| HS Code | 326961 |
| Product Name | Wanwei PVA 05-88(L) (PVA 088-05) |
| Type | low-viscosity, partially hydrolyzed polyvinyl alcohol |
| Appearance | white or slightly yellow granular powder |
| Degree Of Hydrolysis Mol | 86.0-89.0 |
| Viscosity 4 Aqueous Solution 20c Mpa S | 5.0-7.0 |
| Ph Value | 5-7 |
| Ash Content Wt | ≤0.5 |
| Volatile Content Wt | ≤5.0 |
| Bulk Density G Cm3 | 0.45-0.60 |
| Particle Size Mesh | 20-80 |
| Average Degree Of Polymerization | 300-500 |
| Average Molecular Weight | 13000-22000 |
| Solubility | soluble in hot water; insoluble in most organic solvents |
As an accredited Wanwei PVA 05-88(L) (PVA 088-05) factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Wanwei PVA 05-88(L) is packaged in 25 kg net multi-layer paper bags with polyethylene liner, palletized and shrink-wrapped for protection. |
| Container Loading (20′ FCL) | 20′ FCL container loaded with Wanwei PVA 05-88(L) (PVA 088-05) in 20kg bags, palletized, secured for safe transport. |
| Shipping | Wanwei PVA 05-88(L) is shipped as a white granular powder in moisture-proof laminated bags or fiber drums, typically 20–25 kg each. It is non-hazardous under normal transport conditions, but containers must remain sealed to prevent moisture absorption. Store in dry, ventilated areas, avoiding extreme heat or humidity during transit. |
| Storage | Store Wanwei PVA 05-88(L) in a cool, dry, well-ventilated area away from direct sunlight, heat, and ignition sources. Keep the container tightly sealed to prevent moisture absorption, as the powder is hygroscopic. Avoid contact with strong oxidizers and acids. Maintain moderate humidity and stable temperature to preserve quality and prevent caking or degradation. |
| Shelf Life | Shelf life is typically 2 years when stored in a cool, dry place away from moisture and direct sunlight. |
| Parameter | PVA 05-88(L) | PVA 17-99 | Test Method |
|---|---|---|---|
| Film tensile strength (MPa) | 28–35 | 45–55 | ASTM D882-18 |
| Elongation at break (%) | 180–240 | 80–110 | ASTM D882-18 |
| Cold-water dissolution time at 25°C (min) | 15–25 | 120+ | Internal method: 4% aq., 400 rpm magnetic stir |
| Desizing residual at 85°C, single scour (wt%) | ≤0.12 | 0.30–0.50 | AATCC 110-2015 |
| Size-box viscosity stability at 85°C, 8-hr hold (mPa·s) | ±1.5 drift | ±4.0 drift | Brookfield LV, spindle #2, 30 rpm |
Competitive Wanwei PVA 05-88(L) (PVA 088-05) prices that fit your budget—flexible terms and customized quotes for every order.
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Within the domain of partially hydrolysed polyvinyl alcohol (PVOH) grades conforming to the designation logic of ISO 15023-1:2017, Wanwei PVA 05-88(L) — also specified as PVA 088-05 in certain Asian supply-chain nomenclature — occupies a narrow band defined by a nominal degree of hydrolysis of 88 mol% and a low degree of polymerization (DP) centred on approximately 500. The “L” suffix designates a low-ash, low-residual-acetate variant, which confers subtle but measurable improvements in thermal colour stability when the dry powder is held at 105 °C for 2 h in forced-air ovens. Typical bulk-solution properties measured at 20 °C on a 4 wt% aqueous solution yield a Brookfield LVDV viscosity (spindle #1, 30 rpm) of 5.0–6.0 mPa·s, a saponification degree of 86.0–89.0 mol%, ash content ≤ 0.5 wt%, volatile matter ≤ 5.0 wt%, and a pH of 5.0–7.0. These values position the product as a low-viscosity, fully cold-water-soluble (≤20 °C) intermediate that sits below the workhorse medium-viscosity grades PVA 17-88 (viscosity 20–30 mPa·s) and 24-88 (40–50 mPa·s) while sharing their hydrolysis window.
