Chakraborty Anutosh, Saha Bidyut Baran, Ng Kim Choon, Koyama Shigeru, Srinivasan Kandadai
Department of Mechanical Engineering, National University of Singapore, 10 Kent Ridge Crescent, Singapore 119260.
Langmuir. 2009 Feb 17;25(4):2204-11. doi: 10.1021/la803289p.
Thermodynamic property surfaces for a single-component adsorbent+adsorbate system are derived and developed from the viewpoint of classical thermodynamics, thermodynamic requirements of chemical equilibrium, Gibbs law, and Maxwell relations. They enable us to compute the entropy and enthalpy of the adsorbed phase, the isosteric heat of adsorption, specific heat capacity, and the adsorbed phase volume thoroughly. These equations are very simple and easy to handle for calculating the energetic performances of any adsorption system. We have shown here that the derived thermodynamic formulations fill up the information gap with respect to the state of adsorbed phase to dispel the confusion as to what is the actual state of the adsorbed phase. We have also discussed and established the temperature-entropy diagrams of (i) CaCl2-in-silica gel+water system for cooling applications, and (ii) activated carbon (Maxsorb III)+methane system for gas storage.
从经典热力学、化学平衡的热力学要求、吉布斯定律和麦克斯韦关系的角度出发,推导并建立了单组分吸附剂 + 吸附质系统的热力学性质曲面。这些曲面使我们能够全面计算吸附相的熵和焓、等量吸附热、比热容以及吸附相体积。这些方程对于计算任何吸附系统的能量性能非常简单且易于处理。我们在此表明,所推导的热力学公式填补了关于吸附相状态的信息空白,消除了对吸附相实际状态的困惑。我们还讨论并建立了用于冷却应用的(i)硅胶负载氯化钙 + 水系统和用于气体储存的(ii)活性炭(Maxsorb III)+ 甲烷系统的温度 - 熵图。