Harper's Electricity Book for BoysAdams, Joseph H. (Joseph Henry)
Science
Harper's Electricity Book for Boys
Adams, Joseph H. (Joseph Henry)
Electricity -- Juvenile literature
An opposite plate to this
forms the other side of the clutch and strap, and the two plates are
screwed side by side, so that the fuse-plate will be held securely when
pushed into place.
For the switch-bar use a piece of hard copper or brass four inches long,
half an inch wide, and about one-eighth of an inch thick, or the same
thickness as the copper straps at the ends of the mica fuse-plate. Bore
a hole at one end of this bar, and with a copper rivet attach it between
the two upright ears at the middle of the block. With a file cut away
the two edges at the other end of the bar for a distance of an inch, so
that the bar will have an end as shown at C in Fig. 26. Drive a small
file-handle on this end and give it a coat or two of shellac; then bevel
the lower edges of the bar with a file where it enters between the
blades of the clutch. The circuit wires are made fast at both ends of
the block, and the current travels through the binding-posts, the lead
fuse-wire on the mica plate D, and the switch-bar. If the current is too
strong, then when the switch-bar is pushed into the clutch the
safety-fuse will burn out and save the apparatus; or it will arrest a
flash of lightning.
Chapter IV
MAGNETS AND INDUCTION-COILS
Simple and Horseshoe Magnets
Every boy has a horseshoe magnet among his collection of useful odds and
ends, and whether it is a large or small one its working principle is
the same. If large enough it will lift a jack-knife, nails, or solid
weights, such as a small flat-iron or an iron padlock. A horseshoe
magnet is made of highly tempered steel and magnetized so that one end
is a north pole and the other a south pole. In more scientific language
these poles are known as, respectively, positive and negative. Once
magnetized the instrument retains that property indefinitely, unless the
power is drawn from it by exposure to intense heat, and even then, by
successive heating and cooling, the magnetism may be partially restored.
An electro-magnet may be made of any scrap of soft iron, from a piece of
ordinary telegraph-wire to a gigantic iron shaft. When a current of
electricity passes through a wire a magnetic “field” is produced around
the wire, and if the latter is insulated with a covering and coiled
about a soft iron object, such as a nail, a bolt, or a rod, that object
becomes a magnet so long as a current of electricity is passing through
the coils of wire or helix. A coil of wire in the form of a spiral
spring has a stronger field than a straight wire carrying the same
current, for each turn or convolution adds its magnetic field to that of
the other turns.
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.
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account