26
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
the top layers of the sea were affected by a rise
in temperature.
Z) Decrease in the carbon content of soils:
HUTCHINSON
(1954) considers this the most
probable additional cause of the Callendar
effect. The increase in arable lands of about
4 x iols cm2 since the middle of the 19th
century has resulted in a corresponding
decrease of forest land of about 10%. Assuming
that 70 % of all the soil carbon is in forests
robably a considerable over-estimate), and
!Eat cultivation reduced this by so %, the
total decrease in soil carbon would correspond
to 9 x 1ol6 gms of CO, which is 4 % of that
in the atmosphere. At least four-fifths of this
amount should have been transferred to the
ocean.
3) Change in the amount of organic matter
in the oceans. About 7 % of the marine carbon
reservoir consists of organic material. The
amount of organic matter must depend on the
balance between the rates of reduction of CO,
by photosynthesis and of production of CO,
by oxidation. As pointed out previously, a
change in the CO, content of sea water by a
certain factor without a corresponding change
in alkalinity changes Pco, by about 10 times
this factor. Therefore a I % change in the
concentration of organic material in the sea
will change the partial CO, pressure and hence
the atmospheric CO,,by roughly I %. During
the past 50 years, the mcrease in marine carbon
from absorption of industrial CO, of about
0.2 % might have increased the rate of photosynthesis without a corresponding change in
the rate of oxidation per unit mass of organic
matter, and thus decreased Pco,. An increase in
the temperature of surface water might have
increased the rate of oxidation per unit mass
of organic matter, and hence increased Pco,.
W e suspect that fluctuations in the amount of
organic marine carbon might be an important
cause for changes in the atmospheric CO,
concentration.
ERIKSON
and WELANDER
(1956) have discussed a mathematical model of the carbon
cycle between the atmosphere, the land biosphere and dead organic matter, and the ocean,
in which it is assumed that the rate of input of
carbon to the biosphere is directly proportional,
not only to the total size of the biosphere but
also to the amount of CO, in the atmosphere.
Their estimate of the land biosphere is 7 times
larger than that given in Table 3. They conclude that most of that part of the CO, added
by fossil fuel consumption, which has not been
absorbed by the ocean, h a s y b a b l y gone into
the biosphere. Erikson an Welander’s basic
assumption that the amount of atmospheric
carbon dioxide limits the growth of the
terrestrial biosphere seems highly unlkely, in
view of the fact that the principal photosynthetic production on land is in forests, where
a deficiency of plant nutrients might be
expected. In any case as HUTCHINSON
(1954)
has shown, the amount of carbon in the
biosphere and soil humus has probably
decreased, rather than increased, during the
past century, because of the clearing of forests.
In contemplating the probably large increase in CO, production by fossil fuel
combustion in coming decades we conclude
that a total increase of 20 to 40 % in atmospheric CO, can be anticipated. This should
certainly be adequate to allow a determination
of the effects, if any, of changes in atmospheric carbon dioxide on weather and climate
throughout the earth.
Present data on the total amount of CO, in
the atmosphere, on the rates and mechanisms
of CO, exchange between the sea and the air
and between the air and the soils, and on
possible fluctuations in marine organic carbon,
are insufficient to give an accurate base line
for measurement of future changes in atmospheric CO,. An opportunity exists during the
International Geophysical Year to obtain much
of the necessary information.
Acknowledgements
A paper on the same subject by James R.
Arnold and Ernest C. Anderson appears in this
issue of this journal; we are grateful to Drs.
Arnold and Anderson for the opportunity of
the problem before publication.
W
e are appy to note that these authors have
discussin[
simultaneously and independently derived
essentially the same conclusions as presented in
this paper. W e hope that the somewhat different approach will make both contributions
equally valuable to the reader. W e also wish to
thank Dr. Carl Eckart for valuable discussions
and Dr. Harmon Craig for much constructive
criticism. Dr. Craig’s own careful analysis of
the subject appears in a separate paper in this
issue.
Tellus IX (1957). 1