FIELD OF THE INVENTION
[0001] The present invention relates to a method of recovering a metal from a source material.
Particularly, the present invention relates to a method of selectively recovering
a metal directly from a solid ore or ore processing intermediate containing said metal
and cobalt.
BACKGROUND OF THE INVENTION
[0002] Nickel is a valuable commodity and is predominantly sourced from either sulphide
or laterite mineral deposits. Large high grade sulphide deposits are increasingly
rare and so the processing of laterite ores is predicted to become the dominant source
of the metal.
[0003] A common method of treating laterite ores is to leach the solids in acid. Acid leaching
is generally followed by impurity precipitation, commonly achieved by adding limestone.
Following impurity precipitation, nickel and cobalt are usually recovered from the
aqueous solution together by either mixed sulphide precipitation, or mixed hydroxide
precipitation. Mixed hydroxide precipitation is a relatively recent large scale industrial
technology achieved by adding a basic chemical such as magnesia, lime, limestone or
sodium hydroxide to the leach solution. The mixed hydroxide precipitate (MHP) consists
of mostly nickel hydroxide but also contains valuable cobalt hydroxides and various
other impurities. The MHP represents a more value concentrated product in that the
approximately 1% nickel and 0.1% cobalt present in the original laterite ore are upgraded
substantially in terms of their relative amounts in the MHP. Since the MHP has such
a high valuable metal content, the feasibility of operating a centralized nickel and
cobalt refinery increases. This is because the transportation costs for the upgraded
intermediate product would be a fraction of that for the as-mined ore.
[0004] The MHP may be further processed in a number of ways. For example, it may be added
to the melt of an iron smelter in order to alloy the contained nickel with iron. This
process is not suitable for MHP with significant cobalt content as the valuable cobalt
is not recovered.
[0005] Another major processing route for refining MHP is by leaching the material in an
ammonia/ammonium carbonate solution. The nickel and cobalt dissolve in the ammonia
solution to form ammonia complexes. Nickel is then extracted into an organic solvent
to separate the nickel from the cobalt. The extracted nickel is then stripped from
the organic phase and precipitated using steam. This forms a basic nickel carbonate
which is then calcined to form nickel oxide which can be sold as a product in its
own right or reduced using hydrogen• gas to form nickel metal compacts.
The cobalt is subsequently precipitated from the aqueous phase as a cobalt sulphide
using hydrogen sulphide gas. This cobalt sulphide is then re-leached in acid, passed
through multiple stages of solvent extraction and ion exchange to remove impurities,
then switched to the aqueous ammonia system and concentrated before being precipitated
as a pure cobalt oxy-hydroxide by steam stripping.
[0006] Such prior art approaches are generally either relatively energy intensive, do not
return optimal nickel and/or cobalt recoveries, require an excessive number of processing
stages or are sensitive to the presence of other impurities such as aluminium, iron
and chromium.
There is a need for an improved method of recovering nickel from nickel containing
ores. It would be desirable to provide for a straightforward separation of nickel
from cobalt in MHP and enable an efficient recovery of both commodities.
[0007] Further, although the discussion above relates to the recovery of nickel and its
separation from at least cobalt in a nickel and cobalt containing ore it will be appreciated
that there is a need for the effective separation of a range of metals, in a similar
manner, from the cobalt they are naturally associated with.
[0008] CA 1 195 511 A discloses a process for separating the nickel and colbalt contents of an alkaline
mixed nickel-cobalt compound, such as a carbonate, wherein acid is added to dissolve
a portion of the compound, and treating the resulting liquor between 2.5 and 4 to
provide a nickel solution low in colbalt and a colbalt precipitate low in nickel with
high efficiency in reagent consumption, particularly chlorine.
[0009] US 4 435 368 A discloses a process for the selective disso-lution of oxygenated compounds containing
at least one non-ferrous metal selected from the group consisting of nicket, zinc,
and copper, present in a mixture of oxygen-ated compounds containing said at least
one non-ferrous metal and at least one element selected from the group consisting
of lead, cobalt, iron, manganese, and silicon, and comprises suspending the mixture
of the oxygen-ated metallic compounds in an aqueous phase which, preferably, contains
chloride and alkaline earth metal ions; treating the resulting aqueous suspension,
main-tained at a pH exceeding about 1, with chlorine, prefera-bly at a temperature
ranging from about 60° C to the boiling point of the suspension, to selectively solubilize
the said at least one non-ferrous metal while the said at least one element remains
in an essentially insoluble residue; and separating the aqueous solution containing
the dissolved said at least one non-ferrous metal from the insoluble residue.
OBJECT OF THE INVENTION
[0010] The object of the invention is to overcome or at least alleviate one or more of the
above problems or to at least provide for a useful commercial choice.
SUMMARY OF THE INVENTION
[0011] The invention is defined in the appending set of claims.
[0012] Preferably, the metal is nickel.
[0013] Suitably, the solid ore or ore processing intermediate comprising the metal and cobalt
is a mixed nickel-cobalt hydroxide precipitate or a solid copper-cobalt or zinc-cobalt
processing concentrate.
[0014] A 'major portion' may refer to greater than 50%, preferably greater than 60%, more
preferably greater than 70%, even more preferably greater than 80% in relation, independently,
to both stabilisation of the cobalt and/or manganese in the solid phase and to dissolution
of the nickel.
[0015] A 'substantial portion' may refer to greater than 90%, preferably greater than 95%
in relation, independently, to both stabilisation of the cobalt and/or manganese in
the solid phase and to dissolution of the nickel.
[0016] Preferably, contacting the ore or ore processing intermediate with the acidic leach
solution comprising an amount of the oxidising agent results in a substantial portion
of the cobalt being oxidised to thereby cause it to be stabilised in the solid phase
while a substantial portion of the metal is dissolved.
[0017] Preferably, the oxidising agent has sufficient oxidising potential to oxidise cobalt(II)
to cobalt(III).
[0018] Suitably, the oxidising agent is selected from the group consisting of persulphates,
peroxides, permanganates, perchlorates, ozone, oxides and chlorine.
