Design and experiments of 4CJ-1200 self-propelled tea plucking machine

Yu Han, Hongru Xiao, Zhiyu Song, Qiaomin Chen, Wenqin Ding, Song Mei

Abstract


As agricultural labor is decreasing, famous tea production is nearly hard to sustain and is getting more and more expensive in China. To improve the mechanization of tea plucking, this paper designs a self-propelled track-type tea plucking machine that integrates mechanic, hydraulic and electronics. The main parameters of chassis were optimized based on conditions of tea garden. And, three different kinds of cutter blades were designed and analyzed about vibration performance with finite element software. Also, a rigid-flex mixed motion model was established. Based on the model and plots, it is explicit that: 1) the blades move in a sine law; 2) the blades take a symmetrical deform from middle to end while moving; 3) the deformation increases along the blade from the center to sides. The single factor experiment revealed that both travel speed and speed ratio of cutting and travelling had a significant effect on quality indexes (integrity rate, unpicking rate, stubble unevenness) of plucked tea leaf. By universal rotary combination experiment of quadratic regression, the regression equations of three indexes about two experimental factors were established. And, the comprehensive optimization of three indexes was conducted with software Design expert. The optimal operating parameters of machine are as follow: travel speed is 0.41 m/s, speed ratio of cutting and travelling is 1.06; prediction of three indexes are that integrity rate could be reach to 78.26%, unpicking rate reduced to 0.82%, stubble unevenness reduced to 1.30 mm. The results of verification experiment are that: integrity rate could be reach to 77.41%, unpicking rate reduced to 0.87%, stubble unevenness reduced to 1.23 mm. These test indexes that are very close to the predicted values, all surpass the requests specified in the standard of tea plucking with machine. In all, the optimized parameter set is indeed synthetically optimal one that enables the wide use of this tea plucking machine, which can be used in the tea garden that has a lengthways slope less than 18°, a crosswise slope less than 20°, and a height of tea trees between 50-120 cm. From above, the tea plucking machine investigated in this paper provides an effective solution to present tea picking problem that is the bottleneck of tea industry. Further studies need to do for making this machine more automated and intelligent.
Keywords: agricultural machine, tea, harvesting, reciprocating cutter, model, design, experiment, optimization
DOI: 10.25165/j.ijabe.20211406.5519

Citation: Han Y, Xiao H R, Song Z Y, Chen Q M, Ding W Q, Mei S. Design and experiments of 4CJ-1200 self-propelled tea plucking machine. Int J Agric & Biol Eng, 2021; 14(6): 75–84.

Keywords


agricultural machine, tea, harvesting, reciprocating cutter, model, design, experiment, optimization

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References


Xiao H R, Qin G M, Song Z Y. Study of development strategy to mechanization of tea producing. China Tea, 2011; 7: 8–11. (in Chinese)

Cao W C, Xue Y F, Zhou J G. Study on shearing properties of tea shoot. Journal of Zhejiang Agricultural University, 1995; 21(1): 11–16. (in Chinese)

Lin Y P, Jin X Y, Hao Z L Ye N X, Huang Y B, Tang H Y. Experiment on mechanical properties and crude fiber of tea leaf. Journal of Tea Science, 2013; 33(4): 364–369. (in Chinese)

Bai Q H. Test and study for the cutter of reciprocating-cutting tea-leaf picking machine. Journal of Anhui Institute of Technology, 1985; 15(2): 14–16. (in Chinese)

Jian Y G. Optimum design of tea-leaf picker’s cutter system. Journal of Anhui Institute of Technology, 1986; 6(2): 45–47. (in Chinese)

Jin X Y. The optimum velocity of knife and machine of tea plucker and tea pruning machine. Journal of Fujian Agriculture University (Natural Sciences Edition), 1993; 22(4): 470–475. (in Chinese)

Li C H, Gu Q L, He L. Portable double rotary tealeaves plucking machine motion analysis. Research on Agriculture Mechanization, 2011; 35(9): 46–55. (in Chinese)

Terada J.C. Traveling type tea leaf plucking machine. Japan Patent: No. JP2008301831, 2008-12-18.

Terada J. Raveling type tea-leaf plucking machine for sweeping dew. JP2010148519. 2010-07-08.

Sone T. Riding type tea leaf plucking machine. Japan Patent: No. JP2017176022, 2017-10-05.

Yukimaru S. Plucking device of riding type tea leaf plucking machine. Japan Patent: No. JP2016059356, 2016-04-25.

