Teaching Activities
Earth education activities from across all of the sites within the Teach the Earth portal.
Grade Level Show all
High School (9-12)
51 matchesResource Type: Activities
Subject Show all
- Geodesy 18 matches
- Geodynamics 1 match
- Magnetism/Paleomag 1 match
- Seismology 19 matches
Geoscience > Geology > Geophysics
14 matches General/OtherProject Show all
- Cutting Edge 16 matches
- Earth Exploration Toolbook 5 matches
- EarthScope ANGLE 17 matches
- IODP School of Rock 2020 8 matches
- NAGT 1 match
- Pedagogy in Action 1 match
- Starting Point-Teaching Entry Level Geoscience 1 match
- Teach the Earth 2 matches
Results 1 - 10 of 51 matches
Detecting Cascadia's changing shape with GPS | Lessons on Plate Tectonics part of Geodesy:Activities
Shelley E Olds, EarthScope Consortium
Research-grade Global Positioning Systems (GPS) allow students to deduce that Earth's crust is changing shape in measurable ways. From data gathered by EarthScope's Plate Boundary Observatory, students discover that the Pacific Northwest of the United States and coastal British Columbia — the Cascadia region - are geologically active: tectonic plates move and collide; they shift and buckle; continental crust deforms; regions warp; rocks crumple, bend, and will break.
Resource Type: Activities: Activities, Lab Activity, Classroom Activity
Subject: Geoscience, Geology:Tectonics, Geophysics:Geodesy, Environmental Science:Natural Hazards, Natural Hazards:Earthquakes
Activity Review: Peer Reviewed as Exemplary
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Let's Look Inside the Earth part of Teaching Activities
David Zelenka
Students will analyze USGS seismology data in the classroom using spreadsheets and scatter plots to look for patterns and structure in the Earth's crust. Before analyzing data, students will learn about the ...
Resource Type: Activities: Activities:Classroom Activity
Subject: Geoscience:Geology:Geomorphology:Landforms/Processes:Volcanoes, Geoscience:Geology:Geophysics:Seismology, Geoscience:Geology:Tectonics, Environmental Science:Natural Hazards:Volcanism, Earthquakes
Activity Review: Peer Reviewed as Exemplary
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Measuring Plate Motion with GPS: Iceland | Lessons on Plate Tectonics part of Geodesy:Activities
Shelley E Olds, EarthScope Consortium
This lesson teaches middle and high school students to understand the architecture of GPS—from satellites to research quality stations on the ground. This is done with physical models and a presentation. Then students learn to interpret data for the station's position through time ("time series plots"). Students represent time series data as velocity vectors and add the vectors to create a total horizontal velocity vector. They apply their skills to discover that the Mid-Atlantic Ridge is rifting Iceland. They cement and expand their understanding of GPS data with an abstraction using cars and maps. Finally, they explore GPS vectors in the context of global plate tectonics.
Resource Type: Activities: Activities:Classroom Activity, Activities, Lab Activity
Subject: Geoscience:Geology:Geophysics:Geodesy, Environmental Science:Natural Hazards, Geoscience:Geology:Tectonics, Geoscience
Activity Review: Peer Reviewed as Exemplary
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Converging Tectonic Plates Demonstration part of Geodesy:Activities
Shelley E Olds, EarthScope Consortium
During this demo, participants use springs and a map of the Pacific Northwest with GPS vectors to investigate the stresses and surface expression of subduction zones, specifically the Juan de Fuca plate diving beneath the North American plate.
Resource Type: Activities: Activities:Classroom Activity, Activities, Outreach Activity, Lab Activity
Subject: Geoscience:Geology:Tectonics, Geophysics:Geodesy, Environmental Science:Natural Hazards, Geography:Geospatial, Environmental Science:Natural Hazards:Earthquakes
Activity Review: Peer Reviewed as Exemplary
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Measuring the Inclination and Declination of the Earth's magnetic field with a smartphone part of Cutting Edge:Enhance Your Teaching:Teaching with Online Field Experiences:Activities
Avradip Ghosh, University of Houston-University Park
The poles of the Earth's magnetic field are not precisely aligned with the geographic north and south poles and, in fact, vary continuously. This activity introduces to students the Earth's magnetic ...
Online Readiness: Online Ready
Resource Type: Activities: Activities:Virtual Field Trip, Classroom Activity, Field Activity, Project, Lab Activity
Subject: Geoscience:Geology:Geophysics:Magnetism/Paleomag
Activity Review: Peer Reviewed as Exemplary
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Measuring Ground Motion with GPS: How GPS Works part of Geodesy:Activities
Shelley E Olds, EarthScope Consortium
With printouts of typical GPS velocity vectors found near different tectonic boundaries and models of a GPS station, demonstrate how GPS work to measure ground motion.GPS velocity vectors point in the direction that a GPS station moves as the ground it is anchored to moves. The length of a velocity vector corresponds to the rate of motion. GPS velocity vectors thus provide useful information for how Earth's crust deforms in different tectonic settings.
