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Physics: Motion, Gravity, and Light Course
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Physics: Motion, Gravity, and Light Course

Master the fundamental principles that govern how the universe moves, pulls, and shines. From Newton's laws and orbital mechanics to the behavior of light and Einstein's special relativity, this course builds rigorous physical intuition backed by precise mathematics. Whether you're preparing for university physics or deepening your scientific foundation, every concept is developed from first principles and applied to real problems.

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What you will learn:

  • Analyze one- and two-dimensional motion using kinematic equations and vector decomposition.

  • Apply Newton's three laws to construct free-body diagrams and solve force problems systematically.

  • Use conservation of energy and momentum to tackle complex mechanical and collision scenarios.

  • Understand gravitational fields, Kepler's laws, and the mechanics of planetary and satellite orbits.

  • Interpret wave optics, Snell's law, and lens equations to explain real optical phenomena.

  • Explore Einstein's postulates, time dilation, length contraction, and the photoelectric effect.

How you study in practice Physics: Motion, Gravity, and Light Course

How you practise Physics: Motion, Gravity, and Light Course

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Course Content

8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Physical Measurement

  • Lesson 1 • Measurement Uncertainty and Error

    Covers systematic and random errors, uncertainty propagation, and data reporting standards. Ensures students evaluate experimental results critically.

  • Lesson 2 • Units and Physical Quantities

    Introduces SI units and dimensional analysis as the basis for all physical measurement. Connects precise unit usage to error-free problem solving.

  • Lesson 3 • Scalars and Vectors

    Distinguishes scalar from vector quantities and introduces graphical and algebraic vector operations. Builds the spatial reasoning needed for motion analysis.

  • Lesson 4 • Mathematical Tools for Physics

    Reviews algebra, trigonometry, and introductory calculus concepts applied to physical problems. Provides the quantitative foundation for all subsequent chapters.

Chapter 2See details

Kinematics: Describing Motion

  • Lesson 1 • Position, Displacement, and Distance

    Defines position, displacement, and distance and distinguishes their scalar and vector natures. Anchors all motion descriptions to a reference frame.

  • Lesson 2 • Acceleration and Its Effects

    Defines acceleration as the rate of velocity change and explores uniform and non-uniform cases. Connects acceleration to velocity-time graph slopes.

  • Lesson 3 • Kinematic Equations in One Dimension

    Derives and applies the four kinematic equations for constant acceleration in one dimension. Students solve displacement, velocity, and time problems systematically.

  • Lesson 4 • Projectile Motion in Two Dimensions

    Extends kinematics to two dimensions by treating horizontal and vertical motion independently. Students predict trajectories of launched objects.

  • Lesson 5 • Velocity and Speed

    Introduces average and instantaneous velocity and speed using graphical and algebraic methods. Links slope of position-time graphs to velocity.

Chapter 3See details

Newton's Laws and Force Analysis

  • Lesson 1 • Friction and Inclined Plane Problems

    Introduces static and kinetic friction coefficients and applies them to inclined surfaces. Builds problem-solving fluency for real-world force scenarios.

  • Lesson 2 • Newton's First and Second Laws

    States the law of inertia and derives F = ma for constant and variable net forces. Connects acceleration direction to net force direction.

  • Lesson 3 • Newton's Third Law and Interaction Pairs

    Identifies action-reaction pairs and explains why they do not cancel. Applies the third law to collisions and contact scenarios.

  • Lesson 4 • Free-Body Diagrams and Equilibrium

    Teaches systematic free-body diagram construction and static equilibrium conditions. Students resolve forces into components to find unknown quantities.

  • Lesson 5 • Concept of Force and Mass

    Defines force as a vector interaction and mass as inertia. Establishes the distinction between contact and field forces.

Chapter 4See details

Work, Energy, and Conservation Laws

  • Lesson 1 • Power and Efficiency

    Defines power as the rate of energy transfer and calculates efficiency for real machines. Connects power to force and velocity for moving systems.

  • Lesson 2 • Work Done by a Force

    Defines work as the dot product of force and displacement and calculates work for constant and variable forces. Introduces the joule as the unit of energy.

  • Lesson 3 • Conservation of Mechanical Energy

    States the conservation law for isolated systems and applies it to pendulums, projectiles, and springs. Identifies when non-conservative forces violate conservation.

