Structural Resonance
Definition
The amplification of building motion when earthquake wave frequency matches the building's natural frequency. Low-rise buildings resonate with high-frequency waves; tall buildings with low-frequency.
Example
The 1985 Mexico City earthquake selectively destroyed 6-15 story buildings due to resonance with the soft lake bed.
Related Terms
Related Guides
P-Waves and S-Waves: How Seismic Waves Travel
Learn how P-waves and S-waves travel through Earth, why P-waves arrive first, and how scientists use them to locate earthquakes.
Surface Waves: Love Waves and Rayleigh Waves Explained
Surface waves cause the most earthquake damage. Understand how Love waves and Rayleigh waves move and why they're so destructive.
How Long Do Earthquakes Last?
Most earthquakes last seconds, but great earthquakes can shake for minutes. Learn what determines duration and why it matters for damage.
How Buildings Respond to Earthquakes
Buildings sway, crack, and can collapse during earthquakes. Learn the engineering principles behind how structures respond to seismic forces.
Seismic Dampers: Shock Absorbers for Buildings
Seismic dampers absorb earthquake energy like giant shock absorbers. Learn how viscous, friction, and tuned mass dampers protect skyscrapers.
Skyscrapers and Earthquakes: Engineering Marvels
Skyscrapers use advanced engineering to withstand earthquakes. Learn how tall buildings resist seismic forces with dampers and flexible design.
The 1989 Loma Prieta Earthquake: The World Series Quake
The 1989 M6.9 Loma Prieta earthquake struck during the World Series, collapsing freeways and exposing soft-story building dangers.
Mexico's Earthquake Zones: Triple Junction Risk
Mexico City faces severe earthquake risk due to subduction zones and soft lake-bed soil amplification. Learn about SASMEX and seismic preparedness.
Earthquake Simulation Software: Engineering Tools
Engineers use earthquake simulation software to test building designs before construction. Learn about the tools that make buildings safer.
Related Case Studies
The 2017 Mexico City Earthquake: M7.1 on the Anniversary of the 1985 Disaster
Striking on the exact 32nd anniversary of the 1985 disaster during a national earthquake drill, the 2017 earthquake served as a live audit of Mexico City's three decades of seismic improvements.
The 1995 Kobe Earthquake: The Disaster That Transformed Japan's Building Codes
The earthquake that exposed fatal weaknesses in Japan's pre-1981 building stock, leading to the most sweeping seismic engineering reforms in history and proving that building codes save lives.
The 1985 Mexico City Earthquake: The Resonance Disaster That Defied Distance
The definitive case study in site amplification and structural resonance, where lake-bed sediments selectively amplified 2-second seismic waves that destroyed mid-rise buildings 350 km from the epicenter.
Frequently Asked Questions
The epicenter is the point on the Earth's surface directly above the hypocenter (focus) where the earthquake rupture begins. It is typically reported as latitude and longitude coordinates. The strongest shaking usually occurs near the epicenter, though local soil conditions and fault geometry can shift the zone of maximum damage.
A seismograph (or seismometer) is an instrument that detects and records ground motion caused by seismic waves. Modern broadband seismometers can detect movements smaller than the width of an atom. Networks of seismographs around the world enable scientists to locate earthquakes and determine their magnitude within minutes.
P-waves (primary waves) are compressional waves that travel fastest through rock, arriving first at seismic stations. S-waves (secondary waves) are shear waves that arrive later but cause more ground shaking. P-waves travel through solids, liquids, and gases; S-waves only travel through solids. The time difference between them helps determine earthquake distance.
The hypocenter (or focus) is the point within the Earth where an earthquake rupture initiates. It is described by latitude, longitude, and depth. The vertical distance between the hypocenter and the surface directly above is the earthquake's depth, which strongly influences how the earthquake is felt at the surface.
Seismology is the scientific study of earthquakes and the propagation of seismic waves through the Earth. It encompasses earthquake detection, location, and characterization; Earth's internal structure; seismic hazard assessment; and earthquake engineering. Seismologists use data from global seismograph networks to study these phenomena.