본 연구는 농업용저수지의 수질개선을 위한 인공습지 시스템에서 수리학적 부하조건과 수질정화 특성간의 상관관계를 평가하고, 습지의 조성과 관리에 관한 기본적이며 주요 인자들을 규명하고자하였다. 인공습지시스템은 저수지 중층수를 유입시키기 위한 양수장과 미나리, 창포, 줄, 부들, 갈대등의 정수식물을 식재한 6개의 개별습지로 구성되어 있다. 시스템은 자유수면흐름방식으로 유입처리유량 $0.012-0.122\;m^3/s$,수리학적 체류시간 0.5-2.0 hr의 수리학적 고부하조건으로 운영하였으며, 수심은 0.1-0.2m, 유입수질은 저수지를 대상으로 하여 비교적 낮은 영양염류 농도(TN 2.224-2.462 mg/L, TP 0.145-0.164 mg/L)를 가지고 있다. 본 연구기간 중 각 개별습지의 평균 수질정화효율은 TN 12.1-14.3%로 갈대조에서 높게 나타났으며, TP는 6.3-9.5%로 식물 종에 따른 른 차이가없었다. SS는 17.4-38.5%, Cht-a는 12.6-20.2%로 미나리조에서 높게 나타났는데, 이는 유입수 농도가 다소 높은 때문으로 판단된다. 시간당 정화량은 TN $1.299-2.343\;g{\cdot}m^{-2}{\cdot}d^{-1}$ TP $0.85-1821\;g{\cdot}m^{-2}{\cdot}d^{-1}$, SS는 $17.9-111.6\;g{\cdot}m^{-2}{\cdot}d^{-1}$. Chl-3는 $0.011-0.094\;g{\cdot}m^{-2}{\cdot}d^{-1}$로 정화효율에서와 달리 TN은 줄에서 가장 높았고, TP는 창포에서 높았다. 침강성 물질인 SS와 Chl-a는 미나리에서 높게 나타났으며, 미나리는 BOD, COD, TN, TP등 다른 수질항목에서도 높은 값을 보여주고 있어 정화효율에서와 같이 유입수농도가 습지내 물질제거에 영향이 있음을 보여준다. 정화효율 및 시간당 정화량과 수리학적 조건간의 상관관계는 수심, 체류시간, 일유입량, 수리학적 부하량, 유입수 농도, 온도 등 다양한 변수에 의한 영향으로 비교적 낮게 나타났다. 정화효율과 수리학적조건간의 상관계수($R^2$)는 수리학적 체류시간과 0.016-0.731,일처리유량과는 0.015-0.868을 나타내었으며, 시간당 정화량과 수리학적 조건간의 상관계수($R^2$)는 수리학적 체류시간과는 0.173-0.763,일처리유량과는 0.209-0.770의 범위를 나타내었다. 정화효율과 수리학적 부하조건간의 상관계수($R^2$)Tt 0.5 이상을 나타내는 각 수생식물 습지별 수질항목은 체류시간과 일처리유량에 대해각각 20%,정화속도와 수리학적 조건간의 상관계수는 체류시간에 대해 53%, 일처리유량에 대해73%가 0.5이상을 보이고 있어 시간당 정화량과 수리학적 조건간의 상관관계가 정화효율과의 상관관계보다 좀더 유의성 있게 나타났다. 이것은 높은 수리학적 부하조건이 영양염류 등의 정화효율에는 크게 영향을 미치지 않음을 보여주고 있으며, 따라서 비교적 낮은 농도의 영양염류를 가지고 있고, 많은 처리수량을 요구하는 부영양화된 저수지의 수질개선을 위해서는 높은 수리학적 부하조건에서 시간당 정화량을 늘리는 관리방법이 경제적이며, 이에 초점을 맞추어 나가야 할 것으로 사료된다.
