Analysis and experiment of the dynamic characteristics for root-soil system in the blueberry tree

Yudong Bao, Yuying Liu, Naifeng Yuan

Abstract


To solve the problem of soil loosening caused by whole plant vibration during the operation of a vibrating blueberry harvester, the force model of the blueberry tree containing root soil was established and analyzed. The main factors affecting the impact force of the shaker were the curvature of the shaker, the branch curvature, and the equivalent elastic modulus at the impact point. Through the analysis of the transfer law of vibration between the exciting force and the root-soil complex, it is concluded that the shear strength decreases with the decrease of the internal friction angle, resulting in loose soil and easy toppling of the fruit trees. Discrete element simulation was used to analyze the force of the blueberry model. The results showed that the lower the excitation height, the more drastic the fluctuation of the root-soil complex. In the range of excitation height from 200 mm to 500 mm, soil acceleration increased by 45.5% on average for every 150 mm decrease. From 200 mm to 50 mm, the average soil acceleration increased by 69.1%. Finally, through the field excitation sensor test, the sensor was buried in 200 mm, 100 mm, and 0 mm (that is, placed on the surface) of soil, and the exciting force was applied to blueberry branches at heights of 50 mm, 200 mm, 350 mm, and 500 mm, respectively, for four times, and then the soil acceleration was output. A total of 48 sets of experimental data were obtained. By combining the scattering data obtained from the experiment with the simulated curve, it can be analyzed that when the excitation heights were 50 mm and 500 mm, the soil fluctuation at the depth of 100 mm was close to the simulated average value. When the excitation heights were 200 mm and 350 mm, the fluctuation of surface soil with a depth of 0 mm was close to the simulated average value. When the excitation height was 500 mm, the root-soil complex fluctuated twice due to the obvious reciprocating swing of the fruit tree. Since very little vibration energy was consumed during transmission, the vibration was strongest in the surface soil. Soil with a depth of 200 mm was almost unaffected by the excitation force and excitation height because too much vibration energy was consumed during transmission. The results show that the established model and simulation scheme are reliable and can provide a theoretical basis for the optimization of the incentive parameters of blueberry fruit trees.
Keywords: blueberry, fruit tree vibration, dynamic characteristics, root-soil system, experiment
DOI: 10.25165/j.ijabe.20241706.8726

Citation: Bao Y D, Liu Y Y, Yuan N F. Analysis and experiment of the dynamic characteristics for root-soil system in the blueberry tree. Int J Agric & Biol Eng, 2024; 17(6): 59–65.

Keywords


blueberry, fruit tree vibration, dynamic characteristics, root-soil system, experiment

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References


Zhang C Q, Wang Q, Huang Z J, Wu W L, Li G P, Li W L. Development and prospect of blueberry industry in Jiangsu Province. Northern Horticulture, 2021; 9(18): 155–160. (in Chinese)

Bao Y D, Yang C, Zhao Y L, Liu X L, Guo Y L. Collision injury assessment of mechanical harvesting blueberry fruit based on collision deformation energy. Transactions of the CSAE, 2017; 33(16): 283–292. (in Chinese)

Coutts M P. Components of tree stability in sitka spruce on peaty gley soil. Forestry, 1986; 59(2): 173–197.

Mouazen A M, Neményi M. Finite element analysis of subsoiler cutting in non-homogeneous sandy loam soil. Soil and Tillage Research, 1999; 51(1-2): 1–15.

Abe K, Ziemer R R. Effect of tree roots on a shear zone: modeling reinforced shear stress. Canadian Journal of Forest Research, 1991; 21(7): 1012–1019.

Kong G Q, Wen L, Liu H L, Wang C Q. Strength properties of root compound soil and morphological observation of plant root. Rock and Soil Mechanics, 2019; 40(10): 3717–3723.

Deans J D, Ford E D. Modelling root structure and stability. Plant and Soil, 1983; 71: 189–195.

Rasulov H Z, Rasulov R H, Tashxodjayev A U, Babajanov M B. Vibration creep of loess soils. IOP Conference Series: Earth and Environmental Science, 2020; 614: 012064.

