Technical articles

Guide to Common Waterborne Resin Types and Application-Based Selection: How to Choose Acrylics, PUD, Waterborne Epoxy, Waterborne Alkyd, VAE, and Related Chemicals

1 Core Questions in Waterborne Resin Selection

 

1.1 Key Selection Criteria

 

There is no “best” waterborne resin in an absolute sense. The key question is whether it is suitable for the target application. Different resins have different strengths in water resistance, weatherability, hardness, flexibility, adhesion, chemical resistance, application properties, cost, and regulatory adaptability. When selecting a waterborne resin, five questions should be answered first:

 

Selection Question

Key Considerations

What substrate will it be applied to?

Cement, wood, metal, plastic, leather, fabric, paper, etc.

What environment will it be used in?

Indoor, outdoor, humid conditions, UV exposure, chemicals, abrasion, corrosive environments

What is the most important performance requirement?

Weatherability, water resistance, hardness, flexibility, adhesion, corrosion protection, abrasion resistance, low odor, etc.

What is the application method?

Brushing, roller coating, spraying, dip coating, flow coating, knife coating, industrial line coating, etc.

What are the cost and regulatory requirements?

Requirements related to VOCs (Volatile Organic Compounds), odor, APEO (Alkylphenol Ethoxylates), NMP (N-Methyl-2-pyrrolidone), etc.

 

1.2 Basic Logic for Selecting Waterborne Resins

 

Waterborne resin selection can be evaluated in the following order:

 

Step

Evaluation Focus

Purpose

Step 1

Define the substrate

Determine requirements for adhesion, wetting, penetration, and interfacial bonding

Step 2

Define the service environment

Determine requirements for water resistance, weatherability, corrosion resistance, chemical resistance, and abrasion resistance

Step 3

Define performance priorities

Balance hardness, flexibility, blocking resistance, low-temperature film formation, stain resistance, etc.

Step 4

Define the application method

Determine viscosity, open time, drying speed, and application suitability

Step 5

Define cost and compliance requirements

Determine resin grade, additive restrictions, and regulatory adaptability

 

Performance priorities differ depending on the application. For example, interior wall coatings place greater emphasis on low odor, application properties, and scrub resistance; exterior wall coatings emphasize weatherability, water resistance, and dirt pick-up resistance; metal anti-corrosion coatings emphasize adhesion, flash-rust resistance, and salt-spray resistance; wood coatings emphasize transparency, hand feel, blocking resistance, and water resistance.

 

2 Performance Map of Common Waterborne Resins

 

Common waterborne resins include acrylic emulsions, vinyl acetate-ethylene copolymer emulsion VAE (Vinyl Acetate-Ethylene Copolymer Emulsion), polyurethane dispersion PUD (Polyurethane Dispersion), waterborne epoxy, waterborne alkyd, waterborne polyester, hydroxy acrylic, and hybrid resins.

 

Resin Type

Core Advantages

Main Limitations

Typical Application Areas

Styrene-acrylic emulsion

Cost-effective; good hardness and adaptability to pigmented/filler systems

Weatherability and yellowing resistance are usually weaker than pure acrylic systems

Interior walls, general architectural coatings, primers

Pure acrylic emulsion

Good weatherability, color retention, and water resistance

Higher cost than styrene-acrylic; low-temperature film formation needs to be balanced

Exterior walls, high-performance architectural coatings, some industrial coatings

Silicone-acrylic emulsion

Good water resistance, weatherability, and dirt pick-up resistance

Higher cost; formulation suitability needs verification

High-performance exterior walls, elastomeric coatings, stain-resistant coatings

VAE emulsion

Good film formation, flexibility, application properties, and cost performance

Limited water resistance, alkali resistance, and weatherability

Interior walls, adhesives, paper, and construction auxiliaries

PUD

Good flexibility, abrasion resistance, adhesion, and hand feel

Higher cost; sensitive to formulation and drying conditions

Wood coatings, leather, textiles, plastics, industrial coatings

Waterborne epoxy

Good adhesion, corrosion protection, and chemical resistance

Limited outdoor weatherability; pot life must be controlled in two-component systems

Anti-corrosion primers, floor coatings, concrete protection

Waterborne alkyd

Good wetting, leveling, gloss, and fullness

Drying speed, yellowing resistance, and water resistance need optimization

Metal decorative coatings, wood coatings, general industrial coatings

Waterborne polyester / hydroxy acrylic

Good decorative appearance, hardness, gloss, and crosslinkability

Often requires crosslinking systems and industrial application conditions

Industrial topcoats, baking finishes, two-component coatings

Hybrid resin

Helps balance properties that are difficult to achieve with a single resin

Complex structure; stability and cost need evaluation

High-performance architectural, wood, industrial, and anti-corrosion coatings

 

This performance map should only be used as an initial reference. Actual selection also requires comprehensive evaluation of resin solids content, pH, particle size, glass transition temperature Tg, minimum film-forming temperature MFFT, functional groups, crosslinking mechanism, and formulation suitability.

 

3 Analysis of Common Waterborne Resin Types

 

3.1 Acrylic Resins

 

Acrylic resins are among the most widely used resin types in waterborne coatings. Depending on monomer composition and modification method, they can be classified as styrene-acrylic, pure acrylic, silicone-acrylic, elastomeric acrylic, hydroxy acrylic, self-crosslinking acrylic, and other types. Acrylic resins are highly designable in structure. Their hardness, flexibility, water resistance, weatherability, and film-forming properties can be adjusted through soft and hard monomers, functional monomers, particle size, core-shell structure, and crosslinking design.

