| HS Code | 208049 |
| Product Name | Kuraray VPK1702-PVA Structural Fiber (Stiff Type) for Paper Making |
| Fiber Material | High-crystallinity polyvinyl alcohol (PVA) |
| Physical Form | Short-cut stiff monofilament staple fibers |
| Appearance | White, essentially odorless fibers |
| Fineness | 1.7 dtex |
| Cut Length | 2 mm |
| Average Diameter | approximately 13 μm |
| Specific Gravity | 1.30 |
| Tensile Strength | approximately 1.6 GPa |
| Tensile Modulus | approximately 35 GPa |
| Elongation At Break | approximately 7% |
| Water Resistance | Insoluble in boiling water after production treatment |
| Thermal Property | Softening point approximately 220°C |
| Dispersibility | Excellent dispersibility in water for papermaking slurries |
As an accredited Kuraray VPK1702-PVA Structural Fiber (Stiff Type) for Paper Making factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Supplied as 20 kg net Kraft paper bags with inner PE liner, palletized and shrink-wrapped for safe transport. |
| Container Loading (20′ FCL) | 20' FCL container loading: bagged, palletized, and securely stowed to prevent shifting for safe, efficient transport of Kuraray VPK1702-PVA fiber. |
| Shipping | Kuraray VPK1702-PVA Structural Fiber ships as palletized, sealed moisture-resistant bags. Keep dry during transit and storage, avoid compression damage and excessive handling. Standard freight or container shipment is suitable. Ensure proper labeling and ventilation. No special hazardous transport requirements under normal conditions; protect from rain and direct sunlight. |
| Storage | Store in a cool, dry, well-ventilated area away from direct sunlight, heat sources, and open flames. Keep the original packaging tightly sealed to prevent moisture absorption, which can affect fiber stiffness and performance. Avoid stacking excessively to prevent deformation. Maintain stable humidity and temperature; under proper conditions, shelf life is generally up to 24 months. |
| Shelf Life | Shelf life is indefinite when stored dry, cool, and away from direct sunlight. Proper handling ensures stable performance. |
On converting lines running at 200–280 bags/min for double-chamber tea bag formats, wet-laid heat-seal filter paper must deliver sufficient seal strength across a narrow thermal window without inducing over-bonding perforation at the seal interface. Kuraray VPK1702 stiff PVA structural fiber is blended into bleached softwood kraft pulp refined to 25–32°SR at addition levels of 12–18 wt% of air-dry furnish weight for single-cup tea bag grades and 18–22 wt% for flow-through coffee pod filter grades requiring elevated burst resistance. The stiff fiber designation carries specific processing relevance: the higher tensile modulus relative to standard PVA fiber grades resists fiber collapse during wet pressing at 3–4 bar line pressure on an inclined wire former, and this resistance preserves the caliper uniformity required for consistent seal jaw contact along the converting axis. Heat sealing proceeds at 190–220°C jaw temperature with dwell times of 0.3–0.6 s, during which the PVA fiber surface undergoes localized plasticization and thermally activated bonding to adjacent cellulosic fibers. Published seal strength data measured by ASTM F88/F88M on finished tea bag paper typically falls within 4.0–5.5 N/15 mm for machine-direction seals; cross-direction seal strength runs approximately 15–20% lower due to fiber orientation anisotropy introduced during sheet formation. Basis weight for tea bag grades is produced at 14–20 g/m², while coffee pod filter paper is typically wet-laid at 28–40 g/m² to withstand peak extraction pressure fluctuations observed in high-pressure pod machines operating at 15–19 bar pump pressure. Food-contact compliance for this application segment must be verified against FDA 21 CFR 176.170 (components of paper and paperboard in contact with aqueous and fatty foods), EU Regulation 1935/2004 Article 3, and BfR Recommendation XXXVI for paper and board intended for food contact. The PVA fiber component is generally recognized as an acceptable papermaking fiber under these frameworks; however, mill quality control must confirm that residual vinyl acetate monomer (VAc) content in the supplied fiber remains below the 5 ppm limit specified in the supplier's certificate of analysis. Additional verification applies to any wet-strength resins, retention aids, or defoamers used alongside VPK1702 in the same furnish. End products in this segment include single-chamber and double-chamber tea bags, flow-through coffee pods, spice sachets, and bouquet garni sachets; the stiff fiber contribution is most pronounced in coffee pod applications where caliper retention during dry storage at 40°C and 60% RH determines pod dimensional conformance to injection-molded pod holder tolerances.