Tian J, Ji J N, Zhong Q, Yu P C, Yang L J, Yang B. Analysis on the improvement of slope stability in root-soil composite of Picea crassifolia forest in Helan Mountain. Transactions of the CSAE, 2017; 33(20): 144–152. (in Chinese)

Zheng M X, Huang G, Peng J. Tensile-pullout properties of roots of Magnolia multiflora in different growth stages and stability of slope with its root. Transactions of the CSAE, 2018; 34(20): 175–182. (in Chinese)

Gao G H, Xie H F, Wang T B. EDEM simulation and experiment of pullout force of protected vegetable harvester. Transactions of the CSAE, 2017; 33(23): 24–31. (in Chinese)

Zhao J F, Wang W, Sun Z X, Su X J. Improvement and verification of pressure-sinkage model in homogeneous soil. Transactions of the CSAE, 2016; 32(21): 60–66. (in Chinese)

Huang H, Wu B G, Xu S C, Zou M, Li J Q, Li J H. Test study on mechanical properties of lunar soil simulant under high compactness condition. Transactions of the CSAE, 2019; 35(1): 31–38. (in Chinese)

Yang S H, Song L, Jia X P, Xie S Y. Research and test on vibration compaction of duckbilled planter of vegetable transplanter. Journal of Agricultural Mechanization Research, 2021; 43(3): 201–206, 214. (in Chinese)

He J, Wu D L, Ma J S, Feng W X, Wang H K. A study on travel vibration characteristics of tracked vehicle based on improved soil pressure-sinkage model. Journal of Vibration and Shock, 2020; 39(12): 57–62, 77. (in Chinese)

Zhang W H, Wang G Y, Hu S H, Zhang Y J, Quan P, Chang J M. Indoor experimental study on the pull-out force of Symplocos anomala brand root. Science of Soil and Water Conservation, 2020; 18(3): 22–30. (in Chinese)

Yu Y J, Cao Y, Lai Q H, Zhao Q H, Sun Z X, Zhou S W, et al. Design and operation parameters of vibrating harvester for Coffea arabica L. Agriculture, 2023; 13(3): 700.

Xie K T, Zhang Z G, Wang F A, Yu X L, Wang C L, Jiang S F. Calibration and experimental verification of discreteelement parameters of Panax notoginseng root. Int J Agric & Biol Eng, 2024; 17(4): 13–23.

Yan D, Luo L F, Zhang P, Liu W T, Wang J X, Lu Q H, et al. Vibration analysis and experimental study of the effects of mechanised grape picking on the fruit - stem system. Biosystems Engineering, 2023; 227: 82–94.

Villibor G P, Santos F L, Queiroz D M, Khoury Junior J K, Pinto F A C. Vibration transmissibility of the coffee fruit-peduncle system: A forced vibration study of high frequency aiming mechanical harvesting. Engenharia Agrícola, 2023; 43(1).

Sun X D, Wu W D, Cao C M, Xu L X, Jiang R, Fang L F, et al. Research on vibration response characteristics and separation deformation law of fruit-branch system. AIP Advances, 2023; 13(6): 1–9.

Bao Y D, Liang Z, Zhao Y L, Liu X L, Yang J, Guo Y L, et al. Design and performance of high-throughput self-propelled device for blueberry harvester. Transactions of the CSAE, 2018; 34(24): 36–45. (in Chinese)

Bao Y D, Yang C, Zhao Y L, Liu X L, Guo Y L. Vibration characteristics analysis and experiment of the blueberry shrub. Journal of Harbin University of Science and Technology, 2018; 23(1): 18–22. (in Chinese)

Shi D Q, Zhao L T, Zhang X. The technology of slope protection by vegetation in slope ecological protection engineering. Journal of Inner Mongolia Forestry Science and Technology, 2012; 38(1): 56–58.

Bao Y D, Yang J, Zhao Y L, Liu X L, Guo Y L, Li Z P. Design of the walking driving system for a blueberry harvester based on contact mechanical behavior of wheel-soil. Transactions of the CSAE, 2020; 36(7): 43–52.




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