
Thermoset plastics (duroplast) training
Master the full thermoset plastics workflow — from resin chemistry and formulation to moulding, testing, and quality control. This training covers every major process, material family, and inspection method used in aerospace, automotive, and electrical manufacturing. Build the hands-on technical knowledge employers need on the shop floor and in the engineering office.
What you'll learn:
This course covers thermoset polymer chemistry, crosslinking mechanisms, and cure kinetics so you understand exactly why materials behave the way they do. You will learn how to formulate resin systems, select fillers and additives, and manage shelf life and storage. Processing methods including compression moulding, RTM, filament winding, and autoclave cure are covered in detail. Tooling design, mould release systems, and thermal management are addressed alongside mechanical and thermal property testing. The course also builds your skills in defect analysis, statistical process control, and root cause investigation to keep production on spec.
How you study in practice Thermoset plastics (duroplast) training
How you practise Thermoset plastics (duroplast) training
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsIntroduction to Thermoset Plastics
Introduction to Thermoset Plastics
Lesson 1 • Industrial Applications and Market Overview
Maps thermoset use across aerospace, automotive, electrical, and construction sectors. Connects material properties to end-use performance requirements.
Lesson 2 • Thermoset vs. Thermoplastic Comparison
Contrasts crosslinked thermoset networks with linear thermoplastic chains. Clarifies why thermosets cannot be remelted after cure.
Lesson 3 • Major Thermoset Resin Families
Surveys epoxy, phenolic, polyester, vinyl ester, and polyurethane resins. Provides a reference map for material selection in later chapters.
Lesson 4 • Health, Safety, and Regulatory Basics
Introduces hazard communication, exposure limits, and waste disposal obligations for uncured resins. Establishes a safety mindset carried throughout the course.
Lesson 5 • Polymer Chemistry Fundamentals
Covers atomic bonding, monomer structures, and polymerization reactions. Establishes the chemical vocabulary needed for all subsequent thermoset topics.
Chapter 2HideHide detailsSee detailsCrosslinking Chemistry and Cure Mechanisms
Crosslinking Chemistry and Cure Mechanisms
Lesson 1 • Cure Monitoring Techniques
Introduces DSC, rheometry, and dielectric analysis for tracking cure progression. Builds skills for process validation and quality assurance.
Lesson 2 • Curing Agents and Hardeners
Classifies amine, anhydride, and catalytic curing agents by reactivity and application. Guides stoichiometric calculation for proper formulation.
Lesson 3 • Crosslinking Reaction Principles
Details how reactive functional groups form three-dimensional networks during cure. Provides the mechanistic basis for understanding processing parameters.
Lesson 4 • Cure Kinetics and Time-Temperature Relationships
Analyses how temperature accelerates cure rate and affects final network structure. Enables students to design cure cycles for target properties.
Lesson 5 • Catalysts, Accelerators, and Inhibitors
Explains how additives modify reaction speed and shelf life of resin systems. Connects additive selection to processing window requirements.
Chapter 3HideHide detailsSee detailsRaw Materials, Formulation, and Additives
Raw Materials, Formulation, and Additives
Lesson 1 • Functional Additives
Surveys flame retardants, UV stabilisers, toughening agents, and colourants. Demonstrates how additives modify specific properties without compromising cure.
Lesson 2 • Shelf Life and Storage Management
Addresses temperature, humidity, and light controls that preserve resin reactivity. Establishes incoming material inspection and first-in-first-out protocols.
Lesson 3 • Resin Selection Criteria
Establishes decision factors including temperature resistance, chemical exposure, and cost. Links resin chemistry from Chapter 1 to practical material selection.
Lesson 4 • Formulation Design and Mixing
Guides systematic formulation development using design-of-experiments principles. Covers mixing equipment, dispersion quality, and void prevention.
Lesson 5 • Fillers and Reinforcements
Covers mineral fillers, glass fibres, carbon fibres, and natural fibres and their effects on properties. Explains filler-matrix interface chemistry.
Chapter 4HideHide detailsSee detailsProcessing Methods for Thermoset Parts
Processing Methods for Thermoset Parts
Lesson 1 • Hand Layup and Spray-Up Processes
Covers manual fibre placement, resin application, and consolidation techniques. Establishes baseline process understanding before automated methods.
Lesson 2 • Pultrusion and Filament Winding
Covers continuous fibre processes for profiles and pressure vessels. Explains tension, resin bath, and die temperature control.
Lesson 3 • Autoclave and Oven Cure Processes
Addresses prepreg layup, vacuum bagging, and autoclave cure cycle development. Connects cure kinetics from Chapter 2 to production cycle design.
Lesson 4 • Resin Transfer Molding and Variants
Explains closed-mould injection of resin into dry fibre preforms under pressure. Covers RTM, VARTM, and light-RTM process variants.
