
General Physics Course
Master the fundamental principles that govern the physical world, from classical mechanics to electricity, waves, and modern physics. This comprehensive General Physics course builds rigorous problem-solving skills through structured theory and applied examples. Whether you're preparing for exams or strengthening your scientific foundation, this course delivers the depth and clarity you need.
What you will learn:
You will develop a thorough understanding of mechanics, covering kinematics, Newton's laws, work, energy, momentum, and rotational dynamics. You will then move into waves, sound, optics, and the principles of electricity and magnetism, including DC circuit analysis. Supplementary chapters introduce thermodynamics, fluid mechanics, modern physics, and quantum concepts. You will also strengthen your mathematical toolkit with calculus applications, differential equations, and numerical methods. Throughout the course, you will practice experimental design, data analysis, and scientific reporting. By the end, you will be equipped to tackle university-level physics problems with confidence and precision.
How you study in a practical way General Physics Course
How you practice General Physics Course
For companies who want 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 • 38 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Physical Measurement
Foundations of Physical Measurement
Lesson 1 • Scientific Notation and Order of Magnitude
Trains students to express very large and small values compactly and estimate answers quickly. Supports efficient problem-solving throughout the course.
Lesson 2 • Physical Quantities and SI Units
Defines base and derived SI units and their real-world significance. Anchors all subsequent measurement work in a consistent unit framework.
Lesson 3 • Vectors and Scalars
Introduces vector representation, addition, and decomposition as tools for describing physical quantities with direction. Essential for kinematics and dynamics chapters.
Lesson 4 • Measurement Uncertainty and Error
Distinguishes systematic from random errors and quantifies uncertainty in measurements. Builds critical evaluation skills for experimental data.
Chapter 2HideHide detailsSee detailsKinematics: Describing Motion
Kinematics: Describing Motion
Lesson 1 • Uniform Circular Motion
Describes motion at constant speed along a circular path and introduces centripetal acceleration. Prepares students for force analysis in circular contexts.
Lesson 2 • Equations of Uniform Acceleration
Derives and applies the four kinematic equations for constant acceleration. Enables quantitative prediction of motion outcomes.
Lesson 3 • One-Dimensional Motion Concepts
Defines displacement, velocity, and acceleration along a single axis. Provides the conceptual core for all kinematic analysis.
Lesson 4 • Two-Dimensional Projectile Motion
Extends kinematic equations to horizontal and vertical components simultaneously. Applies vector decomposition from Chapter 1 to curved trajectories.
Lesson 5 • Motion Graphs and Analysis
Reads and constructs position-time, velocity-time, and acceleration-time graphs. Connects graphical slopes and areas to physical quantities.
Chapter 3HideHide detailsSee detailsNewton's Laws and Dynamics
Newton's Laws and Dynamics
Lesson 1 • Free-Body Diagram Techniques
Teaches systematic identification and drawing of all forces on an object. Accurate diagrams are the foundation for every dynamics calculation.
Lesson 2 • Dynamics of Circular Motion
Applies Newton's second law to centripetal acceleration in circular paths. Connects kinematics of circular motion to force analysis.
Lesson 3 • Newton's First and Second Laws
Defines inertia, net force, and the relationship F = ma. Establishes the causal link between force and the kinematic quantities studied previously.
Lesson 4 • Newton's Third Law and Force Pairs
Clarifies action-reaction pairs and their role in multi-body systems. Resolves common misconceptions about equal and opposite forces.
Lesson 5 • Friction Forces
Distinguishes static and kinetic friction and applies friction coefficients to motion problems. Extends dynamics to realistic surfaces.
Chapter 4HideHide detailsSee detailsWork, Energy, and Power
Work, Energy, and Power
Lesson 1 • Work Done by a Force
Defines work as the dot product of force and displacement and evaluates it for constant and variable forces. Connects vector concepts from Chapter 1 to energy transfer.
Lesson 2 • Kinetic and Potential Energy
Derives kinetic energy from the work-energy theorem and defines gravitational and elastic potential energy. Establishes the forms of mechanical energy.
Lesson 3 • Work Done by Non-Conservative Forces
Extends energy methods to systems with friction and air resistance. Quantifies energy dissipated as thermal energy.
Lesson 4 • Power and Efficiency
Defines power as the rate of energy transfer and evaluates efficiency of real machines. Applies energy concepts to engineering and everyday contexts.
Lesson 5 • Conservation of Mechanical Energy
Applies energy conservation to frictionless systems to predict speeds and heights. Provides a powerful shortcut over Newton's law methods.
Chapter 5HideHide detailsSee detailsMomentum, Impulse, and Collisions
Momentum, Impulse, and Collisions
Lesson 1 • Two-Dimensional Collision Analysis
