CA2908046C - Integrated recovery of metals from complex substrates - Google Patents
Integrated recovery of metals from complex substrates Download PDFInfo
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B3/00—Extraction of metal compounds from ores or concentrates by wet processes
- C22B3/04—Extraction of metal compounds from ores or concentrates by wet processes by leaching
- C22B3/12—Extraction of metal compounds from ores or concentrates by wet processes by leaching in inorganic alkaline solutions
- C22B3/14—Extraction of metal compounds from ores or concentrates by wet processes by leaching in inorganic alkaline solutions containing ammonia or ammonium salts
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B11/00—Obtaining noble metals
- C22B11/04—Obtaining noble metals by wet processes
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B11/00—Obtaining noble metals
- C22B11/04—Obtaining noble metals by wet processes
- C22B11/042—Recovery of noble metals from waste materials
- C22B11/044—Recovery of noble metals from waste materials from pyrometallurgical residues, e.g. from ashes, dross, flue dust, mud, skim, slag, sludge
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B11/00—Obtaining noble metals
- C22B11/04—Obtaining noble metals by wet processes
- C22B11/042—Recovery of noble metals from waste materials
- C22B11/046—Recovery of noble metals from waste materials from manufactured products, e.g. from printed circuit boards, from photographic films, paper or baths
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B13/00—Obtaining lead
- C22B13/04—Obtaining lead by wet processes
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B13/00—Obtaining lead
- C22B13/04—Obtaining lead by wet processes
- C22B13/045—Recovery from waste materials
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B15/00—Obtaining copper
- C22B15/0063—Hydrometallurgy
- C22B15/0065—Leaching or slurrying
- C22B15/0078—Leaching or slurrying with ammoniacal solutions, e.g. ammonium hydroxide
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22B—PRODUCTION AND REFINING OF METALS; PRETREATMENT OF RAW MATERIALS
- C22B19/00—Obtaining zinc or zinc oxide
- C22B19/20—Obtaining zinc otherwise than by distilling
- C22B19/24—Obtaining zinc otherwise than by distilling with leaching with alkaline solutions, e.g. ammonia
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C11/00—Alloys based on lead
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C18/00—Alloys based on zinc
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C5/00—Alloys based on noble metals
- C22C5/02—Alloys based on gold
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C5/00—Alloys based on noble metals
- C22C5/06—Alloys based on silver
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- C—CHEMISTRY; METALLURGY
- C22—METALLURGY; FERROUS OR NON-FERROUS ALLOYS; TREATMENT OF ALLOYS OR NON-FERROUS METALS
- C22C—ALLOYS
- C22C9/00—Alloys based on copper
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P10/00—Technologies related to metal processing
- Y02P10/20—Recycling
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Abstract
Description
FIELD OF THE INVENTION
[0001] The present invention pertains to the integrated recovery of metals from complex substrates.
BACKGROUND
[0002] The global mining industry is under increasing pressure from citizens and governments around the world to shrink its environmental footprint. In addition, mining company shareholders are applying equal pressure for management to increase profits.
Currently, the industry relies on concentrating equipment to create a concentrate comprising a substrate or complex mixture of metals and other materials for shipment to a smelter. This process can leave significant amounts of finely ground minerals and/or toxic chemicals in tailings left on the mine site that can leach out into the environment, sometimes for centuries.
The tailings are often environmental hazards and costly for mining companies or governments to maintain and/or remediate.
Conventionally, methods for the recovery of different metals and precious metals are entirely different because of the absence of viable technology to efficiently separate precious metals from other metals, as well as metals from one another. As a result, a large number of mining businesses are specifically focused on the recovery of only one specific metal, leading to a loss of other valuable metals even when they are present in significant proportions in the ore or as a by-product of extraction of the main desirable metal.
Smelters are generally used to treat the concentrates produced on mine sites.
In the process, the smelters generate significant amounts of airborne pollution comprising greenhouse gases and common air contaminants, as well as toxic smelter slag.
