Dimensionamiento interno de AKD: Una guía práctica para un rendimiento óptimo en la fabricación de papel neutro

20 de julio de 2026

Dimensionamiento interno de AKD: Una guía práctica para un rendimiento óptimo en la fabricación de papel neutro

Introducción

Alkyl Ketene Dimer (AKD) has established itself as the dominant internal sizing agent for neutral and alkaline papermaking systems. Unlike traditional rosin-alum sizing, which requires acidic conditions and causes equipment corrosion, AKD offers a reactive covalent bonding mechanism that provides durable water resistance while enabling the use of cost-effective calcium carbonate fillers.

This article provides a practical, operationally focused guide to AKD internal sizing—covering the chemistry, optimal process conditions, factors affecting performance, common pitfalls, and troubleshooting strategies. Written for paper mill technical teams, this guide draws on both established industry knowledge and the latest technical insights to help you get the most out of your AKD sizing program.


1. Understanding AKD Chemistry: The Reactive Sizing Mechanism

AKD (Alkyl Ketene Dimer) is a reactive sizing agent characterized by a strained β-lactone ring structure. This ring contains the reactive functional group—a ketene dimer—that enables the molecule to bond covalently with cellulose fibers.

1.1 The Covalent Bonding Mechanism

The sizing mechanism proceeds through three essential steps:

Retención — AKD emulsion particles must be retained on the fiber surface during sheet formation. Because AKD itself has inherently low retention, retention aids (such as cationic starch or dual polymer systems) are essential.

Propagación — During the drying section, the low melting point of AKD (44.5–52°C) allows it to melt and spread uniformly over the fiber surface.

Reacción — The β-lactone ring opens and reacts with the hydroxyl (-OH) groups of cellulose to form a covalent β-keto ester bond. This chemical anchoring creates a durable, water-repellent surface that provides lasting sizing performance.

1.2 The Hydrolysis Challenge

A critical consideration in AKD sizing is the competing hydrolysis reaction—where AKD reacts with water rather than cellulose, producing inactive by-products. The hydrolysis reaction is accelerated by high temperatures and prolonged exposure to water. This is why effective retention and minimal dwell time are essential for maximizing sizing efficiency.


2. Optimal Operating Conditions

2.1 pH Range

AKD performs optimally in a neutral to slightly alkaline environment. While it can function across a wide pH range (7.0–9.0), the optimal pH range is 7.5–8.5.

Key considerations:

  • Below pH 7.0: The β-lactone ring may hydrolyze prematurely, reducing its ability to react with fibers.
  • Above pH 8.5: Sizing efficiency decreases as hydrolysis accelerates faster than the curing reaction.

2.2 Alkalinity

Beyond pH, total alkalinity plays a significant role in AKD performance. The recommended total alkalinity range is 150–250 mg/L (as CaCO₃). Within this range:

  • Sizing efficiency is optimized
  • Curing rate is accelerated
  • The wet-end chemistry remains stable

2.3 Temperature

AKD emulsions should be stored at 4–30°C, away from direct sunlight. During the papermaking process, the drying section temperature (typically 90–120°C) is sufficient to melt and spread the AKD for reaction with fibers. However, excessive temperatures in the wet end or stock chests should be avoided, as they accelerate hydrolysis.


3. Factors Affecting AKD Sizing Performance

3.1 The Role of Retention Aids

AKD itself has inherently low retention on fibers—only a fraction of the added AKD is actually retained during sheet formation. This is why retention aids are not optional but essential for effective AKD sizing.

Common retention aid systems include:

  • Cationic starch: The most widely used retention aid for AKD systems. Cationic starch neutralizes anionic trash and improves AKD retention.
  • Dual retention systems: Combinations of cationic starch with CPAM (cationic polyacrylamide) and bentonite have been shown to achieve high sizing efficiency and filler retention simultaneously.
  • Advanced systems: Research has shown that dual retention systems with cationic starch and CPAM can improve AKD sizing by up to 60%.

3.2 Chemical Interferences

Several wet-end additives can interfere with AKD sizing performance:

AdditiveEffect on AKD SizingRecommendation
AntiespumantesCan disrupt emulsion stabilityUse with caution; select defoamers compatible with cationic systems
Felt cleanersMay contain surfactants that interfereAvoid addition near AKD addition point
Anionic dyesCompete for cationic sites; reduce AKD retentionAdd at separate locations; minimize dosage

3.3 Alum (Aluminum Sulfate)

Alum is not required for AKD sizing to function. However, in practice, small amounts of alum (3–10 lb/ton of furnish) are sometimes used to:

  • Improve retention (particularly of titanium dioxide)
  • Enhance drainage
  • Reduce press picking problems
  • Control anionic trash

Critical note: The alum addition point should be separate from the AKD addition point. Adding alum too close to AKD can cause precipitation and reduce sizing efficiency. Avoid excessive alum addition, as high alum levels can interfere with the AKD reaction.


4. Storage and Stability

4.1 Shelf Life

AKD emulsions have a limited shelf life due to the ongoing hydrolysis reaction. Typical storage recommendations:

ParámetroSpecification
Storage temperature4–30°C
Shelf life1 month (for standard 15% solids emulsions)
Storage conditionsCool, ventilated area; protected from direct sunlight
FreezingMust be prevented (freezing breaks the emulsion)

AKD emulsions with advanced stabilizers can achieve longer shelf life—up to 6 months for some formulations—but the industry standard remains 1–3 months.

