Nutrient composition of swill fed to peri-urban free-roaming pigs in Gert Sibande, South Africa
DOI:
https://doi.org/10.17159/sajas.v55i9.01Keywords:
diet, feed formulation, nutrient composition, pig nutrition, proximate analysisAbstract
Pigs need a balanced diet for optimum physiology. We therefore investigated the nutritional composition of variably sourced swill fed to free-roaming pigs in Gert Sibande District Municipality, South Africa. Fourteen swill samples, originating from households, schools, restaurants, and wholesalers, were collected from pig producers in peri-urban areas. The samples were analysed for standard nutritional profiles, and mean outputs (descriptive and analytical statistics) were generated using the Statistical Package for Social Sciences. Overall, swill feeding strategies did not vary according to pigs’ age or physiological condition. The swill samples were high in moisture (household: 80.14%, school: 80.27%, restaurant: 54.36%, wholesaler: 56.63%), and low in dry matter (household: 19.86%, school: 19.73%, restaurant: 45.64%, wholesaler: 43.37%), compared to standard feeds. Excess crude protein and fibre contents and imbalanced macro-mineral compositions (calcium, phosphorus, and sodium contents) were observed. The moisture, dry matter, and crude fibre contents fell outside the recommended range. The crude protein, calcium, sodium, phosphorus, and ash contents were within the recommended range, but variances were wide, preventing standardisation. The significant variation in the composition of the swill samples has implications for pigs’ physiology, well-being, and general health. Swill feeding exposes pigs to vitamin and mineral deficiencies, hyperproteinaemia, increased vulnerability to infectious diseases, possible foreign bodies, and an inability to eat enough to meet the body’s nutritional requirements. Farmers should thus consider parboiling and dehydrating swill before feeding it to pigs as partial feed replacers, and pigs of ≤40 kg body mass should be fed a balanced ration, rather than swill.
(Submitted 18 June 2024; Accepted 8 April 2025; Published 22 September 2025)
References
Animal Diseases Act 35 of 1984. Pretoria: Government Printer. Available: https://www.gov.za/documents/animal-diseases-act-0 [18 September 2025].
Association of Official Analytical Chemists (AOAC) International. 1995. Official methods of analysis of AOAC International. AOAC International, Arlington, VA, USA.
Asar, E., Raheem, H., & Daoud, J., 2018. Using dried leftover food as nontraditional feed for Muscovy duck diet. Assiut Veterinary Medical Journal, 64(158):107–114. DOI: https://doi.org/10.21608/avmj.2018.168965
Bartel, L.H. & Oosthuizen, S.A., 1942. Swill as pig feed. Farming in South Africa, 17:373–374; 408.
Beyihayo, G., Mwesigwa, R., & Pezo, D., 2015. Pig feeding strategies: Uganda smallholder pig value chain capacity development training manual. International Livestock Research Institute (ILRI) Editorial and Publishing Services, Addis Ababa, Ethiopia.
Birungi, R., Ouma, E., Brandes-van Dorresteijn, D., Kawuma, B., & Smith, J. 2015. Pig marketing and institutional strengthening: Uganda smallholder pig value chain capacity development training manual. ILRI, Nairobi, Kenya.
Brooks, P., Beal, J., & Niven, S., 2001. Liquid feeding of pigs: Potential for reducing environmental impact and for improving productivity and food safety. Recent Advances in Animal Nutrition in Australia, 13:49–63.
Castrica, M., Tedesco, D.E.A., Panseri, S., Ferrazzi, G., Ventura, V., Frisio, D.G., & Balzaretti, C.M., 2018. Pet food as the most concrete strategy for using food waste as feedstuff within the European context: A feasibility study. Sustainability, 10:2035. DOI: https://doi.org/10.3390/su10062035
Cavell, A.J., 1955. The colorimetric determination of phosphorus in plant materials. Journal of the Science of Food and Agriculture, 6:479–480. DOI: https://doi.org/10.1002/jsfa.2740060814
Chae, B.J., Choi, S.C., Kim, Y.G., Kim, C.H., & Sohn, K.S., 2000. Effects of feeding dried food waste on growth and nutrient digestibility in growing-finishing pigs. Asian-Australasian Journal of Animal Sciences, 13:1304–1308.
Chauhan, A., Patel, B.H.M., Maurya, R., Kumar, S., Shukla, S., & Kumar, S., 2016. Pig production system as a source of livelihood in Indian scenario: An overview. International Journal of Science, Environment and Technology, 5(4):2089–2096.
Cherian, G., 2019. Chapter I. Introduction to nutrition. In: A Guide to the Principles of Animal Nutrition. Oregon State University, Corvallis, OR, USA.