본 연구는 농업용저수지의 수질개선을 위한 인공습지 시스템에서 수리학적 부하조건과 수질정화 특성간의 상관관계를 평가하고, 습지의 조성과 관리에 관한 기본적이며 주요 인자들을 규명하고자하였다. 인공습지시스템은 저수지 중층수를 유입시키기 위한 양수장과 미나리, 창포, 줄, 부들, 갈대등의 정수식물을 식재한 6개의 개별습지로 구성되어 있다. 시스템은 자유수면흐름방식으로 유입처리유량 $0.012-0.122\;m^3/s$,수리학적 체류시간 0.5-2.0 hr의 수리학적 고부하조건으로 운영하였으며, 수심은 0.1-0.2m, 유입수질은 저수지를 대상으로 하여 비교적 낮은 영양염류 농도(TN 2.224-2.462 mg/L, TP 0.145-0.164 mg/L)를 가지고 있다. 본 연구기간 중 각 개별습지의 평균 수질정화효율은 TN 12.1-14.3%로 갈대조에서 높게 나타났으며, TP는 6.3-9.5%로 식물 종에 따른 른 차이가없었다. SS는 17.4-38.5%, Cht-a는 12.6-20.2%로 미나리조에서 높게 나타났는데, 이는 유입수 농도가 다소 높은 때문으로 판단된다. 시간당 정화량은 TN $1.299-2.343\;g{\cdot}m^{-2}{\cdot}d^{-1}$ TP $0.85-1821\;g{\cdot}m^{-2}{\cdot}d^{-1}$, SS는 $17.9-111.6\;g{\cdot}m^{-2}{\cdot}d^{-1}$. Chl-3는 $0.011-0.094\;g{\cdot}m^{-2}{\cdot}d^{-1}$로 정화효율에서와 달리 TN은 줄에서 가장 높았고, TP는 창포에서 높았다. 침강성 물질인 SS와 Chl-a는 미나리에서 높게 나타났으며, 미나리는 BOD, COD, TN, TP등 다른 수질항목에서도 높은 값을 보여주고 있어 정화효율에서와 같이 유입수농도가 습지내 물질제거에 영향이 있음을 보여준다. 정화효율 및 시간당 정화량과 수리학적 조건간의 상관관계는 수심, 체류시간, 일유입량, 수리학적 부하량, 유입수 농도, 온도 등 다양한 변수에 의한 영향으로 비교적 낮게 나타났다. 정화효율과 수리학적조건간의 상관계수($R^2$)는 수리학적 체류시간과 0.016-0.731,일처리유량과는 0.015-0.868을 나타내었으며, 시간당 정화량과 수리학적 조건간의 상관계수($R^2$)는 수리학적 체류시간과는 0.173-0.763,일처리유량과는 0.209-0.770의 범위를 나타내었다. 정화효율과 수리학적 부하조건간의 상관계수($R^2$)Tt 0.5 이상을 나타내는 각 수생식물 습지별 수질항목은 체류시간과 일처리유량에 대해각각 20%,정화속도와 수리학적 조건간의 상관계수는 체류시간에 대해 53%, 일처리유량에 대해73%가 0.5이상을 보이고 있어 시간당 정화량과 수리학적 조건간의 상관관계가 정화효율과의 상관관계보다 좀더 유의성 있게 나타났다. 이것은 높은 수리학적 부하조건이 영양염류 등의 정화효율에는 크게 영향을 미치지 않음을 보여주고 있으며, 따라서 비교적 낮은 농도의 영양염류를 가지고 있고, 많은 처리수량을 요구하는 부영양화된 저수지의 수질개선을 위해서는 높은 수리학적 부하조건에서 시간당 정화량을 늘리는 관리방법이 경제적이며, 이에 초점을 맞추어 나가야 할 것으로 사료된다.
The purpose of this study was to evaluate the relationships between purification characteristics and hydraulic conditions, and to clarify the basic and essential factors required to be considered in the construction and management of artificial wetland system for the improvement of reservoir water q...
