填埋场,微藻,光伏,厌氧膜废水,资源化 ," /> 填埋场,微藻,光伏,厌氧膜废水,资源化 ,"/> Landfill,Microalgae,Photovoltaic,AnMBR Effluent ,Resource Recovery ,"/> 填埋场光伏-微藻系统在厨余厌氧膜废水资源化中的应用

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填埋场光伏-微藻系统在厨余厌氧膜废水资源化中的应用

  

  1. 1.上海黎明资源再利用有限公司;2.上海浦东环保发展有限公司;3.光语生物科技有限公司

Application of Landfill Algae-Photovoltaic Complementarity System in the Resource Recovery of Kitchen Waste AnMBR Effluent

  1. 1.Shanghai Liming Resources Reuse Co.Ltd;2.Shanghai Pudong Environmental Protection Development Co.Ltd;3.Guangyu Biological Technology Co.,LTD

摘要:

“双碳”目标的大背景下,“藻光互补”模式将清洁能源生产与生物固碳结合,为大城市低碳发展提供了新途径。本研究依托上海市浦发?零碳绿谷园区,以厨余厌氧膜过滤沼液为营养液,添加K2HPO4调节N/P比,采用闭式光生物反应器与光伏结合,进行了为期211天的填埋场小球藻半连续培养实验,期间监测生长状况、营养消耗及水质变化。结果表明,小球藻生物量夏季最高,春季次之,秋冬季较低,这与太阳高度角、遮光率和环境温度密切相关。微藻对氮磷营养盐及有机污染物利用良好,出水TNTPNH3-NCOD的平均值分别为136.1 mg/L±83.3 mg/L12.6 mg/L±6.63 mg/L133.8 mg/L±90.2 mg/L123.6 mg/L±81.6 mg/L中试实验最佳产藻条件组合为温度25.5℃±3.88℃,光照强度21783 lux±11256 luxN/P12.0CO2通入速率0.37 L/minpH 6.59±0.23

关键词: 填埋场')">

填埋场, 微藻, 光伏, 厌氧膜废水, 资源化

Abstract:

Against the backdrop of the dual-carbon” goals, the algae-photovoltaic complementarity” model combines clean energy production with biological carbon sequestration, offering a new pathway for low-carbon development in major cities. This study was conducted at Shanghai PDG Zero Carbon Green Valley Park. Kitchen waste AnMBR effluent was used as the nutrient solution, with the addition of K2HPO4 to adjust the N/P ratio, and a semi-continuous cultivation experiment of Chlorella sp. in a landfill was carried out for 211 days by combining a closed-type photobioreactor with photovoltaics. During the experiment, the growth status, nutrient consumption, and water quality changes were monitored. The results indicated that Chlorella sp. biomass was highest in summer, followed by spring, and lower in autumn and winter, which is closely related to solar altitude, shading rate, and ambient temperature. The microalgae showed effective utilization of nitrogen and phosphorus nutrients as well as organic pollutants, with average effluent values for TN, TP, NH3-N, and COD of 136.1?mg/L±83.3?mg/L, 12.6?mg/L±6.63?mg/L, 133.8?mg/L±90.2?mg/L, and 123.6?mg/L± 81.6?mg/L, respectively. The optimal cultivation conditions obtained in the pilot-scale experiment were a temperature of 25.5±3.88, a light intensity of 21,783 lux±11,256 lux, an N/P ratio of 12.0, a CO2 feeding rate of 0.37?L/min, and a pH of 6.59±0.23.

Key words: Landfill')">

Landfill, Microalgae, Photovoltaic, AnMBR Effluent , Resource Recovery

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