Design and Experiment of Chinese Cabbage Seed Threshing Device Combined with Elastic Short-rasp-bar Tooth

被引:0
|
作者
Wang S. [1 ]
Lu M. [1 ]
Hu J. [2 ]
Chen P. [1 ]
Ji J. [1 ]
Wang F. [1 ]
机构
[1] College of Agricultural Equipment Engineering, Henan University of Science and Technology, Luoyang
[2] College of Agricultural Engineering, Jiangsu University, Zhenjiang
关键词
Chinese cabbage seed; Elastic short-rasp-bar tooth; Flexible round head spike; Threshing device;
D O I
10.6041/j.issn.1000-1298.2021.11.009
中图分类号
学科分类号
摘要
The Chinese cabbage seed market is developing rapidly, and the demand for mechanized harvest is increasing day by day due to the large area and industrial planting. Aiming at the technical problems of low efficiency of artificial harvest and high seed breaking rate by conventional threshing method, a threshing device for Chinese cabbage seed was designed, which was composed of threshing elements such as elastic short-rasp-bar tooth, flexible round head spike tooth and circular tube concave plate. The finite element modal analysis of threshing cylinder was carried out with ANSYS Workbench, and the rationality of structure of threshing cylinder was verified. The feeding amount, cylinder speed and threshing clearance were selected as experimental factors, and the response surface optimization and field comparison experiments were carried out based on the experimental indicators of seed loss rate and breaking rate. Through experiments, the mathematical model between each experiment factor and experiment index was established, the influence of each factor on the index was analyzed, and the structure and working parameters of the device were optimized. The experimental results showed that when the cylinder speed was 726 r/min, the threshing clearance was 22.3 mm, and the feeding amount was 1.73 kg/s, the seed loss rate was 0.68% and the breaking rate was 0.39%. The experimental results met the design requirements, and it can realize the mechanized threshing operation of Chinese cabbage seeds with a low breaking rate during the harvest period. © 2021, Chinese Society of Agricultural Machinery. All right reserved.
引用
收藏
页码:86 / 94
页数:8
相关论文
共 27 条
  • [1] CHEN Lin, ZHANG Jie, XUE Yihua, Et al., Purity identification of hybrid 'Qiubai75' (Brassica campestris) with SSR markers [J], Molecular Plant Breeding Print, 17, 19, pp. 6378-6382, (2019)
  • [2] SHI Zengxiang, WU Mingliang, YANG Wenmin, Et al., Research status and development measures of rape segment harvester in China, Agricultural Engineering, 5, 5, pp. 1-4, (2015)
  • [3] WU Chongyou, XIAO Shengyuan, JIN Mei, Comparation on rape combine harvesting and two-stage harvesting[J], Transactions of the CSAE, 30, 17, pp. 10-16, (2014)
  • [4] PETKEVICHIUS S, SHPOKAS L, KUTZBACH H D., Investigation of the maize ear threshing process[J], Biosystems Engineering, 99, 4, pp. 532-539, (2008)
  • [5] SHI Qingxiang, LIU Shiduo, JI Jiangtao, Et al., Studies on the mechanism of speed controlled feeding and soft threshing, Transactions of the CSAE, 12, 2, pp. 173-176, (1996)
  • [6] XIE Fangping, LUO Xiwen, LU Xiangyang, Et al., Threshing principle of flexible pole-teeth roller for paddy rice[J], Transactions of the CSAE, 25, 8, pp. 110-114, (2009)
  • [7] REN Shuguang, XIE Fangping, LUO Xiwen, Et al., Analysis and test of power consumption in paddy threshing using flexible and rigid teeth, Transactions of the CSAE, 29, 5, pp. 12-18, (2013)
  • [8] CHEN Meizhou, XU Guangfei, WANG Chuanxu, Et al., Design and experiment of roller-type combined longitudinal axial flow flexible threshing and separating device for corn[J/OL], Transactions of the Chinese Society for Agricultural Machinery, 51, 10, pp. 123-131, (2020)
  • [9] DI Zhifeng, CUI Zhongkai, ZHANG Hua, Et al., Design and experiment of rasp bar and nail tooth combined axial flow corn threshing cylinder[J], Transactions of the CSAE, 34, 1, pp. 28-34, (2018)
  • [10] GENG Duanyang, HE Ke, WANG Qian, Et al., Design and experiment on transverse axial flow flexible threshing device for corn[J/OL], Transactions of the Chinese Society for Agricultural Machinery, 50, 3, pp. 101-108, (2019)