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| The Classification of Climates from
Pythagoras to Koeppen
M.
2
a
16n13 SANDER “A A
Marie Sanderson,
Department of Geography, University of Waterloo, Waterloo, Ontario, Canada
ABSTRACT
In this paper attempts are made to trace the ways in which climates were shown on maps of the world beginning
with the Greek philosopher Pythagoras and ending with Koeppen. Much of the information was obtained by examining
original maps in the Clements Library of the University of Michigan. It is concluded that the most-used climate classification of climates today, that of Koeppen, derives from the five climate zones of the ancient Greeks and that the world is
ready for a new classification.
Many modern atlases (National Geographic Soci-
In the fourth century 8.c., the Greek philosopher
ety 1995) show maps of the world in which the conti-
Aristotle (384-322 B.c.) reviewed the opinions of earnents are divided into various climatic types according
lier philosophers about the earth and agreed with
to the classification of the German scientist Wladimir
Parmenides that the earth was a sphere in the center
Koeppen (1846-1940). The purpose of the present
of the universe, that there were five zones, and that the
paper is to trace the evolution of climate classification
habitable world was confined to the temperate zone
from the sixth century B.c. to the time of Koeppen. The
between the Tropics and the northern frigid zone (Lee
word “climate” is derived from the Greek word
1962). He suggested that the western half of the tem-
“ciima-ata,” defined as “the slope of the earth from
perate zone on the other side of the world from Greece
equator to pole” (Barnhardt 1957). The concept of a
might be habitable and that, because of symmetry,
spherical world is attributed to the Greek philosopher
there must be in the Southern Hemisphere a temper-
Pythagoras in the sixth century B.c. His disciple
ate zone corresponding to that in the northern. He be-
Parmenides stipulated five zones on the surface of this
lieved, however, that the excessive heat in the torrid
Spherical world (one torrid, two temperate, and two
zone would prevent the exploration of this southern
frigid) and stated that the central torrid zone was uninhabitable because of the heat from the direct rays of
zone (Harley and Woodward 1987).
the sun (Harley and Woodward 1987). Not all Greek
intellectuals held this belief. Herodotus in the fifth
invented the gnomon or sundial, permitting the mea-
Century B.c. maintained that the earth was flat, and
tude of a place, there were few such scientific
because of this it was hotter in India in the morning,
When the sun was closer to the earth, than it was at
hoon (Bagrow 1964).
measurements available to the early theorists. There
Although Anaximander in the fifth century 8.c. had
surement of the sun’s altitude and therefore the latihad been voyages to the west coast of Africa by Hanno
(470 B.c.), to England by Himilco (mid-fifth century
3
B.C.), to the North Sea by Pytheas (330 B.c.), and to the
-
east by Alexander the Great (350 8.c.). Pytheas was
—
the first to suggest that “length of longest day” could
mm
Corr,esponding author address: Dr. Marie Sanderson, Institute for
be the criterion determining the limits of the various
Nvironmental Studies, University of Toronto, 33 Willcocks St.,
climates, but the Greek geographers lamented the
Tonto, ON MSS 3E8, Canada.
failure of the explorers to take scientific measurements
final form 24 September 1998.
19°) American Meteorological Society
such as the altitude of the sun or the length of the longest day.
‚ Bulletin of the American Meteorological Society NARA Ts (a) vw cha o + 3
Page 2
Voir dans le PDF(s’ouvre dans une nouvelle fenêtre)The Classification of Climates from
Pythagoras to Koeppen
Marie Sanderson,
Department of Geography, University of Waterloo, Waterloo, Ontario, Canada
ABSTRACT
In this paper attempts are made to trace the ways in which climates were shown on maps of the world beginning
with the Greek philosopher Pythagoras and ending with Koeppen. Much of the information was obtained by examining
original maps in the Clements Library of the University of Michigan. It is concluded that the most-used climate classification of climates today, that of Koeppen, derives from the five climate zones of the ancient Greeks and that the world is
ready for a new classification.