Smelters are also expensive to build, at a cost of approximately $1 billion or more for a smelter to treat one metal. In addition, smelters require large amounts of energy to operate, making the ore smelting process energetically expensive. Ore treated in a smelter is sent to a refinery for conversion into a final value added product which in turn creates additional pollution and expense.
Similarly, alkaline methods almost always suffer from inefficient kinetics and low loading capacity. Also, precious metal extraction often makes use of cyanidation, creating, using and discarding cyanide, one of the most toxic chemicals ever known to mankind.
SUMMARY OF THE INVENTION
Described herein is a hydrometallurgical method for selective recovery of metals from complex substrates comprising sulphidic forms of the minerals or metals.
contacting the substrate with an aqueous oxidant in an amount sufficient to oxidize the metal sulphides to elemental sulphur and oxidized metal; contacting the oxidized metal with an alkali metal hydroxide in an amount sufficient to form soluble plumbate ion and ammonium hydroxide to form a soluble metal ammine complex of at least one of silver and copper to obtain a leachate and residual solids; separating the leachate from the residual solids; and recovering at least one of silver and copper from at least one of the leachate and the residual solids.
BRIEF DESCRIPTION OF THE FIGURES
DETAILED DESCRIPTION OF THE INVENTION
include plural references unless the context clearly dictates otherwise.
refers to the product of contacting a metal oxide with an aqueous oxidant or lixiviant.
The term "lixiviant" is understood to mean an oxidant wherein the oxidative product of reaction with the lixiviant results in a soluble metal salt.
The "complex substrate" from which the one or more metal can be recovered can comprise a variety of metals in different chemical states, as well as a variety of other non-metal geological materials. Some non-limiting examples of the components that can be present in the substrate are complex sulphides, oxides, ferrites, and silicates. Some non-limiting examples of complex substrates are electric arc furnace dust, steel and foundry dust, tailings, crushed ore and mine sludge. The particle size of the substrate is preferably 100-300 microns. Substrates with larger particle sizes can be ground and/or exposed to the method step(s) for a longer period of time to ensure complete reaction.
In the specific case where the complex substrate comprises only mineral or metal oxides, the preliminary oxidation step can be omitted.
The oxidant can be selected from the group consisting of an oxygen-containing gas, a water-soluble peroxide, a water-soluble perchlorate, a water-soluble hypochlorite and ferric iron. The oxidation can also be carried out by electro-oxidation.
Mixture of Zn/Ag/Pb ¨> ZnC12 (aq) PbC12 (s) AgCl(s)
During the dissolution process, ferric iron is reduced to ferrous iron, which is precipitated, and can be recovered and subsequently oxidized back to ferric iron for further leaching. As a result, the overall process can run as a closed-loop operation.
Further, when using an aqueous oxidant, such as sodium hypochlorite for example, there is no requirement for high pressure or increased temperature, thus reducing the energetic and financial cost of the overall recovery process. In the case where reaction of the oxidant with the metal suphide results in formation of soluble aqueous metal salts, the oxidant is considered to be an oxidative lixiviant.
Ammonium hydroxide can be used to form a variety of metal ammine complexes. In one example, silver and copper can be formed as ammine complexes with ammonium hydroxide after oxidation of the sulphidic minerals by sodium hypochlorite.
For example, based on the mole ratio, one mole of silver requires two moles of ammonia to form soluble silver ammine complex, which translates to approximately 34.06 g of ammonia for 107.86 g of silver. The concentration of ammonium hydroxide and reaction stoichiometry can be adjusted for optimal recovery. Preferable concentrations of ammonium hydroxide used can range from 1M - 6M, more preferably from 1M - 3M.
is 7 to 14. Preferably, the pH is 9 or above. The leach solution then reacts with the oxidized minerals to attain a high metal ion concentration in the leachant. This can improve the economy of the leaching process as determined by the kinetics of the process.
