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Fully Methylated Melamine-Formaldehyde Resin

IntroductionFully Methylated Melamine-Formaldehyde Resin (FMMF): Overview and Key PropertiesCat

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Contenuto

Introduzione

Fully Methylated Melamine-Formaldehyde Resin (FMMF): Overview and Key Properties

CategoryDetails
Chemical TypeHexamethoxymethylmelamine (HMMM)
CAS Number3089-11-0
AspettoColorless to pale yellow viscous liquid
SolubilitàSoluble in water, alcohols, and most organic solvents

Key Characteristics

Chemical Structure & Properties

PropertyValueSignificance
Methylation Degree>95%Ensures complete reactivity
Viscosity (25°C)300–800 mPa·sImpacts application flow
pH8.5–10.5Stabilizes resin in storage
Reactive Sites6 methoxy groups per moleculeHigh crosslinking density

Curing Performance

ParameterRangeNotes
Self-Cure Temp.150–180°CRequires strong acid catalyst
Co-Cure Temp.120–150°CWith hydroxyl/acid functional resins
Gel Time5–15 min @ 150°CCatalyst-dependent

Applications

Primary Uses

IndustryApplicazioneKey Benefit
CoatingsAutomotive clearcoatsHigh gloss, chemical resistance
TextilesWrinkle-resistant finishesDurable crosslinks
PaperWet-strength additivesImproves fiber bonding
AdhesivesWood compositesLow formaldehyde emission

Formulation Guidelines

ComponentTypical %Purpose
FMMF Resin15–30%Primary crosslinker
Acid Catalyst0.5–2% (e.g., p-TSA)Cure acceleration
Co-Resin50–70% (e.g., acrylic/polyester)Flexibility adjustment
Additives1–5%Flow/leveling control

Advantages vs. Alternatives

FeatureFMMFPartially Methylated MFUrea-Formaldehyde
ReactivityHighModerateLow
Formaldehyde EmissionVery LowModerateHigh
Water ResistanceExcellentGoodFair
Cost$$$$

Safety & Compliance

ParameterStatus
VOC Content<250 g/L (compliant)
Food ContactFDA 21 CFR 175.300
Storage12 months @ 25°C (inert atmosphere)

Summary

Fully methylated melamine-formaldehyde resins deliver superior crosslinking efficiency with minimal formaldehyde release, making them ideal for high-performance coatings and industrial applications. Their high reactivity requires precise catalyst selection but enables energy-efficient curing processes.

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