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Anhui Liwei Chemical Co., Limited.

CCP PVA BP-20H

    • Product Name: CCP PVA BP-20H
    • 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 457024
    Product CCP PVA BP-20H
    Cas Number 9002-89-5
    Appearance White granular powder
    Viscosity 4 Aqueous Solution At 20c 20.0-24.0 mPa·s
    Degree Of Hydrolysis 99.0-100.0 mol%
    Ph 4 Aqueous Solution 5.0-7.0
    Ash Content ≤0.5%
    Volatile Content ≤5.0%
    Solubility Soluble in hot water; insoluble in common organic solvents
    Bulk Density 0.4-0.6 g/cm³
    Melting Point Approximately 230°C
    Thermal Stability Stable below 200°C; decomposition above 200°C

    As an accredited CCP PVA BP-20H factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing CCP PVA BP-20H is supplied in 25 kg multi-ply paper bags with polyethylene liners, sealed securely for safe handling and transport.
    Container Loading (20′ FCL) CCP PVA BP-20H is loaded as a 20′ FCL, with bags palletized and secured to prevent shifting during transit.
    Shipping CCP PVA BP-20H is a polyvinyl alcohol resin powder shipped in sealed multi-layer bags on pallets. Use dry, ventilated containers; protect from moisture, rain, and direct sunlight. No IMO hazardous classification under normal conditions, but avoid airborne dust. Keep away from ignition sources and store below 25°C.
    Storage Store CCP PVA BP-20H in a cool, dry, well-ventilated area away from heat, open flames, and direct sunlight. Keep the container tightly sealed to prevent moisture absorption and contamination. Avoid dust accumulation and incompatible materials. Maintain stable temperatures, ideally below 30°C, and follow local regulations for polymer storage.
    Shelf Life Shelf life: 24 months from manufacture if stored sealed, cool, dry, and away from direct sunlight.
    Application of CCP PVA BP-20H
    Emulsion copolymerization of vinyl acetate and ethylene inside a continuously stirred tank reactor (CSTR) at 30–55 bar backpressure and 80–90°C jacket temperature requires a precisely engineered protective colloid system to prevent runaway coalescence during nucleation and stripping. CCP PVA BP-20H, a partially hydrolyzed grade with a nominal degree of hydrolysis spanning 87–89 mol% and a 4% aqueous solution viscosity of 20–25 mPa·s (DIN 53015, 20°C), is dissolved in demineralized water at 10–12 wt% under low-shear agitation at 88–92°C for 60–90 min until the solution clears; after cooling to 40–50°C it is passed through a 200-mesh inline filter before dosing into the monomer pre-emulsion tank. The protective colloid charge, expressed against total monomer mass, typically falls between 3.5% and 6.0% for medium‑viscosity woodworking adhesives targeting a final emulsion viscosity of 8 000–12 000 mPa·s (Brookfield RVT, spindle 4, 20 rpm) and between 2.0% and 3.0% for low‑viscosity architectural coating binders where sag resistance is built via thickener post-addition. Ethylene headspace pressure, nonionic surfactant type (alkylphenol ethoxylates or alcohol ethoxylates fed at 0.3–1.0% on monomer), and redox initiator profile (ammonium persulfate/sodium metabisulfite or hydrogen peroxide/isoascorbic acid) are co‑adjusted to shift the volume‑median particle diameter into the 0.8–1.5 µm window as measured by laser diffraction (ISO 13320:2020). During the hold‑and‑strip phase at 65–70°C under vacuum, residual vinyl acetate removal subjects the nascent particles to shear and thermal stress; process records from 12‑m³ stainless‑steel reactors indicate that a pH drop below 4.5—caused by acetate ester hydrolysis—triggers progressive molecular weight reduction of the grafted PVA shell, causing coagulum to spike above 500 ppm on wet weight within 30 min unless inline sodium bicarbonate buffer is metered to maintain pH 4.8–5.2. Finished emulsions are concentrated to 55–57% solids, post‑blended with dibutyl phthalate or dibenzoate plasticizer, defoamer, and isothiazolinone biocide, and drummed. Release‑against‑specification testing covers dry residue (ISO 3251), 40‑µm sieve residue (ISO 4576), and freeze‑thaw stability over five cycles (ASTM D7149‑05). Downstream products include D3 and D4 wood adhesives (EN 204/205), water‑resistant packaging adhesives, and binder for spunlace nonwoven wipes.

