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预制多孔介质强化传热传质机制在农产品和食品真空冷冻干燥中的研究进展与展望

Recent Advances and Future Perspectives on Heat and Mass Transfer Mechanisms Enhanced by Preformed Porous Media in Vacuum Freeze-Drying of Agricultural and Food Products.

作者信息

Hu Xinkang, Zhang Bo, Du Xintong, Zhang Huanhuan, Zhu Tianwen, Zhang Shuang, Yang Xinyi, Zhang Zhenpeng, Yang Tao, Wang Xu, Wu Chundu

机构信息

School of Agricultural Engineering, Jiangsu University, Zhenjiang 212013, China.

Key Laboratory for Theory and Technology of Intelligent Agricultural Machinery and Equipment, Jiangsu University, Zhenjiang 212013, China.

出版信息

Foods. 2025 Aug 25;14(17):2966. doi: 10.3390/foods14172966.

Abstract

Preformed porous media (PPM) technology has emerged as a transformative approach to enhance heat and mass transfer in vacuum freeze-drying (VFD) of agricultural and food products. This review systematically analyzes recent advances in PPM research, with particular focus on spray freeze-drying (SFD) as the dominant technique for precision pore architecture control. Empirical studies confirm PPM's efficacy: drying time reductions of 20-50% versus conventional VFD while improving product quality (e.g., 15% higher ginsenoside retention in ginseng, 90% enzyme activity preservation). Key innovations include gradient porous structures and multi-technology coupling strategies that fundamentally alter transfer mechanisms through: resistance mitigation via interconnected macropores (50-500 μm, 40-90% porosity), pseudo-convection effects enabling 30% faster vapor removal, and radiation enhancement boosting absorption by 40-60% and penetration depth 2-3 times. While inherent VFD limitations (e.g., low thermal conductivity) persist, we identify PPM-specific bottlenecks: precision regulation of pore structures (<5% size deviation), scalable fabrication of gradient architectures, synergy mechanisms in multi-field coupling (e.g., microwave-PPM interactions). The most promising advancements include 3D-printed gradient pores for customized transfer paths, intelligent monitoring-feedback systems, and multiscale modeling bridging pore-scale physics to macroscale kinetics. This review provides both a critical assessment of current progress and a forward-looking perspective to guide future research and industrial adoption of PPM-enhanced VFD.

摘要

预制多孔介质(PPM)技术已成为一种变革性方法,可增强农产品和食品真空冷冻干燥(VFD)中的传热传质。本综述系统分析了PPM研究的最新进展,特别关注喷雾冷冻干燥(SFD)作为精确控制孔隙结构的主导技术。实证研究证实了PPM的有效性:与传统VFD相比,干燥时间减少了20%-50%,同时提高了产品质量(例如,人参中人参皂苷保留率提高15%,酶活性保留率达90%)。关键创新包括梯度多孔结构和多技术耦合策略,这些策略通过以下方式从根本上改变了传递机制:通过相互连通的大孔(50-500μm,孔隙率40%-90%)减轻阻力,伪对流效应使蒸汽去除速度加快30%,辐射增强使吸收率提高40%-60%,穿透深度增加2-3倍。虽然VFD固有的局限性(如低导热率)仍然存在,但我们确定了PPM特有的瓶颈:孔隙结构的精确调节(尺寸偏差<5%)、梯度结构的可扩展制造、多场耦合中的协同机制(如微波与PPM的相互作用)。最有前景的进展包括用于定制传递路径的3D打印梯度孔、智能监测反馈系统以及将孔隙尺度物理与宏观尺度动力学联系起来的多尺度建模。本综述既对当前进展进行了批判性评估,也提供了前瞻性视角,以指导未来PPM增强VFD的研究和工业应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f028/12428636/615d993bfd1b/foods-14-02966-g001.jpg

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