Resource Type: Activities: Activities, Classroom Activity, Outreach Activity, Lab Activity
Subject: Geography:Geospatial, Geoscience:Geology:Tectonics, Geophysics:Geodesy
Activity Review: Peer Reviewed as Exemplary
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Visualizing Relationships with Data: Exploring plate boundaries with Earthquakes, Volcanoes, and GPS Data in the Western U.S. & Alaska | Lessons on Plate Tectonics part of Geodesy:Activities
Shelley E Olds, EarthScope Consortium
Learners use the GPS Velocity Viewer, or the included map packet to visualize relationships between earthquakes, volcanoes, and plate boundaries as a jigsaw activity.
Resource Type: Activities: Activities, Lab Activity, Classroom Activity
Subject: Geoscience, Geology:Tectonics, Geophysics:Geodesy, Environmental Science:Natural Hazards, Natural Hazards:Earthquakes
Activity Review: Peer Reviewed as Exemplary
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Exploring Tectonic Motions with GPS part of EarthScope ANGLE:Educational Materials:Activities
Shelley E Olds, EarthScope Consortium
Learners study plate tectonic motions by analyzing Global Positioning System (GPS) data, represented as vectors on a map. By observing changes in vector lengths and directions, learners interpret whether regions are compressing, extending, or sliding past each other. To synthesize their findings, learners identify locations most likely to have earthquakes, and defend their choices by providing evidence based on the tectonic motions from the GPS vector and seismic hazards maps. Show more information on NGSS alignment Hide NGSS ALIGNMENT Disciplinary Core Ideas History of Earth: HS-ESS1-5 Earth' Systems: MS-ESS2-2 Earth and Human Activity: MS-ESS3-2, HS-ESS3-1 Science and Engineering Practices 4. Analyzing and Interpreting Data 5. Using Mathematics and Computational Thinking 6. Constructing Explanations and Designing Solutions Crosscutting Concepts 4. Systems and System Models 7. Stability and Change
Resource Type: Activities: Activities:Classroom Activity, Lab Activity
Subject: Geoscience:Geology:Geophysics:Geodesy, Environmental Science:Natural Hazards, Geoscience:Geology:Tectonics, Environmental Science:Natural Hazards:Earthquakes
Activity Review: Peer Reviewed as Exemplary
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Volcano Monitoring with GPS: Westdahl Volcano Alaska part of EarthScope ANGLE:Educational Materials:Activities
Maite Agopian, EarthScope; Beth Pratt-Sitaula, EarthScope
Learners use graphs of GPS position data to determine how the shape of Westdahl Volcano, Alaska is changing. If the flanks of a volcano swell or recede, it is a potential indication of magma movement and changing ...
Online Readiness: Online Adaptable
Resource Type: Activities: Activities:Classroom Activity, Lab Activity, Outreach Activity
Subject: Geoscience:Geology:Geophysics:Geodesy, Environmental Science:Natural Hazards:Volcanism, Environmental Science:Natural Hazards, Engineering
Activity Review: Peer Reviewed as Exemplary
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Earthquake Hazard Maps & Liquefaction: Alaska emphasis part of EarthScope ANGLE:Educational Materials:Activities
TOTLE (Teachers on the Leading Edge), CEETEP (Cascadia EarthScope Earthquake and Tsunami Education Program), EarthScope ANGLE, and ShakeAlert projects
Ground shaking is the primary cause of earthquake damage to man-made structures. This exercise combines three related activities on the topic of shaking-induced ground instability: a ground shaking amplification demonstration, a seismic landslides demonstration, and a liquefaction experiment. The amplitude of ground shaking is affected by the type of near-surface rocks and soil. Earthquake ground shaking can cause even gently sloping areas to slide when those same areas would be stable under normal conditions. Liquefaction is a phenomenon where water-saturated sand and silt take on the characteristics of a dense liquid during the intense ground shaking of an earthquake and deform. Includes Alaska and San Francisco examples.
Online Readiness: Designed for In-Person
Resource Type: Activities: Activities:Lab Activity, Outreach Activity, Classroom Activity
Subject: Geoscience:Geology:Geophysics:Seismology, Environmental Science:Natural Hazards:Mass Wasting, Earthquakes, Geoscience, Environmental Science:Natural Hazards, Engineering
Activity Review: Peer Reviewed as Exemplary
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