
Physics 101: Forces and Kinematics Course
Master the foundational principles of physics — from Newton's laws to momentum and energy — with a structured, problem-solving-focused approach. This course builds the quantitative skills and conceptual clarity needed to tackle mechanics with confidence. Whether you're preparing for college physics or strengthening your STEM foundation, this is where it starts.
What your team will master:
Apply Newton's three laws to analyze forces acting on objects in motion.
Solve one- and two-dimensional kinematics problems, including projectile motion scenarios.
Build and interpret free-body diagrams for single-object and multi-body systems.
Use the work-energy theorem and conservation of mechanical energy to solve motion problems.
Analyze elastic and inelastic collisions using linear momentum conservation in 1D and 2D.
Understand centripetal acceleration and the forces governing uniform circular motion.
How your team learns in practice Physics 101: Forces and Kinematics Course
How your team practices Physics 101: Forces and Kinematics Course
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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 • SI Units and Physical Quantities
Introduces the seven base SI units and derived units essential to mechanics. Connects unit literacy to every subsequent calculation in the course.
Lesson 2 • Measurement and Experimental Uncertainty
Covers precision, accuracy, and systematic vs. random error in physical measurements. Provides the error-analysis foundation needed for lab work throughout the course.
Lesson 3 • Vector Operations in Two Dimensions
Develops addition, subtraction, and scalar multiplication of vectors using components. These operations underpin all two-dimensional kinematics and force analysis.
Lesson 4 • Vectors and Scalars
Distinguishes scalar and vector quantities and introduces graphical and component representations. Prepares students for force and velocity decomposition in later chapters.
Chapter 2HideHide detailsSee detailsOne-Dimensional Kinematics
One-Dimensional Kinematics
Lesson 1 • Kinematic Equations for Constant Acceleration
Derives and applies the four constant-acceleration equations to solve 1D motion problems. Students practice selecting the correct equation based on known and unknown variables.
Lesson 2 • Acceleration in One Dimension
Defines average and instantaneous acceleration and links them to velocity-time graph slopes. Prepares students to apply kinematic equations under constant acceleration.
Lesson 3 • Velocity and Speed
Differentiates average and instantaneous velocity and connects them to position-time graphs. Students gain graphical and algebraic tools for velocity analysis.
Lesson 4 • Describing Position and Displacement
Defines reference frames, position coordinates, and displacement as a vector quantity. Establishes the conceptual language used in all kinematic equations.
Lesson 5 • Free Fall and Gravitational Acceleration
Applies constant-acceleration kinematics to objects in free fall near Earth's surface. Students solve drop, toss, and projectile-precursor problems using g = 9.8 m/s².
Chapter 3HideHide detailsSee detailsTwo-Dimensional Kinematics
Two-Dimensional Kinematics
Lesson 1 • Motion in a Plane: Vector Approach
Generalizes position, velocity, and acceleration to two dimensions using vector components. Connects 1D kinematic concepts to the 2D framework used throughout this chapter.
Lesson 2 • Projectile Motion Fundamentals
Analyzes the parabolic path of a projectile by separating horizontal and vertical components. Students apply free-fall equations vertically while treating horizontal motion as uniform.
Lesson 3 • Relative Motion and Reference Frames
Introduces Galilean relativity and velocity addition for observers in different inertial frames. Students solve river-crossing and aircraft-wind problems using relative velocity vectors.
Lesson 4 • Advanced Projectile Problems
Solves projectile scenarios with elevated or depressed launch points and targets at different heights. Builds problem-solving flexibility beyond the standard horizontal-launch case.
Chapter 4HideHide detailsSee detailsNewton's Laws of Motion
Newton's Laws of Motion
Lesson 1 • Newton's First Law and Inertia
Defines inertia and the condition of equilibrium for objects at rest or in uniform motion. Challenges common misconceptions about force as the cause of motion.
Lesson 2 • Applying Newton's Laws to Simple Systems
Solves single-object and two-object problems on horizontal and inclined surfaces. Integrates free-body diagrams, component equations, and algebraic solution strategies.
Lesson 3 • Force, Mass, and Newton's Second Law
Quantifies the relationship F = ma and explores how net force and mass determine acceleration. Students practice calculating acceleration from multiple concurrent forces.
Lesson 4 • Free-Body Diagrams
Develops systematic construction of free-body diagrams as the primary tool for applying Newton's laws. Accurate diagrams are required for every dynamics problem in subsequent chapters.
Lesson 5 • Newton's Third Law and Force Pairs
Identifies action-reaction pairs and explains why they act on different objects. Students avoid the common error of canceling third-law pairs within a single free-body diagram.
