CA2844198C - Granulation method and system - Google Patents
Granulation method and system Download PDFInfo
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- CA2844198C CA2844198C CA2844198A CA2844198A CA2844198C CA 2844198 C CA2844198 C CA 2844198C CA 2844198 A CA2844198 A CA 2844198A CA 2844198 A CA2844198 A CA 2844198A CA 2844198 C CA2844198 C CA 2844198C
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- C—CHEMISTRY; METALLURGY
- C05—FERTILISERS; MANUFACTURE THEREOF
- C05C—NITROGENOUS FERTILISERS
- C05C3/00—Fertilisers containing other salts of ammonia or ammonia itself, e.g. gas liquor
- C05C3/005—Post-treatment
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J2/00—Processes or devices for granulating materials, e.g. fertilisers in general; Rendering particulate materials free flowing in general, e.g. making them hydrophobic
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- C—CHEMISTRY; METALLURGY
- C05—FERTILISERS; MANUFACTURE THEREOF
- C05D—INORGANIC FERTILISERS NOT COVERED BY SUBCLASSES C05B, C05C; FERTILISERS PRODUCING CARBON DIOXIDE
- C05D1/00—Fertilisers containing potassium
- C05D1/005—Fertilisers containing potassium post-treatment
-
- C—CHEMISTRY; METALLURGY
- C05—FERTILISERS; MANUFACTURE THEREOF
- C05D—INORGANIC FERTILISERS NOT COVERED BY SUBCLASSES C05B, C05C; FERTILISERS PRODUCING CARBON DIOXIDE
- C05D1/00—Fertilisers containing potassium
- C05D1/02—Manufacture from potassium chloride or sulfate or double or mixed salts thereof
-
- C—CHEMISTRY; METALLURGY
- C05—FERTILISERS; MANUFACTURE THEREOF
- C05D—INORGANIC FERTILISERS NOT COVERED BY SUBCLASSES C05B, C05C; FERTILISERS PRODUCING CARBON DIOXIDE
- C05D5/00—Fertilisers containing magnesium
-
- C—CHEMISTRY; METALLURGY
- C05—FERTILISERS; MANUFACTURE THEREOF
- C05G—MIXTURES OF FERTILISERS COVERED INDIVIDUALLY BY DIFFERENT SUBCLASSES OF CLASS C05; MIXTURES OF ONE OR MORE FERTILISERS WITH MATERIALS NOT HAVING A SPECIFIC FERTILISING ACTIVITY, e.g. PESTICIDES, SOIL-CONDITIONERS, WETTING AGENTS; FERTILISERS CHARACTERISED BY THEIR FORM
- C05G5/00—Fertilisers characterised by their form
- C05G5/10—Solid or semi-solid fertilisers, e.g. powders
- C05G5/12—Granules or flakes
-
- C—CHEMISTRY; METALLURGY
- C09—DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
- C09C—TREATMENT OF INORGANIC MATERIALS, OTHER THAN FIBROUS FILLERS, TO ENHANCE THEIR PIGMENTING OR FILLING PROPERTIES ; PREPARATION OF CARBON BLACK ; PREPARATION OF INORGANIC MATERIALS WHICH ARE NO SINGLE CHEMICAL COMPOUNDS AND WHICH ARE MAINLY USED AS PIGMENTS OR FILLERS
- C09C1/00—Treatment of specific inorganic materials other than fibrous fillers; Preparation of carbon black
- C09C1/44—Carbon
- C09C1/48—Carbon black
- C09C1/56—Treatment of carbon black ; Purification
- C09C1/58—Agglomerating, pelleting, or the like by wet methods
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- Organic Chemistry (AREA)
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- Inorganic Chemistry (AREA)
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- Pest Control & Pesticides (AREA)
- Glanulating (AREA)
Abstract
Description
GRANULATION METHOD AND SYSTEM
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application relates to and claims all benefit of United States Provisional Application serial number 61/771,256 filed March 1, 2013.
TECHNICAL FIELD
BACKGROUND
T
SUMMARY
and about 12%.
liquid binder may be fed into the granulator. Wet granule material may be discharged from the granulator.
powder storage unit may be configured to feed a graded powder into the granulator.
A liquid binder supply unit may be configured to feed a liquid binder into the granulator. The granulator may be configured to contact the graded powder and the liquid binder with one another to form a wet granule material. A screening unit may be configured to screen the wet granule material. A drying unit may be positioned downstream of the screening unit and configured to dry at least a portion of the wet granule material to form a dry granule material. =
[0011a] According to one aspect of the present invention, there is provided a granulation method comprising: feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of at least about 98% -115 mesh and at most about 50% -200 mesh; feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator wet granules comprising a moisture content of between about 7% and about 9%.
[0011b] According to another aspect of the present invention, there is provided a granulation method comprising: feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of between about 40% and about 80% -100 +150 mesh, between about 5% and about 30% -150 +200 mesh, and between about 10% and about 40% -200 +325 mesh; feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator a wet granule material.