[0019] Preferably, the oxidising agent is a persulphate or a permanganate.
[0020] In one embodiment, the oxidising agent is sodium or potassium persulphate, sodium
or potassium permanganate, ozone, magnesium or hydrogen peroxide, chlorine gas or
sodium or potassium perchlorate. Sodium or potassium persulphate or sodium or potassium
permanganate are particularly preferred.
[0021] In one preferred embodiment the oxidising agent is not a gaseous oxidising agent.
[0022] The ore or ore processing intermediate may further contain manganese and treatment
with the acidic leach solution comprising an oxidising agent may stabilize at least
a portion of the manganese in the solid phase.
[0023] In a further embodiment, the invention resides in a method of recovering nickel and
cobalt from a mixed nickel-cobalt hydroxide precipitate including the steps of:
- (a) contacting the mixed nickel-cobalt hydroxide precipitate with an acidic leach
solution comprising an oxidising agent, the oxidising agent present in an amount sufficient
to stabilise a major portion of the cobalt in the solid phase while a major portion
of the nickel is dissolved;
- (b) separating the solid cobalt concentrate from the leach solution containing dissolved
nickel to thereby recover the cobalt; and
- (c) recovering the nickel from the leach solution.
[0024] The nickel may be recovered as solid metal from the leach solution by electrowinning
or hydrogen reduction. Alternatively, the nickel may be recovered as a salt, for example,
as solid nickel sulphate hydrate by crystallisation.
[0025] The mixed nickel-cobalt hydroxide precipitate may further comprise manganese and
addition of the amount of oxidising agent also causes a major portion of the manganese
to be stabilised in the solid phase while a major portion of the nickel is dissolved.
[0026] The method may further include the step of separating the solid manganese from the
leach solution.
[0027] The method may further include the step of separating the cobalt and manganese solids
by selective dissolution of either cobalt or manganese in either acidic solution or
alkaline ammonia containing solution.
[0028] Throughout this specification, unless the context requires otherwise, the words "comprise",
"comprises" and "comprising" will be understood to imply the inclusion of a stated
integer or group of integers but not the exclusion of any other integer or group of
integers.
BRIEF DESCRIPTION OF THE FIGURES
[0029] In order that the invention may be readily understood and put into practical effect,
preferred embodiments will now be described by way of example with reference to the
accompanying figures wherein:
FIG 1 is a graphical representation of the recovery of cobalt to solution from a mixed
nickel-cobalt hydroxide precipitate over a range of pH values for three different
test conditions;
FIG 2 is a graphical representation of the recovery of nickel to solution from a mixed
nickel-cobalt hydroxide precipitate over a range of pH values for three different
test conditions;
FIG 3 is a graphical representation of the recovery of manganese to solution from
a mixed nickel-cobalt hydroxide precipitate over a range of pH values for three different
test conditions;
FIG 4 is a graphical representation of the nickel to cobalt ratio, measured over a
range of pH values, in a solution after treatment with three different test conditions;
FIG 5 is a graphical representation of the amounts of nickel and cobalt leached from
a mixed nickel-cobalt hydroxide precipitate to solution in tests 6 to 11;
FIG 6 is a graphical representation of the amounts of various impurities leached from
a mixed nickel-cobalt hydroxide precipitate to solution in tests 6 to 11; and
FIG 7 is a graphical representation of the selective recovery of cobalt in the presence
of copper.
DETAILED DESCRIPTION OF THE INVENTION
[0030] The present invention is predicated, at least in part, on the development of a method
of preferentially directly leaching nickel, from a solid ore or ore processing intermediate
comprising nickel and cobalt, into an acidic solution using a suitable oxidant to
maintain the cobalt in the solid state. Although the discussion herein relates to
the application of this method to a mixed nickel-cobalt hydroxide precipitate, it
will be appreciated that it may be useful in the separation of nickel from cobalt
within any suitable solid source material.
[0031] The present inventors have found that the selective dissolution of nickel from a
mixed nickel-cobalt hydroxide precipitate is a surprisingly fast and effective method
to separate out the nickel and cobalt when compared to certain prior art approaches
which attempt to selectively precipitate cobalt from a cobalt and nickel solution.
Selection of appropriate conditions including the choice of a strong oxidant, pH and
relative amounts of acid and oxidant to source material can provide a surprisingly
efficient separation.
[0032] Although the invention has been demonstrated herein with particular reference to
the separation of nickel and cobalt it is believed that the present method is equally
applicable to the separation of copper and/or zinc from cobalt. The separation of
both copper and zinc from cobalt is based upon the same principles described herein
in relation to nickel, with suitable adjustments.
[0033] The terms "oxidising agent" or "oxidant", as used herein, refer to a reagent which
is capable of causing a substrate to increase its oxidation state, e.g. to lose an
electron, the reagent itself being reduced (gaining an electron) in the process.
[0034] The term "mixed hydroxide precipitate" or "MHP", as used herein, refers to a solid
mixed nickel-cobalt hydroxide precipitate being a known intermediate product in the
commercial processing of nickel containing ores which comprises a variety of nickel,
cobalt and, possibly manganese, compounds including oxides and hydroxides. It will
be appreciated that references herein to "nickel", "cobalt" or "manganese" in relation
to their separation may be taken as references to one or more of these compounds,
including oxides and hydroxides of the metals. The nickel and cobalt are at a higher
concentration within the MHP than in the original mined ores representing the source
material.
[0035] The terms "stabilise", "stabilising" or "stabilised" are used herein in relation
to preferentially maintaining cobalt and/or manganese as a solid, following treatment
of the ore or ore processing intermediate with an acidic leach solution comprising
an oxidant, while nickel or copper or zinc are dissolved. Thus the nickel or copper
or zinc are dissolved in preference to the cobalt.
