• Title/Summary/Keyword: 전주천

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The State and Sources of Contamination with BOD, COD, T-N and T-P in Stream Within Chonju City (전주시 하천의 BOD, COD,총질소, 총인에 대한 수질현황 및 오염원)

  • 오창환;이지선;김강주;황갑수
    • Economic and Environmental Geology
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    • v.35 no.1
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    • pp.43-54
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    • 2002
  • The Chonju and Samchun streams are palling though Chonju City and several contamination sources are located along these streams. The Samchun stream joins the Chonju stream in the Gosapyeong waste disposal site and the Chonju stream finally joint to the Mankyeong River. The Chonju and Samchun streams are now contaminated with BOD, COD, T-N and T-P and the amounts of each contamination are increasing from upper stream to downstream. At the downstream the amounts of COD. T-N.T-P are several times higher than fifth grade of water quality thor lacustrine. Sewage from Chonju provides BOD, COD,T-N and T-P into the Chonju and Samchun streams and Chonju Waste Water Treatment Plant il a main source of COD, T-N and T-P contamination. Gosapyeong waste disposal site may be the source of BOD and COD contamination. T-N is higher than fifth grade of water quality for lacustrine at the upper stream indicationg that the rivers are contaminated with T-N before inflowing into Chonju by agricultural activity. The Chonju stream asffects the contamination of the Mankyeong river with BOD. COD, T-N,T-P. Other branch steams of the Mankyeong river also affects the contamination of the Mankyeong river by BOD, COD, T-N and T-P, Among the branch streams, the Ikasn stream is a main contamination source. Amounts of concentrations inflowing from the Chonju and Sanchun Streams on Aug. 1999 are calculated by using yeasured flow rate find concentrations of contaminants The result are as fikkiws; 1) the amounts of influent from the Gosan Stream are 0.49, 0.86, 1.61 and 0.01 ton/day for BOD, COD, T-N and T-P, respectively, 2) compared to the amounts of influent from the Gosan Stream, BOD, COD,T-N,T-P supplied from the Chonju river are higher by about 5, 7, 7. 36 times, respectively, and those supplied from the Iksan stream are higher by about 13, 10, 10, 147 times, respectively.

The State and Sources of Contamination with Heavy Metals and Anion in Stream Within Chonju City (전주시 하천의 중금속과 음이온에 대한 수질현황 및 오염원)

  • 오창환;이지선;김강주;정성석;황갑수;이영엽
    • Economic and Environmental Geology
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    • v.34 no.1
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    • pp.89-104
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    • 2001
  • The Chonju and Samchun streams are passing though Chonju city and several contamination sources are located along these streams. The Samchun stream joins the Chonju stream in the Gosapyeong waste disposal site and the Chonju stream finally joins to the Mankyeong River. The objectives of this study are to determine the state and sources of contamination for heavy metals and anions in the Chonju and Samchun streams and to evaluate the effect of these streams on the contamination of the Mankyeong River. In order to select sampling locations, a stratified random sampling method was used. These streams was divided into several parts according to the expected contamination state, and samples were selected randomly from these parts. Generally, the water qualities of these streams were generally below the Drinking Water Level at the time of sampling in various heavy metals and anions. However, the levels of AI, Fe, $NH_{3}-N,Cl^{-}$, Cl- in these streams could be higher during dry season due to continuous inputs from various contamination sources. This study identified several contamination sources for these streams; two waste disposal sites along these streams for Fe, Mn, AI, Zn and $Cl^{-}$, the Chonju Waste Water Treatment Plant for Zn, Mn, $Cl^{-}$, $SO_{4}S$, $NO_{2}N$, and $NH_{3}-N$ and the untreated sewages for AI, Zn, Mn, $Cl^{-}$, $SO_{4}S$, $NH_{3}-N$ and $PO_{4}^{2-}$. This study also revealed that the Chonju stream itself is an important contamination source for Fe, Mn, $Cl^{-}$ and $SO_{4}S$ in the Mankyung River.