The purpose of this study was to evaluate the relationships between purification characteristics and hydraulic conditions, and to clarify the basic and essential factors required to be considered in the construction and management of artificial wetland system for the improvement of reservoir water quality. The artificial wetland system was composed of a pumping station and six sequential plants beds with five species of macrophytes: Oenanthe javanica, Acorus calamus, Zizania latifolia, Typha angustifolia, and Phragmites australis. The system was operated on free surface-flow system, and operation conditions were $3,444-4,156\; m^3/d$ of inflow rate, 0.5-2.0 hr of HRT, 0.1-0.2 m of water depth, 6.0-9.4 m/d of hydraulic loading, and relatively low nutrients concentration (0.224-2.462 mgN/L, 0.145-0.164 mgP/L) of inflow water. The mean purification efficiencies of TN ranged from 12.1% to 14.3% by showing the highest efficiency at the Phragmites australis bed, and these of TP were 6.3-9.5% by showing the similar ranges of efficiencies among all species. The mean purification efficiencies of SS and Chl-A ranged from 17.4% to 38.5% and from 12.0% to 20.2%, respectively, and the Oenanthe javanica bed showed the highest efficiency with higher concentration of influent than others. The mean purification amount per day of each pollutant were $9.8-4.1\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in BOD, $1.299-2.343\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in TN, $0.085-1.821\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in TP, $17.9-111.6\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in SS and $0.011-0.094\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in Chl-a. The purification amount per day of TN revealed the hi링hest level at the Zizania latifolia bed, and TP showed at the Acrous calamus bed. SS and Chl-a, as particulate materials, revealed the highest purification amount per day at the Oenanthe javanica bed that was high on the whole parameters. It was estimated that the purification amount per day was increased with the high concentration of influent and shoot density of macrophytes, as was shown in the purification efficiency. Correlation coefficients between purification efficiencies and hydraulic conditions (HRT and inflow rate) were 0.016-0.731 of $R^2$ in terms of HRT, and 0.015-0.868 of $R^2$ daily inflow rate. Correlation coefficients of purification amounts per day with hydraulic conditions were 0.173-0.763 of Ra in terms of HRT, and 0.209-0.770 daily inflow rate. Among the correlation coefficients between purification efficiency and hydraulic condition, the percentages of over 0.5 range of $R^2$ were 20% in HRT and in daily inflow rate. However, the percentages of over 0.5 range of correlation coefficients ($R^2$) between purification amount per day and hydraulic conditions were 53% in HRT and 73% in daily inflow rate. The relationships between purificationamount per day and hydraulic condition were more significant than those of purifi-cation efficiency. In this study, high hydraulic conditions (HRT and inflow rate) are not likely to affect significantly the purification efficiency of nutrient. Therefore, the emphasis should be on the purification amounts per day with high hydraulicloadings (HRT and inflow rate) for the improvement of eutrophic reservoir withrelatively low nutrients concentration and large quantity to be treated.
The purpose of this study was to evaluate the relationships between purification characteristics and hydraulic conditions, and to clarify the basic and essential factors required to be considered in the construction and management of artificial wetland system for the improvement of reservoir water quality. The artificial wetland system was composed of a pumping station and six sequential plants beds with five species of macrophytes: Oenanthe javanica, Acorus calamus, Zizania latifolia, Typha angustifolia, and Phragmites australis. The system was operated on free surface-flow system, and operation conditions were $3,444-4,156\; m^3/d$ of inflow rate, 0.5-2.0 hr of HRT, 0.1-0.2 m of water depth, 6.0-9.4 m/d of hydraulic loading, and relatively low nutrients concentration (0.224-2.462 mgN/L, 0.145-0.164 mgP/L) of inflow water. The mean purification efficiencies of TN ranged from 12.1% to 14.3% by showing the highest efficiency at the Phragmites australis bed, and these of TP were 6.3-9.5% by showing the similar ranges of efficiencies among all species. The mean purification efficiencies of SS and Chl-A ranged from 17.4% to 38.5% and from 12.0% to 20.2%, respectively, and the Oenanthe javanica bed showed the highest efficiency with higher concentration of influent than others. The mean purification amount per day of each pollutant were $9.8-4.1\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in BOD, $1.299-2.343\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in TN, $0.085-1.821\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in