What this quiz covers
This quiz focuses on Geologic Maps And Cross Sections, giving you a quick way to practice the rules, question types, and explanations that matter most for Earth Science.
A sequence of sedimentary beds has a true dip of 50°. A geologist makes a vertical cross-section along a line that is not perpendicular to the strike of the beds. How will the dip angle measured on this cross-section, known as the apparent dip, compare to the true dip?
Earth Science Quiz
Practice Geologic Maps And Cross Sections in Earth 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 Geologic Maps And Cross Sections, giving you a quick way to practice the rules, question types, and explanations that matter most for Earth 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.
A sequence of sedimentary beds has a true dip of 50°. A geologist makes a vertical cross-section along a line that is not perpendicular to the strike of the beds. How will the dip angle measured on this cross-section, known as the apparent dip, compare to the true dip?
Explanation: True dip is the maximum angle of inclination of a geologic plane, measured in a vertical plane that is perpendicular to the strike. Any vertical cross-section taken at an angle oblique to the strike will intersect the plane at a shallower angle. This measured angle is the apparent dip, which is always less than or equal to the true dip. It is only equal if the cross-section is perpendicular to strike.
A geologic map shows a circular outcrop pattern. The central rock unit is Jurassic in age, surrounded by a ring of Cretaceous rocks, which is in turn surrounded by a ring of Paleogene rocks. Which structure is represented and how do the rock layers dip?
Explanation: The key to identifying domes and basins is the age of the rocks at the center. In this case, the oldest rocks (Jurassic) are in the center, and the rocks get progressively younger outwards (Cretaceous, then Paleogene). This age pattern defines a structural dome. In a dome, the rock layers dip away from the central point of uplift.
A drilling operation in an area of thrust faulting encounters the following rock sequence from the surface down: Shale, Sandstone, Limestone, then Shale, Sandstone, and finally Granite basement. What is the most likely geologic explanation for the repetition of the Shale and Sandstone units?
Explanation: Thrust faulting involves a low-angle reverse fault pushing an older sheet of rock (the hanging wall) over a younger sheet (the footwall). When a well is drilled through the top sheet, it encounters a certain sequence of rocks. After passing through the fault plane into the sheet below, it may encounter the same rock units again, but as part of the younger, lower sequence. This repetition of stratigraphy is a classic sign of drilling through a thrust fault.
A geologic contact on a map crosses a river that is flowing south down a valley. The contact forms a 'V' shape that also points south (downstream). What is the only possible orientation for the contact?
Explanation: This is a more complex application of the 'Rule of Vs.' While a contact dipping opposite to the stream flow creates a V pointing downstream, a V can also point downstream if the contact dips in the SAME direction as the stream. This happens only when the dip of the contact is less steep (gentler) than the gradient of the valley floor. In this case, the topography is incising downward faster than the geologic layer is dipping, creating a V that points downstream.
On a geologic map of a region with no topographic relief, a sandstone layer strikes due north and dips 30° to the east. The outcrop of this layer on the map is 200 meters wide. What is the true stratigraphic thickness of the sandstone layer?
Explanation: The relationship between outcrop width (W), true thickness (T), and dip angle (θ) on flat ground is given by the trigonometric formula T = W * sin(θ). Here, W = 200 meters and θ = 30°. Therefore, T = 200 m * sin(30°). Since sin(30°) = 0.5, the true thickness is 200 m * 0.5 = 100 m.
A geologist is mapping a contact between a shale and a sandstone formation. On the map, the contact perfectly follows the 500-meter topographic contour line for several kilometers. What can be concluded about the orientation of this contact?
Explanation: A topographic contour line connects points of equal elevation. A geologic contact represents a surface. If the trace of a geologic surface on a map is parallel to contour lines, it means that the surface itself has a constant elevation. A geologic surface with a constant elevation is, by definition, horizontal.
A geologic contact on a map crosses a river that is flowing south down a valley. The contact forms a 'V' shape that also points south (downstream). What is the only possible orientation for the contact?
Explanation: This is a more complex application of the 'Rule of Vs.' While a contact dipping opposite to the stream flow creates a V pointing downstream, a V can also point downstream if the contact dips in the SAME direction as the stream. This happens only when the dip of the contact is less steep (gentler) than the gradient of the valley floor. In this case, the topography is incising downward faster than the geologic layer is dipping, creating a V that points downstream.
On a geologic map, the contact between a sandstone and an underlying shale strikes perfectly North-South. At Point A, the contact is at an elevation of 400 m. At Point B, located 100 m due east of Point A, the contact is at an elevation of 350 m. What is the approximate dip of the contact?
Explanation: The dip angle can be calculated using trigonometry. We have a right triangle where the horizontal distance perpendicular to strike is the adjacent side (100 m) and the vertical change in elevation is the opposite side (400 m - 350 m = 50 m). The tangent of the dip angle (θ) is the ratio of the opposite side to the adjacent side. So, tan(θ) = 50 m / 100 m = 0.5. To find the angle, we take the arctangent: θ = arctan(0.5) ≈ 26.6°, which is approximately 27°.
A geologic map shows a circular outcrop pattern. The central rock unit is Jurassic in age, surrounded by a ring of Cretaceous rocks, which is in turn surrounded by a ring of Paleogene rocks. Which structure is represented and how do the rock layers dip?
Explanation: The key to identifying domes and basins is the age of the rocks at the center. In this case, the oldest rocks (Jurassic) are in the center, and the rocks get progressively younger outwards (Cretaceous, then Paleogene). This age pattern defines a structural dome. In a dome, the rock layers dip away from the central point of uplift.
A geologist is mapping a contact between a shale and a sandstone formation. On the map, the contact perfectly follows the 500-meter topographic contour line for several kilometers. What can be concluded about the orientation of this contact?