 

3.1.1 Styrene-Acrylic Emulsion

 

Styrene-acrylic emulsions are usually copolymers of styrene and acrylic ester monomers. They are commonly used in architectural coatings and general-purpose waterborne coatings. If the application environment involves long-term exposure to strong UV radiation, rainwater, and temperature-humidity fluctuations, resin systems with better weatherability should generally be considered.

 

Item

Selection Consideration

Main advantages

Cost-effective; good hardness; suitable for pigmented and filler systems; strong applicability in architectural coatings

Main limitations

Weatherability, yellowing resistance, and long-term color retention are usually weaker than pure acrylic systems

Suitable applications

Interior wall coatings, general primers, economical architectural coatings

Selection focus

Scrub resistance, adaptability to hiding systems, calcium ion stability, freeze-thaw stability, low-odor requirements

 

3.1.2 Pure Acrylic Emulsion

 

Pure acrylic emulsions are mainly composed of acrylate and methacrylate monomers and do not contain styrene structures. They are usually superior to styrene-acrylic systems in weatherability, color retention, water resistance, and alkali resistance. Pure acrylic emulsions are suitable for exterior walls and applications with higher weatherability requirements. If both low-temperature film formation and blocking resistance are required, attention should be paid to Tg, MFFT, particle size, and whether a core-shell structure or self-crosslinking design is used.

 

Item

Selection Consideration

Main advantages

Good weatherability, water resistance, and color retention

Main limitations

Higher cost; hardness and low-temperature film formation need to be balanced

Suitable applications

Exterior wall coatings, high-performance architectural coatings, some industrial coatings

Selection focus

Weatherability, water resistance, dirt pick-up resistance, low-temperature application, long-term color retention

 

3.1.3 Silicone-Acrylic Emulsion

 

Silicone-acrylic emulsions introduce organosilicon structures or silicone-modified components into acrylic resins to improve water resistance, weatherability, dirt pick-up resistance, and surface hydrophobicity.

 

Item

Selection Consideration

Main advantages

Good water resistance, weatherability, dirt pick-up resistance, and hydrophobicity

Main limitations

Higher cost; system compatibility and application stability need verification

Suitable applications

High-performance exterior walls, elastomeric coatings, stain-resistant coatings

Selection focus

Dirt pick-up resistance, rain-streak resistance, weatherability, breathability, formulation compatibility

 

3.1.4 Hydroxy Acrylic and Self-Crosslinking Acrylic

 

Hydroxy acrylic resins contain hydroxyl groups and can react with crosslinkers such as isocyanates and amino resins to improve coating film hardness, chemical resistance, and solvent resistance. Self-crosslinking acrylic resins form a certain crosslinked structure during drying through the resin’s own functional groups. These resins are suitable for systems requiring higher water resistance, blocking resistance, stain resistance, and chemical resistance, but attention should be paid to crosslinking reaction speed, storage stability, pot life, and flexibility.

 

Type

Main Characteristics

Suitable Directions

Hydroxy acrylic

Crosslinkable; suitable for improving hardness, chemical resistance, and solvent resistance

Industrial coatings, wood coatings, two-component systems

Self-crosslinking acrylic

Relatively convenient to use; can improve water resistance, blocking resistance, and stain resistance

Architectural, wood, and general industrial coatings

 

3.2 VAE Emulsion

 

VAE emulsion is a waterborne emulsion formed by the copolymerization of vinyl acetate and ethylene. Ethylene units can reduce the polymer’s glass transition temperature and improve flexibility and film-forming properties.

 

Item

Selection Consideration

Main advantages

Good film formation, good flexibility, good application properties, and good cost performance

Main limitations

Water resistance, alkali resistance, and weatherability are usually limited

Suitable applications

Interior wall coatings, adhesives, putty auxiliaries, paper and nonwoven-related systems

Selection focus

Low odor, low-temperature film formation, scrub resistance, water and alkali resistance requirements, cost

 

VAE emulsions are suitable for interior architectural coatings, adhesives, and similar applications. For long-term outdoor use, highly alkaline substrates, or applications requiring high water resistance, their weatherability, water resistance, and alkali resistance should be carefully evaluated. VAE’s advantages lie in good film formation and flexibility. However, if high water resistance, high weatherability, or high chemical resistance is required, other resin systems should usually be selected, or resin blending and modification should be considered.

 

3.3 Polyurethane Dispersion PUD

 

PUD is a system in which polyurethane resin is dispersed in water in the form of fine particles. Depending on the soft segment, hard segment, ionic groups, crosslinking structure, and modification method, PUD can exhibit a broad range of properties.

 

Item

Selection Consideration

Main advantages

Good flexibility, abrasion resistance, adhesion, elasticity, and hand feel

Main limitations

Higher cost; sensitive to drying conditions, additives, and formulation compatibility

Suitable applications

Wood coatings, leather finishing, textile coatings, plastic coatings, industrial coatings

Selection focus

Soft/hard segment structure, hydrolysis resistance, abrasion resistance, adhesion, hand feel, chemical resistance

 

The performance of PUD is closely related to its structure.

 

PUD Structural Direction

Performance Tendency

Polyester-based PUD

Good strength and abrasion resistance; hydrolysis resistance needs evaluation

Polyether-based PUD

Good flexibility, low-temperature performance, and hydrolysis resistance

Aliphatic PUD

Good yellowing resistance and appearance retention

Aromatic PUD

Lower cost, but weaker yellowing resistance

Crosslinked PUD

Can improve water resistance, solvent resistance, and mechanical properties

PUD-acrylic hybrid

Helps balance cost, hardness, flexibility, and abrasion resistance

 

3.4 Waterborne Epoxy Resin

 

Waterborne epoxy systems usually consist of waterborne epoxy resin or epoxy dispersion combined with waterborne amine curing agents. Their advantages lie in adhesion, corrosion protection, chemical resistance, and bonding capability to substrates such as concrete and metal.

