



HEC (Hidroxietilcelulose) é o principal éter de celulose utilizado em tintas imobiliárias. Ele atua como espessante em fase aquosa e modificador reológico que aumenta a viscosidade, estabiliza pigmentos e cargas contra sedimentação, melhora o desempenho na aplicação com pincel e rolo, favorece o nivelamento, reduz escorrimentos em superfícies verticais e mantém a consistência estável na lata durante o armazenamento.
LANDERCOLL HEC ajuda fabricantes de tintas arquitetônicas a melhorar a eficiência de espessamento, controle de viscosidade, suspensão de pigmentos e cargas, aplicação com pincel e rolo, suporte ao nivelamento, comportamento antiescorrimento e estabilidade na embalagem em sistemas de tintas interiores, exteriores, látex, emulsão, primer, fundo, textura e fachada.
De tintas e primers para paredes internas a revestimentos de fachadas externas e sistemas de textura — o grau certo de HEC proporciona espessamento confiável em fase aquosa, reologia estável e desempenho de aplicação previsível em todo o portfólio de revestimentos arquitetônicos.
— HEC · Espessamento · Reologia · Suspensão de Pigmentos · Anti-Escorrimento · Tintas Arquitetônicas · À Base de Água
HEC · Tintas Arquitetônicas
Espessamento, suspensão e desempenho de aplicação para tintas arquitetônicas à base de água.
Pontes de HEC garantem estabilidade na lata e desempenho em aplicação de campo — desde o armazenamento, passando pela aplicação com pincel e rolo, até o filme de revestimento arquitetônico acabado.
Revestimentos arquitetônicos são tintas e revestimentos aplicados em edifícios para fins decorativos, protetivos e funcionais. Eles representam um dos maiores segmentos da indústria global de revestimentos e são usados em projetos de construção residenciais, comerciais, industriais e públicos em uma ampla variedade de superfícies internas e externas.
Revestimentos arquitetônicos abrangem uma ampla família de produtos, incluindo tinta para parede interna, tinta para parede externa, tinta látex, tinta emulsão, primers, seladores, fundos, revestimentos texturizados, revestimentos de fachada, revestimentos de alvenaria e revestimentos decorativos de parede. São aplicados em paredes internas, fachadas externas, tetos, gesso, concreto, reboco de cimento, drywall, placa de gesso, alvenaria e outras superfícies de construção preparadas.
Uma formulação típica de revestimento arquitetônico inclui emulsão polimérica, dióxido de titânio, pigmentos, cargas, água, dispersantes, agentes umectantes, antiespumantes, conservantes, modificadores de pH, agentes coalescentes, modificadores reológicos e éter de celulose.
O éter de celulose — especificamente HEC (Hidroxietilcelulose) — é usado em revestimentos arquitetônicos como o espessante e modificador reológico primário da fase aquosa. Ele constrói viscosidade e corpo do revestimento, estabiliza pigmentos e cargas contra sedimentação, melhora o comportamento de aplicação com pincel e rolo, suporta o nivelamento, ajuda a reduzir escorrimento em superfícies verticais e mantém consistência estável na lata durante produção, armazenamento e distribuição.
Os revestimentos arquitetônicos devem oferecer desempenho confiável em duas fases distintas e igualmente importantes: armazenamento estável na embalagem durante uma longa vida útil e aplicação suave e uniforme em paredes, tetos e superfícies de fachadas em obra. Sem o espessamento e o controle reológico adequados, os revestimentos arquitetônicos enfrentam uma série de falhas críticas de desempenho.
Baixa viscosidade e aparência rala fazem o revestimento parecer aguado na lata, sugerindo baixa qualidade. Pigmentos e cargas sedimentam rapidamente, levando a cor e opacidade inconsistentes. Aumento de respingos do rolo durante a aplicação, ocorrência de escorrimentos em paredes verticais e fachadas, e deterioração do nivelamento — deixando marcas visíveis de pincel e rolo no filme seco.
O LANDERCOLL HEC ajuda a construir e manter a viscosidade na fase aquosa de revestimentos arquitetônicos. Ele suporta a suspensão de pigmentos e cargas, melhora o corpo do revestimento e cria um perfil de fluxo equilibrado para aplicação com pincel, rolo, pistola ou outros métodos — mantendo um desempenho estável na embalagem durante toda a vida útil do produto.