TP, $17.9-111.6\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in SS and $0.011-0.094\;g{\cdot}m^{-2}{\cdot}d^{-1}$ in Chl-a. The purification amount per day of TN revealed the hi링hest level at the Zizania latifolia bed, and TP showed at the Acrous calamus bed. SS and Chl-a, as particulate materials, revealed the highest purification amount per day at the Oenanthe javanica bed that was high on the whole parameters. It was estimated that the purification amount per day was increased with the high concentration of influent and shoot density of macrophytes, as was shown in the purification efficiency. Correlation coefficients between purification efficiencies and hydraulic conditions (HRT and inflow rate) were 0.016-0.731 of $R^2$ in terms of HRT, and 0.015-0.868 of $R^2$ daily inflow rate. Correlation coefficients of purification amounts per day with hydraulic conditions were 0.173-0.763 of Ra in terms of HRT, and 0.209-0.770 daily inflow rate. Among the correlation coefficients between purification efficiency and hydraulic condition, the percentages of over 0.5 range of $R^2$ were 20% in HRT and in daily inflow rate. However, the percentages of over 0.5 range of correlation coefficients ($R^2$) between purification amount per day and hydraulic conditions were 53% in HRT and 73% in daily inflow rate. The relationships between purificationamount per day and hydraulic condition were more significant than those of purifi-cation efficiency. In this study, high hydraulic conditions (HRT and inflow rate) are not likely to affect significantly the purification efficiency of nutrient. Therefore, the emphasis should be on the purification amounts per day with high hydraulicloadings (HRT and inflow rate) for the improvement of eutrophic reservoir withrelatively low nutrients concentration and large quantity to be treated.
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제안 방법
Measurements were carried out monthly from April 1999 to December 2000. By analyzing the differences between pollutant concentration of influent and effluent, efficiency and amount of purification dependent on inflow rate were analyzed for each water quality parameters and macrophytes beds.
reservoir in Korea. In order to investigate adequate techniques for efficient purification of eutrophic reservoir water, the system was operated in the conditions of short HRT with large daily flow rate, and efficiencies and purification amounts per day were measured. In addition, correlation analysis was conducted between purification activity and hydraulic loading parameters.
The system was operated on free surface-flow system, and operation conditions were 3, 444 4, 166 m3/d of inflow rate, 0.5-2.0 hr of HRT, 0.1 -0.2 m of water depth (Table 1), and relatively low nutrients concentration (0.224-2.462 mgN/L, 0.145-0.164 mgP/L) of inflow water. Compared with most of hydraulic loading of artificial wet lands with free surface -flow system in North America (below 2.
The water purification efficiency and amounts per day were analyzed by computing the differences between concentrations of influent and effluent water quality parameters. The corre lation coefficients were calculated by the lines or curve linear regressions between purification efficiency and hydraulic conditions (HRT and inflow rate), and between purification amount and hydraulic conditions on the major chemical parameters in the each macrophyte bed at the artificial wetland system.
대상 데이터
The artificial wetland system was composed of a pumping station and six sequential aquatic plant beds. Metalimnitic water of the reservoir was pumped, and flowed through the wetland units where different types of macrophytes were planted.
데이터처리
In order to investigate adequate techniques for efficient purification of eutrophic reservoir water, the system was operated in the conditions of short HRT with large daily flow rate, and efficiencies and purification amounts per day were measured. In addition, correlation analysis was conducted between purification activity and hydraulic loading parameters.
2);">amounts per day were analyzed by computing the differences between concentrations of influent and effluent water quality parameters. The corre lation coefficients were calculated by the lines or curve linear regressions between purification efficiency and hydraulic conditions (HRT and inflow rate), and between purification amount and hydraulic conditions on the major chemical parameters in the each macrophyte bed at the artificial wetland system.
이론/모형
The water temperature and electric conductivity were measured in situ by conductivity meter (YSI 30), pH by pH meter (YSI 630), and dissolved oxygen by DO meter (Orion 830). Biochemical oxygen demand (BOD) was determined using modified Winkler’s Azide Method (APHA, 1995), and COD by acidic digestion by KMnO4. TN and TP were determined by persulfate method and ascorbic acid method, respectively (APHA, 1995).
