In vinyl acetate-ethylene emulsion polymerization, the reactor is charged with demineralized water, SELVOL™ Polyvinyl Alcohol 523S, sodium bicarbonate buffer, and a redox initiator solution before vinyl acetate is introduced. The protective colloid is dissolved separately at
88–92 °C in a stirred vessel and cooled to
60–65 °C before transfer to a
20–50 m³ jacketed stainless reactor. A typical semibatch formula contains
2–6 phr Selvol 523S based on total monomer,
0.1–0.3 phr sodium persulfate or ammonium persulfate,
0.05–0.15 phr sodium metabisulfite as redox partner, and a final solids target of
50–55%. The agitator is a two-blade retreat-curve impeller operated at
80–120 rpm; higher tip speeds create shear-induced destabilization when the emulsion reaches
45–55% solids. Monomer is fed over
3–5 h at
75–85 °C under ethylene pressure of
20–60 bar depending on the desired vinyl acetate-ethylene copolymer composition.Control of the grafting reaction between vinyl acetate monomer and the
87.0–89.0 mol% hydroxyl functionality of the PVOH is the primary determinant of dispersion stability. The viscosity of the finished emulsion rises nonlinearly when the Selvol 523S loading moves from
2 phr to
6 phr because the grafted layer changes from a sparse steric barrier to a thicker hydrated corona. Colloidal stability is monitored by measuring viscosity at
25 °C with a Brookfield RVT spindle 3 at
20 rpm according to
ISO 2555 or
ASTM D1084; finished adhesive and binder systems typically fall between
1,500 mPa·s and
12,000 mPa·s. The surface tension of a stable batch remains between
42 mN/m and
52 mN/m, which indicates that the PVOH protective colloid is not fully displaced by added surfactant. Excessive initiator concentration or pH drift below
3.5 hydrolyzes residual acetate groups and reduces the steric barrier; the batch then shows visible gel specks on a
150 µm wire-mesh screen. The reactor pH is therefore maintained between
4.0 and
6.0 with sodium bicarbonate or dilute sodium hydroxide.Finished products from this dispersion route include D3 wood adhesives, nonwoven saturation binders, and low-odor paperboard laminating adhesives. Wood adhesive films cast from VAE stabilized with PVOH 523S must meet
EN 204 classification when tested for tensile shear according to
EN 205. Nonwoven binder formulations may contain
0.5–2.0% Selvol 523S solids on dry fiber and are applied by impregnation or spray bonding; the bond strength is conditioned at
23 °C and
50% relative humidity for
24 h before testing. For food-contact adhesive applications, the cured adhesive film is covered by
FDA 21 CFR 175.105 and must be separated from the food by a functional barrier or satisfy the extractive limitations of that section. The powder dissolution temperature is critical: below
80 °C, gelled agglomerates form and block the
100 µm filter commonly installed on the reactor feed line. If the powder is stored at relative humidity above
60%, pre-drying at
60–70 °C for
2–4 h is required before gravimetric dosing.
What Limits Plasticizer Absorption in Suspension PVC Synthesized with Medium-Hydrolysis PVOH?
