Learning Objectives

Learning Objectives

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

  • Explain the kinematic equations related to acceleration and illustrate them with graphs
  • Apply the kinematic equations and related graphs to problems involving acceleration
Section Key Terms
acceleration due to gravity kinematic equations uniform acceleration

How the Kinematic Equations are Related to Acceleration

How the Kinematic Equations are Related to Acceleration

We are studying concepts related to motion: time, displacement, velocity, and especially acceleration. We are only concerned with motion in one dimension. The kinematic equations apply to conditions of constant acceleration and show how these concepts are related. Constant acceleration is acceleration that does not change over time. The first kinematic equation relates displacement d, average velocity v¯v¯, and time t.

3.4d=d0+v¯t, the initial displacementd0is often 0, in which case the equation can be written asv¯=dtd=d0+v¯t, the initial displacementd0is often 0, in which case the equation can be written asv¯=dt

This equation says that average velocity is displacement per unit time. We will express velocity in meters per second. If we graph displacement versus time, as in Figure 3.7, the slope will be the velocity. Whenever a rate, such as velocity, is represented graphically, time is usually taken to be the independent variable and is plotted along the x axis.

A line graph is shown. The x-axis is labeled time and includes a directional arrow pointing to the right. The y-axis is labeled displacement and includes a directional arrow pointing upward. The graphed line shows a directly proportional relationship between time and displacement.
Figure 3.7 The slope of displacement versus time is velocity.

The second kinematic equation, another expression for average velocity v¯,v¯, is simply the initial velocity plus the final velocity divided by two.

3.5v¯=v0+vf2v¯=v0+vf2

Now we come to our main focus of this chapter; namely, the kinematic equations that describe motion with constant acceleration. In the third kinematic equation, acceleration is the rate at which velocity increases, so velocity at any point equals initial velocity plus acceleration multiplied by time

3.6v=v0+atAlso, if we start from rest (v0=0), we can write a=vtv=v0+atAlso, if we start from rest (v0=0), we can write a=vt

Note that this third kinematic equation does not have displacement in it. Therefore, if you do not know the displacement and are not trying to solve for a displacement, this equation might be a good one to use.

The third kinematic equation is also represented by the graph in Figure 3.8.

A line graph is shown. The x-axis is labeled time in seconds and the y-axis is labeled velocity in meters per second. The graphed line shows a directly proportional relationship between time and velocity.
Figure 3.8 The slope of velocity versus time is acceleration.

The fourth kinematic equation shows how displacement is related to acceleration

3.7d=d0+v0t+12at2.d=d0+v0t+12at2.

When starting at the origin, d0=0d0=0 and, when starting from rest, v0=0v0=0, in which case the equation can be written as

a=2dt2.a=2dt2.

This equation tells us that, for constant acceleration, the slope of a plot of 2d versus t2 is acceleration, as shown in Figure 3.9.

A line graph is shown. The x-axis is labeled t squared and the y-axis is labeled two d in meters. The graphed line shows that the slope of two d versus t squared equals constant acceleration.
Figure 3.9 When acceleration is constant, the slope of 2d versus t2 gives the acceleration.

The fifth kinematic equation relates velocity, acceleration, and displacement

3.8v2=v02+2a(dd0).v2=v02+2a(dd0).

This equation is useful for when we do not know, or do not need to know, the time.

When starting from rest, the fifth equation simplifies to

a=v22d.a=v22d.

According to this equation, a graph of velocity squared versus twice the displacement will have a slope equal to acceleration.

A line graph is shown. The x-axis is labeled two d in meters and the y-axis is labeled v squared in meters per second squared. The graphed line shows a directly proportional relationship between two d, twice the displacement, and v squared, velocity squared.
Figure 3.10

Note that, in reality, knowns and unknowns will vary. Sometimes you will want to rearrange a kinematic equation so that the knowns are the values on the axes and the unknown is the slope. Sometimes the intercept will not be at the origin (0,0). This will happen when v0 or d0 is not zero. This will be the case when the object of interest is already in motion, or the motion begins at some point other than at the origin of the coordinate system.

