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The use of reduced models for design and optimisation of heat-integrated crude oil distillation systems

机译:使用简化模型来设计和优化热集成原油蒸馏系统

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摘要

The importance of exploiting degrees of freedom within a crude oil distillation process for improving energy performance has been a feature of process integration from the earliest days. Combining process changes with changes to the heat recovery system leads to far better results, compared with changes to the heat recovery system alone. However, in order to obtain the best results, the distillation process and heat exchanger network need to be optimised simultaneously. Whilst in principle this is straightforward, there are many difficulties. Methods for the optimisation of heat exchanger networks are well developed. In these methods, heat exchanger network models are based on network details, such as stream connections between heat exchangers, heat transfer area of individual units, etc. The consideration of these network details is important to design and optimise crude oil distillation systems. On the other hand, the distillation process model to be coupled with the heat exchanger network model needs to be simple and robust enough to be included in an optimisation framework. If distillation models and heat recovery models can be combined effectively, then there are not just opportunities for design and retrofit, but also for operational optimisation. One of the big challenges to progress the application of this approach is the effective generation of reduced distillation models. Short-cut distillation models can be used, but many other options are available, such as the use of artificial neural networks. This paper reviews various crude oil distillation modelling approaches and highlights the areas of application of these different approaches. An example illustrates the computational performance of reduced and rigorous crude oil distillation models.
机译:从早期开始,在原油蒸馏过程中利用自由度来改善能源性能的重要性就一直是过程集成的特征。与仅对热回收系统进行更改相比,将过程更改与对热回收系统进行更改相结合可获得更好的结果。但是,为了获得最佳结果,需要同时优化蒸馏过程和热交换器网络。虽然从原理上讲这很简单,但是存在许多困难。优化热交换器网络的方法已得到很好的开发。在这些方法中,热交换器网络模型基于网络详细信息,例如热交换器之间的流连接,单个单元的传热面积等。考虑这些网络详细信息对于设计和优化原油蒸馏系统很重要。另一方面,要与换热器网络模型耦合的蒸馏过程模型必须足够简单和健壮,才能包含在优化框架中。如果蒸馏模型和热回收模型可以有效地结合在一起,那么不仅有设计和改造的机会,而且还有运营优化的机会。推进这种方法应用的最大挑战之一是有效生成精馏模型。可以使用捷径蒸馏模型,但是还有许多其他选择,例如使用人工神经网络。本文回顾了各种原油蒸馏建模方法,并重点介绍了这些不同方法的应用领域。一个例子说明了简化和严格的原油蒸馏模型的计算性能。

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