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(CFD) data on capillary jet breakup in a vibration granulator (prilling), supporting the optimization of melt granulation processes.</p>\n<b>The dataset includes:</b>\n<ul>\n<li><b>Factorial design:</b> 2<sup>2</sup> full factorial experiment on the influence of actuator plate position (5–30 mm) and liquid column height (120–450 mm) on the actuator operating frequency.</li>\n<li><b>Mathematical model (Maple):</b> input parameters, dimensionless numbers (Oh, We, Re, Ca), linear stability results and droplet diameters by five theoretical approaches for a urea melt jet (D<sub>j</sub> = 1.2 mm, u = 4.35 m/s, T ≈ 133 °C), with sensitivity analysis.</li>\n<li><b>Experiment and CFD (water):</b> high-speed images and CFD results for single-point and combined (dual-frequency, f<sub>2</sub>/f<sub>1</sub> = 2.05) vibration excitation, including Sauter mean diameter (SMD) and coefficient of variation (COV).</li>\n</ul>\n<p>Combined vibration excitation reduced the COV of droplet diameter from 18.6–20.6% to 6.3–8.4%, approaching monodisperse droplet formation.</p>\n<p><b>Setup:</b> vibration granulator with a disc actuator (diameter 100 mm, thickness 1 mm), vibration amplitude 100 µm, excitation frequencies 220–780 Hz.</p>"},"dsDescriptionDate":{"typeName":"dsDescriptionDate","multiple":false,"typeClass":"primitive","value":"2026-09-22"}}]},{"typeName":"subject","multiple":true,"typeClass":"controlledVocabulary","value":["Engineering"]},{"typeName":"keyword","multiple":true,"typeClass":"compound","value":[{"keywordValue":{"typeName":"keywordValue","multiple":false,"typeClass":"primitive","value":"Prilling"},"keywordVocabulary":{"typeName":"keywordVocabulary","multiple":false,"typeClass":"primitive","value":"Wikidata"},"keywordVocabularyURI":{"typeName":"keywordVocabularyURI","multiple":false,"typeClass":"primitive","value":"https://www.wikidata.org/wiki/Q2741865"}},{"keywordValue":{"typeName":"keywordValue","multiple":false,"typeClass":"primitive","value":"Fluid thread 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(2026). Theoretical Analysis of Molten Jet Breakup in a Rotating Granulation System Under Unforced Conditions. Processes, 14(7), 1077."},"publicationIDType":{"typeName":"publicationIDType","multiple":false,"typeClass":"controlledVocabulary","value":"doi"},"publicationIDNumber":{"typeName":"publicationIDNumber","multiple":false,"typeClass":"primitive","value":"10.3390/pr14071077"},"publicationURL":{"typeName":"publicationURL","multiple":false,"typeClass":"primitive","value":"https://doi.org/10.3390/pr14071077"}}]},{"typeName":"notesText","multiple":false,"typeClass":"primitive","value":"The dataset consists of 8 CSV tables (comma-separated, UTF-8, decimal point), 9 PNG images and README.txt with a detailed description of each file, abbreviations and methodology.\n\nFile naming convention:\nTable01–Table08 – numerical data (factorial experiment, model calculations, CFD results, granule fractions).\nFig01–Fig03 – plots from the mathematical model (urea melt).\nFig04, Fig06 – high-speed images of jet breakup (water, grid step 4 mm).\nFig05, Fig07–Fig09 – CFD results for different vibration regimes 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