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General circulation of the atmosphere and planetary winds
वायुमंडल का सामान्य परिसंचरण और ग्रहीय पवनें
This Class 11 Geography topic explains how the atmosphere circulates globally and how planetary winds develop as a result of unequal heating, pressure belts, and Earth’s rotation. Students learn about the three-cell circulation model—Hadley, Ferrel, and Polar cells—along with the trade winds, westerlies, and polar easterlies. It also introduces the Intertropical Convergence Zone, shifting wind belts, and their role in shaping global weather and climate within Atmospheric Circulation and Weather Systems.
Medium · Level 8 · 25 questions
Practice questions
01 In the polar cell, what direction relationship does the surface air flow generally show?
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Answer and explanation
Correct answer: B. From the polar high to the subpolar low
Explanation: In the polar cell, intense cooling makes the air cold and dense, producing a surface polar high-pressure area. Air moves outward from this high toward the relatively lower pressure near the subpolar front, where it rises. The surface branch is therefore directed from the polar high to the subpolar low and is associated with polar easterlies.
02 What is the main reason Earth has three cells instead of a single Hadley cell?
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Answer and explanation
Correct answer: A. Earth’s rotation and the Coriolis effect
Explanation: Unequal solar heating creates a basic tendency for air to rise near the equator and sink near the poles. However, Earth’s rotation deflects moving air through the Coriolis effect and prevents one simple equator-to-pole circulation loop. The observed global model is therefore represented by Hadley, Ferrel, and polar cells in each hemisphere, producing distinct wind belts.
03 The directional difference between tropical easterlies and mid-latitude westerlies is mainly explained by what?
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Answer and explanation
Correct answer: A. The combination of their source pressure belts and Coriolis deflection
Explanation: Tropical easterlies, or trade winds, flow from subtropical high-pressure belts toward the equatorial low-pressure belt and are deflected westward. Mid-latitude westerlies flow from subtropical highs toward subpolar lows and are deflected so that their prevailing direction is from the west. Their different source and destination pressure belts, combined with hemisphere-specific Coriolis deflection, explain the contrast.
04 Why can upper-tropospheric flow in general circulation be opposite to surface flow?
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Answer and explanation
Correct answer: A. Because return flow is needed to complete a circulation cell
Explanation: A circulation cell is a linked three-dimensional movement rather than a one-way surface current. Air may move toward a pressure zone at the surface, rise, and then return at a higher level toward the opposite part of the cell before descending. This compensating upper branch can therefore have a direction opposite to the surface branch and helps conserve mass while completing the circulation loop.
05 Planetary winds are called permanent winds, yet why are they not completely fixed?
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Answer and explanation
Correct answer: A. Because pressure belts and thermal zones shift seasonally
Explanation: The term permanent means that planetary winds are broad, recurring, and persistent components of global circulation; it does not mean that their position and speed are absolutely unchanging. As the zone of maximum solar heating migrates north and south during the year, the thermal equator, pressure belts, and associated wind belts also shift seasonally. This causes seasonal variation in their location and strength.
06 What is the main reason for considering the subtropical high-pressure belt a dynamic high?
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Answer and explanation
Correct answer: A. It forms through the descent and accumulation of air
Explanation: The subtropical high-pressure belt is called a dynamic high because its origin is mainly connected with atmospheric circulation rather than simple cooling at the surface. Air that has risen in the tropical part of the Hadley cell moves poleward aloft and gradually descends around 25°–35° latitude. The descending air increases surface pressure and produces the subtropical high-pressure belt.
07 What is the main basis for considering the polar high-pressure belt a thermal high?
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Answer and explanation
Correct answer: A. Extreme cooling makes the air dense and causes it to descend
Explanation: The polar high-pressure belt is called a thermal high because it develops mainly as a result of very low temperatures. Intense cooling makes the air cold, heavy, and dense. This dense air subsides toward the surface, increasing surface pressure. The belt is therefore directly related to cooling, unlike dynamic highs that are produced mainly by large-scale atmospheric circulation.
