Microalgae Growth Using High-Strength Wastewater Followed by Anaerobic Co-Digestion

被引:50
作者
Yuan, Xin [1 ]
Wang, Meng [1 ]
Park, Chul [1 ]
Sahu, Ashish K. [2 ]
Ergas, Sarina J. [1 ,3 ]
机构
[1] Univ Massachusetts, Dept Civil & Environm Engn, Amherst, MA 01003 USA
[2] Aquateam Norwegian Water Technol Ctr AS, Oslo, Norway
[3] Univ S Florida, Dept Civil & Environm Engn, Tampa, FL USA
关键词
algae; biofuel; Spirulina; Chlorella; centrate; wastewater; anaerobic digestion; CHLORELLA-VULGARIS; ALGAL BIOMASS; SPIRULINA-PLATENSIS; CULTIVATION; BIODIESEL; EFFICIENT; REMOVAL; DAIRY;
D O I
10.2175/106143011X13233670703242
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Integration of algal biofuel production to wastewater anaerobic digestion infrastructure has the potential to increase biogas production, decrease high and variable internal nitrogen loads, and improve sludge digestibility and dewaterability. In this research, two species of microalgae, Spirulina platensis and Chlorella sp., were grown on sludge centrate and a centrate and nitrified wastewater effluent mixture. Harvested algae were co-digested with waste activated sludge (WAS) at varying ratios. High-growth (6.8 g m(-2).d(-1)), nitrogen (36.5 g m(-3).d(-1)), and phosphorus (6.5 g m(-3).d(-1)) uptake rates were achieved with Chlorella on centrate. No growth was observed with S. platensis under the same conditions; however, both organisms grew well on the centrate and effluent mixture. Co-digestion of algae with WAS improved volatile solids reduction. Although co-digestion with S. platensis improved biosolids dewaterability, Chlorella had a slight negative effect on dewaterability compared to WAS alone. The efficiency of energy conversion from photons to biogas generated from Chlorella was estimated at 1.4%. Water Environ. Res., 84, 396 (2012).
引用
收藏
页码:396 / 404
页数:9
相关论文
共 46 条
[1]   Mixotrophic cultivation of microalga Spirulina platensis using molasses as organic substrate [J].
Andrade, Michele R. ;
Costa, Jorge A. V. .
AQUACULTURE, 2007, 264 (1-4) :130-134
[2]  
[Anonymous], 2005, Standard methods for examination of water and waste water, V23rd Edn
[3]  
[Anonymous], 2009, BIOTECHNOL ADV, DOI DOI 10.1016/j.biotechadv.2009.03.001
[4]   FREE AMMONIA INHIBITION OF ALGAL PHOTOSYNTHESIS IN INTENSIVE CULTURES [J].
AZOV, Y ;
GOLDMAN, JC .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1982, 43 (04) :735-739
[5]  
Becker EW., 1994, Microalgae: Biotechnology and Microbiology
[6]   AMMONIA UPTAKE IN THE ALKALOPHILIC CYANOBACTERIUM SPIRULINA-PLATENSIS [J].
BOUSSIBA, S .
PLANT AND CELL PHYSIOLOGY, 1989, 30 (02) :303-308
[7]   Biomass Production Potential of a Wastewater Alga Chlorella vulgaris ARC 1 under Elevated Levels of CO2 and Temperature [J].
Chinnasamy, Senthil ;
Ramakrishnan, Balasubramanian ;
Bhatnagar, Ashish ;
Das, Keshav C. .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2009, 10 (02) :518-532
[8]   Biodiesel from microalgae [J].
Chisti, Yusuf .
BIOTECHNOLOGY ADVANCES, 2007, 25 (03) :294-306
[9]   Cultivation of Spirulina platensis in a combined airlift-tubular reactor system [J].
Converti, Attilio ;
Lodi, Alessandra ;
Del Borghi, Adriana ;
Solisio, Carlo .
BIOCHEMICAL ENGINEERING JOURNAL, 2006, 32 (01) :13-18
[10]   Advanced pond system for dairy-farm effluent treatment [J].
Craggs, RJ ;
Sukias, JP ;
Tanner, CT ;
Davies-Colley, RJ .
NEW ZEALAND JOURNAL OF AGRICULTURAL RESEARCH, 2004, 47 (04) :449-460