Adaptabilities of different harvesters to peanut plants after cutting stalks
Abstract
Keywords: agricultural machinery, peanut, peanut harvesting after cutting stalks, peanut combine harvester, peanut picker, adaptability research
DOI: 10.25165/j.ijabe.20221502.6515
Citation: Chen Y Q, Wang G P, Wang J T, Zhang P, Wang B, Hu Z C. Adaptabilities of different harvesters to peanut plants after cutting stalks. Int J Agric & Biol Eng, 2022; 15(2): 93–101.
Keywords
Full Text:
PDFReferences
Food and agriculture organization of the United Nations. Statistical database. http://faostat3.fao.org. Accessed on [2020-12-20]
Bi C H, Chi S Y, Hua Z, Li D, Huang Z G, Liu Y. Rheological properties and fractal-rheology analysis of peanut protein isolate suspension. Int J Agric & Biol Eng, 2020; 13(6): 220–226.
Yan J C, Xie H X, Wei H, Wu H C, You Z Y. Optimizing the drying parameters of a fixed bed with reversing ventilation for peanut using computer simulation. Int J Agric & Biol Eng, 2021; 14(5): 255–266.
Gao L X, Chen Z Y, Chen C, Butts C L. Development course of peanut harvest mechanization technology of the United States and enlightenment to China. Transactions of the CSAE, 2017; 33(12): 1–9. (in Chinese)
Chen Z Y, Gao L X, Chen C, Butts C L. Analysis on technology status and development of peanut harvest mechanization of China and the United States. Transactions of the CSAM, 2017; 48(4): 1–21. (in Chinese)
Xu H B, Hu Z C, Wu F, Gu F W, Wei H, Yan J C. Design and experiment of network chain type residual plastic film collector for peanut field. Transactions of the CSAE, 2017; 33(17): 1–9. (in Chinese)
Zhang D, Hu W L, Liu H B, Du L F, Xu Y, Cheng Z H, et al. Characteristics of residual mulching film and residual coefficient of typical crops in North China. Transactions of the CSAE, 2016; 32(3): 1–5. (in Chinese)
Yan C R, He W Q, Mei X R, et al. (Eds) Agricultural application of plastic film and its residual pollution prevention. Beijing: Science Press, 2015; pp.16, 279p. (in Chinese)
Wang X Y, Xue S, Xie G H. Value-taking for residue factor as a parameter to assess the field residue of field crops. Journal of China Agriculture University, 2012; 17(1): 1–8. (in Chinese)
Zhao X W, Bu D P, Liu Q S, Yang G, Zhang P H. Application of silage peanut vine in feed. China Feed, 2019; 9: 30–32. (in Chinese)
Liu J C, Zhang M, Liu J, Liu J N. The utilization status of peanut stalk in livestock and poultry production and its biological fermentation technology. China Feed, 2017; 20: 36–38. (in Chinese)
Xu H B, Zhang P, Hu Z C, Mao E R, Yan J C, Yang H G. Analysis of dust diffusion from a self-propelled peanut combine using computational fluid dynamics. Biosystems Engineering, 2022; 215: 104-114.
Zhang P, Xu H B, Hu Z C, Chen Y Q, Cao M Z, Yu Z Y, et al. Characteristics of agricultural dust emissions from harvesting operations: case study of a whole-feed peanut combine. Agriculture, 2021; 11: 1068. https://doi.org/10.3390/agriculture11111068.
Chen Y Q, Hu Z C, Wang G P, Wang B K, Wu F, Gu F W, et al. Cutting and throwing device for self-propelled intelligent peanut stalk harvester and peanut stalk harvesting method: China, ZL202110076224.0. 2022-02-16. (in Chinese)
Cao M Z, Hu Z C, Zhang P, Yu Z Y, Ye J F, Wang S Y. Experimental study on the key technology of full-feeding peanut picking by tangential flow method. International Agriculture Engineering Journal, 2019; 28(4): 66–74.
Wang B, Zhang Y H, Peng B L, Wu H C, Chen Y Q, Hu Z C. Parameters optimization on pod-picking device of peanut semi-feeding four rows combine harvester. International Agriculture Engineering Journal, 2018; 27(3): 107–115.
