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1.
基于Ecopath模型的七连屿礁栖性生物的生态承载力分析   总被引:1,自引:0,他引:1  
生态承载力评估是开展生物资源增殖放流, 维持珊瑚礁生态系统健康的基础和前提。本文基于2019年渔业资源和生态环境的综合调查数据, 构建了七连屿珊瑚礁海域生态系统的生态通道(Ecopath)模型, 分析和探讨了相关功能组增殖放流的生态承载力。结果显示, 七连屿珊瑚礁海域生态系统各功能群营养级范围为1.00~3.81; 生态系统的总能量转化效率为13.45%; 生态系统以牧食食物链占据主导地位, 直接来源于初级生产者的能流占比为57%。系统总初级生产量/总呼吸量为2.54; 总初级生产量/总生物量为19.07; 系统连接指数和系统杂食性指数分别为0.36和0.22, 表明当前七连屿珊瑚礁海域生态系统的成熟度和稳定性偏低, 系统对于外界的干扰抵抗能力较弱。在未改变七连屿珊瑚礁生态系统结构和功能的前提下, 各功能组中珊瑚、双壳类和植食性鱼类的生态承载力分别为25.09~53.77t•km-2、2.55~39.95t•km-2和4.89~17.94t•km-2, 因此仍具有较大的增殖空间。珊瑚礁鱼类群落的最大生态承载力同珊瑚礁无脊椎动物群落的增殖密切相关, 在未来的珊瑚礁渔业管理中应从生态系统整体结构的角度综合考虑增殖放流的方法设计。  相似文献   

2.
根据2021年渔业资源调查数据构建了含有23个功能组的舟山海域生态系统Ecopath模型,分析了当前舟山海域生态系统总体特征并估算了褐菖鲉在舟山海域的生态容量。结果表明:舟山海域生态系统营养级范围为1.000 (浮游植物和有机碎屑)~4.277 ( 鳐类),石首鱼科、虾类和 鳐类为舟山海域生态系统中的关键种。碎屑食物链和牧食食物链是舟山海域生态系统主要的食物链。碎屑和浮游植物对食物网的贡献率分别为61.32%和38.69%。始于浮游植物和碎屑的营养传递效率分别是9.34%和10.50%,系统总营养传递效率是9.82%。总初级生产量/总呼吸量为2.26,系统连接指数为0.372,系统杂食性指数为0.222。生态系统总体特征反映了舟山海域生态系统的成熟状态较低,生态系统处于不稳定阶段,容易受到外界环境变化的影响。根据模型估算,当褐菖鲉生物量增加至8.6倍时,褐菖鲉达到生态容量0.007 95 t/km2,此时生态系统仍保持平衡,且生态系统总体特征基本稳定。因此,褐菖鲉在舟山海域尚有较大增殖潜力。  相似文献   

3.
基于2018年海州湾及邻近海域的渔业资源底拖网调查数据,运用Ecopath with Ecosim 6.5 (EwE)软件构建由26个功能群组成的海州湾及邻近海域生态系统Ecopath模型,对现阶段该生态系统的营养结构、营养相互关系和系统总特征等进行分析,旨在为实施基于生态系统的渔业管理提供理论依据。结果表明:海州湾及邻近海域生态系统各功能群的营养级范围为1.00~4.19,其中鱼类营养级范围较广,为3.22~4.19;浮游动物和其他软体动物受初级生产者和捕食者的双重作用,处于重要的营养位置;生态系统总体特征分析显示,该生态系统的总初级生产量与总呼吸量的比值为7.096,总初级生产量与总生物量的比值为56.866,系统的连接指数和系统杂食指数分别为0.429和0.204,说明该生态系统目前处于不成熟、不稳定的状态,容易受外界扰动的影响。本文通过对海州湾及邻近海域生态系统模型进行研究,解析了该海域营养结构和系统发育状况,将为海州湾渔业资源的可持续利用和科学管理提供理论依据。  相似文献   

