Skip to main content

Advertisement

Log in

Effects of supplementary feeding in carp ponds on discharge water quality: a review

  • Published:
Aquaculture International Aims and scope Submit manuscript

Abstract

Discharge of aquacultural wastewater can lead to eutrophication and disruption of natural ecosystems in receiving water bodies. A controlled waste production strategy is necessary, therefore, in order to maintain sustainable aquacultural growth. Along with fertilisation, supplementary feeding is the major source of allochthonous matter in aquaculture and management of aquacultural waste, therefore, should be approached through diet formulation and/or feeding strategy. The introduction of highly digestible feed has reduced solid waste excretion, and further reductions can be achieved through careful selection of ingredients and processing to improve nutrient availability. Dissolved nitrogen waste can be reduced by ensuring a balance between protein and energy, such that fish use non-protein sources as energy, while phosphorous waste can be reduced through careful ingredient selection and processing to improve digestibility. Thermal and mechanical treatment of feed cereals prior to application can also help decrease the amount of poorly or undigested feed. Finally, feeding practices that minimise wastage should also be explored as they have a significant impact, not only on waste output but also on the overall economy of carp pond farming.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2

Similar content being viewed by others

References

  • Abdelghany AE, Ahmad MH (2002) Effects of feeding rates on growth and production of Nile tilapia, common carp and silver carp polyculture in fertilized ponds. Aquac Res 33:415–423

    Google Scholar 

  • Abdel-Tawwab M, Ali E, Abdelghany AE, Ahmad MH (2007) Effect of diet supplementation on water quality, phytoplankton community structure, and the growth of nile tilapia, Oreochromis niloticus (L.), common carp, Cyprinus carpio (L.), and silver carp, Hypophthalmichthys molitrix (V.), polycultured in fertilized earthen ponds. J Appl Aquac 19(1):1–24

    Google Scholar 

  • Adámek Z, Maršálek B (2013) Bioturbation of sediments by benthic macroinvertebrates and fish and its implication for pond ecosystems: a review. Aquac Int 21(1):1–17

    Google Scholar 

  • Adámek Z, Párová J, Stibranyiová I (1997) Perspectives of phytase application in feed mixtures for reduction of phosphorus amounts in fish farm effluents. Krmiva (Zagreb) 39(3):115–122

    Google Scholar 

  • Adámek Z, Helešic J, Maršálek B, Rulík M (2010) Aplikovaná hydrobiologie (Applied Hydrobiology). FFPW USB Vodňany (In Czech)

  • Adámek Z, Linhart O, Kratochvíl M, Flajšhans M, Randák T, Policar T, Masojídek J, Kozák P (2012) Aquaculture the Czech Republic in 2012: modern European prosperous sector based on thousand-year history of pond culture. Aquac Eur 37(2):5–14

    Google Scholar 

  • Adhikari S, Sahu BC, Dey L (2012) Nutrients budget and effluents characteristics in polyculture of scampi (Macrobrachium rosenbergii) and Indian major carps ponds using organic inputs. Water Sci Technol 66(7):1540–1548

    CAS  PubMed  Google Scholar 

  • Ahmed I, Ashraf M, Abbas S, Akhtar P (2013) Effect of poultry droppings on water quality parameters in Indian major carp ponds. J Anim Plant Sci 23(1):68–75

    Google Scholar 

  • Akoll P, Konecny R, Mwanja WW, Schiemer F (2012) Risk assessment of parasitic helminths on cultured Nile tilapia (Oreochromis niloticus, L.). Aquaculture 356–357:123–127

    Google Scholar 

  • Alacrón FJ, Moyano FJ, Diaz M (1999) Effect of inhibitors present in protein sources on digestive proteases of juvenile sea bream (Sparus aurata). Aquat Living Resour 12:233–238

    Google Scholar 

  • Ali A, Bhatti MN, Khan MN, Rehman MH (2006) Role of soil and water chemistry in aquaculture. In Proceedings of International conference on “Solving Problems of Freshwater Fish Farming in Pakistan”, 27–28 Nov 2006

  • Amirkolaie AK (2011) Reduction in the environmental impact of waste discharged by fish farms through feed and feeding. Rev Aquac 3:19–26

    Google Scholar 

  • Amirkolaie AK, El-Shafai SA, Ding EH, Schrama JW, Verreth JAJ (2005a) Comparison of faecal collection method with high and low quality diets regarding digestibility and faeces characteristics measurements in Nile tilapia. Aquac Res 36:578–585

    Google Scholar 

  • Amirkolaie AK, Leenhouwers JI, Verreth JAJ, Schrama JW (2005b) Type of dietary fibre (soluble versus insoluble) influences digestion, faeces characteristics and faecal waste production in Nile tilapia. Aquac Res 36:1157–1166

    CAS  Google Scholar 

  • Amirkolaie AK, Verreth JAJ, Schrama JW (2006) Effect of gelatinization degree and inclusion level of dietary starch on the characteristics of digesta and faeces in Nile tilapia (Oreochromis niloticus (L.). Aquaculture 260:194–205

    CAS  Google Scholar 

  • Avnimelech Y, Lacher M (1979) A tentative nutrient balance for intensive fish ponds. Bamidgeh 31:3–8

    CAS  Google Scholar 

  • Avnimelech Y, Kochva M, Hargreaves JA (1999) Sedimentation and resuspension in earthen fish ponds. J World Aquac Soc 30:401–409

    Google Scholar 

  • Banas D, Masson G, Leglize L, Pihan J-C (2002) Discharge of sediments, nitrogen (N) and phosphorus (P) during the emptying of extensive fishponds: effect of rain-fall and management practices. Hydrobiologia 472:29–38

    CAS  Google Scholar 

  • Banas D, Masson G, Leglize L, Usseglio-Polatera P, Boyd CE (2008) Assessment of sediment concentration and nutrient loads in effluents drained from extensively managed fishponds in France. Environ Pollut 152:679–685

    CAS  PubMed  Google Scholar 

  • Barszczewski J, Kaca E (2012) Water retention in ponds and the improvement of its quality during carp production. J Water Land Dev 17:31–38

    Google Scholar 

  • Baruah K, Sahu NP, Pal AK, Debnath D (2004) Dietary phytase: an ideal approach for a cost effective and low polluting aqua feed. NAGA World Fish Centre Q 27:15–19

    Google Scholar 

  • Bechara JA, Roux JP, Díaz FJR, Quintana CIF, de Meabe CAL (2005) The effect of dietary protein level on pond water quality and feed utilization efficiency of pacú Piaractus mesopotamicus (Holmberg, 1887). Aquac Res 36:546–553

    CAS  Google Scholar 

  • Bergheim A, Asgard T (1996) Waste production in aquaculture. In: Baird DJ, Beveridge MCM, Kelly LA, Muir JF (eds) Aquaculture and waste resource management. Blackwell Science, Oxford

    Google Scholar 

  • Bergheim A, Silvertsen A (1981) Oxygen consuming properties of effluents from fish farms. Aquaculture 22:185–187