The pregnant solution containing the dissolved value metals, in particular at least one of solubilized silver and copper, are recovered from the leach solution by precipitation. The ammonium hydroxide reagent utilized in the leaching process is relatively environmentally benign.
Preferably, the ammonium hydroxide is entirely recycled in the process. Further, the leaching step with ammonium hydroxide can be conducted at ambient temperature and pressure, reducing the energy required for metal extraction.
[0072] The flowchart in Figure 2 shows an exemplary process for the recovery of silver from a sulphidic silver mineral. The complex substrate is contacted with an aqueous solution of ferric chloride and hydrochloric acid which serves as the oxidant. The resulting leachate is filtered to separate a solution of ferrous chloride from insoluble silver chloride. The ferrous chloride solution can be oxidized back to ferric chloride by chemical oxidation for recycling of the ferric chloride. The silver chloride and gangue matrix filtrate is then reacted with ammonium hydroxide to give a soluble silver ammine complex in solution, which is filtered to remove a silver depleted residue. The silver ammine complex is then reacted with copper to give silver metal, which is then removed from the copper ammine solution by filtration.
The copper ammine complex can then be reacted with zinc metal to retrieve the copper by precipitation and filtration, which then leaves the copper to be recirculated back into the silver recovery process. The supernatant comprising zinc ammine complex can then be bubbled through with carbon dioxide gas to generate zinc carbonate as a precipitate which is then removed from the supernatant by filtration, leaving ammonium chloride in solution. The ammonium chloride can then be regenerated to hydrochloric acid and ammonium hydroxide for recycling back into the process to complete the process circuit. Finally, zinc carbonate is converted to zinc oxide by thermal decomposition. The carbon dioxide can then be recycled back into the zinc recovery step of the process.
Specifically, in the case where the oxidant and ammonium hydroxide do not react, the two can be combined and the oxidative process and conversion of the oxidized metal to metal ammine complexes can be carried out in a single step. However, it is preferable to provide the aqueous oxidant and the ammonium hydroxide as two separate compositions for sequential treatment of the complex substrate.
Unconsolidated minerals containing lead sulphide and at least one of silver sulphide and copper sulphide, including discrete blocks of rocks and agglomerated ore particles and concentrate, agglomerated and unagglomerated sulphide bearing mill tailings of mineral beneficiation and similar sulphide containing by-products and waste products of recycling processes, can be leached ex-situ with an oxidant, and the ammonium hydroxide sequentially. The pregnant leach solution obtained by dissolving the oxidized form of the mineral in ammonium hydroxide is treated for desired metal recovery. In the case of lead recovery, the oxidant and alkali hydroxide lixiviant can be used simultaneously or sequentially. The leaching process can also be used if lead sulphide is not present in the unconsolidated minerals. Optionally, the process can also include regenerating the oxidant used in the process as described above.
Since iron does not dissolve under alkaline conditions, the process can also recover metals from iron containing complex minerals as high purity products. Other advantages include relatively fast kinetics, high silver recovery efficiency and avoidance of the use of the current industry standard approach of cyanidation. Other complex sulphides and oxides containing gold, nickel, cobalt and molybdenum in addition to copper, silver, lead, zinc and iron can also be treated by the process proposed herein.
Tests of the present process indicate that selectively recovery of up to and greater than 99%
of the zinc in a complex substrate can be obtained as a high purity product ready for industrial use. Preliminary engineering projections indicate that a plant to treat the furnace dust on site would pay for itself in less than 2 years and create an ongoing revenue stream for the foundry. The process could also be used to treat and recover other metals in furnace dust to further improve revenues and provide a recycling solution for the steel and foundry industry.
