越南野生多花蜂蜜脱水新概念的评价

Q3 Chemical Engineering Chemical engineering transactions Pub Date : 2021-07-01 DOI:10.3303/CET2187055
T. T. Dang, D. Pham, N. Phạm, Ngoc Ha Vu, Thi To Quynh Cung, Minh Tan Nguyen
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引用次数: 0

摘要

在热带国家,蜂蜜脱水是蜂蜜生产过程中必不可少的步骤,以防止因发酵而导致质量迅速恶化。本研究在一个基于JEVA概念的中试脱水装置中,对蜂蜜在常压、36℃、42℃和52℃的温度下进行脱水,将蜂蜜的含水率降低到17%以下。在36°C - 42°C的温度范围内,由于在处理回路中集成了热泵,蜂蜜脱水同时实现了高脱水率和低能耗。在36℃~ 42℃的温度范围内,蜂蜜的颜色降解最小,淀粉酶数量下降低,TPC和TFC的保留率高(87.0% ~ 88.2%和74.8% ~ 80.6%)。此外,在36°C和42°C脱水的蜂蜜样品与生蜂蜜相比,对MRSE、鼠伤寒沙门氏菌、普通变形杆菌和铜绿假单胞菌的抗菌活性保持不变。在类似的操作条件下,所提出的脱水装置在脱水率、能耗和对物理化学特性的影响方面优于文献中报道的其他蜂蜜脱水装置。
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Evaluation of the Novel Dehydration Concept for Wild Multi Floral Honey in Vietnam
Dehydration of honey is an essential step during honey production in tropical countries to prevent rapid deterioration in quality because of the fermentation. In this study, honey dehydration at atmospheric pressure and temperatures of 36°C, 42°C, and 52°C in a pilot dehydration plant based on JEVA concept was carried out to reduce the moisture content of honey to below 17%. Honey dehydration at a temperature range of 36°C - 42°C achieved a high dehydration rate and low energy simultaneously due to integrating a heat pump into the processing loop. The temperature range of 36°C - 42°C was found out to be the most favourable processing temperature for honey dehydration since at these operational conditions, minimal colour degradation of honey, a low decline in diastase number and high retention of TPC and TFC (87.0% - 88.2% and 74.8% - 80.6%) were achieved. Moreover, honey samples dehydrated at 36°C and 42°C preserved antibacterial activity for strains of MRSE, Salmonella Typhimurium, Proteus Vulgaris, and Pseudomonas aeruginosa compared to raw honey. Under similar operational conditions, the proposed dehydration plant has been found to be better than that of other honey dehydrators reported in the literature in terms of dehydration rate, energy consumption, and lighter impacts on physiochemical characteristics.
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来源期刊
Chemical engineering transactions
Chemical engineering transactions Chemical Engineering-Chemical Engineering (all)
CiteScore
1.40
自引率
0.00%
发文量
0
审稿时长
6 weeks
期刊介绍: Chemical Engineering Transactions (CET) aims to be a leading international journal for publication of original research and review articles in chemical, process, and environmental engineering. CET begin in 2002 as a vehicle for publication of high-quality papers in chemical engineering, connected with leading international conferences. In 2014, CET opened a new era as an internationally-recognised journal. Articles containing original research results, covering any aspect from molecular phenomena through to industrial case studies and design, with a strong influence of chemical engineering methodologies and ethos are particularly welcome. We encourage state-of-the-art contributions relating to the future of industrial processing, sustainable design, as well as transdisciplinary research that goes beyond the conventional bounds of chemical engineering. Short reviews on hot topics, emerging technologies, and other areas of high interest should highlight unsolved challenges and provide clear directions for future research. The journal publishes periodically with approximately 6 volumes per year. Core topic areas: -Batch processing- Biotechnology- Circular economy and integration- Environmental engineering- Fluid flow and fluid mechanics- Green materials and processing- Heat and mass transfer- Innovation engineering- Life cycle analysis and optimisation- Modelling and simulation- Operations and supply chain management- Particle technology- Process dynamics, flexibility, and control- Process integration and design- Process intensification and optimisation- Process safety- Product development- Reaction engineering- Renewable energy- Separation processes- Smart industry, city, and agriculture- Sustainability- Systems engineering- Thermodynamic- Waste minimisation, processing and management- Water and wastewater engineering
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