تعداد نشریات | 418 |
تعداد شمارهها | 10,005 |
تعداد مقالات | 83,622 |
تعداد مشاهده مقاله | 78,341,532 |
تعداد دریافت فایل اصل مقاله | 55,384,593 |
Characteristics of co-composts produced from raw faecal sludge and organic market waste in Osun state, southwest Nigeria | ||
International Journal of Recycling Organic Waste in Agriculture | ||
مقاله 1، دوره 9، شماره 4، اسفند 2020، صفحه 333-347 اصل مقاله (2.78 M) | ||
نوع مقاله: Original Article | ||
شناسه دیجیتال (DOI): 10.30486/ijrowa.2020.1898218.1062 | ||
نویسندگان | ||
Olufemi O Aluko* 1، 2؛ Elizabeth O Oloruntoba1؛ Godson R.E.E Ana1؛ Taiwo B Hammed1؛ Olusegun T Afolabi2 | ||
1Department of Environmental Health Sciences, Faculty of Public Health, University of Ibadan, Nigeria | ||
2Department of Community Health, College of Health Sciences, Obafemi Awolowo University, Nigeria | ||
چکیده | ||
Purpose Faecal sludge (FS) and organic market waste (MW) have resources that could be recovered by co-composting though not fully explored under changing climatic conditions in Nigeria. This study explored the characteristics and nutrient quality of co-composts produced from pre-treated FS and MW feedstocks in Nigeria. Methods The study was exploratory and analytical in design and co-composting was purposively selected for resource-recovery. The raw faecal sludge (FS) was harvested from septic tanks of households (50%) and institutions (50%) through mechanical evacuation service trucks and dewatered using 0.1% gradient sand filter. The biodegradable MW was sorted and used for further studies. The dewatered FS (DFS) and MW were mixed in ratios 1:3, 1:5 and 1:7, respectively with DFS and MW as controls. Each of the mixes was made into 1m3 heap and co-composted using the windrow method. The experiments were monitored for 88 days with fortnight composite sampling from each mix (13-weeks). The samples were analyzed for temperature, pH, moisture-contents, micronutrients, macronutrients and pollutants using Standard Methods. Results At maturity, N:P:K (%) indicate good composts at 9: 5: 4, 18: 7: 19 and 3: 3: 1 in the 1: 3, 1: 5 and 1: 7 mixes, respectively, while those of controls were: 19:12:12 (DFS) and 17:14:11(MW) with no significant differences between experimental and control mixes. Also, four factors extracted (pollutants, agronomic, macronutrients and micronutrients), explained 78.2% variability. Conclusion The matured co-compost satisfied nutrients and pollutants quality for agricultural use, recovered organic fertiliser from raw domestic and institutional faecal sludge and market waste. | ||
کلیدواژهها | ||
Resource recovery؛ Co-composting؛ Dewatered faecal sludge؛ Organic market waste؛ Organic fertilizer؛ Nigeria | ||
مراجع | ||
Adewumi IK, Ogedengbe MO, Adepetu JA, Aina PO (2005) Aerobic composting of municipal solid wastes and poultry manure. J appl sci res 1:292–297
Al-Muyeed A, Oko-williams A, Islam K, Ali L, Nath SK, Sanyal PR (2017) Co-composting of faecal sludge with solid waste to improve faecal sludge management practice in Sakhipur municipality. In: Local action with international cooperation to improve and sustain water, sanitation and hygiene services. Loughborough, pp 1–7
Anwar Z, Irshad M, Fareed I, Saleem A (2015) Characterization and recycling of organic waste after co-composting - A review. J Agric Sci 7:68. https://doi.org/10.5539/jas.v7n4p68
APHA (1998) Standard methods for examination of water and wastewater, 19th edition. American public health association, Washington DC
APHA/AWWA/WEF (2005) Standard methods for the examination of water and wastewater, 21st edn. American public health association, American water works association, and water and environment federation, Washington DC
Bartram J, Pedley S (1996) Chapter 10 - Microbiological analyses. In: Bartram J, Ballance R (eds) Water quality monitoring - A practical guide to the design and implementation of freshwater quality studies and monitoring programmes. UNEP/WHO. 27pp
Bernal MPP, Alburquerque JAA, Moral R (2009) Composting of animal manures and chemical criteria for compost maturity assessment: A review. Bioresour technol 100:5444–5453. https://doi.org/10.1016/j.biortech.2008.11.027
Brinton W (2000) Compost quality standards and guidelines. New York, NY, United States
Cheng X, Wang J, Chen B, Wang Y, Liu J, Liu L (2017) Effectiveness of phosphate removal during anaerobic digestion of waste activated sludge by dosing iron (III). J Environ Manage 193:32–39. https://doi.org/10.1016/j.jenvman.2017.02.009
Chuah CJ, Ziegler AD (2018) Temporal variability of faecal contamination from on-site sanitation systems in the groundwater of northern Thailand. Environ Manage 61:939–953. https://doi.org/10.1007/s00267-018-1016-7
Cofie O, Kone D, Rothenberger S, Moser D, Zubruegg C (2009) Co-composting of faecal sludge and organic solid waste for agriculture: Process dynamics. Water res 43:4665–4675. https://doi.org/10.1016/j.watres.2009.07.021
Cofie O, Nikiema J, Impraim R, Adamtey N, Paul J, Koné D (2016) Co-composting of solid waste and fecal sludge for nutrient and organic matter recovery. Resource recovery and reuse series 3. International water management institute (IWMI). CGIAR research program on water, land and ecosystems (WLE)
Costa MSSDM, Carneiro LJ, Costa LADM, Pereira DC, Lorin HEF (2016) Composting time reduction of agricultural wastes. Eng Agrícola 36:1206–1217. https://doi.org/10.1590/1809-4430-eng.agric.v36n6p1206-1217/2016
Déportes I, Benoit-Guyod JL, Zmirou D (1995) Hazard to man and the environment posed by the use of urban waste compost: A review. Sci. Total Environ 172:197–222.