[00110 According to still another aspect of the present invention, there is provided a granulation system comprising: a rotating pan granulator; a powder storage unit configured to feed a graded powder into the rotating pan granulator; a liquid binder supply unit configured to feed a liquid binder into the rotating pan granulator, the rotating pan granulator configured to rotationally contact the graded powder and the liquid binder with one another to form a wet granule material;
a screening unit configured to screen the wet granule material; and a drying unit positioned downstream of the screening unit and configured to dry at least a portion of the wet granule material to form a dry granule material.
[0011d] According to yet another aspect of the present invention, there is provided a granulation method for producing product granules having a median product particle size, the method comprising: feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of at least about 98% less than or equal to about 4.2% of the median product particle size and at most about 50% less than or equal to about 2.5% of the median product particle size; feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator wet granules comprising a moisture content of between about 7% and about 9%.
[0011e] According to a further aspect of the present invention, there is provided a granulation method for producing product granules having a median product particle size, the method comprising: feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of between about 40% and about 80% between about 3% and about 6% of the median product particle size, between about 5% and about 30% between about 2% and about 4% of the median product particle size, and between about 10% and about 40% between about 1% and about 3% of the median product particle size; feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator a wet granule material.
BRIEF DESCRIPTIONS OF THE DRAWINGS
3a
mesh size of the NPK seed used in the batch granulation of Example 3.
3b '
seed used in the batch granulation of Example 3.
DETAILED DESCRIPTION OF THE DRAWINGS AND THE PRESENTLY
PREFERRED EMBODIMENTS
bulk solid materials may have a solubility of less than about 40% or less than about 35% in water at standard temperature and pressure.
The fertilizer powder mix may be graded so that there are large aggregates, small aggregates, and micro aggregates, which may be bound together by a binder solution. The graded powder mix and the binder solution may combine to form a "concrete granule" as further described below. Additionally, or alternatively, the graded powder mix and the binder solution may combine on the surfaces of seed particles to form a "concrete layer" on the seed particles as further described below.
The seed particles may include particle sizes between 5 mesh and 50 mesh. This "concrete" may enable the product to have a high crush strength which in turn gives the granule great durability. The close packing of aggregate may enable the surface of the granules to be extremely smooth and uniform which lends itself to be superiorly coatable. This fertilizer may be easily blended with other granular fertilizers because of the superior size uniformity and sphericity.
two or more portions having different particle sizes. To that end, the feed screener 112, or any other screener or screening unit described herein, may be configured as any type of screening or classifying unit such as, for example, a shaker, a vibrating classifier, a vibrating screener, or an air classification unit. In one example, the feed screener 112 may separate the feedstock into three portions (e.g., oversize feedstock, seed material, and undersize feedstock) as shown in FIG. 1. Off size and/or irregular granules may be fed to the feed screener 112 as shown in FIG.
1.
The off size and/or irregular granules may be fed to the feed screener 112 with the feedstock or separately from the feedstock.
Additionally, or alternatively, the seed material may have a particle size distribution of at least about 75% -8 +14 mesh, typically at least about 80% -8 +14 mesh.
Throughout this disclosure, particle size distribution may refer to the weight of particles having a specified size or to a weight percent of particles having a specified size relative to the total weight of the particles.
Additionally, or alternatively, the seed material may have a particle size distribution of at least about 75% between about 45% and about 80% of the particle size of the finished product granules, typically at least about 80% between about 45% and about 80% of the particle size of the finished product granules.
Additionally, or alternatively, the oversize powder may be fed to the mill 114 or another milling unit to reduce the particle size of the oversize powder.
Additionally, or alternatively, the oversize powder may be fed to the feed screener 112. In any of the examples described herein, the oversize powder may be fed to an oversize powder storage unit for further processing.
Additionally, or alternatively, the small aggregate may have a particle size distribution of at least about 90% -150 +200 mesh, typically at least about 98% -150 +200 mesh, preferably 100% -150 +200 mesh. Additionally, or alternatively, the micro aggregate may have a particle size distribution of at least about 90% -200 +325 mesh, typically at least about 98% -200 +325 mesh, preferably 100% -200 +325 mesh. In this manner, the graded powder may have a particle size distribution of between about 40% and about 80%, typically between about 57% and about 67% -100 +150 mesh; between about 5% and about 30%, typically between about 7% and about 17% -150 +200 mesh; and between about 10% and about 40%, typically between about 21% and about 31% -200 +325 mesh. The use of graded powder including large aggregate, small aggregate, and micro aggregate in predetermined proportions may aid in producing a granule having desirable properties (e.g., bulk density, hardness, sphericity, durability, blendability, and/or coatability) as further described below.
and about 6% of the particle size of the finished product granules.
Additionally, or alternatively, the large aggregate may have a particle size distribution of at least about 90% between about 3% and about 6% of the particle size of the finished product granules, typically at least about 98% between about 3% and about 6% of the particle size of the finished product granules.
