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    MBBR工艺强化工业园区废水处理的可行性分析及微生物特性研究

    Feasibility Analysis and Microbial Characterization of MBBR-Enhanced Treatment for Industrial Park Wastewater

    • 摘要: 针对南京某工业园区污水处理厂面临的原位扩容与水质提标双重需求,本研究采用移动床生物膜反应器(MBBR)工艺对传统厌氧−缺氧−好氧(AAO)系统进行强化改造,系统评估了该技术在工业园区废水处理中的扩容与提标可行性,并深入探究了其微生物群落特性。中试装置运行结果表明,在夏季合适温度条件下,MBBR系统可在30 d内快速形成稳定的生物膜,并对化学需氧量(COD)、氨氮(NH4 +-N)和总磷(TP)展现出良好的去除性能。在水力负荷提升至150%(进水流量为1.5 m3/h)条件下,夏秋季节出水水质稳定达到地表水准Ⅳ类标准;而在冬春季节低温条件下,除COD浓度略高于准Ⅳ类标准限值(30.87±2.54) mg/L外,NH4 +-N、TN(≤10 mg/L)、TP排放均满足准Ⅳ类标准要求,验证了MBBR工艺的季节适应性与处理稳定性。微生物群落结构分析显示,夏秋季节生物膜的群落多样性显著提升,多种嗜热型异养菌显著富集;而在冬春季节,系统中富集了耐冷型微生物,特别是硝化螺菌属的积累显著促进了系统在低温条件下的脱氮效率。群落构建的生态过程分析进一步表明,夏秋季节群落构建主要受确定性过程主导,而冬春季节则更受随机性过程驱动,且群落更倾向于形成简化的种间互作网络,以增强对低温扰动的生态稳定性。研究结果证实,MBBR工艺在工业园区废水原位扩容与提标改造中具有良好的技术可行性与处理效能,为低温条件下生物处理系统的优化运行提供了重要的实践参考。

       

      Abstract: The escalating challenges of rapid industrialization and increasingly stringent environmental regulations have placed immense pressure on existing wastewater treatment plants (WWTPs), particularly those within industrial parks. These facilities often face the dual imperative of expanding their treatment capacity to accommodate rising influent volumes and simultaneously upgrading their processes to meet higher effluent quality standards, all while constrained by limited physical space. To address these critical issues, this study comprehensively evaluated an in-situ upgrading strategy for a WWTP in a major industrial park in Nanjing, China. The technical approach integrated a Moving Bed Biofilm Reactor (MBBR) into the traditional Anaerobic-Anoxic-Oxic (AAO) system to assess its feasibility and efficacy for significant capacity expansion and achieving Class Ⅳ surface water standards. The results demonstrated a rapid and successful system start-up, with a mature and stable biofilm layer established on the MBBR carriers within 30 days during favorable summer temperatures. Under a demanding hydraulic loading rate of 150% of the original design capacity (corresponding to an influent flow rate of 1.5 m3/h), the hybrid system exhibited exceptional resilience. During the warm season, the treated effluent consistently met all Class Ⅳ surface water quality standards. While low temperatures during the cold season exerted inhibitory effects on microbial activity, the MBBR-enhanced process demonstrated remarkable robustness: the average effluent chemical oxygen demand (COD) concentration only slightly exceeded the Class Ⅳ limit (30.87 ± 2.54 mg/L), whereas ammonia, total nitrogen, and total phosphorus concentrations all comfortably satisfied the stringent requirements. This outcome confirms that the MBBR-enhanced process effectively achieved the dual goals of in-situ capacity expansion and substantial effluent quality improvement for the complex industrial park wastewater. Analysis of the microbial community structure revealed a pronounced seasonal shift in community composition and assembly. During the warm season, the biofilm community exhibited significantly higher α-diversity, with a notable enrichment of various thermophilic heterotrophic bacteria. Conversely, the microbial community shifted dramatically in the cold season, with a clear enrichment of cold-tolerant microorganisms. Notably, the significant proliferation of the genus Nitrospira was crucial for sustaining effective nitrification under low-temperature conditions. The assembly of the microbial community in the warm season was predominantly governed by deterministic processes. In contrast, community assembly during the cold season shifted towards a greater influence of stochastic processes. Concurrently, microbial network analysis indicated that the interspecies interaction network became simplified in winter and spring, likely enhancing overall community resilience and stability. In conclusion, this study offers a robust and scalable solution applicable to WWTPs worldwide that are facing similar challenges of expansion and stringent effluent quality improvement.

       

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