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WBB • Class 7 • Geography & Environment (আমাদের পৃথিবী) • Ch 3
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Air Pressure

West Bengal Board of Secondary Education (WBBSE) Class 7 Geography ("Our Earth") Chapter 3: "Air Pressure" (বায়ুচাপ). This comprehensive syllabus module covers the physical weight of the atmosphere, standard sea-level atmospheric pressure (1013.25 mb / 76 cm Hg / 1.033 kg/cm²), Torricelli's mercury and aneroid barometers, isobaric cartography, vertical pressure lapse rate (~1 mb per 10m ascent), inverse thermodynamic relationships with temperature and humidity (molecular proof that moist air is lighter than dry air), formation and mechanics of the 7 permanent global pressure belts (Equatorial Low / Doldrums, Subtropical Highs / Horse Latitudes, Sub-polar Lows, and Polar Highs), seasonal 5°-10° shifting of pressure belts with solar declination causing Mediterranean winter rainfall, pressure gradient force, and comparative structural dynamics of Cyclones vs. Anticyclones.

Why Aren't We Crushed by the Weight of Air Equivalent to a Full-Grown Elephant?

Did you know that the column of air pressing down on every square centimeter of your skin exerts a force of 1.033 kilograms? For an average adult, the total downward weight of the atmosphere on the body equals roughly 15,000 kilograms (15 tons)—heavier than a full-grown African elephant! Why aren't our bones instantly crushed into powder? Because the internal blood pressure and fluid pressure within our living cells push outwards with an equal and opposite force, creating a perfect equilibrium. But when a mountaineer ascends Mount Everest where external air pressure drops by two-thirds, that internal pressure bursts delicate nasal capillaries, causing nosebleeds! How does this invisible, immense force govern global storms and winds? Let us explore!

Why This Chapter Matters

Air is invisible, yet a column of atmosphere weighing roughly 15 tons continuously presses down upon the human body! Understanding why sudden barometric drops forecast devastating cyclones, why mountaineers suffer nosebleeds and hypoxia at high elevations, and why Mediterranean countries experience rain in winter rather than summer forms the scientific foundation of meteorology, aviation safety, weather forecasting, and disaster mitigation.

Before You Begin (Prerequisites)

  • Physical properties of air (air has mass, weight, and occupies space) and gravitational force.
  • Atmospheric composition (78% Nitrogen, 21% Oxygen) and properties of water vapor.
  • Earth's rotation, Coriolis force, and thermal expansion of gases.

What You Will Learn (Core Objectives)

  • Define atmospheric pressure, cite standard sea-level benchmarks (1013.25 mb / 76 cm Hg), and interpret barometer readings & isobars.
  • Analyze how altitude, temperature, humidity (water vapor), and planetary rotation control spatial pressure variations.
  • Chart the 7 permanent global pressure belts, differentiating thermal vs dynamic origin and explaining Doldrums and Horse Latitudes.
  • Explain the seasonal 5°-10° shifting of pressure belts and its role in causing winter rainfall in Mediterranean climates.
  • Evaluate pressure gradient force and contrast the anatomical, barometric, and meteorological differences between Cyclones and Anticyclones.

Chapter Roadmap & Progression

1 1. Atmospheric Pressure & Measureme...
2 2. Factors Controlling Air Pressure...
3 3. The 7 Global Pressure Belts: Dol...
4 4. Seasonal Shifting of Pressure Be...
5 5. Pressure Gradient Force, Cyclone...

Complete Concept Guide (100% Curriculum Coverage)

1. Atmospheric Pressure & Measurement: Sea-Level Standards, Barometers & Isobars

Foundation Air is a gaseous mixture enveloping Earth. Because air is matter, it possesses mass and is subject to Earth's gravitational pull. The force exerted by the weight of a vertical column of atmosphere per unit area of Earth's surface is termed Atmospheric Pressure.

