83
Welcome to Physics B Expectations are on the Course S yllabus Instructor: Mrs. Susan Cundiff 916 4100 x 4250 [email protected] www.floridaeducator.com

Welcome to Physics B Expectations are on the Course SyllabusCourse S Instructor: Mrs. Susan Cundiff 916 4100 x 4250 [email protected]

Embed Size (px)

Citation preview

Page 1: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Welcome to Physics B Expectations are on the Course Syllabus Instructor:

Mrs. Susan Cundiff 916 4100 x 4250 [email protected] www.floridaeducator.com

Page 2: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Tonight’s homework is on the board.

Lab of $10.00 is due.

Page 3: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Information Card

Page 4: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Your Textbook Write your name inside the front cover.

Your book is primarily for homework. You will not need it in class. Homework assignments will typically include some reading and a few problems.

Homework is always due the day after it is assigned. Your homework grade will be determined largely from your performance on homework quizzes, which will be pre-announced.

Page 5: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Introduction to 1-D MotionDistance versus Displacement

Page 6: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Homework is Ch1: Q:3,4,5 and P:2,4,5,6,8,9,10,25,26

Homework is Ch2: Q:7,16,21,22 and P:8-11,21,25,33,36,47

Remember, lab fees ($10) are due by Friday.

There will be a homework quiz on Thursday, which will be a problem selected at random from homework assigned from Monday through Wednesday.

Page 7: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Kinematics

Kinematics is the branch of mechanics that describes the motion of objects without necessarily discussing what causes the motion.

1-Dimensional Kinematics (or 1-Dimensional motion) refers to motion in a straight line.

Page 8: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Distance

The total length of the path traveled by an object is called distance.

“How far have you walked?” is a typical distance question.

The SI unit of distance is the meter (m).

Page 9: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Displacement (x)

The change in the position of a particle is called displacement.

is a Greek letter used to represent the words “change in”. x therefore means “change in x”. It is always calculated by final value minus initial value.

“How far are you from home?” is a typical displacement question.

The SI unit for displacement is the meter. Calculation of displacement:

f ix x x

Page 10: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

A

B

50 mdisplacement

100 m

distance

Distance vs Displacement

A picture can help you distinguish between distance and displacement.

Page 11: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Questions

Does the odometer in your car measure distance or displacement?

Can you think of a circumstance in which it measures both distance and displacement?

Page 12: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: Two tennis players approach the net to congratulate one another after a game. a) Find the distance and displacement of player A. b) Repeat for player B.

A B5 m 2 m

Page 13: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: If x is the displacement of a particle, and d is the distance the particle traveled during that displacement, which of the following is always a true statement? a) d = |x|b) d < |x|c) d > |x|d) d > |x|e) d < |x|

Page 14: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice ProblemA particle moves from x = 1.0 meter to x = -1.0 meter.What is the distance d traveled by the particle?

What is the displacement of the particle?

Page 15: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: You are driving a car on a circular track of diameter 40 meters. After you have driven around 2 ½ times, how far have you driven, and what is your displacement?

Page 16: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Average Speed and Velocity

Page 17: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Tonight’s homework is on the board.

Page 18: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Average Speed

Average speed describes how fast a particle is moving. The equation is:

Average speed is always a positive number.

where: save = average speed d = distance t = elapsed time The SI unit of speed is the m/s

ave

ds

t

Page 19: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Average Velocity

Average velocity describes how fast the displacement is changing. The equation is:

Average velocity is + or – depending on direction.

where: vave = average velocity x = displacement t = elapsed time The SI unit of velocity is the m/s.

ave

xv

t

Page 20: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Qualitative Demonstrations

1) Demonstrate the motion of a particle that has an average speed and an average velocity that are both zero.

2) Demonstrate the motion of a particle that has an average speed and an average velocity that are both nonzero.

3) Demonstrate the motion of a particle that has an average speed that is nonzero and an average velocity that is zero.

4) Demonstrate the motion of a particle that has an average velocity that is nonzero and an average speed that is zero.

Page 21: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Quantitative Demonstration

You are a particle located at the origin. Demonstrate how you can move from x = 0 to x = 10.0 and back with an average speed of 0.5 m/s.

What the particle’s average velocity for the above demonstration?

Page 22: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Cart Track Lab

Purpose: To take appropriate measurements, tabulate data, and calculate average velocity. Use your lab notebook.

Instructions: Using the cart track, cart, pulley, hanging mass, and stopwatch, determine the average speed and average velocity of the cart as it travels from one end of the track to the other.

