食品科学 ›› 2026, Vol. 47 ›› Issue (15): 240-253.doi: 10.7506/spkx1002-6630-20260205-048

• 食品工程 • 上一篇    下一篇

基于真空辉光放电冷等离子体预处理的胡萝卜片干燥品质变化规律

林凯琳,张凯,苑晴晴,王瑜,李立郎,何洲,史健勇,石吉勇,周晨光,邹小波   

  1. (1.江苏大学食品科学与工程学院,江苏?镇江 212013;2.贵州医科大学 中药功效成分发掘与利用全国重点实验室,贵州?贵阳 550014;3.贵州省天然产物研究中心,贵州?贵阳 550014;4.寒武纪技术(苏州)有限公司,江苏?苏州 215123)
  • 出版日期:2026-08-15 发布日期:2026-08-24
  • 基金资助:
    国家自然科学基金面上项目(32572638);“十四五”国家重点研发计划项目(2024YFF1106100)

Effect of Vacuum Glow Discharge Cold Plasma Pretreatment on Drying Characteristics of Carrot Slices

LIN Kailin, ZHANG Kai, YUAN Qingqing, WANG Yu, LI Lilang, HE Zhou, SHI Jianyong, SHI Jiyong, ZHOU Chenguang, ZOU Xiaobo   

  1. (1. School of Food Science and Engineering, Jiangsu University, Zhenjiang 212013, China;2. State Key Laboratory of Discovery and Utilization of Functional Components in Traditional Chinese Medicine, Guizhou Medical University, Guiyang 550014, China; 3. Natural Products Research Center of Guizhou Province, Guiyang 550014, China; 4. Cambrian Technology (Suzhou) Co., Ltd., Suzhou 215123, China)
  • Online:2026-08-15 Published:2026-08-24

摘要: 为提高胡萝卜热风干燥效率并改善其干制品品质,本研究以胡萝卜片为对象,系统探究不同功率与时间组合的交流真空辉光放电冷等离子体(cold plasma,CP)预处理对其干燥特性、综合品质、微观结构及代谢组学的影响。结果表明,不同CP预处理均显著缩短了干燥时间(39.2%~54.3%),并降低了比能耗(38.7%~47.8%)。Midilli模型是表征干燥过程的最优模型,且预处理显著提高了水分有效扩散系数(最高提升228.5%)。品质方面,CP预处理有效改善了产品色泽,降低了总色差,提高了红度与饱和度;显著提高了复水率(最高提升39.9%)、质构硬度与回复性;同时,总酚含量显著提高(最高提升38.1%),但总黄酮含量略有下降。微观结构观察显示,CP刻蚀作用在样品表面及内部形成了丰富的微孔与通道网络,这是其强化传质、改善干燥与复水性能的结构基础。代谢组学分析进一步从分子层面揭示,CP预处理改变了样品的代谢组轮廓,其中,功率300 W时间300 s处理组富集功能性代谢物丰度最高,相较对照组萜类、维生素含量分别升高21.26%、27.63%,这与其优良的色泽和营养保留直接相关。综上,CP预处理是一种能同步实现胡萝卜干燥过程提质、增效、节能的绿色技术,本研究结果可为胡萝卜等果蔬的高品质干燥加工提供有效参考与理论依据。

关键词: 胡萝卜;冷等离子体预处理;干燥品质;微观结构;代谢组学

Abstract: To enhance the hot-air drying efficiency of carrots and improve the quality of dried products, this study systematically investigated the effects of alternating-current vacuum glow discharge cold plasma (CP) pretreatment at different combinations of power and time on the drying characteristics, comprehensive quality, microstructure and metabolomics of carrot slices. The results showed that CP pretreatment significantly shortened the drying time by 39.2%–54.3% and reduced the specific energy consumption (SEC) by 38.7%–47.8%. The Midilli model was the optimal model for fitting the drying process, and the pretreatment remarkably increased the effective moisture diffusivity (by up to 228.5%). In terms of quality attributes, CP pretreatment effectively improved the color of dried samples by lowering the total color difference and increasing the redness and saturation. Meanwhile, the rehydration ratio was significantly promoted (by up to 39.9%), accompanied by elevated texture hardness and resilience. The total phenolic content increased markedly (by up to 38.1%), while the total flavonoid content decreased slightly. Microstructural observations indicated that the etching action of CP formed abundant micropores and interconnected channel networks both on the surface and in the interior of samples, which provided a structural prerequisite for enhanced mass transfer and improved drying and rehydration properties. Metabolomic analysis demonstrated that at the molecular level, CP pretreatment altered the metabolomic profile of carrot samples. The CP treatment at 300 W for 300 s exhibited the highest enrichment abundance of functional metabolites. Compared with the control group, terpenoid and vitamin contents rose by 21.26% and 27.63% in the treatment group respectively, which was directly related to its excellent color and nutrient retention capacity. In conclusion, CP pretreatment is an eco-friendly technology that enables synchronous quality improvement, efficiency enhancement, and energy conservation during carrot hot-air drying. The findings provide effective references and a theoretical basis for the high-quality processing of dried carrots and other fruits and vegetables.

Key words: carrot; cold plasma pretreatment; drying quality; microstructure; metabolomics

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