College of Science & Engineering
Sophia Love
- Doctor of Philosophy (Natural and Physical Sciences)
- sophie.love@jcu.edu.au
Elle Robertson
- Doctor of Philosophy (Agriculture, Environmental and Related Studies)
- elle.robertson@jcu.edu.au
Romain Vaucher
- Senior Lecturer, Sedimentology
- romain.vaucher@jcu.edu.au
Jenny Fisher
- Associate Dean, Learning and Teaching
- jenny.fisher@jcu.edu.au
Ambili Narayanan
- Doctor of Philosophy (Natural and Physical Sciences)
- ambili.narayanan@my.jcu.edu.au
Sarfaraz Ali
- Postdoctoral Research Fellow
- sarfaraz.ali@jcu.edu.au
Mikaeylah Davidson
- Postdoctoral Research Fellow
- mikaeylah.davidson@jcu.edu.au
Liuxin Chen
- Adjunct Lecturer
- liuxin.chen@jcu.edu.au
Rafael Cabral Carvalho
- Lecturer, Marine Geoscience
- rafael.cabralcarvalho@jcu.edu.au
Tom Lloyd
- Postdoctoral Research Fellow, Global Ecosystems
- tom.lloyd@jcu.edu.au
NESP Tropical Water Quality Research Plan 7 (Old ID 27291)
The National Environmental Science Program Tropical Water Quality Hub, funded by the federal government, has funded a wide variety of research projects during its operations from 2015-2021. As this programme draws to a close, there is a need to repatriate the knowledge and learnings from these research projects to relevant stakeholders and end-users. This project will undertake a series of meetings and workshops with end-users to enable the outcomes of research to be adopted. This engagement process will include analysis and synthesis of data collected to date.
Improving the quality of water for release from land-based aquaculture in northern Australia (Old ID 26373)
Effluent from land-based aquaculture farms is problematic because of its nutrient content. This project will be the first in Australia and the tropics to assess the ability of 'denitrification bioreactors' (woodchip-filled trenches) to remove suspended solids and nitrogen from effluent leaving an aquaculture farm. It will be carried out on a barramundi farm the Great Barrier Reef catchment in North Queensland. Changes in quality of water flowing through bioreactors will be measured under a range of likely operating conditions, including differences in salinity and effluent retention rate. The results will be applicable to aquaculture farms throughout the tropics, enabling a reduction in negative environmental impacts, and facilitating intensification and expansion of fish production without increasing nutrient export.
Can species interactions drive rapid niche evolution? (Old ID 23427)
Climate change can alter the distribution of speies and cause novel interactions This project will test whether such interactions can actually drive adaptation to the changing environment. Two Australian fruitfly species will be lab-reared separately and together along a thermal resource gradient. Estimates of each species' niche will be obtained. Using experimental evolution, resource space will then be manipulated to create competition and test whether either species/ niche will evolve into new space. A shift of either species beyond its former niche limits would provide evidence of the potential for evolutionary rescue via rapid adaptation to changing environmental conditions.
Can species interactions drive rapid niche evolution? (Old ID 23427)
Climate change can alter the distribution of speies and cause novel interactions This project will test whether such interactions can actually drive adaptation to the changing environment. Two Australian fruitfly species will be lab-reared separately and together along a thermal resource gradient. Estimates of each species' niche will be obtained. Using experimental evolution, resource space will then be manipulated to create competition and test whether either species/ niche will evolve into new space. A shift of either species beyond its former niche limits would provide evidence of the potential for evolutionary rescue via rapid adaptation to changing environmental conditions.
Dugald River Mine Pre-Baseline Limnology Assessment and Design (Old ID 20419)
This project covers completion of mine site recon and preliminary limnology assessment of local rivers within and adjacent to Dugald River mine site operation. The data collected during this pre-baseline assessment will be used in the design of a full baseline limnology survey, scheduled to be completed before mining operations commence. The full baseline survey will support the development of mine site closure targets.
Developing Deep Learning Applications for Smart Aquaculture (Old ID 27329)
This project proposes to use deep learning technology to extract various data in commercial environments in a non-intrusive and cost-effective way from fish farms. Currently, most of the fish data is analysed manually. The aim is to use deep learning to extract useful features and traits of fish and to analyse the collected data automatically and efficiently. The project will be in direct partnership with our industry collaborators across Australia and Asia.
