School of Food Science and Engineering, Jilin Univ., Changchun, 130022, PR China.
School of Food Engineering, Jilin Agriculture Science and Technology Univ., Jilin, 132101, PR China.
J Food Sci. 2019 Aug;84(8):2181-2189. doi: 10.1111/1750-3841.14708. Epub 2019 Jul 29.
This study was conducted to optimize a process of cold plasma pretreatment for hot-air drying on corn kernels. Effects of plasma pretreatment time (30, 40, 50 s), plasma pretreatment power (300, 400, 500 W) and drying temperature (37.5, 45, 52.5 °C) on drying time and drying rate during this process were investigated. Polynomial equations were established through a three-factor and three-level Box-Behnken design and used to evaluate the optimal operational conditions for the drying process. The optimal pretreatment conditions were drying temperature at 52.5 °C, plasma pretreatment time of 50 s and plasma pretreatment power of 500 W, and the corresponding drying rate and drying time were 3.6163 (g/g h ) and 1.29 hr, respectively. The AFM images showed that cold plasma pretreatment can change the topography of the treated surface with some micro-holes, which explain how the plasma pretreatment can improve the drying process. PRACTICAL APPLICATION: Cold plasma pretreatment can improve the efficiency of corn kernels drying. Furthermore, it has potential application for reducing energy consumption in drying. Cold plasma pretreatment could be potentially applied in grain drying.
本研究旨在优化玉米颗粒的冷等离子体预处理与热空气干燥相结合的工艺。考察了等离子体预处理时间(30、40、50 s)、等离子体预处理功率(300、400、500 W)和干燥温度(37.5、45、52.5°C)对干燥过程中干燥时间和干燥速率的影响。通过三因素三水平的 Box-Behnken 设计建立了多项式方程,并用于评估干燥过程的最佳操作条件。最佳预处理条件为干燥温度 52.5°C、等离子体预处理时间 50 s 和等离子体预处理功率 500 W,对应的干燥速率和干燥时间分别为 3.6163(g/g h)和 1.29 小时。AFM 图像表明,冷等离子体预处理可以改变处理表面的形貌,形成一些微孔,这解释了等离子体预处理如何改善干燥过程。实际应用:冷等离子体预处理可以提高玉米颗粒的干燥效率。此外,它还有助于降低干燥过程中的能源消耗。冷等离子体预处理可能在谷物干燥中具有潜在的应用。