Design and experiment of a six-row air-blowing centralized precision seed-metering device for Panax notoginseng
Abstract
Keywords: Panax notoginseng, air blowing, seed-metering device, optimization design, air distribution mechanism
DOI: 10.25165/j.ijabe.20201302.5161
Citation: Lai Q H, Sun K, Yu Q X, Qin W. Design and experiment of a six-row air-blowing centralized precision seed-metering device for Panax notoginseng. Int J Agric & Biol Eng, 2020; 13(2): 111–122.
Keywords
Full Text:
PDFReferences
Mao X, Yi S J, Tao G X, Y ang L, Liu H Y, Ma Y C. Experimental study on seed-filling performance of maize bowl-tray precision seeder. Int J Agric & Biol Eng, 2015; 8(2): 31–38.
Yin H Y. Research on the development of domestic and foreign pneumatic seed sowing device. Agricultural Science & Technology and Equipment, 2013; 230(8): 25–26. (in Chinese)
Zhang Z P, Ma C L, Zuo C C. The Development of the seed-metering device for precision planter and its theoretical study. Journal of Jilin University of Technology, 1995; 4: 112–117. (in Chinese)
ArzuYazgi, Adnan Daegirmencioglu. Optimisation of the seed spacing uniformity performance of a vacuum-type precision seeder using response surface methodology. Biosystems Engineering, 2007; 97(3): 347–356.
Yazgi A, Daegirmencioglu A. Measurement of seed spacing uniformity performance of a precision metering unit as function of the number of holes on vacuum plate. Measurement, 2014; 56(10): 128–135.
Zulin Z, Upadhvava S K, Shafii S, Garrett R E. Hydropneumatic seeder for primed seed. Tua-nsactions of the ASABE, 1998; 41(2): 307–314.
Jia H L, Chen Y L, Zhao J L, Guo M Z, Huang D Y, Zhang J. Design and key parameter optimization of an agitated soybean seed metering device with horizontal seed filling. Int J Agric & Biol Eng, 2018; 11(2): 76–87.
Singh R C, Singh G, Saraswat D C. Optimization of design and operational parameters of a pneumatic seed metering device for planting cottonseeds. Biosystems Engineering, 2005; 92(4): 429–438.
Yang S H, Sun Y J, Ma C L, Zhao H L. Optimization of parameters of air-blowing vertical-rotor type precision seed-metering device. Transactions of the CSAE, 2008; 24(2): 116–120. (in Chinese)
Ma C L, Li S W. Study on improving the filling speed limit of gas blower. Journal of Jilin University of Technology, 1981; 3: 28–37. (in Chinese)
Hu S R, Ma C L, Li H Z, Li S W. Study on the influence of discharge frequency and air velocity of air-blowing seed meter on seed quality. Journal of Jilin University of Technology, 1981; 4: 26–35. (in Chinese)
Hu S R, Ma C L, Li H Z, Li S W. Study on influence of structural parameters of cone hole of air blowing type meter on seed quality. Transactions of the CSAM, 1981; 3: 21–31. (in Chinese)
Sun Y J, Ma C L, Zhang Z Y. Parameters optimization of precision seed-metering device based on uniform design. Journal of Jilin University (Engineering and Technology Edition), 2004; 4: 569–572. (in Chinese)
Chen Z R, Yu J Q, Xue D M, Wang Y, Zhang Q, Ren L Q. An approach to and validation of maize-seed-assembly modelling based on the discrete element method. Powder Technololgy, 2018; 328(4): 167–183.
Thang C Z, Xiang W B, Xie F P. Experimental study on the air-blown hybrid rice precision seeding device hole type. Transactions of the CSAE, 1999; 15(1): 241–243.
Liu J, Cui T, Zhang D X, Huang S L, Shi S. Experimental study on pressure of air-blowing precision seed-metering device. Transactions of the CSAE, 2011; 27(12): 18–22. (in Chinese)
Y u J J, Liao Y T, Cong J L, Y ang S, Liao Q X. Simulation analysis and match experiment on negative and positive pressures of pneumatic precision metering device for rapeseed. Int J Agric & Biol Eng, 2014; 7(3): 1–12.
Li M, Liu X H, Liao Y T, Liao Q X. Pneumatic cylinder-type centralized precision metering device for rapeseed. Transactions of the CSAM, 2013; 44(12): 68–73. (in Chinese)
Li M, Liao Q X, Liao Y T, Shu C X, Li L. Analysis on seeding process of pneumatic cylinder-type centralized rapeseed precision metering device. Transactions of the CSAE, 2014; 30(23): 17–27. (in Chinese)
Lai Q H, Cao X L, Yu Q X, Sun K, Qin W. Design and experiment of precision seeding device for hole-dropplanter for panax notoginseng. Transactions of the CSAM, 2019; 50(1): 85–95. (in Chinese)
Yin X W, Yang L, Zhang D X, Cui T, Han D D, Zhang T L. Design and experiment of balanceand low-loss air allotter in air pressure maize precision planter. Transactions of the CSAE, 2016; 32(19): 9–17. (in Chinese)
Zhang Z S. Fluid mechanics (The Third Edition). Tsinghua University Press, 2015; pp.108–120.
Zhang B P. Design principle of seeding machinery. China Machine Press, 1982. (in Chinese)
Chen Z, Handbook of agricultural machinery design. China Agricultural Science and Technology Publishing House, 2007. (in Chinese)
Ren C, Gao X J, Su W, Wang Z Y, Lai Q H. Experimental study on physical and mechanical characteristicsof Panax notoginseng seeds. Journal of Hunan Agricultural University (Natural Sciences), 2015; 41(1): 109–112. (in Chinese)
Xing H, Wang Z M, Luo X W, Zang Y, Yang W W, Zhang M H. Design of an active seed throwing and cleaning unit for pneumatic rice seed metering device. Int J Agric & Biol Eng, 2018; 11(2): 62–69.
Li J H. Multi-scale simulation of particle-fliud complex systems. Science Publishing Company, 2005. (in Chinese)
Han D D, Zhang D X, Jing H R, Yang L, Cui T, Ding Y Q. DEM-CFD coupling simulation and optimization of an inside-filling air-blowing maize precision seed-metering device. Computers and Electronics in Agriculture, 2018; 150(6): 426–438.
GB/T 6973-2005 single (precise) test method. National Standards of the People’s Republic of China. (in Chinese).
Zhao X M. Test design method. Science Publishing Company, 2006. (in Chinese)
Copyright (c) 2020 International Journal of Agricultural and Biological Engineering
This work is licensed under a Creative Commons Attribution 4.0 International License.