A dual PVOH package is prepared in a separate hot-water vessel at
80–90 °C before the suspension polymerization reactor is charged. Selvol 523S is evaluated as a secondary suspending agent at
0.02–0.08 phr relative to vinyl chloride monomer, combined with a primary PVOH of lower hydrolysis such as
72–74 mol%. The aqueous phase is adjusted with sodium hydroxide to pH
5.5–7.0. The vinyl chloride monomer-to-water ratio is kept between
1.0:1.0 and
1.2:1.0. Polymerization proceeds in a
20–150 m³ jacketed autoclave fitted with a Pfaudler-type impeller turning at
150–250 rpm. Monomer-soluble peroxydicarbonate initiators are charged at
0.03–0.08 phr. Reaction temperature is controlled at
56–62 °C for K-value
67–70 grades and at
50–54 °C for high-molecular-weight pipe resin. The dissolved Selvol 523S stream must be cooled below
35 °C before transfer to the VCM vessel to avoid initiator decomposition during charging.The secondary PVOH modifies droplet coalescence during the critical stage at
20–40% conversion when monomer droplets lose liquid volume and become sticky. If the secondary PVOH concentration is too high, the droplet boundary becomes overly rigid, and the resulting PVC grain has low porosity and low plasticizer absorption. If the secondary PVOH concentration is too low, coalescence leads to coarse grains and fish eyes in the final dry blend. Selvol 523S with a
4% solution viscosity of
23–27 cP at
20 °C provides moderate hydrodynamic volume; its
87.0–89.0 mol% hydrolysis gives interfacial activity without the strong flocculation associated with fully hydrolyzed PVOH. Published reactor data for this specific 523S configuration is limited because suspension PVC evaluations are typically proprietary and mill-specific. The measurable resin responses include bulk density, plasticizer absorption, grain diameter D50, and residual VCM content. A shift of Selvol 523S from
0.02 phr to
0.08 phr within a fixed primary PVOH package can reduce plasticizer absorption by
2–6 phr and raise bulk density by
0.02–0.04 g/cm³; these directional shifts are consistent with published PVOH dispersant studies.Finished products include rigid pipe, calendered sheet, and medical tubing compounds. Conversion of the suspension PVC into a rigid compound requires thermal stabilizers, lubricants, and impact modifiers before twin-screw extrusion. A parallel counter-rotating twin-screw extruder with L/D
24:1 to
30:1 is operated at barrel temperatures from
160 °C to
190 °C. Die pressure and melt temperature are monitored to detect moisture from vinyl chloride monomer residues or PVOH degradation products. The PVC resin must comply with
ISO 1628-2 for K-value and
ASTM D1755 for general-purpose PVC resin. Residual vinyl chloride monomer is tested by
ISO 6401 or
ASTM D3749.Operational boundaries: The dissolution tank and feed lines must be cleaned after each campaign. Selvol 523S should not be premixed with initiator in the same feed line because peroxydicarbonate/water systems generate acidic byproducts under stagnation. Avoid contamination with borate salts, which crosslink the PVOH and form insoluble gel deposits on reactor walls. If the suspension PVC grade is intended for low-fish-eye calendered film, the PVOH solution must be polished through a
50 µm filter before use.Doctor-rod application of a Selvol 523S topcoat onto clay-coated board proceeds at
40–80 m/min only when the coating batch has been filtered through a
100 µm bag filter and held at
55–65 °C. A barrier pre-coat or single topcoat is prepared at
8–12% nonvolatile solids using water heated to
85–90 °C. The full formula contains
100 parts Selvol 523S,
5–20 parts plasticizer such as glycerol or sorbitol,
0.05–0.2 parts defoamer, and optionally
1–3 parts glyoxal as crosslinker on dry PVOH weight. The pH is adjusted to
4.5–6.5 before coating. The wet coat weight is controlled with a
#8–#12 wire-wound rod or a smooth-rod air-knife coater; the target dry PVOH coat weight is
2–4 g/m². Drying is carried out in an air-flotation or roll-arch oven at
105–130 °C. The coated board must have a surface temperature above
85 °C for at least
10 s to achieve film coalescence without skinning.Oil and grease resistance of the coated board is tested according to
TAPPI T 559. A single-pass PVOH topcoat of
2 g/m² on clay-coated board typically achieves kit number
4–6; a two-pass layer at
4–6 g/m² may reach kit
8–12 if the base sheet is internally sized with alkyl ketene dimer. Water absorption is measured by
TAPPI T 441 as Cobb
60 s; the unmodified PVOH film is permanently water-sensitive and will fail violent water exposure after
60 s. Glyoxal crosslinking reduces cold-water sensitivity but shortens usable pot life. A glyoxal-crosslinked Selvol 523S topcoat must be used within
8–12 h after mixing because viscosity drift exceeds
20% beyond that window. At relative humidity above
70%, the dried PVOH layer absorbs atmospheric moisture and oil resistance drops by
1–3 kit numbers within
24 h.
