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Composite Materials Course
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Composite Materials Course

Master the full engineering lifecycle of composite materials, from fiber-matrix selection and laminate analysis to manufacturing, inspection, and structural certification. This course delivers the technical depth that aerospace, marine, and industrial engineers need to design and qualify high-performance composite structures with confidence.

Dedika for students

What your team will master:

You will build a rigorous understanding of composite materials science, covering constituent properties, micromechanics, and classical lamination theory. You will learn to select and apply manufacturing processes including autoclave cure, resin transfer molding, and automated fiber placement. The course covers tooling design, cure monitoring, and non-destructive testing methods used in production environments. You will apply finite element modeling and laminate optimization strategies to real structural load cases. Joining methods, field repair procedures, and damage tolerance frameworks are addressed in detail. Finally, you will navigate mechanical test programs and regulatory certification pathways to generate statistically valid design allowables.

How your team learns in practice Composite Materials Course

How your team practices Composite Materials Course

Professionals from these companies study at Dedika

ActemiumFR
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Sydel StarBR
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CDHCN

Course Content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Composite Materials

  • Lesson 1 • Introduction to Composite Properties

    Surveys mechanical, thermal, and electrical properties achievable in composites. Sets performance benchmarks used throughout the course.

  • Lesson 2 • Definition and Historical Development

    Traces composites from ancient mud-brick to modern aerospace applications. Provides context for why composites replaced conventional materials in high-performance uses.

  • Lesson 3 • Classification of Composite Systems

    Categorizes composites by matrix type, reinforcement geometry, and scale. Enables systematic material selection based on structural classification.

  • Lesson 4 • Constituent Materials Overview

    Examines properties of fibers and matrices individually before combination. Connects constituent behavior to composite-level performance expectations.

  • Lesson 5 • Roles of Matrix and Reinforcement

    Explains load transfer, protection, and shape-giving functions of each phase. Builds understanding of synergy that makes composites superior to monolithic materials.

Chapter 2See details

Fiber Reinforcements and Matrix Systems

  • Lesson 1 • Glass and Aramid Fiber Systems

    Compares E-glass, S-glass, and aramid fiber properties and cost trade-offs. Guides selection for marine, ballistic, and structural applications.

  • Lesson 2 • Thermoset Matrix Chemistries

    Details epoxy, polyester, vinyl ester, and bismaleimide resin systems. Relates cure chemistry to glass transition temperature and toughness.

  • Lesson 3 • Thermoplastic Matrix Systems

    Introduces PEEK, PPS, and nylon-based thermoplastic composites and their processing windows. Highlights recyclability and impact resistance advantages over thermosets.

  • Lesson 4 • Reinforcement Architectures

    Examines unidirectional, woven, braided, and non-crimp fabric forms. Connects textile architecture to in-plane and out-of-plane property distributions.

  • Lesson 5 • Carbon Fiber Types and Production

    Covers PAN- and pitch-based carbon fiber manufacturing and resulting microstructures. Links processing parameters to tensile modulus and strength grades.

Chapter 3See details

Micromechanics and Macromechanics

  • Lesson 1 • Rule of Mixtures and Bounds

    Derives Voigt and Reuss bounds for longitudinal and transverse moduli. Establishes accuracy limits of simple mixture rules for engineering estimates.

  • Lesson 2 • Classical Lamination Theory

    Builds the ABD stiffness matrix for multi-ply laminates under in-plane and bending loads. Enables prediction of laminate deformation and coupling effects.

  • Lesson 3 • Strength Criteria for Composites

    Applies maximum stress, maximum strain, and Tsai-Wu failure criteria to ply-level stress states. Identifies first-ply failure and progressive damage sequences.

  • Lesson 4 • Interlaminar Stress and Delamination

    Analyzes out-of-plane stresses at free edges and ply drops using elasticity solutions. Connects interlaminar tension to delamination onset in laminates.

  • Lesson 5 • Anisotropic Elasticity Fundamentals

    Introduces the generalized Hooke's law for orthotropic materials using contracted notation. Prepares students for laminate stiffness matrix construction.

Chapter 4See details

Manufacturing Processes for Composites

  • Lesson 1 • Hand Layup and Spray-Up Processes

    Covers manual lamination and spray-up techniques for low-volume, large-part production. Identifies quality risks from operator variability and void content.

  • Lesson 2 • Filament Winding and Pultrusion

    Analyzes continuous fiber processes for pressure vessels, pipes, and structural profiles. Relates winding angle and pull speed to mechanical property outcomes.

  • Lesson 3 • Vacuum Infusion and Resin Transfer Molding

    Explains closed-mold liquid infusion processes that improve fiber volume fraction and surface finish. Compares VARTM, RTM, and light RTM tooling requirements.

  • Lesson 4 • Prepreg and Autoclave Processing

    Details prepreg storage, layup, and autoclave cure cycles for aerospace-grade laminates. Links cure pressure and temperature profiles to void content and Tg.

