Landscapes
Landscapes Fashioned by Water
Chapter 3 Lecture
Natalie Bursztyn
Utah State University
Foundations of Earth Science
Eighth Edition
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Three important external processes.
Describe where they fit into the rock cycle.
Focus Questions 3.1
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External processes
Occur at or near Earth’s surface
Powered by energy from the Sun
Internal processes
Powered by energy from Earth’s interior
Earth’s External Processes
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External processes include:
Weathering
Disintegration and decomposition of rock
Mass wasting
Transfer of rock and soil downslope under influence of gravity
Erosion
Physical removal of material by a mobile agent (e.g., flowing water, waves, wind, ice)
Earth’s External Processes
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Explain the role of mass wasting in the development of valleys.
Discuss the factors that trigger and influence mass-wasting processes.
Focus Questions 3.2
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Earth’s surface is covered by slopes
Slopes are unstable
Gravity causes material to move downslope
This movement is called mass wasting
May be slow and imperceptible, or catastrophic
Does not require a transporting medium
Mass Wasting: The Work of Gravity
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Mass Wasting: The Work of Gravity
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Mass Wasting and Landform Development
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Landform evolution:
Weathering breaks rocks apart
Mass wasting transfers materials downslope
Erosion (transportation) carries the materials away
Most sediment is eventually transported to the sea
Mass wasting shapes stream valleys
Most common landform
Generally much wider than they are deep
Mass wasting increases width
Eventually transforms steep, rugged landscapes into gentle, subdued terrain
Mass Wasting and Landform Development
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Mass Wasting and Landform Development
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Gravity is the controlling force
Other factors overcome inertia to create downslope motion
Slope material is gradually weakened
Slope gets closer and closer to being unstable until a trigger initiates downslope movement
Saturation with water
Oversteepening
Removal of vegetation
Earthquakes
Controls and Triggers of Mass Wasting
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Saturation
Water in pore space reduces cohesion and allows particles to slide
Water adds weight to sediment
Oversteepening
Unconsolidated sediment forms a stable slope at a certain angle of repose depending on the size and shape of the particles
Stream undercutting a valley
Waves undercutting a cliff
Human activity
Controls and Triggers of Mass Wasting
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Controls and Triggers of Mass Wasting
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Removal of vegetation root systems that bind sediment
Forest fires, deforestation, development, farming
Earthquakes can dislodge rock and unconsolidated material
Many mass wasting events occur without an identifiable trigger
Controls and Triggers of Mass Wasting
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Controls and Triggers of Mass Wasting
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List the hydrosphere’s major reservoirs.
Describe the different paths that water takes through the hydrologic cycle.
Focus Questions 3.3
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Water moves between the ocean, atmosphere, and land via the hydrologic cycle
Hydrosphere is all of the reservoirs where water is held
Oceans
Glaciers
Rivers
Lakes
Air
Rock
Soil
Living tissues
The Hydrologic Cycle
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The Hydrologic Cycle
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96.5% of hydrosphere is the global ocean
1.76% is ice sheets and glaciers
~2% is lakes, streams, groundwater, and atmosphere
The Hydrologic Cycle
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Hydrologic cycle is powered by the Sun
Water enters atmosphere from the oceans via evaporation
Winds transport water through the atmosphere
Precipitation either falls to the ocean or continents
Precipitation to the oceans completes the hydrologic cycle
Precipitation to the continents must return to the ocean
The Hydrologic Cycle
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Some water soaks into the ground (infiltration)
Surplus water flows over the surface (runoff)
Water absorbed by plants is eventually released via transpiration
Evapotranspiration is the combined effects of evaporation and transpiration
Precipitation in cold regions becomes part of glaciers
Significant reservoirs: melting all glaciers would cause sea level rise of dozens of meters
The Hydrologic Cycle
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Hydrologic cycle is balanced
Average annual precipitation equals amount of water entering the atmosphere from evapotranspiration
Precipitation exceeds evaporation over land
Evaporation exceeds precipitation over oceans
The Hydrologic Cycle
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Describe the nature of drainage basins and river systems.
