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Anhui Liwei Chemical Co., Limited.

PVOH 552

    Specifications
    HS Code 238562
    Product Name PVOH 552
    Chemical Name Poly(vinyl alcohol)
    Cas Number 9002-89-5
    Chemical Formula (C2H4O)n
    Product Type Partially hydrolyzed low-viscosity polyvinyl alcohol
    Appearance White to pale yellow granular powder
    Degree Of Hydrolysis 86.0-90.0 mol % (typical 88%)
    Viscosity 4 Percent Aqueous Solution 5.0-6.0 mPa·s at 20°C
    Ph 4 Percent Aqueous Solution 6.0-8.0
    Density At 25c 1.27 g/cm³
    Bulk Density 0.6-0.7 g/cm³
    Melting Point 180-190°C
    Glass Transition Temperature 58-85°C (approximate)
    Solubility In Water Soluble in hot water; sparingly soluble in cold water
    Solubility In Organic Solvents Practically insoluble
    Water Content ≤5.0%
    Ash Content ≤1.0%
    Average Molecular Weight Approximately 40,000-45,000 g/mol

    As an accredited PVOH 552 factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing PVOH 552 is packaged in 25 kg multilayer paper bags with polyethylene lining, palletized and shrink-wrapped for safe transport.
    Container Loading (20′ FCL) 20′ FCL loading of PVOH 552: use palletized, moisture-proof bags; secure cargo, distribute weight evenly, and protect from damage.
    Shipping PVOH 552 (polyvinyl alcohol) is shipped as a non-hazardous, water-soluble polymer powder. It is packed in sealed multi-layer paper bags or FIBCs, protected from moisture. Transport by truck, rail, or sea in dry containers; avoid exposure to humidity, heat, and direct sunlight during handling and storage.
    Storage Store PVOH 552 in its original, tightly sealed container in a cool, dry, well-ventilated area, away from direct sunlight and moisture. Avoid generating dust; keep away from oxidizers and ignition sources. Maintain moderate temperatures and low humidity to prevent caking or degradation. Follow manufacturer’s expiry date and FIFO stock rotation.
    Shelf Life PVOH 552 has a shelf life of 2 years when stored in a cool, dry place away from moisture.
    Application of PVOH 552

    What governs cold-water solubility and film toughness in unit-dose detergent packaging?

    Unit-dose laundry capsules require a water-soluble film that withstands aggressive liquid detergents containing anionic surfactants, nonionic ethoxylates, and enzymes without premature dissolution or chemical attack, yet dissolves completely in wash water at temperatures as low as 10°C. Polyvinyl alcohol grade 552, with a degree of hydrolysis of 88 ± 1 mol% and a 4 % aqueous solution viscosity of approximately 5.2 mPa·s at 20°C (DIN 53015), provides the necessary balance of cold-water solubility and mechanical strength. The film is typically produced via cast film extrusion using a twin-screw extruder with an L/D ratio of 30:1 to 40:1 and a barrier screw design, processing the virgin PVOH powder premixed with plasticizers such as glycerol, sorbitol, or trimethylolpropane at loadings between 10 % and 25 % by weight. Melt temperatures in the die zone are held within 170–200 °C; exceeding 205 °C risks partial acetal formation and discoloration due to residual acetate groups. The cast film passes through a chill roll stack maintained at 10–15 °C to set amorphous structure and then through a conditioning chamber where moisture content is adjusted to 3–6 % to prevent embrittlement. Final film thickness for standard capsules ranges from 70 µm to 100 µm, with thickness variation held below ±5 % across the web width (≥1200 mm) as verified by a traversing beta gauge. Fracture resistance is measured in accordance with ASTM D882-18, where a typical 75 µm film conditioned at 23°C and 50 % RH exhibits a tensile strength at break of not less than 35 MPa in the machine direction and an elongation at break exceeding 200 %. Critical to packaging line performance is the film’s cold-water disintegration time: a 25 × 25 mm sample suspended in deionized water at 10°C under gentle agitation (magnetic stirrer at 200 rpm) must disintegrate into non-tacky fragments passing a 1.0 mm sieve within 30 seconds; grade 552 routinely achieves  <20 seconds in this test when the plasticizer package is optimized. Incompatibilities have been observed with high-dosage cationic surfactants and certain bleach precursors (e.g., tetraacetylethylenediamine) that can cause localized crosslinking and insoluble gel formation. Therefore, each new liquid formulation is subjected to a 4-week storage stability test at 40 °C and 75 % RH in sealed HDPE containers, with weekly monitoring of film puncture resistance and disintegration time. Pre-drying of PVOH 552 resin to  <0.5 % moisture is mandatory if ambient relative humidity exceeds 60 % during pneumatic conveying to the extruder feed throat. Compliance is mapped across multiple regulatory frameworks: the film satisfies FDA 21 CFR 177.1670 for dry food packaging when residuals of polymerization aids are controlled, EU Regulation (EC) No 648/2004 on detergents as amended, and the voluntary US EPA Safer Choice criteria for film formers. Biodegradation according to OECD 301B (ready biodegradability) exceeds 60 % in 28 days for the unfilled film.

