数字农科院2.0

CFD-DEM coupling analysis of the negative pressure inlet structural parameters on the performance of integrated positive-negative pressure seed-metering device

文献类型: 外文期刊

作者: Dandan Han;Wei Li;Yunxia Wang;Qing Wang;Zhijun Wu;Yuchao Wang;You Xu;Lijia Xu

作者机构:

关键词: air inlet;CFD-DEM coupling approach;integrated positive-negative pressure;maize;seed-metering device

期刊名称: Frontiers in Plant Science

ISSN: 1664-462X

年卷期: 2025 年 16 卷

页码:

收录情况: SCIE(2025版)

摘要: To assess the influence of the structural parameters of the negative pressure inlet pipe on the seeding performance of the integrated positive-negative pressure seed-metering device, angles α and β, along with taper θ, were selected as test variables for conducting coupling simulation tests and physical bench tests. The results indicate that the average differential pressure across the holes in the seed-filling zone (Δpsf), the airflow rate at the interaction interface between the negative pressure inlet pipe and the negative pressure chamber (Q), the average drag force on seeds in the seed-filling zone (FD,sf), and the average drag force on seeds in the seed-cleaning zone (FD,sc) are all significantly affected by the test factors. The structural parameters of the negative pressure inlet pipe can be accurately predicted using the prediction model developed through regression analysis of the central composite test results. The optimal parameters combination is established as 17.1° for angle α, 81.3° for angle β, and 0.52° for taper θ. The maximum error between the predicted evaluation index values and those obtained from the coupling simulation verification test with the optimized negative pressure inlet pipe is less than 6.66%, indicating a strong correlation and reasonable prediction of the structural parameters. The results from the physical bench tests confirm that the optimal operational speed for the seed-metering device with the optimized negative pressure inlet pipe is 4 to 5 km/h, with an optimal working negative pressure of 4 to 6 kPa. Under these conditions, the qualified rate varies from 92.27% to 95.28%, the multiple rate from 2.43% to 5.52%, and the leakage rate from 1.22% to 5.2%.

分类号:

  • 相关文献

[1]DissectingthemaizedirectandindirectdefenseresponseagainstAsianCornBorer. 汪海,李圣彦,查象敏,朱莉,黄大昉,郎志宏. 2015

[2]TheDifferentialTranscriptionNetworkbetweenEmbryoandEndospermintheEarlyDevelopingMaizeSeed. XiaoduoLu,DijunChen,DefengShu,ZhaoZhang,WeixuanWang,ChristianKlukas,Ling-lingChen,YunliuFan,MingChen,ChunyiZhang. 2015

[3]DESIGN AND EXPERIMENT OF SMALL VEGETABLE SEEDER WITH SINGLE DISC MULTI-ROW SEEDING AND INDEPENDENT AIRWAY. Zhang, Yinping,Yang, Xin,Li, Xiaoran,Wang, Zhenwei,Zhou, Hua,Wang, Jiasheng. 2023

[4]DESIGN AND EXPERIMENT OF SMALL VEGETABLE SEEDER WITH SINGLE DISC MULTI-ROW SEEDING AND INDEPENDENT AIRWAY [小型单盘多行独立气道蔬菜播种机设计与试验]. Yinping Zhang,Xin Yang,Xiaoran Li,Zhenwei Wang,Hua Zhou,Jiasheng Wang. 2023

[5]Measurement of the seed spacing uniformity of a seed-metering device as a function of the positive pressure inlet structural parameters based on CFD-DEM. Dandan Han,Tingyi Mo,Yunxia Wang,You Xu,Lijia Xu. 2025

[6]Seeding uniformity measurement and CFD-DEM coupling analysis on the structural features of the seed-guiding tube. Han, Dan-Dan,Liu, Lei,Wang, Yun-Xia,Xu, Li-Lia,Wu, Zhi-Jun,Wang, Yu-Chao,Xu, You. 2025

[7]Genome-Wide Analysis Of The Myb-Cc G.ene Family Of Maize. Li, Rui,Su, Liang,Sun, Fengjie,Wang, Minglei,Bai, Jianrong,Caetano-Anolles, Gustavo. 2019

[8]Genome-Wide Association Study And Genomic P.rediction Analyses Of Drought S tress Tolerance In China In A Collection Of Off-Pvp Maize Inbred Lines. Liang, Xiaoling,Wang, Nan,Weng, Jianfeng,Nair, Sudha,Zhang, Degui,Yang, Jie,Li, Xinhai,Liu, Bojuan,Song, Jie,Zhang, Xuecai,Hao, Zhuanfang,San Vicente, Felix,Yong, Hongjun,Li, Mingshun,Zhou, Yueheng. 2019

