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Determination of Temperature-Dependent Coefficients of Viscosity and Surface Tension of Tamarind Seeds (Tamarindus indica L.) Polymer

机译:罗望子种子(Tamarindus Indaa L.)聚合物粘度粘度和表面张力系数的测定

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摘要

The rheological properties of tamarind seed polymer are characterized for its possible commercialization in the food and pharmaceutical industry. Seed polymer was extracted using water as a solvent and ethyl alcohol as a precipitating agent. The temperature’s effect on the rheological behavior of the polymeric solution was studied. In addition to this, the temperature coefficient, viscosity, surface tension, activation energy, Gibbs free energy, Reynolds number, and entropy of fusion were calculated by using the Arrhenius, Gibbs–Helmholtz, Frenkel–Eyring, and Eotvos equations, respectively. The activation energy of the gum was found to be 20.46 ± 1.06 kJ/mol. Changes in entropy and enthalpy were found to be 23.66 ± 0.97 and −0.10 ± 0.01 kJ/mol, respectively. The calculated amount of entropy of fusion was found to be 0.88 kJ/mol. A considerable decrease in apparent viscosity and surface tension was produced when the temperature was raised. The present study concludes that the tamarind seed polymer solution is less sensitive to temperature change in comparison to Albzia lebbac gum, Ficus glumosa gum and A. marcocarpa gum. This study also concludes that the attainment of the transition state of viscous flow for tamarind seed gum is accompanied by bond breaking. The excellent physicochemical properties of tamarind seed polymers make them promising excipients for future drug formulation and make their application in the food and cosmetics industry possible.
机译:罗望子种子聚合物的流变性质的特征在于食品和制药工业中可能的商业化。用水作为溶剂和乙醇作为沉淀剂萃取种子聚合物。研究了温度对聚合物溶液流变行为的影响。除此之外,通过使用Arrhenius,Gibbs-Helmholtz,Frenkel-eyling和Eotvos方程分别计算温度系数,粘度,表面张力,激活能量,吉布斯自由能,雷诺数和融合熵。胶的活化能被发现为20.46±1.06kJ / mol。发现熵和焓的变化分别为23.66±0.97和-0.10±0.01kJ / mol。发现计算的融合熵量为0.88kJ / mol。当升高温度时,产生表观粘度和表面张力的显着降低。本研究得出结论,罗马林种子聚合物溶液与敏锐的Lebbac Gum,Ficus Glumosa Gum和A.Marcocarpa Gum相比,对温度变化不太敏感。本研究还得出结论,罗望子种子胶的粘性流动过渡状态伴随着粘合性粘合。罗望子种子聚合物的优异物理化学特性使其成为未来药物制剂的赋形剂,使其在食品和化妆品行业中的应用成为可能。

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