Citation: | LIU Rongping, HUANG Liuyi, BI Chunwei, SUN Mingshan, ZHANG Yuanmao. Experimental on hydrodynamic characteristics of the hydroid-fouled net[J]. Journal of fisheries of china, 2024, 48(12): 129611. DOI: 10.11964/jfc.20240714633 |
The massive attachment of fouling organisms will clog the net of fish cages, reduce the water exchange within the cages, and increase the structural load and deformation, which will lead to an increased risk of damage to the cage under severe sea conditions, and may cause significant economic losses. This study conducted a field test by deploying nets in marine cage aquaculture areas, obtaining nets with varying levels of biofouling (Sn=0.213-0.442) to study the effects of fouling organisms on the hydrodynamic characteristics of fish cage nets. The composition of the fouling organisms was analyzed, and flume tests were conducted to explore the hydrodynamic characteristics of hydroid-fouled nets for different flow velocities (u=0.2-0.5 m/s) and angles of attack (θ=0°-90°). The results indicated that attachment of fouling organisms initially increased and then decreased with the duration of immersion time, with the maximum attachment occurring at a depth of 4.5 meters during the fourth week. There was a positive correlation between the wet weight of the net and the degree of attachment. Notably, the attachment of fouling organisms like hydroids significantly alters the hydrodynamic characteristics of the nets. The net with the most severe fouling (Sn=0.442) exhibited a 6.09-fold increase in maximum drag force and a 5.99-fold increase in maximum lift force compared to a clean net (Sn=0.146). The influence of hydroid-fouled nets on their hydrodynamic coefficients under varying angles of attack exhibits notable differences, the drag coefficient could increase by as much as 2.1 times, and correspondingly, the lift coefficient underwent a 2.0-fold enhancement, in comparison to clean nets. At an angle of attack of 90°, the relationship between the drag coefficient (Cd) and solidity ratio (Sn) of the hydroid-fouled nets was well-fitted by the equation Cd =0.42+8.98Sn–7.78Sn² (R²=0.803, Sn=0.145–0.442). Our research showed fouling organisms, like hydroids, significantly affected the hydrodynamic loads on fish cage nets, worsening stress distribution, and increasing the risk of damage to the net. Therefore, in the design and safety assessment of cages, it was essential to comprehensively consider the impact of changes in net drag force and lift force on the structural integrity of the fish cage. Moreover, fouling organisms should be removed from the nets promptly to ensure structural integrity and safety during the production process of cage aquaculture. This study provides valuable insights for the design and optimization of fish cages, as well as for the scheduling of net cleaning practices. By addressing these aspects, we can enhance the durability of cage net systems, ultimately contributing to more sustainable and efficient aquaculture.
[1] |
Anisimov A V, Mikhailova M A, Uvarova E A. Modern approaches to the development of marine antifouling coatings[J]. Inorganic Materials: Applied Research, 2019, 10(6): 1384-1389. doi: 10.1134/S2075113319060029
|
[2] |
张俊波, 孙名山, 万荣. 海洋渔业装备生物附着控制技术研究进展[J]. 中国水产科学, 2021, 28(11): 1489-1503. doi: 10.12264/JFSC2021-0092
Zhang J B, Sun M S, Wan R. Research progress of biofouling prevention techniques for marine fishery equipment[J]. Journal of Fishery Sciences of China, 2021, 28(11): 1489-1503 (in Chinese). doi: 10.12264/JFSC2021-0092
|
[3] |
Phillippi A L, O'Connor N J, Lewis A F, et al. Surface flocking as a possible anti-biofoulant[J]. Aquaculture, 2001, 195(3-4): 225-238. doi: 10.1016/S0044-8486(00)00556-1
|
[4] |
Fitridge I, Dempster T, Guenther J, et al. The impact and control of biofouling in marine aquaculture: a review[J]. Biofouling, 2012, 28(7): 649-669. doi: 10.1080/08927014.2012.700478
|
[5] |
石建高, 余雯雯, 赵奎, 等. 海水网箱网衣防污技术的研究进展[J]. 水产学报, 2021, 45(3): 472-485.
Shi J G, Yu W W, Zhao K, et al. Progress in research of antifouling technology of offshore cage netting[J]. Journal of Fisheries of China, 2021, 45(3): 472-485 (in Chinese).
|
[6] |
段继周, 刘超, 刘会莲, 等. 海洋水下设施生物污损及其控制技术研究进展[J]. 海洋科学, 2020, 44(8): 162-177.
