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Multi-Scale Modeling of Plastic Waste Gasification: Opportunities and Challenges

机译:塑料废气化的多尺度建模:机遇与挑战

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Among the different thermo-chemical recycling routes for plastic waste valorization, gasification is one of the most promising, converting plastic waste into syngas (H-2+CO) and energy in the presence of an oxygen-rich gas. Plastic waste gasification is associated with many different complexities due to the multi-scale nature of the process, the feedstock complexity (mixed polyolefins with different contaminations), intricate reaction mechanisms, plastic properties (melting behavior and molecular weight distribution), and complex transport phenomena in a multi-phase flow system. Hence, creating a reliable model calls for an extensive understanding of the phenomena at all scales, and more advanced modeling approaches than those applied today are required. Indeed, modeling of plastic waste gasification (PWG) is still in its infancy today. Our review paper shows that the thermophysical properties are rarely properly defined. Challenges in this regard together with possible methodologies to decently define these properties have been elaborated. The complexities regarding the kinetic modeling of gasification are numerous, compared to, e.g., plastic waste pyrolysis, or coal and biomass gasification, which are elaborated in this work along with the possible solutions to overcome them. Moreover, transport limitations and phase transformations, which affect the apparent kinetics of the process, are not usually considered, while it is demonstrated in this review that they are crucial in the robust prediction of the outcome. Hence, possible approaches in implementing available models to consider these limitations are suggested. Finally, the reactor-scale phenomena of PWG, which are more intricate than the similar processes-due to the presence of molten plastic-are usually simplified to the gas-solid systems, which can result in unreliable modeling frameworks. In this regard, an opportunity lies in the increased computational power that helps improve the model's precision and allows us to include those complexities within the multi-scale PWG modeling. Using the more accurate modeling methodologies in combination with multi-scale modeling approaches will, in a decade, allow us to perform a rigorous optimization of the PWG process, improve existing and develop new gasifiers, and avoid fouling issues caused by tar.
机译:在用于塑料废物增值的不同热化学回收路线中,气化是最有前途的途径之一,在富氧气体存在的情况下将塑料废物转化为合成气(H-2+CO)和能源。由于多相流系统中的多尺度性质、原料复杂性(具有不同污染的混合聚烯烃)、复杂的反应机理、塑料特性(熔融行为和分子量分布)以及复杂的传输现象,塑料废气化与许多不同的复杂性有关。因此,创建一个可靠的模型需要对各种尺度的现象有广泛的了解,并且需要比今天应用的更先进的建模方法。事实上,塑料废物气化(PWG)的建模至今仍处于起步阶段。我们的综述表明,热物理性质很少被正确定义。已经详细阐述了这方面的挑战以及适当地界定这些属性的可能方法。与塑料废料热解或煤和生物质气化等相比,气化的动力学建模的复杂性很多,这项工作详细阐述了这些复杂性以及克服它们的可能解决方案。此外,通常不会考虑影响过程表观动力学的传输限制和相变,而本综述表明,它们对于结果的稳健预测至关重要。因此,建议在实施现有模型时考虑这些局限性的可能方法。最后,由于熔融塑料的存在,PWG的反应器规模现象比类似过程更复杂,通常被简化为气固系统,这可能导致不可靠的建模框架。在这方面,机会在于计算能力的提高,这有助于提高模型的精度,并允许我们将这些复杂性包含在多尺度PWG建模中。将更精确的建模方法与多尺度建模方法相结合,将使我们能够在十年内对PWG工艺进行严格的优化,改进现有气化炉并开发新的气化炉,并避免焦油引起的结垢问题。

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