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  • Article (9)
  • Conference Proceeding (1)

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  • Bordas, Stéphane Pierre Alain (10) (remove)

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  • Angewandte Mathematik (10)
  • Strukturmechanik (10)

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  • 2014 (3)
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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
Isogeometric analysis of laminated composite plates using the higher-order shear deformation theory (2015)
Thai, Chien H. ; Nguyen-Xuan, Hung ; Bordas, Stéphane Pierre Alain ; Nguyen-Thanh, Nhon ; Rabczuk, Timon
Isogeometric analysis of laminated composite plates using the higher-order shear deformation theory
A node-based smoothed finite element method (NS-FEM) for analysis of Reissner-Mindlin plates (2010)
Nguyen-Xuan, Hung ; Rabczuk, Timon ; Nguyen-Thanh, Nhon ; Nguyen-Thoi, T. ; Bordas, Stéphane Pierre Alain
A node-based smoothed finite element method (NS-FEM) for analysis of Reissner-Mindlin plates
An alternative alpha finite element method with stabilized discrete shear gap technique for analysis of Mindlin-Reissner plates (2011)
Nguyen-Thanh, Nhon ; Rabczuk, Timon ; Nguyen-Xuan, Hung ; Bordas, Stéphane Pierre Alain
An alternative alpha finite element method with stabilized discrete shear gap technique for analysis of Mindlin-Reissner plates
An alternative alpha finite element method (A?FEM) free and forced vibration analysis of solids using triangular meshes (2009)
Nguyen-Thanh, Nhon ; Rabczuk, Timon ; Nguyen-Xuan, Hung ; Bordas, Stéphane Pierre Alain
An alternative alpha finite element method (A?FEM) free and forced vibration analysis of solids using triangular meshes
A cell-based smoothed finite element method for three dimensional solid structures (2014)
Nguyen-Xuan, Hung ; Nguyen, Hiep Vinh ; Bordas, Stéphane Pierre Alain ; Rabczuk, Timon ; Duflot, Marc
This paper extends further the strain smoothing technique in finite elements to 8-noded hexahedral elements (CS-FEM-H8). The idea behind the present method is similar to the cell-based smoothed 4-noded quadrilateral finite elements (CS-FEM-Q4). In CSFEM, the smoothing domains are created based on elements, and each element can be further subdivided into 1 or several smoothing cells. It is observed that: 1) The CS-FEM using a single smoothing cell can produce higher stress accuracy, but insufficient rank and poor displacement accuracy; 2) The CS-FEM using several smoothing cells has proper rank, good displacement accuracy, but lower stress accuracy, especially for nearly incompressible and bending dominant problems. We therefore propose 1) an extension of strain smoothing to 8-noded hexahedral elements and 2) an alternative CS-FEM form, which associates the single smoothing cell issue with multi-smoothing cell one via a stabilization technique. Several numerical examples are provided to show the reliability and accuracy of the present formulation.
An adaptive singular ES-FEM for mechanics problems with singular field of arbitrary order (2013)
Nguyen-Xuan, Hung ; Liu, G.R. ; Bordas, Stéphane Pierre Alain ; Natarajan, S. ; Rabczuk, Timon
An adaptive singular ES-FEM for mechanics problems with singular field of arbitrary order
Explicit finite deformation analysis of isogeometric membranes (2014)
Chen, Lei ; Nguyen-Thanh, Nhon ; Nguyen-Xuan, Hung ; Rabczuk, Timon ; Bordas, Stéphane Pierre Alain ; Limbert, Georges
Explicit finite deformation analysis of isogeometric membranes
Isogeometric analysis of laminated composite and sandwich plates using a new inverse trigonometric shear deformation theory (2014)
Thai, Chien H. ; Ferreira, A.J.M. ; Bordas, Stéphane Pierre Alain ; Rabczuk, Timon ; Nguyen-Xuan, Hung
Isogeometric analysis of laminated composite and sandwich plates using a new inverse trigonometric shear deformation theory
Isogeometric finite element analysis using polynomial splines over hierarchical T-meshes (2010)
Nguyen-Thanh, Nhon ; Nguyen-Xuan, Hung ; Bordas, Stéphane Pierre Alain ; Rabczuk, Timon
Isogeometric finite element analysis has become a powerful alternative to standard finite elements due to their flexibility in handling complex geometries. One major drawback of NURBS based isogeometric finite elements is their less effectiveness of local refinement. In this study, we present an alternative to NURBS based isogeometric finite elements that allow for local refinement. The idea is based on polynomial splines and exploits the flexibility of T-meshes for local refinement. The shape functions satisfy important properties such as non-negativity, local support and partition of unity. We will demonstrate the efficiency of the proposed method by two numerical examples.
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