南极大西洋扇区南极磷虾渔获率序列的振荡模态分析
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1. 上海海洋大学 海洋科学学院, 上海 201306;2. 大洋渔业资源可持续开发省部共建教育部重点实验室, 上海 201306; 3. 国家远洋渔业工程技术中心, 上海 201306;4. 农业部大洋渔业资源环境科学观测实验站, 上海海洋大学, 上海 201306

作者简介:

杨晓明(1972), 男, 副教授, 从事渔业地理信息系统及渔业海洋学研究. E-mail:xmyang@shou.edu.cn m

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S 932.4

基金项目:

国家科技支撑计划项目(2013BAD13B03); 国家973计划项目(2012AA091802); 国家海洋局极地科学重点实验室开放基金项目(KP201210); 上海海洋大学“海鸥计划”项目(B-5003-11-0023).


Oscillation mode analysis on the time series of Antarctic krill (Euphausia superba) catch rate in the Atlantic Sector of Antarctic Ocean
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1. College of Marine Science, Shanghai Ocean University, Shanghai 201306, China;2. The Key Laboratory of Sustainable Exploitation of Oceanic Fisheries Resources, Ministry of Education, Shanghai 201306, China; 3. National Distant-water Fisheries Engineeri

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    摘要:

    资源的多尺度振荡模态特征及其与环境振荡之间的响应关系对、、和其中高频振荡对南极磷虾资源变动影响较大个亚区渔获率都为冬高夏低季节性振荡11 a46.7%), (位相差个月之后对渔获率和渔获率异常产生的正相关影响。磷虾资源的振荡是环境振荡和磷虾生物周期综合作用的反映。

    Abstract:

    is one of the most important linkage in the food web. In this study, we made detailed quantitative analysis from the view of time sequence of oscillation characteristics of Antarctic krill resources. The biological and physical process is also combined to explain the reason that the oscillation of krill resources. The Commission for the Conservation of Antarctic Marine Living Resources (CCAMLR) area 48in the Atlantic Sector of Antarctic Ocean also is the main fishing ground of Chinese Antarctic krill fishery. Using the Empirical Mode Decomposition (EMD) estimation, the present study analyzes the monthly catch rate of Antarctic krill fishery from 1982 to 2011 to explain the multi-time scale response relationship to the environmental oscillation. The result show that the oscillation represent 0.5 a, 1 a, 1.5 a, 2.5 a, 7 a and nearly 11 a periodicities, in which high-frequency oscillation has a significant impact on the Antarctic krill abundance fluctuation. The in CCAMLR area 48 all show seasonal oscillations, low oscillation in summer and high oscillation in winter can be found. The CPUE peak points appear in May, June and September in subareas 48.1(50°–70°W, 60°–65°S), 48.2 (30°–50°W, 57°–64°S) and 48.3 (30°–50°W, 50°–­­57°S), respThe primary oscillation periodicity (the explanation rate of variance is 46.7%) is 1 a, and the annual recruitment size of Antarctic krill is the most important contribution of the catch rate. the explanation rate of variance is1.5 a oscillation period can be considered as a synthesis result of two main high-frequency. The 2.5 a oscillation of catch rate is related to the 3.0 a oscillation of seaice coverage and the longer oscillation periodicity of catch rate has a linkage to the oscillation periodicity of climate-current system. The CPUEs have increasing trend in the CCAMLR subarea 48.1, 48.2 and 48.3, although the overall abundance has a remarkably decreasing trend in the Atlantic Sector of Antarctic Ocean, particularly subareas 48.2 and 48.3. A significant positive correlation can be found between seaice coverage and catch rate (coefficient of correlation is 0.44, and < 0.01), the phase gap is 10 months with CPUE behind seaice coverage. The oscillation of seaice coverage anomaly can put a remarkably positive impact on the catch rate and catch rate anomaly of Antarctic krill fishery with a gap of 8 to 11 months (the coefficient of correlation respectively is 0.18 and 0.21, and < 0.01). The oscillation of Antarctic krill fishery is a response of combined influence of environmental oscillation and life history cycle of Antarctic krill.

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杨晓明,朱国平.南极大西洋扇区南极磷虾渔获率序列的振荡模态分析[J].中国水产科学,2013,20(6):1274-1283
YANG Xiaoming, ZHU Guoping . Oscillation mode analysis on the time series of Antarctic krill (Euphausia superba) catch rate in the Atlantic Sector of Antarctic Ocean[J]. Journal of Fishery Sciences of China,2013,20(6):1274-1283

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  • 在线发布日期: 2013-11-29
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