Additionally, or alternatively, the small aggregate may have a particle size distribution of at least about 90% between about 2% and about 4% of the particle size of the finished product granules, typically at least about 98% between about 2%
and about 4% of the particle size of the finished product granules.
Additionally, or alternatively, the micro aggregate may have a particle size distribution of at least about 90% between about 1% and about 3% of the particle size of the finished product granules, typically at least about 98% between about 1`)/0 and about 3% of the particle size of the finished product granules.
and about 4% of the particle size of the finished product granules; and between about 10% and about 40%, typically between about 21% and about 31% between about 1% and about 3% of the particle size of the finished product granules.
The graded powder may act as the "concrete." The "concrete" may include an improved mixture of powder sizes compared to conventional granulation processes. For example, the graded powder may have a particle size distribution having a relatively large amount of large aggregate (e.g., -100 +150 mesh material). The large aggregate may be blended with small aggregate (e.g., -150 +200 mesh material) and micro aggregate (e.g., -200 +325 mesh material). When large aggregate particles are next to each other, voids may be formed between adjacent large aggregate particles. These voids may be filled with small aggregate as shown in FIG. 2.
In this manner, the voids may be made effectively smaller. The smaller voids may be filled with micro aggregate also as shown in FIG. 2. The binder solution may act as the "cement" to bind the "concrete" together. This filling of voids in combination with the use of a saturated solution may enable the granules to be effectively free of voids.
This blended powder mix may act as a concrete mix in which the coarse aggregate is supported by the smaller aggregate and the smaller aggregate is supported by an even smaller aggregate, with the various aggregates bound together by the cement.
The strength of the concrete may be a result of the aggregates carrying the weight instead of the cement. This close intramolecular bonding may enable the granules to have superior physical properties such as, for example, hardness, density, and surface smoothness when compared to conventional granules. Although a smaller powder blend (e.g., having a particle size distribution of less than 15% +200 mesh, 20-30% +325 mesh, and 70-80% -325 mesh) may be capable of producing a smooth granule, such a granule may lack the strength of a graded powder blend granule as described herein.
Additionally, or alternatively, the fines may have a particle size distribution of at least about 75% less than or equal to about 1.5% of the particle size of the finished product granules, typically at least about 80% less than or equal to about 1.5% of the particle size of the finished product granules.
The saturated solution may enable the granules to have very high crush strengths.
For example, performing otherwise identical granulation processes using water vs.
saturated solution as the liquid binder shows crush strengths of the granules produced using saturated solution to be approximately double that of the granules produced using water. The saturated solution may cause the aggregate material to bind more effectively and/or reduce pores when the product is dried. Without wishing to be bound by theory, it is believed that use of a highly saturated solution as the liquid binder enables the high strength values because the saturated solution binds each individual powder crystal together in an ionic bonded crystal lattice and/or binds the powder to the seed crystal in a similar manner. This may provide granule crush strengths of at least about 9 lb, typically between about 9 lb and about 11 lb measured using 3 mm particles.
For example, wet undersize recycle material may be discharged directly into the granulator 126 at any suitable location. Additionally, or alternatively, dry undersize recycle material may be discharged directly into the granulator 126 at any suitable location. Additionally, or alternatively, the wet undersize recycle material and/or the dry undersize recycle material may be discharged into the seed storage unit 116 and fed to the granulator 126 with the seed material as shown in FIG. 1.
Additionally, or alternatively, the wet undersize recycle material may be discharged into a wet recycle storage unit (not shown). The wet recycle storage unit may include a vessel (e.g., a tank or a hopper) and/or a conveying unit (e.g., a weigh belt feeder or screw feeder). The wet undersize recycle material may be metered from the wet recycle storage unit and fed to the granulator 126 separately from the seed material.
Additionally, or alternatively, the undersize wet granule material may have a particle size distribution of at least about 75% less than or equal to about 80% of the particle size of the finished product granules, typically at least about 80% less than or equal to about 80% of the particle size of the finished product granules.
The product/oversize wet granule material may have a particle size of between about 2.3 mm and about 4.8 mm. The particle size of the product/oversize wet granule material and/or the particle size of the finished product granules may be a median particle size. Additionally, or alternatively, the product/oversize wet granule material may have a particle size distribution of at least about 75% between about 79%
and about 160% of the particle size of the finished product granules, typically at least about 80% between about 79% and about 160% of the particle size of the finished product granules.
wet granule screener 128 to the drying unit 130 without any additional processing.
For example, the product/oversize wet granule material may be fed directly from the wet granule screener 128 to the drying unit 130 via a conveying unit without passing through any type of rotary drum, mixer, or any other processing unit. The dry granule material exiting the drying unit 130 may have a moisture content of less than about 0.5%, typically less than about 0.1%.
Reducing the amount of material that passes through the drying unit may reduce the amount of energy used by the drying unit to dry the material.
