Cloruro de polialuminio (PAC): principios, aplicaciones, especificaciones, dosificación y selección.
Fecha de lanzamiento: 30 de agosto de 2026
Tabla de contenido
1. Introducción: ¿Por qué son esenciales los coagulantes en el tratamiento de aguas industriales?
In any industrial water treatment system, many pollutants exist in the form of suspended particles or stable colloids. Even after prolonged periods of natural sedimentation, the water may still retain a high level of turbidity, color, or suspended solid concentration. Why does this happen? The contaminants in raw water and industrial wastewater—such as fine silt, colloidal particles, algae, organic colorants, emulsified oil droplets, and certain metal hydroxides—are not large enough to settle simply by gravity.
Colloidal particles usually have a very small diameter and carry negative surface charges. Because like charges repel, these particles constantly push each other away, remaining in a stable, suspended state. Therefore, the role of a coagulant is not merely to “make the water clear,” but to fundamentally disrupt colloidal stability, force these micro-particles to agglomerate into larger, settleable flocs, and create optimal conditions for subsequent downstream processes like sedimentation, dissolved air flotation (DAF), filtration, and sludge dewatering.
Polyaluminum Chloride (PAC) is currently one of the most widely used inorganic polymer coagulants in the water treatment industry. Through rapid hydrolysis and multiple synergistic coagulation effects, PAC effectively forces fine particles to aggregate. It is extensively applied in municipal water supply, sewage treatment, papermaking, textile dyeing, mining, metallurgy, electroplating, and food processing industries.
2. ¿Qué es el cloruro de polialuminio (PAC)?
2.1 Basic Information and Terminology
To help procurement teams and overseas clients quickly understand PAC, the basic product information is outlined in the table below:
| Artículo | Descripción |
| Nombre común | Polyaluminum Chloride / Poly Aluminum Chloride |
| Common Abbreviation | PAC |
| Other Aliases | Basic aluminum chloride, aluminum chlorohydrate, polyaluminum |
| Número CAS. | 1327-41-9 |
| Product Category | Inorganic polymer coagulant, water treatment chemical, flocculant |
| Common Forms | Solid powder, liquid solution |
| Typical Colors | White, light yellow, golden yellow, brown, dark brown |
| Usos principales | Tap water purification, municipal sewage treatment, industrial wastewater treatment, sludge conditioning |
Polyaluminum Chloride is generally described as a water-soluble inorganic polymer whose chemical composition lies between aluminum chloride and aluminum hydroxide. Its structure can be represented by the general formula [Al2(OH)nCl6-n]m, where m represents the degree of polymerization and n correlates with the degree of hydroxylation or basicity. Because its composition and polymerization state are not entirely fixed, PAC should be viewed as a class of functional water treatment materials with a specific performance range, rather than a single compound with a rigid structural identity.
2.2 How Does PAC Differ from Traditional Aluminum Salts?
Why is PAC considered a superior upgrade to traditional coagulants like aluminum sulfate (alum) or standard aluminum chloride? The following comparison table illustrates the key differences:
| Dimensión de comparación | Polyaluminum Chloride (PAC) | Traditional Aluminum Salts |
| Chemical State | Pre-hydrolyzed and pre-polymerized polynuclear aluminum species. | Primarily low-molecular-weight aluminum salts. |
| Coagulation Mechanism | Synergistic effect of charge neutralization, adsorption bridging, and sweep flocculation. | Relies mostly on hydrolysis to form aluminum hydroxide flocs. |
| Applicable pH Range | Generally wider, though optimal range must be confirmed via jar testing. | Highly dependent on raw water alkalinity and narrow pH windows. |
| Floc Formation | Forms flocs rapidly; flocs are typically larger, denser, and settle quickly. | Highly sensitive to water quality, pH, and dosing conditions; flocs may be lighter. |
| Impact on Alkalinity | Has a relatively low impact on the water’s natural alkalinity. | Consumes more alkalinity, often requiring alkaline additives. |
| Chemical Consumption | Optimized dosing can lower overall chemical consumption and sludge volume. | Requires comprehensive evaluation; often leads to higher chemical usage. |
Note: While PAC offers faster flocculation and broader adaptability in many scenarios, it is not an absolute replacement in every single case. The final choice of chemical should always be backed by beaker jar tests, pilot tests, or actual on-site operational data.
3. Indicadores químicos clave del PAC
Transitioning from basic science to industrial procurement, it is vital to understand that buyers cannot evaluate PAC based solely on its color or a single metric. A systematic evaluation based on the application is required.
3.1 Alumina Content (Al2O3)
El PAC alumina content is one of the most critical indicators of the product’s active ingredients. Generally speaking, when other conditions are similar, a higher Al2O3 content means that a unit mass of the product can provide more active aluminum species.
