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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.
Hard · Level 2 · 25 questions
Practice questions
01 Which flow may develop aloft due to a balance between the pressure-gradient force and the Coriolis force?
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Answer and explanation
Correct answer: A. A geostrophic-wind-like flow
Explanation: A geostrophic flow can develop above the frictional layer when the horizontal pressure-gradient force is balanced by the Coriolis force. The air then moves approximately parallel to the isobars instead of directly crossing them. Because friction is weak aloft, this balance is more nearly achieved in the free atmosphere. Hence, option A is correct.
02 Why do permanent wind belts appear more irregular in the Northern Hemisphere than in the Southern Hemisphere?
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Answer and explanation
Correct answer: A. Because the unequal distribution of land and sea disturbs the pressure belts
Explanation: The Northern Hemisphere contains extensive continents and has a stronger contrast between land and ocean heating. Seasonal heating differences alter surface pressure, shift pressure belts, and interrupt the idealised planetary-wind pattern. The Southern Hemisphere is dominated by oceans, especially in the mid and high latitudes, so its wind belts are generally more continuous and regular. Thus, option A is correct.
03 Why are westerlies strong near the forties in the Southern Hemisphere?
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Answer and explanation
Correct answer: A. Because wide oceans and fewer land barriers keep wind flow strong
Explanation: The Southern Hemisphere has a much larger proportion of ocean in the mid-latitudes, especially around 40°S. Westerly winds therefore encounter fewer mountain ranges and land-surface obstacles, so they can travel over long, uninterrupted distances. This is why the strong winds near these latitudes are popularly called the Roaring Forties. The Coriolis force does not reverse; it deflects moving air to the left in the Southern Hemisphere.
04 If subtropical high pressure becomes very strong, what may happen to rainfall in nearby subtropical areas?
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Answer and explanation
Correct answer: A. Rainfall may decrease because subsidence increases
Explanation: Strong subtropical high pressure is associated with descending air, especially on the downward branch of the Hadley cell. As air descends, it is compressed and warms, while its relative humidity decreases. The atmosphere becomes more stable, cloud formation and upward convection are suppressed, and rainfall tends to decline. This process helps explain the location of many subtropical deserts, although local geography can modify the result.
05 How does surface friction change wind direction?
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Answer and explanation
Correct answer: A. It slows the wind and turns it more toward the pressure-gradient direction
Explanation: Surface friction acts mainly within the planetary boundary layer and reduces wind speed. Because the Coriolis effect depends on moving-air speed, its deflecting influence also becomes weaker. The pressure-gradient force therefore has a greater relative influence, so the wind crosses isobars at an angle and blows more directly toward low pressure or away from high pressure. Above the friction layer, winds can flow more nearly parallel to isobars.
06 What is the role of general circulation in Earth's energy balance?
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Answer and explanation
Correct answer: A. It transfers excess tropical heat toward higher latitudes
Explanation: Unequal solar heating gives the tropics a net energy surplus and the high latitudes a net energy deficit. General atmospheric circulation helps redistribute this energy through rising and sinking air, planetary wind belts, storms, and the transport of sensible and latent heat. Ocean currents also contribute, but atmospheric circulation is a major part of the global heat-transport system. It reduces, though does not eliminate, the temperature contrast between the equator and the poles.
07 Why is a perfectly straight latitudinal pattern of wind belts not found in reality?
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Answer and explanation
Correct answer: A. Because relief, land–sea contrasts, and seasonal changes distort the ideal wind pattern
Explanation: The global circulation model assumes an ideal, uniformly heated Earth with a regular surface. In reality, continents and oceans heat and cool differently, mountains obstruct or redirect air, and seasons shift the position of pressure belts. Coriolis force and local weather disturbances also modify the ideal pattern, so wind belts are irregular rather than perfectly straight.
08 Mid-latitude cyclones associated with westerlies are more active in which zone?
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Answer and explanation
Correct answer: A. Near the polar front and subpolar low-pressure belt
Explanation: Mid-latitude, or extratropical, cyclones commonly develop along the polar front, where relatively warm mid-latitude air meets cold polar air. Strong horizontal temperature contrasts and upper-air westerlies support frontal waves, uplift, and falling pressure. These conditions are associated with the subpolar low-pressure belt, especially around 50°–60° latitude, rather than with equatorial or polar high-pressure centres.
