Unit 2: Geotectonics - Subjective Questions
GEO101 — Geomorphology • Practice Questions with Detailed Answers
20 questions
Define isostasy and explain its significance in geomorphology.
Isostasy is the state of gravitational equilibrium in which the rigid lithosphere floats on the denser, semi-fluid asthenosphere beneath it. It is comparable to the floating of ice in water.
- High mountain ranges are generally supported by deep crustal roots.
- Low-lying regions and ocean basins have thinner or denser crust.
- Isostatic equilibrium explains variations in the elevation of Earth's surface.
- It is important in understanding mountain building, subsidence, uplift, erosion, and deposition.
- When erosion removes material from a region, the crust may rise; when sediments accumulate, the crust may sink.
Describe the two major theories of isostatic adjustment: the Airy model and the Pratt model.
The two classical models of isostasy are:
- Airy model: This model assumes that the density of the crust is uniform but its thickness varies. Mountains have thick crustal roots extending into the denser mantle, while oceanic regions have thinner crust.
- Pratt model: This model assumes that the depth of compensation is uniform, but the density of crustal columns varies. High topography is composed of less dense material, whereas low areas consist of denser material.
Both models propose that columns of the lithosphere exert approximately equal pressure at a common depth of compensation. The Airy model is particularly useful for explaining mountain roots, while the Pratt model helps explain elevation differences caused by lateral density variations.
Explain the process of isostatic rebound with suitable examples.
Isostatic rebound is the upward movement of Earth's crust after the removal of a heavy load.
- During an ice age, thick ice sheets depress the crust because of their enormous weight.
- When the ice melts, the load is removed.
- The asthenosphere gradually pushes the crust upward toward a new equilibrium position.
- This uplift may continue for thousands of years after deglaciation.
Examples include the continuing uplift of Scandinavia and parts of Canada following the melting of Pleistocene ice sheets. Isostatic rebound can alter coastlines, river gradients, drainage patterns, and local sea-level relationships.
Discuss the relationship between erosion, deposition, and isostatic equilibrium.
Erosion and deposition influence isostatic equilibrium by changing the load acting on the lithosphere.
- Erosion: Removal of rock from mountains reduces the load on the crust and may cause isostatic uplift. This uplift can expose deeper rocks and maintain high relief for long periods.
- Deposition: Accumulation of sediments in river valleys, deltas, continental shelves, or ocean basins increases the load and may cause crustal subsidence.
- Compensation: The crust responds to these changes in an attempt to regain equilibrium.
Thus, erosion can promote uplift, while deposition can promote subsidence. These processes form a feedback relationship that influences long-term landscape evolution.
Explain the concept of continental drift proposed by Alfred Wegener.
The theory of continental drift, proposed by Alfred Wegener, states that the continents were once united into a single supercontinent called Pangaea. Pangaea later fragmented, and its continental parts gradually moved to their present positions.
Wegener suggested that:
- Pangaea was surrounded by a large ocean called Panthalassa.
- The continents moved slowly across the oceanic crust.
- Present-day continents were formerly connected and continue to move.
Although Wegener could not provide a satisfactory mechanism for continental movement, his theory introduced the important idea that Earth's continents are mobile rather than fixed.
Examine the major evidence supporting the theory of continental drift.
Important evidence for continental drift includes:
- Jigsaw fit: The coastlines of South America and Africa appear to fit together, especially when continental shelves are considered.
- Fossil evidence: Identical fossils, such as Mesosaurus, Glossopteris, and Lystrosaurus, occur on continents now separated by oceans.
- Geological evidence: Rock sequences and mountain belts on opposite sides of the Atlantic show strong similarities.
- Paleoclimatic evidence: Glacial deposits in present-day tropical regions and coal deposits in areas now located near the poles indicate major climatic shifts caused by continental movement.
- Biogeographical evidence: Similar plant and animal distributions on widely separated continents suggest that those landmasses were once connected.
Together, these observations strongly support former continental unity and subsequent separation.
Why was Wegener's continental drift theory initially rejected by many scientists?
Wegener's theory was initially rejected mainly because it lacked a convincing mechanism for continental movement.
- He proposed that continents moved through the oceanic crust, but the forces he suggested, including centrifugal force and tidal drag, were too weak.
- He did not adequately explain how strong continental rocks could plough through the denser oceanic crust.
- Accurate measurements of continental motion were not available at that time.
- The structure and dynamic nature of the ocean floor were poorly understood.
Later discoveries about seafloor spreading, paleomagnetism, and mantle convection provided the mechanism and evidence needed to develop the modern theory of plate tectonics.
