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三七莖稈離散元參數(shù)標(biāo)定與試驗(yàn)
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國家重點(diǎn)研發(fā)計(jì)劃項(xiàng)目(2022YFD2002004)和云南省教育廳科學(xué)研究基金項(xiàng)目(2023J0151)


Calibration and Experiment of Discrete Element Parameters of Panax notoginseng Stem
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    摘要:

    針對利用離散元法進(jìn)行三七聯(lián)合收獲、莖稈殺秧等關(guān)鍵作業(yè)過程仿真分析時(shí),,三七莖稈本征參數(shù),、三七莖稈及作業(yè)裝備間接觸參數(shù)缺乏問題,以三七莖稈為對象,,利用EDEM軟件建立三七莖稈離散元Hertz-Mindlin/Hertz-Mindlin with bonding模型,,通過堆積角試驗(yàn)和虛擬仿真試驗(yàn)對三七莖稈離散元參數(shù)進(jìn)行標(biāo)定,,并建立三七莖稈殺秧裝置模型。通過力學(xué)特性試驗(yàn)確定三七莖稈本征參數(shù),;采用圓筒提升法進(jìn)行三七莖稈堆積角試驗(yàn),,使用Origin軟件對堆積角圖像進(jìn)行輪廓擬合得到三七莖稈堆積角為44.53°;設(shè)計(jì)Placktt-Burman試驗(yàn),、最陡爬坡試驗(yàn)和Central-Composite試驗(yàn)確定三七莖稈及作業(yè)裝備間接觸參數(shù),,并利用堆積角試驗(yàn)和剪切試驗(yàn)驗(yàn)證模型的可靠性。結(jié)果表明:三七莖稈與作業(yè)裝備間碰撞恢復(fù)系數(shù),、靜摩擦因數(shù),、滾動摩擦因數(shù)分別為0.319、0.25,、0.029,;三七莖稈間的碰撞恢復(fù)系數(shù)、靜摩擦因數(shù),、滾動摩擦因數(shù)最優(yōu)值分別為0.4,、0.29、0.032,;Hertz-Mindlin with bonding模型法向剛度Kn為3.26×108N/m3,、切向剛度Ks為2.17×108N/m3、法向臨界應(yīng)力σ為2.27MPa,、切向臨界應(yīng)力γ為9.65MPa,、粘結(jié)半徑Rd為0.1mm;堆積角驗(yàn)證試驗(yàn)中相對誤差為0.29%,;剪切驗(yàn)證試驗(yàn)中相對誤差為1.52%,,誤差較小。三七莖稈離散元模型與實(shí)際情況基本一致,,三七莖稈模型和標(biāo)定離散元仿真參數(shù)可靠,,可為三七莖稈離散元仿真研究提供參考。

    Abstract:

    Aiming at the lack of intrinsic parameters problem of Panax notoginseng stem, contact parameters between Panax notoginseng stem and operating equipment, when using the discrete element method for simulation analysis of key working processes, such as Panax notoginseng combined harvesting and stem killing. Panax notoginseng stem was taken as the object, the discrete element Hertz-Mindlin/Hertz-Mindlin with bonding of Panax notoginseng stem was established by software EDEM. The parameters of discrete element were calibrated by stacking angle experiment and virtual simulation test, and the seedling killing device model of Panax notoginseng stem was established. The intrinsic parameters of stem of were determined by mechanical properties tests. The pile angle of Panax notoginseng stem was tested by cylinder lifting method, the cylinder lifting method was used to test the stacking angle of Panax notoginseng stem, the stacking angle of Panax notoginseng stem in the physical experiment was 44.53° by performing contour fitting on the stacking angle image with Origin software. The Placktt-Burman experiment, steepest climb test and the Central-Composite experiment were used to determine the contact parameters of Panax notoginseng stem and the operating equipment, and the reliability of the model was verified by the stacking angle test, and the shear test. The results showed that the optimal values of collision recovery coefficient, static friction coefficient and rolling friction coefficient between Panax notoginseng stem and operation equipment were 0.319, 0.25 and 0.029, respectively. The optimal values of collision recovery coefficient, static friction coefficient, and rolling friction coefficient were 0.4, 0.29 and 0.032, respectively. The normal stiffness Kn of the Hertz-Mindlin with bonding model was 3.26×108N/m3, the tangential stiffness Ks was 2.17×108N/m3, the normal critical stress σ was 2.27MPa, the tangential critical stress γ was 9.65MPa, and the bonding radius Rd was 0.1mm. The relative error in the accumulation angle verification test was 0.29%;the relative error in the shear verification test was 1.52%, and the error was small. The discrete element model of Panax notoginseng stem was basically consistent with the actual situation, and the model of Panax notoginseng stem and the calibration of discrete element simulation parameters were reliable, which can provide a reference for the research of discrete element simulation of Panax notoginseng stem.

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張兆國,徐紅偉,薛浩田,倪暢,王超.三七莖稈離散元參數(shù)標(biāo)定與試驗(yàn)[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2023,54(11):61-70,,91. ZHANG Zhaoguo, XU Hongwei, XUE Haotian, NI Chang, WANG Chao. Calibration and Experiment of Discrete Element Parameters of Panax notoginseng Stem[J]. Transactions of the Chinese Society for Agricultural Machinery,2023,54(11):61-70,,91.

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  • 收稿日期:2023-04-17
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  • 在線發(fā)布日期: 2023-11-10
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