4.
构建了包括20个功能组的西南黄海生态通道模型(Ecopath Model)。分析结果表明:各功能组营养级的范围在1. 000~4. 509之间,鸟类、鱼类、头足类等主要高营养级生物的营养级范围为3. 417~4. 509。该生态系统的能量流动主要发生在食物网的低营养级部分,在7个系统整合营养级间,能量传递效率沿食物链逐级降低,各营养级生物的消耗量和产出量也急剧减少。从第I营养级到高营养级间的逐级转换效率分别为11. 33%、13. 16%、15. 50%、14. 67%、13. 61%和15. 68%,系统平均转化效率为13. 22%;来源于碎屑的能量转化效率为13. 35%,来自初级生产者的转化效率为13. 14%。在总能流中,直接来自碎屑的占43%,来自初级生产者的占57%,说明系统的能流通道以牧食食物链为主导。混合营养评价显示,系统生产者碎屑与浮游植物对其他多数功能群有积极影响,蟹类、鲽形目、水母、大型底栖和浮游生物中同类竞争的消极影响尤为明显。西南黄海生态系统总初级生产力与总呼吸量比值为2. 541,Finn’s循环指数和Finn’s循环路径长度分别为3. 983、2. 444。通过模型输出的系统生态参数分析,当前西南黄海生态系统仍处于不成熟的、不稳定的阶段。  相似文献   

5.
本研究根据2020年11月,2021年1月、4月及8月在崇明岛周边海域的渔业调查数据,使用开源程序Rpath构建了包括22个功能群的物质平衡模型,对该海域生态系统结构和特征进行研究。结果表明:崇明岛周边海域生态系统各功能群营养级范围为1~4.32。小型底栖生物的生态转换效率最低(0.01),说明其到高营养级的能量转换存在瓶颈,是影响该海域底层食物链营养传递效率的关键节点。生态系统总体特征分析表明,该生态系统总规模为2 909.42 t/(km2·a),低于附近海域生态系统规模。浮游植物对生态系统总初级生产力的贡献为60%,是该生态系统的主要营养来源。生态系统总初级生产量/总呼吸量为1.99、系统杂食性指数为0.18,表明生态系统成熟度较低,食物网简单,受干扰后恢复能力较差。模型敏感性分析表明,功能群生物量是影响模型输出准确程度的主要指标。本研究结果可以为该海域生态系统水平的禁捕效果评估工作提供基准参考。  相似文献   

6.
基于生态系统的渔业管理的理念已得到广泛认同,但其在海洋牧场建设中的应用仍非常少见。本研究根据2020-2021年在蜈支洲岛海域开展的渔业资源底拖网调查数据,构建了海洋牧场鱼类群落的质量谱模型(SSM),反映了海洋牧场中食物网的复杂结构以及种间相互作用,以评估捕捞对海洋牧场鱼类群落的影响。研究通过对两种管理策略(单物种管理和多物种管理)的模拟,分析特定种类的捕捞死亡系数变化对鱼类群落产生的影响,并利用群落总生物量、质量谱斜率、平均最大质量、平均质量和大型鱼类指数5种群落生态指标监测了鱼类群落的特征状态。单物种管理策略结果显示,蜈支洲岛海洋牧场生态系统呈现下行控制效应,肉食性鱼类对浮游生物食性鱼类存在着强烈的调控作用。捕捞死亡系数变化后,不同物种间竞争捕食等复杂的相互作用会产生营养级联效应。多物种管理策略结果显示,灰海鳗(Muraenesox cinereus)的捕捞死亡系数对群落质量谱斜率影响最大,大头狗母鱼(Trachiocephalus myops)和灰海鳗的捕捞死亡系数对鱼类群落生物量和群落结构及功能的影响最大。研究结果对于保护和维持鱼类群落稳定方面具有重要意义,能够帮助管理者更好...  相似文献   

