[0001] The present invention relates to agglomerates of titanium-bearing material suitable
for producing TiCl₄.
[0002] In prior art processes, materials of high titanium dioxide content (above 85% TiO₂)
are the preferred raw materials for TiCl₄ manufacture, subject to specifications on
the particle size of the materials and on the content of some impurity elements.
[0003] TiCl₄ is a low boiling liquid which may be purified by distillation and chemical
methods, following which it may be burned in oxygen to generate TiO₂ pigment and chlorine
gas, or reacted with magnesium or electrolysed to produce titanium metal.
[0004] The raw material, a titanium-bearing mineral sized within the range 100 - 300 microns
(µm), is fed to a fluidised bed reactor where it undergoes reductive chlorination
at temperatures in the range 900° - 1000°C. Petroleum coke or a similar high fixed
carbon material is added to the bed as both fuel and reducing agent. Oxygen may be
added to the inlet stream to maintain reaction temperatures. The product TiCl₄ passes
from the reactor in a gaseous form together with the gaseous chlorides of impurity
elements and entrained fine solid particles from the fluid bed. The gases are cleaned
of solids and condensed. The product TiCl₄ is purified by distillation and chemical
methods.
[0005] In the chlorination stage, most metallic impurities form volatile chlorides, which
leave the reactor in the TiCl₄ gas stream. However, the alkali and alkaline earth
metals farm relatively non-volatile chlorides which are liquid at reaction temperatures
and hence tend to form agglomerated masses in the bed to the point of potential shut
down. Accordingly, operators of the process usually specify stringent limitations
on the contents of these elements in raw materials.
[0006] Impurities such as iron represent an economic penalty to the process in that they
consume coke for their reduction and, more importantly, expensive reagent chlorine
which is lost in waste iron chlorides. Silicon and aluminium are also partly chlorinated
in the process, causing excess chlorine consumption. Aluminium chlorides are also
the source of corrosion problems in process equipment.
[0007] As a mineral particle is progressively chlorinated, it reduces in size until it reaches
a point at which it is entrained in the gas stream and leaves the reactor as an unavoidable
and irrecoverable loss. Conventionally, entrainment losses may amount to 5 - 10% of
the input materials. As the feed size is reduced below 150 µm in diameter, entrainment
losses become relatively much higher than for materials of the conventional size.
Such losses are both economically and operationally acceptable.
[0008] In an attempt to overcome these difficulties, in one process known in the prior art,
fine-grained TiO₂-bearing material for fluidised bed chlorination is prepared by coking
into composite agglomerated particles a mixture of TiO₂-bearing material, bituminous
coking coal and a water soluble binder. This prior-art process, however, has not been
accepted by the industry. One reason is that the chlorination process is reductive
chlorination and so the carbon in the feed material must be present in a specific
proportion to the TiO₂-bearing material which may not be suited to composite strength
development. Further, the agglomerate, because the carbon is attacked, breaks down
before complete chlorination occurs and so fine particle size material is lost to
the process through entrainment in the gas stream.
[0009] In another process described in the prior art, a water emulsion of asphalt is used
as a binder in the formation by extrusion of pellets of fine-grained titanium-bearing
material. By a process of slow curing at 1000°C, water is removed from the pellets
and the organic material converted to carbon. The curing results in the caking of
the binder in the pores and around the grains, forming a good bond. There is no chemical
bond between the binder and the titanium-bearing material. The extruded material must
be broken before curing into a size range close to the required product size. This
removes the need for the circulation of cured fines which would otherwise reduce the
strength of the product pellets. During chlorination of the pellets, the carbon takes
part in the reductive chlorination process. This product therefore suffers from the
same disadvantages as those described in the previous example of the prior art.
[0010] US-A-3823009 concerns the agglomeration of titaniferous materials, such as ilmenite
sand containing about 30% of titanium, with iron or titanium minerals and a water-soluble
organic polymer.
[0011] US-A-4187117 concerns a process in which a slag containing, for example, 42.6% of
titanium, is mixed with coke and a binder, and baked at 900-100° to produce fluidisable
coked grains with a reduced hydrogen content.
[0012] It is an object of the present invention to overcome one or more of the perceived
difficulties in the fluid bed chlorination of fine grained titanium-bearing minerals.
