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Faits marquants sur l’énergie marémotrice » technologies

Imaging Sonar Data Automation Feasibility Study

May 2021 – June 2022

Multibeam imaging sonars can be used to monitor fish and marine mammal presence and behaviours in the near-field of tidal turbine installations, including evaluating avoidance, evasion, and potential blade strikes.

Sujets en rapport avec l’hydrogène » stratégie

Scoping an Atlantic Hydrogen Strategy

February – March 2022

Hydrogen is an energy vector that has the potential to play an important role in Atlantic Canada’s future energy system. While this role was recognized in two studies, Atlantic Canada does not have a hydrogen strategy.

Faits marquants sur l’énergie marémotrice » technologies

Acceleration/Particle Velocity (PA/PV) Measurement System Evaluation in a Tidal Environment

February 2017 – December 2018

The objective of this project was designing and running a field experiment to test the performance of the Particle Acceleration/Particle Velocity (PA/PV) vector sensor.

Faits marquants sur l’énergie marémotrice » technologies

Analysis of Tidal Turbine Mooring Systems in Turbulent Flows Applying the (Wind Industry) FAST Simulation Tool and DSA ProteusDS Software

March – September 2018

For floating tidal turbine platforms, the turbine forces and resulting platform motions have a direct impact on the lifetime of its moorings and cables. This means the tidal sector must predict accurate tidal turbine loading on floating platforms to determine mooring life and cable longevity.

Faits marquants sur l’énergie marémotrice » technologies

Assessing Corrosion, Wear, Fatigue and VIV on Moorings and Cabling to Reduce Risk in Marine Operations

October 2017 – August 2018

The cost of cabling and moorings over the entire life of a tidal energy project is a significant proportion of total project expenditures and the potential failure of these components remains a major risk for the emerging tidal energy sector.

Faits marquants sur l’énergie marémotrice » technologies

In Situ Turbulence Replication and Measurement (InSTREAM)

October 2015 – January 2018

The In Situ Turbulence Replication and Measurement (InSTREAM) project was conceived to address some fundamental questions about the turbulence physics in tidal energy sites and laboratory tanks used to simulate these sites.