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PTC Creo Simulate Training
More than 2 million students worldwide

PTC Creo Simulate Training

Master PTC Creo Simulate and gain the finite element analysis skills that engineering teams rely on every day. This training takes you from FEA fundamentals through advanced buckling, fatigue, and nonlinear analyses using real simulation workflows. Build the technical confidence to validate designs, reduce physical prototypes, and deliver results that hold up under engineering scrutiny.

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What you will learn:

This course covers the complete Creo Simulate workflow, starting with FEA theory and geometry preparation and moving through material assignment, boundary conditions, meshing strategies, and solver configuration. You will run static, modal, thermal, and advanced nonlinear analyses and learn to interpret stress, displacement, and temperature results with precision. Design study tools let you automate sensitivity sweeps and optimisation runs directly within Creo Parametric. Assembly-level simulation, PDM integration with Windchill, and validation methods round out the curriculum. You will also develop professional reporting and peer review skills to communicate findings to both technical and non-technical stakeholders.

How you study in practice PTC Creo Simulate Training

How you practise PTC Creo Simulate Training

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Course content

8 Chapters • 36 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Introduction to Creo Simulate

  • Lesson 1 • Simulation Workflow and Study Types

    Outlines the end-to-end process from geometry preparation to result extraction. Students identify which study type matches each engineering question.

  • Lesson 2 • Geometry Preparation for Simulation

    Proper geometry cleanup prevents mesh failures and inaccurate results. Students apply idealisation techniques directly within Creo Parametric.

  • Lesson 3 • Creo Simulate Interface Overview

    Familiarises students with the Simulate ribbon, model tree, and graphics area. Efficient navigation reduces setup errors and accelerates workflow.

  • Lesson 4 • FEA Fundamentals and Simulation Concepts

    Core finite element analysis theory underpins all simulation work in Creo. Understanding stress, strain, and discretisation prepares students for accurate model setup.

Chapter 2See details

Material Properties and Model Definition

  • Lesson 1 • Assigning Materials to Parts and Regions

    Material assignment links property data to geometry for solver processing. Students assign materials at part, body, and region levels.

  • Lesson 2 • Idealisation: Shells, Beams, and Springs

    Idealisation reduces model complexity while preserving structural behaviour. Students apply shell pairs, beam sections, and spring connectors appropriately.

  • Lesson 3 • Creating and Editing Custom Materials

    Custom materials are required when library entries do not match real components. Students define isotropic and orthotropic property sets.

  • Lesson 4 • Material Library and Properties

    Creo's material library provides predefined engineering materials with editable properties. Accurate material data directly controls result quality.

Chapter 3See details

Constraints and Loads Application

  • Lesson 1 • Structural Load Types and Application

    Structural loads drive deformation and stress in the model. Students apply forces, pressures, moments, and bearing loads to geometry entities.

  • Lesson 2 • Contact and Interface Conditions

    Contact conditions model interaction between touching surfaces in assemblies. Students define bonded, free, and friction contact interfaces.

  • Lesson 3 • Load Sets and Constraint Sets

    Organising loads and constraints into named sets enables multiple scenario testing. Students create, combine, and manage sets for parametric studies.

  • Lesson 4 • Thermal Loads and Prescribed Temperatures

    Thermal boundary conditions enable heat transfer and thermomechanical analyses. Students set temperatures, heat fluxes, and convection coefficients.

  • Lesson 5 • Displacement Constraints Fundamentals

    Displacement constraints define how a model is supported and prevent rigid-body motion. Correct constraint placement is critical for meaningful stress results.

Chapter 4See details

Meshing Strategies and Controls

  • Lesson 1 • Local Mesh Controls

    Local controls refine mesh density at stress concentrations and critical features. Students apply edge, surface, and volume mesh controls.

  • Lesson 2 • AutoGEM Mesh Generation

    AutoGEM automatically creates tetrahedral meshes from solid geometry. Students configure global element size and polynomial order settings.

  • Lesson 3 • Mesh Quality Checks and Repair

    Poor mesh quality causes solver errors and inaccurate results. Students use quality metrics to identify and correct problematic elements.

