| HS Code | 665475 |
| Product Name | Sinopec PVA 098-20 |
| Chemical Name | Polyvinyl alcohol |
| Cas Number | 9002-89-5 |
| Appearance | White granular powder |
| Degree Of Hydrolysis | 98-99 mol% |
| Viscosity | 20-24 mPa·s (4% solution, 20°C) |
| Ph | 5-7 (4% solution) |
| Ash Content | ≤0.5% |
| Volatile Content | ≤5.0% |
| Particle Size | 20-80 mesh |
| Solubility | Soluble in hot water, insoluble in organic solvents |
As an accredited Sinopec PVA 098-20 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Sinopec PVA 098-20 is supplied in 20 kg bags with an inner polyethylene liner for moisture protection. |
| Container Loading (20′ FCL) | 20′ FCL: Sinopec PVA 098-20 packed in sealed bags on pallets, loaded securely into a dry container for safe transport. |
| Shipping | Sinopec PVA 098-20 ships as a non-hazardous, water-soluble polymer powder in multi-layer paper bags or FIBCs. Protect from moisture, humidity, and direct sunlight during transit. Store in a dry, ventilated area, avoiding contact with oxidizing agents. No special transport classification required; follow standard dust-safe handling procedures. |
| Storage | Store Sinopec PVA 098-20 in a cool, dry, well-ventilated area, away from direct sunlight, heat sources, and open flames. Keep containers tightly sealed to prevent moisture absorption and contamination. Avoid dust accumulation; use grounded equipment to prevent static discharge. Maintain moderate temperatures and separate from oxidizing agents and incompatible chemicals. |
| Shelf Life | Shelf life: 12 months from date of manufacture when stored in a cool, dry, well-ventilated area, away from moisture and sunlight. |
Process specifications for filament-grade polyester-cotton warp sizing increasingly mandate complete cold-water desizability within 60 s at 15 °C without enzymatic or oxidative auxiliaries. PVA 098-20, carrying a hydrolysis degree of 20–26 mol% and a 4 wt% aqueous solution viscosity of 3.5–4.5 mPa·s at 20 °C (Brookfield LV, spindle 1, 60 rpm), fulfills this requirement because residual acetyl groups disrupt polyvinyl alcohol crystallinity sufficiently to permit complete dissolution in mains-temperature water. A typical size mix in a 1 500 L jet cooker combines PVA 098-20 at 8–10 parts by weight with acid-thinned corn starch at 85–88 parts and a lubricant wax dispersion at 2–4 parts; the PVA fraction functions as the film-former governing abrasion resistance on high-speed projectile looms. The liquor is applied on a Benninger SMR double-dip double-nip sizing machine at a squeeze pressure of 18–22 kN/m, targeting a size add-on of 10–12 % dry-on-dry for Ne 40/1 PES/CO blend yarns. Residual moisture after drying must not exceed 2.5 wt% to prevent blocking on the loom beam. Desizing compliance is verified per AATCC 130-2018 with zero residual starch confirmed by iodine staining; the water-extractable fraction of PVA 098-20 exits the wash train at ≥ 98 % recovery. Downstream, the woven greige fabric converts into workwear shirting, bed linen, and pocketing textiles where the absence of retained size eliminates dyeing defects such as skitteriness and barré. A documented operational boundary exists: size liquor pH must be maintained between 5.5 and 7.0 because persistent alkalinity above pH 8.0 triggers slow deacetylation of the partially hydrolysed PVA, raising the effective hydrolysis degree over the campaign and gradually impairing cold-water removability.
Vinyl acetate batch emulsion polymerizations in a 12 000 L glass-lined jacketed reactor driven by a two-stage 45° pitched-blade turbine at tip speeds of 2.8–3.5 m/s use PVA 098-20 as the primary protective colloid at loadings between 3.5 wt% and 6.0 wt% based on total monomer. The partially hydrolysed grade is preferred over fully hydrolysed PVA because its lower surface tension—typically 48–52 mN/m for a 1 % solution at 20 °C, measured by Wilhelmy plate method—enhances nucleation efficiency and yields polyvinyl acetate and vinyl acetate-ethylene copolymer latices with mean particle diameters from 450 nm to 1 200 nm as determined by laser diffraction (ISO 13320:2020). The critical mechanistic variable is the grafting ratio, which depends on chain transfer to polymer: the residual acetate sequences provide a higher density of tertiary C–H sites susceptible to hydrogen abstraction by propagating radicals, so the grafted PVA weight fraction in the final latex routinely reaches 25–40 % of the total PVA charge. Excessive grafting, however, leads to bridging flocculation; the processing window closes when the agitator power draw rises by more than 15 % from baseline, at which point the batch gels irreversibly. Initiator dosing strategy mitigates this—a potassium persulfate feed held at 0.08–0.12 wt% of monomer per hour, started 15 min post seed-stage initiation, limits the aqueous-phase radical concentration and keeps the grafting rate within a safe corridor. The finished emulsion must pass 325-mesh screen retention ≥ 99.5 % and exhibit a viscosity of 2 000–8 000 mPa·s (Brookfield RVT, spindle 6, 20 rpm) to qualify for woodworking adhesive compounding. End-use compliance is governed by FDA 21 CFR 175.105 for indirect food-contact adhesives and by DIN EN 204/205 for durability class D2 and D3 wood bonds. Any deviation toward amine-based buffers should be avoided because ethanolamine species accelerate the alkaline hydrolysis of residual acetate groups, raising the minimum film-forming temperature beyond the specification limit of 18 °C within 72 hours of wet-state aging.
