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MOTION OF A PROJECTILE Today’s Objectives: Students will be able to: 1.Analyze the free-flight motion of a projectile. In-Class Activities: Check Homework.

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Presentation on theme: "MOTION OF A PROJECTILE Today’s Objectives: Students will be able to: 1.Analyze the free-flight motion of a projectile. In-Class Activities: Check Homework."— Presentation transcript:

1 MOTION OF A PROJECTILE Today’s Objectives: Students will be able to: 1.Analyze the free-flight motion of a projectile. In-Class Activities: Check Homework Reading Quiz Applications Kinematic Equations for Projectile Motion Concept Quiz Group Problem Solving Attention Quiz

2 APPLICATIONS A good kicker instinctively knows at what angle, , and initial velocity, v A, he must kick the ball to make a field goal. For a given kick “strength”, at what angle should the ball be kicked to get the maximum distance?

3 APPLICATIONS (continued) A basketball is shot at a certain angle. What parameters should the shooter consider in order for the basketball to pass through the basket? Distance, speed, the basket location, … anything else ?

4 MOTION OF A PROJECTILE (Section 12.6) Projectile motion can be treated as two rectilinear motions, one in the horizontal direction experiencing zero acceleration and the other in the vertical direction experiencing constant acceleration (i.e., from gravity). For illustration, consider the two balls on the left. The red ball falls from rest, whereas the yellow ball is given a horizontal velocity. Each picture in this sequence is taken after the same time interval. Notice both balls are subjected to the same downward acceleration since they remain at the same elevation at any instant. Also, note that the horizontal distance between successive photos of the yellow ball is constant since the velocity in the horizontal direction is constant.

5 KINEMATIC EQUATIONS: HORIZONTAL MOTION Since a x = 0, the velocity in the horizontal direction remains constant (v x = v ox ) and the position in the x direction can be determined by: x = x o + (v ox ) t Why is a x equal to zero (assuming movement through the air)?

6 KINEMATIC EQUATIONS: VERTICAL MOTION Since the positive y-axis is directed upward, a y = – g. Application of the constant acceleration equations yields: v y = v oy – g t y = y o + (v oy ) t – ½ g t 2 v y 2 = v oy 2 – 2 g (y – y o ) For any given problem, only two of these three equations can be used. Why?

7 EXAMPLE I Given: v o and θ Find:The equation that defines y as a function of x. Plan:Eliminate time from the kinematic equations. Solution: Usingv x = v o cos θ andv y = v o sin θ We can write: x = (v o cos θ)t or y = (v o sin θ) t – ½ g (t) 2 t = x v o cos θ y = (v o sin θ) { } { } 2 x g x v o cos θ 2 v o cos θ – By substituting for t:

8 EXAMPLE II Given: Projectile is fired with v A =150 m/s at point A. Find:The horizontal distance it travels (R) and the time in the air. Plan: Establish a fixed x, y coordinate system (in this solution, the origin of the coordinate system is placed at A). Apply the kinematic relations in x- and y-directions.

9 EXAMPLE II (continued) Solving for t AB first, t AB = 19.89 s. Then, R = 120 t AB = 120 (19.89) = 2387 m Solution: 1) Place the coordinate system at point A. Then, write the equation for horizontal motion. + x B = x A + v Ax t AB where x B = R, x A = 0, v Ax = 150 (4/5) m/s Range, R will be R = 120 t AB 2) Now write a vertical motion equation. Use the distance equation. + y B = y A + v Ay t AB – 0.5 g t AB 2 where y B = – 150, y A = 0, and v Ay = 150(3/5) m/s We get the following equation: –150 = 90 t AB + 0.5 (– 9.81) t AB 2

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