_
of the particle size of the finished product granules. In one example, the particle size of the finished product granules may be about 3 mm. The undersize dry granule material 'A
may have a particle size of at most about 2 mm. The particle size of the undersize dry granule material and/or the particle size of the finished product granules may be a median particle size. Additionally, or alternatively, the undersize dry granule material may have a particle size distribution of at least about 75% less than or equal to about 67% of the particle size of the finished product granules, typically at least about 80% less than or equal to about 67% of the particle size of the finished product granules.
Milled dry granule material may exit the mill 114 and be fed to the feed screener 112 to return the dry granule material to the feed screener 112 for further processing.
The product storage unit 134 may include a tank or a vessel to store the product granule material. The product granule material may include particles having the desired size. In one example, the product granule material may have a particle size distribution of at least about 98% -4 mesh. Additionally, or alternatively, the dry granule material may have a particle size distribution of at most about 25% -8 mesh, typically at most about 20% -8 mesh, preferably at most about 16% -8 mesh.
For example, the size of the granules may be customized for a particular application so as to be blended without substantial segregation.
compaction plant industry. For example, the high recycle rates of compaction plants may be greatly reduced by the incorporation of the process on the tail end of the compaction plant. In other words, material that would otherwise be recycled within the compaction plant may instead be granulated as described herein (e.g., may be used as feedstock for the system described herein). This may substantially reduce the amount of recycle associated with the compaction process and/or effectively increase the capacity of the compaction plant.
heated stream of air and a sufficient amount of solution to wet the surface of the granules may be added to the smooth pan or drum. The granules may be effectively slicked (e.g., by the granule to granule contact and/or the smoothness of the device).
The resulting granules may have a slicked surface finish which is shiny and appears candy coated. Such a slicked surface may make a superior coatable material.
This may enable the granules to have a decreased surface area relative to the volume of the granules. The granules may be coated using any suitable coating technique known in the art. Such granules may be used, for example, for timed release fertilizers, event release fertilizers, or animal feeds. The reduced surface area of the granules may minimize the amount of coating material that is required to coat the granules.
EXAMPLES
Example 1
Table 1: Particle Size Distribution of Seed Particles Seed PSD
Mesh Mesh Avg.Mass Cumulative Particle Mass Width Width Diameter Fraction Retained Percent (mm) (Tyler) (mm) (lb) Passing 2.38 8 2.595 0 0 100 1.68 10 1.68 0.76 76.2 23.8 1.2 14 1.2 0.24 23.8 0
Table 2: Particle Size Distribution of MOP Powder Powder PSD
Mesh Mesh Avg.Mass M Cumulative Particle ass Width Width Retained Percent Diameter Fraction (mm) (Tyler) (mm) (lb) Passing 0.152 100 >0.139 0 0 100 0.125 115 0.1385 0.4 36.725 63.275 0.104 150 0.1145 0.58 53.654 9.621 0.089 170 0.0965 0.02 1.573 8.048 0.075 200 0.082 0.02 1.85 6.198 0.066 250 0.0705 0.06 5.273 0.925 0.037 pan <0.055 0.01 0.925 0 1.08
The binder solution is filtered and placed in a heated spray pot at 217 F and 30 psi.
The binder solution spray and MOP powder feed to the pan granulator are started simultaneously. The granulator runs for 5.5 min. Table 3 shows the operating parameters and the properties of the granules produced using the batch granulation of Example 1. 1.075 lb of granulated material is removed to dry and is not included in the weights given in Table 3. The bulk density of the dry granules produced using the batch granulation of Example 1 is shown in Table 4.
Table 3: Operating Parameters of Batch Granulation and Properties of Wet Granules Seed Weight 1 lb Powder Weight 2.993 lb Solution Recipe 0.373 lb KCI / 0.672 lb H20 Solution Concentration (wt KCI / wt 55.5%
water) Solution Temperature 217 F
Pan Angle 50 Pan Speed 41 rpm Pan Diameter 11 in Pan Depth 4.625 in Start Time (min:sec) 0:00 Solids Application End Time (min:sec) 5:30 Nozzle Size 650017 Spray Pressure 30 psi Total Solution Sprayed 0.881 lb Over Size (+5 mesh) 0.156 lb Product Size (-5 +8 mesh) 4.318 lb Under Size (-8 mesh) 0.122 lb Stuck to Pan 0.117 lb Average Moisture Content 11.3%
Average Dry Granule Hardness 10.8 lb , Table 4: Dry Granule Bulk Density Dry Granule Bulk Density Untapped Tapped Measurement g/mL lb/ft3 g/mL lb/ft3 No.
1 0.935 58 0.921 57 2 0.932 58 0.913 57 3 0.921 57 0.908 57 4 0.932 58 0.92 57 0.934 58 0.924 58 Avg 58.11 57.26
mesh size of the MOP powder used in the batch granulation of Example 1. FIG. 6 illustrates a plot of the mass `3/0 retained vs. mesh size of the MOP seed used in the batch granulation of Example 1.
Example 2
The pan granulator is set at a speed of 17 rpm and an angle of 50 . 29 lb of potash seed particles (e.g., MOP seed) is screened to -8 +16 Tyler. A weight belt feeder is filled with the -8 +16 Tyler seed. The particle size distribution of the seed particles is shown in Table 5.
