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Development of a novel methodology to validate optimal sterilizationconditions for maximizing the texture quality of white beans in glass jars

机译:开发一种新颖的方法以验证最佳灭菌条件,以最大程度地提高玻璃罐中白豆的质感

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Optimal thermal processes were designed for white beans in glass jars heated in a still and end-over-end rotary pilot water cascading retort. For this purpose, isothermal kinetics of thermal softening of white beans were studied in detail using a tenderometer and a texturometer. The fractional conversion model was applied in both cases to model the texture degradation. The Arrhenius equation described well the temperature dependence of the reaction rate constant. With regard to the heat transfer, heat penetration parameters (f(h) and j(h)) were experimentally determined from 100 containers under static as well as rotational (end-over-end) conditions at 4, 7, 10, and 15 rpm. Theoretical optimal temperatures, maximizing volume average quality retention, were calculated using a computer program valid for conduction heating foods. Experimental verification of the calculated results was conducted. Considering the finite surface heat transfer coefficient, theoretical and experimental optimal temperatures were of the same order of magnitude, around 130 degrees C, while for an infinite surface heat transfer coefficient the calculated optimum temperature was much lower than the experimental value. The type of reaction kinetic model, fractional conversion or first-order models, does not significantly affect optimal sterilization temperatures. Although some differences were found, the developed theoretical approach was successfully applied to convective and mixed heating mode products. The use of the correct surface heat transfer coefficient is crucial to design optimal processing conditions.
机译:为在玻璃罐中的白豆设计了最佳热处理工艺,该玻璃罐在静止和端到端旋转引水级联蒸馏瓶中加热。为此,使用柔压计和质构计详细研究了白豆热软化的等温动力学。在两种情况下均采用分数转换模型来模拟纹理退化。 Arrhenius方程很好地描述了反应速率常数的温度依赖性。关于传热,通过静态,旋转(端到端)条件在4、7、10和15条件下从100个容器中实验确定了热渗透参数(f(h)和j(h))。转速使用对传导加热食品有效的计算机程序计算了理论上的最佳温度,从而最大程度地提高了体积平均质量。对计算结果进行了实验验证。考虑到有限的表面传热系数,理论和实验的最佳温度在130摄氏度左右,处于相同的数量级,而对于无限的表面传热系数,计算出的最佳温度远低于实验值。反应动力学模型,分数转化或一阶模型的类型不会显着影响最佳灭菌温度。尽管发现了一些差异,但已开发的理论方法已成功应用于对流和混合加热模式产品。使用正确的表面传热系数对于设计最佳加工条件至关重要。

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