  • Lesson 4 • Kinetic and Potential Energy

    Derives kinetic energy from the work-energy theorem and defines gravitational and elastic potential energy. Connects energy storage to position and motion.

Chapter 5See details

Momentum, Impulse, and Collisions

  • Lesson 1 • Conservation of Linear Momentum

    States the conservation law for closed systems and applies it to explosions and collisions. Identifies internal vs. external forces in a system.

  • Lesson 2 • Two-Dimensional Collision Analysis

    Applies vector momentum conservation to oblique collisions in two dimensions. Students use component equations to find post-collision velocities.

  • Lesson 3 • Elastic and Inelastic Collisions

    Classifies collisions by kinetic energy conservation and solves one-dimensional collision problems. Extends analysis to perfectly inelastic cases.

  • Lesson 4 • Linear Momentum and Impulse

    Defines momentum as mass times velocity and impulse as the change in momentum. Connects impulse to the area under a force-time graph.

Chapter 6See details

Gravity and Orbital Mechanics

  • Lesson 1 • Circular Orbits and Satellite Motion

    Derives orbital speed and period for circular orbits using centripetal force. Analyzes geostationary and low-orbit satellite conditions.

  • Lesson 2 • Kepler's Laws of Planetary Motion

    States and derives Kepler's three laws from gravitational principles. Applies the laws to calculate orbital periods and semi-major axes.

  • Lesson 3 • Newton's Law of Universal Gravitation

    States the inverse-square law and calculates gravitational force between masses. Introduces the gravitational constant and its measurement.

  • Lesson 4 • Gravitational Fields and Potential

    Defines gravitational field strength and gravitational potential energy for extended systems. Connects field lines to force direction and magnitude.

  • Lesson 5 • Tidal Forces and Gravitational Effects

    Explains tidal forces as differential gravitational pull across an extended body. Connects tidal locking and ocean tides to gravitational gradients.

Chapter 7See details

Nature and Behavior of Light

  • Lesson 1 • Reflection and Mirrors

    States the law of reflection and applies it to plane, concave, and convex mirrors. Uses ray diagrams and the mirror equation to locate images.

  • Lesson 2 • Refraction and Snell's Law

    Derives Snell's law from wave speed change at an interface and applies it to lenses and prisms. Introduces total internal reflection and its applications.

  • Lesson 3 • Wave Optics: Interference and Diffraction

    Explains constructive and destructive interference using path difference and applies it to double-slit and diffraction grating patterns.

  • Lesson 4 • Electromagnetic Waves and the Spectrum

    Describes light as a transverse electromagnetic wave and maps the full spectrum by frequency and wavelength. Connects wave speed, frequency, and wavelength via c = fλ.

  • Lesson 5 • Lenses and Optical Instruments

    Applies the thin-lens equation to converging and diverging lenses and traces ray diagrams. Connects lens combinations to microscopes and telescopes.

Chapter 8See details

Special Relativity and Modern Physics

  • Lesson 1 • Time Dilation and Length Contraction

    Derives time dilation and length contraction from the Lorentz factor and applies them to moving clocks and rods. Resolves the twin paradox conceptually.

  • Lesson 2 • Einstein's Postulates of Special Relativity

    States the two postulates and explains why they require revising classical mechanics. Establishes the invariance of the speed of light as a foundational constraint.

  • Lesson 3 • Atomic Models and Quantum Transitions

    Traces atomic models from Rutherford to Bohr and explains spectral lines as quantized energy transitions. Introduces de Broglie wavelength for matter waves.

  • Lesson 4 • Relativistic Momentum and Energy

    Extends momentum and energy to relativistic speeds and derives E = mc². Applies mass-energy equivalence to nuclear reactions.

  • Lesson 5 • Photons and the Photoelectric Effect

    Introduces the photon model of light and explains the photoelectric effect using quantized energy. Connects photon energy to frequency via E = hf.

Certification

Your valid completion certificate

This course is for you:

  • High school seniors: preparing for college-level science coursework ahead.

  • Engineering hopefuls: needing a solid conceptual bridge before university begins.

  • Self-taught science enthusiasts: wanting structured rigor behind their curiosity.

  • Career changers entering STEM: building the quantitative foundation employers expect.

  • Homeschool educators: teaching advanced physical science with confidence and depth.

  • Pre-med students: strengthening the physics background required for entrance exams.

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