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Engineering System Design: Modeling Techniques and Simulations Course
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Engineering System Design: Modeling Techniques and Simulations Course

Master the full spectrum of engineering system modelling — from mathematical foundations to advanced simulation workflows. This course equips engineers with the analytical tools, computational techniques, and optimisation strategies needed to design, simulate, and validate complex real-world systems. Build the technical depth that separates competent engineers from exceptional ones.

Dedika for students

What your team will master:

  • Apply systems thinking principles to decompose and architect complex engineering problems.

  • Build mathematical models using differential equations, state-space representations, and governing physical laws.

  • Implement numerical methods including finite element analysis, finite difference schemes, and ODE solvers.

  • Configure industry-standard simulation environments and automate parametric design studies efficiently.

  • Formulate and solve gradient-based and evolutionary optimisation problems for engineering design.

  • Integrate subsystem models into full digital twin architectures for multidisciplinary system validation.

How your team learns in practice Engineering System Design: Modeling Techniques and Simulations Course

How your team practises Engineering System Design: Modeling Techniques and Simulations Course

Professionals from these companies study at Dedika

ActemiumFR
Nunner LogisticsNL
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Sydel StarBR
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Aguas AndinasCL
DSMIN
MeridianbetRS
CDHCN

Course content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Engineering System Design

  • Lesson 1 • Design Objectives and Performance Metrics

    Establishes how to translate stakeholder needs into measurable performance criteria. Grounds all subsequent modelling in quantifiable design goals.

  • Lesson 2 • Engineering Design Process Overview

    Maps the iterative design cycle from problem definition to validation. Provides the procedural backbone applied in every subsequent section.

  • Lesson 3 • Introduction to Systems Thinking

    Defines systems, boundaries, and emergent behaviour in engineering contexts. Connects holistic thinking to structured design decision-making throughout the course.

  • Lesson 4 • System Decomposition and Architecture

    Teaches hierarchical decomposition of systems into subsystems and interfaces. Enables structured analysis of complex engineering problems.

Chapter 2See details

Mathematical Modelling Fundamentals

  • Lesson 1 • Governing Equations and Physical Laws

    Derives governing equations from conservation laws and constitutive relations. Provides the mathematical foundation for all system models built later.

  • Lesson 2 • State-Space Representation

    Introduces state variables and matrix formulations for multi-input, multi-output systems. Prepares students for simulation and control analysis in later sections.

  • Lesson 3 • Types of Engineering Models

    Distinguishes empirical, analytical, and numerical model categories and their appropriate use cases. Sets the selection framework used throughout the course.

  • Lesson 4 • Model Simplification and Assumptions

    Teaches principled reduction of model complexity while preserving essential behaviour. Develops judgement for balancing accuracy against computational cost.

  • Lesson 5 • Differential Equations in System Modelling

    Applies ordinary and partial differential equations to represent dynamic system behaviour. Connects mathematical formulation to physical interpretation.

Chapter 3See details

Static and Structural System Modelling

  • Lesson 1 • Stress, Strain, and Material Behaviour

    Connects applied loads to internal stress and deformation through material constitutive laws. Enables prediction of structural response under operating conditions.

  • Lesson 2 • Beam and Frame Analysis

    Models bending, shear, and deflection in beams and frames under distributed and point loads. Directly applicable to structural component design.

  • Lesson 3 • Equilibrium and Free Body Diagrams

    Establishes force and moment equilibrium as the basis for static analysis. Develops systematic diagramming skills essential for all structural models.

  • Lesson 4 • Failure Criteria and Safety Factors

    Introduces yield, fracture, and fatigue failure criteria for structural design decisions. Connects model outputs to engineering safety and reliability requirements.

  • Lesson 5 • Truss and Structural Network Models

    Applies method of joints and sections to analyse truss structures. Introduces network-based thinking for interconnected structural systems.

Chapter 4See details

Dynamic System Modelling and Analysis

  • Lesson 1 • Nonlinear Dynamic Behaviour

    Identifies and characterises nonlinear phenomena including limit cycles and bifurcations. Prepares students to recognise when linear models are insufficient.

  • Lesson 2 • Transfer Functions and Frequency Response

    Derives transfer functions from differential equations and analyses frequency-domain behaviour. Connects time-domain models to frequency-domain design tools.

  • Lesson 3 • Electrical and Thermal System Analogs

    Exploits analogies between mechanical, electrical, and thermal domains to unify modelling approaches. Enables cross-domain system integration.

  • Lesson 4 • Mechanical Dynamic Systems

    Models mass-spring-damper systems and multi-degree-of-freedom structures. Establishes the canonical dynamic model used across engineering disciplines.

