Operando建模和测量:在真实条件下揭示碱碳酸基吸附剂捕获二氧化碳的机制的强大工具

IF 3.1 4区 工程技术 Q3 ENERGY & FUELS
Tianyi Cai, Mengshi Wang, Xiaoping Chen, Ye Wu, Jiliang Ma, Wu Zhou
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引用次数: 1

摘要

碱碳酸盐基吸附剂(ACSs),包括Na2CO3-和k2co3 -基吸附剂,是很有前途的CO2捕获。然而,复杂的吸附剂组分和操作条件导致这些吸附剂吸附CO2的动力学多变。本文提出,操作模拟和测量是了解吸附剂在实际操作条件下的作用机理的有力工具,有助于吸附剂的开发、反应器设计和操作参数优化。综述了ACSs研制过程中的理论仿真成果。阐述了密度泛函理论(DFT)计算、从头算分子动力学(AIMD)模拟和经典分子动力学(CMD)模拟得到的结果。吸湿剂的吸湿性和气流的湿度是将碳酸化反应由气固模式转变为气液模式,提高反应动力学的关键。此外,它简要地介绍了机器学习(ML)方法作为一种有前途的方法来帮助吸附剂设计。此外,为了了解ACSs在实际操作过程中的行为,它展示了一个概念紧凑的操作测量系统。该测量系统包括一个用于动力学分析的微流化床(MFB)反应器,一个用于3D粒子运动跟踪的多摄像头子系统,以及一个用于固体/气体组分和温度监测的组合拉曼和红外子系统。该系统可用于实时评价吸附性能,验证理论预测,促进ACSs捕集CO2的工业规模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Operando modeling and measurements: Powerful tools for revealing the mechanism of alkali carbonate-based sorbents for CO2 capture in real conditions

Alkali carbonate-based sorbents (ACSs), including Na2CO3- and K2CO3-based sorbents, are promising for CO2 capture. However, the complex sorbent components and operation conditions lead to the versatile kinetics of CO2 sorption on these sorbents. This paper proposed that operando modeling and measurements are powerful tools to understand the mechanism of sorbents in real operating conditions, facilitating the sorbent development, reactor design, and operation parameter optimization. It reviewed the theoretical simulation achievements during the development of ACSs. It elucidated the findings obtained by utilizing density functional theory (DFT) calculations, ab initio molecular dynamics (AIMD) simulations, and classical molecular dynamics (CMD) simulations as well. The hygroscopicity of sorbent and the humidity of gas flow are crucial to shifting the carbonation reaction from the gas—solid mode to the gas—liquid mode, boosting the kinetics. Moreover, it briefly introduced a machine learning (ML) approach as a promising method to aid sorbent design. Furthermore, it demonstrated a conceptual compact operando measurement system in order to understand the behavior of ACSs in the real operation process. The proposed measurement system includes a micro fluidized-bed (MFB) reactor for kinetic analysis, a multi-camera sub-system for 3D particle movement tracking, and a combined Raman and IR sub-system for solid/gas components and temperature monitoring. It is believed that this system is useful to evaluate the real-time sorbent performance, validating the theoretical prediction and promoting the industrial scale-up of ACSs for CO2 capture.

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来源期刊
Frontiers in Energy
Frontiers in Energy Energy-Energy Engineering and Power Technology
CiteScore
5.90
自引率
6.90%
发文量
708
期刊介绍: Frontiers in Energy, an interdisciplinary and peer-reviewed international journal launched in January 2007, seeks to provide a rapid and unique platform for reporting the most advanced research on energy technology and strategic thinking in order to promote timely communication between researchers, scientists, engineers, and policy makers in the field of energy. Frontiers in Energy aims to be a leading peer-reviewed platform and an authoritative source of information for analyses, reviews and evaluations in energy engineering and research, with a strong focus on energy analysis, energy modelling and prediction, integrated energy systems, energy conversion and conservation, energy planning and energy on economic and policy issues. Frontiers in Energy publishes state-of-the-art review articles, original research papers and short communications by individual researchers or research groups. It is strictly peer-reviewed and accepts only original submissions in English. The scope of the journal is broad and covers all latest focus in current energy research. High-quality papers are solicited in, but are not limited to the following areas: -Fundamental energy science -Energy technology, including energy generation, conversion, storage, renewables, transport, urban design and building efficiency -Energy and the environment, including pollution control, energy efficiency and climate change -Energy economics, strategy and policy -Emerging energy issue
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