  • Lesson 4 • Shell and Beam Mesh Considerations

    Shell and beam idealisations require specific meshing approaches distinct from solid meshing. Students mesh midsurfaces and verify element orientation.

Chapter 5See details

Running and Managing Analyses

  • Lesson 1 • Static Analysis Setup and Execution

    Static analysis is the most common study type for structural evaluation. Students configure convergence criteria, output quantities, and run the solver.

  • Lesson 2 • Steady-State Thermal Analysis

    Steady-state thermal analysis determines temperature distribution under constant conditions. Students configure thermal boundary conditions and review heat flux output.

  • Lesson 3 • Managing Analysis Files and Runs

    Organised file management prevents data loss and supports result traceability. Students manage study directories, run logs, and result archives.

  • Lesson 4 • Solver Settings and Convergence Control

    Solver convergence settings control accuracy and run time. Students adjust polynomial order, convergence percentage, and multi-pass adaptive settings.

  • Lesson 5 • Modal Analysis for Natural Frequencies

    Modal analysis identifies natural frequencies and mode shapes to prevent resonance. Students set mode count, frequency range, and mass participation targets.

Chapter 6See details

Results Visualisation and Interpretation

  • Lesson 1 • Stress and Displacement Results

    Von Mises stress and displacement are primary outputs for structural evaluation. Students locate peak values and assess safety margins against material limits.

  • Lesson 2 • Result Window Setup and Display

    Result windows control how quantities are displayed on the model. Students configure quantity type, display component, and colour scale settings.

  • Lesson 3 • Graph and Probe Tools

    Graphs and probes provide quantitative data at specific locations or along paths. Students create XY graphs and use the probe tool for point queries.

  • Lesson 4 • Reaction Forces and Measures

    Measures extract scalar quantities such as reaction forces and maximum displacement. Students define and evaluate measures to validate boundary conditions.

  • Lesson 5 • Generating Simulation Reports

    Formal reports document study setup, results, and conclusions for engineering records. Students generate HTML and Word-format reports with embedded images.

Chapter 7See details

Advanced Analysis Techniques

  • Lesson 1 • Large Deformation and Nonlinear Static

    Nonlinear static analysis accounts for geometric stiffening and large displacement effects. Students enable large deformation flags and monitor incremental convergence.

  • Lesson 2 • Transient Thermal Analysis

    Transient thermal analysis tracks temperature evolution over time under changing conditions. Students define time steps, initial conditions, and time-varying loads.

  • Lesson 3 • Fatigue Analysis Fundamentals

    Fatigue analysis estimates component life under cyclic loading using S-N curve data. Students define loading spectra and review life and damage factor outputs.

  • Lesson 4 • Buckling Analysis Setup

    Buckling analysis predicts critical load factors for slender structures under compression. Students define pre-stress static loads and interpret buckling mode shapes.

  • Lesson 5 • Prestress Modal Analysis

    Prestress modal analysis captures frequency shifts caused by applied loads or thermal states. Students link a static study to a modal study for coupled results.

Chapter 8See details

Design Studies and Optimisation

  • Lesson 1 • Reviewing and Applying Optimised Results

    Optimisation results must be validated and applied back to the Creo Parametric model. Students review convergence history and update model dimensions.

  • Lesson 2 • Global Sensitivity and Range Studies

    Global sensitivity studies sweep multiple parameters across defined ranges simultaneously. Students identify dominant variables and interaction effects.

  • Lesson 3 • Optimisation Study Configuration

    Optimisation studies minimise or maximise an objective measure within defined constraints. Students set goals, limits, and variable bounds for automated optimisation.

  • Lesson 4 • Sensitivity Design Studies

    Sensitivity studies reveal how output measures respond to parameter changes. Students define design variables and evaluate single-parameter sensitivity plots.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical design engineer: needs to verify component strength without outsourcing analysis.

  • Product development engineer: wants simulation skills to accelerate design decision-making.

  • Manufacturing engineer: seeks to predict structural failures before parts reach production.

  • Recent engineering graduate: building practical FEA skills to stand out in the job market.

  • CAD technician transitioning to engineering: expanding capabilities into structural simulation work.

  • Aerospace or automotive engineer: requires validated simulation workflows for regulated design environments.

What our students say

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