Regulating oxygen transfer is critical for improving wastewater valorization based on aerobic bioprocesses. In this study, a convex sieve plate (CSP) was designed to enhance gas-liquid dispersion in an airlift loop reactor (ALR), and its geometric parameters were optimized using a computational fluid dynamics (CFD)-population balance model (PBM) approach combined with response surface methodology. The effects of perforation rate, aperture diameter, arch height, and hole angle on gas holdup, liquid velocity, bubble-size distribution, and volumetric oxygen mass transfer coefficient were systematically investigated. The optimal CSP parameters were 23% perforation rate, 0.005 m aperture diameter, 0.03 m arch height, and 50° hole angle. The CFD-PBM results revealed that the convex geometry and inclined apertures redistributed radial momentum, promoted bubble breakup, suppressed premature recoalescence, and extended the effective axial mass-transfer domain. During refined soybean oil wastewater valorization by Trichosporon fermentans, the ALR-CSP increased biomass by approximately 1 g/L and chemical oxygen demand removal by 5 percentage points compared with the conventional ALR. A microbial lipid concentration of 2.1 g/L with a 49.5% (w/w) lipid content was obtained. The established relationship between geometric parameters and gas-liquid flow redistribution may guide targeted structural regulation for enhancing aerobic wastewater valorization.
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