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Figure/Table detail
Influence of Intermittent Submerged Breakwater on the Hydrodynamic Impacts of Infragravity Waves on Fringing Reef
Renshi Yu, Ke Qu, Wenjun Nie
Tropical Geography
, DOI:
10.13284/j.cnki.rddl.20250105
Fig.5
Spectral energy distribution cloud chart
Other figure/table from this article
Fig.1
Layout of wave flume(m)
Table 1
Position of measuring points
Fig.2
Side view and top view of discontinuous submerged breakwater
Table 2
Experimental condition setting table
Fig.3
Time history curves of free surface at different measuring points
Fig.4
Comparisons of the time series of wave runup heights (a) and runup spectra (b)
Fig.6
Distribution of (a)infragravity wave height(
H
IG
), (b)short-wave wave height(
H
SS
) and (c)wave set-up(
η
i
) along the reef with or without submerged breakwater under standard conditions
Table.3
Significance analysis of water increase and wave run-up on reef flat with or without intermittent submerged breakwater
Fig.7
Distribution of infragravity wave height(
H
IG
), short-wave wave height(
H
SS
) along the reef under different effective wave heights(
H
S
), reef water depths(
d
), discontinuous widths(
w
),and spectral peak periods(
T
P
) with submerged breakwater topography
Fig.8
Comparison of 2 % maximum climbing height(
R
2%
) and maximum water increase(
η
max
) under different effective wave heights(
H
S
), reef water depths(
d
), discontinuous widths(
w
),and spectral peak periods(
T
P
)
Fig.9
Comparison of experimental data and calculated values of
H
SS
(a)
,
H
IG
(b) and wave setup(c) at each measuring point
Fig.10
The distribution of the average velocity of each measuring point along the water depth
Fig.11
The average velocity cloud diagram along the reef (top view)