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Analiza zračne upornosti granuliranih materialov in določitev absorpcijskih lastnosti
ID Kolarič, Juš (Author), ID Prezelj, Jurij (Mentor) More about this mentor... This link opens in a new window

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Abstract
Magistrsko delo obravnava določanje zračne upornosti poroznih in granuliranih materialov ter analizo njihovih akustičnih absorpcijskih lastnosti. V ta namen je bila razvita in izdelana merilna naprava, ki omogoča meritve po standardih ISO 9053-1:2020 (enosmerni pretok) in ISO 9053-2:2020 (izmenični pretok). S pomočjo eksperimentalnih meritev na različnih materialih (pohištvena pena, melaminska pena, kosmit, pesek) in primerjave z referenčnimi podatki iz impedančne cevi so bile analizirane veljavnosti empiričnih modelov Delany–Bazley in Delany–Bazley–Miki. Rezultati kažejo, da modeli dobro opisujejo absorpcijske lastnosti klasičnih poroznih materialov, medtem ko pri granuliranih materialih (npr. pesek) prihaja do večjih odstopanj. Naloga prav tako izpostavlja omejitve merilnih metod in pomen natančne določitve specifične upornosti kot ključnega vhodnega podatka za akustične modele.

Language:Slovenian
Keywords:zračna upornost, porozni materiali, koeficient absorpcije zvoka, akustični modeli, Delany–Bazley, Delany–Bazley–Miki, impedančna cev, granulirani materiali, merilne naprave
Work type:Master's thesis/paper
Typology:2.09 - Master's Thesis
Organization:FS - Faculty of Mechanical Engineering
Year:2025
Number of pages:XX, 84 str.
PID:20.500.12556/RUL-172727 This link opens in a new window
UDC:620.179.17:62-492-026.772(043.2)
COBISS.SI-ID:249846019 This link opens in a new window
Publication date in RUL:11.09.2025
Views:123
Downloads:16
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Secondary language

Language:English
Title:Analysis of airflow resistance in granular materials and determination of their acoustic absorption properties
Abstract:
This master’s thesis focuses on the determination of airflow resistance in porous and granular materials and the analysis of their sound absorption characteristics. For this purpose, a custom measurement device was developed and constructed, capable of performing tests according to ISO 9053-1:2020 (steady airflow method) and ISO 9053-2:2020 (oscillating airflow method). Experimental measurements were carried out on different materials (furniture foam, melamine foam, flocked fabric, and sandbox sand), and results were compared with reference data obtained from an impedance tube. The validity of empirical acoustic models, specifically Delany–Bazley and the improved Delany–Bazley–Miki model, was evaluated. The results show that these models accurately predict absorption in classical porous materials, while larger deviations occur when applied to granular media such as sand. The thesis also highlights the limitations of the measurement methods and emphasizes the importance of accurately determining specific airflow resistance as a key input parameter for acoustic modeling.

Keywords:airflow resistance, porous materials, sound absorption coefficient, acoustic models, Delany–Bazley, Delany–Bazley–Miki, impedance tube, granular materials, measurement devices

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