[9]Transcriptomic Analysis Of Long Non-Coding R.nas And Coding Genes U ncovers A Complex Regulatory Network That Is Involved In Maize Seed Development. Xu, Miaoyun,Wang, Lei,Zhu, Ming,Zhu, Ming,Zhang, Min,Jiang, Haiyang,Xing, Lijuan,Li, Wenzong. 2017

[10]Dissecting The Genetic Basis Underlying C.ombining Ability Of Plant H eight Related Traits In Maize. Wang, Liwei,Wang, Liwei,Hao, Zhuanfang,Zhu, Hanyong,Zhou, Zhiqiang,Lu, Xiaohuan,Li, Mingshun,Zhang, Degui,Zhu, Hanyong,Yong, Hongjun,Li, Xinhai,Weng, Jianfeng,Zhang, Chaoshu. 2018

[11]First Report Of Maize Ear R.ot Caused By Fusarium S acchari In China. Wang, B. B.,Tang, Z. L.,Duan, C. X.,Du, Q.,Li, S. C.. 2019

[12]Genome-Wide Association Mapping And Genomic P.rediction Analyses Reveal The G enetic Architecture Of Grain Yield And Flowering Time Under Drought And Heat Stress Conditions In Maize. Magorokosho, Cosmos,Hao, Zhuanfang,Makumbi, Dan,Liu, Yubo,Lu, Yanli,Gowda, Manje,Olsen, Michael S.,Cairns, Jill E.,Babu, Raman,Babu, Raman,Wang, Nan,Wang, Nan,Zhang, Xuecai,Prasanna, Boddupalli M.,San Vicente, Felix,Yuan, Yibing,Lu, Yanli,Yuan, Yibing,Yuan, Yibing,Zhang, Ao. 2019

[13]Qnclb7.02, A Novel Qtl For R.esistance To Northern Corn L eaf Blight In Maize. Li, Xinhai,Zhang, Chaoshu,Hao, Zhuanfang,Weng, Jianfeng,Zheng, Lei,Tian, Ran,Zhou, Zhiqiang,Zhang, Chaoshu,Li, Mingshun,Lu, Xiaohuan,Yang, Jing,Xu, Zhennan,Yong, Hongjun,Zhang, Degui,Wang, Jianjun,Xu, Zhennan. 2018

[14]The Synergistic Priming Effect Of E.xogenous Salicylic Acid And H 2O2 On Chilling Tolerance Enhancement During Maize (Zea Mays L.) Seed Germination. Hu, Weimin,Huang, Yutao,Luo, Ying,Hu, Jin,Guan, Yajing,Sheteiwy, Mohamed S.,Xu, Jungui,Li, Zhan,Sheteiwy, Mohamed S.,Guo, Genyuan,Wang, Chun,Gao, Yue. 2017

[15]Growth Dynamics Of Maize (Zea M.ays L.) And Weeds I n Response To Different Nitrogen Levels And Weeding Intervals. Wei, Shouhui,Saeed, Muhammad,Huang, Zhaofeng,Huang, Hongjuan,Khattak, Mansoor Khan,Saeed, Muhammad,Zhang, Chaoxian,Alf, Murad. 2018

[16]Gene-Indexed Mutations In Maize .. Yang, Qun,Zhang, Chunyi,Ren, Wen,Zhao, Jun,Wang, Haiyang,Wang, Lei,Zhao, Jiuran,Lang, Zhihong,Chai, Zhenguang,Fan, Yunliu,Lu, Xiaoduo,Chen, Rumei,Lu, Xiaoduo,Liu, Jisheng. 2018

[17]Transcriptome And Gwas Analyses Reveal Candidate Gene For Seminal Root Length Of Maize Seedlings Under Drought Stress. Wang, Tianyu,Guo, Jian,Yang, Deguang,Li, Yongxiang,Song, Yanchun,Shi, Yunsu,Zhang, Dengfeng,Li, Chunhui,Li, Yu,Zhang, Xiaoqiong. 2020

[18]Spatio-Temporal Transcriptional Dynamics Of Maize L.ong Non-Coding Rnas Responsive T o Drought Stress. Zhao, Jun,Zhang, Xia,Pang, Junling,Ma, Xuhui. 2019

[19]Effects of nitric oxide on some physiological characteristics of maize seedlings under waterlogging. Wang, Ben,Li, Cuihua,Zhu, Yong,Tian, Xiaohai,Zou, Huawen,Liu, Hongfang,Ma, Guohui. 2011

[20]EFFECT OF FARMLAND SURFACE COVERED POROUS MULCH MATERIALS ON SOIL WATER, HEAT AND WATER USE EFFICIENCY OF MAIZE. Feng, L. S.,Sun, Z. X.,Zheng, J. M.,Yang, N.,Bai, W.,Feng, C.,Yan, C. R.,Zheng, M. Z.. 2015

作者其他论文 更多>>