Products
Pumps
Pump Systems
Digital Solutions
Shredding Systems
Applications
Environmental Technology
Biogas Handling
Mining and Mineral Processing
Food and Beverage Industry
Oil, Gas and Petrochemicals
Pulp & Paper Industry
Additional Industries
Media
News
Fairs and Events
Downloads
Videos
Knowledge on Demand
SEEPEX Technologies
Security Publications
Services
SEEPEX Care Service Programs
Original Parts
Commissioning
24-Hour Helpline
Services
Company
About SEEPEX
Career
Locations
Build America, Buy America

Gold processing relies on chemistry because valuable gold cannot always be separated from ore by physical methods alone. Crushing, grinding, gravity separation, and classification prepare the material, but many operations also need chemicals to dissolve gold, separate gold-bearing minerals, control pH, recover dissolved metal, and treat process water.

 

The chemicals used in gold mining depend on the ore and the selected process route. A free-milling ore treated by cyanide leaching has different requirements from a refractory sulfide ore that first undergoes flotation or pretreatment. Carbon-in-leach, carbon-in-pulp, heap-leach, flotation, and Merrill-Crowe circuits also use different combinations of reagents.

 

There is therefore no universal chemical package for every gold mine. The correct selection begins with mineralogy and metallurgical testing, followed by controlled preparation and dosing under site-specific operating conditions.

Sodium Cyanide for Gold Leaching

Sodium cyanide is one of the best-known chemicals used in gold mining. During cyanidation, cyanide forms a soluble complex with gold, allowing the metal to move from the ore into the liquid phase. The dissolved gold can then be recovered through activated carbon, zinc precipitation, or another downstream method.

Cyanide may be introduced into agitated leach tanks, carbon-in-leach and carbon-in-pulp circuits, or heap-leach solutions. Its effectiveness depends on factors such as gold liberation, ore mineralogy, oxygen availability, pH, contact time, and the presence of other minerals that consume cyanide.

The concentration must be controlled carefully. An insufficient dose can leave recoverable gold in the residue, while excessive addition increases reagent consumption and the subsequent detoxification burden. Consistent delivery also matters because an average flow rate may conceal short periods of overfeeding and underfeeding.

Lime and Caustic Soda for pH Control

Gold cyanidation is generally operated under alkaline conditions. Lime is frequently used to raise and maintain pH and may be supplied as quicklime, hydrated lime, or lime milk. Caustic soda may be selected where a soluble alkali, faster chemical response, or a different handling arrangement is preferred.

Maintaining an alkaline environment supports leaching control and reduces the risk of hydrogen cyanide gas forming from cyanide-bearing solutions. Alkali demand varies with ore chemistry, process water quality, acid-generating minerals, and the selected treatment route.

Lime milk and caustic soda create very different handling duties. Lime milk is an abrasive calcium hydroxide slurry that may settle and form deposits. Caustic soda is a corrosive liquid whose concentration and temperature influence material compatibility. Both require controlled delivery, but pump selection and system design need to reflect their different physical and chemical properties.

Activated Carbon for Dissolved Gold Recovery

Activated carbon is a porous adsorbent rather than a liquid dosing chemical, but it plays a central role in many gold recovery circuits. It captures dissolved gold complexes from cyanide-bearing solutions before the gold is removed in a later treatment step.

In carbon-in-pulp processing, adsorption follows leaching. In carbon-in-leach circuits, leaching and adsorption occur within the same overall circuit. Carbon-in-column systems pass clarified solution through vessels containing activated carbon.

Carbon activity, particle strength, solution chemistry, and contact conditions all influence adsorption performance. Once loaded with gold, the carbon is separated from the slurry or solution and transferred to elution.

Hydrochloric Acid and Caustic Soda in Elution

Loaded activated carbon may carry mineral deposits and other contaminants. Hydrochloric acid can be used during acid washing to remove acid-soluble scale before the carbon enters elution.

Elution uses a heated alkaline solution, often containing caustic soda and, depending on the process, cyanide. This removes gold from the activated carbon and produces a more concentrated gold-bearing solution for electrowinning or another recovery stage.

These chemicals create distinct equipment requirements. Hydrochloric acid is highly corrosive, while heated caustic solutions require materials and seals compatible with their temperature and concentration. Reliable chemical delivery and suitable containment are important because leakage or inconsistent dosing can affect safety, carbon treatment, and circuit availability.

