11 results
Environment
PROJECT NUMBER • 2018-159
PROJECT STATUS:
COMPLETED

Spawning biomass of Jack Mackerel (Trachurus declivis) in the East sub-area of the Small Pelagic Fishery during summer 2019

Estimates of spawning biomass obtained using the Daily Egg Production Method (DEPM) are the primary biological performance indicator for quota species in the Small Pelagic Fishery (SPF). The objective of this study was to conduct ichthyoplankton and adult trawl surveys that underpin the DEPM in the...
ORGANISATION:
SARDI Food Safety and Innovation
SPECIES
Adoption
PROJECT NUMBER • 2018-127
PROJECT STATUS:
COMPLETED

Validation and implementation of rapid test kits for detection of OsHV-1

Following the outbreak of Pacific Oyster Mortality Syndrome (POMS) in the Port River, South Australia in summer 2017-18, a need was identified for rapid diagnostic technology for OsHV-1, the causative agent of POMS. During the February 2016 OsHV-1 outbreak in Tasmania, tracing activities in...
ORGANISATION:
SARDI Food Safety and Innovation
Industry
PROJECT NUMBER • 2017-225
PROJECT STATUS:
COMPLETED

Improving risk management of paralytic shellfish toxins (PST) in the Blacklip Abalone (Haliotis rubra rubra)

The accumulation of paralytic shellfish toxins (PST) of microalgal origin in abalone tissues causes a trade and human health risk that requires active management. Toxic algal blooms of the genus Alexandrium have recently caused several abalone harvest closures on the east coast of Australia. Risk...
ORGANISATION:
SARDI Food Safety and Innovation
Industry
Environment
PROJECT NUMBER • 2017-027
PROJECT STATUS:
COMPLETED

Validating a new sampling technique for estimating egg production

Estimates of spawning biomass obtained using the Daily Egg Production Method (DEPM) are the primary biological performance indicator in the South Australian Sardine Fishery (SASF) and Commonwealth Small Pelagic Fishery (SPF). The DEPM is also being used to assess the status of other...
ORGANISATION:
SARDI Food Safety and Innovation
Environment
PROJECT NUMBER • 2017-023
PROJECT STATUS:
COMPLETED

ESD risk assessment for under-utilised species to facilitate structural reform of South Australia's commercial Marine Scalefish Fishery

South Australia’s Marine Scalefish Fishery (MSF) is facing a number of complex issues that are affecting business profitability and stock sustainability. One particular issue relates to the long-term reliance of the fishery on the three primary finfish species of King George Whiting, Snapper...
ORGANISATION:
SARDI Food Safety and Innovation
Industry
PROJECT NUMBER • 2017-014
PROJECT STATUS:
COMPLETED

Informing the structural reform of South Australia's Marine Scalefish Fishery

This study was undertaken by the South Australia Research and Development Institute (SARDI) in collaboration with PIRSA Fisheries and Aquaculture, BDO EconSearch, the Marine Fishers Association (MFA), Fishwell Consulting and University of Canberra. This project guided the reform of South...
ORGANISATION:
SARDI Food Safety and Innovation

Future oysters CRC-P: Species diversification to provide alternatives for commercial production

Project number: 2016-807
Project Status:
Completed
Budget expenditure: $243,426.00
Principal Investigator: Xiaoxu Li
Organisation: SARDI Food Safety and Innovation
Project start/end date: 23 Apr 2017 - 29 Jun 2019
Contact:
FRDC

Need

The establishment of a new native oyster and/or western rock oyster aquaculture sectors in SA and the former in Tasmania will not only diversify the business risk of the existing Pacific oyster sector, but has the potential to become a multi-million dollar industry itself. As native oysters would be more suited to subtidal or low intertidal culture while western rock oysters are an ideal alternative species to mitigate POMS, the successful development of these aquaculture sectors will strengthen the confidence of existing/new growers and investors in Pacific, western rock and native oysters; thereby encouraging further expansion of the industry. In addition, supporting species diversification is one of the high strategic priorities in the Oysters Australia Strategic Plan 2014-2019.

Objectives

1. To develop Native Oyster on-farm growing methods that maximise survival and growth in South Australia and Tasmania
2. To compare the performance between Pacific Oysters and Native Oysters in South Australia
3. To establish a Native Oyster farmers network to share new techniques and knowledge
4. To develop translocation protocols for the safe translocation of Western Rock Oysters to South Australia
5. Trial Western Rock Oysters in the field in South Australia to assess their performance and viability of a potential industry if agreed by industry and regulators

Final report

ISBN: 978-1-8767007-45-4
Authors: Xiaoxu Li Penny Miller-Ezzy Christine Crawford Deborah Gardner Marty Deveney Jessica Buss Ben Diggles Kathryn Wiltshire
Final Report • 2023-05-01 • 3.61 MB
2016-807-DLD.pdf

