通过数值模拟和模拟火焰喷雾热解反应器中炭黑纳米颗粒形成的见解

IF 2.4 3区 工程技术 Q3 MECHANICS
Fabio Henrique Bastiani, Pedro Bianchi Neto, Lizoel Buss, Udo Fritsching, Dirceu Noriler
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引用次数: 0

摘要

火焰喷雾热解(FSP)工艺是一种通用的、可扩展的控制纳米颗粒合成方法,应用于各个工业部门。FSP能够精确地操纵纳米颗粒的性质,这对各种应用至关重要。炭黑(CB)在电池和燃料电池等新兴能源技术中具有重要意义,由于其可控的环境,可以通过FSP高效地合成。考虑到炭黑对材料性能的影响,了解炭黑的形成是至关重要的。计算流体动力学(CFD)模拟提供了对FSP反应器内纳米颗粒形成和生长动力学的深入了解,有助于理解过程变量的影响。本研究模拟并分析了可控共流的特定封闭FSP反应器中炭黑纳米颗粒的形成。通过乙烯熏烟火焰对标实验验证了该模型的有效性,并与已有的实验结果和已有模型进行了比较。该模型准确地描述了基准情况下烟灰的形成,提供了温度、烟灰和平均粒径的可靠预测。验证后,将模型推广到FSP情况。二方程和三方程模型描述了烟灰和炭黑的形成,并深入讨论了颗粒动力学。半经验模型假设初生粒子为球形,在三方程模型中求解初生粒子数密度的种群平衡输运方程。我们的研究包括参数敏感性分析,强调可靠的模型参数的重要性,包括碳颗粒的辐射效应。这项工作促进了对通过FSP合成CB的理解和预测建模,与文献中复杂的正交求解种群平衡方法相比,促进了更简单的替代模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Insights into Carbon Black Nanoparticle Formation within Flame Spray Pyrolysis Reactors by Numerical Modeling and Simulation

Insights into Carbon Black Nanoparticle Formation within Flame Spray Pyrolysis Reactors by Numerical Modeling and Simulation

Insights into Carbon Black Nanoparticle Formation within Flame Spray Pyrolysis Reactors by Numerical Modeling and Simulation

The Flame Spray Pyrolysis (FSP) process is a versatile and scalable method for controlled nanoparticle synthesis, with applications across various industrial sectors. FSP enables precise manipulation of nanoparticle properties, crucial for diverse applications. Carbon black (CB), important in emerging energy technologies like batteries and fuel cells, can be efficiently synthesized via FSP due to its controlled environment. Understanding CB formation is essential, given its impact on material properties. Computational Fluid Dynamics (CFD) simulations provide insights into nanoparticle formation and growth dynamics within FSP reactors, aiding in understanding process variables’ influence. This study models and analyzes CB nanoparticle formation within a specific enclosed FSP reactor with controlled coflow. The modeling approach is validated through a benchmarking ethylene sooting flame, and results are compared with existing experiments and previous models. The model accurately describes soot formation in the benchmarking case, providing reliable predictions of temperature, soot, and mean particle size. After validation, the model is extended to the FSP case. Two- and three-equation models describe soot and CB formation, with particle dynamics thoroughly discussed. The semi-empirical models assume spherical primary particles, and in the three-equation model, a population balance transport equation is solved for primary particle number density. Our investigation includes parametric sensitivity analysis, highlighting the significance of reliable model parameters, including the radiative effects of carbon particles. This work advances the understanding and predictive modeling of CB synthesis via FSP, promoting simpler alternative models compared to intricate quadrature-solved population balance approaches in the literature.

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来源期刊
Flow, Turbulence and Combustion
Flow, Turbulence and Combustion 工程技术-力学
CiteScore
5.70
自引率
8.30%
发文量
72
审稿时长
2 months
期刊介绍: Flow, Turbulence and Combustion provides a global forum for the publication of original and innovative research results that contribute to the solution of fundamental and applied problems encountered in single-phase, multi-phase and reacting flows, in both idealized and real systems. The scope of coverage encompasses topics in fluid dynamics, scalar transport, multi-physics interactions and flow control. From time to time the journal publishes Special or Theme Issues featuring invited articles. Contributions may report research that falls within the broad spectrum of analytical, computational and experimental methods. This includes research conducted in academia, industry and a variety of environmental and geophysical sectors. Turbulence, transition and associated phenomena are expected to play a significant role in the majority of studies reported, although non-turbulent flows, typical of those in micro-devices, would be regarded as falling within the scope covered. The emphasis is on originality, timeliness, quality and thematic fit, as exemplified by the title of the journal and the qualifications described above. Relevance to real-world problems and industrial applications are regarded as strengths.
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