Table 5: Particle Size Distribution of Seed Particles Seed PSD
Mesh Mesh Avg.Mass Measurement No. Width Width Particle Retained Mass Cumulative (mm) (Tyler) Diameter (lb) Fraction Fraction (mm) 2.81 7 >3.08 0 0 1 2.38 8 2.595 0.03 0.037 0.963 1.68 10 1.68 0.33 0.398 0.565 1 1.2 14 1.2 0.36 0.434 0.131 1 16 1.1 0.06 0.074 0.057 0.853 20 <0.926 0.05 0.057 0 2.81 7 >3.08 0 0 1 2.38 8 2.595 0.03 0.038 0.962 1.68 10 1.68 0.26 0.366 0.597 2 1.2 14 1.2 0.32 0.445 0.152 1 16 1.1 0.06 0.086 0.065 0.853 20 <0.926 0.05 0.065 0 - 2.81 7 >3.08 0 0 1 2.38 8 2.595 0.02 0.028 0.972 1.68 10 1.68 0.24 0.378 0.594 3 1.2 14 1.2 0.28 0.435 0.159 1 16 1.1 0.06 0.09 0.069 0.853 20 <0.926 0.04 0.069 0 2.81 7 >3.08 0 2.38 8 2.595 0.034 1.68 10 1.68 0.381 Avg 1.2 14 1.2 0.438 1 16 1.1 0.083 0.853 20 <0.926 0.064
= , Table 6: Particle Size Distribution of Potash Powder Powder PSD
Mesh Mesh Avg.Mass Measurement No. Width Width Particle Retained Mass Cumulative (mm) (Tyler) Diameter (lb) Fraction Fraction (mm) 0.152 100 >0.139 0 0 1 0.125 115 0.1385 1.5 0.012 0.988 0.104 150 0.1145 74.7 0.609 0.379 1 0.089 170 0.0965 5 0.041 0.338 0.075 200 0.082 9.38 0.077 0.261 0.066 250 0.0705 . 11.83 0.096 0.165 0.037 pan <0.055 20.2 0.165 0 0.152 100 >0.139 0 0 1 0.125 115 0.1385 2.25 0.017 0.983 0.104 150 0.1145 80.18 0.618 0.364 2 0.089 170 0.0965 4.81 0.037 0.327 0.075 200 0.082 10.45 0.081 0.247 0.066 250 0.0705 14.91 0.115 0.132 0.037 pan <0.055 17.1 0.132 0 0.152 100 >0.139 0 0 1 0.125 115 0.1385 1.94 0.015 0.985 0.104 150 0.1145 75.49 0.598 0.386 3 0.089 170 0.0965 6.78 0.054 0.333 0.075 200 0.082 8.85 0.07 0.262 0.066 250 0.0705 13.12 0.104 0.158 0.037 pan <0.055 19.98 0.158 0 0.152 100 >0.139 0 0.125 115 0.1385 0.015 0.104 150 0.1145 0.609 Avg 0.089 170 0.0965 0.044 0.075 200 0.082 0.076 0.066 250 0.0705 0.105 0.037 pan <0.055 0.152
The binder solution is filtered and placed in a heated spray pot at 212 F and 15 psi.
The powder screw feeder, the seed belt feeder, and the spray pot are all started at = ' =
the same time. The plant is run for 1.5 hr total. The seed feeder is run at 24.36 lb/hr. The powder feeder is run at 114.65 lb/hr. The spray pot is run at 19.71 lb/hr. The average wet granule moisture content is 8.23%. The average dry granule crush strength from the dryer is 11 lb/granule. The average dry granule crush strength after 72 hr on the counter (e.g., at ambient conditions) is 9.1 lb/granule. The particle size distribution of the wet granules is as follows: 15.1 lb of oversize (+5 mesh) granules, 92.05 lb of product size (-5 +8 mesh) granules, 28.15 lb of undersize (-8 mesh) granules, and 26 lb stuck to the pan. The bulk density of the seed particles is shown in Table 7. The bulk density of the potash powder is shown in Table 8. The bulk density of the dry granules produced using the continuous granulation of Example 2 is shown in Table 9. The particle size distribution of the wet granules is shown in Table 10. The particle size distribution of the dry granules is shown in Table 11.
Table 7: Seed Particle Bulk Density Seed Particle Bulk Density Untapped Tapped Measurement g/mL lb/ft3 g/mL lb/ft3 No.
1 0.994 62.08 1.054 65.8 2 1.015 63.34 1.049 65.5 3 0.997 62.25 1.082 67.54 4 1.009 62.99 1.081 67.49 0.982 61.28 1.07 66.8 Avg 62.39 66.62 Table 8: Potash Powder Bulk Density Potash Powder Bulk Density Untapped Tapped Measurement g/mL lb/ft3 g/mL lb/ft3 No.
