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Eutectics

The reaction is exothermic, and multitubular reactors are employed with indirect cooling of the reactor via a heat transfer medium. A number of heat transfer media have been proposed to carry out the reactor cooling, such as hot oil circuits, water, sulfur, mercury, etc. However, the favored heat transfer medium is usually a molten heat transfer salt which is a eutectic mixture of sodium-potassium nitrate-nitrite. [Pg.332]

Steam is by far the most widely used medium, useful up to about 475 K. Up to about 700 K organic liquids such as the dowtherms and mineral oil may be used. Mercury and molten salts, such as the eutectic mixture of sodium nitrite, sodium nitrate and potassium nitrate may be used up to 875 K, while above this temperature air and flue gases must be used. [Pg.201]

Roughness has important implications in wetting applications. While the eutectic solder, SnPb, normally forms a contact angle of 15-20° with copper, it completely wets the surface of rough electroplated copper and forms a fractal spreading front [69]. [Pg.359]

Substance is a eutectic mixture of two or more compounds. The chance of a given mixture containing two compounds... [Pg.1]

In just the proportion to give a sharp-melting eutectic mixture is so remote that this possibility may be neglected. [Occasionally arbitrary mixtures of two substances which (usually) are chemically related may melt fairly sharply at temperatures intermediate between the melting-points of the two components, but this phenomenon is rarely encountered.]... [Pg.2]

A somewhat different method of plotting the results will help the reader to appreciate the significance of the eutectic temperature. In Fig. 1,11, 2 melting points are plotted against composition. The curve AC portrays the decreasing melting point of a-naphthol as naphthalene is added up to a mol fraction of 0 605. The curve BG represents the... [Pg.24]

When freshly exposed to air, thallium exhibits a metallic luster, but soon develops a bluish-gray tinge, resembling lead in appearance. A heavy oxide builds up on thallium if left in air, and in the presence of water the hydride is formed. The metal is very soft and malleable. It can be cut with a knife. Twenty five isotopic forms of thallium, with atomic masses ranging from 184 to 210 are recognized. Natural thallium is a mixture of two isotopes. A mercury-thallium alloy, which forms a eutectic at 8.5% thallium, is reported to freeze at -60C, some 20 degrees below the freezing point of mercury. [Pg.144]

Quantitative studies of solid-state organic reactions were performed by Glazman (267. 268). Equal amounts of acetic anhydride and 2-aminothiazole (grain diameter 0.15 mm) were mixed for 20 rain, and the mixture was heated in a glycerol bath at 0.5°C per minute. Heating curves showed that the reaction starts in the solid phase the use of an eutectic composition of organic reactants increases the yields. [Pg.52]

A large number of thermodynamic studies of binary systems were undertaken to find and determine eventual intermolecular associations for thiazole Meyer et al. (303, 304) discovered eutectic mixtures for the following systems -thiazole/cyclohexane at -38.4°C, Wt = 0.815 -thiazole/carbon tetrachloride at -60.8°C, Mt = 0.46 -thiazole/benzene at -48.5°C, nr = 0.70. [Pg.87]

Saturation temperatures of sodium chloride dihydrate at these temperatures NaCl 2H2O separates leaving the brine of the eutectic composition (E). [Pg.445]

In Chap. 4 we discussed the crystallizability of polymers and the importance of this property on the mechanical behavior of the bulk sample. Following the logic that leads to Eq. (4.17), the presence of a comonomer lowers T for a polymer. Carrying this further, we can compare a copolymer to an alloy in which each component lowers the melting point of the other until a minimummelting eutectic is produced. Similar trends exist in copolymers. [Pg.469]

Fig. 7. (a) Impurity elements are rejected into the Hquid between the dendritic solidification fronts, (b) Corresponding impurity concentration profiles. Cq, weld metal composition k, impurity partitioning coefficient in the Hquid maximum impurity soHd solubiHty eutectic composition at grain... [Pg.346]

Ciyst lliz tion. Low temperature fractional crystallization was the first and for many years the only commercial technique for separating PX from mixed xylenes. As shown in Table 2, PX has a much higher freezing point than the other xylene isomers. Thus, upon cooling, a pure soHd phase of PX crystallizes first. Eventually, upon further cooling, a temperature is reached where soHd crystals of another isomer also form. This is called the eutectic point. PX crystals usually form at about —4° C and the PX-MX eutectic is reached at about —68° C. In commercial practice, PX crystallization is carried out at a temperature just above the eutectic point. At all temperatures above the eutectic point, PX is stiU soluble in the remaining Cg aromatics Hquid solution,... [Pg.417]

Eig. 2. SEM photomicrograph of poHshed section of neat eutectic alumina-2inconia abrasive grain showiag white 2inconia ia dark alumina matrix. [Pg.12]


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1.3.5- Trinitrobenzene eutectics with

