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Anhui Liwei Chemical Co., Limited.

TianjinSunray Colored EVA interlayer Film

    • Product Name: TianjinSunray Colored EVA interlayer Film
    • Factroy Site: Lingwu, Yinchuan, Ningxia, China
    • Price Inquiry: sales2@liwei-chem.com
    • Manufacturer: Anhui Liwei Chemical Co., Limited.
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    Specifications
    HS Code 842397
    Product Name TianjinSunray Colored EVA Interlayer Film
    Brand TianjinSunray
    Manufacturer Tianjin Sunray Technology Co., Ltd.
    Material Ethylene-vinyl acetate (EVA) copolymer
    Product Type Colored EVA interlayer film for laminated glass
    Color Options Custom colors including red, orange, yellow, green, blue, purple, gray, black, white, and translucent variants
    Thickness 0.38 mm, 0.76 mm, 1.14 mm, 1.52 mm, and custom sizes
    Width Up to 2500 mm
    Length 50 m, 100 m, or custom roll length
    Density 0.94–0.96 g/cm³
    Melting Point 70–90 °C
    Softening Point 60–80 °C
    Light Transmittance Color-dependent; transparent grades ≥85%, colored grades vary
    Haze ≤2% for clear grades; color-dependent
    Tensile Strength ≥18 MPa
    Elongation At Break ≥500%
    Peel Strength To Glass ≥30 N/cm
    Water Absorption ≤0.1%
    Uv Resistance Excellent; UV cut ≥99% below 380 nm
    Weather Resistance Good
    Operating Temperature Range -40 °C to 90 °C
    Storage Temperature 5–30 °C
    Shelf Life 12 months
    Application Laminated safety glass, decorative glass, architectural glass, automotive glass
    Packaging Rolls wrapped in PE film, packed in cartons and pallets
    Moq 1000 m²
    Place Of Origin Tianjin, China

    As an accredited TianjinSunray Colored EVA interlayer Film factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

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    Application of TianjinSunray Colored EVA interlayer Film

    Across spandrel and decorative facade applications, TianjinSunray colored EVA interlayer film is laminated between two lites of low-iron or selected-tint float glass to produce non-vision glazing panels and feature fins. Under ISO 12543-2:2021 and ASTM C1172-19, the laminate is classified as laminated safety glass only when the impact test under EN 12600:2002 or ANSI Z97.1-2015 meets Class A/1B1 criteria; the film is not a sole structural interlayer where post-breakage structural capacity is required. The formulation addition ratio for a typical spandrel build-up of 6 mm float glass / 0.38 mm colored EVA / 6 mm float glass corresponds to a film thickness ratio of 3.1% and a calculated film mass fraction of approximately 1.2 wt%, using an EVA density of 0.95 g/cm³ and a soda-lime glass density of 2.5 g/cm³; increasing the colored interlayer to 0.76 mm raises the mass fraction to approximately 2.4 wt% in the same glass stack. Production-scale lamination proceeds through a semiautomatic layup station with edge-alignment frames, followed by a vacuum bag or membrane press with a minimum vacuum level of 0.095 MPa. The heating cycle is held at 135–145°C for 30–60 min to reach a gel content above 75%, after which the load is cooled to 40°C under partial vacuum to reduce edge stress. Pre-drying is required when ambient RH exceeds 60%, typically at 60–70°C for 8–16 h, because residual moisture in EVA film generates edge bubbles and delamination at glass-frit boundaries. Color batch-to-batch variance is monitored by spectrophotometric measurement according to ISO 11664-4:2008 under D65/10° observer; a ΔE*ab above 1.5 triggers line stoppage. Terminal product types include colored spandrel glass, facade feature panels, glass fins with decorative interlayers, elevator cab glazing, and back-painted substitute panels used in unitized curtain wall systems.

    Application segmentNormative compliance anchorMandatory test / qualification
    Architectural spandrel and feature glassISO 12543-2:2021, ASTM C1172-19EN 12600:2002 Class 1B1, ANSI Z97.1-2015 Class A
    Building-integrated photovoltaic modulesIEC 61215-1:2021, IEC 61730-1:2023, EN 50583-1:2016MQT 10 UV preconditioning, MQT 12 damp heat
    Interior partitions and door glazing16 CFR 1201 Category I/II, ANSI Z97.1-2015EN 12600:2002, EN ISO 12543-2:2021
    Overhead canopy and skylight glazingEN ISO 12543-4:2021, ASTM E1300-23EN 12600:2002, ANSI Z97.1-2015
    Furniture and museum vitrinesANSI Z97.1-2015, EN 12150-1:2015EN 12600:2002
    Wet-area glazing and shower enclosuresEN 14428:2015, EN 12600:2002ANSI Z97.1-2015, 16 CFR 1201 Category I

    Does Colored EVA Film Pass Prolonged UV Preconditioning in BIPV Flat-Plate Lamination?

