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Yeo, K. B., Teo, K. T. K., & Loong, W. W. (2014). Brief Development of Underwater Autonomous
Biomimetic Fish. Journal of Applied Sciences, 14(23), 3202-3210.
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sites using Multi-Criteria Decision Analysis in Menai Strait, UK. Ocean & Coastal
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flow field performance of octagonal culture tank under different physical parameters
for fish growth based on computational fluid dynamics. Computers and Electronics in
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https://doi.org/https://doi.org/10.1016/j.ecss.2019.106492
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smart aquaculture. Environmental Monitoring and Assessment, 192(8).
Zikra, M., Armono, H. D., & Mahaputra, B. (2020). Site selection of aquaculture location in
Indonesia Sea. Ecol. Environ. Conserv, 26, S8-S17.
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Scientific Publishing Company.
Zoheïr, T., Zitouni, B., & Abi-Ayad, S.-M. (2003). Etat de la pollution marine de la côte oranaise.
Wu, Y.-L., Lee, M.-A., Chen, L.-C., Chan, J.-W., & Lan, K.-W. (2020). Evaluating a suitable
aquaculture site selection model for cobia (Rachycentron canadum) during extreme
events in the inner Bay of the Penghu Islands, Taiwan. Remote Sensing, 12(17), 2689.
Xue, B., Zhao, Y., Bi, C., Cheng, Y., Ren, X., & Liu, Y. (2022). Investigation of flow field and
pollutant particle distribution in the aquaculture tank for fish farming based on
computational fluid dynamics. Computers and Electronics in Agriculture, 200, 107243.
Yan, H., Lipeme Kouyi, G., Gonzalez-Merchan, C., Becouze-Lareure, C., Sebastian, C., Barraud, S.,
& Bertrand-Krajewski, J.-L. (2014). Computational fluid dynamics modelling of flow and
particulate contaminants sedimentation in an urban stormwater detention and settling
basin. Environmental Science and Pollution Research, 21(8), 5347-5356.
Yeo, K. B., Teo, K. T. K., & Loong, W. W. (2014). Brief Development of Underwater Autonomous
Biomimetic Fish. Journal of Applied Sciences, 14(23), 3202-3210.
Yin, S., Takeshige, A., Miyake, Y., & Kimura, S. (2018). Selection of suitable coastal aquaculture
sites using Multi-Criteria Decision Analysis in Menai Strait, UK. Ocean & Coastal
Management, 165, 268-279.
Zhang, J., Jia, G., Wang, M., Cao, S., & Mkumbuzi, S. G. (2022). Hydrodynamics of recirculating
aquaculture tanks with different spatial utilization. Aquacultural Engineering, 96,
102217.
Zhang, Q., Zhou, Y., Ren, X., Gui, J., & Bi, C. (2022). Numerical simulation of hydrodynamics in
dual-drain aquaculture tanks with different tank structures. Ocean Engineering, 265,
112662.
Zhang, S., Yu, G., Wang, Y., Li, D., & Li, W. (2022). Numerical investigations on temperature and
flow field performance of octagonal culture tank under different physical parameters
for fish growth based on computational fluid dynamics. Computers and Electronics in
Agriculture,
195,
106821.
https://doi.org/https://doi.org/10.1016/j.compag.2022.106821
Zhang, Z., Huang, H., Liu, Y., Bi, H., & Yan, L. (2020). Numerical study of hydrodynamic
conditions and sedimentary environments of the suspended kelp aquaculture area in
Heini
Bay.
Estuarine,
Coastal
and
Shelf
Science,
232,
106492.
https://doi.org/https://doi.org/10.1016/j.ecss.2019.106492
Zhuhua, H., Ruoqing, L., Xin, X., Chuang, Y., Xiang, F., & Yaochi, Z. (2020). A method overview in
smart aquaculture. Environmental Monitoring and Assessment, 192(8).
Zikra, M., Armono, H. D., & Mahaputra, B. (2020). Site selection of aquaculture location in
Indonesia Sea. Ecol. Environ. Conserv, 26, S8-S17.
Zimmerman, W. B. (2006). Multiphysics modeling with finite element methods (Vol. 18). World
Scientific Publishing Company.
Zoheïr, T., Zitouni, B., & Abi-Ayad, S.-M. (2003). Etat de la pollution marine de la côte oranaise.