| Test or regulation | Purpose | Typical requirement or observed value |
|---|
| TAPPI T 559 | Grease resistance of coated paperboard | Kit number 6–12 depending on coat weight |
| TAPPI T 441 | Water absorption of sized or coated board | Cobb 60 s value rises sharply if no crosslinker is used |
| FDA 21 CFR 176.170 | U.S. paper and paperboard food-contact components | Extraction limits applied to the specific food type |
| FDA 21 CFR 176.180 | U.S. dry food contact paper and paperboard | Limited to dry food grade configurations |
| BfR Recommendation XXXVI | German paper and board for food contact | Organoleptic and migration testing required |
Food-contact uses are limited to the specific regulatory entries. The coated paperboard may fall under
FDA 21 CFR 176.170 for paper and paperboard, or
FDA 21 CFR 176.180 for dry food configurations. The formulator must confirm the finished coated article against the extraction tests for the intended food type; published clearance data for Selvol 523S as a direct food-contact film is limited. In European practice, the final article is evaluated under the applicable Member State framework. The German
BfR Recommendation XXXVI for paper and board for food contact may require organoleptic testing and migration limits for the complete coated sheet.
Warp Sizing with Medium-Viscosity PVOH: Starch Replacement Ratios and Pre-Drying Thresholds
Slashing of
40/60 cotton/polyester warps uses a medium-hydrolysis PVOH size because the removal of the size film from the yarn must remain fully aqueous after the oven profile. A typical size-box formula is mixed at
6–10% total solids and contains
100 parts total film former, of which
20–40 parts Selvol 523S and
60–80 parts hydroxyethylated or oxidized starch are used. The addition of Selvol 523S to starch increases the abrasion resistance of the dried size film and permits lower starch pickup at the nip. The cook vessel is heated to
90–95 °C for
20–30 min. The liquor is then fed to the size box at
85–90 °C. The size pickup is controlled by the squeezing pressure; a high-pressure squeeze at
8–15 kN/m linear force gives a pickup of
70–110% on the dry yarn mass depending on the yarn count and slasher speed.Pre-drying is the critical step. The slasher oven is usually a multi-zone hot-air cylinder range operating at
110–130 °C. If the cylinder surface temperature exceeds
130 °C, the PVOH size film forms a hard skin that resists re-wetting during desizing and leaves insoluble deposits on the reed and drop wires. The moisture content at the final split must be reduced to
5–7% of the yarn weight; overdrying below
3% embrittles the warp. The viscosity of the size-box liquor is maintained between
20 mPa·s and
120 mPa·s at
85 °C and monitored with a cup viscometer. The pH is held between
5.5 and
7.5; acidic conditions below
5.0 cause PVOH hydrolysis and viscosity loss.Finished warp yarns are woven on air-jet and rapier looms at
500–800 insertions/min. The size film must carry the yarn through reed impact and harness abrasion. After weaving, the fabric is desized in hot water at
70–90 °C; starch-degrading enzymes are added only for the starch fraction. The dissolved Selvol 523S desize effluent is biodegradable under
OECD 301B ready-biodegradability criteria, though the assessment depends on the final formulation additives. In textile finishing, the PVOH size is selected from grades that do not contain alkylphenol ethoxylate surfactants and are compatible with
ZDHC MRSL conformance screens.
Detergent Unit Dose Film: Solution Casting and Thermoforming Window
Thermoforming pressures of
1.5–2.5 bar applied to
50–75 µm film demand that the cast sheet has a residual moisture content below
1.5% and a plasticizer exudation rating of zero. Selvol 523S is solution-cast from an aqueous dope at
15–25% solids because melt extrusion of medium-viscosity PVOH requires high torque and may cause thermal degradation. The dope is prepared with
100 parts Selvol 523S,
5–15 parts glycerol or sorbitol as plasticizer,
0.05–0.15 parts non-silicone defoamer, and water at
85–90 °C. The solution is deaerated under
0.2–0.4 bar absolute pressure for
30–60 min and then cast through a slot die onto a polished stainless-steel belt at
80–100 °C belt temperature. The dry film is wound at
10–25 m/min depending on the casting length and oven humidity. The film is sealed into moisture-proof pouches immediately after slitting because PVOH film absorbs ambient moisture above
50% relative humidity.Detergent unit dose converting requires thermoforming and filling on a rotary or flat-bed machine. The film is preheated to
70–95 °C and deep-drawn to a cavity depth typically
20–40 mm depending on the product size. The plug-assist speed is set below
200 mm/s to prevent local thinning. The formed cavity is filled with liquid detergent containing nonionic surfactants and propylene glycol; the lid film is sealed at
130–160 °C and
0.3–0.6 N/mm² for
1–3 s. A critical incompatibility exists with strongly alkaline liquid formulations above pH
10.5 because the partially hydrolyzed PVOH film loses solubility and may become brittle after storage at
40 °C. Borate and copper salts in the filler formula are also prohibited because they form insoluble coordination complexes with the PVOH hydroxyl groups.Mechanical properties of the cast film are tested according to
ASTM D882 or
ISO 527-3 after conditioning at
23 °C and
50% relative humidity for
24 h. Typical tensile strength of plasticized Selvol 523S film is
25–45 MPa with elongation at break
200–400%; these ranges vary with the plasticizer grade and residual moisture. The film must dissolve within
30–60 s in water at
20 °C for a
50 µm film in a standard immersion test; the test is not specified by a single ASTM method but is based on manufacturer protocols. At water temperatures below
10 °C, dissolution time increases to
2–3 min, and at
60 °C, dissolution is often complete in under
20 s. The article is not intended for direct food contact and must not be used as a food contact film without separate regulatory clearance.