Focus Question 3.4
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Precipitation that forms runoff depends on:
Intensity and duration of rainfall
Amount of water already in the soil
Nature of the surface material
Slope of the land
Extent and type of vegetation
Running Water
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Runoff starts as unconfined thin sheets across hillslopes
Flow develops threads of current in tiny channels called rills
Rills converge to form gullies
Gullies converge to form streams and rivers that carry water from broad areas
Running Water
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Running Water
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Drainage basins (separated by divides) are the land area that contribute water to a river system
Divides vary in scale
Drainage Basins
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A river system carries water from an entire drainage basin
Includes three zones:
Sediment production (erosion dominant)
Where most water and sediment is derived
Headwater regions
Sediment transport
Transportation through the channel network occurs via trunk streams
Sediment deposition
Rivers slow when they enter a body of water; sediment accumulates forming a delta
River Systems
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River Systems
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Discuss streamflow and the factors that cause it to change.
Focus Question 3.5
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Water flow in slow-moving streams can be laminar
Moves in roughly straight-line paths parallel to stream channel
Most streamflow is turbulent
Water moves erratically in a swirling motion
Lifts sediment from streambed
Increasing flow velocity increases turbidity
Streamflow Characteristics
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Streamflow
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Flow velocity varies along a stream and through time
Flow velocity depends on:
Channel slope or gradient
Channel size and cross-sectional shape
Channel roughness
Amount of water flowing in the channel
Factors Affecting Flow Velocity
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Gradient is the vertical drop over a specified distance
Varies from stream to stream and over a single stream’s length
Steeper gradient provides more energy for flow
Shape, size, and roughness of channel affect the amount of friction between channel and water
Higher friction creates turbulence and slower flow
Discharge is the volume of water flowing past a certain point in a given unit of time (m3/s)
Intermittent streams only flow during wet periods
Ephemeral streams carry water after heavy rainfall
Factors Affecting Flow Velocity
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The cross-sectional view of a stream from headwaters to mouth is called longitudinal profile
Overall shape is concave curve with local irregularities
Gradient, sediment size, and channel roughness decreases from head to mouth
Discharge and channel size increases
Flow velocity increases
Changes from Upstream to Downstream
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Changes from Upstream to Downstream
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Changes from Upstream to Downstream
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Outline the ways in which streams erode, transport, and deposit sediment.
Focus Question 3.6
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Streams are an important erosional agent
The Work of Running Water
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Raindrops knock sediment particles loose
Flow of water in a stream can dislodge and lift particles from the channel
Erodes poorly consolidated material quickly
Can undercut banks
Hydraulic force can also cut bedrock
Enhanced by particles carried in water
Swirling pebbles can carve potholes in channel floors
Stream Erosion
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Stream Erosion
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Stream Erosion
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Streams transport sediment in three ways:
Dissolved load is material in solution
Delivered by groundwater
Not effected by velocity
Suspended load is material suspended in the water
Clay and silt particles
Larger particles can be moved during floods
Largest component of load
Bed load is material moving along the channel bed
Sand, gravel, large boulders
Only in motion intermittently
Smaller particles move via saltation
Larger particles roll or slide
Transportation of Sediment by Stream
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Transportation of Sediment by Streams
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Capacity is the maximum load of solid particles a stream can transport per unit time
Increases with discharge
Competence is a stream’s ability to transport particles based on size
Increases with flow velocity
Transportation of Sediment by Streams
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As flow decreases competence is reduced
Particles settle when flow reaches critical settling velocity for that particle size
Sorting separates particles of various sizes
Alluvium is material deposited by a stream
Deposition of Sediment by Streams
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Contrast bedrock and alluvial stream channels.
Distinguish between two types of alluvial channels.
Focus Questions 3.7
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Streamflow is confined to a channel
Two types of stream channels:
Bedrock channels are actively cut into solid rock
Alluvial channels are composed of unconsolidated sediment
Stream Channels
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Bedrock channels are cut into rock
Common in headwaters with steep gradient
Transport coarse particles
Alternate between gentle gradients (alluvium accumulates) and steep segments (bedrock is cut)
Rapids and waterfalls common
Channel pattern is controlled by underlying geologic structure
Often winding and irregular
Bedrock Channels
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Alluvial channels are composed of loosely consolidated sediment
Continually being eroded, transported, and redeposited
Shape is controlled by average sediment size, gradient, and discharge
Two common types
Meandering channels
Braided channels
Alluvial Channels
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Meandering channels have sweeping bends called meanders
High suspended load
Deep, smooth channels
Banks are resistant to erosion
Most erosion occurs on the outside of the meander, or the cut bank, where velocity is highest
Sediment is deposited along the inside of the meander where turbulence and velocity are low, forming point bars
Meanders migrate laterally and downstream
May form a cutoff and oxbow lake through narrow neck of land
Alluvial Channels
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Alluvial Channels
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Alluvial Channels
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Braided Channels are a complex network of converging and diverging channels
Form where most of stream load is coarse (sand and gravel) and discharge is variable
Wide and shallow (bank material erodes easily)
Common at the end of glaciers
Alluvial Channels
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Alluvial Channels
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Contrast narrow V-shaped valleys, broad valleys with floodplains, and valleys that display incised meanders.
