Learning Objectives

Learning Objectives

By the end of this section, you will be able to do the following:

  • Calculate the average speed of an object
  • Relate displacement and average velocity
Section Key Terms
average speed average velocity instantaneous speed
instantaneous velocity speed velocity

Speed

Speed

There is more to motion than distance and displacement. Questions such as, “How long does a foot race take?” and “What was the runner’s speed?” cannot be answered without an understanding of other concepts. In this section we will look at time, speed, and velocity to expand our understanding of motion.

A description of how fast or slow an object moves is its speed. Speed is the rate at which an object changes its location. Like distance, speed is a scalar because it has a magnitude but not a direction. Because speed is a rate, it depends on the time interval of motion. You can calculate the elapsed time or the change in time, Δt Δt, of motion as the difference between the ending time and the beginning time

Δt= t f t 0 . Δt= t f t 0 .

The SI unit of time is the second (s), and the SI unit of speed is meters per second (m/s), but sometimes kilometers per hour (km/h), miles per hour (mph) or other units of speed are used.

When you describe an object's speed, you often describe the average over a time period. Average speed, vavg, is the distance traveled divided by the time during which the motion occurs.

v avg = distance time v avg = distance time

You can, of course, rearrange the equation to solve for either distance or time

time =  distance v avg . time =  distance v avg .
distance =  v avg  × time distance =  v avg  × time

Suppose, for example, a car travels 150 kilometers in 3.2 hours. Its average speed for the trip is

v avg = distance time = 150 km 3.2 h = 47 km/h. v avg = distance time = 150 km 3.2 h = 47 km/h.

A car's speed would likely increase and decrease many times over a 3.2 hour trip. Its speed at a specific instant in time, however, is its instantaneous speed. A car's speedometer describes its instantaneous speed.

A drawing is shown of a house on the left and a store on the right. The distance between the two is labeled three kilometers. A double-arrow vector between the house and the store is labeled with the equation change in d total equals zero.
Figure 2.8 During a 30-minute round trip to the store, the total distance traveled is 6 km. The average speed is 12 km/h. The displacement for the round trip is zero, because there was no net change in position.

Worked Example

Calculating Average Speed

A marble rolls 5.2 m in 1.8 s. What was the marble's average speed?

Strategy

We know the distance the marble travels, 5.2 m, and the time interval, 1.8 s. We can use these values in the average speed equation.

Solution
v avg = distance time = 5.2 m 1.8 s =2.9 m/s v avg = distance time = 5.2 m 1.8 s =2.9 m/s
Discussion

Average speed is a scalar, so we do not include direction in the answer. We can check the reasonableness of the answer by estimating: 5 meters divided by 2 seconds is 2.5 m/s. Since 2.5 m/s is close to 2.9 m/s, the answer is reasonable. This is about the speed of a brisk walk, so it also makes sense.

Practice Problems

A pitcher throws a baseball from the pitcher’s mound to home plate in 0.46 s. The distance is 18.4 m. What was the average speed of the baseball?

  1. 40 m/s
  2. - 40 m/s
  3. 0.03 m/s
  4. 8.5 m/s
Cassie walked to her friend’s house with an average speed of 1.40 m/s. The distance between the houses is 205 m. How long did the trip take her?
  1. 146 s
  2. 0.01 s
  3. 2.50 min
  4. 287 s

Velocity

The vector version of speed is velocity. Velocity describes the speed and direction of an object. As with speed, it is useful to describe either the average velocity over a time period or the velocity at a specific moment. Average velocity is displacement divided by the time over which the displacement occurs.

v avg = distance time = Δd Δt = d f d 0 t f t 0 v avg = distance time = Δd Δt = d f d 0 t f t 0

Velocity, like speed, has SI units of meters per second (m/s), but because it is a vector, you must also include a direction. Furthermore, the variable v for velocity is bold because it is a vector, which is in contrast to the variable v for speed which is italicized because it is a scalar quantity.

