=238. The voltaic cell= is named after Volta, an Italian physicist, who
in 1800 invented it. In its simplest form it consists of a strip of
copper and a strip of zinc placed in dilute sulphuric acid (one part
acid to fifteen or twenty of water) (Fig. 215). By the use of sensitive
apparatus, it can be shown that the copper plate of the voltaic cell has
a positive charge and the zinc plate a negative charge. For example, let
a flat plate 10 cm. in diameter be placed upon the knob of an
electroscope and a similar plate, coated with shellac and provided with
an insulating handle, be set upon it to form a condenser. (See Fig.
216.) If now wires from the two plates of a simple voltaic cell be
respectively connected to the plates of the condenser, charges from the
copper and zinc plates will accumulate upon the two condenser plates.
Now remove the wires and lift the upper plate. The "bound" charge upon
the lower plate will spread over the leaves and cause them to separate.
Upon testing, the charge from the zinc plate will be found to be
_negative_ and that from the copper plate, _positive_. Since a positive
charge is found upon the copper plate it is called the _positive
electrode_; the zinc plate is called the _negative electrode_.
[Illustration: FIG. 215.--Cross-section of a simple voltaic cell.]
[Illustration: FIG. 216.--Testing the charges upon the plates of a
simple voltaic cell.]
=239. Test for an Electric Current.=--If the copper and zinc plates of a
voltaic cell are connected by a wire, a current of electricity is set
up in the conductor. Evidence of the current may be obtained by holding
the conducting wire over and parallel to the needle of a magnetoscope.
The needle is deflected by the action of the current parallel to it
(Fig. 217). This _magnetic effect_ of a current is the means usually
employed for the _detection_ and _measurement_ of an electric current.
Such a device which detects an electric current by its _magnetic effect
is called a galvanoscope_, in honor of Galvani, who in 1786 was the
first to discover how to produce an electric current.
[Illustration: FIG. 217.--The magnetic needle is deflected by the
current.]
[Illustration: FIG. 218.--Diagram of an electric bell circuit.]
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