성능/효과
771 of R2 in daily inflow rate (Table 4). Among the correlation coefficients between purification efficiency and hydraulic condition, the percentages of over 0.5 range of R2 were 20% in HRT and in daily inflow rate, respectively, and the mean of R2 showed low level as 0.336 in HRT and 0.350 in daily inflow. However, the percentages of over 0.
Amount per day of TN purification in this study revealed the highest level in the Zizanialatifolia bed, and TP showed the highest in the Acrous calamus bed. The purification amount per day of SS and Chl- a, as particulate materials, revealed the highest level at the Oenan- the javanica bed, and the bed showed high valu es in other parameters.
As a result of regression analysis between purification characteristic and hydraulic conditions, the purification amount per day appears to be more significantly related with HRT and daily inflow rate than purification efficiency. It is evident that the hydraulic parameters such as HRT and daily inflow rate are slightly related to purification efficiency of agricultural reservoir water with low nutrient concentrations.
Purification efficiencies of SS, Chl-a, TN and TP were 17-78%, 1 -76%, 3-49%, and - 49-35%, respectively, which were relatively higher or similar values to those of this study. However, the Onanthe ja- vanica, the same macrophyte used in this study showed SS 39%, Chl-a 22%, TN 12%, and TP - 12% in purification efficiencies, which were relatively lower than or similar to those of this study, respectively. The purification amounts per day of TN and TP were 0.
350 in daily inflow. However, the percentages of over 0.5 range of the correlation coefficients (R2) on purification amount per day were 53% in HRT and 73% in daily inflow rate, and the mean of R2 showed relatively higher value with 0.495 in HRT and 0.541 in daily inflow than in those of purification efficiency. The relationships between purification amounts per day and hydraulic parameters (HRT and inflow rate), therefore, were more significant than those between purification efficiency and hydraulic parameters.
197 mg/L, respectively. Purification efficiencies of SS, Chl-a, TN and TP were 17-78%, 1 -76%, 3-49%, and - 49-35%, respectively, which were relatively higher or similar values to those of this study. However, the Onanthe ja- vanica, the same macrophyte used in this study showed SS 39%, Chl-a 22%, TN 12%, and TP - 12% in purification efficiencies, which were relatively lower than or similar to those of this study, respectively.
102 mg/L). The purification efficiencies of Chl-a, TN, and TP were 10 50%, 0-30%, 0-25%, respectively, and the results of Watarase Reservoir was similar to those of this study.
08 m in water depth, 2-24 hr in HRT, 5 mgTN/L, and 1 mgTP/L in influent. The results showed stated that the purification efficiency in each HRT decreased as nutrient con centration of influent increased, and the purification efficiency in the same concentration of influent increased as HRT increased. The purification amount per day decreased as HRT increased on the contrary.
With many variables in the artificial wetland systems, such as water depth, HRT, hydraulic loading, flow rate, water temperature, influent water quality, etc., most of the correlation coefficients in this study showed relatively low value. Correlation coefficients between purification efficiency and hydraulic conditions (HRT and inflow rate) varied from 0.
후속연구
Therefore, this study need to carry out for the 5 hr duration to examine the probability of 50% increase of purification efficiency of nutri ents as shown by Advice Center for Rural Environmental Support (1995), and the economic analysis between purification amounts per day and HRT also need be accomplished under the same condition. In addition, a further study needs be carried out to find out how the purification efficiency and purification amounts per day are related with influent concentration and flow distance in this wetland system.
0 hr period. Therefore, this study need to carry out for the 5 hr duration to examine the probability of 50% increase of purification efficiency of nutri ents as shown by Advice Center for Rural Environmental Support (1995), and the economic analysis between purification amounts per day and HRT also need be accomplished under the same condition. In addition, a further study needs be carried out to find out how the purification efficiency and purification amounts per day are related with influent concentration and flow distance in this wetland system.
This study intends to clarify important factors to be considered in the construction and management of artificial wetland system to improve reservoir water quality with energy efficiency and capability to treat large amount of nutrients. The eutrophic agricultural reservoir, in this study, has relatively low level of nutrients (< 5 mgN/L, <0.
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