首页> 外文期刊>African Journal of Biotechnology >Partial dehydration of Niagara Rosada GRAPES (Vitis labrusca L.) targeting increased concentration of phenolic compounds and soluble solids
【24h】

Partial dehydration of Niagara Rosada GRAPES (Vitis labrusca L.) targeting increased concentration of phenolic compounds and soluble solids

机译:Niagara Rosada GRAPES(Vitis labrusca L.)的部分脱水,旨在提高酚类化合物和可溶性固体的浓度

获取原文
获取外文期刊封面目录资料

摘要

The partial dehydration of grapes after harvest and aimed wine-making, has been shown to be a process that brings increased concentration of sugar and phenolic compounds in the must, which results in the quality of the wines produced. However, the works developed so far studied the process for temperatures up to a maximum of 25°C and air velocity less than 1 m.s-1. This study aimed to analyze the physical and chemical changes (concentration of total soluble solids (TSS) and phenolic compounds (CPC)) after partial dehydration of 'Niagara Rosada' grapes at the temperature subjected to two treatments combining two temperatures and one air velocity (T1= 22.9°C/1.79 m.s-1 and T2 = 37.1°C/1.79 m.s-1), and relative humidity of approximately 40%. The loss of water in the grapes was approximately 14% and the drying process lasted between 20 to 50 h for the treatments T1 and T2, respectively. We experimentally and statistically verified that the treatments promoted significant increase in TSS and CPC; however, for CPC at the temperature of 37.1°C, the increase accounted for approximately 29%, whereas, for the temperature of 22.9°C, it was only 5%. For TSS, the increase was on average 14.4 ± 3.9% between both treatments.
机译:事实证明,采摘后的葡萄和专门用于酿酒的葡萄部分脱水是增加葡萄汁中糖和酚类化合物浓度的过程,从而提高了所生产葡萄酒的质量。但是,迄今为止开发的工作研究了温度高达25°C和空气速度小于1 m.s-1的过程。这项研究旨在分析'Niagara Rosada'葡萄在经过两种处理并结合两种温度和一种风速的温度下脱水后的物理和化学变化(总可溶性固体(TSS)和酚类化合物(CPC)的浓度)( T1 = 22.9°C / 1.79 ms-1和T2 = 37.1°C / 1.79 ms-1),相对湿度约为40%。葡萄的水分损失约为14%,而干燥过程分别在处理T1和T2上持续20至50小时。我们通过实验和统计数据证实,这些疗法可促进TSS和CPC的显着增加;但是,对于温度为37.1°C时的CPC,增加幅度约为29%,而对于温度为22.9°C时,仅为5%。对于TSS,两次治疗之间的平均增加为14.4±3.9%。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号