A Low-Cost Cyber–Physical Sensing Architecture for Bridge Vibration-Activity Monitoring: Laboratory and Field Evaluation Under Operational Conditions

Municipal bridge management requires accessible monitoring approaches that provide objective information on vibration activity under operational conditions. This study develops and evaluates a low-cost cyber–physical sensing architecture using the Lusitania Bridge in Viña del Mar, Chile, as a case study. The system integrates four ESP32/MPU9250 sensing nodes, cascade Wi-Fi/WebSocket forwarding, a Raspberry Pi 4 gateway with an auxiliary local MPU9250 channel, and structured post-processing. Its contribution is the author-developed system-level integration and bounded field evaluation rather than the novelty of the individual components. In the laboratory shaker test, each remote node occupied 13,560 of 15,001 bins on a fixed 100 Hz grid, corresponding to a 9.61% temporal-continuity deficit; the stored-row rate was 100.023 Hz. Cross-correlation signal lags were within one to two nominal sampling intervals, but these lags are not treated as pure clock-synchronization errors. The field campaign comprised 19 short sessions collected during one experimental day. The mean session-level fixed-grid deficit was 21.04%, with values ranging from 6.83% to 44.09%, showing that end-to-end continuity was the principal operational constraint. Session S18 had the lowest deficit, 6.83%, and 214 valid 30 s windows out of 271 candidates. In S18, a higher-vibration interval showed 0.5–20 Hz band-limited RMS ratios of 1.91–2.86 and band-power increases of 5.6–9.1 dB relative to a low-activity interval. Because the sensors were mounted on the railing and no calibrated reference accelerometer was available, the results support short-duration vibration-activity monitoring and system testing, not global modal identification, damage diagnosis, warning capability, or long-term SHM.

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Journal
Systems
Published
2026-09-25
DOI
https://doi.org/10.3390/systems14101201
Primary Topic
Structural Health Monitoring Techniques
Type
article
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article

A Low-Cost Cyber–Physical Sensing Architecture for Bridge Vibration-Activity Monitoring: Laboratory and Field Evaluation Under Operational Conditions

Álvaro López, Edison Atencio, Paolo Macaya-Vitali, Sebastián Lozano-Allimant et al.
Systems
Structural Health Monitoring Techniques
article

A Low-Cost Cyber–Physical Sensing Architecture for Bridge Vibration-Activity Monitoring: Laboratory and Field Evaluation Under Operational Conditions

Álvaro López, Edison Atencio, Paolo Macaya-Vitali, Sebastián Lozano-Allimant, Alexis Toledo Bórquez, Sofía Vergara Cerda
article en

Abstract

Municipal bridge management requires accessible monitoring approaches that provide objective information on vibration activity under operational conditions. This study develops and evaluates a low-cost cyber–physical sensing architecture using the Lusitania Bridge in Viña del Mar, Chile, as a case study. The system integrates four ESP32/MPU9250 sensing nodes, cascade Wi-Fi/WebSocket forwarding, a Raspberry Pi 4 gateway with an auxiliary local MPU9250 channel, and structured post-processing. Its contribution is the author-developed system-level integration and bounded field evaluation rather than the novelty of the individual components. In the laboratory shaker test, each remote node occupied 13,560 of 15,001 bins on a fixed 100 Hz grid, corresponding to a 9.61% temporal-continuity deficit; the stored-row rate was 100.023 Hz. Cross-correlation signal lags were within one to two nominal sampling intervals, but these lags are not treated as pure clock-synchronization errors. The field campaign comprised 19 short sessions collected during one experimental day. The mean session-level fixed-grid deficit was 21.04%, with values ranging from 6.83% to 44.09%, showing that end-to-end continuity was the principal operational constraint. Session S18 had the lowest deficit, 6.83%, and 214 valid 30 s windows out of 271 candidates. In S18, a higher-vibration interval showed 0.5–20 Hz band-limited RMS ratios of 1.91–2.86 and band-power increases of 5.6–9.1 dB relative to a low-activity interval. Because the sensors were mounted on the railing and no calibrated reference accelerometer was available, the results support short-duration vibration-activity monitoring and system testing, not global modal identification, damage diagnosis, warning capability, or long-term SHM.

SystemsVol. 14(10)
Universidad de La Frontera (CL), Pontificia Universidad Católica de Valparaíso (CL)
Sustainable cities and communities
Openalex Percentile: Top 17%
Structural Health Monitoring Techniques
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