Scientific Phenomenon Standard Sea-Level Pressure Benchmarks:
Atmospheric pressure varies constantly, but scientists standardise sea-level pressure at 45° latitude and 0°C as follows:

  • Mercury Barometer Height: 76 centimeters (760 millimeters) of mercury column (Hg).
  • Standard International Unit: 1013.25 millibars (mb) or 1013.25 hectopascals (hPa).
  • Surface Weight Equivalent: Approximately 1.033 kilograms per square centimeter (~14.7 pounds per square inch).

Mechanism Measuring Instruments: The Barometer:
In 1643, Italian physicist Evangelista Torricelli invented the simple mercury barometer by inverting a mercury-filled glass tube into a dish of mercury. To facilitate fieldwork and aviation without liquid spills, the Aneroid Barometer (using an evacuated, flexible metallic capsule) was later invented. Altimeters used in aircraft are modified aneroid barometers calibrated to display altitude.

Analysis Isobars (সমচাপরেখা):
On synoptic weather maps, imaginary lines connecting places having equal atmospheric pressure (adjusted to sea level) at a given time are called Isobars (from Greek isos = equal, baros = weight). The geometric spacing of isobars indicates pressure gradient.

Application Forecasting Weather with Barometric Trends:

  1. Gradually rising barometer: Indicates settling of high pressure and arrival of fine, dry, clear weather.
  2. Slowly falling barometer: Indicates arrival of humid air and likelihood of widespread rain.
  3. Sudden, precipitous drop: Warns of an intense, deep localized low pressure—signaling the immediate arrival of a severe gale, thunderstorm, or violent cyclone!

2. Factors Controlling Air Pressure: Altitude, Temperature, Humidity & Rotation

Foundation Atmospheric pressure is dynamic and uneven across the globe. Four primary physical determinants govern spatial and temporal pressure fluctuations.

Scientific Phenomenon 1. Altitude / Elevation (উচ্চতা):
Gravitational attraction compresses air molecules most densely near sea level. As altitude increases, the height of the overlying air column decreases and air molecules thin out. Pressure decreases at an average rate of 1 millibar (mb) for every 10 meters of vertical ascent (approx. 34 mb per 300 meters, or 1 cm Hg per 110 meters).
Case Study: While sea-level Kolkata experiences ~1013 mb, Darjeeling (2,134 m) records ~790 mb, and the summit of Mt. Everest (8,848 m) drops to ~314 mb (less than one-third of sea-level pressure!).

Mechanism 2. Temperature (উষ্ণতা):
Temperature and pressure share an inverse relationship. When solar radiation warms air, molecular kinetic energy increases, air expands, its volume grows, density drops, and it ascends convectionally into the upper atmosphere, creating a Low Pressure system. Conversely, cold air contracts, becomes dense and heavy, and sinks toward the surface, building a High Pressure system.

Analysis 3. Water Vapor / Humidity (জলীয় বাষ্প):
Crucial Scientific Principle: A widespread misconception suggests that humid air is heavy because it contains water. In reality, moist air is significantly lighter than dry air!
Under Avogadro's law, equal volumes of gases at identical temperature and pressure contain identical numbers of molecules.

  • Molecular weight of Water Vapor ($H_2O$) = $(2 imes 1) + 16 = 18$.
  • Dry air consists primarily of Nitrogen ($N_2$, molecular weight 28) and Oxygen ($O_2$, molecular weight 32), with an average molecular weight of approximately 28.96 (~29).
When water vapor evaporates into dry air, lightweight $H_2O$ molecules (18) displace heavier nitrogen and oxygen molecules (28 and 32). Consequently, humid summer air is less dense and ascends readily, forming Low Pressure, whereas dry winter air forms High Pressure.

Application 4. Earth's Rotation (আবর্তন গতি):
Centrifugal force from planetary rotation propels air outward from the Equator and sub-polar latitudes, contributing dynamically to low-pressure formation.

3. The 7 Global Pressure Belts: Doldrums (Calm) & Horse Latitudes

Foundation Global variations in solar insolation and planetary rotation organize the atmosphere into seven permanent latitudinal pressure belts encircling Earth.

