Impacts of Particle Shape, Skeletal Porosity and Density on the Settling Velocity of Gravel-Size Coral Debris

被引:3
作者
Mao, Lilei [1 ]
Li, Jiabo [1 ]
Shimozono, Takenori [1 ]
Tajima, Yoshimitsu [1 ]
机构
[1] Univ Tokyo, Dept Civil Engn, Bunkyo ku, Tokyo, Japan
关键词
carbonate bioclast; drag coefficient; settling velocity; coral debris; particle shape; skeletal porosity; SIMPLE CORRELATION FORMULA; DRAG COEFFICIENT; RYUKYU ISLANDS; GRAIN SHAPE; SEA-LEVEL; ENTRAINMENT; MOTION; SAND;
D O I
10.1029/2022JF006996
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Knowledge of the hydrodynamic behavior of carbonate bioclasts is essential for solving coastal morphodynamic problems in marine carbonate depositional environments. Marine carbonate grains are produced within the sedimentary system itself and are deformed by subsequent hydrodynamics, resulting in particle densities, sizes and shapes that are distinct from those of terrigenous sediments. In this study, we investigated the shapes and settling characteristics of gravel-size natural coral debris collected from the coasts of Okinawa Prefecture, Japan. Based on the shape parameters and settling velocities obtained using image analysis techniques and settling tube experiments, respectively, a correlation model for predicting the settling velocity of coral gravel particles was developed by extending the previous formula of Dietrich (1982, ) over particle Reynolds number values ranging from 384.23 to 4439.76. The model determines the settling velocity as a function of particle nominal diameter, form, roundness, and surface texture parameters that were selected after examining several other shape descriptors. Compared with other models, the proposed model showed better settling velocity predictive skills for coral gravel particles classified into four shape types. The proposed model also determines how the drag coefficient of coral gravel particles should be modified from that for spherical particles, by accounting for the abovementioned coral gravel particle shape parameters. The obtained data set of settling velocity and modification of the drag coefficient can be used for quantitative interpretation of suspension, transport, and sedimentation processes in marine carbonate depositional environments.
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页数:18
相关论文
共 61 条
[31]   SETTLING VELOCITY AND GRAIN SHAPE OF MAERL BIOGENIC GRAVEL [J].
Joshi, Siddhi ;
Duffy, Garret P. ;
Brown, Colin .
JOURNAL OF SEDIMENTARY RESEARCH, 2014, 84 (08) :718-727
[32]   Eco-geomorphic processes that maintain a small coral reef island: Ballast Island in the Ryukyu Islands, Japan [J].
Kayanne, Hajime ;
Aoki, Kenji ;
Suzuki, Takuya ;
Hongo, Chuki ;
Yamano, Hiroya ;
Ide, Yoichi ;
Iwatsuka, Yuudai ;
Takahashi, Kenya ;
Katayama, Hiroyuki ;
Sekimoto, Tsunehiro ;
Isobe, Masahiko .
GEOMORPHOLOGY, 2016, 271 :84-93
[33]   Evidence for coral island formation during rising sea level in the central Pacific Ocean [J].
Kench, Paul S. ;
Owen, Susan D. ;
Ford, Murray R. .
GEOPHYSICAL RESEARCH LETTERS, 2014, 41 (03) :820-827
[34]   A comparison of settling and sieve techniques for the analysis of bioclastic sediments [J].
Kench, PS ;
McLean, RF .
SEDIMENTARY GEOLOGY, 1997, 109 (1-2) :111-119
[35]   Hydraulic characteristics of bioclastic deposits: New possibilities for environmental interpretation using settling velocity fractions [J].
Kench, PS ;
McLean, RF .
SEDIMENTOLOGY, 1996, 43 (03) :561-570
[36]   Particle classification and drag coefficients of irregularly-shaped combustion residues with various size and shape [J].
Knoll, M. ;
Gerhardter, H. ;
Prieler, R. ;
Muehlboeck, M. ;
Tomazic, P. ;
Hochenauer, C. .
POWDER TECHNOLOGY, 2019, 345 :405-414
[37]   GRAIN SHAPE EFFECTS ON SETTLING RATES [J].
KOMAR, PD ;
REIMERS, CE .
JOURNAL OF GEOLOGY, 1978, 86 (02) :193-209
[38]   Porosities and pore sizes in coralline calcium carbonate [J].
Laine, Jorge ;
Labady, Mary ;
Albornoz, Alberto ;
Yunes, Simon .
MATERIALS CHARACTERIZATION, 2008, 59 (10) :1522-1525
[39]   Settling velocity and drag coefficient of platy shell fragments [J].
Li, Yanan ;
Yu, Qian ;
Gao, Shu ;
Flemming, Burghard W. .
SEDIMENTOLOGY, 2020, 67 (04) :2095-2110
[40]  
Mao Lilei, 2022, Zenodo, DOI 10.5281/ZENODO.7294021