Comparison of the Effects of Continuous Flow Microwave Pre-treatment with Different Intensities on the Anaerobic Digestion of Sewage Sludge for Sustainable Energy Recovery from Sewage Treatment Plant

Anaerobic digestion is a well-known technique for
sustainable energy recovery from sewage sludge. However, sewage
sludge digestion is restricted due to certain factors. Pre-treatment
methods have been established in various publications as a promising
technique to improve the digestibility of the sewage sludge and to
enhance the biogas generated which can be used for energy recovery.
In this study, continuous flow microwave (MW) pre-treatment with
different intensities were compared by using 5 L semi-continuous
digesters at a hydraulic retention time of 27 days. We focused on the
effects of MW at different intensities on the sludge solubilization,
sludge digestibility, and biogas production of the untreated and MW
pre-treated sludge. The MW pre-treatment demonstrated an increase
in the ratio of soluble chemical oxygen demand to total chemical
oxygen demand (sCOD/tCOD) and volatile fatty acid (VFA)
concentration. Besides that, the total volatile solid (TVS) removal
efficiency and tCOD removal efficiency also increased during the
digestion of the MW pre-treated sewage sludge compared to the
untreated sewage sludge. Furthermore, the biogas yield also
subsequently increases due to the pre-treatment effect. A higher MW
power level and irradiation time generally enhanced the biogas
generation which has potential for sustainable energy recovery from
sewage treatment plant. However, the net energy balance tabulation
shows that the MW pre-treatment leads to negative net energy production.





References:
[1] Yew, L. (2012) Energy and Resource Baseline Analysis of a Sewage
Treatment Plant. Undergraduate. Universiti Tenaga Nasional.
[2] Montgomery, L. and Bochmann, G. (2014). Pretreatment of Feedstock
for Enhanced Biogas Procution. Energy from Biogas. IEA Bioenergy.
[3] Appels, L., Baeyens, J., Degrève, J. and Dewil, R. (2008). Principles and
Potential of the Anaerobic Digestion of Waste-activated
Sludge. Progress in Energy and Combustion Science, 34 (6), pp. 755-
781.
[4] Carlsson, M., Lagerkvist, A. and Morgan-Sagastume, F. (2012). The
Effects of Substrate Pre-treatment on Anaerobic Digestion Systems: A
Review. Waste Management, 32(9), pp.1634-1650.
[5] Hephzibah, D., Kumaran, P. and Saifuddin, N. (2014). Pre-Treatment of
Sewage Sludge to Enhance Biogas Production to Generate Green Energy
for Reduction of Carbon Footprint in Sewage Treatment Plant (STP).
In: Green Energy for Sustainable Development (ICUE), 2014
International Conference and Utility Exhibition. (online) Pattaya City:
IEEE, pp.1-5. Available at:
http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6829007&isn
umber=6828886 (Accessed 15 Jun. 2015).
[6] Bougrier, C., Delgenès, J. and Carrère, H. (2008). Effects of thermal
treatments on five different waste activated sludge samples
solubilisation, physical properties and anaerobic digestion. Chemical
Engineering Journal, 139(2), pp.236-244.
[7] Eskicioglu, C., Kennedy, K. and Droste, R. (2006). Characterization of
soluble organic matter of waste activated sludge before and after thermal
pretreatment. Water Research, 40(20), pp.3725-3736.
[8] Tyagi, V. and Lo, S. (2013). Microwave irradiation: A sustainable way
for sludge treatment and resource recovery. Renewable and Sustainable
Energy Reviews, 18, pp.288-305.
[9] Appels, L., Houtmeyers, S., Degrève, J., Van Impe, J. and Dewil, R.
(2013). Influence of microwave pre-treatment on sludge solubilization and pilot scale semi-continuous anaerobic digestion.Bioresource
Technology, 128, pp.598-603.
[10] Beszédes, S., László, Z., Horváth, Z., Szabó, G. and Hodúr, C. (2011).
Comparison of the effects of microwave irradiation with different
intensities on the biodegradability of sludge from the dairy- and meatindustry.
Bioresource Technology, 102(2), pp.814-821.
[11] Feng, X., Lei, H., Deng, J., Yu, Q. and Li, H. (2009). Physical and
chemical characteristics of waste activated sludge treated
ultrasonically. Chemical Engineering and Processing: Process
Intensification, 48(1), pp.187-194.
[12] Eskicioglu, C., Kennedy, K. and Droste, R. (2007). Enhancement of
Batch Waste Activated Sludge Digestion by Microwave
Pretreatment. Water Environment Research, 79(11), pp.2304-2317.
[13] Park, W., Ahn, J., Hwang, S. and Lee, C. (2010). Effect of output power,
target temperature, and solid concentration on the solubilization of waste
activated sludge using microwave irradiation. Bioresource Technology,
101(1), pp.S13-S16.
[14] Yu, Q., Lei, H., Yu, G., Feng, X., Li, Z. and Wu, Z. (2009). Influence of
microwave irradiation on sludge dewaterability. Chemical Engineering
Journal, 155(1-2), pp.88-93.
[15] Park, W. and Ahn, J. (2011). Effects of microwave pretreatment on
mesophilic anaerobic digestion for mixture of primary and secondary
sludges compared with thermal pretretament. Environmental
Engineering Research, 16(2), pp.103-109.
[16] Hosahalli, S. and Manguang, L. (2011). Influence of system variables on
the heating characteristics of water during continuous flow microwave
heating. International Journal of Microwave Science Technology, 2011.