Sludge minimisation technologies

被引:200
作者
Pérez-Elvira S.I. [1 ]
Nieto Diez P. [1 ]
Fdz-Polanco F. [1 ]
机构
[1] Department of Chemical Engineering and Environmental Technology, University of Valladolid, Valladolid 47011, Prado de la Magdalena s/n
关键词
Activated sludge process; Anaerobic digestion; Excess sludge production; Sludge minimisation; Wastewater treatment;
D O I
10.1007/s11157-005-5728-9
中图分类号
学科分类号
摘要
The treatment and disposal of excess sludge represents a bottleneck of wastewater treatment plants all over the world, due to environmental, economic, social and legal factors. There is therefore a growing interest in developing technologies to reduce the wastewater sludge generation. The goal of this paper is to present the state-of-the-art of current minimisation techniques for reducing sludge production in biological wastewater treatment processes. An overview of the main technologies is given considering three different strategies: The first option is to reduce the production of sludge by introducing in the wastewater treatment stage additional stages with a lower cellular yield coefficient compared to the one corresponding to the activated sludge process (lysis-cryptic growth, uncoupling and maintenance metabolism, predation on bacteria, anaerobic treatment). The second choice is to act on the sludge stage. As anaerobic digestion is the main process in sewage sludge treatment for reducing and stabilising the organic solids, two possibilities can be considered: introducing a pre-treatment process before the anaerobic reaction (physical, chemical or biological pre-treatments), or modifying the digestion configuration (two-stage and temperature-phased anaerobic digestion, anoxic gas flotation). And, finally, the last minimisation strategy is the removal of the sludge generated in the activated sludge plant (incineration, gasification, pyrolysis, wet air oxidation, supercritical water oxidation). © Springer 2006.
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页码:375 / 398
页数:23
相关论文
共 154 条
[71]  
Lettinga G., Van Velsen A.F.M., Hobma S.W., De Zeew W.J., Klapwijk A., Use of Upflow Sludge Blaket (USB) reactor concept for biological wastewater treatment, Biotechnol. Bioeng., 22, pp. 699-734, (1980)
[72]  
Li Y.Y., Noike T., Upgrading of anaerobic digestion of waste activated sludge by thermal pretreatment, Water Sci. Technol., 26, pp. 857-866, (1992)
[73]  
Liu Y., Effect of chemical uncoupler on the observed growth yield in batch culture of activated sludge, Water Res., 34, pp. 2025-2030, (2000)
[74]  
Liu J.C., Lee C.H., Lai J.Y., Wang K.C., Hsu Y.C., Chang B.V., Extracellular polymers of ozonized waste activated sludge, Water Sci. Technol., 44, 10, pp. 137-142, (2001)
[75]  
Liu Y., Tay J.H., Strategy for minimization of excess sludge production from the activated sludge process, Biotechnol. Adv., 19, 2, pp. 97-107, (2001)
[76]  
Low E.W., Chase H.A., Milner M.G., Curtis T.P., Uncoupling of metabolism to reduce biomass production in the activated sludge process, Water Res., 34, 12, pp. 3204-3212, (2000)
[77]  
Low E.W., Chase H.A., The use of chemical uncouplers for reducing biomass production during biodegradation, Water Sci. Technol., 37, 4-5, pp. 399-402, (1998)
[78]  
Luxmy B.S., Kubo T., Yamamoto K., Sludge reduction potential of metazoan in membrane bioreactors, Water Sci. Technol., 44, 10, pp. 197-202, (2001)
[79]  
Martinage V., Paul E., Effect of environmental parameters on autotrophic decay rate, Environ. Technol., 21, pp. 31-41, (2000)
[80]  
Mason C.A., Hamer G., Bryers D., The death and lysis of microorganisms in environmental processes, FEMS Microbiol. Rev., 39, pp. 373-401, (1986)