Продукты

Covestro Addigy PPU 77A 3D Printing Polyurethane Powder

    • Название продукта: Covestro Addigy PPU 77A 3D Printing Polyurethane Powder
    • Сайт Factroy: Округ Юду, Ганьчжоу, Цзянси, Китай
    • Запрос цены: admin@ascent-chem.com
    • Производитель: Ascent Petrochem Holdings Co., Limited
    • Свяжитесь сейчас
    Спецификации
    Код ТН ВЭД 133276

    Как аккредитованный завод Covestro Addigy PPU 77A для 3D-печати полиуретанового порошка, мы соблюдаем строгие протоколы качества - каждая партия подвергается строгим испытаниям для обеспечения последовательных стандартов эффективности и безопасности.

    Упаковка и хранение
    Упаковка
    Доставка
    Хранение
    Применение полиуретанового порошка для 3D-печати Covestro Addigy PPU 77A

    Addigy PPU 77A powder is processed in footwear manufacturing on polymer laser sintering machines equipped with a CO₂ laser source, typically at a build bed temperature between 100 °C and 110 °C for a TPU of 77 Shore A, although the exact setpoint must be mapped for each system because the thermal history of recycled powder alters the onset of melting. A virgin/recycled powder ratio of 50:50 is a common starting point for midsoles and cushioned insoles, but the recycled fraction should not exceed 40 wt% when the lattice wall thickness drops below 1.0 mm; above that level, batch-to-batch variation in melt flow and discoloration becomes measurable in unsupported struts. Energy density is maintained between 0.15 J/mm³ and 0.25 J/mm³, calculated from laser power, scan spacing, and scan speed, to limit residual porosity while avoiding thermal yellowing of the powder surface. The terminal components include gyroid-lattice midsoles, detachable insoles, and prototype outsole tread blocks. Hardness is verified under ISO 868, tensile properties under ISO 37, tear strength under ISO 34-1, abrasion loss under ISO 4649, and flex resistance under ISO 17707 for outsole sections. On production systems with open powder beds, the recoater blade is the primary failure source when ambient relative humidity exceeds 60% RH; powder fines agglomerate on the blade edge and produce drag lines across the part surface. Conditioning of the powder to a moisture content below 0.05 wt% in a dry-air hopper at 60 °C to 70 °C for 3 h to 4 h reduces this defect. Post-sintering dyeing of midsoles must account for surface porosity; solvent-borne dyes are not recommended because trapped solvent expands during the subsequent drying cycle and creates micro-blisters in the outer skin.

    What Limits the Use of Recycled Powder in Skin-Contact Orthotic Shells?

    For custom ankle-foot orthoses and prosthetic socket liners, the primary processing constraint is not mechanical strength but surface porosity caused by partially melted recycled particles, which creates microbial retention sites and complicates cleaning. The powder blend is therefore restricted to 30 wt% recycled material or less, and the powder is sieved through a 125 μm mesh before charging; the remaining fraction is virgin powder with controlled particle size distribution. Build orientation is adjusted so that the skin-facing surface is not generated parallel to the recoating direction, because layer lines from 100 μm to 120 μm steps remain detectable after vapour smoothing and can irritate the skin. The finished orthotic shell is tested for cytotoxicity under ISO 10993-5 and for skin sensitisation under ISO 10993-10 before clinical fitting; published data for this specific grade is limited, and device manufacturers should obtain a chemical compliance letter from the powder supplier for the lot used. Compression set is measured under ISO 815-1 at 23 °C and 70 °C, because plantar contact temperatures can exceed 35 °C during prolonged walking. The terminal product is bonded to textile straps or laminated with a breathable film; solvent-based adhesives containing methyl ethyl ketone must be avoided because ketone absorption can cause measurable swelling under ISO 1817 and alter the bonded interface. In clinical use, residual powder left inside internal lattice cavities is a documented failure mode; ultrasonic cleaning in warm water at 40 °C is used when lattice cell size is below 3 mm.