Engine air intake filtration media produced by wet-laying stiff PVA fiber with synthetic polyester or glass microfiber must retain pleat geometry under increasing differential pressure as dust cake accumulates on the upstream side. VPK1702 is added to the furnish at 8–15 wt% of total air-dry fiber weight; at this loading, the fiber contributes flexural rigidity to the finished media without occluding the pore structure that governs fractional filtration efficiency. The furnish is formed on a Fourdrinier wire at a basis weight of 100–160 g/m², followed by resin impregnation with a phenolic or acrylic binder system at 18–25 wt% pickup based on dry sheet weight. Pleating is performed on rotary pleating equipment with pleat heights of 18–45 mm and pleat pitch of 0.8–1.5 mm depending on element format. Differential pressure across the media during service life can reach 3–5 kPa for primary engine air filters on heavy-duty diesel engines, and pleat collapse under this load degrades effective filtration area by up to 30% in unsupported media configurations. The stiff PVA fiber elevates the Gurely stiffness of the impregnated sheet; a media formulation containing 12 wt% VPK1702 typically exhibits a 20–35% increase in Taber bending stiffness (measured per ISO 2493-1) compared to a fiberglass-only control at equivalent basis weight. Filtration efficiency and dust-holding capacity must be validated against ISO 5011 for engine air cleaners, and for secondary lube oil filtration applications the relevant standard is ISO 4548-12 for filtration efficiency of automotive engine oil filters using continuous contaminant injection. Compliance with SAE J726 for air cleaner test procedures is also commonly required by North American OEM specifications. The end products include panel air filters for passenger vehicles, cylindrical and oval elements for heavy-duty diesel engines, and pleated cabin air filters where VPK1702 addition improves pleat uniformity during automated frame assembly. One operational constraint applies: the stiff PVA fiber produces higher wet-web tensile strength during forming, which allows higher machine draw tension; however, at draw tensions exceeding 15 N/mm, fiber alignment in the machine direction increases anisotropy to a degree that compromises cross-direction pleat fold quality on rotary scoring equipment.
In primary alkaline (LR6, LR14, LR20) and secondary nickel-metal hydride cylindrical cells, the separator paper must maintain uniform thickness under dry storage, electrolyte saturation, and high-rate discharge conditions. Kuraray VPK1702 stiff PVA structural fiber is incorporated into alkaline-tolerant wood pulp (mercerized kraft or lyocell) at 15–25 wt% of air-dry furnish weight to provide dimensional rigidity and resistance to collapse in stacked anode-cathode winding configurations. The fiber's swelling behavior differs significantly from cellulosic furnish fibers: PVA fiber exhibits a water uptake of only 4–8% at 65% RH and less than 30% in saturated KOH electrolyte, while mercerized pulp can swell 80–120% in the same electrolyte system. This differential swelling governs separator dimensional stability and is the primary reason for the loading window specification. Below 15 wt% VPK1702, separator thickness reduction under spiral winding tension of 0.5–1.5 N/cm exceeds 18%, which increases the risk of internal short circuit through separator compression; above 25 wt%, electrolyte absorption capacity declines because PVA fiber contributes lower internal porosity than cellulosic fiber. The separator sheet is formed on an inclined wire former at a basis weight of 25–45 g/m², then calendered at nip pressures of 80–150 kN/m to achieve a final thickness tolerance of ±3 µm across the web. Electrolyte absorption measured by the 30-minute immersion method in 40 wt% KOH solution typically falls between 300–450% by weight for a 20 wt% VPK1702 formulation, and this absorption metric correlates with low-rate discharge capacity retention in LR6 cells after 12-month storage at 45°C. Compliance for this application segment references IEC 60086-2 for primary alkaline battery performance, IEC 61951-1 for nickel-cadmium and IEC 61951-2 for nickel-metal hydride secondary cell performance; separator-specific test methods may be drawn from JIS P 8113 for tensile strength and JIS P 8111 for conditioning atmospheres. The table below summarizes the loading-dependent property behavior for a 30 g/m² separator paper in 40 wt% KOH at 25°C.
