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用于催化过程电气化的感应加热

Induction Heating for the Electrification of Catalytic Processes.

作者信息

Truong-Phuoc Lai, Duong-Viet Cuong, Nhut Jean-Mario, Pappa Anastasia, Zafeiratos Spyridon, Pham-Huu Cuong

机构信息

Institute of Chemistry and Processes for Energy, Environment and Health (ICPEES), ECPM, UMR 7515 CNRS-University of Strasbourg, 25 rue Becquerel, 67087, Strasbourg, Cedex 02, France.

BlackLeaf SAS, 210 rue Geiler de Kayserberg, 67400, Illkirch, France.

出版信息

ChemSusChem. 2025 May 5;18(9):e202402335. doi: 10.1002/cssc.202402335. Epub 2025 Jan 10.

Abstract

The increasing availability of electrical energy generated from clean, low-carbon, renewable sources like solar and wind power is paving the way for a more sustainable future. This has resulted in a growing trend in the chemical industry to increase the share of electricity use in chemical processes, particularly catalytic ones. This shift towards electrifying catalytic processes offers significant environmental benefits. Current practices rely heavily on fossil fuel-based burners, primarily using natural gas, which contribute significantly to greenhouse gas emissions. Therefore, replacing fossil fuels with electricity can significantly reduce the carbon footprint associated with chemical production. Additionally, the energy-intensive production of metal catalysts used in these processes further exacerbates the environmental impact. This review focuses on the electrification of chemical processes, particularly using induction heating (IH), as a method to reduce the environmental impact of both catalyst production and operation. IH shows promise compared to conventional heating methods, since it offers a cleaner, more efficient, and precise way to heat catalysts in chemical processes by directly generating heat within the catalyst itself. It can potentially even enhance the reaction performance through its influence on the reaction mechanism. By exploring recent advancements in IH-driven catalytic processes, the review delves into how this method is revolutionizing catalysis by enhancing performance, selectivity, and sustainability. It highlights recent breakthroughs and discusses perspectives for further exploration in this rapidly developing field.

摘要

太阳能和风能等清洁、低碳可再生能源所产生的电能供应日益增加,为更可持续的未来铺平了道路。这导致化学工业中出现一种日益增长的趋势,即提高化学过程,特别是催化过程中电力使用的份额。这种向催化过程电气化的转变带来了显著的环境效益。目前的做法严重依赖以化石燃料为基础的燃烧器,主要使用天然气,这对温室气体排放有重大贡献。因此,用电能替代化石燃料可以显著减少与化学品生产相关的碳足迹。此外,这些过程中使用的金属催化剂的能源密集型生产进一步加剧了环境影响。本综述重点关注化学过程的电气化,特别是使用感应加热(IH),作为一种减少催化剂生产和运行对环境影响的方法。与传统加热方法相比,感应加热显示出前景,因为它通过在催化剂本身内部直接产生热量,为化学过程中的催化剂加热提供了一种更清洁、更高效和精确的方式。它甚至有可能通过对反应机理的影响来提高反应性能。通过探索感应加热驱动的催化过程的最新进展,本综述深入探讨了这种方法如何通过提高性能、选择性和可持续性来彻底改变催化作用。它突出了最近的突破,并讨论了在这个快速发展的领域中进一步探索的前景。

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