Lesson at a Glance | He Tirohanga Whakamua
Ngā Whāinga Ako | Learning Intentions
Students will know
- Newton's 3 Laws of Motion:
1st Law: Inertia ().
2nd Law: .
3rd Law: Equal & opposite force pairs on separate objects. - How to draw Free-Body Diagrams with scaled force vectors ().
- How to resolve gravity () on an inclined plane:
• Parallel to slope (causes acceleration down ramp):
• Perpendicular to slope (balanced by Normal force):
Students will demonstrate
- By calculating acceleration of a 15kg sled sliding down a 25° hill with friction.
- By completing Section 4 of their Level 2 Physics Mechanics Mastery Portfolio.
Do Now | Tīmatanga Whakaaro (10 min)
Terminal Velocity Prompt:
"When a skydiver leaps from a helicopter, gravity pulls them down. Why does their downward speed level off at ~55 m s⁻¹ (terminal velocity) instead of increasing infinitely?"
Unpack: As their falling speed increases, upward air drag () increases until it equals downward gravity (). At this point, net force is zero (). According to Newton's 1st Law, acceleration drops to zero (), and the skydiver falls at constant terminal velocity!
Gravity Components on an Inclined Plane (15 min)
Component of weight pulling the object down the ramp. Opposed by friction ().
Component pressing into ramp surface. Equal and opposite to Normal Support Force ().
Newton's Three Laws (15 min)
First: if then , so an object stays still or keeps moving at constant velocity. Constant velocity means balanced forces, not no forces. Second: , where is the vector sum. Both laws describe forces acting on ONE object.
Every force is one half of a pair equal in size and opposite in direction. The pair always acts on TWO DIFFERENT objects, which is why they never cancel. A horse pulls a cart forward; the cart pulls back on the horse. The cart accelerates because the forces on the CART do not balance.
Do this now: for a book resting on a desk, name the third-law partner of the book's weight. It is not the normal force, and saying why is the whole point.
📁 Physics Mechanics Portfolio — Section 4: Free-Body Diagrams & Inclined Planes
Students open their Level 2 Physics Portfolio and complete Section 4:
Section 4 Requirements:
1. Free-Body Force Diagram Pair: Draw scaled free-body diagrams for: 1) Terminal velocity skydiver (), and 2) Block accelerating down a 30° ramp.
2. Inclined Plane Calculation: Calculate , , , Net Force, and Acceleration for a 20kg crate on a 15° ramp with 25N friction force.
3. Excellence 3rd Law Rationale: 1-paragraph explanation of why the action-reaction force pair of a horse pulling a cart does NOT cancel out ( acts on cart; acts on horse!).
Exit Verification | Ka Mutu Hoki (5 min)
Exit Check:
"My Section 4 correctly calculates down-slope force as mg sin(theta) and explains why Newton's 3rd law action-reaction pairs do not cancel out."
Teacher Planning & NCEA Alignment
NCEA Level 2 Physics Alignment (6 Credits External):
- Newton's Laws: Apply , inertia, and action-reaction pairs to 1D and 2D mechanics scenarios.
- Inclined Planes: Resolve gravitational force vectors on inclined surfaces into parallel and perpendicular components.
Vocabulary: Newton's 1st Law, 2nd Law, 3rd Law, free-body diagram, weight (), normal force (), friction (), terminal velocity, inclined plane.
Same concept, shorter route: the Guided Viewing & Problem Practice version of this unit covers it in Newton's Laws and Free-Body Force Diagrams. That route is a compact viewing-and-practice sequence; this one builds the concept over ten sections with a formative portfolio.