[0013] Accordingly, the present invention provides a process for increasing the particle
size of fines of a titaniferous mineral containing more than 45% by weight titanium
which process comprises:
mixing the fines with a binding agent and water to produce an agglomerate, drying
the agglomerate and sintering it.
[0014] The agglomerated particles so formed are resistant to degradation forces associated
with transport and handling. The agglomerated particles are also resistant to the
physical and chemical degradation forces and temperatures associated with chlorination
processing including fluidised bed reductive chlorination processing.
[0015] The agglomerated particles, may be manufactured to fall within a preferred size range
to suit the dynamic requirements of fluidised bed reductive chlorination processing
for example between 100 - 500 µm, more preferably from approximately 150 - 250 µm.
If particles fall below this range they may be entrained in the gas stream and therefore
lost to the reaction. If particles fall above this range they may cease to be buoyant
within the fluidised bed and form an inactive layer at the bottom of the reactor.
[0016] The titanium-containing particles may be of any suitable titanium-containing mineral
or minerals. The titanium-containing minerals may be natural or synthetic in origin.
The titanium-containing mineral may be a detrital mineral. The titanium may be present
in the titanium-containing minerals in the form of titanium dioxide. The titanium
dioxide content of the titanium-containing minerals may be approximately 85% by weight
or greater. A preferred titanium dioxide containing source is a deposit which includes
any of the minerals rutile, anatase and leucoxene.
[0017] The titanium-containing minerals may be subjected to initial concentration processing
after extraction. Initial concentration processing may increase the average titanium
dioxide content for example to approximately 90% by weight or above.
[0018] One titanium-containing mineral deposit at Horsham, Victoria, Australia of this type
is further characterized by usually fine sizing. The unusually fine sizing suggests
that major entrainment losses may ensue from later treatment by reductive chlorination
in a fluid bed.
[0019] The titanium-containing mineral may be present in any suitable amount in the agglomerated
particles. The titanium-containing minerals may be present in amounts of approximately
95 - 99.5% by weight based on the total weight of the sintered agglomerate.
[0020] The amount of water added may vary depending upon the size distribution of the original
titanium-containing particles and the required size of the agglomerates. The amount
of water may vary from approximately 5 to 15% by weight, preferably approximately
8% by weight, based on the total weight of titanium-containing particles, binder and
water.
[0021] The binder or binders for the titanium-containing particles may be of any suitable
type. The binder for the titanium-containing particles should be such as to form agglomerates
capable of withstanding the physical, chemical and thermal degradation forces in the
drying and firing stages of the process. The binder may be an organic or inorganic
binder. The binder may be a ceramic or glass-forming binder. The binder may be a carbon-free
binder. A single binder may be used. A combination of two or more binders may be used
to provide strength under the different operating environments of the drying and firing
stages.
[0022] Calcium- or sodium-containing binders are not preferred. This is so since the calcium
or sodium contents of the binder may react in the reductive chlorination process to
form deleterious liquid residues. Binders may contain calcium or sodium but should
not result in the addition of these elements to cause problems in chlorination.
[0023] The binder for the titanium-containing minerals may be such that it does not seriously
contaminate the bound titanium-bearing particles for subsequent processing, for example
in reductive chlorination processing.
[0024] The binder for the titanium-containing particles may include:
1) Colloidal silica
2) Silica, water soluble silicates or silica/fluorite mixtures
3) Clay minerals (including bentonite, kaolinite and montmorillonite)
4) Boehmite
5) Boehmite/silica mixture
6) Goethite
7) Lignosulphonate
8) Sodium carbonate as a saturated water solution
9) Sodium silicate
10) Group II element carbonate/clay mineral mixture
11) Sugars e.g. molasses
12) Aluminium salt/organic amide mixtures
13) Titanium bearing organic and inorganic solutions
14) Polyvinyl acetate
15) Water emulsified organic binders
The amount of binder for titanium-containing particles should be sufficient to
produce a competent agglomerate. The amount of binder should preferably not be sufficient
to encapsulate the titanium-containing particles. A relatively low percentage of binder
is preferred. Percentages in the range of approximately 0.5 - 5% by weight are preferred.
[0025] The mixing step in the process according to the present invention may be conducted
in any suitable manner. Agglomeration may be conducted in devices incorporating a
rolling/tumbling action such as rotating disk or drum pelletisers or V-blenders, or
in devices incorporating an impacting/shearing action such as high intensity micro-agglomerators
or mixers, or in devices incorporating both actions. Agglomeration may be conducted
in stages or in closed circuit with product sizing screens.
