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Safe optimization of potentially runaway reactions: From fedbatch to continuous stirred tank type reactor

机译:安全优化潜在的失控反应:从Fedbatch到连续搅拌罐式反应器

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A great variety of processes of both fine chemical and pharmaceutical industries are commonly carried out in semibatch reactors (SBRs). Most of such syntheses often involve strongly exothermic and very fast reactions where the control of the heat evolution is achieved thanks to the combined effect of a dedicated cooling system and the feeding of a "cold" (mostly, ambient temperature) co-reactant. For these types of process, the well known phenomenon of "thermal runaway" can take place. Accordingly to the ever increasing market requests, the desired goal of whatever enterprise is to increase the productivity of a certain product being sure of maintaining safe operating conditions during all the synthesis steps. This is a very hard task which can be performed by changing the reactor operating mode from semibatch to continuous. A continuous reactor can achieve the same productivity of a discontinuous reactor using significantly lower reaction volumes; this means that the intrinsic safety of the process is increased. In this work, the switch from a semibatch reactor to a series of continuous stirred tank reactors has been investigated using as a case study the nitration of N-(2-Phenoxyphenyl) methane sulphonamide. Particularly, after the determination of the most effective number of reactors in the series and their effective volumes, dynamical simulations have been carried out in order to guarantee that possible thermal instabilities are not generated during the synthesis in both the start-up and the normal exercise phases.
机译:精细化学和制药行业的各种过程通常在半匹配反应器(SBR)中进行。大多数这种合成通常涉及强烈的放热和非常快的反应,因为由于专用冷却系统的组合效果和“冷”(主要是,环境温度)共反应物的综合效果,实现了热量进化的控制。对于这些类型的过程,可以发生众所周知的“热失控”现象。因此,随着市场要求的增加,无论企业的所需目标是提高某个产品的生产率,确保在所有合成步骤中保持安全的操作条件。这是一个非常硬的任务,可以通过将反应堆操作模式从半匹配更改为连续来执行。连续反应器可以使用显着较低的反应体积来达到不连续反应器的相同生产率;这意味着该过程的内在安全性增加。在这项工作中,研究了从半靶反应器到一系列连续搅拌釜反应器的开关,以用作含量的N-(2-苯氧基苯基)甲烷磺酰胺的含量研究。特别是,在序列中确定最有效的反应器数量及其有效体积之后,已经进行了动态模拟,以保证在启动和正常运动中合成期间不会产生可能的热稳定性阶段。

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