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首页> 外文期刊>Drying technology: An International Journal >Studying the drying mechanism of microalgae Chlorella vulgaris and the optimum drying temperature to preserve quality characteristics
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Studying the drying mechanism of microalgae Chlorella vulgaris and the optimum drying temperature to preserve quality characteristics

机译:vultgaris微藻和最佳干燥温度的干燥机理,保持质量特征

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Drying harvested microalgae from an average moisture content of 80% wet basis to a safe moisture content of 10% is challenging. Removing this high amount of water from microalgal biomass is time-consuming and is not as easy as agricultural crop dehydration. The long drying time results in large drying costs. Although drying is a suitable technique for algal-based fuel production, it has not been commercialized due to its associated challenges. This study was performed to fulfill the knowledge gap in the microalgae drying mechanism and to understand the reason for long drying times. For this purpose, the thin-layer drying of microalgae Chlorella vulgaris at the temperature range of 40 to 140 degrees C was studied in a convective oven. The effect of drying air temperature on Chlorella elemental and chemical composition, surface color, and surface structure in the aforementioned temperature range was also analyzed. The results revealed that the dominant mechanism in Chlorella drying is diffusion, which is attributed to the collapse of microalgal cells structure with increased drying temperature. In fact, moisture is entrapped in the Chlorella cells and it takes a long time for them to reach the biomass surface and evaporate. The result was that both low and high drying temperatures have adverse effects on Chlorella surface color, structure, and carbohydrate and lipid composition. This suggests that microalgae should be dried at an optimum medium (60-80 degrees C) temperature.
机译:干燥收获的微藻从80%湿基础的平均水分含量为10%的安全性含量是挑战性的。从微藻生物质中除去这种大量水是耗时的,并且不如农业作物脱水那么容易。长时间的干燥时间导致较大的干燥成本。虽然干燥是一种适用于基于藻类燃料生产的合适技术,但由于其相关的挑战,它尚未商业化。进行该研究以满足微藻干燥机制中的知识间隙,并理解长干燥时间的原因。为此目的,在对流烘箱中研究了在40至140℃的温度范围内的微血糖Chlarella Vollara的薄层干燥。还分析了在上述温度范围内干燥气温对小球藻和化学成分,表面颜色和表面结构的影响。结果表明,小球藻干燥中的显性机制是扩散,其归因于微藻细胞结构随着干燥温度提高的塌陷。实际上,水分捕获在小球藻细胞中,并且它们需要很长时间才能到达生物质表面并蒸发。结果是,低干燥温度都对小球藻表面颜色,结构和碳水化合物和脂质组合物具有不利影响。这表明微藻应在最佳培养基(60-80℃)温度下干燥。

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