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Rogers Arlon LW201C##FR-P0 Silicone Rubber is a high-consistency silicone elastomer grade configured for flame-resistant sealing, electrical insulation, and industrial padding applications. The part number encodes the base compound LW201C, a dimensional or thickness placeholder ##, and a flame-retardant/post-cure suffix FR-P0. The FR designation is read as a flame-retardant package; the P0 suffix is read as a manufacturer-defined post-cure state. Because the exact grade-specific tensile, elongation, and electrical values are not published in every public summary, procurement specifications should be controlled by the current manufacturer's technical data sheet, the UL yellow card where applicable, and incoming batch test certificates rather than by values inferred from non-FR LW-series materials. The compound is used in solid calendered sheet, compression-molded parts, transfer-molded parts, and laminated composite constructions.
The product is specified when a balance of silicone thermal stability and reduced fire propagation is required. The ## placeholder determines the ordered sheet thickness or width; final part drawings should state the post-cured thickness because orientation and filler loading can produce a thickness reduction of 1% to 3% after cure and post-cure. Incoming sheet should be measured with a dead-weight micrometer in accordance with ASTM D3767, and thickness variation across the sheet should be recorded at three positions: both edges and center. Because flame-retardant fillers increase the sensitivity of gauge formation during sheeting, edge-to-center thickness control is a more useful incoming inspection criterion than average thickness alone.
Flame-retardant silicone sheet is qualified by a combination of mechanical, electrical, and combustion tests. Vertical burn performance is commonly reported to UL 94; a V-0 rating is meaningful only when the certified thickness and conditioning protocol are stated. Oxygen index is tested to ASTM D2863, with many filled flame-retardant silicone grades falling between 28% and 35%, although published data for this specific configuration is limited. Tensile stress and elongation at break are determined to ASTM D412 using Die C specimens at a crosshead speed of 500 mm/min. Hardness is measured with ASTM D2240 Type A on a 6 mm stack after 5 s dwell. Dielectric strength is tested to ASTM D149, and volume resistivity is tested to ASTM D257. The values recorded on the batch certificate are not interchangeable with values obtained from a different sheet thickness or post-cure condition.
High-temperature service classification is generally assessed by heat aging under ASTM D573 or by the relative thermal index approach of UL 746B. Flame-retardant fillers can shift the upper service behavior, particularly in oxidative environments, because filler degradation can occur earlier than base-polymer chain scission. Long-term aging must be run on the actual cured sheet thickness to avoid underestimating core oxidation. ASTM D2990 compression stress relaxation can be used to compare seal force retention at the maximum continuous operating temperature; relying on room-temperature compression set data alone overestimates field performance.
Production-scale processing of filled flame-retardant silicone requires tighter thermal control than non-FR silicone because the filler increases viscous heat generation. A two-roll mill with a friction ratio of 1.2:1 and a roll surface temperature maintained between 25 °C and 30 °C is used to soften the stock before calendering. The compound is sheeted to the ordered thickness and press-cured at 5 MPa to 10 MPa to collapse porosity; this pressure window is selected to avoid excessive internal stress that can produce cure-related stress relaxation downstream. Post-curing in a forced-air oven is required for the P0 condition. If post-cure is omitted, residual cure by-products remain, and compression set measured after 22 h at 175 °C can be 40% to 60% higher in thick sections. Batch-to-batch viscosity drift is controlled with Mooney viscosity to ASTM D1646, and maximum cure torque is monitored on an oscillating disc rheometer.
