How to Balance the Yield and Protein Content of Air-classified Pulse Flour: the Influence of the Restriction Valve

Q3 Chemical Engineering Chemical engineering transactions Pub Date : 2021-07-01 DOI:10.3303/CET2187041
D. D. Angelis, Aleksei Kaleda, A. Pasqualone, Helen Vaikma, Giacomo Squeo, F. Caponio, C. Summo
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引用次数: 1

Abstract

Dry fractionation by air classification is a sustainable process applied to cereals and pulses to produce protein and starch concentrates. The process involves using a series of cyclones equipped with either a classifier wheel or a restriction valve, which allow to separate a coarse starch-rich fraction and a fine protein-rich fraction. In this study, an apparatus with an air restriction valve was used, with the aim of studying the influence of two set-ups of the air classification system, on the protein content, yield, protein separation efficiency, and physicochemical and functional properties of the resulting fractions. The tighter restriction valve set-up (lower air flow and air speed compared to a more opened set-up) caused an increase in the protein content in the fine protein-rich fraction from 53.9% to 61.9%, but the drawback was a 47% yield decrease and a decrease in the protein separation efficiency. The results highlighted that the dry fractionation process should be carefully calibrated in order to balance the yield and the chemical composition (e.g. the protein content) of the fractions. In particular, the more opened set-up was better capable of balancing these two parameters, indicating that a high air flow is necessary for pulse flour. Moreover, the set-up of the restriction valve did not significantly influence effect on the physicochemical and functional properties of the fraction, pointing out that even a protein-rich fraction with a 50% protein content could be successfully used as a food ingredient.
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如何平衡空气分级脉冲面粉的产量和蛋白质含量:限制阀的影响
空气分级干燥分馏是一种适用于谷物和豆类生产蛋白质和淀粉浓缩物的可持续过程。这一过程包括使用一系列配有分类轮或限制阀的旋风,这些旋风可以分离富含淀粉的粗粒和富含蛋白质的细粒。在本研究中,使用带有空气限制阀的装置,旨在研究两种空气分级系统设置对所得馏分的蛋白质含量、得率、蛋白质分离效率以及理化和功能特性的影响。更紧的限制阀设置(与更打开的设置相比,空气流量和空气速度更低)使富含蛋白质的细组分中的蛋白质含量从53.9%增加到61.9%,但缺点是产率降低47%,蛋白质分离效率降低。结果强调,干燥分馏过程应仔细校准,以平衡产量和化学成分(如蛋白质含量)的分数。特别是,更开放的设置能够更好地平衡这两个参数,这表明高气流对脉冲面粉是必要的。此外,限制阀的设置对组分的物理化学和功能特性没有显著影响,这表明即使是蛋白质含量为50%的富含蛋白质的组分也可以成功地用作食品配料。
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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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