drip irrigation system under field and laboratory conditions using HYDRUS-2D[J]. Agricultural Water Management, 2010, 97(7): 1070-1076. |
| [14] | 付强, 李玥, 李天霄, 等. 渠道渗漏HYDRUS模拟验证及影响因素分析[J]. 农业工程学报, 2017, 33(16): 112-118. |
| Fu Q, Li Y, Li T X, et al. HYDRUS simulation and verification of canal leakage and its influencing factors analysis[J]. Transactions of the Chinese Society of Agricultural Engineering, 2017, 33(16): 112-118. | |
| [15] | Er-Raki S, Ezzahar J, Merlin O, et al. Performance of the HYDRUS-1D model for water balance components assessment of irrigated winter wheat under different water managements in semi-arid region of Morocco[J]. Agricultural Water Management, 2021, 244: 106546. |
| [16] | 张新民, 张吉孝, 单鱼洋. 垄作沟灌水分入渗模拟与灌水沟断面优化[J]. 水土保持研究, 2014, 21(1): 137-141. |
| Zhang X M, Zhang J X, Shan Y Y. Numerical simulation of infiltration and cross-section optimization under furrow irrigation[J]. Research of Soil and Water Conservation, 2014, 21(1): 137-141. | |
| [17] | 张杰, 张立萍, 郑威强, 等. 基于EDEM的破茬开沟器设计与试验[J]. 农机化研究, 2025, 47(6): 170-178. |
| Zhang J, Zhang L P, Zheng W Q, et al. Design and experiment of stubble breaking and furrow opener based on EDEM[J]. Journal of Agricultural Mechanization Research, 2025, 47(6): 170-178. | |
| [18] | 陈红霞, 齐威龙, 王纪华, 等. 基于离散元法和响应面法的铧式开沟器设计[J]. 机械设计, 2023, 40(1): 65-71. |
| Chen H X, Qi W L, Wang J H, et al. Design of ditch opener based on discrete element method and response surface method[J]. Journal of Machine Design, 2023, 40(1): 65-71. | |
| [19] | 中华人民共和国农业农村部公告第500号[A/OL]. 2021-12-31. https://zys.moa.gov.cn/gsgg/202112/t2021-1231_6386173.htm |
| [20] | 郭元裕. 农田水利学[M]. 3版. 北京: 中国水利水电出版社, 1997. |
| [21] | Van Genuchten M T. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils[J]. Soil Science Society of America Journal, 1980, 44(5): 892-898. |
| [22] | Jarvis N, Koestel J, Messing I, et al. Influence of soil, land use and climatic factors on the hydraulic conductivity of soil[J]. Hydrology and Earth System Sciences, 2013, 17(12): 5185-5195. |
| [23] | 俞明涛, 张科锋. 基于HYDRUS-2D软件的土壤水力特征参数反演及间接地下滴灌的土壤水分运动模拟[J]. 浙江农业学报, 2019, 31(3): 458-468. |
| Yu M T, Zhang K F. Identification of soil hydraulic parameters based on HYDRUS-2D software and simulation of soil water movement under indirect subsurface drip irrigation[J]. Acta Agriculturae Zhejiangensis, 2019, 31(3): 458-468. | |
| [24] | Xiong X F, Li J H, Zhang T, et al. Simulation of coupled transport of soil moisture and heat in a typical karst rocky desertification area, Yunnan Province, Southwest China[J]. Environmental Science and Pollution Research, 2021, 28(4): 4716-4730. |
| [25] | 马黎华, 胡笑涛, 蒋先军, 等. 基于HYDRUS对稻田不同阶段土壤水分的模拟与分析[J]. 排灌机械工程学报, 2022, 40(7): 729-736. |
| Ma L H, Hu X T, Jiang X J, et al. Simulation and analysis of soil water in different stages paddy field based on HYDRUS[J]. Journal of Drainage and Irrigation Machinery Engineering, 2022, 40(7): 729-736. | |
| [26] | 汪顺生, 孟鹏涛, 刘东鑫, 等. 宽垄沟灌灌水水分湿润锋运移及灌水质量影响试验研究[J]. 节水灌溉, 2015(10): 1-4. |
| Wang S S, Meng P T, Liu D X, et al. Experimental study on the effect of wide ridge furrow irrigation on wetting front transport and irrigation quality[J]. Water Saving Irrigation, 2015(10): 1-4. |
| [1] | LIU Jun, ZHU Dequan1, YU Congyang, XUE Kang, ZHANG Shun, LIAO Juan. Design and experiment on scoop hole-wheel precision seed-metering device for rice [J]. Acta Agriculturae Zhejiangensis, 2021, 33(4): 739-752. |
| [2] | WANG Feng, ZHANG Fengwei, DAI Fei, ZHANG Luhai, ZHAO Wei, YANG Xiaoping. Design and experiment of double layer flat screen type Pinellia ternate harvester [J]. Acta Agriculturae Zhejiangensis, 2021, 33(10): 1946-1955. |
| [3] | MOU Guo\|liang1,ZHANG Xue\|jun1,2,*,SHI Zeng\|lu1,2. Improved design of circulating dryer based on Fluent [J]. , 2015, 27(4): 684-. |
| [4] | JIN Li\|li1,2,JI Chang\|ying1,2,*,FANG Hui\|min1,2, TAN Ying1,2. Numerical simulation of mixing process of fertilizer particles in continuous mixer of variable rate fertilizer applicator [J]. , 2015, 27(2): 261-. |
| [5] | SHI Han\|yyu;MU Jie\|gang;ZHENG Shui\|hua;GAN Jian\|jun;LIN ling;FAN Wen\|can. Effect of different baffle length of double volute pump on radial force balance [J]. , 2013, 25(6): 0-1382. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||