08 What is the most correct reason for calling the equatorial low a thermal low?
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Answer and explanation
Correct answer: A. Strong solar heating warms the air and makes it rise
Explanation: The equatorial low is called a thermal low because strong year-round solar heating raises the temperature of the lower atmosphere. The warmed air expands, becomes less dense, and rises through convection. As air moves upward, surface pressure decreases and a low-pressure belt forms. This explanation is based on heating and vertical air movement, not on polar descent or ice formation.
09 If the Intertropical Convergence Zone shifts farther north than usual in a year, what effect is likely in northern tropical regions?
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Answer and explanation
Correct answer: A. Convergence and rainfall zones may move northward
Explanation: The ITCZ is a zone of converging trade winds, rising air, cloud development, and frequent rainfall. When it moves farther north, these convergence and rainfall conditions also tend to shift northward, especially over tropical land areas. The movement does not eliminate polar easterlies or the Coriolis force.
Correct answer: A. It deflects wind perpendicular to its direction of motion
Explanation: Coriolis force is an apparent force caused by Earth’s rotation. It deflects moving air to the right in the Northern Hemisphere and to the left in the Southern Hemisphere, approximately at right angles to its motion. It changes direction rather than eliminating the pressure-gradient force or always stopping the wind.
11 In the three-cell model, the upper flow of the Hadley cell is generally toward which direction?
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Answer and explanation
Correct answer: A. From the equator toward subtropical latitudes
Explanation: In the Hadley cell, intense heating near the equator causes air to rise. At the top of the troposphere, this air flows poleward toward the subtropical latitudes, where it cools and descends near about 30° latitude. The returning surface flow forms the trade winds.
12 Under which condition is the weather impact of westerlies on western coasts more evident?
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Answer and explanation
Correct answer: A. When they blow from sea to land in mid-latitudes
Explanation: Westerlies are the prevailing winds of the mid-latitudes and generally blow from west toward east. Where they travel from the ocean toward a western-facing coast, they carry moist maritime air inland. This moisture, together with frontal disturbances and relief, can produce cloud, precipitation, and noticeable weather changes.
13 In general atmospheric circulation, what effect is enhanced by unequal distribution of oceans and land?
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Answer and explanation
Correct answer: A. Disruption of ideal latitudinal continuity of pressure and wind belts
Explanation: The ideal three-cell circulation model assumes a relatively uniform planet, but real continents and oceans heat and cool at different rates. This land-sea thermal contrast creates seasonal and regional pressure differences, causing pressure belts and planetary winds to become irregular, interrupted, and displaced from perfect east-west or latitudinal continuity.
14 If isobars are very close together, what conclusion follows for planetary winds?
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Answer and explanation
Correct answer: A. Pressure gradient is strong and wind speed may be high
Explanation: Isobars join places having equal atmospheric pressure. When they are closely spaced, pressure changes rapidly over a short horizontal distance, indicating a steep pressure gradient. This produces a stronger pressure-gradient force, so winds can blow faster, although friction and Coriolis force also influence their actual speed and direction.
15 What is the effect of Coriolis force being nearly zero at the equator on planetary winds?
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Answer and explanation
Correct answer: A. Rotation-induced deflection remains very weak there
Explanation: The Coriolis parameter decreases with latitude and becomes zero at the equator. Therefore, the rotating Earth produces almost no sideways deflection of horizontally moving air there. Pressure gradients can still exist, and solar heating remains strong, so the correct conclusion is weak rotation-induced deflection, not absence of wind or pressure differences.
16 In the Southern Hemisphere, southeast trade winds demonstrate which deflection rule?
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Answer and explanation
Correct answer: A. Moving air deflects to the left
Explanation: The Coriolis effect deflects moving air to the left in the Southern Hemisphere and to the right in the Northern Hemisphere. Air flowing from subtropical high pressure toward the equatorial low is therefore turned left and becomes a southeast trade wind. The wind name describes its source direction: it comes from the southeast.
