Kalkulator Radius Terasa
Calculate how far an earthquake can be felt and what intensity you would experience.
CalculationBagaimana Radius Terasa Gempa Bumi Ditentukan
Radius terasa gempa bumi adalah jarak maksimum dari episentrum di mana orang dapat merasakan guncangan. Ini bergantung pada magnitudo, kedalaman, dan kondisi geologi lokal. Gempa dangkal menghasilkan guncangan yang lebih intens tetapi lebih terlokalisasi, sementara gempa dalam menyebarkan guncangan yang lebih ringan di area yang lebih luas.
Kedalaman memainkan peran penting dalam menentukan radius terasa. Gempa dangkal pada kedalaman 5 km memusatkan energi di dekat permukaan, menghasilkan guncangan lokal yang kuat tetapi radius terasa yang lebih kecil. Gempa pada kedalaman 100 km menyebarkan energi di area yang jauh lebih luas, menghasilkan guncangan yang lebih ringan tetapi lebih tersebar luas.
Skala Intensitas Mercalli yang Dimodifikasi
- MMI I–II: Tidak terasa atau hampir tidak terasa. Hanya terdeteksi oleh seismograf atau oleh beberapa orang yang beristirahat di lantai atas.
- MMI III–IV: Dirasakan di dalam ruangan oleh banyak orang. Benda-benda gantung bergoyang; terasa seperti truk yang lewat. Tidak ada kerusakan.
- MMI V–VI: Dirasakan oleh hampir semua orang. Piring pecah, buku jatuh dari rak, plester retak ringan. Kerusakan struktural ringan pada bangunan yang lebih tua.
- MMI VII+: Kerusakan pada bangunan yang dibangun dengan buruk. Orang kesulitan berdiri. Struktur yang dirancang dengan baik mungkin mengalami kerusakan sedang. Dapat terjadi di dekat episentrum gempa besar.
Kegunaan Umum
- Memperkirakan seberapa jauh gempa bumi dapat dirasakan untuk perencanaan darurat dan komunikasi publik.
- Memahami hubungan antara kedalaman gempa bumi dan area guncangan yang dapat dirasakan.
- Membandingkan area dampak potensial dari skenario gempa bumi yang berbeda untuk penilaian risiko.
How to Use
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1
Enter Magnitude and Depth
Input the earthquake's moment magnitude (Mw) and focal depth in kilometers. Depth is the most important modifier of felt radius after magnitude—shallow events (< 15 km) are felt over smaller but more intensely shaken areas.
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2
Select Regional Attenuation
Choose your tectonic region. Eastern continental regions (eastern US, stable cratonic areas) have lower attenuation and transmit seismic waves farther than western active tectonic regions (western US, Japan) where the crust attenuates energy more rapidly.
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3
Read the Intensity Map
View the estimated MMI contours at distances ranging from the epicenter to several hundred kilometers. Each contour corresponds to a descriptor from 'not felt' to 'violent shaking,' based on USGS ShakeMap attenuation relations.
About
The geographical extent of earthquake felt shaking depends on a cascade of physical processes that attenuate seismic energy from the source to distant sites. Ground Motion Prediction Equations (GMPEs) are the mathematical backbone of felt-radius estimation, empirically derived from hundreds of thousands of ground motion recordings worldwide. Modern GMPEs are region-specific: the eastern US crustal model (Atkinson and Boore 2006) predicts felt radii roughly twice those of equivalent-magnitude western US events because the cold, rigid eastern craton transmits seismic waves with lower attenuation (higher Q values) than the warm, fractured western crust.
The USGS 'Did You Feel It?' citizen science platform has transformed intensity estimation. Since its launch in 1997, it has collected over 100 million intensity reports from millions of contributors worldwide, providing dense spatial coverage of felt shaking that instrumental networks alone cannot match. Statistical algorithms convert individual reports—rating shaking intensity on a structured questionnaire covering felt motion, sounds, object movement, and structural effects—into aggregate community intensity values that correlate strongly with instrumental measurements. This crowdsourced intensity data is now incorporated into ShakeMap products alongside seismograph recordings.
Felt radius data over decades reveals systematic regional patterns. In the stable cratonic interior of the eastern US, M5.0 earthquakes have been felt at distances exceeding 1,000 km—the 2011 Virginia M5.8 was felt from Georgia to Nova Scotia. In California's tectonically active crust, a M5.0 is typically felt within 200 km. The New Madrid Seismic Zone, straddling Missouri, Arkansas, and Tennessee, presents a particular challenge: the region has produced M7.0–M8.0 events (estimated, 1811–1812) and sits atop thick, seismically efficient sedimentary sequences; a repeat sequence today would impact a population orders of magnitude larger than the sparse frontier settlements of the early 19th century.