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·304· 精细化工 FINE CHEMICALS 第 40 卷
中酯类和杂环类挥发性成分种类最多,MVD 中烃类 2018, 11(3): 585-602.
[16] AN K J (安可婧), XU Y J (徐玉娟), WEI L (魏来), et al. Study on
挥发性成分种类较少,但醛类挥发性成分种类高于 the drying kinetics of longan with intermittent vacuum-microwave[J].
Food and Machinery (食品与机械), 2018, 34(9): 30-36.
HAD 和 VFD。电子鼻结果表明,干燥会使红枣片的 [17] LAGNIKA C, JIANG N, SONG J F, et al. Effects of pretreatments
风味发生变化,主成分分析结果显示,HAD 和 MVD on properties of microwave-vacuum drying of sweet potato slices[J].
Drying Technology, 2019, 37(15): 1901-1914.
具有相似的风味特征。综合来看,VFD 能够更好地 [18] QIAN J Y (钱婧雅), ZHANG Q (张茜), WANG J (王军), et al.
Effects of three drying technologies on drying characteristics and
保留红枣片色泽、风味,接近原样;但 VFD 时间长, quality attributes of jujube crisps[J]. Transactions of the Chinese
能耗远高于 HAD 和 MVD。在干燥温度一致(60 ℃) Society of Agricultural Engineering (农业工程学报), 2016, 32(17):
259-265.
的情况下,MVD 干燥效率比 HAD 提高了 53.19%; [19] LIU Y X, SANG Y Y, GUO J Y, et al. Analysis of volatility
MVD 处理后红枣片的焦甜香突出,香气丰富感更 characteristics of five jujube varieties in Xinjiang province, China, by
HS-SPME-GC/MS and E-nose[J]. Food Science & Nutrition, 2021,
强。因此,制备干燥红枣片宜选用 MVD 方式。 9(12): 6617-6626.
[20] HUANG G Y (黄贵元), ZHAO H J (赵海娟), GAO Y (高阳). et al.
Based on HS-SPME/GC-MS and electronic nose technology to
参考文献: analysis of volatile components of dried jujube and its different
[1] ZHANG J S (张峻松), JIA C X (贾春晓), MAO D B (毛多斌), et al. extracts[J]. Food Science (食品科学), 2022, 43(10): 255-262.
Analysis of flavor compounds in natural Chinese jujube perfume [21] HOU H N (侯皓男), BI J F (毕金峰), CHEN Q Q (陈芹芹), et al.
produced by biological technology[J]. Fine Chemicals (精细化工), Improvement of physicochemical and nutritional quality of red
2003, 20(2): 82-84. jujube chips by instant controlled pressure drop[J]. Modern Food
[2] SONG J X, CHEN Q Q, BI J F, et al. GC/MS coupled with MOS Science and Technology (现代食品科技), 2019, 35(11): 161-169.
E-nose and flash GC E-nose for volatile characterization of Chinese [22] SI X (司旭), CHEN Q Q (陈芹芹), BI J F (毕金峰), et al. Effects of
jujubes as affected by different drying methods[J]. Food Chemistry, infrared drying on drying characteristics, quality and antioxidant
2020. DOI: 10.1016/j.foodchem.2020. 127201. activity of raspberries[J]. Journal of Chinese Institute of Food
[3] WU Z H (吴忠红), DU J (杜鹃), PAN Y (潘俨), et al. Effects of Science and Technology (中国食品学报), 2016, 16(9): 157-164.
controlled atmosphere on quality of Zizyphus jujuba Mill. cv. Junzao [23] MA Q C, BI J F, YI J Y, et al. Stability of phenolic compounds and
during storage[J]. Science and Technology of Food Industry (食品工 drying characteristics of apple peel as affected by three drying
业科技), 2015, 36(22): 339-343. treatments[J]. Food Science and Human Wellness, 2021, 10(2):
[4] DU L J (杜丽娟), JI X L (冀晓龙), XU F Y (许芳溢), et al. Effect of 174-182.
explosion puffing and sun-drying on antioxidants in Chinese [24] HAN Z H (韩志慧), GUO T (郭婷), HE X Y (何新益), et al. Effects
jujubes[J]. Food Science (食品科学), 2014, 35(13): 81-86. of slice processing on hot air drying characteristics of semi-dry
[5] ZHU B M, WEN X S, WEI G D. Effect of pre-treatments on drying original red jujube[J]. Food Research and Development (食品研究与
characteristics of Chinese jujube (Zizyphus jujuba Miller)[J]. 开发), 2013, 34(10): 76-79.
International Journal of Agricultural & Biological Engineering, 2014, [25] CHEN Q Q, BI J F, WU X Y, et al. Drying kinetics and quality
7(1): 94-102. attributes of jujube (Zizyphus jujuba miller) slices dried by hot-air
[6] CHU Y P (储亚萍). Overview of research on food vacuum freeze and short- and medium-wave infrared radiation[J]. LWT-Food Science
drying technology[J]. Anhui Agricultural Science Bulletin (安徽农学 and Technology, 2015, 64(2): 759-766.
