The product designated as Sinopec PVA 100-10F is a fully hydrolyzed polyvinyl alcohol resin manufactured by Sinopec Sichuan Vinylon Works. The grade code follows Sinopec’s conventional nomenclature: the first three digits (
100) specify a nominal degree of polymerization of approximately
1000, the two subsequent digits (
10) place the resin within the fully hydrolyzed category (residual acetate groups below
1.0 mol%, measured as Na
2O equivalent), and the suffix
F designates a film-grade formulation optimised for reduced gel particle counts and high optical clarity. Typical applications include water-soluble packaging films, textile warp sizing, paper surface sizing, emulsion polymerisation stabilisation, and adhesive compounding where a balance of moderate solution viscosity and high film strength is required. The certificate of analysis routinely reports a Brookfield viscosity (4 % aqueous solution,
20 °C, spindle No. 2 at
60 rpm) in the range
24.0–30.0 mPa·s per
GB/T 12010.2‑2009, volatile matter
≤5.0 % (
105 °C,
3 h), ash content
≤0.5 % (
GB/T 12010.7), pH
5.0–7.0 (
GB/T 12010.8), and light transmittance of a 4 % solution
≥90.0 % at
550 nm. The low ash specification is critical for applications where ionic residues interfere with colloidal stability or film seal integrity.
How does 100-10F differentiate from higher-viscosity fully hydrolyzed PVA grades like 1799?
The most immediate practical distinction is the dissolution temperature window. While Sinopec PVA 1799 (DP ≈
1700, hydrolysis
≥99.0 mol%) requires sustained heating above
95 °C and often pressurised cook vessels, 100-10F enters complete solution at atmospheric pressure when the water temperature is maintained between
88 °C and
92 °C. On production-scale dissolvers equipped with bottom-entry Ekato‐type impellers and in-line rotor–stator homogenisers (shear rate>
10 000 s⁻¹), 100-10F can be dispersed in cold water first and then heated by direct steam injection; lumps (fisheyes) are avoided provided the temperature ramp does not exceed
2 °C·min⁻¹ between
50 °C and
85 °C. In contrast, 1799 normally demands a two‑stage process with a pressurised dissolver operating at
0.15–0.25 MPa gauge to reach the
98–102 °C region, which adds capital cost and cycle time. The lowered dissolution temperature of 100-10F also reduces the risk of thermal discolouration when the solution is held for extended periods; in an unblanketed vessel, the yellowness index (ASTM E313) of a
10 % solution stored
4 h at
90 °C remains
<2.0, whereas 1799 solutions under identical conditions can exceed
3.5. The trade‑off is film tensile strength: 1799 typically delivers
55–70 MPa (ISO 527‑3,
30 μm cast film conditioned at
23 °C,
50 % RH), while 100-10F falls in the
40–55 MPa range. This difference becomes negligible in pouch packaging when the film thickness is standardised to
60–75 μm, where the burst resistance of 100-10F still exceeds
350 kPa (Mullen burst, ISO 2758), sufficient for detergent unit‑dose formats.
Additive compatibility and the risk of premature crosslinking during melt processing
Fully hydrolysed PVA grades such as 100-10F interact with common plasticisers — glycerol, trimethylolpropane, pentaerythritol, and urea — through a narrower formulation window than partially hydrolysed grades (e.g., 1788, hydrolysis
87–89 mol%). Liquid‑state plasticiser loading above
25 phr can induce phase separation on cooling from the melt, evident as surface haze and a sharp drop in elongation at break. The phase boundary shifts with the degree of saponification; for 100-10F the Hansen solubility parameter mismatch relative to glycerol (δ
p ≈
21 MPa1/2 for PVA,
26 MPa1/2 for glycerol) limits plasticiser uptake to a practical maximum of
20–22 phr when processed on a twin‑screw extruder (
L/D 30:1, counter‑rotating, screw speed
80–120 rpm). Beyond that, films become sticky during winding and blocking occurs at roll pressures above
0.3 MPa when the storage temperature exceeds
30 °C. Furthermore, the hydroxyl‑rich backbone of 100-10F is susceptible to dehydration‑type crosslinking in the presence of amine‑based additives (e.g., ethanolamine, morpholine derivatives commonly used as anticorrosion packages in water‑soluble films for agrochemicals). Differential scanning calorimetry shows that the onset of a pronounced exotherm shifts from
200 °C (neat 100-10F) to
175 °C with
0.5 wt% ethanolamine, accompanied by rapid gel formation in the extruder die. Therefore, melt processing of 100-10F must be conducted with melt temperatures not exceeding
185 °C when any nitrogen‑containing additive is present, and screw elements should avoid high‑compression kneading blocks that generate local hot spots.