1 0.748 46.69 0.996 62.2 2 0.748 46.66 0.997 61.02 3 0.917 57.23 0.98 61.18 4 0.776 48.43 0.961 59.99 5 0.837 52.24 0.968 60.4 Avg 50.25 60.96 a , =
Table 9: Dry Granule Bulk Density Dry Granule Bulk Density Untapped Tapped Measurement No. g/mL I b/ft3 g/mL I b/ft3 1 0.961 60 0.972 61 2 0.976 61 0.998 62 3 0.994 62 1.006 63 4 0.991 62 0.964 60 0.977 61 0.975 61 Avg 61.17 61.37 Table 10: Particle Size Distribution of Wet Granules Mesh Granule Measurement % of Width PSD
No. total (Tyler) (lb) 5 0.022 2.83 6 0.096 12.36 7 0.386 49.68 8 0.237 30.5 pan 0.036 4.63 Total 0.777 5 0.017 1.87 6 0.104 11.42 7 0.421 46.21 8 0.327 35.89 pan 0.042 4.61 Total 0.911 Table 11: Particle Size Distribution of Dry Granules Mesh Width Granule PSD
% of total (Tyler) (lb) 5 0.011 0.65 6 0.13 7.68 7 0.548 32.39 8 0.743 43.91 pan 0.26 15.37 Total 1.692 õ = =
FIG. 10 illustrates a plot of the % mass retained vs. mesh size of the MOP
seed used in the continuous granulation of Example 2.
Example 3
The rest of the powder charge is added to the rolling bed while the spray is running.
The granulator runs for approximately 10 minutes. Half of the resulting granules is bagged wet and the other half is left in the granulator to be dried. The granules are dried in the same pan at the same speed with a heat gun and Bunsen burner. The burner is pointed toward the pan shell. The wet granule moisture content is 7.5%.
The average dry granule crush strength of a 3 mm granule from the dryer is 6.9 lb.
The total solution used is 0.248 lb. The particle size distribution of the dry granules is as follows: 0.185 lb of oversize (+5 mesh) granules, 0.334 lb of product size (-5 +8 mesh) granules, and 0.424 lb of undersize (-8 mesh) granules. The particle size distribution of the seed particles is shown in Table 12. The particle size distribution of the powder is shown in Table 13.
. =
Table 12: Particle Size Distribution of Seed Particles Mesh Width (Tyler) Granule PSD (lb) 14 0.3 16 0.1 20 0.1 Table 13: Particle Size Distribution of Powder Mesh Width (Tyler) Granule PSD (lb) 100 0.091 115 0.133 150 0.102 170 0.104 200 0.035 250 0.03 Pan 0.022
Example 4
The solution is then weighed before being placed in a heated spray pot at 212 F and 17 PSI. 28.19 lbs of bed material was placed in the rotating pan. The powder screw feeder, the seed belt, and the spray pot were all started at the same time. A
timer was started. Feed rates and spray pressures were recorded throughout the experiment. Samples were taken every five minutes after steady state was reached.
Forty minutes into the test, the -10+20 seed was replaced with -8+16 seed.
This = , .
second seed PSD is located in Table 14B. The test was run for a total of 55 minutes. The seed feeder ran a total of 31.2 lbs of seed; 24.47 lbs -10+20 and 6.735 lbs -8+16 (34 lbs/hr). The powder feeder ran a total of 138 lbs of powder (150.5 lbs/hr). The solution spray pot fed a total of 30.24 lbs of solution (33 lbs/hr). The average wet granule moisture content was 9.8 %. The average dry granule crush strength was 10.9 lbs. The particle size distribution of the wet granules was as follows: 1.045 lbs of oversize (+5 mesh) granules, 95.91 lbs of product size (-5+8 mesh) granules, 53.67 lb undersize (-8 mesh) granules, and 37 lbs stuck to the pan.
The wet granule and dry granule particle size distributions are given in Tables 16 and 17, respectively.
