Waste Re-processing Division, CSIR-National Environmental Engineering Research Institute (NEERI), Nehru Marg, Nagpur 440 020, India.
Department of Environmental Science, Sukanta Mahavidyalaya, University of North Bengal, West Bengal 735210, India.
Sci Total Environ. 2022 Nov 20;848:157709. doi: 10.1016/j.scitotenv.2022.157709. Epub 2022 Jul 29.
Limitation in the availability of natural resources like water is the main drive for focussing on resource recovery from wastewater. Rapid urbanization with increased consumption of natural resources has severely affected its management and security. The application of biotechnological processes offers a feasible approach to concentrating and transforming wastewater for resource recovery and a step towards a circular economy. Wastewater generally contains high organic materials, nutrients, metals and chemicals, which have economic value. Hence, its management can be a valuable resource through the implementation of a paradigm transformation for value-added product recovery. This review focuses on the circular economy of "close loop" process by wastewater reuse and energy recovery identifying the emerging technologies for recovering resources across the wastewater treatment phase. Conventional wastewater treatment technologies have been discussed along with the advanced treatment technologies such as algal treatment, anammox technology, microbial fuel cells (MFC). Apart from recovering energy in the form of biogas and biohydrogen, second and third-generation biofuels as well as biohythane and electricity generation have been deliberated. Other options for resource recovery are single-cell protein (SCP), biopolymers as well as recovery of metals and nutrients. The paper also highlights the applications of treated wastewater in agriculture, aquaponics, fisheries and algal cultivation. The concept of Partitions-release-recover (PRR) has been discussed for a better understanding of the filtration treatment coupled with anaerobic digestion. The review provides a critical evaluation on the importance of adopting a circular economy and their role in achieving sustainable development goals (SDGs). Thus, it is imperative that such initiatives towards resource recovery from wastewater through integration of concepts can aid in providing wastewater treatment system with resource efficiency.
自然资源(如水资源)的供应有限,这是人们关注从废水中回收资源的主要驱动力。快速的城市化导致自然资源消耗的增加,严重影响了其管理和安全。生物技术过程的应用为浓缩和转化废水以回收资源提供了可行的方法,也是迈向循环经济的一步。废水中通常含有高浓度的有机物质、营养物质、金属和化学物质,具有经济价值。因此,通过实施范式转变,从管理废水中获取附加值产品,将有助于实现废水的有效管理。
本综述重点关注通过废水再利用和能源回收实现“闭环”过程的循环经济,确定了在整个废水处理阶段回收资源的新兴技术。讨论了常规废水处理技术以及高级处理技术,如藻类处理、厌氧氨氧化技术、微生物燃料电池(MFC)。除了以沼气和生物氢的形式回收能源外,还讨论了第二代和第三代生物燃料以及生物甲烷和发电。资源回收的其他选择是单细胞蛋白(SCP)、生物聚合物以及金属和营养物质的回收。本文还强调了处理后废水在农业、水培、渔业和藻类养殖中的应用。
还讨论了 Partition-release-recover (PRR) 的概念,以便更好地理解与厌氧消化相结合的过滤处理。本文对采用循环经济的重要性及其在实现可持续发展目标(SDGs)方面的作用进行了批判性评估。因此,通过整合概念从废水中回收资源的此类举措对于提高废水处理系统的资源效率至关重要。