4.3 Newton's Second Law of Motion

Learning Objectives

Learning Objectives

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

  • Describe Newton’s second law, both verbally and mathematically
  • Use Newton’s second law to solve problems
Section Key Terms
freefall Newton’s second law of motion weight

Describing Newton’s Second Law of Motion

Describing Newton’s Second Law of Motion

Newton’s first law considered bodies at rest or bodies in motion at a constant velocity. The other state of motion to consider is when an object is moving with a changing velocity, which means a change in the speed and/or the direction of motion. This type of motion is addressed by Newton’s second law of motion, which states how force causes changes in motion. Newton’s second law of motion is used to calculate what happens in situations involving forces and motion, and it shows the mathematical relationship between force, mass, and acceleration. Mathematically, the second law is most often written as

4.2 F net =maorΣF=ma, F net =maorΣF=ma,

where Fnet (or ∑F) is the net external force, m is the mass of the system, and a is the acceleration. Note that Fnet and ∑F are the same because the net external force is the sum of all the external forces acting on the system.

First, what do we mean by a change in motion? A change in motion is simply a change in velocity: the speed of an object can become slower or faster, the direction in which the object is moving can change, or both of these variables may change. A change in velocity means, by definition, that an acceleration has occurred. Newton’s first law says that only a nonzero net external force can cause a change in motion, so a net external force must cause an acceleration. Note that acceleration can refer to slowing down or to speeding up. Acceleration can also refer to a change in the direction of motion with no change in speed, because acceleration is the change in velocity divided by the time it takes for that change to occur, and velocity is defined by speed and direction.

From the equation F net =ma, F net =ma, we see that force is directly proportional to both mass and acceleration, which makes sense. To accelerate two objects from rest to the same velocity, you would expect more force to be required to accelerate the more massive object. Likewise, for two objects of the same mass, applying a greater force to one would accelerate it to a greater velocity.

Now, let’s rearrange Newton’s second law to solve for acceleration. We get

4.3 a= F net m ora= ΣF m . a= F net m ora= ΣF m .

In this form, we can see that acceleration is directly proportional to force, which we write as

4.4 a F net , a F net ,

where the symbol means proportional to.

This proportionality mathematically states what we just said in words: acceleration is directly proportional to the net external force. When two variables are directly proportional to each other, then if one variable doubles, the other variable must double. Likewise, if one variable is reduced by half, the other variable must also be reduced by half. In general, when one variable is multiplied by a number, the other variable is also multiplied by the same number. It seems reasonable that the acceleration of a system should be directly proportional to and in the same direction as the net external force acting on the system. An object experiences greater acceleration when acted on by a greater force.

It is also clear from the equation a= F net /m a= F net /m that acceleration is inversely proportional to mass, which we write as

4.5 a   1 m . a   1 m .

Inversely proportional means that if one variable is multiplied by a number, the other variable must be divided by the same number. Now, it also seems reasonable that acceleration should be inversely proportional to the mass of the system. In other words, the larger the mass (the inertia), the smaller the acceleration produced by a given force. This relationship is illustrated in Figure 4.6, which shows that a given net external force applied to a basketball produces a much greater acceleration than when applied to a car.

Three diagrams are shown: a, b, and c. Diagram a shows standing person facing to the right, pushing forward on a basketball. The basketball is labeled m one for mass one. A force vector is labeled F and is pointing to the right. An acceleration vector is labeled a one and is also pointing to the right. Diagram b shows the same person in the same standing position, pushing forward with the same force, but on a car. The car is labeled m two for mass two. A force vector is labeled F and is pointing to the ri
Figure 4.6 The same force exerted on systems of different masses produces different accelerations. (a) A boy pushes a basketball to make a pass. The effect of gravity on the ball is ignored. (b) The same boy pushing with identical force on a stalled car produces a far smaller acceleration (friction is negligible). Note that the free-body diagrams for the ball and for the car are identical, which allows us to compare the two situations.

Applying Newton’s Second Law

Applying Newton’s Second Law

Before putting Newton’s second law into action, it is important to consider units. The equation F net =ma F net =ma is used to define the units of force in terms of the three basic units of mass, length, and time (recall that acceleration has units of length divided by time squared). The SI unit of force is called the newton (abbreviated N) and is the force needed to accelerate a 1-kg system at the rate of 1 m/s2. That is, because F net =ma, F net =ma, we have

4.6 1N=1kg×1 m/s 2 =1 kgm s 2 . 1N=1kg×1 m/s 2 =1 kgm s 2 .

One of the most important applications of Newton’s second law is to calculate weight (also known as the gravitational force), which is usually represented mathematically as W. When people talk about gravity, they don’t always realize that it is an acceleration. When an object is dropped, it accelerates toward the center of Earth. Newton’s second law states that the net external force acting on an object is responsible for the acceleration of the object. If air resistance is negligible, the net external force on a falling object is only the gravitational force (i.e., the weight of the object).

