Nutrient removal in gravel- and soil-based wetland microcosms with and without vegetation

被引:151
作者
Yang, L [1 ]
Chang, HT
Huang, MNL
机构
[1] Natl Sun Yat Sen Univ, Dept Marine Environm & Engn, Kaohsiung 804, Taiwan
[2] Natl Sun Yat Sen Univ, Div Appl Math, Kaohsiung 804, Taiwan
关键词
ANOVA model; constructed wetlands; gravel-beds; mineral soil; nutrient removals; Pennisenium purpureum; soil-beds; statistical analyses; vegetation;
D O I
10.1016/S0925-8574(01)00068-4
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
In this study, four lab-scale microcosms, including gravel-beds with and without plants, and soil-beds with and without plants, were used to conduct the nutrient removal tests. The influent used in the tests is primary treated sewage, while the plant selected was Napier grass (Pennisetum purpureum). The purpose of this study is to compare the removal efficiencies of nitrogenous and phosphorus nutrients among these four microcosm wetland systems based on statistical analyses. Three factors, namely, with/without vegetation (F-1), medium types of gravel/soil (F-2), and time period for the test run of first/second stage (F-3), and four combined effects of factors, F-1 by F-2 (F-1,F-2), F-1 by F-3 (F-1,F-3), F-2 by F-3 (F-2,F-3), and F-1 by F-2 by F-3 (F-1,F-2,F-3), were run by an ANOVA model to analyze the relationships between the amounts of nutrient removed from the wetland systems and these seven factors. We found that the removals of ammonia (NH3-N), nitrate (NO3--N), and soluble reactive phosphorus (SRP) were related to these factors and combined effects of the factors. It was found that the main removal mechanism for NH3-N was nitrification, which could be enhanced by the root zone effect in the vegetated gravel-bed wetland systems, while NO3--N was removed mainly by denitrification and plant uptake in vegetated systems. However, the main removal mechanism for SRP was chemical adsorption in the unsaturated soil-bed systems. The effect of plant litter was also a significant mechanism affecting nutrient removal in the surface flow pattern soil-bed wetland systems without harvest. (C) 2001 Elsevier Science BY. All rights reserved.
引用
收藏
页码:91 / 105
页数:15
相关论文
共 15 条
[1]   Evaluation of a wetland system designed to meet stringent phosphorus discharge requirements [J].
Adler, PR ;
Summerfelt, ST ;
Glenn, DM ;
Takeda, F .
WATER ENVIRONMENT RESEARCH, 1996, 68 (05) :836-840
[2]  
*APHA AWWA WEF, 1992, STAND METH EX WAT WA
[3]   A COMPARISON OF GROWTH AND NUTRIENT-UPTAKE IN PHALARIS-ARUNDINACEA L GROWING IN A WETLAND AND A CONSTRUCTED BED RECEIVING LANDFILL LEACHATE [J].
BERNARD, JM ;
LAUVE, TE .
WETLANDS, 1995, 15 (02) :176-182
[4]   AN ANALYSIS OF TRANSFORMATIONS [J].
BOX, GEP ;
COX, DR .
JOURNAL OF THE ROYAL STATISTICAL SOCIETY SERIES B-STATISTICAL METHODOLOGY, 1964, 26 (02) :211-252
[5]  
Brix H., 1993, P9
[6]   Constructed reed beds clean up storm overflows on small wastewater treatment works [J].
Green, MB ;
Martin, JR .
WATER ENVIRONMENT RESEARCH, 1996, 68 (06) :1054-1060
[7]  
HIGGINS MJ, 1993, CONSTRUCTED WETLANDS FOR WATER QUALITY IMPROVEMENT, P359
[8]  
HOFMANN K, 1996, ECOLOGICAL ENG WASTE, P183
[9]   MINERALOGY OF IRON PRECIPITATES IN A CONSTRUCTED ACID-MINE DRAINAGE WETLAND [J].
KARATHANASIS, AD ;
THOMPSON, YL .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 1995, 59 (06) :1773-1781
[10]   Natural treatment and on-site processes [J].
Kruzic, AP ;
White, KD .
WATER ENVIRONMENT RESEARCH, 1996, 68 (04) :498-503