Wu X K. Design and experimental study on self-propelled tea plucking machine. Hefei: Anhui Agricultural University, 2017. (in Chinese)

Xiao H R, Quan Q A. Research on technology and equipment for mechanization of tea garden’s working. Beijing: China Agricultural Science and Technology Press, 2012; pp.207–208. (in Chinese)

Xiao H R, Qin G M, Song Z Y, Ding W Q, Han Y. The elevator of tea plucking machine. China Patent, CN 202998865U[P]. 2012-10-19. (in Chinese)

Han Y, Xiao H R, Qin G M, Song Z Y, Ding W Q, Zhao Y. Latest research situations and trends about tea garden machinery in China. Journal of Chinese Agricultural Mechanization, 2013; 34(3): 13–16. (in Chinese)

Wang Z Y, Xiao H R, Ding W M, Qin G M, Song W D, Zhong C Y. Hydraulic system design of chansono walk chassis. Journal of Chinese Agriculture Mechanization, 2010; 5: 72–75 . (in Chinese)

Wu Y P, Yao H X. Engineering machinery design. Beijing: China Communications Press, 2004; pp.176–178. (in Chinese)

Liu W. Research and design of four-tracked cobalt crust mining vehicle chassis for cobalt crusts in the deep sea. Changsha: Changsha Institute of Mining Research, 2018. (in Chinese)

Jiang X. Research on structural design and vibration characteristics of inspection robot chassis. Hefei: Anhui University of Science and Engineering, 2018. (in Chinese)

[20] Chinese Academy of Agricultural Machinery Sciences. Agricultural machinery design manual (Part II). Beijing: China Agricultural Science and Technology Press, 2007; pp.877–959. (in Chinese)

Li Y M, Sun P P, Pang J, Xu L Z. Finite element mode analysis and experiment of combine harvester chassis. Transactions of the CSAE, 2013; 29(3): 38–46. (in Chinese)

Li Q L, Chen C Y, Ma C Z. Finite element analysis on the modal of the frame of cutting table on 4LYZ-2 rape combine harvester. Transactions of CSAM, 2005; 36(1): 54–56. (in Chinese)

Quan L Z, Tong J, Zeng B G, Chen D H. Finite element mode analysis and experiment of corn stubble harvester. Transactions of the CSAE, 2011; 27(11): 15–20. (in Chinese)

Chen S R, Han H G, Lu Qi. Modal analysis of header for type 4LZ-2.0 combine harvester. Transactions of the CSAM, 2012; 43(Z1): 90–94. (in Chinese)

Li X H, Shen B, Cai Y X, Jiang Y, Zhang K. Model correlation between calculated and experimental mode of 4105 diesel engine crankshaft. Transactions of the CSAE, 2011; 27(11): 51–55. (in Chinese)

Zhang Q, Wang Y, Li B Q, Tian Y. Vibration analysis of a three-drum shearer for a large mining height. Strength of Materials, 2020; 52(2): 160–170.

Sun W, Li R, Jiang J X. Lumped-Parametric Modeling Based on Modal Test and Analysis of Vibration Characteristics of the Hard-Coated Blisk. Journal of Vibration Engineering & Technologies, 2019, 7(4): 347–358.

Farzad E, Mohammad R B. Hygro-thermal vibration analysis of bilayer graphene sheet system via nonlocal strain gradient plate theory. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2018, 40(9): 1–15.

Wang S Q, Peng P H, Yang Z, Ma Q, Zhang T. Coupling vibration analysis of passenger-vehicle-bridge system. Journal of Vibration Engineering, 2018; 31(1): 30–38. (in Chinese)

JB/T 6281.2—1992, Standards of machinery industry of the People's Republic of China-Test Method for Tea Plucking Machine. Beijing: China Machine Press, 1992. (in Chinese)

Gao X J, Zhou J H, Lai Q H. Design and experiment of pneumatic cylinder precision seed-metering device for panax notoginseng. Transactions of the CSAE, 2016; 32(2): 20–28. (in Chinese)

Xu L M, Chen J W, Wu G, Yuan Q C, Ma S, Yu C C. Design and operating parameter optimization of comb brush vibratory harvesting device for wolf berry. Transactions of the CSAE, 2018; 34(9): 79–81. (in Chinese)

Wang X Y, Liang J, Shang S Q, Jiang J T, Yang R B. Design and experiment of half feeding type peanut picker. Transactions of the CSAE, 2008; 24(9): 94–98. (in Chinese)

Wang W Z. Design and analysis of experiments. Beijing: High Education Press, 2011; pp. 9–22, 115–143. (in Chinese)

Zhou F J, Lu J, Du J X. Parameters optimization and experiment of corn-paper transplanting machine with seedling disk. Transactions of the CSAE, 2014; 30(1): 18–24. (in Chinese)

Tian S B, Yang J F, Wang, R L, Xu D L, Li T L. Optimization experiment of operating parameters on vibration sorting-clip. Transactions of the CSAE, 2014; 30(6): 9–16. (in Chinese)




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