Popular Scientific Recreations: in Natural Philosphy, Astronomy, Geology, Chemistry, etc., etc., etc.Tissandier, Gaston
Science
Popular Scientific Recreations: in Natural Philosphy, Astronomy, Geology, Chemistry, etc., etc., etc.
Tissandier, Gaston
Scientific recreations
I was one day passing the Observatory at Paris, when I noticed a number
of people collected round a professor, who after executing several
juggling tricks, proceeded to perform the curious experiment I am about
to describe. He took a broomstick and placed it horizontally, passing
the ends through two paper rings. He then asked two children to hold
the paper rings by means of two razors, so that the rings rested on
the blade. This done, the operator took a stout stick, and, with all
his strength, struck the broomstick in the centre; it was broken into
shivers, but the paper rings were not torn in the least, or even cut
by the razors! One of my friends, M. M——, a painter, showed me how to
perform this experiment as represented in the illustration (fig. 30).
A needle is fixed at each end of the broomstick, and these needles
are made to rest on two glasses, placed on chairs; the needles alone
must be in contact with the glasses. If the broomstick is then struck
violently with another stout stick, the former will be broken, but
the glasses will remain intact. The experiment answers all the better
the more energetic the action. It is explained by the resistance of
inertia in the broomstick. The shock suddenly given, the impulse
has not time to pass on from the particles directly affected to the
adjacent particles; the former separate before the movement can be
transmitted to the glasses serving as supports.[8]
[Illustration: Fig. 32.—Extracting a “man” from a pile of draughts
without overturning the pile.]
The experiment represented in fig. 31 is of the same nature. A wooden
ball is suspended from the ceiling by a rather slender thread, and a
similar thread is attached to the lower end of the ball. If the lower
thread is pulled forcibly it will break, as shown in the illustration;
the movement communicated to it has not time to pass into the ball; if,
on the contrary, it is pulled very gradually and without any shock,
the upper thread instead will break, because in this case it supports
the weight of the ball. Motion is not imparted simultaneously to all
parts of a body, but only to the particles first exposed to a blow, for
instance. One might multiply examples of this. If a bullet be shot from
a gun, it will make a round hole in a piece of wood or glass, whilst
if thrown by the hand,—that is to say, with much less force,— it will
shiver the wood or the pane of glass to pieces. When the celerity of
the motive force is very great, the particles directly affected are
disturbed so quickly that they separate from the adjacent particles
before there is time for the movement to be communicated to the latter.
It is possible, for the same reason, to extract from a pile of money a
piece placed in the middle of the pile without overturning the others.
It suffices to move them forcibly and quickly with a flat wooden ruler.
The experiment succeeds very well also if performed with draughtsmen
piled up on the draught-board (fig. 32).
Public-domain text, read in full here on John Shaqi.
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