R O G E R R E V E L L E A N D H A N S E. S U E S S
22
New Zealand area: (RAFTER,1955).
Pauna Shells
350
Limpet shells
360
Cockle shells
280
Pauna flesh
290
Limpet flesh
140
Seaweed
250
Seawater (East Cape area)
370
yrs.
yrs.
yrs.
yrs.
yrs.
yrs.
yrs.
The average of the ages given here is 430 yrs.
for the Atlantic samples and 290 yrs. for the
New Zealand samples. The difference of 140
yrs. is due to the fact that the ages of the
first group were calculated using wood grown
in the 19th century as standard, whereas contemporaneous wood was used as standard for
the New Zealand samples.’
Assuming that these apparent ages for marine
surface materials are representative for the
average age of marine carbon, or in other
words, that mixing times of the oceans are
short compared to the ages measured, an
apparent age of about 400 years for marine
carbon corresponds, according to Eq. (I), to
an exchange time t (atm) of about 7 years.
This lower limit for the exchange time of
CO, between the atmosphere and the sea can
now be compared with computations of this
quantity from the observed effect of industrial
fuel combustion on the specific C14 activity of
wood. This second way, however, will lead
to an upper limit for the exchange time if
rapid mixing in the oceans is assumed.
At present 9.1 x 1015grams of C14 free CO,,
or a fraction of 3.9 x I O - ~ of the atmospheric
CO,, is added per year to the atmosphere by
artificial burning of fossil fuels. The total
amount added during the IOO years prior to
1950 corresponds to about 12 % of the atmospheric carbon reservoir.
Neglecting any effect of the industrial CO,
on the rate constants k, and k, one obtains:
as
- = k, (it - s)
at
- k,s
-
for the amount of industrial CO, in the sea
at the time t. As k,
60 k,, we may neglect
k , as small compared to k,. We then obtain:
(4)
or
Expressing i, s, and r in units of the atmospheric C O z ,we obtain with i = 0.25 % (corresponding G the value during the 1940’’s) and
t=4o years, the following values of r for
exchange times
t
kl
Table 4
~ / k=
, t(atm)
years
1
I
5
1.2
Empirical values for the decrease in the
specific C14 activity I* were obtained by
comparing C14 activities of wood samples
grown in the 19th century with those grown
more recently, taking into account isotope
fractionation effects by CI3 measurements and
correcting for the C14 decay by normalizing
to equal age (SUESS1955).
With the assumption that the total atmospheric carbon reservoir is only negligibly
greater than the amount of C O , in the atmosphere, Y* will be equal to r.
Table 5
Tree
and integrated:
Spruce, Alaska..
See FBRGUSSONand RAFTBR.
These authors have
now found that I I O years should be added to all of
their previous age determinations to correct for the
difference of the standards.
I
(atm) = - as listed:
I
Years of growth
from annual rings
.. .
Y*
%
1.77
White Pine,
Massachusetts
1945-1950
1936-1946
1946-1953
3.40
2.90
Incense Cedar,
California
1940-1944
195-1953
1.85
I .os