Crawley, K., 2015. Fulfilling 100% organic poultry diets: Roughage and foraging from the range. In: Improved Contribution of local feed to support 100% Organic feed supply to Pigs and Poultry (ICOPP) Technical Note 2. Organic Research Centre, UK.
Cromwell, G.L., 2015. Nutritional diseases of pigs – management and nutrition. MSD Veterinary Manual, Rahway, NJ, USA.
Cullen, J.T., Lawlor, P.G., Cormican, P., & Gardiner, G.E., 2021. Microbial quality of liquid feed for pigs and its impact on the porcine gut microbiome. Animals, 11:2983. DOI: https://doi.org/10.3390/ani11102983
De Jong, J., Kleter, G., Banach, J., van Raamsdonk, L., Hoogenboom, R., de Nijs, M., van der Fels-Klerx, I., Kok, E., Slot, M., Bouwmeester, H., & Noordam, M., 2019. Hazards associated with animal feed. FAO, Rome, Italy.
De Lange, C. & Zhu, C., 2012. Liquid feeding corn-based diets to growing pigs: Practical considerations and use of co-products. In: Feed Efficiency in Swine. Ed: Patience, J.F., Wageningen Academic Publishers, Wageningen, Netherlands. pp. 63–80
Department of Agriculture, Forestry and Fisheries (DAFF), 2024. Farm feeds general guidelines [Online]. Available: https://nda.gov.za/images/Branches/AgricProducHealthFoodSafety/agriculture-inputs-control/guidelines/farm-feeds/farm-feeds-general-guidelines_.pdf [28 May 2024].
Department of Cooperative Governance and Traditional Affairs (DCGTA), 2020. A profile and analysis of Gert Sibande District [Online]. Available: Final-Edited-Gert-Sibande-DM_26-June-2020-FINAL.pdf (cogta.gov.za) [15 March 2024].
European Commission, 2013. Commission regulation (EU) no. 68/2013 on the catalogue of feed materials. Official Journal of the European Union, L 29/1.
Federal University of Agriculture, Abeokuta, Nigeria, 2024. Proximate Analysis of Feedstuff [Online]. Available: https://unaab.edu.ng/wp-content/uploads/2009/12/459_ANN509%20Lecture%20Note%20_A_.pdf [23 March 2024].
Fung, C.F.L., 2019. Nutritional value and benefits of food waste as potential feed ingredients in swine diets. MSc thesis, University of Minnesota, USA.
Georganas, A., Giamouri, E., Pappas, A.C., Papadomichelakis, G., Galliou, F., Manios, T., Tsiplakou, E., Fegeros, K., & Zervas, G., 2020. Bioactive compounds in food waste: A review on the transformation of food waste to animal feed. Foods, 9:291. DOI: https://doi.org/10.3390/foods9030291
Goering, H.K. & van Soest, P.J., 1970. Forage Fiber Analyses (Apparatus, Reagents, Procedures, and Some Applications). Agriculture Handbook No. 379. Agricultural Research Service, United States Department of Agriculture, USA.
González-Vega, J.C., Walk, C.L., Murphy, M.R., & Stein, H.H., 2016. Requirement for digestible calcium by 25 to 50 kg pigs at different dietary concentrations of phosphorus as indicated by growth performance, bone ash concentration, and calcium and phosphorus balances. Journal of Animal Science, 94:5272–5285. DOI: https://doi.org/10.2527/jas.2016-0751
Gustavsson, J., 2011. Global food losses and food waste: extent, causes and prevention. Study Conducted for the International Congress ‘Save Food!’ at Interpack2011, Düsseldorf, Germany. Food and Agriculture Organization of the United Nations (FAO), Rome, Italy.
IBM®, 2022. Statistical Package for Social Sciences [Online]. Available: https://www.ibm.com/support/pages/downloading-ibm-spss-statistics-28 [27 February 2024].
Kagira, J.M., Kanyari, P.W.N., Maingi, N., Githigia, S.M., Ng’ang’a, J.C., & Karuga, J.W., 2010. Characteristics of the smallholder free-range pig production system in western Kenya. Tropical Animal Health and Production, 42:865–873. DOI: https://doi.org/10.1007/s11250-009-9500-y
Katongole, C.B., Nambi-Kasozi, J., Lumu, R., Bareeba, F., Presto, M., Ivarsson, E., & Lindberg, J.E., 2012. Strategies for coping with feed scarcity among urban and peri-urban livestock farmers in Kampala, Uganda. Journal of Agriculture and Rural Development in the Tropics and Subtropics (JARTS), 113:165–174.
Kim, K.-H. & Lee, B.-M., 2023. Effects of climate change and drought tolerance on maize growth. Plants (Basel), 12:3548. DOI: https://doi.org/10.3390/plants12203548
Kirmse, W., 1983. Organic Elemental Analysis: Ultramicro, Micro, and Trace Methods. Academic Press, New York, USA.