Flotation Reagents for Gold-Bearing Sulfide Ores

Some gold ores require flotation before leaching or further treatment. This is particularly relevant where gold is associated with sulfide minerals. Flotation separates a smaller mineral-rich stream from the bulk ore, reducing the volume that needs to proceed to subsequent processing.

Collectors such as xanthates modify selected mineral surfaces so they can attach to air bubbles. Frothers such as methyl isobutyl carbinol, commonly known as MIBC, help create and control the froth that carries selected minerals to the surface. Activators, depressants, and pH modifiers may also be used to improve separation between valuable minerals and gangue.

The appropriate reagent program depends strongly on mineralogy. Laboratory and plant testing are needed to determine the right chemical combination and operating range. Consistent dosing remains important because fluctuations in collector or frother delivery can alter recovery, selectivity, and froth behavior.

Sodium Metabisulfite for Cyanide Detoxification

Sodium metabisulfite, commonly abbreviated as SMBS, is used in selected cyanide-destruction processes. It supports the treatment of residual cyanide in process water or tailings before reuse, discharge, or further treatment.

Detoxification may also involve air or oxygen, a catalyst, pH adjustment, and carefully controlled reaction conditions. The SMBS dose needs to follow the actual treatment demand. Too little can leave the treatment target unmet, while excessive addition increases chemical consumption and may alter downstream water chemistry.

SMBS can also be used as a modifier or depressant in certain flotation circuits. Its function should therefore be defined by the specific process rather than assumed from the chemical name alone.

Flocculants and Coagulants for Solid-Liquid Separation

Gold-processing plants also use chemicals to improve the separation of suspended solids from water. Flocculants help fine particles form larger aggregates that settle more readily. Coagulants alter particle interactions so suspended material becomes easier to separate.

These chemicals may be used in thickeners, clarifiers, process-water treatment, tailings management, or final water-treatment stages. Their performance depends on water chemistry, particle size, solids loading, preparation quality, dilution, injection location, and mixing conditions.

Polymer-based flocculants may also be sensitive to mechanical shear. The dosing system therefore needs to deliver the intended amount while preserving the properties that allow the polymer to support settling and clarification.

Other Supporting Chemicals

Additional acids, alkalis, oxidants, and precipitation reagents may be used depending on the gold-processing route. Sulfuric acid may support pH adjustment, equipment cleaning, or specific pretreatment duties. Zinc dust is used in Merrill-Crowe circuits to precipitate precious metals from clarified solution. Refractory ores may require oxidation or other pretreatment before gold becomes accessible to leaching.

The chemical list should be defined by the ore, flowsheet, water quality, and treatment objectives. Reagent selection also needs to consider safe storage, construction-material compatibility, containment, process control, and environmental requirements.

Why Chemical Delivery Matters

Selecting the correct chemical is only part of the task. Each reagent must reach the process at the required concentration and rate. Pulsating flow, pressure-dependent output, unsuitable construction materials, crystallization, leakage, or maintenance interruptions can all change how the chemistry performs.

This becomes particularly important where several reagents interact. Lime dosing influences pH and cyanide behavior. Collector and frother addition affect flotation conditions. SMBS dosing influences cyanide detoxification. If one chemical varies unexpectedly, operators may adjust another part of the process to compensate without immediately recognizing the source of the change.

Accurate dosing is therefore not just a measurement issue. The pump needs to repeat the intended delivery while handling the chemical’s viscosity, concentration, corrosiveness, solids content, and operating pressure. A stable average flow is useful, but repeatable delivery across the whole operating period is what gives the process a consistent chemical input.

Gold Processing Depends on the Process Route

The chemicals used in gold mining cannot be reduced to one standard list. Sodium cyanide may dissolve gold. Lime or caustic soda may control pH. Activated carbon may recover dissolved gold. Hydrochloric acid and caustic soda may support carbon treatment and elution. Xanthates and MIBC may be needed where flotation forms part of the route. SMBS may support cyanide detoxification, while flocculants and coagulants improve solid-liquid separation.

What matters is how these chemicals work together within the selected process. Reliable gold processing depends not only on choosing suitable chemistry, but also on delivering every reagent safely, accurately, and consistently.

Read More About Mining Chemical Dosing