O éter de celulose ajuda os revestimentos arquitetônicos a alcançar eficiência de espessamento, controle de viscosidade, suspensão de pigmentos e cargas, reologia equilibrada, aplicação suave com pincel e rolo, suporte ao nivelamento, comportamento antiescorrimento, uniformidade do revestimento e estabilidade de armazenamento.
Structured viscosity keeps pigments and fillers suspended during storage, production, and distribution.
Controlled flow supports smooth brush and roller application with leveling and anti-sag support on vertical surfaces.
HEC (Hydroxyethyl Cellulose) is the primary LANDERCOLL cellulose ether product for architectural coating applications. It is widely used across interior wall paints, exterior wall coatings, latex paints, emulsion coatings, primers, undercoats, texture coatings, and façade coatings because it delivers reliable thickening, stable viscosity development, pigment and filler suspension, and controlled application behavior in polymer emulsion systems.
HEC · Non-Ionic · Water-Soluble
HEC is a non-ionic, water-soluble cellulose ether. Its non-ionic character provides broad compatibility with the anionic dispersants, surfactants, and polymer emulsions used in water-based architectural coating formulations. It hydrates readily in water and builds viscosity efficiently, providing consistent thickening performance across a wide range of coating types, quality levels, and pigment volume concentrations.
In architectural coatings, HEC helps improve coating body, reduce pigment and filler settling, support smooth brush and roller application, and maintain stable consistency during production, storage, and distribution.
Architectural coating formulations vary by binder type, pigment volume concentration, application area, substrate condition, and target performance standard.
| Componente | Function in Architectural Coatings |
|---|---|
| Emulsão de Polímero | Main film-forming binder. |
| Titanium Dioxide | Provides whiteness and hiding power. |
| Pigmentos | Provide color and decorative appearance. |
| Fillers | Adjust opacity, body, texture, cost balance, and coating properties. |
| Água | Main dispersion medium. |
| Dispersantes | Help disperse pigments and fillers uniformly. |
| Wetting Agents | Improve substrate wetting and pigment dispersion. |
| Antiespumantes | Reduce foam during production and application. |
| Preservatives | Support in-can stability and microbial protection. |
| pH Modifiers | Adjust formulation pH and system stability. |
| Coalescing Agents | Support film formation in selected systems. |
| Cellulose Ether (HEC) | Improves viscosity, rheology, suspension, and application performance. |
| Outros Aditivos | Adjust leveling, open time, water resistance, durability, or special functions. |
Different architectural coating systems require different viscosity profiles, suspension strength, and application performance characteristics.
| Architectural Coating Type | Direção Recomendada do Produto | Principais Requisitos de Desempenho |
|---|---|---|
| Interior Architectural Coatings | HEC | Aplicação suave, controle de viscosidade, suspensão de pigmentos. |
| Exterior Architectural Coatings | HEC | Suporte antiescorrimento, corpo do revestimento, estabilidade de armazenamento. |
| Latex Architectural Paints | HEC de viscosidade média | Aplicabilidade com pincel, aplicação com rolo, suporte de nivelamento. |
| Revestimentos de Emulsão | HEC | Viscosidade estável, suspensão de pigmento, estabilidade na lata. |
| Primers and Sealers | HEC de baixa a média viscosidade | Controle de fluxo, equilíbrio de penetração, consistência estável. |
| Undercoats | HEC de viscosidade média | Corpo, suporte de cobertura, suspensão de carga. |
| Texture Architectural Coatings | HEC de viscosidade média a alta | Suspensão de carga, retenção de textura, comportamento antiescorrimento. |
| Revestimentos para Fachadas | HEC | Estabilidade vertical, uniformidade de aplicação, suporte para aplicação externa. |
The dosage of HEC in architectural coatings depends on coating type, target viscosity, pigment and filler loading, PVC level, application method, and storage stability requirement.
HEC influences every stage of architectural coating performance — from thickening and pigment suspension to brush and roller application, leveling, anti-sag support, and long-term storage stability.
HEC builds viscosity and coating body in architectural coating formulations. Proper thickening improves in-can appearance, application control, suspension stability, and coating consistency. At typical dosage levels of 0.1%–1.2%, HEC can build a wide range of target viscosities — from low-viscosity primers and sealers to high-body texture coatings and exterior façade systems — depending on grade selection and formulation conditions.
