Accueil Accueil

CCAMLR

Commission pour la conservation de la faune et la flore marines de l'Antarctique

  • Accueil
  • Accès au texte
  • S'identifier

Formulaire de recherche

  • La CCAMLR
  • Mesures de conservation
  • Science
  • Pêcheries
  • Conformité
  • Données
  • Réunions
  • Publications
  • Circulaires
  • English
  • Français
  • Русский
  • Español
  • Accueil
Print this page
Increase font size
Decrease font size

There is no abstract available for this document.

Abstract: 

A finfish survey was completed using bottom trawl fishing gear according to a random stratified sampling design between 50 and 500 m on shelf areas of Subarea 48.1 (Elephant Island) and Subarea 48.2 (South Orkney Island). The sampling stations were set in approximately the same geographical coordinates as those on previous R/V 'Polarstern' surveys around Elephant Island (Kock & Jones, 2012) and on shelf areas of the South Orkney Islands according to a subsample of stations sampled by the R/V 'Yuzhmorgeologiya' (Jones & Kock, 2009).

The cruise took place 6-27 January, 2018, primarily using a Hardbottom Snapper trawl (NET Systems, Inc.), previously used by the US AMLR Program, Southwest Fisheries Science Center, National Marine Fisheries Service. A total of 36 hauls were carried out with this bottom trawl, 15 around Elephant Island and 21 around the South Orkney Islands. Additionally, eight hauls were conducted using either a Casanova bottom trawl (3 hauls) or a Gloria 704 midwater trawl (5 hauls).

For stations sampled using the Hardbottom Snapper trawl, 36 fish species were caught with a total volume of 19,112.28 kg. The main species extracted with this gear corresponded to Notothenia rossii and Champsocephalus gunnari, with landings weighing 16,204.38 (84.79%) and 875.69 kg (4.58%), respectively. Other species of fish registered noticeably lower amounts (10.63%), such as Gobionotothen georgianus (329.97 kg), Chaenocephalus aceratus (321.91 kg), and Pseudochaenichthys georgianus (299.39 kg).

As a result of nearing the maximum research catch specified in Subarea 48.1 (95% of authorized research catch), we were unable to complete the planned number of bottom trawl stations (n=37), with 35% of proposed stations completed (n=13). In Subarea 48.2, we were unable to complete the planned number of stations (n=28) because of limited ship time, where 75% of proposed stations were completed (n=21). This resulted in a very low sample size with which to estimate standing stock biomass, and thus results presented here should be taken as indicative. Indicative estimates of standing stock biomass suggest that N. rossii is the most abundant demersal finfish species in the Elephant Island area followed by C. gunnari. On the South Orkney Island shelf, the most abundant species was G. gibberifrons followed by P. georgianus.

The acoustic survey was carried out around both groups of islands and its processing will contribute to knowledge regarding bathymetry and distribution of the concentrations of fish and krill in the studied area (track of 579 nm around Elephant Island and 1,120 nm around South Orkney Islands). During the acoustic survey, five hauls were carried out with a mid-water trawling net in order to identify the shoal marks registered in the echo sounders. One of the mid-water hauls identified a shoal of icefish (33.6 t), while the other four obtained other species of icefish, such as P. georgianus, and krill.

In addition, 1,176 tissue samples representing 21 species of nototenoids, four species of the family Rajidae, and another 12 species that make up six families of teleost fishes were collected for genetic studies. A further 1,182 specimens were evaluated for parasite infestation (Euhirudinea), with 140 specimens of Trulliobdella capitis,Truliobdella bacilliformis, and Nototheniobdella sawyeri collected.

Abstract: 

Leopard seals are an important Antarctic apex predator that can affect marine ecosystems through local predation. Here we report on the successful use of micro geolocation logging sensor tags to track the movements, and activity, of four leopard seals for trips of between 142-446 days including one individual in two separate years.  Whilst the sample size is small the results represent an advance in our limited knowledge of leopard seals. We show the longest periods of tracking of leopard seals’ migratory behaviour between the pack ice, close to the Antarctic continent, and the sub-Antarctic island of South Georgia. It appears that these tracked animals migrate in a directed manner towards Bird Island and, during their residency, use this as a central place for foraging trips as well as exploiting the local penguin and seal populations. Movements to the South Orkney Islands were also recorded, similar to those observed in other predators in the region including the krill fishery. Analysis of habitat associations, taking into account location errors, indicated the tracked seals had an affinity for shallow shelf water and regions of sea ice. Wet and dry sensors revealed that seals hauled out for between 22 and 31% of the time with maximum of 74 hours and a median of between 9 and 11 hours. The longest period a seal remained in the water was between 13 and 25 days. Fitting GAMMs showed that haul out rates changed throughout the year with the highest values occurring during the summer which has implications for visual surveys. Peak haul out occurred around midday for the months between October and April but was more evenly spread across the day between May and September. The seals’ movements between, and behaviour within, areas important to breeding populations of birds and other seals, coupled with the dynamics of the region’s fisheries, shows an understanding of leopard seal ecology is vital in the management of the Southern Ocean resources.  