The process technology can also be housed in a single plant built on the mine site and scaled to the size of the mining operation.
extending the contact time between the oxidant and solids to give the desired recovery of at least one of silver and copper and selectivity in the leachate while maintaining operative reagent concentrations; separating the desired leachate from the residual solids; and recovering at least one of copper and silver from the leachate.
a.
contacting the complex mixture or ore sequentially with an aqueous oxidant followed by a lixiviant to obtain a leachate, the lixiviant comprising:
1) an oxidant selected to in an amount sufficient to oxidize the sulphide present only to elemental sulphur, 2) an alkali metal hydroxide in an amount sufficient to form soluble plumbate ion and 3) ammonium hydroxide in an amount sufficient to form a soluble ammine complex of at least one of silver and copper;
b. extending the contact time between lixiviant and solids mixture or ore to give the desired recovery of at least one of silver and copper in the leachate while maintaining operative reagent concentrations;
c. separating the desired leachate from the residual solids;
d. recovering at least one of silver and copper from the leachate, and e. optionally regenerating the lixiviant used in the process.
1. Chlorine and sodium hydroxide are produced by electrolysis of aqueous sodium chloride solution.
2 NaC1+ 2H20 ¨> C12 + H2 +2 NaOH
2. Sodium hypochlorite is produced by mixing chlorine with sodium hydroxide.
4 C12 (g) 8 NaOH ¨> 4 NaC10 + 4 NaC1+ 4 H20 3. Sodium hypochlorite reacts with lead sulphide in presence of sodium hydroxide to produce soluble sodium plumbate, sodium chloride and elemental sulphur.
NaC10 + PbS (s) + NaOH ¨> NaPbOOH + NaC1+ S
4. Soluble sodium plumbate produced in step 3 is treated with carbon dioxide gas to precipitate insoluble lead carbonate.
NaPbOOH + NaOH +2 CO2(g) ¨> PbCO3(,) + Na2CO3 + H20 5. Sodium hydroxide is regenerated by treating sodium carbonate produced in step 4 with quick lime.
CaO + H20 + Na2CO3 ¨> CaCO3() +2 NaOH
6. Calcium carbonate produced in step 5 is calcined to regenerate quick lime and carbon dioxide gas, which are recycled.
CaCO3 ¨> CaO + CO2 A bleed solution is intermittently treated to remove the impurities built up during the leaching process.
Ag+00 + 2 NH3 (aq) Ag(NH3)2+ (aq)
Cu2+ (aq) 4 NH3 (aq) ¨> Cu(NH3)4+ (aq)
Copper can be precipitated as either copper metal, copper hydroxide or copper carbonate.
Ag25 (s) + 4 Ci (aco 2AgC12 (aq)
1) an oxidant selected in an amount sufficient to oxidize the sulphur from the sulphides only to the elemental sulphur stage; and 2) ammonium hydroxide in an amount sufficient to form soluble ammine complexes of at least one of silver and copper from at least one of silver sulphide and or copper sulphide oxidation products.
ferric chloride/hydrochloric acid; ferric sulphate/sulfuric acid; ferric nitrate/nitric acid; ferric perborate/boric acid; and ferric fluorosilicate/silicic acid. One preferable ferric salt/acid combination is ferric chloride and hydrochloric acid. When the substrate comprises no metal sulphides and only metal oxides, only hydrochloric acid is required. The steps involved in the process of recovering at least one each of metals and precious metals from a complex mixture comprising metal sulphides using ferric iron is as follows.
1. A mixture of ferric chloride in combination with hydrochloric acid dissolves the target metals from sulphidic minerals. This step converts the contained target metals into their respective chlorides. Metal sulphides of other metals such as gold, nickel, cobalt, molybdenum, silver, copper and cobalt can also be converted from their sulphide form in a similar reaction.
ZnS + 2Fe3 Zn2+ + 2Fe2 + S
2. Silver chloride primarily remains in the residue, attributable to its limited solubility.
Zinc, gold, nickel, cobalt, molybdenum and copper, however, dissolve in the lixiviant to form their respective soluble chlorides.
3. The residue is separated from the leachate by filtration and washed with water.
4. The washed residue is treated with ammonium hydroxide to produce soluble silver ammine complex, which is separated from the residue by filtration.