    How Does Grafting Efficiency Mediate Coagulum Levels in Acrylic Dispersions?

    All‑acrylic and styrene‑acrylic emulsion polymerization recipes that substitute a fraction of low‑molecular‑weight anionic emulsifier with a partially hydrolyzed polyvinyl alcohol such as BP‑20H can exhibit a bimodal particle size distribution and shear‑thinning rheology beneficial for architectural coatings, provided the grafting reaction with acrylate monomers is controlled. In a typical semi‑batch configuration, a heel of 5–8% of the total pre‑emulsion is initially polymerized at 82–84°C in the presence of the full BP‑20H charge—representing 0.5–2.0 wt% on total monomer—dissolved at 8% solids in the aqueous phase, together with a carboxylate‑type surfactant (e.g., sodium lauryl sulfate or disodium ethoxylated alcohol sulfosuccinate) at 0.2–0.5% on monomer. Continuous monomer feeding over 3.5–4.5 h with an ammonium persulfate initiator stream maintains an instantaneous conversion above 85%, starving the reactor just enough to limit accumulation of free vinyl acetate or acrylate monomers that could randomize the grafting distribution. Industrial‑scale pilot runs on 2‑m³ glass‑lined reactors have demonstrated that when the mass ratio of BP‑20H to primary anionic surfactant exceeds 4:1, the thickness of the steric layer around particles increases disproportionately, shifting low‑shear viscosity beyond 15 000 mPa·s (Brookfield, spindle 5, 10 rpm) and elevating the risk of filter blockage on 80‑µm bag filters during transfer. The grafted BP‑20H shell is vulnerable to hydrolysis at pH below 3.8, a condition that can arise if methacrylic acid comonomers are not adequately neutralized; therefore a post‑polymerization neutralization step with ammonia or sodium hydroxide to pH 7.0–8.5 is mandatory for storage stability. Final dispersions are formulated into interior wall paints, pressure‑sensitive adhesive tapes, and textile binders, with compliance assessments referencing solid content (DIN EN ISO 3251), Brookfield viscosity (ASTM D2196), and mechanical stability under high‑speed mixing (ASTM D4946).