Table 14A: Particle Size Distribution of -8+16 Seeds Mesh Mm Mass Retained % Retained Cumulative % Passing 8 2.360 0.034 12.93 87.07 1.700 0.196 48.55 38.52 14 1.180 0.257 13.50 25.02 16 1.000 0.054 19.87 5.15 = Pan 0.000 0.047 5.15 0.00 0.588 Table 14B: Particle Size Distribution of -10+20 Seeds Mesh Mm Mass Retained % Retained Cumulative % Passing 8 2.360 0.138 12.93 87.07 10 1.700 0.518 48.55 38.52 14 1.180 0.144 13.50 25.02 16 1.000 0.212 19.87 5.15 Pan 0.000 0.055 5.15 0.00 1.067 Table 15: Particle Size Distribution of Powder Mesh Mm Mass Retained % Retained Cumulative % Passing 100 0.150 4.50 3.2 96.8 150 0.106 32.35 23.2 73.6 200 0.075 42.96 30.8 42.8 250 0.063 17.19 12.3 30.5 325 0.045 20.32 14.6 16.0 Pan 0.000 22.32 16.0 0.0 139.60 =
Table 16: Particle Size Distribution of Wet Granules Mesh Mm Mass Retained % Retained Cumulative A. Passing 4.00 0 0.00 100.00 6 3.35 0.043 4.23 95.77 7 2.80 0.331 32.58 63.19 8 2.36 0.461 45.37 17.81 Pan 0.00 0.181 17.81 0.00 1.016 Table 17: Particle Size Distribution of Dried Granules Mesh Mm Mass Retained % Retained Cumulative % Passing 5 4.00 0 0.00 100.00 6 3.35 0.027 3.08 96.92 7 2.80 0.211 24.09 72.83 8 2.36 0.369 42.12 30.71 Pan 0.00 0.269 30.71 0.00 0.876
The pan was set at 14rpm's and at an angle of 55 . A belt feeder is filled with -8+16 seed particles. The particle size distribution is shown in Table 18. A screw feeder is then filled with graded powder mix. The particle size distribution of the graded powder is shown in Table 19. 10.04 lbs of potash was dissolved in 23.4 lbs of water to form a binder solution. The solution is heated until dissolved and then filtered. It is then weighed before being placed in a heated spray pot at 212 F and 20 PSI.
21.625 lbs of bed material was placed in the rotating pan. The powder screw feeder, the seed belt, and the spray pot were all started at the same time. A timer was started. Feed rates and spray pressures were recorded throughout the experiment.
Samples were taken every five minutes after steady state was reached. The test was run for a total of 63 minutes. The seed feeder ran a total of 35.185 lbs of seed (33.5 lbs/hr.). The powder feeder ran a total of 130 lbs of powder (123.8 lbs/hr.).
The solution spray pot fed a total of 30.525 lbs of solution (29.07 lbs/hr.).
The average wet granule moisture content was 10.65%. The average dry granule crush strength was 10.2 lbs. The particle size distribution of the wet granules was as follows: 1.585 lbs of oversize (+5mesh) granules, 140.05 lbs of product size (-5+8 mesh) 5.985 lbs of undersize (-8 mesh) granules, and 15 lbs stuck to the pan.
The . . , wet granule and dry granule particle size distributions are given in Tables 20 and 21, respectively.
Table 18: Particle Size Distribution of -8+16 Seeds Mesh Mm Mass Retained % Retained Cumulative % Passing 8 2.360 0.022 3.22 96.78 1.700 0.243 35.58 61.20 14 1.180 0.307 44.95 16.25 16 1.000 0.074 10.83 5.42 Pan 0.000 0.037 5.42 0.00 0.683 Table 19: Particle Size Distribution of Powder Mesh Mm Mass Retained % Retained Cumulative c/o Passing 100 0.150 2.95 1.6 98.4 150 0.106 83.825 45.5 52.9 200 0.075 28.475 15.5 37.4 250 0.063 14.405 7.8 29.6 325 0.045 21.515 11.7 17.9 Pan 0.000 32.92 17.9 0 184.09 Table 20: Particle Size Distribution of Wet Granules Mesh Mm Mass Retained % Retained Cumulative % Passing 5 4.00 0 0.00 100.00 6 3.35 0.216 20.30 79.70 7 2.80 0.637 59.87 19.83 8 2.36 0.173 16.26 3.57 Pan 0.00 0.038 3.57 0.00 1.064 Table 21: Particle Size Distribution of Dry Granules Mesh Mm Mass Retained % Retained Cumulative % Passing 5 4.00 0 0.00 100.00 6 3.35 0.062 7.26 92.74 7 2.80 0.443 51.87 40.87 8 2.36 0.234 27.40 ___________ 13.47 Pan 0.00 0.115 13.47 0.00 0.854
equivalents. Drawings in the figures illustrating various embodiments are not necessarily to scale. Some drawings may have certain details magnified for emphasis, and any different numbers or proportions of parts should not be read as limiting unless so-designated in the present disclosure. Those skilled in the art will appreciate that embodiments not expressly illustrated herein may be practiced within the scope of the present invention, including those features described herein for different embodiments, which may be combined with each other and/or with currently-known or future-developed technologies while remaining within the scope of the claims presented herein. Moreover, the advantages described herein are not necessarily the only advantages of the invention and it is not necessarily expected that every embodiment of the invention will achieve all of the advantages described.
