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dc.rights.licenseCC-BY-NC-ND
dc.contributor.advisorMaas, Leo
dc.contributor.authorDomselaar, Jochem van
dc.date.accessioned2025-08-15T00:02:06Z
dc.date.available2025-08-15T00:02:06Z
dc.date.issued2025
dc.identifier.urihttps://studenttheses.uu.nl/handle/20.500.12932/49731
dc.description.abstractUnderstanding how ocean circulation transitions between stable and oscillatory states under ther- mal, rotational, and wind forcing remains fundamental to climate modelling. This study integrates analytical modelling with numerical simulations to identify stability thresholds where steady cir- culation gives way to self-sustained oscillations. We extend Maas’ low-order moment framework to derive explicit stability criteria in non-dimensional parameter space: buoyancy forcing strength (Ra′), rotation rate (f ′), and diffusion (μ). These predictions are tested in the Miami Isopycnic Coordinate Ocean Model (MICOM) through systematic parameter sweeps. The numerical exper- iments confirm the analytical predictions: increases in Ra′ or f ′ trigger limit cycle oscillations; μ modulates stability; wind torque lowers oscillation thresholds and induces coexistence of steady and oscillatory attractors; and bathymetry shifts but does not eliminate the propensity for oscil- lations. Spectral analysis reveals integer harmonics generated through bilinear coupling between fundamental modes and their higher harmonics. Our results demonstrate that low-order moment models successfully capture the essential stability behaviour of a comprehensive ocean model across different forcings and parameter regimes, including vertical structure response, Hopf bifurcation thresholds, and wind-driven multi-stability.
dc.description.sponsorshipUtrecht University
dc.language.isoEN
dc.subjectThis study combines theory and simulations to find when ocean circulation shifts from steady to oscillatory. Using a low-order model and MICOM, it shows that stronger buoyancy or rotation causes oscillations, diffusion stabilizes, wind lowers thresholds, and bathymetry alters but doesn't prevent them. Spectral analysis shows harmonic coupling.
dc.titleHow Well Do Simplified Models Capture Complex Ocean Dynamics? A Numerical-Analytical Comparison on the Theory of a Stratified Rotating Fluid
dc.type.contentMaster Thesis
dc.rights.accessrightsOpen Access
dc.subject.keywordsocean circulation; stability; oscillations; low-order model; MICOM; Hopf bifurcation; wind forcing; rotation; buoyancy forcing; diffusion; spectral analysis; multi-stability
dc.subject.courseuuClimate Physics
dc.thesis.id51651


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