- Solid PAC products are available in various Al2O3 concentration grades (typically ranging from 26% to 30% or higher).
- Liquid PAC naturally has a lower Al2O3 indicator (usually 10% to 18%) due to its high water content.
- High-content solid products help reduce the transportation and storage costs associated with “ineffective moisture.” However, solubility, water-insoluble matter, and actual coagulation performance are equally important. Procurement should calculate the “comprehensive cost per ton of water treated” rather than just looking at the price per ton of the chemical.
3.2 Basicity (Degree of Alkalization)
El PAC basicity is a core quality parameter reflecting the degree to which hydroxyl groups are bound to aluminum, indicating the level of pre-hydrolysis and pre-polymerization. In layman’s terms, basicity tells you how much of the “hydrolysis work” the PAC has already completed in the factory before you dose it into your water. Appropriate basicity helps the product rapidly form effective coagulating species upon dosing. However, higher basicity is not universally better; if it is too high, it may affect the storage stability of the product or its coagulation performance in highly specific water qualities.
- Low Basicity PAC: Relatively more acidic, suitable for specific process conditions (e.g., highly alkaline wastewater).
- Medium-to-High Basicity PAC: Commonly used in standard water treatment scenarios. Suppliers should always clarify the exact basicity range on the Certificate of Analysis (COA).
3.3 Water Insoluble Matter
Water-insoluble matter directly affects chemical dissolution, dosing stability, the risk of pipeline blockages, and final effluent quality.
- High insoluble content increases the risk of sludge accumulation at the bottom of dissolving tanks and clogs in dosing pumps.
- For drinking water, precision industrial water, RO membrane pretreatment, or automated dosing systems, strict control over water insolubles is mandatory. The manufacturing process, raw material purity, and drying methods (e.g., spray drying vs. drum drying) heavily dictate the insoluble levels in powder PAC.
3.4 pH, Iron Content, and Heavy Metal Limits
Different applications demand different purity limits to prevent secondary pollution.
- Drinking Water: Safety is paramount. It is crucial to verify that the product complies with strict Normas PAC para agua potable. This involves checking heavy metal limits (like As, Pb, Cd, Hg, Cr), raw material traceability, and public health safety certifications.
- Industrial Wastewater: Focus shifts to coagulation efficiency, the impact of impurities on downstream processes, chemical consumption, and sludge volume.
- High-End Industrial Use: Industries like electronics, pharmaceuticals, and food processing must evaluate the risks of iron and heavy metals affecting their proprietary systems.
4. El mecanismo de coagulación: cómo el PAC aclara el agua turbia.
Understanding how PAC transforms turbid water into clear water requires looking at particle interaction at a microscopic level.
4.1 Why Are Colloids Hard to Settle?
Industrial water often contains microscopic suspended particles and colloids that carry the same electrical charge (usually negative). Due to electrostatic repulsion (measured by Zeta potential), these particles refuse to collide and aggregate. Manifestations include highly turbid raw water, deeply colored textile dyeing wastewater, and stubborn emulsified oils in petrochemical effluents.
4.2 Charge Neutralization
When PAC is dissolved in water, it hydrolyzes to form highly positively charged polynuclear aluminum species. These positive charges rapidly neutralize the negative charges on the surface of the colloidal particles. Once the electrostatic repulsion is neutralized, the particles become destabilized and can finally approach one another.
4.3 Adsorption and Bridging
PAC is an inorganic polymer. Its long-chain polynuclear complexes do not just neutralize charge; they physically adsorb onto the surfaces of multiple suspended particles simultaneously. Acting like a net or a “bridge,” PAC links these destabilized particles together, gradually building larger floc structures (commonly known as “alum flocs”).
4.4 Sweep Flocculation
When the dosage, pH, and water conditions are optimal, PAC generates massive, three-dimensional aluminum hydroxide precipitates. As these heavy flocs settle by gravity, they act like a sweeping net, trapping, entangling, and capturing smaller colloids and residual pollutants, dragging them down to the bottom of the settling tank.
4.5 Why is PAC Often Used Together with PAM?
A common question arises regarding the Diferencia entre PAC y PAM. To summarize simply: PAC is primarily responsible for “destabilization, coagulation, and initial micro-floc formation.” PAM (Polyacrylamide), an organic high-molecular-weight polymer, is introduced afterward to “strengthen the bridges, drastically enlarge the flocs, and improve solid-liquid separation.” While they work beautifully together, the exact mixing ratio, dosing sequence, and choice of PAM ionic type (anionic, cationic, or nonionic) must be determined via rigorous testing. Incorrect application can result in loose flocs, muddy effluent, or increased sludge moisture.
