基于基团贡献法对环保有机工质开发的一些思考
Some Thoughts on the Development of Environment Friendly Organic Working Fluids Based on Group Contribution Method
DOI: 10.12677/SE.2019.96008, PDF,    科研立项经费支持
作者: 张新欣*, 王景甫:北京工业大学环境与能源工程学院传热强化与过程节能教育部重点实验室,北京;北京工业大学环境与能源工程学院传热与能源利用北京市重点实验室,北京;何茂刚:西安交通大学能源与动力工程学院热流科学与工程教育部重点实验室,陕西 西安
关键词: 基团贡献法环保有机工质ODPGWP辐射效率Group Contribution Method Environment Friendly Organic Working Fluids Ozone Depletion Potential Global Warming Potential Radiative Efficiency
摘要: 工质在热力学循环中起着至关重要的作用。被广泛用于制冷系统及有机朗肯循环系统中的有机工质其发展现今已经进入了环保时代。有机工质环保性能中最重要的两个指标是臭氧消耗潜势(ODP)和全球变暖潜势(GWP)。而物质的辐射效率是计算GWP的一个很重要的中间参数,且其作为一个强度量,是物质固有的属性。本文从ODP和辐射效率的角度对未来环保有机工质的开发进行了一些思考,给出了未来开发环保有机工质可能会用到的基团。
Abstract: Working fluid plays a very important role in thermodynamic cycle. The development of organic working fluids, which have been widely used in refrigeration systems and organic Rankine cycle, has entered an environment protection era. Ozone depletion potential (ODP) and global warming potential (GWP) are two most important indices for the evaluation of organic working fluid. Radi-ative efficiency is an intermediate parameter for GWP calculation and an inherent property of a substance as a constant value. From the perspective of ODP and radiative efficiency, this paper gives some thoughts on the future development of environment-friendly organic working fluids based on group contribution method. Groups that may be used in the future development of environment friendly organic working fluids are also given in this paper.
文章引用:张新欣, 何茂刚, 王景甫. 基于基团贡献法对环保有机工质开发的一些思考[J]. 可持续能源, 2019, 9(6): 61-68. https://doi.org/10.12677/SE.2019.96008

参考文献

[1] Wuebbles, D.J. (1981) Relative Efficiency of a Number of Halocarbons for Destroying Stratospheric Ozone.
[2] Intergovernmental Panel on Climate Change (2007) Climate Change 2007: The Physical Science Basis. Cambridge University Press, Cambridge. [Google Scholar] [CrossRef
[3] Tahami, S., Movagharnejad, K. and Ghasemitabar, H. (2019) Estimation of the Critical Constants of Organic Compounds via a New Group Contribution Method. Fluid Phase Equilibria, 494, 45-60. [Google Scholar] [CrossRef
[4] Abdi, S., Movagharnejad, K. and Ghasemitabar, H. (2018) Esti-mation of the Enthalpy of Vaporization at Normal Boiling Temperature of Organic Compounds by a New Group Con-tribution Method. Fluid Phase Equilibria, 473, 166-174. [Google Scholar] [CrossRef
[5] Gani, R. (2019) Group Contribution-Based Property Estimation Methods: Advances and Perspectives. Current Opinion in Chemical Engineering, 23, 184-196. [Google Scholar] [CrossRef
[6] Banihashemi, M. and Movagharnejad, K. (2018) Use of Group Contribution Method and Intelligent Algorithms to Predict the Flash Temperature of Binary Mixtures. Process Safety and Environmental Protection, 117, 539-550. [Google Scholar] [CrossRef
[7] Farzi, R. and Esmaeilzadeh, F. (2016) Prediction of Surface Ten-sion of Pure Hydrocarbons Using Esmaeilzadeh-Roshanfekr Equation of State and Group Contribution Method. Fluid Phase Equilibria, 427, 353-361. [Google Scholar] [CrossRef
[8] Randová, A. and Bartovská, L. (2016) Group Contribution Method: Surface Tension of Linear and Branched Alkanes. Fluid Phase Equilibria, 429, 166-176. [Google Scholar] [CrossRef
[9] Khalifa, M. and Lue, L. (2017) A Group Contribution Method for Predicting the Solubility of Mercury. Fluid Phase Equilibria, 432, 76-84. [Google Scholar] [CrossRef
[10] United Nations (1989) Scientific Assessment of Stratospheric Ozone: 1989. World Meteorological Organization, Global Ozone Research and Monitoring Project No. 20, Vol. 11, Appendix; AFEAS Report; United Nations Environment Program. New York.
[11] Nimitz, J.S. and Skaggs, S.R. (1992) Estimating Tropospheric Lifetimes and Ozone-Depletion Potentials of One- and Two-Carbon Hydrofluorocarbons and Hydrochlorofluorocarbons. Environmental Science & Technology, 26, 739-744. [Google Scholar] [CrossRef