Chen Z Y, Guan M, Gao L X, Chen L J, Ma F, Dong H S. Design and test on axial flow peanut picking device with screw bending-tooth. Transactions of the CSAM, 2016; 47(11): 106–113. (in Chinese)
Guan M, Chen Z Y, Gao L X, Liu Z X, Cheng J, Zhang X D. Multifunctional modular full-feeding peanut picking testing device. Transactions of the CSAM, 2015; 46(11): 88–94. (in Chinese)
Wang D W, Shang S Q, Han K. Design and test of 4HJL-2 harvester for peanut picking-up and fruit-picking. Transactions of the CSAE, 2013; 29(11): 27–36. (in Chinese)
Wang S Y, Hu Z C, Xu H B, Cao M Z, Yu Z Y, Peng B L. Development of pickup and conveyor device for full-feed peanut pickup harvester. Transactions of the CSAE, 2019; 35(19): 20–28. (in Chinese)
Wang S Y, Hu Z C, Wu F, Yu Z Y, Cao M Z, Gao X M. Modeling and experiment of feeding rate for full-feed peanut pickup harvester. Transactions of the CSAE, 2019; 35(23): 29–36. (in Chinese)
Yuan P F, Han J G. Picking mechanism development of 4HLZ-130 intelligent self-propelled peanut combine harvester. Agricultural Development & Equipment, 2019; 3: 93–94. (in Chinese)
Xu N, Shang S Q, Wang D W, He X N, Gao Z, Liu J Q, et al. Design and research of spike tooth type peanut picking device with longitudinal axial flow. Agricultural Mechanization Research, 2020; 8: 197–201. (in Chinese)
Shang S Q, Li G Y, Yang R B, Sun T Z, Wang Y Y, Lian Z G. Development of 4HQL-2 type whole-feed peanut combine. Transactions of the CSAE, 2009; 25(6): 125–130. (in Chinese)
Zhou D H, Hu Z C, Yu Z Y, Wang B, Cao M Z, Wang S Y. Application situation and development route of the full-feeding peanut stripper. Journal of Agricultural Mechanization Research, 2017; 2: 246–252. (in Chinese)
Zhang X Y, Han S Y, Liu H, Tang F S, Dong W Z, Xu J, et al. Physiological parameters of high yielding peanut cultivars. Chinese Journal of Oil Crop Sciences, 2011; 33(1): 44–47. (in Chinese)
GB/T 5262-2008. Measuring methods for agricultural machinery testing conditions-General rules. General Administration of Quality Supervision, Inspection and Quarantine of China, Standardization Administration of China, 2008. (in Chinese)
NY/T 502-2016 Operating quality for peanut harvesters. Ministry of Agriculture of China, 2016. (in Chinese)
NY/T 993-2006 Operating quality for peanut pickers. Ministry of Agriculture of China, 2006. (in Chinese)
Nuti R C, Holbrook C C, Culbreath A. Peanut peg strength and post harvest pod scavenging for full phenotypic yield over digging date and variety. American peanut research and education society, APRES 2010; 42: 95–96.
Wang C T, Wang Z W, Wang X Z, Wu Q, Tang Y Y, Du Z B, et al. Evaluation of different peanut genotypes for mechanized harvest properties. Journal of Peanut Science, 2019; 48(1): 52–57. (in Chinese)
Yu Z Y, Hu Z C, Cao M Z, Wang S Y, Zhang P, Peng B L. Design of cleaning device of tangential flow and whole-feed peanut combine harvester. Transactions of the CSAE, 2019; 35(9): 29–37. (in Chinese)
Wang B, Hu Z C, Peng B L, Zhang Y H, Gu F W, Shi L L, et al. Structure operation parameter optimization for elastic steel pole oscillating screen of semi-feeding four rows peanut combine harvester. Transactions of the CSAE, 2017; 33(21): 20–28. (in Chinese)
Zhang X Y, Tang F S, Dong W Z. High-yield cultivation techniques of high-quality peanuts. Zhengzhou: Zhongyuan Farmers Press, 2008; pp: 56–71. (in Chinese)
National Bureau of Statistics of China. China Statistical Yearbook. http://www.stats.gov.cn/tjsj/ndsj/2021/indexch.htm. Accessed on [2022-02-11]
Copyright (c) 2022 International Journal of Agricultural and Biological Engineering
This work is licensed under a Creative Commons Attribution 4.0 International License.