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首页> 外文期刊>Mechanics of Advanced Materials and Structures >Dynamic stability of modified strain gradient theory sinusoidal viscoelastic piezoelectric polymeric functionally graded single-walled carbon nanotubes reinforced nanocomposite plate considering surface stress and agglomeration effects under hydro-thermo-electro-magneto-mechanical loadings
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Dynamic stability of modified strain gradient theory sinusoidal viscoelastic piezoelectric polymeric functionally graded single-walled carbon nanotubes reinforced nanocomposite plate considering surface stress and agglomeration effects under hydro-thermo-electro-magneto-mechanical loadings

机译:改性应变梯度理论正弦粘弹性压电聚合物功能梯度单壁碳纳米管增强纳米复合板的动态稳定性考虑到水热电 - 电磁 - 机械载荷下的表面应力和附聚板

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摘要

In this article, dynamic stability analysis of the viscoelastic piezoelectric polymeric nanocomposite plate reinforced by functionally graded single-walled carbon nanotubes (FG-SWCNTs) based on modified strain gradient theory (MSGT) is explored. The viscoelastic piezoelectric polymeric nanocomposite plate reinforced is subjected to hydrothermal and electro-magneto-mechanical loadings. The viscoelastic piezoelectric polymeric nanocomposite plate is rested on viscoelastic foundation. Uniform distribution (UD), various functionally graded (FG) distribution types such as FG-V, FG-X, and FG-O are considered for single-walled carbon nanotubes (SWCNTs). The extended mixture approach is applied to estimation of the elastic properties. The equations of motion are derived by Hamilton's principle. The resonance frequency or the parametric resonance is obtained then dynamic stability region is specified. There is a good agreement between the present work and the literature result. Various parametric investigations are performed for the influences of the small scale parameters, direct and alternating applied voltage, magnetic field, viscoelastic foundation coefficients, and aspect ratios on the dynamic stability region of the viscoelastic piezoelectric polymeric nanocomposite plate. The results indicated that SWCNT agglomeration and surface stress have significant effects on the dynamic stability region and the parametric resonance. Dynamic stability region increases with increasing of thickness to width ratio, magnetic field, applied voltage, static load factor, viscoelastic foundation parameters, and surface density constant, and decreasing of length to width ratio and residual surface stress constant. Also, the dynamic stability region shifts to lower parameter resonance with increasing of temperature and moisture changes. The results can be employed for design of micro-electro-mechanical systems and nano-electro-mechanical systems.
机译:在本文中,探讨了基于改进的应变梯度论(MSGT)的功能梯度单壁碳纳米管(FG-SWCNT)加强的粘弹性压电聚合物纳米复合材料的动态稳定性分析。增强的粘弹性压电聚合物纳米复合板经受水热和电磁 - 机械载荷。粘弹性压电聚合物纳米复合板在粘弹性基础上搁置。均匀的分布(UD),各种功能梯度(FG)分布类型如FG-V,FG-X和FG-O被认为是单壁碳纳米管(SWCNT)。延长的混合物方法应用于弹性性质的估计。运动方程是由汉密尔顿的原则衍生的。获得共振频率或参数谐振,然后指定动态稳定性区域。目前的工作与文献结果之间存在良好的一致性。针对粘弹性压电聚合物纳米复合板的动态稳定区域对小规模参数,直接和交替施加的电压,磁场,粘弹性基础系数和纵横比进行各种参数研究。结果表明,SWCNT附聚和表面应力对动态稳定区域和参数谐振具有显着影响。随着厚度的增加,磁场,施加的电压,静载因子,粘弹性基础参数和表面密度恒定的动态稳定性区域增加,并且长度减小到宽度比和残余表面应力恒定。而且,动态稳定性区域随着温度和水分的变化的增加而转移到降低参数共振。该结果可用于微机电系统和纳米电力系统的设计。

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