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Paper Citation Record · LEDGER

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization

As of 7 August 2026, this Paper Citation Record lists 73 of 73 outbound references and 0 inbound Pith citation observations for arXiv:2607.09356.

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pith.paper-citation-record.v1
2607.09356 v1

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Outbound references

Observation e0677d01-fc0f-4619-818d-813f8b725a91 · outbound

This paper cites A phase field model for isothermal crystallization of oxide melts.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A phase field model for isothermal crystallization of oxide melts

Reference 2

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This paper cites Two- scale FE–FFT- and phase-field-based computational modeling of bulk microstruc- tural evolution and macroscopic material behavior.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Two- scale FE–FFT- and phase-field-based computational modeling of bulk microstruc- tural evolution and macroscopic material behavior

Reference 3

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This paper cites Three-Dimensional Landau Theory for Multivari- ant Stress-Induced Martensitic Phase Transformations. I. Austenite↔Martensite.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Three-Dimensional Landau Theory for Multivari- ant Stress-Induced Martensitic Phase Transformations. I. Austenite↔Martensite

Reference 4

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Observation 303d6c61-2d01-4f22-ad07-0167e90cd26b · outbound

This paper cites Undercooling versus stress induced martensitic phase transformation: The case of MgO – partially stabilized zirconia.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Undercooling versus stress induced martensitic phase transformation: The case of MgO – partially stabilized zirconia

Reference 5

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Observation f21bd803-be5f-4be3-a04b-4205c3a71153 · outbound

This paper cites Modelling of laminated microstructures in stress- induced martensitic transformations.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Modelling of laminated microstructures in stress- induced martensitic transformations

Reference 6

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Observation 4d3717fa-2884-49db-8a53-0ba9a103248e · outbound

This paper cites A Phase-Field Study of Martensite Formation in Fe–Mn–Al–Ni Shape Memory Alloys as Caused by Nanoscale B2-Ordered Precipitate and Matrix Phase Interplay.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A Phase-Field Study of Martensite Formation in Fe–Mn–Al–Ni Shape Memory Alloys as Caused by Nanoscale B2-Ordered Precipitate and Matrix Phase Interplay

Reference 7

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Observation 62911975-fdff-420c-b1f6-c437fc71fe07 · outbound

This paper cites Aphasefieldmodelforrate-independent crack propagation: Robust algorithmic implementation based on operator splits.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Aphasefieldmodelforrate-independent crack propagation: Robust algorithmic implementation based on operator splits

Reference 9

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Observation f8aa4d78-d105-42e5-a7e2-ed2394304e9a · outbound

This paper cites A continuum phase field model for fracture.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A continuum phase field model for fracture

Reference 10

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This paper cites A simple and unified implementation of phase field and gradient damage models.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A simple and unified implementation of phase field and gradient damage models

Reference 11

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Observation dd121f70-2a42-41df-ad17-051a7d592f18 · outbound

This paper cites A phase field formulation for hydrogen assisted cracking.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A phase field formulation for hydrogen assisted cracking

Reference 12

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Observation 7c88cbd5-da02-4786-bd92-37b6f859d8eb · outbound

This paper cites Finite-DeformationPhase-FieldChemo- mechanics for Multiphase, Multicomponent Solids.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Finite-DeformationPhase-FieldChemo- mechanics for Multiphase, Multicomponent Solids

Reference 13

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Observation 223c5f4c-dcab-4fae-a48a-93a83a82dc36 · outbound

This paper cites Cahn-Hilliard Phase Field Theory Coupled to Mechanics: Fundamentals, Numerical Implementation and Application to Topol- ogy Optimization.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Cahn-Hilliard Phase Field Theory Coupled to Mechanics: Fundamentals, Numerical Implementation and Application to Topol- ogy Optimization

Reference 14

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This paper cites Chemo- Mechanical Phase-Field Modeling of Iron Oxide Reduction with Hydrogen.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Chemo- Mechanical Phase-Field Modeling of Iron Oxide Reduction with Hydrogen

Reference 15

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This paper cites Phase-Field Modeling of Hydrogen-Promoted Fracture: Natural Incorporation of Hydrostatic Stress Dependencies via a Chemical Potential-Based Variational Formulation.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Phase-Field Modeling of Hydrogen-Promoted Fracture: Natural Incorporation of Hydrostatic Stress Dependencies via a Chemical Potential-Based Variational Formulation

Reference 16

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization The Phase-Field Method in Optimal Design

Reference 17

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A phase field model for stress-based evolu- tion of load-bearing structures. Stress based evolution of load-bearing structures

Reference 18

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Phase-Field Models for Microstructure Evolution