Define plate tectonics and describe the nature of lithospheric plates.
Plate tectonics is the theory that Earth's rigid lithosphere is divided into large and small plates that move over the weaker asthenosphere.
- A plate may consist of oceanic lithosphere, continental lithosphere, or both.
- Plates behave as relatively rigid units, although they may deform at their boundaries.
- Their movement is generally measured in centimeters per year.
- Plate boundaries are zones of intense geological activity, including earthquakes, volcanism, folding, faulting, and mountain building.
- The major driving forces include slab pull, ridge push, mantle convection, and gravitational sliding.
The theory provides a unified explanation for continental movement, seafloor spreading, earthquakes, volcanoes, and the formation of major landforms.
Distinguish between the three major types of plate boundaries.
The three major types of plate boundaries are:
- Divergent boundaries: Plates move apart. Magma rises to fill the opening, producing new crust. Mid-ocean ridges and continental rift valleys are typical features.
- Convergent boundaries: Plates move toward each other. One plate may subduct beneath another, or two continental plates may collide. Trenches, volcanic arcs, and fold mountains are common features.
- Transform boundaries: Plates slide horizontally past one another. Crust is neither created nor destroyed, but earthquakes are frequent along these boundaries.
The nature of the geological activity depends on whether the boundary involves oceanic or continental lithosphere.
Explain the process of seafloor spreading and its role in plate tectonics.
Seafloor spreading occurs mainly at mid-ocean ridges.
- Magma rises from the asthenosphere through fractures in the oceanic lithosphere.
- It cools and solidifies to form new basaltic oceanic crust.
- Newly formed crust moves away from the ridge as additional magma rises.
- The ocean floor therefore becomes progressively older with increasing distance from the ridge.
- At deep ocean trenches, old oceanic crust is recycled into the mantle through subduction.
Seafloor spreading explains how oceans expand and provides a mechanism for the movement of lithospheric plates. It also supplied strong evidence for continental drift and plate tectonics.
Describe the paleomagnetic evidence for seafloor spreading.
Paleomagnetic evidence comes from the magnetic minerals preserved in basaltic rocks on the ocean floor.
- As basalt cools, iron-bearing minerals align with Earth's magnetic field.
- Earth's magnetic field has reversed polarity several times in geological history.
- These reversals are recorded as alternating bands of normal and reversed magnetism.
- The magnetic bands occur symmetrically on both sides of mid-ocean ridges.
- The symmetry indicates that new crust forms at the ridge and moves outward in both directions.
This pattern provides a strong record of seafloor spreading and confirms that oceanic plates are continuously created at divergent boundaries.
Explain the formation of landforms at oceanic-continental convergent boundaries.
At an oceanic-continental convergent boundary, the denser oceanic plate is forced beneath the lighter continental plate in a process called subduction.
- A deep ocean trench forms near the plate boundary.
- The descending slab releases water into the overlying mantle.
- Water lowers the melting point of mantle rocks and promotes magma generation.
- Magma rises through the continental crust and may produce a chain of volcanoes.
- Compression and deformation create coastal mountain ranges.
- Strong earthquakes occur along the subduction zone.
The Andes Mountains and the Peru-Chile Trench are examples of landforms associated with this type of boundary.
Discuss the geological results of oceanic-oceanic plate convergence.
When two oceanic plates converge, the older and colder plate usually subducts beneath the younger, less dense plate.
- A deep-sea trench forms at the subduction zone.
- Water released from the descending slab causes partial melting in the mantle wedge.
- Magma rises and produces volcanoes on the overriding plate.
- A curved chain of volcanic islands, called an island arc, develops.
- Earthquakes occur at shallow, intermediate, and deep levels along the subducting slab.
- Tsunamis may result from sudden displacement of the seafloor.
Examples include the Japanese island arc and the Aleutian island arc.
Explain the formation of fold mountains at continental-continental convergent boundaries.
Continental-continental convergence occurs when an ocean separating two continents is consumed by subduction and the continents eventually collide.
- Continental crust is relatively light and resistant to subduction.
- The colliding margins experience intense compression.
- Sediments and crustal rocks are folded, faulted, and uplifted.
- Thickened crust develops beneath the mountain belt.
- Large fold mountains form without a major volcanic arc.
The Himalayas are a classic example, formed by the collision of the Indian Plate with the Eurasian Plate. Earthquakes are common because convergence continues today.
Describe transform plate boundaries and explain their geomorphic significance.
At a transform boundary, two plates move laterally past one another, generally along a strike-slip fault.
- Crust is neither created nor destroyed.
- Friction may temporarily lock the plates.