Abstract: 

Foreword to 14 papers in a themed issue ‘The marine system of the West Antarctic Peninsula: status and strategy for progress in a region of rapid change’.

Abstract: 

The Southern Ocean is fundamentally important to the Earth system, influencing global climate, biogeochemical and ecological cycles. Limited observations suggest the Southern Ocean is changing, yet chronic under-sampling makes the causes and consequences of such changes difficult to assess, and limits the effectiveness of any response. A Southern Ocean Observing System (SOOS) is thus being created, to facilitate integration of resources, to enhance data collection and access, and to guide the sustained development of strategic, multidisciplinary science in the Southern Ocean. Here we outline the long-term vision for this system, the gains inherent in its implementation, and how the international community can move towards achieving it.

Abstract: 

Recognising that CM 51-07 is scheduled to lapse at the end of the 2020/2021 fishing season, we outline a plan of work to engage with the CCAMLR community to move towards refining the krill risk assessment framework. WG-EMM has previously offered advice about how the risk assessment might be improved for the future. We therefore indicate key areas for community engagement to help develop the next version of the risk assessment framework.

Abstract: 

We review reasons why the fishery for Antarctic krill is challenging to manage and consider ways in which management could be improved, whilst responsible and precautionary harvesting continues. We propose an experimental framework to help improve the scientific basis for management. This framework will enhance conservation, and increase ecological understanding by using an experimental approach to fishing, coupled with the use of Krill Reference Areas and Krill Fishing Areas. We use the existing Small Scale Management Units, modified to take into account biological and physical environmental characteristics, as the geographic and spatial basis for a set of differing treatments. We also consider the existing CEMP ecosystem monitoring framework across Subareas 48.1 and 48.2, noting that monitoring is mainly associated with penguin research. We identify a number of treatments based on seasonal, or year round closures, and highlight how enhanced scientific data collection, using existing methods and approaches could be used to enhance ecological understanding of possible impacts (or lack thereof) of krill fishing. We also consider how certain treatments could be used to help disentangle confounding drivers of change, including climate change. We offer this paper as a discussion document, to help further the management of the krill fishery. We welcome comments and suggestions to help improve the concepts and implementation. We also request input upon how the proposed framework could strengthen the development of other conservation measures presently under development.

Abstract: 

In this paper we drawn comparison between the existing CCAMLR Ecosystem Monitoring Programme (CEMP) and plans to develop Research and Monitoring Plans for Marine Protected Areas. We recall the outcomes of the CEMP Review in 2003, and as a result highlight the intensity of monitoring required to detect change and to ascribe cause. We therefore propose that CCAMLR build even stronger links with SOOS to ensure relevant data are available. We highlight that a hierarchical approach to monitoring could be employed to detect the first signs of change.

Abstract: 

Catch limits for toothfish in research blocks were set for the 2017/18 season using a qualitative analysis of trends in biomass estimated in each research block and a series of simple decision rules developed by WG-FSA-17. The Scientific Committee recommended that the approach be further developed and tested as a matter of priority for WG-SAM-18. We formalised and codified the rules and developed a simulation approach to examine the performance of the trend analysis rules for scenarios with high or low abundance, high or low uncertainty in biomass estimates, and for populations with increasing, stable, or decreasing trends in abundance. The trend analysis rules performed well given the expected inter-annual variability in biomass estimates, and they increased or decreased catch limits as the simulated population increased or decreased in abundance, though with a longer lag when population abundance was increasing. Further evaluations are needed to implement scenarios where populations change in response to catches and to test the overall management approach.

Abstract: 

Features of the implementation of the tagging program on vessels of Ukraine CALIPSO, KOREIZ, MARIGOLDS, SIMEIZ are presented.

Pages

  • « premier
  • ‹ précédent
  • …
  • 334
  • 335
  • 336
  • 337
  • 338
  • 339
  • 340
  • 341
  • 342
  • …
  • suivant ›
  • dernier »
S'abonner à CCAMLR RSS

Nous contacter

E-mail: ccamlr [at] ccamlr [dot] org
Téléphone: +61 3 6210 1111
Fax: +61 3 6224 8744
Adresse: 181 Macquarie Street, Hobart, 7000, Tasmania, Australia

 

Liens rapides

  • Postes vacants
  • Liste des navires autorisés
  • Liste officielle des mesures de conservation en vigueur 2024/25
  • Accomplissements de la CCAMLR

Current and Upcoming Meetings

  • WG-SAM-2025
  • WG-ASAM-2025
  • WG-EMM-2025

Footer Links French

  • S'identifier
  • Messagerie
  • e-groupes CCAMLR
  • Assistance technique
  • Groupes de discussion de la CCAMLR
  • Droits d’auteur
  • Clause de non-responsabilité et politique de confidentialité
  • Plan du site
© Copyright - the Commission for the Conservation of Antarctic Marine Living Resources 2025, Tous droits réservés.  |  Haut de la page  |  Site créé par Eighty Options