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Insulator-based dielectrophoresis for fouling suppression in submerged membranes bioreactors: Impact of insulators shape and dimensions

机译:基于绝缘体的绝缘抑制在浸没膜中的抑制剂介质反应器:绝缘子的影响形状和尺寸

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The application of insulator-based dielectrophoresis (iDEP) has the potential to enhance membrane fouling suppression in submerged membrane bioreactors without extra energy consumption. In this study, the effect of the insulators shapes and sizes within the interidigitated electrodes (IDE) configuration was investigated for a better dielectrophoresis (DEP) force with a better membrane fouling suppression. Three circular insulators CS 1, CS 1.5 and CS 2 with diameters of 1 mm, 1.5 mm and 2 mm, respectively, were tested. A 2 mm side square section insulator SS 2 was also examined. The numerical simulation results show that the DEP force extension is greater with a similar diameter as the excited electrodes (2 mm in this study) when using circular insulators, The use of square section insulator (SS 2) increases the overall electric field gradient squared (del vertical bar E vertical bar(2)) by 16% compared to the 2 mm circular insulator (CS 2). The square section insulator also extends the dielectrophoresis (DEP) force field more uniformly across the membrane surface while generating sufficient force to move the suspended solids away from the membrane. The experimental investigation verified the theoretical simulation prediction and demonstrated that SS 2 membrane modules provide longer membrane service time by maintaining a normalized permeate flux of 55% more than the circular section membrane modules, with a maximum intensification factor of 14 at a 220 V voltage and 50 Hz with a transmembrane pressure of 0.1 bar.
机译:绝缘剂的介电流蛋白酶(IDEP)的应用具有增强浸没膜生物反应器中的膜污染,而无需额外的能量消耗。在该研究中,研究了绝缘体的形状和尺寸在帧间电极(IDE)构型内的效果,以更好的介电电泳(DEP)力,具有更好的膜污染抑制。三个圆形绝缘体CS 1,CS 1.5和CS 2分别为直径为1mm,1.5mm和2mm,分别进行。还检查了2 mm侧方形部分绝缘体SS 2。数值模拟结果表明,当使用圆形绝缘体时,由于激发电极(本研究中的2mm),Dem力延伸的直径更大,方形部分绝缘体(SS 2)的使用增加了整体电场梯度平方(与2 mm圆形绝缘体相比,Del垂直条E垂直条(2))×16%(CS 2)。方形截面绝缘体还更均匀地在膜表面上均匀地延伸介质电泳(DEP)力领域,同时产生足够的力以使悬浮固体远离膜。实验研究验证了理论模拟预测,并证明SS 2膜模块通过维持比圆形截面模块的归一化渗透磁通量为55%的归一化渗透磁通,最大强化因子为220 V电压,并且50 Hz,跨膜压力为0.1巴。

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