    Google Scholar 

  • Beveridge MCM (1984) Cage and pen fish farming. Carrying capacity models and environmental impact. FAO Fish Tech Pap 255

  • Beveridge MCM, Philips MJ, Macintosh DC (1997) Aquaculture and environment: the supply and demand for environment goods and services by Asian aquaculture and the implications for sustainability. Aquac Res 28:101–111

    Google Scholar 

  • Billard R, Perchec G (1993) Systems and technologies of production and processing for carp. In: Kestemont P, Billard R (eds) Aquaculture of freshwater species (except Salmonids), EAS Spec Publ 20. Oostende, Belgium

    Google Scholar 

  • Biswas JK, Sarkar D, Chakraborty P, Bhakta JN, Jana BB (2006) Density dependent ambient ammonium as the key factor for optimization of stocking density of common carp in small holding tanks. Aquaculture 261:952–959

    CAS  Google Scholar 

  • Boyd CE (1982) Water quality management for pond fish culture. Elsevier, New York

    Google Scholar 

  • Boyd CE (1985) Chemical budgets for channel catfish ponds. Trans Am Fish Soc 114:291–298

    Google Scholar 

  • Boyd CE, Massaut L (1999) Risks associated with the use of chemicals in pond aquaculture. Aquac Eng 20:113–132

    Google Scholar 

  • Boyd CE, Tucker CS (1998) Pond aquaculture water quality management. Kluwer Academic Publishers, USA

    Google Scholar 

  • Brinker A, Friedrich C (2012) Fish meal replacement by plant protein substitution and guar gum addition in trout feed. Part II: effects on faeces stability and rheology. Biorheology 49(1):27–48

    CAS  PubMed  Google Scholar 

  • Brune DE, Schwartz G, Eversole AG, Collier JA, Schwedler TE (2003) Intensification of pond aquaculture and high rate photosynthetic systems. Aquac Eng 28:65–86

    Google Scholar 

  • Buchanan J (1990) The use of chemicals in farming Atlantic salmon—the industry viewpoint. In: Oliver P, Colleran E (eds) Interactions between aquaculture and the environment. An Taisce. The National Trust for Ireland, Dublin

    Google Scholar 

  • Bueno GW, Feiden A, Neu DH, Lui TA, Wachter N, Boscolo WR (2012) Digestibility of phosphorus in feed as a nutritional strategy for reduce of effluents from tilapia culture. Arq Bras Med Vet Zoo 64(1):183–191

    CAS  Google Scholar 

  • Bureau DP, Hua K (2010) Towards effective nutritional management of waste outputs in aquaculture, with particular reference to salmonid aquaculture operations. Aquac Res 41:777–792

    Google Scholar 

  • Butz I (1988) Situation of fish-farm effluents in Austria. Monistettuja Julkaisuja (Helsinki) 74:4–12

    Google Scholar 

  • Buyukates Y, Rawles SD, Gatlin DM III (2000) Phosphorus fractions of various feedstuffs and apparent phosphorus availability to channel catfish. N Am J Aquac 62:184–188

    Google Scholar 

  • Chatterjee DK, Saha PK, Adhikari S, Mondal AK (1997) Exploitation efficiency of added nitrogen and its effect on pond environment in freshwater carp culture. J Aquac Trop 12:123–131

    Google Scholar 

  • Chen S, Coffin DE, Malone RF (1997) Sludge production and management for recirculating aquaculture system. J World Aquac Soc 28:303–315

    Google Scholar 

  • Cho CY, Bureau DP (1997) Reduction of waste output from salmonid aquaculture through feeds and feeding. Progress Fish Cult 59:155–160

    Google Scholar 

  • Cho CY, Bureau DP (2001) A review of diet formulation strategies and feeding systems to reduce excretory and feed wastes in aquaculture. Aquac Res 32:349–360

    CAS  Google Scholar 

  • Cho CY, Hynes JD, Wood KR, Yoshida HK (1994) Development of high-nutrient-dense, low-pollution diets and prediction of aquaculture wastes using biological approaches. Aquaculture 124:293–305

    Google Scholar 

  • Cho SH, Lee S-M, Park BH, Lee S-M (2006) Effect of feeding ratio on growth and body composition of juvenile olive flounder Paralichthys olivaceus fed extruded pellets during the summer season. Aquaculture 251:78–84

    Google Scholar 

  • Ćirić M, Subakov-Simić G, Dulić Z, Bjelanović K, Čičovački S, Marković Z (2013) Effect of supplemental feed type on water quality, plankton and benthos availability and carp (Cyprinus carpio L.) growth in semi-intensive monoculture ponds. Aquac Res. doi:10.1111/are.12230

  • Cirkovic M, Jovanovic B, Maletin S (2002) Ribarstvo. (Fisheires) Univerzitet u Novom Sadu, Poljoprivredni fakultet (in Serbian)

  • Colt J (2006) Water quality requirements for reuse systems. Aquac Eng 34:143–156

    Google Scholar 

  • Cossa J, Oloffs K, Kluge H, Drauschke W, Jeroch H (2000) Variabilities of total and phytate phosphorus contents as well as phytase activity in wheat. Tropenlandwirt 101:119–126

    Google Scholar 

  • Crab R, Avnimelech Y, Defoirt T, Bossier P, Verstraete W (2007) Nitrogen removal techniques in aquaculture for a sustainable production. Aquaculture 270:1–14

    CAS  Google Scholar 

  • Cross TF (1992) Potential genetic interactions between reared and wild fish in Europe, with particular emphasis on Atlantic salmon. In: De Pauw N, Joyce J (eds) Aquaculture Europe ’91—Aquaculture and the Environment. EAS Spec Publ, 16, Ghent, Belgium

  • Dalsgaard J, Verlhac V, Hjermitslev NH, Ekmann KS, Fischer M, Klausen M, Pedersen PB (2012) Effects of exogenous enzymes on apparent nutrient digestibility in rainbow trout (Oncorhynchus mykiss) fed diets with high inclusion of plant-based protein. Anim Fed Sci Technol 171(2–4):181–191

    CAS  Google Scholar 

  • Das PC, Ayyappan S, Jena J (2005) Comparative changes in water quality and role of pond soil after application of different levels of organic and inorganic inputs. Aquac Res 36:785–798

    Google Scholar 

  • Diana JS, Szyper JP, Batterson TR, Boyd CE, Piedrahita RH (1997) Water quality in ponds. In: Egna HS, Boyd CE (eds) Dynamics of pond aquaculture. CRC Press LLC, Boca Raton

    Google Scholar 

  • Dosdat A, Servais F, Métailler R, Huelvan C, Desbruyéres E (1996) Comparison of nitrogenous losses in five teleost fish species. Aquaculture 141:107–127

    Google Scholar 

  • Dulic Z, Subakov-Simic G, Ciric M, Relic R, Lakic N, Stankovic M, Markovic Z (2010) Water quality in semi-intensive carp production system using three different feeds. Bulg J Agric Sci 16(3):266–274