 

Item

Selection Consideration

Main advantages

Strong adhesion; good corrosion protection and chemical resistance

Main limitations

Limited outdoor weatherability; two-component application requires control of pot life and curing conditions

Suitable applications

Anti-corrosion primers, floor coatings, concrete protection, industrial primers

Selection focus

Epoxy equivalent weight, curing agent type, pot life, low-temperature curing, salt-spray resistance, water resistance

 

Waterborne epoxy is suitable for primers or floor systems requiring high adhesion, corrosion protection, and chemical resistance. Waterborne epoxy is usually not suitable as a high-weatherability topcoat for long-term direct outdoor exposure, because epoxy structures tend to chalk and lose gloss under ultraviolet light. When selecting waterborne epoxy, special attention should be paid to the matching between the resin and the curing agent. The type, activity, emulsifying capability, and compatibility of the curing agent significantly affect pot life, drying speed, film compactness, water resistance, and corrosion protection performance.

 

3.5 Waterborne Alkyd Resin

 

Waterborne alkyd resins are produced by waterborne modification of traditional alkyd resins so that they can be diluted or dispersed with water. Alkyd resins contain fatty acid structures and often form films gradually through oxidative drying in air.

 

Item

Selection Consideration

Main advantages

Good wetting, leveling, gloss, fullness, and application feel

Main limitations

Drying speed, yellowing resistance, water resistance, and early hardness need optimization

Suitable applications

Metal decorative coatings, wood coatings, general industrial coatings

Selection focus

Oil length, fatty acid type, drying speed, yellowing, water resistance, VOC

 

Waterborne alkyds are suitable for applications requiring good application feel, leveling, and decorative appearance. Compared with acrylic emulsions, waterborne alkyds usually have advantages in wetting and fullness. However, drying speed, yellowing resistance, and water resistance need to be carefully controlled. For white or light-colored systems, yellowing resistance should be given special attention. For metal substrates, early water resistance, flash-rust resistance, and adhesion should be considered.

 

3.6 Waterborne Polyester and Waterborne Hydroxy Acrylic

 

Waterborne polyester and waterborne hydroxy acrylic are commonly used in crosslinkable industrial coating systems. They can be combined with amino resins, blocked isocyanates, or water-dispersible isocyanates to improve hardness, gloss, chemical resistance, and decorative appearance.

 

Resin Type

Main Characteristics

Typical Applications

Waterborne polyester

Good gloss, fullness, flexibility, and decorative appearance

Industrial baking finishes, metal coating, coil coating

Waterborne hydroxy acrylic

Good weatherability, hardness, and crosslinkability

2K waterborne polyurethane, industrial topcoats, wood coatings

 

2K (Two-Component) waterborne polyurethane systems are usually based on waterborne hydroxy resins combined with water-dispersible polyisocyanates. They can provide high hardness, chemical resistance, abrasion resistance, and appearance quality. However, these systems have relatively high requirements for mixing ratio, pot life, application environment, and crosslinking reaction conditions.

 

3.7 Hybrid Resins

 

Hybrid resins combine the advantages of different resins through structural hybridization or particle hybridization to improve properties that are difficult to balance with a single resin. The core value of hybrid resins is to balance application pain points. For example, polyurethane can be used to improve the flexibility and abrasion resistance of acrylics; acrylics can be used to improve the drying and weatherability of alkyds; and epoxy structures can be used to improve adhesion and corrosion protection.

 

Hybrid Type

Main Purpose

Typical Applications

PUD-acrylic hybrid

Balance flexibility, abrasion resistance, hardness, and cost

Wood, leather, industrial coatings

Epoxy-acrylic hybrid

Improve adhesion, corrosion protection, and application suitability

Metal primers, anti-corrosion coatings

Alkyd-acrylic hybrid

Balance leveling, drying, weatherability, and cost

Metal decorative coatings, industrial coatings

Silicone-acrylic hybrid

Improve water resistance, weatherability, and dirt pick-up resistance

High-performance exterior wall coatings

 

4 Selecting Waterborne Resins by Application Scenario

 

4.1 Interior Architectural Coatings

 

Interior wall coatings usually focus on low odor, application properties, hiding power, scrub resistance, storage stability, and cost.

 

Selection Focus

Recommended Resin Direction

Economical interior wall coatings

Styrene-acrylic emulsion, VAE emulsion

Mid- to high-end interior wall coatings

Pure acrylic emulsion, modified styrene-acrylic emulsion

Low odor and low VOC

Low-odor acrylic emulsion, low-VOC VAE

High scrub resistance

Pure acrylic, self-crosslinking acrylic, scrub-resistant styrene-acrylic

 

4.2 Exterior Architectural Coatings

 

Exterior wall coatings are exposed to ultraviolet radiation, rainwater, temperature-humidity fluctuations, and polluted environments for long periods. Therefore, greater emphasis is placed on weatherability, water resistance, color retention, alkali resistance, and dirt pick-up resistance.

