The method employed consists in measuring the conductivity acquired by
air under the action of radio-active bodies; this method possesses the
advantage of being rapid and of furnishing figures which are comparable.
The apparatus employed by me for the purpose consists essentially of a
plate condenser, A B (Fig. 1). The active body, finely powered, is
spread over the plate B, making the air between the plates a conductor.
In order to measure the conductivity, the plate B is raised to a high
potential by connecting it with one pole of a battery of small
accumulators, P, of which the other pole is connected to earth. The
plate A being maintained at the potential of the earth by the connection
C D, an electric current is set up between the two plates. The potential
of plate A is recorded by an electrometer, E. If the earth connection be
broken at C, the plate A becomes charged, and this charge causes a
deflection of the electrometer. The velocity of the deflection is
proportional to the intensity of the current, and serves to measure the
latter.
But a preferable method of measurement is that of compensating the
charge on plate A, so as to cause no deflection of the electrometer. The
charges in question are extremely weak; they may be compensated by means
of a quartz electric balance, Q, one sheath of which is connected to
plate A and the other to earth. The quartz lamina is subjected to a
known tension, produced by placing weights in a plate, π; the tension is
produced progressively, and has the effect of generating progressively a
known quantity of electricity during the time observed. The operation
can be so regulated that, at each instant, there is compensation between
the quantity of electricity that traverses the condenser and that of the
opposite kind furnished by the quartz. In this way, the quantity of
electricity passing through the condenser for a given time, _i.e._, the
_intensity of the current_, can be measured _in absolute units_. The
measurement is independent of the sensitiveness of the electrometer.
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