The scientific principles underlying the dynamics of football, including blocking and tackling, kicking, and passing is made comprehensible and fun in a study that highlights legendary moments and feats in the game such as Franco Harris's Immaculate Reception. 20,000 first printing.
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Timothy Gay, Ph.D., has been a professor of physics at the University of Nebraska-Lincoln since 1993. Dr. Gay currently heads a research group that is funded by the National Science Foundation. He lives in Lincoln, Nebraska.
CHAPTER 1
BLOCKING AND TACKLING
In football, there is a name for teams that fail to execute the fundamentals: losers. And there is nothing more fundamental in football than blocking and tackling. Incredible catches and jaw-dropping runs are fun to watch and can make the difference in a game or two over the course of a season, but they ultimately mean little if the team is failing at the basics.
A superb athlete who has been well coached and has the aggressive desire to make an impact on the game will consistently make solid tackles and blocks-- the kind that make his team's plays work and force those of his opponents to fail. A classic example of this kind of tackler is Chicago Bears middle linebacker Dick Butkus. Butkus, a Hall of Famer who played in eight straight pro bowls, had the work ethic and technical skills of a consummate professional along with the heart of a warrior. Hanging back from the line of scrimmage to get a feel for where a play was going, he would close with ferocious speed on a runner as soon as he saw him hitting a gap in the line. Looming in the runner's path with his head up and shoulders squared, he would drive through the ball carrier with an incredibly beautiful, fluid motion that often resulted in the ball coming loose and the runner lying flat on his back and driven into the turf.
The organized mayhem that occurs on a football field is governed by the fundamental laws of classical physics: Sir Isaac Newton's three laws of motion. By breaking down blocks and tackles using these laws, we can appreciate how they should be made while discovering some truly astounding aspects of such collisions. An example of this is the force that two players exert on each other during a big hit.
The Bears' ferocious Dick Butkus, number 51, wraps up the entire Green Bay front line--and makes the tackle.
FIRST, NEWTON'S FIRST LAW
We begin to gain insight into the mechanics of football collisions by considering Newton's First Law. This is the one with which you are perhaps most familiar. It says simply that mass wants to continue doing what it's doing, whether it's at rest or in motion.
While this seems pretty straightforward, the First Law is actually counterintuitive. When you think about it, our everyday experience suggests that objects want to come to a stop. If you are driving along on a level street and take your foot off the gas pedal and put the car in neutral, you'll slowly coast to a halt. We say to ourselves, "Well, sure, as soon as I stop having the engine apply a force to the car to push it along, it stops." Or if you are playing a game of pool, you can smack the cue ball and cause any of the other balls to move for a bit too, but soon they either drop into a pocket or bounce aimlessly off a bumper and slow to a stop. These everyday physics experiments seem to tell us that the natural state of matter is to be at rest.
But our naive analysis fails to factor in the braking effects of frictional forces. We may attribute the slowing and stopping of moving objects to a natural tendency on their part, but in fact the friction generated by the car's tires making contact with the road, and the pool balls rolling on the tabletop, causes this action. Newton, being the genius that he was, saw through the apparent reality to the underlying truth: Unless acted on by an external force, the natural state of matter is to continue on its initial, straight-line path indefinitely.
Think of a receiver who has caught the ball on the run and is comfortably out in front of all defenders, or a running back who has broken through the line into the secondary and finds himself in the open field. Typically, in this situation, the ball carrier will make a beeline for the end zone, stopping only after he's crossed it. (And sometimes not even then. Many fans will recall one of the most memorable plays in the history of Monday Night Football, on November 30, 1987. Bo Jackson, who was playing for the Los Angeles Raiders and celebrating his 25th birthday, took a handoff late in the second quarter from quarterback Marc Wilson and accelerated past the entire Seattle Seahawk team for an explosive 91-yard touchdown run. He crossed the goal line and kept on running--with the ball--right up into the locker-room tunnel.)
The First Law also says that the more massive an object is, the more it wants to continue doing what it's doing and the less likely it is to be deflected, slowed down, or sped up by an outside force. One example of this mass effect in action is the touchdown scored by William "The Refrigerator" Perry in Super Bowl XX. Chicago Bears head coach Mike Ditka had sent in the Fridge as a fullback on a third-and-goal running play from the 1-yard line in the third quarter as the Bears were dismantling the overmatched New England Patriots. Starting in the backfield to work up momentum, the Fridge took the handoff from quarterback Jim McMahon and surged into the end zone. Considering that Perry, normally a defensive tackle himself, weighed in at 318 £ds that day, only a massive force applied by a very large, well- placed defender would have altered his course substantially and stopped the touchdown. Not surprisingly, that didn't happen.
Newton's First Law also provides the reasoning behind why quarterback sneak plays work if well timed. The offense uses the huge mass of its interior linemen as a battering ram against the defensive line. The surge forward can be slowed or stopped, but often not before the one or two yards necessary for the play to succeed are gained.
You may be saying to yourself, "Gee, this sounds like he's telling me that it's better to be a big fast guy than a small slow guy. Duh! I knew that already." Of course you did. Not everything in physics is counterintuitive. But having said this, the First Law does have some not-so-obvious consequences. Consider an experiment I do as a lecture demonstration for my first-year physics classes. Take two bricks, one made of wood, the other of lead. If they're the size of typical bricks, the lead one will weigh about 30 £ds; the wood brick, 2 £ds. Now support each brick carefully on two 8-ounce Styrofoam coffee cups set mouth down. (You'll have to be careful to avoid crushing the cups as you place the lead brick on them.) From a height of 1 meter, drop a 1-£d weight straight down on the center top of both bricks. Which brick will do a better job of crushing the coffee cups under the blow of the falling weight?
When I ask my students to predict the answer, typically more than 90 percent say that the lead brick will do more damage. That's just plain old common sense, right? But remember what Newton tells us: The more massive an object is, the more it wants to do what it was doing before. In the case of these bricks, what they were doing was sitting at rest before being hit. The lead brick, being about 15 times more massive than the wooden one, is much less interested in moving. As a result, it accelerates less violently into the coffee cups and does a lot less damage.
So while, generally speaking, it is better to be a big fast guy than a small slow guy, that isn't the whole story. Incidentally, for those of you who like to bet on football games, you may want to consider a new moneymaking opportunity. The next time you and your buddies are watching a game together, get out some Styrofoam cups and a couple of bricks . . .
THE FRIDGE'S ESSENTIAL CHARACTERISTIC: MASS
Newton's Second Law, which is really the basis of all classical physics, says that the force applied to an object is the product of the object's mass and its acceleration. Mathematically, we say that F = ma. We can use this formula to appreciate just how much force is expended when one player hits another, and how much force exerted over a given time would have been needed to stop Refrigerator Perry from...
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