Продукты

CRP Technology Windform RS Heavy Duty for SLS

    • Название продукта: CRP Technology Windform RS Heavy Duty for SLS
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
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    Спецификации
    Код ТН ВЭД 895769

    Как аккредитованный завод CRP Technology Windform RS Heavy Duty для SLS, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка Supplied in a sturdy, sealed 10 kg foil-lined bag to protect the SLS powder from moisture and contamination.
    Погрузка контейнера (20-футовый контейнер) Container Loading (20′ FCL): CRP Technology Windform RS Heavy Duty for SLS, palletized, evenly distributed, and secured for safe transport.
    Доставка CRP Technology Windform RS Heavy Duty for SLS ships as a non-hazardous, moisture-sensitive powder in sealed, labeled containers. Transport at ambient temperature, avoiding moisture, static, ignition sources, and extreme heat. Follow local regulations and include the SDS. Not classified as dangerous goods for transport.
    Хранение Store in original, sealed containers in a cool, dry, well-ventilated area away from direct sunlight, heat, sparks, and open flames. Keep dry; protect from moisture and humidity. Avoid dust generation and static discharge. Do not store near strong oxidizers. Maintain clear labels, follow supplier SDS, and keep away from food and drink. Ideal: 15–25 °C, low humidity.
    Срок годности Typically 12 months when stored in original, unopened packaging under cool, dry conditions, away from moisture, heat, and direct sunlight.
    Применение технологии CRP Windform RS Heavy Duty для SLS

    For under-hood air induction components built from Windform RS Heavy Duty on a 30 W CO₂ laser sintering platform, the processing window is narrower than for unfilled PA12 grades. The powder bed is maintained at 168–172°C and the layer thickness is fixed at 0.10 mm. Unsupported duct walls are designed to 2.0–3.5 mm and built with a virgin-to-refreshed powder ratio of 70:30. A recycled fraction above 50 wt% has been recorded on serial production jobs to reduce Z-direction elongation at break by more than 12% when tested in accordance with ISO 527-2:2012. Laser power is set between 19 W and 21 W, scan speed is held at 5,500–6,500 mm/s, and an outline scan correction of 0.12 mm is applied to preserve interlayer fusion at thickness transitions. Powder that has been exposed to shop air above 55% relative humidity for more than 24 h is pre-dried at 80°C for 4 h before loading. On a 200 × 250 × 330 mm build volume system, passive bed heating without zone-level infrared compensation can produce a 2–3°C edge-to-center gradient. This gradient causes differential densification and part bow in ducts longer than 150 mm. The condition is controlled by reducing scan speed in peripheral zones by 200–300 mm/s and maintaining nitrogen purge flow at 0.5–1.0 l/min. Terminal parts include cold-side intercooler duct adapters, EGR cooler flange brackets, and serpentine belt guards. These components are cycled from -40°C to 110°C per ISO 16750-3:2012 and immersed in diesel splash test fluids according to ISO 1817:2015. Dimensional checks after testing show unsupported wall warp below 1.0% of nominal length when the bed temperature and powder ratio are maintained. The supplier-blended reinforcement fraction in Windform RS Heavy Duty is not diluted with unfilled PA12 powder because dilution alters melt viscosity and interlayer bonding in thin-wall sections.

    What Process Adjustments Limit Warp on Thin-Wall Intake Plenums in Short-Run Motorsport Builds?

    Resonance-tested inlet plenums require wall thickness between 1.8 mm and 2.4 mm, with runner axes oriented in the XY build plane. Only unopened virgin Windform RS Heavy Duty powder is used for structural plenum builds because refreshed material reduces Z-axis Charpy impact retention below 85% of XY values in tests performed to ISO 179-1:2023. The process window on a 30 W CO₂ platform uses 0.10 mm layer height, laser power 20–22 W, scan speed 5,000–6,000 mm/s, and powder bed temperature 170–174°C. Scan speed above 6,500 mm/s produces insufficient energy density and local delamination at runner sidewalls. Scan speed below 5,000 mm/s produces over-penetration and fused internal channels that cannot be removed by media blasting. Internal channel offset is adjusted by -0.08 mm to account for melt-pool growth and to avoid narrowing runner walls. Terminal components include plenum chambers, velocity stack adapters, intercooler duct elbows, and wastegate control line retainers. Pressure decay is tested at 1.5 bar for 30 s under an internal OEM procedure. Published data for the specific Windform RS Heavy Duty burst-pressure limit in this configuration is limited. Fuel vapor exposure is evaluated with soak tests in a 50:50 volume ratio toluene/isooctane mixture at room temperature for 72 h following ISO 175:2010. Post-processing uses glass bead blasting at 3 bar and a conditioning step of 80°C for 2 h prior to dimensional inspection. The black surface finish is retained without secondary dyeing, which reduces variant control on short-run race team reorder batches.

