Point and grain inspector
Hover over the map to inspect a point. Click to lock a grain selection.
Microstructure & Crystal Plasticity
Connect microscopy, transformation crystallography, parent reconstruction, microstructure evolution, process calibration and native crystal-plasticity solvers in one controlled interface.
EBSD · texture · mechanics · reconstruction · RVE
Analyze indexed orientation maps with explicit provenance, quantify grains and texture, screen slip activity, and create periodic solver-ready voxel RVEs without sending data to a third party.
Hover over a point or select a grain for crystallographic and mechanics details.
Hover over the map to inspect a point. Click to lock a grain selection.
Every cleaning, symmetry and reconstruction choice is included in exports.
Equal-area, antipodal, MRD-normalized KDE.
Equal-area, antipodal, MRD-normalized KDE.
Equal-area, antipodal, MRD-normalized KDE.
Specimen Z in the crystal fundamental region.
Fractions and deterministic bootstrap confidence intervals.
| Component | Fraction | 95% interval |
|---|---|---|
| Run texture analysis. | ||
Enter a crystal direction family for the selected symmetry.
Convert direct and reciprocal indices with a general triclinic metric. Four-index hexagonal directions and planes are accepted.
Not generated
SEM · BSE · EBSD · EDS · phase maps · uncertainty · physics
Register multimodal microscopy, segment phases, quantify particles and interfaces, propagate uncertainty, and hand measured microstructures directly to MatAMet reconstruction and crystal-plasticity workflows.
| ID | ECD | Aspect | Feret max | Circularity | Convexity | Solidity | Nearest edge | Associated sites |
|---|
Run the physics calculation after particle correlation.
| Metric | State A | State B | Δ | Change |
|---|
Transformation history · recrystallization · precipitation · processing
Reconstruct mechanisms, quantify uncertainty, compare competing hypotheses, identify robust process windows and hand evidence-graded states to the existing native solvers.
Metric tensor · cross tensor · direct crystal-basis rotations
Compose rotations, rotate crystallographic vectors and inspect EBSD misorientation axes directly in non-Cartesian crystal bases without treating an arbitrary Cartesian crystal frame as fundamental.
The metric and cross tensors are convention-independent. The structure tensor shown here is only the conventional Cartesian validation frame.
Run a composition.
Run a composition.
The direct metric/cross-tensor route will be compared against a conventional Cartesian structure-tensor route.
Verify the spherical cosine and sine laws for three directions using only the crystal metric.
Choose three non-coplanar directions.
Parent IDs are spatially split by child-grain connectivity. Unassigned grains remain neutral.
| Parent | Children | Area | Mean residual | Max residual | Confidence |
|---|
Decision-grade result
Area-weighted coverage, residual tails, ambiguity, variant richness and spatial coherence are combined without treating the score as proof of a unique mechanism.
| Relationship | Evidence | Area coverage | P95 residual | Confidence | Topology | Relative weight |
|---|
Run a reconstruction first.
Mechanism evidence
Combines λ₂ compatibility, rank-one quality, volume change and lattice-parameter sensitivity. It never upgrades an approximate plane into a PTMC solution.
Calculate a transformation first.
| Time | T | ρ | Pressure | Nuclei density | Xrex | Mean size |
|---|
Predictive envelope
Runs a deterministic parameter ensemble around the active model and reports t10/t50/t90, final uncertainty, site contributions and dominant sensitivity drivers.
| Input | Outcome | Spearman | Interpretation |
|---|
Population physics
Preserves the measured distribution, separates count-, volume- and pinning-weighted sizes, and reports when precipitation nucleates, saturates and begins to coarsen.
Run fragmentation or precipitation.
| Score | Cold reduction | Anneal time | Strength | Grain size | Earing risk | Surface risk |
|---|
Robust process design
Replaces a single weighted winner with explicit constraints, nondominated candidates and stability against small process variation.
| Variable | Min | P10 | Median | P90 | Max |
|---|
| Input | Outcome | Spearman |
|---|
| Peak time | Score | Candidate mechanism | Layer | X | Y |
|---|
Evidence-aware event review
Each event receives duration, dominant evidence, confidence and stability across nearby thresholds. A label column enables precision, recall and F1 reporting.
| Time | Candidate | Duration | Dominant evidence | Confidence | Threshold stability |
|---|
Run event detection.
| Parameter | Estimate | 95% low | 95% high | Sensitivity |
|---|
Transferability check
Calibration quality is judged on held-out predictions, fold-to-fold parameter variation, residual bias, heteroscedasticity and autocorrelation—not calibration R² alone.
| Parameter | Fold mean | SD | CV | Min | Max |
|---|
Selection uses cross-validation on the training partition only; final metrics remain held out.
| Model | CV score | Fold SD | Configuration | Status |
|---|
| Feature | Importance | Repeat SD |
|---|
Run an experiment.