    For building-integrated photovoltaic module prototypes, the use of TianjinSunray colored EVA interlayer film as a combined encapsulant and decorative interlayer introduces a conflict between cure kinetics and UV transmission loss. The applicable compliance package is IEC 61215-1:2021 design qualification, specifically UV preconditioning sequence MQT 10 at 15 kWh/m² UV dose and damp heat sequence MQT 12 at 85°C/85% RH for 1000 h, plus IEC 61730-1:2023 module safety qualification and EN 50583-1:2016 for building integration. The film addition ratio for a glass-glass BIPV build-up of 3.2 mm front glass / 0.46 mm colored EVA / cell matrix / 0.46 mm colored EVA / 3.2 mm rear glass corresponds to a combined film thickness ratio of 12.6% relative to the glass stack and a film mass fraction of approximately 5.2 wt% relative to the front and rear glass masses; this ratio is higher than in decorative laminates because two EVA layers are required to embed the cell circuit. Lamination is performed in a multi-step vacuum furnace with a membrane pressure differential of 0.09–0.10 MPa, starting at 120°C for gas extraction, ramping at 5°C/min to 145–150°C, holding for 20–35 min depending on peroxide half-life, and cooling at 2°C/min to 60°C. Process conflicts arise below 140°C where undercure leaves gel content under 60%, reducing adhesion and wet leakage resistance; above 155°C, the colored EVA matrix undergoes oxidative yellowing and the organic pigment may migrate toward the glass interface. The equipment requirement is a laminator with zone-controlled platen temperature uniformity of ±2°C because the cure window is narrower than with clear EVA. Busbar displacement and cell float during membrane compression are controlled by limiting the membrane rise rate to below 0.02 MPa/s and by using a tacked cell string array with soldered ribbon thickness not exceeding 0.25 mm. Terminal product types include colored BIPV curtain wall modules, semi-transparent solar canopies, bus shelter photovoltaic roofs, and facade cladding units. Published data for long-term UV retention of specific colorant packages in this EVA film is limited; module manufacturers must validate color stability and power loss through IEC 60904-1 current-voltage measurement before release.

    When interior privacy partitions and door systems are specified, the colored EVA interlayer film functions as a tinted safety interlayer within demountable glazing assemblies. The compliance path for the United States market is 16 CFR 1201 Category II for doors and Category I for fixed interior partitions, tested as a full laminate under ANSI Z97.1-2015; for EU/UK interior glazing, EN 12600:2002 and EN ISO 12543-2:2021 apply. A standard door build-up of 8 mm tempered glass / 0.76 mm colored EVA / 8 mm tempered glass yields a film thickness ratio of 4.5% and a calculated film mass fraction of approximately 1.8 wt%; substituting 0.38 mm in a 4 mm/4 mm partition produces a nearly identical mass fraction, indicating that mass fraction is not a direct proxy for interlayer thickness when glass thickness changes. Production lines for this segment use flat-bed vacuum presses rather than autoclaves; the process sequence is pre-lamination de-airing at 80–90°C and 0.08 MPa for 15 min, followed by a full cure stage at 135°C for 45 min. This lower cure temperature than PV lamination reduces thermal stress on pre-tempered glass and limits iridescent edge staining. Edge quality is critical because door hardware clamping creates localized tensile stress; film pull-in from the edge must be kept below 1.5 mm and any glass chips over 0.5 mm at the edge must be removed before layup to avoid stress concentration. If acoustic damping is claimed, the full assembly is tested under ISO 10140-2:2021 rather than relying on interlayer thickness alone. Terminal product types include demountable office fronts, sliding glass doors, borrowed-light partitions between rooms, colored glass wainscoting, and bank transaction screens.

