TY - JOUR
T1 - Residual-based error estimation and adaptivity for stabilized immersed isogeometric analysis using truncated hierarchical B-splines
AU - Divi, Sai C.
AU - Van Zuijlen, Pieter H.
AU - Hoang, Tuong
AU - De Prenter, Frits
AU - Auricchio, Ferdinando
AU - Reali, Alessandro
AU - Van Brummelen, E. Harald
AU - Verhoosel, Clemens V.
PY - 2022
Y1 - 2022
N2 - We propose an adaptive mesh refinement strategy for immersed isogeometric analysis, with application to steady heat conduction and viscous flow problems. The proposed strategy is based on residual-based error estimation, which has been tailored to the immersed setting by the incorporation of appropriately scaled stabilization and boundary terms. Element-wise error indicators are elaborated for the Laplace and Stokes problems, and a THB-spline-based local mesh refinement strategy is proposed. The error estimation and adaptivity procedure are applied to a series of benchmark problems, demonstrating the suitability of the technique for a range of smooth and non-smooth problems. The adaptivity strategy is also integrated into a scan-based analysis workflow, capable of generating error-controlled results from scan data without the need for extensive user interactions or interventions.
AB - We propose an adaptive mesh refinement strategy for immersed isogeometric analysis, with application to steady heat conduction and viscous flow problems. The proposed strategy is based on residual-based error estimation, which has been tailored to the immersed setting by the incorporation of appropriately scaled stabilization and boundary terms. Element-wise error indicators are elaborated for the Laplace and Stokes problems, and a THB-spline-based local mesh refinement strategy is proposed. The error estimation and adaptivity procedure are applied to a series of benchmark problems, demonstrating the suitability of the technique for a range of smooth and non-smooth problems. The adaptivity strategy is also integrated into a scan-based analysis workflow, capable of generating error-controlled results from scan data without the need for extensive user interactions or interventions.
KW - adaptivity
KW - error estimation
KW - immersed methods
KW - isogeometric analysis
UR - http://www.scopus.com/inward/record.url?scp=85134882496&partnerID=8YFLogxK
U2 - 10.1093/jom/ufac015
DO - 10.1093/jom/ufac015
M3 - Article
AN - SCOPUS:85134882496
SN - 1727-7191
VL - 38
SP - 204
EP - 237
JO - Journal of Mechanics
JF - Journal of Mechanics
ER -