Tips For Success

It is important to keep in mind that the average speed is not the same thing as the average velocity without its direction. Like we saw with displacement and distance in the last section, changes in direction over a time interval have a bigger effect on speed and velocity.

Suppose a passenger moved toward the back of a plane with an average velocity of –4 m/s. We cannot tell from the average velocity whether the passenger stopped momentarily or backed up before he got to the back of the plane. To get more details, we must consider smaller segments of the trip over smaller time intervals such as those shown in Figure 2.9. If you consider infinitesimally small intervals, you can define instantaneous velocity, which is the velocity at a specific instant in time. Instantaneous velocity and average velocity are the same if the velocity is constant.

A drawing of an airplane facing to the right is shown, and is set in quadrant one of a coordinate plane. The x-axis is labeled df and then do. The distance between df and do is labeled with a left-pointing vector, change in d total. Four other vectors are shown below the airplane. Vector change in d a points to the left and is short. Vector change in d b points to the left and is also short. Vector change in d c points to the right and is short. Vector change in d d points to the left and is longer.
Figure 2.9 The diagram shows a more detailed record of an airplane passenger heading toward the back of the plane, showing smaller segments of his trip.

Earlier, you have read that distance traveled can be different than the magnitude of displacement. In the same way, speed can be different than the magnitude of velocity. For example, you drive to a store and return home in half an hour. If your car’s odometer shows the total distance traveled was 6 km, then your average speed was 12 km/h. Your average velocity, however, was zero because your displacement for the round trip is zero.

Watch Physics

Calculating Average Velocity or Speed

This video reviews vectors and scalars and describes how to calculate average velocity and average speed when you know displacement and change in time. The video also reviews how to convert km/h to m/s.

Grasp Check
Which of the following fully describes a vector and a scalar quantity and correctly provides an example of each?
  1. A scalar quantity is fully described by its magnitude, while a vector needs both magnitude and direction to fully describe it. Displacement is an example of a scalar quantity and time is an example of a vector quantity.
  2. A scalar quantity is fully described by its magnitude, while a vector needs both magnitude and direction to fully describe it. Time is an example of a scalar quantity and displacement is an example of a vector quantity.
  3. A scalar quantity is fully described by its magnitude and direction, while a vector needs only magnitude to fully describe it. Displacement is an example of a scalar quantity and time is an example of a vector quantity.
  4. A scalar quantity is fully described by its magnitude and direction, while a vector needs only magnitude to fully describe it. Time is an example of a scalar quantity and displacement is an example of a vector quantity.

Worked Example

Calculating Average Velocity

A student has a displacement of 304 m north in 180 s. What was the student's average velocity?

Strategy

We know that the displacement is 304 m north and the time is 180 s. We can use the formula for average velocity to solve the problem.

Solution
2.1 v avg = Δd Δt = 304 m 180 s =1.7 m/s north v avg = Δd Δt = 304 m 180 s =1.7 m/s north
Discussion

Since average velocity is a vector quantity, you must include direction as well as magnitude in the answer. Notice, however, that the direction can be omitted until the end to avoid cluttering the problem. Pay attention to the significant figures in the problem. The distance 304 m has three significant figures, but the time interval 180 s has only two, so the quotient should have only two significant figures.

Tips For Success

Note the way scalars and vectors are represented. In this book d represents distance and displacement. Similarly, v represents speed, and v represents velocity. A variable that is not bold indicates a scalar quantity, and a bold variable indicates a vector quantity. Vectors are sometimes represented by small arrows above the variable.

Worked Example

Solving for Displacement when Average Velocity and Time are Known

Layla jogs with an average velocity of 2.4 m/s east. What is her displacement after 46 seconds?

Strategy

We know that Layla's average velocity is 2.4 m/s east, and the time interval is 46 seconds. We can rearrange the average velocity formula to solve for the displacement.

