Seismic Performance and Damage Assessment of Transportation Systems During the 2025 Myanmar Earthquake (M7.9)

The M7.9 Myanmar earthquake on March 28, 2025, caused extensive damage to the local transportation network. Through a 14‐day field investigation in the affected areas, a joint Sino–Myanmar survey team established a seismic damage database encompassing highway and railway bridges. To address the scarcity of near‐fault strong‐motion records, simulated ground motion fields were adopted to evaluate structural seismic demands. Based on these ground motion fields, the failure mechanisms of 18 damaged bridges were analyzed, and regional statistical comparisons were conducted using the spectral element method. The investigation results indicate that the bridge damage direction is governed by the relative dominance between the fling‐step effect and the rupture directivity effect. Furthermore, strong ground motions at soft soil sites in river valleys are prone to inducing soil liquefaction and lateral spreading. Statistical fragility analyses demonstrate that the median peak ground accelerations for all damage states in highway bridges are significantly higher than the actual demands, with damage primarily concentrated in bearing sliding, girder collisions, and pier plastic hinging. In contrast, the median peak ground acceleration for moderate damage in older railway bridges is merely 0.48 g, highlighting extreme systemic vulnerability characterized by masonry material degradation and universal damage to steel truss girders. The research findings provide a scientific basis for the seismic retrofitting of Myanmar's transportation network. It is recommended that end cross‐girders and shear connectors be added to steel and concrete composite girder bridges, column jacketing and comprehensive unseating prevention devices be implemented for older bridge piers, strategies for resisting strong shaking and fault rupture be adopted for near‐fault and fault‐crossing routes, and corresponding antiliquefaction engineering designs be implemented in liquefaction‐susceptible areas.

Authors

Institutions

Publication Details

Journal
Earthquake Spectra
Published
2026-09-15
DOI
https://doi.org/10.1002/esp4.70121
Primary Topic
Seismic Performance and Analysis
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Seismic Performance and Damage Assessment of Transportation Systems During the 2025 Myanmar Earthquake (M7.9)

Zhipeng Zhao, Yong Huang, A. Lata, Wenshan Li et al.
Earthquake Spectra
Seismic Performance and Analysis
article

Seismic Performance and Damage Assessment of Transportation Systems During the 2025 Myanmar Earthquake (M7.9)

Zhipeng Zhao, Yong Huang, A. Lata, Wenshan Li, Ma Debao, Tian Yige, Yan Peilei, He Hua
article en

Abstract

The M7.9 Myanmar earthquake on March 28, 2025, caused extensive damage to the local transportation network. Through a 14‐day field investigation in the affected areas, a joint Sino–Myanmar survey team established a seismic damage database encompassing highway and railway bridges. To address the scarcity of near‐fault strong‐motion records, simulated ground motion fields were adopted to evaluate structural seismic demands. Based on these ground motion fields, the failure mechanisms of 18 damaged bridges were analyzed, and regional statistical comparisons were conducted using the spectral element method. The investigation results indicate that the bridge damage direction is governed by the relative dominance between the fling‐step effect and the rupture directivity effect. Furthermore, strong ground motions at soft soil sites in river valleys are prone to inducing soil liquefaction and lateral spreading. Statistical fragility analyses demonstrate that the median peak ground accelerations for all damage states in highway bridges are significantly higher than the actual demands, with damage primarily concentrated in bearing sliding, girder collisions, and pier plastic hinging. In contrast, the median peak ground acceleration for moderate damage in older railway bridges is merely 0.48 g, highlighting extreme systemic vulnerability characterized by masonry material degradation and universal damage to steel truss girders. The research findings provide a scientific basis for the seismic retrofitting of Myanmar's transportation network. It is recommended that end cross‐girders and shear connectors be added to steel and concrete composite girder bridges, column jacketing and comprehensive unseating prevention devices be implemented for older bridge piers, strategies for resisting strong shaking and fault rupture be adopted for near‐fault and fault‐crossing routes, and corresponding antiliquefaction engineering designs be implemented in liquefaction‐susceptible areas.

Earthquake SpectraVol. 42(4)
Tongji University (CN), Yunnan Earthquake Prevention and Disaster Reduction (CN), China Earthquake Administration (CN)
Sustainable cities and communities
Openalex Percentile: Top 16%
Seismic Performance and Analysis
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.