Duan J Z, Liu C, Liu H L, et al. Research progress of biofouling and its control technology in marine underwater facilities[J]. Marine Sciences, 2020, 44(8): 162-177 (in Chinese).
|
[7] |
石建高, 余雯雯, 卢本才, 等. 中国深远海网箱的发展现状与展望[J]. 水产学报, 2021, 45(6): 992-1005.
Shi J G, Yu W W, Lu B C, et al. Development status and prospect of Chinese deep-sea cage[J]. Journal of Fisheries of China, 2021, 45(6): 992-1005 (in Chinese).
|
[8] |
Swift M R, Fredriksson D W, Unrein A, et al. Drag force acting on biofouled net panels[J]. Aquacultural Engineering, 2006, 35(3): 292-299. doi: 10.1016/j.aquaeng.2006.03.002
|
[9] |
Gansel L C, Plew D R, Endresen P C, et al. Drag of clean and fouled net panels-measurements and parameterization of fouling[J]. PLoS One, 2015, 10(7): e0131051. doi: 10.1371/journal.pone.0131051
|
[10] |
Lader P, Fredriksson D W, Guenther J, et al. Drag on hydroid-fouled nets—an experimental approach[J]. China Ocean Engineering, 2015, 29(3): 369-389. doi: 10.1007/s13344-015-0026-y
|
[11] |
Bi C W, Zhao Y P, Dong G H, et al. Drag on and flow through the hydroid-fouled nets in currents[J]. Ocean Engineering, 2018, 161: 195-204. doi: 10.1016/j.oceaneng.2018.05.005
|
[12] |
Bi C W, Chen Q P, Zhao Y P, et al. Experimental investigation on the hydrodynamic performance of plane nets fouled by hydroids in waves[J]. Ocean Engineering, 2020, 213: 107839. doi: 10.1016/j.oceaneng.2020.107839
|
[13] |
Chen Q P, Bi C W, Zhang Z X, et al. Hydrodynamic effect of different biofouling types on aquaculture netting[J]. Ocean Engineering, 2023, 279: 114430. doi: 10.1016/j.oceaneng.2023.114430
|
[14] |
许文军, 徐君卓, 陈连源. 几个养殖海区网箱附着生物主要种类及季节变化[J]. 浙江海洋学院学报(自然科学版), 2003, 22(2): 167-170.
Xu W J, Xu J Z, Chen L Y. Main fouling organisms attaching to net cage & their seasonal change in Zhejiang sea areas[J]. Journal of Zhejiang Ocean University (Natural Science Edition), 2003, 22(2): 167-170 (in Chinese).
|
[15] |
刘丽慧. 舟山市近海海域设施养殖用网生物附着特性及防护技术研究[D]. 舟山: 浙江海洋大学, 2018.
Liu L H. Study on the characteristics of biological adhesion and protection technology of nets in Zhoushan coastal waters[D]. Zhoushan: Zhejiang Ocean University, 2018 (in Chinese).
|
[16] |
宋希坤, 冯碧云, 郭峰, 等. 中胚花筒螅辐射幼体附着和变态及其温盐效应[J]. 厦门大学学报(自然科学版), 2006, 45(S1): 211-215.
Song X K, Feng B Y, Guo F, et al. Settlement and metamorphosis of actinula of Tubularia mesembryanthemum and effect of temperature and salinity[J]. Journal of Xiamen University (Natural Science Edition), 2006, 45(S1): 211-215 (in Chinese).
|
[17] |
中华人民共和国国家质量监督检验检疫总局, 中国国家标准化管理委员会. 海洋调查规范 第6部分: 海洋生物调查: GB/T 12763.6—2007[S]. 北京: 中国标准出版社, 2008.
General Administration of Quality Supervision, Inspection and Quarantine of the People's Republic of China, Standardization Administration of the People's Republic of China. Specifications for oceanographic survey—part 6: marine biological survey: GB/T 12763.6—2007[S]. Beijing: Standards Press of China, 2008 (in Chinese).
|
[18] |
周应祺, 许柳雄. 渔具力学[M]. 北京: 中国农业出版社, 2017.
Zhou Y Q, Xu L X. Mechanics of fishing gear[M]. Beijing: Science Press, 2017 (in Chinese).
|
[19] |
林旻, 邬骞力, 田会元, 等. 海上风机与养殖网箱融合系统中网箱系泊绳张力与导管架基础结构的安全性[J]. 水产学报, 2024, 48(6): 069517.
