
Engineering Physics Course
Master the full spectrum of engineering physics, from classical mechanics and thermodynamics to quantum mechanics and Maxwell's equations. This course gives you the rigorous theoretical foundation and practical problem-solving skills that top engineering programs demand. Whether you're advancing your academic career or strengthening your technical expertise, this is the comprehensive physics resource you need.
What you will learn:
You will build a complete foundation in engineering physics, starting with the mathematical tools required for advanced analysis, including linear algebra, differential equations, and Fourier methods. You will study classical mechanics, oscillations, thermodynamics, electrostatics, and electrodynamics in depth. The course then moves into quantum mechanics, covering wave functions, bound states, and semiconductor applications. Modern physics topics such as special relativity, nuclear physics, and nanotechnology are also included. Supplementary chapters address computational methods, materials science, fluid mechanics, and experimental techniques.
How you study in practice Engineering Physics Course
How you practice Engineering Physics Course
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Course content
8 Chapters • 42 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsMathematical Foundations for Physics
Mathematical Foundations for Physics
Lesson 1 • Complex Numbers and Fourier Analysis
Develops complex number arithmetic and Fourier decomposition of signals. Enables frequency-domain analysis of waves and oscillations.
Lesson 2 • Linear Algebra Essentials
Introduces matrices, determinants, and eigenvalue problems relevant to physics. Supports later work in quantum mechanics and vibration analysis.
Lesson 3 • Calculus Review for Physics
Reviews differentiation and integration with physics-specific applications. Connects mathematical operations to rates of change and accumulated quantities.
Lesson 4 • Differential Equations in Physics
Covers first- and second-order ODEs arising in mechanical and electrical systems. Provides solution techniques used in oscillation and circuit analysis.
Lesson 5 • Vectors and Coordinate Systems
Introduces vector algebra and multiple coordinate systems essential for describing physical quantities. Establishes spatial reasoning needed throughout the course.
Chapter 2HideHide detailsSee detailsClassical Mechanics and Dynamics
Classical Mechanics and Dynamics
Lesson 1 • Work, Energy, and Conservation Laws
Introduces work-energy theorem and conservation of mechanical energy. Enables energy-based problem solving as an alternative to force methods.
Lesson 2 • Lagrangian Mechanics Introduction
Reformulates mechanics using generalized coordinates and the Lagrangian. Simplifies complex constrained systems encountered in engineering.
Lesson 3 • Rotational Dynamics and Rigid Bodies
Extends Newton's laws to rotating systems using torque and moment of inertia. Prepares students for vibration and machine dynamics topics.
Lesson 4 • Momentum and Collisions
Covers linear and angular momentum with impulse-momentum theorem. Analyzes elastic and inelastic collision scenarios.
Lesson 5 • Newton's Laws and Force Analysis
Applies Newton's three laws to particles and systems under various force types. Connects free-body diagrams to equations of motion.
Lesson 6 • Kinematics in One and Two Dimensions
Describes motion using displacement, velocity, and acceleration without invoking forces. Provides the descriptive language for all subsequent dynamics work.
Chapter 3HideHide detailsSee detailsOscillations and Wave Mechanics
Oscillations and Wave Mechanics
Lesson 1 • Simple Harmonic Motion
Derives and solves the SHM equation for springs and pendulums. Establishes the prototype oscillator model used throughout the chapter.
Lesson 2 • Damped and Driven Oscillations
Introduces damping coefficients and steady-state driven response. Explains resonance and its engineering significance.
Lesson 3 • Superposition, Interference, and Standing Waves
Applies superposition to produce interference patterns and standing waves. Explains resonant modes in strings, pipes, and cavities.
Lesson 4 • Wave Propagation Fundamentals
Derives the wave equation and describes traveling wave solutions. Connects oscillator concepts to spatial wave phenomena.
Lesson 5 • Coupled Oscillators and Normal Modes
Analyzes systems of two or more coupled oscillators using normal mode decomposition. Bridges single-oscillator theory to continuous wave systems.
Chapter 4HideHide detailsSee detailsThermodynamics and Statistical Physics
Thermodynamics and Statistical Physics
Lesson 1 • Ideal and Real Gas Behavior
Applies ideal gas law and introduces corrections for real gas interactions. Connects microscopic molecular motion to macroscopic pressure and temperature.
Lesson 2 • Thermodynamic Cycles and Efficiency
Analyzes Carnot, Otto, and Rankine cycles for heat engines and refrigerators. Quantifies efficiency limits imposed by the second law.
Lesson 3 • Temperature, Heat, and Thermal Properties
Defines temperature scales, heat transfer modes, and thermal expansion. Establishes macroscopic thermal concepts before introducing laws.
Lesson 4 • Introduction to Statistical Mechanics
Connects macroscopic thermodynamics to microscopic probability distributions. Introduces partition functions and Boltzmann statistics.