    Typical mechanical and dissolution characteristics of a 75 µm PVOH 552 cast film with 15 wt% glycerol plasticizer, conditioned to 4 % moisture
    PropertyTest standardValue
    Tensile strength at break (MD)ASTM D882-1835–42 MPa
    Elongation at break (MD)ASTM D882-18210–260 %
    Cold-water disintegration (10 °C)Internal method based on ISO 21268 agitation<18 s
    Moisture contentISO 15512:20193.5–4.5 %
    Gurley stiffness (machine direction)ISO 2493-112–18 mN

    In paper surface sizing, the incorporation of polyvinyl alcohol 552 into oxidized starch-based formulations at a dosage of 2–5 parts per hundred parts dry starch dramatically reduces the surface energy heterogeneity of recycled linerboard. The low-viscosity grade permits application via a film press or puddle size press at 60–70 °C and 8–12 % total solids without web breaks. A typical treatment weight of 1.5–2.5 g/m² of PVOH solids raises the IGT pick resistance (ISO 3783) by 30–50 % compared to pure starch, while the Cobb60 water absorption (ISO 535:2014) falls to  <28 g/m². Interferences arise when alkyl ketene dimer (AKD) sizing agents exceed 0.15 % on fiber; the residual fatty acid anhydride complexes with PVOH hydroxyls and can generate foam-induced fish eyes. The resulting paperboard meets the requirements of FDA 21 CFR 176.170 for components in contact with aqueous and fatty foods. Processors report that pre-dissolution of grade 552 in cold water requires a high-shear disperser followed by gradual heating to 85 °C for 30 min; undissolved “fisheyes” are minimised by maintaining a pH between 6.0 and 7.5 during cooking.

    Aqueous Emulsion Polymerizations with Controlled Particle Size Distribution

    Polyvinyl alcohol 552 is widely deployed as the primary protective colloid in the semi-batch emulsion polymerization of vinyl acetate homopolymers and vinyl acetate–ethylene (VAE) copolymers. Its intermediate degree of hydrolysis and low molecular weight yield a favorable balance between grafting efficiency and electrolyte stability. A typical reactor charge consists of deionized water, 2.0–3.0 wt% of PVOH 552 based on monomer, and a buffer system (sodium acetate/acetic acid) to hold pH at 4.5–5.0. The continuous addition of monomer over 4 h at 75–80 °C is initiated with a redox couple such as t-butyl hydroperoxide/sodium formaldehyde sulfoxylate, maintaining a reaction rate that avoids a heat accumulation exceeding  <5 °C deviation from setpoint. Particle size is measured by dynamic light scattering (ISO 22412:2017); with PVOH 552 as the sole stabilizer, the z-average diameter typically falls between 800 nm and 1200 nm, while the inclusion of 0.5 % nonylphenol ethoxylate or a secondary alcohol ethoxylate surfactant narrows the polydispersity index to  <0.15. The finished dispersion at 55 ± 2 % solids exhibits a Brookfield viscosity (ISO 2555, spindle 6 at 20 rpm) of 4000–8000 mPa·s. An operational boundary is set by the electrolyte sensitivity of partially hydrolyzed grades: addition of calcium chloride at levels above 0.1 % on dispersion weight induces reversible shear thickening, while multivalent cations such as Al³⁺ at impurities levels in tap water can cause irreversible grit formation. Therefore, deionized water with conductivity  <5 µS/cm is mandatory. The residual monomer content is reduced to  <500 ppm via a finishing initiator chase and vacuum stripping, complying with the voluntary limit set by the German Committee for Health-related Evaluation of Building Products (AgBB) for indoor-use adhesives. The resulting homopolymer or copolymer adhesive meets the requirements of EN 204 (durability class D2) when formulated with a plasticizer and coalescent.

