Browse > Article
http://dx.doi.org/10.4490/ALGAE.2004.19.4.329

Monthly Variations of Phytoplankton Communities in the Mid and Lower Parts of the Nakdong River  

Kim, Yong-Jae
Publication Information
ALGAE / v.19, no.4, 2004 , pp. 329-337 More about this Journal
Abstract
Monthly variations of phytoplankton communities were conducted to the investigation at five stations in mid and lower parts of the Nakdong River from December 1995 to November 1996. The phytoplankton communities were identified a total 456taxa which were composed of 136 genera, 427 species, 27 varieties and 2 forma. The standing crops of phytoplankton communities ranged from 2.7 to 52.8 (${\times}$10³)cells·ml$^{-1}$ during the investigation periods. Bacillariophyceae was the dominant classes at all stations. The dominant species were 7taxa and the standing crops of these ranged from 18.3 to 95.1% of the standing crops of phytoplankton communities. The dominant species in the mid parts (st. 1, 2) of this river system were benthic species such as Navicula gregaria, N. viridula var. rostellata and Nitzschia palea, however it was planktonic species (Stephan discus hantzschii, Golenkinia radiata) and meroplanktonic species (Aulacoseira ambigua, A. granulata) in the lower parts (st. 3, 4, 5). The seasonal variations of the dominant species in the lower parts were appeared to the planktonic species (S. hantzschii) from winter to spring, and were the meroplanktonic species (A. ambigua and A. granulata) in from summer to fall. The lower parts of the Nakdong river were entropic states because the dominant species were composed A. ambigua, A. granulate and S. hantzschii which were indicators of entropic water quality. The interrelationships between total standing crops and environmental factors(water temperature, pH, NH$_4$, NO$_2$, NO$_3$ and PO$_4$) were low positive or negative coefficients. S. hantzschii had low positive or negative relations with water temperature, NH$_4$, NO$_2$, NO$_3$ and PO$_4$. As the result, the variations of standing crops of phytoplankton were not caused by a single factor but controlled by the complex factors.
Keywords
autrophic water; indicator; meroplankton; Nakdong river; phytoplankton;
Citations & Related Records
연도 인용수 순위
  • Reference
1 김용재. 2003. 영산강의 식물플랑크톤 군집 동태 한국조류학회지 18: 07-215
2 김용재,김명운,김상종. 1998. 한강 중 . 하류에서 식물플랑크톤의 생태학적 특성 한국 류학회지 13: 331-338
3 신성교,박청길,이수응. 1996. 낙동강에서 chlorophyll -a와 BOD의 상관관계 한국환경과학회지 8: 101-106
4 선재기, 조경제. 1999. 낙동강에서 AGP에 의한 수질평가,한국육수학회지 32: 349-357
5 이정호,권정남,양상용 2002. 낙동강의 식물플랑크톤 군집의 계절변화. Algae 18 267-273
6 APHA. 1992. Standard methods for the examination of water and wastewater. 18th ed. American Public Health Association. Washington. 1133 pp
7 Cho K.J., Chung I.K. and Lee J.A. 1993. Seasonal dynamics of phytoplankton community in the Nakdong River estuary Kor. J. Phycol. 8: 15-28
8 Harper D. 1992. Eutrophication of Freshwaters: Principles, problems and restoration. Chapman & Hall, London. 327 pp
9 Heinle D.R. 1969. Effects of elevated temperature on zooplankton. Chesapeake Sci. 10: 186-209   DOI   ScienceOn
10 Hendey N.I. 1974. The permanganate method for cleaning freshly gathered diatoms. Microscopy 32: 423-426
11 Horne A.J. and Goldman CR. 1994. Limnology. McGraw-Hill, Inc., New York. 576 pp
12 Kim J.W. and Lee H.Y. 1991. A study on phytoplankton communities in the reservoir of Nakdong River estuary. Kor. f. Limnol. 23: 143-151
13 Lee J.A., Cho K.J., Kwon O.S., Chung I.K. and Moon B.Y. 1994. Primary production of phytoplankton in Nakdong estuarine ecosystem. Kor. f. Limnol. 27: 69-78
14 Poulickova A. 1993. Ecological study of seasonal maxima of centric diatoms. Algol. Studies 68: 85-106
15 Reynolds C.S. 1985. The atypical seasonality of phytoplankton in Crose Mere, 1972: an independent test of the hypothesis that variability in the physical environment regulates community dynamics and structure. Br. phycol. f. 20: 227-242   DOI   ScienceOn
16 Shannon E. and Weaver W. 1963. The mathematical theory of communication. Illinois Univ. Press, Urbana. 177 pp
17 Shimpson E.H. 1949. Measurement of diversity. Nature 163: 1688
18 최애란,오희목 이진애. 2002. 낙동강 하류 수계의 독성 Microcystis 생태 연구 A1gae 17: 171-185
19 정승원,이진환,유종수. 2003. 한강하류의 환경학적 연구 V 식물플랑크톤 군집 대 발생의 특정. Algαe 18: 255-262
20 Yang J.R. and Dickman M. 1993. Diatoms as indicators of Lake Trophic Status in Central Ontario, Canada. Diatom Res. 8: 179-193   DOI
21 환경부. 1997. 수계에서의 유해물질 조기검출기법 개발 연구보고서 450 pp
22 Thorp H.H. and Delong MD. 1994. The riverine productivity model: an large river ecosystem. Oikos 70: 305-308   DOI   ScienceOn
23 Sorensen T. 1948. A method of establishing groups of equal amplitude in plant society based on similarity of species content. K. Danske Vidensk. Selsk. 5: 1-34