    Granule Porosity Control in S‑PVC Using Secondary Dispersant Blends

    Suspension polymerization of vinyl chloride monomer (VCM) at 53–58°C and autogenous pressure (0.7–1.0 MPa) in a 50‑m³ stainless‑steel autoclave depends on a dual‑PVA dispersant system to set granule morphology, plasticizer uptake, and bulk density. CCP PVA BP‑20H, with its hydrophilic‑lipophilic balance shifted by the residual acetate blocks, serves as the secondary dispersant dosed at 50–150 ppm on VCM weight alongside a primary dispersant of higher hydrolysis degree (95–99 mol%) and lower viscosity. The two PVAs are pre‑dissolved separately in demineralized water at 0.5–1.0% concentration and injected into the reactor after VCM charging but prior to thermal initiation with di‑(2‑ethylhexyl) peroxydicarbonate or peroxypivalate. BP‑20H reduces the interfacial tension at the VCM‑water boundary more dynamically than higher‑hydrolysis grades during the early droplet break‑up phase, leading to a broader primary‑particle size distribution and a higher internal porosity once the granules harden. Post‑polymerization, the PVC slurry is stripped of residual VCM, dewatered on a centrifuge, and dried in a fluidized‑bed dryer to a final moisture content below 0.3%. Quality metrics include cold plasticizer absorption (ASTM D3367), typically targeted at 20–35 g DOP per 100 g resin for flexible cable compounds, and apparent bulk density (ISO 60). Off‑spec batches with excessive fines < 63 µm often trace back to inadequate secondary dispersant dissolution or to pH excursions above 8.5 during stripping that partially hydrolyze acetate groups, altering the dispersant’s surface activity.On modern high‑speed air‑jet looms weaving 100% cotton or polyester‑cotton blend staple yarns at insertion rates above 1 200 m/min, the warp sheet is subjected to intense abrasion and repeated cyclic tension that a single‑component starch size cannot withstand. BP‑20H is combined with acid‑modified corn starch and a low‑Tg acrylic copolymer size in a ratio of 40–50 parts PVA to 45–55 parts starch to 5–10 parts acrylic, all based on dry weight. Size cooking is performed in a high‑shear jet cooker at 90–95°C for 45–60 min under atmospheric pressure or in an enclosed pressure cooker at 0.2 MPa to shorten the dissolution time; the final size liquor is held at 85°C in the head box and circulated through 100‑µm filters. Application on a dual‑size‑box slasher with squeeze‑roll pressure set to 10–15 kN achieves a size add‑on of 10–15% of yarn weight for ring‑spun yarns of Ne 20–40. Because BP‑20H retains moisture‑sensitive acetate groups, the relative humidity in the weaving shed must be maintained between 55% and 65% at 28±2°C; excursions above 70% RH cause surface tack and lapping on guide rolls, generating loom stops and mispicks. Sized‑yarn tensile strength and elongation are evaluated per ASTM D2256, with a target strength increase of 15–25% over unsized yarn. Desizing is accomplished with a 0.5% amylase and hot‑water wash at 60°C, leaving behind no film residue that would interfere with subsequent dyeing. End textiles include denim, shirting, and home‑textile greige fabric.

    Cobb Value Reduction and IGT Surface Strength in Recycled Linerboard

    In containerboard mills producing testliner and fluting from 100% recovered fiber, the weak surface‑ply strength and high water absorption of the base sheet are mitigated by size‑press application of a cooked blend of oxidized starch and BP‑20H. The PVA is first dissolved at 12% solids in a dedicated make‑down vessel at 90°C and then metered in‑line to the starch storage tank to achieve a PVA‑to‑starch dry‑weight ratio between 1:4 and 1:10, depending on the target short‑span compression strength of the finished box. The size‑press liquor, maintained at 60–65°C and 8–12% total solids, is applied via a film‑transfer metering rod system (rod pressure 100–250 kN/m) onto a paper web traveling at 800–1 200 m/min; immediate after‑drying in a cylinder section at 120–130°C surface temperature immobilizes the PVA film and prevents penetration into the sheet core. Post‑application Cobb60 water absorption (ISO 535) is routinely reduced by 25–40% compared to straight starch, and IGT surface strength (ISO 3783) increases by 0.3–0.6 m/s, enabling crisp flexographic printing without fiber lifting. Mill‑scale data confirm that the optimal PVA fraction shifts toward the lower end (1:8) during summer months when higher machine‑room humidity retards film formation; over‑dosing beyond 1:3 leads to blistering during corrugator preheating due to the low moisture‑vapor transmission rate of the continuous PVA film. Linerboards produced under this regime comply with edge‑crush test (ISO 3037) requirements for heavy‑duty corrugated boxes.

