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Concentration of Rutin Model Solutions from Their Mixtures with Glucose Using Ultrafiltration

机译:用超滤法从其与葡萄糖的混合物中浓缩芦丁模型溶液

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Separation of polyphenolic phytochemical compounds from their mixtures with sugars is necessary to produce an added-value sugar-reduced extract with high biological activity from fruit juice processing industry waste streams. The separation characteristics of a binary mixture of rutin and glucose using a Pellicon-2 regenerated cellulose ultrafiltration membrane with an area of 0.1 m2 having nominal MWCO of 1,000 Da were investigated, to demonstrate the separation of phenolic compounds from sugars. The effects of the operating variables–transmembrane pressure, feed solution temperature and pH, initial feed concentration and feed flow rate–on the permeate flux and enrichment of rutin, were determined. The permeate flux increased with the increase in transmembrane pressure up to a certain limit and after that the flux remained more or less constant. The optimum transmembrane pressure was within 4–5 bar. The flux increased with the increase in feed solution temperature because of reduced feed viscosity, and better solubility. The concentration of rutin was optimum at lower temperature (30°C), with an enrichment factor of 1.3. The effect of pH on permeate flux was less obvious. Lowering the feed solution pH increased the retention of rutin and the optimum separation was obtained within pH 3–4. The permeate flux decreased with the increase in feed concentration of rutin (concentration range 0.1–0.5 g/L). The enrichment of rutin was significant in the glucose concentration range 0.35–0.5 g/L. The feed flow rate had a significant effect on the flux and separation characteristics. Higher cross-flow through the membrane reduced the fouling by providing a shear force to sweep away deposited materials from the membrane surface. At high feed flow rate, more rutin was retained by the membrane with less sugar permeating through. The optimum feed flow rate was 1.5 L/min. For the separation of rutin (in the retentate) and glucose (in the permeate), the best results were obtained at rutin enrichment of 2.9 and recovery 72.5%, respectively. The performance of this system was further improved by operating it in a diafiltration mode, in which only approx. 11% of glucose remained in the retentate.
机译:为了从果汁加工行业的废物流中生产具有高生物活性的增值减糖提取物,必须将多酚植物化学化合物从与糖的混合物中分离出来。研究了使用标称分子量为1,000 Da的0.1 m 2 面积的Pellicon-2再生纤维素超滤膜对芦丁和葡萄糖的二元混合物的分离特性,以证明酚类化合物的分离从糖。确定了操作变量(跨膜压力,进料溶液温度和pH,初始进料浓度和进料流速)对渗透通量和芦丁富集的影响。渗透通量随着跨膜压力的增加而增加到一定极限,此后通量或多或少保持恒定。最佳跨膜压力在4-5 bar之内。由于进料粘度降低和更好的溶解度,通量随着进料溶液温度的升高而增加。芦丁的浓度在较低温度(30°C)下最佳,富集系数为1.3。 pH对渗透通量的影响不太明显。降低进料溶液的pH值可以提高芦丁的保留率,并且在pH 3-4内可获得最佳分离效果。随着芦丁进料浓度(浓度范围0.1–0.5 g / L)的增加,渗透通量降低。在葡萄糖浓度0.35–0.5 g / L范围内,芦丁的富集作用显着。进料流速对通量和分离特性有重大影响。通过提供更大的横流,通过提供剪切力从膜表面清除沉积的物质,从​​而减少了结垢。在高进料流速下,更多的芦丁被膜保留,而较少的糖透过。最佳进料流速为1.5 L / min。对于芦丁(保留物)和葡萄糖(渗透物)的分离,分别以2.9的芦丁富集度和72.5%的回收率可获得最佳结果。通过在渗滤模式下运行该系统,该系统的性能得到了进一步提高,在渗滤模式下,仅渗滤模式大约为。 11%的葡萄糖保留在渗余物中。

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