What this quiz covers
This quiz focuses on Global Wind Patterns, giving you a quick way to practice the rules, question types, and explanations that matter most for AP Environmental Science.
At 75∘ S, the prevailing surface winds are expected to blow primarily from east to west. What is the name of this wind belt?
AP Environmental Science Quiz
Practice Global Wind Patterns in AP Environmental Science with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.
This quiz focuses on Global Wind Patterns, giving you a quick way to practice the rules, question types, and explanations that matter most for AP Environmental Science.
Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.
At 75∘ S, the prevailing surface winds are expected to blow primarily from east to west. What is the name of this wind belt?
Explanation: At 75°S, the location falls within the polar wind belt, which extends from about 60° to 90° latitude. In this region, surface air flows from the polar high toward the subpolar low at 60°. The Coriolis effect deflects this equatorward-moving air to the left in the Southern Hemisphere, creating winds that blow from east to west. These are called the polar easterlies because they blow from the east, and they represent the surface component of the Polar cell circulation.
A simplified Earth model shows surface air diverging outward from the poles and moving toward 60∘ latitude. In the Northern Hemisphere, what is the prevailing surface wind direction in this polar belt?
Explanation: In the polar regions, high pressure exists due to cold, dense air that sinks at the poles. This creates surface divergence, with air flowing outward from the poles toward lower latitudes, specifically toward the subpolar low near 60°. In the Northern Hemisphere, this poleward-to-equatorward flow is deflected to the right by the Coriolis effect, creating winds that blow from northeast to southwest. These are called the polar easterlies because they blow from the east (northeast).
A global wind map shows prevailing winds at 20∘ N and 20∘ S blowing toward the equator. Which statement best explains why they do not blow straight north-south?
Explanation: Global wind patterns show that trade winds at 20°N and 20°S blow toward the equator but curve due to the Coriolis effect rather than flowing straight north-south. The Coriolis effect is caused by Earth's rotation, which creates apparent deflection of moving objects relative to Earth's surface. In the Northern Hemisphere, moving air is deflected to the right, while in the Southern Hemisphere, it's deflected to the left. This deflection prevents winds from flowing directly from high to low pressure and creates the curved wind patterns observed in global circulation.
On a global circulation diagram, air rises near the equator at the Intertropical Convergence Zone (ITCZ) and sinks near 30∘ N, creating a surface wind belt between 0∘ and 30∘ N. In the Northern Hemisphere, what is the predominant surface wind direction in this belt due to the Coriolis effect?
Explanation: Global circulation creates pressure belts where air rises at the equator and sinks at 30° latitude, forming the Hadley cell. Surface air flows from the subtropical high (30°N) toward the equatorial low (ITCZ), moving generally southward. The Coriolis effect deflects moving objects to the right in the Northern Hemisphere, so this southward-moving air is deflected westward, creating winds that blow from northeast to southwest. These are called the northeast trade winds because they blow from the northeast direction toward the southwest.
A station at 55∘ N reports prevailing winds from the southwest. This is most consistent with which global wind belt and why?
Explanation: At 55°N, the location falls within the Northern Hemisphere westerly wind belt (30°-60°N). The westerlies result from surface air flowing from the subtropical high toward the subpolar low as part of the Ferrel cell circulation. The Coriolis effect deflects this poleward-moving air to the right, creating winds that generally blow from the southwest in the Northern Hemisphere mid-latitudes. Southwest winds are characteristic of the westerlies because they represent the southwest-to-northeast flow pattern created by Coriolis deflection of the pressure-gradient-driven poleward flow.
A student confuses the Ferrel cell and Hadley cell. Which statement correctly distinguishes the Ferrel cell in the mid-latitudes?
Explanation: The Ferrel cell is the middle circulation cell that exists between 30° and 60° latitude in each hemisphere. Unlike the thermally direct Hadley and Polar cells, the Ferrel cell is thermally indirect and driven by the interaction between its neighboring cells. The Ferrel cell is associated with surface westerlies because air flows poleward from 30° to 60° and is deflected by the Coriolis effect. The Hadley cell, in contrast, spans 0° to 30° and features rising air at the equator and sinking air at 30°, driving the trade winds.
