AbstractThe inverse Finite Element Method (iFEM) is a state-of-the-art methodology originally introduced by Tessler and Spangler for real-time reconstruction of full-field structural displacements in plate and shell structures that are instrumented by strain sensors. This inverse problem is commonly known as shape sensing. In this effort, a new four-node quadrilateral inverse-shell element, iQS4, is developed that expands the library of existing iFEM-based elements. This new element includes hierarchical drilling rotation degrees-of-freedom (DOF) and further extends the practical usefulness of iFEM for shape sensing analysis of large-scale structures. The iFEM/iQS4 formulation is derived from a weighted-least-squares functional that has Min...
Known as “shape sensing”, real-time reconstruction of a structure’s three-dimensional displacements ...
Methods for real-time reconstruction of structural displacements using measured strain data is an ar...
Shape sensing, i.e., reconstruction of the displacement field of a structure from surface-measured s...
The inverse Finite Element Method (iFEM) is a state-of-the-art methodology originally introduced by ...
AbstractThe inverse Finite Element Method (iFEM) is a state-of-the-art methodology originally introd...
The reconstruction of 2D/3D deformation and stress fields using a limited number of strain sensors i...
A new state-of-the art methodology named as inverse Finite Element Method (iFEM) is adopted to solve...
The inverse Finite Element Method (iFEM) is applied to reconstruct the displacement field of a shell...
The inverse finite element method (iFEM) is a powerful tool for shape sensing and structural health ...
In this study, we methodologically compare and review the accuracy and performance of C0-continuous ...
Shape sensing is one of most crucial components of typical structural health monitoring systems and ...
Shape sensing, i.e., reconstruction of the displacement field of a structure from surface-measured st...
The inverse finite element method (iFEM) is an efficient algorithm developed for real-time monitorin...
Known as “shape sensing”, real-time reconstruction of a structure’s three-dimensional displacements ...
Methods for real-time reconstruction of structural displacements using measured strain data is an ar...
Shape sensing, i.e., reconstruction of the displacement field of a structure from surface-measured s...
The inverse Finite Element Method (iFEM) is a state-of-the-art methodology originally introduced by ...
AbstractThe inverse Finite Element Method (iFEM) is a state-of-the-art methodology originally introd...
The reconstruction of 2D/3D deformation and stress fields using a limited number of strain sensors i...
A new state-of-the art methodology named as inverse Finite Element Method (iFEM) is adopted to solve...
The inverse Finite Element Method (iFEM) is applied to reconstruct the displacement field of a shell...
The inverse finite element method (iFEM) is a powerful tool for shape sensing and structural health ...
In this study, we methodologically compare and review the accuracy and performance of C0-continuous ...
Shape sensing is one of most crucial components of typical structural health monitoring systems and ...
Shape sensing, i.e., reconstruction of the displacement field of a structure from surface-measured st...
The inverse finite element method (iFEM) is an efficient algorithm developed for real-time monitorin...
Known as “shape sensing”, real-time reconstruction of a structure’s three-dimensional displacements ...
Methods for real-time reconstruction of structural displacements using measured strain data is an ar...
Shape sensing, i.e., reconstruction of the displacement field of a structure from surface-measured s...