Claims (22)
feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of at least about 98% -115 mesh and at most about 50% -200 mesh;
feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator wet granules comprising a moisture content of between about 7% and about 9%.
feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of between about 40% and about 80% -100 +150 mesh, between about 5% and about 30% -150 +200 mesh, and between about 10% and about 40% -200 +325 mesh;
feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator a wet granule material.
a rotating pan granulator;
a powder storage unit configured to feed a graded powder into the rotating pan granulator;
a liquid binder supply unit configured to feed a liquid binder into the rotating pan granulator, the rotating pan granulator configured to rotationally contact the graded powder and the liquid binder with one another to form a wet granule material;
a screening unit configured to screen the wet granule material; and a drying unit positioned downstream of the screening unit and configured to dry at least a portion of the wet granule material to form a dry granule material.
feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of at least about 98% less than or equal to about 4.2% of the median product particle size and at most about 50% less than or equal to about 2.5% of the median product particle size;
feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator wet granules comprising a moisture content of between about 7% and about 9%.
feeding a graded powder into a rotating pan granulator, the graded powder comprising a particle size distribution of between about 40% and about 80%
between about 3% and about 6% of the median product particle size, between about 5% and about 30% between about 2% and about 4% of the median product particle size, and between about 10% and about 40% between about 1% and about 3% of the median product particle size;
feeding a liquid binder into the rotating pan granulator during rotation of the rotating pan granulator; and discharging from the rotating pan granulator a wet granule material.
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| US9476547B2 (en) | 2012-12-28 | 2016-10-25 | Suncoke Technology And Development Llc | Exhaust flow modifier, duct intersection incorporating the same, and methods therefor |
| DE102014014100A1 (en) * | 2014-09-30 | 2016-03-31 | K + S Kali Gmbh | Process for the preparation of potassium sulfate granules and the potassium sulphate granules obtained therefrom, and the use thereof |
| DE102014014099A1 (en) * | 2014-09-30 | 2016-03-31 | K + S Kali Gmbh | Process for the preparation of potassium sulfate granules and the potassium sulphate granules obtained therefrom, and the use thereof |
| FR3031742B1 (en) | 2015-01-21 | 2016-12-23 | Ab7 Innovation | PROCESS FOR THE PRODUCTION OF A HYDRO- AND / OR LIPO-ABSORBENT NON-POROUS COMPOSITE MATERIAL OF LIQUID ACTIVE COMPOSITIONS |
| US10450239B2 (en) * | 2016-03-22 | 2019-10-22 | Dead Sea Works Ltd. | Spherical fertilizers and process for the production thereof |
| CN109843834A (en) | 2016-10-22 | 2019-06-04 | 死海工程有限公司 | Binder for fertilizer granulation |
| UA125464C2 (en) | 2016-12-17 | 2022-03-16 | Дед Сі Воркс Лтд. | Process for production of potassium sulphate and magnesium sulphate from carnallite and sodium sulphate |
| US10894749B2 (en) | 2017-02-10 | 2021-01-19 | Icl Europe Cooperatief U.A. | Polyhalite granulation process |
| US10519072B2 (en) * | 2017-02-23 | 2019-12-31 | Produquímica Indústria E Comércio S.A. | Multi-nutrient granular fertilizer compositions and methods of using the same |
| GB2560026A (en) | 2017-02-27 | 2018-08-29 | Sirius Minerals Plc | Forming evaporite mineral products |
| GB2560025A (en) * | 2017-02-27 | 2018-08-29 | Sirius Minerals Plc | Forming evaporite mineral products |
| GB2560027B (en) | 2017-02-27 | 2022-09-07 | York Potash Ltd | Forming evaporite mineral products |
| CN107285934A (en) * | 2017-08-24 | 2017-10-24 | 湖北紫荆生物技术有限公司 | A kind of aquaculture shield grass particle and preparation method thereof |
| WO2019167036A1 (en) | 2018-02-27 | 2019-09-06 | Dead Sea Works Ltd. | Potash dust granulation process |
| CN108786655A (en) * | 2018-06-07 | 2018-11-13 | 国投新疆罗布泊钾盐有限责任公司 | A method of it improving potassium sulfate and is granulated intensity |
| IL283118B2 (en) | 2018-11-23 | 2026-03-01 | ICL Europe Cooperatief UA | Compacted polyhalite and a process for the production thereof |
| WO2021225988A1 (en) | 2020-05-03 | 2021-11-11 | Suncoke Technology And Development Llc | High-quality coke products |
| RU2768176C2 (en) * | 2021-04-01 | 2022-03-23 | Общество с ограниченной ответственностью "ДЖИЭСЭМ КЕМИКЭЛ" | Method for continuous granulation of water-soluble solid substances |
| MX2023013069A (en) | 2021-05-04 | 2023-12-14 | Suncoke Tech & Development Llc | FOUNDRY COKE PRODUCTS AND ASSOCIATED SYSTEMS AND METHODS. |
| US11851724B2 (en) | 2021-11-04 | 2023-12-26 | Suncoke Technology And Development Llc. | Foundry coke products, and associated systems, devices, and methods |
| WO2025111437A1 (en) | 2023-11-21 | 2025-05-30 | Suncoke Technology And Development Llc | Flat push hot car for foundry coke and associated systems and methods |
| WO2025122901A1 (en) * | 2023-12-06 | 2025-06-12 | Suncoke Technology And Development Llc | Milling systems and methods for producing materials with a particular particle size distribution |
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| ES2379075T3 (en) * | 2002-11-26 | 2012-04-20 | Universiteit Gent | Process and apparatus for continuous wet granulation of powder material |
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| US9550703B2 (en) | 2017-01-24 |
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