https://doi.org/10.1016/0048-9697(95)04808-1
Dias BO, Silva CA, Higashikawa FS, Roig A, Sánchez-Monedero MA (2010) Use of biochar as bulking agent for the composting of poultry manure: Effect on organic matter degradation and humification. Bioresour Technol 101:1239–1246.
https://doi.org/10.1016/j.biortech.2009.09.024
Fan Y, Chen J, Shirkey G, John R, Wu SR, Park H, Shao C (2016) Applications of structural equation modeling (SEM) in ecological studies: An updated review. Ecol Process 5:19. https://doi.org/10.1186/s13717-016-0063-3
Fernández FJ, Sánchez-Arias V, Rodríguez L, Villaseñor J (2010) Feasibility of composting combinations of sewage sludge, olive mill waste and winery waste in a rotary drum reactor. Waste Manag 30:1948–1956.
https://doi.org/10.1016/j.wasman.2010.04.007
Galitskaya P, Biktasheva L, Saveliev A, Grigoryeva T, Boulygina E, Selivanovskaya S (2017) Fungal and bacterial successions in the process of co-composting of organic wastes as revealed by 454 pyrosequencing. PLoS One 12:1–20
Gao M, Li B, Yu A, Liang F, Yang L, Sun Y (2010) The effect of aeration rate on forced-aeration composting of chicken manure and sawdust. Bioresour Technol 101:1899–1903. https://doi.org/10.1016/j.biortech.2009.10.027
Garson GD (2016) Partial least squares: Regression and structural equation models: 2016 edition. Statistical associates blue book series 10. Statistical associates publishing. 265pp
Getahun T, Nigusie A, Entele T, Gerven TV, Bruggen BVD (2012) Effect of turning frequencies on composting biodegradable municipal solid waste quality. Resour Conserv Recycl 65:79–84. https://doi.org/10.1016/j.resconrec.2012.05.007
Gold M, Dayer P, Faye MCAS, Clair G, Seck A, Niang S, Morgenroth E, Strande L (2016) Locally produced natural conditioners for dewatering of faecal sludge. Environ Technol 37:2802–2814.
https://doi.org/10.1080/09593330.2016.1165293
Hanc A, Szakova J, Svehla P (2012) Effect of composting on the mobility of arsenic, chromium and nickel contained in kitchen and garden waste. Bioresour Technol 126:444–452. https://doi.org/10.1016/j.biortech.2011.11.053
IRC (2015) Value at the end of the sanitation value chain
IWMI (International water management institute) and SANDEC (Sanitation in Developing Countries) (2002) Co-composting of faecal sludge and solid waste: Preliminary recommendations on design and operation of co-composting plants based on the Kumasi pilot investigation. 91pp. Available at: https://sswm.info/sites/default/files/reference_attachments/IWMI%20SANDEC%202002%20CoComposting%20of%20Faecal%20Sludge%20and%20Solid%20Waste.pdf
Jenkins MW, Cumming O, Cairncross S (2015) Pit latrine emptying behavior and demand for sanitation services in Dar Es Salaam, Tanzania. Int J environ res public health 12:2588–2611. https://doi.org/10.3390/ijerph120302588
Jeong K-H, Kim JK, Ravindran B, Lee DJ, Wong JWC, Selvam A, Karthikeyan OP, Kwag JH (2017) Evaluation of pilot-scale in-vessel composting for Hanwoo manure management. Bioresour Technol 245:201–206.
