A Treatise on Meteorological Instruments: Explanatory of Their Scientific Principles, Method of Construction, and Practical UtilityNegretti, Enrico Angelo Lodovico
Science
A Treatise on Meteorological Instruments: Explanatory of Their Scientific Principles, Method of Construction, and Practical Utility
Negretti, Enrico Angelo Lodovico
Meteorological instruments; Meteorology; Scientific apparatus and instruments
_How to take an Observation._--In practice, the indications of the
atmospheric pressure are obtained from the sympiesometer by noting, first,
the temperature of the mercurial thermometer; secondly, adjusting the
pointer of the pressure scale to the same degree of temperature on the
scale of the air column; thirdly, reading the height of the liquid on the
sliding scale.
_Directions for Use._--The sympiesometer should be carried and handled so
as to keep the top always upwards, to prevent the air mechanically mixing
with the liquid. Care should also be taken to screen it from casual rays
of the sun or cabin fire.
48. ANEROIDS.
The beautiful and highly ingenious instrument called by the name
_Aneroid_, is no less remarkable for the scientific principles of its
construction and action, than for the nicety of its mechanism. It is a
substitute, and perhaps the best of all substitutes, for the mercurial
barometer. As its name implies, it is constructed "without fluid." It was
invented by M. Vidi of Paris. In the general form in which it is made it
consists of a brass cylindrical case about four inches in diameter and one
and a half inch deep, faced with a dial graduated and marked similarly to
the dial-plate of a "wheel-barometer," upon which the index or pointer
shows the atmospheric pressure in inches and decimals of an inch in
accordance with the mercurial barometer. Within the case, for ordinary
sizes, is placed a flat metal box, generally not more than half an inch
thick and about two inches or a little more in diameter, from which nearly
all the air is exhausted. The top and bottom of this box is corrugated in
concentric circles, so as to yield inwardly to external pressure, and
return when the pressure is removed. The pressure of the atmosphere,
acting externally, continually changes, while the elastic pressure of the
small quantity of air within can only vary by its volume being increased
or decreased, or by change of temperature. Leaving out of consideration,
for the moment, the effect of temperature, we can readily perceive that as
the pressure is lessened upon the outside of the box, the elastic force of
the air within will force out the top and bottom of the box; and when the
outer pressure is increased they will be forced in. Thus with the varying
pressure of the atmosphere, the top and bottom of the box approach to and
recede from each other by a small quantity; but the bottom being fixed,
nearly all this motion takes place on the top. Thus the top of the box is
like an elastic cushion, which rises and falls according as the
compressing force lessens or increases. To the eye these expansions and
contractions would not be perceptible, so small is the motion. But they
are rendered very evident by a nice mechanical arrangement. To the box is
attached a strong piece of iron, kept pressed upon it by a spring at one
extremity; so that as the top of the box rises, the motion is made
Public-domain text, read in full here on John Shaqi.
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