With a weight-average molecular weight typically in the range 25 000–30 000 g·mol⁻¹, the 05-88(L) backbone generates far fewer inter-chain entanglements in water than its 17-88 and 24-88 counterparts. Rheograms obtained on a controlled-stress rheometer with a 60 mm cone-and-plate geometry (gap 0.052 mm) at 20 °C show quasi-Newtonian behaviour up to shear rates approaching 1000 s⁻¹, after which mild shear-thinning initiates. This contrasts with 17-88 solutions of equal solids, where zero-shear viscosity is approximately fourfold higher and non-Newtonian character becomes evident at shear rates below 100 s⁻¹. The practical consequence on high-speed metering-coating heads (e.g., curtain coaters running 800 m·min⁻¹) is that 05-88(L) maintains a stable hydrodynamic wedge without the pressure fluctuations that cause streaking. Viscosity retention after 24 h of quiescent storage at 40 °C remains within ±3% of the initial value, provided no metal-ion contamination is present; the introduction of 0.1 mmol·L⁻¹ ferric ions can trigger a viscosity increase of 15–20% within 2 h due to crosslinking of residual acetate sequences.
When cast from 10 wt% solution and dried at 23 °C and 50% RH on polyethylene terephthalate liners, films of 05-88(L) conditioned per ASTM D618-21 yield a tensile strength at break (ASTM D882-18, specimen type IV, 50 mm·min⁻¹ crosshead speed) of less than 30 MPa, with elongation at break typically 80–100%. Under identical preparation, a 17-88 film achieves 45–55 MPa tensile strength and elongation above 200%, reflecting the critical role of tie-molecule density imparted by higher DP. Consequently, 05-88(L) alone cannot satisfy structural interlayer requirements where adhesion must couple with mechanical integrity; its utility shifts to temporary binder systems—for example, ceramic green-tape casting where burnout occurs below 500 °C leaving residual ash of less than 0.5%—and to release films applied at 2–5 µm dry thickness where cohesive failure is intentionally engineered.
High-speed warp sizing of 40s Ne polyester-cotton blended yarn on a Karl Mayer single-end sizing line operating at 600 m·min⁻¹ imposes a set of rheological and thermal demands that align with the properties of 05-88(L). The size liquor, prepared at 8–10% solids with a cooking temperature of 95 °C for 30 min and subsequently held at 85 °C in the size box, must combine low foaming tendency with rapid wet-pickup and ultrafast film-formation under a multi-zone infrared drying bank (air temperature 120–130 °C). At these solids, the Brookfield viscosity of the size paste at 85 °C is approximately 150–200 mPa·s (spindle #3, 20 rpm), enabling size add-on levels of 6–8% owf. Yarn hairiness index, measured by a Zweigle G566 tester, drops by 70% relative to unsized yarn, and the 3 mm hairiness class is virtually eliminated. Because the low DP facilitates efficient enzymatic desizing under amylase-based treatments at 60 °C in 20 min, downstream wet-processing operations experience fewer residual-size defects. A critical processing limitation emerges: intensive inline size mixing via rotor-stator dispersers operating above 10 000 s⁻¹ shear can induce chain scission, evidenced by an irreversible viscosity loss of 8–10% after 30 min of recirculation. Batch-to-batch MW stability should therefore be monitored by periodic gel permeation chromatography (ISO 16014-1) if mixing energy exceeds 0.5 kWh·kg⁻¹.
Despite being a polyhydroxy polymer that thermally degrades before its crystalline melting point, PVA 05-88(L) can be plasticized and extruded on a co-rotating twin-screw extruder (screw diameter 25 mm, L/D 40) using glycerol at 25 phr as the primary plasticizer, along with 0.2 phr of a hindered phenol antioxidant (Irganox 1010). Thermogravimetric analysis (TGA) at 10 K·min⁻¹ under nitrogen shows 5% mass loss at 192 °C, primarily from elimination of acetic acid and water. The practical extrusion temperature profile—feed zone 130 °C, compression 150 °C, metering 185 °C, and die 188 °C—provides a melt temperature of 188–191 °C at a screw speed of 120 rpm. The processing window is thus pinched to ±3 °C around a setpoint of 189 °C: a die-temperature excursion to 194 °C triggers caramel-coloured specks and a 30% rise in die pressure within 5 min, indicating crosslinking. Pre-drying of the powder-glycerol blend in a vacuum oven at 80 °C for 4 h to a moisture content of ≤ 0.2 wt% (Karl Fischer, ASTM D6869-17) is mandatory to suppress steam bubbles and hydrolytic degradation in the metering zone. The melt flow index measured at 190 °C under 2.16 kg (ISO 1133-1:2022) lies in the range 8–12 g·(10 min)⁻¹, sufficiently fluid for thin-gauge cast film (30–50 µm) extrusion without draw resonance when the chill-roll temperature is maintained at 15 °C.