Weight can be represented by a vector because it has a direction. Down is defined as the direction in which gravity pulls, so weight is normally considered a downward force. By using Newton’s second law, we can figure out the equation for weight.

Consider an object with mass m falling toward Earth. It experiences only the force of gravity (i.e., the gravitational force or weight), which is represented by W. Newton’s second law states that F net =ma. F net =ma. Because the only force acting on the object is the gravitational force, we have F net =W. F net =W. We know that the acceleration of an object due to gravity is g, so we have a=g. a=g. Substituting these two expressions into Newton’s second law gives

4.7 W=mg. W=mg.

This is the equation for weight—the gravitational force on a mass m. On Earth, g=9.80  m/s 2 , g=9.80  m/s 2 , so the weight (disregarding for now the direction of the weight) of a 1.0-kg object on Earth is

4.8 W=mg=(1.0 kg)(9 .80 m/s 2 )=9.8 N. W=mg=(1.0 kg)(9 .80 m/s 2 )=9.8 N.

Although most of the world uses newtons as the unit of force, in the United States the most familiar unit of force is the pound (lb), where 1 N = 0.225 lb.

Recall that although gravity acts downward, it can be assigned a positive or negative value, depending on what the positive direction is in your chosen coordinate system. Be sure to take this into consideration when solving problems with weight. When the downward direction is taken to be negative, as is often the case, acceleration due to gravity becomes


g = −9.8 m/s2.

When the net external force on an object is its weight, we say that it is in freefall. In this case, the only force acting on the object is the force of gravity. On the surface of Earth, when objects fall downward toward Earth, they are never truly in freefall because there is always some upward force due to air resistance that acts on the object (and there is also the buoyancy force of air, which is similar to the buoyancy force in water that keeps boats afloat).

Gravity varies slightly over the surface of Earth, so the weight of an object depends very slightly on its location on Earth. Weight varies dramatically away from Earth’s surface. On the moon, for example, the acceleration due to gravity is only 1.67 m/s2. Because weight depends on the force of gravity, a 1.0-kg mass weighs 9.8 N on Earth and only about 1.7 N on the moon.

It is important to remember that weight and mass are very different, although they are closely related. Mass is the quantity of matter (how much stuff) in an object and does not vary, but weight is the gravitational force on an object and is proportional to the force of gravity. It is easy to confuse the two, because our experience is confined to Earth, and the weight of an object is essentially the same no matter where you are on Earth. Adding to the confusion, the terms mass and weight are often used interchangeably in everyday language; for example, our medical records often show our weight in kilograms, but never in the correct unit of newtons.

Snap Lab

Mass and Weight

In this activity, you will use a scale to investigate mass and weight.

Materials:
  • 1 bathroom scale
  • 1 table
  1. What do bathroom scales measure?
  2. When you stand on a bathroom scale, what happens to the scale? It depresses slightly. The scale contains springs that compress in proportion to your weight—similar to rubber bands expanding when pulled.
  3. The springs provide a measure of your weight (provided you are not accelerating). This is a force in newtons (or pounds). In most countries, the measurement is now divided by 9.80 to give a reading in kilograms, which is a of mass. The scale detects weight but is calibrated to display mass.
  4. If you went to the moon and stood on your scale, would it detect the same mass as it did on Earth?
Grasp Check

While standing on a bathroom scale, push down on a table next to you. What happens to the reading? Why?

  1. The reading increases because part of your weight is applied to the table and the table exerts a matching force on you that acts in the direction of your weight.
  2. The reading increases because part of your weight is applied to the table and the table exerts a matching force on you that acts in the direction opposite to your weight.
  3. The reading decreases because part of your weight is applied to the table and the table exerts a matching force on you that acts in the direction of your weight.
  4. The reading decreases because part of your weight is applied to the table and the table exerts a matching force on you that acts in the direction opposite to your weight.

Tips For Success

Only net external force impacts the acceleration of an object. If more than one force acts on an object and you calculate the acceleration by using only one of these forces, you will not get the correct acceleration for that object.

Watch Physics

Newton’s Second Law of Motion

This video reviews Newton’s second law of motion and how net external force and acceleration relate to one another and to mass. It also covers units of force, mass, and acceleration, and reviews a worked-out example.

Grasp Check

True or False—If you want to reduce the acceleration of an object to half its original value, then you would need to reduce the net external force by half.

  1. True
  2. False

Worked Example

What Acceleration Can a Person Produce when Pushing a Lawn Mower?

Suppose that the net external force (push minus friction) exerted on a lawn mower is 51 N parallel to the ground. The mass of the mower is 240 kg. What is its acceleration?

A man is facing to the right and is pushing a lawn mover forward. The force exerted on the lawn mower is labeled with a right-facing vector, F net.
Figure 4.7

Strategy

Because Fnet and m are given, the acceleration can be calculated directly from Newton’s second law: Fnet = ma.