On a production calender with a 1,600 mm roll face width, the higher roll-separating force generated by the filled stock can create edge gauge bands if roll crown and cross-axis temperature balance are not correctly set. Operators typically record sheet thickness at three points across the width and reject sheet when thickness variation exceeds ±10% of nominal. The calender roll surface temperature should be controlled within ±3 °C across the roll face to prevent localized viscosity differences that translate into thickness variation. These process controls are not specific to one product but are particularly important for flame-retardant silicone because the filled compound has a shorter open processing window than an unfilled silicone of the same hardness.
| Property / Test | Method | Typical filled flame-retardant silicone class range | Control note |
|---|---|---|---|
| Hardness | ASTM D2240 Type A | 50–70 | Measured on 6 mm stack after 5 s |
| Tensile strength | ASTM D412 Die C | 6 MPa–10 MPa | Crosshead speed 500 mm/min |
| Elongation at break | ASTM D412 | 200%–500% | Flame-retardant fillers typically reduce elongation |
| Specific gravity | ASTM D792 | 1.30–1.45 | Increases part weight relative to non-FR silicone |
| Vertical burn | UL 94 | V-0 at certified thickness | Thickness and conditioning per UL yellow card |
| Limiting oxygen index | ASTM D2863 | 28%–35% for many FR silicone grades | Published data for this specific configuration is limited |
| Dielectric strength | ASTM D149 | 18 kV/mm–22 kV/mm for 1–2 mm sheet | Decreases with thickness and entrapped porosity |
| Volume resistivity | ASTM D257 | 1014 Ω·cm–1015 Ω·cm | FR fillers may reduce the value by one order of magnitude |
Compared with general-purpose high-consistency silicone rubber, the FR-P0 variant trades some mechanical toughness for flame resistance. Flame-retardant fillers raise compound viscosity and specific gravity; die tear strength measured to ASTM D624 is commonly reduced by 20% to 40% at equivalent hardness against a non-FR silicone of the same base polymer. This reduction is controlled by filler particle size distribution, silane surface treatment, and dispersion quality. If the material is used as a compression pad in an electronic enclosure, elongation and tear loss may limit the ability to maintain a screw-torque clamping load during repeated thermal cycling. Compression set tested to ASTM D395 Method B after 22 h at 175 °C should be specified below 25% for applications requiring long-term seal force retention.
Solid FR silicone sheet differs from closed-cell silicone sponge in load-deflection behavior and moisture sealing. Closed-cell sponge is selected when low closure force and high recovery are required; solid sheet is selected when water-vapor transmission and environmental sealing are the primary requirements. Compared with liquid silicone rubber, high-consistency FR silicone is processed by milling and calendering rather than closed-loop injection molding. Liquid silicone rubber is easier to automate in high-volume molding, but high-consistency sheet is better suited to low-to-medium volume calendered sheet, laminated gaskets, and die-cut parts.
The base cure chemistry of the P0 designation must be confirmed from the manufacturer's technical data sheet. If the grade is addition-cure, amines, sulfur-containing compounds, organotin, and acetylene act as platinum catalyst poisons; contact with contaminated tooling can produce soft spots. If the grade is peroxide-cured, residual acidic decomposition products must be removed by post-curing to avoid corrosion of copper or brass in sealed electrical enclosures. This difference from general-purpose silicone is operationally significant because the flame-retardant filler can mask some cure problems: a soft spot may not be visible after slitting but will appear as low tensile or low dielectric strength at final inspection.
Fluorosilicone rubber is selected when the application includes hydrocarbon oil exposure; standard silicone rubber generally exhibits higher volume swell in hydrocarbon fluids. When comparing materials, ASTM D471 immersion in IRM 901 oil should be run for the intended temperature and exposure period. If oil resistance is not required, flame-retardant silicone offers broader low-temperature flexibility than many fluorosilicone compounds with similar fire-resistance additives.