    Where compressed air and hydraulic return lines require flexible couplings, Addigy PPU 77A is selected over filament-extruded elastomers because powder-bed fusion avoids anisotropic interlayer weakness. Bellows, diaphragm seals, and suction cups are built as single-piece components with wall thicknesses between 1.2 mm and 2.5 mm; the powder blend is held at 70 wt% virgin material with 30 wt% refreshed powder to maintain sealing-lip tolerance within ±0.2 mm. Laser power is reduced by 10% to 15% relative to thick footwear parts to minimize thermal expansion in unsupported convolutions, and the scan strategy is rotated between layers to reduce warpage anisotropy. The sintered part must pass a leakage test according to the final assembly pressure class, while compression set under ISO 815-1 at 70 °C for 24 h is specified below 30% if the seal is to survive cyclic loading. The terminal components are used in pneumatic valve seats, pump diaphragms, and robot end-effector vacuum cups where contact with ISO 6743-4 mineral oils occurs; the TPU matrix should be tested for volume swell under ISO 1817 in the specific hydraulic oil grade before series production. A known production bottleneck is the removal of packed powder from convoluted bellows; compressed air alone is insufficient when the convolute depth exceeds three times the opening width.

    When Bellows Must Survive Cyclic Flexing at −10 °C

    Automotive constant-velocity joint boots and steering rack bellows made from powder-bed-fused TPU are evaluated for low-temperature flex fatigue because the amorphous phase remains flexible below 0 °C but the unsintered powder moisture level shifts the crystallization onset. The recommended powder handling condition for this segment is drying at 70 °C for 4 h to a moisture content below 0.03 wt% prior to processing; higher residual moisture produces micro-voids at the layer boundary and lowers tear strength under ISO 34-1. The component is built at a layer thickness of 110 μm, with scanning speed reduced to avoid spherulitic growth at the part boundary. The terminal boot is tested under ISO 1817 for grease resistance and under ISO 23529 for conditioning before dimensional measurement. In production, the main failure mode is not low-temperature cracking but fatigue crack initiation at the convolute root where the wall thickness drops below 1.0 mm; a minimum root radius of 0.8 mm is used in CAD design. The finished part must also comply with REACH Regulation (EC No 1907/2006) and RoHS Directive 2011/65/EU when supplied to automotive assembly lines.

    Application segmentReference standard or methodCritical measured propertyTypical acceptance boundary
    Footwear midsole/outsoleISO 868, ISO 37, ISO 34-1, ISO 4649, ISO 17707Hardness, tensile, tear, abrasion, flex resistance77 Shore A; no crack growth under specified flex cycles
    Orthotic shellISO 10993-5, ISO 10993-10, ISO 815-1Cytotoxicity, skin sensitisation, compression setNo cytotoxic or sensitising effect; set below design limit
    Industrial sealISO 815-1, ISO 1817Compression set, fluid swellBelow 30% after 24 h/70 °C; swell below assembly limit
    Automotive bootISO 34-1, ISO 1817, ISO 23529Tear, grease resistance, conditioningNo tear propagation at flex root; dimensional stability after ageing
    Protective padISO 4662, EN 1621-1, EN 1621-2Rebound, impact attenuationPass zone-specific impact level

    In protective equipment manufacturing, Addigy PPU 77A is processed as a graded lattice for impact pads used in ice hockey, football, and cycling gloves. The part is generated with a dense outer shell of 2.0 mm and an internal cell size of 4 mm to 6 mm; powder refresh ratios above 50 wt% are avoided because recycled material embrittles thin cell walls after repeated laser exposure. The sintered pad is characterised under ISO 4662 for rebound resilience and under EN 1621-1 for limb protectors or EN 1621-2 for back protectors, depending on the protection zone; published data for this specific grade is limited and end-product certification must be completed by the brand. The terminal product is bonded to textile covers using moisture-curing polyurethane adhesives; activation temperatures above 80 °C should be avoided to prevent dimensional relaxation of the lattice. A field issue observed on production machines is that unsintered powder trapped in small lattice chambers cannot be fully removed by compressed air alone; water-assisted ultrasonic cleaning at 40 °C is used when the lattice cell size is below 3 mm.

