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Simulation of diurnal variability in vertical density structure using a coupled model.

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This study couples ocean models to simulate diurnal density changes in the Bay of Bengal and Andaman Sea. Results show accurate predictions, vital for naval operations.

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Area of Science:

  • Oceanography
  • Physical Oceanography
  • Ocean Acoustic Propagation

Background:

  • Diurnal variations in ocean physical properties are significant in the surface mixed layer and pycnocline.
  • Accurate ocean density profiles are crucial for understanding acoustic fields and naval operations.

Purpose of the Study:

  • To couple the Price-Weller-Pinkel model and an internal wave model to simulate diurnal density variability.
  • To validate the coupled model's simulations against in-situ observations in the Bay of Bengal and Andaman Sea.
  • To assess the model's capability for simulating spatial variability and initializing simulations with 3D model outputs.

Main Methods:

  • Coupling the Price-Weller-Pinkel model (surface mixed layer modification) with an internal wave model (Garrett-Munk spectra).
  • Simulating hourly density variations using the coupled model at RAMA buoy and BD12.
  • Validating model simulations with in-situ observational data from December 2013 to November 2014.
  • Testing an integrated model approach using 3D model outputs for initialization.

Main Results:

  • The coupled model successfully simulated diurnal variations in temperature, salinity, and density profiles.
  • Simulations showed promising accuracy when validated against observational data.
  • The model demonstrated the ability to simulate spatial variability in diurnal density changes.
  • The integrated model approach proved effective for initializing simulations.

Conclusions:

  • The coupled ocean model accurately captures diurnal density variability in the study regions.
  • The model's ability to simulate spatial variability enhances its utility.
  • Validated simulations provide a foundation for predicting acoustic fields and propagation losses for naval applications.