
Magnets Course
Master the science and engineering of magnets from atomic origins to industrial system design. This course covers magnetic materials, permanent magnets, electromagnets, induction, and advanced applications with rigorous depth. Whether you're designing motors, sensors, or transformers, you'll gain the technical foundation to solve real magnetic engineering challenges.
What your team will master:
You will build a complete understanding of magnetic phenomena, starting with field fundamentals and material classification and advancing through permanent magnet design, magnetic circuits, and electromagnetic induction. You will learn to analyse forces on conductors and charges, design transformers, and select core materials for efficiency. The course also covers magnetic measurement instrumentation, finite element simulation, and system-level design workflows. You will finish with a working knowledge of emerging technologies including spintronics, magnetocaloric cooling, and wireless power transfer.
How your team learns in practice Magnets Course
How your team practises Magnets Course
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Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Magnetism
Fundamentals of Magnetism
Lesson 1 • Magnetic Field Lines and Flux
Describes how magnetic field lines represent field direction and strength. Introduces magnetic flux as a quantitative measure of field through a surface.
Lesson 2 • Units and Measurement Basics
Introduces SI units for magnetic quantities including tesla, gauss, and ampere per metre. Provides the numerical literacy needed for all subsequent quantitative work.
Lesson 3 • Magnetic Domains and Alignment
Introduces magnetic domains as regions of aligned dipoles within materials. Explains how domain alignment produces or destroys net magnetisation.
Lesson 4 • Atomic Origins of Magnetism
Explains how electron spin and orbital motion generate magnetic moments. Connects atomic-level behaviour to observable bulk magnetism.
Lesson 5 • What Is a Magnet?
Defines magnets, magnetic poles, and the concept of a magnetic field. Establishes the vocabulary used throughout the entire course.
Chapter 2HideHide detailsSee detailsTypes of Magnetic Materials
Types of Magnetic Materials
Lesson 1 • Soft vs. Hard Magnetic Materials
Contrasts easily magnetised soft materials with high-coercivity hard materials. Guides material selection decisions for motors, sensors, and permanent magnets.
Lesson 2 • Paramagnetic Materials
Explains weak attraction arising from partial alignment of permanent dipoles. Connects temperature dependence to the Curie law introduced here.
Lesson 3 • Ferromagnetic Materials
Details strong spontaneous magnetisation from exchange interaction and domain alignment. This is the most commercially significant magnetic class covered in the course.
Lesson 4 • Ferrimagnetic and Antiferromagnetic Materials
Distinguishes partial cancellation in ferrimagnets from full cancellation in antiferromagnets. Highlights ferrite applications relevant to electronics and data storage.
Lesson 5 • Diamagnetic Materials
Covers weak repulsion from external fields caused by induced opposing moments. Establishes the baseline magnetic response against which stronger types are compared.
Chapter 3HideHide detailsSee detailsPermanent Magnets: Properties and Design
Permanent Magnets: Properties and Design
Lesson 1 • Magnetisation and Demagnetisation Processes
Describes impulse magnetisation, saturation requirements, and controlled demagnetisation techniques. Students can specify magnetising fixtures and demagnetising procedures.
Lesson 2 • Magnet Geometry and Permeance
Relates magnet shape and aspect ratio to the operating point on the demagnetisation curve. Proper geometry selection maximises flux delivery to the air gap.
Lesson 3 • The Hysteresis Loop in Depth
Examines the B-H curve to extract remanence, coercivity, and energy product. These parameters are the primary design metrics for permanent magnets.
Lesson 4 • Common Permanent Magnet Families
Surveys alnico, ferrite, samarium-cobalt, and neodymium-iron-boron magnet families. Compares performance, cost, and temperature stability across families.
Lesson 5 • Temperature Effects on Permanent Magnets
Quantifies reversible and irreversible flux loss with temperature changes. Enables engineers to design magnets that remain stable across operating ranges.
Chapter 4HideHide detailsSee detailsElectromagnets and Magnetic Circuits
Electromagnets and Magnetic Circuits
Lesson 1 • Magnetic Circuit Analogy
Maps MMF, reluctance, and flux to voltage, resistance, and current in electric circuits. Enables systematic analysis of complex flux paths using familiar circuit tools.
Lesson 2 • Coil Design and Winding Parameters
Guides selection of wire gauge, turn count, and winding geometry to meet field and thermal requirements. Balances resistance, inductance, and heat dissipation.
Lesson 3 • Core Materials and Losses
Evaluates silicon steel, amorphous alloys, and powder cores for AC electromagnet cores. Quantifies hysteresis and eddy-current losses that reduce efficiency.
Lesson 4 • Electromagnetism Fundamentals
Connects electric current to magnetic field generation via Ampere's law. Establishes the quantitative link between current, turns, and magnetomotive force.