https://doi.org/10.1016/j.biortech.2017.08.127
Johansson SAE, Thomas B (1976) Analytical application of particle-induced X-ray emission. Nucl Instruments Methods 37:473–516
Kaboré TWT, Houot S, Hien E, Zombré P, Hien V, Masse D (2010) Effect of the raw materials and mixing ratio of composted wastes on the dynamic of organic matter stabilization and nitrogen availability in composts of Sub-Saharan Africa. Bioresour Technol 101:1002–1013.
https://doi.org/10.1016/j.biortech.2009.08.101
Karanja N, Kwach H, Njenga M (2015) Low-cost composting training manual based on the UN-HABITAT / URBAN HARVEST-CIP Community based waste management initiatives. 37pp. Available at: https://www.researchgate.net/publication/319187370_LOW_COST_COMPOSTING_TRAINING_MANUAL
Kone D, Gallizzi K, Drescher S, et al (2004) Efficiency of Helminth eggs removal in dewatered faecal sludge by co-composting. In: People-centred approaches to water and environmental sanitation: Proceedings of the 30th WEDC conference. pp 34–38
Krishnan Y, Bong CPC, Azman NF, Zakaria Z, Othman NA, Abdullah N, Ho CS, Lee CT, Hansen SB, Hara H (2017) Co-composting of palm empty fruit bunch and palm oil mill effluent: Microbial diversity and potential mitigation of greenhouse gas emission. J Clean Prod 146:94–100.
https://doi.org/10.1016/j.jclepro.2016.08.118
Kwiatek WM, Dutkiewicz EM, Glebowa L, Marczewska E, Sowa M (1994) Sample preparation procedure for PIXE, PIGE and RBS techniques applied for biological studies in Henryk Niewodniczanski Institute of Nuclear Physics. 76–77
Lohri CR, Diener S, Zabaleta I, Mertenat A, Zurbrügg C (2017) Treatment technologies for urban solid biowaste to create value products: A review with focus on low- and middle-income settings. Rev Environ Sci Biotechnol 16:81–130.
https://doi.org/10.1007/s11157-017-9422-5
Mandal P, Chaturvedi MK, Bassin JK, Vaidya AN, Gupta RK (2014) Qualitative assessment of municipal solid waste compost by indexing method. Int J Recycl Org Waste Agric 3:133–139. https://doi.org/10.1007/s40093-014-0075-x
McGranahan G (2015) Realizing the right to sanitation in deprived urban communities: Meeting the challenges of collective action, coproduction, affordability, and housing tenure. World Dev 68:242–253.
https://doi.org/10.1016/j.worlddev.2014.12.008
Mengistu T, Gebrekidan H, Kibret K, Woldetsadik K, Shimelis B, Yadav H (2018) Comparative effectiveness of different composting methods on the stabilization, maturation and sanitization of municipal organic solid wastes and dried faecal sludge mixtures. Environ Syst Res 6:5.
https://doi.org/10.1186/s40068-017-0079-4
Morisaki N, Phae CG, Nakasaki K, Shoda M, Kobuta H (1989) Nitrogen transformation during thermophilic composting. J Ferment Bioeng 67:57–61
Nartey EG, Amoah P, Ofosu-Budu GK, Muspratt A, Pradhan Sk (2017) Effects of co-composting of faecal sludge and agricultural wastes on tomato transplant and growth. Int J Recycl Org Waste Agric 6:23–36.
https://doi.org/10.1007/s40093-016-0149-z
NBS/UNICEF (2017) Multiple indicator cluster survey 2016-17. National Bureau of Statistics and United Nations Children’s Fund. Accessed at: https://www.unicef.org/nigeria/NG_publications_mics_201617.pdf
Niwagaba C, Nalubega M, Vinnerås B, Sundberg C, Jönsson H (2009) Bench-scale composting of source-separated human faeces for sanitation. Waste Manag 29:585–589. https://doi.org/http://dx.doi.org/10.1016/j.wasman.2008.06.022
Osibote BA, Osibote IA, Bolaji OM, Ana GREE (2016) Effect of thermal treatment on microbial load of faecal sludge from some faecal sludge collection sites in Oyo state, south western, Nigeria. Jordan J Biol Sci 9:243–248
Otterpohl R, Grottker M, Lange J (1997) Sustainable water and waste management in urban areas. Otterpohl Wasserkonzepte, Kanalstraße 52, D-23552 Lübeck, Germany
Oyelami AC, Aladejana JA, Agbede OO (2013) Assessment of the impact of open waste dumpsites on groundwater quality: A case study of the Onibu-Eja dumpsite, Southwestern Nigeria. Procedia Earth Planet Sci 7:648–651.
