204
Naylor, R. L., Goldburg, R. J., Primavera, J. H., Kautsky, N., Beveridge, M. C. M., Clay, J., . . .
Troell, M. (2000). Effect of aquaculture on world fish supplies. Nature, 405(6790), 10171024. https://doi.org/10.1038/35016500
Naylor, S., Brisson, J., Labelle, M., Drizo, A., & Comeau, Y. (2003). Treatment of freshwater fish
farm effluent using constructed wetlands: the role of plants and substrate. Water
Science and Technology, 48(5), 215-222.
Nazar, A. A., Jayakumar, R., & Tamilmani, G. (2013). Recirculating aquaculture systems.
Newell, C. R., Hawkins, A. J., Morris, K., Richardson, J., Davis, C., & Getchis, T. (2013). ShellGIS: a
dynamic tool for shellfish farm site selection. World Aquacult, 44, 50-53.
Newman, J., & Wu, T. (1975). Hydromechanical aspects of fish swimming. In Swimming and
flying in nature (pp. 615-634). Springer.
Nishanthan, G. (2015). Fish Farm & Staff Management System for Gamini Aquarium (Pvt.) Ltd
University Of Colombo].
Oca, J., & Masalo, I. (2013). Flow pattern in aquaculture circular tanks: Influence of flow rate,
water depth, and water inlet & outlet features. Aquacultural Engineering, 52, 65-72.
Oca, J., & Masaló, I. (2007). Design criteria for rotating flow cells in rectangular aquaculture
tanks. Aquacultural Engineering, 36(1), 36-44.
Oca, J., Masaló, I., & Reig, L. (2004). Comparative analysis of flow patterns in aquaculture
rectangular tanks with different water inlet characteristics. Aquacultural Engineering,
31(3-4), 221-236.
Olesen, I., Myhr, A. I., & Rosendal, G. K. (2011). Sustainable Aquaculture: Are We Getting There?
Ethical Perspectives on Salmon Farming. Journal of Agricultural and Environmental
Ethics, 24(4), 381-408. https://doi.org/10.1007/s10806-010-9269-z
ONM. (2015). Données hydrodynamiques. In. Alger: l’Office National de météorologie.
Opstvedt, J., Aksnes, A., Hope, B., & Pike, I. H. (2003). Efficiency of feed utilization in Atlantic
salmon (Salmo salar L.) fed diets with increasing substitution of fish meal with
vegetable proteins. Aquaculture, 221(1-4), 365-379.
Oulhiz, A. (2019). Évaluation, valorisation et utilisation des coproduits de la crevette (Penaeus
japonicus) et du thon rouge (Thunnus thynnus) pour l'alimentation du loup de mer
d'élevage (Dicentrarchus labrax) Université de Mostaganem-Abdelhamid Ibn Badis].
Mostaganem.
Pagand, P., Blancheton, J. P., Lemoalle, J., & Casellas, C. (2000). The use of high rate algal ponds
for the treatment of marine effluent from a recirculating fish rearing system.
Aquaculture Research, 31(10), 729-736.
Palmer, S. C., Gernez, P. M., Thomas, Y., Simis, S., Miller, P. I., Glize, P., & Barillé, L. (2020).
Remote sensing-driven Pacific oyster (Crassostrea gigas) growth modeling to inform
offshore aquaculture site selection. Frontiers in Marine Science, 6, 802.
Pamela, D., & Tom, P. G. O. (2010). Commercially Farmed and Wild-Caught Salmon. Sea Grant
Extension Program. 01, 6. Retrieved 11-01-2023, from
PAP/CAR. (1996). Approches pour l'amenagement de zones cotieres en relation avec
l'aquaculture en Mediterranee. Programme Actions Prioritaires/Centre d'Activites
Regionales (PAP-10/EAM/GL. 1. Split, Croatie, 1996, Issue. P. A. P. C. d. A. Regionales.
Papáček, Š., Petera, K., Císař, P., Stejskal, V., & Saberioon, M. (2020). Experimental &
computational fluid dynamics study of the suitability of different solid feed pellets for
aquaculture systems. Applied Sciences, 10(19), 6954.
Papatryphon, E., Petit, J., Van Der Werf, H. M. G., Sadasivam, K. J., & Claver, K. (2005). Nutrientbalance modeling as a tool for environmental management in aquaculture: The case of
trout farming in France [Article]. Environmental Management, 35(2), 161-174.
https://doi.org/10.1007/s00267-004-4020-z
Parra, L., Lloret, G., Lloret, J., & Rodilla, M. (2018). Physical sensors for precision aquaculture: A
Review. IEEE Sensors Journal, 18(10), 3915-3923.