    Binder Plasticization and Non‑Distorting Burnout for Alumina Substrates

    Doctor‑blade tape casting of high‑purity alumina powder for low‑temperature co‑fired ceramic (LTCC) substrates and multilayer ceramic capacitors employs a water‑based binder system in which BP‑20H provides green strength and flexibility for handling and punching operations. The ceramic slurry is formulated by dispersing 100 parts by weight of sub‑micron α‑alumina in a premix of 30–35 parts deionized water containing 0.5–1.0 part ammonium polyacrylate dispersant; after 24 h of ball‑milling to reach a median particle size below 0.8 µm, BP‑20H pre‑dissolved at 15% concentration is added to yield 2–5 parts dry PVA per hundred parts ceramic, together with 1–2 parts glycerol or polyethylene glycol 400 as plasticizer and 0.2 part of a silicone‑based defoamer. The resulting slip, exhibiting a viscosity of 1 500–3 000 mPa·s at 50 s⁻¹ (ISO 3219), is de‑aired under 50 mbar vacuum for 30 min, cast onto a silicon‑coated PET carrier film with a gap of 200–800 µm, and dried through a multi‑zone tunnel at 25–70°C over 45–90 min. Green tapes must combine a tensile strength above 2 MPa (ASTM D882) with sufficient elongation to survive laser cutting without micro‑cracking. Thermal debinding follows a precise schedule: ramp at 0.3°C/min to 250°C under flowing nitrogen, dwell 2 h, then ramp at 0.5°C/min to 450°C in air and dwell 4 h, ensuring complete oxidation of the PVA backbone without exothermic overshoot that would warp the substrate. Residue ash content after burnout must remain below 0.1%, a specification that demands low‑catalyst BP‑20H batches with minimal sodium and iron carryover from the polymerization process. Clean‑room processing (ISO 14644‑1 Class 7) is mandatory throughout tape fabrication to avoid particle defects in the sintered dielectric layers.Envelope and pressure‑sensitive label converting lines operating at 200–300 m/min require a remoistenable adhesive coating that dries to a hard, non‑blocking film under forced‑air impingement yet develops immediate tack upon momentary contact with a water wipe. BP‑20H is dissolved at 15–20 wt% in deionized water heated to 90°C, after which 2–4 wt% (based on dry PVA) of polyethylene glycol 600 or sorbitol is incorporated to suppress film brittleness at low equilibrium moisture content. The coating is applied via a grooved direct‑gravure cylinder (cell volume 20–30 cm³/m²) to a 60–70 g/m² bleached kraft or wove paper substrate, depositing a dry coat weight of 3–5 g/m². Heated drying canisters at 120–140°C surface temperature evaporate the water within 1.5–2.5 s of dwell time, after which the web is immediately re‑moistened to 4–6% moisture through a steam curtain to prevent curl. Rolled stock is conditioned at 25°C and 50% RH for 48 h before slitting. Blocking resistance is evaluated by stacking die‑cut blanks under a 5‑kPa load at 40°C and 90% RH for 24 h; any fiber tear on separation constitutes a failure. Rewetting tack time, measured as the interval between water application and maximum peel adhesion on HDPE test panels, is maintained below 5 s—a window deemed acceptable for high‑speed envelope‑inserting machines. Commercial end products include self‑seal envelopes, postage stamps, and wallpaper border adhesives, all of which must satisfy the applicable indirect food‑contact provisions of FDA 21 CFR 175.105 and BfR Recommendation XIV for adhesives.
    Table 1. Comparative Operational Parameters for CCP PVA BP-20H Across Industrial Sectors
    Application PVA Usage Level (typical) Copolymer / Co‑binder Critical Process Window Key Property Standards
    VAE protective colloid 2.0–6.0% on total monomer Nonionic surfactant 0.3–1.0% pH 4.8–5.2; stripping temp 65–70°C ISO 3251, ISO 4576, ASTM D7149‑05
    Acrylic/styrene‑acrylic emulsion stabilizer 0.5–2.0% on monomer Anionic emulsifier 0.2–0.5% Feed conversion > 85%; post‑neutralization to pH 7.0–8.5 DIN EN ISO 3251, ASTM D2196, ASTM D4946
    S‑PVC secondary dispersant 50–150 ppm on VCM Primary high‑hydrolysis PVA 50–200 ppm Temperature 53–58°C; pH during stripping < 8.5 ASTM D3367, ISO 60
    Warp size for air‑jet looms 40–50% of dry size mix Acid‑modified starch 45–55%, acrylic copolymer 5–10% Size add‑on 10–15%; shed RH 55–65% ASTM D2256
    Linerboard surface sizing PVA‑to‑starch 1:4 to 1:10 dry ratio Oxidized starch Size‑press solids 8–12%; drying temp 120–130°C ISO 535, ISO 3783, ISO 3037
    Alumina tape‑casting binder 2–5 parts per 100 parts ceramic Glycerol or PEG‑400 plasticizer 1–2 parts Debinding ramp 0.3°C/min to 250°C; ash < 0.1% ISO 3219, ASTM D882, ISO 14644‑1
    Remoistenable adhesive coating 15–20 wt% solution PEG‑600 or sorbitol 2–4% on dry PVA Coat weight 3–5 g/m²; drying 120–140°C, 1.5–2.5 s FDA 21 CFR 175.105, BfR XIV
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    Certification & Compliance
    More Introduction