7.
于2010—2011年在莱州湾朱旺人工鱼礁区(建礁3年)采用地笼网进行周年渔业资源调查,根据调查结果,使用Ecopath with Ecosim 6.4.3软件,构建了莱州湾朱旺人工鱼礁区生态系统食物网模型,提出了人工鱼礁区中日本蟳(Charybdis japonica)、脉红螺(Rapana venosa)和刺参(Apostichopus japonucus)的管理策略。研究表明:功能组主要占据3个营养级;系统总流量为3 390.131t·km~(-2)·a~(-1),总消耗量为1 839.502t·km~(-2)·a~(-1),总呼吸流动量为991.909t·km~(-2)·a~(-1),流向碎屑的总流量为523.729t·km~(-2)·a~(-1);总能流转化效率为12.8%,来自初级生产者和碎屑的能流转化效率分别为13%和12.3%。研究结果显示:莱州湾朱旺人工鱼礁区主要以底栖生物为主,日本蟳和脉红螺为绝对优势种,中上层鱼类的种类和生物量较少,整个生态系统的成熟度和稳定性较低,食物网连接相对简单且趋于线性结构,系统相对不稳定,抵抗外界干扰能力较差。人工鱼礁区的日本蟳和脉红螺生态容量分别为4.038和2.482t·km-2,以每年约1.17和0.96t的捕捞量可持续捕捞10年保持系统平衡;刺参生态容量为50.80t·km-2,以每年22.38~29.85t·km-2的放流量并从第3年以每年8.95~11.94t·km-2规模采捕,4~5年达到其生态容量后停止放流,可继续按原计划采捕5年仍能维持系统稳定。  相似文献   

8.
蜈支洲岛海洋牧场为海南省首个国家级海洋牧场示范区,为评估蜈支洲岛海洋牧场的资源养护效果,进而为下一步海洋牧场的渔业资源科学管理提供依据。采用渔业资源水声学调查方法,对蜈支洲海洋牧场近岛人工鱼礁区及海棠湾湾区的渔业资源现状及其季节变动进行了研究。2019年4月、8月、12月进行了3次调查,结果显示:4月近岛人工鱼礁区域共捕获游泳生物63种,平均资源量密度为63.71 t/km2,8月、12月海棠湾湾区共捕获游泳生物68种和120种,平均资源量密度分别为8.29 t/km2和7.21 t/km2。4-12月物种多样性指数(H'')均值分别为3.532、3.478、4.414。三次调查中,鱼类优势种中多齿蛇鲻(Saurida tumbil)、短鳄齿鱼(Champsodon snyderi)、宽条鹦天竺鯛(Ostorhinchus fasciatus)均出现2次,其余种类均只出现一次。4-12月重要经济生物占总资源量的比重依次为72.46%、64.74%、57.59%。综上所述,蜈支洲岛海洋牧场近岛人工礁区及海棠湾湾区渔业资源丰富、物种多样性高,尤其是海洋牧场建设对于渔业资源的聚集起到了积极的作用,但仍存在重要经济鱼类少,个体较小等问题。  相似文献   

9.
为构建1985~1986年长江口生态系统的Ecopath模型, 作者根据1985~1986年全年12个航次长江口及邻近海域综合调查数据, 分析此历史时期长江口及邻近海域生态系统的能流结构, 并对生态系统总体特征进行了综合评估。1985~1986年长江口水域生态系统包括16个功能群, 各功能群的营养级在1~4.52, 中上层游泳生物食性鱼类占据最高营养级。各功能群间关系主要由3种途径导致: 控制类型、生态位重叠和营养级联。营养级聚合分析表明, 1985~1986年长江口生态系统能流中牧食食物链占据主导地位, 直接来自初级生产者的占比57%。此历史时期长江口生态系统各营养级平均转化效率为12.4%, 其中来自碎屑的能流转换效率为12.9%, 来自初级生产者的转换效率为12%。生态系统总体特征分析显示, 该历史时期连接指数和系统杂食指数分别为0.471和0.103, 长江口及邻近海域循环指数和平均路径长度分别为9.35%和2.778, 总初级生产量/总呼吸量为1.724。  相似文献   

10.
本文根据2004年长江口及其邻近海域生态调查数据,运用生态通道模型(Ecopath模型)构建生态系统能流网络,分析本区域生态系统营养结构及功能,并与1985—1986年研究数据进行对比,解析两个时期生态系统营养结构与功能的差异。研究结果显示,2004年长江口及其邻近海域生态系统营养级范围为1~4.34,相较于1985—1986年研究结果,底层无脊椎动物食性鱼类和头足类的营养级变动较大。牧食食物链占据主导地位,浮游植物在浮游动物和水母的能量来源中所占比例均在60%以上;碎屑食物链所占能流比为44%。系统总能流为6342.081 t·km–2·a–1。渔获物平均营养级下降,生态营养效率平均值较高,但是碎屑和浮游植物的生态营养效率却明显下降,碎屑趋于累积。生态系统统计量整体显示,长江口及邻近海域生态系统成熟度降低。  相似文献   

