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粘彈阻尼抗振結(jié)構(gòu)雙向漸進(jìn)法拓?fù)鋭恿W(xué)優(yōu)化
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國家自然科學(xué)基金項目(51265040、51565039)和江西省自然科學(xué)基金項目(20151BAB206036)


Dynamic Optimization of Damping Anti-vibration Structure Topology Based on BESO Method
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    摘要:

    基于阻尼結(jié)構(gòu)各層形變位移關(guān)系,推導(dǎo)了結(jié)構(gòu)振動微分方程。構(gòu)建了以阻尼比最大化為優(yōu)化目標(biāo),阻尼材料用量為約束,阻尼單元狀態(tài)為設(shè)計變量的拓?fù)鋬?yōu)化數(shù)學(xué)模型。為尋找結(jié)構(gòu)優(yōu)化迭代方向,推導(dǎo)了模態(tài)阻尼比靈敏度。建立阻尼單元增刪準(zhǔn)則,利用獨立網(wǎng)格濾波技術(shù)進(jìn)行濾波處理,采用雙向漸進(jìn)優(yōu)化算法對阻尼結(jié)構(gòu)進(jìn)行了拓?fù)鋬?yōu)化。按常規(guī)漸進(jìn)法優(yōu)化后,1階、3階阻尼比增幅分別為54.51%、36.21%,而按雙向漸進(jìn)優(yōu)化所得相應(yīng)階次的模態(tài)阻尼比增幅則分別達(dá)76.69%、58.36%,且可有效改善阻尼結(jié)構(gòu)優(yōu)化后的棋盤格現(xiàn)象。為驗證雙向漸進(jìn)優(yōu)化算法拓?fù)鋬?yōu)化結(jié)果,對阻尼結(jié)構(gòu)進(jìn)行諧響應(yīng)分析與仿真,結(jié)果表明:采用雙向漸進(jìn)法優(yōu)化時,結(jié)構(gòu)特定階次響應(yīng)幅值更低,減振效果更佳。

    Abstract:

    In order to lay a certain foundation for optimization of mechanical structure vibration reduction, the viscoelastic damping material optimal layout was studied. Damping materials dosage was restricted to realize structural lightweight design. Based on the Hamilton variation principle and the deformation displacement relationship of damping structure, structure vibration differential equation was deduced. A topological optimization mathematical model for constrained damping structure that used structure maximum damping ratio as the optimization goal, structure damping materials consumption as constraint condition, structure damping element status as design variables was built. To search structure topological optimization iteration direction, the modal damping ratio of sensitivity was derived. The constrained damping element adding and deleting criterion was presented, the program for constrained damping structure was established, and independent mesh filter method was adopted to avoid the checkerboard. The bi-directional evolutionary structural optimization (BESO) can improve the utilization efficiency of damping materials, thus BESO was used to optimize the damping structure. After evolutionary structural optimization(ESO) for damping structure, the increases of the first and the third order damping ratios were 54.51% and 36.21%, respectively, while after BESO for damping structure, the increases were 76.69% and 58.36%, respectively, and the phenomenon of checkerboard was improved, the damping material layout was consistent with structural strain energy figure. To verify the result of topology optimization for damping layout, harmonic response analysis was carried out on the constrained layer damping structure, the simulation results showed that the structural response amplitude was low and vibration suppression effect was good by means of BESO method.

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賀紅林,陶結(jié),劉堯弟,夏自強.粘彈阻尼抗振結(jié)構(gòu)雙向漸進(jìn)法拓?fù)鋭恿W(xué)優(yōu)化[J].農(nóng)業(yè)機械學(xué)報,2016,47(8):339-345,412. He Honglin, Tao Jie, Liu Yaodi, Xia Ziqiang. Dynamic Optimization of Damping Anti-vibration Structure Topology Based on BESO Method[J]. Transactions of the Chinese Society for Agricultural Machinery,2016,47(8):339-345,412.

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  • 收稿日期:2016-01-23
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  • 在線發(fā)布日期: 2016-08-10
  • 出版日期: 2016-08-10