    Soft Robotics End-Effectors and the Problem of Powder Evacuation

    Soft robotics gripper pads and vacuum cups produced from Addigy PPU 77A are specified when the end-effector must repeatedly contact abrasive or oily surfaces without leaving marks or tearing. The powder blend for these parts is typically 60 wt% virgin and 40 wt% refreshed, with a layer thickness of 100 μm to maintain a smooth contact face; the captured powder inside thin-walled cup cavities is removed by a combination of reverse-air pulsing and gentle bead blasting with a non-abrasive polymer media. The contact face is tested for tear strength under ISO 34-1 and for friction coefficient against steel sheet under its intended normal load; no single external standard governs the coefficient, so internal test methods are used. In production, the most common failure is tearing of the cup rim when the wall thickness falls below 1.0 mm and the pick-up cycle exceeds 10 cycles/min; design rules require a minimum rim thickness of 1.5 mm. The terminal components are assembled onto pneumatic vacuum lines and are subject to REACH and RoHS compliance when exported to EU markets.

    Бесплатная цитата

    Конкурентные цены на полиуретановый порошок для 3D-печати Covestro Addigy PPU 77A, которые соответствуют вашему бюджету - гибкие условия и индивидуальные котировки для каждого заказа.

    Для получения образцов, цен или более подробной информации свяжитесь с нами по адресу +8618136850665 или отправить по почте admin@ascent-chem.com.

    Мы ответим вам как можно скорее.

    Телефон: +8618136850665

    Электронная почта: admin@ascent-chem.com

    Запрос

    Получите бесплатную сметуAscent Petrochem Holdings Co., Limited

    Гибкие условия оплаты, конкурентоспособные цены, первоклассное обслуживание — обращайтесь прямо сейчас!

    Сертификация и соответствие требованиям
    Более подробное введение

    Product designation Covestro Addigy PPU 77A identifies a thermoplastic polyurethane powder supplied for selective laser sintering and laser-based powder-bed fusion processes. The grade name carries a nominal indentation hardness of 77 Shore A as determined by ISO 7619-1, placing it among flexible elastomer powders rather than rigid polyamide feedstocks. Representative technical data from supplier literature list a density of 1.07–1.10 g/cm³ under ISO 1183-1, tensile strength in the range of 8–9 MPa under ISO 37, and tear strength of 30–35 kN/m under ISO 34-1. Elongation at break typically exceeds 300% in the XY build direction. The powder is handled as a dry, free-flowing polymer medium at layer thicknesses of 0.10–0.12 mm. Because the powder bed itself supports overhangs, no separate support material is required for most part geometries, which is one operational difference from vat photopolymerization and filament extrusion.

    What distinguishes this grade from rigid polyamide and higher-hardness TPU powders?

    Comparative evaluation against unfilled polyamide 12 SLS media shows a fundamentally different mechanical response. PA12 powders typically produce parts with tensile modulus in the 1500–1800 MPa range and elongation at break of 15–25%, whereas this polyurethane grade remains elastomeric with tensile modulus below 100 MPa and elongation above 300%. The difference arises from the segmented polyurethane chain architecture: soft polyol domains lower modulus and increase recovery, while hard urethane domains contribute tensile strength and thermal resistance. Higher-hardness TPU powders at 90 Shore A or 95 Shore A show higher tensile modulus and reduced viscoelastic damping but can preserve similar powder-bed processing behavior. Table 1 summarizes representative comparative values from supplier technical literature.

