
Mold Design Course
Master every stage of injection mould design, from parting surface layout and gating systems to cooling circuits and ejection mechanisms. This course gives engineers and tooling professionals the technical depth to design production-ready moulds with confidence. Build skills that translate directly to shorter lead times, lower tooling costs, and higher part quality.
What your team will master:
You will learn how to analyse part geometry for mouldability, select mould bases, and design complete cavity layouts for single- and multi-cavity tools. The course covers runner and gate system design, cooling circuit calculations, and ejection system engineering. You will also work through side-action mechanisms for internal and external undercuts, venting strategies, and surface finish specifications. Mould flow simulation techniques and design for manufacturability principles are included to sharpen your decision-making. By the end, you will be able to produce a complete mould drawing package and execute a structured trial protocol to validate and optimise mould performance.
How your team learns in practice Mold Design Course
How your team practises Mold Design Course
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Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Mold Design
Foundations of Mold Design
Lesson 1 • Part Geometry and Mouldability
Analyses how wall thickness, draft, and undercuts affect mouldability. Students evaluate a part design for basic manufacturability before detailing the mould.
Lesson 2 • Industry Standards and Documentation
Introduces mould classification systems, drawing standards, and design documentation practices. Proper documentation ensures consistent communication with toolmakers and customers.
Lesson 3 • Mould Anatomy and Terminology
Identifies and names every major mould assembly and sub-assembly. Shared vocabulary enables precise communication throughout the course.
Lesson 4 • Injection Moulding Process Overview
Covers the full injection moulding cycle from material plasticisation to part ejection. Establishes process context that informs every subsequent design decision.
Lesson 5 • Mould Materials and Selection
Compares tool steels, aluminium alloys, and beryllium-copper for mould components. Material choice is linked to production volume, cycle time, and surface finish targets.
Chapter 2HideHide detailsSee detailsParting Surface and Cavity Layout
Parting Surface and Cavity Layout
Lesson 1 • Cavity and Core Tolerancing
Applies shrinkage allowances and dimensional tolerances to cavity and core geometry. Accurate tolerancing ensures moulded parts meet drawing specifications.
Lesson 2 • Mould Base Selection and Sizing
Guides selection of standard mould base sizes and plate configurations. A correctly sized mould base reduces custom machining and lead time.
Lesson 3 • Single-Cavity Mould Configuration
Establishes cavity and core block sizing for a single-impression mould. Proper block dimensions ensure structural integrity under clamp and injection forces.
Lesson 4 • Multi-Cavity Layout Strategies
Covers balanced and unbalanced cavity arrangements and their trade-offs. Students select cavity count and layout based on production volume and press size.
Lesson 5 • Parting Line and Surface Principles
Defines parting line types and rules for selecting optimal split locations. Correct parting surface design prevents flash and simplifies mould construction.
Chapter 3HideHide detailsSee detailsGating System Design
Gating System Design
Lesson 1 • Gate Sizing and Pressure Calculations
Applies rheological principles to size gates for target fill time and pressure. Correctly sized gates prevent premature freeze-off and excessive shear heating.
Lesson 2 • Gate Types and Selection
Surveys edge, submarine, pin, fan, and film gate geometries and their applications. Gate selection affects fill pattern, vestige, and part aesthetics.
Lesson 3 • Balanced Runner Design
Demonstrates naturally and artificially balanced runner layouts for multi-cavity moulds. Balanced fill ensures uniform part quality across all cavities.
Lesson 4 • Hot Runner System Integration
Covers manifold design, nozzle selection, and thermal control for hot runner systems. Proper integration eliminates cold slugs and reduces material degradation.
Lesson 5 • Runner System Fundamentals
Explains cold and hot runner architectures and their effect on material waste and cycle time. Runner type selection drives downstream gate and cooling decisions.
Chapter 4HideHide detailsSee detailsCooling System Design
Cooling System Design
Lesson 1 • Conformal Cooling Design
Introduces cooling channels that follow cavity contours, enabled by additive manufacturing. Conformal cooling reduces cycle time and warpage on complex geometries.
Lesson 2 • Heat Transfer Fundamentals in Moulds
Quantifies heat input from the melt and the cooling capacity needed to extract it. Thermal analysis provides the basis for all cooling circuit decisions.
Lesson 3 • Thermal Simulation and Validation
Uses mould-flow thermal analysis to predict temperature distribution and cycle time. Simulation results guide iterative refinement before cutting steel.
Lesson 4 • Coolant Flow and Pressure Analysis
Calculates flow rate, Reynolds number, and pressure drop to ensure turbulent flow. Turbulent flow maximises heat transfer efficiency in cooling circuits.