Virtual Physics

The Moving Man (Part 2)

Look at the Moving Man simulation again and this time use the Charts view. Again, vary the velocity and acceleration by sliding the red and green markers along the scales. Keeping the velocity marker near zero will make the effect of acceleration more obvious. Observe how the graphs of position, velocity, and acceleration vary with time. Note which are linear plots and which are not.

Grasp Check

On a velocity versus time plot, what does the slope represent?

  1. Acceleration
  2. Displacement
  3. Distance covered
  4. Instantaneous velocity
Grasp Check

On a position versus time plot, what does the slope represent?

  1. Acceleration
  2. Displacement
  3. Distance covered
  4. Instantaneous velocity

The kinematic equations are applicable when you have constant acceleration.

  1. d=d0+v¯td=d0+v¯t, or v¯=dtv¯=dt when d0 = 0
  2. v¯=v0+vf2v¯=v0+vf2
  3. v=v0+atv=v0+at, or a=vta=vt when v0 = 0
  4. d=d0+v0t+12at2d=d0+v0t+12at2, or a=2dt2a=2dt2 when d0 = 0 and v0 = 0
  5. v2=v02+2a(dd0)v2=v02+2a(dd0), or a=2dt2a=2dt2 when d0 = 0 and v0 = 0

Applying Kinematic Equations to Situations of Constant Acceleration

Applying Kinematic Equations to Situations of Constant Acceleration

Problem-solving skills are essential to success in a science and life in general. The ability to apply broad physical principles, which are often represented by equations, to specific situations is a very powerful form of knowledge. It is much more powerful than memorizing a list of facts. Analytical skills and problem-solving abilities can be applied to new situations, whereas a list of facts cannot be made long enough to contain every possible circumstance. Essential analytical skills will be developed by solving problems in this text and will be useful for understanding physics and science in general throughout your life.

Problem-Solving Steps

While no single step-by-step method works for every problem, the following general procedures facilitate problem solving and make the answers more meaningful. A certain amount of creativity and insight are required as well.

  1. Examine the situation to determine which physical principles are involved. It is vital to draw a simple sketch at the outset. Decide which direction is positive and note that on your sketch.
  2. Identify the knowns: Make a list of what information is given or can be inferred from the problem statement. Remember, not all given information will be in the form of a number with units in the problem. If something starts from rest, we know the initial velocity is zero. If something stops, we know the final velocity is zero.
  3. Identify the unknowns: Decide exactly what needs to be determined in the problem.
  4. Find an equation or set of equations that can help you solve the problem. Your list of knowns and unknowns can help here. For example, if time is not needed or not given, then the fifth kinematic equation, which does not include time, could be useful.
  5. Insert the knowns along with their units into the appropriate equation and obtain numerical solutions complete with units. This step produces the numerical answer; it also provides a check on units that can help you find errors. If the units of the answer are incorrect, then an error has been made.
  6. Check the answer to see if it is reasonable: Does it make sense? This final step is extremely important because the goal of physics is to accurately describe nature. To see if the answer is reasonable, check its magnitude, its sign, and its units. Are the significant figures correct?

Summary of Problem Solving

  • Determine the knowns and unknowns.
  • Find an equation that expresses the unknown in terms of the knowns. More than one unknown means more than one equation is needed.
  • Solve the equation or equations.
  • Be sure units and significant figures are correct.
  • Check whether the answer is reasonable.

Fun In Physics

Drag Racing

Smoke is coming from the tires of a race car as the car accelerates at the beginning of a drag race.
Figure 3.12 Smoke rises from the tires of a dragster at the beginning of a drag race. (Lt. Col. William Thurmond. Photo courtesy of U.S. Army.)

