Wang Qingsheng, Zhang Yingchun, Rogers William J, Mannan M Sam
Artie McFerrin Department of Chemical Engineering, Mary Kay O'Connor Process Safety Center, Texas A&M University, College Station, TX 77843-3122, USA.
J Hazard Mater. 2009 Jun 15;165(1-3):141-7. doi: 10.1016/j.jhazmat.2008.09.087. Epub 2008 Sep 30.
Molecular simulations are important to predict thermodynamic values for reactive chemicals especially when sufficient experimental data are not available. Methylcyclopentadiene (MCP) is an example of a highly reactive and hazardous compound in the chemical process industry. In this work, chemical reactivity of 2-methylcyclopentadiene, including isomerization, dimerization, and oxidation reactions, is investigated in detail by theoretical computational chemistry methods and empirical thermodynamic-energy correlation. On the basis of molecular simulations, an average value of -15.2 kcal/mol for overall heat of dimerization and -45.6 kcal/mol for overall heat of oxidation were obtained in gaseous phase at 298 K and 1 atm. These molecular simulation studies can provide guidance for the design of safer chemical processes, safer handling of MCP, and also provide useful information for an investigation of the T2 Laboratories explosion on December 19, 2007, in Florida.
分子模拟对于预测活性化学品的热力学值非常重要,尤其是在没有足够实验数据的情况下。甲基环戊二烯(MCP)是化学加工行业中一种高活性和危险化合物的例子。在这项工作中,通过理论计算化学方法和经验热力学-能量关联,详细研究了2-甲基环戊二烯的化学反应性,包括异构化、二聚化和氧化反应。基于分子模拟,在298 K和1 atm的气相中,二聚化总热的平均值为-15.2 kcal/mol,氧化总热的平均值为-45.6 kcal/mol。这些分子模拟研究可为更安全的化学过程设计、MCP的更安全处理提供指导,也可为2007年12月19日佛罗里达州T2实验室爆炸事件的调查提供有用信息。