  • Lesson 5 • Automated Fiber Placement and Tape Laying

    Introduces robotic AFP and ATL systems for high-rate, precise ply deposition. Addresses steering limits, gap-and-overlap defects, and compaction control.

Chapter 5See details

Tooling, Cure Monitoring, and Quality

  • Lesson 1 • Defect Classification and Disposition

    Categorizes porosity, delamination, fiber waviness, and foreign object inclusions by severity. Establishes repair-or-reject decision logic based on structural criticality.

  • Lesson 2 • Tooling Materials and Design Principles

    Compares aluminum, steel, Invar, and composite tooling for thermal expansion compatibility. Guides tool design for part accuracy, durability, and cost.

  • Lesson 3 • Statistical Process Control for Composites

    Applies control charts and capability indices to composite manufacturing variables. Identifies assignable causes of variation in fiber volume and void content.

  • Lesson 4 • Cure Monitoring Techniques

    Applies dielectric analysis, fiber optic sensing, and ultrasonic methods to track resin cure in real time. Enables adaptive cure cycle control to minimize defects.

  • Lesson 5 • Non-Destructive Testing Methods

    Covers ultrasonic C-scan, thermography, and radiography for detecting voids, delaminations, and inclusions. Connects NDT sensitivity to defect size and criticality.

Chapter 6See details

Structural Analysis and Design of Composites

  • Lesson 1 • Laminate Optimization Strategies

    Uses gradient-based and genetic algorithm methods to optimize ply angles and thicknesses. Balances weight, stiffness, strength, and manufacturing constraints simultaneously.

  • Lesson 2 • Laminate Design Rules and Guidelines

    Presents industry-standard rules for ply orientation, balance, symmetry, and minimum ply percentages. Prevents common design errors that cause warpage and premature failure.

  • Lesson 3 • Finite Element Modeling of Composites

    Implements shell and solid element models with ply-by-ply material definitions in FEA software. Validates models against analytical solutions and experimental data.

  • Lesson 4 • Stress Analysis Under Combined Loading

    Solves laminate response to combined in-plane, bending, and thermal loads using ABD relations. Extends analysis to curved panels and open-section beams.

  • Lesson 5 • Buckling of Composite Plates and Shells

    Derives critical buckling loads for composite plates under compression and shear using energy methods. Addresses the effect of laminate orthotropy on buckling mode shapes.

Chapter 7See details

Joining, Repair, and Maintenance

  • Lesson 1 • Adhesive Bonding of Composite Joints

    Analyzes single-lap, double-lap, and scarf joint geometries using shear-lag and FEA models. Selects adhesive systems based on peel strength and service temperature.

  • Lesson 2 • Damage Assessment in Service

    Applies visual inspection, tap testing, and portable NDT to identify in-service damage. Classifies damage by type and extent to determine repair urgency.

  • Lesson 3 • Bonded Repair Design and Execution

    Designs scarf and external patch repairs for structural and cosmetic damage. Covers surface preparation, adhesive application, and heat-blanket cure in the field.

  • Lesson 4 • Maintenance Programs and Damage Tolerance

    Establishes inspection intervals and damage growth limits within a damage-tolerance framework. Integrates composite-specific requirements into structural maintenance plans.

  • Lesson 5 • Mechanically Fastened Composite Joints

    Covers bearing, bypass, and net-section failure modes in bolted composite joints. Addresses hole preparation, fastener torque, and washer requirements.

Chapter 8See details

Testing, Certification, and Standards

  • Lesson 1 • Regulatory Certification Pathways

    Navigates airworthiness, marine, and industrial certification frameworks for composite structures. Prepares compliance documentation and substantiation reports for regulatory review.

  • Lesson 2 • Statistical Basis for Design Allowables

    Applies B-basis and A-basis statistical methods to coupon data for structural allowable generation. Addresses sample size requirements and population distribution fitting.

  • Lesson 3 • Environmental Conditioning and Durability

    Conditions specimens for moisture, temperature, and UV exposure to establish environmental knockdown factors. Quantifies property retention across the service environment envelope.

  • Lesson 4 • Building-Block Test Approach

    Structures the certification test pyramid from coupons through elements, subcomponents, and full structures. Reduces certification risk by validating analysis at each level.

  • Lesson 5 • Mechanical Testing of Composite Coupons

    Performs tensile, compression, shear, and interlaminar fracture tests per standard methods. Generates statistically valid material property data for design allowables.

Certification

Your valid completion certificate

This course is for you:

  • Mechanical engineer: ready to move beyond metals into advanced structural materials.

  • Aerospace structures engineer: needing formal composite analysis and certification knowledge.

  • Quality or NDT technician: wanting to understand the engineering behind inspection decisions.

  • Marine or wind energy designer: working with composites but lacking systematic training.

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

  • Career changer from civil or chemical engineering: transitioning into composite-intensive industries.

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