See the board for details on how to use your lab notebook to keep a neat and accurate record of your lab.

Page 23: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: How long will it take the sound of the starting gun to reach the ears of the sprinters if the starter is stationed at the finish line for a 100 m race? Assume that sound has a speed of about 340 m/s.

Page 24: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: You drive in a straight line at 10 m/s for 1.0 km, and then you drive in a straight line at 20 m/s for another 1.0 km. What is your average velocity?

Page 25: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Tonight’s homework is on board. Lab of $10.00 due by Friday.

Page 26: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Instantaneous Velocity

Page 27: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Tonight’s homework is on the web site.

Page 28: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

Demonstrate the motion of this particle.

t

x

Page 29: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

Demonstrate the motion of this particle.

t

x

Page 30: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

What physical feature of the graph gives the constant velocity from A to B?

t

xx

tA

Bvave = x/t

Page 31: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem: Determine the average velocity from the graph.

x (m)

Page 32: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Review Problem

Demonstrate the motion of these two particles.

t

x

Page 33: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

Demonstrate the motion of these two particle.

t

v

Page 34: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

t

x

What kind of motion does this graph represent?

Page 35: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

Can you determine average velocity from the time at point A to the time at point B from this graph?

t

x ABx

t

vave = x/t

Page 36: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem: Determine the average velocity between 1 and 4 seconds.

Page 37: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Instantaneous Velocity

The velocity at a single instant in time. If the velocity is uniform, or constant,

the instantaneous velocity is the same as the average velocity.

If the velocity is not constant, than the instantaneous velocity is not the same as the average velocity, and we must carefully distinguish between the two.

Page 38: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Instantaneous Velocity

Draw a tangent line to the curve at B. The slope of this line gives the instantaneous velocity at that specific time.

t

xB x

t

vins = x/t

Page 39: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: Determine the instantaneous velocity at 1.0 second.

Page 40: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Acceleration

Page 41: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Page 42: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Acceleration (a)

Any change in velocity over a period of time is called acceleration.

The sign (+ or -) of acceleration indicates its direction.

Acceleration can be… speeding up slowing down turning

Page 43: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Questions

If acceleration is zero, what does this mean about the motion of an object?

Is it possible for a racecar circling a track to have zero acceleration?

Page 44: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Uniform (Constant) Acceleration

In Physics B, we will generally assume that acceleration is constant.

With this assumption we are free to use this equation:

The SI unit of acceleration is the m/s2.

va

t

Page 45: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Acceleration in 1-D Motionhas a sign!

If the sign of the velocity and the sign of the acceleration is the same, the object speeds up.

If the sign of the velocity and the sign of the acceleration are different, the object slows down.

Page 46: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Qualitative Demonstrations

1) Demonstrate the motion of a particle that has zero initial velocity and positive acceleration.

2) Demonstrate the motion of a particle that has zero initial velocity and negative acceleration.

3) Demonstrate the motion of a particle that has positive initial velocity and negative acceleration.

4) Demonstrate the motion of a particle that has negative initial velocity and positive acceleration.

Page 47: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: A 747 airliner reaches its takeoff speed of 180 mph in 30 seconds. What is its average acceleration?

Page 48: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: A horse is running with an initial velocity of 11 m/s, and begins to accelerate at –1.81 m/s2. How long does it take the horse to stop?

Page 49: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

Demonstrate the motion of this particle. Is it accelerating?

t (s)

v (m/s)

0.50

Page 50: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

Demonstrate the motion of this particle. Is it accelerating?

t

v

Page 51: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Graphical Problem

What physical feature of the graph gives the acceleration?

t

vv

tA

Ba = v/t

Page 52: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: Determine the acceleration from the graph.

Page 53: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

How would you describe the motion of this particle?

Practice Problem: Determine the displacement of the object from 0 to 4 seconds.

Page 54: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us
Page 55: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Page 56: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Kinematic Equations and Graphs

Page 57: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Labs start this week!

Page 58: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Position vs Time Graphs

Particles moving with no acceleration (constant velocity) have graphs of position vs time with one slope. The velocity is not changing since the slope is constant.

Position vs time graphs for particles moving with constant acceleration look parabolic. The instantaneous slope is changing. In this graph it is increasing, and the particle is speeding up.

Page 59: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Uniformly Accelerating Objects

You see the car move faster and faster. This is a form of acceleration.

The position vs time graph for the accelerating car reflects the bigger and bigger x values.

The velocity vs time graph reflects the increasing velocity.

Page 60: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Describe the motion

This object is moving in the positive direction and accelerating in the positive direction (speeding up).