[0026] The drying step may be conducted at elevated temperatures e.g. 75 to 150°C. The drying
step is preferably carried out in such a manner as to limit the residence time of
the agglomerates in this part of the process to less than 30 minutes. The drying step
may be conducted in any suitable drying apparatus. A fluidised bed dryer or rotary
dryer may be used.
[0027] In the firing step, the temperature and residence time should be sufficient to produce
homogeneous or heterogenous phase bonding between the particles within the agglomerates.
The agglomerates may be heated to a temperature of approximately 1000°C to 1500°C
preferably 1200°C to 1400°C. The residence time of the agglomerates within the above
temperature range may be for a period of approximately 5 minutes to approximately
6 hours.
[0028] The firing step may be carried out in any of a number of suitable means, including
fluidised bed, oven or kiln firing.
[0029] In a preferred form of the present invention the process may include the preliminary
step of grinding at least a portion of the titanium-containing particle source.
[0030] The preliminary grinding step may be utilised to improve the size control in the
preparation of the agglomerates and thus provide a greater strength and density to
the fired product. The titanium particles may be introduced into any suitable grinder.
A ball mill or rod or intensive milling device may be used.
[0031] The amount of titanium-containing feed to be ground may vary from 0 to approximately
100% by weight depending on the source and type of titanium-containing material.
[0032] The grinding step may provide particles having an average size from approximately
1um to approximately 50um.
[0033] The sintered agglomerate may include a plurality of sintered agglomerated particles.
The bond formed between the titanium-containing particles may include particle boundary
recrystallisation, that is the boundaries of the titanium-containing particles may
be physically merged. The bond formed between the titanium-containing particles may
in addition include a bridging with a secondary phase formed by the binder. The sintering
step may tend to reduce or eliminate the binder from the agglomerated particles. The
initial binder may be burned off in whole or in part. The initial binder may be present
and/or may be incorporated in whole or in part in the crystal lattice of the particles.
[0034] The present invention will now be more full described with reference to the accompanying
examples. It should be understood, however, that the description following is illustrative
only and should not be taken in any way as a restriction on the generality of the
invention described above.
EXAMPLE 1
[0035] A laboratory scale batch Patterson-Kelley V-blender was used initially to blend a
mixture of 9.2 kg of dry leucoxene with 1% of dry bentonite powder for 1 to 2 minutes.
The leucoxene consisted of 75% in the size range 50µm - 100µm and 25% in the size
range -50µm. The size distributions of the two fractions are recorded in Tables 1
and 2.
TABLE 1
| Size Distribution of Ground and Sized Leucoxene (-100 + 50µm) |
| SIZE (µm) |
CUMULATIVE % PASSING |
| 106 |
95.0 |
| 75 |
36.4 |
| 53 |
8.2 |
| 38 |
0.9 |
| 33 |
0.6 |
| 24 |
0.1 |
| 17 |
0.1 |
| 8 |
0.0 |
| 5 |
0.0 |
TABLE 2
| Size Distribution of -50µm Fraction of Ground Leucoxene |
| SIZE (µm) |
CUMULATIVE % PASSING |
| 106 |
100.0 |
| 75 |
99.6 |
| 53 |
99.1 |
| 38 |
90.4 |
| 33 |
88.6 |
| 24 |
59.6 |
| 17 |
33.2 |
| 8 |
10.1 |
| 5 |
0.0 |
[0036] The V-blender rotated at a speed of 40 rpm. Water was then introduced into the mixture
through an intensifier bar rotating within the blender shell at a speed of 1500 -
3000 rpm. The intensifier bar served both to shear the solids and to spray the water
into the charge in a finely divided form. The amount of water added was about 8% of
the solids weight and the time required for its addition was about 4 minutes. A further
1 to 2 minutes mixing time was allowed for the microagglomerates to achieve final
size and compaction.
[0037] The product was then discharged onto a large tray, spread out and oven dried at 80°C
for 48 hours to ensure that drying was complete.
[0038] The dried product was then sieved to a size range of 125-500µm. A 100 g sample of
the micro agglomerates was placed on a ceramic dish and heated for 25 minutes at 1260°C.
