| HS Code | 379277 |
| Fibertype | Polyvinyl alcohol (PVA) high-strength monofilament |
| Typicallength | 12 to 30 mm |
| Diameter | 0.04 mm |
| Specificgravity | 1.30 |
| Tensilestrength | 1600 MPa |
| Elasticmodulus | 40 GPa |
| Elongationatbreak | 6% |
| Meltingpoint | 230 °C |
| Alkaliresistance | Excellent in high-alkali concrete environment |
| Waterabsorption | Less than 1% after immersion |
As an accredited Kuraray RMS702-PVA Fiber for Concrete Reinforcement factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Kuraray RMS702-PVA Fiber is packaged in 20 kg moisture-proof paper bags with PE liner, shrink-wrapped on pallets for safe transport. |
| Container Loading (20′ FCL) | 20′ FCL: Kuraray RMS702 PVA fibers, bagged/cartoned, securely palletized and braced for concrete reinforcement transport. |
| Shipping | Kuraray RMS702-PVA fibers ship in sealed, moisture-resistant bags or bulk containers to preserve integrity. They are non-hazardous under standard transport regulations, but protect from humidity and contamination. Standard freight options include palletized truck, container sea, or air freight with proper labeling and documentation. Ensure dry storage during transit and handling. |
| Storage | Store Kuraray RMS702 PVA Fiber in its original, unopened packaging in a cool, dry, well-ventilated area. Keep pallets off the ground and away from moisture, rain, and direct sunlight, as PVA is hygroscopic. Avoid exposure to excessive heat or open flames. Under proper conditions, shelf life is typically 12 months from date of manufacture. |
| Shelf Life | Shelf life is indefinite when stored in original, unopened packaging in a dry, cool environment, protected from moisture. |
Mechanized soft-ground tunneling programs frequently replace loose steel mesh in precast concrete segments with Kuraray RMS702 where tail-skin clearance creates reinforcement cage congestion and where brackish groundwater raises corrosion risk for embedded steel. Compliance framework: ASTM C1786/C1786M-19 for precast concrete tunnel linings, EN 14889-2:2006 for polymer fibre specification and conformity, and ASTM C1399/C1399M-21 for average residual flexural strength of fibre-reinforced concrete. Dosage is set from 0.5% to 1.2% by volume, equivalent to 6.5 kg/m³ to 15.6 kg/m³ at a class-typical PVA density of 1.30 g/cm³; batching tolerance should not exceed ±0.05% by volume. Production process: fibre is introduced after coarse and fine aggregate in a high-shear pan or planetary mixer and dry-blended for 60–90 seconds before cement and water contact to prevent balling; a polycarboxylate ether superplasticizer is then dosed to maintain a water-cement ratio of 0.30–0.35. Segment mould filling uses external vibrators tuned to avoid fibre orientation bias at gasket corners, and steam curing is limited to 50–60 °C until early-age demolding strength reaches 10–15 MPa. The terminal product is precast concrete tunnel lining segments for TBM-driven metro, utility, and drainage tunnels; RMS702 replaces crack-control steel mesh but does not substitute for structural hoop or radial bar cages where segment design requires them.
In wet-mix tunnel shotcrete, substitution of RMS702 for welded wire mesh alters in-place reinforcement distribution without increasing steel congestion at the nozzle. Dosage is set between 3.9 kg/m³ and 7.8 kg/m³, corresponding to 0.3% to 0.6% by volume, with the upper end reserved for permanent linings exposed to drill-and-blast vibration. Compliance framework: EN 14487-1:2005, ACI 506R-21, and ASTM C1116/C1116M-23 Type III synthetic fibre-reinforced concrete; fibre batch conformity is tested against EN 14889-2:2006. Production process: RMS702 is batched at the plant, conveyed through a positive-displacement shotcrete pump, and sprayed through a 50 mm nozzle at air pressure 0.4–0.7 MPa; alkali-free accelerator is injected at the nozzle at 3–8% by binder mass. The terminal product includes permanent single-shell tunnel linings, temporary access adit linings, slope stabilization panels, and retaining wall shotcrete. Rebound reduction is measurable but must be confirmed by site trial because pump distance, accelerator formulation, and nozzle angle dominate in-place fibre retention.