Naylor, R. L., Goldburg, R. J., Primavera, J. H., Kautsky, N., Beveridge, M. C. M., Clay, J., . . .
Troell, M. (2000). Effect of aquaculture on world fish supplies. Nature, 405(6790), 10171024. https://doi.org/10.1038/35016500
Naylor, S., Brisson, J., Labelle, M., Drizo, A., & Comeau, Y. (2003). Treatment of freshwater fish
farm effluent using constructed wetlands: the role of plants and substrate. Water
Science and Technology, 48(5), 215-222.
Nazar, A. A., Jayakumar, R., & Tamilmani, G. (2013). Recirculating aquaculture systems.
Newell, C. R., Hawkins, A. J., Morris, K., Richardson, J., Davis, C., & Getchis, T. (2013). ShellGIS: a
dynamic tool for shellfish farm site selection. World Aquacult, 44, 50-53.
Newman, J., & Wu, T. (1975). Hydromechanical aspects of fish swimming. In Swimming and
flying in nature (pp. 615-634). Springer.
Nishanthan, G. (2015). Fish Farm & Staff Management System for Gamini Aquarium (Pvt.) Ltd
University Of Colombo].
Oca, J., & Masalo, I. (2013). Flow pattern in aquaculture circular tanks: Influence of flow rate,
water depth, and water inlet & outlet features. Aquacultural Engineering, 52, 65-72.
Oca, J., & Masaló, I. (2007). Design criteria for rotating flow cells in rectangular aquaculture
tanks. Aquacultural Engineering, 36(1), 36-44.
Oca, J., Masaló, I., & Reig, L. (2004). Comparative analysis of flow patterns in aquaculture
rectangular tanks with different water inlet characteristics. Aquacultural Engineering,
31(3-4), 221-236.
Olesen, I., Myhr, A. I., & Rosendal, G. K. (2011). Sustainable Aquaculture: Are We Getting There?
Ethical Perspectives on Salmon Farming. Journal of Agricultural and Environmental
Ethics, 24(4), 381-408. https://doi.org/10.1007/s10806-010-9269-z
ONM. (2015). Données hydrodynamiques. In. Alger: l’Office National de météorologie.
Opstvedt, J., Aksnes, A., Hope, B., & Pike, I. H. (2003). Efficiency of feed utilization in Atlantic
salmon (Salmo salar L.) fed diets with increasing substitution of fish meal with
vegetable proteins. Aquaculture, 221(1-4), 365-379.
Oulhiz, A. (2019). Évaluation, valorisation et utilisation des coproduits de la crevette (Penaeus
japonicus) et du thon rouge (Thunnus thynnus) pour l'alimentation du loup de mer
d'élevage (Dicentrarchus labrax) Université de Mostaganem-Abdelhamid Ibn Badis].
Mostaganem.
Pagand, P., Blancheton, J. P., Lemoalle, J., & Casellas, C. (2000). The use of high rate algal ponds
for the treatment of marine effluent from a recirculating fish rearing system.
Aquaculture Research, 31(10), 729-736.
Palmer, S. C., Gernez, P. M., Thomas, Y., Simis, S., Miller, P. I., Glize, P., & Barillé, L. (2020).
Remote sensing-driven Pacific oyster (Crassostrea gigas) growth modeling to inform
offshore aquaculture site selection. Frontiers in Marine Science, 6, 802.
Pamela, D., & Tom, P. G. O. (2010). Commercially Farmed and Wild-Caught Salmon. Sea Grant
Extension Program. 01, 6. Retrieved 11-01-2023, from
PAP/CAR. (1996). Approches pour l'amenagement de zones cotieres en relation avec
l'aquaculture en Mediterranee. Programme Actions Prioritaires/Centre d'Activites
Regionales (PAP-10/EAM/GL. 1. Split, Croatie, 1996, Issue. P. A. P. C. d. A. Regionales.
Papáček, Š., Petera, K., Císař, P., Stejskal, V., & Saberioon, M. (2020). Experimental &
computational fluid dynamics study of the suitability of different solid feed pellets for
aquaculture systems. Applied Sciences, 10(19), 6954.
Papatryphon, E., Petit, J., Van Der Werf, H. M. G., Sadasivam, K. J., & Claver, K. (2005). Nutrientbalance modeling as a tool for environmental management in aquaculture: The case of
trout farming in France [Article]. Environmental Management, 35(2), 161-174.
https://doi.org/10.1007/s00267-004-4020-z
Parra, L., Lloret, G., Lloret, J., & Rodilla, M. (2018). Physical sensors for precision aquaculture: A
Review. IEEE Sensors Journal, 18(10), 3915-3923.