    When ceramic green bodies require water-extractable binders with sub-0.5 % burnout profile

    In ceramic powder processing, such as the manufacture of alumina or zirconia oxygen sensor housings and structural electronic substrates, a temporary organic binder must impart green strength for automated handling and machining, yet decompose cleanly during debinding. PVOH 552, blended at 2–4 wt% on a dry ceramic basis, is chosen for its ash residue below 0.5 % (as determined by ISO 3451-1, 800 °C ignition) which avoids introducing siliceous or metallic contaminants that would alter sintered dielectric properties. The binder is predissolved in warm water (85 °C) to form a 15 % solution and then mixed with spray-dried ceramic granules in a high-intensity Eirich mixer or a Z-blade kneader until a homogeneous dough is achieved; after extrusion or injection molding (at 50–70 °C barrel temperature, 15–25 MPa injection pressure), the green part is dried slowly at 40 °C to avoid skinning. Debinding is performed in a two-stage profile: water leaching at 40–60 °C for 2–4 h removes approximately 70 % of the PVOH, followed by thermal burnout in a nitrogen–air atmosphere to 550 °C at a ramp rate not exceeding 0.5 °C/min to prevent internal pressure cracking. The low carbon residue after oxidation ensures joint compliance with the widely adopted LTCC (low-temperature co-fired ceramics) material specification for organic content, where residual carbon must be  <200 ppm after firing. Limitations appear when zirconia feedstocks containing yttria stabilizer are processed above pH 9; the high pH accelerates PVOH hydrolysis to polyvinyl alcohol with minimal side products, but swelling of the binder layer alters flow rheology in micro-injection molding canals narrower than 0.2 mm. Therefore, a buffering system is employed to maintain the compound pH between 6.5 and 7.5.

    Regulatory compliance framework for PVOH 552 across application sectors
    Sector / SubstanceRegulation / StandardSpecific relevance
    Detergent capsulesEU 648/2004, 21 CFR 177.1670Film formers, dissolution, interfacial tension limits
    Food-contact paper sizing21 CFR 176.170, BfR XXXVIComponents of paper in contact with aqueous and fatty foods
    Emulsion adhesivesEN 204 (D2), AgBBDurability class, indoor air quality VOC limits
    Ceramic bindersISO 3451-1, REACH Annex XVIIAsh content, no restricted boric oxide compounds
    Repulpable embroidery backingOEKO-TEX Standard 100, EN 71-3Safety for textiles in contact with skin, migration of elements

    Remoistenable adhesive systems for stamps and envelopes exploit the cold-water reactivation threshold of a dry 552 film, which is  <10 seconds at 20 °C with a 5 % solids deposition weight. A typical coating formulation blends a 10 % aqueous solution of PVOH 552 with 2–5 % of a sorbitol-based plasticizer and 0.1 % of a defoamer, applied by reverse gravure roll at 3–6 g/m² dry weight onto release paper or directly onto the gummed stock. Blocking resistance in high-humidity conditions is a persistent challenge; coatings stored at  >70 % RH can exhibit surface tack, mitigated by incorporating 0.5–1.0 % of a micronized PE wax dispersion. The final article complies with the safety requirements of EN 71-3 for migration of heavy metals, as the low ash grade 552 contains  <50 ppm heavy metals (as per the manufacturer’s certificate of analysis).

    Cold-water-soluble embroidery backings — process window and dissolution criteria

    Nonwoven stabilizers for machine embroidery that must disappear entirely in a cold rinse after stitching are cast from PVOH 552 at thicknesses between 30 µm and 50 µm. The extrusion-grade resin is dry-blended with 12–18 % of a plasticizer (e.g., glycerin or polyglycerol esters) and optionally 5–10 % of starch or microfibrillated cellulose to control the tear initiation point needed during high-speed multi-head embroidery machines running at 800–1000 SPM. Dissolution time in unagitated water at 15 °C is measured by weight loss; a 30 µm film must lose  ≥95 % mass within 45 seconds. Hard water (calcium ion concentration above 150 ppm) retards dissolution by complexing with hydroxyl groups, requiring the formulator to add 0.2–0.5 % sodium citrate as a chelating agent. The backing is tested according to OEKO-TEX Standard 100, product class I, and must additionally demonstrate compliance with the French AGEC law regarding microplastic formation, given that the dissolved PVOH is eventually released into wastewater; the ready biodegradability profile of grade 552 (OECD 301B > 60 %) satisfies the biodegradability criterion for soluble film formers under the EU Single-Use Plastics Directive guidance document. During die-cutting of the stabilizer sheets, accumulated static charge from the low-moisture film (3–5 %) can exceed 8 kV and lead to dust attraction; inline ionizing bars are set to neutralise surface potential to  <0.5 kV.

