Parameter optimization and test based on discrete element method for biaxial layered cutting and deep rotary tillage process in rice stubble fields
DOI:
https://doi.org/10.25165/ijabe.v18i5.9300Keywords:
straw returning, discrete element method, biaxial deep rotary tillage, parameter optimizationAbstract
Straw incorporation into farmlands is recognized as beneficial for improving cultivated land quality, stimulating soil carbon sinks, and promoting crop growth. However, in the rice-wheat double-cropping system, the postharvest period results in abundant crop straw, leading to prominent straw surplus issues. Problems such as the tight schedule between harvesting and sowing and high-quality requirements for seedbeds result in traditional rotary tillage, which often results in excess straw in the tillage layer and straw piles, severely restricting sowing quality. To address these issues, a technological solution was proposed involving biaxial layered cutting for deep rotary tillage and uniform mixing of straw. The focus was on the biaxial deep rotary tillage and uniform mixing processes, along with device testing in paddy fields, via the discrete element method. A composite discrete element model of root stubble, soil, and rice straw was established for a typical rice-wheat rotation area in Jiangsu Province, China, and coupled with a biaxial rotary tillage unit. Using the response surface analysis method, the vertical height difference of the rear cutter shaft relative to the front cutter shaft (Ln), the rotation speed of the cutter group (w), and the forwards speed of the unit (v) were considered the three factors affecting rotary tillage quality. A three-factor, three-level orthogonal simulation test was conducted, yielding the optimal parameter combination: Ln = –73.3 mm, w = 273.6 r/min, and v = 0.6 m/s. Under this combination, the tillage performance achieved a total power consumption of 29.66 kW and a straw burial rate of 94.6%. The results of the prototype field test indicated that the biaxial rotary tillage device significantly loosened the top 20 cm of the soil layer, with a post-tillage surface flatness of 2.80 cm, a straw burial rate of 92.6%, and a tillage depth stability of 95.3%, meeting the quality requirements for the incorporation of straw rotary tillage. The results of this study can provide a theoretical basis and case reference for achieving high-quality mechanized straw incorporation in rice-wheat rotation systems. Keywords: straw returning, discrete element method, biaxial deep rotary tillage, parameter optimization DOI: 10.25165/j.ijabe.20251805.9300 Citation: Zhang Y F, Shi W, Zhou H N, Zheng X G. Parameter optimization and test based on discrete element method for biaxial layered cutting and deep rotary tillage process in rice stubble fields. Int J Agric & Biol Eng, 2025; 18(5): 171–180.References
Li H, Dai M W, Dai S L, Dong X J. Current status and environment impact of direct straw return in China’s cropland-A review. Ecotoxicology and Environmental Safety, 2018; 159: 293–300.
Huo R X. Long-term straw return enhanced crop yield by improving ecosystem multifunctionality and soil quality under triple rotation system: An evidence from a 15 years study. Field Crops Research, 2024; 312: 109395.
Li P, Yin W, Fan Z L, Hu F L, Zhao L H, Fan H, et al. Improving crop productivity by optimizing straw returning patterns to delay senescence of wheat leaves. European Journal of Agronomy, 2024; 159: 127274.
Chen H, Elahi E, Lei X Y. Impact of different straw treatment methods on agricultural production efficiency: An empirical evidence of Jiangsu Province of China. Frontiers in Environmental Science, 2022; 10: 986921.
Cheng Z, Li A J, Wang R G, Hu Q, Zhou J, Li M, et al. Long-term straw return promotes accumulation of stable soil dissolved organic matter by driving molecular-level activity and diversity. Agriculture, Ecosystems & Environment, 2024; 374: 109155. DOI: 10.1016/j.agee.2024.109155.
Liu Q, Dai H C, Wang L, Qian X, Gao Y B, Zhang H, et al. Microbial community and functions depending on tillage and straw returning management: Consequences for soil health and ecosystem services. Land Degradation & Development, 2024; 35(17): 5357–5366.
Han J X, Song X Y, Fu H Y, Liu C G, Yang F S. Effects of the decomposition agent application on the physicochemical properties and microbial community structure of wheat straw-returning soil. Environmental Technology & Innovation, 2024; 35: 103668.
Liu F Y, Gao M L, Zhang H Z, Yuan H B, Hu B, Zong R, et al. Synergistic impact of various straw-return methods and irrigation regimes on winter wheat physiological growth and yield. Field Crops Research, 2024; 316: 109516.
