Fracture mechanism and separation conditions of pineapple fruit-stem and calibration of physical characteristic parameters
Abstract
Keywords: pineapple harvesting; fracture mechanism of fruit and stem; separation conditions; experiment design; reverse calibration
DOI: 10.25165/j.ijabe.20231605.8079
Citation: Li M T, He L, Yue D D, Wang B B, Li J L. Fracture mechanism and separation conditions of pineapple fruit-stem and calibration of physical characteristic parameters. Int J Agric & Biol Eng, 2023; 16(5): 248–259.
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CIGR Handbook of Agricultural Engineering, Vol. III Plant Production Engineering, Chapter 1 Machines for Crop Production, Parts 1.1.1–1.1.4 Human-Powered Tools and Machines. pp.1–22. Available online: https://elibrary.asabe.org/abstract.asp?aid=36337 Accessed on [2022-05-01]
Goren R. Anatomical, physiological, and hormonal aspects of abscission in citrus. Hortic. Rev, 2010; 15: 145–182.
Liu J Z, Li P, Li Z G, Mao H P. Experimental study on mechanical properties of tomatoes for robotic harvesting. Transactions of the CSAE, 2008; 24(12): 66–70.
Liu T H, Ehsani R, Toudeshki A, Zou X J, Wang H J. Experimental study of vibrational acceleration spread and comparison using three citrus canopy shaker shaking tines. Shock and Vibration, 2017; 2017: 1-9. doi: 10.1155/2017/9827926.
Bhat K, Chayalakshmi C L. Microcontroller-based semiautomated pineapple harvesting system. In International Conference on Mobile Computing and Sustainable Informatics; Springer, Cham, Switzerland, 2020; pp.383–392.
Liu J. Analysis on concentration and competitiveness of Xuwen pineapple industrial cluster. Chinese Journal of Tropical Agriculture, 2022; 42(9): 92-98.
Li M T, Chen H, Huang X H, Zhang Z Z, He L. Current status and development analysis of entire field mechanization of pineapple industry. International Agricultural Engineering Journal, 2019; 28(2): 46-54.
Liu T H, Liu W, Zeng T J, Qi L, Zhao W F, Cheng Y F, et al. Working principle and design of the multi-flexible fingered roller pineapple harvesting mechanism. Transactions of the CSAE, 2022; 38(8): 21–26. (in Chinese)
Liu T H, Liu W, Zeng T J, Cheng Y F, Zheng Y, Qiu J. A multi-flexible-fingered roller pineapple harvesting mechanism. Agriculture, 2022; 12: 1175.
Gan L, Li M T, Wang B B, He L, Chen Z W, Yue D D, et al. A plant fixation test bench for simulating the growth posture of pineapple in the field. China Patent, CN 114009208 B, 2022.11.29. (in Chinese)
Zhang J C. Optimization design and analysis of pineapple automatic picker. MS dissertation, Zhongkai University of Agricultural and Engineering, 2015. (in Chinese)
Zhang R H, Zhang Q, Qu J S, He K J, Wang Z W, Lu D X. Design and control of self-propelled pineapple flower induction machine with high gap. Electromechanical Engineering Technology, 2022; 51(6): 18-21.
Li B, Wang N, Wang M H, Li L. In-field pineapple recognition based on monocular vision. Transactions of the CSAE, 2010; 26(10): 345–349. (in Chinese)
He D J, Zhang L Z, Li X, Li P, Wang T J. Design of automatic pineapple harvesting machine based on binocular machine vision. J. Anhui Agric. Sci., 2019; 47(13): 207–210. (in Chinese)
Jiang T, Guo A F, Cheng X B, Zhang D, Li Jin. Structural design and analysis of pineapple automatic picking-collecting machine. Chinese Journal of Engineering Design, 2019; 26(5): 577–586. (in Chinese)
Liu J, Peng Y, Faheem M. Experimental and theoretical analysis of fruit plucking patterns for robotic tomato harvesting. Comput. Electron. in Agric, 2020; 173: 105330. doi: 10.1016/j.compag.2020.105330.
Burks T, Villegas F, Hannan M, Flood S, Sivaraman B, Subramanian V, et al. Engineering and horticultural aspects of robotic fruit harvesting: Opportunities and constraints. Hort Technol. 2005; 15: 79–87.
Roshanianfard A, Noguchi N. Pumpkin harvesting robotic end-effector. Comput. Electron. in Agric., 2020; 174: 105503. doi: 10.1016/j.compag.2020.105503
Zhang Z, Igathinathane C, Li J, Cen H, Lu Y, Flores P. Technology progress in mechanical harvest of fresh market apples. Comput. Electron. in Agric, 2020; 175: 105606. doi: 10.1016/j.compag.2020.105606
Ikram M M M, Mizuno R, Putri S P, Fukusaki E. Comparative metabolomics and sensory evaluation of pineapple (Ananas comosus) reveal the importance of ripening stage compared to cultivar. J. Biosci. Bioeng, 2021; 132(6): 592–598.
Li M T, Yue D D, He L, Zhang X, Wang B B, Lu W Y, et al. A torque measurement test equipment for pineapple fruit stem bending separation. Chinese Patent, Publication No: 202211470234.3, 2022-11-22. (in Chinese)
Jones B, Good P. I-Optimal versus D-optimal split-splot response surface designs. Journal of Quality Technology, 2012; 44(2): 85-101.
Kumar R. Strength of materials. Taylor and Francis, 2022-01-10.
Gou L, Zhao M, Huang J J, Zhang B, Li T, Sun R. Bending Mechanical Properties of Stalk and Lodging-Resistance of Maize (Zea mays L.). Acta Agronomica Sinica, 2008; 34(4): 653-661. (in Chinese)
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