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评估在有氧和无氧条件下1,3 - 丁二烯的二聚反应及二次反应。

Evaluation of 1,3-butadiene dimerization and secondary reactions in the presence and absence of oxygen.

作者信息

Aldeeb A A, Rogers W J, Mannan M S

机构信息

Mary Kay O'Connor Process Safety Center, Department of Chemical Engineering, Texas A&M University, College Station, TX 77843-3122, USA.

出版信息

J Hazard Mater. 2004 Nov 11;115(1-3):51-6. doi: 10.1016/j.jhazmat.2004.06.019.

DOI:10.1016/j.jhazmat.2004.06.019
PMID:15518964
Abstract

Thermal stability evaluation of exothermic chemical reactions is of great importance to the safer design and operation of chemical processes. Dominant reaction stoichiometries and their thermochemistry parameters are key elements in the evaluation process. Identification of significant reaction pathways under possible process conditions will lead to an understanding of the overall thermodynamic and kinetic behavior. The kinetics of 1,3-butadiene (BD) is an excellent example of conjugated dienes that undergo addition reactions. At elevated temperatures, 1,3-butadiene monomers can dimerize exothermally, and as temperature increases, secondary exothermic reactions will take place. The very high temperature and pressure rates that these reactions can attain may lead to a reaction runaway or even a thermal explosion. BD is a vapor at ambient conditions, usually stored as a pressurized liquid, and is a carcinogen, so the experimental evaluation is potentially difficult and hazardous. In this paper, the thermal stability of BD is evaluated. Dimerization and other secondary reactions are investigated by experimental thermal analysis using an automatic pressure adiabatic calorimeter (APTAC), by theoretical computational quantum chemistry methods, and empirical thermodynamic-energy correlations. A theoretical approach is conducted to predict some of the BD reaction behavior. Results are compared to other literature data obtained using different experimental methods.

摘要

放热化学反应的热稳定性评估对于化学过程的安全设计和操作至关重要。主要反应化学计量及其热化学参数是评估过程中的关键要素。确定可能的工艺条件下的重要反应途径将有助于理解整体热力学和动力学行为。1,3 - 丁二烯(BD)的动力学是共轭二烯发生加成反应的一个很好的例子。在高温下,1,3 - 丁二烯单体可以放热二聚,并且随着温度升高,会发生二次放热反应。这些反应所能达到的极高温度和压力速率可能导致反应失控甚至热爆炸。BD在环境条件下是一种蒸气,通常作为加压液体储存,并且是一种致癌物,因此实验评估可能既困难又危险。本文对BD的热稳定性进行了评估。通过使用自动压力绝热量热仪(APTAC)的实验热分析、理论计算量子化学方法以及经验热力学 - 能量相关性研究了二聚化和其他二次反应。采用理论方法预测了一些BD的反应行为。将结果与使用不同实验方法获得的其他文献数据进行了比较。

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