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A Study on the Fish Fauna of the Samcheon and Jeonjucheon Stream in Urban Area at Jeonju, Korea (전주 도심구간 삼천과 전주천의 어류상)

  • MinYeong Im;Yu-Shin Sin;Cheol-Woo Park;Jong-Wook Kim;Youn Choi;Eun-Bi Kim;Jae-Goo Kim
    • Korean Journal of Ecology and Environment
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    • v.57 no.1
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    • pp.17-27
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    • 2024
  • This study investigated the fish fauna of Jeonjucheon and Samcheon Streams, flowing through the city of Jeonju, through surveys conducted at 10 sampling sites using kick net and cast net. The fish fauna collected included 10 families and 36 species, with a total of 2,064 individuals. Samcheon had 8 families and 30 species with 1,074 individuals, Jeonjucheon had 8 families and 26 species with 986 individuals. The dominant species was Zacco platypus with 1,202 individuals, and a total of 153 individuals of the subdominant were Pseudogobio esocinus. In Jeonjucheon Stream, a total of 567 individuals of the dominant species were collected as Z. platypus and 99 individuals of the subdominant species were collected as Pungtungia herzi, and there was no significant change in the stream environment except for the confluence site. Further expanded research covering the entire Jeonjucheon and Samcheon Streams region, accompanied by regular monitoring, is essential to record and understand fluctuations in fish fauna.

Change of Ichthyofauna and Fish Community on Natural Stream Restoration In Jeonju-chon stream, Jeollabuk-do, Korea (전주천의 자연형 하천 복원에 따른 어류상 변화 및 군집분석)

  • Park, Jong-Young;Kim, Su-Hwan;Ko, Myeong-Hun;Oh, Min-Ki;Shin, Jin-Cheol
    • Korean Journal of Environment and Ecology
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    • v.23 no.5
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    • pp.381-391
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    • 2009
  • This is the study of the effects and changes on the ichthyofauna and fish community in Jeonju-cheon stream (located in Jeonju Cit, Jeollabuk-do, South Korea) after the implementation of the Natural Stream Restoration Project. The restoration of the stream was carried out between April 2000 and December 2002, and it covered the mid-section of the stream starting from the upstream of Hanbyeok Bridge down to Samcheon where branches of water join. It is 7.2 km long and passes through the downtown area. In this study, comparisons were made before and after the restoration. Before the restoration (1975 to 1999), the number of fish species collected from the Jeonju-cheon stream turned out to be 12 to 18 species, whereas after the restoration (2003 to 2008), it increased up to 34 species in total. Especially in the case of the middle and downstream sections running across the central regions of the city (Daga Bridge to Seosin Bridge), the number of fish species significantly increased from 5 species to 22 species. Such a dramatic increase of fish species appears to be directly related to the restoration of the stream which was designed to improve the quality of water by preventing polluted sewage water from running into the stream. Besides, the structure of stream bed which became more diversified into various components such as marshes and shallows, as well as rocks, Pebbles, sand and clay, also contributed to the increase of fish species.

The Quality of Water and Distribution of Vegetation According to Land Use Pattern (토지이용패턴에 따른 하천수질과 식생분포)

  • Oh, Young-Ju;Kang, Byoung-Wha;Kim, Byoung-Woo;Kim, Sung-Pil;Han, Min-Su;Kim, Jin-Ho;Na, Young-Eun
    • Korean Journal of Environmental Agriculture
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    • v.25 no.1
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    • pp.34-39
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    • 2006
  • The land use pattern, water quality and vegetation were investigated in the six tributaries, including Hanggeumcheon and Satancheon of the Namhan hydrosphere, Iksancheon, Jeonjucheon and Gosancheon of the Mankyung hydrosphere as well as Jongeupcheon of the Dongjin hydrosphere. Forest and farmland area were extensive in Hanggeumcheon, Satancheon and Gosancheon. Farmland and livestock area were wide in Iksancheon. Jeonjucheon were occupied with broad urban. Industrial and urban area were extensive in Jongeupcheon. The loading amounts of biochemical oxygen demand (BOD), total nitrogen (T-N), total phosphorus (T-P) of Iksancheon and chemical oxygen demand (COD) of Jeonjucheon were determined to be very high, respectively. The quality of water in Hanggeumcheon, Satancheon and Gosancheon were determined to be good quality. The species diversity was lower in the down stream than in the upper stream except for the Gosancheon. Life form of plane were mostly perennial plane in the upper stream and annual plants in the down stream of rivers. It was estimated that there is high level of disturbance in the down stream of rivers. The quality of water was significantly correlated with farmland and forest area. In conclusion, human impact, such as farmland and housing lot exerted an influence on the disturbance of down stream and the water quality of rivers.