 

Selection Focus

Recommended Resin Direction

General exterior wall coatings

Pure acrylic emulsion, modified acrylic emulsion

High-weatherability exterior wall coatings

Pure acrylic emulsion, silicone-acrylic emulsion

High dirt pick-up resistance

Silicone-acrylic emulsion, fluoro-silicone modified acrylic

Elastomeric exterior wall coatings

Elastomeric acrylic emulsion, silicone-acrylic elastomeric emulsion

 

4.3 Wood Coatings

 

Waterborne wood coatings focus on transparency, wetting, hand feel, hardness, blocking resistance, water resistance, alcohol resistance, stain resistance, and sandability.

 

Selection Focus

Recommended Resin Direction

Flexibility and hand feel

PUD, PUD-acrylic hybrid

Transparency and appearance

Waterborne acrylic, PUD, hydroxy acrylic

High water resistance and stain resistance

Self-crosslinking acrylic, 2K waterborne polyurethane

High hardness and chemical resistance

Waterborne hydroxy acrylic + water-dispersible isocyanate

 

Resin selection for wood coatings requires balancing hardness, flexibility, transparency, and blocking resistance. PUD is suitable for improving flexibility, hand feel, and abrasion resistance; acrylics are suitable for improving transparency, hardness, and cost balance; 2K waterborne polyurethane is suitable for applications requiring high resistance properties.

 

4.4 Metal Anti-Corrosion Coatings

 

Metal anti-corrosion coatings focus on adhesion, flash-rust resistance, water resistance, salt-spray resistance, chemical resistance, and film compactness. In metal systems, resin adhesion and corrosion protection are very important. Waterborne epoxy is suitable for anti-corrosion primers and floor primers; waterborne alkyd is suitable for metal decorative coatings and general industrial paints; waterborne acrylic is suitable for systems requiring fast drying and higher weatherability.

 

Selection Focus

Recommended Resin Direction

Anti-corrosion primer

Waterborne epoxy, waterborne epoxy ester, epoxy-acrylic hybrid

General metal paint

Waterborne acrylic, waterborne alkyd, waterborne epoxy-modified systems

High salt-spray resistance

Waterborne epoxy + suitable curing agent system

Decorative metal coatings

Waterborne alkyd, waterborne acrylic, waterborne polyester

 

4.5 Floor Coatings

 

Floor coatings require abrasion resistance, hardness, adhesion, water resistance, chemical resistance, compressive strength, and suitability for thick-film application. Waterborne epoxy is an important resin direction in waterborne floor coatings and is suitable for primers, intermediate coats, and some topcoats. If higher requirements are placed on abrasion resistance, stain resistance, chemical resistance, and decorative appearance, waterborne polyurethane or waterborne polyurethane topcoat systems may be considered.

 

Selection Focus

Recommended Resin Direction

Adhesion to cementitious substrates

Waterborne epoxy

Abrasion resistance and chemical resistance

Waterborne epoxy, 2K waterborne polyurethane

Topcoat stain resistance and decorative appearance

Waterborne polyurethane, waterborne hydroxy acrylic systems

Low-odor application

Low-VOC waterborne epoxy, waterborne polyurethane systems

 

4.6 Leather, Textile, and Flexible Substrate Coatings

 

Flexible substrates require resins with flexibility, flex resistance, hand feel, adhesion, washing resistance, and abrasion resistance. In such applications, the resin should not be overly hard. Excessive hardness may lead to poorer hand feel, reduced flex resistance, and a higher risk of cracking. PUD is an important resin type in flexible substrate coatings.

 

Selection Focus

Recommended Resin Direction

Flexibility and flex resistance

PUD, flexible acrylic emulsion

Hand feel and elasticity

PUD, PUD-acrylic hybrid

Washing resistance and abrasion resistance

Crosslinked PUD, self-crosslinking acrylic

Low-temperature flexibility

Polyether-based PUD, low-Tg acrylic emulsion

 

4.7 Packaging Coatings and Waterborne Inks

 

Packaging coatings and waterborne inks focus on adhesion, fast drying, rub resistance, water resistance, resolubility control, and printability. If food contact or food packaging scenarios are involved, regulatory compliance, migration risks, and suitability for the final structure must also be confirmed separately.

 

Selection Focus

Recommended Resin Direction

Waterborne inks

Waterborne acrylic resin, acrylic emulsion

Flexibility and adhesion

PUD, PUD-acrylic hybrid

Rub resistance and water resistance

Self-crosslinking acrylic, crosslinked PUD

Paper and film suitability

Acrylic, PUD, specialized waterborne dispersion

 

4.8 Industrial Topcoats and High-Performance Coating Systems

 

Industrial topcoats usually focus on appearance, gloss, hardness, weatherability, chemical resistance, abrasion resistance, and application stability. Resin selection should not be based only on a single property. It should also be evaluated together with application method, drying conditions, film thickness, and the subsequent service environment.

 

Selection Focus

Recommended Resin Direction

High gloss and decorative appearance

Waterborne polyester, waterborne hydroxy acrylic

High weatherability

Pure acrylic, hydroxy acrylic, aliphatic PUD

High chemical resistance

2K waterborne polyurethane; waterborne epoxy systems are suitable for indoor use, primers, intermediate coats, floors, or anti-corrosion systems

Flexibility and abrasion resistance

PUD, PUD-acrylic hybrid

 

5 Quick Reference for Resin Selection in Common Applications

 

