Drying kinetics and thermodynamic properties of pigeon pea beans

Q4 Agricultural and Biological Sciences Cientifica Pub Date : 2019-06-04 DOI:10.15361/1984-5529.2019V47N2P164-174
Rayonny Batista Maia, S. G. Santos, Juliano Silva Queiroz, R. Rodovalho, Daniel Pereira da Silva, V. N. D. M. Morgado
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引用次数: 3

Abstract

Pigeon pea is a common plant cultivated in family farming. It is often used as a source of protein for animal breeding. The knowledge of the drying kinetics and the thermodynamic properties of pigeon pea beans ( Cajanus cajan ) is relevant for simulation of drying, which aims to maintain the quality of beans. The objective of this study is to estimate the drying curves of pigeon pea beans using mathematical models. This study also aims to deter­mine their thermodynamic properties. Forced-drying greenhouses were used for the drying process. The initial water content of pigeon pea beans was 1.00 dry basis (db). Beans were weighed periodically until reaching a near equilibrium water content. Ten mathematical models were fitted to experimental data to characterize drying pro­cesses using the following statistical criteria: coefficient of determination (R²), mean relative error (P), mean standard error (SE), chi-square (χ²), and residue distribution. From the selected model and the Arrhenius equa­tion, the effective diffusion coefficient and the activation energy used for the calculation of the enthalpy, entropy and Gibbs free energy were obtained. The Midilli was the best model to represent the kinetics of drying of pigeon pea beans. The increase in drying air temperature increases Gibs free energy and diffusivity, decreases enthalpy, and maintains the entropy negative.
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豌豆豆的干燥动力学和热力学性质
豌豆是家庭养殖中常见的植物。它经常被用作动物繁殖的蛋白质来源。鸽子豌豆豆(Cajanus cajan)的干燥动力学和热力学性质的知识与旨在保持豆质量的干燥模拟有关。本研究的目的是利用数学模型估计鸽子豌豆豆的干燥曲线。本研究还旨在确定它们的热力学性质。强制干燥温室用于干燥过程。鸽子豌豆豆的初始含水量为1.00干基(db)。定期称重豆子,直到达到接近平衡的含水量。使用以下统计标准将10个数学模型拟合到实验数据中,以表征干燥过程:确定系数(R²)、平均相对误差(P)、平均标准误差(SE)、卡方(χ²)和残差分布。根据所选模型和阿伦尼斯方程,获得了用于计算焓、熵和吉布斯自由能的有效扩散系数和活化能。Midilli模型是表征豌豆豆干燥动力学的最佳模型。干燥空气温度的升高增加了吉布斯自由能和扩散率,降低了焓,并保持了负熵。
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来源期刊
Cientifica
Cientifica Agricultural and Biological Sciences-Agricultural and Biological Sciences (all)
CiteScore
0.50
自引率
0.00%
发文量
4
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