1 Cosmology and the Earth
2 Journey to the Center of the Earth
3 Drifting Continents and Spreading Seas
4 The Way the Earth Works: Plate Tectonics
5 Patterns in Nature: Minerals
6 Up from the Inferno: Magma and Igneous Rocks
7 A Surface Veneer: Sediments, Soils, and Sedimentary Rocks
8 Metamorphism: A Process of Change
9 The Wrath of Vulcan: Volcanic Eruptions
10 A Violent Pulse: Earthquakes
11 Crags, Cracks, and Crumples: Crustal Deformations and Mountain Building
12 Deep Time: How Old Is Old?
13 A Biography of Earth
14 Squeezing Power from a Stone: Energy Resources
15 Riches in Rock: Mineral Resources
16 Unsafe Ground: Landslides and Other Mass Movements
17 Streams and Floods: The Geology of Running Water
18 Restless Realm: Oceans and Coasts
19 A Hidden Reserve: Groundwater
20 An Envelope of Gas: Earth’s Atmosphere and Climate
21 Dry Regions: The Geology of Deserts
22 Amazing Ice: Glaciers and Ice Ages
23 Global Change in the Earth System
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Chapter 10: A Violent Pulse: Earthquakes

Guide to Reading

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The topic of this chapter, earthquakes, is often a favorite of readers. After all, quakes are dramatic events, potentially dangerous, and many people live in or visit areas where a quake might happen at any moment. Those who have experienced major quakes aren't always so fond of them. Many testify it's profoundly disturbing when the normally solid, dependable Earth shakes and crashes around you.

Nevertheless, with such widespread interest, everybody has a basic knowledge of earthquakes. But there's more to defining an earthquake than most people realize, and the chapter begins with more to say about the essentials (the what, why, how, where, and when of quakes) than you'd expect. There's seismicity, hypocenter (focus), epicenter, foreshocks, aftershocks, elastic rebound theory, and stick-slip behavior. Most significant quakes are caused by movement along faults, so you'll read about hanging walls, foot walls, normal faults, reverse faults, thrust faults, strike-slip faults, displacement, active faults, inactive faults, blind faults, and fault scarps and traces. Faults happen because rock is stressed, so stresses (compressive, tensile, and shear) and the strains and deformation they produce (elastic, brittle, and ductile) are examined.

Keeping track of seismic activity is a worldwide concern. You read about the instrument that detects and records quakes (the seismograph) and how to interpret the seismograms it produces (using arrival times and travel-time curves). Earthquakes come in all sizes, from too small to be detected by humans to real monsters. Measuring their sizes and strengths began with the use of few and comparatively simple scales (Mercalli for quake intensity, Richter for magnitude), but improved technology and increased understanding has led to the complex measurement of numerous aspects of seismic activity (local magnitude, ML; surface wave magnitude, MS; body wave magnitude,MB; and moment magnitude, MW).

When the question arises, "Why do quakes occur where they do," guess what the answer is? By now you shouldn't be surprised: plate tectonics. The information in this section isn't new; it's just presented in a way to point out the seismic connections.

The last part of the chapter deals with how quakes affect society. Types of damage from earthquakes vary. Naturally, there's ground shaking and displacement, and depending on the location, there can also be seiches, landslides, avalanches, liquefaction, fire, tsunamis, and even widespread disease.

What can people do about earthquakes? We can't stop them. We've had limited success in predicting them (short-term and long-term prediction, recurrence intervals, and seismic gaps). Earthquake zoning and engineering seem to be the best ways to protect human life and property. The chapter ends with a discussion of what society as a whole can do and what you as an individual can do to protect against quake dangers. It also reminds us that no matter what we do, plate tectonics will continue to shift the world and earthquakes will continue to shake it.

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