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Packed-bed microreactors for understanding of the dissolution kinetics and mechanisms of asphaltenes in xylenes

机译:填充床微反应器,用于了解沥青质在二甲苯中的溶解动力学和机理

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Insightful information concerning the dissolution of asphaltenes in quartz porous media was acquired through the use of transparent packed-bed microreactors (mu PBRs), inline UV-vis spectroscopy and pressure transducers. Experimental results showed that longer shut-in time (16 h) facilitated the removal of asphaltenes, but the dissolution rate constants decreased gradually. At larger Rep values of 5.52 x 10-2, less time was allowed to dissolve asphaltenes and as a result less asphaltenes were removed. At a higher n-heptane volume composition of 80 vol%, more low molecular weight asphaltenes were deposited in mu PBRs but were easier to dissolve. At temperature range of 25-90 degrees C, more asphaltenes were removed as increasing temperature. Estimation of permeability-porosity relationships indicated that even when similar to 70-90 wt% asphaltenes were removed from the damaged packed-bed microreactors (D mu PBRs), the permeability impairments were still much lower than expected. The remaining asphaltenes in the D mu PBRs plugged the pore throat of porous media, and as a result resisted the flow of fluids. Understanding the dissolution kinetics and mechanisms of asphaltenes in porous media can be useful in designing remediation treatments that minimize production losses and the resultant economic losses. (C) 2015 Elsevier Ltd. All rights reserved.
机译:通过使用透明填充床微反应器(mu PBR),在线紫外-可见光谱和压力传感器,获得了有关沥青质在石英多孔介质中溶解的深入信息。实验结果表明,较长的封闭时间(16 h)促进了沥青质的去除,但溶出速率常数逐渐降低。在较大的Rep值为5.52 x 10-2时,允许更少的时间来溶解沥青质,结果是去除了更少的沥青质。在80体积%的较高正庚烷体积组成下,更多的低分子量沥青质沉积在μPBR中,但更易于溶解。在25-90摄氏度的温度范围内,随着温度的升高,更多的沥青质被去除。渗透率-孔隙率关系的估计表明,即使从损坏的填充床微反应器(DμPBR)中除去了约70-90 wt%的沥青质,渗透率的损害仍然远远低于预期。 D mu PBR中剩余的沥青质堵塞了多孔介质的孔喉,结果阻止了流体的流动。了解沥青质在多孔介质中的溶解动力学和机理可能有助于设计补救措施,以最大程度地减少生产损失和由此产生的经济损失。 (C)2015 Elsevier Ltd.保留所有权利。

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