Application Direction

Priority Properties

Common Resin Directions

Interior wall coatings

Low odor, application properties, scrub resistance, cost

Styrene-acrylic, VAE, pure acrylic

Exterior wall coatings

Weatherability, water resistance, color retention, dirt pick-up resistance

Pure acrylic, silicone-acrylic, elastomeric acrylic

Wood coatings

Transparency, hand feel, blocking resistance, water resistance

PUD, acrylic, PUD-acrylic, 2K PU

Metal anti-corrosion

Adhesion, flash-rust resistance, salt-spray resistance, water resistance

Waterborne epoxy, epoxy-acrylic, waterborne alkyd

Floor coatings

Abrasion resistance, hardness, chemical resistance, adhesion

Waterborne epoxy, 2K waterborne polyurethane

Leather/textiles

Flexibility, flex resistance, hand feel, abrasion resistance

PUD, flexible acrylic, PUD-acrylic

Packaging/inks

Fast drying, adhesion, rub resistance, low odor

Waterborne acrylic, PUD, self-crosslinking acrylic

Industrial topcoats

Gloss, hardness, weatherability, chemical resistance

Hydroxy acrylic, waterborne polyester, PUD, 2K PU

 

6 Common Mistakes in Resin Selection

 

6.1 Mistake 1: Judging Performance Only by Resin Name

 

The same term “acrylic emulsion” may refer to different types such as styrene-acrylic, pure acrylic, silicone-acrylic, self-crosslinking acrylic, and elastomeric acrylic. Their weatherability, film formation, hardness, flexibility, and water resistance may differ greatly. Similarly, the same term “PUD” may refer to systems with completely different performance depending on soft segment, hard segment, ionic groups, crosslinking structure, and modification method. Resin names only provide an initial direction and cannot replace specific technical parameters and application testing.

 

6.2 Mistake 2: Pursuing Only High Hardness or High Resistance

 

High hardness, high crosslinking density, and high chemical resistance are not always the best choices. For flexible substrates, wood coatings, or elastomeric coatings, excessive hardness may cause cracking, poor hand feel, or insufficient flex resistance. Selection should be centered on application requirements rather than simply maximizing a single performance indicator.

 

6.3 Mistake 3: Assuming High-Performance Resins Are Suitable for All Applications

 

PUD, waterborne epoxy, 2K waterborne polyurethane, and other systems can provide high performance, but they may also bring issues related to cost, application complexity, pot life, drying conditions, and formulation compatibility. High-performance resins should be prioritized for application scenarios where performance requirements are clear, cost is acceptable, and application conditions are controllable.

 

6.4 Mistake 4: Ignoring the Substrate and Environment

 

The same resin may perform differently on different substrates. Metal, wood, cement, plastic, leather, and paper have very different surface properties and different requirements for wetting, adhesion, penetration, and durability. The performance of the same resin may also vary between indoor and outdoor environments, dry and humid conditions, room temperature and high temperature, ordinary environments and corrosive environments. Resin selection must be judged in combination with the substrate and service environment.

 

7 Summary

 

The core of waterborne resin selection is determining which resin is more suitable for the target application. The key points of this article can be summarized as follows:

 

 Acrylic resins have a wide range of applications.

Styrene-acrylic is suitable for cost-effective and general architectural applications; pure acrylic is suitable for weatherability and exterior wall applications; silicone-acrylic is suitable for higher requirements in water resistance, weatherability, and dirt pick-up resistance.

 

 VAE emulsion is suitable for interior walls, adhesives, and similar applications.

It has good film-forming properties, flexibility, and cost performance, but its water resistance, alkali resistance, and weatherability need to be evaluated according to the specific application.

 

 PUD is suitable for applications requiring high flexibility, abrasion resistance, hand feel, and adhesion.

PUD has clear application value in wood coatings, leather, textiles, plastics, and some industrial coatings, but cost and formulation suitability should be considered.

 

 Waterborne epoxy is suitable for anti-corrosion, flooring, and high-adhesion primers.

Its advantages lie in adhesion, corrosion protection, and chemical resistance, but outdoor weatherability and two-component application management require attention.

 

 Waterborne alkyd, waterborne polyester, hydroxy acrylic, and hybrid resins are suitable for targeted performance upgrades.

Alkyd focuses on wetting, leveling, and decorative appearance; polyester and hydroxy acrylic are suitable for industrial crosslinking systems; hybrid resins are used to solve performance imbalances that are difficult to address with a single resin.

 

Reasonable waterborne resin selection should jointly consider substrate, environment, performance priorities, application method, cost, and regulatory requirements.

 

8. Classification and Application Tables of Representative Chemicals Related to Common Waterborne Resin Types and Application-Based Selection

 

Note: The following products are representative monomers, raw materials, intermediates, curing agents, or additives that may be involved in research on waterborne resins, coatings, and adhesives. They are not equivalent to finished waterborne resins or industrial formulation recommendations. Specific applications should be confirmed based on SDS, COA, regulatory restrictions, reaction conditions, formulation compatibility, and end-use performance testing.

 

Table 1. Products Related to Acrylics, Styrene-Acrylics, VAE, and Functional Monomers

 

Category

CAS No.

Aladdin Item No.

