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Adsorption of carbon dioxide on solid amine-functionalized sorbents: A dual kinetic model

机译:固体胺官能化吸附剂上二氧化碳的吸附:双动型模型

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Developing efficient technologies for carbon capture is one of the biggest challenges of the future. Therefor, adsorption-based processes are considered to be very promising methods and amine-functionalized solid sorbents emerge as the most suitable materials for this task. To judge the techno-economic viability of such new materials, the investigation of process performance is necessary. Yet accurate but simple models representing the thermodynamic and kinetic properties of these materials are still lacking. For instance, the kinetics of CO2 adsorption on amine-functionalized sorbents are still widely discussed. Common pseudo-first-order and pseudo-second-order models cannot describe the corresponding adsorption kinetics accurately. In comparison, Avrami's kinetic model and the generalized fractional-order kinetic model are more suitable to describe experimental data. Unfortunately, for these models the adsorption kinetics are a power function of the adsorption time. But, the fitted parameters of Avrami's kinetic model and the generalized fractional-order kinetic model often depend on the specific operation conditions, e.g. CO2 mole fraction or temperature, and any reasonable correlation between the operation conditions and adsorption parameters can be derived. Furthermore, the time dependence makes the models unsuitable for the simulation of dynamic and periodic processes such as temperature swing adsorption. Too overcome these severe limitations, we present a dual kinetic model (DKM). We show that the model can describe the adsorption and desorption kinetics for different amine-functionalized materials surprisingly well, even more accurately than time-dependent adsorption models. This new model can now be easily incorporated into dynamic swing adsorption simulations to investigate new carbon capture processes.
机译:开发有效的碳捕获技术是未来最大的挑战之一。因此,基于吸附的过程被认为是非常有前途的方法,胺官能化固体吸附剂作为此任务的最合适的材料。为判断这种新材料的技术经济可行性,需要调查过程性能。但是,代表这些材料的热力学和动力学性质的简单模型仍然缺乏。例如,仍然广泛讨论CO 2对胺官能化吸附剂上的ICS吸附的动力学。普通的伪一阶和伪二阶模型无法准确地描述相应的吸附动力学。相比之下,Avrami的动力学模型和广义分数级动力学模型更适合描述实验数据。遗憾的是,对于这些模型,吸附动力学是吸附时间的功率函数。但是,Avrami的动力学模型的拟合参数和广义分数级动力学模型通常取决于具体的操作条件,例如, CO2摩尔分数或温度,可以推导出操作条件与吸附参数之间的任何合理相关性。此外,时间依赖性使得模型不适合模拟动态和周期性过程,例如温度波浪吸附。克服了这些严重的局限性,我们提出了一种双动力学模型(DKM)。我们表明,该模型可以令人惊讶地描述不同胺官能化材料的吸附和解吸动力学,比时间更准确地比时间依赖性吸附模型更准确。现在可以轻松地纳入动态摆动吸附模拟,以研究新的碳捕获过程。

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