Lesson 5 • Laws of Thermodynamics
States and applies the zeroth through third laws to closed and open systems. Provides the governing principles for all thermodynamic analysis.
Chapter 5HideHide detailsSee detailsElectrostatics and Magnetostatics
Electrostatics and Magnetostatics
Lesson 1 • Gauss's Law and Electric Potential
Applies Gauss's law to symmetric charge distributions and defines electric potential. Connects field and potential through gradient and line integrals.
Lesson 2 • Capacitance and Dielectrics
Defines capacitance for common geometries and analyzes dielectric effects. Prepares students for energy storage in circuit and device contexts.
Lesson 3 • Electric Charge and Coulomb's Law
Introduces charge quantization, conservation, and the inverse-square force law. Establishes the foundation for all electrostatic field analysis.
Lesson 4 • Magnetic Materials and Boundary Conditions
Classifies diamagnetic, paramagnetic, and ferromagnetic materials. Applies boundary conditions at material interfaces for field continuity.
Lesson 5 • Magnetic Fields and Biot-Savart Law
Introduces static magnetic fields produced by steady currents. Derives field expressions for wires, loops, and solenoids.
Chapter 6HideHide detailsSee detailsElectrodynamics and Maxwell's Equations
Electrodynamics and Maxwell's Equations
Lesson 1 • Maxwell's Equations in Integral and Differential Form
Presents all four Maxwell equations and introduces the displacement current. Demonstrates the self-consistent unification of electric and magnetic fields.
Lesson 2 • Electromagnetic Wave Propagation
Derives the wave equation from Maxwell's equations and identifies wave speed. Analyzes plane wave solutions and polarization states.
Lesson 3 • Faraday's Law and Electromagnetic Induction
Derives Faraday's law from changing magnetic flux and applies Lenz's law. Connects induction to transformer and generator operation.
Lesson 4 • Energy and Momentum in EM Fields
Introduces Poynting vector and radiation pressure for energy and momentum transport. Quantifies power flow in waveguides and antennas.
Lesson 5 • Reflection, Refraction, and Wave Optics
Applies Fresnel equations to EM wave behavior at interfaces. Connects Maxwell's framework to geometric and wave optics phenomena.
Chapter 7HideHide detailsSee detailsQuantum Mechanics for Engineers
Quantum Mechanics for Engineers
Lesson 1 • Hydrogen Atom and Atomic Structure
Solves the 3D Schrödinger equation for hydrogen and introduces quantum numbers. Provides the basis for understanding atomic spectra and chemical bonding.
Lesson 2 • Quantum Statistics and Solid-State Basics
Applies Fermi-Dirac statistics to electrons in metals and semiconductors. Bridges quantum mechanics to band theory and device physics.
Lesson 3 • Origins of Quantum Theory
Traces historical experiments that revealed failures of classical physics. Motivates the need for a probabilistic wave-based description of matter.
Lesson 4 • Wave Functions and the Schrödinger Equation
Defines the wave function and derives the time-dependent Schrödinger equation. Establishes probability interpretation and normalization requirements.
Lesson 5 • Tunneling and Barrier Phenomena
Analyzes quantum tunneling through potential barriers using transmission coefficients. Connects tunneling to scanning tunneling microscopy and tunnel diodes.
Lesson 6 • Bound States and Quantum Wells
Solves the Schrödinger equation for particle-in-a-box and finite potential wells. Introduces energy quantization and wave function boundary conditions.
Chapter 8HideHide detailsSee detailsModern Physics and Engineering Applications
Modern Physics and Engineering Applications
Lesson 1 • Special Relativity Fundamentals
Derives Lorentz transformations and relativistic kinematics from Einstein's postulates. Applies relativistic corrections to particle accelerators and GPS systems.
Lesson 2 • Nanotechnology and Quantum Devices
Examines quantum dots, nanowires, and MEMS from a physics perspective. Evaluates size-dependent properties and fabrication principles.
Lesson 3 • Semiconductor Devices and Physics
Applies band theory to p-n junctions, transistors, and photodetectors. Connects quantum and solid-state physics to practical electronic components.
Lesson 4 • Nuclear Physics and Radioactivity
Describes nuclear structure, binding energy, and radioactive decay modes. Connects nuclear reactions to energy generation and radiation safety.
Lesson 5 • Photonics and Laser Physics
Explains stimulated emission, population inversion, and laser cavity design. Applies photonic principles to fiber optics and optical sensing.
Your valid completion certificate
This course is for you:
Undergraduate engineering students: needing a rigorous physics foundation before advanced coursework.
Electrical or mechanical engineers: returning to physics to support R&D or design work.
Physics enthusiasts with technical backgrounds: ready to move beyond popular-science explanations.
Graduate school applicants: preparing for qualifying exams across multiple physics domains.
Career changers from software or data fields: moving into hardware, photonics, or materials roles.
Military or aerospace technicians: seeking the theoretical grounding behind systems they already operate.
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