Name

Specification or Purity

Product Features and Applications

Hydroxy acrylic monomer

868-77-9

H140643

2-Hydroxyethyl methacrylate (HEMA)

Anhydrous grade, ≥99%, contains 200 ppm MEHQ stabilizer, water ≤0.1%

Used in research on hydroxy acrylic resins, crosslinkable waterborne coatings, wood coatings, and industrial topcoats

Carboxyl-functional monomer

79-10-7

A397753

Acrylic acid

Anhydrous grade, ≥99%, contains 200 ppm MEHQ stabilizer

Used for introducing carboxyl groups into waterborne acrylic resins, emulsion stabilization, adhesion adjustment, and research on alkali-soluble resins

Carboxyl-functional monomer

79-41-4

M434201

Methacrylic acid

Suitable for synthesis, stabilized with hydroquinone monomethyl ether

Used in research on acid value adjustment, hardness adjustment, dispersion stability, and water resistance of waterborne acrylic resins

Soft monomer

140-88-5

E112944

Ethyl acrylate

Chemically pure (CP), ≥98%, contains 20 ppm MEHQ stabilizer

Used in research on soft-segment design, film formation, flexibility, and low-temperature application properties of waterborne acrylic emulsions

Soft monomer

141-32-2

B100036

Butyl acrylate (BA)

Chemically pure (CP), ≥98%, contains 50 ppm MEHQ stabilizer

Used for adjusting flexibility, low-temperature film formation, crack resistance, and glass transition temperature in waterborne acrylic emulsions

Vinyl ester monomer

108-05-4

V104471

Vinyl acetate

Chemically pure (CP), ≥98%

Used in research on polyvinyl acetate emulsions, ethylene-vinyl acetate copolymer systems, and construction adhesives

Hydrophobic vinyl ester monomer

51000-52-3

V170678

Vinyl neodecanoate, mixture of isomers

Contains MEHQ inhibitor

Used in hydrophobic modification, water resistance improvement, and exterior wall coating research for waterborne acrylic and vinyl acetate copolymer systems

Ethylene-vinyl acetate copolymer

24937-78-8

P432376

Poly(ethylene-co-vinyl acetate) (PEVA)

Vinyl acetate 12 wt.%, melt index 8 g/10 min (190°C/2.16 kg)

Used for performance comparison of EVA/PEVA copolymer materials, flexibility, film-forming properties, and adhesive application evaluation

Styrene-acrylic hard monomer

100-42-5

S110375

Styrene

CP, contains 10–15 ppm 4-tert-butylcatechol stabilizer

Used in research on styrene-acrylic emulsions, architectural coating resins, hardness adjustment, and cost balancing

Hard monomer

80-62-6

M109623

Methyl methacrylate (MMA)

AR, ≥99%, contains 30 ppm DMBP stabilizer

Used in research on hardness, transparency, weatherability, and exterior wall coating resins for waterborne acrylic resins

High glass transition temperature monomer

7534-94-3

I102358

Isobornyl methacrylate

50–150 ppm MEHQ stabilizer

Used in research on acrylic resin hardness, heat resistance, hydrophobicity, blocking resistance, and industrial coatings

Low glass transition temperature monomer

103-11-7

E108592

2-Ethylhexyl acrylate (2-EHA)

≥99% (GC), contains 10–1100 ppm MEHQ as stabilizer

Used in research on elastomeric acrylic emulsions, flexible coating films, low-temperature film formation, and pressure-sensitive adhesive systems

Epoxy-functional acrylic monomer

106-91-2

G106686

Glycidyl methacrylate

≥97%, contains 100 ppm MEHQ stabilizer

Used in research on epoxy-functionalized acrylic resins, adhesion enhancement, crosslinking reactions, and metal coatings

Hydroxy acrylic monomer

27813-02-1

H109880

Hydroxypropyl methacrylate (HPMA)

≥97%, contains 0.02% 4-methoxyphenol stabilizer

Used in research on hydroxy acrylic resins, two-component waterborne polyurethane, industrial topcoats, and wood coatings

Hydroxy acrylic monomer

818-61-1

H104535

2-Hydroxyethyl acrylate

≥96%, contains 200–600 ppm MEHQ as inhibitor

Used in research on hydroxylated waterborne acrylic emulsions, crosslinkable clear coats, adhesion, and chemical resistance

Hydroxy acrylic monomer

25584-83-2

H156905

Hydroxypropyl acrylate, mixture of 2-hydroxypropyl acrylate and 2-hydroxy-1-methylethyl acrylate

≥90% (GC), contains MEHQ stabilizer

Used in research on hydroxy waterborne acrylic resins, flexibility adjustment, crosslinked coating films, and industrial coatings

 

Table 2. Products Related to Waterborne Polyurethane Dispersions and Polyurethane Structural Raw Materials

 

Category

CAS No.

Aladdin Item No.

Name

Specification or Purity

Product Features and Applications

Polyurethane chain extender

110-63-4

B1508458

1,4-Butanediol (BDO)

Anhydrous grade, ≥99%

Used in research on waterborne polyurethane chain extension, hard-segment structure adjustment, abrasion resistance, and mechanical properties

Process solvent

872-50-4

M119668

N-Methyl-2-pyrrolidone (NMP)

Anhydrous grade, ≥99.5%

Used in research on traditional waterborne polyurethane prepolymer dissolution, synthesis processes, and dispersion processes; in practical applications, attention should be paid to regulatory restrictions, occupational exposure risks, and NMP-free or low-residue alternatives

Polyester polyol

36890-68-3

P478032

Polycaprolactone diol

Average Mn 10000

Used in research on high-molecular-weight polyurethane soft-segment design, flexibility, abrasion resistance, and elastomeric coatings; when used in PUD synthesis, viscosity, dissolution/dispersion, and process compatibility should be considered

Aliphatic diisocyanate

822-06-0

H106723

Hexamethylene diisocyanate (HDI)

Moligand™, ≥99%

Used in research on polyurethane resin synthesis, yellowing-resistant structures, crosslinking design, and industrial coatings

Cycloaliphatic diisocyanate

4098-71-9

I109582

Isophorone diisocyanate, mixture of isomers (IPDI)

≥99%

Used in research on waterborne polyurethane dispersions, yellowing-resistant coating films, wood coatings, and industrial coatings

