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Before unleashing the second law, let's make two useful observations. First, it is intuitively clear that a greater force produces a greater acceleration. For example, two pro wrestlers pushing on a stalled car will get it going sooner than just one could. Second, inertia or mass is somehow involved. Those two wrestlers would need to use more force to push a schoolbus than to push a Volkswagen bug. In fact, Newton realized that for a given force F, the greater the mass of the object, the smaller its acceleration. Thus, Newton's second law can be expressed concisely as follows:
In physics, the same units often appear in different relation to each other, depending on what is being "solved for" (that is, what question must be answered). For example, the second law can be written like this:
Let's look at a few examples of the second law in action.
Example 1 Suppose a rocket in space is accelerating at 4 m/s2. If, at a later time, the rocket loses half its mass in fuel but triples its thrust (i.e., net propelling force), what is the new acceleration? Newton's second law is useful not only for predicting motion from known forces, but can also be used to reveal something about the forces from observed or measured motion. One common application of this occurs in the study of friction. Here's an example. Consider this car (still leaking that oil) moving to the right. Is a force acting on the car? If so, what is the direction of this force relative to the velocity of the car?
Try this one now. An applied pulling force of 100 N is used to accelerate an object to the right along a rough surface that offers 40 N of frictional resistance. If the normal force is 60 N, what is the acceleration of the object? Did that last one seemed a little confusing? To clarify matters, let's explore further the relationship between mass and weight. Next page, please!
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