Lesson 3.1.5.4
3.1.5.4 Seismic hazards Quiz: AQA Geography, Unit 1
20 questions
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Lesson 3.1.5.4, Seismic hazards: 20 multiple choice questions for the AQA Geography (7037), Unit 1: Physical geography, written with Revision Ninja.
Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.
The 20 questions
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Earthquake shockwaves that travel through the Earth's interior are called:
- Tidal waves, which are caused by the gravitational pull of the Moon and Sun on the oceans
- Pyroclastic waves, which move down volcanic slopes at high speed during an explosive eruption
- Surface waves only, which travel slowly along the outer crust and cause most of the damage to buildings
- Body waves, which include P-waves and S-waves that pass through the interior of the Earth
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The focus of an earthquake is best defined as:
- The fault line visible at the ground surface after the earthquake has occurred and caused visible displacement
- The point of initial rupture beneath the surface where energy is released
- The seismograph station that records the event most accurately and is used to calculate its magnitude
- The point on the surface directly above the rupture, where shaking is usually strongest and damage is greatest
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Which feature is most associated with destructive plate margins as a source of earthquakes?
- Rift valleys in stable continental interiors, where the crust is slowly stretching and thinning over time
- Abyssal plains far from any plate boundary, where the seabed is flat and seismic activity is very rare
- Subduction zones where earthquakes occur along the descending plate interface
- Mid-ocean ridges where new crust forms, producing frequent but generally small shallow earthquakes
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Liquefaction during an earthquake occurs when:
- Lava flows reach the sea and cool rapidly, forming new land and changing the shape of the coastline
- Rock layers fold into tight anticlines as the crust is compressed by tectonic forces over long periods
- Water-saturated sediments lose strength and behave like a fluid
- Sea water is forced inland by a storm surge, flooding low-lying land and contaminating freshwater supplies
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A tsunami is most likely to be generated by:
- Heavy rainfall that floods a river valley and carries large volumes of sediment out to sea
- A storm that produces high winds over a coastline, pushing water inland and causing flooding
- A large undersea earthquake that displaces a large volume of water
- A nuee ardente flowing into a lake, creating a wave that travels across the water surface
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The Richter and moment magnitude scales are described as:
- Linear, so a magnitude 6 event releases twice the energy of a magnitude 3 event that occurred nearby
- Logarithmic, so each whole-number step represents a large increase in energy released
- Qualitative scales based on the damage observed in buildings and infrastructure after an earthquake
- Scales that measure only the depth of the focus beneath the surface, not the energy released
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Which property of seismic hazards makes them particularly hard to plan for?
- Events that always occur in the same place each year, which makes it easy to locate where damage will happen
- Hazards that are caused only by human activity such as mining or reservoir construction, so they can be controlled
- Constant, regular recurrence at fixed intervals, which means that the next event can be scheduled accurately
- Randomness and limited predictability of when a major event will occur
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Which of these is a primary impact of an earthquake?
- Political instability following a government's failed response to the disaster and public demands for resignation
- Loss of income from a long-term decline in tourism as visitors avoid the affected region for several years
- Disease spreading through crowded emergency shelters in the weeks after the main shock has passed
- Collapse of buildings caused directly by ground shaking during the event
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Which response to earthquake hazard is best classed as mitigation?
- Distributing emergency food and water to survivors in the days immediately following the quake
- Rebuilding homes and schools in the same location after the earthquake has caused widespread damage
- Holding a community drill for evacuation so that residents know which routes to use in an emergency
- Enforcing building codes that require reinforced structures designed to withstand strong ground shaking
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Which measure best reduces the risk of loss from a seismic hazard over the long term?