[0036] It has been found that a nickel and cobalt containing MHP can be directly treated
with an acidic solution comprising a suitable oxidant, at an appropriate pH, to cause
the cobalt to be stabilised in the solid phase while the nickel dissolves in the acidic
solution. The cobalt containing solid can then be collected and the cobalt recovered
by various suitable means. As a highly concentrated nickel solution can be obtained
by this method, the nickel can be subsequently recovered from the solution by means
including electrowinning to nickel metal, hydrogen reduction to nickel metal or crystallisation
to nickel sulphate hydrate.
[0037] To demonstrate this improved method of separation and its advantages over the rather
complex and inefficient methods of the prior art a number of experiments were carried
out on Ravensthorpe MHP (Ravensthorpe Nickel Mine, Ravensthorpe, Western Australia)
which was leached at 80°C with a sulphuric acid solution. The nature of each test
is set out in table 1, below.
Table 1: Leaching experiments carried out on MHP at 80°C.
| Test |
Conditions |
Comments |
| 1 |
175 g MHP in 1 L-solution. 7 additions of 7.5 mL 98% sulphuric acid over 3.5 hours. |
Baseline - No Strong Oxidant |
| 2 |
175 g MHP in 1 L-solution. 8.65g sodium persulphate as oxidant. 7 additions of 7.5
mL 98% sulphuric acid every 30 minutes over 3.5 hours |
Low Dose of Strong Oxidant |
| 3 |
175 g MHP in 1 L-solution. 10 g sodium persulphate as oxidant initially with 4 further
5 g additions every 30 minutes. 15 additions of 4 mL 98% sulphuric acid every 10 minutes
over 2.5 hours. |
High Dose of Strong Oxidant |
| 4 |
43.75g MHP in 250 mL-solution. 3.38g sodium persulphate as oxidant. Solution held
at pH 3 by addition of sulphuric acid for 1 hour. |
Constant pH High Dose of Strong Oxidant |
| 5 |
43.75g MHP in 250 mL-solution. 3.38g sodium persulphate as oxidant. Solution held
at pH 3 by addition of sulphuric acid for 2 hours. |
Constant pH High Dose of Strong Oxidant |
[0038] The moisture and metal content of the MHP (dry basis) is shown in table 2.

[0039] The effect of oxidant concentration on the dissolution of cobalt, nickel and manganese
over a range of pH values, representing results from the above experiments, are shown
in FIGs 1, 2 and 3, respectively.
[0040] FIG 1 is a graphical representation of the recovery of cobalt from the MHP into solution
over a range of pH values achieved for tests 1 to 3. Test 1 showed that without any
oxidant approximately 70% of the cobalt is in solution below pH 5 and more than 85%
is in solution below pH 3. Tests 2 and 3 showed that the addition of sodium persulphate,
as a strong oxidant, is extremely effective in stabilising the cobalt in the solid
phase. Test 3 resulted in more than 99% of the cobalt being stabilised in the solid
phase down to at least pH 2.5 while the test 2 results show that more than 99% of
the cobalt was stabilised in the solid phase down to at least pH 4.5. The next data
point for test 2 was at pH 2.5 and so it is likely that this high level of suspension
of cobalt in the solid phase is maintained closer to that pH point than is indicated
on FIG 1.
[0041] FIG 2 is a graphical representation of the recovery of nickel to solution over a
range of pH values achieved for tests 1 to 3. Tests 1 and 2 resulted in more than
85% of the nickel being maintained in solution at about pH 5. However, in test 2 close
to 100% of the nickel was in solution below about pH 4.5 representing a highly successful
leaching step. Test 3 showed about 70% of the nickel in solution at about pH 4 thereby
indicating that the rate of addition and/or total amount of the oxidant added is a
key factor to be controlled. The rate of addition of the oxidising agent may be controlled,
as in tests 1-3, by adding it to the leach solution portion wise over a set period
of time. The time period may be between 1 to 10 hours, preferably 1 to 5 hours.
[0042] The mixed hydroxide precipitate will contain a significant amount of manganese and
addition of the amount of oxidising agent which causes stabilisation of the cobalt
in the solid phase may also have the same effect on the manganese. Although the monetary
value of manganese is significantly less than nickel and cobalt as a commodity, it
is preferable to address its separation from the MHP as it is an impurity contained
therein and has many stable oxidation states. It is one advantage of the present invention
that the separation of manganese from the nickel and/or cobalt within the MHP may
be addressed.
[0043] The present method may further include the step of separating solid manganese from
the acidic leach solution in which the nickel is dissolved. Maintaining the manganese
in the solid phase during nickel leaching can be accomplished by suitable pH adjustment
in combination with appropriate oxidizing conditions, as is described in relation
to FIG 3.
[0044] The method may also further include the step of separating manganese from cobalt
by selectively dissolving the cobalt under mildly acidic and slightly reducing conditions.
A further method to selectively dissolve the cobalt leaving the manganese in the solid
phase is to contact the mixed solid with alkaline ammonia containing solution.
[0045] FIG 3 is a graphical representation of the recovery of manganese to solution over
a range of pH values achieved for tests 1 to 3. Test 1 showed that without the presence
of a strong oxidant more than 8% of the manganese is in solution below pH 5 and more
than 12% is in solution below pH 3. Tests 2 and 3 showed that the addition of sodium
persulphate as an oxidant is very effective at stabilising further amounts of manganese
in the solid phase. The results show between about 4 to 11% of the manganese is in
solution from test 3 between the pH range 6 to 0 and only about 3 to 4% for test 2
over the same pH range. The solution in test 3 was observed to turn a bright purple
colour which is known to be an indication of some permanganate formation in solution.
Tests 1 and 2 did not demonstrate any purple colour in solution and so the higher
amount of oxidant used in test 3 appears to have had a significant effect on increasing
the manganese oxidation state and therefore the manganese balance to form greater
amounts of permanganate ions. This, at least partially, explains the higher recovery
of manganese to solution for test 3 compared to test 2.
[0046] FIG 3 demonstrates that, overall, significant amounts of manganese can be stabilised
in the solid phase while substantially all of the nickel is still in solution, thereby
allowing an improved separation.