| VPK1702 Loading (wt%) | Dry Tensile Index (N·m/g) | Wet Tensile Retention (%) | Electrolyte Absorption (wt%) | Compression Set at 1.5 N/cm (%) |
|---|---|---|---|---|
| 15 | 42–48 | 68–72 | 380–450 | 22–25 |
| 20 | 47–55 | 74–80 | 300–380 | 14–18 |
| 25 | 52–60 | 79–85 | 240–300 | 9–12 |
End products in this segment include separator papers for cylindrical primary alkaline cells (AA, AAA, C, D), nickel-metal hydride cells for hybrid vehicle battery packs, and zinc-air button cell separator discs where die-cut dimensional accuracy depends on the stiff fiber's contribution to cross-direction rigidity. An important operational boundary applies during repulping of broke containing VPK1702: broke chests must not be acidified below pH 4.5 because acid-catalyzed hydrolysis of the PVA fiber reduces fiber length and negates the stiffness contribution in subsequent furnish cycles.
Ceramic fiber paper mills using refractory aluminosilicate fibers (RCF, classified as high-temperature insulation wools) require a polymeric binder system that maintains green sheet integrity through slitting, rolling, die-cutting, and handling prior to first kiln exposure. Kuraray VPK1702 stiff PVA fiber is added at 3–8 wt% of total furnace solids to an RCF furnish dispersed in water at 1.0–2.0% consistency on an inclined fourdrinier former. The stiff fiber contributes green tensile strength in the range of 0.8–1.4 MPa at 5 wt% loading, measured by ISO 10635 Annex B tensile test on 150 g/m² basis weight green sheet. The binder function is temporary by design: PVA fiber decomposes through thermal scission and oxidative degradation between 300–500°C during first heat-up, leaving a clean inorganic matrix without carbon residue that would compromise high-temperature dielectric or insulation properties. Basis weight in this segment ranges from 80–400 g/m², with the higher basis weight grades used for furnace expansion joints and kiln furniture liners. The forming process is highly sensitive to white water retention of dispersed RCF; cationic retention aids must be selected for compatibility with PVA fiber because anionic flocculants interact with hydroxyl groups on the PVA surface and produce visible floc formations, or fisheyes, in the formed sheet at addition levels above 0.3 kg/t furnish. Compliance for this application references ASTM C892 for high-temperature fiber blanket thermal insulation, ISO 10635 for general test methods for ceramic fiber products, and where the finished product is used in the European Union, Regulation (EC) No 1272/2008 (CLP) classification of aluminosilicate RCF as a Category 1B carcinogen by inhalation applies to the refractory fiber component only and is not altered by the PVA binder system. End products include die-cut gaskets for furnace doors, expansion joint inserts for industrial boilers, backup insulation liners for kiln cars, and vacuum-formed shapes where the green-strengthened paper serves as a preform that is subsequently infiltrated with silica or alumina sol binder before firing. Published data for the specific burnout kinetics of VPK1702 in RCF matrices is limited; thermogravimetric analysis of the PVA fiber alone in air shows onset of weight loss at approximately 220°C and complete volatilization by 500°C, but the presence of refractory fibers and the dense packing of the formed paper retards oxygen diffusion and may shift burnout completion upward by 50–100°C.
