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Numerical simulation and application of nanomagnetic enzyme in a liquid-solid magnetic fluidized bed

机译:纳米磁性酶在液固磁化流化床中的数值模拟及应用

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Compared to traditional methods, the enzymatic degumming shows the advantages of a clear reaction substrate, mild reaction conditions, low energy consumption and reduced environmental pollution. Free phospholipase A(1) (PLA(1)) was immobilized on magnetic Fe3O4/SiOx-g-P (GMA) nanoparticles to obtain a nanomagnetic immobilized PLA(T) with a particle size of 100.50 +/- 1.3 nm and an activity of 2150 +/- 25 U/g. The Eulerian-Lagrangian model with particles as discrete phase and liquid as continuous phase was selected. The motion law of nanomagnetic enzyme particles in liquid-solid magnetic fluidized bed was simulated. Under the conditions of a magnetic field intensity of 0.022 T and a flow rate of soybean crude oil of 0.0025 m/s, the distribution status of nanomagnetic enzyme in the magnetic fluidized enhanced the enzymolysis reaction. Using the main parameters obtained by numerical simulation, soybean crude oil was degummed in a multistage magnetic fluidized bed. Under the conditions of a magnetic enzyme dosage of 0.10 g/kg, a reaction temperature of 63 degrees C and a reaction system pH of 6.3, after 6.0 h of reaction, the residual phosphorus contents in the oil was 8.2 mg/kg, and the relative activity of the nanomagnetic enzyme was still 86%. The optimized conditions improved significantly the efficiency and stability of the enzymolysis reaction of nanomagnetic enzyme.
机译:与传统方法相比,酶法脱胶具有反应底物清晰,反应条件温和,能耗低,减少环境污染的优点。将游离磷脂酶A(1)(PLA(1))固定在磁性Fe3O4 / SiOx-gP(GMA)纳米颗粒上,以获得粒径为100.50 +/- 1.3 nm,活性为2150的纳米磁性固定PLA(T) +/- 25 U / g。选择颗粒为离散相,液体为连续相的欧拉-拉格朗日模型。模拟了液固磁化流化床中纳米磁性酶颗粒的运动规律。在磁场强度为0.022 T,大豆原油流量为0.0025 m / s的条件下,磁性流化过程中纳米磁性酶的分布状况增强了酶解反应。使用通过数值模拟获得的主要参数,将大豆原油在多级磁力流化床中脱胶。在磁性酶剂量为0.10 g / kg,反应温度为63摄氏度,反应体系pH为6.3的条件下,反应6.0小时后,油中的残留磷含量为8.2 mg / kg,而纳米磁性酶的相对活性仍为86%。优化的条件显着提高了纳米磁性酶的酶解反应的效率和稳定性。

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