Thousands of bridges throughout the United States have been identified as being scour critical (i.e., suscepti - ble to failure from pier and (or) abutment scour). Scour occurs during times of rapid river flow when sediments, in - cluding rocks, gravel, and silt, are transported by the currents, undermining bridge pier foundations and similar structures. It can be increased by the presence of an ice cover. The scour process is dynamic; erosion and deposition can occur during the same high-energy river event, so the worst-case and the net effect cannot be easily predicted or dynamically monitored using previously available equipment. Herein, a technique and system (U.S. Patent #5,790,471) employing frequency modulated - continuous wave (FM-CW) reflectometry are discussed. This system is proposed for continuous monitoring of the extent of scour around riverine structures. A bench scale version of the system with a 490-MHz linearly swept bandwidth was implemented and tested in the laboratory, where sediments were incrementally added to a water-filled plastic barrel containing an 86-cm-long scour probe. Reflectometer data were taken after each increment of sediment was added. The data indicating the sediment boundary were plotted in a waterfall format that clearly shows the progressive sedimentation. This system has the potential for continuous round-the-clock operation and accuracy to within 5 cm of sediment depth.
[1]
F. P. Haeni,et al.
Use of surface-geophysical methods to assess riverbed scour at bridge piers
,
1989
.
[2]
Leonard J. Zabilansky.
Ice Force and Scour Instrumentation for the White River, Vermont.
,
1996
.
[3]
Andrew Gerald Stove,et al.
Linear FMCW radar techniques
,
1992
.
[4]
L. J. Zabilansky,et al.
Innovative Instrumentation Techniques for Detecting and Measuring the Effects of Sediment Scour Under Ice
,
1998
.
[5]
Jorge E. Pagán-Ortiz.
Status of the Scour Evaluation of Bridges over Waterways in the United States
,
1998
.
[6]
P. Ray,et al.
Broadband complex refractive indices of ice and water.
,
1972,
Applied optics.
[7]
M. Skolnik,et al.
Introduction to Radar Systems
,
2021,
Advances in Adaptive Radar Detection and Range Estimation.
[8]
J A Kells,et al.
Local channel in scour in uniformly graded sediments: the time-scale problem
,
1997
.
[9]
Steven A. Arcone,et al.
Thickness profiling of freshwater ice using a millimeter-wave FM-CW radar
,
1992,
IEEE Trans. Geosci. Remote. Sens..
[10]
E. Miller.
Time-domain measurements in electromagnetics
,
1986
.
[11]
A. Botros,et al.
Analysis of target response of FM-CW radar
,
1986
.