TY - JOUR
T1 - An efficient C1 beam element via multi-scale material adaptable shape function
AU - El-Ashmawy, A. M.
AU - Xu, Yuanming
N1 - Publisher Copyright:
© 2022 Techno-Press, Ltd.
PY - 2022/10
Y1 - 2022/10
N2 - Recently, promising structural technologies like multi-function, ultra-load bearing capacity and tailored structures have been put up for discussions. Finite Element (FE) modelling is probably the best-known option capable of treating these superior properties and multi-domain behavior structures. However, advanced materials such as Functionally Graded Material (FGM) and nanocomposites suffer from problems resulting from variable material properties, reinforcement aggregation and mesh generation. Motivated by these factors, this research proposes a unified shape function for FGM, nanocomposites, graded nanocomposites, in addition to traditional isotropic and orthotropic structural materials. It depends not only on element length but also on the beam’s material properties and geometric characteristics. The systematic mathematical theory and FE formulations are based on the Timoshenko beam theory for beam structure. Furthermore, the introduced element achieves C1 degree of continuity. The model is proved to be convergent and free-off shear locking. Moreover, numerical results for static and free vibration analysis support the model accuracy and capabilities by validation with different references. The proposed technique overcomes the issue of continuous properties modelling of these promising materials without discarding older ones.
AB - Recently, promising structural technologies like multi-function, ultra-load bearing capacity and tailored structures have been put up for discussions. Finite Element (FE) modelling is probably the best-known option capable of treating these superior properties and multi-domain behavior structures. However, advanced materials such as Functionally Graded Material (FGM) and nanocomposites suffer from problems resulting from variable material properties, reinforcement aggregation and mesh generation. Motivated by these factors, this research proposes a unified shape function for FGM, nanocomposites, graded nanocomposites, in addition to traditional isotropic and orthotropic structural materials. It depends not only on element length but also on the beam’s material properties and geometric characteristics. The systematic mathematical theory and FE formulations are based on the Timoshenko beam theory for beam structure. Furthermore, the introduced element achieves C1 degree of continuity. The model is proved to be convergent and free-off shear locking. Moreover, numerical results for static and free vibration analysis support the model accuracy and capabilities by validation with different references. The proposed technique overcomes the issue of continuous properties modelling of these promising materials without discarding older ones.
KW - Finite element modeling
KW - Functionally graded material
KW - Functionally graded nanocomposites beams
KW - Isotropic
KW - Nanocomposites
KW - Orthotropic
KW - Timoshenko beam element
UR - https://www.scopus.com/pages/publications/85142253726
U2 - 10.12989/anr.2022.13.4.351
DO - 10.12989/anr.2022.13.4.351
M3 - 文章
AN - SCOPUS:85142253726
SN - 2287-237X
VL - 13
SP - 351
EP - 368
JO - Advances in Nano Research
JF - Advances in Nano Research
IS - 4
ER -