Animal Locomotion; or, walking, swimming, and flying: With a dissertation on aëronauticsPettigrew, James Bell
Science
Animal Locomotion; or, walking, swimming, and flying: With a dissertation on aëronautics
Pettigrew, James Bell
Aeronautics; Animal locomotion
_How Balancing is effected in Flight, the Sound produced by the Wing,
etc._--The manner in which insects, bats, and birds balance themselves
in the air has hitherto, and with reason, been regarded a mystery,
for it is difficult to understand how they maintain their equilibrium
when the wings are beneath their bodies. Figs. 67 and 68, p. 141,
throw considerable light on the subject in the case of the insect. In
those figures the space (_a_, _g_) mapped out by the wing during its
vibrations is entirely occupied by it; _i.e._ the wing (such is its
speed) is in every portion of the space at nearly the same instant, the
space representing what is practically a solid basis of support. As,
moreover, the wing is jointed to the upper part of the body (thorax)
by a universal joint, which admits of every variety of motion, the
insect is always suspended (very much as a compass set upon gimbals is
suspended); the wings, when on a level with the body, vibrating in such
a manner as to occupy a circular area (_vide_ _r d b f_ of fig. 56,
p. 120), in the centre of which the body (_a e c_) is placed. The
wings, when vibrating above and beneath the body occupy a conical area;
the apex of the cone being directed upwards when the wings are below
the body, and downwards when they are above the body. Those points
are well seen in the bird at figs. 82 and 83, p. 158. In fig. 82 the
inverted cone formed by the wings when above the body is represented,
and in fig. 83 that formed by the wings when below the body is given.
In these figures it will be observed that the body, from the insertion
of the roots of the wings into its upper portion, is always suspended,
and this, of course, is equivalent to suspending the centre of gravity.
In the bird and bat, where the stroke is delivered more vertically
than in the insect, the _basis of support_ is increased by the tip of
the wing folding inwards and backwards in a more or less horizontal
direction at the end of the down stroke; and outwards and forwards at
the end of the up stroke. This is accompanied by the rotation of the
outer portion of the wing upon the wrist as a centre, the tip of the
wing, because of the ever varying position of the wrist, describing
an ellipse. In insects whose wings are broad and large (butterfly),
and which are driven at a comparatively low speed, the balancing power
is diminished. In insects whose wings, on the contrary, are long and
narrow (blow-fly), and which are driven at a high speed, the balancing
power is increased. It is the same with short and long winged birds, so
that the function of balancing is in some measure due to the form of
the wing, and the speed with which it is driven; the long wing and the
wing vibrated with great energy increasing the capacity for balancing.
When the body is light and the wings very ample (butterfly and heron),
the reaction elicited by the ascent and descent of the wing displaces
the body to a marked extent. When, on the other hand, the wings are
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Elsewhere in the archive
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account