abaqus-step
Define analysis steps and procedures. Use when user mentions static analysis, dynamic step, frequency analysis, heat transfer step, or asks about analysis type, time increments, or nlgeom.
Best use case
abaqus-step is best used when you need a repeatable AI agent workflow instead of a one-off prompt.
Define analysis steps and procedures. Use when user mentions static analysis, dynamic step, frequency analysis, heat transfer step, or asks about analysis type, time increments, or nlgeom.
Teams using abaqus-step should expect a more consistent output, faster repeated execution, less prompt rewriting.
When to use this skill
- You want a reusable workflow that can be run more than once with consistent structure.
When not to use this skill
- You only need a quick one-off answer and do not need a reusable workflow.
- You cannot install or maintain the underlying files, dependencies, or repository context.
Installation
Claude Code / Cursor / Codex
Manual Installation
- Download SKILL.md from GitHub
- Place it in
.claude/skills/abaqus-step/SKILL.mdinside your project - Restart your AI agent — it will auto-discover the skill
How abaqus-step Compares
| Feature / Agent | abaqus-step | Standard Approach |
|---|---|---|
| Platform Support | Not specified | Limited / Varies |
| Context Awareness | High | Baseline |
| Installation Complexity | Unknown | N/A |
Frequently Asked Questions
What does this skill do?
Define analysis steps and procedures. Use when user mentions static analysis, dynamic step, frequency analysis, heat transfer step, or asks about analysis type, time increments, or nlgeom.
Where can I find the source code?
You can find the source code on GitHub using the link provided at the top of the page.
SKILL.md Source
# Abaqus Step Skill This skill defines analysis steps and procedures in Abaqus. Steps control what physics are solved and how the solution proceeds. ## When to Use This Skill **Route here when user mentions:** - "static analysis", "dynamic step", "frequency analysis" - "heat transfer step", "thermal step", "transient analysis" - "analysis type", "time increments", "nlgeom" - "convergence issues", "increment size", "time step" - "multi-step analysis", "sequential loading" - "buckling analysis", "modal analysis" - "impact simulation", "crash analysis" **Route elsewhere:** - Applying boundary conditions → `/abaqus-bc` - Applying loads → `/abaqus-load` - Setting up optimization → `/abaqus-optimization` - Configuring output requests → `/abaqus-output` ## Workflow: Creating Analysis Steps ### Step 1: Understand User's Physics Ask if unclear: - **What physics?** Stress, vibration, heat transfer, coupled? - **Static or dynamic?** Constant load vs time-varying? - **Linear or nonlinear?** Small or large deformations? ### Step 2: Choose Step Type | Analysis Goal | Step Type | Key Parameter | |---------------|-----------|---------------| | Stress under constant load | StaticStep | nlgeom=OFF/ON | | Natural frequencies | FrequencyStep | numEigen | | Buckling modes | BuckleStep | numEigen | | Transient dynamics (smooth) | ImplicitDynamicsStep | timePeriod | | Impact/crash | ExplicitDynamicsStep | timePeriod | | Heat conduction | HeatTransferStep | response | | Thermal + structural | CoupledTempDisplacementStep | timePeriod | | Harmonic response | SteadyStateDynamicsStep | frequencyRange | **Most common:** StaticStep with nlgeom=OFF for linear stress analysis. ### Step 3: Determine Linearity | Condition | nlgeom Setting | When | |-----------|----------------|------| | Small deformation, linear material | OFF | Default, fastest | | Large rotation/displacement | ON | Thin structures, cables | | Plasticity | ON | Material yields | | Contact | ON | Parts touching | | Buckling | ON | Post-buckling behavior | ### Step 4: Configure Increment Control | Convergence Difficulty | initialInc | minInc | maxInc | |------------------------|------------|--------|--------| | Easy (linear) | 1.0 | 1e-6 | 1.0 | | Moderate | 0.1 | 1e-8 | 0.2 | | Difficult (contact, plasticity) | 0.01 | 1e-12 | 0.05 | ### Step 5: Chain Multiple Steps (if needed) For sequential loading: 1. First step uses `previous='Initial'` 2. Subsequent steps chain from previous step name 3. Each step can have different physics or settings ## Key Parameters | Parameter | Purpose | Typical Value | |-----------|---------|---------------| | timePeriod | Duration of step | 1.0 for static | | initialInc | Starting increment size | 0.1 for nonlinear | | maxNumInc | Maximum iterations | 100 | | minInc | Smallest allowed increment | 1e-8 | | maxInc | Largest allowed increment | 0.1-1.0 | | numEigen | Modes to extract | 10 | | deltmx | Max temp change per increment | 5.0-10.0 | ## Special Considerations ### Frequency/Modal Analysis - Always from Initial step (no preload needed for basic modal) - Use LANCZOS eigensolver for large models - Extract 10-20 modes typically ### Buckling Analysis - Usually follows a load step (to apply reference load) - Eigenvalues are load multipliers - First positive eigenvalue is critical ### Explicit Dynamics - Time period should be very short (milliseconds) - Increment size determined automatically - Mass scaling may be needed for quasi-static problems ### Heat Transfer - STEADY_STATE for equilibrium temperature - TRANSIENT for time-varying temperature - deltmx controls accuracy vs speed ## Troubleshooting | Problem | Likely Cause | Solution | |---------|--------------|----------| | "Too many increments" | Convergence difficulty | Reduce maxInc, increase maxNumInc | | "Negative eigenvalues" | Unconstrained or unstable | Check BCs, add stabilization | | "Time increment too small" | Severe nonlinearity | Add stabilization, check material | | "Explicit time increment" | Very small elements | Use mass scaling or coarsen mesh | ## Validation Checklist After step creation, verify: - [ ] Step type matches analysis physics - [ ] nlgeom setting appropriate for deformation level - [ ] Increment control parameters reasonable - [ ] Step chains correctly from previous - [ ] Time period appropriate for transient analysis ## Code Patterns For actual API syntax and code examples, see: - [API Quick Reference](references/api-quick-ref.md) - [Common Patterns](references/common-patterns.md) - [Troubleshooting Guide](references/troubleshooting.md)
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abaqus-thermal-analysis
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abaqus-static-analysis
Complete workflow for static structural analysis. Use when analyzing stress, displacement, or reaction forces under constant loads. For strength and stiffness evaluation.
abaqus-shape-optimization
Optimize fillet/notch geometry. Use when user mentions stress concentration, fillet optimization, reshaping surfaces, or reducing peak stress. Moves surfaces only.
abaqus-output
Configure output requests - field outputs, history outputs. Use when user asks what results to save, output variables, reduce output file size, or history output.
abaqus-optimization
Configure Tosca optimization. Use when user mentions design response, objective function, optimization constraint, or SIMP penalty. Base module for topology/shape optimization.
abaqus-odb
Read analysis results. Use when user asks about maximum stress, extracting displacements, reaction forces, or exporting results. Post-processes ODB files.
abaqus-modal-analysis
Complete workflow for modal/frequency analysis - extract natural frequencies and mode shapes. Use for vibration analysis and resonance avoidance.
abaqus-mesh
Generate finite element meshes. Use when user mentions mesh, elements, nodes, refine mesh, mesh size, or asks about element types like C3D8R, C3D10, S4R.
abaqus-material
Define material properties for FEA models. Use when user mentions steel, aluminum, Young's modulus, elastic, plastic, density, or asks about material properties.
abaqus-load
Apply forces and pressures to structures. Use when user asks to apply a force, add pressure, put a load on, or mentions gravity, point loads, or distributed forces.