Focus Question 3.8
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A stream valley is the channel and surrounding terrain that contributes water to the stream
Includes valley bottom and sloping walls
Top is generally broader than channel width because of mass wasting
Divided into two general types:
Narrow, V-shaped valleys
Wide valleys with flat floors
Shaping Stream Valleys
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Base level is the lower limit to how deep a stream can erode
Usually occurs where a stream enters another body of water
Velocity and ability to erode are greatly reduced
Sea level is the ultimate base level
Temporary or local base level includes lakes, resistant rock layers, main streams, etc.
Change in base level causes readjustment of stream
Base Level and Stream Erosion
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Base Level and Stream Erosion
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Downcutting is dominant when gradient is steep and channel is above base level
Abrasion and hydraulic power
Produces V-shaped valley with steep sides
Rapids and waterfalls common
Valley Deepening
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Valley Deepening
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Downward erosion becomes less dominant as channel reaches base level
Channel becomes meandering
Lateral erosion creates a broad, flat valley floor called a floodplain
Valley Widening
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Valley Widening
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Incised meanders flow in steep, narrow valleys
Meanders develop when stream is near base level, but base level falls and stream starts downcutting again
Sea level fall
Uplift
Stream terraces are the remnants of former floodplains
Form after river adjusts to relative drop in base level then floods again
Floodplain is produced at a level below the old one
Incised Meanders and Stream Terraces
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Incised Meanders and Stream Terraces
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Discuss the formation of deltas and natural levees.
Focus Question 3.9
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Streams transport sediment and deposit it downstream
Bars are deposits of sand and gravel
Temporary: material will eventually be carried to the ocean
Longer life span depositional features:
Deltas
Natural levees
Depositional Landforms
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Deltas form where streams enter still bodies of water
Flow decreases and sediment falls
Delta grows outward and gradient lessens
Channel chokes with sediment, divides, and moves to higher-gradient areas
Distributaries carry water and sediment away from main channel
Deltas
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Deltas
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Deltas
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Natural levees are built by successive floods on rivers in broad floodplains
Flow decreases when streams overflow
Coarse sediment deposited in thin strips parallel to channels
Fine sediment distributed across floodplain
Back swamps form because drainage is poor behind levees
Yazoo tributaries parallel the river until they can breach the levee
Natural Levees
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Natural Levees
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Discuss the causes of floods and some common flood control measures.
Focus Question 3.10
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Floods occur when stream discharge exceeds channel capacity
Among most common and most destructive natural hazards
Floods and Flood Control
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Most floods occur because of weather
Snowmelt, heavy rains over large regions
Flash floods
Limited geographic extent
Influenced by rainfall intensity, surface conditions, and topography
Common in urban areas (rapid runoff)
Failure of dams or artificial levees
Causes of Floods
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Causes of Floods
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Floods can be controlled by:
Artificial levees
Earthen mounds increase volume of water the channel can hold
Flood control dams
Store flood water and let it out slowly
Channelization
Artificial cutoffs shorten the stream and increase gradient and velocity
Nonstructural approaches may be more efficient
Flood Control
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Discuss the importance of groundwater.
Describe its distribution and movement.