Chapter 5HideHide detailsSee detailsCommon Forces in Mechanics
Common Forces in Mechanics
Lesson 1 • Normal Force and Contact Forces
Explains the normal force as a surface reaction perpendicular to the contact surface. Students calculate normal force on flat, inclined, and accelerating surfaces.
Lesson 2 • Tension in Ropes and Cables
Models tension as a pulling force transmitted through massless, inextensible strings. Students solve pulley and multi-segment rope problems using Newton's second law.
Lesson 3 • Static and Kinetic Friction
Derives friction force models using coefficients of static and kinetic friction. Students determine whether an object slides or remains stationary under applied forces.
Lesson 4 • Multi-Force Problem Solving
Combines gravity, normal force, tension, and friction in complex multi-body scenarios. Students practice systematic equation setup and solution verification.
Lesson 5 • Gravity and Weight
Distinguishes gravitational force from mass and derives weight as W = mg near Earth's surface. Connects to free-fall kinematics and sets up inclined-plane force analysis.
Chapter 6HideHide detailsSee detailsCircular Motion and Centripetal Force
Circular Motion and Centripetal Force
Lesson 1 • Circular Motion in Vertical Planes
Analyzes roller coasters, pendulums at the bottom of a swing, and objects on the inside of a loop. Students determine minimum speed conditions and normal force variation around a vertical circle.
Lesson 2 • Circular Motion in Horizontal Planes
Solves problems involving cars on curves, rotating platforms, and banked roads. Students apply friction and normal force as the centripetal force sources in horizontal-plane scenarios.
Lesson 3 • Centripetal Acceleration
Derives the centripetal acceleration formula a = v²/r and identifies its direction toward the center. Students distinguish centripetal acceleration from tangential acceleration.
Lesson 4 • Centripetal Force and Newton's Second Law
Applies F = ma to circular motion, identifying which physical forces provide centripetal force. Students avoid the misconception of centripetal force as a separate, additional force.
Lesson 5 • Uniform Circular Motion Kinematics
Defines period, frequency, and speed for objects moving at constant speed in a circle. Establishes the kinematic foundation before introducing the forces responsible for circular motion.
Chapter 7HideHide detailsSee detailsWork, Energy, and the Work-Energy Theorem
Work, Energy, and the Work-Energy Theorem
Lesson 1 • Gravitational Potential Energy
Defines gravitational potential energy PE = mgh and explains its dependence on reference level choice. Prepares students for energy conservation by introducing stored energy due to position.
Lesson 2 • Power and Energy Transfer Rate
Defines power as the rate of work done and connects it to force and velocity via P = Fv. Students solve problems involving engines, motors, and human exertion using power concepts.
Lesson 3 • Work Done by a Constant Force
Defines work as W = Fd cosθ and identifies conditions under which forces do positive, negative, or zero work. Connects force and displacement concepts from Newton's laws to the energy framework.
Lesson 4 • Conservation of Mechanical Energy
States the conservation law for systems with only conservative forces and applies it to solve motion problems. Students compare energy and kinematics methods to appreciate each approach's efficiency.
Lesson 5 • Kinetic Energy and the Work-Energy Theorem
Derives kinetic energy KE = ½mv² and proves that net work equals the change in kinetic energy. Students use the theorem as an efficient alternative to Newton's second law for speed-change problems.
Chapter 8HideHide detailsSee detailsMomentum and Impulse
Momentum and Impulse
Lesson 1 • Conservation of Linear Momentum
States the conservation law for isolated systems and identifies when external forces violate it. Students apply conservation to two-body problems before and after collisions.
Lesson 2 • Linear Momentum and Newton's Second Law
Defines momentum as p = mv and reformulates Newton's second law in terms of momentum change. Establishes momentum as a conserved vector quantity under specific conditions.
Lesson 3 • Impulse and the Impulse-Momentum Theorem
Defines impulse as the product of force and time and proves it equals the change in momentum. Students apply the theorem to analyze collisions, airbags, and sports impacts.
Lesson 4 • Two-Dimensional Collisions
Extends momentum conservation to 2D by applying it independently to x and y components. Students solve glancing collision problems using vector component equations.
Lesson 5 • Elastic and Inelastic Collisions in 1D
Classifies collisions by kinetic energy conservation and solves for post-collision velocities. Students distinguish perfectly inelastic, inelastic, and elastic collision outcomes.
Your valid completion certificate
This course is for you:
Pre-engineering student: needs a solid mechanics foundation before university coursework begins.
High school graduate: bridging the gap between math class and college-level science.
Career changer entering a technical trade: requires applied physics literacy for certification exams.
Hobbyist builder or maker: wants to understand the forces behind the projects they design.
Healthcare professional in biomechanics: needs classical mechanics grounding for movement analysis work.
Military or aviation candidate: preparing for physics-heavy aptitude or officer selection testing.
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