    Google Scholar 

  • Duras J, Potužák J (2012) First results obtained by monitoring of phosphorus mass balance of several fish ponds. Vodní hospodářství 6:210–216 (In Czech)

    Google Scholar 

  • Edwards P (2007) Pilgrimage to traditional carp pond culture in Central Europe. Aquac Asia 12(4):28–34

    Google Scholar 

  • Eeckhout W, De Paepe M (1994) Total phosphorus, phytate-phosphorus and phytase activity in plant feedstuffs. Anim Feed Sci Technol 47:19–29

    CAS  Google Scholar 

  • El Samra MI, Olah J (1979) Significance of nitrogen-fixation in fish ponds. Aquaculture 18(4):367–372

    Google Scholar 

  • Eshchar M, Lahav O, Mozes N, Peduel A, Ron B (2006) Intensive fish culture at high ammonium and low pH. Aquaculture 255:301–313

    CAS  Google Scholar 

  • FAO (Food and Agriculture Organization of the United Nations) (2010) The state of world fisheries and aquaculture. FAO, Rome

    Google Scholar 

  • Filbrun JE, Culver DA (2013) Can reduced provision of manufactured feed improve fish production efficiency in ponds? N Am J Aquac 75(1):64–76

    Google Scholar 

  • Fournier V, Gouillou-Coustans MF, Métailler R, Vachot C, Moriceau J, le Delliou H, Huelvan C, Desbruyeres E, Kaushik SJ (2003) Excess dietary arginine affects urea excretion but does not improve N utilization in rainbow trout Oncorhynchus mykiss and turbot Psetta maxima. Aquaculture 217:559–576

    CAS  Google Scholar 

  • Foy RH, Rosell R (1991) Loadings of nitrogen and phosphorus from a Northern Ireland fish farm. Aquaculture 96:17–31

    Google Scholar 

  • Friedman M (1996) Nutritional value of proteins from different food sources. A review. J Agric Food Chem 44:6–29

    CAS  Google Scholar 

  • Füllner G, Langner N, Pfeifer M (2000) Ordnungsgemässe Teichbewirtschaftung im Freistaat Sachsen,Sachsisches Landesanstalt für Landwirtschaft, Referat Fischerei Königswarta, p 66

  • Füllner G, Pfeifer M, Langner N (2007) Karpfenteichwirtschaft, Bewirtschaftung von Karpfenteichen, Gute fachliche Praxis. Freistaat Sachsen, Sachsische Landesanstalt für Landwirtschaft, Dresden (In German)

    Google Scholar 

  • Gál D, Szabó P, Pekár F, Váradi L (2003) Experiments on the nutrient removal and retention of a pond recirculation system. Hydrobiologia 506–509:767–772

    Google Scholar 

  • Gál D, Pekár F, Kosáros T, Kerepeczki E (2013) Potential of nutrient reutilisation in combined intensive–extensive pond systems. Aquac Int 21:927–937

    Google Scholar 

  • Gatlin DM III, Barrows FT, Brown P, Dabrowski K, Gaylord TG, Hardy RW, Herman E, Hu G, Krogdahl Å, Nelson R, Overturf K, Rust M, Sealey W, Skonberg D, Souza EJ, Stone D, Wilson R, Wurtele E (2007) Expanding the utilization of sustainable plant products in aquafeeds: a review. Aquac Res 38(6):551–579

    CAS  Google Scholar 

  • Glencross BD, Booth M, Allan GL (2007) A feed is only as good as its ingredients—a review of ingredient evaluation strategies for aquaculture feeds. Aquac Nutr 13:17–34

    CAS  Google Scholar 

  • Gondwe MJS, Guildford SJ, Hecky RE (2011) Carbon, nitrogen and phosphorus loadings from tilapia fish cages in Lake Malawi and factors influencing their magnitude. J Great Lakes Res 37(1):93–101

    CAS  Google Scholar 

  • Gowen RJ, Brown JR, Bradbury NB, McLusky DS (1988) Investigations into benthic enrichment, hypernutrification and eutrophication associated with mariculture in Scottish coastal waters (1984–1988). Dept Biological Science, University of Stirling

  • Gowen RJ, Rosenthal H, Mitkinen T, Ezzi I (1990) Environmental impact of aquaculture activities. In: De Pauw N, Billard R (eds) Aquaculture Europe ’89—Business joins Science. EAS Spec Publ, 12, Bredene, Belgium

  • Gozlan RE, St-Hilaire S, Feist SW, Martin P, Kent ML (2005) Disease threat to European fish. Nature 435:1046

    CAS  PubMed  Google Scholar 

  • Gross A, Boyd C, Wood CW (2000) Nitrogen transformations and balance in channel catfish ponds. Aquac Eng 24:1–14

    Google Scholar 

  • Hakanson L, Carlsson L, Johansson T (1998) A new approach to calculate the phosphorus load to lakes from fish farm emissions. Aquac Eng 17(3):149–166

    Google Scholar 

  • Han X, Rosati R, Webb J (1996) Correlation of the particle size distribution of solid waste to fish feed composition in an aquaculture recirculation system. In: Libey G (ed) Success and failure in commercial recirculating aquaculture. Virginia-Tech, Roanoke

    Google Scholar 

  • Hardy RW (1996) Alternative protein sources for salmon and trout diets. Anim Feed Sci Technol 59:71–78

    Google Scholar 

  • Hardy RW (2008) Utilization of plant proteins in fish diets; effects of global demand and supplies of grains and oilseeds. In: Resource management: Natural, human and material resources for the sustainable development of aquaculture. Aquaculture Europe 2008, Krakow, Poland

  • Hargreaves JA (1998) Nitrogen biogeochemistry of aquaculture ponds (review). Aquaculture 166:181–212

    CAS  Google Scholar 

  • Hartman P (2012) Pond biocenosis nutrition using organic fertilizers. Edition of Methods No. 127, Vodňany, 35

  • Hasan MR (2001) Nutrition and feeding for sustainable aquaculture development in the third millennium. In: Technical Proceedings of the conference on aquaculture in the third millennium, Bangkok, Thailand

  • Hendricks JD, Bailey GS (1989) Adventitious toxins. In: Halver JE (ed) Fish nutrition. Academic Press, London

    Google Scholar 

  • Hepher B (1958) On the dynamics of phosphorus added to fishponds in Israel. Limnol Oceanogr 3:84–100

    Google Scholar 

  • Hepher B, Pruginin Y (1981) Commercial fish farming with special reference to fish culture in Israel. Wiley Interscience, New York

    Google Scholar 

  • Hepher B, Pruginin Y (1982) Tilapia culture in ponds under controlled conditions. In: Pullin RSV, McConnel RHL (eds) The biology and culture of tilapias. International Conference on the Biology and Culture of Tilapias, Bellagio, Italy