When a Temporary Binder Must Burn Out Below 500 °C
Aqueous tape-casting slips for alumina substrates are prepared by adding the binder solution after the ceramic powder has been dispersed with a polyacrylate dispersant at
0.2–0.5 wt% of the dry ceramic mass. The Selvol 523S binder solution is prepared separately at
10–15% solids and added at a rate that gives
2–6 wt% PVOH on dry ceramic. The full slip typically contains
100 parts calcined alumina,
30–40 parts water,
0.5–1.0 parts dispersant,
5–10 parts plasticizer such as polyethylene glycol
400, and
2–6 parts Selvol 523S solids. The slip is milled in a jar mill with zirconia media for
12–24 h and deaerated under vacuum. Viscosity is measured with a Brookfield RVT spindle 3 at
10 rpm and is adjusted to
3,000–8,000 mPa·s for doctor-blade tape casting; higher viscosity causes chatter and blade build-up.The tape is cast onto a polyethylene carrier film with a doctor-blade gap of
100–500 µm depending on the final green tape target. The casting speed is
0.2–0.6 m/min through a two-zone drying tunnel. The first zone is kept at
25–30 °C and
50–60% relative humidity; the second zone is held at
35–40 °C to avoid boiling the water and creating mud cracks. The dried green tape must retain a residual moisture of
0.5–1.5% and a tensile strength sufficient for punching. The glass transition temperature of partially hydrolyzed PVOH above room temperature gives stiff green handling; the polyethylene glycol plasticizer shifts the response between filler particles and alters bendability. After lamination, the green stack is compacted at
5–15 MPa and
60–80 °C.Binder burnout is governed by the thermal decomposition of Selvol 523S. The lamination is heated in a box furnace at
1–2 °C/min to
300 °C with a first hold for
2 h, then ramped to
450–500 °C for complete removal. The atmosphere must be air with adequate exhaust; pyrolysis under nitrogen leaves carbon residue. The ash contribution from the Selvol 523S is stated in the manufacturer datasheet as a maximum, not as a guaranteed trace metal profile; for ceramic or electronic applications that require sodium below
50 mg/kg, a separate batch-specific certificate of analysis is required. Full binder removal is verified by thermogravimetric analysis at
10 °C/min in air, where the residual mass above
500 °C is expected to be below
0.5% of the dry tape weight. Green alumina substrates produced by this route are used in thick-film circuits and electronic packaging after sintering at
1,500–1,650 °C.
SELVOL Polyvinyl Alcohol 523S is a partially hydrolysed polyvinyl alcohol resin produced as a free-flowing granular solid. Lot-release data define a 4% aqueous solution viscosity of 22.5–27.5 mPa·s at 20°C and a hydrolysis degree of 87.0–89.0 mol% under JIS K6726. The residual acetate groups lower crystallinity, increase segmental mobility, and provide greater surface activity than fully hydrolysed PVOH grades. The product occupies the medium-viscosity region of the SELVOL PVOH range and is selected when a formulation requires stronger colloidal stabilisation than a low-viscosity grade can supply without the high thickened viscosity of a high-molecular-weight grade.