Kornegay, E.T., Vander Noot, G.W., Barth, K.M., MacGrath, W.S., Welch, J.G., & Purkhiser, E.D., 1965. Nutritive value of garbage as a feed for swine. I. Chemical composition, digestibility and nitrogen utilization of various types of garbage. Journal of Animal Science, 24:319–324. DOI: https://doi.org/10.2527/jas1965.242319x
Kumar, D.K., 2020. Nutrient requirements in Poultry, Swine and Equine [Online]. Available: https://www.basu.org.in/wp-content/uploads/2020/04/Nutrient-requirements-in-Poultry-Swine-Equine.pdf [26 March 2024].
Lemke, U., Kaufmann, B., Thuy, L.T., Emrich, K., & Zárate, A.V., 2007. Evaluation of biological and economic efficiency of smallholder pig production systems in North Vietnam. Tropical Animal Health and Production, 39:237–254. DOI: https://doi.org/10.1007/s11250-007-9001-9
Lule, P.M., Ojakol, J.F., Asindu, M., Naziri, D., & Ouma, E.A., 2017. Technical Report: Economic analysis of sweet potato silage based diets for smallholder pig farmers in Uganda.
Madzimure, J., 2011. Climate change adaptation and economic valuation of local pig genetic resources in communal production systems of South Africa. Academia.
Márquez, M.C. & Ramos, P., 2007. Effect of the inclusion of food waste in pig diets on growth performance, carcass and meat quality. Animal, 1:595–599. DOI: https://doi.org/10.1017/S1751731107685000
Matabane, M.B., Nethenzheni, P., Thomas, R., Netshirovha, T.R., Norris, D., Nephawe, K.A., & Nedambale, T.L., 2015. Status of the smallholder pig farming sector in Gauteng Province of South Africa. Applied Animal Husbandry and Rural Development, 8:19–25.
Matlock, R.G., Terrell, R.N., Savell, J.W., Rhee, K.S., & Dutson, T.R., 1984. Factors affecting properties of raw-frozen pork sausage patties made with various NaCl/phosphate combinations. Journal of Food Science, 49:1363–1366. DOI: https://doi.org/10.1111/j.1365-2621.1984.tb14991.x
Mokoele, J.M., Spencer, B.T., van Leengoed, L.A.M.G., & Fasina, F.O., 2014. Efficiency indices and indicators of poor performance among emerging small-scale pig farmers in the Limpopo Province, South Africa. Onderstepoort Journal of Veterinary Research, 81. DOI: https://doi.org/10.4102/ojvr.v81i1.774
Moritz, J.S., Wilson, K.J., Cramer, K.R., Beyer, R.S., McKinney, L.J., Cavalcanti, W.B., & Mo, X., 2002. Effect of formulation density, moisture, and surfactant on feed manufacturing, pellet quality, and broiler performance. Journal of Applied Poultry Research, 11:155–163. DOI: https://doi.org/10.1093/japr/11.2.155
Munzhelele, P., 2015. Evaluation of the production systems and constraints of smallholder pig farming in three agro-ecological zones of Mpumalanga province, South Africa. MSc (Agric) thesis, University of South Africa, South Africa.
Munzhelele, P., Oguttu, J., Fasanmi, O.G., & Fasina, F.O., 2017. Production constraints of smallholder pig farms in agro-ecological zones of Mpumalanga, South Africa. Tropical Animal Health and Production, 49:63–69. DOI: https://doi.org/10.1007/s11250-016-1158-7
Munzhelele, P., Oguttu, J.W., & Fasina, F.O., 2016. Is a 10-sow unit economically sustainable? A profitability assessment of productivity amongst small-holder pig farmers, Mpumalanga, South Africa: original research. Onderstepoort Journal of Veterinary Research, 83:1–11. DOI: https://doi.org/10.4102/ojvr.v83i1.1011
Munzhelele, P., Sibeko, N.P.S., Oguttu, J.W., Mbajiorgu, C.A., & Fasina, F.O., 2024. Parasites burden in peri-urban free-roaming pigs in Gert Sibande District Municipality, Mpumalanga Province, South Africa. Journal of the South African Veterinary Association, 95:55–66.