  • Hernández M, Takeuchi T, Watanabe T (1994) Effect of gelatinized corn meal as a carbohydrate source on growth performance, intestinal evacuation and starch digestion in common carp. Fish Sci 60:579–582

    Google Scholar 

  • Hofer R, Sturmbauer C (1985) Inhibition of trout and carp α-amylase by wheat. Aquaculture 48:277–283

    CAS  Google Scholar 

  • Holmer M (1992) Impacts of aquaculture on surrounding sediments: generation of organic-rich sediments. In: Pauw ND, Joyce J (eds) Aquaculture and the environment, EAS Spec Publ, 16. Ghent, Belgium

    Google Scholar 

  • Horner GH, Rosenthal H, Kruner G (1987) Fluctuation of water quality during the experimental rearing of juvenile Sarotherodon galilaeus. J Aquac Trop 2:273–276

    Google Scholar 

  • Horváth L, Tamás G, Seagrave C (1992) Carp and pond fish culture. Fishing News Books, Blackwell Scientific Publications Ltd., UK

  • Hoverman JT, Gray MJ, Miller DL, Haislip NA (2012) Widespread occurrence of ranavirus in pond-breeding amphibian populations. EcoHealth 9(1):36–48

    PubMed  Google Scholar 

  • Hua K, Bureau DP (2012) Exploring the possibility of quantifying the effects of plant protein ingredients in fish feeds using meta-analysis and nutritional model simulation-based approaches. Aquaculture 356–357:284–301

    Google Scholar 

  • Hubbert RM (1983) Effect of anaerobically digested animal manure on the bacterial flora of common carp C. carpio. Bamidgeh 35:13–19

    Google Scholar 

  • Jahan P, Watanabe T, Satoh S, Kiron V (2000) Effect of dietary fish meal levels on environmental phosphorus loading from carp culture. Fish Sci 66:204–210

    CAS  Google Scholar 

  • Jahan P, Watanabe T, Satoh S, Kiron V (2001) Formulation of low phosphorus loading diets for carp (Cyprinus carpio L.). Aquac Res 32(1):361–368

    Google Scholar 

  • Jahan P, Watanabe T, Satoh S, Kiron V (2002) A laboratory-based assessment of phosphorus and nitrogen loading from currently available commercial carp feeds. Fish Sci 68:579–586

    CAS  Google Scholar 

  • Jahan P, Watanabe T, Kiron I, Satoh SH (2003) Balancing protein ingredients in carp feeds to limit discharge of phosphorus and nitrogen into water bodies. Fish Sci 69:226–233

    CAS  Google Scholar 

  • Jahan R, Khan S, Haque MM, Choi JK (2010) Study of harmful algal blooms in a eutrophic pond, Bangladesh. Environ Monit Assess 170(1–4):7–21

    CAS  PubMed  Google Scholar 

  • Jana BB, Sarkar D (2005) Water quality in aquaculture-impact and management: a review. Indian J Anim Sci 75(11):1354–1361

    CAS  Google Scholar 

  • Jauncey K (1982) Carp (Cyprinus carpio L.) nutrition—a review. In: Muir JF, Ronerts RJ (eds) Recent advances in aquaculture. Gromm Helm Ltd, London

    Google Scholar 

  • Jirásek J, Mareš J, Zeman L (2005) Nutrition requirement and tables of fish feed nutritive value. Final report MZLU, Brno (In Czech)

  • Johnsen F, Hillestad M, Austreng E (1993) High energy diets for Atlantic salmon. Effects on pollution. In: Kaushik SJ, Luquet P (eds) Fish nutrition in practice. Les Colloques n.61, INRA ed., Versailles Cedex, France

  • Kainz E (1985) Zur Auswirkung von Karpfenteichabflüssen auf die Wasserqualität von Vorflutem. Öster Fisch 38(4):88–96

    Google Scholar 

  • Kalous L, Memis D, Bohlen J (2004) Finding of triploid Carassius gibelio (Bloch, 1780) (Cypriniformes, Cyprinidae), in Turkey. Cybium 28:77–79

    Google Scholar 

  • Kanclerz J (2005) The impact of carp fish ponds on quality of outflow water from the catchment. In: Piecuch T (ed) 7th National polish scientific conference on complex and detailed problems of environmental engineering, Koszalin. Zeszyty naukowe wydzialu budownictwai i inzynierii srodowiska, vol 22, pp 823–832

  • Kaushik SJ (1993) Nutrient requirements, supply and utilization in the context of carp culture. Aquaculture 129:225–241

    Google Scholar 

  • Kaushik SJ (1994) Nutritional strategies for the reduction of aquaculture wastes. In: Cho KD (ed) Proceedings of FOID 94. The third international conference on fisheries and ocean industrial development for productivity enhancement of the Coastal Waters, Pusan, Korea

  • Kaushik SJ (1998) Nutritional bioenergetics and estimation of waste production in non-salmonids. Aquat Living Resour 11:211–217

    Google Scholar 

  • Kaushik SJ, Dabrowski K (1983) Nitrogen and energy utilization in juvenile carp fed casein, amino acids or a protein-free diet. Reprod Nutr Dev 23:741–754

    CAS  Google Scholar 

  • Kaushik SJ, Dabrowski K, Luquet P (1982) Patterns of nitrogen excretion and oxygen consumption during ontogenesis of common carp (Cyprinus carpio). Can J Fish Aquat Sci 39(8):1095–1105

    CAS  Google Scholar 

  • Kearns JP (1993) Extrusion of aquatic feed. Technol Bull Am Soyb Assoc 40:16–34

    Google Scholar 

  • Keshavanath P, Manjappa K, Gangadhara B (2002) Evaluation of carbohydrate rich diets through common carp culture in manured tanks. Aquac Nutr 8(3):169–174

    Google Scholar 

  • Kestemont P (1995) Different systems of carp production and their impacts on the environment. Aquaculture 129:347–372

    Google Scholar 

  • Kiang JK (1999) The principles of extruding fishfeeds. Feed Technol 3(6):48–49

    Google Scholar 

  • Kim JD, Kim KS, Song JS, Lee JY, Jeong KS (1998) Optimum level of dietary monocalcium phosphate based on growth and phosphorus excretion of mirror carp, Cyprinus carpio. Aquaculture 161:337–344

    CAS  Google Scholar 

  • Kim JC, Mullan BP, Selle PH, Pluske JR (2002) Levels of total phosphorus, phytate-phosphorus, and phytase activity in three varieties of Western Australian wheats in response to growing region, growing season, and storage. Aust J Agric Res 53(12):1361–1366

    CAS  Google Scholar 

  • Kirchgessner M (1982) Tierernährung. DGL-Verlag, Frankfurt am Main

  • Kloskowski J (2011) Differential effects of age-structured common carp (Cyprinus carpio) stocks on pond invertebrate communities: implications for recreational and wildlife use of farm ponds. Aquac Int 19:1151–1164