11.
建设海洋牧场能修复海洋生态环境、恢复海洋渔业资源,更好地促进海洋渔业的可持续发展。我国于20世纪70年代开始了海洋牧场的建设,并已经取得很大成绩,国内众多学者对海洋牧场的研究也取得了较多的成果。三亚蜈支洲岛海洋牧场是热带海岛休闲旅游型海洋牧场,通过对三亚蜈支洲岛海洋牧场的研究发现,海洋牧场的建设给旅游区带来了显著的生态效益、经济效益、社会效益,海洋牧场建设对生态旅游的开展具有明显的促进作用。  相似文献   

12.
The marine ecosystem of the Jiaozhou Bay has degraded significantly in fisheries productivity and its ecological roles as spawning and nursery ground for many species of commercial importance has been declining in recent years. A mass-balanced trophic model was developed using Ecopath with Ecosim to evaluate the trophic structure of the Jiaozhou Bay for improving ecosystem management. The model were parameterized based on the fisheries survey data in the Jiaozhou Bay in 2011, including 23 species groups and one detritus group according to their ecological roles. The trophic levels of these ecological groups ranged from 1(primary producers and detritus) to4.3(large demersal fishes). The estimated total system throughput was 12 917.10 t/(km~2·a), with 74.59% and25.41% contribution of the total energy flows from phytoplankton and detritus, respectively. Network analyses showed that the overall transfer efficiency of the ecosystem was 14.4%, and the mean transfer efficiency was 14.5%for grazing food chain and 13.9% for detritus food chain. The system omnivory index(SOI), Finn's cycled index(FCI) and connectance index(CI) were relatively low in this area while the total primary production/total respiration(TPP/TR) was high, indicating an immature and unstable status of the Jiaozhou Bay ecosystem. Mixed trophic impact analysis revealed that the cultured shellfish had substantial negative impacts on most functional groups. This study contributed to ecosystem-level evaluation and management planning of the Jiaozhou Bay ecosystem.  相似文献   

13.
Using ecosystem models (Ecopath, Ecosim, and Ecospace), we assessed the structure and function of the Tongyeong marine ranching ecosystem and compared changes in various ecosystem components before and after marine ranching activities. An ecosystem structure model, Ecopath, was used to estimate the changes in biomass and trophic level of major species or groups, the relative contribution of target species or groups to the total flow of energy (throughput), and niche overlaps and impacts of competition between major species or groups. It showed that the Tongyeong ecosystem had 4 trophic levels. A large amount of energy flows occurred at trophic levels 3 and 4, and jacopever rockfish (Sebastes schlegelii) and black rockfish (S. inermis) that were target species for stock enhancement belonged to trophic level 3, indicating that those two species played an important role in the ecosystem. Using an ecosystem dynamic model, Ecosim, the mechanism of dynamic changes in the quantity of target species or groups was investigated to identify the effects of stock enhancement activities and impacts of fishing intensity. After marine ranching activities, the biomass of two target species had increased, while those of most other fish groups decreased. Assuming that fishing mortality was double the current level, the biomass of most fish groups decreased but jacopever rockfish maintained its current stock level due to excessive stock enhancement and low fishing mortality in recent years. An ecosystem space model, Ecospace, was employed to simulate the temporal and spatial dynamics of the biomass of organisms in order to examine how resource enhancement activities have changed the distribution and abundance of target species or groups in the ecosystem. The distribution pattern of jacopever rockfish and black rockfish showed stronger aggregations around reefs and rocky areas with high stock densities after ranching. However, most of the other fish groups exhibited lower densities in the marine ranching area, while they showed higher densities outside the marine ranching area. Thus, it would be necessary to take appropriate holistic management actions based on the ecosystem-based approach to keep the ranching ecosystem healthy and to maintain the fishery production of the ecosystem at the maximum sustainable level.  相似文献   

