PGA Estimator
Estimate Peak Ground Acceleration at your location for a given earthquake scenario.
CalculationWhat Is Peak Ground Acceleration (PGA)?
Peak Ground Acceleration (PGA) is the maximum acceleration experienced at the Earth's surface during an earthquake, measured as a fraction of gravitational acceleration (g = 9.81 m/s²). It is one of the most important parameters in earthquake engineering because it directly relates to the forces that buildings and infrastructure must withstand. A PGA of 0.1g means the ground accelerated at 10% of gravity — enough to be strongly felt and cause minor damage. At 0.5g, acceleration is half of gravity, and structural damage to well-designed buildings becomes likely. The highest recorded PGA was 2.7g during the 2011 Tōhoku earthquake in Japan.
Ground Motion Prediction Equations (GMPEs), also called attenuation relationships, are empirical models that estimate PGA based on earthquake magnitude, distance from the fault, depth, and site conditions. This tool uses a simplified GMPE to provide educational estimates. Professional seismic hazard analysis employs multiple GMPEs and accounts for uncertainty through logic trees. Site conditions matter significantly — soft soils can amplify PGA by 2–3 times compared to bedrock, a phenomenon captured by site amplification factors defined in building codes like ASCE 7 and Eurocode 8.
PGA and Structural Design
- Building codes specify design-basis PGA values: structures must resist a certain level of ground acceleration without collapse. In high-seismic zones, this is typically 0.3–0.4g.
- PGA alone does not fully describe ground motion severity — duration and frequency content also matter. A brief pulse of high PGA may be less damaging than prolonged moderate shaking.
- Site classification (A through F in ASCE 7) affects the design spectrum: soft-soil sites (Class D/E) require higher design forces due to amplification effects.
- Seismic hazard maps, such as those produced by USGS and GSHAP, show the PGA values with a 10% probability of exceedance in 50 years — the standard reference for building codes.
Common Uses
- Estimating the ground shaking level at a specific location for a hypothetical earthquake scenario.
- Understanding how distance and soil conditions affect ground acceleration.
- Comparing estimated PGA against building code requirements to assess potential damage.
- Educational demonstrations of seismic attenuation and site amplification effects.
How to Use
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1
Define the Earthquake Scenario
Enter the earthquake magnitude (Mw), epicenter coordinates, and focal depth. For site-specific design purposes, you may also use a return period (e.g., 475-year) to retrieve the probabilistic PGA from the USGS seismic hazard map.
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2
Specify Your Site Location and Soil Class
Enter your coordinates and select your site soil class (A through F per ASCE 7 / Eurocode 8). Site class D (stiff soil, Vs30 = 180–360 m/s) is the reference class; softer soils amplify PGA, harder rock reduces it.
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3
Review the PGA Estimate and Design Implications
Read your estimated PGA in g-units and its corresponding approximate MMI intensity. The tool notes the relevant building code seismic design category (SDC) for US locations and the equivalent Eurocode 8 PGA design value.
About
Peak Ground Acceleration emerged as the primary seismic engineering parameter in the 1950s–60s when strong-motion accelerographs first became widely deployed following the 1940 El Centro earthquake (which produced the first complete accelerogram used in engineering, with PGA = 0.33g). PGA's appeal lies in its direct measurement from instruments, its physical intuition (how hard the ground shakes), and its correlation with observations from historical earthquakes. The USGS National Seismic Hazard Maps, first produced in the 1970s and updated through PSHA methodology, express seismic hazard primarily as PGA at specific probability levels.
However, PGA has known limitations as a sole damage predictor. It reflects high-frequency energy that governs rigid structural response but may not capture the damage potential for taller, more flexible structures sensitive to long-period energy. The 1985 Mexico City earthquake illustrated this dramatically: soft sediment resonance amplified long-period (2 second) waves while PGA on those same sediments was not extreme, yet mid-rise (8–15 story) buildings resonating at the site's natural period collapsed while shorter and taller buildings survived. This observation drove the adoption of design response spectra and, more recently, spectral acceleration at specific periods (Sa(1.0s), Sa(0.2s)) as primary design parameters in modern codes.
The emergence of broadband seismic networks and dense strong-motion arrays has dramatically expanded the observational database underpinning PGA prediction models. The Next Generation Attenuation (NGA) project, coordinated by PEER (Pacific Earthquake Engineering Research Center), compiled an international database of over 21,000 ground motion records from 600+ earthquakes to develop the NGA-West2 model suite—five independent GMPEs now used as the foundation of USGS hazard maps and incorporated into building codes in the US and internationally. These models explicitly account for magnitude, distance, depth, style of faulting, hanging wall effects, basin depth, and Vs30, providing PGA predictions with quantified uncertainty at any site worldwide.