Energy-efficient and sustainable methanol distillation: Exploring diluted alcohol strategies, multi-effect heat integration, and heat pump-based electrification for carbon reduction

IF 8.1 1区 工程技术 Q1 ENGINEERING, CHEMICAL
Xiaodong Zhang, Ziwei Shen, Hao Lyu, Zuming Liu, Jinsheng Sun
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引用次数: 0

Abstract

Industrial methanol distillation systems typically use a fusel oil side-draw to maintain product purity; however, fusel oil is a hazardous byproduct that poses significant safety risks. This study proposes an alternative strategy that processes diluted alcohol instead of fusel oil to mitigate safety concerns and meet regulatory requirements. Four configurations were evaluated, combining forward and backward multi-effect heat integration schemes with fusel oil side-draw and diluted alcohol strategies. A simultaneous optimization algorithm was employed to optimize process parameters and heat integration structures. The results show that the diluted alcohol strategy outperforms fusel oil side-draw configurations in terms of total annual cost and methanol recovery rates, demonstrating its economic and operational advantages. Furthermore, the optimized configurations achieved lower unit steam consumption than values reported in the literature, highlighting the energy efficiency of the proposed approach. To enhance decarbonization potential, heat pump-based electrification strategies were assessed, including mechanical vapor recompression (MVR), flash vapor circulation (FVC), and FVC combined with bottom flashing (FVC-BP). Despite their low coefficient of performance, these strategies offer significant carbon reduction potential, achieving up to 95.5 % emission reductions in countries with low grid carbon intensity, such as Norway, and 54.3 % in countries with high grid carbon intensity, such as China.
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来源期刊
Separation and Purification Technology
Separation and Purification Technology 工程技术-工程:化工
CiteScore
14.00
自引率
12.80%
发文量
2347
审稿时长
43 days
期刊介绍: Separation and Purification Technology is a premier journal committed to sharing innovative methods for separation and purification in chemical and environmental engineering, encompassing both homogeneous solutions and heterogeneous mixtures. Our scope includes the separation and/or purification of liquids, vapors, and gases, as well as carbon capture and separation techniques. However, it's important to note that methods solely intended for analytical purposes are not within the scope of the journal. Additionally, disciplines such as soil science, polymer science, and metallurgy fall outside the purview of Separation and Purification Technology. Join us in advancing the field of separation and purification methods for sustainable solutions in chemical and environmental engineering.
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