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首页> 外文期刊>Journal of food engineering >Modelling the gas exchange rate in perforation-mediated modified atmosphere packaging: Effect of the external air movement and tube dimensions
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Modelling the gas exchange rate in perforation-mediated modified atmosphere packaging: Effect of the external air movement and tube dimensions

机译:模拟穿孔介导的气调包装中的气体交换率:外部空气流动和管子尺寸的影响

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摘要

Perforation-mediated modified atmosphere packages control the gas exchange rate and thus the internal atmosphere composition by judicious choice of dimensions of small tubes in perforations in an otherwise hermetic container. The aims of this work were (ⅰ) to study the effect of external turbulence on the gas exchange rate through small perforations, (ⅱ) to develop a mathematical model to predict the effect of tube dimensions and hydrodynamic conditions on gas exchange coefficients, and (ⅲ) validate the model developed during the storage of shredded carrots. Different hydrodynamic conditions in the controlled temperature room due to the storage temperature settings (5, 10 and 15 ℃) and PVC tubes dimensions (diameter from 1.5 to 4.5 mm length from 2.0 to 6.0 mm) were tested. Results showed that, as expected, hydrodynamic conditions (induced turbulence) and tube diameter had a significantly positive effect on the mass transfer values, whereas tube length had a negative effect. The permeability ratio between CO_2 and O_2 was 0.83 ± 0.01 and did not show any pattern with the factors tested. The gas exchange coefficients increased with decreasing temperature, as the establishment of lower temperatures implied a frequent air movement. A mathematical model to estimate changes of gas composition over time as a function of tube dimensions and hydrodynamic conditions was developed and found to have good predictive abilities. The model was validated during the storage of shredded carrots at 5 ℃ in PM-MAP, showing a good agreement between the experimental and predicted gas exchange of O_2 and CO_2. The results obtained in this work showed that hydrodynamic conditions of the cold storage room affected the gas exchange rate in PM-MAP.
机译:穿孔介导的改性气氛包装可通过明智地选择否则要密封的容器中的穿孔中小管的尺寸来控制气体交换速率,从而控制内部气氛的组成。这项工作的目的是(ⅰ)通过小孔研究外部湍流对气体交换率的影响;(ⅱ)建立数学模型以预测管尺寸和流体力学条件对气体交换系数的影响,以及( ⅲ)验证胡萝卜切碎过程中开发的模型。根据存储温度设置(5、10和15℃)和PVC管尺寸(直径从1.5到4.5毫米,长度从2.0到6.0毫米)测试了在恒温室中不同的流体动力学条件。结果表明,正如预期的那样,流体力学条件(引起的湍流)和管径对传质值具有明显的正影响,而管长度则具有负影响。 CO_2和O_2之间的渗透率比为0.83±0.01,并且在测试的因素下没有显示任何模式。气体交换系数随温度降低而增加,因为较低温度的建立意味着空气频繁流动。建立了数学模型来估计随时间变化的气体组成随管尺寸和流体力学条件的变化,并具有良好的预测能力。该模型在胡萝卜丝在5℃的PM-MAP中储存过程中得到了验证,表明O_2和CO_2的气体交换实验与预测的气体交换之间具有良好的一致性。这项工作获得的结果表明,冷藏室的流体动力学条件会影响PM-MAP中的气体交换率。

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