09 Why do tropical easterlies and mid-latitude westerlies blow in different directions?
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Answer and explanation
Correct answer: A. They flow between different pressure belts and are deflected differently by the Coriolis effect
Explanation: Winds begin to move because of pressure differences between pressure belts. Tropical easterlies generally flow from subtropical high pressure toward the equatorial low, while mid-latitude westerlies flow from subtropical highs toward subpolar lows. Earth’s rotation deflects these flows differently in each hemisphere, producing their characteristic easterly and westerly directions.
10 The subtropical jet stream aloft is considered related to which circulation boundary?
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Answer and explanation
Correct answer: A. The boundary between the Hadley and Ferrel cells
Explanation: The subtropical jet is a fast upper-tropospheric westerly current found near the poleward margins of the Hadley cells, around the boundary between the Hadley and Ferrel circulation cells. Air moving away from the equatorial region accumulates and turns toward the east, while strong horizontal temperature and pressure gradients help intensify the jet at high altitude.
11 Why can the ideal model of general circulation not fully predict real weather?
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Answer and explanation
Correct answer: A. Because real weather includes oceans, relief, seasonal changes, and atmospheric instabilities
Explanation: An ideal circulation model simplifies Earth by assuming broad zonal symmetry, regular heating, and a smooth surface. Actual weather is affected by uneven land–sea heating, mountains, coastlines, seasonal migration of the Sun, moisture, friction, jet streams, and temporary disturbances such as fronts and cyclones. The model is therefore a useful framework, not a complete day-to-day forecast.
12 Why does air rising from the equatorial low-pressure belt not travel directly to the poles aloft?
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Answer and explanation
Correct answer: A. Cooling, the Coriolis effect, and subsidence bring it down in the subtropical regions
Explanation: In the ideal three-cell circulation model, strongly heated equatorial air rises and moves poleward in the upper troposphere. As it travels, it cools and the Coriolis effect changes its motion. Around 25°–35° latitude, air accumulates, becomes denser, and subsides, forming the subtropical high-pressure belt. It therefore returns toward the Equator or moves poleward in other circulation cells instead of reaching the poles directly.
13 Why do clouds form in the equatorial region because of the convergence of the trade winds?
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Answer and explanation
Correct answer: A. Converging warm, moist air rises, expands, cools, and condenses into clouds.
Explanation: At the Inter-Tropical Convergence Zone, the northeast and southeast trade winds meet near the equator. Their convergence forces warm, moisture-laden air to rise. As the air rises, pressure decreases, it expands and cools adiabatically, and water vapour condenses around nuclei to form deep convective clouds and frequent heavy showers. Therefore, option A correctly links convergence, uplift, cooling, condensation, and rainfall.
14 Why is polar high pressure considered thermally produced?
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Answer and explanation
Correct answer: A. Intense radiational cooling makes the air cold, dense, and heavy, so it descends and produces high pressure.
Explanation: Polar high pressure is called thermal because its immediate cause is very low temperature rather than the mechanical convergence of winds. The poles receive oblique solar radiation and lose heat strongly, especially during the polar night. The resulting cold air becomes dense and sinks, increasing surface pressure. Thus, option A gives the correct thermal mechanism.
15 Why is the subpolar low-pressure belt considered more dynamic than thermal?
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Answer and explanation
Correct answer: A. It develops where westerlies and polar easterlies converge, forcing air to rise.
Explanation: The subpolar low is primarily a dynamic low-pressure belt. Near about 60° latitude, relatively warm westerlies meet cold polar easterlies along the polar front. Their convergence and the associated frontal uplift cause air to rise, lowering surface pressure. Temperature alone does not explain this belt; therefore, option A correctly identifies convergence and uplift as the main cause.
16 Which statement correctly relates general atmospheric circulation to climatic regions?
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Answer and explanation
Correct answer: A. Permanent wind belts and pressure belts help create broad global patterns of rainfall and dryness.
Explanation: General circulation redistributes heat and moisture from low to high latitudes. Rising air near the equatorial low-pressure belt encourages clouds and heavy rainfall, while descending air near the subtropical highs promotes dry conditions. Westerlies, polar winds, pressure belts, and seasonal shifts further modify these patterns. Hence, option A correctly links circulation with broad climatic regions.
17 Under which condition do surface winds cross isobars at a larger angle?
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Answer and explanation
Correct answer: A. When surface friction is strong and wind speed is reduced.
