赵津好1,董泽来2,阚金涛1,陈梦冉1,龚涵1,张玉锋1,3,4.不同提取工艺对椰子油品质与货架期的影响[J].中国油脂,2026,51(6):.[ZHAO Jinhao1, DONG Zelai2, KAN Jintao1,CHEN Mengran1, GONG Han1, ZHANG Yufeng1,3,4.Analysis of quality and shelf life changes of coconut oil under different extraction processes[J].China Oils and Fats,2026,51(6):.]
不同提取工艺对椰子油品质与货架期的影响
Analysis of quality and shelf life changes of coconut oil under different extraction processes
投稿时间:2024-12-17  修订日期:2026-03-16  录用日期:2025-03-03   出版日期:2026-06-20
DOI:10.19902/j.cnki.zgyz.1003-7969.240706
中文关键词:  椰子油  提取工艺  脂质伴随物  抗氧化活性  脂肪酸  货架期  动力学模型
英文关键词:coconut oil  extraction process  lipid concomitants  antioxidant activity  fatty acid  shelf life  kinetic model
基金项目:国家重点研发计划(部省联动)(2023YFD2200705);中央级公益性科研院所基本科研业务费专项(1630152022002);中国热带农业科学院国家热带农业科学中心科技创新团队(CATASCXTD202304)
作者单位
赵津好1,董泽来2,阚金涛1,陈梦冉1,龚涵1,张玉锋1,3,4 1.中国热带农业科学院 椰子研究所,海南 文昌 571339 2.云南农业大学 热带作物学院,云南 普洱 665000 3.海南省椰子深加工工程技术研究中心,海南 文昌 571339 4.椰子国家工程研究中心,海南 文昌 571339 
Author NameAffiliation
ZHAO Jinhao1, DONG Zelai2, KAN Jintao1,CHEN Mengran1, GONG Han1, ZHANG Yufeng1,3,4 1.Coconut Research Institution, Chinese Academy of Tropical Agricultural Sciences, Wenchang 571339, Hainan, China
2. Institute of Tropical Crops, Yunnan Agricultural University,Pu′er 665000, Yunnan, China
3.Engineering and Technology Research Center for Coconut Deep Process of Hainan Province, Wenchang 571339, Hainan, China
4.National Engineering Research Center of Coconut, Wenchang 571339, Hainan, China 
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中文摘要:
      旨在为椰子油的加工和贮藏提供参考,以椰浆为原料,采用热榨、低温压榨、索氏抽提、冻融(-20、-40 ℃及-80 ℃)、发酵(24 h和48 h)和复合酶解9种工艺提取椰子油,对比分析椰子油的提取率、脂肪酸组成、基本理化指标、脂质伴随物含量及体外抗氧化活性的差异,并建立了Arrhenius货架期预测模型。结果表明:复合酶解工艺提取的椰子油品质相对最佳,其椰子油中月桂酸(C12∶ 0)含量(49.03%)最高,多酚(0.48 mg/kg)和VE(3.51 μg/mL)含量最高,抗氧化活性也明显优于其他工艺提取的椰子油;不同贮藏温度(40、60 ℃和80 ℃)下,9种工艺提取的椰子油的酸值和过氧化值均随着贮藏时间延长而逐渐增加,且温度越高增长越快,整体符合一级动力学模型;基于过氧化值变化建立的货架期预测模型要优于基于酸值变化建立的;基于过氧化值模型计算的不同工艺提取的椰子油在25 ℃和35 ℃下的货架期不同,其中,48 h发酵法和低温压榨法提取的椰子油分别在25 ℃和35 ℃下的货架期最长。综上,不同工艺提取的椰子油呈现出明显的功能特性与稳定性差异,其中复合酶解法更适于制备高活性、高功能性的特色油脂,48 h发酵法适用于开发追求常温长货架期的常规产品,而低温压榨法则更适合对较高温度(35 ℃)贮藏稳定性有要求的应用场景。
英文摘要:
      To provide a reference for the processing and storage of coconut oil, with coconut milk as raw material, coconut oil was prepared by nine extraction processes, namely hot pressing, cold pressing, Soxhlet extraction, freeze-thawing at -20, -40 ℃ and -80 ℃, fermentation for 24 h and 48 h, and complex enzymatic hydrolysis. The differences in extraction yield, fatty acid composition, basic physicochemical indexes, lipid concomitants content and in vitro antioxidant activity of coconut oil were compared and analyzed, and an Arrhenius model for shelf life prediction was established. The results showed that the quality of coconut oil extracted by complex enzymatic hydrolysis was relatively optimal, with the highest content of lauric acid (C12∶ 0) at 49.03%, its polyphenols (0.48 mg/kg) and vitamin E(351 μg/mL) contents were the highest, and its antioxidant activity was also significantly superior to that obtained by other processes. At different storage temperatures (40, 60 ℃ and 80 ℃), the acid value and peroxide value of coconut oil extracted by the nine processes gradually increased with prolonged storage time, and the higher the temperature, the faster the increase, generally conforming to the first-order kinetic model. Moreover, the shelf life prediction model established based on the change of peroxide value was superior to that based on acid value. The predicted shelf life values of coconut oil extracted by different processes at 25 ℃ and 35 ℃, calculated based on the peroxide value model, differed. Among them, coconut oil extracted through the 48 h fermention (stored at 25 ℃) and cold pressing (stored at 35 ℃) demonstrated the longest shelf life. In summary, coconut oils extracted by different processes exhibit significant differences in functional properties and stability. Among them, the complex enzymatic hydrolysis is more suitable for preparing characteristic oils with high activity and high functionality; fermentation for 48 h is applicable to developing conventional products pursuing a long shelf life at room temperature; while cold pressing is more suitable for application scenarios requiring high storage stability at elevated temperature(35 ℃).
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