|
SEOULTECH Researchers Reveal New
Multi-Scale Monitoring Framework for Detecting Hidden
Structural Weaknesses in Urban Metro Corridors
Aug. 25, 2026
With the continuing
development of underground spaces in urban areas, the
frequency of ground surface settlement has increased,
posing considerable concern for infrastructure stability
and public safety. It can particularly threaten the
safety of critical infrastructure like subway systems.
Since ground settlement is difficult to predict in
advance, continuous monitoring over a wide area is
essential.
The MSRS framework combines
satellite-based InSAR, laser scanning and ground
penetrating radar to enable for reliable, continuous
wide-area monitoring, site-specific validation and
near-surface condition assessment.
The MSRS framework combines
satellite-based InSAR, laser scanning and ground
penetrating radar to enable for reliable, continuous
wide-area monitoring, site-specific validation and
near-surface condition assessment.
Conventional techniques, however,
relying only on a single mode of monitoring, are limited
in providing reliable monitoring over large areas.
Combining complementary monitoring techniques can
therefore provide a more comprehensive assessment of
settlement.
In a new study, a research team led
by master's student Tae-Yong Park from the Department of
Civil Engineering at Seoul National University of
Science and Technology has developed a forensic
multi-scale remote sensing (MSRS) framework integrating
InSAR, laser scanning (L/S), and ground penetrating
radar (GPR). "Our approach allows problems associated
with excavation, inadequate compaction, and other
construction defects to be characterized in greater
detail than would be possible by using any single
technology," explains Mr. Park. Their study was made
available online on April 25, 2026, and published in
Volume 174 of Tunnelling and Underground Space
Technology on August 01, 2026.
The proposed MSRS system enables
wide area monitoring, site-specific validation, and
near-surface condition assessment. For testing, the
approach was applied over the Seoul Metropolitan Subway
Bundang Line corridor between Suseo Station and
Cheongnyangni Station with a length of over 16
kilometers. The system has three main components.
First, long-term settlement is
measured along the entire corridor using satellite InSAR
time-series analysis. InSAR estimates surface
displacement by comparing radar signals acquired
repeatedly over the same area. In the study, the team
also applied a technique called "seasonal-trend
decomposition using LOESS" to exclude the seasonal
fluctuations in settlement. InSAR analysis of the subway
corridor revealed a ventilation shaft with a distinct
settlement signal, which was then selected for
subsequent detailed analysis. Further analysis showed a
progressive long-term settlement.
Next, field L/S was conducted at
the selected shaft. Since visual inspection revealed
multiple cracks and signs of repair on the ceiling, L/S
was used to analyze the settlement tendency of the
ceiling. The results demonstrated a settlement pattern
that became more pronounced towards the part of the
ceiling directly beneath the roadside above the shaft.
GPR was then carried out along the
road section above the shaft. GPR is a non-destructive
technique that uses high-frequency electromagnetic
pulses to investigate subsurface features. The GPR
survey showed signals representing void-like structures
near the shaft and reduced continuity of layer
boundaries, indicating non-uniform subsurface
conditions.
The three results enabled showed
that the detected settlement anomaly was not an artifact
from any one technique but a reliable result obtained
from a multi-scale analysis, thus reducing
interpretational uncertainty.
"Our research could help shift the
paradigm of urban disaster management from reactive
response to proactive prevention," concludes Mr. Park.
"In the long term, the MSRS system will support timely
maintenance and targeted investigations of high-risk
areas, thereby reducing the risk of sudden sinkholes,
structural damage, and infrastructure failure."
|