Influencing Factors of Submarine Scouring and Siltation Changes in Offshore Area of Shandong Peninsula
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Data Sources
2.3. Research Methods
3. Results
3.1. Characteristics of Submarine Scouring and Siltation in Northern Shandong Peninsula
3.2. Characteristics of Submarine Scouring and Siltation in Northeastern Shandong Peninsula
3.3. Characteristics of Submarine Scouring and Siltation in Southern Shandong Peninsula
4. Discussion
4.1. Influence of River Sediment Transport on Scouring and Silting of Nearshore Seabed in Shandong Peninsula
4.2. Effects of Coastal Erosive Material Transport on the Scouring and Silting of the Nearshore Seabed of Shandong Peninsula
4.3. Effects of Human Activities on Scouring and Silting of Coastal Seabed of Shandong Peninsula
5. Conclusions
- (1)
- The amount of silt on the seabed in Shandong Peninsula’s coastal waters has increased over the past 15 years. The contour of the siltation area also exhibits a significant trend toward the sea. The siltation trend is greatest in the north, and the siltation degree in the east and south is weaker. Many balanced scouring and siltation areas have no significant underwater topography changes. The west side of Laizhou Bay is the coastal area of the Shandong Peninsula with the largest siltation area and amount of siltation. The siltation area was 6.59 × 108 m2, the siltation volume was 3.8 × 108 m3, and the net siltation volume was 2.13 × 108 m3. The maximum siltation thickness was distributed in the sea area around Chengshantou, and the maximum siltation thickness was 17.9 m.
- (2)
- Shandong Peninsula’s coastal waters exhibit the characteristics of point scouring. Its scouring area is generally located in the port and other coastal engineering areas or distributed in the high marine dynamic and siltation areas. The maximum scouring area is from Taozi Bay to Yangma Island, with a scouring amount of 0.10 × 108 m3.
- (3)
- The primary material sources of scouring and siltation in the coastal waters of the Shandong Peninsula are river sediment and coastal scouring transport, which affect the overall scouring and siltation distribution. River sediment mainly comes from the Yellow River, and the greatest influence extends from Laizhou Bay to the north bank of Zhifu District. After passing through the mountain, the material is mainly transported from coastal scouring areas to underwater. Changes in seabed scouring and siltation are positively correlated with variations in coastal scouring intensity. At the same time, coastal engineering and reclamation, in addition to other human activities, seriously increase changes in scouring and siltation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Balica, S.F.; Wright, N.G.; Van Der Meulen, F. A flood vulnerability index for coastal cities and its use in assessing climate change impacts. Nat. Hazards 2012, 64, 73–105. [Google Scholar] [CrossRef]
- McGranahan, G.; Balk, D.; Anderson, B. The rising tide: Assessing the risks of climate change and human settlements in low elevation coastal zones. Environ. Urban. 2007, 19, 17–37. [Google Scholar] [CrossRef]
- Neumann, B.; Vafeidis, A.T.; Zimmermann, J.; Nicholls, R.J. Future Coastal Population Growth and Exposure to Sea-Level Rise and Coastal Flooding—A Global Assessment. PLoS ONE 2015, 10, e0131375. [Google Scholar] [CrossRef] [PubMed]
- Cao, C.; Cai, F.; Qi, H.; Liu, J.; Lei, G.; Zhu, K.; Mao, Z. Coastal Erosion Vulnerability in Mainland China Based on Fuzzy Evaluation of Cloud Models. Front. Mar. Sci. 2022, 8, 790664. [Google Scholar] [CrossRef]
- Ranasinghe, R. Assessing climate change impacts on open sandy coasts: A review. Earth-Sci. Rev. 2016, 160, 320–332. [Google Scholar] [CrossRef]
- Ranasinghe, R.; Wu, C.S.; Conallin, J.; Duong, T.M.; Anthony, E.J. Disentangling the relative impacts of climate change and human activities on fluvial sediment supply to the coast by the world’s large rivers: Pearl River Basin, China. Sci. Rep. 2019, 9, 9236. [Google Scholar] [CrossRef]