Solution
2.2 v avg = Δd Δt Δd = v avg Δt = (2.4 m/s)(46 s) = 1.1× 10 2  m east v avg = Δd Δt Δd = v avg Δt = (2.4 m/s)(46 s) = 1.1× 10 2  m east
Discussion

The answer is about 110 m east, which is a reasonable displacement for slightly less than a minute of jogging. A calculator shows the answer as 110.4 m. We chose to write the answer using scientific notation because we wanted to make it clear that we only used two significant figures.

Tips For Success

Dimensional analysis is a good way to determine whether you solved a problem correctly. Write the calculation using only units to be sure they match on opposite sides of the equal mark. In the worked example, you have


m = (m/s)(s). Since seconds is in the denominator for the average velocity and in the numerator for the time, the unit cancels out leaving only m and, of course, m = m.

Worked Example

Solving for Time when Displacement and Average Velocity are Known

Phillip walks along a straight path from his house to his school. How long will it take him to get to school if he walks 428 m west with an average velocity of 1.7 m/s west?

Strategy

We know that Phillip's displacement is 428 m west, and his average velocity is 1.7 m/s west. We can calculate the time required for the trip by rearranging the average velocity equation.

Solution
2.3 v avg = Δd Δt Δt = Δd v avg = 428 m 1.7 m/s = 2.5× 10 2  s v avg = Δd Δt Δt = Δd v avg = 428 m 1.7 m/s = 2.5× 10 2  s
Discussion

Here again we had to use scientific notation because the answer could only have two significant figures. Since time is a scalar, the answer includes only a magnitude and not a direction.

Practice Problems

Practice Problems

A trucker drives along a straight highway for 0.25 h with a displacement of 16 km south. What is the trucker’s average velocity?
  1. 4 km/h north
  2. 4 km/h south
  3. 64 km/h north
  4. 64 km/h south

A bird flies with an average velocity of 7.5 m/s east from one branch to another in 2.4 s. It then pauses before flying with an average velocity of 6.8 m/s east for 3.5 s to another branch. What is the bird’s total displacement from its starting point?

  1. 42 m west
  2. 6 m west
  3. 6 m east
  4. 42 m east

Virtual Physics

The Walking Man

In this simulation you will put your cursor on the man and move him first in one direction and then in the opposite direction. Keep the Introduction tab active. You can use the Charts tab after you learn about graphing motion later in this chapter. Carefully watch the sign of the numbers in the position and velocity boxes. Ignore the acceleration box for now. See if you can make the man’s position positive while the velocity is negative. Then see if you can do the opposite.

Grasp Check

Which situation correctly describes when the moving man’s position was negative but his velocity was positive?

  1. Man moving toward 0 from left of 0
  2. Man moving toward 0 from right of 0
  3. Man moving away from 0 from left of 0
  4. Man moving away from 0 from right of 0

Check Your Understanding

Check Your Understanding

Exercise 6
Two runners travel along the same straight path. They start at the same time, and they end at the same time, but at the halfway mark, they have different instantaneous velocities. Is it possible for them to have the same average velocity for the trip?
  1. Yes, because average velocity depends on the net or total displacement.
  2. Yes, because average velocity depends on the total distance traveled.
  3. No, because the velocities of both runners must remain the exactly same throughout the journey.
  4. No, because the instantaneous velocities of the runners must remain same midway but can be different elsewhere.
Exercise 7

If you divide the total distance traveled on a car trip (as determined by the odometer) by the time for the trip, are you calculating the average speed or the magnitude of the average velocity, and under what circumstances are these two quantities the same?

  1. Average speed. Both are the same when the car is traveling at a constant speed and changing direction.
  2. Average speed. Both are the same when the speed is constant and the car does not change its direction.
  3. Magnitude of average velocity. Both are same when the car is traveling at a constant speed.
  4. Magnitude of average velocity. Both are same when the car does not change its direction.
Exercise 8
Is it possible for average velocity to be negative?
  1. Yes, in cases when the net displacement is negative.
  2. Yes, if the body keeps changing its direction during motion.
  3. No, average velocity describes only magnitude and not the direction of motion.
  4. No, average velocity describes only the magnitude in the positive direction of motion.