Chen K W, Ma T, Ding J H, Yu S E, Dai Y, He P R, et al. Effects of Straw Return with Nitrogen Fertilizer Reduction on Rice (Oryza sativa L.) Morphology, Photosynthetic Capacity, Yield and Water-Nitrogen Use Efficiency Traits under Different Water Regimes. Agronomy-Basel, 2023; 13(1): 133.
Bao X B, Zhao X Y, He J, Li H W, Wang Q J, Liu W Z. Design and performance test of plowing and rotary tillage combined machine. Inmateh-Agricultural Engineering, 2019; 58(2): 213–222.
Liu D J, Hu J L, Gong Y, Chen X, Wang G, Zhang X, et al. Design and experiment of suspended rotary tillage ridge and film mulching machine. Inmateh-Agricultural Engineering, 2023; 69(1): 237–244.
Matin M A, Fielke J M, Desbiolles J M A. Furrow parameters in rotary strip-tillage: Effect of blade geometry and rotary speed. Biosystems Engineering, 2014; 118: 7–15.
Yang W, Xiao X, Pan R H, Guo S Y, Yang J. Numerical Simulation of Spiral Cutter-Soil Interaction in Deep Vertical Rotary Tillage. Agriculture-Basel, 2023; 13(9): 1850.
Zheng K, Cheng J, Xia J F, Liu G Y, Xu L. Effects of Soil Bulk Density and Moisture Content on the Physico-Mechanical Properties of Paddy Soil in Plough Layer. Water, 2021; 13(16): 2290.
Xiao W S, Niu P, Wang P, Xie Y J, Xia F. Simulation analysis and optimization of soil cutting of rotary blade by ansys/ls-dyna. Inmateh-Agricultural Engineering, 2024; 72(1): 22–32.
Zhang X Y, Hu X, Zhang L X, Kheiry A N O. Simulation and structural parameter optimization of rotary blade cutting soil based on SPH method. Int J Agric & Biol Eng, 2024; 17(3): 82–90.
Shi Y Y, Wang X C, Hu Z C, Gu F W, Wu F, Chen Y Q. Optimization and experiment on key structural parameters of no-tillage planter with straw-smashing and strip-mulching. Int J Agric & Biol Eng, 2021; 14(3): 103–111.
Yuan Y W, Wang J Y, Zhang X, Zhao S H. Study on tillage resistance and energy consumption of a plain straight rotary blade for strip tillage. Engenharia Agricola, 2023; 43(2): e20220127.
Xiao M H, Ma Y, Wang C, Chen J Y, Zhu Y J, Bartos P, et al. Design and experiment of fuzzy-PID based tillage depth control system for a self-propelled electric tiller. Int J Agric & Biol Eng, 2023; 16(4): 116–125.
Liu G Y, Zheng K, Xia J F, Cheng J, Liu Z Y, Wei Y S, et al. Research on an intelligent vibration detachment system for rotary tiller based on soil surface roughness dynamic characteristics. Computers and Electronics in Agriculture, 2024; 224: 109214.
Du J, Heng Y F, Zheng K, Zhang W L, Zhang J M, Xia J F. Evaluation of the Performance of a Combined Tillage Implement with Plough and Rotary Tiller by Experiment and DEM Simulation. Processes, 2021; 9(7): 1174.
Zheng K, McHugh A D, Li H W, Wang Q J, Lu C Y, Hu H N, et al. Design and experiment of anti-vibrating and anti-wrapping rotary components for subsoiler cum rotary tiller. Int J Agric & Biol Eng, 2019; 12(4): 47–55.
Coetzee C J. Calibration of the discrete element method. Powder Technology, 2017; 310: 104–142.
Yan D X, Yu J Q, Wang Y, Zhou L, Sun K, Tian Y. A Review of the Application of Discrete Element Method in Agricultural Engineering: A Case Study of Soybean. Processes, 2022; 10(7): 1305.
Mak J, Chen Y, Sadek M A. Determining parameters of a discrete element model for soil-tool interaction. Soil & Tillage Research, 2012; 118: 117–122.
Walton O R, Braun R L. Stress calculations for assemblies of inelastic speres in uniform shear. Acta Mechanica, 1986; 63(1): 73–86.
Ucgul M, Fielke J M, Saunders C. Three-dimensional discrete element modelling (DEM) of tillage: Accounting for soil cohesion and adhesion. Biosystems Engineering, 2015; 129: 298–306.
Zhang X Y, Yu S Y, Hu X, Zhang L X. Study on rotary tillage cutting simulations and energy consumption predictions of sandy ground soil in a Xinjiang cotton field. Computers and Electronics in Agriculture, 2024; 217: 108646.