| Property | Specification envelope | Basis |
| 4% aqueous viscosity | 22.5–27.5 mPa·s | 20°C, JIS K6726 |
| Hydrolysis degree | 87.0–89.0 mol% | Saponification back-titration, JIS K6726 |
| Volatile fraction | ≤5.0 wt% | Loss on drying at 105°C |
| Ash as Na2O | ≤0.5 wt% | JIS K6726 |
| pH | 4.5–6.5 | 4% aqueous solution, 20°C |
Bulk make-down in aqueous systems is usually handled by pre-slurrying the granules in cold water at 20–30°C and then heating to 85–90°C under low-shear agitation. A pitched-blade turbine operating at 300–600 rpm in a baffled stainless tank is sufficient; high-shear rotor-stator mixers are not required and may introduce entrained air and foam. Dissolution endpoint is confirmed by casting a thin wet film on glass and inspecting it under 100× magnification for translucent gel specks. At storage relative humidity above 60%, open bags can soften and agglomerate; keeping storage below 60% RH and resealing partially used containers preserves hopper flow.
Solution viscosity rises nonlinearly with concentration. A 10 wt% aqueous solution of 523S at 25°C typically develops a Brookfield LVF viscosity of 2,500–4,000 mPa·s at 60 rpm. The solution is shear thinning above 5 wt% solids, so viscosity data must always report spindle, speed, and temperature. For quality control, the 4% solution viscosity under JIS K6726 is the reference value; use of other concentrations is common but not directly comparable between laboratories.
What separates 523S from adjacent viscosity grades in the partially hydrolysed series?
| Grade | 4% aqueous viscosity at 20°C | Hydrolysis degree | Common process consequence |
| SELVOL 205S | 5.0–6.0 mPa·s | 87–89 mol% | Lower continuous-phase viscosity; easier high-solids handling; less colloidal strength |
| SELVOL 523S | 22.5–27.5 mPa·s | 87–89 mol% | Intermediate colloid strength, film toughness, and solution viscosity |
| SELVOL 540S | 45–55 mPa·s | 87–89 mol% | Higher thickening, higher film tensile strength, slower dissolution |
| SELVOL 103S | 3.5–4.5 mPa·s | 98–99 mol% | Fully hydrolysed; higher water resistance; requires hot dissolution |
The viscosity ranges demonstrate that 523S sits between 205S and 540S at equivalent hydrolysis. At 4% solids, the difference between 5.0–6.0 mPa·s and 22.5–27.5 mPa·s may appear small, but at 10 wt% solids the practical viscosity difference can exceed an order of magnitude because of the nonlinear concentration dependence. Coating heads that must operate below 4 bar at 50°C generally accept 523S at a lower solids level than 205S. For applications requiring higher film tensile strength without higher solids, 540S is substituted, but its dissolution time is longer and its solution viscosity requires larger heating and pumping capacity.
Compared with fully hydrolysed 103S, the 87–89 mol% hydrolysis of 523S lowers crystallinity and permits clear dissolution at 80–90°C, whereas fully hydrolysed grades above 98 mol% may require 90–95°C and can form gel if not handled properly. The trade-off is moisture sensitivity; plasticised 523S film retains more moisture at 65% RH than fully hydrolysed film and is not specified for water-resistant barriers unless crosslinked or topcoated.
Colloidal stabilisation in vinyl acetate polymerisation imposes a dose window.
Partially hydrolysed PVOH with 87.0–89.0 mol% hydrolysis functions as a protective colloid in vinyl acetate and vinyl acetate-ethylene emulsion polymerisation. In batch reactions, 523S is usually introduced as an aqueous solution at 2–5 wt% on total monomer. Its medium molecular weight provides a thicker hydrodynamic layer around polymer particles than a low-viscosity grade such as 205S, improving shear and storage stability. In a jacketed reactor at 55 wt% solids, latex Brookfield viscosity at 25°C may fall between 3,000 and 8,000 mPa·s, depending on particle size and residual monomer. If the viscosity exceeds the heat transfer capacity of the reactor, dilution or a reduced stabiliser level is required; lowering the 523S dose below 1 wt% can produce coagulum on baffles and temperature probes. Borate salts must not be added before polymerisation because borate ion crosslinks 1,3-diol units and forms intractable gels. Glyoxal-based post-treatments should be evaluated separately for pot life and latex stability.