- Le Cozannet, G.; Bulteau, T.; Castelle, B.; Ranasinghe, R.; Wöppelmann, G.; Rohmer, J.; Bernon, N.; Idier, D.; Louisor, J.; Salas-Y-Mélia, D. Author Correction: Quantifying uncertainties of sandy shoreline change projections as sea level rises. Sci. Rep. 2019, 9, 6186. [Google Scholar] [CrossRef]
- Hinkel, J.; Lincke, D.; Vafeidis, A.T.; Perrette, M.; Nicholls, R.J.; Tol, R.S.J.; Marzeion, B.; Fettweis, X.; Ionescu, C.; Levermann, A. Coastal flood damage and adaptation costs under 21st century sea-level rise. Proc. Natl. Acad. Sci. USA 2014, 111, 3292–3297. [Google Scholar] [CrossRef]
- Vörösmarty, C.J.; Meybeck, M.; Fekete, B.; Sharma, K.; Green, P.; Syvitski, J.P. Anthropogenic sediment retention: Major global impact from registered river impoundments. Glob. Planet. Chang. 2003, 39, 169–190. [Google Scholar] [CrossRef]
- Williams, A.; Rangel-Buitrago, N.; Pranzini, E.; Anfuso, G. The management of coastal erosion. Ocean Coast. Manag. 2018, 156, 4–20. [Google Scholar] [CrossRef]
- Xie, D.F.; Pan, C.H.; Cao, Y.; Zhang, B. Decadal variations in the erosion/deposition pattern of the Hangzhou Bay and their mechanism in recent 50a. Acta Oceanol. Sin. 2013, 35, 121–128. [Google Scholar]
- Zhou, G.Z.; Feng, X.L.; Liu, J.; Liu, X.; Xu, F. Prediction of erosion evolution and deposition in the east coast of the Laizhou Bay after the implemention of the coastal planning. Mar. Sci. 2014, 38, 15–19. [Google Scholar]
- Zhao, B. Study on Characteristic and Influence Factors of Erosion and Deposition in Sanshan Island-Diaolongzui Area, Laizhou. Master’s Thesis, Ocean University of China, Qingdao, China, 2014. [Google Scholar]
- Yu, J.K.; Ren, Z.H.; Zhan, C.; Zhang, Y.C.; Geng, W.Q.; Wang, Q. Erosion-deposition analysis of underwater slope on lagoon and sand barriers in the Swan Lake, Rongcheng, Shandong province. J. Trop. Oceanogr. 2022, 41, 61–70. Available online: https://kns.cnki.net/kcms/detail/44.1500.p.20211122.1324.002.html (accessed on 21 April 2022).
- Li, M.; Wang, Q.; Zhang, A.; Liu, Y. Study on the geomorphic evolution of the muddy coast along the southern-western Laizhou Bay over the past 50 years. Mar. Sci. Bull. 2013, 32, 141–151. [Google Scholar]
- Wang, L.X.; Li, X.Y.; Wang, Q.; Zhan, C.; Guo, W.J.; Zhang, J.B.; Li, Q.; Zhang, Z.C. Study on profile evolution in the Eastern Coast of Laizhou Bay. Trans. Oceanol. Limnol. 2020, 6, 44–52. [Google Scholar] [CrossRef]
- He, K.; Shi, B.; Li, C.H.; Liang, J.H. Study on the Evolution of Scouring and Deposition for Dredging Engineering in Tangdao Bay. Period. Ocean. Univ. China 2019, 49, 117–124. [Google Scholar] [CrossRef]
- Li, G.X.; Gong, L.X.; Yang, J.C.; Dong, D. Beach erosion along the coast of Shangdong province and protection countermeasures. Mar. Geol. Quat. Geol. 2013, 33, 35–46. [Google Scholar] [CrossRef]
- Wu, Z. Sedimentary Geomorphology and Quality Evaluation of Typical Beaches in Weihai. Coast. Eng. 2019, 38, 52–62. [Google Scholar]
- Liu, L. Spatial and Temporal Distribution Characteristics and Formation Mechanism of Total Suspended Solid in the Coastal Area of Shandong Peninsula. Master’s Thesis, The Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China, 2019. [Google Scholar]
- Chen, X.Q.; Chen, J.Y. A study of closure depth on the profiles ofthe changjiang deltaic coast on the fundamental problems associatedwith bruun rule and its application. Acta Geogr. Sin. 1998, 53, 37–45. [Google Scholar]
- Arun, P.V. A terrain-based hybrid approach towards DEM interpolation. Ann. GIS 2013, 19, 245–252. [Google Scholar] [CrossRef]
- Jin, L.; Heap, A.D. A review of comparative studies of spatial interpolation methods in environmental sciences: Performance and impact factors. Ecol. Inform. 2011, 6, 228–241. [Google Scholar]
- Arun, P. A comparative analysis of different DEM interpolation methods. Egypt. J. Remote. Sens. Space Sci. 2013, 16, 133–139. [Google Scholar] [CrossRef]
- Ali, O.; Ghazal, N.; Hassoon, K. Bathymetry of Iraqi Territorial Water (Coast of Faw Peninsula) by Using GIS Techniques (IDW and Kriging Interpolation Methods). Indian J. Sci. 2018, 9, 14635–14645. [Google Scholar]
- Walsh, L. Digital Topography: Should You Choose a TIN or Raster Interpolation of the Landscape? Available online: https://serc.carleton.edu/vignettes/collection/42681.html (accessed on 15 April 2022).