    Google Scholar 

  • Knösche R, Schreckenbach K, Pfeifer M, Weissenbach H (1998) Phosphor-und Stickstoffbilanzen von Karpfenteichen. Z Okologie Naturschutz 7:181–189

    Google Scholar 

  • Knösche R, Schreckenbach K, Pfeifer M, Weissenbach H (2000) Balances of phosphorus and nitrogen in carp ponds. Fish Manag Ecol 7(1–2):15–22

    Google Scholar 

  • Kolasa-Jamińska B (1994) Improvement of the biotechnique of carp fingerling culture. Characteristics of pattern of hydrochemical conditions in the course of intensive carp fingerling culture. Acta Hydrobiol 36(2):145–158

    Google Scholar 

  • Kolasa-Jamińska B (2002) The intensification of pond fish production and the magnitude of the waste load discharged during autumn harvesting. Arch Pol Fish 10:187–205

    Google Scholar 

  • Koltai T, Hanez C, Magyary I, Horn P (2002) Studies on the effect of nitrate selective resin on water quality and growth rate of common carp (Cyprinus carpio L.) reared in recirculating system. Acta Agraria Kapesváriensis 6(2):277–283

    Google Scholar 

  • Kopp R, Šťastný J, Sukop I, Brabec T, Zíková A, Spurný P, Mareš J (2012) Water quality and biotic community of a highland stream under the influence of a eutrophic fishpond. Int Rev Hydrobiol 97(1):26–40

    CAS  Google Scholar 

  • Kořínek V, Fott J, Fuksa J, Lellák J, Pražáková M (1987) Carp ponds of central Europe. In: Michael RG (ed) Manager aquatic ecosystem. Ecosystems of the World Vol. 29, Elsevier Amsterdam

  • Kowieska A, Lubowicki R, Jaskowska I (2011) Chemical composition and nutritional characteristics of several cereal grain. Acta Sci Pol Zootech 10(2):37–50

    Google Scholar 

  • Krogdahl Å, Hemre G-I, Mommsen TP (2005) Carbohydrates in fish nutrition: digestion and absorption in postlarval stages. Aquac Nutr 11:103–122

    CAS  Google Scholar 

  • Kroupova H, Machova J, Svobodova Z (2005) Nitrite influence on fish: a review. Vet Med Czech 50(11):461–471

    Google Scholar 

  • Kumar V, Sinha AK, Makkar HPS, De Boeck G, Becker K (2012) Phytate and phytase in fish nutrition. J Anim Physiol An N 96:335–364

    CAS  Google Scholar 

  • Lád F (2003) Feed tables. Final report JČU, České Budějovice (in Czech)

  • Lall SP (1991) Digestibility, metabolism and excretion of dietary phosphorus in fish. In: Proceedings of the 1st international symposium on nutritional strategies in management of aquaculture waste, Guelph, Ontario, Canada. Fish Nutrition Research Laboratory, University of Guelph, Canada

  • Lazzari R, Baldisserotto B (2008) Nitrogen and phosphorus waste in fish farming. Bol Inst Pesca 34(4):591–600

    Google Scholar 

  • Lefrancois P, Puigagut J, Chazarenc F, Comeau Y (2010) Minimizing phosphorus discharge from aquaculture earth ponds by a novel sediment retention system. Aquac Eng 43(3):94–100

    Google Scholar 

  • Lemarie G, Martin JLM, Dutto G, Garidou C (1998) Nitrogenous and phosphorous waste production in a flow-through land-based farm of european seabass (Dicentrarchus labrax). Aquat Living Resour 11(4):247–254

    Google Scholar 

  • Lewkowicz S (1996) Effect of carp ponds on nutrient composition of riverine waters supplying the Goczałkowice Reservoir. Acta Hydrobiol 37(1):37–44

    Google Scholar 

  • Lin CK, Yi Y (2003) Minimizing environmental impacts of freshwater aquaculture and reuse of pond effluents and mud. Aquaculture 226:57–68

    CAS  Google Scholar 

  • Lin CK, Shrestha MK, Thakur DP, Diana JS (1998) Management to minimize the environmental impacts of pond draining. In: Burke D, Baker J, Goetze B, Clair D, Egna H (eds) Fifteenth Annual Technical Report, Pond Dynamics/Aquaculture CRSP, Office of International Research and Development, Oregon State University, Corvallis, Oregon

  • Lin CK, Shrestha MK, Shivappa RB, Thakur DP, Diana JS (1999) Management to minimize the environmental impact of pond draining: effect of harvest draining technique on water quality and fish growth. In: McElwee K, Burke D, Niles M, Egna H (eds) Sixteenth annual technical report, Pond Dynamics/Aquaculture CRSP, Office of International Research and Development, Oregon State University, Corvallis, Oregon

  • Lloyd LE, MacDonald BE, Crampton EW (1978) Fundamentals of nutrition, 2nd edn. W.H. Freeman, San Francisco

    Google Scholar 

  • Lupatsch I, Kissil GW (1998) Predicting aquaculture waste from gilthead seabream (Sparus aurata) culture using a nutritional approach. Aquat Living Resour 11(4):265–268

    Google Scholar 

  • Lusk S, Luskova V, Hanel L (2010) Alien fish species in the Czech Republic and their impact on the native fish fauna. Folia Zoo 59(1):57–72

    Google Scholar 

  • Lymbery P (1992) The welfare of farmed fish. Compassion in World Farming—England

  • Máchová J, Valentová O, Faina R, Svobodová Z, Kroupová H, Mráz J (2010a) Water pollution by carp originating from different pond management systems. Bull VÚRH Vodňany 46(1):31–38

    Google Scholar 

  • Máchová J, Faina R, Mráz J, Picková J, Valentová O, Beránková P, Sudová E, Svobodová Z (2010b) Pond management intensity impact on water and fish muscle quality. Bull VÚRH Vodňany 46(1):19–30

    Google Scholar 

  • Mallekh R, Boujard T, Lagardère JP (1999) Evaluation of retention and environmental discharge of nitrogen and phosphorus by farmed turbot (Scophthalmus maximus). N Am J Aquacult 61:141–145

    Google Scholar 

  • Manz D, Tschirschnitz M, Teichmann W (1988) Untersuchungen zum Einfluss von Teichwirschaften auf die Qualität der Fliessgewasser. Wasser Boden 40(11):615–619

    Google Scholar 

  • Másílko J, Hartvich P (2010) Utilization of modified cereals in market carp farming (a review). Bull VÚRH Vodňany 46(2):35–43

    Google Scholar 

  • Másílko J, Urbánek M, Hartvich P, Hůda J (2009) Efficient supplementary feeding with mechanically treated cereals in carp farming on the Třeboň Fisheries Co. Edition of Methods No. 98, Vodňany, 11

  • Masseret E, Amblard C, Bourdier G (1998) Changes in the structure and metabolic activities of periphytic communities in a stream receiving treated sewage from a waste stabilization pond. Water Res 32(8):2299–2314

