Guisasola A, Pijuan M, Baeza J A, Carrera J, Lafuente J
Department d'Enginyeria Química, Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain.
Water Sci Technol. 2006;53(4-5):253-62. doi: 10.2166/wst.2006.130.
The enhanced biological phosphorus removal (EBPR) process is based on enriching the sludge with polyphosphate accumulating organisms (PAO) which are scarce in conventional non-EBPR wastewater treatment plant sludge. Hence, the start-up of EBPR systems (i.e. enriching the sludge with PAO) can be very slow and complex. A simulation study of a possible improvement of the start-up of an EBPR system in a sequencing batch reactor is presented in this work. The improvement is based on reducing the length of the aerobic phase so that it coincides with the depletion of orthophosphate from the medium. This improvement, though verified by simulation to be very successful, requires a good on-line orthophosphate sensor. To avoid this technical limitation, a link between oxygen uptake rate (OUR) measurements and orthophosphate presence is proposed. This link allows the control of the aerobic phase length with OUR as a measured variable and, consequently, a considerable improvement with respect to the conventional fixed aerobic phase length operation. An improvement of 95% in the ratio of PAO to heterotrophs and an increase of 30% in the final amount of PAO in sludge is achieved with this control strategy. The kinetic mod for simulations was a modification of the Activated Sludge Model 2d.
强化生物除磷(EBPR)工艺基于用聚磷菌(PAO)富集污泥,而聚磷菌在传统的非EBPR污水处理厂污泥中很稀少。因此,EBPR系统的启动(即用PAO富集污泥)可能非常缓慢且复杂。本文介绍了对序批式反应器中EBPR系统启动可能的改进进行的模拟研究。这种改进基于缩短好氧阶段的时长,使其与培养基中正磷酸盐的耗尽相吻合。尽管通过模拟验证这种改进非常成功,但它需要一个良好的在线正磷酸盐传感器。为避免这一技术限制,提出了氧摄取率(OUR)测量值与正磷酸盐存在之间的联系。这种联系允许以OUR作为测量变量来控制好氧阶段的时长,因此相对于传统的固定好氧阶段时长运行有显著改进。采用这种控制策略,PAO与异养菌的比例提高了95%,污泥中PAO的最终量增加了30%。用于模拟的动力学模型是对活性污泥模型2d的修改。