Alloys eutectic temperatures

Amorphous eutectic composition

Amorphous eutectic temperature

Amorphous eutectic-type

And eutectics

Anomalous eutectic

Aromatic amine eutectic

Benzil-azobenzene, eutectic

Binary eutectic alloys

Binary eutectic system

Binary phase diagrams simple eutectic systems

Binary-phase diagram with eutectic formation

Braze eutectic alloys

Carbonate eutectic melt, physical properties

Chiral eutectic mixture

Chloramphenicol-urea eutectic

Chloramphenicol-urea eutectic mixture

Chlorides eutectic compositions

Composition, critical eutectic

Crystal growth eutectic

Crystallization eutectic point

DS eutectics

Deep eutectic mixture

Deep eutectic solvent

Deep eutectic solvents properties

Deep eutectic solvents toxicity

Deep eutectics

Deep eutectics solubilities

Deep eutective solvents

Development of Microstructure in Eutectic Alloys

Directly solidified eutectics

Disilicate quartz eutectic

Effect of applied pressure on the eutectic point

Electrodeposition eutectic-based ionic liquid

Emla (Eutectic Mixture of Local

Eutectic 368 INDEX

Eutectic Behavior

Eutectic Behaviour

Eutectic Crystallisation of pH Buffer Components

Eutectic Dynamic Melting

Eutectic Point Measurement

Eutectic alloying

Eutectic alloys

Eutectic and Eutectoid Systems

Eutectic arrays

Eutectic arrest

Eutectic batch melting with constant

Eutectic batch melting with linear change of

Eutectic binary

Eutectic bonding

Eutectic carbonate melt

Eutectic ceramics

Eutectic ceramics directionally solidified

Eutectic choline chloride based

Eutectic columns

Eutectic composites

Eutectic composition

Eutectic curve

Eutectic deformation

Eutectic diagram

Eutectic divorced

Eutectic dynamic melting with linear change of

Eutectic fiber

Eutectic fibre

Eutectic formation

Eutectic fractional melting with linear

Eutectic freezing

Eutectic fusion

Eutectic growth

Eutectic halt

Eutectic interfaces

Eutectic intergrowths

Eutectic isotherm

Eutectic lamellae

Eutectic line

Eutectic liquid

Eutectic local

Eutectic melt crystallization

Eutectic melt, physical properties

Eutectic melting

Eutectic melting reaction

Eutectic melting temperature

Eutectic mixture

Eutectic mixture of lidocaine and

Eutectic mixture of local anaesthetics

Eutectic mixture of local anesthetic

Eutectic mixture ternary

Eutectic mixture, formation

Eutectic mixtures liquids

Eutectic mixtures, definition

Eutectic mixtures, inorganic

Eutectic mixtures, simple, preparation

Eutectic phase

Eutectic phase behavior

Eutectic phase formation

Eutectic phase system

Eutectic point

Eutectic point calculation

Eutectic point ternary

Eutectic point, definition

Eutectic point, mandelic acid

Eutectic points solidification

Eutectic quaternary

Eutectic reaction

Eutectic salts

Eutectic solder bumps

Eutectic solders

Eutectic solidification

Eutectic solutions

Eutectic solvents

Eutectic structure

Eutectic suspensions

Eutectic system

Eutectic systems inorganic ionic liquids

Eutectic systems microstructure development

Eutectic systems water-salt

Eutectic temperature

Eutectic ternary

Eutectic tin-lead

Eutectic type

Eutectic value

Eutectic, grain boundary

Eutectic-based Ionic Liquids

Eutectic-forming mixtures, solute transfer

Eutectically solidifed ceramics

Eutectics and drug identification

Eutectics evaporation

Eutectics nitroglycerine

Eutectics transition from mixed crystals

Eutectics with

Formation of the Microstructure in Eutectics

Freezing eutectic temperature

Glycerol eutectic temperature

Heterogeneous eutectic melting

Ideal Binary Eutectic Phase System

Invariant eutectic point

Ionic eutectic-based

Ionic liquid eutectic

Krafft eutectic temperature

Lamellar eutectics

Lead—bismuth eutectic

LiCl-KCl eutectic

LiCl-KCl eutectic molten salt

Line, equilibrium eutectic

Liquid lead—bismuth eutectic

Low-melting eutectics

Mechanochemical Co-crystallisation Mediated by a Eutectic

Melt crystallization eutectic systems

Melting point eutectic

Metal—sulphide eutectics

Microstructure eutectic

Mixtures simple eutectic systems

Molten eutectic mixture

Monomers Eutectic

Na-K eutectic

NaCl-water eutectic system

Natural deep eutectic solvents

Nematic Eutectics

Nematic eutectic mixture

Nitrate eutectics

Nitrophenol, eutectics

Nitrotoluene, eutectics

Non-chloroaluminate eutectic mixture

Nonmodal (Eutectic) Batch Melting

Peritectic-eutectic reaction

Phase binary eutectics

Phase diagram binary eutectic

Phase diagrams binary eutectic systems

Phase diagrams eutectic

Phase diagrams eutectic binary solutions

Phase equilibria eutectic data

Phase equilibria eutectic point

Phosphate salts, eutectic solutions

Polymeric Eutectics

Simple eutectic systems

Simple ternary eutectic system

Solder eutectic composition

Solid-Liquid Equilibria of Simple Eutectic Systems

Solid-liquid equilibria The simple eutectic diagram

Solid-liquid systems phase diagram, eutectic binary

Solidification eutectic lamellae

Solidification of Off-Eutectic Systems

Solidification, directional eutectic

Solidified eutectic

Solubilities of alkali earth metal carbonates in KCl-NaCl eutectic

Subject eutectic

System eutectic point

System eutectic temperature

Systems that Exhibit Eutectic Behavior

Ternary eutectic temperature

Thermomigration in Eutectic Two-Phase Structures

Vapour, eutectic point

Water-salt eutectics

Zirconia Sensors Based on Shaped Eutectic Composites

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