This paper examines the limitations of using B-spline representation as an analysis tool by comparing its geometry with the nonlinear finite element absolute nodal coordinate formulation (ANCF) geometry. It is shown that while both B-spline and ANCF geometries can be used to model nonstructural discontinuities using linear connectivity conditions, there are fundamental differences between B-spline and ANCF geometries. First, while B-spline geometry can always be converted to ANCF geometry, the converse is not true; that is, ANCF geometry cannot always be converted to B-spline geometry. Second, because of the rigid structure of the B-spline recurrence formula, there are restrictions on the order of the parameters and basis functions used in the polynomial interpolation; this in turn can lead to models that have significantly larger number of degrees of freedom as compared to those obtained using ANCF geometry. Third, in addition to the known fact that B-spline does not allow for straightforward modeling of T-junctions, B-spline representation cannot be used in a straightforward manner to model structural discontinuities. It is shown in this investigation that ANCF geometric description can be used to develop new spatial chain models governed by linear connectivity conditions which can be applied at a preprocessing stage allowing for an efficient elimination of the dependent variables. The modes of the deformations at the definition points of the joints that allow for rigid body rotations between ANCF finite elements are discussed. The use of the linear connectivity conditions with ANCF spatial finite elements leads to a constant inertia matrix and zero Coriolis and centrifugal forces. The fully parameterized structural ANCF finite elements used in this study allow for the deformation of the cross section and capture the coupling between this deformation and the stretch and bending. A new chain model that employs different degrees of continuity for different coordinates at the joint definition points is developed in this investigation. In the case of cubic polynomial approximation, continuity conditions are used for the coordinate line along the joint axis; while continuity conditions are used for the other coordinate lines. This allows for having arbitrary large rigid body rotation about the axis of the joint that connects two flexible links. Numerical examples are presented in order to demonstrate the use of the formulations developed in this paper.
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e-mail: shabana@uic.edu
e-mail: aabdal5@uic.edu
e-mail: amoham25@uic.edu
e-mail: paramsothy.jayakumar@us.army.mil
e-mail: mike.letherwood@us.army.mil
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January 2012
Research Papers
Use of B-Spline in the Finite Element Analysis: Comparison With ANCF Geometry
Ahmed A. Shabana,
Ahmed A. Shabana
Department of Mechanical and Industrial Engineering,
e-mail: shabana@uic.edu
University of Illinois at Chicago
, 842 West Taylor Street, Chicago, IL 60607
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Ashraf M. Hamed,
Ashraf M. Hamed
Department of Mechanical and Industrial Engineering,
e-mail: aabdal5@uic.edu
University of Illinois at Chicago
, 842 West Taylor Street, Chicago, IL 60607
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Abdel - Nasser A. Mohamed,
Abdel - Nasser A. Mohamed
Department of Mechanical and Industrial Engineering,
e-mail: amoham25@uic.edu
University of Illinois at Chicago
, 842 West Taylor Street, Chicago, IL 60607
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Paramsothy Jayakumar,
e-mail: paramsothy.jayakumar@us.army.mil
Paramsothy Jayakumar
U.S. Army RDECOM-TARDEC
, 6501 E. 11 Mile Road, Warren, MI 48397-5000
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Michael D. Letherwood
e-mail: mike.letherwood@us.army.mil
Michael D. Letherwood
U.S. Army RDECOM-TARDEC
, 6501 E. 11 Mile Road, Warren, MI 48397-5000
Search for other works by this author on:
Ahmed A. Shabana
Department of Mechanical and Industrial Engineering,
University of Illinois at Chicago
, 842 West Taylor Street, Chicago, IL 60607e-mail: shabana@uic.edu
Ashraf M. Hamed
Department of Mechanical and Industrial Engineering,
University of Illinois at Chicago
, 842 West Taylor Street, Chicago, IL 60607e-mail: aabdal5@uic.edu
Abdel - Nasser A. Mohamed
Department of Mechanical and Industrial Engineering,
University of Illinois at Chicago
, 842 West Taylor Street, Chicago, IL 60607e-mail: amoham25@uic.edu
Paramsothy Jayakumar
U.S. Army RDECOM-TARDEC
, 6501 E. 11 Mile Road, Warren, MI 48397-5000e-mail: paramsothy.jayakumar@us.army.mil
Michael D. Letherwood
U.S. Army RDECOM-TARDEC
, 6501 E. 11 Mile Road, Warren, MI 48397-5000e-mail: mike.letherwood@us.army.mil
J. Comput. Nonlinear Dynam. Jan 2012, 7(1): 011008 (8 pages)
Published Online: September 6, 2011
Article history
Received:
January 31, 2011
Revised:
May 16, 2011
Online:
September 6, 2011
Published:
September 6, 2011
Citation
Shabana, A. A., Hamed, A. M., Mohamed, A. -. N. A., Jayakumar, P., and Letherwood, M. D. (September 6, 2011). "Use of B-Spline in the Finite Element Analysis: Comparison With ANCF Geometry." ASME. J. Comput. Nonlinear Dynam. January 2012; 7(1): 011008. https://doi.org/10.1115/1.4004377
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