AgC1+ 2NH3 AgRNH3)21+ + Cl-5. Silver is then precipitated as pure metallic silver by cementation with copper.
Ag+ + Cu Cu2+ + Ag 6. Copper used for the precipitation of metallic silver is recovered by cementation with zinc.
Cu2+ + Zn Zn2+ + Cu 7. Zinc is precipitated as zinc carbonate by preferably bubbling carbon dioxide gas through the solution. Alternatively, other carbonate ions source, for example, alkali metal carbonates, can be employed for this purpose.
2[Zn(NH3)412+ 4H20 + C032- ¨> Zn(OH)2=ZnCO3 + 4NH4+ + 201-1-Zn2++ C032- ZnCO3 8. Ammonia and hydrochloric acid can then be regenerated from the ammonium chloride solution left behind after the recovery of silver, copper and zinc.
In one example, magnesium oxide is used to regenerate the ammonium chloride to obtain ammonia, water and hydrochloric acid.
MgO + 2NH4C1 MgC12 + 2NH3 + H20 MgC12 + H20 MgO + 2HC1 9. The leachate obtained in step 3 can then either be evaporated to reduce the volume of solution or directly treated with ammonium hydroxide to form soluble zinc ammine complex.
Iron is precipitated as iron hydroxide during this step.
Zn2+ + 4NH3 [Zn(NH3)412+ (aq) FeC12 + 2NH40H ¨> Fe(OH)2 (s) + 2NH4C1 10. Soluble zinc ammine complex is then separated from the precipitated ferrous hydroxide by filtration.
11. Zinc is then precipitated from the filtrate as high purity zinc carbonate using carbon dioxide gas as outlined in step 7 above.
12. Ammonia and hydrochloric acid can be regenerated as outlined in step 8 above.
13. Ferrous hydroxide residue from step 10 can then be dissolved in the regenerated hydrochloric acid to form soluble ferrous chloride and subsequently oxidized to ferric iron by ozone (shown below), oxygen or air for recycling.
03- + Fe 2+ + H20 ¨> 02+ Fe3+ + 20H-14. Zinc carbonate is then heated to drive off carbon dioxide gas, thus converting it to high purity zinc oxide. The decomposition of zinc carbonate, ZnCO3(s), into zinc oxide, ZnO(s), and CO2(g) at ambient pressure generally requires the addition of 71.5 kJ of heat per mole of ZnCO3. Carbon dioxide gas released during the thermal decomposition of zinc carbonate is channelled to the zinc carbonate precipitation step above for recycling.
ZnCO3 ¨> ZnO + CO2
Treatment of metals with hydrochloric acid, optionally in combination with ferric chloride when the metal is at least partially in sulphide form, is preferable since chlorides and chloride complexes have high solubility in aqueous systems, thus very high loading capacity is readily attainable.
Small plugs of glass wool were placed on the ends of the tubing, acting as particulate filters as the liquid passed through the column. Tapping the sides of the column ensured uniform packing. Prior to leaching, N2 sparged deionized water was pumped through the column to remove any entrapped air. The deionized water was left in the sealed column overnight.
Presence or absence of peak intensity from x-ray diffraction patterns indicates the presence or absence of a particular mineral phase qualitatively.
The experiment was continuously run until there was no increase in the concentration of lead in effluent.
Following the completion of lead leaching, the column was again washed thoroughly with water until the effluent was completely free of dissolved lead. The washings were also analyzed for the lead content.
sodium hypochlorite solution. The mixture was continuously stirred with a magnetic stirrer.
The experiments were performed at 30 C, 55 C and 80 C for a period of 24 hours. The residue was separated from the solution by filtration and treated with 2M
ammonium hydroxide to form soluble silver ammine complex. The amount of ammonium hydroxide required to dissolve silver was calculated on the basis of the original metal content. Aqueous supernatant samples were collected every thirty minute and analyzed for the dissolved silver content. The experiment was run until there was no increase in the amount for dissolved silver in the solution as quantitatively determined by ICP-MS.