Murto, M., Björnsson, L., & Mattiasson, B., 2004. Impact of food industrial waste on anaerobic co-digestion of sewage sludge and pig manure. Journal of Environmental Management, 70:101–107. DOI: https://doi.org/10.1016/j.jenvman.2003.11.001
Muthui, N.J., Matofari, J.W., Kingori, A.M., & Hülsebusch, C.G., 2019. Estimation of daily nutrient allowances for pigs fed with alternative feed resources in smallholder enterprises in Kenya. Tropical Animal Health and Production, 51:799–808. DOI: https://doi.org/10.1007/s11250-018-1757-6
Mutua, F.K., Dewey, C., Arimi, S., Ogara, W., Levy, M., & Schelling, E., 2012. A description of local pig feeding systems in village smallholder farms of Western Kenya. Tropical Animal Health and Production, 44:1157–1162. DOI: https://doi.org/10.1007/s11250-011-0052-6
Myer, R.O., Brendemuhl, J.H., & Johnson, D.D., 1999. Evaluation of dehydrated restaurant food waste products as feedstuffs for finishing pigs. Journal of Animal Science, 77:685–692. DOI: https://doi.org/10.2527/1999.773685x
National Research Council, 1998. Nutrient Requirements of Swine, 10th revised edition. National Academy Press, Washington, DC, USA.
Nayak, D.S., 2013. Feeding of Pigs. Department of Animal Nutrition, College of Veterinary Science and Animal Husbandry, Jabalpur (M.P.), India [Online]. Available: https://www.ndvsu.org/images/StudyMaterials/Nutrition/Feeding-of-Pigs.pdf [09 March 2024].
Ncobela, C.N., Kanengoni, A.T., Hlatini, V.A., Thomas, R.S., & Chimonyo, M., 2017. A review of the utility of potato by-products as a feed resource for smallholder pig production. Animal Feed Science and Technology, 227:107–117. DOI: https://doi.org/10.1016/j.anifeedsci.2017.02.008
Onsongo, V.O., Osuga, I.M., Gachuiri, C.K., Wachira, A.M., Miano, D.M., Tanga, C.M., Ekesi, S., Nakimbugwe, D., & Fiaboe, K.K.M., 2018. Insects for income generation through animal feed: Effect of dietary replacement of soybean and fish meal with black soldier fly meal on broiler growth and economic performance. Journal of Economic Entomology, 111:1966–1973. DOI: https://doi.org/10.1093/jee/toy118
Pahm, A.A., Pedersen, C., & Stein, H.H., 2009. Standardized ileal digestibility of reactive lysine in distillers dried grains with solubles fed to growing pigs. Journal of Agricultural and Food Chemistry, 57:535–539. DOI: https://doi.org/10.1021/jf802047d
Petrus, N., Mpofu, I., Schneider, M.B., & Nepembe, M., 2011. The constraints and potentials of pig production among communal farmers in Etayi Constituency of Namibia. Livestock Research for Rural Development, 23.
Poluektov, N.S., 1961. Techniques in Flame Photometric Analysis. Springer, USA.
Presto Åkerfeldt, M., Lindberg, J.E., Göransson, L., & Andersson, K., 2019. Effects of reducing dietary content of crude protein and indispensable amino acids on performance and carcass traits of single-phase- and 2-phase-fed growing-finishing pigs. Livestock Science, 224:96–101. DOI: https://doi.org/10.1016/j.livsci.2019.04.014
Price, W.J., 1973. Analytical Atomic Absorption Spectrometry. Heyden and Son Ltd., London, UK.
Skoog, D.A., West, D.M., Holler, F.J., & Crouch, S.R., 2013. Fundamentals of Analytical Chemistry. Cengage Learning.
Statistics South Africa, 2023. Mbalo Brief, Census 2022 Results [Online]. Department: Statistics South Africa, Pretoria, SA. Available: https://www.statssa.gov.za/wp-content/uploads/2023/11/Mbalo-brief-November.pdf [18 March 2024].
Suttle, N.F., 2010. Mineral Nutrition of Livestock, 4th edition. CABI, Wallingford, Oxfordshire, UK/Cambridge, MA, USA.
Tekle, T., Genzebu, A.T., & Kifleyohannes, T., 2013. Smallholder pig production and its constraints in Mekelle and southern zone of Tigray region, north Ethiopia. Livestock Research for Rural Development, 25.
Westendorf, M.L., Schuler, T., Zirkle, E.W., Hays, V.W., & Wilson, L.L., 1999. Nutritional quality of recycled food plate waste in diets fed to swine. The Professional Animal Scientist, 15:106–111. DOI: https://doi.org/10.15232/S1080-7446(15)31737-X
Widayati, T., Rahayu, B., Rahardjo, D., & Lekitoo, M., 2019. Feeding effect of different levels of agricultural and food waste on growth performance and economics in pig production. Journal of Agricultural Science and Technology A, 9:240–247. DOI: https://doi.org/10.17265/2161-6256/2019.04.004
World Economic Forum, 2024. Extreme weather is driving food prices higher. These 5 crops are facing the biggest impacts [Online]. World Economic Forum. Available: https://www.weforum.org/agenda/2024/02/climate-change-food-prices-drought/ [14 March 2024].
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