Numerical Simulation and Experimental Validation of a Vibrating Screen for the Sieving of Chamomile (matricaria Chamomilla L.)

Q3 Chemical Engineering
A. Tamborrino, C. Perone, R. Romaniello, B. Bianchi, A. Berardi, A. Leone
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引用次数: 1

Abstract

Chamomile (Matricaria chamomilla L.) dried flowers contain a large number of interesting biologically active compounds which make it an important medicinal herb. In order to preserve the commodity quality and the biologically active compounds of chamomile, the correct management of the chamomile processing process coming from the field is fundamental. An important phase of the chamomile process is the final sieving of the dried chamomile in which the intact flower heads are separated from the other parts of the flower. In this study a simulation of a vibrating screen machine was carried out in order to find the best kinematical parameters that allow to improve efficiency during the sieving process of chamomile. The study of the movement kinematics provides the acceleration of the vibrating screen depending on its geometric and mechanical characteristics. The frequencies and amplitudes of the vibrations transmitted to the screen were estimated in the main directions, and the optimal parameters were evaluated to guarantee high sieving efficiency and reliable productivity of the machine. To validate the modelling experimental tests were performed by installing three tri-axial accelerometers on the mobile frame of the machine, in order to obtain an accurate measurement on the three reference axes. The comparison of the measured values with the simulated ones demonstrated the suitability of the numerical simulation and its ability to estimate the process performance. Finally, experimental tests demonstrated that by using the optimal sieving frequency a significant reduction of waste was possible, with a consequently increase in the fraction of dried whole and intact flower.
洋甘菊振动筛筛分的数值模拟及实验验证
洋甘菊(Matricaria chamomilla L.)干花含有大量有趣的生物活性化合物,使其成为重要的草药。为了保证洋甘菊的商品质量和生物活性成分,正确管理洋甘菊产地加工过程至关重要。洋甘菊加工的一个重要阶段是干燥洋甘菊的最后筛分,其中完整的花头与花的其他部分分离。为了找到提高洋甘菊筛分效率的最佳运动参数,对振动筛机进行了仿真研究。运动运动学的研究提供了根据其几何和机械特性的振动筛加速度。在主要方向上估计了传递到筛的振动频率和振幅,并评估了最优参数,以保证筛分效率高,生产率可靠。为了验证模型的正确性,在机器的移动机架上安装了三个三轴加速度计,以获得三个参考轴上的精确测量值。实测值与模拟值的比较证明了数值模拟的适用性及其对工艺性能的估计能力。最后,实验测试表明,通过使用最佳筛分频率,可以显著减少浪费,从而增加干燥整花和完整花的比例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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