通报), 2020, 26(18): 193-194. [26] XIAO M (肖敏), YI J Y (易建勇), BI J F (毕金峰), et al. Influence
[7] LI Y Q (李雁琴), SONG L J (宋丽军), ZHANG L (张丽), et al. of osmotic treatment using stachyose on qualities of apple chips dried
Comparison of physic-chemistry qualities and antioxidant activity of by hot air coupled with instant controlled pressure drop[J]. Journal of
frozen slices of different jujube varieties[J]. Food Research and Chinese Institute of Food Science and Technology (中国食品学报),
Development (食品研究与开发), 2020, 41(11): 28-33, 65. 2019, 19(8): 138-146.
[8] ZHOU M (周明), XU M S (徐明生), CHEN J Y (陈金印), et al. [27] LI J H (李佳欢), YANG B (杨斌), REN J Y (任佳媛), et al. Effects
Drying kinetics and quality characteristics of 'Xiushui Huahong' of hot air drying temperature on drying characteristics and volatile
sweet orange peel dried by hot air[J]. Food Science (食品科学), flavor compounds for Lyophyllum decastes[J]. Mycosystema (菌物学
2020, 41(11): 141-149. 报), 2021, 40(12): 3304-3319.
[9] CHEN Q Q, SONG J X, BI J F, et al. Characterization of volatile [28] ZHU Q Z (朱庆珍), SUI X P (随新平), WANG Y T (王羽桐), et al.
profile from ten different varieties of Chinese jujubes by HS-SPME/ Analysis of the effect of roasting on the key aroma compounds of
GC-MS coupled with E-nose[J]. Food Research International, 2018,
105: 605-615. walnut milk[J]. Fine Chemicals (精细化工), 2020, 37(12): 2562-
[10] LUO D S (罗东升), WANG M (王梅), ZHU Y L (朱玉丽), et al. 2570.
Influence of different drying methods on the quality of the slices of [29] CHEN K (陈恺), LI Q (李琼), ZHOU T (周彤), et al. Effects of
Zizyphus jujuba[J]. Science and Technology of Food Industry (食品 drying conditions on aroma compounds of Hami jujube from
工业科技), 2017, 38(17): 88-94, 223. Xinjiang[J]. Food Science (食品科学), 2017, 38(14): 158-163.
[11] WEI T (魏婷), GAO C F (高彩凤), SHEN J (沈静), et al. Changes in [30] WU J N (吴靖娜), LU H X (路海霞), CAI S L (蔡水淋), et al.
nutritional properties of jujube fruits during different stages of Analysis of volatile flavors in smoked abalone using electronic nose
vacuum freeze-drying[J]. Modern Food Science and Technology (现 and solid phase micro-extraction coupled with GC-MS[J]. Modern
代食品科技), 2017, 33(5): 161-167. Food Science and Technology (现代食品科技), 2016, 32(7): 220-
[12] LIU D C (刘德成), ZHENG X (郑霞), XIAO H W (肖红伟), et al. 230.
Advances in drying technology and equipment of jujube[J]. Journal [31] BAO C L G (包陈力根), GUAN C B (关淳博), XIN M H (辛明航),
of Agricultural Mechanization Research (农机化研究), 2022, 44(1): et al. To analyze the effects of roasting on volatile flavor compounds
8-18. of Stropharia rugoso-annulate using HS-SPME-GC-MS and
[13] LI W X (李维新), WEI W (魏巍), HE Z G (何志刚), et al. electronic nose[J]. Food Science (食品科学), 2022, 43(14): 1-14.
Intermittent microwave vacuum drying characteristics and dynamics [32] CHEN Q Q, SONG J X, BI J F, et al. Characterization of volatile
model of sugar ginger[J].Transactions of the Chinese Society of profile from ten different varieties of Chinese jujubes by HS-
Agricultural Engineering (农业工程学报), 2012, 28(S1): 262-266. SPME/GC-MS coupled with E-nose[J]. Food Research International,
[14] CHENG X F (程新峰), PAN L (潘玲), LI N (李宁), et al. Moisture 2018, 105: 605-615.
diffusivity characteristics and model fitting of Jerusalem artichoke [33] CONG K P (丛凯平), LI T T (李婷婷), WU C E (吴彩娥), et al.
(Helianthus tuberosus L.) during microwave vacuum drying[J]. Science Quality comparison and electronic nose analysis of Camellia oleifera
and Technology of Food Industry (食品工业科技), 2022, 43(6): abel seed oil extracted by different methods[J]. Fine Chemicals (精
33-40. 细化工), 2020, 37(2): 339-345.
[15] ZIELINSKA M, ZIELINSKA D, MARKOWSKI M. The effect of [34] YI Y W (易宇文), LIU Y (刘阳), PENG Y Q (彭毅秦), et al.
microwave-vacuum pretreatment on the drying kinetics, color and the Research on the correlation between electronic nose analysis and
content of bioactive compounds in osmo-microwave-vacuum dried sensory evaluation of dongpo pork[J]. Food and Fermentation
cranberries (Vaccinium macrocarpon)[J]. Food & Bioprocess Technology, Industries (食品与发酵工业), 2018, 44(1): 238-244.