Experiments and modeling of mechanism analysis of maize picking loss
Abstract
Keywords: maize picking harvest, kernel loss rate, ear loss rate, maize picking platform, response surface analysis
DOI: 10.25165/j.ijabe.20211401.5745
Citation: Zhang Z, Chi R J, Du Y F, Pan X, Dong N X, Xie B. Experiments and modeling of mechanism analysis of maize picking loss. Int J Agric & Biol Eng, 2021; 14(1): 11–19.
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USDA, 2017a. Economic Research Services outlook reports and data. https://www.ers.usda.gov/topics/crops/corn/background.aspx. Accessed on [2017-09-10]
Fang H M, Niu M M, Shi S, Liu H, Zhou J. Effect of harvesting methods and grain moisture content on maize harvesting quality. Transactions of the CSAE, 2019; 35(18): 11−18. (in Chinese)
Wang Y Z, Li L L, Gao S, Guo Y N, Zhang G Q, Ming B, et al. Evaluation of grain breakage sensitivity of maize varieties mechanically- harvested by combine harvester. Int J Agric & Biol Eng, 2020; 13(5): 8–16.
National Bureau of Statistics. China Statistical Yearbook. Beijing: China Statistical Press, 2017. (in Chinese)
Announcement of the national bureau of statistics on food production in 2017. National Bureau of Statistics of China, 2017. (in Chinese) http://wwwstatsgovcn/tjsj/zxfb/201712/t201712081561546html.
National grain production development plan (2006-2020). Ministry of Agriculture of the PRC, 2006. (in Chinese)
Aljalil H F, Marley S J, Chowdhury M H. Laboratory studies of a low-damage corn-shelling machine. Transactions of the ASAE, 1980; 23(2): 278−283.
Chen J, Lian Y, Zou R, Zhang S, Ning X B, Han M N. Real-time grain breakage sensing for rice combine harvesters using machine vision technology. Int J Agric & Biol Eng, 2020; 13(3): 194–199.
Yang L, Cui T, Qu Z, Li K H, Yin X W, Han D D, et al. Development and application of mechanized maize harvesters. Int J Agric & Biol Eng, 2016; 9(3): 15−28.
Hughes Company Inc. Husker rolls. US19990356146.2001-06-26, 2001.
Shito H. Maize harvesting machinery. Journal of South Asian and Middle Eastern Studies, 2003; 65(6): 4–8.
Anazodo U G N, Wall G L, Norris E R. Corn physical and mechanical properties as related to combine cylinder performance, Can. Agric. Eng, 1981; 23: 23−30.
Zhang M T. Theoretical analysis and imitation research of corn snapping bars. Master dissertation. Yangling: Northwest University of Agriculture and Forestry Science and Technology, 2008; 59p. (in Chinese).
Sun C, Yang B L, Gao Z J, Zheng Z A, Ni Z Q. Field investigation of ear-snapping process in corn mechanical harvesting. Journal of Chinese Agricultural Mechanization, 2014; 35(3): 15−18. (in Chinese)
Qin J H, Yin Y P, Liu Z Q, Du Y F, Wang G Y, Zhu Z X, et al. Optimisation of maize picking mechanism by simulation analysis and high-speed video experiments. Biosystems Engineering, 2020; 189: 84−98.
Zhou Q. Experimental study on the characteristics of corncob impact. Agricultural Science and Technology and Equipment, 2010; 4: 46−47. (in Chinese).
Li X P, Gao L X, Ma F L, Yu Y Z, Zhang Y L. Experimental research of corn seed kernel on the impacting damage. Journal of Shenyang Agricultural University, 2007; 38(1): 89−93. (in Chinese)
Li X P, Xiong S, Geng L X, Ji J T. Influence of water content on anti-pressing properties of corn ear. Transactions of the CSAE, 2018; 34(2): 25−31. (in Chinese)
Srivastava A K, Herum F L, Stevens K K. Impact parameters related to physical damage to corn kernel. Transactions of the ASABE, 1976; 19(6): 1147−1151.
Balastreire L A, Herum F L. Relaxation modulus for corn endosperm in bending. Transactions of the ASABE, 1978; 21(4): 767−772.
Xu L Z, Li Y M, Ding L F. Contacting mechanics analysis during impact process between rice and threshing component. Transactions of the CSAE, 2008; 24(6): 146−149. (in Chinese)
Wang X R, Li Y M, Xu L Z. Relationship between thresher velocities and rice grain broken rate. Transactions of the CSAE, 2007; 23(8): 16−19. (in Chinese)
Geng A J, Li R X, Liu S X, Zhang J, Zhao K W. Performance experiment of corn harvester header. Journal of Agricultural Machinery, 2013; 44(S2): 27−31. (in Chinese)
Ma X G, He J L, Zhao X Q, Wu Z M. Optimization experiment on rate of snapping loss and broken stalk about plate type header of corn harvester. Agricultural Engineering, 2015; 5(4): 15−18, 22. (in Chinese).
Fan G C, Wang H X, Ji J J, Cao W H, Liu H X, Hao J K, et al. Analysis of influence factor on seed damage rate and loss rate during picking corn-cob. Transactions of the CSAE, 2002; 18(4): 72−74. (in Chinese).
Voicu G, Cǎsǎndroiu T, Stan G. Using the dimensional analysis for a mathematical model to predict the seeds losses at the cleaning system of the cereals harvesting combines. U.P.B. Sci, 2007; 69: 29−39.
Glancey J L. Analysis of header loss from pod stripper combines in green peas. Journal of Agricultural Engineering Research, 1997; 68(1): 1−10.
Du Y F, Zhu Z X, Song Z H, Mao E R, Li F Q. Simulation of divider and snapping roll for small-scale corn harvester. Journal of Agricultural Machinery, 2012; 43(S1): 100−105. (in Chinese)
Mathanker S K, Hansen A C. Harvesting system design and performance. In: Shastri Y, Hansen A, Rodriguez L, Ting K (Ed.). Engineering and Science of Biomass Feedstock Production and Provision, New York: Springer, 2014; pp.85−139.
Zhang Z L. Design and experimental of a corn stripping mechanism. PhD dissertation. China Agricultural University, 2015; 108p. (in Chinese)
Zhu X X, Zhu G R. Strength of polymer materials. First edition, Hangzhou: Zhejiang University Press, 1992; pp.176-220. (in Chinese)
Wang X R. Mechanical properties of rice grain and threshing injury based on the energy conservation. PhD dissertation. Zhenjiang: Jiangsu University, 2007; 137p. (in Chinese)
Zhang Z L, Han Z D, Li X D, Hao F P, Han K L, Han L J. Optimization of parameters for stalk chopper of corn harvester for reaping both corn stalk and spike. Journal of Agricultural Machinery, 2018; 49(S1): 273−281. (in Chinese)
Quaye S A, Schertz C E. Corncob harvest with counter-rotating rollers. Transactions of the ASAE, 1983; 26(5): 1303−1307.
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