Abaqus Contact Analysis Workflow

SkillAI & models

This skill gives your AI the ability to analyze multi-body contact, meaning cases where parts touch and interact under load. Once added, your AI can work through situations involving friction between surfaces, bolt-plate contact, press fits, and assemblies with contact.

Available today. Use it from your connected AI after setup.

Add the skill, then describe your parts and how they interact. Mention parts touching, friction between surfaces, bolt-plate contact, press fit, or assembly with contact so it knows what to analyze.

Then ask your AI: use the Abaqus Contact Analysis Workflow skill

What your AI can do with it

  • Analyze contact between multiple bodies
  • Model friction between surfaces
  • Evaluate bolt-plate contact
  • Assess press fits
  • Study contact behavior in assemblies

What this skill tells your AI

The instructions your AI receives, as published by cai-aa/cae-agent-hub in Skill/abaqus/analysis/abaqus-contact-analysis/SKILL.md and read by ahel’s review.

This skill guides multi-body contact analysis setup. It's a workflow skill - use it when analyzing assemblies where surfaces touch, slide, or separate.

When to Use This Skill

Route here when user mentions:

  • "Parts touching each other"
  • "Contact between surfaces"
  • "Friction between parts"
  • "Bolt and plate contact"
  • "Press fit / interference fit"
  • "Multi-body assembly"
  • "Parts sliding on each other"
  • "Impact analysis"
  • "Bearing contact"

Route elsewhere:

  • Single-body analysis → /abaqus-static-analysis
  • Just defining contact properties → /abaqus-interaction
  • Only boundary conditions → /abaqus-bc

Prerequisites

Before contact analysis setup:

  1. Separate parts exist (at least two bodies)
  2. Parts are positioned in assembly with appropriate gap/interference
  3. Material properties defined for all parts
  4. Basic understanding of which surfaces will touch

Workflow Steps

Step 1: Identify Contact Pairs

Ask the user:

  • Which surfaces will touch?
  • Is there an initial gap or interference?
  • Will surfaces slide or remain bonded?

Step 2: Determine Master vs Slave

RoleShould Be
MasterStiffer material, coarser mesh
SlaveSofter material, finer mesh

Rule: Slave surface nodes cannot penetrate master surface.

Step 3: Choose Contact Type

ScenarioApproach
Permanently bonded surfacesTie constraint (no slip/separation)
Sliding with frictionSurface-to-surface contact
Frictionless contactSurface-to-surface, no tangential
Many bodies touchingGeneral contact (auto detection)
Surface folding on itselfSelf-contact

Step 4: Define Contact Property

Configure normal behavior:

  • Hard contact - Most cases, no penetration allowed
  • Soft contact - For rubber, foam, or gradual engagement

Configure tangential behavior (if not tied):

  • Frictionless - Lubricated surfaces
  • Friction (Coulomb) - Specify coefficient

Step 5: Set Friction Coefficient

InterfaceTypical Value
Frictionless0.0
Lubricated steel0.1-0.2
Dry steel-on-steel0.3-0.5
Rubber on metal0.5-0.8

Ask user if unsure about their specific interface.

Step 6: Create Analysis Step

Contact analysis typically requires:

  • Nonlinear geometry (nlgeom=ON)
  • Smaller initial increment (0.1)
  • More increments allowed (100+)
  • Minimum increment for convergence (1e-8)

Step 7: Request Contact Outputs

Essential output variables:

  • CSTRESS - Contact pressure and shear
  • CDISP - Contact displacement
  • COPEN - Gap opening distance
  • CSLIP - Accumulated slip

Key Decisions

User NeedConfiguration
Bonded joint (welded, glued)Tie constraint
Bolted connectionFriction contact + preload
Press fitInterference + friction
Bearing loadFrictionless or low friction
Impact/crashExplicit dynamics + general contact

What to Ask User

  1. Surfaces: Which surfaces will touch?
  2. Motion: Will parts slide, separate, or stay bonded?
  3. Friction: Dry contact, lubricated, or frictionless?
  4. Gap/interference: Initial configuration?
  5. Loading: What pushes the parts together?

Validation Checklist

After setup, verify:

  • Master/slave assigned correctly (stiffer = master)
  • Contact property has normal behavior defined
  • Tangential behavior set (friction or frictionless)
  • nlgeom=ON in analysis step
  • Contact outputs requested (CSTRESS, CDISP)
  • Boundary conditions don't overconstrain

Troubleshooting

ProblemLikely CauseSolution
"Severe discontinuity"Contact chatteringAdd stabilization, smaller increments
"Too much penetration"Wrong master/slaveSwap roles, refine slave mesh
"Contact not detected"Surfaces too far apartUse adjust=ON or reduce gap
"Convergence failure"Difficult nonlinearitySmaller increments, check friction

Code Patterns

For API syntax and code examples, see:

Related Skills

  • /abaqus-interaction - Contact property details
  • /abaqus-bc - Boundary conditions
  • /abaqus-step - Nonlinear step settings
  • /abaqus-dynamic-analysis - For impact problems

Signals

GitHub stars
880
Forks
115
Last commit
Sep 2026
Advanced
Catalog kind
skill
Gateway key
abaqus-contact-analysis
Source
github.com/cai-aa/cae-agent-hub