- Stress accumulates until it is released suddenly as an earthquake.
- Linear valleys, offset streams, shutter ridges, sag ponds, and fault scarps may develop.
- Transform faults commonly connect segments of mid-ocean ridges.
The San Andreas Fault in California is a well-known continental transform boundary. Transform margins are especially significant because they generate destructive earthquakes without necessarily producing volcanoes.
Explain the major forces responsible for the movement of tectonic plates.
Several forces contribute to plate movement:
- Slab pull: A cold, dense oceanic slab sinks into the mantle at a subduction zone and pulls the rest of the plate behind it.
- Ridge push: Elevated mid-ocean ridges create a gravitational force that moves lithosphere away from the ridge.
- Mantle convection: Heat-driven movement within the mantle may transfer drag to the overlying plates.
- Basal drag: Flow in the asthenosphere can exert frictional forces on the base of a plate.
- Gravitational sliding: Plates may slide from elevated ridge systems toward lower areas.
Modern explanations generally regard slab pull as one of the most effective driving forces, although plate motion results from the combined action of several mechanisms.
Compare continental drift and plate tectonics.
Continental drift and plate tectonics are related but not identical concepts.
- Continental drift: Proposed that continents move across Earth's surface and were once joined in a supercontinent. It emphasized the movement of continents but did not adequately explain the mechanism.
- Plate tectonics: States that the lithosphere is divided into moving plates. Continents move as parts of these plates, while oceanic crust is created and destroyed at plate boundaries.
- Continental drift was supported by matching coastlines, fossils, rocks, and paleoclimatic evidence.
- Plate tectonics incorporated these observations with evidence from seafloor spreading, magnetic reversals, earthquake patterns, and mantle processes.
Thus, plate tectonics is a broader and more complete theory that provides the mechanism missing from Wegener's original proposal.
Explain how plate tectonics accounts for the global distribution of earthquakes and volcanoes.
Earthquakes and volcanoes are concentrated mainly along plate boundaries because plate interactions produce stress, fracturing, melting, and crustal deformation.
- Divergent boundaries: Upwelling magma causes shallow earthquakes and volcanic activity along mid-ocean ridges and rift zones.
- Convergent boundaries: Subduction produces powerful earthquakes and volcanic arcs. Earthquakes may occur from shallow to great depths along the descending slab.
- Transform boundaries: Sudden release of accumulated shear stress produces frequent earthquakes, but volcanism is generally limited.
- Intraplate activity: A small amount of volcanism may occur above mantle plumes or along ancient zones of weakness.
The circum-Pacific belt, known as the Ring of Fire, illustrates the close relationship between subduction, earthquakes, and volcanism.
Describe the Wilson cycle and its significance in understanding the opening and closing of oceans.
The Wilson cycle describes the repeated opening and closing of ocean basins through tectonic processes.
- A continent first develops a rift due to extensional forces.
- Continued rifting produces a narrow sea and then a mature ocean basin with a mid-ocean ridge.
- Subduction eventually begins at one or more margins.
- The ocean basin becomes narrower as oceanic crust is consumed.
- Continued convergence causes continental collision and mountain building.
- The resulting mountains may later undergo erosion and renewed rifting.
The cycle links continental breakup, seafloor spreading, subduction, ocean closure, and continental collision into a long-term model of plate motion.
Explain how isostasy and plate tectonics together influence the development of major landforms.
Isostasy and plate tectonics operate together in shaping Earth's major landforms.
- Plate convergence produces crustal thickening, folding, faulting, and mountain building.
- The thickened continental crust develops deep roots that support high mountains through isostasy.
- Erosion removes material from mountains, causing isostatic uplift and prolonging relief.
- Extension at divergent boundaries produces rift valleys and ocean basins.
- Subduction creates trenches, volcanic arcs, and mountain belts.
- Sediment accumulation in basins increases loading and may cause isostatic subsidence.
Plate tectonics supplies the large-scale forces that create relief, while isostatic adjustment controls how the crust responds to changes in loading and elevation.
Define isostasy and explain its significance in geomorphology.
Isostasy is the state of gravitational equilibrium in which the rigid lithosphere floats on the denser, semi-fluid asthenosphere beneath it. It is comparable to the floating of ice in water.
- High mountain ranges are generally supported by deep crustal roots.
- Low-lying regions and ocean basins have thinner or denser crust.
- Isostatic equilibrium explains variations in the elevation of Earth's surface.
- It is important in understanding mountain building, subsidence, uplift, erosion, and deposition.
- When erosion removes material from a region, the crust may rise; when sediments accumulate, the crust may sink.
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