About: Separation process is a research topic. Over the lifetime, 4865 publications have been published within this topic receiving 68848 citations. The topic is also known as: separation & segregation.
TL;DR: The author’s review of the second edition of this book highlighted the need to consider the role of embodied materials in the separation process as well as the challenges faced in designing and implementing effective separation procedures.
Abstract: About the Authors. Preface to the Second Edition. Nomenclature. Dimensions and Units. PART ONE: FUNDAMENTAL CONCEPTS. Chapter 1. Separation Processes. Chapter 2. Thermodynamics of Separation Operations. Chapter 3. Mass Transfer and Diffusion. Chapter 4. Single Equilibrium Stages and Flash Calculations. Chapter 5. Cascades and Hybrid Systems. PART TWO: SEPARATIONS BY PHASE ADDITION OR CREATION. Chapter 6. Absorption and Stripping of Dilute Mixtures. Chapter 7. Distillation of Binary Mixtures. Chapter 8. Liquid-Liquid Extraction with Ternary Systems. Chapter 9. Approximate Methods for Multicomponent, Multistage Separations. Chapter 10. Equilibrium-Based Methods for Multicomponent Absorption, Stripping, Distillation, and Extraction. Chapter 11. Enhanced Distillation and Supercritical Extraction. Chapter 12. Rate-Based Models for Distillation. Chapter 13. Batch Distillation. PART THREE: SEPARATIONS BY BARRIERS AND SOLID AGENTS. Chapter 14. Membrane Separations. Chapter 15. Adsorption, Ion Exchange, and Chromatography. PART FOUR: SEPARATIONS THAT INVOLVE A SOLID PHASE. Chapter 16. Leaching and Washing. Chapter 17. Crystallization, Desublimation, and Evaporation. Chapter 18. Drying of Solids. Index.
TL;DR: It is expected that special wettability stimulated oil/water separation materials can achieve industrial scale production and be put into use for oil spills and industrial oily wastewater treatment in the near future.
Abstract: Oil spills and industrial organic pollutants have induced severe water pollution and threatened every species in the ecological system. To deal with oily water, special wettability stimulated materials have been developed over the past decade to separate oil-and-water mixtures. Basically, synergy between the surface chemical composition and surface topography are commonly known as the key factors to realize the opposite wettability to oils and water and dominate the selective wetting or absorption of oils/water. In this review, we mainly focus on the development of materials with either super-lyophobicity or super-lyophilicity properties in oil/water separation applications where they can be classified into four kinds as follows (in terms of the surface wettability of water and oils): (i) superhydrophobic and superoleophilic materials, (ii) superhydrophilic and under water superoleophobic materials, (iii) superhydrophilic and superoleophobic materials, and (iv) smart oil/water separation materials with switchable wettability. These materials have already been applied to the separation of oil-and-water mixtures: from simple oil/water layered mixtures to oil/water emulsions (including oil-in-water emulsions and water-in-oil emulsions), and from non-intelligent materials to intelligent materials. Moreover, they also exhibit high absorption capacity or separation efficiency and selectivity, simple and fast separation/absorption ability, excellent recyclability, economical efficiency and outstanding durability under harsh conditions. Then, related theories are proposed to understand the physical mechanisms that occur during the oil/water separation process. Finally, some challenges and promising breakthroughs in this field are also discussed. It is expected that special wettability stimulated oil/water separation materials can achieve industrial scale production and be put into use for oil spills and industrial oily wastewater treatment in the near future.
TL;DR: In this paper, the authors summarize the recent advances in Membrane distillation and provide perspectives for its future R&D, including membrane materials, module configurations, process applications and hybrid systems.
TL;DR: In this paper, a general review on different membrane processes and membrane reactors was done and the main aim of this paper is to review the application of membrane processes in petrochemical industry, processes such as olefin/paraffin separation, light solvent separation, solvent dewaxing, phenol and aromatic recovery, dehydrogenation, oxidative coupling of methane and steam reforming of methane were discussed in detail.
TL;DR: In this paper, a review of different types of membranes available for use including their working principles, current status and development which form the primary determinants of separation performance and efficiency is presented.