[0047] FIG 4 is a graphical representation of the nickel to cobalt ratio, measured over
a range of pH values, in an MHP leach solution after treatment with the three different
test conditions of tests 1 to 3. The optimal separation of nickel and cobalt in the
solution occurs somewhere between pH 5 and 2, with better separation at lower pH values
for test 3. A nickel to cobalt ratio of 6000, as is seen for test 3 at approximately
pH 2.5, indicates excellent separation as the initial ratio of nickel to cobalt in
the MHP was about 25. Test 2 also provided very significant and commercially valuable
separation of the nickel and cobalt with a value of over 4000 at between pH 4 and
5.
[0048] It should be clear that the selectivity of the stabilisation of cobalt and/or manganese
in the solid phase while achieving dissolution of the nickel is dependent on both
the pH of the solution and the nature/strength and/or amount of the oxidant. Thus
the method may further include the step of adjusting the pH of the acidic leach solution
to be between about 1 to about 6, preferably between about 2 to about 5. Between pH
1 and 6 includes a pH of 1, 1.5, 2, 2.5, 3, 3.5, 4, 4.5, 5, 5.5 or 6.
[0049] In one general embodiment, the pH of the acidic solution is adjusted to be between
1.5 and 5. The pH of the acidic solution may be adjusted to be between 2 and 4, between
2 and 3, between 3 and 5 or between 4 and 5.
[0050] Tests 4 and 5 were carried out at a constant pH of 3 for different lengths of time
being 1 and 2 hours, respectively. The results of these tests are shown in table 3
and they demonstrate that nickel and cobalt can be effectively separated with substantially
all of the cobalt being stabilised in the solid phase while dissolving substantially
all of the nickel. The results also indicate that with increased time (in going from
test 4 to test 5) the separation is improved and more manganese is also stabilised
in the solid phase.
[0051] The tests show that an excellent recovery of nickel can be obtained within a 1 to
4 hour time frame. It will be appreciated that the exact time required will depend
on a number of factors including the pH, amount of oxidising agent and rate of addition
thereof. In one embodiment, the majority of the nickel will have been leached into
the leach solution after between about 1 to 10 hours, preferably after between about
1 to about 5 hours, more preferably after between about 1 to about 3 hours.
Table 3: Results from tests 4 and 5
| |
Test 4 - 1 hr |
Test 5 - 2 hrs |
| Nickel Recovery to Solution |
96.75% |
96.99% |
| Cobalt Recovery to Solution |
0.61% |
0.50% |
| Manganese Recovery to Solution |
7.23% |
3.45% |
| Ni/Co Ratio in Solution |
3151 |
3855 |
| |
|
|
| Nickel Recovery to Residue |
3.25% |
3.01% |
| Cobalt Recovery to Residue |
99.39% |
99.50% |
| Manganese Recovery to Residue |
92.77% |
96.55% |
| Co/Ni Ratio in Residue |
1.54 |
1.66 |
[0052] The results show that greater than 96% of the nickel present in MHP can be preferentially
dissolved and maintained in solution under mildly acidic and strongly oxidizing conditions
in a single stage batch experiment. The residual solid contained greater than 90%
of the manganese and greater than 99% of the cobalt. The solid residue containing
the cobalt and manganese can easily be filtered off and the nickel solution made available
for electrowinning or other suitable process to recover the nickel as a final product.
[0053] The cobalt-manganese solid concentrate may require further processing but is a valuable
intermediate product in its own right assaying at approximately 15 wt. % cobalt. If
further separation is desired then dissolving of the cobalt and manganese in an acidic
solution below about pH 2.5 and selective reduction to precipitate the manganese may
provide a simple way to separate the cobalt from the manganese.
[0054] This ability to separate nickel from cobalt in MHP through a single, selective leaching
stage at very high efficiency allows the processing of MHP to be greatly simplified
over the current industrial methods. As described, the leaching stage may be carried
out using sulphuric acid, or any suitably strong acid which can achieve adequate dissolution
of the nickel, and any suitably strong oxidant. Further examples of acids which may
be suitable include nitric acid, hydrochloric acid and other strong mineral or other
acids as would be known to a person of skill in the art to be useful for the dissolution
of metal compounds from ores or ore processing intermediates.
[0055] Useful oxidising agents may be selected from the group consisting of persulphates,
peroxides, permanganates, perchlorates, ozone, oxides and chlorine.
[0056] In one embodiment, the oxidising agent may be sodium or potassium persulphate, sodium
or potassium permanganate, ozone, magnesium or hydrogen peroxide, chlorine gas or
sodium or potassium perchlorate.
[0057] Preferably, the oxidising agent is a persulphate or a permanganate. More preferably,
the oxidising agent is sodium or potassium persulphate or sodium or potassium permanganate.
[0058] A suitable oxidising agent will have the potential to oxidise cobalt compounds within
MHP, when exposed to an acidic solution, such that substantial amounts thereof are
stabilised in the solid phase while a substantial portion of the corresponding nickel
compounds are dissolved. Preferably, the oxidising agent has sufficient oxidising
potential to oxidise cobalt(II) to cobalt(III). This is easily ascertained by a person
of skill in the art by the application of a simple test. Briefly, if cobalt is in
the divalent state then it will readily dissolve in an aqueous solution at pH 4. If,
however, cobalt is in the trivalent state it will not readily dissolve in aqueous
solution at pH 4. This simple practical test can be employed by a skilled addressee
to easily ascertain the likely effectiveness of any oxidising agent proposed for use
in the present process.
[0059] Although certain gaseous oxidising agents may be useful, to some extent, in the present
method it will be appreciated that at least portions thereof will likely escape from
the system and thus the separation of the nickel and cobalt will be sub-optimal. Thus,
in one preferred embodiment, the oxidising agent to be added to the acidic leach solution
is non-gaseous i.e. a solid or a liquid. Sodium or potassium persulphate or sodium
or potassium permanganate are particularly preferred as they do not readily form a
gas.