14.
在全球气候变化的背景下,现代化海洋牧场是我国应对近海生态环境恶化和渔业资源衰退、实现海洋生态文明和海洋强国战略的重要手段。而海洋牧场观测网是科学指导现代化海洋牧场建设,并进行科学管理的重要基础。为了保障现代化海洋牧场的可持续健康发展,山东省于2015年底开始在各海洋牧场建设生态环境海底观测站,并组网建成世界先进的海洋牧场观测网,目前已覆盖23处海洋牧场。设立观测网预警中心,负责海洋牧场观测网的日常运行和维护,同时开展水域多学科耦合过程的基础研究和业务化辅助决策的应用服务。海洋牧场观测网的建立和业务化运行初步实现了海洋牧场生态环境和渔业资源的"可测"、"可视"、"可控"和"可预警"。目前,我国现代化海洋牧场观测网的科学发展仍面临诸多挑战,建议进一步增强观测设备的自主研发能力和长期在线监测的稳定性,跨介质立体组网、实现海洋牧场的全方位立体监测,深化多学科耦合过程的基础研究并提供多元业务化辅助决策应用服务,为现代化海洋牧场的高质量发展保驾护航。  相似文献   

15.
A quantitative model of the trophic network of Northern Adriatic Sea marine ecosystem during the 1990s has been constructed, with the goal of analysing its trophic structure, identifying the key trophic groups and assessing the anthropogenic impacts on the ecosystem using the Ecopath modelling protocol. The Northern Adriatic Sea is an eutrophic, shallow basin, and one of the most heavily fished areas in the Mediterranean Sea. The network aggregation into discrete trophic levels sensu Lindeman shows that low trophic levels dominate biomass and energy flows, with 40% of the total system throughput flowing out from trophic level 2. Instead, upper trophic levels appear bottom-up controlled, highly depleted and not exerting any control on the trophic network, as shown by mixed trophic impact-based analyses. Microbial loop is comparable to grazing with respect to the magnitude of flows involved, as 66% of the trophic network flows originate from detritus, which is mainly consumed by bacteria. Key trophic groups are plankton groups, macro-crustaceans and detritus, and other r-selected organisms like squids and small pelagics, which have a great influence on the ecosystem. In particular, zooplankton acts as a bottleneck for energy flows, limiting the energy from the low trophic levels effectively reaching the upper food web. The high pelagic production caused by eutrophication sustains high fishery landings and impressive discard quantities, as well as the benthic compartment. Overall, the ecosystem appears quite productive and in a stressed and developmental status. Model results and comparisons with few existing historical data suggest that the low maturity and stressed state of the Northern Adriatic Sea are not only due to natural characteristics, but mainly to anthropogenic pressures.  相似文献   

16.
The El Niño of 1997–98 was one of the strongest warming events of the past century; among many other effects, it impacted phytoplankton along the Peruvian coast by changing species composition and reducing biomass. While responses of the main fish resources to this natural perturbation are relatively well known, understanding the ecosystem response as a whole requires an ecotrophic multispecies approach. In this work, we construct trophic models of the Northern Humboldt Current Ecosystem (NHCE) and compare the La Niña (LN) years in 1995–96 with the El Niño (EN) years in 1997–98. The model area extends from 4°S–16°S and to 60 nm from the coast. The model consists of 32 functional groups of organisms and differs from previous trophic models of the Peruvian system through: (i) division of plankton into size classes to account for EN-associated changes and feeding preferences of small pelagic fish, (ii) increased division of demersal groups and separation of life history stages of hake, (iii) inclusion of mesopelagic fish, and (iv) incorporation of the jumbo squid (Dosidicus gigas), which became abundant following EN. Results show that EN reduced the size and organization of energy flows of the NHCE, but the overall functioning (proportion of energy flows used for respiration, consumption by predators, detritus and export) of the ecosystem was maintained. The reduction of diatom biomass during EN forced omnivorous planktivorous fish to switch to a more zooplankton-dominated diet, raising their trophic level. Consequently, in the EN model the trophic level increased for several predatory groups (mackerel, other large pelagics, sea birds, pinnipeds) and for fishery catch. A high modeled biomass of macrozooplankton was needed to balance the consumption by planktivores, especially during EN condition when observed diatoms biomass diminished dramatically. Despite overall lower planktivorous fish catches, the higher primary production required-to-catch ratio implied a stronger ecological impact of the fishery and stresses the need for precautionary management of fisheries during and after EN. During EN energetic indicators such as the lower primary production/total biomass ratio suggest a more energetically efficient ecosystem, while reduced network indicators such as the cycling index and relative ascendency indicate of a less organized state of the ecosystem. Compared to previous trophic models of the NHCE we observed: (i) a shrinking of ecosystem size in term of energy flows, (ii) slight changes in overall functioning (proportion of energy flows used for respiration, consumption by predators and detritus), and (iii) the use of alternate pathways leading to a higher ecological impact of the fishery for planktivorous fish.  相似文献   