17 The polar front is most closely related to the contact zone of which wind belts?
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Answer and explanation
Correct answer: B. Westerlies and polar easterlies
Explanation: The polar front is a boundary in the middle and high latitudes where relatively warm mid-latitude westerlies meet cold polar easterlies. Strong temperature contrast along this zone supports the development of frontal disturbances and extratropical or mid-latitude cyclones. It is not a boundary between local breezes, trade winds, or monsoon winds.
18 Which pair correctly matches features in general atmospheric circulation?
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Answer and explanation
Correct answer: A. Hadley cell and trade winds
Explanation: The Hadley cell occupies the tropical zone. Its descending air near the subtropics contributes to subtropical high pressure, while its surface flow toward the equatorial low is deflected by the Coriolis effect to form the northeast and southeast trade winds. The other pairs incorrectly combine cells or pressure belts that belong to different circulation zones.
19 In three-cell circulation, which sequence from equator to pole is correct?
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Answer and explanation
Correct answer: A. Hadley cell, then Ferrel cell, then Polar cell
Explanation: The three-cell model divides each hemisphere into three circulation zones. Starting at the equator and moving toward either pole, the order is Hadley cell from about 0° to 30°, Ferrel cell from about 30° to 60°, and Polar cell from about 60° to 90°. Therefore, option A gives the correct latitudinal sequence.
20 Under which condition is surface wind convergence most strongly linked with cloud formation?
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Answer and explanation
Correct answer: A. When convergence lifts warm and moist air
Explanation: Surface convergence forces air to move upward. When that air is warm and moist, rising causes expansion and adiabatic cooling. If the air cools to its dew point, water vapour condenses on condensation nuclei, producing clouds. Thus, convergence alone is not sufficient; upward motion combined with adequate moisture gives the strongest cloud-forming condition.
21 In general atmospheric circulation, what is the most accurate thermal character of the Hadley cell?
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Answer and explanation
Correct answer: A. Thermally direct cell
Explanation: The Hadley cell is thermally direct because its circulation is driven primarily by differential solar heating. Strongly heated air rises near the equator, moves poleward aloft, cools, and descends in the subtropical high-pressure belts. Near the surface, it returns toward the equator as the trade winds, completing the cell.
22 If the Intertropical Convergence Zone shifts northward, what is the main change in the convergence zone of trade winds?
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Answer and explanation
Correct answer: C. The convergence belt will generally shift northward too
Explanation: The ITCZ is the zone where the northeast and southeast trade winds meet and rising air creates a broad belt of convection. Its seasonal position follows the zone of maximum solar heating, which usually shifts northward during the Northern Hemisphere summer. Therefore, the trade-wind convergence belt also moves generally northward rather than disappearing or reaching the poles.
23 Which relation between the subtropical high-pressure belt and horse latitudes is most appropriate?
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Answer and explanation
Correct answer: D. Horse latitudes are linked with calm descending air of subtropical highs
Explanation: Horse latitudes refer broadly to the calm or weak-wind belts near about 30 degrees north and south. These belts are associated with the descending branch of the Hadley cell and the subtropical high-pressure systems. Descending air suppresses cloud development and produces stable, often dry conditions, while weak horizontal pressure gradients can create calm weather.
24 Why do trade winds generally blow from northeast to southwest in the Northern Hemisphere?
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Answer and explanation
Correct answer: A. The Coriolis effect deflects winds to the right
Explanation: Trade winds move at the surface from the subtropical high-pressure belts toward the equatorial low-pressure belt. In the Northern Hemisphere, the Coriolis effect deflects moving air to the right of its path. This changes an initially equatorward flow into a wind that comes from the northeast and travels toward the southwest.
25 Why are trade winds in the Southern Hemisphere called southeast trade winds?
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Answer and explanation
Correct answer: B. Because the Coriolis effect deflects them to the left
Explanation: In the Southern Hemisphere, surface air moves from the subtropical high-pressure belt toward the equatorial low-pressure belt. The Coriolis effect deflects this moving air to the left of its path. Consequently, the winds approach the equatorial region from the southeast and are known as the southeast trade winds.
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