The sintered product was then subjected to several physical and chemical tests considered
appropriate for determining its suitability as a feed material for reductive chlorination
processing.
[0039] Visual inspection of the microagglomerates after sintering revealed two obvious changes
by comparison with the dried but unsintered material. Firstly, some shrinkage had
occurred, either by a reduction in the internal voids of the microagglomerates or
by a reduction of the intergranular voidage of the agglomerate mass on sintering.
Secondly, the colour of the material changed from a greyish brown to a reddish brown.
Furthermore, the material assumed a glassy or reflective appearance in comparison
to the dull surface of unfired material.
[0040] Microscopic examination of the sintered product showed dense packing of the particles
within the microagglomerates with abundant bridging between particles. Electron microprobe
analysis revealed no compositional differences between the material comprising the
bridges and that of the particles. No appreciable degradation or agglomerate-agglomerate
adhesion was observed as a result of firing. X-ray diffraction analysis of the fired
microagglomerates indicated major rutile and pseudobrookite phases, i.e., crystalline
phases which could be formed from the original leucoxene alone.
[0041] The size of the product after firing was as shown in Table 3.
TABLE 3
| Size of Sintered Leucoxene Product from 75% -110 + 50µm and 25% -50µm feed agglomerated
with 1% Bentonite Binder and fired for 25 minutes at 1260°C. |
| SIZE (µm) |
CUMULATIVE % PASSING |
| 500 |
100.0 |
| 355 |
97.4 |
| 250 |
78.7 |
| 180 |
27.4 |
| 125 |
0.0 |
[0042] A "strength test" was performed on the microagglomerates as follows; a microagglomerate
was placed between two glass slides and weights were added until the microagglomerate
first failed. Failure first occurred at greater than 1 kg (i.e., approximately 10
N) for 300µm agglomerates. Fracture fragments were of similar size, i.e., there was
little or no tendency to dusting. Calculations indicate that for the recorded strength
it would be possible to store agglomerates without failure due to compressive forces
in piles or storage bins of approximately 50 m in height.
[0043] A more quantitative and reproducible test for resistance to abrasion was determined
by violently shaking one gram of a closely sized fraction of microagglomerates (-335
+250µm for 5 minutes in a cylindrical tube 18mm i.d. and 50mm long with 3 ceramic
balls 8mm in diameter. During this test, the material was subjected to both impact
and attrition. The average particle diameter after this test had reduced from 303µm
to 170µm. This compares with the performance of a similar sample of the original leucoxene
material which reduced to 220µm.
[0044] It may be concluded that the microagglomerates represent an industrially useful material
from the points of view of storage and transport.
[0045] Small samples (10g) of microagglomerates were subjected to fluidised bed chlorination
tests in a laboratory scale reactor at temperatures between 950 and 1100°C. The results
showed that at greater than 50% completion of chlorination:
(1) There was no indication of preferred attack on intergranular bonds. Rather the
bonds appeared relatively more inert than the main mass of the individual mineral
grains:
(2) Where the titania of the microagglomerates had been partially removed, an unreacted
core of material of original appearance (apart from colour bleaching) remained within
the microagglomerates. The pores of the affected outer shell were noticeably increased
in size.
[0046] Table 4 provides initial and final size distributions for fired agglomerates which
were taken to 89% completion of chlorination in laboratory fluidised bed tests. There
is clearly little generation of -90µm material in chlorination, suggesting that high
degrees of chlorination may be achieved without bond degradation or losses from reactors
as fines carried in off gases. Similar results were obtained at up to 95% completion
of chlorination.

[0047] The fluidisation performance of the microagglomerates was measured as a function
of size and compared with the behaviour of theoretical spheres, petroleum coke and
beach sand leucoxene. The results, plotted as practical minimum fluidisation velocity
in room temperature air against average particle diameter, are presented in Fig. 1.
These results suggest higher than expected minimum fluidisation velocities at smaller
particle diameters and lower than expected minimum fluidisation velocities at larger
particle diameters. This behaviour may be explained partly by size distribution effects
and partly by density and surface shape and roughness effects. It suggests that the
chlorination process may be able to accept significantly larger agglomerate particles
than is the case with conventional feeds, so affording the possibility of improved
process recoveries.
EXAMPLE 2
[0048] Approximately 10 kg of ground leucoxene were agglomerated and dried in the manner
described in Example 1.
