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Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1

Year 2019, Volume: 25 Issue: 6, 718 - 733, 25.11.2019

Abstract

Arıtma
çamurlarının stabilizasyonunda kullanılan ve net enerji üretimi ile ön plana
çıkan anaerobik çürütme proseslerinin modellenmesi konusunda literatürdeki
mevcut çalışmalar proses ve model kompleksliği nedeniyle oldukça sınırlı
sayıdadır. Güvenilir dinamik modellenme yaklaşımları; prosesin izlenmesi,
proses dinamiğindeki temel mekanizmaların daha iyi anlaşılması ve tanımlaması
ile proses davranışının tahmin edilmesine, kontrol algoritmalarının
geliştirilmesine ve dizaynın kolaylıkla yapılmasına yönelik önemli bilgiler
sunmaktadır. Bu çalışmada; arıtma çamurlarının anaerobik çürütülmesi ile
stabilizasyonu ve anaerobik çürütme prosesinin modellenmesinde kullanılan basit
substrat karakterizasyon modelleri, ara substrat karakterizasyon modelleri ve
ileri düzey substrat karakterizasyon modelleri tanıtılmıştır. Son olarak,
Anaerobik Çürütme Modeli (ADM1), ADM1 uygulamaları ve modifikasyonları ve
arıtma çamurlarının ADM1 ile modellenmesi konusunda literatürde mevcut
çalışmalar detaylı olarak incelenmiştir.

References

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Models and ADM1 for stabilized sewage sludge by anaerobic digestion process

Year 2019, Volume: 25 Issue: 6, 718 - 733, 25.11.2019

Abstract

Due to
the process and model complexity, number of available modelling studies in
literature related to anaerobic processes used for the stabilization of sewage
sludge are limited. Reliable dynamic modelling approaches provides important
information about monitoring the process, prediction of process behavior by
better understanding and defining mechanisms of process dynamic, developing the
control algorithms and designing easily. In this study, basic substrate
characterization models, secondary substrate characterization models and
advanced level substrate characterization models are introduced which are used
in modelling of stabilization of sewage sludge via anaerobic digestion along with
the process of anaerobic digestion. Finally, available studies in the
literature are summarized in detail related to Anaerobic Digestion Model
(ADM1), ADM1 applications and modifications, and modelling of sewage sludge via
ADM1.