[0060] The oxidative potential required of the oxidant to ensure oxidation, and hence stabilisation
in the solid phase, of the cobalt and/or manganese species in the MHP will vary with
pH. In one embodiment, the oxidative potential of the oxidant will be between 0.5
V versus Standard Hydrogen Electrode (SHE) to about 3.0 V at a pH of from about 0
to about 6. Suitably, at a pH value of between about 6 to about 4 the oxidative potential
of the oxidant will be between about 0.5 V to 1.0 V. Typically, at a pH value of between
about 4 to about 1 the oxidative potential of the oxidant is between about 1.0 V to
about 3.0 V, preferably between about 1.0 V to about 2.0 V.
[0061] A person of skill in the art would be aware of a number of ways in which the oxidative
potential of any particular oxidising agent could be ascertained at a particular pH.
Standard reference texts may provide tables of commonly used oxidising agents along
with their associated potential at one or more selected pH levels. Alternatively,
an indication of oxidising potential may be gleaned by employing the oxidising agent
in a simple experiment which would be know to a chemist in the field whereby the potential
difference between platinum metal and a suitable reference electrode are subsequently
measured.
[0062] As mentioned, the nickel solution produced by the selective leach may be used to
recover the final nickel product by known industrial techniques such as nickel electrowinning
or hydrogen reduction. To further demonstrate the potential use of the present method
in obtaining nickel metal, a series of experiments were carried out applying the general
method already discussed to generate a nickel solution with a nickel concentration
sufficiently high for use in a subsequent electrowinning process. A key difference
between the following tests compared with those described above is that the solution
into which the nickel from the MHP is leached already contains aqueous nickel sulphate
and acid to thereby simulate the anolyte produced in the nickel electrowinning process.
The tests thus demonstrate the simplicity of the present method in obtaining a nickel
solution in a way that is compatible with the nickel electrowinning process where
a nickel metal product can be directly obtained.
[0063] An MHP sample for use in these tests was assayed to ascertain its composition both
before and after drying. The results of the assay are shown in table 4 (shown in two
parts).
Table 4: Composition of MHP (dry) for tests 6-11 (oxidation states assumed)
| wt.% |
Ni2+ |
Co2+ |
Mn2+ |
Mg2+ |
Ca2+ |
Fe3+ |
| Dry |
44.5 |
2.4 |
0.78 |
0.77 |
0.4 |
0.2 |
| Moist |
28.0 |
1.5 |
0.49 |
0.49 |
0.25 |
0.13 |
| wt.% |
Al3+ |
Zn2+ |
Cu2+ |
|
|
|
| Dry |
0.08 |
0.04 |
0.02 |
|
|
|
| Moist |
0.05 |
0.03 |
0.01 |
|
|
|
[0064] The tests were carried out in an agitated batch reactor. Firstly, a synthetic nickel
anolyte solution containing 50 g-Ni/L-anolyte as NiSO
4(aq), 50 g-H
2SO
4/L-anolyte was heated to a temperature of 60-65°C. Sodium sulphate was included in
the solution to simulate a nickel electrolyte as it is typically added to improve
the solution conductivity. 100 g-Na
2SO
4/L-anolyte was added in tests 6, 7 and 8 and 167 g-Na
2SO
4/L-anolyte added in tests 9, 10 and 11. The tests were run for either 180 or 240 minutes
at which time the solids were isolated from the solution by vacuum filtration and
washed with two lots of 300 mL deionized water. The solids are then dried to constant
mass at 60°C. Samples of the residual solids were then assayed in order to verify
the mass balance.
[0065] The percentage stoichiometric addition of MHP used in the tests was calculated based
on 100% stoichiometric MHP addition being equivalent to the amount of acid required
to dissolve all of the nickel compounds content based on assumed chemical reactions.
Based on the quantities of MHP and acid used in the tests the metal deportment was
measured at leaching conditions over a pH range of 5.7 to 4.5.
[0066] The particular experimental conditions and measurements taken in this set of tests
are summarized in table 5. Tests 6, 7 and 8 were run for 180 minutes and tests 9,
10 and 11 were extended to 240 minute duration. The main variable was the amount of
MHP added to the experiment expressed as the % of the stoichiometric requirement for
all the nickel hydroxide to react with the acid available as discussed above.
[0067] In one embodiment, the ore or ore processing intermediate, such as the MHP, is present
in a stoichiometric % amount of between 100% to about 40% compared to the amount of
acid, preferably about 90% to about 50%, more preferably about 85% to about 60%.
[0068] The oxidising agent is present in the leach solution in either 125% (tests 7 to 11)
or 150% (test 6) stoichiometric equivalents based on the calculated number of moles
of cobalt and manganese present in the ore or ore processing intermediate. The effective
separation of cobalt and manganese at these stoichiometric levels (near 100%) show
that the sodium persulphate utilisation is high.
[0069] In one embodiment, between 70% to 500% stoichiometric equivalents of oxidising agent
to combined moles of cobalt and manganese may be added, preferably between 80% to
400%, more preferably between 80% to 200% or 100% to 150%, even more preferably about
125%.
[0070] It will be appreciated that while the results discussed herein relate to batch experiments,
practically, the method described lends itself well to a multistage counter current
arrangement to improve the process outcomes. Within such a multistage arrangement
the particular process conditions in each step will vary and, indeed, can be optimised
with a specific purpose in mind. Using this approach the conditions for nickel dissolution
from the mixed nickel-cobalt hydroxide precipitate may be optimised while encouraging
the maximum levels of impurities and cobalt to stabilise in the solid phase.
[0071] As an example, in the nickel leaching stage the stoichiometric equivalents of MHP
added may be kept relatively low and the pH relatively high whereas it may be beneficial
to have the pH considerably lower at another stage of the process where the objective
is to achieve an upgraded cobalt concentrate with minimal nickel content.