300 g/t silver at various temperatures is shown in Table 1. Shown in Figure 4 is the silver leaching efficiency against time from sulphidic ore sample at 30 C, 55 C and 80 C.
Table 1:
Temperature Silver Recovery Efficiency 30 C 82%
55 C 89%
80 C 92%
Table 2:
Time 30 C 55 C 80 C
1 hr 34% 62% 76%
hr 52% 76% 78%
24 hr 66% 77% 79%
Aqueous samples of the supernatant were collected every thirty minutes and quantitatively analyzed for silver concentration using ICP-MS. Percent recovery is calculated based on the difference in the amount of silver recovered against the initial silver content. All samples were quantitatively analyzed by ICP-MS for the initial metal content prior to their use in any of the experiments. The results are shown in table 3 below.
Table 3:
Ore Sample Sample Analyzed Silver Recovery A17 Leached Solid 91%
A17 Pregnant Leach Solution 95%
A18 Leached Solid 88%
A18 Pregnant Leach Solution 87%
ferric chloride and 0.5M hydrochloric acid in a beaker. The amount of oxidant was calculated based on the initial metal content and over-stoichiometric quantity was employed to ensure complete oxidation of sulphides. The mixture was continuously stirred for a period of 24 hours. 10 ml of aqueous supernatant samples were collected from the beaker every thirty minutes to assess the kinetics of leaching. The samples were filtered to separate the residue from the leachate. The leachate was then quantitatively analyzed by ICP-MS to determine the metal content. After 24 hours, the final leachate was separated from the residue by filtration.
ammonium hydroxide to dissolve silver chloride formed during the leaching to soluble silver ammine complex based on the metal content determined by ICP-MS analysis.
Stoichiometry was determined by the number of moles of ammonia required to dissolve silver chloride to form soluble silver ammine complex, specifically one mole of silver reacts with two moles of ammonia. Soluble silver ammine complex was separated from the residue by filtration. Silver was chemically precipitated from the solution as pure silver metal by cementation with copper. The dissolved silver was almost quantitatively (>99.9%) recovered as silver metal.
Ammonia and hydrochloric acid were regenerated for recycle. Zinc carbonate was converted to zinc oxide by thermal decomposition. More than 98% of zinc was recovered as very high purity zinc oxide based on the difference between the original (unleached) zinc content and the zinc left behind in the leached residue. ICP-MS was used to quantitatively ascertain the difference in metal content between initial and leached solids.
Aqueous supernatant samples were collected every thirty minutes and analyzed by ICP-MS
for the amount of dissolved metals in the solution. The equilibrium point, a stage where there was no discernible increase in the dissolved metals in the solution, was reached in a period of 4 hours. The final leachate was separated from the residue by filtration.
Claims (32)
a) leaching the substrate with an aqueous oxidant in an amount sufficient to oxidize the metal sulphide to elemental sulphur and oxidized metal to obtain a pregnant solution and a solid, wherein the oxidation potential of the oxidant is adjusted to a desired oxidation potential that is insufficient to oxidize the sulphide to a hexavalent state;
b) separating the solid and the pregnant solution obtained in step a);
c) leaching the solid obtained in step b) comprising the oxidized metal with ammonium hydroxide to form a soluble metal ammine complex to obtain a leachate and residual solids;
d) separating the leachate from the residual solids; and e) recovering the metal from one or more of the leachate and the residual solids.
leaching step (a) converts the metal oxide to a metal salt, the solid obtained in step (b) further comprises the metal salt formed in step (a), and step (c) comprises leaching the solid obtained in step b) comprising the oxidized metal and metal salt with ammonium hydroxide to form the soluble metal ammine complex.
