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Cascaded Simultaneous Nitrification and Denitrification Process for Nitrogen and Phosphorus Reduction from RO Reject Wastewater: A Bench-Scale Study 被引量:1
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作者 A.B. Shahalam A. Abusam A. Matouk M. Khaja 《Journal of Environmental Science and Engineering》 2011年第11期1400-1406,共7页
The use of the reverse osmosis (RO) process, for refining secondary or tertiary effluent from plants treating domestic wastewater, is rapidly increasing. However, the disposal of the RO reject water poses a problem ... The use of the reverse osmosis (RO) process, for refining secondary or tertiary effluent from plants treating domestic wastewater, is rapidly increasing. However, the disposal of the RO reject water poses a problem due to the presence of very high concentrations of salts, metals, and nutrients in it. This paper contains results of a bench-scale study aimed at reducing nutrients from RO-discarded streams utilizing a sequential bioreactors system, under partial aerobic and anoxic conditions. The tests were performed on synthetic wastewater resembling RO-reject water of an operating treatment plant, with glucose, methanol or acetate added to the water as sources of carbon. Study results indicate that the RO process removed about 50-60% of the total nitrogen and 50% of the phosphate; it reduced chemical oxygen demand (COD) by 79 to 82%, and affected no change in the metal concentrations. A clear cut removal preference for any one of the external carbon sources was not observed, although a slight advantage of glucose and methanol was recorded. The process maintained about 20% of the rector volume in the anoxic environment. 展开更多
关键词 BRINE wastewater treatment biological nutrient removal sequential aerobic-anoxic reactors.
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作物根系对根际土壤N_(2)O产生与排放的调控机制研究进展 被引量:2
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作者 张玉铭 邢力 +4 位作者 李晓欣 秦树平 李燕楠 韩建 胡春胜 《中国生态农业学报(中英文)》 CAS CSCD 北大核心 2023年第8期1322-1329,共8页
农田土壤是大气N_(2)O的重要排放源。农田土壤N_(2)O排放不仅受农业管理措施影响,还与作物根系生长密切相关,根系自身代谢对农田土壤N_(2)O生成与还原产生影响,进而影响农田N_(2)O排放。根际是根系-土壤-微生物相互作用的重要界面,是根... 农田土壤是大气N_(2)O的重要排放源。农田土壤N_(2)O排放不仅受农业管理措施影响,还与作物根系生长密切相关,根系自身代谢对农田土壤N_(2)O生成与还原产生影响,进而影响农田N_(2)O排放。根际是根系-土壤-微生物相互作用的重要界面,是根系影响土壤N_(2)O排放最直接、最强烈的关键场所,也是农田土壤N_(2)O产生的热点区域,在农田N_(2)O排放中所占份额不容忽视。因而根系对根际N_(2)O排放的影响机制研究普遍受到重视。本文以国内外相关研究为基础,综合梳理了有关作物根系生长对农田土壤N_(2)O排放的影响强度以及对根际微域N_(2)O产生与排放的调控机制方面的研究进展,剖析了作物根系影响根际微域土壤N_(2)O产生与排放研究中存在的难点,并对未来相关研究工作进行了展望。根系对农田N_(2)O排放的影响过程复杂,涉及因子颇多。大量研究表明,施肥量及肥料种类,土壤氮素含量与形态、温湿度、光强等因素可通过调控根系生长来影响作物从土壤中汲取水分和营养以及光合产物向根系的传导与分泌,改变根际微域通气状况以及微生物赖以生存的碳氮源等营养成分,进而影响根际微生物的群落结构、数量和活性以及在土壤中的分布,由此介导根际微生物的硝化、反硝化过程,影响根际土壤N_(2)O生成、还原与排放。鉴于众多因素的影响,作物根系生长对土壤N_(2)O的生成与排放的影响具有促进或抑制双重作用,其作用方向与强弱将影响农田生态系统中N_(2)O的总体排放预算。因此,研究作物根系对土壤N_(2)O排放的调控作用及其对全球变暖的反馈机制势在必行,对减少全球N_(2)O排放预测的不确定性、减缓人类活动对全球变化的影响意义重大。 展开更多
关键词 作物根系 根际土壤 N_(2)O排放 硝化-反硝化过程 根系分泌物
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