    Viscosity Anomalies and Molecular Weight Distribution in BP-20H During High-Shear Emulsion Polymerization

    CCP PVA BP-20H is a partially hydrolyzed polyvinyl alcohol supplied as a free-flowing granular powder with a particle size passing **95% through 20 mesh (850 µm)**. The product exhibits a nominal degree of hydrolysis of **87–89 mol%** and a 4% aqueous solution viscosity at **20°C** of **20.0–24.0 mPa·s**, determined according to ISO 15023-2:2019 using a Brookfield LV viscometer at 60 rpm. Residual sodium acetate content is controlled to **≤1.0 wt%**, ash content to **≤0.5%** as Na₂O, and volatile matter to **≤5.0%** after 3 h at **105°C** in a forced-air oven. The molecular weight (Mw) is in the range of **110,000–130,000 g/mol** by GPC relative to polyethylene glycol standards, giving a polydispersity index typically between **2.1 and 2.5**. These parameters position BP-20H as a medium-viscosity, medium-hydrolysis protective colloid for vinyl acetate (VAc) homo- and copolymer dispersions, where its balance of grafting activity and aqueous-phase viscosity is exploited to achieve coarse-particle-free lattices with viscosity profiles amenable to downstream coating and adhesive processing. Batch-to-batch grafting consistency in VAc emulsion polymerization conducted in a 10 m³ glass-lined reactor with a pitched-blade turbine operating at tip speeds of **3.5–4.5 m/s** is sensitive to the molecular weight distribution of the PVOH fraction remaining ungrafted. When BP-20H is dissolved to **10 wt%** in demineralized water at **85°C** under recirculation until an optical clarity of **≤5 NTU** is achieved, and the solution is charged at **4.5 parts per hundred monomer (phm)** with potassium persulfate initiation at **0.25 phm**, the evolution of MFFT of the resulting dispersion follows a narrow window: a deviation in the hydrolysis degree of the raw PVOH by **±0.5 mol%** shifts the onset of particle nucleation by **12–18 seconds**, which at the **82°C** reaction temperature can lead to a jump in the coagulum fraction from **0.02%** to **>0.5%** on 100 µm screen filtration. The phenomenon is exacerbated when the initiator addition rate exceeds **0.12 phm/min** during the first **15 minutes** of monomer feed. In pilot trials with a continuous monomer addition profile over **240 minutes**, the grafting efficiency of BP-20H measured as the insolubles in acetone extraction remained between **38 and 42%**, compared with **25–30%** for a lower-viscosity grade of identical hydrolysis. This difference is attributed to the higher segmental mobility of shorter-chain PVOH molecules in the aqueous phase, which accelerates radical transfer to the backbone at a rate that outpaces termination at the particle-water interface. Operational boundaries observed on production-scale twin-screw compounding of the subsequent dispersion with plasticizer (dibutyl phthalate or triacetin): when the latex obtained with BP-20H is subjected to shear rates above **1,200 s⁻¹** in the compounding extruder (L/D **48:1**, screw diameter **92 mm**, variable kneading block configuration), the molecular weight of the PVOH protective layer can degrade through mechanochemical scission if the melt temperature exceeds **165°C** for a residence time longer than **75 seconds**. This results in a loss of wet-bond strength in the final adhesive formulation by **≥30%** within 24 h of application, as measured by EN 204 D3. Pre-drying of the PVOH powder to **<1.0%** moisture is mandatory when relative humidity at the bagging station exceeds **60%**, otherwise clumping at the hopper throat causes feed inconsistency and a **3–5%** variance in the PVOH content of the dispersion.

