Jing Lianqi, Sun Jiaqi, Zhang Yaoling, Chen Jiaming, Guo Fei
School of Energy and Power Engineering, Dalian University of Technology, Dalian 116024, China.
Membranes (Basel). 2025 Jun 18;15(6):185. doi: 10.3390/membranes15060185.
Temperature polarization is a critical factor influencing the performance of membrane distillation. The presence of temperature polarization causes the temperature of the fluid near the membrane surface to be different from that in the bulk region, reducing the effective temperature difference across the membrane and thus diminishing the transmembrane mass transfer driving force. This study investigates the monitoring of temperature polarization and its effects on the transmembrane mass transfer performance in a typical air gap membrane distillation system. A set of thermocouples within a feed module were employed to monitor and capture the development of the temperature polarization profile. The test results reveal that temperature polarization reduces the effective temperature difference across the membrane, leading to a certain difference between the theoretical estimation and experimental values of the mass transfer coefficient across the porous membrane. To address this issue, the temperature polarization factor was further analyzed as a metric to quantify the impact of temperature polarization on the transmembrane flux in membrane distillation, with a detailed discussion of its range and implications.
温度极化是影响膜蒸馏性能的关键因素。温度极化的存在会导致膜表面附近流体的温度与主体区域的温度不同,从而降低跨膜的有效温差,进而减小跨膜传质驱动力。本研究考察了典型气隙式膜蒸馏系统中温度极化的监测及其对跨膜传质性能的影响。在进料模块内使用一组热电偶来监测和捕捉温度极化分布的变化情况。测试结果表明,温度极化降低了跨膜的有效温差,导致多孔膜传质系数的理论估算值与实验值之间存在一定差异。为解决这一问题,进一步分析了温度极化因子,将其作为量化温度极化对膜蒸馏中跨膜通量影响的指标,并详细讨论了其范围和意义。