- Restoring electricity supply in the weeks after the quake so that businesses and hospitals can reopen
- Counselling for survivors after the disaster to help them cope with trauma and loss of property
- Land-use planning that avoids building on liquefiable soils and steep unstable slopes
- Relief supplies flown in within 24 hours of an event to support displaced families in temporary camps
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The 2010 Haiti earthquake caused very high casualties largely because:
- It was the largest earthquake ever recorded on Earth, releasing more energy than any other known event
- The event caused a major volcanic eruption nearby that buried the capital in ash and destroyed roads
- Poor building construction and high population density in vulnerable areas
- Haiti is located on a mid-ocean ridge where ground shaking is frequent and intense throughout the year
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The 2011 Tohoku earthquake in Japan caused widespread damage largely through:
- A tsunami that inundated coastal areas and disabled the Fukushima Daiichi power plant
- Storm surges from a tropical cyclone that struck the east coast at the same time as the earthquake
- A pyroclastic flow that destroyed central Tokyo and the surrounding districts within minutes
- Lahars that buried the coastal cities under thick layers of mud and volcanic debris for several days
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A seismograph records an earthquake with an amplitude 10 times larger than another event. Roughly how much more energy did the first event release?
- About 32 times more energy, for a magnitude difference of one unit
- About 10 times more energy, because energy and amplitude increase by the same factor
- About twice as much energy, since doubling the wave height roughly doubles the energy released
- About 100 times more energy, which is the square of the amplitude ratio recorded by the instrument
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Which statement best evaluates the view that earthquakes can be prevented?
- Earthquakes are fully predictable in both timing and magnitude, so no preparation or planning is needed at all
- Earthquakes cannot be prevented, but their impacts can be reduced through engineering, land-use planning and preparedness
- Earthquakes are only a problem in poor countries and can be avoided entirely by increasing trade with neighbours
- Earthquakes can be prevented by pumping water into faults to release stress gradually before a major event
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Which combination best describes the spatial pattern of major earthquakes?
- Evenly distributed across all stable continental shields, where the crust is thick and ancient and largely aseismic
- Concentrated along plate boundaries, especially the circum-Pacific belt
- Random across the globe with no link to plate boundaries, since earthquakes can strike anywhere without warning
- Concentrated in the centres of large ocean basins, far from any plate boundary or subduction zone
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Which characteristic of a tsunami makes it dangerous even when the waves look small offshore?
- Low energy that disperses quickly across the ocean, so tsunamis rarely reach coastlines with any force
- Very short wavelength that breaks immediately in deep water, so it causes little damage once it reaches land
- Slow speed that gives people plenty of time to escape from the coast before the wave arrives
- Long wavelength and high speed, so a large volume of water builds up as it reaches shallow coasts
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The 2015 Nepal earthquake of magnitude 7.8 had major impacts partly because:
- It occurred on a mid-ocean ridge far from population centres, so the shaking was felt only at sea
- It was preceded by a major volcanic eruption that destroyed roads and cut off the country's main airports
- It produced no shaking outside the capital, so impacts were limited to a small urban area
- Its location in a densely populated, mountainous region caused landslides and building collapse
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Why is the reported death toll from earthquakes often less closely linked to magnitude than people assume?
- Seismic energy dissipates completely before reaching the surface, so only the epicentre experiences any damage
- Impacts depend strongly on vulnerability, including building quality, population density and the time of day
- Earthquakes always cause the same level of damage regardless of location, building quality or population
- Magnitude scales measure only the number of deaths caused by each event, so they cannot be compared directly
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Which response is an example of short-term response to an earthquake?
- Strengthening building codes over a ten-year period so that new structures can withstand stronger shaking
- Search and rescue teams locating survivors in collapsed buildings during the first days after the event
- Relocating a settlement away from a fault line permanently, which may take many years to complete
- Designing earthquake-resistant bridges for future construction projects planned for the next decade
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A moderate earthquake strikes a region with no building regulations. Which outcome is most likely?
- Greater structural damage and loss of life than in a region with enforced earthquake-resistant codes
- No damage, because the magnitude is moderate and buildings are generally able to withstand moderate shaking
- Damage only to infrastructure more than 100 km away from the epicentre, such as bridges and power lines
- Damage only to the epicentre, with no effect on buildings or people located further from the fault line
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