    CAS  Google Scholar 

  • Mazurkiewicz J, Przybyl A, Czyzak-Runowska G, Lyczynski A (2011) Cold-pressed rapeseed cake as a component of the diet of common carp (Cyprinus carpio L.): effects on growth, nutrient utilization, body composition and meat quality. Aquac Nutr 17:387–394

    CAS  Google Scholar 

  • McGoogan BB, Gatlin DM (2000) Dietary manipulations affecting growth and nitrogenous waste production of red drum, Sciaenops ocellatus. II. Effects of energy level and nutrient density at various feeding rates. Aquaculture 182:271–285

    Google Scholar 

  • Medale F, Poli JM, Vallee F, Blanc D (1999) Utilisation of a carbohydrate-rich diet by common carp reared at 18 and 25 degrees C. Cybium 23:139–152

    Google Scholar 

  • Milstein A (1993) Water quality and fresh water fish culture intensification: the Israeli example. Aquac Fish Manag 24:715–724

    Google Scholar 

  • Milstein A, Svirsky F (1996) Effect of fish species combinations on water chemistry and plankton composition in earthen fish ponds. Aquac Res 27(2):79–90

    Google Scholar 

  • Milstein A, Zaron M, Kochba M, Avnimelech Y (2001) Effect of different management practices on water quality of intensive tilapia culture systems in Israel. Aquac Int 9(2):133–152

    CAS  Google Scholar 

  • Misra CK, Sahu NP, Jain KK (2002) Effect of extrusion processing and steam pelleting diets on pellet durability, water absorbtion and physical response on Macrobrachium rosenbergii. Asian Australas J Anim 15:1354–1358

    Google Scholar 

  • Moore LB (1985) The role of feeds and feeding in aquatic animals production. GeoJournal 10:245–251

    Google Scholar 

  • Mráz J, Picková J (2009) Differences between lipid content and composition of different parts of fillets from crossbred farmed carp (Cyprinus carpio). Fish Physiol Biochem 35:615–623

    PubMed  Google Scholar 

  • Mráz J, Máchová J, Kozák P, Pickova J (2012) Lipid content and composition in common carp—optimization of n-3 fatty acids in different pond production systems. J Appl Ichthyol 28:238–244

    Google Scholar 

  • Muir JF (1982) Economic aspects of waste treatment in fish culture. EIFAC Tech Pap 41:123–135

    Google Scholar 

  • Musil J, Adámek Z, Baranyi C (2007) Seasonal dynamics of fish assemblage in a pond canal. Aquac Int 15(3–4):217–226

    Google Scholar 

  • Musil J, Jurajda P, Adámek Z, Horký P, Slavík O (2010) Non-native fish introductions in the Czech Republic—species inventory, facts and future perspectives. J Appl Ichthyol 26:38–45

    Google Scholar 

  • Naylor RL, Goldburg RJ, Primavera JH, Kautsky N, Beveridge MCM, Clay J et al (2000) Effect of aquaculture on world fisheries supplies. Nature 405:1017–1023

    CAS  PubMed  Google Scholar 

  • Nowosad J, Żarski D, Biłas M, Dryl K, Krejszeff S, Kucharczyk D (2013) Dynamics of ammonia excretion in juvenile common tench, Tinca tinca (L.), during intensive rearing under controlled conditions. Aquac Int 21:629–637

    CAS  Google Scholar 

  • NRC (1993) U.S. National Research Council. Nutrients requirements of fish. National Academy Press

  • Nwanna LC, Kühlwein H, Schwarz FJ (2010) Phosphorus requirement of common carp (Cyprinus carpio L) based on growth and mineralization. Aquac Res 41:401–410

    CAS  Google Scholar 

  • Olah J (1986) Carp production in manured ponds. In: Billard R, Marcel J (eds) Aquaculture of cyprinids. INRA, Paris

    Google Scholar 

  • Olah J, Moneim MAA, Toth L (1983) Nitrogen-fixation in the sediment of shallow Lake Balaton, a reservoir and fishponds. Int Rev Hydrobiol 68(1):13–44

    CAS  Google Scholar 

  • Olah J, Szabo P, Esteky AA, Nezami SA (1994) Nitrogen processing and retention in Hungarian carp farm. J Appl Ichthyol 10(4):335–340

    CAS  Google Scholar 

  • Paspatis M, Boujard T, Maragoudaki D, Kentouri M (2000) European sea bass growth and N and P loss under different feeding practices. Aquaculture 184:77–88

    CAS  Google Scholar 

  • Pechar L (2000) Impacts of long-term changes in fishery management on the trophic level water quality in Czech fish ponds. Fish Manag Ecol 7(1–2):23–31

    Google Scholar 

  • Petrovici M, Balan MS, Gruia R, Pop OG (2010) Diversity of macrozoobenthic community from fish farms as a consequence of the fisheries management. Environ Eng Manag J 9(12):1589–1592

    Google Scholar 

  • Phillips AM Jr, Podoliak HA, Brokwya DR, Vaughn RJ (1958) The nutrition of trout. Fish Res Bull No.21, NY Cons Dept, Albany

  • Phillips MJ, Clarke R, Mowat A (1993) Phosphorus leaching from Atlantic salmon diets. Aquac Eng 12:47–54

    Google Scholar 

  • Pokorný J, Fleischer S, Pechar L, Pansar J (1999) Nitrogen distribution in hypertrophic fishpond and composition of gas produce in sediment. In: Vymazal J (ed) Nutrient cycling and retention in natural and constructed wetlands. Backhuys, Leiden, pp 111–120

    Google Scholar 

  • Ponce JT, Arredondo JL, de la Lanza G (1994) Effects of polyculture and fertilization on water quality in carp ponds. 1. Physico-chemical factors. Verh Internat Verein Limnol 25:1315–1317

    CAS  Google Scholar 

  • Potužák J, Hůda J, Pechar L (2007) Changes in fish production effectivity in eutrophic fishpondsimpact of zooplankton structure. Aquac Int 15(3–4):201–210

    Google Scholar 

  • Poxton MG, Allouse SB (1987) Cyclical fluctuations of ammonia and nitrite nitrogen resulting from feeding of turbot, Scophthalmus maximus (L.), in recirculating systems. Aquac Eng 6:301–322

    Google Scholar 

  • Poxton MG, L1oyd NJ (1989) Fluctuations in ammonia production by eels (Anguilla anguilla L.) as a result of feeding strategy. In: Pauw NDe, Jaspers E, Ackefors H, Wilkins N (eds) Aquaculture-a biotechnology in progress. Vol 2. European Aquaculture Society, Bredene, Belgium

  • Przybyl A, Mazurkiewicz J (2004) Nutritive value of cereals in feeds for common carp (Cyprinus carpio L.). Czech. J Anim Sci 49(7):307–314

    CAS  Google Scholar 

  • Pursiainen M (1988) National contributions on suspended solids from land-based fish farms. Monistettuja Julkaisuja, Helsinki

