Dynamic Displacement Estimation for Long-Span Bridges Using Acceleration and Heuristically Enhanced Displacement Measurements of Real-Time Kinematic Global Navigation System
Abstract
:1. Introduction
2. Proposed Dynamic Displacement Estimation Method
2.1. Schematics of the Proposed Dynamic Displacement Estimation Method
2.2. Modified Heuristic Drift Reduction for Enhancing RTK-GNSS Displacement Measurement
- (a)
- for and
- (b)
- for and
- (c)
- for and
- (d)
- for and
2.3. State-Space Model for Displacement Estimation with Two-Stage Kalman Filter
2.4. Two-Stage Kalman Filter
3. Lab-Scale Experiment
4. Field Tests
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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(mm) | Yeongjong Grand Bridge | Qingfeng Bridge | San Francisco–Oakland Bay Bridge |
---|---|---|---|
RTK-GNSS displacement measurement, | 5.97 | 20.16 | 13.39 |
RTK-GNSS displacement after MHDR applied, | 3.27 | 5.49 | 5.76 |
Displacement estimate of two-stage Kalman filter, | 2.69 | 5.08 | 5.44 |
(mm) | Yeongjong Grand Bridge | Qingfeng Bridge | San Francisco–Oakland Bay Bridge |
---|---|---|---|
Proposed | 2.69 | 5.08 | 5.44 |
Smyth and Wu | 14.66 | 22.13 | 14.96 |
Loosely-coupled Kalman filter | 11.87 | 19.90 | 12.75 |
Tightly-coupled Kalman filter | 5.19 | 22.89 | 13.68 |
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Kim, K.; Sohn, H. Dynamic Displacement Estimation for Long-Span Bridges Using Acceleration and Heuristically Enhanced Displacement Measurements of Real-Time Kinematic Global Navigation System. Sensors 2020, 20, 5092. https://doi.org/10.3390/s20185092
Kim K, Sohn H. Dynamic Displacement Estimation for Long-Span Bridges Using Acceleration and Heuristically Enhanced Displacement Measurements of Real-Time Kinematic Global Navigation System. Sensors. 2020; 20(18):5092. https://doi.org/10.3390/s20185092
Chicago/Turabian StyleKim, Kiyoung, and Hoon Sohn. 2020. "Dynamic Displacement Estimation for Long-Span Bridges Using Acceleration and Heuristically Enhanced Displacement Measurements of Real-Time Kinematic Global Navigation System" Sensors 20, no. 18: 5092. https://doi.org/10.3390/s20185092