Vacuum impregnation and drying of iron‐fortified water chestnuts
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Zonglin Yang | Han Li | Yuqiao Xu | Yun Liu | Huan Kan | Fangyu Fan
[1] G. M. White,et al. Relative Humidity Effect on the High-Temperature Drying of Shelled Corn , 1973 .
[2] D. M. Bruce. Exposed-layer barley drying: Three models fitted to new data up to 150°C☆ , 1985 .
[3] D. Knorr,et al. Evaluation of Mass Transfer Mechanisms During Osmotic Treatment of Plant Materials , 2000 .
[4] Yueming Jiang,et al. Effects of chitosan coating on shelf life and quality of fresh-cut Chinese water chestnut , 2003 .
[5] Can Ertekin,et al. Drying of eggplant and selection of a suitable thin layer drying model , 2004 .
[6] Yanyun Zhao,et al. Practical applications of vacuum impregnation in fruit and vegetable processing , 2004 .
[7] Yanyun Zhao,et al. Vitamin E and mineral fortification in fresh‐cut apples (Fuji) using vacuum impregnation , 2005 .
[8] Guohua Chen,et al. Role of Freeze Drying in Nanotechnology , 2007 .
[9] Gagan Deep Singh,et al. Drying and rehydration characteristics of water chestnut (Trapa natans) as a function of drying air temperature , 2008 .
[10] S. Navas-Carretero,et al. Iron absorption from meat pate fortified with ferric pyrophosphate in iron-deficient women. , 2009, Nutrition.
[11] Jian Sun,et al. Biochemical properties and potential endogenous substrates of polyphenoloxidase from chufa (Eleocharis tuberosa) corms , 2010 .
[12] E. Vorobiev,et al. Effects of vacuum impregnation and ohmic heating with citric acid on the behaviour of osmotic dehydration and structural changes of apple fruit , 2010 .
[13] F. Anwar,et al. Effect of Freeze-Drying on the Antioxidant Compounds and Antioxidant Activity of Selected Tropical Fruits , 2011, International journal of molecular sciences.
[14] A. R. Lobo,et al. Iron bioavailability from ferric pyrophosphate in rats fed with fructan-containing yacon (Smallanthus sonchifolius) flour , 2011 .
[15] Yueming Jiang,et al. Effects of short-term anoxia treatment on browning of fresh-cut Chinese water chestnut in relation to antioxidant activity. , 2012, Food chemistry.
[16] C. Borchers,et al. The use of multiplexed MRM for the discovery of biomarkers to differentiate iron-deficiency anemia from anemia of inflammation. , 2012, Journal of proteomics.
[17] S. Almonacid,et al. Effect of ohmic heating and vacuum impregnation on the quality and microbial stability of osmotically dehydrated strawberries (cv. Camarosa) , 2012 .
[18] Y. Tulek,et al. Thin-layer drying of tomato (Lycopersicum esculentum Mill. cv. Rio Grande) slices in a convective hot air dryer , 2012 .
[19] B. Carciofi,et al. Dynamics of vacuum impregnation of apples: Experimental data and simulation results using a VOF model , 2012 .
[20] P. Fito,et al. Dried apples enriched with mandarin juice by vacuum impregnation improve antioxidant capacity and decrease inflammation in obese children. , 2013, Nutricion hospitalaria.
[21] L. Diamante,et al. Optimisation of vacuum impregnation of blackcurrant-infused apple cubes: application of response surface methodology , 2014 .
[22] H. Koaze,et al. Iron enrichment of whole potato tuber by vacuum impregnation , 2014 .
[23] Wei Zhang,et al. Study on antibacterial properties and major bioactive constituents of Chinese water chestnut (Eleocharis dulcis) peels extracts/fractions , 2014, European Food Research and Technology.
[24] P. Rocculi,et al. Vacuum impregnation modulates the metabolic activity of spinach leaves , 2014 .
[25] Shengjun Wu,et al. Preparation and characterisation of the oligosaccharides derived from Chinese water chestnut polysaccharides. , 2015, Food chemistry.
[26] P. Fito,et al. Vacuum impregnation and air drying temperature effect on individual anthocyanins and antiradical capacity of blueberry juice included into an apple matrix , 2015 .
[27] F. Yangilar. Production and evaluation of mineral and nutrient contents, chemical composition, and sensory properties of ice creams fortified with laboratory-prepared peach fibre , 2016, Food & nutrition research.
[28] R. Simpson,et al. Application of ohmic heating/vacuum impregnation treatments and air drying to develop an apple snack enriched in folic acid , 2016 .
[29] E. Varghese,et al. Vacuum impregnation: a promising way for mineral fortification in potato porous matrix (potato chips) , 2016, Journal of Food Science and Technology.
[30] N. Rastogi,et al. Ways and Means for the Infusion of Bioactive Constituents in Solid Foods , 2016, Critical reviews in food science and nutrition.
[31] P. Pittia,et al. Use of vacuum impregnation for the production of high quality fresh-like apple products , 2016 .
[32] B. Carciofi,et al. Vacuum impregnation and drying of calcium-fortified pineapple snacks , 2016 .
[33] R. Boggia,et al. Olive fruits and vacuum impregnation, an interesting combination for dietetic iron enrichment , 2017, Journal of Food Science and Technology.
[34] Zhen-jiang Gao,et al. Energy efficient improvements in hot air drying by controlling relative humidity based on Weibull and Bi-Di models , 2018, Food and Bioproducts Processing.
[35] B. Dabir,et al. Application of response surface methodology for optimization of the stability of asphaltene particles in crude oil by TiO2/SiO2 nanofluids under static and dynamic conditions , 2018 .
[36] A. Mujumdar,et al. High humidity hot air impingement blanching (HHAIB) enhances drying rate and softens texture of apricot via cell wall pectin polysaccharides degradation and ultrastructure modification. , 2018, Food chemistry.
[37] P. K. Nema,et al. Pulsed vacuum drying enhances drying kinetics and quality of lemon slices , 2018 .
[38] A. Mujumdar,et al. High-humidity hot air impingement blanching (HHAIB) enhances drying quality of apricots by inactivating the enzymes, reducing drying time and altering cellular structure , 2019, Food Control.
[39] Zhen-jiang Gao,et al. Pulsed vacuum drying of Chinese ginger (Zingiber officinale Roscoe) slices: Effects on drying characteristics, rehydration ratio, water holding capacity, and microstructure , 2019 .
[40] Z. Pan,et al. Effects of ripening stage on physicochemical properties, drying kinetics, pectin polysaccharides contents and nanostructure of apricots. , 2019, Carbohydrate polymers.