    SegmentGlass stackFilm thicknessFilm thickness ratioCalculated mass fractionLamination setpoint
    Architectural spandrel6 mm/6 mm float0.38 mm3.1%1.2 wt%135–145°C, 0.095 MPa
    Architectural spandrel, thick interlayer6 mm/6 mm float0.76 mm6.0%2.4 wt%135–145°C, 0.095 MPa
    BIPV glass-glass module3.2 mm/3.2 mm glass0.46 mm × 212.6%5.2 wt%145–150°C, ±2°C
    Interior partition4 mm/4 mm tempered0.38 mm4.5%1.8 wt%135°C, 45 min
    Interior door8 mm/8 mm tempered0.76 mm4.5%1.8 wt%135°C, 45 min
    Overhead canopy6 mm/6 mm heat-strengthened1.14 mm8.7%3.5 wt%140°C, 60 min
    Furniture display panel4 mm/4 mm toughened0.38 mm4.5%1.8 wt%130–135°C, 40 min
    Shower enclosure panel6 mm/6 mm tempered0.76 mm6.0%2.4 wt%138°C, 50 min

    Where Overhead Canopy Lamination Requires Edge-Moisture Control

    The process shifts from decorative laminating to permanent outdoor exposure qualification because the EVA interlayer edge is directly exposed to water vapor, thermal cycling, and UV at the glass edge. For EU overhead glazing, the laminated glass shall meet EN 12600:2002 for impact safety and the durability test sequence of EN ISO 12543-4:2021 for high-temperature, moisture, and radiation exposure; in North America, ASTM C1172-19, ANSI Z97.1-2015, and local building-code load resistance under ASTM E1300-23 are applied. A typical canopy stack of 6 mm heat-strengthened glass / 1.14 mm colored EVA (three 0.38 mm plies) / 6 mm heat-strengthened glass gives a film thickness ratio of 8.7% and a calculated mass fraction of approximately 3.5 wt%. The lamination program must be lengthened: de-airing at 95°C for 20 min, cure at 140°C for 60 min, and controlled cooling at 1°C/min to 35°C. EVA film stored or handled above 60% RH must be pre-dried at 65°C for 12 h, and the layup room must be maintained below 30% RH to prevent edge blush and loss of adhesion. A production-scale failure observed on overhead lines is edge void expansion after thermal cycling, originating from residual moisture pockets at the film edge; it is controlled by trimming the edge at 50°C before final cooling and by applying a 5 mm edge seal where the panel is open to weather. Silicone membrane pleats near corners create localized pressure amplification on large panels; the membrane is inspected every 50 cycles and replaced if pleat hardness exceeds Shore A 70. Terminal product types include colored glass canopies, skylight infill panels, covered walkway glazing, atrium strip windows, and sunshade fins. This colored EVA film is not a substitute for ionoplast structural interlayers in point-supported or load-bearing overhead systems; published shear modulus data for this configuration is limited.

    Among furniture and museum showcase fabricators, the colored EVA interlayer is used primarily for edge color saturation and safety retention in low-load display surfaces. The relevant standards are ANSI Z97.1-2015 for safety glazing used in furniture and EN 12150-1:2015 for thermally toughened glass components; full-laminate impact classification is tested under EN 12600:2002 for EU showcases. A display panel build-up of 4 mm toughened glass / 0.38 mm colored EVA / 4 mm toughened glass has a film thickness ratio of 4.5% and a calculated film mass fraction of approximately 1.8 wt%. Lamination is performed in a small-format vacuum bag oven at 130–135°C for 40 min; the lower setpoint protects pre-tempered glass flatness and prevents visible roller-wave distortion. Edge polishing and hole drilling must be completed before lamination because post-lamination fabrication breaks the vacuum seal and exposes the EVA layer to moisture. Terminal products include display cases, museum vitrines, retail merchandise tables, jewelry showcases, and colored glass shelf inserts.

    Shower Enclosure Edgework Specifications for Colored EVA Laminate

    Wet-area laminated glass manufactured with TianjinSunray colored EVA interlayer film demands tighter edgework control than dry interior glazing because the laminate edge may be exposed to alkaline cleaning agents and continuous moisture films. The applicable compliance package for Europe is EN 14428:2015 for shower enclosures and EN 12600:2002 for impact behavior; for North America, ANSI Z97.1-2015 and 16 CFR 1201 Category I apply. A common shower panel stack of 6 mm tempered glass / 0.76 mm colored EVA / 6 mm tempered glass has a film thickness ratio of 6.0% and a calculated film mass fraction of approximately 2.4 wt%. The production process uses a vacuum bag lamination cycle with de-airing at 85°C for 20 min and cure at 138°C for 50 min; after cooling to 45°C, the panel edges are polished and treated with a silane-based edge sealant to reduce moisture ingress. Water immersion testing per EN ISO 12543-4:2021 is recommended for any colored EVA edge configuration intended for shower use. Terminal product types include colored shower enclosures, privacy partitions in wet rooms, pool fence infill panels, and bathroom door glazing. Published data for cyclic detergent exposure of this specific colorant system is limited; full-scale cleaning-agent compatibility testing under ISO 2812-1 is advised.

