Department of Chemical and Biomolecular Engineering, Ohio State University, 140 West 19th Avenue, Columbus, Ohio 43210, United States.
Langmuir. 2011 May 17;27(10):5806-13. doi: 10.1021/la200080w. Epub 2011 Apr 21.
Drag-reducing (DR) surfactant fluids based on threadlike micelles are known to suffer from poor heat-transfer capabilities. Accordingly, the use of these fluids is limited to recirculating systems in which heat exchange is not important. Here, we show for the first time that light-responsive threadlike micelles can offer a potential solution to the above problem. The fluids studied here are composed of the cationic surfactant Ethoquad O/12 PG (EO12) and the sodium salt of trans-ortho-methoxycinnamic acid (OMCA). Initially, these fluids contain numerous threadlike micelles and, in turn, are strongly viscoelastic and effective at reducing drag (up to 75% DR). Upon exposure to UV light, OMCA is photoisomerized from trans to cis. This causes the micelles to shorten considerably, as confirmed by cryo-transmission electron microscopy (cryo-TEM). Because of the absence of long micelles, the UV-irradiated fluid shows lower viscoelasticity and much lower DR properties; however, its heat-transfer properties are considerably superior to the initial fluid. Thus, our study highlights the potential of switching off the DR (and in turn enhancing heat-transfer) at the inlet of a heat exchanger in a recirculating system. While the fluids studied here are not photoreversible, an extension of the above concept would be to subsequently switch on the DR again at the exit of the heat exchanger, thus ensuring an ideal combination of DR and heat-transfer properties.
基于线状胶束的减阻(DR)表面活性剂流体众所周知,其传热能力较差。因此,这些流体的使用仅限于热交换不重要的再循环系统。在这里,我们首次表明,光响应线状胶束可以为上述问题提供一种潜在的解决方案。这里研究的流体由阳离子表面活性剂 Ethoquad O/12 PG(EO12)和反式邻甲氧基肉桂酸钠(OMCA)组成。最初,这些流体包含大量线状胶束,并且具有很强的粘弹性,能有效减少阻力(高达 75%的 DR)。在暴露于紫外光下时,OMCA 从反式光异构化为顺式。这导致胶束大大缩短,冷冻透射电子显微镜(cryo-TEM)证实了这一点。由于没有长胶束,经紫外线照射的流体表现出较低的粘弹性和较低的 DR 性能;然而,其传热性能明显优于初始流体。因此,我们的研究强调了在再循环系统中热交换器入口处关闭 DR(从而提高传热)的潜力。虽然这里研究的流体不是光可逆的,但可以扩展上述概念,即在热交换器出口处再次打开 DR,从而确保 DR 和传热性能的理想结合。