    Google Scholar 

  • Rahman MM (2006) Food web interactions and nutrients dynamics in polyculture ponds. Dissertation, Wageningen University, The Netherlands

  • Rahman MM, Verdegem M, Nagelkerke L, Wahab MA, Milstein A, Verreth J (2008a) Effects of common carp Cyprinus carpio (L) and feed addition in rohu Labeo rohita (Hamilton) ponds on nutrient partitioning among fish, plankton and benthos. Aquac Res 39(1):85–95

    CAS  Google Scholar 

  • Rahman MM, Jo Q, Gong YG, Miller SA, Hossain MY (2008b) A comparative study of common carp (Cyprinus carpio L.) and calbasu (Labeo calbasu Hamilton) on bottom soil resuspension, water quality, nutrient accumulations, food intake and growth of fish in simulated rohu (Labeo rohita Hamilton) ponds. Aquaculture 285:78–83

    Google Scholar 

  • Rahman MM, Kadowaki S, Balcombe SR, Wahab MA (2010) Common carp (Cyprinus carpio L.) alters its feeding niche in response to changing food resources: direct observations in simulated ponds. Ecol Res 25:303–309

    Google Scholar 

  • Read P, Fernandes T (2003) Management of environmental impacts of marine aquaculture in Europe. Aquaculture 226:139–163

    CAS  Google Scholar 

  • Robaina L, Izquierdo MS, Moyano FJ, Soccoro J, Vergara JM, Montero D, Fernandez-Palacios H (1995) Soybean and lupin seed meals as protein sources in diets for gilthead seabream (Sparus aurata): nutritional and histological implications. Aquaculture 130(2–3):219–233

    Google Scholar 

  • Rodehutscord M, Mandel S, Pfeffer E (1994) Reduced protein content and use of wheat gluten in diets for rainbow trout: effects on water loading N and P. J Appl Ichthyol 10:271–273

    CAS  Google Scholar 

  • Rodehutscord M, Gregus Z, Pfeffer E (2000) Effect of phosphorus intake on faecal and non-faecal phosphorus excretion in rainbow trout (Oncorhynchus mykiss) and the consequences for comparative phosphorus availability studies. Aquaculture 188:383–398

    CAS  Google Scholar 

  • Sadowski J, Trzebiatowski R (1995) Fish feeds. Pasze Polskie 1(2):110–118

    Google Scholar 

  • Saremi A, Saremi K, Saremi A, Sadeghi M, Sedghi H (2013) The effect of aquaculture effluents on water quality parameters of Haraz River. Iran J Fish Sci 12(2):445–453

    Google Scholar 

  • Sargent JR, Tocher R, Bell JG (2002) The lipids. In: Halver JE, Hardy RW (eds) Fish nutrition. Academic Press, London

    Google Scholar 

  • Sarker PK, Fournier J, Boucher E, Proulx E, de la Noüe J, Vandenberg GW (2011) Effects of low phosphorus ingredient combinations on weight gain, apparent digestibility coefficients, non-fecal phosphorus excretion, phosphorus retention and loading of large rainbow trout (Oncorhynchus mykiss). Anim Feed Sci Technol 168:241–249

    CAS  Google Scholar 

  • Satoh S (1991) Common carp, Cyprinus carpio. In: Wilson RP (ed) Handbook of nutrient requirements of finfish. CRC Press, UK

    Google Scholar 

  • Satoh S, Hernández A, Tokoro T, Morishita Y, Kiron V, Watanabe T (2003) Comparison of phosphorus retention efficiency between rainbow trout (Oncorhynchus mykiss) fed a commercial diet and a low fish meal based diet. Aquaculture 224:271–282

    CAS  Google Scholar 

  • Schlott K, Bauer C, Fichtenbauer M, Gratzl G, Schlott G (2011) Bedarfsorientierte Fütterung in der Karpfenteichwirtschaft. Bundesamt für Wasserwirtschaft, Wien

    Google Scholar 

  • Schneider O (2006) Fish waste management by conversion into heterotrophic bacteria biomass. Dissertation, Wageningen University, The Netherlands

  • Schneider O, Sereti V, Eding EH, Verreth JAJ (2004) Analysis of nutrient flows in integrated intensive aquaculture systems. Aquac Eng 32:379–401

    Google Scholar 

  • Schreckenbach K, Knösche R, Wedekind H, Pfeifer M, Weisenbach H, Janurik E, Szabó P (1999). Pond management and aquaculture. Institute für Binnenfisherei e. V. Potsdam, Sacrow. Project report, 34 pp

  • Schroeder GL (1974) Use of fluid cowshed manure in fish ponds. Bamidgeh 26:84–96

    Google Scholar 

  • Seyour E, Bergheim A (1991) Towards a reduction of pollution from intensive aquaculture with reference to the farming of salmonids in Norway. Aquac Eng 10:73–88

    Google Scholar 

  • Siddiqui AQ, Al-Harbi AH (1999) Nutrient budgets in tanks with different stocking densities of hybrid tilapia. Aquaculture 170:245–252

    Google Scholar 

  • Sindilariua PD, Reiter R, Wedekind H (2009) Impact of trout aquaculture on water quality and farm effluent treatment options. Aquat Living Resour 22:93–103

    Google Scholar 

  • Smith LS (1989) Nutritional energetics. In: Halver JH, Hardy RW (eds) Fish nutrition, 2nd edn. Academic Press, San Diego

    Google Scholar 

  • Steffens W, Rennert B, Wirth M, Krueger R (1999) Effect of two lipid levels on growth, feed utilization, body composition and some biochemical parameters of rainbow trout, Oncorhynchus mykiss (Walbaum 1792). J Appl Ichthyol 15:159–164

    CAS  Google Scholar 

  • Steiner T, Mosenthin R, Zimmermann B, Greiner R, Roth S (2007) Distribution of phytase activity, total phosphorus and phytate phosphorus in legume seeds, cereals and cereal by-products as influenced by harvest year and cultivar. Anim Feed Sci Technol 133(3–4):320–334

    CAS  Google Scholar 

  • Sterner RW, George NB (2000) Carbon, nitrogen, and phosphorus stoichiometry of cyprinid fishes. Ecology 81(1):127–140

    Google Scholar 

  • Sugiura SH, Marchant DD, Kelsey K, Wiggins T, Ferraris RP (2006) Effluent profile of commercially used low-phosphorus fish feeds. Environ Pollut 140:95–101

    CAS  PubMed  Google Scholar 

  • Svoboda M, Koubek P (1990) Stabilization system for waste water treatment and use. Acta Hydrochem Hydrobiol 18(1):71–80

    CAS  Google Scholar 

  • Svobodová Z, Máchová J, Poleszczuk G, Hůda J, Hamáčková J, Kroupová H (2005) Nitrite poisoning of fish in aquaculture facilities with water-recirculating systems. Acta Vet Brno 74:129–137