Scientific Phenomenon The 7 Permanent Global Pressure Belts:

  1. Equatorial Low Pressure Belt (0° to 5° N & S): Year-round vertical solar rays intensely heat the equatorial surface. Air warms, expands, and ascends vertically in massive convection currents. Horizontal wind motion is absent, creating an oceanic zone of dead calm historically termed the Doldrums. This is a Thermally Induced Belt.
  2. North Subtropical High Pressure Belt (25° to 35°N): Along the Tropic of Cancer.
  3. South Subtropical High Pressure Belt (25° to 35°S): Along the Tropic of Capricorn.
    Origin: The warm air rising from the Equator cools in the upper troposphere, is deflected by Coriolis force, and descends (subsides) heavily between 25° and 35° latitudes. Subsided air builds dense, clear, calm high pressure. These are Dynamically Induced Belts.
  4. North Sub-polar Low Pressure Belt (60° to 70°N): Around the Arctic Circle.
  5. South Sub-polar Low Pressure Belt (60° to 70°S): Around the Antarctic Circle.
    Origin: Due to Earth's high rotational speed compared to the poles, centrifugal force flings air outward and upward, forming dynamic low pressure.
  6. North Polar High Pressure Belt (80° to 90°N): Around the North Pole.
  7. South Polar High Pressure Belt (80° to 90°S): Around the South Pole.
    Origin: Perpetual freezing temperatures and absence of direct sunlight cause dense, cold polar air to settle permanently onto the icecaps, creating thermal high pressure.

Mechanism The Horse Latitudes (অশ্ব অক্ষাংশ):
The calm high-pressure zones between 30° and 35° North and South are known as Horse Latitudes. Because air descends vertically here, horizontal surface winds are calm and stagnant. In colonial times, Spanish sailing ships transporting cavalry horses to the West Indies were often stranded for weeks in this windless belt. Facing starvation and freshwater depletion, crewmen threw live horses overboard into the Atlantic Ocean to lighten their vessels. Thus, sailors christened these waters the 'Horse Latitudes'.

Analysis Of the 7 belts, 3 are thermally induced (1 Equatorial Low + 2 Polar Highs) and 4 are dynamically induced (2 Subtropical Highs + 2 Sub-polar Lows).

Application These 7 belts drive the planetary wind systems: Trade Winds, Prevailing Westerlies, and Polar Easterlies.

4. Seasonal Shifting of Pressure Belts & The Mediterranean Winter Rainfall

Foundation Earth's pressure belts are not geometrically stationary. Because Earth revolves around the Sun with a constant 66½° axial tilt, the thermal equator migrates north and south throughout the year.

Scientific Phenomenon Annual Shifting of Belts:

  • During Uttarayan (Northern Summer / June): Direct solar rays strike the Tropic of Cancer (23½°N). The thermal equator shifts northward, causing all global pressure belts to migrate 5° to 10° north of their average positions.
  • During Dakshinayan (Northern Winter / December): Direct solar rays strike the Tropic of Capricorn (23½°S). All global pressure belts migrate 5° to 10° south of their average positions.

Mechanism The Mediterranean Climate Mechanism:
Countries fringing the Mediterranean Sea (Italy, Spain, Greece, southern France) lie between 30° and 45°N latitude.

  1. Summer Conditions: During northern summer, the northward shift brings the dry Subtropical High-pressure belt directly over the Mediterranean basin. Prevailing winds blow offshore from the dry Eurasian landmass (offshore Trade Winds). Consequently, Mediterranean summers are completely dry, sunny, and cloudless.
  2. Winter Conditions: During northern winter, the southward migration moves the Subtropical High away, allowing the moisture-laden Westerlies blowing off the warm Atlantic Ocean to sweep over the Mediterranean. These maritime winds produce frequent cloudy weather and moderate-to-heavy winter rainfall.

Analysis While most global climatic zones experience rainfall in summer, the Mediterranean climate stands as Earth's unique exception where summers are parched and winters are rainy—an anomaly entirely generated by the 5°–10° latitudinal migration of pressure belts.

