Title of article :
Size-dependent Vibration and Instability of Magneto-electro-elastic Nano-scale Pipes Containing an Internal Flow with Slip Boundary Condition
Author/Authors :
Amiri, A. Department of Mechanical Engineering - Urmia University, Urmia, Iran , Saeedi, N. Department of Mechanical Engineering - Urmia University, Urmia, Iran , Fakhari, M. Department of Mechanical Engineering - Urmia University, Urmia, Iran , Shabani, R. Department of Mechanical Engineering - Urmia University, Urmia, Iran
Abstract :
Size-dependent vibrational and instability behavior of fluid-conveying magneto-electro-elastic (MEE) tubular nano-beam subjected to magneto-electric potential and thermal field has been analyzed in this study. Considering the fluid-conveying nanotube as an Euler-Bernoulli beam, fluid-structure interaction (FSI) equations are derived by using non-classical constitutive relations for MEE materials, Maxwell’s equation, and Hamilton’s principle. Thereafter, with consideration of the non-uniformity of the flow velocity profile and slip boundary conditions, modified FSI equation is obtained. By utilizing Galerkin weighted-residual solution method, the obtained FSI equation is approximately solved to investigate eigen-frequencies and consequently instability (critical fluid velocity) of the system. In numerical results, a detailed investigation is conducted to elucidate the influences of nano-flow and nano-structure small scale effect, non-uniformity, temperature change, and external magneto-electric potential on the vibrational characteristics and stability of the system. This work and the obtained results may be useful to smart control of nano structures and improve their efficiency.
Farsi abstract :
در اﯾﻦ ﻣﻘﺎﻟﻪ، رﻓﺘﺎر ارﺗﻌﺎﺷﯽ و ﻧﺎﭘﺎﯾﺪاري واﺑﺴﺘﻪ ﺑﻪ اﻧﺪازه ﻧﺎﻧﻮ ﺗﯿﺮﻫﺎي ﻣﮕﻨﺘﻮ-اﻟﮑﺘﺮو-اﻻﺳﺘﯿﮏ ﺣﺎﻣﻞ ﺳﯿﺎل و ﺗﺤﺖ ﭘﺘﺎﻧﺴﯿﻞ ﻣﻐﻨﺎﻃﯿﺴﯽ-اﻟﮑﺘﺮﯾﮑﯽ و ﻣﯿﺪان دﻣﺎﯾﯽ ﯾﮑﻨﻮاﺧﺖ ﻣﻮرد ﺑﺮرﺳﯽ ﻗﺮار ﻣﯽ ﮔﯿﺮد. ﺑﺎ در ﻧﻈﺮ ﮔﺮﻓﺘﻦ ﻧﺎﻧﻮﺗﯿﻮب ﺣﺎﻣﻞ ﺳﯿﺎل ﺑﻪ ﺻﻮرت ﺗﯿﺮ اوﯾﻠﺮ-ﺑﺮﻧﻮﻟﯽ و ﺑﺎ اﺳﺘﻔﺎده از رواﺑﻂ ﻏﯿﺮﮐﻼﺳﯿﮏ ﺑﻨﯿﺎدي ﻣﻮاد ﻣﮕﻨﺘﻮ-اﻟﮑﺘﺮو-اﻻﺳﺘﯿﮏ، ﻣﻌﺎدﻟﻪ ﻣﺎﮐﺴﻮل و اﺻﻞ ﻫﻤﯿﻠﺘﻮن، ﻣﻌﺎدﻻت ﺑﺮ ﻫﻢ ﮐﻨﺶ ﺑﯿﻦ ﺳﯿﺎل و ﺳﺎزه ﺑﻪ دﺳﺖ ﻣﯽ آﯾﺪ. ﺳﭙﺲ ﺑﺎ در ﻧﻈﺮ ﮔﺮﻓﺘﻦ ﻏﯿﺮ ﯾﮑﻨﻮاﺧﺘﯽ ﭘﺮوﻓﯿﻞ ﺳﺮﻋﺖ ﺟﺮﯾﺎن و ﺷﺮط ﻣﺮزي ﻟﻐﺰﺷﯽ، ﻣﻌﺎدﻟﻪ ﺗﻮﺳﻌﻪ ﯾﺎﻓﺘﻪ ﺑﺪﺳﺖ ﻣﯽ آﯾﺪ. ﺑﻪ ﻣﻨﻈﻮر ارزﯾﺎﺑﯽ ﻣﻘﺎدﯾﺮ وﯾﮋه و ﻫﻤﭽﻨﯿﻦ ﻧﺎﭘﺎﯾﺪاري ﺳﺮﻋﺖ ﺑﺤﺮاﻧﯽ ﺳﯿﺎل(، ﺑﺎ اﺳﺘﻔﺎده از روش ﺑﺎﻗﯿﻤﺎﻧﺪه ﻫﺎي وزﻧﯽ ﮔﻠﺮﮐﯿﻦ ﻣﻌﺎدﻟﻪ ﺣﺎﮐﻢ ﺑﺪﺳﺖ آﻣﺪه ﺑﻪ ﺻﻮرت ﺗﻘﺮﯾﺒﯽ ﺣﻞ ﻣﯽ ﮔﺮدد. در ﻗﺴﻤﺖ ﻧﺘﺎﯾﺞ ﻋﺪدي، اﺛﺮات اﻧﺪازه ﻧﺎﻧﻮ ﺳﯿﺎل و ﻧﺎﻧﻮ ﺳﺎﺧﺘﺎر، ﻏﯿﺮ ﯾﮑﻨﻮاﺧﺘﯽ، ﺗﻐﯿﯿﺮات دﻣﺎ و ﭘﺘﺎﻧﺴﯿﻞ ﻣﻐﻨﺎﻃﯿﺴﯽ اﻟﮑﺘﺮﯾﮑﯽ ﺑﺮ ﺧﺼﻮﺻﯿﺎت ارﺗﻌﺎﺷﯽ و ﭘﺎﯾﺪاري ﺳﯿﺴﺘﻢ ﺑﻪ ﺻﻮرت ﺗﻔﺼﯿﻠﯽ ﺑﺮرﺳﯽ ﻣﯽ ﮔﺮدد. اﯾﻦ ﻣﻄﺎﻟﻌﻪ و ﻧﺘﺎﯾﺞ ﺑﺪﺳﺖ آﻣﺪ ﺑﻪ ﻣﻨﻈﻮر ﮐﻨﺘﺮل ﻫﻮﺷﻤﻨﺪ ﻧﺎﻧﻮﺳﺎﺧﺘﺎرﻫﺎ و ﻫﻤﭽﻨﯿﻦ ﺑﻬﺒﻮد ﮐﺎراﯾﯽ آﻧﻬﺎ ﻣﻔﯿﺪ ﺧﻮاﻫﺪ ﺑﻮد.
Keywords :
Fluid-structure Interaction , magneto-electro-elastic , Natural Frequency , Flow Velocity , Instability
Journal title :
International Journal of Engineering