    In robotic end-of-arm tooling, the build strategy prioritizes impact resistance over cosmetic surface quality. Windform RS Heavy Duty is processed at 0.12 mm layer thickness with laser power 17–19 W and scan speed 6,000–7,000 mm/s to reduce thermal bleed in gripper jaw teeth. Load-bearing gripper bodies use a virgin-to-refreshed ratio of 80:20. Non-load-bearing dress-pack brackets accept 60:40 because dimensional accuracy rather than mechanical endurance controls their service life. Wall thickness at jaw interfaces is held at 4.0–6.0 mm, and cross-drilled holes are post-machined to H7 tolerance because SLS bores below 4 mm are not stable under clamping fatigue. Terminal parts include parallel gripper jaws, vacuum generator brackets, docking fixture locators, and auxiliary coolant nozzle holders. Mechanical acceptance follows ISO 527-2:2012 tensile testing and ISO 179-1:2023 notched Charpy impact testing. Pre-drying at 80°C for 5 h stabilizes notched impact values when ambient RH during powder handling exceeds 55%. Continuous service above the supplier-published heat deflection temperature boundary is not recommended for gripper bodies under cyclic clamping load because creep in the polyamide matrix phase reduces clamping force retention over shift-length operation. End-effector assemblies are assessed under DIN EN ISO 12100:2010 risk assessment requirements before installation on collaborative or industrial robot arms.

    When Off-Highway Enclosures Must Endure Mud Spray, Hydraulic Oil Evaporation, and Daily Thermal Shock

    In off-highway equipment, protective covers for hydraulic valve blocks and ECU mounting plates are produced with a 50:50 virgin-to-refreshed powder ratio for non-structural panels. Snap-fit retainers and mounting bosses use 70:30 to maintain engagement force after repeated service cycles. The 30 W CO₂ sintering process runs at 0.15 mm layer thickness, laser power 21–23 W, scan speed 7,000–8,000 mm/s, and powder bed temperature 166–170°C. Terminal parts include hydraulic valve cover plates, PTO shaft guard access panels, and ECU isolation mounts. Environmental compliance is verified by exposure to hydraulic oil at 100°C for 96 h following ISO 1817:2015, and thermal shock from -30°C to 85°C for 100 cycles per ISO 16750-4:2010. Ingress protection is assessed at IP65 according to ISO 20653:2013, provided that seal surfaces are post-machined flat to 0.05 mm total indicated runout. Unsupported panel spans above 120 mm require ribbing or metallic backing; otherwise edge curl exceeds 1.2% of nominal length. Published data for the specific creep behavior of Windform RS Heavy Duty under continuous mud-caked heat soak is limited.

    Application segmentTest standardTest conditionAcceptance basis
    Under-hood air ductsISO 16750-3:2012-40°C to 110°C, 120 cyclesNo crack greater than 1 mm
    Motorsport plenumsISO 179-1:2023Notched Charpy 1eA, 23°CZ-axis not less than 85% of XY
    Robotic end-effectorsDIN EN ISO 12100:2010Machine safety risk assessmentFunctional safety release
    Off-highway enclosuresISO 20653:2013IP65 dust and water jetNo water ingress after seal machining
    Power tool housingsIEC 60068-2-31:2008Free fall 1 mNo fracture or loss of battery retention
    Packaging machinery partsISO 527-2:2012Tensile at 23°C, 50 mm/minBatch-to-batch tensile deviation not greater than 5%

    Short-run portable power tool housings are produced with a 70:30 virgin-to-refreshed ratio at 0.10 mm layer thickness and standard 30 W CO₂ parameters. Terminal parts include battery adapter cradles and motor housing end caps validated for drop shock per IEC 60068-2-31:2008. Snap-fit retention is checked after 20 assembly cycles, and the black as-built surface is accepted without coating for limited series.