Solution

Solving Newton’s second law for the acceleration, we find that the magnitude of the acceleration, a, is a= F net m . a= F net m . Entering the given values for net external force and mass gives

4.9 a= 51 N 240 kg a= 51 N 240 kg

Inserting the units kg m/s 2 kg m/s 2 for N yields

4.10 a= 51 kg m/s 2 240 kg =0.21  m/s 2 . a= 51 kg m/s 2 240 kg =0.21  m/s 2 .
Discussion

The acceleration is in the same direction as the net external force, which is parallel to the ground and to the right. There is no information given in this example about the individual external forces acting on the system, but we can say something about their relative magnitudes. For example, the force exerted by the person pushing the mower must be greater than the friction opposing the motion, because we are given that the net external force is in the direction in which the person pushes. Also, the vertical forces must cancel if there is no acceleration in the vertical direction (the mower is moving only horizontally). The acceleration found is reasonable for a person pushing a mower; the mower’s speed must increase by 0.21 m/s every second, which is possible. The time during which the mower accelerates would not be very long because the person’s top speed would soon be reached. At this point, the person could push a little less hard, because he only has to overcome friction.

Worked Example

What Rocket Thrust Accelerates This Sled?

Prior to manned space flights, rocket sleds were used to test aircraft, missile equipment, and physiological effects on humans at high accelerations. Rocket sleds consisted of a platform mounted on one or two rails and propelled by several rockets. Calculate the magnitude of force exerted by each rocket, called its thrust, T, for the four-rocket propulsion system shown below. The sled’s initial acceleration is 49  m/s 2 , 49  m/s 2 , the mass of the system is 2,100 kg, and the force of friction opposing the motion is 650 N.

An accelerating right-facing rocket sled is shown on tracks. Four thrust force vectors are behind the sled and are pointing to the right. An acceleration vector is above the sled and is pointing to the right. A friction force vector is in front of the sled and is pointing to the left. A Newton vector is below the sled and is pointing upward. A weight vector is also below the sled and is pointing downward. A free body diagram illustrates the force vectors.
Figure 4.8

Strategy

The system of interest is the rocket sled. Although forces act vertically on the system, they must cancel because the system does not accelerate vertically. This leaves us with only horizontal forces to consider. We’ll assign the direction to the right as the positive direction. See the free-body diagram in Figure 4.8.

Solution

We start with Newton’s second law and look for ways to find the thrust T of the engines. Because all forces and acceleration are along a line, we need only consider the magnitudes of these quantities in the calculations. We begin with

4.11 F net =ma, F net =ma,

where F net F net is the net external force in the horizontal direction. We can see from Figure 4.8 that the engine thrusts are in the same direction (which we call the positive direction), whereas friction opposes the thrust. In equation form, the net external force is

4.12 F net =4Tf. F net =4Tf.

Newton’s second law tells us that Fnet= ma, so we get

4.13 ma=4Tf. ma=4Tf.

After a little algebra, we solve for the total thrust 4T:

4.14 4T=ma+f, 4T=ma+f,

which means that the individual thrust is

4.15 T= ma+f 4 . T= ma+f 4 .

Inserting the known values yields

4.16 T= (2100  kg)(49 m/s 2 )+650 N 4 =2.6× 10 4  N. T= (2100  kg)(49 m/s 2 )+650 N 4 =2.6× 10 4  N.
Discussion

The numbers are quite large, so the result might surprise you. Experiments such as this were performed in the early 1960s to test the limits of human endurance and to test the apparatus designed to protect fighter pilots in emergency ejections. Speeds of 1000 km/h were obtained, with accelerations of 45 g. (Recall that g, the acceleration due to gravity, is 9 .80 m/s 2 . 9 .80 m/s 2 . An acceleration of 45 g is 45×9 .80 m/s 2 , 45×9 .80 m/s 2 , which is approximately 440 m/s 2 . 440 m/s 2 . ) Living subjects are no longer used, and land speeds of 10,000 km/h have now been obtained with rocket sleds. In this example, as in the preceding example, the system of interest is clear. We will see in later examples that choosing the system of interest is crucial—and that the choice is not always obvious.

Practice Problems

Practice Problems

If 1 N is equal to 0.225 lb, how many pounds is 5 N of force?

  1. 0.045 lb
  2. 1.125 lb
  3. 2.025 lb
  4. 5.000 lb

How much force needs to be applied to a 5-kg object for it to accelerate at 20 m/s2?

  1. 1 N
  2. 10 N
  3. 100 N
  4. 1,000 N

Check Your Understanding

Check Your Understanding

Exercise 9

What is the mathematical statement for Newton’s second law of motion?

  1. F = ma
  2. F = 2ma
  3. F= m a F= m a
  4. F = ma2
Exercise 10

Newton’s second law describes the relationship between which quantities?

  1. Force, mass, and time
  2. Force, mass, and displacement
  3. Force, mass, and velocity
  4. Force, mass, and acceleration
Exercise 11
What is acceleration?
  1. Acceleration is the rate at which displacement changes.
  2. Acceleration is the rate at which force changes.
  3. Acceleration is the rate at which velocity changes.
  4. Acceleration is the rate at which mass changes.