Application This distinctive climate makes the Mediterranean basin ideal for viticulture (wine-making grapes), olive orchards, citrus farming (oranges, lemons), and world-famous winter tourism.

5. Pressure Gradient Force, Cyclones (Storms) vs Anticyclones (Fair Weather)

Foundation Atmospheric pressure disparities create unbalanced forces in the air. Air in horizontal motion across Earth's surface is termed Wind. Air always flows horizontally from High Pressure to Low Pressure.

Scientific Phenomenon Pressure Gradient Force (বায়ুচাপের ঢাল):
The rate of pressure change per unit horizontal distance, acting perpendicular to isobars, is the Pressure Gradient Force.

  • Steep Pressure Gradient: Isobars packed tightly together ⟹ rapid pressure drop over short distance ⟹ violent gales, high wind speeds, and storms.
  • Gentle Pressure Gradient: Isobars spaced widely apart ⟹ gradual pressure change ⟹ light, calm breezes.

Mechanism Cyclones vs. Anticyclones:

  1. Cyclone (ঘূর্ণবাত): An intense atmospheric vortex characterized by a deep center of Low Pressure surrounded by concentric high-pressure isobars. Surrounding air rushes inward spiraling toward the center. Under Coriolis deflection, winds circulate Anti-clockwise in the Northern Hemisphere and Clockwise in the Southern Hemisphere. Converging air is forced violently upward at the center, cooling adiabatically to form dense cumulonimbus clouds, torrential rain, gale-force winds, and destructive storm surges (e.g., Bay of Bengal tropical cyclones like Amphan, Yaas).
  2. Anticyclone (প্রতিপ ঘূর্ণবাত): An atmospheric system featuring a center of High Pressure surrounded by low pressure. Air gently subsides at the center and diverges outwards, rotating Clockwise in the Northern Hemisphere and Anti-clockwise in the Southern Hemisphere. Subsided air warms up, suppressing cloud formation. Hence, anticyclones bring calm, cloudless skies, gentle breezes, and fair, pleasant weather.

Analysis Cyclones represent low-pressure convergence with hazardous weather, whereas anticyclones represent high-pressure divergence with stable, pleasant weather.

Application Coastal cyclone early-warning systems operate by monitoring barometric drops and isobaric curvature in the Bay of Bengal.

Key Geographical Concepts, Principles & Measurements

Atmospheric Pressure Standard Metrics
Standard Sea-Level Pressure 1013.25 millibars (mb) / 1013.25 hPa
Mercury Column 76 cm (760 mm of Hg)
Surface Weight 1.033 kg / cm² (~14.7 lbs/sq inch)
Barometer Inventor Evangelista Torricelli (1643)
Isobars connect locations with identical sea-level atmospheric pressure.
Vertical Pressure Lapse Rate Formula
Normal Lapse Rate Pressure drops by ~1 mb for every 10 meters ascent
Per 300 Meters ~34 millibars pressure drop
Per 110 Meters ~1 cm Hg column drop
Mt. Everest Summit (8,848 m) Pressure is ~314 mb (one-third of sea level!)
Explains high-altitude hypoxia, nosebleeds, and cabin pressurization in jets.
Temperature & Humidity Inverse Laws
Rising Temperature Air expands, becomes lighter & ascends ⟹ Low Pressure
Falling Temperature Air contracts, becomes heavy & sinks ⟹ High Pressure
Water Vapor ($H_2O$) Molecular weight 18 (Dry air molecular weight is 28.96!)
Moist vs Dry Air Moist air is lighter (Low Pressure) • Dry air is heavier (High)
Both temperature and humidity are inversely related to atmospheric pressure.
The 7 Global Pressure Belts Range
Equatorial Low (Doldrums) 0° to 5° N & S (Thermal origin; rising air; calm)
Subtropical Highs (2 Belts) 25° to 35° N & S (Dynamic origin; Horse Latitudes)
Sub-polar Lows (2 Belts) 60° to 70° N & S (Dynamic origin; rotational dispersal)
Polar Highs (2 Belts) 80° to 90° N & S (Thermal origin; dense polar cold)
3 belts are thermally induced and 4 belts are dynamically induced.
Doldrums vs Horse Latitudes
Doldrums (0°-5° N/S) Convectional ascending air • Calm equatorial low pressure
Horse Latitudes (30°-35° N/S) Subsiding descending air • Calm subtropical high pressure
Historical Naming Spanish ships jettisoned horses to lighten vessels in calm
Seasonal Shifting Belts migrate 5°-10° north/south with the solar equator
Pressure belt shifting causes dry summers and rainy winters in Mediterranean lands.
Pressure Gradient, Cyclones & Anticyclones
Wind Direction Always blows from High Pressure to Low Pressure
Steep Gradient Isobars close together ⟹ High wind speeds and gales
Cyclone (ঘূর্ণবাত) Low pressure core • Anti-clockwise in NH • Severe storms
Anticyclone (প্রতিপ ঘূর্ণবাত) High pressure core • Clockwise in NH • Clear sunny weather
Coriolis force causes winds to deflect into rotating circular patterns.