Table 5: Leaching conditions for tests 6-11
| Test Number |
6 |
7 |
8 |
9 |
10 |
11 |
| Leaching Time (min) |
180 |
180 |
180 |
240 |
240 |
240 |
| Leaching Temp °C |
65 |
65 |
65 |
65 |
65 |
65 |
| Anolyte Density g/mL |
1.21 |
1.21 |
1.21 |
1.28 |
1.28 |
1.27 |
| Anolyte Mass g |
725.76 |
725.76 |
725.76 |
766.56 |
766.56 |
760.44 |
| Anolyte Volume L |
0.60 |
0.60 |
0.60 |
0.60 |
0.60 |
0.60 |
| Anolyte Ni (NiSO4 g-Ni/L) |
50 |
50 |
50 |
50 |
50 |
50 |
| Anolyte Na2SO4 g-Na2SO4/L |
100 |
100 |
100 |
227 |
227 |
227 |
| Anolyte H2SO4 |
50 |
50 |
50 |
50 |
50 |
50 |
| |
| MHP (moist) g |
123.7 |
117.5 |
111.3 |
105.2 |
99.0 |
92.8 |
| Stoichiometric MHP Addition % |
100 |
95 |
90 |
85 |
80 |
75 |
| Sodium Persulfate Added g |
7.80 |
6.17 |
5.85 |
5.53 |
5.20 |
4.88 |
| Stoich. Persulfate Addition % |
150 |
125 |
125 |
125 |
125 |
125 |
| |
| Final Slurry Mass g |
824.73 |
818.20 |
819.80 |
825.00 |
823.69 |
822.55 |
| Final Catholyte Mass g |
795.35 |
790.72 |
793.40 |
802.47 |
806.29 |
807.90 |
| Final Catholyte density g/mL |
1.26 |
1.24 |
1.25 |
1.31 |
1.32 |
1.32 |
| Final Catholyte Volume L |
0.63 |
0.64 |
0.63 |
0.61 |
0.61 |
0.61 |
| Final Solids Mass (dry) g |
29.38 |
27.48 |
26.40 |
22.53 |
17.40 |
14.65 |
[0072] The extent and selectivity of the leaching of nickel from the MHP of table 4 into
the simulated nickel anolyte solution is summarized in FIG 5. For the range of MHP
addition investigated (75-100% stoichiometric requirement based on acid use) it can
be seen that the cobalt did not dissolve to any great extent and indeed was substantially
maintained in the solid state while the fraction of nickel which was leached increased
with decreasing MHP addition. This variation in the level of nickel extracted is likely
to be due to the pH effect as 100% MHP (in test 6) addition results in a final pH
of 5.7 whereas 75% MHP (in test 11) addition results in a lower terminal pH of 4.5.
Thus, lowering the stoichiometric MHP addition value results in a better return of
nickel leached therefrom. The effects of pH on leaching were already demonstrated
in tests 1 to 5 and the results of tests 6 to 11 confirm the importance of optimising
the pH for leaching and again indicate that a pH below 5 is preferred.
[0073] Once again, the results indicate that the present method is a simple and relatively
direct process for the separation of nickel from cobalt in a source material, such
as MHP, without the need for solvent extraction steps. The majority of the nickel
is recovered to the leach solution in all of tests 6-11 while cobalt leaching is minimal.
There is potential for further optimisation, as indicated in tests 1-5, by adjusting
the pH or the amount or rate of oxidant addition. The advantages of the present method
are further emphasised by the demonstration of leaching of nickel directly from an
impure solid source into an anolyte solution creating a catholyte solution suitable
for direct electrowinning of nickel metal.
[0074] The present process is of simpler design and of lower capital cost compared with
prior art approaches due to fewer processing steps, relatively low temperatures during
the leaching step and the lack of a requirement for a solvent extraction operation
to extract the nickel and cobalt. In one embodiment the temperature during the leaching
of nickel is greater than 20°C but less than 120°C, preferably greater than 50°C but
less than 100°C, more preferably from about 60°C to about 90°C.
[0075] The separation of nickel from cobalt in the MHP is surprisingly effective and provides
distinct advantages over certain prior art approaches which instead attempt to selectively
precipitate cobalt out of a solution containing both nickel and cobalt. Understanding
in the field regarding separation of cobalt from nickel in MHP suggests that the selective
leaching of nickel from MHP raises a risk of the solid nickel being passivated (coated)
by cobalt(III) solids which could interfere with or prevent the nickel leaching reaction.
The present inventors have shown that, surprisingly, this is not in fact the case
to any extent which would preclude an efficient separation under the conditions presently
identified.
[0076] Selectively precipitating cobalt from a nickel and cobalt containing solution tends
to be slow and the precipitate may be somewhat difficult to handle even when seeding
is employed. Instead, for the present process, the fact that the cobalt is in the
solid phase already surprisingly allows for a cobalt concentrate residue that is easy
to filter and which avoids the disadvantages of certain of the prior art approaches.
[0077] Thus, the present method provides a number of advantages over prior art oxidative
approaches including the provision of a sufficiently fast reaction, formation of a
cobalt containing solid that is filterable and efficient use of the oxidant, which
advantages stem from the approach of directly treating a solid MHP with the acidic
leach solution containing an oxidant to selectively dissolve the nickel in preference
to the cobalt. A relatively clean cobalt concentrate is also achieved in a single
stage i.e. approximately 15 wt% cobalt, which is a further improvement over processes
employing the selective precipitation of cobalt from solution.
[0078] The behaviour of the various metallic impurities during MHP leaching is shown in
FIG 6. The amounts of these impurities found within the leaching solution is also
indicated in table 6. Calcium and magnesium were largely dissolved during the nickel
leaching. Zinc dissolution was dependent on the rate of MHP addition (and hence the
resulting pH) so operating at a higher pH prior to electrowinning can be used to prevent
zinc dissolution. The extent of aluminium, copper, iron and manganese dissolution
is seen to be low and the final solution content of all the impurities is < 5 mg/L,
except for calcium and magnesium.