Architectural coatings require carefully balanced rheology. They must remain stable and well-structured in the container, flow smoothly during brush or roller application, and recover sufficient body to resist sagging on vertical wall and façade surfaces.
Titanium dioxide, calcium carbonate, kaolin, talc, silica, and colored pigments must remain evenly distributed throughout the coating during storage. HEC increases water-phase viscosity and structural support, reducing the rate of pigment and filler settling.
A suitable HEC grade improves brush feel and spreading behavior, helping the coating move smoothly across the substrate without excessive drag or resistance. Good brushability reduces applicator fatigue and improves coverage efficiency on wall and ceiling surfaces.
During roller application, architectural coatings must transfer evenly from the roller to the substrate and spread consistently without spattering. HEC supports controlled roller application behavior across large wall and ceiling areas.
Good leveling helps reduce visible brush marks, roller marks, and uneven film appearance in the dried coating. HEC supports flow balance when properly selected and dosed within the complete formulation system.
For vertical wall surfaces, exterior façades, and thicker coating applications, HEC helps improve coating body and structural recovery after application, reducing the risk of sagging or running before the film dries.
HEC helps maintain viscosity and suspension stability during storage. This reduces pigment and filler settling, prevents hard sediment formation, and supports consistent coating performance after extended storage or temperature variation during distribution and retail storage.
When architectural coating performance fails in production or application, the HEC grade, hydration, or dosage is often the first variable to review within the complete formulation system.
Insufficient thickener, poor hydration, unsuitable grade.
Improve viscosity build and coating body.
Weak suspension, low viscosity, high filler loading.
Support pigment and filler suspension.
Poor suspension system, low viscosity, additive incompatibility.
Improve in-can stability.
Low viscosity, poor rheology balance, excessive water.
Support controlled application behavior.
Weak structure, high film thickness, low thickener efficiency.
Improve body and anti-sag support.
Unbalanced rheology, wrong viscosity, incompatible additives.
Support flow and leveling balance.
Poor filler dispersion, unsuitable viscosity, unstable formulation.
Support smoother application behavior.
Poor hydration, pH effects, surfactant or preservative impact.
Improve viscosity stability through grade selection.
Understanding the variables that influence HEC behavior in architectural coatings helps formulators make better grade selections, optimize dosage, and avoid common production and stability problems.
Different polymer emulsions — acrylic, styrene-acrylic, VAE, pure acrylic — affect viscosity response, compatibility, film formation, and final coating performance.
TiO₂, CaCO₃, kaolin, talc, silica, and colored pigments each have different densities and surface characteristics that influence suspension demand and viscosity requirements.
High-PVC architectural coatings typically require stronger suspension support and greater coating body control. Medium to high viscosity HEC grades at upper dosage range are often needed.
Brush, roller, spray, and trowel application each require different viscosity and flow behavior. HEC grade and dosage should be matched to the intended application method.
Formulation pH and the timing of pH adjustment during production can influence HEC hydration rate, viscosity development, and long-term stability.
Dispersants and surfactants affect pigment dispersion quality, foam behavior, viscosity development, and compatibility with HEC.
Preservatives and defoamers may influence viscosity stability, foam control, and formulation compatibility — particularly for premium or sensitive formulations.
HEC must be properly dispersed and fully hydrated to deliver target viscosity. Pre-dispersing HEC in water before adding pigments and fillers is a common best practice.
Too little HEC may not provide sufficient thickening or suspension. Too much may reduce leveling, increase roller resistance, or create excessive brush drag.
Choosing the right HEC grade requires balancing viscosity target, pigment and filler suspension needs, application method, leveling requirements, anti-sag support, and storage stability.
What type of architectural coating are you producing? (interior, exterior, primer, undercoat, façade, texture)
What target viscosity range (mPa·s or KU) do you need?
What polymer emulsion system is used?
What pigment and filler system is included, and at what loading level?
What PVC level does the formulation have?
Do you need better leveling, stronger suspension, or anti-sag support?
What application method is used: brush, roller, spray, or trowel?
What pH range and additive system are used?
What production process and hydration time are available?
What storage stability requirement is needed? (temperature range, shelf life duration)
LANDERCOLL can help review your architectural coating formulation direction and recommend a suitable HEC grade for testing. Contact our technical team with your formulation parameters to receive a targeted product recommendation.
