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Multiphase transport modeling for freeze-drying of aqueous material frozen with prebuilt porosity

机译:多相输运模型,用于预干燥孔隙率冻结的含水材料的冻干

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A multiphase transport model based on the local mass non-equilibrium assumption was formulated to verify the effect of frozen material with prebuilt porosity on freeze-drying of liquids. An error function form of adsorption-desorption equilibrium relationship was proposed to describe the hygroscopic effect of moist porous media. Simulation results showed excellent agreements with the experimentally measured drying curves for initially saturated (S0 = 1.00 or zero porosity) and unsaturated (S0 = 0.28 or 0.69 of porosity) frozen materials. The unified equilibrium relation can be expressed as a polynomial form with a fixed parameter. Almost the same total radiation heat consumptions were attained for the initially saturated and unsaturated frozen samples. The initially prebuilt porosity with larger internal surface area of the unsaturated material can indeed decrease mass transfer resistance and increase energy efficiency of freeze-drying. Volumetric sublimation/desorption was achieved numerically in consistence with experimental findings through the analyses of saturation, temperature and mass source profiles. The mathematical model also provided satisfactory prediction capabilities of the ambient temperature effects on freeze-drying.
机译:建立了一个基于局部质量非平衡假设的多相输运模型,以验证具有预制孔隙率的冷冻材料对液体冷冻干燥的影响。提出了吸附-解吸平衡关系的误差函数形式来描述潮湿多孔介质的吸湿作用。模拟结果表明,对于最初的饱和(S0 == 1.00或零孔隙率)和非饱和(S0 == 0.28或0.69孔隙率)冷冻材料,干燥曲线与实验测量的干燥曲线非常吻合。统一的平衡关系可以表示为具有固定参数的多项式形式。对于最初的饱和和不饱和冷冻样品,获得了几乎相同的总辐射热消耗。具有不饱和材料的较大内部表面积的初始预建孔隙率确实可以降低传质阻力并提高冷冻干燥的能量效率。通过对饱和度,温度和质量源曲线的分析,在数值上与实验结果相符地实现了升华/解吸。该数学模型还提供了令人满意的环境温度对冷冻干燥影响的预测能力。

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