| HS Code | 376431 |
| Uv Resistance | High resistance to ultraviolet radiation, minimizing yellowing and photodegradation |
| Optical Transparency | Excellent transparency in the visible light spectrum |
| Tensile Strength | Typically ranges from 40 to 80 MPa depending on degree of hydrolysis and molecular weight |
| Elongation At Break | Generally between 100% and 300%, providing good flexibility |
| Water Solubility | Soluble in water, with solubility increasing at higher temperatures |
| Thermal Stability | Stable at typical processing temperatures, decomposing above 200°C |
| Chemical Resistance | Resistant to oils, greases, and most organic solvents |
| Film Forming Ability | Forms uniform, tough, and flexible films with excellent cohesive strength |
| Biodegradability | Biodegradable under specific environmental conditions |
| Glass Transition Temperature | Typically between 60°C and 85°C, depending on plasticizer content |
| Oxygen Barrier Property | Low oxygen permeability, offering strong barrier performance |
| Adhesion Property | Exhibits good adhesion to polar substrates due to hydroxyl groups |
As an accredited Polyvinyl Alcohol (PVA) for UV-Resistant Materials factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 25 kg UV-resistant PVA in moisture-proof sealed bags with desiccant, labeled for light-safe storage and handling. |
| Container Loading (20′ FCL) | 20′ FCL: PVA in 25kg bags on shrink-wrapped pallets, stowed securely, protected from moisture and direct sunlight. |
| Shipping | Polyvinyl Alcohol (PVA) for UV-resistant materials ships as a non-hazardous, water-soluble powder. Package in sealed, moisture-proof containers to prevent clumping. Store away from UV light and oxidizers. Standard dry cargo transport is suitable; avoid excessive humidity and ensure labeling for handling and storage conditions. |
| Storage | Store Polyvinyl Alcohol (PVA) for UV-resistant materials in a cool, dry, well-ventilated area, away from direct sunlight and UV sources. Keep containers tightly sealed to prevent moisture absorption, as PVA is hygroscopic. Avoid high temperatures and humidity to maintain stability. Use original or opaque packaging to minimize light exposure. |
| Shelf Life | Store in a cool, dry, sealed container, protected from UV light. Typical shelf life: 2 years from manufacture date. |
| PVA Degree of Hydrolysis (%) | 4% Aqueous Viscosity (mPa·s, 20°C) | Water Retention (g/m²/24h, ASTM C156) | UV-Crack Resistance (h to first crack, ASTM G154) |
|---|---|---|---|
| 79–82 | 8–10 | 380–420 | <150 |
| 86–89 | 12–18 | 520–580 | 450–550 |
| 96–99 | 28–35 | 610–650 | 700–800* |
| *Prone to embrittlement after 300 h if plasticizer level < 10% on PVA solids. | |||
| TiO₂ Loading (wt% on PVA) | Haze (ASTM D1003) % | UV‑A Transmittance (320–400 nm) % | Tensile Strength (ASTM D882) MPa |
|---|---|---|---|
| 0 | 1.2 | 78 | 42 |
| 1.5 | 2.8 | 22 | 45 |
| 2.5 | 4.6 | 4 | 48 |
| 3.5 | 13 | 1 | 41 |
Competitive Polyvinyl Alcohol (PVA) for UV-Resistant Materials prices that fit your budget—flexible terms and customized quotes for every order.
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A modified polyvinyl alcohol (PVA) grade engineered for applications requiring sustained optical clarity and mechanical integrity under ultraviolet (UV) radiation—designated as the PVA-UVX series—incorporates a covalently bound hindered amine light stabilizer (HALS) and a co-polymerized benzotriazole-type UV absorber. Three standard viscosity grades are offered: PVA-UVX-88 (degree of hydrolysis 88 ± 1 mol%, 4 % aqueous solution viscosity at 20°C 20–25 mPa·s), PVA-UVX-99 (hydrolysis 99.0–99.8 mol%, viscosity 12–18 mPa·s), and a high-molecular-weight extrusion variant PVA-UVX-99E (viscosity 40–50 mPa·s). Unlike conventional PVA films that rely on migratory low-molecular-weight additives—prone to surface blooming and leaching under condensation conditions—the UVX architecture chemically tethers the stabilizer moieties to the vinyl alcohol backbone during a controlled reactive extrusion step, maintaining a yellowness index (YI E313) below 2.5 after 1,500 h of QUV-B exposure per ASTM G154 cycle 1. This product line targets transparent multilayer laminates, photovoltaic encapsulation interlayers, UV-blocking agricultural films, and co-extruded barrier layers where conventional PVA would undergo rapid chain scission and discoloration.