For proton exchange membrane fuel cell gas diffusion layer substrates, carbon paper is manufactured from polyacrylonitrile (PAN) or pitch-based carbon fiber that is wet-laid on a fourdrinier wire and subsequently resin-impregnated, carbonized, and graphitized. When Kuraray VPK1702 stiff PVA fiber is introduced as a temporary binder at 10–20 wt% of air-dry precursor furnish weight, it provides wet-web and green-mat handling strength during the transfer sections between forming, impregnation, and the first stage of carbonization. The carbon paper precursor typically forms at a basis weight of 40–80 g/m², using carbon fiber chopped to 6–12 mm length blended with VPK1702 cut at 3–6 mm to optimize dispersion uniformity in the dilute suspension at 0.5–1.0% consistency. Phenolic resin impregnation at 30–50 wt% resin pickup based on dry precursor weight saturates the mat before carbonization; the PVA fiber decomposes concurrently with the phenolic resin pyrolysis between 300–900°C under nitrogen atmosphere, leaving a controlled pore distribution that influences gas permeability of the finished gas diffusion layer. Porosity of the finished carbon paper after graphitization at 1200–1500°C typically falls in the 75–85% range, and through-plane gas permeability measured at 0.1 MPa differential pressure falls between 1000–3000 mL/(min·cm²·bar). The substitution of glass microfiber with VPK1702 eliminates a known contamination pathway: glass fiber carries sodium and boron oxides that migrate during fuel cell operation and degrade membrane conductivity; PVA fiber ash content is typically below 0.5%, and the decomposition products are primarily water, carbon dioxide, and low-molecular-weight hydrocarbons. Compliance for this application is governed by DOE Hydrogen and Fuel Cell Technologies Office technical targets for gas diffusion layer through-plane electrical resistivity (target: less than 0.008 Ω·cm² at 1.0 MPa) and water contact angle (target: greater than 130° for hydrophobically treated substrates), as well as GB/T 20042.7 for Chinese fuel cell component test methods. End products include gas diffusion layer substrates for PEM fuel cells in stationary power generation, heavy-duty vehicle fuel cell stacks, and electrolyzer porous transport layers where the stiff PVA fiber contributes green strength during double-pass roll impregnation of the hydrophobic PTFE treatment. An operational constraint applies in the forming section: PVA fiber dispersion at furnish temperatures above 55°C initiates partial solubility, which increases white water viscosity and can clog hydrocyclone cleaners; forming temperatures should be maintained below 50°C.
The dimensional stability of sandpaper sheet, disc, and belt backing under latex-saturated conditions and subsequent abrasive grain coating requires management of wet expansion differentials between machine and cross directions. Kuraray VPK1702 stiff PVA fiber is introduced into a cylinder-machine furnish composed of bleached kraft and cotton linter at 5–12 wt% of air-dry fiber weight, producing a backing paper at 80–160 g/m² basis weight. The stiff fiber's low water uptake—approximately 5–8% at 65% RH—reduces hygroexpansivity of the saturated sheet, and this property becomes critical during the water-based phenolic resin coating stage where the web is subjected to a tension of 4–10 N/cm while wet. Web breaks and necking at the coating station originate from wet expansion in the cross-machine direction; a 10 wt% VPK1702 formulation typically reduces cross-direction wet expansion to 1.5–2.5% from a baseline of 3.5–5.0% for an all-cellulosic furnish at equivalent basis weight. Latex saturation using carboxylated styrene-butadiene or nitrile latex at 40–60% pickup by dry backing weight is followed by festoon drying at 90–120°C; the stiff PVA fiber survives these drying temperatures without degradation, whereas at drying temperatures above 180°C thermal oxidation of the PVA fiber leads to yellowing that is unacceptable for backing papers used with white or light-colored abrasive coatings. Abrasive grain adhesion testing is conducted per ISO 6344 for coated abrasives, with grain retention after flexing measured by weight loss of detached abrasive per unit area; backing paper containing VPK1702 at 8 wt% or higher maintains grain retention within 10% of the unflexed control after 500 flex cycles on a standard flexometer. The finished converting behavior also improves because the stiff fiber elevates cup stock stiffness, which is expressed as a higher Gurley bending resistance measured per ISO 2493-1, and this reduces sheet misfeeds in automatic die-cutting lines producing 125 mm and 150 mm disc formats. End products include sandpaper sheets for hand sanding, hook-and-loop discs for orbital sanders operating at 10,000–12,000 orbits/min, and wide belts up to 1.4 m width for industrial panel sanding. The key operational boundary in this segment is wet-web tension control: because the stiff PVA fiber contributes to higher wet-web tensile strength, the tendency is to increase draw tension on the cylinder machine; however, draw tension above 12 N/mm overstrains the fiber network and produces latent cross-direction weakness that manifests as edge tearing during later abrasive coating.