Internal emulsifying monomer

10097-02-6

B115196

2,2-Bis(hydroxymethyl)butyric acid (DMBA)

≥98%

Used in research on internal emulsification of waterborne polyurethane, particle size control, dispersion stability, and low-odor systems

Internal emulsifying monomer

4767-03-7

B104539

2,2-Bis(hydroxymethyl)propionic acid (DMPA)

≥98%

Used in research on carboxyl-based waterborne modification of polyurethane, ionic stabilization, dispersion preparation, and neutralization to form salts

Amine chain-extension and curing intermediate

36692-49-6

M122710

Methyl 3,4-diaminobenzoate

≥98%

Used in research on aromatic amine-containing structural materials, functional resins, and curing reactions; when used for polyurethane chain extension, reaction activity, solubility, and process conditions need to be verified

Cycloaliphatic diisocyanate

5124-30-1

D155475

Dicyclohexylmethane 4,4'-diisocyanate, mixture of isomers (HMDI)

≥90% (GC)

Used in research on waterborne polyurethane dispersions, yellowing-resistant structures, flexible coating films, and high-solids resins

 

Table 3. Products Related to Waterborne Epoxy Resins, Curing Agents, and Reactive Diluents

 

Category

CAS No.

Aladdin Item No.

Name

Specification or Purity

Product Features and Applications

Phenolic epoxy resin

28064-14-4

P477947

Poly[(phenyl glycidyl ether)-co-formaldehyde]

Average Mn ~345

Used in research on epoxy anti-corrosion coatings, chemically resistant coating films, crosslink density adjustment, and high-performance resins

Amine epoxy curing agent

112-24-3

T103762

Triethylenetetramine (TETA)

Chemically pure (CP), ≥68%

Used in research on waterborne epoxy curing, anti-corrosion primers, floor coatings, and crosslinking reactions

Epoxy reactive diluent

68609-97-2

D133554

C12–14 alkyl glycidyl ether

Industrial grade

Used in research on epoxy resin viscosity reduction, flexibility adjustment, curing reactions, and waterborne epoxy systems

Epoxy resin raw material

106-89-8

E401255

Epichlorohydrin

Industrial grade

Used in research on epoxy resin synthesis, glycidyl ether preparation, and epoxy-functional materials

Epoxy resin raw material

80-05-7

B108651

Bisphenol A

Moligand™, chemically pure (CP)

Used in research on bisphenol A epoxy resins, industrial coating resins, flooring, and anti-corrosion materials

Bisphenol A epoxy resin

1675-54-3

B131786

Bisphenol A diglycidyl ether (BADGE)

Moligand™, ≥85%

Used in research on waterborne epoxy systems, metal anti-corrosion, concrete protection, and chemically resistant coating films

Amine epoxy curing agent

111-40-0

D100059

Diethylenetriamine

≥99%

Used in research on epoxy curing, crosslink density adjustment, water resistance, chemical resistance, and adhesion

Cycloaliphatic amine curing agent

2855-13-2

A104545

Isophoronediamine, mixture of cis/trans isomers (IPDA)

≥99%

Used in research on waterborne epoxy curing, anti-corrosion coatings, floor coatings, and chemical resistance

Monofunctional epoxy modifier

26761-45-5

G769075

Glycidyl neodecanoate

≥99%

Used in modification of epoxy resins and acrylic resins, viscosity reduction, hydrophobicity, and flexibility adjustment

Epoxy reactive diluent

2426-08-6

B152235

Butyl glycidyl ether

≥98% (GC)

Used in research on epoxy system viscosity reduction, curing reactions, flexibility adjustment, and coating application properties

 

Table 4. Products Related to Waterborne Alkyds, Waterborne Polyesters, and Drier Systems

 

Category

CAS No.

Aladdin Item No.

Name

Specification or Purity

Product Features and Applications

Anhydride-type polyester raw material

85-44-9

P116466

Phthalic anhydride

Premium grade reagent, ≥99%

Used in synthesis of alkyd resins, polyester resins, decorative coatings, and metal coating resins

Polyol

56-81-5

G755728

Glycerol

Anhydrous grade, UltraBio™, molecular biology grade, ≥99.5% (GC)

Used in research on polyol components of alkyd resins, branched structures, oil-modified resins, and coating film fullness

Dibasic acid

124-04-9

A431648

Adipic acid

Suitable for synthesis

Used in research on flexibility adjustment of polyester resins and alkyd resins, industrial coatings, and elastomeric coating films

Oil raw material

8001-22-7

S110244

Soybean oil

Reagent grade

Used in research on oil modification of alkyd resins, oxidative drying, flexibility, and metal decorative coatings

Alkyd drier

22464-99-9

Z282613

Zirconium 2-ethylhexanoate

In mineral spirits (~6% Zr)

Used in research on drying acceleration, hardness development, and drying performance of waterborne alkyds and oxidative-drying coatings

Unsaturated anhydride

108-31-6

M116389

Maleic anhydride

AR, ≥99% (GC)

Used in research on unsaturated polyester, alkyd resin modification, reaction activity adjustment, and coating resins

Aromatic dibasic acid

121-91-5

I104311

Isophthalic acid (IPA)

AR, ≥99%

Used in research on polyester resins, alkyd resins, water resistance, hardness, and industrial coating resins

Polyol

115-77-5

P103696

Pentaerythritol, regulated explosive precursor

AR, ≥98%

Used in research on branched structures, hardness, drying speed, and coating film fullness of alkyd resins

