Adav Sunil S, Lee Duu-Jong, Show Kuan-Yeow, Tay Joo-Hwa
Department of Chemical Engineering, National Taiwan University, Taipei, Taiwan.
Biotechnol Adv. 2008 Sep-Oct;26(5):411-23. doi: 10.1016/j.biotechadv.2008.05.002. Epub 2008 May 19.
Aerobic granulation, a novel environmental biotechnological process, was increasingly drawing interest of researchers engaging in work in the area of biological wastewater treatment. Developed about one decade ago, it was exciting research work that explored beyond the limits of aerobic wastewater treatment such as treatment of high strength organic wastewaters, bioremediation of toxic aromatic pollutants including phenol, toluene, pyridine and textile dyes, removal of nitrogen, phosphate, sulphate and nuclear waste and adsorption of heavy metals. Despite this intensive research the mechanisms responsible for aerobic granulation and the strategy to expedite the formation of granular sludge, and effects of different operational and environmental factors have not yet been clearly described. This paper provides an up-to-date review on recent research development in aerobic biogranulation technology and applications in treating toxic industrial and municipal wastewaters. Factors affecting granulation, granule characterization, granulation hypotheses, effects of different operational parameters on aerobic granulation, response of aerobic granules to different environmental conditions, their applications in bioremediations, and possible future trends were delineated. The review attempts to shed light on the fundamental understanding in aerobic granulation by newly employed confocal laser scanning microscopic techniques and microscopic observations of granules.
好氧颗粒化是一种新型的环境生物技术工艺,越来越吸引从事生物废水处理领域工作的研究人员的关注。大约十年前开发的它,是一项令人兴奋的研究工作,突破了好氧废水处理的局限,比如处理高浓度有机废水、对包括苯酚、甲苯、吡啶和纺织染料在内的有毒芳香污染物进行生物修复、去除氮、磷、硫酸盐和核废料以及吸附重金属。尽管进行了大量研究,但好氧颗粒化的形成机制、加速颗粒污泥形成的策略以及不同运行和环境因素的影响尚未得到清晰描述。本文对好氧生物颗粒化技术的最新研究进展及其在处理有毒工业废水和城市污水方面的应用进行了综述。阐述了影响颗粒化的因素、颗粒特性、颗粒化假说、不同运行参数对好氧颗粒化的影响、好氧颗粒对不同环境条件的响应、它们在生物修复中的应用以及未来可能的发展趋势。该综述试图通过新采用的共聚焦激光扫描显微镜技术和颗粒的显微镜观察,来阐明对好氧颗粒化的基本认识。