Explanation: Above the friction layer, the pressure-gradient force and Coriolis force make winds flow nearly parallel to isobars. Near the surface, friction slows the wind and weakens the Coriolis effect. The pressure-gradient force then turns the wind more directly toward lower pressure, so the wind crosses isobars at a larger angle. Therefore, option A is correct.
18 What is the combined effect of Earth's rotation and spherical shape on general atmospheric circulation?
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Answer and explanation
Correct answer: A. They produce latitudinal wind belts through unequal heating and the deflection of moving air.
Explanation: Earth's spherical shape causes unequal solar heating: low latitudes receive more concentrated energy than high latitudes. This creates temperature and pressure differences that drive large-scale circulation. Earth's rotation then produces the Coriolis effect, deflecting moving air to the right in the Northern Hemisphere and to the left in the Southern Hemisphere. Together these processes help organize the major latitudinal wind belts, so option A is correct.
19 If the Inter-Tropical Convergence Zone shifts deep inside a continent, what type of weather may increase there?
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Answer and explanation
Correct answer: A. Weather marked by convergence, rising air, and convective rainfall.
Explanation: The ITCZ is a zone where trade winds converge and warm, humid air rises. When it shifts over the interior of a continent, the region beneath it can experience enhanced convection, cloud development, thunderstorms, and seasonal rainfall, provided sufficient moisture is available. This movement is important in explaining wet and dry seasons in many tropical continental areas. Therefore, option A is the best answer.
20 In the three-cell model, the subtropical high-pressure belt forms near the boundary between which two cells?
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Answer and explanation
Correct answer: A. Hadley and Ferrel cells.
Explanation: In the idealized three-cell model, the Hadley cell circulates between the equator and about 30° latitude, while the Ferrel cell occupies the mid-latitudes. Air descends around 30° in the sinking branch of the Hadley circulation, and this subsiding air is associated with the subtropical high-pressure belt. Thus, the belt lies near the boundary between the Hadley and Ferrel cells, making option A correct.
21 In the Northern Hemisphere, winds blowing from subtropical highs toward subpolar lows appear to come from which direction?
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Answer and explanation
Correct answer: B. Southwest.
Explanation: The pressure-gradient force drives air from the subtropical high-pressure belt toward the subpolar low-pressure belt. In the Northern Hemisphere, the Coriolis effect deflects moving air to the right. The resulting mid-latitude winds travel generally from west to east, so they are named westerlies because they come from the southwest. Hence, option B is correct; winds are named for their source direction.
22 If surface convergence weakens in the equatorial region, what is the most likely effect on ITCZ rainfall?
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Answer and explanation
Correct answer: C. Vertical uplift will weaken, so cloud formation and rainfall may decrease.
Explanation: ITCZ rainfall depends strongly on the convergence of trade winds and the resulting upward movement of warm, moist air. If surface convergence weakens, the lifting mechanism becomes less effective, reducing condensation and the development of deep convective clouds. Rainfall may therefore decrease, although the exact amount also depends on moisture, instability, and local conditions. Thus, option C is the most accurate answer.
23 What is the main basis for calling the Ferrel cell an indirect cell in the general circulation of the atmosphere?
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Answer and explanation
Correct answer: D. Its flow is influenced by the surrounding Hadley and Polar cells
Explanation: The Ferrel cell occupies the middle latitudes between the Hadley and Polar cells. Unlike those cells, it is not produced primarily by direct thermal heating or cooling at its limits. It is a dynamically driven, indirect circulation whose motion is strongly influenced by the neighbouring cells and by the westerlies. Therefore, option D correctly explains why it is called indirect.
24 Which type of wind in the upper atmosphere is understood through a balance between the pressure-gradient force and the Coriolis force?
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Answer and explanation
Correct answer: B. Geostrophic wind
Explanation: A geostrophic wind develops when the pressure-gradient force is balanced by the Coriolis force. In the free atmosphere, friction is small, so the wind flows nearly parallel to the isobars rather than directly across them toward low pressure. This ideal balance is most applicable above the frictional boundary layer. Thus, option B is correct.
25 How does surface friction modify the direction of planetary winds?
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Answer and explanation
Correct answer: C. It slows the wind and reduces its Coriolis deflection
Explanation: Surface friction acts opposite to the motion of air and reduces wind speed. Because the Coriolis force is proportional to wind speed, its deflecting effect also becomes weaker near the surface. Consequently, surface winds cross isobars at an angle toward lower pressure instead of flowing parallel to them. Option C correctly describes this modification.
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