期刊文献+

Carbon Budget of Bastard Halibut Paralichthys Olivaceus in Relation to Body Weight and Temperature 被引量:7

Carbon Budget of Bastard Halibut Paralichthys Olivaceus in Relation to Body Weight and Temperature
在线阅读 下载PDF
导出
摘要 The effects of body weight and temperature on the carbon budget of the juvenile bastard halibut,Paralichthys olivaceus, were studied at temperature 13.5, 18, 21.5 and 24 ℃, respectively. The carbon intake, faecal and growth carbon were measured, and the carbon respiration was calculated using the carbon budget equation (C C=G C+F C+R C). The combined relationship between different components of the carbon budget, body weight and temperature could be described by regression equations:C C=1.0206W 0.8126e 0.1483T; G C=0.0042W 1.4096 (-5.11T3+285.90T2-5173.72T+30314.03);F C=0.0485W 0.7711e 0.1624T U C = 1.4333W 0.6715e 0.1487T. Body weight had no significant effect on the carbon absorption efficiency and the conversion efficiency. The effects of body weight and temperature on the carbon budget of the juvenile bastard halibut,Paralichthys olivaceus, were studied at temperature 13.5, 18, 21.5 and 24 ℃, respectively. The carbon intake, faecal and growth carbon were measured, and the carbon respiration was calculated using the carbon budget equation (C C=G C+F C+R C). The combined relationship between different components of the carbon budget, body weight and temperature could be described by regression equations:C C=1.0206W 0.8126e 0.1483T; G C=0.0042W 1.4096 (-5.11T3+285.90T2-5173.72T+30314.03);F C=0.0485W 0.7711e 0.1624T U C = 1.4333W 0.6715e 0.1487T. Body weight had no significant effect on the carbon absorption efficiency and the conversion efficiency.
出处 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2003年第2期134-140,共7页 中国海洋湖沼学报(英文版)
基金 Project39670 5 74supportedbyNEFC .
关键词 carbon budget body weight TEMPERATURE Paralichthys olivaceus 大比目鱼 温度 体重 稚鱼 碳吸收 排泄物 生态系 能量收支
  • 相关文献

参考文献16

  • 1Anderson, L. G., Olsson K., Chierici, M., 1998. A carbon budget for the Arctic Ocean. Global Biogeochemical Cycles 12(3) :455.
  • 2Barkan, E., Luz, B., Lazar, B., 2001. Dynamics of the carbon dioxide system in the Dead Sea. Geochimica et Cosmochimica Acta 65(3) : 355 - 368.
  • 3Gaudy, A. F., Gaudy, E. T., 1980. Microbiology for environmental scientists and engineers. McGraw-Hill, New York, 736p.
  • 4Heymans, J. J., Baird, D., 1995. Energy flow in the Kromme estuarine ecosystem, St Francis Bay, South Africa. Estuarine, Coastal and Shelf Science 41 : 39 - 59.
  • 5James, A. G., Probyn, T., Hutchings, L., 1989. Laboratory-derived carbon and nitrogen budgets for the omnivorous planktivore Engraulis capensis Gilchrist. J. Exp. Mar. Biol. Ecol. 131: 125- 145.
  • 6Kahler, P., Koeve, W., 2001. Marine dissolved organic matter: can its C:N ratio explain carbon overconsumption? Deep Sea Research Part Ⅰ. Oceanographic Research Papers 48( 1 ) : 49 - 62.
  • 7Lindeman, R. L., 1941. Seasonal food-cycle dynamics in a senscent lake. Amer. Midl. Nat. 26:636 - 673.
  • 8Louonchi, F., Hoppema, M., 2000. Interannual variations of the Antarctic Ocean CO2 uptake from 1986 to 1994. Marine Chemistry 72(2) : 131 - 150.
  • 9Midroikawa, T.,Umeda, T., Hiraishi, N. et al., 2002. Estimation of seasonal net community production and airsea CO2 flux based on the carbon budget above the temperature minimum layer in the western subarctic North Pacific. Deep Sea Research Part Ⅰ, Oceanographic Research Papers 49(2) : 339 - 362.
  • 10Moloney, C. L., Field, J. G., 1991. The size-based dynamics of plankton food web. J. Plankton. Res. 13(5): 1003 - 1092.

同被引文献173

引证文献7

二级引证文献28

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部