Reference 19

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Anintroductiontophase-fieldmodeling of microstructure evolution

Reference 20

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Phase-fieldmodelsinmaterialsscience

Reference 21

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Free Energy of a Nonuniform System. I. Interfacial Free Energy

Reference 23

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Observation c72dfa9e-e2d0-4023-8d85-76490eded8b0 · outbound

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Homogeniza- tion methods and multiscale modeling: Nonlinear problems

Reference 24

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A comparison of classical phenomenological, hybrid neural network, and high performance ROM FE2 models for open-cell foams: efficiency, accuracy, and flexibility

Reference 26

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization FE 2 computationalhomog- enization for the thermo-mechanical analysis of heterogeneous solids

Reference 27

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Computationalhomogenisationofthermo-viscoplastic composites: Large strain formulation and weak micro-periodicity

Reference 28

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Computational homoge- nization of piezoelectric materials using FE2 to determine configurational forces

Reference 29

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Two-scale computational homogeniza- tionofelectro-elasticityatfinitestrains

Reference 30

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization FE2 simulations of magnetorheological elastomers: influence of microscopic boundary conditions, microstructures and free space on the macroscopic responses of MREs

Reference 31

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A micromorphic computational homogenization frame- work for heterogeneous materials

Reference 32

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Micromor- phic Computational Homogenization for Mechanical Metamaterials with Pattern- ing Fluctuation Fields

Reference 33

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Direct FE2 modeling of heteroge- neous materials with a micromorphic computational homogenization framework

Reference 34

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Micromorphic FE2 Simulation of Plastic Deformations of Foam Structures

Reference 35

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Computation of Non-Linear Magneto-Electric Product Properties of 0-3 Com- posites

Reference 36

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization An FE2-scheme for magneto-electro- mechanically coupled boundary value problems

Reference 37

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This paper cites Phase-field elasticity model based on mechanical jump conditions.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Phase-field elasticity model based on mechanical jump conditions

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This paper cites Homogenization of vis- coplastic constitutive laws within a phase field approach.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Homogenization of vis- coplastic constitutive laws within a phase field approach

Reference 40

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This paper cites A Numerical Convergence Study Regarding Homogenization Assumptions in Phase Field Modeling.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A Numerical Convergence Study Regarding Homogenization Assumptions in Phase Field Modeling

Reference 41

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This paper cites Anefficientandquantitativephase-field model for elastically heterogeneous two-phase solids based on a partial rank-one homogenization scheme.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Anefficientandquantitativephase-field model for elastically heterogeneous two-phase solids based on a partial rank-one homogenization scheme

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A gradient regularized model for shape memory alloys

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Observation cfa21592-d63d-4f5f-97dc-dab1f790f72a · outbound

This paper cites Homogenization of Phase Transforming Materials: The Concept of Phase-Morphology and Variable Scale Separations.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Homogenization of Phase Transforming Materials: The Concept of Phase-Morphology and Variable Scale Separations

Reference 44

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Observation 982d7dc9-2276-4b5f-a442-575b87f6b281 · outbound

This paper cites A phase field approach for damage propagation in periodic microstructured materials.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A phase field approach for damage propagation in periodic microstructured materials

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This paper cites A numerical-homogenization based phase-field fracture modeling of linear elastic heterogeneous porous media.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A numerical-homogenization based phase-field fracture modeling of linear elastic heterogeneous porous media

Reference 46

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Observation c4c6ec68-9df8-4e42-bda4-ff9614eef4a4 · outbound

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Development and Calibration of a Phe- nomenological Material Model for Steel-Fiber-Reinforced High-Performance Con- crete Based on Unit Cell Calculations

Reference 47

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Multi-Phase-Field Method for Dynamic Fracture in Compos- ite Materials Based on Reduced-Order-Homogenization

Reference 48

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Amultiscaleanisotropicpolymernetworkmodelcoupledwithphasefieldfracture

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Asymptotic homogenization of phase- field fracture model: An efficient multiscale finite element framework for anisotropic fracture

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Size Effects in Martensitic Microstruc- tures: Finite-Strain Phase Field Model Versus Sharp-Interface Approach

Reference 51

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization GeneralizedGinzburg-LandauandCahn-Hilliardequationsbasedon a microforce balance

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This paper cites Elastic properties of reinforced solids: Some theoretical principles.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Elastic properties of reinforced solids: Some theoretical principles

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Diffusion and dispersion in porous media

Reference 54

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This paper cites Some Applications of the Homogenization Theory.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Some Applications of the Homogenization Theory

Reference 55

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Cosserat overall modeling of heterogeneous materials