In remoistenable envelope-adhesive applications where dry-film reactivation by a water wheel requires rapid tack development yet extended open time on the coating line, 05-88(L) is rarely used alone but is blended with 17-88 to modulate balance. A typical formulation consisting of 70 parts 05-88(L), 30 parts 17-88, and 15 parts polyethylene glycol (PEG-400) plasticizer, applied at 25% solids on a reverse-gravure coater to 80 g·m⁻² kraft paper, yields a T-peel adhesion value (TAPPI T-821 om-20) of 0.9 N·(15 mm)⁻¹. An all-17-88 reference at equivalent dry add-on produces 1.2 N·(15 mm)⁻¹, but the low-viscosity contribution of 05-88(L) allows the coater to run at a 40% higher line speed without ribs or foaming in the pan. The penalty is a measurable loss of wet tack after re-moistening: peak tack force on a probe-tack tester (PSTC-16) drops from 3.5 N to 2.1 N when the 05-88(L) fraction exceeds 80%. Formulators should therefore cap the low-DP component at 70% if the adhesive must survive high-speed folding machines operating at 1200 envelopes·min⁻¹. Film brittleness becomes problematic below 20% RH where lack of chain entanglement leads to edge-flaking and dusting; the addition of 2–3% glycerin based on dry PVA effectively mitigates this through moisture equalization, but loadings above 5% risk blocking under summer storage conditions ( 35 °C, 80% RH).
Batch-to-batch consistency of Wanwei PVA 05-88(L) is controlled against the specification window reproduced in Table 1, which draws on the Chinese national standard GB/T 12010 series and equivalent ISO methods where applicable. The “L” designation imposes an upper boundary on ash and a narrower acetate volatiles distribution, which directly influences the colour of hot-pressed films and the acid number of the aqueous solution after prolonged heating.
| Property | Typical Value | Test Method | Unit |
|---|---|---|---|
| Viscosity (4% aq., 20 °C) | 5.0–6.0 | ISO 2555 / GB/T 12010.3 | mPa·s |
| Degree of hydrolysis | 86.0–89.0 | GB/T 12010.2 (alkali titration) | mol% |
| Ash content | ≤ 0.5 | GB/T 12010.5 (muffle furnace, 800 °C) | wt% |
| Volatile matter | ≤ 5.0 | GB/T 12010.4 (105 °C, 3 h) | wt% |
| pH (4% solution) | 5.0–7.0 | ISO 976 / GB/T 12010.8 | — |
| Transmittance (4% solution, 550 nm) | ≥ 90 | GB/T 12010.7 | % |
When contrasted against the medium-viscosity grades that share the same nominal hydrolysis level, the principal differentiating feature of 05-88(L) is the extraordinary fluidity that extends its working concentration range in aqueous systems without encountering processing viscosity thresholds. Table 2 quantifies this comparison using metrics derived from standard laboratory characterisation; the data clarify why the product is chosen when thin coatings, rapid desizing, or low-torque extrusion dominate, and why it is avoided when film toughness or wet-tack cohesion are non-negotiable.
| Characteristic | Test Standard | PVA 05-88(L) | PVA 17-88 | PVA 24-88 |
|---|---|---|---|---|
| 4% solution viscosity (20 °C) | ISO 2555 | 5.0–6.0 mPa·s | 20–30 mPa·s | 40–50 mPa·s |
| Approximate DP | GPC (ISO 16014-1) | 500 | 1700 | 2400 |
| Hydrolysis degree | GB/T 12010.2 | 86–89 mol% | 86–89 mol% | 86–89 mol% |
| Cast film tensile strength | ASTM D882-18 | <30 MPa | 45–55 MPa | 55–65 MPa |
| Elongation at break | ASTM D882-18 | 80–100% | 200–250% | 250–300% |
| Ash content | GB/T 12010.5 | ≤ 0.5% | ≤ 0.7% | ≤ 0.7% |
| Melt flow index (190 °C, 2.16 kg, plasticized) | ISO 1133-1:2022 | 8–12 g·(10 min)⁻¹ | 2–4 g·(10 min)⁻¹ | 0.5–1.5 g·(10 min)⁻¹ |