References

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  • Filibeli A. Arıtma Çamurlarının İşlenmesi. İzmir, Türkiye, DEÜ Müh. Fak. Yayınları No: 255, 2007.
  • Yıldız Ş, Yılmaz E, Ölmez E. “Evsel nitelikli arıtma çamurlarının stabilizasyonla bertaraf alternatifleri: istanbul örneği”. Türkiye’de Katı Atık ve Yönetimi Sempozyumu (TÜRKAY), İstanbul, Türkiye, 15-17 Haziran 2009.
  • Tchobanoglous G, Burton FL, Stensel HD. Wastewater Engineering Treatment, Disposal and Reuse, 4th ed. New York, USA, Metcalf and Eddy Inc. 2004.
  • T.C Çevre ve Şehircilik Bakanlığı. “Tubitak-Kamag 108G167, Evsel/Kentsel Arıtma Çamurlarının Yönetimi Projesi Final Raporu”. Ankara, Türkiye, 2013.
  • URL4. “AB Düzenli Depolama Direktifi 1999/31/EC”. http://did.ormansu.gov.tr/did/Files/1999-31-EC.pdf (08.03.2008).
  • Appels L, Baeyens J, Degrève J, Dewil R. “Principles and potential of the anaerobic digestion of waste-activated sludge”. Progress in Energy and Combustion Science, 34(6), 755-781, 2008.
  • Lu J, Gavala HN, Skiadas IV, Mladenovska Z, Ahring BK. “Improving anaerobic sewage sludge digestion by implementation of a hyperthermophilic prehydrolysis step”. Journal of Environmental Management, 88(4), 881-889, 2008.
  • İşgenç MF, Kınay EH. “Türkiye'de arıtma çamurları”. I. Ulusal Arıtma Çamurları Sempozyumu, 23-25 Mart, İzmir, Türkiye, 2005.
  • Jang J, Sun C. “Neuro-fuzzy modeling and control”. Proceedings IEEE, 83(3), 378-405, 1993.
  • Donoso-Bravo A, Mailier J, Martin C, Rodríguez J, Aceves-Lara CA, Vande Wouwer A. “Model selection, identification and validation in anaerobic digestion: a review”. Water Research, 45(17), 5347-5364, 2011.
  • Walter E, Pronzato L. Identification of Parametric Models From Experimental Data. Springer-Verlag, London 1997.
  • Englezos P, Kalogerakis N. Applied Parameter Estimation for Chemical Engineers. New York, USA, Marcel Dekker Inc., 2001.
  • Lee MY, Suh CW, Ahn YT, Shin H. “Variation of ADM1 by using temperature-phased anaerobic digestion (TPAD) operation”. Bioresource Technology, 100(11), 2816-2822, 2009.
  • Tartakovsky B, Morel E, Steyer JP, Guiot S. “Application of a variable structure model in observation and control of an anaerobic digestor”. Biotechnology Progress, 18(4), 898-903, 2002.
  • Batstone D, Keller J, Angelidaki I, Kalyuzhnyi S, Pavlostathis SG, Rozzi A, Sanders W, Siegrist H, Vavilin V. Anaerobic Digestion Model No. 1 (ADM1). 1st ed. IWA Task Group on Modeling of Anaerobic Digestion Processes, IWA Publishing, London, 2002.
  • Lopez I, Borzacconi L. “Modelling a full scale UASB reactor using a COD global balance approach and state observers”. Chemical Engineering Journal, 146(1), 1-5, 2009.
  • Palatsi J, Illa J, Prenafeta-Boldú FX, Laureni M, Fernandez B, Angelidaki I, Flotats X. “Long-chain fatty acids inhibition and adaptation process in anaerobic thermophilic digestion: Batch tests, microbial community structure and mathematical modelling”. Bioresource Technology, 101(7), 2243-2251, 2010.
  • Ljung L. System Identification: Theory for the User. 1st ed. Englewood Cliffs, NJ, Prentice-Hall, 1987.
  • Andrews J, Pearson EA. “Kinetics and characteristics of volatile fatty acid production in anaerobic fermentation processes”. International Journal of Air and Water Pollution, 9, 439-461, 1965.
  • Gossett JM, Belser RL. “Anaerobic digestion of waste activated sludge”. Journal of Environmental Engineering Division ASCE, 108(EE6), 1101-1120, 1982.
  • Pavlostathis SG. A Kinetic Model for Anaerobic Digestion of Waste Activated Sludge. PhD. Thesis, Cornell University, Ithaca, New York, USA, 1986.
  • Tomei M, Braguglia C, Cento G, Mininni G. “Modeling of anaerobic digestion of sludge”. Critical Reviews in Environmental Science and Technology, 39(2), 1003-1051, 2009.
  • Eastman JA, Ferguson JF. “Solubilization of particulate organic carbon during the acid phase of anaerobic digestion”. Journal Water Pollution Control Federation, 53(3), 352-366, 1981.
  • Pavlostathis SG, Gossett JM. “A kinetic model for anaerobic digestion of biological sludge”. Biotechnology and Bioengineering, 28, 1519-1530, 1986.
  • Gujer W, Zehnder A. “Conversion processes in anaerobic digestion”. Water Science and Technology, 15, 127-167, 1983.
  • Li Y, Noike T. “Characteristics of the degradation of excess activated sludge in anaerobic acidogenic phase”. Japan Journal of Water Pollution Research, 10, 740-795, 1987.
  • Shimizu T, Kudo K, Nasu Y. “Anaerobic waste-activated sludge digestion-a bioconversion mechanism and kinetic model”. Biotechnology and Bioengineering, 41, 1082-1091, 1993.
  • Angelidaki I, Ahring BK. “Effects of free long-chain fatty acids on thermophilic anaerobic digestion”. Applied Microbiology and Biotechnology, 37, 808-812, 1992.
  • Angelidaki I, Ahring BK. “Thermophilic anaerobic digestion of live-stock waste: The effect of ammonia”. Applied Microbiology and Biotechnology, 38, 560-564, 1993.
  • Angelidaki I, Ahring BK. “Anaerobic digestion of manure at different ammonia loads: Effect of temperature”. Water Research, 28, 727-731, 1994.
  • Angelidaki I, Ellegaard L, Ahring BK. “A comprehensive model of anaerobic bioconversion of complex substrates to biogas”. Biotechnology and Bioengineering, 63(3), 363-372, 1999.
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There are 98 citations in total.

Details

Primary Language Turkish
Subjects Engineering
Journal Section Review Article
Authors

Murat Mert Otuzaltı This is me

Nuriye Altınay Perendeci

Publication Date November 25, 2019
Published in Issue Year 2019 Volume: 25 Issue: 6

Cite

APA Otuzaltı, M. M., & Altınay Perendeci, N. (2019). Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, 25(6), 718-733.
AMA Otuzaltı MM, Altınay Perendeci N. Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. November 2019;25(6):718-733.
Chicago Otuzaltı, Murat Mert, and Nuriye Altınay Perendeci. “Anaerobik çürütme Prosesi Ile Stabilize Edilen arıtma çamurları için Modeller Ve ADM1”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 25, no. 6 (November 2019): 718-33.
EndNote Otuzaltı MM, Altınay Perendeci N (November 1, 2019) Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 25 6 718–733.
IEEE M. M. Otuzaltı and N. Altınay Perendeci, “Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1”, Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, vol. 25, no. 6, pp. 718–733, 2019.
ISNAD Otuzaltı, Murat Mert - Altınay Perendeci, Nuriye. “Anaerobik çürütme Prosesi Ile Stabilize Edilen arıtma çamurları için Modeller Ve ADM1”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi 25/6 (November 2019), 718-733.
JAMA Otuzaltı MM, Altınay Perendeci N. Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. 2019;25:718–733.
MLA Otuzaltı, Murat Mert and Nuriye Altınay Perendeci. “Anaerobik çürütme Prosesi Ile Stabilize Edilen arıtma çamurları için Modeller Ve ADM1”. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi, vol. 25, no. 6, 2019, pp. 718-33.
Vancouver Otuzaltı MM, Altınay Perendeci N. Anaerobik çürütme prosesi ile stabilize edilen arıtma çamurları için modeller ve ADM1. Pamukkale Üniversitesi Mühendislik Bilimleri Dergisi. 2019;25(6):718-33.





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