Scale-up from a 2 L laboratory reactor with a 250 rpm pitched-blade agitator to a 5 m³ production vessel is not linear. Equivalent tip speed does not reproduce the same shear rate distribution or recirculation time. Production batches using 523S require pilot confirmation of the minimum stabiliser dose for a target particle size between 250 nm and 450 nm. Published data for exact dose-response curves across reactor geometries are limited; control charts of coagulum collected on 0.180 mm filter bags provide a more reliable indicator of colloidal stability than bench opacity alone.
Reaction temperature in vinyl acetate polymerisation is typically 65–80°C. The 523S solution must be fully dissolved before addition; undispersed granules can act as seed sites and create clear gel domains in the latex. Post-reaction filtration through a bag with 0.250 mm opening removes skin and incidental coagulum. If residual PVOH content in the latex remains too high, water resistance of the dried film can be compromised, necessitating a post-crosslinker.
When feed moisture is not controlled but pre-drying is not required
Because water is the intended solvent, 523S is not routinely pre-dried before aqueous processing. However, moisture content influences gravimetric and volumetric feeding. The volatile specification of ≤5.0 wt% means that material exposed to humid air may retain surface moisture. In a loss-in-weight feeder with a 500 kg/h capacity, a shift from 3 wt% to 5 wt% moisture changes bulk density sufficiently to disturb volumetric dosing if the feeder is not recalibrated. Gravimetric feed control or a Karl Fischer moisture check on the day of use is recommended for continuous make-down systems. Airborne dust should be controlled below 15 g/m³; dust collectors and conductive earthing should conform to NFPA 654 or a local equivalent.
Viscosity-controlled penetration into paper and textile fibres
Paper surface sizing with 523S is usually run at 3–8 wt% solids in a size press maintained at 40–60°C. The medium viscosity restricts capillary penetration into the sheet, retaining more of the PVOH at the surface for oil hold-out and smoothness. At equal solids, a lower-viscosity grade such as 205S penetrates further into the web and may require a higher dose to achieve equivalent surface film. Size-solution viscosity is often measured at 60°C with a Brookfield LV spindle at 60 rpm; values of 100–400 mPa·s are common depending on co-binder and pigment content. At size press speeds above 1,000 m/min, lower-viscosity grades may be preferred; 523S can still be used if solids are reduced and the press roll gap is optimised. Film split patterns and misting are affected by extensional viscosity, and 523S can produce more visible misting than 205S at equal speed and solids.
Textile warp sizing with 523S is applied at 8–12 wt% solids from a size box held at 70–80°C. The dried film reduces warp break rate during weaving on shuttle and rapier looms. Compared with 540S, 523S gives slightly lower film tensile strength but easier size removal in desizing, which reduces downstream handling cost. The selection between 523S and 540S is therefore a balance between loom efficiency and desizing severity.
Controlling open time in remoistenable adhesives without increasing tack
Remoistenable adhesive films made from 523S at 10–20 wt% solids with glycerol or sorbitol plasticiser are tack-free at 23°C and 50% RH, but rewet rapidly when passed through a water station. Open time is shorter than for 540S because the lower molecular weight permits faster water release at a given coat weight. On roll-to-roll coating lines above 150 m/min, 523S is generally preferred over 540S to avoid ribbing defects from excess viscosity. Drying at air temperatures of 70–90°C is followed by conditioning to ≤50% RH before slitting to prevent blocking. Below 40°C drying is too slow, while above 90°C the surface can form a dried layer that traps water and creates bubbles.
Aqueous barrier coatings for grease-resistant paper can be formulated with 523S at 6–10 wt% solids. Oil hold-out is assessed by TAPPI/ANSI T 454 or ISO 16532-1; the kit value improvement depends on coat weight and substrate porosity and cannot be predicted from PVOH film properties alone. The partially hydrolysed grade has limited water resistance and is not suitable for prolonged water contact unless crosslinked or topcoated. For lower cold-water solubility or higher moisture resistance, fully hydrolysed grades above 98 mol% hydrolysis are substituted, but they require higher dissolution temperatures and may lose surface activity on hydrophobic substrates.
In coextruded water-soluble film structures, 523S can serve as an intermediate-viscosity layer between 205S and 540S. Dissolution at 20°C is slower than 205S and faster than 540S; a 20 mm unstirred film specimen in water may dissolve completely between 15 min and 60 min depending on thickness and plasticiser content. At 60°C, dissolution time typically falls below 10 min. Because these values are configuration-dependent, film converters should verify them for each multilayer structure and plasticiser system.