https://doi.org/10.1016/j.proeps.2013.03.168
Parkinson R, Gibbs P, Burchett S, Misselbrook T (2004) Effect of turning regime and seasonal weather conditions on nitrogen and phosphorus losses during aerobic composting of cattle manure. Bioresour Technol 91:171–178.
https://doi.org/10.1016/S0960-8524(03)00174-3
Rao K., Otoo M, Drechsel P, Hanjra M. (2017) Resource recovery and reuse as an incentive for a more viable sanitation service chain. Water Altern 10:493–512
Scoton EJ, Battistelle RAG, Bezerra BS, Bezerra BS, Renófio A, Akutsu J (2015) Parameters evaluation of the co-composting of sewage sludge and grass clippings using the respirometric method. Int J Environ Waste Manag 16:262.
https://doi.org/10.1504/IJEWM.2015.073034
Scoton EJ, Battistelle RAG, Bezerra BS, Akutsu J (2016) A sewage sludge co-composting process using respirometric monitoring method in hermetic rotary reactor. J Clean Prod 121:169–175.
https://doi.org/10.1016/j.jclepro.2015.04.081
Semiyaga S, Okure MAE, Niwagaba CB, Nyenje PM, Kansiime F (2017) Dewaterability of faecal sludge and its implications on faecal sludge management in urban slums. Int J Environ Sci Technol 14:151–164.
https://doi.org/10.1007/s13762-016-1134-9
Singh S, Mohan R., Rathi S, Raju NJ (2017) Technology options for faecal sludge management in developing countries: Benefits and revenue from reuse. Environ Technol Innov 7:203–218. https://doi.org/10.1016/j.eti.2017.02.004
Soares MAR, Quina MJ, Reis MS, Quinta-Ferreira R (2017) Assessment of co-composting process with high load of an inorganic industrial waste. Waste Manag 59:80–89.
https://doi.org/10.1016/j.wasman.2016.09.044
Stefanakis AI, Komilis DP, Tsihrintzis VA (2011) Stability and maturity of thickened wastewater sludge treated in pilot-scale sludge treatment wetlands. Water Res 45:6441–6452.
https://doi.org/10.1016/j.watres.2011.09.036
Strande L, Ronteltap M, Brdjanovic D (2014) Faecal sludge management: systems approach for implementation and operation. p 403
Strauss M, Heinss U, Montangero A (2000) On-site sanitation: When the pits are full--planning for resource protection in faecal sludge management. Schriftenr Ver Wasser Boden Lufthyg 105:353–360. https://doi.org/105 353-360
Suess M.J Huismans J (1983) Management of hazardous wastes: Policy guidelines and code of practice. UNEP/WHO
Sundberg C, Smårs S, Jönsson H (2004) Low pH as an inhibiting factor in the transition from mesophilic to thermophilic phase in composting. Bioresour Technol 95:145–150
Tiquia SM, Wan JHC, Tam NFY (2002) Dynamics of yard trimmings composting as determined by dehydrogenase activity, ATP content, arginine ammonification, and nitrification potential. Process Biochem 37:1057– 1065
Uggetti E, Llorens E, Pedescoll A, Ferrer I, Castellnou R, García J (2009) Sludge dewatering and stabilization in drying reed beds: Characterization of three full-scale systems in Catalonia, Spain. Bioresour Technol 100:3882–3890.
https://doi.org/10.1016/j.biortech.2009.03.047
Uggetti E, Argilaga A, Ferrer I, García J (2012) Dewatering model for optimal operation of sludge treatment wetlands. Water Res 46:335–344. https://doi.org/10.1016/j.watres.2011.10.040
Vergara SE, Tchobanoglous G (2012) Municipal solid waste and the environment: A global perspective. Annual Review of Environment and Resources 37(1): 277–309.
https://doi.org/10.1146/annurev-environ-050511-122532
Vinod B, Ravindernath A (2015) Compost quality assessment of greater hyderabad municipal corporation (GHMC), India. Int J Eng Res Appl 5:1–9
Wang P, Zhang H, Zuo J, Zhao D, Zou X, Zhu Z, Jeelani N, Leng X, An S (2016) A hardy plant facilitates nitrogen removal via microbial communities in subsurface flow constructed wetlands in winter. Scientific reports 6(1). School of life science, Institute of wetland ecology, Nanjing University, Nanjing, China: Nature Publishing Group: 33600.
https://doi:10.1038/srep33600
World Health Organization (WHO) (2010) Third edition of the WHO guidelines for the Safe use of wastewater, excreta and greywater in agriculture and aquaculture. 12pp
| ||
آمار تعداد مشاهده مقاله: 1,271 تعداد دریافت فایل اصل مقاله: 925 |