Table 6: Amounts of nickel and various impurities found in the final leach solution
(nickel catholyte) for tests 6-11
| Test |
Al |
Ca |
Co |
Cr |
Cu |
Fe |
Mg |
Mn |
Na |
Ni |
Zn |
| 6 |
2 |
86 |
4 |
0.0 |
0.2 |
2 |
170 |
1 |
21940 |
71460 |
21 |
| 7 |
2 |
261 |
4 |
0.1 |
0.5 |
2 |
430 |
1 |
21180 |
73239 |
10 |
| 8 |
3 |
309 |
4 |
0.1 |
0.2 |
2 |
506 |
3 |
19978 |
77295 |
13 |
| 9 |
6 |
434 |
6 |
0.2 |
0.3 |
3 |
689 |
6 |
62089 |
77473 |
7 |
| 10 |
4 |
427 |
3 |
0.1 |
0.6 |
2 |
692 |
4 |
63614 |
78051 |
16 |
| 11 |
4 |
369 |
5 |
0.2 |
1.3 |
2 |
611 |
2 |
51739 |
82871 |
19 |
[0079] Although the discussion above has generally related to recovery of nickel in the
presence of cobalt it should be appreciated that the present method may be equally
applicable to various metals which may be separated from cobalt in an ore or like
material in a similar manner to that described. Copper and zinc are particularly preferred
examples of such metals. Neither copper nor zinc oxidise readily above their divalent
state and so they can be dissolved in an acidic leach solution while cobalt and manganese
are oxidised and thereby stabilised in the solid phase.
[0080] FIG 7 is a graphical representation of the selective oxidative precipitation of cobalt
from solution in the presence of copper. Briefly, the test conditions were use of
240% stoichiometric sodium persulphate based on cobalt concentration, 90°C with an
initial pH of 1.4 and terminal pH of 2.7 (pH adjustment with sodium hydroxide). It
can be seen that the majority of the copper can be maintained in solution while increasing
amounts of cobalt are precipitated into the solid phase with time. At 4 to 6 hours
the majority of the copper remained in solution while the majority of the cobalt was
selectively precipitated. This result indicates that copper could be separated from
cobalt in an ore or ore processing intermediate in a similar manner to that described
in detail herein for nickel-cobalt MHP.
[0081] Throughout the specification the aim has been to describe preferred embodiments of
the invention without limiting the invention to any one embodiment or specific collection
of features. It will be appreciated by those of skill in the art that, in light of
the present disclosure, various modifications and changes can be made in the particular
embodiments exemplified without departing from the scope of the invention.
1. A method of selectively leaching a metal selected from the group consisting of nickel,
copper and zinc from a solid ore or solid ore processing intermediate comprising the
metal and cobalt characterized by the method including the step of contacting the solid ore or ore processing intermediate
with an acidic leach solution comprising an amount of an oxidising agent sufficient
to oxidise a major portion of the cobalt to thereby cause it to be stabilised in a
solid phase while a major portion of the metal is selectively dissolved.
2. The method of claim 1 or claim 2 characterized in that the solid ore or solid ore processing intermediate is a mixed nickel-cobalt hydroxide
precipitate.
3. The method of any one of the proceeding claims characterized in that the oxidising agent has sufficient oxidising potential to oxidise cobalt(II) to cobalt(III).
4. The method of claim 3 characterized in that the oxidising agent has an oxidative potential of about 0.5 V to about 3.0 V (SHE).
5. The method of any one of the proceeding claims characterized in that the acidic leach solution has a pH from about 1 to about 6.
6. The method of any one of the proceeding claims characterized in that the oxidising agent is selected from the group consisting of persulphates, peroxides,
permanganates, perchlorates, ozone, oxides and chlorine.
7. The method of any one of the proceeding claims characterized by further including a step of controlling the rate of addition of the oxidising agent
to optimise the stabilisation of cobalt.
8. The method of claim 7 characterized in that the step of controlling the rate of addition of the oxidising agent includes adding
the oxidising agent portion wise over a set period of time.
9. The method of any one of the proceeding claims characterized by further including a step of heating the acidic leach solution to greater than 50°C.
10. The method of any one of the proceeding claims characterized in that a majority of the metal has been leached into the acidic leach solution from the
solid ore or solid processing intermediate after 1 to 5 hours.
11. The method of any one of the proceeding claims characterized in that the oxidising agent is present in the acidic leach solution in 80% to 200% stoichiometric
equivalents to combined cobalt and manganese in the solid ore or solid ore processing
intermediate.
12. The method of claim 1 characterized in that the solid ore or solid ore processing intermediate further comprises manganese and
treatment with the amount of oxidising agent causes a major portion of the manganese
to be stabilised in a solid phase while a major portion of the metal is selectively
dissolved.
13. The method of any one of the preceding claims characterized in that the acidic leach solution contains an amount of the metal to be extracted prior to
being contacted with the solid ore or solid ore processing intermediate.
14. The method of claim 13 characterized by, after leaching is complete, extracted metal can be recovered directly from the acidic
leach solution by electrowinning or hydrogen reduction.
15. The method of claim 13 characterized in that the acidic leach solution contains nickel sulphate prior to being contacted with
the solid ore or solid ore processing intermediate.
1. Verfahren zum selektiven Laugen eines Metalls, ausgewählt aus der Gruppe bestehend
aus Nickel, Kupfer und Zink, aus einem festen Erz oder einem Verarbeitungszwischenprodukt
von festem Erz umfassend das Metall und Kobalt, dadurch gekennzeichnet, dass das Verfahren den folgenden Schritt umfasst: in Kontakt bringen des festen Erzes
oder des Verarbeitungszwischenprodukts von festem Erz mit einer sauren Laugenlösung
umfassend eine Menge eines Oxidationsmittels, die ausreicht, um einen Großteil des
Kobalts zu oxidieren, um dadurch zu bewirken, dass es in einer Festphase stabilisiert
ist, während ein Großteil des Metalls selektiv gelöst wird.
2. Verfahren nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass das feste Erz oder das Verarbeitungszwischenprodukt von festem Erz eine gemischte
Nickel-Kobalt-Hydroxid-Ausfällung ist.
3. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Oxidationsmittel ausreichend Oxidationspotential hat, um Kobalt(II) zu Kobalt(III)
zu oxidieren.