At envelope converting lines equipped with W+D 102 series rotary plunger machines running 1 200 envelopes/min, the front-seal remoistenable adhesive must generate open-time tack within 0.3–0.6 s of lick-roller water application while staying non-blocking in storage at 40 °C and 75 % relative humidity. A stock formulation is prepared by dissolving PVA 098-20 (100 phr) in deionized water at 85 °C under low-shear agitation, then blending with glycerol (12–15 phr), a white dextrin extender (30–40 phr), and a polydimethylsiloxane antifoam emulsion (0.3 phr) to reach a final solids content of 38–42 wt%. The fluid is coated onto 80 g/m² uncoated kraft paper via a reverse-gravure station at a coat weight of 6–8 g/m² dry, dried in a three-zone flotation dryer with zone temperatures of 90 °C, 110 °C, and 95 °C, and immediately re-reeled under tension ≤ 60 N/cm web width to prevent blocking. T-peel adhesion after rewetting, tested per ASTM D1876-08 on 25 mm strips bonded to envelope stock, typically falls between 2.5 N and 4.0 N after a 10 s dwell. The product complies with the heavy-metal and primary aromatic amine limits of EN 71-3 and EN 71-9 for paper articles, and with the phthalate requirements of Regulation (EC) No 1907/2006 Annex XVII entry 51. An observed in-service limitation is the humidity-dependent creep sensitivity: at equilibrium moisture contents above 14 wt% in the paper carrier, the adhesive film loses its blocking resistance, so sealed stacks must be overwrapped with 0.08 mm LDPE film within 30 min of discharge from the dryer.
In high-speed metered size press applications above 1 200 m/min, the coating colour experiences extensional shear rates exceeding 10⁵ s⁻¹. PVA 098-20, dosed at 1.0–2.5 parts per 100 dry parts of coating pigment—typically a 60:40 blend of ground calcium carbonate and kaolin—functions as a water-retention agent and rheology modifier that raises the low-shear viscosity to 450–700 mPa·s (Brookfield LV, spindle 3, 100 rpm) while preserving a shear-thinning profile that prevents misting at the roll nip. The solution is pre-cooked separately at 15–18 wt% solids and post-added to the starch-bound pigment slip after cooling to 45 °C; this sequence avoids thermal shock-induced microgel formation. A Voith SpeedSizer AT-X configuration with a roll gap of 12–16 μm deposits a dry coat weight of 2–4 g/m² per side on bleached softwood board. Macroscopic surface strength is evaluated by IGT pick velocity according to ISO 3783:2020, which must exceed 1.8 m/s using medium-viscosity oil. The finished board is converted into pharmaceutical folding cartons and frozen-food packaging, both requiring compliance with the extractives limits of FDA 21 CFR 176.170 and the mineral oil hydrocarbon migration thresholds of the German BfR Recommendation XXXVI/1. The operational boundary is severe: because PVA 098-20 begins to phase-separate at calcium ion concentrations above 150 mg/L, the circuit water hardness must be controlled by ion-exchange softening, and recycled broke containing wet-strength resin carryover must be segregated to prevent insoluble polyelectrolyte complex precipitation in the coater tray.