  • Lesson 5 • Transient and Steady-State Response

    Analyses system response to step, ramp, and sinusoidal inputs in time domain. Provides metrics for evaluating dynamic performance against design requirements.

Chapter 5See details

Numerical Methods for System Simulation

  • Lesson 1 • Finite Difference Methods

    Discretises spatial and temporal derivatives to solve partial differential equations numerically. Extends simulation capability to distributed-parameter systems.

  • Lesson 2 • Simulation Verification and Validation

    Establishes procedures to confirm that simulations are correctly implemented and accurately represent reality. Builds professional rigour into all simulation workflows.

  • Lesson 3 • Monte Carlo and Stochastic Simulation

    Uses random sampling to propagate uncertainty through system models. Connects probabilistic inputs to distributions of system performance outputs.

  • Lesson 4 • Numerical Integration of ODEs

    Covers explicit and implicit time-stepping schemes for solving ordinary differential equations. Directly enables simulation of dynamic models from previous sections.

  • Lesson 5 • Finite Element Method Fundamentals

    Introduces element formulation, assembly, and solution for structural and thermal problems. Provides the conceptual basis for FEM software used in applied sections.

Chapter 6See details

Simulation Tools and Workflow Integration

  • Lesson 1 • Scripting and Automation in Simulation

    Automates repetitive simulation tasks using scripting languages and APIs. Increases throughput for parametric studies and design iteration.

  • Lesson 2 • Simulation Results Visualisation

    Applies visualisation techniques to extract engineering insight from large simulation datasets. Connects raw numerical output to actionable design decisions.

  • Lesson 3 • Multiphysics Simulation Environments

    Couples mechanical, thermal, fluid, and electrical solvers within unified simulation platforms. Enables modelling of systems where multiple physical domains interact.

  • Lesson 4 • Data Management and Simulation Pipelines

    Organises simulation inputs, outputs, and metadata for traceability and reproducibility. Establishes professional data governance practices for large-scale projects.

  • Lesson 5 • Block Diagram and Signal Flow Simulation

    Models dynamic systems using graphical block diagram environments for rapid prototyping. Reinforces state-space and transfer function concepts through visual implementation.

Chapter 7See details

Model-Based Design and Optimisation

  • Lesson 1 • Robust and Reliability-Based Design

    Incorporates uncertainty into optimisation to produce designs that perform well across variability. Connects probabilistic simulation to design decision-making.

  • Lesson 2 • Optimisation Problem Formulation

    Translates engineering design goals into formal objective functions, constraints, and variable bounds. Establishes the mathematical structure required by optimisation algorithms.

  • Lesson 3 • Design Space Exploration

    Maps system performance across design variable ranges using structured sampling methods. Identifies promising design regions before formal optimisation.

  • Lesson 4 • Gradient-Free and Evolutionary Methods

    Uses population-based and heuristic algorithms for non-smooth or discrete design spaces. Complements gradient-based methods for complex engineering problems.

  • Lesson 5 • Gradient-Based Optimisation Methods

    Applies derivative-based algorithms to efficiently find local optima in smooth design spaces. Covers sensitivity analysis as the key enabler of gradient computation.

Chapter 8See details

Advanced Modelling and System Integration

  • Lesson 1 • Digital Twin Concepts and Implementation

    Connects live operational data to simulation models to create continuously updated digital replicas. Positions students at the frontier of model-based engineering practice.

  • Lesson 2 • Capstone System Design Project

    Applies all course techniques to a comprehensive multidisciplinary design and simulation challenge. Demonstrates full professional competency in engineering system modelling.

  • Lesson 3 • Model Integration Across Subsystems

    Assembles subsystem models into full system simulations while managing interface consistency. Addresses the technical challenges of large-scale model integration.

  • Lesson 4 • Model Credibility and Governance

    Establishes organisational standards for model documentation, review, and approval. Ensures simulation outputs are trusted and defensible in engineering decisions.

  • Lesson 5 • Hardware-in-the-Loop Simulation

    Couples physical hardware with real-time simulation environments for system-level testing. Bridges the gap between virtual models and physical prototypes.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineer: wants to move beyond hand calculations into simulation-driven design.

  • Electrical engineer: needs to model cross-domain systems involving thermal and mechanical behaviour.

  • Aerospace graduate: ready to build rigorous modelling skills for industry job requirements.

  • Product development engineer: seeks structured methods to validate designs before physical prototyping.

  • Engineering manager: wants enough technical depth to lead and evaluate simulation teams.

  • Career changer from physics or applied maths: aiming to enter engineering modelling roles professionally.

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