Alkyd drier

136-52-7

C282475

Cobalt(II) 2-ethylhexanoate solution

65 wt.% in mineral spirits

Used in research on oxidative drying of alkyd resins, surface-drying performance, metal decorative coatings, and drying kinetics

Oil raw material

8001-26-1

L304664

Linseed oil

≥99%

Used in research on oil modification of alkyd resins, oxidative drying, hardness development, and wood coatings

Aromatic dibasic acid

100-21-0

P108506

Terephthalic acid (PTA)

≥99%

Used in research on polyester resins, industrial coatings, hardness adjustment, and chemical resistance

Diol

126-30-7

N103689

Neopentyl glycol (NPG)

≥99%

Used in research on polyester resins, alkyd resins, hydrolysis resistance, hardness, and industrial coatings

Multifunctional alcohol

77-99-6

T110597

Trimethylolpropane (TMP)

≥98%

Used in research on branched structures, crosslink density, and hardness adjustment of alkyd, polyester, and polyurethane resins

 

Table 5. Products Related to Silane Coupling, Adhesion Promotion, and Interfacial Modification

 

Category

CAS No.

Aladdin Item No.

Name

Specification or Purity

Product Features and Applications

Amino silane coupling agent

919-30-2

A107147

3-Aminopropyltriethoxysilane (APTES)

≥99%

Used in research on interfacial bonding between metals, glass, inorganic fillers, and resins, adhesion promotion, and surface modification

Methacryloxy silane coupling agent

2530-85-0

S111153

3-(Methacryloxy)propyltrimethoxysilane (MPS)

≥97%, contains 100 ppm BHT stabilizer

Used in research on silane modification of acrylic resins, surface treatment of inorganic fillers, water resistance, and adhesion

Epoxy silane coupling agent

2530-83-8

G107576

3-Glycidyloxypropyltrimethoxysilane

≥97%

Used in research on adhesion promotion in epoxy and acrylic systems, and interfacial modification of metal and inorganic substrates

 

Note: The above are representative Aladdin products. For more product specifications, please search by “product name / CAS / item number” on the Aladdin official website.

 

References

 

[1] Wicks Z. W., Jones F. N., Pappas S. P., Wicks D. A. Organic Coatings: Science and Technology. 3rd ed. Hoboken: John Wiley & Sons, 2007.

 

[2] Tracton A. A. Coatings Technology Handbook. 3rd ed. Boca Raton: CRC Press, 2006.

 

[3] Stoye D., Freitag W. Paints, Coatings and Solvents. 2nd ed. Weinheim: Wiley-VCH, 1998.

 

[4] Dieterich D. Aqueous emulsions, dispersions and solutions of polyurethanes: synthesis and properties. Progress in Organic Coatings, 1981, 9(3): 281–340.

 

[5] Coutinho F. M. B., Delpech M. C. Some properties of films cast from polyurethane aqueous dispersions of polyether-based anionomer extended with hydrazine. Polymer Testing, 1996, 15(2): 103–113.

 

[6] Hare C. H. Protective Coatings: Fundamentals of Chemistry and Composition. Pittsburgh: Technology Publishing Company, 1994.

 

[7] Pieters K., Mekonnen T. H. Progress in waterborne polymer dispersions for coating applications: commercialized systems and new trends. RSC Sustainability, 2024.

 

For more related articles, please see below:

 

A Panorama Guide to Synthetic Resins: Definitions & Polymerization Mechanisms, Classification Frameworks, Common Resins and Applications, Packaging Codes, and a Selection Roadmap (Tables 1–3)

 

Isocyanate-Functional Silane Coupling Agents: Structural Features, Classification, Applications, and Selection

 

A Complete Guide to Selecting Epoxy Curing Systems: Amines vs. Anhydrides vs. Latent Curing — with Aladdin’s Recommended Selection Table

 

Understanding Amine Curing Agents: Structure, Types, and Application Selection

 

Why Material Properties Are Limited by Interfaces: Mechanism of Action and Selection Guide for Silane Coupling Agents (Tables 1–4)

 

Epoxy Resin: From Reactive Resin to High-Performance Material System

 

Analysis of the Epoxy Resin Curing Mechanism: From Ring-Opening Reaction, Gelation and Crosslinking to Post-Curing and Property Development

 

How Matting Agents in Coatings Build Low-Gloss Coating Surfaces: Mechanisms, Formulation Trade-Offs, and Product Selection

 

Alkyd Resins: From Oil/Fatty-Acid-Modified Polyesters to Autoxidative Drying — Understanding Their Structure and Film-Formation Mechanism

 

Adding a Temperature-Triggered Switch to NCO: How Blocked Isocyanates Affect the Storage, Curing, and Film Performance of 1K Baking Coatings

Categories: Technical articles
Explore topics: resin

Da — when not otherwise indicated, molecular weight units are daltons.   Mw — weight-average molecular weight.   Mn — number-average molecular weight.

Products are supplied for research and development use only. Not for use in humans, animals, diagnosis, or therapy.

Cite this article

Aladdin Scientific. "Guide to Common Waterborne Resin Types and Application-Based Selection: How to Choose Acrylics, PUD, Waterborne Epoxy, Waterborne Alkyd, VAE, and Related Chemicals" Aladdin Knowledge Base, updated Jun 29, 2026. https://staging.aladdinsci.com/us_en/faqs/guide-to-common-waterborne-resin-types-and-application-based-selection-en.html
Was this article helpful? Yes No 1 out 2 found this helpful

Shall we send you a message when we have discounts available?

Remind me later

Thank you! Please check your email inbox to confirm.

Oops! Notifications are disabled.