@ARTICLE{Bastanfar_Marzie_Flexoelectric_2019, author={Bastanfar, Marzie and Hosseini, Seyyed Amirhosein and Sourki, Reza and Khosravi, Farshad}, volume={vol. 66}, number={No 4}, journal={Archive of Mechanical Engineering}, pages={417-437}, howpublished={online}, year={2019}, publisher={Polish Academy of Sciences, Committee on Machine Building}, abstract={A nanoscale beam model containing defect under the piezoelectricity considering the surface effects and flexoelectricity is established on the framework of Euler-Bernoulli theory. The governing equations of motion and related boundary conditions are derived by using Hamilton’s principle. The imperfect nanobeam is modeled by dividing the beam into two separate parts that are connected by a rotational and a longitude spring at the defect location. Analytical results on the free vibration response of the imperfect piezoelectric nanobeam exhibit that the flexoelectricity and the surface effects are sensitive to the boundary conditions, defect position, and geometry of the nanobeam. Numerical results are provided to predict the mechanical behavior of a weakened piezoelectric nanobeam considering the flexoelectric and surface effects. It is also revealed that the voltage, defect severity, and piezoelectric material have a critical role on the resonance frequency. The work is envisaged to underline the influence of surface effects and flexoelectricity on the free vibration of a cracked piezoelectric nanobeam for diverse boundary conditions. It should be mentioned, despite our R. Sourkiprevious works, an important class of piezoelectric materials used nowadays and called piezoelectric ceramics is considered in the current study.}, type={Artykuły / Articles}, title={Flexoelectric and surface effects on a cracked piezoelectric nanobeam: Analytical resonant frequency response}, URL={http://journals.pan.pl/Content/114743/PDF/AME_2019_131355.pdf}, doi={10.24425/ame.2019.131355}, keywords={flexoelectricity, surface effects, imperfections, resonance frequency, nanobeam}, }