Which latitude band is most associated with the doldrums, characterized by weak surface winds and frequent convection?
Explanation: The doldrums refer to a zone of weak, variable surface winds near the equator where the northeast and southeast trade winds converge. This occurs at the Intertropical Convergence Zone (ITCZ) near 0° latitude, where intense solar heating causes strong upward motion of air. The rising air creates low pressure and frequent convection, leading to thunderstorms and precipitation, but the strong vertical motion results in weak horizontal surface winds, creating the calm conditions known as the doldrums.
A ship sailing at 10∘ S experiences steady winds blowing from the southeast toward the northwest. Which global wind belt is the ship most likely in?
Explanation: At 10∘ S, the location falls within the Southern Hemisphere trade wind belt. Surface air flows from the subtropical high near 30∘ S toward the equatorial low (ITCZ). This northward-moving air is deflected to the left by the Coriolis effect in the Southern Hemisphere, creating winds that blow from the southeast toward the northwest. These are called the southeast trade winds, and a ship experiencing steady winds from the southeast would be sailing within this wind belt.
In the Northern Hemisphere, surface winds around a low-pressure system generally rotate counterclockwise due to the Coriolis effect. Which global pressure belt is most associated with frequent low-pressure systems and storm tracks?
Explanation: The subpolar low near 60° latitude is created where warm air from the mid-latitudes meets cold air from the polar regions along the polar front. This temperature contrast causes air to rise, creating persistent low pressure. In the Northern Hemisphere, the Coriolis effect causes surface winds around low-pressure systems to rotate counterclockwise. The subpolar low is associated with frequent storm formation and the passage of cyclonic weather systems, making it the global pressure belt most linked to low-pressure systems and storm tracks.
A student is shown a cross-section diagram with three circulation cells in one hemisphere. The middle cell shows surface winds moving poleward from 30∘ to 60∘ and returning equatorward aloft. Which cell is this?
Explanation: The three-cell model shows the Ferrel cell as the middle circulation cell between 30° and 60° latitude in each hemisphere. The Ferrel cell is characterized by surface winds moving poleward from the subtropical high (30°) to the subpolar low (60°), then returning equatorward at altitude. This creates the surface westerlies that dominate mid-latitude weather patterns. The Ferrel cell is thermally indirect, driven by the interaction between the adjacent Hadley and Polar cells rather than direct thermal forcing like the other two cells.
Air at the surface flows from the subtropical high toward the subpolar low in the mid-latitudes. With Coriolis deflection, this results in which prevailing winds?
Explanation: In the mid-latitudes between 30° and 60°, surface air flows from the subtropical high toward the subpolar low as part of the Ferrel cell circulation. This poleward-moving air is deflected by the Coriolis effect - to the right in the Northern Hemisphere and to the left in the Southern Hemisphere. This deflection creates the westerlies, which blow generally from west to east and dominate weather patterns in the mid-latitudes, bringing storms and weather systems from west to east across continents.
On an idealized Earth, which latitude band most commonly experiences descending air that suppresses cloud formation and precipitation?
Explanation: The idealized three-cell model shows that descending air most commonly occurs near 30° latitude, where the Hadley cell creates subtropical high pressure belts. Air that rises at the equator moves poleward at altitude and descends near 30°, warming and compressing as it sinks. This descending motion suppresses cloud formation and precipitation because sinking air becomes warmer and can hold more moisture without condensation. This is why many of the world's major deserts are located near 30° latitude in both hemispheres.
In the global circulation model, air rises near the Intertropical Convergence Zone (ITCZ) and sinks near 30∘ latitude. This sinking air most directly contributes to which pressure pattern at the surface?
Explanation: In the Hadley cell circulation, warm air rises at the equator (ITCZ) due to intense solar heating, creating low pressure at the surface. This air flows poleward at high altitude and cools as it moves away from the equator. Around 30° latitude, this now-cooler air has lost much of its moisture through precipitation and begins to sink due to increased density. As this air descends, it compresses and warms adiabatically, creating zones of high pressure at the surface known as subtropical highs. These subtropical high-pressure belts at approximately 30°N and 30°S are characterized by clear skies, low precipitation, and are home to many of the world's major deserts. The sinking air at 30° latitude directly creates these subtropical high-pressure zones.
