检查碳甲基纤维素的层和对层覆盖以及护理人员对黎巴嫩干黄色苹果加工过程的影响。

Elham Sadati Gol Afshani, S. Jafari, Seid Mahdi Kashaninejad, Shahram Beiraghi Toosi, Mohammad Ganjeh
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引用次数: 0

摘要

简介:渗透脱水是通过产品与高渗介质(如高浓度的糖、盐或糖盐溶液)直接接触来部分去除水分的过程。在这个过程中,食物被浸入高渗溶液中。食物细胞的天然膜起着半透层的作用,因此水穿过膜从高水势(低溶质浓度)的区域移动到低水势(高溶质浓度)的区域,这意味着水去除的驱动力是溶液和细胞内液之间的浓度梯度。在渗透脱水过程中,渗透溶质被食品材料吸收,对食品的除水、营养和感官性能产生不良影响。涂层的使用改善了渗透处理。评价涂层材料的最佳因素是性能比(WL/SG)。因此,涂层应在不影响除水的情况下减少固体吸收量。材料和方法:本研究中使用的苹果(金鲜苹果)购自伊朗马什哈德当地市场,加工前4-6℃保存。蔗糖(99.9%,Fariman制糖公司,伊朗)、卡拉胶(kappa型,Negin Khorak Pars公司,伊朗)、羧甲基纤维素(sandros,日本)和氯化钙(Mojallali博士实验室)。伊朗)也被使用。在羧甲基纤维素(CMC)和卡拉胶溶液中分别用0.5、1和1.5% w/w进行单包覆和双包覆,在30、45和60˚BX的蔗糖溶液中进行渗透脱水。结果与讨论:本研究结果表明,将涂层溶液浓度从0.5%提高到1.5%,可以减少水分损失。随着涂层层数的增加和渗透溶液浓度的增加(从30˚BX增加到60˚BX),水分损失也随之增加。总的来说,涂有卡拉胶的样品的失水和固相吸收量分别高于和低于CMC样品。随着膜层数、渗透溶液浓度(30 ~ 60˚BX)和涂层溶液浓度(0.5 ~ 1.5%)的增加,CMC包覆样品的固相吸收量增加。固形物吸收量随膜层数和膜液浓度的增加(从0.5%增加到1.5%)而增加和减少。当渗透溶液浓度达到45˚BX时,固相吸收量增加,但对固相吸收量的影响不显著。最后,不能严格地说一种涂层类型是否有利于渗透过程。这取决于各种工艺因素。在本研究的36个处理中,60˚BX蔗糖溶液中1%卡拉胶单包覆样品和45˚BX蔗糖溶液中0.5% CMC单包覆和双包覆样品的性能比对照(未包覆)样品提高了50%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
بررسی اثرتعداد لایهها و غلظتهای مختف پوششهای خوراکی کربوکسیمتیلسلولز و کاراگینان بر کارایی فرایند خشک کردن اسمزی سیب زرد لبنانی
Introduction: Osmotic dehydration involves the partial removal of water by direct contact of a product with a hypertonic medium such as high concentration of sugar, salt or sugar-salt solutions. In this process, food pieces are immersed in a hypertonic solution. The natural membrane of food cells acts as a semipermeable layer so the water moves across the membrane from an area of high water potential (low solute concentration) to an area of low water potential (high solute concentration), meaning the driving force for water removal is the concentration gradient between the solution and the intracellular fluid. During osmotic dehydration, osmotic solute is absorbed by food materials and has undesirable effects on water removal, nutritional and organoleptic properties. Use of coating improves the osmotic processing. Best factor for evaluation of coating material is performance ratio (WL/SG). So a coating should reduce solid uptake without negative effects on water removal. Materials and methods: The apples (Golden delicious) used in this study were purchased from a local market in Mashhad (Iran) and stored at 4-6°C before processing. The sucrose (99.9%, Fariman sugar company, Iran), carrageenan (kappa type, Negin Khorak Pars Company, Iran), carboxy methyl cellulose (sandros, Japan) and calcium chloride (Dr. Mojallali Lab., Iran) were also used. In this work, apple cubes were single and double coated in three concentrations (0.5, 1 and 1.5% w/w) of carboxy methyl cellulose (CMC) and carrageenan solution and dehydrated osmotically in different concentrations (30, 45 and 60˚ BX) of sucrose solutions. Results and Discussion: The results of this study indicated that increasing coating solution concentration from 0.5% to 1.5% decreased water loss. Also the water loss increased when the number of coating layers and the concentration of osmotic solution increased (from 30 to 60 ˚ BX). Generally, water loss and solids uptake in the samples coated with carrageenan was higher and lower than their CMC counterparts, respectively. The solids uptake in the samples coated with CMC increased by increasing the number of layers, osmotic solution concentration (from 30 to 60˚BX) and coating solution concentration (from 0.5 to 1.5%). The solids uptake increased and decreased with increase in layer number and coating solution concentration (from 0.5% to 1.5%), respectively. Increasing the osmotic solution concentration up to 45 ˚ BX increased solids uptake but, more increasingly did not have a significant effect on it. Finally, it cannot be said strictly that one coating type would facilitate osmotic process or not. It depends on various process factors. Among the 36 treatments studied in this research, the single coated samples with 1% carrageenan treated in 60 ˚ BX sucrose solution and the single and double coated samples with 0.5% CMC treated in 45 ˚ BX sucrose solution were the best, as they had 50% higher performance ratio than control (uncoated) sample.
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