- Khosravipour, A.; Isenburg, M.; Skidmore, A.K.; Wang, T. Creating Better Digital Surface Models from LiDAR Points. In Proceedings of the 36th Asian Conference on Remote Sensing 2015 (ACRS 2015), Quezon City, Philippines, 19–23 October 2015. [Google Scholar]
- Polat, N.; Uysal, M.; Toprak, A. An investigation of DEM generation process based on LiDAR data filtering, decimation, and interpolation methods for an urban area. Measurement 2015, 75, 50–56. [Google Scholar] [CrossRef]
- Miao, X.M.; Zhu, L.H.; Liu, Z.J.; Hu, R.J.; Jiang, S.H.; Zhang, Z.H. Distribution Pattern and Source of Trace Elements in the Surface Sediments Offshore the Northestern Shandong Peninsula. Period. Ocean. Univ. China 2018, 48, 82–92. [Google Scholar] [CrossRef]
- Bian, C.W. Chinese Coastal Sediment Transport in the Bohai Sea, Yellow Sea and East China Sea. Ph.D. Thesis, Ocean University of China, Qingdao, China, 2012. [Google Scholar]
- Zhao, S.L. Shandong Marine Resources and Environment; China Ocean Press: Beijing, China, 2002; pp. 26–213. [Google Scholar]
- Liu, X.M.; Qiao, L.L.; Wan, X.Q.; Zhong, Y.; Ma, W.W.; Liu, P. The sediment transport channel of the yellow rive. Oceanol. Limnol. Sin. 2019, 50, 49–60. [Google Scholar]
- Gong, L.X. Erosion Situation and Protection of Beach in Eastern Part of Shandong Peninsula. Master’s Thesis, Ocean University of China, Qingdao, China, 2014. [Google Scholar]
- Shi, C.X. Deposition and dispersal of different grain-size sediments in the Yellow River estuary. Geogr. Res. 2021, 40, 1125–1133. [Google Scholar]
- Yang, S.L.; Zhao, Q.Y.; Belkin, I.M. Temporal variation in the sediment load of the Yangtze river and the influences of human activities. J. Hydrol. 2002, 263, 56–71. [Google Scholar] [CrossRef]
- Van Rijn, L.C. Mathematical Modelling of Morphological Processes in the Case of Suspended Sediment Transport. Ph.D. Thesis, Delft Technical University, Delft, The Netherlands, June 1987. [Google Scholar]
- Zhang, X.; Hetland, R.D.; Marta-Almeida, M.; DiMarco, S.F. A numerical investigation of the Mississippi and Atchafalaya freshwater transport, filling and flushing times on the Texas-Louisiana Shelf. J. Geophys. Res. Ocean. 2012, 117, 1–21. [Google Scholar] [CrossRef]
- Tsivtsivadze, N.S. Transformation of Sea Coast under the Human Activity. In Proceedings of Coastal & Port Engineering in Developing Countries, 2; China Ocean Press: Beijing, China, 1987; pp. 1825–1833. [Google Scholar]
- Guerrera, F.; Martín-Martín, M.; Tramontana, M.; Nimon, B.; Kpémoua, K. Shoreline Changes and Coastal Erosion: The Case Study of the Coast of Togo (Bight of Benin, West Africa Margin). Geosciences 2021, 11, 40. [Google Scholar] [CrossRef]
- Siqueira, S.; Gonçalves, R.; Queiroz, H.; Pereira, P.; Silva, A.; Costa, M. Understanding the coastal erosion vulnerability influence over sea turtle (Eretmochelys imbricata) nesting in NE of Brazil. Reg. Stud. Mar. Sci. 2021, 47, 101965. [Google Scholar] [CrossRef]
- Ma, F. Study on the Suspended Sediment Transportation and Seabed Erosion and Deposition Surrounding Huanghua Harbor. Master’s Thesis, Ocean University of China, Qingdao, China, 2007. [Google Scholar]
- Wu, Y.Y. The Hydrodynamic and the Sediment Scouring and Silting Numerical Simulation of the Surrounding Waters of Haiyang Central Fishing Harbor. Master’s Thesis, Ocean University of China, Qingdao, China, 2014. [Google Scholar]