Lesson 5 • Electromagnet Applications and Sizing
Applies magnetic circuit analysis to lifting magnets, relays, and solenoid actuators. Students size a complete electromagnet from force specification to coil design.
Chapter 5HideHide detailsSee detailsMagnetic Forces and Motion
Magnetic Forces and Motion
Lesson 1 • Energy Methods for Force Calculation
Uses co-energy and virtual work principles to find forces without stress tensors. Provides an alternative approach validated against Maxwell stress results.
Lesson 2 • Lorentz Force on Moving Charges
Derives the force on a charged particle moving through a magnetic field. Provides the physical basis for motors, particle accelerators, and Hall sensors.
Lesson 3 • Magnetic Pressure and Maxwell Stress
Introduces Maxwell stress tensor to compute surface forces on magnetic materials. Enables accurate force prediction in actuators and magnetic clamping systems.
Lesson 4 • Magnetic Bearings and Levitation
Applies force principles to passive and active magnetic bearing designs. Covers stability criteria, load capacity, and control requirements for levitation.
Lesson 5 • Force on Current-Carrying Conductors
Calculates force per unit length on a wire in an external field using the BIL law. Directly applicable to motor windings and bus bar design.
Chapter 6HideHide detailsSee detailsElectromagnetic Induction and Transformers
Electromagnetic Induction and Transformers
Lesson 1 • Transformer Design and Core Selection
Guides core material selection, area product method, and winding layout for a target design. Integrates magnetic circuit analysis with thermal and insulation constraints.
Lesson 2 • Faraday's and Lenz's Laws
States and applies the laws governing induced EMF from changing flux. Lenz's law provides the direction rule essential for all inductive device analysis.
Lesson 3 • Ideal Transformer Analysis
Derives voltage, current, and impedance transformation ratios for an ideal transformer. Provides the reference model against which real transformer losses are measured.
Lesson 4 • Real Transformer Losses and Efficiency
Accounts for copper losses, core losses, and leakage inductance in real transformers. Students calculate efficiency and regulation under load conditions.
Lesson 5 • Mutual Inductance and Coupling
Quantifies flux linkage between two coils and defines the coupling coefficient. Underpins transformer design and wireless power transfer analysis.
Chapter 7HideHide detailsSee detailsMagnetic Measurement and Instrumentation
Magnetic Measurement and Instrumentation
Lesson 1 • Gaussmeters and Teslameters
Covers handheld and benchtop instruments for point-field measurement in industrial settings. Addresses probe selection, zeroing, and environmental interference.
Lesson 2 • Magnetic Field Mapping Techniques
Combines multiple sensors and scanning stages to produce 2D and 3D field maps. Supports quality control and design validation of magnetic assemblies.
Lesson 3 • Fluxmeters and Search Coils
Uses Faraday's law to measure flux change with search coils and fluxmeters. Suitable for characterising permanent magnets and transformer cores.
Lesson 4 • Hall Effect Sensors
Explains the Hall effect and its use in measuring DC and AC magnetic fields. Covers sensor selection, placement, and signal conditioning for accurate readings.
Lesson 5 • Vibrating Sample Magnetometry
Describes VSM operation for measuring full hysteresis loops of small samples. Connects measured curves to material parameters defined in earlier chapters.
Chapter 8HideHide detailsSee detailsAdvanced Magnetic Systems and Applications
Advanced Magnetic Systems and Applications
Lesson 1 • Magnetic Data Storage Principles
Explains how bits are written and read using magnetic coercivity and magnetoresistance. Connects material properties from earlier chapters to recording media design.
Lesson 2 • Magnetic Sensors in Industrial Systems
Surveys magnetoresistive, fluxgate, and SQUID sensors for precision industrial measurement. Compares sensitivity, bandwidth, and noise floor across sensor technologies.
Lesson 3 • System-Level Magnetic Design Process
Presents a structured workflow from specification through simulation, prototyping, and validation. Students apply the full design process to a capstone magnetic system project.
Lesson 4 • Electric Motor Magnetic Design
Applies field, force, and material knowledge to brushless DC and induction motor design. Focuses on air gap flux density, slot geometry, and torque production.
Lesson 5 • Magnetic Shielding Design
Uses high-permeability materials to redirect and attenuate unwanted magnetic fields. Covers shielding factor calculation, material selection, and multi-layer designs.
Your valid completion certificate
This course is for you:
Electrical engineers expanding their expertise into magnetic component design.
Mechanical engineers who work with motors, actuators, or magnetic assemblies.
Physics graduates seeking to bridge theory and hands-on engineering practice.
Product developers building devices that rely on sensors or permanent magnets.
Technicians aiming to move into engineering roles involving magnetic systems.
Hobbyists with a strong technical curiosity about how magnetic devices work.
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