Two-phase Systems

Two-phase systems are engineered processes or devices in which two distinct phases, such as liquid and gas, solid and liquid, or two immiscible liquids, coexist and interact. Their behavior depends on phase distribution, interfacial area, mass and heat transfer, and changes in pressure, temperature, or composition that can drive evaporation, condensation, boiling, or dissolution. Engineers use two-phase systems in heat exchangers, refrigeration equipment, chemical reactors, pipelines, and separation processes, where phase transitions can improve energy and material transport. Understanding flow patterns, pressure drop, and stability helps researchers design safer, more efficient systems and predict performance under changing operating conditions.

Two-phase Systems - Related Videos

Research

JoVE Journal - Bioengineering

Cell Co-culture Patterning Using Aqueous Two-phase Systems

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Cited by 32 •

2013

Aqueous two-phase systems were used to simultaneously pattern multiple populations of cells. This fast and easy method for cell patterning takes advantage of the phase separation of aqueous solutions of dextran and polyethylene glycol and the interfacial tension that exists between the two polymer solutions.

Education

JoVE Core - Physical Chemistry

Phase Diagrams of Ternary Systems

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2026

Consider a ternary system, which is composed of three components: water (W), ethanoic acid (E), and trichloromethane (T). Here, Ethanoic acid (E) is fully miscible with both water (W) and trichloromethane (T), meaning it can mix entirely with either of them. However, water and trichloromethane have partial miscibility, meaning they can only mix to a certain extent, beyond which two separate phases will form.The phase diagram of a ternary system is represented as an equilateral triangle, where...

Phase I Reactions: Oxidation of Aliphatic and Aromatic Carbon-Containing Systems

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2025

Phase I biotransformation reactions are integral to drug metabolism, predominantly involving oxidative, reductive, and hydrolytic transformations. Chief among these are oxidative reactions, which enhance the hydrophilicity of xenobiotics and introduce polar functional groups to facilitate their elimination from the body. Oxidation reactions are fundamental in aromatic carbon-containing systems. An example is the hydroxylation of phenobarbital, a process that transforms it into...

Phase I Reactions: Oxidation of Carbon-Heteroatom and Miscellaneous Systems

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2025

Oxidative reactions are pivotal in metabolizing numerous compounds, including pharmaceutical drugs. These reactions often occur in carbon-heteroatom systems, such as carbon-nitrogen, carbon-sulfur, and carbon-oxygen. In carbon-nitrogen systems, aliphatic and aromatic amines can undergo oxidative reactions. Secondary and tertiary amines, like those found in tricyclic antidepressants, can undergo N-dealkylation, a process that involves the oxidation of the alkyl group. In addition, oxidative...

High-pressure Sapphire Cell for Phase Equilibria Measurements of CO2/Organic/Water Systems

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2014

The high pressure sapphire cell apparatus is a unique tool to study, without sampling, phase behavior under a wide range of pressures. Using a cathetometer, very precise volume measurements can be recorded to measure liquid expansion and phase composition. Thus, this synthetic method enables the study of (1) phase equilibria of multi-component mixtures and (2) the partition behavior of catalyst or model compounds as a function of pressure.

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