Model-agnostic feature perturbation around one held-out observation.
Train a model first.
Microscopy machine learning
Train a lightweight random-forest segmentation model from SynchroMet labels or an image/label pair. Intensity, colour, local statistics, edges, texture proxies and spatial coordinates are used with held-out pixel validation and uncertainty maps.
| Class | Precision | Recall | F1 | Support |
|---|
| ID | Type | Label | Details |
|---|
Research authority
Checks orphan entities, broken relationships and missing core metadata before the graph is treated as a reproducible research record.
Build the graph first.
Shape Memory Alloys & Nitinol · Martensite Engineering Laboratory
One synchronized environment for B2→B19′ crystallography, PTMC/WLR, correspondence theory, cofactor and shear/shear compatibility, lattice metrology, variant selection, self-accommodation, transition-layer dislocations, cyclic constitutive response, elastocaloric screening and model handoff.
Changes here propagate through every analysis tab.
Solves correspondence variants, rank-one transformation twins and invariant-plane laminate solutions from the active lattice state.
| HPV | CV pair | Minor fraction | Twin shear | Habit normal B2 | IPS residual |
|---|
Compares metric-correspondence compatibility with stretch/cofactor criteria and evaluates design targets.
Evaluates the atom-contact construction and compares its lattice output with the active XRD-derived state.
The embedded table preserves the reported B2/B19′ parameters and uncertainties. Interior CSS values are explicitly marked as endpoint-constrained interpolation, not measurements.
| Ni (at.%) | Ms (K) | aB2 (nm) | a / b / c B19′ (nm) | β (°) | CSS basis |
|---|
CSV columns: time,temperature,heatFlow. Baseline, transformation intervals, hysteresis, enthalpy, entropy and dissipated-energy screens are calculated.
Import Pawley/Rietveld-refined lattice parameters with columns T,aB2,a,b,c,beta and optional u_* uncertainties.
Combines calculated shape-strain cancellation with the measured 2/3/4/6-HPVC and critical-slip-stress trends.
Ranks reorientation and deformation-twinning trajectories across parent orientations under tension or compression.
Scans B2 {110}<001> slip systems for the greatest reduction of a logarithmic-strain incompatibility indicator.
| Rank | Slip plane | Direction | Best shear | Incompatibility | LID-plane angle |
|---|
Triangulates a 3D interface normal from traces measured on two or more known section planes, then compares it with PTMC and invariant-line/eigenplane predictions.
Runs reproducible stress-, strain- and temperature-controlled paths with martensite-fraction tracking and explicit calibration warnings.
Runs a transparent, calibratable cycle-evolution law for transformation-temperature drift, residual strain, recoverable-strain loss and hysteresis change. This is separate from structural crack-life prediction.
Ranks binary-NiTi candidates, packages crystallographic results and creates handoffs for independent PTMC, OpenSees and native constitutive implementations.
For full 3D thermomechanical behavior, use the exported parameters with a validated SMA UMAT or custom MOOSE/OpenSees material and benchmark against cyclic experiments.
Native open-source solver
LANL VPSC mean-field polycrystal plasticity and texture evolution.
Upload a complete native case. Preflight validates the structure without requiring an installed executable; Run then invokes the configured binary.
Files are not silently converted between solver conventions.
Executable, version, resource ceiling and command configuration.
Live log, cancellation, result summary and files.
Native open-source solver
DAMASK spectral grid solver for voxel-resolved crystal plasticity.
Upload a complete native case. Preflight validates the structure without requiring an installed executable; Run then invokes the configured binary.
Files are not silently converted between solver conventions.
Executable, version, resource ceiling and command configuration.
Live log, cancellation, result summary and files.
Native open-source solver
LANL large-strain EVPFFT for local fields, grain rotation and texture evolution.
Upload a complete native case. Preflight validates the structure without requiring an installed executable; Run then invokes the configured binary.
Files are not silently converted between solver conventions.
Executable, version, resource ceiling and command configuration.
Live log, cancellation, result summary and files.
Native open-source solver
Finite-element crystal plasticity through a configured MOOSE-compatible solver.
Upload a complete native case. Preflight validates the structure without requiring an installed executable; Run then invokes the configured binary.
Files are not silently converted between solver conventions.
Executable, version, resource ceiling and command configuration.
Live log, cancellation, result summary and files.