- An, Y.N. Study on Impacts of Offshore Artificial Islands Cluster’s Construction on Scouring-Deposition Features in Longkou Bay. Master’s Thesis, Ocean University of China, Qingdao, China, 2010. [Google Scholar]
- Li, S.H. Impacts of Reclamation on the Erosion and Deposition at the Coast of Zhanjiang Bay Entrance. Master’s Thesis, The First Institute of Oceanography, MNR, Qingdao, China, 2013. [Google Scholar]
Area | Time Span | Coordinate System | Depth Datum |
---|---|---|---|
Laizhou Bay | 2005–2019 | WGS84 | theoretical depth datum |
Diaolongzui to Miaodao Strait | 2006–2019 | WGS84 | theoretical depth datum |
Luanjiakou Port to Taozi Bay | 2006–2019 | WGS84 | theoretical depth datum |
Taozi Bay to Yangma Island | 2005–2019 | WGS84 | theoretical depth datum |
Weihai Port to Jinghai Bay | 2005–2019 | WGS84 | theoretical depth datum |
Rushankou to Dingzi Bay | 2006–2019 | WGS84 | theoretical depth datum |
Jiaozhou Bay | 2004–2019 | WGS84 | theoretical depth datum |
Area | Time | Maximum Error (meters) | Minimum Error (meters) | Average Error (meters) | Standard Error (meters) |
---|---|---|---|---|---|
Laizhou Bay | 2019 | 9.04614 | 0.00003 | 0.01075 | 1.24685 |
Diaolongzui to Miaodao Strait | 2019 | 3.77348 | 0.00003 | 0.05336 | 1.44664 |
Luanjiakou Port to Taozi Bay | 2019 | 2.66772 | 0.00021 | 0.06483 | 1.62265 |
Taozi Bay to Yangma Island | 2019 | 3.27811 | 0.00000 | 0.03474 | 1.42165 |
Weihai Port to Jinghai Bay | 2019 | 6.98346 | 0.00000 | 0.04256 | 1.73592 |
Rushankou to Dingzi Bay | 2019 | 2.98725 | 0.00003 | 0.18213 | 1.24690 |
Jiaozhou Bay | 2019 | 3.88760 | 0.00001 | 0.01537 | 2.27754 |
Laizhou Bay | 2005 | 2.87709 | 0.00006 | 0.01288 | 0.65750 |
Diaolongzui to Miaodao Strait | 2006 | 2.33651 | 0.00002 | 0.02151 | 0.92651 |
Luanjiakou Port to Taozi Bay | 2006 | 2.14962 | 0.00001 | 0.09391 | 1.50429 |
Taozi Bay to Yangma Island | 2005 | 4.00565 | 0.00003 | 0.04246 | 1.54739 |
Weihai Port to Jinghai Bay | 2005 | 2.02476 | 0.00000 | 0.04463 | 1.73018 |
Rushankou to Dingzi Bay | 2006 | 1.75644 | 0.00004 | 0.02016 | 1.16151 |
Jiaozhou Bay | 2004 | 3.02345 | 0.00001 | 0.11444 | 1.94044 |
Research Area | Scouring Volume × 108 m3 | Silting Volume × 108 m3 | Net Sedimentation Volume × 108 m3 | Siltation Rate × 108 m3.a−1 |
---|---|---|---|---|
West Laizhou Bay | 1.67 | 3.8 | 2.13 | 0.152 |
East Laizhou Bay | 0.18 | 1.63 | 1.46 | 0.103 |
Diaolongzui to Miaodao Strait | 2.02 | 2.57 | 0.56 | 0.043 |
Luanjiakou Port to Taozi Bay | 0.74 | 0.97 | 0.23 | 0.019 |
Taozi Bay to Yangma Island | 0.83 | 0.72 | −0.10 | −0.007 |
Weihai Port to Jinghai Bay | 0.94 | 2.55 | 1.62 | 0.019 |
Rushankou to Dingzi Bay | 1.13 | 2.91 | 1.78 | 0.148 |
Jiaozhou Bay | 0.76 | 1.34 | 0.57 | 0.115 |
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Zhang, Z.; Gao, W.; Li, P.; Liu, J.; Xu, Y.; Wei, X.; Li, A. Influencing Factors of Submarine Scouring and Siltation Changes in Offshore Area of Shandong Peninsula. Water 2023, 15, 435. https://doi.org/10.3390/w15030435
Zhang Z, Gao W, Li P, Liu J, Xu Y, Wei X, Li A. Influencing Factors of Submarine Scouring and Siltation Changes in Offshore Area of Shandong Peninsula. Water. 2023; 15(3):435. https://doi.org/10.3390/w15030435
Chicago/Turabian StyleZhang, Zhuoli, Wei Gao, Ping Li, Jie Liu, Yuanqin Xu, Xia Wei, and Anlong Li. 2023. "Influencing Factors of Submarine Scouring and Siltation Changes in Offshore Area of Shandong Peninsula" Water 15, no. 3: 435. https://doi.org/10.3390/w15030435