Chen G B, Wang Q J, Li H W, He J, Wang X H, Zhang X Y, et al. Experimental research on vertical straw cleaning and soil tillage device based on Soil-Straw composite model. Computers and Electronics in Agriculture, 2024; 216: 108510.
Wang J W, Xu Y A, Wang C Y, Xiang Y S, Tang H. Design and simulation of a trenching device for rice straw burial and trenching based on MBD-DEM. Computers and Electronics in Agriculture, 2023; 207: 107722.
Lin J X, Liao Q X, Wang X F, Kang Y, Du W B, Zhang Q S. Exploring straw movement through the simulation of shovel-type seedbed preparation machine-straw-soil interaction using the DEM-MBD coupling method. Computers and Electronics in Agriculture, 2024; 226: 109465.
Zhu D Q, Shi M H, Yu C Y, Yu Z Y, Kuang F M, Xiong W, et al. Tool-straw-paddy soil coupling model of mechanical rotary-tillage process based on DEM-FEM. Computers and Electronics in Agriculture, 2023; 215: 108410.
Zhang J, Xia M, Chen W, Yuan D, Wu C Y, Zhu J P. Simulation Analysis and Experiments for Blade-Soil-Straw Interaction under Deep Ploughing Based on the Discrete Element Method. Agriculture-Basel, 2023; 13(1): 136.
Xu G M, Xie Y X, Joseph O A, Chen X X, Matin M A, Abbas A, et al. A novel method for measuring and evaluating spatial distribution of straw incorporated by rotary tillage. Agronomy Journal, 2022; 114(1): 853–866.
Xu G M, Xie Y X, Matin M A, He R Y, Ding Q S. Effect of Straw Length, Stubble Height and Rotary Speed on Residue Incorporation by Rotary Tillage in Intensive Rice-Wheat Rotation System. Agriculture-Basel, 2022; 12(2): 222.
Xu G M, Xie Y X, Liang L, Ding Q S, Xie H X, Wang J N. Straw-Soil-Rotary Blade Interaction: Interactive Effects of Multiple Operation Parameters on the Straw Movement. Agronomy-Basel, 2022; 12(4): 847.
Miressa S B, Ding Q S, Li Y N, Amisi E O. Optimization of Tillage Operation Parameters to Enhance Straw Incorporation in Rice-Wheat Rotation Field. Agronomy-Basel, 2025; 15(1): 54.
Liu C Z, Si B C, Zhao Y, Wu Z M, Lu X C, Chen X, et al. Drivers of soil quality and maize yield under long-term tillage and straw incorporation in Mollisols. Soil & Tillage Research, 2025; 246: 106360.
Du J, Heng Y F, Zheng K, Luo C M, Zhu Y H, Zhang J M, et al. Investigation of the burial and mixing performance of a rotary tiller using discrete element method. Soil & Tillage Research, 2022; 220: 105349.
Hu J P, Zhao J, Pan H R, Liu W, Zhao X S. Prediction model of double axis rotary power consumption based on discrete element method. Transactions of the CSAM, 2020; 51(S1): 9–16. (in Chinese)
Xu C S, Xu F D, Tang H, Wang J W. Determination of Characteristics and Establishment of Discrete Element Model for Whole Rice Plant. Agronomy-Basel, 2023; 13(8): 2098.
Lenaerts B, Aertsen T, Tijskens E, De Ketelaere B, Ramon H, De Baerdemaeker J, et al. Simulation of grain-straw separation by Discrete Element Modeling with bendable straw particles. Computers and Electronics in Agriculture, 2014; 101: 24–33.
Downloads
Published
How to Cite
Issue
Section
License
IJABE is an international peer reviewed open access journal, adopting Creative Commons Copyright Notices as follows.
Authors who publish with this journal agree to the following terms:
- Authors retain copyright and grant the journal right of first publication with the work simultaneously licensed under a Creative Commons Attribution License that allows others to share the work with an acknowledgement of the work's authorship and initial publication in this journal.
- Authors are able to enter into separate, additional contractual arrangements for the non-exclusive distribution of the journal's published version of the work (e.g., post it to an institutional repository or publish it in a book), with an acknowledgement of its initial publication in this journal.
- Authors are permitted and encouraged to post their work online (e.g., in institutional repositories or on their website) prior to and during the submission process, as it can lead to productive exchanges, as well as earlier and greater citation of published work (See The Effect of Open Access).