Aeronautics; Aeronautics, Military; World War, 1914-1918 -- Aerial operations
Now since the air pressure is greater under the front of the cardboard,
add a counterbalancing weight by dropping a little sealing wax at the
center front. The dot that you made in the middle of the sheet is no
longer its center of weight. The _center of weight_ has moved forward,
and if it now corresponds to the _center of pressure_ the cardboard can
be made to fly out and across the room without overturning.
The whole problem of balancing a glider or an airplane is simply this
one of making the center of weight coincide with the center of the
supporting air pressure. Adding weight at the front of the glider is not
the only way of doing this: perhaps the reader has already thought of
another. Since the air pressure is caused by the weight of the cardboard
and its forward motion, we could cut the sheet smaller at the front so
as to lessen its air resistance there, or we could add a "tail" at the
stern in order to create more air resistance at that end. Either of
these plans would move the _center of pressure_ back until it
corresponded with the _center of weight_, and so would complete the
balance of our cardboard glider.
In the bird's body all of these methods of obtaining balance are
combined. His body and head taper to a point at the front in order to
decrease the forward air resistance. The weight of his body is
distributed more toward the front, thus counterbalancing any tendency to
whirl over backward. His tail increases the stern resistance, thus
helping to draw the center of pressure back to correspond to the center
of weight.
We begin to see some reasons why a man equipped with wings could never
be taught to fly,--as well as how perfectly the form of the bird is
planned to correspond to his mode of travel. No wonder the early
experimenters with wings, finding themselves so utterly helpless and
awkward, attributed the bird's ease and grace of carriage to "magic."
[Illustration: DIAGRAM SHOWING THE ESSENTIAL PARTS OF AN AIRPLANE]
The modern airplane is constructed with the most painstaking attention
to this principle of _balance_. Next to it in importance is that of
_wing construction_: that is, the size, shape and proper curve of the
supporting planes. Here again the construction of the airplane follows
very closely the general form of the bird. A large bird which flew very
high would be found to have his wings arched high in front, where they
would have considerable thickness, and sloping down very rapidly toward
the rear, while their thickness rapidly diminished. This sort of wing
has great lifting power, and it is the sort that is used on an airplane
which is built to "climb" rather than to develop speed.
Public-domain text, read in full here on John Shaqi.
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