The object of the sport of drag racing is acceleration. Period! The races take place from a standing start on a straight one-quarter-mile (402 m) track. Usually two cars race side by side, and the winner is the driver who gets the car past the quarter-mile point first. At the finish line, the cars may be going more than 300 miles per hour (134 m/s). The driver then deploys a parachute to bring the car to a stop because it is unsafe to brake at such high speeds. The cars, called dragsters, are capable of accelerating at 26 m/s2. By comparison, a typical sports car that is available to the general public can accelerate at about 5 m/s2.

Several measurements are taken during each drag race:

  • Reaction time is the time between the starting signal and when the front of the car crosses the starting line.
  • Elapsed time is the time from when the vehicle crosses the starting line to when it crosses the finish line. The record is a little over 3 s.
  • Speed is the average speed during the last 20 m before the finish line. The record is a little under 400 mph.

The video shows a race between two dragsters powered by jet engines. The actual race lasts about four seconds and is near the end of the video.

Grasp Check
A dragster crosses the finish line with a velocity of 140m/s. Assuming the vehicle maintained a constant acceleration from start to finish, what was its average velocity for the race?
  1. 0m/s
  2. 35m/s
  3. 70m/s
  4. 140m/s

Worked Example

Acceleration of a Dragster

The time it takes for a dragster to cross the finish line is unknown. The dragster accelerates from rest at 26 m/s2 for a quarter mile (0.250 mi). What is the final velocity of the dragster?

Strategy

The equation v2=v02+2a(dd0)v2=v02+2a(dd0) is ideally suited to this task because it gives the velocity from acceleration and displacement, without involving the time.

Solution
  1. Convert miles to meters.
    3.9(0.250 mi)×1609 m1 mi=402 m(0.250 mi)×1609 m1 mi=402 m
  2. Identify the known values. We know that v0 = 0 since the dragster starts from rest, and we know that the distance traveled, dd0 is 402 m. Finally, the acceleration is constant at a = 26.0 m/s2.
  3. Insert the knowns into the equation v2=v02+2a(dd0)v2=v02+2a(dd0) and solve for v.
    3.10v2=0+2(26.0ms2)(402 m)=2.09×104m2s2v2=0+2(26.0ms2)(402 m)=2.09×104m2s2

Taking the square root gives us v=2.09×104m2s2=145ms.v=2.09×104m2s2=145ms.

Discussion

145 m/s is about 522 km/hour or about 324 mi/h, but even this breakneck speed is short of the record for the quarter mile. Also, note that a square root has two values. We took the positive value because we know that the velocity must be in the same direction as the acceleration for the answer to make physical sense.

An examination of the equation v2=v02+2a(dd0)v2=v02+2a(dd0) can produce further insights into the general relationships among physical quantities:

  • The final velocity depends on the magnitude of the acceleration and the distance over which it applies.
  • For a given acceleration, a car that is going twice as fast does not stop in twice the distance—it goes much further before it stops. This is why, for example, we have reduced speed zones near schools.

Practice Problems

Practice Problems

Dragsters can reach a top speed of 145 m/s in only 4.45 s. Calculate the average acceleration for such a dragster.

  1. −32.6 m/s2
  2. 0 m/s2
  3. 32.6 m/s2
  4. 145 m/s2

An Olympic-class sprinter starts a race with an acceleration of 4.50 m/s2. Assuming she can maintain that acceleration, what is her speed 2.40 s later?

  1. 4.50 m/s
  2. 10.8 m/s
  3. 19.6 m/s
  4. 44.1 m/s

Constant Acceleration

Constant Acceleration

In many cases, acceleration is not uniform because the force acting on the accelerating object is not constant over time. A situation that gives constant acceleration is the acceleration of falling objects. When air resistance is not a factor, all objects near Earth’s surface fall with an acceleration of about 9.80 m/s2. Although this value decreases slightly with increasing altitude, it may be assumed to be essentially constant. The value of 9.80 m/s2 is labeled g and is referred to as acceleration due to gravity. Gravity is the force that causes nonsupported objects to accelerate downward—or, more precisely, toward the center of Earth. The magnitude of this force is called the weight of the object and is given by mg where m is the mass of the object (in kg). In places other than on Earth, such as the Moon or on other planets, g is not 9.80 m/s2, but takes on other values. When using g for the acceleration a in a kinematic equation, it is usually given a negative sign because the acceleration due to gravity is downward.

