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Antenna Course
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Antenna Course

Master the complete science and engineering of antennas, from Maxwell's equations to phased array synthesis and high-gain reflector systems. This course gives RF and microwave engineers the analytical depth and practical design skills needed to tackle real-world antenna challenges with confidence. Every major antenna class is covered — wire, aperture, printed, and adaptive — along with the measurement and simulation methods used in professional practice.

Dedika for students

What your team will master:

You will develop a solid grasp of electromagnetic wave theory and apply it to antenna analysis and design. The course covers core parameters — gain, directivity, impedance, noise temperature — and then progresses through wire antennas, array synthesis, aperture and horn designs, microstrip patches, and high‑gain reflectors. It also examines measurement techniques, computational electromagnetics, wideband designs, adaptive beamforming, MIMO, and emerging technologies such as reconfigurable intelligent surfaces and metamaterial antennas. Regulatory compliance, RF safety, and platform integration are included to ready you for system‑level work. By the end of the course, you will have the foundation to design, simulate, and validate antennas for many applications and frequency bands.

How your team learns in practice Antenna Course

How your team practises Antenna Course

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Course content

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

Chapter 1See details

Fundamentals of Electromagnetic Waves

  • Lesson 1 • Wave Propagation in Free Space

    Covers plane wave propagation, phase velocity, and wavelength-frequency relationships. Connects EM theory to practical antenna operating conditions.

  • Lesson 2 • Polarisation and Wave Impedance

    Examines linear, circular, and elliptical polarisation and intrinsic impedance of media. Prepares students for polarisation matching in antenna design.

  • Lesson 3 • Maxwell's Equations and Wave Theory

    Introduces the four Maxwell equations and their physical meaning. Establishes the mathematical basis for all antenna analysis in subsequent chapters.

  • Lesson 4 • Near Field and Far Field Regions

    Defines reactive near field, radiating near field, and far field zones. Students apply distance criteria to determine valid measurement regions.

Chapter 2See details

Core Antenna Parameters and Metrics

  • Lesson 1 • Radiation Pattern Fundamentals

    Explains 3D and 2D radiation patterns, main lobe, side lobes, and nulls. Provides the vocabulary needed to compare antenna designs throughout the course.

  • Lesson 2 • Directivity, Gain, and Efficiency

    Distinguishes directivity from gain and links both to radiation efficiency. Students compute gain from pattern data and efficiency from loss resistance.

  • Lesson 3 • Noise Temperature and Sensitivity

    Defines antenna noise temperature and its impact on receiver sensitivity. Bridges antenna metrics to system-level performance requirements.

  • Lesson 4 • Effective Aperture and Link Budget

    Introduces effective aperture, Friis transmission equation, and system link budget. Students calculate received power for a given transmit-receive antenna pair.

  • Lesson 5 • Input Impedance and Bandwidth

    Covers resistive and reactive components of antenna input impedance and bandwidth definitions. Connects impedance behaviour to matching network design.

Chapter 3See details

Wire Antenna Designs and Analysis

  • Lesson 1 • Monopole Antennas and Ground Planes

    Applies image theory to derive monopole behaviour from dipole results. Students design quarter-wave monopoles with finite and infinite ground planes.

  • Lesson 2 • Loop Antennas

    Covers small loop and large loop antenna theory, duality with dipoles, and ferrite loading. Students compare loop and dipole performance for low-frequency use.

  • Lesson 3 • Short Dipole and Hertzian Dipole

    Derives fields and radiation resistance of the infinitesimal and short dipole. Establishes the elemental building block for all wire antenna analysis.

  • Lesson 4 • Antenna Arrays of Wire Elements

    Introduces two-element arrays and array factor concept using wire antenna elements. Prepares students for the full array theory chapter that follows.

  • Lesson 5 • Half-Wave Dipole Analysis

    Analyses the half-wave dipole current distribution, pattern, and impedance. Students verify the 73-ohm radiation resistance and 2.15 dBi gain result.

Chapter 4See details

Antenna Array Theory and Synthesis

  • Lesson 1 • Linear Array Factor Mathematics

    Derives the general N-element linear array factor with uniform and non-uniform spacing. Students compute patterns for arbitrary excitation amplitudes and phases.

  • Lesson 2 • Beam Steering and Phase Shifters

    Covers electronic beam steering via phase shifters and time-delay units. Students calculate steering angles and quantisation lobe levels for phased arrays.

  • Lesson 3 • Planar Arrays and 2D Beam Steering

    Extends linear array theory to rectangular and circular planar arrays. Students compute 2D patterns and steering vectors for planar phased arrays.

  • Lesson 4 • Mutual Coupling in Arrays

    Quantifies mutual coupling effects on element impedance and pattern distortion. Students apply active element patterns and impedance matrices to correct designs.