    Google Scholar 

  • Szücs I, Stündl L, Váradi L (2007) Carp farming in Central and Eastern Europe and a case study in multifunctional aquaculture. In: Leung P, Lee CS, O'Bryen PJ (eds) Species and system selection for sustainable aquaculture. Blackwell Publishing, USA

    Google Scholar 

  • Szumiec J (2002) Ecological aspects of pond fish culture intensification. 1. The effects of rearing biotechnology and intensification level. Arch Pol Fish 10(3):4–5

    Google Scholar 

  • Tacon AGJ, De Silva SS (1997) Feed preparation and feed management strategies within semiintensive fish farming systems in the tropics. Aquaculture 151(1–4):379–404

    Google Scholar 

  • Tacon AG, Forster IP (2003) Aquafeeds and the environment: policy implications. Aquaculture 226:181–189

    Google Scholar 

  • Tacon AGJ, Jackson AJ (1985) Utilisation of conventional and unconventional protein sources in practical fish feeds. In: Cowey CB, Mackie AM, Bell JG (eds) Nutrition and feeding in fish. Academic Press, London

    Google Scholar 

  • Tanner DK, Brazner JC, Brady VJ (2000) Factors influencing carbon, nitrogen, and phosphorus content of fish from a Lake Superior coastal wetland. Can J Fish Aquat Sci 57(6):1243–1251

    CAS  Google Scholar 

  • Thomas SL, Piedrahita RH (1998) Apparent ammonia-nitrogen production rates of white sturgeon (Acipenser transmontanus) in commercial aquaculture systems. Aquac Eng 17:45–55

    Google Scholar 

  • Timmons MB, Ebeling JM, Wheaton FW, Summerfelt ST, Vinci BJ (2002) Recirculating aquaculture systems, 2nd ed. NRAC Publication

  • Trigal C, García-Criado F, Fernández-Aláez C (2009) Towards a multimetric index for ecological assessment of Mediterranean flatland ponds: the use of macroinvertebrates as bioindicators. Hydrobiologia 618(1):109–123

    CAS  Google Scholar 

  • Tsoumani M, Liasko R, Moutsaki P, Kagalou I, Leonardos I (2006) Length–weight relationships of an invasive cyprinid fish (Carassius gibelio) from 12 Greek lakes in relation to their trophic states. J Appl Ichthyol 22(4):281–284

    Google Scholar 

  • Turk M (1994) Croatian freshwater fisheries in 1993. Ribarstvo Zagreb 52(3):19–132

    Google Scholar 

  • Turk M (1995) Croatian freshwater fisheries in 1994. Ribarstvo Zagreb 53(3):105–118

    Google Scholar 

  • Urbánek M (2009) Vliv přikrmování obilovinami na produkční ukazatele a kvalitu masa v chovu tržního kapra (Influence of cereal feeding on production parameters and quality of flesh in market carp farming). Dissertation, University of South Bohemia (In Czech)

  • Urbánek M, Hartvich P, Vácha F, Rost M (2010) Investigation of fat content in market common carp (Cyprinus carpio) flesh during the growing season. Aquac Nutr 16:511–519

    Google Scholar 

  • Vallod D, Sarrazin B (2010) Water quality characteristics for draining an extensive fish farming pond. Hydrol Sci J 55(3):394–402

    CAS  Google Scholar 

  • Van der Ingh TSGAM, Olli J, Krogdahl Å (1996) Alcohol-soluble components in soybeans cause morphological changes in the distal intestine of Atlantic salmon, Salmo salar L. J Fish Dis 19:47–53

    Google Scholar 

  • Verdegem MCJ, Eding EH, van Rooij JM, Verreth JVJ (1999) Comparison of effluents from pond and recirculating production systems using formulated diets. World Aquac 30:28–36

    Google Scholar 

  • Verdegem MCJ, Eding EH, Verreth JVJ (2001) Towards improved sustainability in ponds and recirculation systems. In: Proceedings of the international workshop on aquaculture and environment, Cochin, India

  • Všetičková L, Adámek Z (2013) The impact of carp pond management upon macrozoobenthos assemblages in recipient pond canals. Aquac Int 21(4):897–925

    Google Scholar 

  • Všetičková L, Adámek Z, Rozkošný M, Sedláček P (2012) Effects of semi-intensive carp pond farming on discharged water quality. Acta Ichthyol Piscat 42(3):223–231

    Google Scholar 

  • Warrer-Hansen I (1982) Methods of treatment of waste water from trout farming. EIFAC Tech Pap 41:113–121

    Google Scholar 

  • Watanabe T, Jahan P, Satoh S, Kiron V (1999) Total phosphorus loading on to the water environment from common carp fed commercial diets. Fish Sci 65:712–716

    CAS  Google Scholar 

  • Wezel A, Robin J, Guerin M, Arthaud F, Vallod D (2013) Management effects on water quality, sediments and fish production in extensive fish ponds in the Dombes region, France. Limnologica 43:210–218

    CAS  Google Scholar 

  • Wilson RP (1994) Utilization of dietary carbohydrate by fish. Aquaculture 124:67–80

    CAS  Google Scholar 

  • Woynarovich A, Bueno PB, Altan Ö, Jeney Z, Reantaso M, XinhuaY, Van Anrooy R (2011) Better management practices for carp production in central and eastern Europe, the Caucasus and Central Asia. FAO Fisheries and Aquaculture Technical Paper No. 566. Ankara

  • Yamamoto T, Shima T, Furuita H, Suzuki N (2003) Effect of water temperature and short-term fasting on macronutrient self-selection by common carp (Cyprinus carpio). Aquaculture 220:655–660

    Google Scholar 

  • Yang YH, Wang YY, Lu Y, Li QZ (2011) Effect of replacing fish meal with soybean meal on growth, feed utilization and nitrogen and phosphorus excretion on rainbow trout (Oncorhynchus mykiss). Aquac Int 19:405–419

    CAS  Google Scholar 

  • Zajic T, Mraz J, Sampels S, Pickova J (2013) Fillet quality changes as a result of purging of common carp (Cyprinus carpio L.) with special regard to weight loss and lipid profile. Aquaculture 400–401:111–119

    Google Scholar 

  • Zygmunt G (2006) Wpływ stawów karpiowych na bilans wodny zlewni (The effect of carp ponds on water balance in a catchment). Dissertation, Warsaw University of Life Sciences (In Polish)

Download references

Acknowledgments

The study was supported by the South Bohemian Research Center of Aquaculture and Biodiversity of Hydrocenoses, Grant No. CENAKVA CZ.1.05/2.1.00/01.0024, and through projects GA JU 047/2010/Z (University of South Bohemia) and QH82117 (Czech Ministry of Agriculture).

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to David Hlaváč.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Hlaváč, D., Adámek, Z., Hartman, P. et al. Effects of supplementary feeding in carp ponds on discharge water quality: a review. Aquacult Int 22, 299–320 (2014). https://doi.org/10.1007/s10499-013-9718-6

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s10499-013-9718-6

Keywords

Navigation