Flame-retardant silicone rubber is not automatically qualified for passenger transit or aircraft use. The completed part must be tested to the relevant assembly-level fire-load specification. In European rail interiors, candidate materials are evaluated under EN 45545-2 hazard-level requirements for smoke density and heat release using ISO 5660-1 cone calorimetry and ISO 5659-2 smoke-density apparatus. North American rail applications may reference NFPA 130; aerospace interior materials are often tested to FAR 25.853 and ASTM E662. The thickness and substrate used in the final part, not the raw sheet alone, determine the result. Glass-fabric laminated silicone constructions are produced by laminating 0.3 mm to 0.5 mm silicone sheet onto a pretreated substrate in a calender nip, followed by autoclave curing at 120 °C to 180 °C to establish bond. Bond strength should be measured by ASTM D903 180° peel testing because visual inspection alone cannot detect weak interfacial adhesion.
Smoke density and heat release are influenced by decomposition of the flame-retardant filler package. Metal hydrate fillers release water vapor, which reduces heat release but can increase moisture uptake in the cured part. If the sheet is stored at relative humidity above 60%, pre-drying at 60 °C to 80 °C for 1 h to 2 h is required before lamination to prevent interfacial bubbles. Published data for this specific configuration is limited; a pre-production trial using the final thickness and substrate is necessary when the material is intended for low-smoke mass-transit components. The trial should include crossbond values and a full-thickness fire test, because thin-sheet fire test results may not transfer to a laminated sandwich that uses a different glass fabric or thicker adhesive interlayer.
Cure-rate reproducibility depends on dispersion of the flame-retardant additive and the thermal history of the compound. Incomplete dispersion produces hard agglomerates that can open under tensile loading and reduce dielectric strength. Moving-die rheometer testing is used to record minimum torque, maximum torque, and t90 cure time. Flame-retardant filler lot changes may shift t90 by 5% to 15% and require corresponding adjustment of the press cure cycle. Cold stock should be conditioned to ambient temperature before milling because cold material can crack and trap air, leading to voids that are not visible until after post-cure. The uncured compound should not be processed on a mill that has been used with sulfur-cured rubber without thorough cleaning; cross-contamination can produce localized cure-rate drift.
Shelf life of uncured high-consistency silicone is typically 6 months from date of manufacture when stored below 25 °C in a dry environment. Storage below 5 °C can extend usable life but requires conditioning to prevent condensation on the surface of the slab. Flame-retardant grades may stiffen during storage because fillers can aggregate or absorb moisture; this is not automatically a material failure, but Mooney viscosity should be checked before production release. The compound should not be stored in direct sunlight, near UV sources, or under heavy pallet loads because pressure can induce cold flow and liner adhesion. In production planning, the fill date and supplier lot number should be recorded on the job traveler to permit traceability if a cure-rate or durometer deviation appears in a particular batch.
| Application region | Reference standard | Test focus | Raw sheet vs final part |
|---|---|---|---|
| Electric/electronic insulation | UL 94, ASTM D149 | Flame propagation, dielectric strength | Final part at specified thickness |
| European rail interior | EN 45545-2, ISO 5659-2 | Smoke density, heat release | Completed sandwich, not raw sheet |
| Aerospace interior | FAR 25.853, ASTM E662 | Vertical burn, smoke optical density | Conditioned finished part |
| Industrial gasketing | ASTM D412, ASTM D395 | Tensile strength, compression set | Cured test slab or compression-set buttons |
| Food contact, if required | 21 CFR 177.2600 | Extraction limits | Fully cured slabs |
Adhesion to metal or plastic requires a silane-based primer compatible with the cure system. Without primer, cured silicone retains a low-surface-energy release character and peel adhesion will be negligible. For bonded gasket applications, primer selection must be verified by ASTM D3163 lap shear or ASTM D903 180° peel testing on the production substrate. Substrates must be cleaned with isopropanol and dried for 30 min before primer application. Hot alkaline cleaning solutions above 60 °C should be avoided because hydrated flame-retardant fillers can be attacked and produce surface chalking. If the part is exposed to ultraviolet light outdoors, a UV-stable coating or carbon-black-filled grade should be selected; plain flame-retardant silicone may retain bulk mechanical properties but can show surface degradation after extended direct exposure.