This object is moving in the negative direction and accelerating in the negative direction (speeding up).

This object is moving in the negative direction and accelerating in the positive direction (slowing down).

Page 61: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Draw Graphs forStationary Particles

x

t

Positionvs

time

v

t

Velocityvs

time

a

t

Accelerationvs

time

Page 62: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Draw Graphs forConstant Non-zero Velocity

x

t

Positionvs

time

v

t

Velocityvs

time

a

t

Accelerationvs

time

Page 63: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Draw Graphs for ConstantNon-zero Acceleration

x

t

Positionvs

time

v

t

Velocityvs

time

a

t

Accelerationvs

time

Page 64: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Kinematic Equations

212

2 20 2 ( )

o

o o

v v at

x x v t at

v v a x

Page 65: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: What must a particular Olympic sprinter’s acceleration be if he is able to attain his maximum speed in ½ of a second?

Page 66: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: A plane is flying in a northwest direction when it lands, touching the end of the runway with a speed of 130 m/s. If the runway is 1.0 km long, what must the acceleration of the plane be if it is to stop while leaving ¼ of the runway remaining as a safety margin?

Page 67: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Cart on Incline Demonstrations

Using a motion sensor, collect position vs time, velocity vs time, and acceleration vs time data for a cart on an inclined plane.

Page 68: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: On a ride called the Detonator at Worlds of Fun in Kansas City, passengers accelerate straight downward from 0 to 20 m/s in 1.0 second.

a) What is the average acceleration of the passengers on this ride?

b) How fast would they be going if they accelerated for an additional second at this rate?

Page 69: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem -- continued

c) Sketch approximate x-vs-t, v-vs-t and a-vs-t graphs for this ride.

Page 70: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: Air bags are designed to deploy in 10 ms. Estimate the acceleration of the front surface of the bag as it expands. Express your answer in terms of the acceleration of gravity g.

Page 71: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: You are driving through town at 12.0 m/s when suddenly a ball rolls out in front of you. You apply the brakes and decelerate at 3.5 m/s2.a) How far do you travel before stopping?

b) When you have traveled only half the stopping distance, what is your speed?

Page 72: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem -- continuedc) How long does it take you to stop?

d) Draw x vs t, v vs t, and a vs t graphs for this.

Page 73: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Free Fall

Page 74: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Announcements

Page 75: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Free Fall

Free fall is a term we use to indicate that an object is falling under the influence of gravity, with gravity being the only force on the object.

Gravity accelerates the object toward the earth the entire time it rises, and the entire time it falls.

The acceleration due to gravity near the surface of the earth has a magnitude of 9.8 m/s2. The direction of this acceleration is DOWN.

Air resistance is ignored.

Page 76: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: You drop a ball from rest off a 120 m high cliff. Assuming air resistance is negligible,

a) how long is the ball in the air?

b) what is the ball’s speed and velocity when it strikes the ground at the base of the cliff?

c) sketch approximate x-vs-t, v-vs-t, a-vs-t graphs for this situation.

Page 77: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem: You throw a ball straight upward into the air with a velocity of 20.0 m/s, and you catch the ball some time later.a) How long is the ball in the air?

b) How high does the ball go?

Page 78: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Practice Problem -- continuedc) What is the ball’s velocity when you catch it?

d) Sketch approximate x-vs-t, v-vs-t, a-vs-t graphs for this situation.

Page 79: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Symmetry in Free Fall

When something is thrown straight upward under the influence of gravity, and then returns to the thrower, this is very symmetric.

The object spends half its time traveling up; half traveling down.

Velocity when it returns to the ground is the opposite of the velocity it was thrown upward with.

Acceleration is 9.8 m/s2 and directed DOWN the entire time the object is in the air!

Let’s see some demos!

Page 80: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Free Fall II

Page 81: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Reflex Testing Lab

Using a meter stick, determine your reaction time.

Page 82: Welcome to Physics B  Expectations are on the Course SyllabusCourse S  Instructor:  Mrs. Susan Cundiff  916 4100 x 4250  cundifs@mail.santarosa.k12.fl.us

Pinewood Derby

x(m) 0 2.3 9.2 20.7 36.8 57.5

t(s) 0 1.0 2.0 3.0 4.0 5.0

On your graph paper, do the following.a) Draw a position vs time graph for the car.b) Draw tangent lines at three different points on the curve to determine the instantaneous velocity at all three points.c) On a separate graph, draw a velocity vs time graph using the instantaneous velocities you obtained in the step above.d)From your velocity vs time graph, determine the acceleration of the car.