4. Verfahren nach Anspruch 3, dadurch gekennzeichnet, dass das Oxidationsmittel ein Oxidationspotential von ca. 0,5 V bis ca. 3,0 V (SHE) hat.
5. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die saure Laugenlösung einen pH-Wert von ca.
6. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Oxidationsmittel ausgewählt ist aus der Gruppe bestehend aus Persulfaten, Peroxiden,
Permanganaten, Perchloraten, Ozon, Oxiden und Chlor.
7. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass es weiterhin einen Schritt des Steuerns der Zugaberate des Oxidationsmittels beinhaltet,
um die Stabilisierung von Kobalt zu optimieren.
8. Verfahren nach Anspruch 7, dadurch gekennzeichnet, dass der Schritt des Steuerns der Zugaberate des Oxidationsmittels die portionsweise Zugabe
des Oxidationsmittels über einen festgelegten Zeitraum hinweg beinhaltet.
9. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass es weiterhin einen Schritt des Erhitzens der sauren Laugenlösung auf mehr als 50°C
beinhaltet.
10. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass ein Großteil des Metalls von dem festen Erz oder dem Verarbeitungszwischenprodukt
von festem Erz nach 1 bis 5 Stunden in die saure Laugenlösung ausgelaugt wurde.
11. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass das Oxidationsmittel in der sauren Laugenlösung in 80% bis 200% stöchiometrischen
Äquivalenten bezogen auf kombiniertes Kobalt und Mangan in dem festen Erz oder dem
Verarbeitungszwischenprodukt von festem Erz vorhanden ist.
12. Verfahren nach Anspruch 1, dadurch gekennzeichnet, dass das feste Erz oder das Verarbeitungszwischenprodukt von festem Erz weiterhin Mangan
aufweist und eine Behandlung mit der Menge an Oxidationsmittel bewirkt, dass ein Großteil
des Mangans in einer Feststoffphase stabilisiert wird, während ein Großteil des Metalls
selektiv gelöst wird.
13. Verfahren nach einem der vorhergehenden Ansprüche, dadurch gekennzeichnet, dass die saure Laugenlösung eine Menge des zu extrahierenden Metalls enthält bevor es
mit dem festen Erz oder dem Verarbeitungszwischenprodukt von festem Erz in Kontakt
kommt.
14. Verfahren nach Anspruch 13, dadurch gekennzeichnet, dass nachdem das Laugen beendet ist, extrahiertes Metall direkt von der sauren Laugenlösung
durch Elektrogewinnung oder Wasserstoffreduktion wiedergewonnen werden kann.
15. Verfahren nach Anspruch 13, dadurch gekennzeichnet, dass die saure Laugenlösung Nickelsulfat enthält bevor es in Kontakt mit dem festen Erz
oder dem Verarbeitungszwischenprodukt von festem Erz kommt.
1. Procédé de lixiviation sélective d'un métal choisi dans le groupe constitué du nickel,
du cuivre et du zinc à partir d'un minerai solide ou d'un intermédiaire de traitement
de minerai solide comprenant le métal et du cobalt, caractérisé en ce que le procédé comprend l'étape de mise en contact du minerai solide ou de l'intermédiaire
de traitement de minerai avec une solution de lixiviation acide comprenant une quantité
d'un agent oxydant suffisante pour oxyder une majeure partie du cobalt de façon à
ce qu'il soit stabilisé dans une phase solide tandis qu'une majeure partie du métal
est sélectivement dissoute.
2. Procédé selon la revendication 1 ou la revendication 2, caractérisé en ce que le minerai solide ou l'intermédiaire de traitement de minerai solide est un précipité
d'hydroxyde de nickel-cobalt mixte.
3. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que l'agent oxydant a un potentiel d'oxydation suffisant pour oxyder le cobalt(II) en
cobalt(III).
4. Procédé selon la revendication 3 caractérisé en ce que l'agent oxydant a un potentiel d'oxydation d'environ 0,5 V à environ 3,0 V (SHE).
5. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que la solution de lixiviation acide a un pH d'environ 1 à environ 6.
6. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que l'agent oxydant est choisi dans le groupe constitué de persulfates, peroxydes, permanganates,
perchlorates, ozone, oxydes et chlore.
7. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'il comprend en outre une étape de régulation du taux d'ajout de l'agent oxydant pour
optimiser la stabilisation du cobalt.
8. Procédé selon la revendication 7, caractérisé en ce que l'étape de régulation du taux de l'agent oxydant comprend l'ajout de l'agent oxydant
par portions dans une période de temps définie.
9. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'il comprend en outre une étape de chauffage de la solution de lixiviation acide à
plus de 50 °C.
10. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce qu'une majorité du métal a été lixiviée dans la solution de lixiviation acide à partir
du minerai solide ou de l'intermédiaire de traitement solide après 1 à 5 heures.
11. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que l'agent oxydant est présent dans la solution de lixiviation acide à 80 % à 200 %
équivalents stoechiométriques par rapport au cobalt et au manganèse combinés dans
le minerai solide ou l'intermédiaire de traitement de minerai solide.
12. Procédé selon la revendication 1, caractérisé en ce que le minerai solide ou intermédiaire de traitement de minerai solide comprend en outre
du manganèse et le traitement avec la quantité d'agent oxydant amène une majeure partie
du manganèse à être stabilisée dans une phase solide tandis qu'une majeure partie
du métal est sélectivement dissoute.
13. Procédé selon l'une quelconque des revendications précédentes, caractérisé en ce que la solution de lixiviation acide contient une quantité du métal à extraire avant
d'être mise en contact avec le minerai solide ou l'intermédiaire de traitement de
minerai solide.
14. Procédé selon la revendication 13, caractérisé en ce que, une fois que la lixiviation est complète, le métal extrait peut être récupéré directement
à partir de la solution de lixiviation acide par électro-obtention ou réduction par
l'hydrogène.
15. Procédé selon la revendication 13, caractérisé en ce que la solution de lixiviation acide contient du sulfate de nickel avant d'être mise
en contact avec le minerai solide ou l'intermédiaire de traitement de minerai solide.