Lesson 5 • Compression Molding and SMC/BMC
Details sheet moulding compound and bulk moulding compound formulation and press moulding. Addresses charge placement, flow, and flash control.
Chapter 5HideHide detailsSee detailsTooling Design and Mold Engineering
Tooling Design and Mold Engineering
Lesson 1 • Mould Release Systems
Explains semi-permanent, sacrificial, and internal release agent systems. Addresses application technique, cure compatibility, and surface finish impact.
Lesson 2 • Mould Design Principles
Covers draft angles, radii, parting lines, and gating for thermoset moulds. Prevents common defects such as undercuts and poor fill.
Lesson 3 • Tooling Material Selection
Compares steel, aluminium, composite, and epoxy tooling materials by thermal expansion, durability, and cost. Guides selection based on production volume and part complexity.
Lesson 4 • Thermal Management in Tooling
Designs heating and cooling channels to achieve uniform cure and minimise cycle time. Links to cure kinetics principles established in Chapter 2.
Lesson 5 • Tooling Maintenance and Repair
Establishes inspection schedules, surface repair procedures, and refurbishment criteria. Protects dimensional accuracy and surface quality over tool life.
Chapter 6HideHide detailsSee detailsMechanical and Thermal Property Testing
Mechanical and Thermal Property Testing
Lesson 1 • Tensile, Flexural, and Compressive Testing
Covers specimen preparation, test machine setup, and data interpretation for basic mechanical tests. Establishes baseline property benchmarks for material acceptance.
Lesson 2 • Environmental and Chemical Resistance Testing
Evaluates moisture absorption, solvent resistance, and UV degradation of cured parts. Supports material qualification for demanding service environments.
Lesson 3 • Impact and Fracture Toughness Testing
Addresses Charpy, Izod, and fracture mechanics methods for brittle thermoset systems. Connects toughener selection from Chapter 3 to measured toughness outcomes.
Lesson 4 • Dynamic Mechanical Analysis
Measures storage modulus, loss modulus, and tan delta across temperature ranges. Reveals viscoelastic behaviour and crosslink density of cured networks.
Lesson 5 • Thermal Analysis Methods
Uses DSC, TGA, and TMA to measure glass transition, decomposition, and dimensional stability. Validates cure completeness and service temperature limits.
Chapter 7HideHide detailsSee detailsDefect Analysis and Quality Control
Defect Analysis and Quality Control
Lesson 1 • Statistical Process Control for Thermosets
Introduces control charts, capability indices, and sampling plans for thermoset production lines. Enables data-driven process monitoring and early deviation detection.
Lesson 2 • Common Thermoset Defect Types
Catalogues voids, delamination, warpage, surface pinholes, and incomplete cure defects. Provides visual and tactile recognition criteria for each defect class.
Lesson 3 • Root Cause Analysis Techniques
Applies fishbone diagrams, 5-Why analysis, and fault tree methods to thermoset defects. Drives corrective actions that address process root causes.
Lesson 4 • Non-Destructive Evaluation Methods
Covers ultrasonic C-scan, thermography, and X-ray inspection for internal defect detection. Enables inspection without destroying production parts.
Lesson 5 • Repair and Rework Procedures
Details approved methods for filling voids, re-bonding delaminations, and surface refinishing. Establishes acceptance criteria for repaired parts before return to service.
Chapter 8HideHide detailsSee detailsAdvanced Applications and Process Optimisation
Advanced Applications and Process Optimisation
Lesson 1 • Sustainability and Recyclability Strategies
Evaluates chemical recycling, solvolysis, and bio-based resin alternatives for thermosets. Addresses end-of-life obligations and circular economy principles.
Lesson 2 • Cure Cycle Optimisation Methods
Uses simulation, design of experiments, and sensor feedback to shorten cycles without sacrificing properties. Reduces energy consumption and production cost.
Lesson 3 • High-Performance Aerospace and Structural Parts
Examines design-to-manufacture workflows for primary structural thermoset components. Integrates material selection, tooling, and cure cycle decisions into a unified process.
Lesson 4 • Emerging Thermoset Technologies
Surveys vitrimers, self-healing networks, and additive-manufactured thermosets. Positions students to evaluate and adopt next-generation material systems.
Lesson 5 • Electrical and Electronic Encapsulation
Covers potting, encapsulation, and underfill processes for electronic assemblies. Addresses dielectric properties, thermal conductivity, and CTE matching.
Your valid completion certificate
This course is for you:
Composite technician: ready to deepen understanding of the materials they handle daily.
Mechanical engineer: moving into polymer-intensive industries and needing specialised material knowledge.
Quality inspector: seeking to connect inspection findings to underlying chemistry and process causes.
Manufacturing supervisor: overseeing thermoset lines and wanting stronger technical authority on the floor.
Materials science graduate: bridging academic theory with the realities of industrial thermoset production.
Career changer: transitioning from metalworking or thermoplastics into composite and duroplast manufacturing.
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