    What differentiates BP-20H from lower-ash, fully hydrolyzed grades in paper surface sizing?

    The performance of BP-20H in size-press formulations for fine paper (grammage **60–120 g/m²**) is governed by its film-forming temperature and the interaction of residual acetate groups with cationic starches. When a solution of BP-20H at **8.0%** concentration is combined with a quaternary ammonium starch at a polymer:starch ratio of **1:4** on a puddle-type size press running at **800 m/min**, the surface strength improvement—quantified by the IGT pick test according to ISO 3783:2006—is **2.0–2.3 m/s** versus **1.1–1.4 m/s** for a fully hydrolyzed PVOH of similar viscosity (hydrolysis ≥98 mol%). The mechanism is twofold: the lower degree of crystallinity in the partially hydrolyzed PVOH film reduces the minimum film-forming temperature to **<5°C**, allowing coalescence without plasticizer even on a cold paper web exiting the after-dryer section at **45°C**. Second, the residual acetate moieties disrupt inter-chain hydrogen bonding, decreasing the elastic modulus of the dried film from **3.2 GPa** (fully hydrolyzed) to **1.7 GPa**, thereby matching the compliance of the fiber network and reducing micro-crack formation at the fold line during subsequent converting. A critical incompatibility arises when borax or boric acid is used as a gelling agent in the starch cook: the -OH sequences in the low-hydrolysis BP-20H do not present sufficient stereoregularity for complexation, causing a sharp drop in solution viscosity within **20 minutes** of mixing at **60°C**, from **350 cP** to **<50 cP**. Therefore, only non-borated starch systems are recommended. Published data for this specific configuration with high-speed film coaters (blade-metering size press operating above **1,200 m/min**) are limited; an observed limitation is the tendency of the BP-20H film to develop blocking at roll temperatures above **40°C** unless a hydrophobic surface-sizing agent (e.g., alkyl ketene dimer at **0.15%** on dry fiber) is co-applied. Process window for continuous emulsion polymerization using BP-20H as the sole protective colloid:
    ParameterSet PointLower BoundUpper BoundConsequence of Deviation
    PVOH solution concentration10 wt%9.5%10.5%Viscosity drift in reactor >±8%
    Reactor temperature82°C80°C84°CParticle size bimodality >500 nm
    Initiator feed profile (first 15 min)0.10 phm/min0.080.12Coagulum >0.5%
    Monomer addition time240 min220260Residual VAc >0.5%
    Post-reaction hold at 85°C60 min4575Unreacted monomer >1,500 ppm

    Adhesive Formulation: When Plasticized BP-20H Replaces Polyurethane Dispersion Blends