| Property | PVA-UVX-88 | PVA-UVX-99 | PVA-UVX-99E |
|---|---|---|---|
| Degree of hydrolysis (mol%) | 88 ± 1 | 99.0–99.8 | 99.0–99.8 |
| Viscosity, 4% aq. at 20°C (mPa·s) | 20–25 | 12–18 | 40–50 |
| Weight-average molecular weight Mw (kDa) | 85–105 | 60–80 | 130–160 |
| Chemically bound UVA content (ppm) | 2,500–3,200 | 2,800–3,500 | 2,800–3,500 |
| Covalently grafted HALS content (ppm) | 1,500–2,000 | 1,800–2,200 | 1,800–2,200 |
| Ash residue (%, ISO 3451-1) | <0.5 | <0.3 | <0.3 |
| Volatile matter (%, 105°C, 2 h) | <5.0 | <5.0 | <5.0 |
The photooxidative degradation of commodity PVA proceeds primarily through a radical-chain mechanism initiated by absorption of UV-B quanta (280–315 nm) by carbonyl defect structures and residual acetate groups. Unsaturated chain-end ketones and in-chain 1,2-diol defects serve as chromophores, absorbing photons to yield excited triplet states that undergo Norrish Type I α-cleavage, generating backbone radicals. Subsequent β-scission fragments the polymer, sharply reducing elongation at break and producing conjugated polyene sequences that manifest as yellow discoloration. In conventional film grades, a post-added UV absorber (e.g., 2-hydroxy-4-octyloxybenzophenone) dispersed in the matrix can physically quench a fraction of excited states; however, migration to the surface during thermal cycling and moisture exposure reduces its effective concentration at the sub-surface layers where photo-initiation is most intense. The PVA-UVX design circumvents these limitations by co-polymerizing a benzotriazole-functionalized vinyl ester during the saponification step, anchoring the UVA within the polymer backbone, and grafting a tetramethylpiperidine-based HALS onto pendant hydroxyl sites via a reactive extrusion post-treatment. The HALS nitroxyl radicals scavenge peroxy radicals and regenerate the UVA’s excited-state quenching cycle, producing a synergistic protective effect verified through carbonyl index monitoring (FTIR absorbance at 1,718 cm⁻¹ increased only 0.05 units after 1,000 h QUV-A compared with 0.32 units for an unmodified PVA-99 film of identical thickness).
Thin-film specimens (50 ± 2 µm) were extrusion-cast using a chill roll and subjected to accelerated weathering in a QUV/se chamber operating ASTM G154 cycle 1 (UVA-340 lamps, irradiance 0.77 W/m²/nm at 340 nm, 8 h UV at 60°C black panel, 4 h condensation at 50°C). Tensile properties were measured per ASTM D882-18, yellowness index per ASTM E313, and haze per ASTM D1003 procedure A. The data in Table 2 demonstrate that PVA-UVX-99 retains over 85% of initial tensile strength and limits yellowness index increase to below 3.0 units, whereas the unmodified PVA-99 loses half its strength and develops severe yellowing within 500 h. Standard peroxide-cured EVA encapsulant (vinyl acetate 28 wt%, 0.45 mm thickness) shows comparable transparency retention but lower elastic modulus retention due to acetic acid-catalyzed chain scission pathways inherent to the ethylene-vinyl acetate chemistry.
| Material | Initial tensile strength (MPa) | Tensile strength retention after 1,000 h (%) | Δ YI (E313) after 1,000 h | Haze after 1,000 h (%) |
|---|---|---|---|---|
| PVA-UVX-99 | 48 | 87 | +2.1 | 3.2 |
| Unmodified PVA-99 (reference) | 46 | 52 | +11.4 | 18.7 |
| Standard EVA encapsulant (0.45 mm) | 16 | 79 | +3.4 | 4.1 |
| Plasticized PVB (0.38 mm, 21 phr DHA) | 22 | 91 | +1.8 | 2.5 |
Melt extrusion of PVA-UVX-99E on a co-rotating twin-screw extruder (L/D 44:1, screw diameter 25 mm, ZSK 26 Mc¹⁸) requires meticulous moisture control because residual water above 0.15 wt% generates bubble defects and promotes hydrolysis-induced chain scission at processing temperatures exceeding 200°C. Resin is pre-dried in a dehumidifying hopper dryer at 80°C for 4–6 h (dew point below −40°C) to reach a moisture content of <0.10 wt%, verified by Karl Fischer coulometry. The barrel temperature profile from feed to die is typically set as 175/185/195/200/200/200/200/195/190°C, with a vacuum vent applied at barrel zone 8 at −0.8 bar gauge to strip residual acetates generated in the reactive grafting stage. A gear pump with a 40 µm screen pack feeds a flat die with a lip gap of 0.5 mm; melt pressure at the die entry is maintained below 120 bar to avoid excessive shear heating. Chill roll temperature is held at 15°C, and film winding tension must not exceed 8 N for 50 µm gauge to prevent molecular orientation that accelerates stress-induced photo-fracture. When processing with 0.5 wt% nano-TiO₂ (rutile, primary particle size 15 nm, surface-treated with polydimethylsiloxane) as a secondary UV screener, the TiO₂ masterbatch is side-fed via a twin-screw side feeder at zone 6 to minimize agglomerate-induced haze. Films produced under these conditions exhibit a haze value below 4.0% and gel count below 5 particles/m² larger than 200 µm.