Redispersible polymer powders derived from PVA 098-20 via co-current spray drying encounter a well-documented conflict: residual moisture must stay below 1.2 wt% to prevent powder caking during warehouse storage in tropical climates, yet over-drying at inlet air temperatures above 170 °C induces discoloration and partial insolubility because surface acetate groups undergo thermal elimination. The standard process disperses a 22 wt% PVA 098-20 solution in a Niro FSD-12.5 spray dryer with a rotary atomizer running at 14 500 rpm, inlet air at 160–165 °C, and outlet air at 78–82 °C, simultaneously injecting kaolin (5–8 wt% on PVA solids) and precipitated calcium carbonate (2–3 wt%) as anti-caking agents into the drying chamber from a separate annular port. Even with this arrangement, the primary PVA 098-20 shell exhibits glass-knitting at the droplet surface; hence a secondary spray of poly(vinyl alcohol-co-ethylene) with an ethylene content of 10 mol% is co-atomized at 3–5 phr to form a core-shell morphology that reduces particle surface tack. The resulting powder must pass a sieve test of ≥ 95 % passing 250 μm and show a redispersion time below 120 s when stirred into pH 7 water at 23 °C (DIN 66111). In dry-mix tile adhesives, this powder is formulated at 3–5 % by total mix weight with CEM I 42.5 cement, quartz sand, and cellulose ether; adhesion after water immersion is tested per EN 12004-2:2017, where values must exceed 0.5 N/mm². The major incompatibility arises with amine-based epoxy adhesion promoters present in some high-performance grouts, which locally raise pH above 12.5 and deacetylate the redispersed PVA within hours, negating the flexibility contribution.
The production of 40 μm cold-water-soluble embroidery backing film via chill-roll casting demands a dope solution free of undissolved fisheyes that would cause needle deflection and thread breakage on multi-head Schiffli embroidery machines operating at 1 200 stitches/min. PVA 098-20 powder is pre-swelled in deionized water at 22 °C for 60 min then dissolved under vacuum at 88–92 °C to reach a solution concentration of 18–20 wt%, deaerated, and extruded through a slot die with a lip gap of 0.35 mm onto a polished chromium-plated roll chilled to 8 °C. The film, after passage through a 12 m long three-zone convection dryer set to 65 °C, 80 °C, 75 °C, is wound on 76 mm cores under constant tension of 18–22 N/m; thickness variation across a 1.6 m wide web must not exceed ± 3 μm. Complete dissolution at 15 °C in 45 s is verified by immersing a 100 mm × 100 mm specimen in 2 L of stirred water and measuring residual weight after oven drying. The backing carries OEKO-TEX Standard 100 Annex 4 certification for baby articles, Class I, because the entire PVA mass is discharged in the laundry effluent after the embroidery is heat-set onto the base textile. A processing caveat is relevant for humid-season operation: at ambient relative humidity above 65 %, the unwinding film picks up moisture within 3 min, transitioning from a tensile modulus of 2.8 GPa to below 1.2 GPa, which causes mis-registration of the stitch-down points; hence the slitting station must be enclosed with dehumidified air at ≤ 30 % RH.
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Sinopec PVA 098-20 is a partially hydrolyzed polyvinyl alcohol grade produced via continuous alcoholysis of polyvinyl acetate. The grade designation encodes a nominal degree of polymerization of 980 and a residual acetate content resulting in a hydrolysis degree of 20.0 ± 2.0 mol%. This low hydrolysis level places 098-20 in a distinct category of PVAs characterized by reduced water solubility relative to fully hydrolyzed homologues, pronounced surface activity at liquid-liquid interfaces, and a lower critical solution temperature (LCST) that enables thermosensitive precipitation behavior. Typical applications exploit these attributes in suspension polymerization protective colloid systems, emulsion stabilization, paper surface sizing, and water-sensitive temporary binders. The product is supplied as free-flowing white granules with a bulk density of 0.40–0.60 g/cm³ and a volatile content not exceeding 5.0 wt% as determined by ISO 15023-2:2019. Ash residue measured after ignition at 800 °C remains below 0.5 wt%, and the pH of a 4 wt% aqueous dispersion at 20 °C falls within the range 5.0–7.0.
In the suspension polymerization of vinyl chloride monomer (VCM), the selection of a primary dispersant dictates both the mean particle size (MPS) and the particle size distribution (PSD) of the resulting polyvinyl chloride (PVC) resin. Sinopec PVA 098-20 functions as a primary dispersant that, owing to its 20 mol% hydrolysis, exhibits a cloud point in deionized water between 22 °C and 28 °C at 4 wt% concentration. When a jacketed stirred-tank reactor equipped with a Pfaudler-type retreat-blade impeller is heated to typical VCM polymerization temperatures of 55–65 °C, the aqueous solution of 098-20 undergoes phase separation at the droplet interface. This precipitation deposits a viscoelastic film around each VCM droplet, which suppresses coalescence during the early viscous stage of conversion and modulates the primary particle aggregation rate.