Extends momentum conservation to collisions in a plane using vector components. Requires mastery of 2D vector decomposition from Chapter 1.
Lesson 2 • Elastic and Inelastic Collisions
Classifies collisions by kinetic energy conservation and solves for post-collision velocities. Applies both momentum and energy conservation simultaneously.
Lesson 3 • Conservation of Linear Momentum
States and applies the law of conservation of momentum to isolated systems. Provides the analytical framework for all collision problems.
Lesson 4 • Linear Momentum and Impulse
Defines momentum as mass times velocity and impulse as the change in momentum. Connects force-time relationships to momentum change.
Chapter 6HideHide detailsSee detailsRotational Motion and Torque
Rotational Motion and Torque
Lesson 1 • Angular Kinematics
Defines angular displacement, velocity, and acceleration and derives rotational kinematic equations. Mirrors the structure of Chapter 2 for rotational contexts.
Lesson 2 • Moment of Inertia
Introduces moment of inertia as the rotational analog of mass and calculates it for common shapes. Determines how mass distribution affects rotational response.
Lesson 3 • Newton's Second Law for Rotation
Applies τ = Iα to solve rotational dynamics problems. Unifies translational and rotational Newton's law approaches.
Lesson 4 • Angular Momentum and Its Conservation
Defines angular momentum and applies its conservation to isolated rotating systems. Explains phenomena such as spinning figure skaters and gyroscopes.
Lesson 5 • Torque and Rotational Equilibrium
Defines torque as the rotational analog of force and applies equilibrium conditions to rigid bodies. Enables analysis of levers, beams, and balanced structures.
Chapter 7HideHide detailsSee detailsWaves, Sound, and Optics
Waves, Sound, and Optics
Lesson 1 • Superposition, Interference, and Standing Waves
Applies the superposition principle to produce constructive and destructive interference patterns. Derives standing wave conditions for strings and pipes.
Lesson 2 • Reflection, Refraction, and Snell's Law
Applies the laws of reflection and refraction to light at boundaries between media. Introduces index of refraction and total internal reflection.
Lesson 3 • Geometric Optics: Mirrors and Lenses
Uses ray diagrams and mirror/lens equations to locate images formed by curved surfaces. Applies sign conventions to predict image type and magnification.
Lesson 4 • Wave Properties and Classification
Defines amplitude, wavelength, frequency, and wave speed and distinguishes transverse from longitudinal waves. Establishes vocabulary for all wave analysis.
Lesson 5 • Sound Waves and the Doppler Effect
Characterizes sound as a longitudinal pressure wave and analyzes frequency shifts due to relative motion. Connects wave speed to medium properties.
Chapter 8HideHide detailsSee detailsElectricity, Magnetism, and Circuits
Electricity, Magnetism, and Circuits
Lesson 1 • DC Circuit Analysis
Applies Ohm's law and Kirchhoff's rules to analyze series and parallel resistor networks. Enables calculation of current, voltage, and power in DC circuits.
Lesson 2 • Capacitors and Stored Energy
Defines capacitance and calculates energy stored in capacitor configurations. Extends circuit analysis to include capacitive elements.
Lesson 3 • Electric Charge and Coulomb's Law
Defines electric charge, quantization, and conservation, then applies Coulomb's law to point charges. Establishes the electrostatic force as analogous to gravity.
Lesson 4 • Magnetic Forces and Electromagnetic Induction
Applies the magnetic force law to moving charges and current-carrying conductors, then introduces Faraday's law of induction. Connects electricity and magnetism as unified phenomena.
Lesson 5 • Electric Fields and Electric Potential
Introduces the electric field as force per unit charge and electric potential as energy per unit charge. Connects field lines to equipotential surfaces.
Your valid completion certificate
This course is for you:
Pre-med students: physics prerequisites demand both conceptual depth and calculation accuracy.
Engineering freshmen: foundational mechanics and circuits underpin every technical course ahead.
High school graduates: bridging the gap before university science programs begin.
Career changers entering STEM: need structured physics grounding without returning to school.
Hobbyist makers and tinkerers: want the theory behind the electronics and machines they build.
Science educators: refreshing content knowledge to teach physics with greater confidence.
What our students say
Your classes are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I thank you for everything you do, I've already recommended you to other people...

I like how the lessons are straight to the point and how I can switch chapters and skip content I don't need.

I like the content and the way videos are presented and transcribed, which speeds up the process!

The platform is fast, simple to use. The diversity of content and complementary videos really help with learning.

Top trainings
FAQs
Who is Dedika?
Is the certificate valid in the Philippines?
Are the courses free?
What is the course workload?
What are the courses like?
How do the courses work?
What is the duration of the courses?
What is the cost or price of the courses?
What is an EAD or online course and how does it work?
PDF Course




