Using portable long-read sequencing to diagnose Chronic Kidney Disease in regional North QLD Using portable long-read sequencing to diagnose Chronic Kidney Disease in regional North Using portable long-read sequencing to diagnose Chronic Kidney Disease (Old ID 27478)
This project addresses the early diagnosis of genetic predispositions for Chronic Kidney Disease (CKD), which poses an increasing burden on the North Queensland population and unequally affects the Indigenous Australian peoples. We will develop a mobile diagnostic pipeline that allows a rapid and cost-efficient screening for genetic CKD predispositions and circulating biomarkers using a targeted, DNA/RNA long-read sequencing approach.
Using portable long-read sequencing to diagnose Chronic Kidney Disease in regional North QLD Using portable long-read sequencing to diagnose Chronic Kidney Disease in regional North Using portable long-read sequencing to diagnose Chronic Kidney Disease (Old ID 27478)
This project addresses the early diagnosis of genetic predispositions for Chronic Kidney Disease (CKD), which poses an increasing burden on the North Queensland population and unequally affects the Indigenous Australian peoples. We will develop a mobile diagnostic pipeline that allows a rapid and cost-efficient screening for genetic CKD predispositions and circulating biomarkers using a targeted, DNA/RNA long-read sequencing approach.
Improving clinical pathways for abdominal aortic aneurysm through incorporating biomarkers (Old ID 27513)
MRF2015999
20 million people worldwide have weakening of their main abdominal artery (abdominal aortic aneurysm; AAA) and are at high risk of both major adverse cardiovascular events (MACE) and AAA related events (AAA repair and rupture-related death). Most AAAs are identified at a small size when their risk of rupture is low. Management of small AAA focuses on repeat aortic imaging every 6 months to identify when the threshold diameter (50mm in women and 55mm in men) is reached for elective surgical AAA repair. Most small AAAs continue to grow in size and eventually undergo repair. No drugs have been shown to limit AAA growth and the clinical pathway focuses on identifying those needing surgery rather than medical management. There are no established means to individualise care. Our interviews with patients and health professionals indicate that the number one deficiency in current AAA management is the lack of individualising medical management to reduce the high incidence of MACE and AAA related events. Our international AAA alliance is uniquely placed due to our resources (biobank-registry) and IP (bioinformatics, clinical, engineering software, genomics, biomarkers, machine learning and pathogenesis) to addresses this unmet clinical need.
Optimising mill mud and ash applications for soil improvement and carbon sequestration (Old ID 27540)
Negative carbon dioxide emission technologies are urgently required to offset emissions from fossil fuel burning. Weathering of alkaline metal oxides such as those in ash is a promising technology as it consumes carbon dioxide. This project aims to determine carbon sequestration when sugar mill ash, either alone or mixed with mill mud, is applied to soil in sugarcane fields. The project expects to generate knowledge about the rates of carbon sequestration and the factors controlling it, employing field experiments and geochemical modelling. The main outcome expected is a carbon sequestration methodology that is permanent and unlimited (given continued application mill by-products), unlike soil organic carbon sequestration. Adoption will facilitate trade in carbon credits through the Emissions Reduction Fund and facilitate market access through increased ability of the sugar industry to meet consumer expectations regarding environmental responsibility.
Organic matter, sodicity and soil structure
- 1998
- Oxford University Press
- Researchers:Paul Nelson
Start Date:
10 Nov 2024
Start Date:
31 Mar 2025
Title:
Bengali
Reseracher:
Khandakar Faisal Ibn Murad
(Doctor of Philosophy (Engineering and Related Technologies))
Title:
English
Reseracher:
Khandakar Faisal Ibn Murad
(Doctor of Philosophy (Engineering and Related Technologies))
Start Date:
01 Jan 2024
Start Date:
01 Jan 2014
Start Date:
01 Jan 2024
End Date:
01 Jan 2027
Start Date:
01 Jan 2003
Title:
PhD, James Cook University
End Date:
01 Jan 2010
Start Date:
01 Jan 2024
End Date:
01 Jan 2024
