Evaluation of multiscale mechanisms of ultrasound-assisted extraction from porous plant materials : Experiment and modeling on this intensified process

Copyright © 2024. Published by Elsevier Ltd..

Ultrasound-assisted extraction (UAE) is an intensified mass transfer process, which can utilize natural resources effectively, but still lacks detailed mechanisms for multiscale effects. This study investigates the mass transfer mechanisms of UAE combined with material's pore structure at multiscale. Porous material was prepared by roasting green coffee beans (GCB) at 120 °C (RCB120) and 180 °C (RCB180), and their UAE efficiency for phytochemicals (caffeine, trigonelline, chlorogenic acid, caffeic acid) were evaluated by experiment and modeling. Besides, the physicochemical properties, mass transfer kinetics, and multi-physical field simulation were studied. Results indicated that positive synergy effects on extraction existed between ultrasound and material's pore structure. Higher mass transfer coefficients of UAE (GCB 0.16 min-1, RCB120 0.38 min-1, RCB180 0.46 min-1) was achieved with higher total porosity (4.47 %, 9.17 %, 13.52 %) and connected porosity (0 %, 3.79 %, 5.98 %). Moreover, simulation results revealed that micro acoustic streaming and pressure difference around particles were the main driving force for enhancing mass transfer, and the velocity (0.29-0.36 m/s) increased with power density (0.64-1.01 W/mL). The microscale model proved that increased yield from UAE-RCB was attributed to internal convection diffusion within particles. This study exploited a novel benefit of ultrasound on extraction and inspired its future application in non-thermal food processing.

Medienart:

E-Artikel

Erscheinungsjahr:

2024

Erschienen:

2024

Enthalten in:

Zur Gesamtaufnahme - volume:182

Enthalten in:

Food research international (Ottawa, Ont.) - 182(2024) vom: 22. März, Seite 114034

Sprache:

Englisch

Beteiligte Personen:

Li, Jiaheng [VerfasserIn]
Wang, Wenjun [VerfasserIn]
Xu, Weidong [VerfasserIn]
Deng, Yong [VerfasserIn]
Lv, Ruiling [VerfasserIn]
Zhou, Jianwei [VerfasserIn]
Liu, Donghong [VerfasserIn]

Links:

Volltext

Themen:

318ADP12RI
Chlorogenic Acid
Hydrodynamic effect
Journal Article
Mass transfer
Multiscale mechanism
Porous material
Ultrasound-assisted extraction

Anmerkungen:

Date Completed 25.03.2024

Date Revised 25.03.2024

published: Print-Electronic

Citation Status MEDLINE

doi:

10.1016/j.foodres.2024.114034

funding:

Förderinstitution / Projekttitel:

PPN (Katalog-ID):

NLM370087666