[0049] The microagglomerates were fed to a small pilot scale fluidised bed furnace in which
the bed temperature was maintained at a temperature of 1260°C. The operating parameters
of the furnace were:
| bed diameter |
30 cm |
| windbox temperature |
1000°C |
| windbox fuel |
LPG |
| bed fuel |
coconut husk char |
| superficial gas velocity in fluidised bed |
71 cm sec⁻¹ |
| agglomerate feed rate |
22 kg hr⁻¹ |
[0050] In order to control both temperature and superficial gas velocity within the bed
at the desired range it was found necessary on this small equipment to enrich the
inlet air with oxygen.
[0051] The average residence time of the material within the bed was approximately 20 minutes.
[0052] The amount of bed material lost by entrainment in the off-gas was estimated at 4.5%.
The size distributions of feed, product and carryover material were as shown in Figure
2.
[0053] The product was subjected to the abrasion-attrition test described in Example 1.
The result showed a reduction in average particle size from 303µm to 190µm.
EXAMPLE 3
[0054] Agglomeration tests were carried out on a sample of rutile flour with the following
size distribution:
TABLE 5
| Size Distribution of Rutile Flour |
| Size (µm) |
Cumulative % Passing |
| 128 |
100 |
| 96 |
98.8 |
| 64 |
88.6 |
| 48 |
80.2 |
| 32 |
58.6 |
| 24 |
42.0 |
| 16 |
33.5 |
| 12 |
27.1 |
| 8 |
22.3 |
| 6 |
18.4 |
| 4 |
16.0 |
| 3 |
12.4 |
| 2 |
10.5 |
| 1.5 |
9.9 |
| 1 |
9.1 |
[0055] Agglomeration was performed in an industrial "Flexomix" agglomerator, manufactured
by Schugi Process Engineers of Lelystad, Netherlands at a solids feed rate of 840
kg per hour. Bentonite was premixed with the feed at 1% addition and lignosulphonate
was added as a 33% solution at 2.8 kg solids per hour. Moisture input in addition
to lignosulphonate addition was 1 L min⁻¹.
[0056] After continuous passage through the agglomerator and a fluid bed drying unit 67.5%
of the product was in the size range +125 -500µm. Product coarser than 125µm diameter
was collected for subsequent kiln based firing.
[0057] Firing of the agglomerates was conducted in a 3.6m long 0.23m internal diameter counter
current oil fired rotary kiln. At a rotation speed of 2rpm and slope of one degree
the agglomerate residence time in the 1260°C high temperature zone was approximately
20 minutes. A total of 60 kg of agglomerates was fired in the kiln at a feed rate
of 16.2 kg per hour.
[0058] Fine material in the feed and degraded material formed in firing were swept from
the kiln by combustion gases, providing 69% recovery of feed in kiln products. Feed
and product particle size distributions are recorded below:
TABLE 6
| Size Distribution of Feed to and Product of Kiln Firing |
| Size (µm) |
Cum % Retained |
| |
Feed |
Fired Product |
| 850 |
9.07 |
6.67 |
| 600 |
19.65 |
16.31 |
| 425 |
32.20 |
30.86 |
| 300 |
46.85 |
50.62 |
| 212 |
67.11 |
82.82 |
| 150 |
91.25 |
98.89 |
| 106 |
96.09 |
99.19 |
| 75 |
97.51 |
99.21 |
| -75 |
100.00 |
100.00 |
[0059] Continuous agglomeration trials were performed in an industrial blender manufactured
by Patterson Kelley Pty. Ltd. of Pennsylvania, U.S.A. The ground leucoxcene feed had
the particle size distribution indicated below:
TABLE 7
| Particle Size Distribution of Ground Leucoxene |
| Size (µm) |
Cum % Passing |
| 212 |
99.5 |
| 150 |
91.2 |
| 106 |
61.0 |
| 75 |
44.2 |
| 53 |
34.5 |
| 38 |
25.9 |
[0060] The blender was fed with ground leucoxene at 0.6 tonnes per hour with addition of
bentonite at 6 kg per hour and organic binder (PVA) at 1.5 kg per hour. Moisture was
added as 10% of feed weight via sprays mounted on the shaft of a set of high speed
rotating blades within the agglomeration chamber. Mineral residence time in the agglomerator
was approximately 20 minutes.