Work In Physics

Effects of Rapid Acceleration

An astronaut is strapped into a G-Force simulator.
Figure 3.13 Astronauts train using G Force Simulators. (NASA)

When in a vehicle that accelerates rapidly, you experience a force on your entire body that accelerates your body. You feel this force in automobiles and slightly more on amusement park rides. For example, when you ride in a car that turns, the car applies a force on your body to make you accelerate in the direction in which the car is turning. If enough force is applied, you will accelerate at 9.80 m/s2. This is the same as the acceleration due to gravity, so this force is called one G.

One G is the force required to accelerate an object at the acceleration due to gravity at Earth’s surface. Thus, one G for a paper cup is much less than one G for an elephant, because the elephant is much more massive and requires a greater force to make it accelerate at 9.80 m/s2. For a person, a G of about 4 is so strong that his or her face will distort as the bones accelerate forward through the loose flesh. Other symptoms at extremely high Gs include changes in vision, loss of consciousness, and even death. The space shuttle produces about 3 Gs during takeoff and reentry. Some roller coasters and dragsters produce forces of around 4 Gs for their occupants. A fighter jet can produce up to 12 Gs during a sharp turn.

Astronauts and fighter pilots must undergo G-force training in simulators. The video shows the experience of several people undergoing this training.

People, such as astronauts, who work with G forces must also be trained to experience zero G—also called free fall or weightlessness—which can cause queasiness. NASA has an aircraft that allows it occupants to experience about 25 s of free fall. The aircraft is nicknamed the Vomit Comet.

Grasp Check

A common way to describe acceleration is to express it in multiples of g, Earth's gravitational acceleration. If a dragster accelerates at a rate of 39.2 m/s2, how many g's does the driver experience?

  1. 1.5 g
  2. 4.0 g
  3. 10.5 g
  4. 24.5 g

Worked Example

Falling Objects

A person standing on the edge of a high cliff throws a rock straight up with an initial velocity v0 of 13 m/s.

(a) Calculate the position and velocity of the rock at 1.00, 2.00, and 3.00 seconds after it is thrown. Ignore the effect of air resistance.

Strategy

Sketch the initial velocity and acceleration vectors and the axes.

An upward-pointing original velocity vector is shown and is labeled thirteen meters per second. Next to it, a downward, shorter acceleration vector is shown and is labeled negative nine point eight meters per second squared. Unlabeled x and y-axes are shown for reference.
Figure 3.14 Initial conditions for rock thrown straight up.

List the knowns: time t = 1.00 s, 2.00 s, and 3.00 s; initial velocity v0 = 13 m/s; acceleration a = g = –9.80 m/s2; and position y0 = 0 m

List the unknowns: y1, y2, and y3; v1, v2, and v3—where 1, 2, 3 refer to times 1.00 s, 2.00 s, and 3.00 s

Choose the equations.

3.11d=d0+v0t+12at2becomesy=y0+v0t12gt2d=d0+v0t+12at2becomesy=y0+v0t12gt2
3.12v=v0+atbecomesv=v0+gtv=v0+atbecomesv=v0+gt

These equations describe the unknowns in terms of knowns only.

