Swapna Rekha Panda, Sudeep Asthana, Krunal Suthar, Arvind S. Madalgi, Amit Kumar, Haresh Dave, Rakesh Kumar Sinha, Koshal Kishor and Ahmad F. Ismail
{"title":"Process intensification in the fields to separate, recycle and reuse waste through membrane technology","authors":"Swapna Rekha Panda, Sudeep Asthana, Krunal Suthar, Arvind S. Madalgi, Amit Kumar, Haresh Dave, Rakesh Kumar Sinha, Koshal Kishor and Ahmad F. Ismail","doi":"10.1039/D4EW00306C","DOIUrl":null,"url":null,"abstract":"<p >Recycling and reusing wastewater from diverse industries by adopting the simple dynamics of process intensification (PI) have emerged as a promising development route for the chemical process industry due to their potential to offer innovative and sustainable alternatives. This review summarizes the routes for recycling wastewater <em>via</em> various processes and separation techniques, which can be implemented at different scales, such as the phenomenon scale and task scale. Recent trends in process intensification have highlighted the importance of the widespread adoption of membrane-based processes owing to their low cost, compactness, energy efficiency, modularity and sustainable operation. Various intensifying approaches such as membrane-based, reactive, and hybrid separation and the intensification of various types of membrane systems, including liquid, vapor and gas separation steps such as pervaporation and vapor permeation while covering a wide range of operations and other processes for wastewater treatment are presented in this review. According to the literature, the advantages of PI for industrial application include cost reduction, increased safety, reduced emissions and environmental footprint, and improved resource efficiency using energy and water resources more efficiently. Overall, herein, we provide a comprehensive overview of recycling and reusing steps using the process intensification route from an engineering perspective, focusing on sustainable membrane-based techniques using hybrid and integrated technology.</p>","PeriodicalId":3,"journal":{"name":"ACS Applied Electronic Materials","volume":null,"pages":null},"PeriodicalIF":4.3000,"publicationDate":"2024-06-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"ACS Applied Electronic Materials","FirstCategoryId":"93","ListUrlMain":"https://pubs.rsc.org/en/content/articlelanding/2024/ew/d4ew00306c","RegionNum":3,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, ELECTRICAL & ELECTRONIC","Score":null,"Total":0}
引用次数: 0
Abstract
Recycling and reusing wastewater from diverse industries by adopting the simple dynamics of process intensification (PI) have emerged as a promising development route for the chemical process industry due to their potential to offer innovative and sustainable alternatives. This review summarizes the routes for recycling wastewater via various processes and separation techniques, which can be implemented at different scales, such as the phenomenon scale and task scale. Recent trends in process intensification have highlighted the importance of the widespread adoption of membrane-based processes owing to their low cost, compactness, energy efficiency, modularity and sustainable operation. Various intensifying approaches such as membrane-based, reactive, and hybrid separation and the intensification of various types of membrane systems, including liquid, vapor and gas separation steps such as pervaporation and vapor permeation while covering a wide range of operations and other processes for wastewater treatment are presented in this review. According to the literature, the advantages of PI for industrial application include cost reduction, increased safety, reduced emissions and environmental footprint, and improved resource efficiency using energy and water resources more efficiently. Overall, herein, we provide a comprehensive overview of recycling and reusing steps using the process intensification route from an engineering perspective, focusing on sustainable membrane-based techniques using hybrid and integrated technology.
通过采用工艺强化(PI)这一简单的动态方法回收和再利用来自不同行业的废水,已成为化学工艺行业的一条具有发展前景的途径,因为它们具有提供创新和可持续替代品的潜力。本综述总结了通过各种工艺和分离技术回收利用废水的途径,这些工艺和分离技术可在不同规模(如现象规模和任务规模)上实施。由于膜工艺成本低、结构紧凑、能效高、模块化和可持续运行,最近的工艺强化趋势凸显了广泛采用膜工艺的重要性。本综述介绍了各种强化方法,如膜分离、反应分离和混合分离,以及各种类型膜系统的强化,包括液体、蒸汽和气体分离步骤,如渗透蒸发和蒸汽渗透,同时涵盖废水处理的各种操作和其他流程。根据文献资料,工业应用 PI 的优势包括降低成本、提高安全性、减少排放和环境足迹,以及提高资源效率,更有效地利用能源和水资源。总之,我们在此从工程学角度全面概述了使用工艺强化路线的回收和再利用步骤,重点介绍了使用混合和集成技术的可持续膜技术。