When PVA 100-10F replaces gelatin in pharmaceutical capsule films
An increasing number of softgel and hard‑capsule manufacturers evaluate 100-10F as an alternative to hide‑derived gelatin to meet vegetarian and religious dietary requirements. Capsule films formed from a
15 wt% solution of 100-10F containing
2.5 phr sorbitol and
0.8 phr carrageenan exhibit an oxygen transmission rate of
0.48 cm³·mm·m⁻²·day⁻¹·atm⁻¹ at
23 °C and
50 % RH (
ASTM D3985), competitive with gelatin. The critical process parameter on rotary‑die encapsulation lines (e.g., Qualicaps S‑series, Capsugel LEMS) is the ribbon moisture content immediately before die filling: for 100-10F it must be held at
60–65 % RH and
22–25 °C to ensure a surface tack that permits reliable seal formation without premature sticking. Outside this humidity band, seal integrity failure rates measured by methylene blue leak testing (USP
<2040>) rise above
0.5 %. Unlike gelatin, 100-10F does not exhibit a sol‑gel transition during cooling, so ribbon curing relies purely on evaporative water loss; a two‑zone drying tunnel with zone‑1 at
30 °C,
40 % RH and zone‑2 at
25 °C,
50 % RH is typically required to achieve final capsule moisture of
8–10 % within
45 min. A further operational boundary is the incompatibility with aldehyde‑based crosslinkers used for delayed‑release coatings on gelatin capsules — 100-10F reacts with formaldehyde at ambient temperature, rendering such post‑encapsulation treatments unfeasible.
Meeting REACH and FDA 21 CFR 175.105 for indirect food contact
Sinopec 100-10F is manufactured under a quality system aligned with
ISO 9001:2015 and is supported by a regulatory dossier covering the major food‑contact and environmental frameworks. The material carries a positive listing under FDA
21 CFR 175.105 (Adhesives) and
21 CFR 176.170 (Components of paper and paperboard in contact with aqueous and fatty foods) when used within the prescribed limits. The table below consolidates the key compliance endpoints against the most frequently referenced standards.
Regulatory conformance summary for Sinopec PVA 100-10F
| Test parameter | Limit/Specification | Method |
| Overall migration into aqueous simulant (10 days, 40 °C) | ≤10 mg·dm⁻² | EU 10/2011, Annex V |
| Specific migration of vinyl acetate monomer | ≤12 mg·kg⁻¹ | EU 10/2011, GC‑MS |
| Lead content | ≤2 mg·kg⁻¹ | EU 94/62/EC |
| Cadmium content | ≤1 mg·kg⁻¹ | EU 94/62/EC |
| Substances of very high concern (SVHC, 233 entries) | Not intentionally added | REACH 1907/2006 Art. 33 |
| Heavy metals (arsenic, mercury, total chromium) | ≤5 mg·kg⁻¹ sum | CoE Resolution AP(89)1 |
| Phthalates (sum of 6 priority) | ≤100 mg·kg⁻¹ | EN 14372 |
The product is not registered under
ECHA Article 7 for food‑contact materials, but an end‑use risk assessment is advisable when the converted article falls under
EC 1935/2004 where a Declaration of Compliance must be issued by the converter.
For emulsion polymerisation of vinyl acetate, 100-10F serves as a primary protective colloid, replacing or augmenting hydroxyethyl cellulose in formulations targeting medium‑viscosity polyvinyl acetate homopolymer or copolymer dispersions. Feeding a
10 % aqueous solution of 100-10F at a rate of
3.5–4.0 wt% (based on monomer) into a semi‑batch reactor at
70–75 °C with a persulfate/metabisulfite initiator yields a dispersion with a median particle diameter
0.8–1.2 µm (laser diffraction) and a coagulum level below
0.1 % (wet weight retained on
40 mesh). The low ash content of 100-10F is a direct contributor to these low coagulum values because inorganic salts that could screen electrostatic stabilisation are minimised. Grafting efficiency, determined by solvent extraction of unbound PVA, typically exceeds
60 % under the stated temperature profile, which is consistent with other fully hydrolysed grades of comparable molecular weight. The same reactor can switch from 100-10F to partially hydrolysed 1788 when softness and re‑wet adhesion are prioritised over water resistance, a flexibility that contract manufacturers value in multi‑purpose polymerisation skids. However, any carry‑over of 1788 into a subsequent 100-10F batch noticeably raises the dispersion’s soluble fraction by at least
2 % due to the lower graft efficiency of the partially hydrolysed grade, so thorough reactor cleaning is mandatory.
