Predict/Calculate Beating to Windward A sailboat can be propelled into the wind by a maneuver called beating to windward . Beating requires the sailboat to travel in a zigzag pattern at an angle to the wind that is greater than the no-go zone , which is shaded red in Figure 7-23 . When a sailboat is just outside the no-go zone (boats B in the figure) the wind exerts a force F → on the sail that has a component in the direction of motion v → Similar comments apply to boats C. The work done by the wind on the sail is W = Fd cos θ , and because v = d/t , the propulsion power P = W/t delivered to the sailboat is F ucasθ, where θ is the angle between the sail face and the direction of motion. (a) Assuming that F and u have the same magnitudes for each sailboat, will the propulsion power delivered to sailboats B be greater than, less than, or the same as the propulsion power delivered to sailboats C? Explain (b) If F = 870 N and v = 11 m/s, what propulsion power is delivered to sailboats B, for which θ = 79° ? (c) What propulsion power is delivered to sailboats C for which θ = 56° ?
Predict/Calculate Beating to Windward A sailboat can be propelled into the wind by a maneuver called beating to windward . Beating requires the sailboat to travel in a zigzag pattern at an angle to the wind that is greater than the no-go zone , which is shaded red in Figure 7-23 . When a sailboat is just outside the no-go zone (boats B in the figure) the wind exerts a force F → on the sail that has a component in the direction of motion v → Similar comments apply to boats C. The work done by the wind on the sail is W = Fd cos θ , and because v = d/t , the propulsion power P = W/t delivered to the sailboat is F ucasθ, where θ is the angle between the sail face and the direction of motion. (a) Assuming that F and u have the same magnitudes for each sailboat, will the propulsion power delivered to sailboats B be greater than, less than, or the same as the propulsion power delivered to sailboats C? Explain (b) If F = 870 N and v = 11 m/s, what propulsion power is delivered to sailboats B, for which θ = 79° ? (c) What propulsion power is delivered to sailboats C for which θ = 56° ?
Predict/Calculate Beating to Windward A sailboat can be propelled into the wind by a maneuver called beating to windward. Beating requires the sailboat to travel in a zigzag pattern at an angle to the wind that is greater than the no-go zone, which is shaded red in Figure 7-23. When a sailboat is just outside the no-go zone (boats B in the figure) the wind exerts a force
F
→
on the sail that has a component in the direction of motion
v
→
Similar comments apply to boats C. The work done by the wind on the sail is W = Fdcosθ, and because v = d/t, the propulsion power P = W/t delivered to the sailboat is Fucasθ, where θ is the angle between the sail face and the direction of motion. (a) Assuming that F and u have the same magnitudes for each sailboat, will the propulsion power delivered to sailboats B be greater than, less than, or the same as the propulsion power delivered to sailboats C? Explain (b) If
F = 870 N
and
v = 11 m/s,
what propulsion power is delivered to sailboats B, for which
θ = 79°
? (c) What propulsion power is delivered to sailboats C for which
PLEASE help with the experimental setup for this theory because i am so confused.
Part 2 - Geometry and Trigonometry
1. Line B touches the circle at a single point. Line A extends radially through the center of
the circle.
A
B
(a) Which line is tangential to the circumference of the circle?
(b) What is the angle between lines A and B.
2. In the figure below what is the angle C?
30
45
3. In the figure below what is the value of the angle 0?
30°
4. In the figure below what is the value of the angle 0?
A
30°
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