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Circulating liquor crystallizer

In circulating-liquor crystallizers, such as the Krystal-Oslo unit, supersaturation is created in what is essentially clear liquor. This clear liquor is then transported to the crystal bed where the supersaturation is released. [Pg.49]

In a circulating-liquor crystallizer, as the liquor flashes in the vapor head, it becomes supersaturated (path a-b). Ideally, the liquor will remain at a constant supersaturation (b-c) as it is transported to the seed bed. Spontaneous nucleation, however, will tend to lower the supersaturation (b-d). The remaining supersaturation is released on the crystals in the seed bed (d-e). As hot feed is mixed with the recirculating liquor, the mixture becomes unsaturated (e-a). The cycle recommences as the liquor is transferred to the vapor head. [Pg.54]

In circulating liquor crystallizers, only the liquor is circulated through the heating or cooling equipment the crystals are retained in suspension in the crystallizing zone by... [Pg.581]

Circulating liquor crystallizers and circulating magma crystallizers are used for the large-scale production of a wide range of crystal products. [Pg.582]

Many of these classes are self-explanatory, but some require definition. For example, the term controlled refers to supersaturation control. The term classifying refers to the production of a selected product size by classification in a fluidized bed of crystals. In a circulating-liquor crystallizer the crystals remain in the crystallization zone only the clear mother liquor is circulated, e.g., through a heat exchanger. In the circulating-magma crystallizer the crystals... [Pg.368]

An Oslo surface-cooled crystallizer is illustrated in Fig. 18-71. Supersaturation is developed in the circulated liquor by chilling in the cooler H. This supersaturated liquor is contacted with the suspension of ciystals in the suspension chamber at E. At the top of the suspension chamber a stream of mother hquor D can be removed to be used for fines removal and destruction. This feature can be added on either type of equipment. Fine ciystals withdrawn from the top of the suspension are destroyed, thereby reducing the overall number of ciys-tals in the system and increasing the particle size of the remaining product ciystals. [Pg.1667]

Figure 3.3 Agitated crystallizers (/) Swenson DTB Draft tube and baffle), (ii) Forced circulation (a) with and (b) without external heat exchange, in) Krystal Oslo a) circulating liquor b) circulating slurry... Figure 3.3 Agitated crystallizers (/) Swenson DTB Draft tube and baffle), (ii) Forced circulation (a) with and (b) without external heat exchange, in) Krystal Oslo a) circulating liquor b) circulating slurry...
Circulating liquor Production of uniform crystals (smaller size than circulating magma). High throughputs. Gypsum, inorganic salts, sodium and potassium nitrates, silver nitrates... [Pg.440]

In the saturator process (see Figure 12.7), neutralization and crystallization are carried out in the same vessel. The sulfuric acid is delivered to the suction side and the ammonia to the pressure side of the forced circulation pump. Crystallization of the metastable solution gives particle sizes generally between 0.5 and 3 mm. The salt is continuously discharged at the lower end of the saturator. The salt is separated in centrifuges, dried, and cooled. The mother liquor is returned to the saturator. Impurities in the sulfuric acid can adversely affect crystallization. Small quantities of phosphoric acid, urea, or inorganic salts are added to promote crystal growth295. [Pg.294]

The decrease in temperature due to flashing is typically less than 4 to 6°F, and the increase in solute concentration in me circulating liquor is often around 1 to 3 g/L solvent. Care must be taken to ensure that the liquid velocities in the tapered cross-section of the lower body allow classification of the solids. One must know the settling rates and morphologies of the crystals for proper design and operation. An unclassified operation will perform as an FC unit. [Pg.1987]

Figure 8.45. Oslo-Krystal evaporator types a) waisted, (b) and (c) monolithic. A and B, circulating liquor outlet and inlet C, vapour outlet D, crystal magma outlet E, liquor overflow. After Bamforth, 1965)... Figure 8.45. Oslo-Krystal evaporator types a) waisted, (b) and (c) monolithic. A and B, circulating liquor outlet and inlet C, vapour outlet D, crystal magma outlet E, liquor overflow. After Bamforth, 1965)...
There are two basic types, the waisted (a) and the monolithic (b and c). One advantage of the latter is that the conical downcomer, which joints the vaporizer and crystallizer sections and contains highly supersaturated (metastable) solution, is insulated from external conditions by mother liquor within the crystallizer. The circulating liquor inlet and outlet, A and B, are connected through a heat exchanger and pump. Liquor velocities of 1.5-2ms are commonly used through the tubes to minimize crystal depositions. [Pg.383]

The DTB crystallizer can also be operated as a conventional evaporator-crystallizer by incorporating a steam-heated heat exchanger in the clear liquor recycle line. In this case, however, an elutriating leg is not normally installed and the recycled hot liquor stream enters directly into the draft-tube. Detailed design calculations for a forced circulation evaporative crystallizer of the DTB type to produce 75ton/day of >200 pm urea crystals have been described by Bennett (1992). [Pg.387]

Note Purchaser should inform the manufacturer about the solubility of the (dissolved) sohd in the circulating liquor at different temperatures tendency to crystallise out and abrasive nature of the crystals. This is very important for selecting the MOC and size of the tubes in the calendria and the type of impellers of the circulation pump. [Pg.116]

Ammonium sulfate is produced as a caprolactam by-product from the petrochemical industry, as a coke by-product, and synthetically through reaction of ammonia with sulfuric acid. Only the third process is covered in our discussion. The reaction between anunonia and sulfuric acid produces an ammonium sulfate solution that is continuously circulated through an evaporator to thicken the solution and to produce ammonium sulfate crystals. The crystals are separated from the liquor in a centrifuge, and the liquor is returned to the evaporator. The crystals are fed either to a fluidized bed or to a rotary drum dryer and are screened before bagging or bulk loading. [Pg.64]


See other pages where Circulating liquor crystallizer is mentioned: [Pg.582]    [Pg.453]    [Pg.582]    [Pg.453]    [Pg.156]    [Pg.439]    [Pg.854]    [Pg.156]    [Pg.1674]    [Pg.437]    [Pg.581]    [Pg.905]    [Pg.188]    [Pg.121]    [Pg.368]    [Pg.369]    [Pg.375]    [Pg.382]    [Pg.65]    [Pg.328]    [Pg.1138]    [Pg.1665]    [Pg.1665]    [Pg.1665]    [Pg.1666]   
See also in sourсe #XX -- [ Pg.581 , Pg.583 ]




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