Many modern atlases (National Geographic Society 1995) show maps of the world in which the continents are divided into various climatic types according
to the classification of the German scientist Wladimir
Koeppen (1846–1940). The purpose of the present
paper is to trace the evolution of climate classification
from the sixth century B.C. to the time of Koeppen. The
word “climate” is derived from the Greek word
“clima-ata,” defined as “the slope of the earth from
equator to pole” (Barnhardt 1957). The concept of a
spherical world is attributed to the Greek philosopher
Pythagoras in the sixth century B. C . His disciple
Parmenides stipulated five zones on the surface of this
spherical world (one torrid, two temperate, and two
frigid) and stated that the central torrid zone was uninhabitable because of the heat from the direct rays of
the sun (Harley and Woodward 1987). Not all Greek
intellectuals held this belief. Herodotus in the fifth
century B.C. maintained that the earth was flat, and
because of this it was hotter in India in the morning,
when the sun was closer to the earth, than it was at
noon (Bagrow 1964).
Corresponding author address: Dr. Marie Sanderson, Institute for
Environmental Studies, University of Toronto, 33 Willcocks St.,
Toronto, ON M5S 3E8, Canada.
In final form 24 September 1998.
1999 American Meteorological Society
Bulletin of the American Meteorological Society
In the fourth century B.C., the Greek philosopher
Aristotle (384–322 B.C.) reviewed the opinions of earlier philosophers about the earth and agreed with
Parmenides that the earth was a sphere in the center
of the universe, that there were five zones, and that the
habitable world was confined to the temperate zone
between the Tropics and the northern frigid zone (Lee
1962). He suggested that the western half of the temperate zone on the other side of the world from Greece
might be habitable and that, because of symmetry,
there must be in the Southern Hemisphere a temperate zone corresponding to that in the northern. He believed, however, that the excessive heat in the torrid
zone would prevent the exploration of this southern
zone (Harley and Woodward 1987).
Although Anaximander in the fifth century B.C. had
invented the gnomon or sundial, permitting the measurement of the sun’s altitude and therefore the latitude of a place, there were few such scientific
measurements available to the early theorists. There
had been voyages to the west coast of Africa by Hanno
(470 B.C.), to England by Himilco (mid–fifth century
B.C.), to the North Sea by Pytheas (330 B.C.), and to the
east by Alexander the Great (350 B.C.). Pytheas was
the first to suggest that “length of longest day” could
be the criterion determining the limits of the various
climates, but the Greek geographers lamented the
failure of the explorers to take scientific measurements
such as the altitude of the sun or the length of the longest day.
Page 3
Voir dans le PDF(s’ouvre dans une nouvelle fenêtre)Erastosthenes (275–194 B.C.) was a scientific geographer whose great contribution was the accurate estimation of the circumference of the world (25 000 mi)
based on the distance between Syene and Alexandria
in Egypt, and the geometry of the sphere. He also
wished to delimit the habitable world, which he believed to be surrounded by a world ocean, and set down
specific dimensions for the habitable world: 7800 mi
from west to east and 3800 mi south to north. He divided his habitable world by lines drawn parallel to
the equator through familiar places such as Alexandria or Rhodes, rather than making them equidistant
from each other (Brown 1949).
The astronomer Hipparchus in 140 B.C. attempted
to correct Eratosthenes’s map in an article entitled
“Against Eratosthenes,” stating that it was impossible
to locate exactly any place on the earth without astronomical observations. He took the principal parallel
of Eratosthenes (through Alexandria) as the basis for
his division of the known world and was the first to
apply the term “climata” to the regions between these
equidistant lines. He stated that countries lying beyond
the clima with a longest day of 17 h were uninhabitable on account of the cold and, thus, were of no interest (Bagrow 1964).
It is from the philosopher–traveler Strabo (63 B.C.–
23 A.D.) that we obtain most of our information about
ancient cartography (Brown 1949). He quoted
Poseidonius (135–51 B.C.) as saying that there were
seven zones on the earth’s surface, including two “super torrid” zones on either side of the equator where
the land was thoroughly parched and uninhabitable.
According to Strabo, Poseidonius was the first geographer to relate climate to man, saying that the people
in the torrid zone, as a consequence of the heat and lack
of rain, were born with woolly hair and protruding lips,
their extremities being, as it were, gnarled (Brown
1949).
Strabo accepted the five zones of Pythagoras rather
than Poseidonius’s seven since he believed that symmetry was a tool of geographic research. Strabo used
the term “torrid” to mean a region so burnt up with heat
as to be uninhabitable and argued that the term could
not be applied to the whole region between the Tropics since the region from Syene in Egypt to the land
of Cinnamon (Somaliland) was known to be inhabited.
He said that India, being inhabited, could not lie in the
torrid zone and, therefore, must lie in an east–west
rather than a north–south direction. For this reason, for
centuries India was oriented to the east on all maps.