[0061] The agglomerated product was dried in a tubular dryer to a maximum temperature of
80°C.
[0062] The particle size distribution of the dried product is indicated below:
TABLE 8
| Size Distribution of Dried Agglomerates |
| Size (µm) |
Cum % Passing |
| 1000 |
100.0 |
| 840 |
97.6 |
| 590 |
93.4 |
| 420 |
84.4 |
| 250 |
55.5 |
| 150 |
27.6 |
| 105 |
14.1 |
| 75 |
7.6 |
[0063] The dried agglomerated product was fed at 73 kg per hour to a 1250°C fluidised bed
firing unit. The fluidised bed firing unit had a diameter of 0.46m and a height (above
the distributor plate) of 0.56m. The fluidising gas was the air rich combustion product
of propane. Distillate was atomised into the base of the fluidised bed to provide
additional heat by combustion with the oxygen remaining in the fluidising gases. Average
residence time of the agglomerates in the fluidised bed was approximately 60 minutes.
[0064] Fine material present in the feed and generated in fluidised bed firing was entrained
in exiting combustion gases and removed via a hot cyclone. Only 17% of the feed reported
in this "blowover" stream.
[0065] The particle size distributions of the fluidised bed fired agglomerates and blowover
are provided below:
TABLE 9
| Size Distribution of Products of Firing |
| Size (µm) |
Cum % Retained |
| |
Product |
Blowover |
| 850 |
3.78 |
- |
| 600 |
6.50 |
- |
| 425 |
12.24 |
- |
| 250 |
26.42 |
- |
| 150 |
51.52 |
- |
| 106 |
86.05 |
7.25 |
| 53 |
96.89 |
64.47 |
1. A process for increasing the particle size of a fine titaniferous mineral containing
more than 45% by weight titanium which process comprises:
mixing the fine mineral with a binding agent and water to produce an agglomerate,
drying the agglomerate and sintering it.
2. A process according to Claim 1 wherein the binder is capable of forming a glass or
of exhibiting ceramic sintering properties when the agglomerate is sintered.
3. A process according to claim 1 wherein the binding agent is selected from any one
of the compounds selected from the group consisting of:
1) Colloidal silica
2) Silica, water soluble silicates or silica/fluorite mixtures
3) Clay minerals
4) Boehmite
5) Boehmite/silica mixture
6) Goethite
7) Lignosulphonate
8) Sodium carbonate as a saturated water solution
9) Sodium silicate
10) Group II element carbonate/clay mineral mixture
11) Sugars such as molasses
12) Aluminium salt/organic amide mixtures
13) Titanium bearing organic and inorganic solutions
14) Polyvinyl acetate
15) Water emulsified organic binders.
4. A process according to claim 1 or Claim 2 wherein the binding agent is bentonite.
5. A process according to any one of Claims 1 to 4 wherein the agglomerate is a microagglomerate
formed by mixing the fine mineral, binding agent and water by means of an impacting
shearing action.
6. A process according to any one of claims 1 to 5 wherein the binding agent comprises
from 0.5 to 5% by weight of the total weight of the fines and the binding agent on
a dry weight basis.
7. A process according to any one of claims 1 to 6 wherein the water comprises from 5
to 15% by weight of the total weight of fines, binding agent and water.
8. A process according to any one of claims 1 to 7 wherein the agglomerate is dried for
less than 30 minutes at a temperature in the range from 75 to 150°C.
9. A process according to any one of claims 1 to 8 wherein the agglomerates are sintered
at a temperature in the range from 1000° to 1500°C.
10. A process according to any one of claims 1 to 9 wherein the agglomerates are sintered
at a temperature in the range from 1200 to 1400°C for a period in the range from 5
minutes to 6 hours.
11. A process according to any one of Claims 1 to 10 wherein the titaniferous mineral
comprises a mixture of fine and coarse mineral.
12. A process according to any one of the Claim 11 wherein the mineral is ground to produce
fines thereof.
13. A process according to claim 12 wherein the mineral is ground to particles having
an average size in the range from 1 to 50um.
14. A process according to any one of claims 1 to 13 wherein the sintered agglomerates
have an average particle size in the range from 100 to 500µm.
15. A process according to any one of claims 1 to 14 wherein the agglomerates have an
average particle size in the range from 150 to 250µm.