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    Certification & Compliance
    More Introduction

    TianjinSunray Colored EVA interlayer Film is a crosslinkable ethylene-vinyl acetate copolymer sheet intended for glass lamination in architectural, decorative, and safety glazing. The product family is identified by the base designation TianjinSunray Colored EVA; model extensions are supplier-defined and typically encode nominal thickness, color class, and surface texture. Common nominal thicknesses include 0.38 mm, 0.50 mm, 0.76 mm, 1.14 mm, and 1.52 mm. Colored variants are produced as translucent, semi-opaque, and saturated grades using inorganic and organic pigment systems. Because the supplier-published numerical datasheets for individual color lots are limited, the values that follow are industrial reference envelopes for crosslinking EVA interlayers measured under ISO, ASTM, and EN methods. Color should be specified by CIE L*a*b* coordinates under D65/10° and by luminous transmittance class, not by visual color name alone. The film is normally supplied with a relief or matte surface to assist deaeration during lay-up and vacuum processing.

    Specification envelope and test-method anchor points

    For an unpigmented 0.76 mm film, density is typically 0.94–0.96 g/cm³ when measured by ISO 1183-1:2019. Melt flow index of the uncrosslinked compound is 20–40 g/10 min at 190°C and 2.16 kg per ISO 1133-1:2022. Vinyl acetate content is generally 28–33 wt%, which controls polarity, glass adhesion, and low-temperature flexibility. Tensile strength before cure is 10–20 MPa with elongation at break 500–800% per ASTM D638-14 Type IV. After peroxide-initiated cure at 135°C for 60 min, xylene-extraction gel content is typically 75–92%; below 70% the thermoset network is insufficient to resist cold flow in overhead glazing. Unrestrained shrinkage at 120°C is below 5% in machine direction and below 3% in transverse direction. Haze of clear film is 1.5–3.5% per ASTM D1003-21; pigmented grades require separate luminous transmittance and color-shift verification. Yellowness index increase after 1000 h xenon-arc exposure under ISO 4892-2:2013 should remain below 2.0 for UV-stabilized color systems, although published data for this specific configuration is limited. Differential scanning calorimetry at 10°C/min shows a melt endotherm near 60–75°C and a peroxide decomposition exotherm with onset near 115–130°C.

    Reference property envelope across interlayer families
    PropertyMethodColored EVA referencePlasticized PVB referenceIonomer reference
    DensityISO 1183-1:20190.94–0.96 g/cm³1.05–1.10 g/cm³0.94–0.96 g/cm³
    Thickness tolerance at 0.76 mmSupplier internal±0.05 mm±0.02 mm±0.03 mm
    Processing temperatureProcessing window135–145°C125–135°C140–160°C
    Tensile strength after processingASTM D638-1410–20 MPa20–35 MPa25–35 MPa
    Elongation at break after processingASTM D638-14400–600%200–300%250–400%
    Water absorption after 24 hISO 62:20080.05–0.1%0.3–0.5%0.1–0.3%
    Clear-film hazeASTM D1003-211.5–3.5%0.5–1.5%0.5–2.0%

    These figures are not batch-release limits; they are comparative references from industrial interlayer producers and should be replaced by certificate-of-analysis values from the supplier for the selected color and thickness. Where color pigment is present, tensile and optical values shift. Iron oxide pigments at loadings above 2 wt% can alter heat absorption and local cure rate, so differential scanning calorimetry verification is recommended for dark colors. Lot-specific certificates should also confirm that the pigment package does not introduce heavy-metal residues or incompatible stabilizers.

    Compliance verification matrix
    StandardClause or methodParameter to verify
    RoHS 2011/65/EUAnnex IIPb 0.1 wt%, Cd 0.01 wt%, Hg 0.1 wt%, Cr(VI) 0.1 wt%, PBB 0.1 wt%, PBDE 0.1 wt%
    REACHSVHC listSubstance concentration 0.1 wt% or lower per supplier declaration
    FDA 21 CFR 177.1350Food-contact EVA copolymersOverall migration and end-use condition, if food-contact glazing is specified
    ISO 12543-1:2021Laminated glass classificationConstruction tolerances, visual quality, and safety classification basis
    EN 12600:2002Impact resistanceClass 1B1, 2B2, or 3B3 depending on glass configuration
    ISO 9050:2003 / EN 410:2011Light and solar transmittanceLuminous transmittance, solar direct transmittance, and color rendering for tinted glazing

    Compliance claims should be verified against the supplier’s current lot-specific certificate of analysis because pigment packages and thickness can influence heavy-metal residues, volatile content, and food-contact status.

    When laminated glass is processed with this film, what conditions govern crosslinking?