Conceptual Solved Examples & Case Studies

Example 1
Why do mountaineers climbing Mount Everest or high Himalayan peaks suffer from breathlessness and nosebleeds? Why does ink leak from fountain pens inside passenger aircraft?
Step-by-Step Solution:
1. Cause of Breathlessness at High Altitude:
Due to gravity, atmospheric density is highest at sea level. As altitude increases, the air column above shortens and air molecules thin out rapidly. While sea level atmospheric pressure is 1013.25 mb, on the summit of Mt. Everest (8,848 m) it drops to approximately 314 mb (less than one-third). The thin air contains far fewer oxygen molecules per breath, causing severe hypoxia and shortness of breath.

2. Cause of Nosebleeds:
Human internal blood pressure is naturally regulated to balance external sea-level pressure. When climbing to extreme altitudes, external air pressure drops drastically while internal blood pressure remains high. The pressure imbalance bursts delicate capillary walls inside the nasal passages, resulting in nosebleeds.

3. Why Fountain Pens Leak in Aircraft:
Fountain pen ink reservoirs contain air sealed at ground-level pressure. When an aircraft climbs into the upper atmosphere, cabin pressure decreases. The sealed air inside the pen expands and pushes the ink outward through the nib.
Example 2
Why is moist (humid) air scientifically lighter than dry air? Why do low-pressure systems develop during hot, humid summer and monsoon seasons?
Step-by-Step Solution:
1. Molecular Weight Comparison:
A common misconception is that adding water makes air heavier. In physics and chemistry, moist air is strictly lighter than dry air:
• Molecular weight of Water Vapor ($H_2O$) = $(2 imes 1) + 16 = 18$.
• Dry atmospheric air is 78% Nitrogen ($N_2 = 28$) and 21% Oxygen ($O_2 = 32$), with an average molecular weight of approximately 28.96 (~29).

2. Avogadro's Law & Low Pressure:
According to Avogadro's Law, equal volumes of gases at the same temperature and pressure contain the same number of molecules. When water evaporates into the atmosphere, lighter $H_2O$ molecules (weight 18) replace heavier nitrogen and oxygen molecules (weights 28 and 32).
Consequently, humid air has lower density and weight per unit volume than dry air. Being lighter, warm humid air ascends easily, reducing downward force on the ground and generating a prominent Low-Pressure system.
Example 3
State three fundamental differences between a Cyclone and an Anticyclone. Why do anticyclones feature clear, cloudless skies?
Step-by-Step Solution:
1. Cyclone vs. Anticyclone Differences:
• Pressure Architecture: A Cyclone features an intense Low Pressure core surrounded by high pressure. An Anticyclone features a High Pressure core surrounded by low pressure.
• Circulation Pattern: Cyclone winds spiral inward toward the center (Anti-clockwise in Northern Hemisphere). Anticyclone winds diverge outward from the center (Clockwise in Northern Hemisphere).
• Weather Conditions: Cyclones produce heavy cumulonimbus clouds, torrential rain, thunderstorms, and high winds. Anticyclones produce calm, dry, fair weather with sunny skies.