16. A process according to any one of claims 1 to 15 wherein the mineral is a detrital
mineral.
17. A process according to any one of claims 1 to 16 wherein the mineral contains more
than 85% by weight of titanium dioxide.
18. A process according to any one of claims 1 to 16 wherein the mineral is rutile, anatase
or leucoxene.
19. A dried and sintered agglomerate produced by the process of any one of claims 1 to
18.
1. Verfahren zum Erhöhen der Teilchengröße eines feinen titanhaltigen Minerals, das mehr
als 45 Gew.-% Titan enthält, welches Verfahren
das Mischen des feinen Minerals mit einem Bindemittel und Wasser, um ein Agglomerat
herzusteilen, das Trocknen des Agglomerats und dessen Sintern umfaßt.
2. Verfahren nach Anspruch 1, worin das Bindemittel fähig ist, ein Glas zu bilden oder
Keramiksintereigenschaften zu zeigen, wenn das Agglomerat gesintert wird.
3. Verfahren nach Anspruch 1, worin das Bindemittel aus irgendeiner der Verbindungen
aus der Gruppe ausgewählt ist, die aus
1) kolloidaler Silika
2) Silika, wasserlöslichen Silikaten oder Silika/Fluorit-Mischungen
3) Tonmineralien
4) Boehmit
5) Boehmit/Silika-Mischung
6) Goethit
7) Lignosulphonat
8) Natriumkarbonat als gesättigte Wasserlösung
9) Natriumsilikat
10) Mischung aus Karbonat eines Elements der Gruppe II und Tonmineral
11) Zuckern wie Melasse
12) Mischungen aus Aluminiumsalz und organischem Amid
13) Titan enthaltenden organischen und anorganischen Lösungen
14) Polyvinylacetat
15) wasseremulgierten organischen Bindemitteln
besteht.
4. Verfahren nach Anspruch 1 oder 2, worin das Bindemittel Bentonit ist.
5. Verfahren nach einem der Ansprüche 1 bis 4, worin das Agglomerat ein Mikroagglomerat
ist, das gebildet wird, indem das feine Mineral, Bindemittel und Wasser durch eine
Schlag- bzw. Stoß- und/oder Scherwirkung gemischt werden.
6. Verfahren nach einem der Ansprüche 1 bis 5, worin das Bindemittel von 0,5 bis 5 Gew.-%
des Gesamtgewichts der feinen Materialien und des Bindemittels, bezogen auf das Trockengewicht,
ausmacht.
7. Verfahren nach einem der Ansprüche 1 bis 6, worin das Wasser von 5 bis 15 Gew-% des
Gesamtgewichts der feinen Materialien, dem Bindemittels und Wassers ausmacht.
8. Verfahren nach einem der Ansprüche 1 bis 7, worin das Agglomerat weniger als 30 Minuten
lang bei einer Temperatur im Bereich von 75 bis 150°C getrocknet wird.
9. Verfahren nach einem der Ansprüche 1 bis 8, worin die Agglomerate bei einer Temperatur
im Bereich von 1000°C bis 1500°C gesintert werden.
10. Verfahren nach einem der Ansprüche 1 bis 9, worin die Agglomerate bei einer Temperatur
im Bereich von 1200 bis 1400°C für einen Zeitraum im Bereich von 5 Minuten bis 6 Stunden
gesintert werden.
11. Verfahren nach einem der Ansprüche 1 bis 10, worin das titanhaltige Mineral eine Mischung
aus feinem und grobem Mineral umfaßt.
12. Verfahren nach einem der Anspruch 11, worin das Mineral gemahlen wird, um Feinmaterial
daraus herzustellen.
13. Verfahren nach Anspruch 12, worin das Mineral zu Teilchen mit einer durchschnittlichen
Größe im Bereich von 1 bis 50 µm gemahlen wird.
14. Verfahren nach einem der Ansprüche 1 bis 13, worin die gesinterten Agglomerate eine
durchschnittliche Teilchengröße im Bereich von 100 bis 500 µm aufweisen.
15. Verfahren nach einem der Ansprüche 1 bis 14, worin die Agglomerate eine durchschnittliche
Teilchengröße im Bereich von 150 bis 250 µm aufweisen.
16. Verfahren nach einem der Ansprüche 1 bis 15, worin das Mineral Mineralschutt ist.
17. Verfahren nach einem der Ansprüche 1 bis 16, worin das Mineral mehr als 85 Gew.-%
Titandioxid enthält.