Lesson 5 • Cooling Channel Layout Principles
Establishes rules for channel diameter, pitch, and depth relative to the cavity surface. Proper layout achieves uniform temperature distribution and avoids hot spots.
Chapter 5HideHide detailsSee detailsEjection System Design
Ejection System Design
Lesson 1 • Stripper Plate and Ring Ejection
Applies stripper plate and stripper ring designs for parts with large perimeter contact. These systems distribute ejection force across the full part perimeter.
Lesson 2 • Ejector Pin Systems
Covers standard, blade, and sleeve ejector pin types and their layout rules. Pin placement must distribute force evenly to prevent part warpage during ejection.
Lesson 3 • Air-Assist and Robotic Ejection
Introduces air-assist valves and robotic part removal for delicate or deep-draw parts. These methods supplement mechanical ejection to reduce cycle time and part damage.
Lesson 4 • Ejector System Timing and Sequencing
Designs ejector plate travel, stroke, and sequenced ejection for complex parts. Correct sequencing prevents interference between ejectors and moving mould components.
Lesson 5 • Ejection Force Estimation
Calculates the force required to overcome adhesion and friction during part release. Accurate force estimation prevents ejector pin marks and part distortion.
Chapter 6HideHide detailsSee detailsSide Actions and Undercut Solutions
Side Actions and Undercut Solutions
Lesson 1 • Collapsible Cores and Unscrewing Mechanisms
Applies collapsible core segments and rack-and-pinion unscrewing for threaded or deep internal features. These mechanisms handle undercuts that lifters cannot reach.
Lesson 2 • Lifter Design for Internal Undercuts
Designs angled lifter pins and lifter blades that retract during ejection to clear internal undercuts. Lifter geometry must avoid interference with ejector pins.
Lesson 3 • Undercut Classification and Strategy
Categorises external and internal undercuts and maps each to appropriate release mechanisms. Early undercut identification prevents costly mould redesign.
Lesson 4 • Side-Action Timing and Interference Analysis
Sequences slide retraction, core pull, and ejection to prevent mechanical interference. A complete motion study validates the design before mould fabrication.
Lesson 5 • Slide and Cam Design
Details angle-pin and hydraulic cam-driven slide assemblies for external undercuts. Slide geometry must ensure positive lock-up under injection pressure.
Chapter 7HideHide detailsSee detailsVenting, Surface Finish, and Tolerancing
Venting, Surface Finish, and Tolerancing
Lesson 1 • Design for Mould Maintenance
Incorporates access features, wear inserts, and modular components to simplify maintenance. Maintainability reduces downtime and extends mould service life.
Lesson 2 • Venting Design and Placement
Sizes and positions vents to evacuate trapped air and prevent burn marks. Vent depth must allow gas escape without causing flash.
Lesson 3 • Dimensional Tolerancing for Mould Components
Applies geometric dimensioning and tolerancing to mould plates, inserts, and moving components. Correct tolerancing ensures interchangeability and repeatable part dimensions.
Lesson 4 • Surface Finish Specifications
Translates part appearance requirements into cavity surface finish grades and machining sequences. Surface finish affects release force, gloss, and texture fidelity.
Lesson 5 • Mould Drawing Package Preparation
Assembles assembly drawings, detail drawings, and BOM into a complete toolroom release package. A complete package reduces ambiguity and rework during mould build.
Chapter 8HideHide detailsSee detailsMould Trials, Validation, and Optimisation
Mould Trials, Validation, and Optimisation
Lesson 1 • Defect Diagnosis and Correction
Maps common moulding defects to their root causes in mould design or process settings. Systematic diagnosis guides targeted mould modifications rather than trial-and-error adjustments.
Lesson 2 • Pre-Trial Mould Inspection
Establishes a structured checklist for verifying mould assembly, cooling connections, and ejector function before the first shot. Pre-trial inspection prevents costly press-side failures.
Lesson 3 • Dimensional and Cosmetic Validation
Measures moulded parts against drawing tolerances using CMM and visual inspection protocols. Validation data confirms whether mould corrections or process adjustments are needed.
Lesson 4 • Scientific Moulding Trial Protocol
Applies a structured four-stage trial sequence to separate machine, material, and mould variables. Scientific moulding isolates root causes and produces a robust process window.
Lesson 5 • Mould Qualification and Handover
Compiles trial data, process settings, and corrective actions into a formal mould qualification report. A complete handover package enables production startup without design team involvement.
Your valid completion certificate
This course is for you:
Mechanical engineer: ready to specialize in injection tooling design.
Toolroom technician: wanting to move into a mould design role.
Product designer: needing to understand how part choices affect tooling.
Manufacturing engineer: responsible for tooling decisions on new programs.
Recent engineering graduate: building practical skills beyond classroom theory.
Plastics industry professional: seeking a structured, comprehensive tooling reference.
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