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Kuraray VPK1702 is a polyvinyl alcohol structural fiber supplied for wet-laid papermaking and specialty nonwoven processes where a non-thermoplastic, high-modulus reinforcing fiber is required. The grade designation identifies a stiff PVA staple classified as a load-bearing discrete fiber rather than a binder fiber; it remains fibrous through drying and hot pressing, and it is not designed to develop sheet strength through melting or dissolution. The VPK1702 suffix corresponds to a nominal linear density of 1.7 dtex and a standard cut length of 2 mm, dimensions that permit distribution in aqueous furnish without the entangled fiber bundles associated with longer synthetic staple.
Single-fiber tensile properties for stiff PVA structural grades are determined in accordance with ISO 5079:2020 or ASTM D3822/D3822M-14(2020). Representative values reported for this class of fiber include tenacity of 7.0–11.0 cN/dtex, elongation at break of 6–10%, and initial modulus of 200–320 cN/dtex. For PVA fiber with a density of 1.26–1.30 g/cm³, these values correspond to a tensile strength near 0.9–1.4 GPa and a Young’s modulus of roughly 26–42 GPa. The stiff type is differentiated by lower elongation at break than conventional PVA staple and by higher initial modulus, which reduces sheet elongation at low applied strain while increasing tensile energy absorption under rupture conditions. Linear density is verified gravimetrically or by vibroscope using ISO 1973:2021. The fiber is water-insoluble but hydrophilic; equilibrium moisture regain at 65% RH and 20°C is commonly reported at 3–5 wt%. Thermal degradation of PVA begins near 220°C under inert conditions. Continuous exposure above that boundary is outside the intended use of VPK1702. Published data for the exact VPK1702 configuration is limited; mill qualification should therefore require current certificate-of-analysis values and pilot hand-sheet validation rather than reliance on class-typical ranges alone.
On paper machines, VPK1702 is added either as dry fiber metered into the pulper after the base pulp has defibered or as a pre-dispersed aqueous slurry introduced after the machine chest. The addition point downstream of the refiners is preferred because the stiff PVA fiber does not require mechanical refining and because disc refiner bar edges can shorten the 2 mm cut length. In bleached softwood kraft or cotton linter furnish, addition levels of 2–20 wt% are workable, but the practical upper limit depends on sheet formation and first-pass retention. Headbox stock consistency is typically maintained between 0.4% and 1.2%; at these consistencies the hydrophilic PVA fiber remains suspended and does not accumulate at the stock surface. Cationic polyacrylamide retention aid use at 0.02–0.05 wt% on dry furnish is generally sufficient to maintain first-pass retention above 80% in laboratory handsheet studies, though mill-scale retention depends on white-water solids, conductivity, and dissolved anionic load. On a single-wire fourdrinier, the addition of stiff PVA fiber alters wet-web contraction and can shift sheet shrinkage during wet pressing; when fiber content exceeds 8 wt%, slice opening and rush/drag settings are reset to compensate for a 1–3 percentage point change in wet-web strain. These production-setting observations apply to discrete synthetic reinforcing fibers and are not a substitute for grade-specific pilot data.
The primary distinction between VPK1702 and Kuraray binder-grade PVA products is thermal and solubility behavior. Binder-type PVA fibers, such as the VPB series, are designed to soften or partially dissolve in aqueous systems at temperatures between 60°C and 90°C and to act as thermoplastic bonding sites after drying. VPK1702 does not rely on this mechanism; it remains dimensionally stable and retains its fiber cross-section through drying cylinders and hot presses operating below 200°C. In a sheet containing both fiber types, the binder grade densifies the structure and increases internal bond, while the stiff structural grade contributes tensile strength, tear energy, and resistance to hot-water dimensional change. Compared with polyethylene terephthalate staple, VPK1702 carries surface hydroxyl groups that permit hydrogen bonding with cellulose; PET staple is hydrophobic and usually requires surfactant pretreatment or plasma treatment to disperse and retain in aqueous furnish. Compared with glass fiber, VPK1702 has lower density and does not increase refiner and forming-fabric wear to the same extent. Glass fiber retains mechanical integrity at temperatures above 300°C, whereas PVA fiber is limited by its 220°C thermal degradation boundary. Selection therefore depends on maximum process temperature and on whether the sheet must be resin-bonded or thermally bonded.