17.
桡足类是海洋生态系统中初级生产者和较高营养级消费者之间的关键联系环节,掌握桡足类的现场食物组成对于准确评估海洋食物网中的营养关系和能量转移至关重要。本研究中,我们以中华哲水蚤这一在中国、日本以及韩国近海具有重要生态地位的大型哲水蚤属桡足类为研究对象,应用之前开发的基于PCR的克隆技术,通过分析中华哲水蚤所摄食生物的18S rDNA序列,研究了中华哲水蚤的现场食物组成。结果揭示了南黄海(Y19站位)和渤海(B49站位)中华哲水蚤食物组成的多样性。共检测出43个操作分类单元(OTUs),分别隶属于13个类群:硅藻(Bacillariophyta)、甲藻(Dinoflagellata)、硅鞭藻(Dictyochophyceae)、金藻(Chrysophyta)、Katablepharidophyta、浮生藻(Pelagophyceae)、无根虫(Apusozoa)、水螅水母(Hydrozoa)、栉水母(Ctenophora)、棘皮动物(Echinodermata)、被囊动物(Tunicata)、毛颚动物(Chaetognatha)以及海洋真菌。结果还表明,当发生藻类暴发时,中华哲水蚤可以摄食引发藻类暴发的藻种。当周围海域浮游植物的丰度相对较低时,中华哲水蚤可以选择摄食各种后生动物尤其是水螅水母和栉水母的卵、幼虫或者有机碎屑。我们的研究结果表明中华哲水蚤是一种杂食性桡足类,它对食物的选择依赖其生活海域中食物的可获得性。  相似文献   

18.
三亚蜈支洲岛海洋牧场拥有丰富的岛礁生物资源。为掌握海洋牧场近岛区的底表大型底栖动物群落组成和分布特征及其影响因子、评估海洋牧场底栖生态系统健康状况, 本研究于2020—2021年进行了底表大型无脊椎动物群落季节变动的调查。结果表明: 近岛珊瑚礁区共鉴定出棘皮动物、软体动物、节肢动物3大门类90种, 其中秋季种类数最多为55种, 夏季种类数最少为16种; 底表大型底栖动物的年平均丰度为0.87±0.26ind.·m-2, 年平均生物量为76.99±34.32g·m-2。群落聚类分析(cluster)与多维排序尺度分析(multidimensional Scaling, MDS)表明, 该区域群落结构季节性差异不显著, 各站位间群落结构受沉积物性质以及人类活动的频繁程度的影响, 形成北部与南部区域2个聚类组。全年的物种丰富度指数d为2.7±1.16, 多样性指数H′为3.14±0.88, 均匀度指数J为0.76±0.11。基于多样性指数H'及多变量海洋生物指数(Multivariate-AZTI′s marine biotic index, M-AMBI)评价指标, 海洋牧场近岛区环境除夏季为轻度污染外, 其他季节均为无污染状态。采用动物丰度与生物量比较曲线(abundance-biomass curves, ABC曲线)法评价底栖动物群落稳定性状况得出, 除冬季以外, 其他季节底表大型底栖动物群落受到一定程度干扰, 尤其是夏季群落结构稳定性较低。建议应持续关注底表大型底栖动物群落变动, 调整、优化涉海休闲旅游活动, 以保证蜈支洲岛海洋牧场生态系统的长期健康与稳定。  相似文献   

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