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影响规模化废水处理高效藻类塘中微藻物种的环境驱动因素。

Environmental drivers that influence microalgal species in fullscale wastewater treatment high rate algal ponds.

机构信息

School of Biological Sciences, University of Canterbury, Christchurch, New Zealand.

National Institute of Water and Atmospheric Research Ltd. (NIWA), PO Box 11-115, Hamilton, 3200, New Zealand.

出版信息

Water Res. 2017 Nov 1;124:504-512. doi: 10.1016/j.watres.2017.08.012. Epub 2017 Aug 6.

DOI:10.1016/j.watres.2017.08.012
PMID:28802135
Abstract

In the last decade, studies have focused on identifying the most suitable microalgal species for coupled high rate algal pond (HRAP) wastewater treatment and resource recovery. However, one of the challenges facing outdoor HRAP systems is maintaining microalgal species dominance. By increasing our understanding of the environmental drivers of microalgal community composition within the HRAP environment, it may be possible to manipulate the system in such a way to favour the growth of desirable species. In this paper, we investigate the microalgal community composition in two full-scale HRAPs over a 23-month period. We compare wastewater treatment performance between dominant species and identify the environmental drivers that trigger change in community composition. A total of 33 microalgal species were identified over the 23-month period but species richness (the number of species present at any given time) was low and was not related to either productivity or nutrient removal efficiency. Species turnover of the dominant microalgae happened rapidly, typically <1 week. Changes in the influent NH-N concentration and zooplankton grazer numbers were significantly associated with species turnover, accounting for 80% of the changes in dominant species throughout the 23-month study period. Both nutrient removal and biomass production did not differ between the two HRAPs when the dominant species was the same or differed in the two ponds. These results suggest that microalgal functional groups are more important than individual species for full-scale HRAP performance. This study has increased our understanding of some of the environmental drivers of the microalgae within the HRAP environment, which may assist with improving wastewater treatment and resource recovery.

摘要

在过去的十年中,研究集中于确定最适合用于耦合高负荷藻类塘(HRAP)废水处理和资源回收的微藻物种。然而,户外 HRAP 系统面临的挑战之一是保持微藻物种的优势。通过增加我们对 HRAP 环境中微藻群落组成的环境驱动因素的理解,我们可能可以操纵该系统以有利于理想物种的生长。在本文中,我们在 23 个月的时间内研究了两个全规模 HRAP 中的微藻群落组成。我们比较了优势物种之间的废水处理性能,并确定了引发群落组成变化的环境驱动因素。在 23 个月的时间内共鉴定出 33 种微藻,但物种丰富度(任何给定时间存在的物种数量)较低,与生产力或养分去除效率无关。优势微藻的物种更替速度很快,通常<1 周。进水 NH-N 浓度和浮游动物捕食者数量的变化与物种更替显着相关,占整个 23 个月研究期间优势物种变化的 80%。当两个 HRAP 中的优势物种相同时,或者在两个池塘中不同时,两者的养分去除和生物量生产均无差异。这些结果表明,对于全规模的 HRAP 性能,微藻功能群比单个物种更为重要。本研究增加了我们对 HRAP 环境中微藻的一些环境驱动因素的理解,这可能有助于改善废水处理和资源回收。

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