Laminated safety glass for overhead glazing and spandrel panels typically employs plasticized polyvinyl butyral (PVB) interlayers with a UV-blocking additive package. Substituting PVA-UVX-99E casts a different adhesion profile onto silane-primed float glass. Peel adhesion measured per EN 14449 (two-stage pressure cooker and peel test) on 3 mm clear annealed glass demonstrates a pummel value of 6–8 without humidity preconditioning, declining to 2–3 after 1,000 h at 50°C/95 % RH unless a silane coupling agent (0.05 wt% γ-aminopropyltriethoxysilane pre-hydrolyzed) is incorporated into the extrusion compounding step. The primary optical concern under prolonged UV exposure is interfacial haze build-up originating from moisture-driven micro-delamination rather than bulk phase yellowing. After 2,000 h of ISO 4892-2:2013 xenon-arc exposure (filtered daylight, BPT 65°C, 0.51 W/m² at 340 nm), the change in haze (Δ Haze) for a 0.76 mm PVA-UVX-99E interlayer bonded between two 3 mm low-iron glass panes remains at 1.2%, compared with 0.9% for a standard automotive-grade PVB film with a benzotriazole additive package. This marginal difference permits use in non-automotive laminated glazing where the desire for a halogen-free, chlorine-free interlayer overrides the slight edge in long-term optical stability of PVB.
In agricultural tunnel films requiring both UV resistance and controlled light transmittance, 1.0–2.5 wt% of rutile nano-TiO₂ can be dispersed into PVA-UVX-88 via a pre-compounded masterbatch. The TiO₂ particles act as UV scattering centers, extending the optical path length and enhancing the effectiveness of the chemically bound UVA. Film blown on a single-screw extruder (L/D 30:1, barrier screw, die diameter 80 mm, die gap 1.2 mm) at a blow-up ratio of 2.5:1 yields a film with PAR (photosynthetically active radiation) transmittance of 78–82% and UV transmittance (300–380 nm) below 3% at 50 µm gauge. Processing stability requires that the TiO₂ surface treatment be completely non-reactive toward the PVA hydroxyl groups; coatings based on alumina and stearic acid are preferred because silane-treated grades catalyze undesirable crosslinking at the melt processing window, raising die pressure by 30–50 bar and generating visible gel defects. Field data from 12-month outdoor exposure in Southern Spain (Córdoba, annual UV dose approximately 95 kLy) show retention of tensile strength at break of 82% for the film containing 2.0 wt% nano-TiO₂ and PVA-UVX-88 versus 44% for an identical film based on standard PVA 88% hydrolysis with the same TiO₂ loading, confirming that the chemically tethered stabilizer package is the primary determinant of weatherability rather than the particulate UV screener alone.
Solvent casting with water as the only volatile component permits deposition of precision-thickness UV-blocking coatings on heat-sensitive polycarbonate substrates. A 10 wt% aqueous solution of PVA-UVX-99 is applied with a slot-die coater at wet film thicknesses of 120–200 µm onto corona-treated polycarbonate sheet; the coated sheet passes through a multi-zone drying tunnel with air temperatures progressively ramping from 60°C to 110°C, yielding a dry film thickness of 10–20 µm. The cured coating achieves a Taber abrasion resistance (CS-10F wheel, 500 g load, 100 cycles) of 8–12% Δ Haze per ASTM D1044 and adheres with crosshatch rating 5B per ASTM D3359 after 24 h conditioning at 23°C/50% RH. A critical limitation emerges when the dry film thickness exceeds 25 µm: differential swelling between the PVA layer and the polycarbonate substrate under cyclic humidity (30–90% RH) induces microcracking that becomes initiation sites for photodegradation. Furthermore, plasticizer migration from the polycarbonate into the PVA layer after prolonged service above 80°C accelerates the loss of UV-blocking performance; published data for this specific multi-layer configuration is limited, mandating application-specific compatibility testing before deployment.
Co-injection molding of a PVA-UVX-99 barrier core layer in two-stage PET bottle preforms—targeted for UV-sensitive dairy and juice products—exploits the oxygen barrier contribution of high-hydrolysis PVA while simultaneously cutting UV transmission below 360 nm to less than 5% at a core thickness of 100 µm. The process integrates a main injection unit for PET (IV 0.80 dL/g) and a secondary unit for molten PVA-UVX-99 fed at melt temperature 195°C into a co-injection manifold. Interlayer adhesion is controlled by a tie resin (maleic anhydride-modified LLDPE, melt index 2.5 g/10 min at 190°C/2.16 kg) injected at the same station. Mould cooling must maintain a cavity surface temperature below 10°C to quench the PVA layer into an amorphous state and prevent crystallization-driven haze. Preforms subjected to 500 h of ASTM G155 xenon-arc exposure (filtered daylight, 0.35 W/m² at 340 nm) retain a yellowness index below 1.5, while identical preforms with an unmodified PVA-99 core exceed 6.5. The primary processing incompatibility is the sensitivity of the covalently bound HALS to strongly acidic beverage components: contact with products having a pH below 3.2 at filling temperatures above 85°C protonates the piperidine nitrogen, quenching the nitroxyl radical cycle, and reduces the effective UV lifetime by approximately 40%, as determined by accelerated shelf-life testing at 40°C/75% RH for 12 weeks.