Lin M, Wu Q L, Tian H Y, et al. Mooring rope tension and jacket infrastructure safety in integrated system of offshore wind turbine and fish cage[J]. Journal of Fisheries of China, 2024, 48(6): 069517 (in Chinese).
|
[20] |
Cha B J, Kim H Y, Bae J H, et al. Analysis of the hydrodynamic characteristics of chain-link woven copper alloy nets for fish cages[J]. Aquacultural Engineering, 2013, 56: 79-85. doi: 10.1016/j.aquaeng.2013.05.002
|
[21] |
Wu Q L, You X X, Huang L Y, et al. Hydrodynamic characteristics of rigid net panels for mariculture facilities as determined in flume-tank experiment[J]. Applied Ocean Research, 2024, 147: 103969. doi: 10.1016/j.apor.2024.103969
|
[22] |
Niño Y, Vidal K, Tamburrino A, et al. Normal and tangential drag forces of nylon nets, clean and with fouling, in fish farming. An experimental study[J]. Water, 2020, 12(8): 2238. doi: 10.3390/w12082238
|
[23] |
Nobakht-Kolur F, Zeinoddini M, Aalami Harandi M M, et al. Effects of soft marine fouling on wave-induced forces in floating aquaculture cages: physical model testing under regular waves[J]. Ocean Engineering, 2021, 238: 109759. doi: 10.1016/j.oceaneng.2021.109759
|
[24] |
Nobakht-Kolur F, Zeinoddini M, Ghalebi A. Hydrodynamic forces in marine-fouled floating aquaculture cages: physical modelling under irregular waves[J]. Journal of Fluids and Structures, 2021, 105: 103331. doi: 10.1016/j.jfluidstructs.2021.103331
|
[25] |
Gansel L C, Endresen P C, Steinhovden K B, et al. Drag on nets fouled with blue mussel (Mytilus edulis) and sugar kelp (Saccharina latissima) and parameterization of fouling[C]//ASME 2017 36th International Conference on Ocean, Offshore and Arctic Engineering. Trondheim: ASME, 2017: V006T05A008.
|
[26] |
赖艳. 硬质生物附着下网衣水动力特性实验研究[D]. 大连: 大连理工大学, 2021.
Lai Y. The experimental study on hydrodynamic characteristics of hard-fouled nets[D]. Dalian: Dalian University of Technology, 2021 (in Chinese).
|
[27] |
李玉成, 桂福坤. 平面无结节网衣水阻力系数的试验研究[J]. 海洋学报, 2006, 28(5): 145-151. doi: 10.3321/j.issn:0253-4193.2006.05.019
Li Y C, Gui F K. Study on the drag coefficient of nodeless plane fishing net[J]. Acta Oceanologica Sinica, 2006, 28(5): 145-151 (in Chinese). doi: 10.3321/j.issn:0253-4193.2006.05.019
|
[28] |
陈鹿. 网片水动力系数实验研究及数值模拟[D]. 上海: 上海海洋大学, 2015.
Chen L. Experimental study on the hydrodynamic coefficients of plane nettings and numerical simulation[D]. Shanghai: Shanghai Ocean University, 2015 (in Chinese).
|
[29] |
王磊, 王鲁民, 万荣, 等. 铜合金编织网网片阻力水槽试验研究[J]. 渔业现代化, 2022, 49(3): 55-62. doi: 10.3969/j.issn.1007-9580.2022.03.007
Wang L, Wang L M, Wan R, et al. Experimental research on resistance of copper alloy woven net in water tank[J]. Fishery Modernization, 2022, 49(3): 55-62 (in Chinese). doi: 10.3969/j.issn.1007-9580.2022.03.007
|
[30] |
Yu S C, Qin H D, Li P, et al. Impact of the biological fouling on the hydrodynamic characteristics of nets under different current and attack angle conditions[J]. Aquacultural Engineering, 2024, 106: 102416. doi: 10.1016/j.aquaeng.2024.102416
|
[31] |
Liu Z C, Guedes Soares C. Experimental study of the behaviour of a circular gravity cage in linear waves[J]. Aquacultural Engineering, 2022, 99: 102291. doi: 10.1016/j.aquaeng.2022.102291
|
[32] |
Xu Z J, Qin H D. Fluid-structure interactions of cage based aquaculture: from structures to organisms[J]. Ocean Engineering, 2020, 217: 107961. doi: 10.1016/j.oceaneng.2020.107961
|
[33] |
王笑, 黄六一, 邬骞力, 等. 配重系统对HDPE圆形重力式网箱水动力特性影响研究[J]. 渔业现代化, 2024, 51(1): 29-38. doi: 10.3969/j.issn.1007-9580.2024.01.004
Wang X, Huang L Y, Wu Q L, et al. Study on the influence of different weight systems on hydrodynamic characteristics of HDPE circular gravity fish cage[J]. Fishery Modernization, 2024, 51(1): 29-38 (in Chinese). doi: 10.3969/j.issn.1007-9580.2024.01.004
|
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