  • Lesson 5 • Amplitude Tapering and Sidelobe Control

    Applies Chebyshev, Taylor, and Binomial tapering to control sidelobe levels. Students trade beamwidth against sidelobe level using standard taper functions.

Chapter 5See details

Aperture and Horn Antennas

  • Lesson 1 • Pyramidal and Conical Horn Antennas

    Analyses E-plane, H-plane, and pyramidal horn geometry and performance. Students design a pyramidal horn to achieve a specified gain target.

  • Lesson 2 • Aperture Theory and Field Equivalence

    Introduces the field equivalence principle and aperture integration for far-field calculation. Provides the analytical framework for all aperture antenna types.

  • Lesson 3 • Slot Antennas and Babinet's Principle

    Applies Babinet's principle to derive slot antenna behaviour from its complementary dipole. Students design resonant slots in waveguide and ground plane structures.

  • Lesson 4 • Rectangular and Circular Apertures

    Derives patterns for uniform and tapered rectangular and circular apertures. Students calculate first null beamwidth and sidelobe levels for each case.

  • Lesson 5 • Corrugated and Multimode Horns

    Covers corrugated horn design for symmetric patterns and low cross-polarisation. Students compare corrugated and smooth-wall horn performance metrics.

Chapter 6See details

Reflector and High-Gain Antenna Systems

  • Lesson 1 • Lens Antennas and Dielectric Designs

    Introduces dielectric and zoned lens antennas as alternatives to reflectors. Students compare lens and reflector performance for millimetre-wave applications.

  • Lesson 2 • Parabolic Reflector Geometry and Optics

    Derives the geometric optics basis for parabolic reflector collimation. Students apply focal length and f/D ratio to reflector design specifications.

  • Lesson 3 • Feed Systems for Reflectors

    Covers prime focus, Cassegrain, and Gregorian feed configurations and their tradeoffs. Students select feed type based on gain, spillover, and blockage requirements.

  • Lesson 4 • Surface Tolerance and Gain Degradation

    Applies the Ruze formula to predict gain loss from surface rms error. Students specify surface tolerance requirements for a target frequency and gain.

  • Lesson 5 • Reflector Efficiency Factors

    Quantifies illumination, spillover, phase, polarisation, and blockage efficiency terms. Students compute total aperture efficiency and peak gain for a given reflector.

Chapter 7See details

Microstrip and Printed Antenna Designs

  • Lesson 1 • Microstrip Patch Antenna Theory

    Introduces transmission line and cavity models for rectangular patch analysis. Students derive resonant frequency and radiation resistance from substrate parameters.

  • Lesson 2 • Printed Antenna Arrays and Integration

    Extends single patch design to corporate-fed and series-fed printed arrays. Students design a four-element patch array with specified gain and sidelobe level.

  • Lesson 3 • Circular Polarisation in Patch Antennas

    Explains single-feed and dual-feed methods for generating circular polarisation. Students design a circularly polarised patch with specified axial ratio bandwidth.

  • Lesson 4 • Patch Feed Techniques

    Compares coaxial probe, microstrip line, aperture-coupled, and proximity-coupled feeds. Students select feed method based on bandwidth, fabrication, and isolation needs.

  • Lesson 5 • Bandwidth Enhancement Methods

    Covers thick substrate, stacked patch, and slot-loaded techniques for bandwidth improvement. Students apply each method to meet a specified impedance bandwidth requirement.

Chapter 8See details

Antenna Measurement and Testing

  • Lesson 1 • Compact Antenna Test Ranges

    Explains CATR reflector design, quiet zone quality, and edge treatment. Students evaluate CATR suitability for electrically large antenna measurement.

  • Lesson 2 • Impedance and Efficiency Measurement

    Uses vector network analyser techniques and Wheeler cap method for impedance and efficiency. Students measure return loss, impedance, and radiation efficiency of a test antenna.

  • Lesson 3 • Far-Field Range Design and Setup

    Covers far-field distance criteria, range geometry, and absorber placement. Students design a far-field range layout for a given antenna size and frequency.

  • Lesson 4 • Gain and Pattern Measurement Methods

    Covers gain transfer, absolute gain, and three-antenna methods for accurate gain measurement. Students apply each method and estimate measurement uncertainty.

  • Lesson 5 • Near-Field Scanning Techniques

    Introduces planar, cylindrical, and spherical near-field scanning and transformation. Students select scan geometry based on antenna type and required pattern accuracy.

Certification

Your valid completion certificate

This course is for you:

  • RF engineer wanting structured antenna theory beyond daily job tasks.

  • Electrical engineering student bridging classroom theory to professional antenna work.

  • Hardware developer adding antenna expertise to a wireless product portfolio.

  • Amateur radio operator seeking rigorous technical grounding behind antenna experimentation.

  • Systems integrator needing to evaluate antenna specs for platform installations confidently.

  • Career changer from software to RF and wireless hardware engineering.

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