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Physicochemical properties and microencapsulation process development for fish oil using supercritical carbon dioxide.

机译:使用超临界二氧化碳的鱼油的理化性质和微囊化工艺开发。

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摘要

Fish oil is an excellent source of long chain polyunsaturated fatty acids (LC-PUFA), which can reduce the risk of cardiovascular disease in addition to other health benefits. However, the average intake of LC-PUFA in the Western diet is much lower than the recommended levels. Fish oil is prone to oxidative deterioration when exposed to oxygen and thus must be protected in order to be used in food products. Microencapsulation is one possibility that is already applied by the industry to protect fish oil. However, most of the conventional microencapsulation techniques suffer from shortcomings such as harsh processing conditions or the use of numerous chemicals. The main objective of this thesis was to develop a novel spray process to microencapsulate fish oil based on supercritical fluid (SCF) technology using supercritical carbon dioxide (SC-CO2) and CO2-expanded ethanol (CX EtOH).;Based on the physicochemical properties determined in this research, a novel process to produce micro- and nano-sized particles containing fish oil was developed based on a SCF spray-drying method. Key processing parameters have been evaluated and can be further optimized to improve encapsulation efficiency.;Determination of physicochemical properties contributed to the fundamental understanding of the behavior of the fish oil+CO2 system with and without ethanol under high pressure conditions. The new microencapsulation process shows great potential for the delivery of bioactives in various product applications.;Fundamental physicochemical properties essential for optimal process design were lacking in the literature; therefore, density, interfacial tension (IFT) and viscosity of fish oil in the form of triglycerides and fatty acid ethyl esters were determined at different temperatures and pressures. Fish oil when equilibrated with SC-CO2 at elevated pressure expanded by up to about 40% in volume and increased in density by up to about 5%. Furthermore, IFT of fish oil in contact with SC-CO2 decreased substantially by an order of magnitude with an increase in CO2 pressure. When fish oil was in contact with CX EtOH, IFT decreased to ultra low levels at pressures of less than 10 MPa. Viscosity of fish oil equilibrated with SC-CO 2 decreased substantially with pressure but increased with shear rate.
机译:鱼油是长链多不饱和脂肪酸(LC-PUFA)的极好来源,除了其他健康益处外,它还可以降低罹患心血管疾病的风险。但是,西方饮食中LC-PUFA的平均摄入量远低于建议水平。鱼油在暴露于氧气时易于氧化变质,因此必须加以保护才能在食品中使用。微囊化是工业上已经用于保护鱼油的一种可能性。然而,大多数常规的微囊化技术具有缺点,例如苛刻的加工条件或使用多种化学药品。本论文的主要目的是基于超临界流体(SCF)技术,利用超临界二氧化碳(SC-CO2)和CO2膨胀乙醇(CX EtOH),开发一种新型的微囊化鱼油喷雾工艺。在这项研究中确定的是,基于SCF喷雾干燥方法,开发了一种新的生产包含鱼油的微米级和纳米级颗粒的方法。已评估了关键加工参数,可以进一步优化这些参数,以提高封装效率。理化特性的确定有助于对在高压条件下使用或不使用乙醇的鱼油+ CO2系统行为的基本了解。新的微囊化工艺显示了在各种产品应用中递送生物活性物质的巨大潜力。;文献中缺乏优化工艺设计所必需的基本物理化学特性;因此,在不同温度和压力下测定了甘油三酸酯和脂肪酸乙酯形式的鱼油的密度,界面张力(IFT)和粘度。鱼油在升高的压力下与SC-CO2平衡时,其体积最多可膨胀40%,密度最高可增大5%。此外,随着CO2压力的增加,与SC-CO2接触的鱼油的IFT大幅降低了一个数量级。当鱼油与CX EtOH接触时,IFT在小于10 MPa的压力下降至超低水平。用SC-CO 2平衡的鱼油的粘度随压力而显着降低,但随剪切速率而升高。

著录项

  • 作者

    Seifried, Bernhard.;

  • 作者单位

    University of Alberta (Canada).;

  • 授予单位 University of Alberta (Canada).;
  • 学科 Agriculture Food Science and Technology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 329 p.
  • 总页数 329
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 老年病学;
  • 关键词

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