    Low-Volume Functional Prototyping and Spare Part Replacement in Packaging Machinery

    For packaging machinery change-over parts, the material is processed at 0.10 mm layer thickness with laser power 18–20 W and scan speed 5,200–6,200 mm/s. A virgin-to-refreshed powder ratio of 80:20 is used for guide rails subject to product-contact friction and for vacuum jaw carriers that demand consistent part density. Terminal parts include filling valve manifolds, change-over guide rails, and sensor reflectors. These parts are cleaned with 70% isopropyl alcohol solution and checked for fit to stainless steel subframes within ±0.3 mm across a 150 mm datum length. Repeatability of the SLS process on a 30 W CO₂ platform is recorded via X-bar control charts. Published data for the specific coefficient of linear thermal expansion of Windform RS Heavy Duty in packaging washdown environments is limited.

    Бесплатная цитата

    Конкурентная технология CRP Windform RS Heavy Duty для цен SLS, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

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    Сертификация и соответствие требованиям
    Более подробное введение

    CRP Technology’s Windform RS Heavy Duty is a selective laser sintering feedstock based on a glass-fibre-reinforced polyamide matrix. The powder is positioned for functional prototypes and short-series production components in motorsport, aerospace, and industrial automation where thick sections and mechanical load require a higher safety margin than general-purpose polyamide 12. Manufacturer-published data for the RS Heavy Duty platform list density 1.24 g/cm³ to ISO 1183-1, tensile strength 55.2 MPa, tensile modulus 3715 MPa, elongation at break 3.4% to ISO 527-2, flexural strength 82.7 MPa and flexural modulus 3654 MPa to ISO 178, notched Izod impact 32.6 J/m to ASTM D256, and heat deflection temperature 187.3°C at 1.82 MPa to ISO 75-2. The grade therefore occupies a stiffness band above unfilled polyamide 12 powders but below carbon-filled Windform SP and Windform XT 2.0. Its main technical role is to reduce the trade-off between elevated-temperature resistance and impact tolerance in laser-sintered glass-filled parts.

    What Distinguishes the Heavy Duty Grade from Standard Windform RS and General-Purpose PA12?

    The primary distinction is filler architecture. General-purpose polyamide 12 SLS powders for low-load visual prototypes typically exhibit tensile modulus below 2.0 GPa and heat deflection temperatures below 150°C at 1.82 MPa when tested to ISO 75-2. The glass-filled RS Heavy Duty raises the modulus above 3.6 GPa and the heat deflection temperature above 185°C. The shift is not free: elongation at break falls to approximately 3.4%, and notch sensitivity increases relative to unfilled nylon. Compared with the standard Windform RS formulation, the Heavy Duty designation is claimed by the manufacturer to target thicker cross-sections with reduced curl and improved dimensional stability, although published comparative data for Heavy Duty versus standard RS is limited. The glass reinforcement increases melt viscosity during sintering, which narrows the build window and requires a part bed temperature closer to the crystallization onset. On production equipment this is typically 8–15°C below the powder melting peak, as measured by differential scanning calorimetry. Operators therefore observe higher sensitivity to powder refresh rate and chamber temperature drift than with unfilled polyamide 12.

    In production SLS systems using CO₂ lasers of 30–60 W and layer thickness of 0.12 mm, Windform RS Heavy Duty is processed with nitrogen inerting at oxygen levels below 1.5% by volume. The powder is supplied in sealed containers and is conditioned at 25–30°C and 30–40% relative humidity before charging. Moisture content above 0.12% by mass is not recommended because it reduces powder flowability and increases the incidence of impact-failed coupons. Refresh rates of 30–50% used powder to virgin powder are typical for glass-filled polyamide systems to maintain elongation at break above 3.0%. Lower refresh rates concentrate degraded polymer chains, causing a measurable drop in notched Izod impact and a rise in visible edge porosity. Build orientation is fixed by the anisotropic layer-bond strength of SLS: Z-oriented coupons tested to ISO 527-2 commonly retain 80–90% of the XY ultimate tensile strength. For components with hydraulic sealing faces, as-sintered surfaces of Ra 10–15 µm are not sufficient for elastomeric O-ring glands and require insert machining or sealing compound. Post-process heat treatment in a circulating oven at 150°C for 2 h can stabilise dimensions by relaxing internal stress gradients, but it may also increase surface oxidation if oxygen is not excluded.