Process-scale experience in 30 m³ and larger reactors indicates that the optimal charge of 098-20 for a targeted MPS of 130–150 μm lies in the range 0.06–0.12 wt% based on VCM mass, co-formulated with a secondary low-hydrolysis PVA or a hydroxypropyl methylcellulose (HPMC) in a primary/secondary ratio of 1:0.3 to 1:0.5. Deviations from this window produce measurable shifts: a reduction to 0.04 wt% shifts D₅₀ upward by 15–25%, while exceeding 0.15 wt% generates excessive foam and can lead to reactor fouling on the upper dished head and baffle surfaces. The high surface activity of the acetate-rich segments, quantified by a dynamic surface tension of approximately 45–48 mN/m for a 0.1 wt% solution at 25 °C (Wilhelmy plate method), enables rapid migration to the monomer/water interface within the first 10–15 minutes of agitation at 180–220 rpm tip speeds of 3.0–4.5 m/s. Process engineers must precondition the granular PVA by pre-drying at 105 °C for a minimum of 1 hour when ambient relative humidity exceeds 60%, as moisture absorption above 6 wt% retards dissolution and creates gel lumps that manifest as fisheyes in finished PVC.
The 4 wt% aqueous solution viscosity of Sinopec PVA 098-20 at 20 °C, measured according to ISO 15023-2:2019 using a Brookfield LV spindle at 60 rpm, is specified at 22.0–28.0 mPa·s. This parameter exerts a direct influence on the Sauter mean diameter (D₃₂) of VCM droplets under continuous agitation. Viscosity values tending toward the upper limit of 28.0 mPa·s promote higher shear stress transfer, reducing D₃₂ by approximately 8–12% compared to batches formulated with the same dispersant at 22.0 mPa·s, all other conditions held constant. Correlation with end-use PVC plasticizer absorption (ASTM D3367) indicates that a primary dispersant with viscosity near 25.0 mPa·s yields the most reproducible plasticizer uptake values between 22 and 26 g DOP/100 g resin for K-value 67–68 suspension grades. Batch-to-batch viscosity drift within a given 098-20 lot typically remains within ±1.2 mPa·s, well within the tolerance band needed for stable PSD control on a 100 kta PVC line. Operators are advised to dissolve 098-20 in water pre-heated to 25–30 °C under low-shear agitation (300–500 rpm) for 45–60 minutes to achieve a homogeneous solution free of microgel remnants.
Industrial troubleshooting records highlight an incompatibility between 098-20 and certain amine-based organic initiators that generate alkaline hydrolysis byproducts during the early polymerization phase. If a percarbonate initiator containing tertiary amine activators is employed, the localized pH increase at the droplet interface can accelerate hydrolysis of the residual acetate groups on the PVA backbone, progressively shifting the dispersant’s HLB value during the reaction and causing broadening of the PSD. In such scenarios, substituting to a fully hydrolyzed co-dispersant or buffering the aqueous phase with 0.005–0.01 wt% sodium bicarbonate restores PSD tightness to a span value (D₉₀-D₁₀)/D₅₀ of 1.0–1.2.
Paper mills applying surface size at a size press or film press utilize Sinopec PVA 098-20 at solids contents of 3–5 wt% to improve surface pick resistance and internal bond strength. The grade’s low hydrolysis degree provides a specific binder property: the dried film exhibits adequate tensile strength for offset printing—measured at 35–45 MPa per ASTM D882-18 for a 50 μm cast film—while retaining sufficient hydrophilicity to not impair repulping efficiency under alkaline deinking conditions. This balance is absent in fully hydrolyzed PVAs, which deliver higher dry strength but resist water penetration during repulping and lead to fiber loss. Published data for this specific configuration is limited to pilot-scale trials on a Voith Paper pilot machine at 800 m/min, wherein a 4.0 wt% 098-20 size solution at 50 °C raised IGT pick velocity from 0.8 m/s (base sheet) to 2.2 m/s with no measurable increase in sheet moisture content post-drying.
Processors handling 098-20 for sizing must ensure that the solution pH is maintained between 5.5 and 6.5. At pH above 8.0, such as when blending with calcium carbonate-coated broke, the acetate ester linkages undergo gradual saponification, increasing the effective hydrolysis degree over residence times exceeding 4 hours in a size press recirculation loop. This shift in polymer chemistry raises solution viscosity beyond the target range and can precipitate foam issues in the return tank.
