金龟子绿僵菌栽培中水稻水平滚筒静态干燥和间歇旋转干燥的模拟

IF 3.9 3区 工程技术 Q3 ENERGY & FUELS Chemical Engineering and Processing - Process Intensification Pub Date : 2025-03-01 Epub Date: 2025-01-15 DOI:10.1016/j.cep.2025.110169
Daiane Bortolote Ferreira, Érika Fernanda Rezendes Tada, João Cláudio Thoméo
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引用次数: 0

摘要

对接种了绿僵菌的水稻进行干燥,传统上是通过在气候控制的房间里打开栽培塑料包装来进行的,在工艺生产率和规模方面面临着重大限制。本研究提出了一种技术改进的创新方法,利用部分填充的水平滚筒,静态和间歇旋转操作。采用纯扩散传质的二维数学模型模拟静态干燥过程。结果表明,在温度为30℃、鼓顶空间空气流速为50 L/min的条件下,需要23天才能达到每公斤干质量0.250 kg水的含水率。间歇运行方式为每24 h和每1 h旋转一次转鼓,与纯静态运行方式相比,分别降低了82.61%和97.79%。数学模型与实验数据一致,证实了它们在预测湿度剖面和进行大规模研究方面的有效性。
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Simulation of static drying and drying with intermittent rotations in a horizontal drum of rice used in the cultivation of Metarhizium anisopliae
The drying of rice inoculated with Metarhizium anisopliae, traditionally carried out in the industry by opening the cultivation plastic packages in climate-controlled rooms, faces significant limitations regarding process productivity and scaling up. This study presents an innovative approach for the technological enhancement of rice drying, utilizing a horizontal drum partially filled and operating both statically and with intermittent rotations. A two-dimensional mathematical model considering purely diffusive mass transport was employed to simulate static drying. The results indicated that 23 days are required to reach a moisture content of 0.250 kg of water per kg of dry mass, with air flowing at 50 L/min in the drum headspace and at a temperature of 30 °C. The intermittent operation mode was carried out by rotating the drum at every 24 h and every 1 h and a reduction of 82.61 % and 97.79 %, respectively, were observed compared to the purely static operation mode. The mathematical models agreed with the experimental data, confirming their effectiveness in predicting moisture profiles and enabling scale-up studies.
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来源期刊
CiteScore
7.80
自引率
9.30%
发文量
408
审稿时长
49 days
期刊介绍: Chemical Engineering and Processing: Process Intensification is intended for practicing researchers in industry and academia, working in the field of Process Engineering and related to the subject of Process Intensification.Articles published in the Journal demonstrate how novel discoveries, developments and theories in the field of Process Engineering and in particular Process Intensification may be used for analysis and design of innovative equipment and processing methods with substantially improved sustainability, efficiency and environmental performance.
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