In wet-laid friction paper for automatic transmission clutches and torque converters, VPK1702 is added to cellulose and cotton linter furnish before resin saturation with phenolic or nitrile-butadiene latex systems. The stiff fiber reduces sheet densification during hot pressing and provides a porous, load-bearing network after the resin cure cycle. Production-scale cylinder-mold and inclined-wire lines have processed PVA structural fiber at stock temperatures up to 45°C without significant fiber dissolution or stickies deposition on forming fabrics. In high-porosity filtration media, VPK1702 is used at the lower end of the addition range, typically 2–8 wt%, to raise wet tensile retention and reduce dimensional creep during hot-water or hot-oil service. The fiber’s hydroxyl functionality also improves adhesion to phenolic resin and polyvinyl acetate binders. It is not compatible with strong oxidizing bleaching environments, and retention of PVA fiber can decline if the furnish pH remains above 9 for extended periods. Published data for VPK1702 in these specific end uses is limited, so application trials should be preceded by laboratory sheet forming and hygrothermal aging tests.
When VPK1702 is applied to low-basis-weight overlay paper and lightweight printing grades, the addition level is generally limited to 1–4 wt% because the 2 mm fiber length exceeds the shortest fiber dimension in high-count papers and can produce surface protrusions after high-linear-pressure calendering. In these grades the stiff fiber is not a bulk additive; it is applied to localize stress around converted edges and to improve tear initiation resistance. Laboratory sheet forming according to ISO 5269-2:2004 is used to verify dispersion quality because undispersed fiber bundles appear as fish-eye defects and reduce smoothness. A low-shear dispersion tank with 5–10 minutes residence time and 20–30°C water temperature is specified before injection into the approach flow. Published data for VPK1702 in high-count printing papers is limited; sheet property shifts are furnish-dependent and must be measured against an unfilled control.
Resin-saturated paper for gaskets and friction discs is calendered or hot-pressed at temperatures between 140°C and 180°C and pressures from 5 MPa to 25 MPa. In these operations, compressible cellulosic fiber can collapse and reduce porosity. VPK1702 acts as a stiff spacer because its compressibility under 25 MPa is lower than that of cellulose; sheet caliper retention and air permeability after pressing are higher when the PVA staple is present. At addition levels above 15 wt%, sheet formation can be disrupted unless the furnish is diluted or a dispersion aid is used. The 2 mm cut length is short enough to pass through standard headbox slice openings but long enough to contribute tensile load transfer after pressing. During resin impregnation, the polar PVA surface draws phenolic or latex binder to the fiber-matrix interface, reducing interfacial failure when the cured sheet is subjected to shear loading. The upper process limit remains the PVA thermal degradation onset near 220°C; prolonged exposure above this threshold produces discoloration and loss of tensile integrity.
Qualification of VPK1702 for a specific furnish requires a minimum test matrix covering fiber, furnish, and sheet evaluation.
| Parameter | Standard method | Applicable specimen |
|---|---|---|
| Linear density | ISO 1973:2021 | Single fiber |
| Breaking force and elongation | ISO 5079:2020 | Single fiber |
| Tensile properties of single textile fibers | ASTM D3822/D3822M-14(2020) | Single fiber |
| Laboratory sheet preparation | ISO 5269-2:2004 | Furnish containing VPK1702 |
| Tensile strength of paper | ISO 1924-2:2008 | Handsheet |
| Tear resistance | ISO 1974:2012 | Handsheet |
| Drainage resistance | ISO 5267-1:1999 | Furnish |
| Ash content | ISO 1762:2019 | Finished paper |