Effect of loading rate on performance of constructed wetlands treating an anaerobic supernatant

被引:29
作者
Chazarenc, F.
Maltais-Landry, G.
Troesch, S.
Comeau, Y.
Brisson, J.
机构
[1] Univ Montreal, Inst Rech Biol Vegetale, Montreal, PQ H1X 2B2, Canada
[2] Ecole Polytech, Dept Civil Geol & Min Engn, Montreal, PQ H3T 1J4, Canada
关键词
anaerobic storage tank supernatant degradation; horizontal subsurface flow constructed wetlands; organic loading rates; Phragmites australis; Typha angustifolia;
D O I
10.2166/wst.2007.500
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The effect of organic loading, season and plant species on the treatment of fish farm effluent was tested using three-year old mesocosm wetland systems. During one year, nine 1 m(2) mesocosms (horizontal subsurface flow), located in a controlled greenhouse environment, were fed with a reconstituted fish farm effluent containing a high fraction of soluble components (1,600 mu S/cm and in mg/L: 230 +/- 80 COD, 179 +/- 60 sCOD, 100 +/- 40 TSS, 37 +/- 7 TKN, 14 +/- 2 TP). Combinations of three hydraulic loading rates (30, 60 and 90 L.m(-2) d(-1)) and two plant species (Phragmites australis, Typha angustifolia) and an unplanted control were tested for treatment performance and hydraulic behaviour. Loadings higher than 15 g COD m(-2) d(-1) resulted in a net decrease of hydraulic performances (generation of short circuiting) coupled with low TKN removal. Maximal TKN removal rates (summer: 1.2, winter: 0.6 g.m(-2) d(-1)) were reached in planted units. In all mesocosms, phosphorus was removed during summer (maximal removal rate: 0.3 g TP m(-2) d(-1)) and was released in winter (release rate = similar to half of summer removal rate). This study confirmed that constructed wetlands are susceptible to clogging when treating anaerobic storage tank supernatant rich in highly biodegradable compounds. Contributions of plants to hydraulic efficiency were mainly observed in summer, associated with high evapotranspiration rates. Both plant species gave a similar removal efficiency for all pollutants.
引用
收藏
页码:23 / 29
页数:7
相关论文
共 16 条
[1]  
American Public Health Association, 1998, STAND METH EX WAT WA
[2]   Nature and transformation of dissolved organic matter in treatment wetlands [J].
Barber, LB ;
Leenheer, JA ;
Noyes, TI ;
Stiles, EA .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2001, 35 (24) :4805-4816
[3]   Hydrodynamics of horizontal subsurface flow constructed wetlands [J].
Chazarenc, F ;
Merlin, G ;
Gonthier, Y .
ECOLOGICAL ENGINEERING, 2003, 21 (2-3) :165-173
[4]  
CHAZARENC F, 2006, P IWA WORLD WAT C EX
[5]   Phosphorus removal from trout farm effluents by constructed wetlands [J].
Comeau, Y ;
Brisson, J ;
Réville, JP ;
Forget, C ;
Drizo, A .
WATER SCIENCE AND TECHNOLOGY, 2001, 44 (11-12) :55-60
[6]   Hydraulic characteristics of a subsurface flow constructed wetland for winery effluent treatment [J].
Grismer, ME ;
Tausendschoen, M ;
Shepherd, HL .
WATER ENVIRONMENT RESEARCH, 2001, 73 (04) :466-477
[7]   Seasonal variations in hydraulic performance of rock-plant filters [J].
He, Q ;
Mankin, KR .
ENVIRONMENTAL TECHNOLOGY, 2001, 22 (09) :991-999
[8]  
Kadlec RH, 1996, TREATMENT WETLANDS, P893
[9]  
LEVENSPIEL O, 1972, CHEM REACTION ENG, P272
[10]   Removal of solids and oxygen demand from aquaculture wastewater with a constructed wetland system in the start-up phase [J].
Lin, YF ;
Jing, SR ;
Lee, DY ;
Wang, TW .
WATER ENVIRONMENT RESEARCH, 2002, 74 (02) :136-141