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An extended isogeometric thin shell analysis based on Kirchhoff-Love theory (2015)
Nguyen-Thanh, Nhon ; Valizadeh, N. ; Nguyen, Manh Hung ; Nguyen-Xuan, Hung ; Zhuang, Xiaoying ; Areias, Pedro ; Zi, Goangseup ; Bazilevs, Yuri ; De Lorenzis, Laura ; Rabczuk, Timon
An extended isogeometric thin shell analysis based on Kirchho_-Love theory
A phantom-node method with edge-based strain smoothing for linear elastic fracture mechanics (2013)
Vu-Bac, N. ; Nguyen-Xuan, Hung ; Chen, Lei ; Lee, C.K. ; Zi, Goangseup ; Zhuang, Xiaoying ; Liu, G.R. ; Rabczuk, Timon
This paper presents a novel numerical procedure based on the combination of an edge-based smoothed finite element (ES-FEM) with a phantom-node method for 2D linear elastic fracture mechanics. In the standard phantom-node method, the cracks are formulated by adding phantom nodes, and the cracked element is replaced by two new superimposed elements. This approach is quite simple to implement into existing explicit finite element programs. The shape functions associated with discontinuous elements are similar to those of the standard finite elements, which leads to certain simplification with implementing in the existing codes. The phantom-node method allows modeling discontinuities at an arbitrary location in the mesh. The ES-FEM model owns a close-to-exact stiffness that is much softer than lower-order finite element methods (FEM). Taking advantage of both the ES-FEM and the phantom-node method, we introduce an edge-based strain smoothing technique for the phantom-node method. Numerical results show that the proposed method achieves high accuracy compared with the extended finite element method (XFEM) and other reference solutions.
A smoothed finite element method for the static and free vibration analysis of shells (2010)
Nguyen-Thanh, Nhon ; Thai-Hoang, C. ; Nguyen-Xuan, Hung ; Rabczuk, Timon
A smoothed finite element method for the static and free vibration analysis of shells
Free and forced vibration analysis using the n-sided polygonal cell-based smoothed finite element method (nCS-FEM) (2013)
Nguyen-Thoi, T. ; Phung-Van, P. ; Rabczuk, Timon ; Nguyen-Xuan, Hung ; Le-Van, C.
Free and forced vibration analysis using the n-sided polygonal cell-based smoothed finite element method (nCS-FEM)
Computation of limit load using edge-based smoothed finite element method and second-order cone programming (2013)
Le, C.V. ; Nguyen-Xuan, Hung ; Askes, H. ; Rabczuk, Timon ; Nguyen-Thoi, T.
Computation of limit load using edge-based smoothed finite element method and second-order cone programming
An application of the ES-FEM in solid domain for dynamic analysis of 2D fluid-solid interaction problems (2013)
Nguyen-Thoi, T. ; Phung-Van, P. ; Rabczuk, Timon ; Nguyen-Xuan, Hung ; Le-Van, C.
An application of the ES-FEM in solid domain for dynamic analysis of 2D fluid-solid interaction problems
An edge-based smoothed finite element method for analysis of laminated composite plates (2013)
Phan-Dao, H. ; Nguyen-Xuan, Hung ; Thai-Hoang, C. ; Nguyen-Thoi, T. ; Rabczuk, Timon
An edge-based smoothed finite element method for analysis of laminated composite plates
Static, free vibration and buckling analysis of laminated composite Reissner-Mindlin plates using NURBS-based isogeometric approach (2012)
Thai, Chien H. ; Nguyen-Xuan, Hung ; Nguyen-Thanh, Nhon ; Le, T.H. ; Nguyen-Thoi, T. ; Rabczuk, Timon
This paper presents a novel numerical procedure based on the framework of isogeometric analysis for static, free vibration, and buckling analysis of laminated composite plates using the first-order shear deformation theory. The isogeometric approach utilizes non-uniform rational B-splines to implement for the quadratic, cubic, and quartic elements. Shear locking problem still exists in the stiffness formulation, and hence, it can be significantly alleviated by a stabilization technique. Several numerical examples are presented to show the performance of the method, and the results obtained are compared with other available ones.
Computation of limit and shakedown loads using a node-based smoothed finite element method (2012)
Nguyen-Xuan, Hung ; Rabczuk, Timon ; Nguyen-Thoi, T. ; Tran, T. ; Nguyen-Thanh, Nhon
This paper presents a novel numerical procedure for computing limit and shakedown loads of structures using a node-based smoothed FEM in combination with a primal–dual algorithm. An associated primal–dual form based on the von Mises yield criterion is adopted. The primal-dual algorithm together with a Newton-like iteration are then used to solve this associated primal–dual form to determine simultaneously both approximate upper and quasi-lower bounds of the plastic collapse limit and the shakedown limit. The present formulation uses only linear approximations and its implementation into finite element programs is quite simple. Several numerical examples are given to show the reliability, accuracy, and generality of the present formulation compared with other available methods.
Isogeometric analysis using polynomial splines over hierarchical T-meshes for two-dimensional elastic solids (2011)
Nguyen-Thanh, Nhon ; Nguyen-Xuan, Hung ; Bordas, Stéphane Pierre Alain ; Rabczuk, Timon
Isogeometric analysis using polynomial splines over hierarchical T-meshes for two-dimensional elastic solids
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