4.2 Hydrolysis During Storage

Hydrolysis is the primary degradation mechanism for AKD emulsions. Even under optimal storage conditions, hydrolysis proceeds slowly, producing inactive by-products that reduce sizing efficiency. Key factors accelerating hydrolysis:

  • Elevated temperature: Hydrolysis is quantifiable over 15–30 days at 40–60°C
  • Sunlight exposure: Direct UV radiation accelerates degradation
  • Contamination: Introduction of bacteria or other contaminants can accelerate breakdown

5. Dosage Guidelines

5.1 Typical Dosage Range

For most paper grades, the recommended AKD dosage is 8–11 kg per tonne of paper. However, the optimal dosage depends on:

  • Paper grade: Heavy-sizing applications (archival papers, liquid packaging board) may require higher dosages
  • Furnish composition: Recycled fiber typically requires less sizing agent than virgin fiber
  • Filler content: Higher filler levels may require adjusted dosage
  • Target sizing degree: Higher Cobb value requirements need increased dosage

5.2 Dosage Optimization Principles

More is not always better. Excessive AKD addition can lead to:

  • Slip issues: Excess AKD on the paper surface can cause slippage during converting (box-making, printing)
  • Economic waste: Unnecessary chemical cost
  • Process issues: Increased deposits and runnability problems

The key principle is to find the minimum dosage that achieves the target sizing specification, then fine-tune through systematic trials.

5.3 Effect on Dyes

One benefit of optimized AKD sizing is that dye usage typically decreases. The improved retention and reduced anionic interference mean that less dye is needed to achieve the same color intensity.


6. Curing and Development Time

6.1 The Curing Requirement

Unlike ASA (Alkenyl Succinic Anhydride), which develops sizing immediately, AKD requires a curing period to develop full sizing performance.

6.2 The 24-Hour Rule

For heavy-sizing applications (archival papers, liquid packaging board), the typical recommendation is that sizing continues to develop for up to 24 hours after the paper comes off the machine. Maximum sizing performance is often achieved after this curing period.

This means:

  • Off-machine testing at the reel may understate final sizing performance
  • Final quality release should account for the curing period
  • Customer complaints about initial water resistance may resolve after storage

6.3 Accelerating Curing

While some curing time is inherent to AKD chemistry, several strategies can accelerate development:

  • Higher drying temperatures: Within equipment limits, higher temperatures accelerate the reaction
  • Optimized pH and alkalinity: Maintaining the 7.5–8.5 pH range and 150–250 mg/L alkalinity maximizes curing rate
  • Advanced formulations: Some modern AKD emulsions offer faster curing through optimized particle size and stabilizer systems

7. Laboratory Testing Guidelines

7.1 Sample Preparation for Testing

When testing AKD-sized paper in the laboratory, the curing process must be simulated. The standard practice is:

  1. Sample the paper immediately after the reel (or from the laboratory handsheet)
  2. Condition the sample at 105°C for 5–8 minutes to simulate the curing reaction
  3. Test water absorption using the Cobb test or other standard methods

This accelerated curing protocol provides results that more closely approximate the final, fully cured sizing performance.

7.2 Common Test Methods

TestPurposeStandard
Cobb testMeasures water absorption (g/m²)ISO 535, TAPPI T441
HST (Hercules Size Test)Measures liquid penetration timeTAPPI T530
Sizing degreeRelative measure of hydrophobicityVarious

8. Troubleshooting Common AKD Sizing Issues

IssuePossible CausesRecommended Actions
Poor sizing (high Cobb)Insufficient dosage; pH too low or too high; poor retention; incomplete curingVerify dosage; check pH (target 7.5–8.5); optimize retention aid system; allow 24-hour curing; test at 105°C for 5–8 min
Inconsistent sizingpH fluctuations; alkalinity variations; retention system instabilityStabilize wet-end chemistry; monitor alkalinity (150–250 mg/L); check retention aid feed consistency
Slip issues in convertingExcessive AKD dosageReduce dosage; excessive addition does not improve sizing and causes slip
Deposits / stickiesPoor retention; excessive AKD hydrolysis; incompatible additivesImprove retention; reduce AKD dosage if excessive; check for incompatible chemicals
Short shelf life of emulsionTemperature excursions; sunlight exposure; contaminationVerify storage conditions (4–30°C, dark, cool); check for freezing; use within stated shelf life
Reduced sizing after storageHydrolysis during storageUse fresh emulsion; check storage conditions; verify shelf life

9. Summary of Key Operating Parameters

ParámetroOptimal Range / Value
pH7.5 – 8.5
Total alkalinity150 – 250 mg/L (as CaCO₃)
Storage temperature4 – 30°C
Shelf life1 month (standard emulsion)
Typical dosage8 – 11 kg/ton paper
Retention aidEssential (cationic starch or dual system)
CuradoContinues up to 24 hours off-machine
Test conditioning105°C for 5–8 min before testing
AlumNot required; if used, add separately from AKD
Dye usageTypically decreases with optimized AKD sizing

Conclusión

AKD internal sizing is a proven, effective technology for neutral and alkaline papermaking. Its covalent bonding mechanism provides durable water resistance, enables the use of calcium carbonate fillers, and reduces equipment corrosion compared to traditional acid sizing systems.

However, AKD is not a “set and forget” chemistry. Success requires careful attention to:

  • Wet-end chemistry: Maintaining optimal pH (7.5–8.5) and alkalinity (150–250 mg/L)
  • Retención: Using effective retention aid systems to overcome AKD’s inherently low retention
  • Storage: Protecting the emulsion from heat, light, and freezing
  • Curado: Allowing sufficient time (up to 24 hours) for full sizing development
  • Dosage: Finding the minimum effective dosage—more is not better

By understanding the chemistry, controlling the key parameters, and systematically troubleshooting issues, paper mills can achieve consistent, cost-effective AKD sizing performance across a wide range of paper and board grades.


For technical support or product information on LY‑AKD internal sizing agents, please contact our technical service team.

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