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Current Trends and Open Problems in Computational Mechanics

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Cover of 'Current Trends and Open Problems in Computational Mechanics'

Table of Contents

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    Book Overview
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    Chapter 1 Multiphysics Computation of Thermomechanical Fatigue in Electronics Under Electrical Loading
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    Chapter 2 Phase-Field Modeling of Fatigue Crack Propagation in Brittle Materials
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    Chapter 3 A Non-intrusive Global/Local Cycle-Jumping Techniques: Application to Visco-Plastic Structures
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    Chapter 4 VEM Approach for Homogenization of Fibre-Reinforced Composites with Curvilinear Inclusions
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    Chapter 5 Free Bloch Wave Propagation in Periodic Cauchy Materials: Analytical and Computational Strategies
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    Chapter 6 Divergence Free VEM for the Stokes Problem with No Internal Degrees of Freedom
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    Chapter 7 Strategy for Preventing Membrane Locking Through Reparametrization
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    Chapter 8 Model-Free Fracture Mechanics and Fatigue
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    Chapter 9 Node Based Non-invasive Form Finding Revisited—The Challenge of Remeshing
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    Chapter 10 Micropolar Modelling of Periodic Cauchy Materials Based on Asymptotic Homogenization
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    Chapter 11 Experimental and Numerical Investigation of Granules as Crash-Absorber in Ship Building
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    Chapter 12 On Hydraulic Fracturing in Fully and Partially Saturated Brittle Porous Material
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    Chapter 13 Efficient Two-Scale Modeling of Porous Media Using Numerical Model Reduction with Fully Computable Error Bounds
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    Chapter 14 Perspectives on the Master-Master Contact Formulation
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    Chapter 15 Remarks on the History of Glacier Research and the Flow Law of Ice
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    Chapter 16 Anisotropic Failure Criteria in Relation to Crack Phase-Field Modeling at Finite Strains
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    Chapter 17 A Poroelastic Element for FEAP Using AceGen
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    Chapter 18 Contact Formulation for Second Gradient Materials
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    Chapter 19 Locking-Free Mixed Finite Element Methods and Their Spurious Hourglassing Patterns
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    Chapter 20 Adaptive Virtual Element Method for Large-Strain Phase-Field Fracture
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    Chapter 21 Galerkin Formulations with Greville Quadrature Rules for Isogeometric Shell Analysis: Higher Order Elements and Locking
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    Chapter 22 Thermodynamic Topology Optimization of Layered Anisotropic Materials
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    Chapter 23 A Review of Nonlocality in Computational Contact Mechanics
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    Chapter 24 Optimal Control for Phase-Field Fracture: Algorithmic Concepts and Computations
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    Chapter 25 A Strong Form Meshfree Collocation Method: Engineering Applications Including Frictional Contact
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    Chapter 26 A Mixed XFEM Formulation to Simulate Dynamic Wave Propagation in Nearly Incompressible Materials
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    Chapter 27 What Machine Learning Can Do for Computational Solid Mechanics
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    Chapter 28 On a Physics-Compatible Approach for Data-Driven Computational Mechanics
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    Chapter 29 Wave Propagation in Layered Fiber Composites with Nonlinear Material Laws
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    Chapter 30 Finite Element Modelling of In-Stent Restenosis
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    Chapter 32 A Comparison of Matrix-Free Isogeometric Galerkin and Collocation Methods for Karhunen–Loève Expansion
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    Chapter 33 Forerunning and Bridging in Dry and Saturated Fracturing Solids
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    Chapter 34 An Optimized Material Removal Process
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    Chapter 35 How to Push Computational Bio-Mechanics to Clinical Application?
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    Chapter 36 VARTOP: A New Variational Approach to Structural and Thermal Topology Optimization Problems
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    Chapter 37 From the Pioneering Contributions by Wriggers to Recent Advances in Computational Tribology
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    Chapter 38 Assessment of the Structural Response of Steel Reinforced and Steel-Fibre Reinforced Concrete Structures with 3D Detailed Modeling: Limitations and Remedies
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    Chapter 39 Dynamic Fracture of Brittle Shells in a Space-Time Adaptive Isogeometric Phase Field Framework
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    Chapter 40 Higher Order Geometrically Exact Shear-Rigid Beam Finite Elements
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    Chapter 41 Finite Element Formulations for Beam-to-Solid Interaction–from Embedded Fibers Towards Contact
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    Chapter 42 Alternative Approaches to the Stabilization of Virtual Element Formulations for Hyperelasticity
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    Chapter 43 Finite Element Formulations for Gradient Damage at Finite Strains
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    Chapter 44 New Approaches for Progressive Damage Analysis of Fiber Reinforced Composites and Fiber Metal Laminates
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    Chapter 45 Differential Geometry of Surfaces with Application to Shell Structures
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    Chapter 46 Phase Field Modeling of Fatigue Fracture
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    Chapter 47 Challenges for the Least-Squares Finite Element Method in Solid Mechanics
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    Chapter 48 On Two-Scale Modelling of Softening Material Responses
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    Chapter 49 A Novel Approach to Phasefield-Fracture for Inelastic Materials and Finite Deformations
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    Chapter 50 Space–Time Flow Computation with Contact Between the Moving Solid Surfaces
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    Chapter 51 Higher-Order Finite Element Methods for Kohn-Sham Density Functional Theory
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    Chapter 52 Space–Time Computational FSI and Flow Analysis: 2004 and Beyond
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    Chapter 53 Synthesis of Computational Mesoscale Modeling of Cementitious Materials and Coda Wave Based Damage Identification
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    Chapter 54 On a Nonlinear Elastic Composite Shell Model with a Refined 3D Stress Analysis
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    Chapter 55 Computational Homogenization Using Convolutional Neural Networks
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    Chapter 56 Residual Stress Formation on the Powder Scale of Metal Powder Bed Fusion Processes
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    Chapter 57 Computational Modelling of Flexoelectricity: State-of-the-art and Challenges
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Title
Current Trends and Open Problems in Computational Mechanics
Published by
Springer International Publishing, January 2022
DOI 10.1007/978-3-030-87312-7
ISBNs
978-3-03-087311-0, 978-3-03-087312-7
Editors

Aldakheel, Fadi, Hudobivnik, Blaž, Soleimani, Meisam, Wessels, Henning, Weißenfels, Christian, Marino, Michele

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The data shown below were collected from the profiles of 3 X users who shared this research output. Click here to find out more about how the information was compiled.
Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 43 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 43 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 7 16%
Professor > Associate Professor 3 7%
Student > Master 3 7%
Student > Doctoral Student 2 5%
Student > Postgraduate 2 5%
Other 4 9%
Unknown 22 51%
Readers by discipline Count As %
Engineering 13 30%
Computer Science 2 5%
Physics and Astronomy 1 2%
Agricultural and Biological Sciences 1 2%
Materials Science 1 2%
Other 1 2%
Unknown 24 56%