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    Certification & Compliance
    More Introduction
    PVOH 552 is a fully hydrolyzed polyvinyl alcohol grade supplied as a free-flowing granular or fine powder. The degree of hydrolysis routinely exceeds 98.0 mol%, placing the polymer in the fully hydrolyzed classification according to JIS K 6726 and ASTM D 3554 typology. A 4 % aqueous solution prepared under reflux and cooled to 20 °C yields a Brookfield viscosity of 50–60 mPa·s when tested per ISO 976. Residual acetyl groups are below 0.5 mol%, and the ash content (as Na₂O) is typically held to ≤ 0.5 %. Volatile matter at supply is ≤ 5.0 %, with a bulk density of 0.4–0.6 g cm⁻³. The number-average molecular weight M̄ₙ approximates 85 000–100 000 g mol⁻¹ as estimated by size-exclusion chromatography in aqueous eluent calibrated against narrow poly(ethylene oxide) standards. Typical physical and chemical specification values for PVOH 552 as supplied.
    PropertyValueTest Method
    Degree of hydrolysis98.0–99.0 mol%ISO 15023-1
    Viscosity, 4 % solution at 20 °C50–60 mPa·sISO 976
    Ash (as Na₂O)≤ 0.5 %ISO 3451-1
    Volatile matter≤ 5.0 %ISO 3251
    pH of 4 % solution5.5–7.5ISO 976
    Bulk density0.4–0.6 g cm⁻³ISO 60

    What Operational Boundaries Govern High-Solids Adhesive Formulations?

    When PVOH 552 is cooked into aqueous adhesives at solids loads above 25 %, the solution viscosity at 60 °C can exceed 15 000 mPa·s. Such pastes are prone to skinning in open vessels; closed-tank cookers with swept-surface agitation are mandatory to maintain homogeneity. The gel-point temperature of a 20 % solution measured by dynamic oscillatory rheometry ( 1 Hz, 2 °C min⁻¹ ramp) occurs at 36–39 °C, which confines adhesive transfer temperatures to ≥ 42 °C. Crosslinking with glyoxal or dialdehyde starches—common in bottle-labelling adhesives—shifts the onset of turbidity to higher pH values; formulations buffered to pH 4.5–5.0 with phosphoric acid exhibit pot lives of 8–12 h at 25 °C before viscosity doubling. Beyond 12 h, microgel formation leads to insoluble residue on roll-coater transfer plates, a failure mode repeatedly observed on 500 mm-wide rotary label lines running at 30 000 bottles h⁻¹. Interaction with borax must be avoided; even 0.02 % borax based on PVOH dry weight can elevate the storage modulus at 25 °C by an order of magnitude within minutes due to diol-borate complexation, rendering the adhesive un-pumpable. In corrugated board lamination, PVOH 552 is co-formulated with 10–15 % plasticizer (glycerol or sorbitol) to suppress film embrittlement at low relative humidity. The equilibrium moisture content of the dried PVOH film at 50 % RH is 5.2 %, whereas at 80 % RH it rises to 12.8 %, causing plasticization and peel-strength fluctuation. Accelerated aging at 40 °C, 75 % RH for 7 days ( ASTM D 3611 ) typically reduces T-peel strength on kraft liner by 18–22 % unless a crosslinker is incorporated. Industrial experience on corrugator belts shows that adhesive pickup weight must stay below 4.5 g m⁻² (dry) to prevent washboarding; a 0.25 mm slotted-die coater operating at 120 m min⁻¹ achieves this with a rheologically stable solution at 28 % solids. Surface sizing of alkaline fine paper represents a lower-complexity application. A cooked solution of PVOH 552 at 8–12 % solids is applied via a film-size press at 45–55 °C. Pickup of 0.8–1.2 g m⁻² dry polymer raises the surface strength as measured by IGT pick velocity (ISO 3783) by 0.7–1.0 m s⁻¹ relative to unsized base stock. Because the polymer lacks the particulate nature of a synthetic surface-sizing agent, pore penetration into the sheet is greater, requiring a size-press nip load adjustment to 35–40 N mm⁻¹ to limit internal-sizing interference with AKD or ASA retention.