2. Why Anticyclones Have Clear Skies:
In an anticyclone, dense air subsides (descends) from the upper troposphere down toward the surface. As air descends, it compresses and warms up (adiabatic heating), increasing its capacity to hold moisture without condensation. Because condensation cannot occur, no clouds can develop, leaving the sky sunny and cloudless.

Common Misconceptions & Examiner Traps

Common Misconception

Assuming that humid air is heavier than dry air because water is dense.

Scientific Reality & Correction

Scientific Truth: Water vapor molecules ($H_2O = 18$) are significantly lighter than dry air molecules ($N_2 = 28$, $O_2 = 32$). Therefore, moist air is always lighter than dry air and causes low pressure.

Common Misconception

Confusing the Doldrums with the Horse Latitudes.

Scientific Reality & Correction

Scientific Truth: The Doldrums (0°–5° N/S) is a thermally induced low-pressure belt characterized by ascending air. The Horse Latitudes (30°–35° N/S) is a dynamically induced high-pressure belt characterized by subsiding air.

Common Misconception

Assuming that cyclones have high pressure at their center.

Scientific Reality & Correction

Scientific Truth: Cyclones always have an intense Low-Pressure core that pulls in surrounding air. Anticyclones have a High-Pressure core.

Atmospheric Pressure & Global Pressure Belts Framework

💨 ATMOSPHERIC PRESSURE & GLOBAL PRESSURE BELTS WBBSE Class 7 Geography (Our Earth) • Chapter 3 Conceptual Architecture 1. ATMOSPHERIC PRESSURE & MEASUREMENT • Sea-Level Standard: 1013.25 mb (76 cm of Mercury Column / 1.033 kg/cm²) • Barometer: Invented by Torricelli (1643); Fortin & Aneroid Barometers • Isobars (সমচাপরেখা): Imaginary lines connecting places with equal sea-level pressure • Pressure Drop: Pressure drops by ~1 mb for every 10 meters of ascent Standard: 1013.25 mb • Barometer (Torricelli) • 1 mb / 10m 2. FACTORS CONTROLLING AIR PRESSURE • Altitude: As altitude rises, air column shrinks & density drops ⟹ Low Pressure • Temperature: Warm air expands, becomes lighter & ascends ⟹ Low Pressure • Humidity: Water vapor (H₂O=18) is lighter than dry air (N₂+O₂≈29) ⟹ Moist Air is Lighter! • Earth's Rotation: Coriolis force disperses air from equator & sub-polar latitudes Altitude (Inverse) • Temp (Inverse) • Water Vapor (Moist=Lighter) 3. THE 7 GLOBAL PRESSURE BELTS • Equatorial Low (0°-5° N/S): Doldrums (Calm); intense thermal convection • Subtropical Highs (25°-35° N/S): Horse Latitudes (অশ্ব অক্ষাংশ); sinking air • Sub-polar Lows (60°-70° N/S): Centrifugal dispersion & cyclonic activity • Polar Highs (80°-90° N/S): Perpetual freezing cold; dense sinking polar air 1 Equatorial Low • 2 Subtropical Highs • 2 Sub-polar Lows • 2 Polar Highs 4. PRESSURE GRADIENT, WINDS & CYCLONES • Pressure Gradient: Pressure difference over distance; controls wind speed • Flow Rule: Wind always blows from High Pressure (উচ্চচাপ) to Low Pressure (निम्नচাপ) • Cyclone (ঘূর্ণবাত): Intense low center; inward spiral (anti-clockwise in NH) • Anticyclone (প্রতিপ ঘূর্ণবাত): High center; outward divergence; dry clear sky High ⟹ Low • Cyclone (Low Core) • Anticyclone (High Core) TARGETEXAMS • WBBSE CLASS 7 GEOGRAPHY (OUR EARTH)