Solution

y1=0+(13.0m/s)(1.00s)+(9.80m/s2)(1.00s)22=8.10my2=0+(13.0m/s)(2.00s)+(9.80m/s2)(2.00s)22=6.40my3=0+(13.0m/s)(3.00s)+(9.80m/s2)(3.00s)22=5.10mv1=13.0m/s+(9.80m/s2)(1.00s)=3.20m/sv2=13.0m/s+(9.80m/s2)(2.00s)=6.60m/sv3=13.0m/s+(9.80m/s2)(3.00s)=16.4m/sy1=0+(13.0m/s)(1.00s)+(9.80m/s2)(1.00s)22=8.10my2=0+(13.0m/s)(2.00s)+(9.80m/s2)(2.00s)22=6.40my3=0+(13.0m/s)(3.00s)+(9.80m/s2)(3.00s)22=5.10mv1=13.0m/s+(9.80m/s2)(1.00s)=3.20m/sv2=13.0m/s+(9.80m/s2)(2.00s)=6.60m/sv3=13.0m/s+(9.80m/s2)(3.00s)=16.4m/s

Discussion

The first two positive values for y show that the rock is still above the edge of the cliff, and the third negative y value shows that it has passed the starting point and is below the cliff. Remember that we set up to be positive. Any position with a positive value is above the cliff, and any velocity with a positive value is an upward velocity. The first value for v is positive, so the rock is still on the way up. The second and third values for v are negative, so the rock is on its way down.

(b) Make graphs of position versus time, velocity versus time, and acceleration versus time. Use increments of 0.5 s in your graphs.

Strategy

Time is customarily plotted on the x-axis because it is the independent variable. Position versus time will not be linear, so calculate points for 0.50 s, 1.50 s, and 2.50 s. This will give a curve closer to the true, smooth shape.

Solution

The three graphs are shown in Figure 3.15.

Three line graphs are shown: position versus time, velocity versus time, and acceleration versus time. In position versus time, the x-axis is labeled time in seconds and the scale is zero through four in increments of one. The y-axis is labeled vertical position in meters and the scale is negative six through ten in increments of two. The graphed line curves upward starting at position zero, zero. It then curves and slopes downward from about one point five, eight and ends at position three, negative five
Figure 3.15
Discussion
  • y vs. t does not represent the two-dimensional parabolic path of a trajectory. The path of the rock is straight up and straight down. The slope of a line tangent to the curve at any point on the curve equals the velocity at that point—i.e., the instantaneous velocity.
  • Note that the v vs. t line crosses the vertical axis at the initial velocity and crosses the horizontal axis at the time when the rock changes direction and begins to fall back to Earth. This plot is linear because acceleration is constant.
  • The a vs. t plot also shows that acceleration is constant; that is, it does not change with time.

Practice Problems

Practice Problems

A cliff diver pushes off horizontally from a cliff and lands in the ocean 2.00s later. How fast was he going when he entered the water?
  1. 0m/s
  2. 19.0m/s
  3. 19.6m/s
  4. 20.0m/s
A girl drops a pebble from a high cliff into a lake far below. She sees the splash of the pebble hitting the water 2.00s later. How fast was the pebble going when it hit the water?
  1. 9.80m/s
  2. 10.0m/s
  3. 19.6m/s
  4. 20.0m/s

Check Your Understanding

Check Your Understanding

Exercise 4

Identify the four variables found in the kinematic equations.

  1. Displacement, Force, Mass, and Time
  2. Acceleration, Displacement, Time, and Velocity
  3. Final Velocity, Force, Initial Velocity, and Mass
  4. Acceleration, Final Velocity, Force, and Initial Velocity
Exercise 5
Which of the following steps is always required to solve a kinematics problem?
  1. Find the force acting on the body.
  2. Find the acceleration of a body.
  3. Find the initial velocity of a body.
  4. Find a suitable kinematic equation and then solve for the unknown quantity.
Exercise 6
Which of the following provides a correct answer for a problem that can be solved using the kinematic equations?
  1. A body starts from rest and accelerates at 4m/s2 for 2s. The body’s final velocity is 8m/s.
  2. A body starts from rest and accelerates at 4m/s2 for 2s. The body’s final velocity is 16m/s.
  3. A body with a mass of 2kg is acted upon by a force of 4N. The acceleration of the body is 2m/s2.
  4. A body with a mass of 2kg is acted upon by a force of 4N. The acceleration of the body is 0.5m/s2.