The product B only escapes from the body for a short time after removal.
This is a strong indication that its apparent volatility is connected
with the presence of the rapidly changing product radium A. Since A
breaks up with an expulsion of an α particle, some of the residual atoms
constituting radium B may acquire sufficient velocity to escape into the
gas, and are then transferred by diffusion to the walls of the vessel.
Miss Brooks observed that the activity was not concentrated on the
negative electrode in an electric field but was diffused uniformly over
the walls of the vessel. This observation is of importance in
considering the explanation of the anomalous effects exhibited by the
active deposit of radium, which will be discussed in the following
section.
=228. Effect of the first rapid change.= We have seen that the law of
decay of activity, measured by the β or γ rays, can be explained very
satisfactorily if the first 3-minute change is disregarded. The full
theoretical examination of the question given in sections 197 and 198
and the curves of Figs. 72 and 73 show, however, that the presence of
the first change should exercise an effect of sufficient magnitude to be
detected in measurements of the activity due to the succeeding changes.
The question is of great interest, for it involves the important
theoretical point whether the substances A and B are produced
independently of one another, or whether A is the parent of B. In the
latter case, the matter A which is present changes into B, and, in
consequence, the amount of B present after A is transformed should be
somewhat greater than if B were produced independently. Since the change
of A is fairly rapid, the effect should be most marked in the early part
of the curve.
In order to examine this point experimentally, the curve of rise of
activity, measured by the β rays, was determined immediately after the
introduction of a large quantity of the radium emanation into a closed
vessel. The curve of decay of activity on a body for a long exposure
after removal of the emanation, and the rise of activity after the
introduction of the emanation, are in all cases complementary to one
another. While, however, it is difficult to measure with certainty
whether the activity has fallen in a given time, for example, from 100
to 99 or 98·5, it is easy to be sure whether the corresponding rise of
activity in the converse experiment is 1 or 1·5 per cent. of the final
amount. Fig. 92, curve I, shows the rise of activity (measured by the β
rays) obtained for an interval of 20 minutes after the introduction of
the emanation. The ordinates represent the percentage amount of the
final activity regained at any time.
Curve III shows the theoretical curve obtained on the assumption that A
is a parent of B. This curve is calculated from equation (9) discussed
in section 198, and λ₁, λ₂, λ₃ are the values previously found.
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