| Parameter | Test Specification | Target at 0.5 vol% RMS702 |
|---|---|---|
| 28-day compressive strength | EN 14488-1:2005 | 40–60 MPa project class |
| Average residual flexural strength | ASTM C1399/C1399M-21 | 2.0–3.0 MPa at deflection 1/150 span |
| Flexural toughness | ASTM C1550-20 | ≥25 J at 25 mm central deflection |
Where the acceptance criterion is not residual strength after cracking but tensile strain hardening under direct tension, Kuraray RMS702 is assessed through micromechanical screening rather than conventional dosage tables. In strain-hardening cementitious composites for seismic coupling beams and link slabs, the typical fibre addition is 2.0% by volume, equivalent to 26.0 kg/m³ at 1.30 g/cm³ fibre density. Published data for RMS702 in this specific ECC configuration is limited; qualification therefore requires direct uniaxial tensile testing of the target mix under displacement control and crack-pattern documentation, because datasheet tensile strength alone does not establish pseudo-strain-hardening. Compliance framework: ASTM C1116/C1116M-23 with project-specific direct tension acceptance tests using fixed-end coupons and gauge lengths near 100 mm. Production process: a high-shear mortar mixer produces a uniform cementitious paste with fine silica sand before fibre addition; RMS702 is added in small increments over 2–4 minutes to prevent clumping. If the batch certificate lists surface oil content below 0.8% by fibre mass, the pseudo-strain-hardening window may shift; ECC-grade PVA typically requires 0.8–1.2% surface oil to control fibre-matrix bond. Excess bond causes fibre rupture before hardening, while insufficient bond permits pullout without distributed cracking. Terminal product types include seismic coupling beams, damping link slabs, bridge deck replacement panels, and high-rise core wall coupling elements.
For jointless internal slabs, RMS702 is limited to plastic shrinkage and early thermal crack control, not structural load transfer. Addition ratio is 0.4% to 0.8% by volume, or 5.2 kg/m³ to 10.4 kg/m³; higher dosages risk poor trowel finish and surface fibre fuzzing. Compliance framework: ACI 360R-10, ASTM C1399/C1399M-21, and Concrete Society TR 34; specification should require residual strength at deflection of 1/150 span rather than first-crack strength. Production process: laser screed placement and power troweling with slump maintained at 100–150 mm. Terminal product types include internal warehouse floors, distribution-center slabs, and containment slabs with joint spacing extended only after sub-base friction and drying shrinkage calculations confirm crack-width control.
Chloride exposure in marine or hydraulic concrete creates a depassivation risk for steel fibres and mesh; RMS702 provides crack-width restraint without metallic corrosion. Addition ratio is 0.5% to 1.0% by volume, equivalent to 6.5 kg/m³ to 13.0 kg/m³. Compliance framework: EN 206:2013+A2:2021, ASTM C1202-22, and ASTM C1550-20 for flexural toughness; fibre conformity is governed by EN 14889-2:2006. Production process: slipform pavers for canal linings use low-slump concrete at 25–50 mm slump, while precast armour units use external vibration and 30–50 MPa class concrete. Terminal product types include revetment armour units, breakwater elements, stilling basin liners, and spillway aprons. RMS702 does not reduce chloride diffusion coefficient unless combined with low-permeability pozzolanic binders and a water-binder ratio below 0.40.
Repair overlays bonded to carbonated substrates require immediate suppression of plastic shrinkage cracking; RMS702 is introduced at the mobile mixer or pan mixer before polymer modifier addition. Addition ratio is 0.2% to 0.5% by volume, equivalent to 2.6 kg/m³ to 6.5 kg/m³; higher doses increase apparent viscosity and can reduce self-levelling behavior in thin-section repair mortars. Compliance framework: EN 1504-3:2006, ASTM C928/C928M-20a, and surface preparation to ICRI 310.2R-2013. Production process: substrate profile and moisture conditioning are followed by bond coat application, placement of low-shrinkage mortar or micro-concrete overlay, and curing membrane application. Terminal product types include patch repair mortars, thin bonded overlays, edge spall repairs, bridge deck repairs, and parking structure repairs. RMS702 does not compensate for debonding caused by substrate preparation defects or omission of a bond coat.
Competitive Kuraray RMS702-PVA Fiber for Concrete Reinforcement prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8615380400285 or mail to sales2@liwei-chem.com.
We will respond to you as soon as possible.
Tel: +8615380400285
Email: sales2@liwei-chem.com
Flexible payment, competitive price, premium service - Inquire now!
| Fibre class | Density (g/cm³) | Tensile strength (MPa) | Elastic modulus (GPa) | Elongation at break (%) | Surface character |
|---|---|---|---|---|---|
| High-modulus PVA | 1.30 | 1,560–1,620 | 41–43 | 6 | Hydrophilic |
| Lower-modulus PVA | 1.30 | 880–1,000 | 25–30 | 7–10 | Hydrophilic |
| Polypropylene | 0.90–0.91 | 300–700 | 3.5–10 | 15–25 | Hydrophobic |
| Steel | 7.85 | 1,000–2,600 | 200 | 1–4 | Not applicable |
| AR-glass | 2.68 | 1,700–3,500 | 72 | 2–3 | Hydrophilic |