Processing your ADCP data using structure function techniques

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Revision as of 18:51, 22 November 2021 by CynthiaBluteau (talk | contribs) (Added the adcp sketch)

To calculate the dissipation rate at a specific range bin and a specific time ensemble:

  1. Extract or compute the along-beam bin center separation [r0] based on the instrument geometry
  2. Calculate the along-beam velocity fluctuation time-series in each bin n, where [Failed to parse (syntax error): {\displaystyle v’(n, t)} ] from the along-beam velocity data that has met the QC criteria (i.e. the data in Level 2 of the netcdf file)
  3. Select the maximum distance (rmax) over which to compute the structure function based on conditions of the flow (e.g., expected max overturn). The corresponding number of bins is [nrmax=rmax/r0]
  4. Calculate the structure function Dll for all possible bin separations δ using either a bin-centred difference scheme or a forward-difference scheme. Consider QA2 requirements when choosing differencing scheme.
  5. Perform a regression of Dll(n,δ) against (δr0)2/3 for the appropriate range of bins and δr0 separation distances. Be aware of special considerations for forward-difference, center-difference schemes.
  6. Use the coefficient a1 to calculate ε as

    ε=(a1C2)2/3

    where C2 is an empirical constant, typically taken as 2.0 or 2.1.


Schematic showing along-beam distance r and radial velocities.


Schematic showing the ADCP beam angles and the variables used to define the structure function Dll.


Next step: Apply quality-control on dissipation rates (QA2)

Previous step: Apply quality-control on velocity time series data (QA1)

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