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3.1 Historical introduction
We have looked at the individual types of air masses in some detail,
but what is just as, or perhaps, even more important for weather
forecasting is what happens in the immediate region where the air
masses meet. As we have seen, the air masses have quite different
properties so when they meet, perhaps one is cold and relatively
dry air and the other is relatively very warm and moist. These differences
produce a reaction in a zone known as a front.
The pioneer in the study of frontal development was Vilhelm Bjerknes,
a Norwegian scientist, who analysed their formation around the time
of the Great War. The war cut Norway off from outside weather information,
so a geophysical institute was founded by Bjerknes in Bergen. He
also persuaded the Norwegian government to install a dense network
of surface observing stations to provide data for his meteorological
studies.
It was known at this time that areas of organised rain were often
related to confluence lines in the surface wind field. In 1919,
at the age of 22, Vilhelm’s son, Jacob, published an eight page
paper, which introduced the concept of warm, cold and occluded fronts
that correctly explained their relationship to extra-tropical depressions.
The term front was introduced as an analogy to the recent
war, with air masses, rather than nations, coming together with
fronts between air masses compared with the fronts where opposing
armies came into contact. By 1926, in collaboration with others
at the institute (know collectively as the Bergen School), Bjerknes
described the structure and life cycle of frontal depressions.
In recent years, satellites, radar and numerical modelling techniques
have provided additional information that has shown that the Norwegian
concepts are very simplistic. They do, however, provide a helpful
starting point for analysing and forecasting the weather in temperate
latitudes.
3.2 Fronts

Figure 11: Vertical cross section through
a Warm Sector of a depression
3.3 Models of mid-latitude
depressions
The Bergen School, led by Bjerknes, devised a simple model that
shows how depressions, or low pressure systems, develop in mid-latitudes
as warm and cold air masses meet. Their model has the following
stages:
Origin and infancy — a warm air mass, such as tropical maritime
or tropical continental meets a cooler air mass, such as polar maritime
or polar continental.

Fig 12: Origin
Maturity — the warm air rises and spirals up
in an anticlockwise manner over the sinking cold air. A distinctive
warm sector exists between the warm and cold fronts.

Fig 13: Maturity
Occlusion — the warm sector disappears, as the cold front
quickly advances. Its faster movement is because the cold front
is the leading edge of cold, denser air, pushing up the warmer lighter
air. It is harder for the warmer, lighter air at the warm front
to cause the cooler, denser air to sink. Hence, the warm front advances
at 20 to 30 miles per hour, whilst the cold front can move forward
more quickly at 40 to 50 miles per hour.

Fig 14: Occlusion
Death — the frontal system dies as the warm air has completely
risen and cooled, and is now underlain by the cold air. The differences
in temperature have therefore been equalled out, and the occluded
front disappears.
Frontal systems tend to occur in 'families', which migrate
in an easterly direction across the Atlantic. Sometimes as many
as four or five mature depressions may make their way across the
United Kingdom, before a ridge of high pressure builds up to prevent
any more from advancing over the country. The origin stage tends
to occur over the mid-Atlantic, with the mature stage occurring
over the United Kingdom.
The death stage usually occurs over the European mainland and Scandinavia.
The depressions follow the zigzag path of the fast jet streams
in the upper troposphere. The jet streams may blow at 120 miles
per hour in the upper troposphere, but the weather systems below
it will usually move more slowly, often at about 40 miles per hour.
Britain's changeable and damp climate is largely the result of
the frequent movement of the rain-bearing fronts across the country.
The regularity of their passage, and the standard sequence of changes
they produce, allow quite accurate forecasts to be made.
3.4 The passage of
a mature depression across the United Kingdom

Fig 15: The passage of a mature depression
The passage of a mature depression across the United Kingdom will
produce the following sequence of weather changes.
Ahead of the depression in the cold sector
High cirrus clouds may occur in long feather-like streaks. Some
cirrostratus may also occur up to 600 miles ahead of the surface
position of the warm front. As the front approaches, temperatures
start to rise, and barometric pressure falls steadily.
The warm front passes over
Drizzle and then rain will usually start to fall from altostratus
and nimbostratus clouds. The amount of cloud will increase and the
cloud base will fall. Continuous rain will persist as pressure carries
on falling.
In the warm sector
Pressure stabilises and the amount of cloud falls as the clouds
start to thin out. The precipitation also stops, and the weather
is generally fine, with a little stratus or strato-cumulus. As the
cold front approaches, pressures slightly rise and temperatures
start to fall slightly.
The cold front passes over
Large, towering cumulonimbus clouds develop as the cold front passes
over. This produces heavy downpours of rain and fierce squalls,
sometimes with hail and thunder. Pressures rise steadily and air
temperatures start to drop as the cold front passes over.
Behind the cold front
There is an end to the heavy rain as the cumulonimbus clouds move
away. Barometric pressure continues to rise in a steady fashion.
A few showers may occur from some small cumulus clouds, but it is
generally fine and cool behind the cold front.
1. Make a simple definition of the following terms:
(a) Air mass.
(b) front.
2. Which of the following statements is true?
(a) Tropical air is stable because it is heated
from below.
(b) Tropical air is unstable because it is heated
from below.
(c) Polar air is stable because it is cooled
from below.
(d) Polar air is stable because it is heated
from below.
(e) Polar air is unstable because it is cooled
from below.
3. Explain the thermal differences which will occur when:
(a) an air mass has a maritime track,
(b) a cold air mass moves over a warmer surface.
4. What are the four main types of air mass that affect the UK?
5. Which of the following are the other two sub-divisions of air
masses which affect the UK?
(a) Arctic maritime.
(b) Returning polar continental.
(c) Returning polar maritime.
(d) Arctic continental.
6. Explain how initially dry tropical continental air may acquire
enough moisture to produce precipitation.
7. Where is the source region for Polar maritime air, and what
synoptic situation would allow it to flow over the United Kingdom?
8. Outline the weather features that the UK might experience with
returning polar maritime air.
9. Explain why Arctic maritime air is likely to lead to good visibility
over much of the UK.
10. Which air mass is most associated with thundery showers?
11. Which group of meteorologists first produced a model of frontal
development. Was it the,
(a) Bristol School,
(b) Brighton School,
(c) Bergen School, or
(d) Berlin School?
12. Why was the term 'front' used as an analogy to describe the
leading edge of an air mass?
13. Which air mass would move over the UK if pressure was high
over Scandinavia and there are surface winds from the east?
14. Which air mass is most likely to produce daytime temperatures
during the summer in excess of 30 °C?
15. Which air mass is most likely to lead to temperatures at night
falling below –10 °C?
16. Outline the features and cloud types associated with the following:
(a) Cold front,
(b) Warm front,
(c) Occluded front.
17. Why does the cold front move faster than the warm front?
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