Design and optimization of segmented threshing device of combine harvester for rice and wheat

被引:0
作者
Teng Y. [1 ]
Jin C. [1 ,2 ]
Chen Y. [1 ]
Liu P. [1 ]
Yin X. [1 ]
Wang T. [1 ]
Yu K. [1 ]
机构
[1] School of Agricultural Engineering and Food Science, Shandong University of Technology, Zibo
[2] Nanjing Institute of Agricultural Mechanization, Ministry of Agriculture and Rural Affairs, Nanjing
来源
Nongye Gongcheng Xuebao/Transactions of the Chinese Society of Agricultural Engineering | 2020年 / 36卷 / 12期
关键词
Agricultural machinery; Combine harvester for rice and wheat; Crushing rate; Design; Hreshing device; Impurity rate; Loss rate; Optimization; Working parameter;
D O I
10.11975/j.issn.1002-6819.2020.12.001
中图分类号
学科分类号
摘要
To solve the problems of low removal rate and incomplete separation for the current longitudinal-axial-flow combined harvester in the case of harvesting rice and wheat, a segmented longitudinal-axial-flow threshing device was designed in this paper. The threshing device mainly comprised a tapered threshing roller, a concave sieve with adjustable threshing strength, a 360° separation device and an electric control system for operating parameters. Through the single factor tests, the optimal switching states of the concave sieve with adjustable threshing strength for rice and wheat threshing was obtained respectively. In order to find out the influence rule of the working parameters of the device on the threshing effects and the optimal parameter combination, the multi-objective optimization tests were carried out. The rotational speed of roller, the angle of deflector, the threshing gap of concave sieve, the separation gap of concave sieve and the feeding rate were selected as the influence factors and the crushing rate, impurity rate and loss rate were selected as the test indexes. The test results showed that the significant sequence of influence of threshing parameters on the crushing rate was the rotational speed of roller, the threshing gap of concave sieve, the angle of deflector, the feeding rate, the separation gap of concave sieve. The significant sequence of influence of threshing parameters on impurity rate was the rotational speed of roller, the angle of deflector, the threshing gap of concave sieve, the feeding rate, the separation gap of concave sieve. The significant sequence of influence of threshing parameters on loss rate was the rotational speed of roller, the angle of deflector, the threshing gap of concave sieve, the feeding rate, the separation gap of concave sieve. Through multi-objective parameter optimization analysis, the optimal working parameters combination for wheat threshing were determined that the rotational speed of roller was 905 r/min, the angle of deflector was 69°, the threshing gap of concave sieve was 18 mm, the separation gap of concave sieve was 19 mm and the feeding rate was 4 kg/s. The field verification tests were carried out using the optimal working parameters combination. The results indicated that the crushing rate was reduced from 1. 46% to 1. 00%, the impurity rate was reduced from 1.85% to 1.43% and the loss rate was reduced from 1.72% to 1.20% compared with the conventional longitudinal-axial-flow threshing device. All the relative errors between the measured values and the optimized values were less than 5%, the working indicators met the requirements of relevant national standards. The device effectively solved the problems of high crushing rate, unclean threshing and incomplete separation, the research results can provide reference for the structural improvement and operation parameters optimization of the threshing device of longitudinal-axial-flow combined harvester. © 2020, Editorial Department of the Transactions of the Chinese Society of Agricultural Engineering. All right reserved.
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收藏
页码:1 / 12
页数:11
相关论文
共 32 条
[1]  
Chen Jin, Wang Shuqing, Chen Hong, Et al., Design and test of header parameter keys electric control adjusting device for rice and wheat combined harvester, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 34, 16, pp. 19-26, (2018)
[2]  
Yang Liquan, Wang Wanzhang, Zang Hongmei, Et al., Improved design and bench test based on tangential flow-transverse axial flow threshing system, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 34, 1, pp. 35-43, (2018)
[3]  
Yi Shujuan, Tao Guixiang, Mao Xin, Dynamic simulation of assembled axial flow threshing and separating device, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 25, 7, pp. 94-97, (2009)
[4]  
Tang Zhong, He Junzeng, Zhou Yuepeng, Et al., Test and analysis of best parameter of transverse multi-cylinder device, Journal of Agricultural Mechanization Research, 2, pp. 153-157, (2017)
[5]  
Miu P I, Kutzbach H D., Modeling and simulation of grain threshing and separation in axial threshing units-Part II, Computers and Electronics in Agriculture, 60, 1, pp. 105-109, (2008)
[6]  
Petre I M., Combine Harvesters Theory, Modeling and Design, (2016)
[7]  
Qian Xiaosheng, Kang Jie, Design of load monitoring system of electric threshing cylinder for small-sized harvester, Journal of Agricultural Mechanization Research, 41, 3, pp. 194-198, (2019)
[8]  
1
[9]  
Miu P I, Beck F, Kutzbach H D., Mathematical modeling of threshing and separating process in axial threshing units, ASAE, pp. 97-106, (1997)
[10]  
Kutzbach H D., Modeling and simulation of grain threshing and separation in threshing units-Part I, Computer and Electronics in Agriculture, 60, 1, pp. 96-104, (2008)