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Imperial units de ne distance as the foot, which is in turn twelve inches long. A yard is three feet long. Your foot is that thing attached to the tip-end of your leg and, in fact, the original measurement of a foot was based on the average size of feet. SI units prefer to use the meter. The meter was originally de ned as 1/10,000,000 of the distance around the Earth. One meter is 3.2808 feet long, or roughly a yard. Owing to the di culty of getting an accurate measurement of the size of the Earth by walking around it, the meter was rede ned as the distance between two very carefully marked lines on a particular bar of platinum iridium metal in France. Today, the meter is de ned as the distance that light can travel through a vacuum in 1/299,792,458 of a second. This relates distance m to time s, since light moves through a vacuum at the same constant speed everywhere in the universe. One of the great discoveries of science was that light moves away from you at the same apparent speed, no matter how fast you yourself are moving. This phenomenon is described in Einstein s theory of relativity, and isn t something we need to worry about for our relatively slow-moving robots.

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4

Note Tension or rubber band is sufficient to extend air muscle (approx. 2lbs.)

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Pound: lb Kilogram: kg The mass of something is, roughly, how much stu it is made of. Technically, the count of the stu , or molecules, in an object is the mole, used in chemistry. In the presence of gravity, mass is felt as weight. Without gravity, mass can be felt as an object s resistance to pushing. The more mass something has, the harder you have to push to move it. To get a feel for mass, try rolling a bowling ball and then a marble. Neither object has much friction, but each one has a di erent mass resisting the push. Imperial measurement de nes mass in pounds. One pound avoirdupois, to get really picky, is sixteen ounces. Troy pounds are di erent. And there are di erent de nitions for ounce, as well. It can be really confusing, but usually when anyone talks about pounds of mass they all mean the same thing, our familiar sixteen-ounce pound avoirdupois. Mass in SI units is de ned by the gram. Since grams are annoyingly small for everyday use, we use the kilogram, one thousand grams. Kilo is the pre x in SI that means one thousand. One kilogram is 2.2046 pounds.

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Pass a double strand of wire through the plastic hole and front loop of the air muscle. Twist the ends of the wire together securing the components together. If there is excessive wire left from twisting, clip it off using wire cutters. The top view should look something like Fig. 16.24. We can now see how the finger will contract. As the air muscle is pressurized, it contracts. The contraction pulls the plastic stem of the finger pull, which in turn contracts the finger. When pressure from the air muscle is released, the rubber band extends the air muscle back into its original extended position. At this point it s a good idea to static test the finger. Connect the air supply to the muscle to ensure it operates in the manner just described. The prototype required a pressure of 42 psi to fully contract the index finger. When the finger operates properly, connect the air muscles to the remaining fingers in the same manner described. Figure 16.26 is a close-up of the air muscles connected to all the finger pulls.

A more interesting example, and one dear to the heart of robot builders everywhere, is the ability to control the position of a motor-driven mechanism. In this example, both X and Y are in terms of a physical position and the control output Z is the power applied to the motor. Since Z is not just an on/off switch we have more subtlety available in this controller. Ignoring a few complexities for a moment, we can expand on equation (17-1): Z KP Y X 17-3 This, and equation (17-1), are proportional controls, since their outputs are in proportion to the error (Y X). The new factor KP is a gain control. It lets us

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