Summary

Pacific Oyster Mortality Syndrome (POMS), the disease caused by OsHV-1 microvariant, results in high and rapid mortality in Pacific Oysters (Crassostrea gigas) and has been responsible for significant economic loss to oyster industries in Australia and around the world. The diversification of commercial production into different oyster species (Native Oysters and Rock Oysters), that are not susceptible to POMS, has been proposed as a way to mitigate the risk of POMS in southern Australia. However, the Australia Native Oyster (Ostrea angasi) industry is still in its infancy, with knowledge gaps along the production chain. Additionally, there are no wild populations of Rock Oysters (Saccostrea sp.) in South Australia. Despite Rock Oyster aquaculture being well established in New South Wales and recently in Western Australia they have never been commercially produced in South er Australia and translocation policies to move them around the state are non-existent. This project aimed to improve on-farm production of Native Oysters and determine if Rock Oysters can be safely translocated to South Australia from Western Australia, to help Australian oyster growers to diversify into these species.

Mud cockle (Katelysia spp.) stock enhancement/restoration: practical implementation and policy evaluation

Project number: 2014-028
Project Status:
Completed
Budget expenditure: $250,432.00
Principal Investigator: Xiaoxu Li
Organisation: SARDI Food Safety and Innovation
Project start/end date: 16 Jul 2014 - 29 Jun 2017
Contact:
FRDC
SPECIES

Need

Mud cockles have been an important resource to the seafood industry, recreational fishers and ecosystem of SA. These species are subject to episodic recruitment that is strongly influenced by the environment. For example, the combination of fishing and adverse environmental conditions at the Section Bank has resulted in PIRSA closing this area to fishing from 2011. As these difficulties could arise in any mud cockle fishery, e.g. a severe mud cockle mortality event occurred during December 2013 in Streaky Bay, there is a strong need to develop the capacity to recover the depleted stocks through reseeding. Section Bank is an ideal location for a case study because it has been closed to commercial and recreational fishing for more than three years.

While marine stock enhancement/restoration programs are variable in success, the approach seems well suited to cockle species, which in many countries are farmed by planting spat into the sandy substrate and harvesting them when they have reached market size. Stock enhancement/restoration also continues to advance with improved policies (e.g. PIRSA F&A Draft Policy for the Release of Aquatic Resources) and the “responsible approach” advocated by Lorenzen et al (2010) and Hart et al (2013) where methodologies are used to ensure that the genetic heterogeneity of natural populations is maintained and that hatchery stock is disease free before release.

Benefit cost analyses have shown very encouraging potential for stock enhancement in pipi and greenlip abalone. For example, a benefit cost ratio of 3.34:1 and a two year investment return were anticipated for pipi reseeding in NSW (Phelps et al 2008). Similar or greater levels of benefit can be predicted for mud cockle stock enhancement in SA by substituting the information for pipi with that for K. rhytiphora based on our findings in FRDC 2009/208 project.

Objectives

1. Develop optimal methodologies for transporting and planting hatchery produced mud cockle, K. scalarina, for stock enhancement/restoration at Section Bank.
2. Evaluate post-stocking performance of two hatchery produced mud cockle, K. scalarina and K. rhytiphora, at Section Bank.
3. Develop a monitoring program that can be incorporated within the existing industry mud cockle stock assessment program to determine the long-term success of stock enhancement/restoration.
4. Optimise mud cockle stock enhancement/restoration strategies for Section Bank through benefit cost evaluation of different options using the model developed in FRDC project 2008/071.
5. Transfer knowledge gained from this project to Government fisheries and aquaculture managers and policy makers, and cockle fishers in SA.

Final report

ISBN: 978-1-876007-38-6
Authors: Miller-Ezzy P.A. Stone D.A.J. and Li X.
Final Report • 2021-08-01 • 1.59 MB
2014-028-DLD.pdf

Summary

This study was conducted to restore the Mud Cockle population in the Section Bank of Port River, South Australia, which had drastically decreased due to commercial fishing. Mud Cockles are important not only for commercial purposes but also for stabilizing sediment and reducing turbidity in the environment. The study developed procedures for transporting and planting hatchery-produced Mud Cockle seed into the field to optimize growth and survival. Pilot studies were undertaken to assess transportation and tagging procedures. Five trials were conducted at two different sites with different population sizes with the aims of testing planted Mud Cockle survival and growth across different seasons, sites, stocking densities, stocking size classes and predator protective methods. The study found that seasonal water temperature has the strongest influence on the apparent survival and growth of the re-seeded Mud Cockle spat. The results from the pilot studies indicated that Pacific Oyster spat transportation methods were suitable for Mud Cockle spat and painting one valve of the Mud Cockles with Rosario Pink paint was the most effective method for marking experimental spat. 
 
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