    Vacuum-bag lamination is conducted by cold deaeration at 20–25°C and a vacuum of at least -0.09 MPa for 10–15 min, followed by cure at 135–145°C under silicone-membrane pressure of 0.8–1.0 MPa for 60–90 min. In a nip-roll line, the glass/film/glass assembly is heated to 80–100°C, pressed through a roll gap of 0.8–1.2 mm, and then transferred to an autoclave at 130–140°C and 0.8–1.2 MPa for 45–90 min. Temperature uniformity across the glass surface should be maintained within ±3°C. If furnace heat-up is slower than 5°C/min, peroxide decomposition may commence before complete deaeration and create edge bubble defects.

    On a production vacuum laminator with oil-heated platens, the platen setpoint is commonly 145–155°C because glass heat capacity can produce a film-temperature lag of 10–15°C for glass packs above 10 mm. Thermocouples placed at glass-film interfaces during commissioning are necessary to establish the offset. The cure reaction itself follows first-order peroxide decomposition; differential scanning calorimetry of the uncrosslinked film at 10°C/min typically shows the peroxide exotherm onset near 115–130°C and a peak between 150°C and 170°C. Dynamic shear measurements at 120°C and 1 rad/s show a low-frequency complex viscosity typically in the 10³–10⁴ Pa·s range before cure; the storage modulus crosses above the loss modulus as gelation proceeds.

    Moisture control is a processing boundary. Film stored at RH > 60% should be dried at 60–65°C for 2–4 h before lamination; residual moisture above 0.2 wt% can generate microvoids and reduce peel adhesion. However, extremely dry film can also reduce silane coupling efficiency at the glass interface because interfacial silanol condensation requires trace moisture. A residual moisture window of 0.02–0.1 wt% is generally preferred for glass laminates. Cleaning solvents such as ketones, chlorinated solvents, and aromatic hydrocarbons should not contact the film; isopropanol at low wipe pressure is preferable for edge cleaning.

    Laminates should be inspected after cure for bubble diameter, edge adhesion, and gel content. A destructive shear or peel coupon is preferable to visual inspection alone. For glass/EVA laminates, the desired failure mode is cohesive within the EVA or glass fracture, not adhesive at the glass interface. In open-edge exterior applications, edge clouding can appear if unreacted peroxide migrates to the edge or if the edge seal is incompatible. The film should not be stored in direct sunlight or at temperatures above 30°C for extended periods because premature peroxide decomposition can reduce cure capability.

    In comparison with plasticized PVB, the crosslinkable EVA interlayer does not contain mobile plasticizer. PVB typically carries 25–30 phr of triethylene glycol di-(2-ethylhexanoate) or similar plasticizer; that plasticizer can migrate into adjacent silicone sealants and cause edge softening. EVA’s cured gel content above 75% gives better edge stability and lower cold flow, but its tensile strength is generally lower than PVB. The processing window is wider: PVB requires autoclave pressure and temperature near 125–135°C with tight moisture control, while EVA crosslinks at 135–145°C and is more tolerant of residual humidity. EVA also bonds more reliably to polycarbonate and PET without edge clouding when substrate surface temperature is kept below 125°C, making it suitable for laminated polycarbonate panels and photovoltaic module encapsulation. In sound-damping applications, PVB and acoustic TPU retain an advantage because the cured EVA matrix has higher crosslink density and lower damping loss factor at 20°C.

    Compared with ionomer interlayers, EVA has lower stiffness, lower tear strength, and lower glass transition temperature; ionomers are preferred where structural stiffness and high glass adhesion are dominant. However, ionomer processing is more demanding, typically requiring lamination temperatures of 140–160°C, and material cost is higher. TPU interlayers provide very high elongation and sound damping, but they are moisture sensitive and require pre-drying. The colored EVA film provides a balance of processing tolerance, edge stability, and compatibility with polycarbonate and photovoltaic substrates, but it is not a direct substitute for high-modulus structural interlayers.

    Decorative and architectural applications include spandrel glass, partitions, balustrades, back-painted glass, and laminated polycarbonate canopies. In photovoltaic modules, the same film chemistry is used as an encapsulation layer, where the color can hide busbars and backsheet defects while maintaining cell alignment. Laminates intended for exterior use should be validated with damp-heat exposure at 85°C and 85% RH for 1000 h per IEC 61215-1:2021 and with UV preconditioning; published data for this specific colored configuration is limited, so a prototype-laminate test program is required before specification. Edge seal design for open-edge installations should use neutral-cure silicone or polyisobutylene and avoid acetoxy or amine-cure sealants that can attack the EVA or promote interfacial delamination.