5. Principales aplicaciones industriales de PAC
5.1 Tap Water and Raw Water Purification
In municipal water plants, PAC is used to treat surface water, reservoir water, river water, and groundwater. Its goals include:
- Lowering turbidity and suspended solids (SS).
- Removing algae and natural organic matter (NOM).
- Improving color and sensory indicators.
- Protecting downstream sand filters, activated carbon beds, and ultrafiltration (UF) membranes from premature fouling.
- When used for municipal supply, strict adherence to local Normas PAC para agua potable is an absolute legal and safety requirement.
5.2 Municipal Sewage Treatment
In municipal wastewater treatment plants (WWTPs), PAC is deployed for primary chemically enhanced treatment, tertiary treatment of secondary effluent, chemical phosphorus removal, and handling high-turbidity storm-sewage overflow. For phosphorus removal, operators must dynamically adjust the dosing based on influent Total Phosphorus (TP), alkalinity, and pH.
5.3 PAC for Industrial Wastewater Treatment
Using PAC for industrial wastewater treatment is highly diverse. The table below highlights its specific roles across different sectors:
| Industry | Typical Role of PAC | Key Selection & Operational Focus |
| Textile & Dyeing | Reduces color, removes suspended solids, and improves influent quality for biological treatment. | Color removal efficiency, pH window, synergy with organic decolorants and PAM. |
| Papermaking | Removes fine fibers, fillers, colloidal impurities, and some COD from white water. | Compatibility with retention aid systems, sludge volume, and white water recycling standards. |
| Electroplating | Coagulates metal hydroxides, reduces suspended solids. | Adjusting pH for heavy metal precipitation, assessing sludge as hazardous waste. |
| Mining & Sand Washing | Rapidly settles mud and sand to maximize water recycling. | Adaptability to extremely high turbidity, settling velocity, and combination with anionic PAM. |
| Petrochemical | Removes emulsified oils, suspended solids, and colloidal pollutants. | Synergy with demulsifiers, performance in DAF (Dissolved Air Flotation) systems, and salinity tolerance. |
| Food & Beverage | Removes organic suspended solids, fats, oils, and greases (FOG). | Food-contact compliance (if applicable) and reduction of load on anaerobic/aerobic biological systems. |
5.4 Sludge Dewatering and Conditioning
PAC is occasionally used to condition sludge prior to dewatering (via filter presses, centrifuges, or belt presses). It improves the aggregation state of the sludge. However, success heavily depends on the sludge type (primary, biological, or chemical sludge). The ultimate evaluation metric should not just be the clarity of the filtrate, but the dryness of the mud cake, chemical cost, and total sludge disposal expenses.
6. Proceso de producción y formatos del producto
6.1 Common Raw Materials
PAC is manufactured using two primary pathways:
- High-Purity Route: Uses high-grade aluminum hydroxide and synthetic hydrochloric acid. This results in white or light-yellow powder with very low heavy metals and insolubles, making it ideal for drinking water and electronics manufacturing.
- Industrial Route: Utilizes calcium aluminate powder, bauxite, or other aluminous minerals. This produces yellow or brown PAC, offering excellent cost-effectiveness for heavy industrial wastewater treatment.
6.2 Liquid PAC vs. Solid PAC
| Comparison Item | Liquid PAC | Solid PAC (Powder/Granules) |
| Transportation | Tanker trucks, IBC totes. | Bags, jumbo bags (FIBC). Cost-effective for long distances. |
| Active Ingredient | Lower (high water content). | Higher (moisture removed during drying). |
| Ease of Use | Can be diluted and dosed directly; great for automated systems. | Requires a mechanical dissolving system and maturation time. |
| Storage Needs | Needs corrosion-resistant tanks; watch for freezing or crystallization in winter. | Needs dry, ventilated storage to prevent caking and moisture absorption. |
7. ¿Cómo elegir el producto PAC adecuado?
Procurement professionals should never buy PAC based solely on the lowest price per ton.
7.1 Confirm the Application and Water Quality First
Always specify whether the target is drinking water, process water, or wastewater. Determine the baseline pH, turbidity, COD, SS, color, phosphorus, and heavy metals of your effluent. Understand your current process flow (e.g., is the PAC going into a settling tank or a flotation unit?).
7.2 Required Documentation from Suppliers
Before purchasing, request the following documents to ensure quality and compliance:
- Technical Data Sheet (TDS) and Material Safety Data Sheet (MSDS/SDS).
- Certificate of Analysis (COA) for the specific batch.
- Verification of Al2O3 content, basicity, water insolubles, and heavy metal profiles.
- Hygiene and safety permits if intended for potable water.
- Small test samples for laboratory validation.
