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首页> 外文期刊>Drying technology: An International Journal >An Effective Moisture Diffusivity Model Deduced from Experiment and Numerical Solution of Mass Transfer Equations for a Shrinkable Drying Slab of Microalgae Spirulina
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An Effective Moisture Diffusivity Model Deduced from Experiment and Numerical Solution of Mass Transfer Equations for a Shrinkable Drying Slab of Microalgae Spirulina

机译:由微藻螺旋藻干缩板的传质方程实验和数值解推导出的有效水分扩散模型

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From experimental data, Spirulina effective moisture diffusivity was analytically estimated by considering two diffusion regions and the product shrinkage. Then, the moisture diffusivity was deduced from the numerical solutions of mass transfer equations by minimizing the difference between experimental and simulated drying curves and by taking into account the slab thickness variation. The range of moisture diffusivity used for simulations was estimated from minimal and maximal values of experimental effective diffusivities and calculation started with the mean value of experimental effective diffusivities. Identified effective diffusivities ranged from 1.79 x 10(-10) to 6.73 x 10(-10) m(2)/s. These diffusivities increased strongly with drying temperature and decreased slightly with moisture content. A suitable model correlating effective diffusivity, temperature, and moisture content was then established. Effective diffusivities given by this model were very close to experimental ones with a relative difference ranging from 0.5 to 24%.
机译:从实验数据来看,螺旋藻的有效水分扩散率是通过考虑两个扩散区域和产品收缩率来分析估计的。然后,通过最小化实验干燥曲线和模拟干燥曲线之间的差异以及考虑板坯厚度变化,从传质方程的数值解中得出水分扩散率。用于模拟的水分扩散率范围是根据实验有效扩散率的最小值和最大值来估算的,计算是从实验有效扩散率的平均值开始的。确定的有效扩散率范围为1.79 x 10(-10)至6.73 x 10(-10)m(2)/ s。这些扩散度随干燥温度而强烈增加,而随含水量略有降低。然后建立了一个与有效扩散率,温度和水分含量相关的合适模型。该模型给出的有效扩散率非常接近实验扩散率,相对差异为0.5%至24%。

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