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Bending behavior of squared cutout nanobeams incorporating surface stress effects

机译:平方切口纳米束弯曲行为纳入表面应力效应

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In nanosized structures as the surface area to the bulk volume ratio increases the classical continuum mechanics approaches fails to investigate the mechanical behavior of such structures. In perforated nanobeam structures, more decrease in the bulk volume is obtained due to perforation process thus nonclassical continuum approaches should be employed for reliable investigation of the mechanical behavior these structures. This article introduces an analytical methodology to investigate the size dependent, surface energy, and perforation impacts on the nonclassical bending behavior of regularly squared cutout nanobeam structures for the first time. To do this, geometrical model for both bulk and surface characteristics is developed for regularly squared perforated nanobeams. Based on the proposed geometrical model, the nonclassical Gurtin-Murdoch surface elasticity model is adopted and modified to incorporate the surface energy effects in perforated nanobeams. To investigate the effect of shear deformation associated with cutout process, both Euler-Bernoulli and Timoshenko beams theories are developed. Mathematical model for perforated nanobeam structure including surface energy effects are derived in comprehensive procedure and nonclassical boundary conditions are presented. Closed forms for the nonclassical bending and rotational displacements are derived for both theories considering all classical and nonclassical kinematics and kinetics boundary conditions. Additionally, both uniformly distributed and concentrated loads are considered. The developed methodology is verified and compared with the available results and an excellent agreement is noticed. Both classical and nonclassical bending profiles for both thin and thick perforated nanobeams are investigated. Numerical results are obtained to illustrate effects of beam filling ratio, the number of hole rows through the cross section, surface material characteristics, beam slenderness ratio as well as the boundary and loading conditions on the non-classical bending behavior of perforated nanobeams in the presence of surface effects. It is found that, the surface residual stress has more significant effect on the bending deflection compared with the corresponding effect of the surface elasticity, Es. The obtained results are supportive for the design, analysis and manufacturing of perforated nanobeams.
机译:在纳米化结构中,随着表面积与散装体积比增加,经典的连续内力学方法不能研究这种结构的机械行为。在穿孔的纳米结构中,由于穿孔过程获得了散装体积的更多降低,因此应采用非生计的连续素方法来可靠地调查这些结构的机械行为。本文介绍了一种分析方法,以研究第一次对依赖于依赖性,表面能和穿孔对定期平方切口纳米结构结构的非分类弯曲行为的影响。为此,为规则平方的穿孔纳米束开发了散装和表面特性的几何模型。基于所提出的几何模型,采用和修饰非分化古霉素 - 默多木表面弹性模型,以掺入穿孔纳米束中的表面能效应。为了研究与切口过程相关的剪切变形的影响,开发了Euler-Bernoulli和Timoshenko梁理论。在综合过程中得出包括表面能效的穿孔纳米结构的数学模型,并呈现了综合过程和非分化边界条件。考虑所有经典和非分类运动学和动力学边界条件,导出了用于两种理论的无菌弯曲和旋转位移的封闭形式。另外,考虑均匀分布的均匀载荷。发达的方法是核实并与可用的结果进行了验证,并注意到了一个很好的协议。研究了薄和厚的穿孔纳米束的经典和非分化弯曲型材。获得数值结果以说明光束填充率的效果,通过横截面,表面材料特性,光束细长比以及边界和负载条件在存在下存在的非经典弯曲行为的边界和装载条件表面效应。结果发现,与表面弹性的相应效果,表面残余应力对弯曲偏转具有更大的影响。所获得的结果支持穿孔纳米束的设计,分析和制造。

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