    When PVOH 552 Replaces Partially Hydrolyzed Grades in Water-Soluble Packaging Films

    Film producers substituting a partially hydrolyzed grade (hydrolysis 87–89 mol%) with PVOH 552 encounter a pronounced shift in solubility kinetics. Dissolution time of a 50 µm cast film in water at 10 °C increases from 45 s to 210 s; at 40 °C the discrepancy narrows to 12 s versus 18 s. The film requires a minimum water temperature of 35 °C for complete disintegration in under 30 s, limiting its use in cold-water laundry sachets. Tensile properties, however, benefit from the higher crystallinity imparted by near-complete hydrolysis: Young’s modulus at 50 % RH rises from 2.8 GPa to 3.6 GPa, and elongation at break drops from 200 % to 140 %. Blown film extrusion on a single-screw extruder (L/D = 30, compression ratio 3.5:1) with a die gap of 0.8 mm requires a barrel temperature profile of 185 °C (feed) to 210 °C (die), and melt pressure excursions beyond 180 bar demand the addition of 15 % glycerol to bring the melt flow index under ISO 1133-1:2022 ( 190 °C, 2.16 kg ) into the range of 4–8 g (10 min)⁻¹. Pre-drying of the compound to ≤ 0.3 % moisture is essential at ambient relative humidity above 60 %; failure to pre-dry yields bubble defects and hydrolysis-induced chain scission measurable as a 15–25 % drop in weight-average molecular weight after a single extrusion pass. A direct comparison with a medium-viscosity partially hydrolyzed grade (designated here as PVOH P) and a lower-viscosity fully hydrolyzed grade (PVOH F) is captured in the following table for blown film processed with 15 % glycerol on identical equipment. Comparative blown-film properties of PVOH 552 and two reference grades ( 50 µm thickness, conditioned at 50 % RH ).
    PropertyPVOH 552PVOH P (87 mol% hydro, 45 mPa·s)PVOH F (98 mol% hydro, 25 mPa·s)Test Method
    Tensile strength (MD)78 MPa52 MPaISO 527-3
    Elongation at break (MD)140 %220 %90 %ISO 527-3
    Water contact angle (static,  s)61°54°63°ASTM D 5946
    Disintegration time, 20 °C water340 s55 s240 sInternal method (stirred beaker)
    Oxygen transmission rate (OTR) at 23 °C, 0 % RH0.5 cm³ m⁻² day⁻¹·atm⁻¹1.2 cm³ m⁻² day⁻¹·atm⁻¹0.4 cm³ m⁻² day⁻¹·atm⁻¹ASTM D 3985
    Regulatory conformity of PVOH 552 aligns with indirect food-contact applications under FDA 21 CFR 176.170 (components of paper and paperboard in contact with aqueous and fatty foods) when the dried film is not intended for direct ingestion. The grade is registered under REACH (EC) No 1907/2006 and contains no substance of very high concern (SVHC) listed on the current Candidate List. Heavy-metal content falls below the limits prescribed by EN 71-3 (migration of certain elements) and the material satisfies the substance restrictions of EU Directive 2011/65/EU (RoHS). Published toxicological profiles show an acute oral LD₅₀ > 5 000 mg kg⁻¹ (rat), confirming classification as non-hazardous. Combustion releases primarily carbon dioxide and water; thermal decomposition in air begins at approximately 230 °C, as determined by thermogravimetric analysis (10 °C min⁻¹, nitrogen atmosphere). Any off-gas containing acetic acid at elevated processing temperatures must be vented, but under standard thermoplastic processing windows (≤ 210 °C), release remains below the odor threshold that would breach industrial hygiene monitoring per ISO 16000‑6.

    Controlling Gelation During Hot-Melt Adhesive Compounding

    When PVOH 552 is plasticized with glycerol and extruded into reactive hot-melt rods, gel particle generation becomes the dominant quality defect. In a co-rotating twin-screw extruder ( L/D = 40, screw diameter 27 mm ) with a temperature profile of 110 °C (zone 1) to 195 °C (die), the low free volume of the fully hydrolyzed polymer limits plasticizer diffusion. A split feeding of glycerol— 60 % at the feed throat and 40 % injected at barrel zone 6 via a gear pump—reduces the residual crystalline fraction detected by modulated DSC from 18 % to 4 %. Screw configurations employing kneading blocks with 90° staggering over two elements followed by a reverse-flight element generate localized specific mechanical energy inputs of 0.25–0.30 kWh kg⁻¹, which suffices to disrupt crystallite lamellae without triggering chain degradation. Any hold-up in the die adapter at temperature above 205 °C for more than 3 min promotes cross-esterification with residual acetate groups, forming micro-gels visible as fish-eyes in 0.5 mm cast films. This failure mode has been documented on commercial compounding lines where downstream pelletizing-water temperature fluctuated above 30 °C, causing pellet agglomeration and requiring offline screening through a 500 µm sieve. Optimal pellet quality, defined as a yield of particles between 250 µm and 800 µm exceeding 92 %, is achieved with an underwater pelletizer inlet water temperature held at 12–15 °C and a die-plate temperature of 195 °C.