    In a laminating adhesive for wood veneer bonding onto MDF substrate (press cycle **2.5 min** at **90°C** and **0.7 MPa**), replacement of a co-binder system (50:50 PVAc dispersion and an aliphatic polyurethane dispersion) with a single-component adhesive based on a BP-20H-stabilized VAc/VeoVa10 copolymer dispersion reveals a shift in failure mode. The PUD component was originally incorporated to improve heat resistance and reduce creep under static load. With BP-20H as the sole protective colloid at **5 phm** in the copolymer, the heat resistance temperature measured by EN 14257 (WATT 91) remained at **68°C**, compared to **74°C** for the PUD blend. The shortfall in creep performance at **50°C** and a static load of **0.5 kg/cm²** over **24 h** was less than **0.3 mm**, within the Class D3 requirement, but below the PUD blend’s **0.1 mm** displacement. The cost reduction from eliminating the PUD component is offset by a mandatory post-application crosslinking step: an isocyanate hardener (MDI prepolymer at **3%** on wet weight) restores WATT 91 to **81°C**, matching the PUD blend. A separate deep-dive zone exists in the reactivity of BP-20H with formaldehyde-based crosslinkers. The residual hydroxyl content of **87–89%** hydrolysis grade offers approximately **17.5 mmol OH/g**. Titration of these groups with glyoxal at a mole ratio of **OH:CHO of 1:0.25** in an aqueous solution below pH **4.5** yields a half-gel time at **60°C** of **22 minutes**. Above pH **5.2**, the gel time extends beyond **120 minutes**, and the resulting film exhibits water sensitivity due to incomplete acetal formation. This pH cliff forces the adhesive compounder to either operate in a narrow acidic window or switch to a fully hydrolyzed grade that gels more reliably in neutral conditions. Comparison of BP-20H with adjacent grades in the BP series:
    PropertyBP-17HBP-20HBF-24HTest Method
    Hydrolysis, mol%86.5–89.087.0–89.097.5–99.0ISO 15023-3:2019
    Viscosity (4% aq.), mPa·s17.0–20.020.0–24.023.0–27.0ISO 15023-2:2019
    Ash (as Na₂O), %≤0.5≤0.5≤0.8ISO 15023-1:2019
    Volatile matter, %≤5.0≤5.0≤5.0ISO 15023-1:2019
    Sodium acetate, wt%≤1.0≤1.0≤1.2Titrimetric
    Grafting efficiency in VAc polym.25–30%38–42%10–15%Acetone insolubles

    Regulatory Status Relevant to Food-Contact Adhesive and Paper Applications

    The product falls within the inventory of existing chemical substances in all major territories (AICS, DSL, IECSC, TSCA, EU-list). In food-contact contexts, the partially hydrolyzed PVOH of this viscosity range is the subject of several favorable evaluations: • FDA 21 CFR §175.105 – Adhesives. The substance may be used as a component of adhesives used in food packaging, provided that the adhesive is separated from food by a functional barrier or is used in a quantity that will not exceed good manufacturing practice limits. • FDA 21 CFR §176.170 – Components of paper and paperboard in contact with aqueous and fatty foods. BP-20H meets the specifications for polyvinyl alcohol as a surface-sizing agent and coating binder under this section when used in amount not exceeding that required to produce the intended technical effect. • BfR Recommendation XXXVI – Paper and board for food contact. Satisfies the requirement for polyvinyl alcohol when the migration of residual monomers and impurities does not exceed the specific migration limits. • Swiss Ordinance on Materials and Articles (SR 817.023.21). Listed under Annex 2 for use in paper and board. • EU Regulation (EC) No. 1935/2004 and Commission Regulation (EU) No. 10/2011: PVOH is not within the positive list for plastic materials but is admitted as a non-plastic component under certain national rules; the resin itself is subject to overall migration limits under Regulation 10/2011 when used in multi-material multi-layer structures. No specific migration limit has been set for PVA, but the residual VAc monomer content is restricted to <2 mg/kg in the final article. The presence of **≤1.0%** sodium acetate necessitates a calculation of ionic contribution when formulating for paper grades intended for direct contact with fatty foods exhibiting a K-value above **40**, to avoid exceeding the overall migration limit of **10 mg/dm²**. In a warp sizing operation, the sizing bath concentration of BP-20H typically ranges from **5% to 8%** (dry on starch weight) on a single size box for cotton/polyester ring-spun yarns. The viscosity stability of the cooking liquor at **85°C** over **6 hours** at a high-shear circulation pump (centrifugal, **2,900 rpm**) shows a degradation of less than **2%** from the initial value of **180 mPa·s**, measured at a shear rate of **50 s⁻¹**. This stability is superior to fully hydrolyzed grades that undergo microcrystalline aggregation upon cooling to **60°C**, leading to skin formation on the size box rollers. The desizability of BP-20H film from textile substrate using α-amylase desizing at **60°C** for **45 minutes** reaches **>99%** removal, verified by spectrophotometric potassium bichromate method.