Solicite Suporte TécnicoLANDERCOLL HEC for architectural coatings is supplied in industrial packaging suitable for coating production, transportation, and storage.


LANDERCOLL provides product-related documentation to support architectural coating formulation testing, purchasing review, and internal approval processes.
If your architectural coating has low viscosity, pigment or filler settling, storage separation, poor leveling, roller spatter, sagging on vertical surfaces, rough application feel, or unstable viscosity during storage, the HEC grade or dosage may need to be reviewed.
LANDERCOLL can help evaluate suitable HEC options based on your binder system, pigment and filler system, PVC level, target viscosity, application method, and storage stability requirement.
HEC grade selection for target viscosity and rheology profile.
Pigment and filler suspension support.
Brushability and roller application improvement.
Leveling and anti-sag performance guidance.
Façade and exterior coating stability support.
Storage stability discussion.
Dosage reference and starting point recommendations.
Sample and quotation communication.
HEC (Hydroxyethyl Cellulose) is the most widely used cellulose ether in architectural coatings. It is used to improve thickening, viscosity control, pigment and filler suspension, rheology behavior, brush and roller application performance, and storage stability across interior wall paints, exterior wall coatings, latex paints, emulsion coatings, primers, undercoats, texture coatings, and façade coatings.
HEC builds viscosity in the water phase of the coating, stabilizes pigments and fillers against settling, improves brush and roller application consistency, supports leveling, helps reduce sagging on vertical wall and façade surfaces, and maintains stable in-can viscosity during storage. As a non-ionic polymer, HEC is compatible with the anionic dispersants and polymer emulsions used in water-based architectural coating systems.
Without adequate thickening, architectural coatings lack the body and structure needed to remain stable during storage and perform consistently during application. Pigments and fillers settle, the coating appears thin and watery, roller spatter increases, sagging occurs on vertical surfaces, and leveling deteriorates. Cellulose ether provides the water-phase thickening and rheology control that makes architectural coatings stable, consistent, and easy to apply.
A common reference dosage range is 0.1%–1.2% by weight, depending on coating type, target viscosity, pigment and filler loading, PVC level, and formulation design. Interior coatings typically use 0.2%–0.7%, exterior coatings 0.3%–0.8%, and texture architectural coatings may require up to 1.2%. Final dosage must be confirmed through viscosity testing and stability evaluation.
Yes. HEC increases water-phase viscosity and structural support, which helps slow the rate of pigment and filler settling during storage. This supports more consistent color, opacity, and coating appearance. However, the complete suspension system — including dispersant type and dosage, filler particle size, and formulation balance — also plays an important role in overall suspension performance.
HEC can support leveling by helping control the rheology profile of the coating. A properly selected HEC grade contributes to balanced flow behavior during and after application. However, final leveling performance also depends on the complete formulation system, including binder type, surfactants, dispersants, defoamers, and viscosity balance across the full shear rate range.
HEC primarily improves fresh coating properties such as viscosity, suspension, rheology, and application stability. Final coating durability — including scrub resistance, weather resistance, adhesion, and film integrity — depends primarily on binder type, pigment system, additives, film formation conditions, substrate preparation, and curing. HEC is a processing and stability aid rather than a film-performance modifier.
Viscosity loss may be caused by poor HEC hydration during production, unsuitable grade selection, pH effects, surfactant or dispersant incompatibility, preservative interactions, high electrolyte or salt content, temperature changes during storage, or excessive shear during mixing. Systematic storage stability testing and grade review can help identify and resolve the root cause.
Start by defining your coating type, target viscosity, binder system, pigment and filler loading, PVC level, pH range, additive system, application method, and storage stability requirement. Then contact LANDERCOLL with these parameters — our technical team can recommend suitable HEC grades and provide samples for formulation evaluation.
Whether you produce interior architectural coatings, exterior wall coatings, latex paints, emulsion coatings, primers, undercoats, texture coatings, façade coatings, or decorative wall coatings, LANDERCOLL HEC helps you achieve better viscosity control, reliable pigment and filler suspension, smooth brush and roller application, leveling support, anti-sag behavior, and consistent storage stability.
LANDERCOLL supplies HEC cellulose ether to architectural coating manufacturers and paint formulators worldwide. Our products are supported by technical data sheets, safety data sheets, certificates of analysis, and application guidance. Contact us today to receive an HEC grade recommendation, request samples, or get a competitive quote for your architectural coating formulation project.