Hawkins Electrical Guide v. 01 (of 10): Questions, Answers, & Illustrations, A progressive course of study for engineers, electricians, students and those desiring to acquire a working knowledge of electricity and its applications — John Shaqi
Hawkins Electrical Guide v. 01 (of 10): Questions, Answers, & Illustrations, A progressive course of study for engineers, electricians, students and those desiring to acquire a working knowledge of electricity and its applicationsHawkins, N. (Nehemiah)
Science
Hawkins Electrical Guide v. 01 (of 10): Questions, Answers, & Illustrations, A progressive course of study for engineers, electricians, students and those desiring to acquire a working knowledge of electricity and its applications
Hawkins, N. (Nehemiah)
Electrical engineering -- Handbooks, manuals, etc.
[Illustration: FIG. 24.--Lines of force of a charged sphere and a
conductor under induction. The negative electrification on the end _a_ of
the cylinder indicates that a certain number of lines end there, while the
positive electrification on the end _b_ similarly indicates that an
_equal_ number of lines set out from that end. It is one of the
fundamental properties of a conductor that it yields instantly to the
smallest electric force, and that no electric force can be permanently
maintained within the substance of a conductor in which no current is
passing. There can, therefore, be no electrostatic strain and no lines of
force within the material of a conductor where the electric field has
become steady. Hence the lines starting from _b_ are entirely distinct
from those ending at _a_. The two sets are equal in number because no
charge has been given to the cylinder, either positive or negative, and
therefore the sum of all the positive electrifications (or lines starting
from _b_) must be equal to the sum of all the negative electrifications
(or the lines ending at _a_). In all nine lines have been drawn at each
end of the cylinder, leaving the thirteen lines emanating from the sphere
which do not run on to the cylinder. If the cylinder be withdrawn to a
distance from K, it (the cylinder) will be found to show no signs of
electrification.]
Fig. 22 shows the result after the cover has been touched. If, finally,
the cover be lifted by its handle, the remaining positive charge will no
longer be “bound” on the lower surface by attraction, but will distribute
itself on both sides of the cover, and may be used to give a spark. It is
clear that no part of the original charge has been consumed in the
process, which may be repeated as often as desired. As a matter of fact,
the charge on the cake slowly dissipates--especially if the air be damp.
Hence it is needful sometimes to renew the original charge by again
beating the cake with the cat’s skin.
[Illustration: FIG. 25.--Faraday’s ice-pail experiment. An ice-pail P
connected with the gold leaves of an electroscope C, is placed on an
insulating stand S. A charged conductor K, carried by a silk thread, is
lowered into the pail, and finally touches it at the bottom. While it is
being lowered the leaves of the electroscope diverge farther and farther,
until K is well within the pail, after which they diverge no more, even
when K touches the pail or is afterwards withdrawn by the insulating
thread. After withdrawal, K is found to be completely discharged.]
The labor of touching the cover with the finger at each operation may be
saved by having a pin of brass or a strip of tinfoil projecting from the
metallic “sole” on to the top of the cake, so that it touches the plate
each time, and thus neutralizes the negative charge by allowing
electricity to flow in from the earth.
Public-domain text, read in full here on John Shaqi.
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