Industrial Applications of Hybrid Separation Processes in Chemical Engineering
化学工学におけるハイブリッド分離プロセスの産業応用 (AI 翻訳)
Ritesh G Upadhyay, Urmila Vivek Chauhan
🤖 gxceed AI 要約
日本語
本レビューは、膜-蒸留、吸着-蒸留など複数の分離技術を組み合わせたハイブリッド分離プロセスを概説し、エネルギー消費削減とプロセス強化への貢献を評価する。石油化学から医薬品、食品、環境分野(廃水処理、炭素回収)までの産業事例を示し、持続可能な化学製造への可能性を強調する。
English
This review discusses hybrid separation processes combining membrane, adsorption, extraction, and distillation technologies to improve energy efficiency and process intensification in chemical engineering. It covers industrial cases from petrochemicals to pharmaceuticals and environmental applications like carbon capture, highlighting their role in sustainable manufacturing.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
化学産業は日本のGX(グリーントランスフォーメーション)における主要排出源であり、省エネ分離技術の導入はScope1・2排出削減に直結する。本稿はSSBJ開示における製造工程の環境負荷低減策の具体例として参照可能だが、政策連動性は低い。
In the global GX context
While hybrid separation processes are a proven path to energy-efficient manufacturing, their contribution to global GX goals is indirect. The paper's case studies on carbon capture and wastewater treatment align with ISSB's focus on climate risk mitigation and resource efficiency, but the review lacks quantitative decarbonization metrics.
👥 読者別の含意
🔬研究者:Catalogs process intensification configurations and materials integration; useful for identifying research gaps in low-carbon separation technologies.
🏢実務担当者:Provides industrial case examples of energy-saving hybrid systems that could be applied to reduce operational costs and GHG emissions.
📄 Abstract(原文)
Separation processes are energy intensive and a major contributor to operating costs in the chemical industry. This drives the need for more efficient and sustainable alternatives to conventional unit operations. Hybrid separation processes, which combine two or more separation techniques into a single process framework, have been developed as an effective strategy to overcome the limitations of individual separation methods. Hybrid systems, which combine complementary technologies such as membranes, adsorption, absorption, extraction, distillation, and reactive separations, can lead to improved selectivity, enhanced product purity, and significant reductions in energy demand and equipment size. This article describes the principles and industrial uses of hybrid separation processes in chemical engineering with a focus on their contribution to process intensification and sustainable manufacturing. The major hybrid configurations such as membrane-distillation, membrane-absorption, adsorption-distillation and extraction-distillation systems are reviewed in terms of their performance merits and operational challenges. Hybrid separation strategies are illustrated by industrial case studies ranging from petrochemical refining to pharmaceutical manufacturing, bioprocessing, food and beverage industries, and environmental applications such as wastewater treatment and carbon capture to demonstrate their practical benefits. The integration of advanced materials, process modelling, and digital optimization tools has further enhanced the feasibility and industrial adoption of hybrid separation technologies. Despite challenges related to process integration, scale-up, and economic evaluation, hybrid separation processes offer a viable pathway toward energy-efficient, low-carbon, and flexible chemical manufacturing. This review highlights current trends, challenges, and prospects, emphasizing the critical role of hybrid separation systems in the next generation of industrial chemical processes.
🔗 Provenance — このレコードを発見したソース
- semanticscholar https://doi.org/10.46610/joim.2026.v11i02.001first seen 2026-07-27 05:38:03
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