Date Recue/Date Received 2020-09-14
Date Recue/Date Received 2020-09-14
a) leaching the substrate with an aqueous oxidant in an amount sufficient to oxidize the metal sulphides to elemental sulphur and oxidized metal, to obtain a pregnant solution and a solid, wherein the oxidation potential of the oxidant is adjusted to a desired oxidation potential that is insufficient to oxidize the sulphide to a hexavalent state;
b) separating the solid and the pregnant solution obtained in step a);
c) leaching the solid obtained in step b) comprising the oxidized metal with an alkali metal hydroxide in an amount sufficient to form soluble plumbate ion and ammonium hydroxide to form a soluble metal ammine complex of at least one of silver and copper to obtain a leachate and residual solids;
d) separating the leachate from the residual solids; and e) recovering at least one of silver and copper from at least one of the leachate and the residual solids.
Date Recue/Date Received 2020-09-14 a) leaching the substrate with an aqueous lixiviant to convert the metal oxide into a metal salt, to obtain a pregnant solution and a solid, wherein the solid comprises the metal salt;
b) separating the solid comprising the metal salt and the pregnant solution obtained in step a);
c) leaching the solid obtained in step b) comprising the metal salt with ammonium hydroxide to form a soluble metal ammine complex to obtain a leachate and residual solids;
d) separating the leachate from the residual solids; and e) recovering the metal from one or more of the leachate and the residual solids, wherein the aqueous lixiviant is a water-soluble peroxide, a water-soluble perchlorate, a water-soluble hypochlorite, or a combination thereof.
of 9 or above.
Date Recue/Date Received 2020-09-14
Date Recue/Date Received 2020-09-14
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2908046A CA2908046C (en) | 2013-03-28 | 2014-03-28 | Integrated recovery of metals from complex substrates |
Applications Claiming Priority (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA2810935A CA2810935A1 (en) | 2013-03-28 | 2013-03-28 | Selective recovery of copper and silver from complex sulphide ore, concentrate, tailings, crushed ore or mine sludge |
| CA2810935 | 2013-03-28 | ||
| CA2821023 | 2013-07-15 | ||
| CA 2821023 CA2821023A1 (en) | 2013-07-15 | 2013-07-15 | Recovery of metals from complex minerals |
| PCT/CA2014/050324 WO2014153672A1 (en) | 2013-03-28 | 2014-03-28 | Integrated recovery of metals from complex substrates |
| CA2908046A CA2908046C (en) | 2013-03-28 | 2014-03-28 | Integrated recovery of metals from complex substrates |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| CA2908046A1 CA2908046A1 (en) | 2014-10-02 |
| CA2908046C true CA2908046C (en) | 2021-08-03 |
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| CA2908046A Active CA2908046C (en) | 2013-03-28 | 2014-03-28 | Integrated recovery of metals from complex substrates |
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| FR3044941B1 (en) * | 2015-12-11 | 2018-02-02 | Commissariat A L'energie Atomique Et Aux Energies Alternatives | PROCESS FOR RECYCLING SILVER PRESENT IN A PHOTOVOLTAIC CELL |
| US10167202B2 (en) | 2016-02-23 | 2019-01-01 | King Abdullah University Of Science And Technology | Enhanced metal recovery through oxidation in liquid and/or supercritical carbon dioxide |
| GB2551980A (en) * | 2016-06-30 | 2018-01-10 | Commw Scient Ind Res Org | Method and system for low level metal analysis of mineral samples |
| CN107226555A (en) * | 2017-07-25 | 2017-10-03 | 盛隆资源再生(无锡)有限公司 | A kind of comprehensive utilization copper ammonia complexation Cu in waste water, the method for ammonia |
