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首页> 外文期刊>International Journal of Refrigeration >The role of surfactant adsorption rate in heat and mass transfer enhancement in absorption heat pumps
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The role of surfactant adsorption rate in heat and mass transfer enhancement in absorption heat pumps

机译:表面活性剂吸附速率在吸收式热泵中促进传热和传质的作用

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The importance of heat and mass transfer additives in absorption chillers and heat pumps has been recognized for over three decades. However, a universally accepted model for the mechanisms responsible for enhanced absorption rates has yet to be proposed. The Marangoni effect - an instability arising from gradients in surface tension at the liquid-vapor interface-is generally accepted as the cause of the convective flows that enhance transfer rates. Certain surfactant additives can significantly improve absorption rates and thus reduce the overall transfer area required by a given machine. Any means available that can increase the efficiency and acceptability of absorption machines is to be welcomed, as this technology provides an alternative to vapor compression systems which is both environmentally friendly and more versatile with regards to energy sources. This study investigates the rate at which a surfactant additive adsorbs at a liquid-vapor interface. The residence time of the falling liquid solution in an absorber is quite short. An effective additive must not only reduce the surface tension of the solution; it must do so quickly enough to cause the Marangoni instability within the short absorption process time. The entrance region of an absorber features a freshly exposed interface at which no surfactant has adsorbed. A numerical model is used to analyze surfactant relaxation rates in a static film of additive-laced solution. Kinetic parameters for the combination of the working pair LiBr-H{sub}2O and the additive 2-ethyl-1-hexanol are derived from data in the literature for static and dynamic surface tension measurements. Bulk, interfacial and boundary parameters influencing relaxation rates are discussed for surfactant adsorption occurring in the absence of absorption, as well as for concurrent adsorption and stable vapor absorption. Initial solution conditions and absorption driving force are shown to impact the potential for instability in the effect they have on the rate of interfacial additive adsorption.
机译:在吸收式制冷机和热泵中传热和传质添加剂的重要性已经被认识了三十多年。但是,尚未提出一种引起吸收率提高的机制的普遍接受的模型。马兰戈尼效应-由液-气界面处的表面张力梯度引起的不稳定性-通常被认为是对流提高传输速率的原因。某些表面活性剂添加剂可以显着提高吸收率,从而减少给定机器所需的总转印面积。任何可以提高吸收机效率和可接受性的方法都将受到欢迎,因为该技术提供了一种蒸气压缩系统的替代方案,该系统既环保又在能源方面更加通用。这项研究调查了表面活性剂添加剂在液-气界面吸附的速率。下落的液体溶液在吸收器中的停留时间很短。有效的添加剂不仅必须降低溶液的表面张力,还必须降低溶液的表面张力。它必须足够快地完成操作,以在短吸收过程时间内导致Marangoni不稳定。吸收剂的入口区域具有新近暴露的界面,没有表面活性剂吸附在该界面上。使用数值模型来分析添加了添加剂的溶液的静态膜中表面活性剂的松弛率。 LiBr-H {sub} 2O工作对和添加剂2-乙基-1-己醇的组合的动力学参数来自文献中用于静态和动态表面张力测量的数据。讨论了影响松弛速率的体积,界面和边界参数,这些参数涉及在没有吸收的情况下发生的表面活性剂吸附,以及同时发生的吸附和稳定的蒸气吸收。结果表明,初始溶液条件和吸收驱动力会影响不稳定性的可能性,从而影响界面添加剂的吸附速率。

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