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A dynamic model of crosslinked corn starch granules swelling during thermal processing

机译:热处理过程中交联玉米淀粉颗粒膨胀的动力学模型

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The swelling of native starches and modified starches at moderate range of temperatures has a large effect on the rheological properties of starch suspensions and thus to their processing characteristics because the heating of these systems often involves non-isothermal regimes. The main objective of this work was to develop a model that is able to predict the swelling of modified starch granules under non-isothermal conditions using data collected from heating at isothermal conditions. Swelling of crosslinked corn starch granules suspended in distilled water was measured at several uniform temperatures between 50 and 70℃. The results were fitted with the Weibull model log_(10) Y = -b (T)t~(n(T)), where Y is defined as (D_e - D_t)/(D_e - D_0), and D_t, D_0 and D_e are the granules' momentary, initial and equilibrium mean diameters, respectively, t is the time, and b(T) and n(T) are the two temperature dependent parameters of the model. Mathematical expressions were found to describe the temperature dependence of b(T) and n(T) and were used to construct a dynamic rate model able to predict the changing mean size of starch granules during non-isothermal heating. Comparisons of the predicted changes in granule size with those measured under a non-isothermal heating test were in good agreement. This demonstrated that isothermal swelling data could be used to predict swelling patterns under non-isothermal conditions. The findings of this research will have a broad impact on industrial applications because the model is able to predict starch granule swelling for heating conditions that are commonly encountered in industrial starch processes.
机译:天然淀粉和改性淀粉在适度的温度范围内溶胀会对淀粉悬浮液的流变性质产生很大影响,从而对其加工特性产生很大影响,因为这些系统的加热通常涉及非等温状态。这项工作的主要目的是开发一个模型,该模型能够使用从等温条件下加热收集的数据来预测非等温条件下改性淀粉颗粒的溶胀。悬浮在蒸馏水中的交联玉米淀粉颗粒的溶胀是在50到70℃之间的几个均匀温度下测量的。结果符合Weibull模型log_(10)Y = -b(T)t〜(n(T)),其中Y定义为(D_e-D_t)/(D_e-D_0),D_t,D_0和D_e分别是颗粒的瞬时,初始和平衡平均直径,t是时间,b(T)和n(T)是模型的两个温度相关参数。发现了数学表达式来描述b(T)和n(T)的温度依赖性,并用于构建动态速率模型,该模型能够预测非等温加热过程中淀粉颗粒平均尺寸的变化。预测的颗粒大小变化与在非等温加热试验下测得的变化比较吻合。这表明等温溶胀数据可用于预测非等温条件下的溶胀模式。这项研究的发现将对工业应用产生广泛的影响,因为该模型能够预测在工业淀粉工艺中通常遇到的加热条件下淀粉颗粒的溶胀。

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