| US11566304B2 (en) | 2017-09-14 | 2023-01-31 | Lixivia, Inc. | Methods for recovering copper, cobalt, indium and nickel with amine containing lixiviant |
| CN109238989A (en) * | 2018-11-06 | 2019-01-18 | 长春黄金研究院有限公司 | A kind of analysis method of Silver From Ore object phase |
| WO2020131958A1 (en) * | 2018-12-18 | 2020-06-25 | Lixivia, Inc. | Pond reactor for recovery of metals |
| US11498836B1 (en) | 2019-06-14 | 2022-11-15 | L3 Développement de procédés Inc. | Method for the production of iron oxide pigment or pigment intermediate and hydrochloric acid |
| CN110394240B (en) * | 2019-08-06 | 2021-09-03 | 湖南有色金属研究院 | Copper ammonia complex ion vulcanization activator and application thereof |
| CN110656357B (en) * | 2019-08-22 | 2020-12-18 | 北京工业大学 | Apparatus and method for carbon removal and recovery of cobalt and tungsten in waste WC-Co alloys |
| CN110643827B (en) * | 2019-10-22 | 2022-02-18 | 贵州大学 | Green method for dissolving and extracting gold element |
| CN112899493B (en) * | 2021-01-21 | 2022-11-15 | 有研亿金新材料有限公司 | Method for recovering and purifying platinum from platinum-tungsten alloy |
| CN113278796B (en) * | 2021-04-22 | 2022-12-23 | 昆明理工大学 | A method for leaching zinc oxide fumes by ozone-enhanced oxidation |
| CN114807624B (en) * | 2022-04-07 | 2023-10-13 | 北京电子科技职业学院 | Preparation device and method of antioxidant wear-resistant precious metal jewelry |
| FR3148153B1 (en) | 2023-04-28 | 2025-04-25 | Saint Gobain | Glass recycling process |
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| US3880981A (en) * | 1972-10-10 | 1975-04-29 | Renato M Garingarao | Cyclic acid leaching of nickel bearing oxide and silicate ores with subsequent iron removal from leach liquor |
| US3967957A (en) | 1973-03-26 | 1976-07-06 | Continental Oil Company | Aqueous ammonia oxidative leach and recovery of metal values |
| US3981966A (en) * | 1974-07-26 | 1976-09-21 | E. I. Du Pont De Nemours And Company | Zinc recovery from acidic aqueous streams |
| US4988487A (en) * | 1989-10-24 | 1991-01-29 | Gte Laboratories Incorporated | Process for recovering metal values such as scandium, iron and manganese from an industrial waste sludge |
| US5308381A (en) | 1993-04-15 | 1994-05-03 | South Dakota School Of Mines & Techology | Ammonia extraction of gold and silver from ores and other materials |
| JPH07224334A (en) * | 1993-12-16 | 1995-08-22 | Sangyo Souzou Kenkyusho | Copper separation and recovery method |
| CN1149552A (en) * | 1995-10-27 | 1997-05-14 | 金坛市华信锌品厂 | Process for producing high-purity active zinc oxide by ammonia water circulation complexation method |
| CN101730753A (en) | 2007-07-13 | 2010-06-09 | 梅塔里奇有限公司 | Process for ammonia leaching |
| CN101357809A (en) * | 2007-08-02 | 2009-02-04 | 蔡敏行 | Zero sludge and resource handling arrangement and recovery method of heavy metal waste water |
| US8936770B2 (en) * | 2010-01-22 | 2015-01-20 | Molycorp Minerals, Llc | Hydrometallurgical process and method for recovering metals |
| CN102633295A (en) * | 2012-04-26 | 2012-08-15 | 中南大学 | Oxidation pretreatment method of soot containing zinc |
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| PE20160923A1 (en) | 2016-09-16 |
| CN105452497B (en) | 2018-11-02 |
| CN105452497A (en) | 2016-03-30 |
| AU2014245777B2 (en) | 2018-12-13 |
| US20160053342A1 (en) | 2016-02-25 |
| AU2014245777A1 (en) | 2015-10-22 |
| US10487374B2 (en) | 2019-11-26 |
| US20200165697A1 (en) | 2020-05-28 |
| CA2908046A1 (en) | 2014-10-02 |
| WO2014153672A1 (en) | 2014-10-02 |
| MX2015013796A (en) | 2016-01-20 |
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