Which sequence of vertical air motion is correct from equator to pole in the idealized three-cell model (Northern Hemisphere)?
Explanation: The idealized three-cell model shows alternating patterns of rising and sinking air from equator to pole. At 0° (equator), intense solar heating causes air to rise. At 30°, this air sinks as part of the Hadley cell. At 60°, air rises again where warm mid-latitude air meets cold polar air (polar front). At 90° (poles), cold dense air sinks due to radiative cooling. This creates the sequence: rising at 0°, sinking at 30°, rising at 60°, sinking at 90°.
A global circulation diagram shows that surface winds in the Southern Hemisphere mid-latitudes blow from the northwest toward the southeast. Which wind belt does this describe?
Explanation: The global circulation diagram shows surface winds in the Southern Hemisphere mid-latitudes (30°-60°S) blowing from northwest to southeast. These are the Southern Hemisphere westerlies, which result from surface air flowing from the subtropical high toward the subpolar low. The Coriolis effect in the Southern Hemisphere deflects this poleward-moving air to the left, creating winds that blow from the northwest. These westerlies are particularly strong over the Southern Ocean due to the lack of large landmasses to disrupt the flow.
On a global wind diagram, which boundary marks the meeting of warm mid-latitude air and cold polar air, often associated with cyclogenesis (storm formation)?
Explanation: The polar front near 60° latitude marks the boundary where warm mid-latitude air meets cold polar air. This temperature contrast creates instability and rising motion, leading to the formation of cyclonic storms (cyclogenesis). The polar front is associated with the subpolar low pressure belt and represents the meeting point between the westerlies (from the south) and polar easterlies (from the north). This boundary is a major zone of storm formation and weather system development in both hemispheres.
In a simplified global circulation model, air descends near 30∘ latitude creating subtropical high-pressure belts. Which climate condition is most commonly associated with these subtropical highs?
Explanation: Subtropical high pressure belts form near 30° latitude where air descends as part of the Hadley cell circulation. Descending air warms and compresses, creating high pressure at the surface and generally clear, dry conditions. This subsidence suppresses cloud formation and precipitation, making these regions ideal for desert formation. Many of the world's major hot deserts, including the Sahara, Sonoran, and Australian deserts, are located in these subtropical high pressure zones around 30° latitude.
Surface winds in the Hadley cell move from subtropical highs toward the equatorial low. In the Northern Hemisphere, these winds are called trade winds because they historically aided sailing. What is their general direction?
Explanation: The Hadley cell drives surface air movement from the subtropical highs near 30° toward the equatorial low pressure (ITCZ). In the Northern Hemisphere, this southward-moving air is deflected to the right by the Coriolis effect, creating the northeast trade winds that blow from northeast to southwest. These winds were historically important for sailing ships traveling westward across the Atlantic and Pacific Oceans, giving them the name "trade winds" because they facilitated maritime trade routes.
In the Northern Hemisphere, surface winds between 0∘ and 30∘ are deflected to the right, producing winds that blow from the northeast. What is the primary reason winds are deflected to the right?
Explanation: Between 0° and 30° in the Northern Hemisphere, surface winds are the northeast trade winds that blow from northeast to southwest. These winds result from air flowing from the subtropical high toward the equatorial low, with the Coriolis effect deflecting the southward-moving air to the right. Earth's rotation creates the Coriolis effect, which is the primary reason winds are deflected to the right in the Northern Hemisphere. This deflection is what prevents winds from flowing directly north-south and creates the characteristic northeast-to-southwest flow pattern.
Consider surface air moving from the subtropical high near 30∘ S toward the equator. In the Southern Hemisphere, the Coriolis effect deflects moving air in which direction, producing which trade winds?
Explanation: In the Southern Hemisphere, the Coriolis effect deflects moving air to the left of its motion direction. Surface air moving from the subtropical high near 30°S toward the equator initially flows northward. The leftward Coriolis deflection turns this northward flow toward the west, creating winds that blow from the southeast toward the northwest. These are called the southeast trade winds, which are the Southern Hemisphere equivalent of the northeast trade winds in the Northern Hemisphere.