Explanation: A topographic contour line connects points of equal elevation. A geologic contact represents a surface. If the trace of a geologic surface on a map is parallel to contour lines, it means that the surface itself has a constant elevation. A geologic surface with a constant elevation is, by definition, horizontal.
On a geologic map, the contact between a sandstone and an underlying shale strikes perfectly North-South. At Point A, the contact is at an elevation of 400 m. At Point B, located 100 m due east of Point A, the contact is at an elevation of 350 m. What is the approximate dip of the contact?
Explanation: The dip angle can be calculated using trigonometry. We have a right triangle where the horizontal distance perpendicular to strike is the adjacent side (100 m) and the vertical change in elevation is the opposite side (400 m - 350 m = 50 m). The tangent of the dip angle (θ) is the ratio of the opposite side to the adjacent side. So, tan(θ) = 50 m / 100 m = 0.5. To find the angle, we take the arctangent: θ = arctan(0.5) ≈ 26.6°, which is approximately 27°.
On a geologic map of a region with no topographic relief, a sandstone layer strikes due north and dips 30° to the east. The outcrop of this layer on the map is 200 meters wide. What is the true stratigraphic thickness of the sandstone layer?
Explanation: The relationship between outcrop width (W), true thickness (T), and dip angle (θ) on flat ground is given by the trigonometric formula T = W * sin(θ). Here, W = 200 meters and θ = 30°. Therefore, T = 200 m * sin(30°). Since sin(30°) = 0.5, the true thickness is 200 m * 0.5 = 100 m.
A drilling operation in an area of thrust faulting encounters the following rock sequence from the surface down: Shale, Sandstone, Limestone, then Shale, Sandstone, and finally Granite basement. What is the most likely geologic explanation for the repetition of the Shale and Sandstone units?
Explanation: Thrust faulting involves a low-angle reverse fault pushing an older sheet of rock (the hanging wall) over a younger sheet (the footwall). When a well is drilled through the top sheet, it encounters a certain sequence of rocks. After passing through the fault plane into the sheet below, it may encounter the same rock units again, but as part of the younger, lower sequence. This repetition of stratigraphy is a classic sign of drilling through a thrust fault.
A sequence of sedimentary beds has a true dip of 50°. A geologist makes a vertical cross-section along a line that is not perpendicular to the strike of the beds. How will the dip angle measured on this cross-section, known as the apparent dip, compare to the true dip?
Explanation: True dip is the maximum angle of inclination of a geologic plane, measured in a vertical plane that is perpendicular to the strike. Any vertical cross-section taken at an angle oblique to the strike will intersect the plane at a shallower angle. This measured angle is the apparent dip, which is always less than or equal to the true dip. It is only equal if the cross-section is perpendicular to strike.
The geologic cross-section below illustrates an angular unconformity. Which sequence of events most accurately describes the geologic history that formed this feature?
Explanation: The formation of an angular unconformity requires a specific sequence. First, the lower sedimentary layers were deposited horizontally (Principle of Original Horizontality). Second, these layers were subjected to tectonic forces that caused them to tilt, and were uplifted. Third, the tilted layers were eroded, creating a flat surface. Fourth, the area subsided, and the upper horizontal layers were deposited on top of the erosion surface.
The geologic map shows several strike and dip measurements taken across a region. What large-scale geologic structure is best represented by this pattern of measurements?
Explanation: The strike and dip symbols indicate the three-dimensional orientation of the rock layers. In the northern part of the map, the beds strike east-west and dip to the south. In the southern part, the beds strike east-west and dip to the north. This indicates the beds are dipping toward a central east-west axis, which defines a syncline. At the western edge, the strike lines curve around and the dip is to the east. This indicates the fold axis is plunging to the west.
Examine the geologic cross-section provided. A variety of geologic contacts are shown. What type of contact is present at location Z, between the granite and the overlying sandstone layer?
Explanation: Location Z is on the boundary between the underlying granite (an intrusive igneous rock) and the overlying sandstone (a sedimentary rock). This specific type of unconformity, where sedimentary rocks are deposited on top of eroded igneous or metamorphic rocks, is called a nonconformity. An intrusive contact would show the granite cutting into the sandstone, meaning the granite would be younger.
The cross-section shows a fault where the hanging wall (HW) has moved downward relative to the footwall (FW). This type of fault is characteristic of what type of stress regime?
Explanation: The fault shown, with the hanging wall moving down relative to the footwall, is a normal fault. Normal faults accommodate stretching or extension of the Earth's crust. This extension is caused by a tensional stress regime, where forces pull the crust apart.
The geologic map displays several rock units transected by a fault. By observing the displacement of the marker bed (sandstone), how would this fault be classified?
Explanation: To determine the motion on a strike-slip fault, imagine standing on one side of the fault and looking across to the other. In this map, if you stand on the western block and look east, the sandstone layer on the eastern block is displaced to the left. Conversely, standing on the eastern block and looking west, the sandstone on the western block is displaced to the left. This indicates left-lateral motion.
The provided geologic map shows a geologic contact crossing a river valley. The river flows from north to south. The contact forms a distinct 'V' shape pointing to the north. Based on the 'Rule of Vs,' what can be inferred about the orientation of the geologic contact?
Explanation: The 'Rule of Vs' states that when a dipping planar feature (like a geologic contact) crosses a valley, it forms a 'V' shape on the map. The 'V' points in the direction of dip, unless the bed is dipping upstream, in which case the V points downstream. In the common case where the V points upstream (as described here), the layer must be dipping downstream. Horizontal layers would create a V parallel to topographic contours, and vertical layers would form a straight line across the topography.