Numerical integration approaches for finite element simulations
dc.contributor.advisor
Papanicolopulos, Stefanos
dc.contributor.advisor
Polydorides, Nick
dc.contributor.author
Wang, Weizhu
dc.date.accessioned
2024-11-20T16:29:01Z
dc.date.available
2024-11-20T16:29:01Z
dc.date.issued
2024-11-20
dc.description.abstract
This thesis presents a comprehensive study on the development and application of novel
numerical integration methods, particularly focusing on Gaussian-type cubature rules and
their implications in Finite Element Method (FEM). The research is structured into three pivotal
segments, each targeting different aspects of numerical integration to enhance the precision
and efficiency of cubature rules within computational geometries.
The first segment addresses the derivation of explicit consistency conditions for constructing
optimal fully symmetric cubature rules for tetrahedra. Utilizing a novel non-monomial fully symmetric polynomial basis, this work successfully defines the consistency conditions necessary for determining the most efficient rule structures, thereby minimizing the number of integration points required without compromising the accuracy.
In the second segment, the focus shifts to exploring rotational symmetry and multisymmetric
polynomials in the moment equations for cubature rules. This includes the development of a
new rotationally symmetric monomial basis, which simplifies the complicated system of moment equations. The resultant novel cubature rules, particularly for tetrahedra, demonstrate fewer integration points compared to existing rules, thus enhancing computational efficiency.
The final segment investigates the formulation of FEM and the patch test for new elements.
It introduces a groundbreaking framework that leverages the established theory of cubature
formulas to devise rules that not only pass the patch test but do so with fewer integration
points. This framework is pivotal for advancing the blending of numerical methods into practical engineering applications, ensuring both reliability and efficiency.
Overall, the thesis encapsulates significant advancements in the field of numerical integration, presenting new methodologies and algorithms that refine the creation of cubature rules. These innovations provide substantial contributions to the domains of computational mathematics and engineering, particularly in the optimization of FEM. The results published within this thesis highlight the potential of these new approaches to set a foundation for future research in numerical integration methods.
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dc.identifier.uri
https://hdl.handle.net/1842/42675
dc.identifier.uri
http://dx.doi.org/10.7488/era/5369
dc.language.iso
en
en
dc.publisher
The University of Edinburgh
en
dc.relation.hasversion
Wang,W., & Papanicolopulos, S.-A. (2023). Explicit consistency conditions for fully symmetric cubature on the tetrahedron. Engineering with Computers. doi: 10.1007/s00366-023 -01845-4
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dc.subject
Numerical integration
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dc.subject
finite element simulation
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dc.subject
Finite Element Method
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dc.subject
computational geometries
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dc.subject
cubature rules
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dc.subject
rotational symmetry
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dc.subject
multisymmetric polynomials in the moment equation
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dc.title
Numerical integration approaches for finite element simulations
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dc.title.alternative
The numerical integration approaches for finite element simulations
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dc.type
Thesis or Dissertation
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dc.type.qualificationlevel
Doctoral
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dc.type.qualificationname
PhD Doctor of Philosophy
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