Academic Journal

Spatial adaptivity of the SAAF and Weighted Least Squares (WLS) forms of the neutron transport equation using constraint based, locally refined, isogeometric analysis (IGA) with dual weighted residual (DWR) error measures

التفاصيل البيبلوغرافية
العنوان: Spatial adaptivity of the SAAF and Weighted Least Squares (WLS) forms of the neutron transport equation using constraint based, locally refined, isogeometric analysis (IGA) with dual weighted residual (DWR) error measures
المؤلفون: Latimer, C, Kophazi, J, Eaton, M, McClarren, R
المساهمون: Engineering & Physical Science Research Council (EPSRC), Engineering & Physical Science Research Council (E, Engineering and Physical Sciences Research Council, Rolls-Royce Plc
المصدر: 31 ; 1
بيانات النشر: Elsevier
سنة النشر: 2020
المجموعة: Imperial College London: Spiral
مصطلحات موضوعية: Science & Technology, Technology, Physical Sciences, Computer Science, Interdisciplinary Applications, Physics, Mathematical, Nuclear physics, Neutron transport, Isogeometric analysis, Adjoint, Adaptive mesh refinement, Local refinement, 01 Mathematical Sciences, 02 Physical Sciences, 09 Engineering, Applied Mathematics
الوصف: This paper describes a methodology that enables NURBS (Non-Uniform Rational B-spline) based Isogeometric Analysis (IGA) to be locally refined. The methodology is applied to continuous Bubnov-Galerkin IGA spatial discretisations of second-order forms of the neutron transport equation. In particular this paper focuses on the self-adjoint angular flux (SAAF) and weighted least squares (WLS) equations. Local refinement is achieved by constraining degrees of freedom on interfaces between NURBS patches that have different levels of spatial refinement. In order to effectively utilise constraint based local refinement, adaptive mesh refinement (AMR) algorithms driven by a heuristic error measure or forward error indicator (FEI) and a dual weighted residual (DWR) or goal-based error measure (WEI) are derived. These utilise projection operators between different NURBS meshes to reduce the amount of computational effort required to calculate the error indicators. In order to apply the WEI to the SAAF and WLS second-order forms of the neutron transport equation the adjoint of these equations are required. The physical adjoint formulations are derived and the process of selecting source terms for the adjoint neutron transport equation in order to calculate the error in a given quantity of interest (QoI) is discussed. Several numerical verification benchmark test cases are utilised to investigate how the constraint based local refinement affects the numerical accuracy and the rate of convergence of the NURBS based IGA spatial discretisation. The nuclear reactor physics verification benchmark test cases show that both AMR algorithms are superior to uniform refinement with respect to accuracy per degree of freedom. Furthermore, it is demonstrated that for global QoI the FEI driven AMR and WEI driven AMR produce similar results. However, if local QoI are desired then WEI driven AMR algorithm is more computationally efficient and accurate per degree of freedom.
نوع الوثيقة: article in journal/newspaper
اللغة: unknown
ردمك: 978-5-00162-614-5
5-00162-614-5
تدمد: 0021-9991
Relation: Journal of Computational Physics; http://hdl.handle.net/10044/1/83332; EP/J002011/1; EP/K503733/1; EP/R511547/1; EP/M507878/1; PO 5001626145
DOI: 10.1016/j.jcp.2020.109941
الاتاحة: http://hdl.handle.net/10044/1/83332
https://doi.org/10.1016/j.jcp.2020.109941
Rights: © 2021 Elsevier Ltd. All rights reserved. This manuscript is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International Licence http://creativecommons.org/licenses/by-nc-nd/4.0/ ; https://creativecommons.org/licenses/by-nc-nd/4.0/ ; 2021-10-21
رقم الانضمام: edsbas.FC302EEF
قاعدة البيانات: BASE
الوصف
ردمك:9785001626145
5001626145
تدمد:00219991
DOI:10.1016/j.jcp.2020.109941