What limits the maximum film drawing speed in water‑soluble pouch packaging?
The conversion of 100-10F into a blown or cast water‑soluble film suitable for unit‑dose detergents pushes the polymer’s melt rheology to a boundary where molecular orientation and heat transfer jointly dictate line speed. On a single‑screw blown‑film extruder (
L/D 30:1, compression ratio
3:1, die gap
0.8 mm) running a compound containing
18 phr glycerol, the maximum take‑off speed that preserves stable bubble geometry lies at
18–22 m·min⁻¹ for a
75 μm film. At
25 m·min⁻¹ the bubble begins to oscillate with a period of
3–5 s, producing gauge bands of ±
8 μm that lead to web breaks at the nip rolls. The limiting factor is the extensional viscosity of the melt at the freeze line, which for 100-10F at
185 °C and a strain rate of
1 s⁻¹ is in the range
12 000–15 000 Pa·s; this is approximately
30 % lower than that of 1799, explaining why 1799 permits drawing speeds up to
30 m·min⁻¹ at the expense of much slower cold‑water dissolution. To compensate, some processors add
0.2–0.5 phr of a polyether‑modified siloxane processing aid to stabilise the bubble, but this must not push the surface energy of the final film below
38 mN·m⁻¹ (contact angle method per DIN 55660‑2) otherwise printability with water‑based inks deteriorates. The wound film must be stored under tension
≤20 N·m⁻¹ per side and at
≤25 °C to prevent cold‑flow blocking, a phenomenon that fully hydrolysed grades exhibit more acutely than their partially hydrolysed counterparts because of the higher crystallinity and lower free volume.
Comparative property ranges for Sinopec PVA 100-10F, 1799, and 1788 (typical values)
| Property | 100-10F | 1799 | 1788 | Test standard |
| Degree of polymerisation | 1000 ± 50 | 1700 ± 50 | 1700 ± 50 | GB/T 12010.4 |
| Hydrolysis (mol%) | 99.0–100.0 | 99.0–100.0 | 87.0–89.0 | GB/T 12010.6 |
| 4 % sol. viscosity (mPa·s, 20 °C) | 24.0–30.0 | 25.0–31.0 | 22.0–28.0 | GB/T 12010.2 |
| Dissolution temp. (°C, complete clarity) | 88–92 | 95–98 | 60–70 | Internal dissolution curve |
| Film tensile strength (MPa, cast, 30 μm) | 40–55 | 55–70 | 25–35 | ISO 527‑3 |
| Cold‑water solubility (10 °C, 50 μm film disintegration) | Partial; needs >25 °C for full solubilisation | Negligible | Complete within 120 s | MSTM 205 (modified) |
In paper surface sizing, 100-10F is applied at the size press as a
2.0–3.0 wt% solution together with oxidised starch and a reactive alkyl ketene dimer (AKD) size. The order of addition is critical: injecting 100-10F into the starch stream before the AKD emulsion can reverse the zeta potential of the furnish fines from −
15 mV to
+5 mV, causing hetero‑flocculation that plugs the metered size‑press station. The preferred sequence is to blend starch and AKD first, then dose the 100-10F solution through a static mixer with a residence time not exceeding
15 s before the press nip to prevent pre‑gelation. Hardness ions also exert a significant influence; a water hardness above
50 mg·L⁻¹ CaCO₃ (as per ISO 6058) precipitates the tensile pick‑up efficiency by forming insoluble PVA‑Ca complexes visible as dull streaks. Inline filtration through a
100 μm slotted screen is essential to capture agglomerates before the application roll. Under optimised conditions, the addition of
2.5 kg of 100-10F per tonne of paper upgrades the IGT pick resistance (ISO 3783) by
40–60 % compared to starch‑only sizing, while maintaining a Cobb
60 value (ISO 535) below
25 g·m⁻².
The material must be stored in its original sealed packaging at temperatures not exceeding
30 °C and relative humidity below
60 %. Proximity to volatile aldehydes, strong acids, or oxidising agents must be avoided because even trace formaldehyde vapour at
0.1 ppm can initiate inter‑particle acetal formation, manifesting as a gritty texture that cannot be re‑dispersed.