Chapter Summary & 10 Key Takeaways

Takeaway 1
Atmospheric pressure is the weight exerted by an air column on a unit surface area; standard sea-level pressure is 1013.25 mb (76 cm Hg).
Takeaway 2
Invented by Torricelli in 1643, barometers measure air pressure; isobars connect points of equal pressure on maps.
Takeaway 3
Air pressure decreases with altitude at an average rate of ~1 mb per 10 meters ascent as air thins out.
Takeaway 4
Warm air expands and ascends to create Low Pressure; cold air contracts and sinks to create High Pressure.
Takeaway 5
Water vapor (weight 18) is lighter than dry air (weight 29); hence moist air is lighter and creates low pressure.
Takeaway 6
Earth features 7 permanent pressure belts: 1 Equatorial Low (Doldrums), 2 Subtropical Highs (Horse Latitudes), 2 Sub-polar Lows, and 2 Polar Highs.
Takeaway 7
Seasonal solar migration shifts pressure belts 5°–10° north and south, causing winter rainfall in Mediterranean climates.
Takeaway 8
Wind blows from high to low pressure; cyclones feature low pressure cores with violent storms, while anticyclones bring fair weather.

Check Your Understanding (Diagnostic Practice Questions)

Diagnostic questions testing core conceptual clarity. Answers are hidden initially — solve each problem first, then click to reveal the step-by-step verified solution.

1
1. What is atmospheric pressure? What is the standard value of atmospheric pressure at sea level?
Reveal Answer & Explanation
Answer: Atmospheric pressure is the vertical force or weight exerted by the column of atmosphere per unit area of Earth's surface due to gravity. Standard sea-level pressure at 45° latitude and 0°C is 1013.25 millibars (mb) or 76 centimeters (760 mm) of mercury column (approximately 1.033 kg/cm²).
State air weight, 1013.25 mb, and 76 cm of mercury.
2
2. Why does atmospheric pressure decrease with altitude? What is its normal rate of decrease?
Reveal Answer & Explanation
Answer: Gravity concentrates air molecules closest to sea level. As altitude increases, the overlying air column shortens and air density drops rapidly, reducing the weight of air per unit volume. The normal lapse rate is approximately 1 millibar (mb) drop for every 10 meters of ascent.
Cite gravitational compression, decreasing density, and 1 mb per 10m.
3
3. What are the Horse Latitudes and why were they given this historical name?
Reveal Answer & Explanation
Answer: The Horse Latitudes are the calm Subtropical High Pressure Belts located between 30° and 35° North and South latitude where air descends vertically. In colonial days, Spanish ships carrying horses to America became becalmed here for weeks due to lack of wind. Running out of food and water, sailors threw live horses into the sea to lighten their ships, giving the zone its name.
Mention 30°–35° latitudes, calm subsiding air, and throwing horses overboard.
4
4. Why do Mediterranean regions have dry summers and rainy winters?
Reveal Answer & Explanation
Answer: Seasonal shifting of pressure belts moves belts 5°–10° north in summer and south in winter. In summer, the dry Subtropical High-pressure belt shifts over the Mediterranean, bringing dry offshore Trade Winds. In winter, belts shift southward, bringing moist on-shore Westerlies from the Atlantic Ocean that yield heavy winter rainfall.
Explain 5°–10° pressure belt shifting, summer Trade Winds, and winter Westerlies.
5
5. Contrast the central pressure of a Cyclone with that of an Anticyclone. Why do cyclones cause rain?
Reveal Answer & Explanation
Answer: A Cyclone has an intense Low-Pressure center, whereas an Anticyclone has a High-Pressure center. In a cyclone, moist surrounding air rushes inward and ascends violently at the center, cooling and condensing rapidly to form dense cumulonimbus clouds, thunderstorms, and heavy rainfall.
Mention low vs high pressure center and rapid vertical ascent/condensation.
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