18. Verfahren nach einem der Ansprüche 1 bis 16, worin das Mineral Rutil, Anatas oder
Leukoxen ist.
19. Getrocknetes und gesintertes Agglomerat, hergestellt nach dem Verfahren nach einem
der Ansprüche bis 18.
1. Procédé pour augmenter la dimension particulaire d'un minéral titanifère fin contenant
plus de 45% en poids de titane, qui comprend le mélange du minéral fin avec un agent
liant et de l'eau pour produire un agglomérat, le séchage de l'agglomérat et son frittage.
2. Procédé suivant la revendication 1, dans lequel le liant est capable de former un
verte ou de présenter les propriétés de frittage d'une céramique lorsque l'agglomérat
est fritté.
3. Procédé suivant la revendication 1, dans lequel le liant est sélectionné parmi l'un
quelconque des composés choisis dans le groupe consistant en :
(1) silice colloïdale
(2) silice, silicates solubles dans l'eau ou mélanges de silice et de fluorite
(3) minéraux de type argile
(4) boehmite
(5) mélange de boehmite et de silice
(6) goethite
(7) lignosulfonate
(8) carbonate de sodium (sous forme de solution aqueuse saturée)
(9) silicate de sodium
(10) mélange de carbonate d'un élément du groupe II et de minéral de type argile
(11) sucres, comme des mélasses
(12) mélanges de sel d'aluminium et d'amide organique
(13) solutions organiques et inorganiques portant du titane
(14) acétate de polyvinyle
(15) liants organiques émulsifiés dans l'eau
4. Procédé suivant les revendications 1 ou 2, dans lequel l'agent liant est une bentonite.
5. Procédé suivant l'une quelconque des revendications 1 à 4, dans lequel l'agglomérat
est un microagglomérat formé par mélange du minéral fin, de l'agent liant et de l'eau
au moyen d'une action de choc et de cisaillement.
6. Procédé suivant l'une quelconque des revendications 1 à 5, dans lequel l'agent liant
constitue de 0,5 à 5% en poids du poids total des fines et de l'agent liant sur une
base de poids sec.
7. Procédé suivant l'une quelconque des revendications 1 à 6, dans lequel l'eau constitue
5 à 15% en poids du poids total des fines, de l'agent liant et de l'eau.
8. Procédé suivant l'une quelconque des revendications 1 à 7, dans lequel l'agglomérat
est séché pendant moins de 30 minutes à une température comprise dans la gamme de
75 à 150°C.
9. Procédé suivant l'une quelconque des revendications 1 à 8, dans lequel les agglomérats
sont frittés à une température comprise dans la gamme de 1000 à 1500°C.
10. Procédé suivant l'une quelconque des revendications 1 à 9, dans lequel les agglomérats
sont frittés à une température comprise dans la gamme de 1200 à 1400°C pendant une
période comprise dans la gamme de 5 minutes à 6 heures.
11. Procédé suivant l'une quelconque des revendications 1 à 10, dans lequel le minéral
titanifère comprend un mélange de matériau fin et de matériau grossier.
12. Procédé suivant la revendication 11, dans lequel le minéral est broyé pour produire
des fines de celui-ci.
13. Procédé suivant la revendication 12, dans lequel le minéral est broyé en particules
ayant une dimension particulaire dans la gamme de 1 à 50 µm.
14. Procédé suivant l'une quelconque des revendications 1 à 13, dans lequel les agglomérats
frittés ont une dimension particulaire moyenne comprise dans la gamme de 100 à 500
µm.
15. Procédé suivant l'une quelconque des revendications 1 à 14, dans lequel les agglomérats
ont une dimension particulaire moyenne comprise dans la gamme de 150 à 250 µm.
16. Procédé suivant l'une quelconque des revendications 1 à 15, dans lequel le minéral
est un minéral détritique.
17. Procédé suivant l'une quelconque des revendications 1 à 16, dans lequel le minéral
contient plus de 85% en poids de dioxyde de titane.
18. Procédé suivant l'une quelconque des revendications 1 à 16, dans lequel le minéral
est du rutile, de l'anatase ou du leucoxène.
19. Agglomérat séché et fritté produit par le procédé suivant l'une quelconque des revendications
1 à 18.