Sinopec manufactures a series of low-hydrolysis PVAs differentiated by degree of polymerization. The table below contrasts 098-20 with its adjacent homologue 088-20 and the higher-viscosity 108-20, using standard metrics from ISO 15023-2:2019 for viscosity and JIS K6726:1994 for hydrolysis determination.
| Parameter | Sinopec PVA 088-20 | Sinopec PVA 098-20 | Sinopec PVA 108-20 |
|---|---|---|---|
| Nominal Degree of Polymerization | 880 | 980 | 1080 |
| 4 wt% Solution Viscosity at 20 °C (mPa·s) | 18.0–22.0 | 22.0–28.0 | 28.0–34.0 |
| Hydrolysis Degree (mol%) | 19.0–23.0 | 19.0–23.0 | 19.0–23.0 |
| Primary Application Niche | Suspension PVC (fine MPS) | Suspension PVC (medium MPS), paper sizing | Adhesive remoistening, thick films |
| Film Tensile Strength (MPa, ASTM D882) | 28–34 | 35–45 | 42–52 |
| Cloud Point (°C, 4% solution) | 24–30 | 22–28 | 20–26 |
The higher molecular weight of 098-20 relative to 088-20 translates into increased inter-droplet film strength during polymerization, which is critical when reactor agitator tip speeds exceed 4.0 m/s. Conversely, substituting 108-20 into the same recipe often requires a 10–15% reduction in dispersant charge to avoid over-stabilization, a condition that delays pressure drop detection and results in residual VCM stripper column excursions. The cloud point depression seen with increasing molecular weight is consistent with the enthalpic contribution of longer acetate sequences, a factor that guides reactor temperature profiles for hybrid dispersant systems.
In polyvinyl acetate (PVAc) and vinyl acetate-ethylene (VAE) emulsion polymerization, Sinopec PVA 098-20 acts as a protective colloid rather than a grafting substrate. The low hydrolysis grade supplies a high surface activity without excessive grafting, which is beneficial when a lower degree of grafting is desired to preserve film clarity and reduce water sensitivity in the final latex. During continuous feed processes with a mean residence time of 4–6 hours in a 10 m³ cascade reactor, the PVA is metered as a 10 wt% pre-dissolved stream at 30 °C into the initial reactor zone. The acetate-rich copolymer segments preferentially adsorb onto growing PVAc particle surfaces, and the resulting steric stabilization layer maintains latex coagulum below 0.02 wt% on a 200-mesh screen. Operators note that when 098-20 is replaced with a higher hydrolysis grade (e.g., 88 mol%), the latex viscosity increases by 25–40% due to stronger inter-particle bridging, which can overburden the temperature control jacket if heat transfer coefficients are below 200 W/m²·K.
Thermal pre-treatment of the PVA solution before injection is sometimes employed. Elevating the 10 wt% solution to 90 °C for 30 minutes induces partial dissolution of microcrystalline domains that arise from the blocky acetate sequences, which in turn narrows the particle nucleation period and improves batch-to-batch repeatability of the z-average particle diameter. This procedure is not mandatory for all reactor configurations; it becomes relevant when the emulsion’s target z-average diameter is below 250 nm and the reactor is not equipped with a rotor-stator homogenizer. In such circumstances, PSD polydispersity index as measured by dynamic light scattering (ISO 22412:2017) routinely falls below 0.05 after thermal conditioning, compared to 0.08–0.12 without it.
| Property | Specification | Test Method |
|---|---|---|
| Volatile Matter (wt%) | ≤ 5.0 | ISO 15023-2:2019 |
| Ash (wt%) | ≤ 0.5 | ISO 15023-2:2019 |
| 4 wt% Solution Viscosity at 20 °C (mPa·s) | 22.0–28.0 | ISO 15023-2:2019, Brookfield LV, 60 rpm |
| Hydrolysis Degree (mol%) | 19.0–23.0 | JIS K6726:1994 (back titration) |
| pH (4 wt% solution) | 5.0–7.0 | ISO 787-9:2019 |
| Bulk Density (g/cm³) | 0.40–0.60 | DIN 53468 |
| Screen Residue on 80 mesh (wt%) | ≤ 0.3 | GB/T 12010.6-2010 (dry sieving) |
Processors integrating 098-20 into automated material handling systems should be aware of the material’s tendency to form a compacted bed in silos at bulk temperatures above 40 °C due to incipient cold flow of the acetate-rich amorphous phase. Fluidization with dry air at a dew point below -10 °C and linear velocities of 0.5–1.0 m/s across the bin discharge cone prevents bridging. Moisture uptake during storage under typical Southeast Asian conditions (30 °C, 80% RH) can reach 1.2 wt% within 24 hours if the original packaging is not resealed; therefore, partial bags should be consumed entirely within one shift.