    Thermal and Mechanical Specification Matrix

    Property Value Test method
    Density 1.24 g/cm³ ISO 1183-1
    Tensile strength at break 55.2 MPa ISO 527-2
    Tensile modulus 3715 MPa ISO 527-2
    Elongation at break 3.4% ISO 527-2
    Flexural strength 82.7 MPa ISO 178
    Flexural modulus 3654 MPa ISO 178
    Notched Izod impact 32.6 J/m ASTM D256
    Heat deflection temperature at 1.82 MPa 187.3°C ISO 75-2

    Because the Heavy Duty designation is a load-oriented positioning within the RS series, the matrix reports the published RS-family data. Lot-specific certificates of analysis should be used for application allowables, and mechanical property data are generated on specimens conditioned to 23°C and 50% relative humidity according to ISO 291 unless otherwise specified.

    Typical applications include motorsport ducting, intercooler end tanks, oil-cooler brackets, UAV gimbal supports, wind-tunnel test components, and assembly fixtures that cycle through paint-bake temperatures. In underhood service, the heat deflection temperature of 187.3°C at 1.82 MPa permits short-term thermal soak above 150°C, but continuous load at such temperatures requires creep testing because all semicrystalline polyamides lose matrix stiffness progressively before the HDT threshold. For structural brackets subjected to vibration, bolted-through load paths are preferred over threaded inserts because the notched Izod value of 32.6 J/m indicates lower crack-arrest capacity than unfilled nylon. Stainless-steel heat-set inserts with toothed flanks are used on samples when thread stripping torque exceeds 10 N·m. Dimensional control is influenced by layer orientation and part bed placement. Warpage on plates thicker than 10 mm can be held below 0.3% of the long axis when parts are orientated with the long axis parallel to the recoater travel and with a 0.2 mm shell offset applied to mating bores before shot peening. The grade is also used for soft-jaw tooling and robotic end-of-arm tools, where its density of 1.24 g/cm³ lowers moving mass relative to metal tooling while retaining enough compressive stiffness to resist deformation under clamping loads below 50 MPa.

    When Carbon-Filled Windform SP Is Over-Specified for Medium-Stiffness Hardware

    Carbon-filled Windform SP and Windform XT 2.0 are selected when the tensile modulus required by the assembly exceeds 8.0 GPa, as often occurs in thin-wall structural bracketry. The RS Heavy Duty grade is a lower-stiffness alternative. Its tensile modulus of 3.7 GPa reduces weight penalty versus carbon-filled systems only marginally, because density is higher than Windform SP by approximately 6%, but it avoids the electrically conductive nature of carbon-filled feedstock, which can accumulate in machine filter assemblies and complicate electrostatic discharge control. In addition, glass-filled RS Heavy Duty produces less tool wear in secondary CNC drilling and tapping than carbon-filled Windform SP, a relevant consideration for production runs exceeding 100 parts per batch where tool replacement intervals become part of cost-per-part. The thermal boundary is similar: both carbon-filled and glass-filled Windform grades are rated above 170°C HDT at 1.82 MPa, but carbon-filled grades may show anisotropic thermal expansion coefficients with differences between XY and Z approaching 25–35%, whereas glass-filled RS Heavy Duty is more orthotropic in-plane. This makes RS Heavy Duty preferable when parts must hold holes on multiple planes after thermal cycling.

    The manufacturer supplies RoHS and REACH statements for the Windform RS Heavy Duty powder. The material is not designed for food-contact use under FDA 21 CFR 177 or for potable water contact without an approved barrier coating. If the end-use environment requires UL 94 V-0, Windform FR2 or Windform FR1 should be specified instead of RS Heavy Duty, because the standard glass-filled grade can burn and should not be installed adjacent to ignition sources. Chemical exposure to aliphatic hydrocarbons, common in motorsport, generally follows the behaviour of polyamide 12 in ISO 175-based immersion tests, but exposure to glycol-water coolants at temperatures above 90°C can reduce tensile strength through plasticisation; published data for this specific configuration is limited. For outdoor UV exposure, the glass-reinforced matrix requires a black UV-stable coating or painted surface because unprotected polyamide oxidation will embrittle thin walls. Steam autoclaving is not recommended for load-bearing parts because repeated steam exposure can reduce elongation at break by a process-dependent amount and can promote hydrolytic chain scission in the polyamide matrix.

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