Strabo also accepted Eratosthenes’s idea of the exist670
ence of a habitable zone south of the equator but stated
that there was no proof of it being habitable, and since
the geographers’ duty was to delimit the “known”
world, it was not worth discussion. Strabo quoted
many examples of the way in which men and crops
were correlated with the climata, and his monumental treatise fixed for centuries in European thought the
idea that the climata controlled the crops, temperature,
even the physical characteristics of the people, rather
than the astronomical lines they were intended to be
(Harley and Woodward 1987).
The Roman geographers added little to the scientific ideas of the climata. Pomponius Mela in the first
century A.D. wrote a brief description of the earth with
five zones. His treatise is interesting chiefly because
of his mention of “antichthones,” people whom he
believed inhabited the southern temperate zone, although like the earlier Greeks he believed that this zone
was inaccessible because of the intervening torrid zone.
The celebrated Greek astronomer and mapmaker
Ptolemy (87–150 A.D.) of Alexandria played a most
important role in the renaissance of learning in
fifteenth-century Europe. He stated that his aim was
to reform the map of the world and base it on sound
astronomical principles. He drew much of his material from Marinus of Tyre, although he did not hesitate to point out Marinus’s errors, for example, that
Marinus had not made the climata equidistant from
one another. Ptolemy laid down 21 equidistant parallels between the equator and the parallel of Thule
(Greenland), and an additional parallel was added
south of the equator. Ptolemy gave three legends to his
maps “horae deie longissimi (length of the longest
day),” “gradus latitudinis (latitude in degrees),” and
“numeri climatum (climate number),” the latter being
merely the numbering from one to seven of the zones
having the following lengths of solstitial day in hours:
1) 13–13.5; 2) 13.5–14; 3) 14–14.5; 4) 14.5–15; 5) 15–
15.5; 6) 15.5–16; 7) 16.5–17. No climata were shown
north of the seventh clima (the latitude of northern
England) or south of clima 1 (southern Arabia), presumably because these areas were regarded as uninhabitable. Ptolemy firmly believed that climate and
latitude were synonymous, since he stated:
Reason herself asserts that all animals and all
plants have a similarity under the same kind of
climate and under similar weather conditions,
that is, when under the same parallel and situated at the same distance from either pole
(Stevenson 1932).
Vol. 80, No. 4, April 1999
Page 4
Voir dans le PDF(s’ouvre dans une nouvelle fenêtre)Thus Ptolemy perpetuated the climata of earlier geographers, since his maps became the outstanding authority in renaissance Europe.
The Arab geographers, borrowing from the earlier
Greeks and later from Ptolemy, also showed climata
on their maps. The most famous of the Arab map
makers, Idrisi, showed seven climata on his 1154 A.D.
map (Bagrow 1964). This division into seven was
much beloved by the Arabs, since seven was thought
to be a magic number. In western Europe during the
Middle Ages, the man most responsible for perpetuating the idea of the five climatic zones was the Italian geographer Macrobius, who lived about 400 A.D.
He believed in a spherical world and based his concept of the universe on the writings of Pythagoras. Like
Pythagoras, he believed that the two polar zones were
uninhabitable, and the southern temperate zone was
habitable, but this could not be proven because of the
intervening torrid zone (Harley and Woodward 1987).
During the Middle Ages, most of the maps of the
world were of the T–O type (the letter T within the
letter O) showing a circular world divided into three
continents (Asia, Europe, and Africa) and oriented to
the east (Fig. 1). The all-powerful church denied the
existence of the antipodes since, according to the
Bible, during the Great Flood all people were destroyed except those with Noah on Mount Ararat,
which of course is in the Northern Hemisphere. There
were a few exceptions to the usual T–O maps. The
maps of Capella about 410 A.D. were circular but
showed the zones; those of Isadore of Seville (early
seventh century) and Beatus (776 A.D.) were of the T–
O type but included zones. Honoré de Autun (twelfth
century) combined a T–O map with zones, and in 1448
A.D. Johannes Leardes of Venice drew a map of the
habitable world with east at the top, and two areas
north and south labeled “uninhabitable because of the
cold or heat” (Bagrow 1964).
When Ptolemy’s work became known to the western world, beginning with the Angelus translation into
Latin in 1408 A.D., it was usually presented in its original form, with new works added as an appendix. Since
the “habitable” world was now known to extend below the equator, the “new” lands south of the equator
and the corresponding new climata were added to
Ptolemy’s maps. Sylvanus (1511) in Venice drew a
heart-shaped map of the world, showing Ptolemy’s
seven zones north of the equator, and adding four new
climata south of the equator. Apianus’s (1520) map
of the world showed a “clima 8” above the “clima 7”
of Ptolemy. Figure 2 is a photograph (courtesy of the
Bulletin of the American Meteorological Society
FIG. 1. Generalized T–O map, oriented to the east.