Reference 56

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This paper cites Generalized continua and non-homogeneous boundary conditions in homogenisation methods.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Generalized continua and non-homogeneous boundary conditions in homogenisation methods

Reference 57

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization On multiscale FE analyses of heterogeneous structures: from homogenization to multigrid solvers

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Observation cf2a0290-c05d-4c27-9213-37a80fa09c10 · outbound

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Minimal loading conditions for higher order numerical homogenisation schemes

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This paper cites Homogenization of a Cauchy continuum towards a micromorphic con- tinuum.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Homogenization of a Cauchy continuum towards a micromorphic con- tinuum

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correction dated 2017-07-14. Source: crossref record 10.1016/j.jmps.2017.07.013->10.1016/j.jmps.2016.09.010:correction, observed 2026-07-11T03:11:18.346329+00:00. This notice travels one citation hop only.

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Nonlocal reaction—diffusion equations and nu- cleation

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This paper cites A numerical two-scale homogenization scheme: the FE2-method.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A numerical two-scale homogenization scheme: the FE2-method

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A Review of FE-FFT-Based Two-Scale Methods for Computational Modeling of Microstruc- ture Evolution and Macroscopic Material Behavior

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Observation fc8969fe-85e4-4ed7-8137-94a96e4b359b · outbound

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Direct FE2 for concurrent multilevel mod- elling of heterogeneous structures

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Observation d7050ec2-1989-4b63-82c8-aebcb190d944 · outbound

This paper cites Interface propagation and microstruc- ture evolution in phase field models of stress-induced martensitic phase transfor- mations.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Interface propagation and microstruc- ture evolution in phase field models of stress-induced martensitic phase transfor- mations

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This paper cites An efficient FE-implementation of implicit gradient-enhanced damage models to simulate ductile failure.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization An efficient FE-implementation of implicit gradient-enhanced damage models to simulate ductile failure

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Observation 44021da9-18b5-4a4e-bc54-1df53e466893 · outbound

This paper cites A microscopic theory for antiphase boundary motion and its application to antiphase domain coarsening.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A microscopic theory for antiphase boundary motion and its application to antiphase domain coarsening

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Observation f83f423f-5a85-4b0a-95c1-a14fdc929264 · outbound

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Theoryofphase-orderingkinetics

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Observation 398179ef-cc4e-4c78-bfc3-d1bba931ed6c · outbound

This paper cites Metastable patterns in solutions ofut =ϵ 2uxx −f(u).

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Metastable patterns in solutions ofut =ϵ 2uxx −f(u)

Reference 70

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Observation c4ce3ee6-3266-43dc-b7d3-f2ac8f710e24 · outbound

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Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Unresolved cited work

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Observation 146fe34e-cff4-4c32-ac32-ff77d6774705 · outbound

This paper cites A Reduced Order Model for a Stable Embedded Boundary Parametrized Cahn–Hilliard Phase-Field System Based on Cut Finite Elements.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization A Reduced Order Model for a Stable Embedded Boundary Parametrized Cahn–Hilliard Phase-Field System Based on Cut Finite Elements

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Observation b41ec7b0-4916-4fed-881f-d041cdb9390d · outbound

This paper cites Reduced order methods for the solution of solidification Phase- Field models.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Reduced order methods for the solution of solidification Phase- Field models

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Observation 83b9ae40-3d45-48b4-8495-e12ce6f7a57c · outbound

This paper cites Extraction of reduced-order process-structure linkages from phase-field simulations.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Extraction of reduced-order process-structure linkages from phase-field simulations

Reference 74

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This paper cites Solving Allen-Cahn and Cahn-Hilliard Equations using the Adaptive Physics Informed Neural Networks.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Solving Allen-Cahn and Cahn-Hilliard Equations using the Adaptive Physics Informed Neural Networks

Reference 75

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Observation eabbf096-8a7b-417c-a3ce-92d83c413e8b · outbound

This paper cites Self-adaptive physics-informed neural networks.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Self-adaptive physics-informed neural networks

Reference 76

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This paper cites PF-PINNs: Physics-informed neural networks for solving coupled Allen-Cahn and Cahn-Hilliard phase field equa- tions.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization PF-PINNs: Physics-informed neural networks for solving coupled Allen-Cahn and Cahn-Hilliard phase field equa- tions

Reference 77

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This paper cites Deep learning for simulating the evolution of condensed matter systems at the continuum scale: methods and applications.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Deep learning for simulating the evolution of condensed matter systems at the continuum scale: methods and applications

Reference 78

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This paper cites Generalized Continua.

Scale-Bridging Phase-Field Modeling of Microstructure Evolution by FE$^2$ Computational Homogenization Generalized Continua

Reference 79

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Pith citing papers

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