Analysis of Outflow System at the Mangyeong River Basin (만경강 유역의 유출 체계 분석)

  • Lee, Ji Hun;Lee, Jung Hun;Kim, Seung Hyun;Kang, Noel
    • Proceedings of the Korea Water Resources Association Conference
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    • 2020.06a
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    • pp.265-265
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    • 2020
  • 지구상의 물 순환은 구름이 형성되어 비나 눈의 형태로 낙하하여 지표수를 형성하거나 일부가 땅속으로 스며들어 지하수를 형성하기도 한다. 또한, 지표면이나 수면, 식물의 입면을 통해서 대기중으로 증발되기도 한다. 대기중으로 소실되지 않은 물은 지표수나 지하수로 하천을 통해 바다로 흘러간다. 이와 같은 물 순환을 수문순환(hydrologic cycle)이라고 한다(Lee, 2008). 하지만 인구 증가 및 산업화로 인해 농업용수, 공업용수, 생활용수 사용이 증가하며 하천에서 직접 물을 취수하여 사용하고 있고 하수종말처리장, 농수로 등을 통해 회귀되는 유량이 많아 하천의 유출 특성을 파악하는데 어려움이 있다. 따라서 정확한 하천 유출 체계 특성을 파악하기 위해서는 하천에서 사용되고 유입되는 물의 특성을 파악할 필요가 있다. 본 연구에서는 만경강 수계 및 제 1지류인 전주천에서 운영되고 있는 취·배수 시설에 대해 문헌조사와 현장조사를 진행하였으며, 조사한 내용을 토대로 하천의 물 사용 체계 모식도를 작성하였다. 만경강 유역의 조사대상 구간은 대아댐 하류에서 전주천 합류점까지의 구간에 대해 조사를 실시하였으며, 전주천 유역은 삼천합류점에서 만경강 본류 합류점까지와 삼천 유역의 구이저수지에서 전주천 합류점 까지를 조사구간으로 선정하였다. 문헌조사의 대상시설은 저수지, 양수장, 취입보, 하수처리장 등이며, 조사대상은 하천의 유출 특성에 영향을 줄 수 있는 시설로 최소 하루 기준으로 일 취수량 0.20㎥/s, 일 방류량 0.20㎥/s 이상이 되는 시설에 대해서만 수행하였다. 현장조사에서는 현장을 방문하여 취·배수시설의 위치와 유입구의 위치, 도수로 등을 조사하였으며, 취·배수 시설의 유량 정확도 평가를 위해 현장에서 유량측정을 수행하여 허가량과의 비교 검토를 실시하였다. 만경강은 농업용수 사용의 증가에 따라 상하류 유량반전이 빈번하게 발생하였으나 이 연구를 통해 검토한 결과 만경강 유역내의 상하류 유량반전 시기가 과거에 비해 감소하였으며, 완주군(오성교)관측소와 완주군(용봉교)관측소의 손실고가 안정적으로 변한 것으로 확인되었으며, 전주시(미산교)관측소 또한 관측소 상류에 위치한 취·배수영향을 고려하여 유출률을 산정한 결과 과거에 비해 손실고가 일정하게 유지되는 안정된 결과를 도출하였다. 따라서 유역의 유출 체계 특성을 체계적으로 관리하기 위해서는 하천의 취·배수시설에 대한 다양성을 고려하여 하천 유출 특성을 파악할 필요가 있다.

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