Potential of Integrated Membrane Bioreactor in Batik Dye Degradation - A Review

Article Preview

Abstract:

The objectives of this study are mainly focusing on reviewing the potential of membrane bioreactor application in Batik dyes degradation and to identify the factors contributing to the permeability and selectivity of a membrane-coupled bacteria reactor. It is evidently that integrating membrane technology with biological reactors for the treatment of textile dyeing wastewaters has led to the development of three generic membrane processes within bioreactors: for separation and recycle of solids, for bubble-less aeration of the bioreactor, and for extraction of priority organic pollutants from hostile textile dyeing wastewaters. Thus, installation costs and usable floor area of the infrastructure are saved, due to the separation unit of MBR replaced the sedimentation basin that is used in current practice. It is well recognized that east coast states in Malaysia such as Kelantan and Terengganu are the main producers of “Batik” industries in which create a huge contribution to Malaysia textile economy development due to high demands from local and abroad. Batik textile wastewater is a complex and consist highly variable mixture of many polluting substances including dye. Existence of dyes in the wastewater plays a major issue and has raised significant concerns. Thus, selection of microorganism and the separation processes of the membrane bioreactor are vital to be evaluated towards an achievable productivity and efficient process separation. These are depended on several factors which include degradation of dye, temperature, retention time, pH and concentration of the textile wastewater.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

50-54

Citation:

Online since:

June 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Ahmad Mutamim, N. S., Noor, Z. Z. Abu Hassan, M. A. And Olsson, G. (2012). Application or membrane bioreactor technology in treating high strength industrial wastewater: a performance review., Desalination. 305: pp.1-11.

DOI: 10.1016/j.desal.2012.07.033

Google Scholar

[2] Ahmad Mutamim, N. S., Zainon Noor, Z., Abu Hassan, M. A., Yuniarto, A. and Olsson, G. (2013). Membrane bioreactor: Applications and limitations in treating high strength industrial wastewater., Chemical Engineering Journal. 225: pp.109-119.

DOI: 10.1016/j.cej.2013.02.131

Google Scholar

[3] Hai, F. I., Yamamoto, K. and Fukushi, K. (2006). Development of a submerged membrane fungi reactor for textile wastewater treatment. Desalination. 192: pp.315-322.

DOI: 10.1016/j.desal.2005.06.050

Google Scholar

[4] Hai, F. I. Yamamoto, K., Nakajima, F. and Fukushi, K. (2008).

Google Scholar

[5] Yang, S. Hai, F. I., Nghiem, L. D., Nguyen, L. N. Roddick, F. and Price. W. E. (2013a). Removal of bisphenol A and diclofenac by a novel fungal membrane bioreactor operated under non-sterile conditions. " International Biodeterioration & Biodegradation. In press.

DOI: 10.1016/j.ibiod.2013.03.012

Google Scholar

[6] Skouteris, G., Hermosilla, D., Lopez, P., Negro, C. and Blanco, A. (2012). Anaerobic membrane bioreactors for wastewater treatment: A review,. Chemical Engineering Journal. 199: pp.138-139.

DOI: 10.1016/j.cej.2012.05.070

Google Scholar

[7] Spagni, A., Casu, S. and Grilli, S. (2012). Decolourisation of textile wastewater in a submerged anaerobic membrane bioreactor,. Bioresource Technology. 117: pp.180-185.

DOI: 10.1016/j.biortech.2012.04.074

Google Scholar

[8] Noor, S. and Rohasliney, H. (2011). A Preliminary Study on Batik effluents in Kelantan State: A Water Quality Perspective., International Conference on Chemical, Biological and Environment Sciences [ICCEBS 2011] Bangkok. pp.274-276.

Google Scholar

[9] Avnessh, D. S., Sabaratnam, V., Noorlidah, A. and Muniandy, S. (2010).

Google Scholar

[10] Asgher, M., Kausar,S., Bhatti, H. N., and Syed, A. H. S. (2009). Optimization of Medium for decolorization of Solar golden yellow R direct textile dye by Schizophyllum commune IBL-06., International Biodeterioration & Biodegradation. pp.199-193.

DOI: 10.1016/j.ibiod.2007.07.009

Google Scholar

[11] Deng, S. (2005). Production of a bioflocculant by Aspergillus parasiticus and its application in dye removal, Colloids and surface B: Biointerfaces. pp.9-196.

DOI: 10.1016/j.colsurfb.2005.06.011

Google Scholar

[12] Bhattacharyya, K. G. and Sharma, A. (2003). Adsorption characteristics of the dye. Brilliant Green.

Google Scholar

[13] Marco-Urrea, E., Pérez-Trujillo, M., Cruz-Morató, C., Caminal, G., Vicent, T. (2010).

Google Scholar

[14] Tran, N. H., Urase, T. and Kusakabe, O. (2010). Biodegradation characteristics of pharmaceutical substances by whole fungal cultureTrametes versicolor and its laccase., Journal of Water and Environment Technology. 8: p.125–140.

DOI: 10.2965/jwet.2010.125

Google Scholar

[15] Yang, S., Hai, F. I., Nghiem, L. D., Price, W. E., Roddick, F., Moreira, M. T., Magram, S. F. (2013b). Understanding the factors controlling the removal of trace organic contaminants by white-rot fungi and their lignin modifying enzymes: a critical review., Bioesource Technology. In press.

DOI: 10.1016/j.biortech.2013.01.173

Google Scholar

[16] Dua, M, Singh, A, Sethunathan, N, & Johri, A. (2002). Biotechnology and bioremediation: successes and limitations. Applied microbiology and biotechnology. 59(2-3): pp.143-152.

DOI: 10.1007/s00253-002-1024-6

Google Scholar

[17] Solís, Myrna, Solís, Aida, Pérez, Herminia Inés, Manjarrez, Norberto, & Flores, Maribel. (2012). Microbial decolouration of azo dyes: A review. Process Biochemistry.

DOI: 10.1016/j.procbio.2012.08.014

Google Scholar

[18] Seesuriyachan, Phisit, Takenaka, Shinji, Kuntiya, Ampin, Klayraung, Srikarnjana, Murakami, Shuichiro, & Aoki, Kenji. (2007).

Google Scholar

[19] Cervantes, Francisco J, & Dos Santos, André B. (2011). Reduction of azo dyes by anaerobic bacteria: microbiological and biochemical aspects. Reviews in Environmental Science and Bio/Technology. 10(2): pp.125-137.

DOI: 10.1007/s11157-011-9228-9

Google Scholar

[20] Wang, Shaohua, Kong, Jian, Gao, Chen, Guo, Tingting, & Liu, Xiaoyong. (2010). Isolation and characterization of a novel virulent phage (phiLdb) of Lactobacillus delbrueckii. International journal of food microbiology. 137(1): pp.22-27.

DOI: 10.1016/j.ijfoodmicro.2009.10.024

Google Scholar

[21] Siti Zuraida, M., Nurhaslina, C. R. and Ku Halim, K. H. (2013).

Google Scholar

[22] Lin, H., Peng, W., Zhang, M., Chen, J., Hong, H. and Zhang, Y. (2013). A review on anaerobic membrane bioreactor: Applications, membrane fouling and future perspectives. Desalination. 314: pp.169-188.

DOI: 10.1016/j.desal.2013.01.019

Google Scholar