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Influence Of Hydrocolloid Nature On The Structure And Functional Properties Of Emulsified Edible Films

机译:胶体性质对乳化可食用膜结构和功能性能的影响

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To investigate the influence of polymer behaviors on the structure and the functional properties of emulsified films, agar (AG) and cassava starch (CAS) were used as hydrocolloid continuous phases in which hydrogenated vegetable oil (VGB81) was dispersed. Different ratios of hydrophilic/hydrophobic materials (HB/HL) were also used in film formulations to study the evolution of film-emulsion structure. Microscopically observed, VGB-CAS emulsified films exhibit a similar bilayer structure. However, there was just a migration and an aggregation of lipid particles. There was no coalescence which could form a continuous 'lipid layer' necessary for an effective barrier. Moreover, they could not be made with a HB/ HL ratio greater than 0.7:1. Conversely, AG chains set into gel, which solidifies film-forming emulsion before drying, leading to a fixed macronetwork structure. Films made with a high HB/HL ratios lead to a film structure becoming like a multilayer system. The water vapor permeability of emulsified films is better found when HB/HL ≥ 1:1 when films are formed only with gelling polysaccharide (AG). In addition, there is no relationship between the moisture sorption and the moisture permeability of emulsified films. In contact with liquid water, brief sorption and swelling surface are observed for VGB-AG film surface and rapid absorption following a temporary hydrophobicity is found in the case of VGB-CAS films. While the mechanical properties of VGB-CAS films are strongly altered, those of VGB-AG films are considered to be sufficient for most of applications.
机译:为了研究聚合物行为对乳化膜结构和功能特性的影响,将琼脂(AG)和木薯淀粉(CAS)用作氢化胶体连续相,在其中分散了氢化植物油(VGB81)。在薄膜配方中还使用了不同比例的亲水/疏水材料(HB / HL),以研究薄膜-乳液结构的演变。在显微镜下观察,VGB-CAS乳化膜表现出相似的双层结构。然而,仅脂质颗粒的迁移和聚集。没有可以形成有效屏障所需的连续“脂质层”的聚结。而且,HB / HL比不能大于0.7:1。相反,AG链凝结成凝胶,凝胶在干燥前固化成膜乳液,从而形成固定的宏观网络结构。以高HB / HL比制成的薄膜会导致薄膜结构变得像多层系统。当HB / HL≥1:1时,仅用胶凝多糖(AG)形成膜时,乳化膜的水蒸气渗透性更好。另外,乳化膜的吸湿性和透湿性之间没有关系。与液态水接触时,观察到VGB-AG膜表面有短暂的吸附和溶胀表面,而在VGB-CAS膜的情况下,由于暂时的疏水性而迅速吸收。尽管VGB-CAS膜的机械性能发生了很大的变化,但VGB-AG膜的机械性能被认为足以满足大多数应用的需要。

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