8. Métodos de dosificación de PAC y pruebas de laboratorio
8.1 Why Standard Dosages Don’t Work
There is no universal “magic number” for dosing. The optimal PAC dosing amount fluctuates wildly depending on raw water turbidity, temperature, pH, organic load, and mixing conditions. Relying on a fixed dosage often leads to chemical waste or treatment failure. Operators must establish dynamic dosing curves based on real-time water quality variations.
8.2 Recommended Jar Test Procedure
To find the precise dosing amount, a beaker jar test is mandatory:
- Collect representative raw/wastewater samples.
- Record initial parameters (pH, turbidity, COD).
- Prepare a diluted PAC working solution (e.g., 1% to 5%).
- Set up multiple beakers with varying dosing gradients (low, medium, high).
- Rapid Mix: Stir rapidly (e.g., 200 rpm for 1-2 minutes) to ensure immediate and uniform dispersion of the coagulant.
- Slow Mix: Reduce speed (e.g., 40 rpm for 10-15 minutes) to allow micro-flocs to collide and grow into large alum flocs.
- Settle: Turn off the stirrer and let it sit for 15-30 minutes.
- If using PAM, add it during the slow mixing phase.
- Measure the supernatant’s turbidity, evaluate floc size, and calculate the sludge volume.
8.3 Judging the Optimal Point
The best dosage isn’t just when the water looks the clearest. You must consider: Are the flocs dense and fast-settling? Does the dosage cause an excessive drop in pH? Is the volume of chemical sludge manageable for the filter press? The optimal point is the balance between excellent effluent quality and the lowest comprehensive operational cost.
9. Directrices de almacenamiento, transporte y seguridad
9.1 Storage Recommendations
Solid PAC must be stored in a cool, dry, and well-ventilated warehouse. Moisture is its enemy; if the packaging breaks, the powder will absorb humidity and cake into hard, unusable blocks. Liquid PAC should be kept in corrosion-resistant tanks (e.g., PE, FRP, or rubber-lined steel) and protected from extreme temperatures. Implement a First-In-First-Out (FIFO) inventory management system.
9.2 Operational Safety
While PAC is safe when handled properly, it is mildly acidic and corrosive. Powder handling can generate dust.
- Operators must wear protective gloves, safety goggles, and respirators during chemical preparation.
- Avoid contact with skin and eyes. In case of accidental contact, flush immediately with copious amounts of clean water.
- Ensure dosing rooms are well-ventilated and equipped with emergency eyewash stations.
- Never mix PAC indiscriminately with strong alkalis, strong oxidizers, or incompatible chemicals.
10. Conclusión
Polyaluminum Chloride is not a “magic bullet” that works blindly. It is a highly efficient inorganic polymer coagulant that relies heavily on proper water quality analysis, process matching, and precise dosing control. Achieving stable, economical, and highly efficient water treatment is not about buying the product with the highest alumina content or the lowest unit price; it is about harmonizing the PAC’s basicity, insoluble limits, and production standards with your site’s specific mechanical mixing and wastewater profile. Through continuous jar testing and pilot optimization, industrial facilities can significantly lower overall treatment costs while securing consistent effluent compliance.
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Preguntas frecuentes sobre Al2O3
¿Un mayor contenido de alúmina PAC (Al2O3) siempre garantiza mejores resultados de tratamiento?
No. While alumina content is a crucial indicator of the active ingredient, it does not act alone. Factors such as water insolubles, basicity, storage stability, and how well the specific PAC matches your water’s pH and contaminant profile are equally important. A medium-content PAC with optimized basicity for your specific wastewater will often outperform a high-content PAC that is improperly matched.
¿Puedo simplemente usar una dosis más alta de PAC para reemplazar el PAM (poliacrilamida) y ahorrarme la compra de dos productos químicos?
No, no pueden sustituirse fácilmente entre sí. Esto toca la esencia Diferencia entre PAC y PAM. PAC is excellent at neutralizing charges and creating small flocs (destabilization). However, it lacks the massive, long-chain polymer structures needed to bridge these micro-flocs into large, heavy, easily dewatered clumps. Using too much PAC will lower the pH, waste money, and increase sludge volume, but it won’t replicate the sweeping macro-flocculation provided by a tiny dose of PAM.
¿Es seguro utilizar PAC de grado industrial para el tratamiento de agua potable siempre y cuando el agua se vea transparente?
En absoluto. El PAC de grado industrial y el PAC de grado para agua potable se producen utilizando diferentes materias primas y procesos. Los grados industriales pueden contener niveles elevados de metales pesados (como plomo, arsénico y cadmio) y otras impurezas que están estrictamente prohibidas en el agua potable. Siempre debe utilizar productos que cumplan explícitamente con las normativas oficiales. Normas PAC para agua potable y poseer las certificaciones necesarias en materia de seguridad y salud pública.
