Year 10 Physics · Te Taiao Moana & Wayfinding

Lesson 4: Aerodynamics of the Oceanic Crab-Claw Sail: Bernoulli & Vector Forces

Exploring physical phenomena—waves, forces, vectors, optics, and relativity—through traditional Polynesian navigation and ocean science.

🎯 Ngā Whāinga Akoranga | Learning Intentions

🧠 Students will know:

Bernoulli's principle of aerodynamic lift, sail pressure differentials, sail foil camber, force vectors (lift, drag, net driving force), and windward tacking.

✏️ Students will demonstrate:

Construct and test a miniature crab-claw sail vs triangular bermudan sail in a wind tunnel/fan stream, measure lift/drag ratio, and resolve force vector components.

🎥 Media Anchor & Pedagogical Scaffold

How Does A Wing Actually Work? — Veritasium

Video (Veritasium): A clear explanation of how wings and sails generate lift through pressure differentials and Bernoulli's principle, including force vector applications to sailing.

🧠 1. Before Viewing (Activate & Predict)

Why did NASA wind-tunnel tests reveal the traditional Polynesian crab-claw sail generates superior vortex lift at high angles of attack?

👁️ 2. During Viewing (Watch With a Job)

Watch the full 13-minute clip and collect evidence for these aerodynamic principles:

  • Bernoulli's Principle: How do pressure differentials across a curved surface create lift?
  • Lift generation: Why does air speed and sail shape matter for creating lifting force?
  • Drag forces: What is the relationship between lift and drag?
  • Sailing applications: How do these principles apply to the design of sails and the ability to sail at different angles to the wind?

🗣️ 3. After Viewing & Kaiako Move (Process & Apply)

Kaiako Move: Use a smoke generator/streamer fan set up with paper wing models to demonstrate lift pressure differentials.

Immediate Task: Complete Section 4 of your Navigation Physics Logbook: Sail Lift Vector Resolution & Aero Force Diagrams.

⚡ Whakaoho | Do Now: A Sail Can Drive a Waka Towards the Wind

Two minutes: first write why that sounds impossible. Then have a genuine attempt at why it is not.

Very few people get this fully on the first try. Write your best attempt anyway — you will come back to it at the end of the lesson, after you have measured lift and drag with your own hands.

📖 Activity 1: Test Two Sails, Then Resolve the Vectors

Measure (13 min). Mount a crab-claw sail and a triangular bermudan sail in the fan stream at the same wind speed. Measure the force in the direction of travel at three sail angles each. Six readings, all recorded, including the ones that disappoint you.

Resolve (12 min). For your best angle, draw the force diagram: lift perpendicular to the airflow, drag along it, and the resultant of the two. Then resolve that resultant into the direction the waka actually travels. The driving force is only a component of the total — which is precisely why sailing towards the wind is possible.

📝 Activity 2: Navigation Physics Logbook & Problem Solving (20 mins)

Portfolio Section 4. Submit: (1) six force readings across two sails and three angles with the wind speed stated; (2) a scale vector diagram resolving lift and drag into a driving component; (3) your revised answer to the Do Now placed beside your first attempt, saying exactly what changed your mind.

🏫 Kaiako Planning & Pedagogy Notes

Year 10 Curriculum Alignment: NZ Curriculum Science Phase 4 — Physical World & Earth/Space Systems. Integrates traditional Polynesian wayfinding (Mātauranga Waka) with foundational NCEA Level 1 Physics mechanics, wave behaviour, and optics.