Focus Questions 3.11
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Groundwater exists in tiny pore spaces between grains of soil and sediment plus narrow joints and fractures in bedrock
Groundwater: Water Beneath the Surface
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Groundwater is the largest reservoir of freshwater readily available to humans
Source of 40% of water
Drinking water for ~44% of population
40% of irrigation water
25% of water used in industry
Overuse can cause streamflow depletion, land subsidence, and increased pumping cost
The Importance of Groundwater
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The Importance of Groundwater
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Important erosional agent
Forms sinkholes and caves
Stabilizes streamflow
Groundwater’s Geologic Roles
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Comes from infiltration of rainfall into the ground
Amount is influenced by slope, surface material, intensity of rainfall, vegetation
Belt of soil moisture
Film of water on soil particles near the surface
Zone of saturation
All pore space is filled with water: groundwater
Upper limit is water table
Area above the water table is called the unsaturated zone
Distribution of Groundwater
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Distribution of Groundwater
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Water table is irregular
Subdued replica of the surface
Highest below hills
Contributing factors:
Groundwater moves slowly
Water “piles up” between stream valleys
Variations in rainfall
Changes in permeability of sediment
Water table falls during droughts
Distribution of Groundwater
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Porosity
Percentage of total volume of rock or sediment that consists of open pore space
Spaces between particles, joints, faults, dissolution cavities, vesicles
Depends on size and shape, packing, and sorting of grains
10–50% in sediment
Quantity of groundwater depends on porosity
Factors Influencing the Storage and Movement of Groundwater
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Factors Influencing the Storage and Movement of Groundwater
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Permeability
A material’s ability to transmit fluid
If spaces are too small, water can’t move through
Aquitards
Impermeable clay layers that prevent water movement
Aquifers
Rock or sediment that water moves through easily
Factors Influencing the Storage and Movement of Groundwater
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Groundwater moves slowly from pore to pore
Typical rate is a few cm/day
Moves from high water table to low water table because of gravity
Usually towards a stream channel, lake, or spring
Pressure increases with depth in zone of saturation
Groundwater Movement
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Groundwater Movement
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Compare and contrast springs, wells, and artesian systems.
Focus Question 3.12
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A spring is a natural outflow of groundwater
Occurs where the water table intersects Earth’s surface
Aquitard prevents downward movement of water
A perched water table is a localized zone of saturation above an aquitard
Springs
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Springs
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A well is a hole drilled into the zone of saturation to remove groundwater
Drawdown is the lowering of a water table when water is withdrawn
Decreases with increasing distance from the well
Creates a cone of depression
Wells
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Wells
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An artesian system
Free flowing groundwater from an outlet far above the water table
A confined water table
The aquifer is inclined
Aquitards border above and below an aquifer
Increased pressure in a confined water table causes water to rise and create an artesian system
Artesian Systems
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Springs, Wells, and Artesian Systems
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Springs, Wells, and Artesian Systems
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List and discuss three important environmental problems associated with groundwater.
Focus Question 3.13
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Overuse threatens groundwater supply
Excessive groundwater withdrawal causes land surface to sink
Contamination
Environmental Problems of Groundwater
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Groundwater system is at equilibrium
Imbalance raises or lowers water table
Long-term drop can occur with a prolonged drought of an increase in discharge or withdrawal
Depletion of groundwater can be sever in regions of intense irrigation
Treating Groundwater as a Nonrenewable Resource
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Treating Groundwater as a Nonrenewable Resource
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Ground subsidence occurs when water is removed faster than it is replenished
Pronounced in areas underlain by thick layers of loose sediments
Land Subsidence Caused by Groundwater Withdrawal
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Common sources of contamination include septic tanks, sewer systems, and farm wastes
Purification by natural processes can occur with correct aquifer composition
Sand or permeable sandstone
Once pollution is identified water supply can be abandoned or treated
Groundwater Contamination
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Groundwater Contamination
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Groundwater Contamination
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Explain the formation of caverns and the development of karst topography.
Focus Question 3.14
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Most groundwater contains carbonic acid
CO2 dissolved from air and decaying plants
Dissolves limestone
Forms caverns, sinkholes, and karst landscapes
The Geologic Work of Groundwater
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Caverns form due to the erosional work of groundwater
Created in the zone of saturation
Dissolved load is discharged into streams
Decorated by calcium carbonate deposits
Form when cavern is above water table
Stalactites hang from the ceiling
Stalagmites develop upward from the floor
Caverns
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Caverns
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Karst topography results from groundwater dissolution
Common in Kentucky, Tennessee, Alabama, Indiana, and Florida
Not enough groundwater in arid or semiarid regions
Karst Topography
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The Geologic Work of Groundwater
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Sinkholes, or sinks, are depressions where limestone has been dissolved
Tower karst landscapes have isolated, steep-sided hills
The Geologic Work of Groundwater
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The Geologic Work of Groundwater
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