Clements Library) of the 1584 Ptolomaeus world map
showing the climata on the right side and length of the
solstitial day on the left (note the distortion of India to
the east). The habitable world was stretching north as
well as south in the sixteenth century! In 1492 Behaim
constructed a globe showing the climata. He stated
the planet moon rules the seventh clima. Her
house is the Crab. The people of this climate
are inconsistent, somnambulist. The longest
day is 16 hours long (Ravenstein 1908).
How similar this sounds to the statements of the early
Greeks and yet how like the later environmental determinists! Some mapmakers of the period, perhaps
more adventuresome than others, dared to ignore
Ptolemy’s climata and printed their maps without them
[the Strassburg (Ptolemaeus 1520) and the Münster
(Ptolemaeus 1540) editions of Ptolemy].
By the middle of the sixteenth century there were
scientific methods of determining latitude by the
height of the sun and by the polestar and, gradually,
as such information became available, maps began to
show degrees of latitude instead of lengths of the longest day. As the climata were replaced by latitude shown
in degrees, many mapmakers, wishing to show some
indication of climate on their maps, and having no climate classification, reverted to the original Greek
theory of five zones: one torrid, two temperate, and
two frigid. When maps of the new world appeared,
Page 5
Voir dans le PDF(s’ouvre dans une nouvelle fenêtre)FIG. 2. Photograph of 1584 Ptolomaeus world map (courtesy of Clements Library, University of Michigan).
mapmakers extrapolated these zones to the new territories. Homem’s (1554) map and the Blaeu (1648)
atlas show the latitudinally extrapolated “zona
frigida,” “zona temperata,” and “zona torrida” on their
maps of North and South America. The idea of limits
to the habitable world also persisted for centuries. In
his geography text, Malte-Brun (1834) stated “the 78th
parallel of latitude seems to be the limit of the habitable world in the Northern Hemisphere.”
The persistence of the Greek idea of latitudinal climatic zones seems amazing when the geographical
explorations that began in the fifteenth century showed
that the lands in the new world had climates that were
not simple extrapolations of European climates, but
highly irregular areas exhibiting contrasts in moisture
supply as well as temperature. The zonal system continued to be shown on maps because of a lack of quantitative climatic information. With the development of
meteorological instruments such as the thermometer
in the late eighteenth century in Europe, regular climatic observations began to be taken. The German
672
botanist Dove (1853) published the first world maps
of temperature and precipitation in 1848.
The first quantitative classification of world climates was made by the German scientist Wladimir
Koeppen in 1900. Koeppen was trained as a plant
physiologist and realized that plants could serve as
synthesizers of the many climatic elements. He chose
as symbols for his classification the five vegetation
groups of the late nineteenth century French botanist
De Candolle, which was based on the climate zones
of the Greeks: A, the plants of the torrid zone; C, the
plants of the temperate zone; D and E, the plants of
the frigid zone, while the B group represented plants
of the dry zone. A second letter in the classification
expressed the moisture factor (an Af climate is tropical and rainy). Throughout his long life Koeppen attempted to fit various isolines of temperature to the
vegetation boundaries of de Candolle. His famous
“Handbuch de Klimatologie,” published in 1936,
brought his classification to the attention of world
geographers. When English translations of his work
Vol. 80, No. 4, April 1999
Page 6
Voir dans le PDF(s’ouvre dans une nouvelle fenêtre)were made, the English-speaking world eagerly
adopted his numerical classification of climates, and
maps of the climates of every continent using the
Koeppen classification began to appear (Mather and
Sanderson 1996).
Although the American climatologist Thornthwaite
(1899–1963) published a more rational classification
of climate based on the relationship between potential evapotranspiration and precipitation (Thornthwaite
1948), it never became widely used. The reason probably lies in the less understood concept of “potential
evapotranspiration” and the cumbersome four symbols
used by Thornthwaite. Modern atlases and geography
textbooks continue to use the 100-year old Koeppen
classification of climates, which was based on
de Candolle’s vegetation groups, themselves based on
the five climatic zones of the ancient Greeks! Is it not
time for modern atmospheric scientists to develop a
“new” classification of world climates?
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