    Property Addigy PPU 77A Unfilled PA12 SLS medium Higher-hardness TPU SLS medium
    Hardness 77 Shore A (ISO 7619-1) 75 Shore D (ISO 7619-1) 90 Shore A (ISO 7619-1)
    Tensile strength 8–9 MPa (ISO 37) 45–48 MPa (ISO 527-2) 10–14 MPa (ISO 37)
    Elongation at break >300% (ISO 37) 15–25% (ISO 527-2) 200–350% (ISO 37)
    Tensile modulus 60–90 MPa (ISO 37) 1500–1800 MPa (ISO 527-2) 100–160 MPa (ISO 37)

    Mechanical anisotropy between XY and Z directions remains measurable. Builds produced with 0.10 mm layers on 10.6 µm CO₂ laser systems show Z-direction elongation commonly 25–40% lower than XY values because interlayer coalescence is limited by the narrow melting window of the polyurethane. Flexural fatigue testing of lattice structures built from this powder has been conducted using coupon geometries derived from ISO 527-2 and ASTM D638; however, lot-specific fatigue data are limited. Designers therefore apply a knock-down factor to Z-direction tensile properties when qualifying thin hinge features or living-spring geometries.

    When powder-bed temperature control drifts beyond the sintering window

    The process window for this grade is narrower than that of semi-crystalline polyamide powders. Polyurethane powder develops adequate melt coalescence only when the part bed is held between the onset of melting and the onset of crystallization. A temperature offset of 2–3 °C above the control plateau can cause excessive melt viscosity reduction, resulting in edge curl, part growth, and surface gloss. A drop of similar magnitude lowers interlayer adhesion and produces brittle interlayer fracture under ISO 34-1 tear testing. Production machines therefore require closed-loop part-bed thermography and powder surface temperature control in 1 °C increments. Laser energy density is adjusted as (P)/(v·s), where P is laser power, v is scan speed, and s is scan spacing. For this elastomer powder, starting energy densities below 0.10 J/mm² are typical; excessive energy density causes dimensional drift, over-bright surfaces, and evolution of volatile degradation products. Table 2 lists representative starting parameters for flexible TPU powders, not a grade-specific specification.

    Parameter Representative range Reference condition
    Build chamber temperature 85–105 °C Closed-loop IR thermography
    Layer thickness 0.10–0.12 mm Repeated recoating cycle
    Laser power 25–40 W 10.6 µm CO₂ source
    Scan spacing 0.15–0.25 mm Contoured scan strategy
    Scan speed 8–12 m/s Line-scan optics
    Energy density 0.05–0.10 J/mm² Calculated from laser parameters

    The powder bed is not uniformly heated across large build platforms. In production-scale equipment, regional temperature differences of 3–5 °C have been observed between the center and corner zones during preheating. These gradients affect melt coalescence and produce anisotropic shrinkage. Calibration builds should include a full-height tensile bar grid to map XY and Z property variation before committing to production layouts. Process failure modes include edge curl in thick rigid sections adjacent to thin elastomeric zones, orange-peel surface defects from insufficient energy density, and interlayer delamination from premature cooling after part completion. Parts removed before the part-cake temperature falls below 40–50 °C can exhibit permanent warpage and lower crystallinity.

    Drying is a separate process boundary. Polyurethane powders absorb surface moisture that can depress melt flow during sintering and increase void content. After storage at relative humidity above 60%, a dehumidified oven at 70–80 °C for 4–6 hours is commonly used for moisture conditioning. Drying above 85 °C is not recommended because particle surface softening can accelerate powder agglomeration and reduce flowability. Moisture content should be monitored by coulometric Karl Fischer titration or equivalent method before starting a build batch.

    A direct application area is the production of fatigue-resistant lattice structures for footwear, orthotic interfaces, protective pads, and flexible hose or duct elements. Parts built with 2–3 mm wall thickness and 0.10–0.12 mm layers have been used in functional prototypes of midsole inserts and padded guards. Hardness of 77 Shore A allows conformability while retaining resistance to compression set. Under ISO 815-1, compression set after 22 h at 70 °C is typically below 25–35%, depending on post-build conditioning. In orthotic shells and prosthetic liner channels, the unsintered powder supports undercuts and complex lattice cavities. No solvent dissolution step is required, but depowdering of blind channels smaller than 2 mm is difficult and requires compressed air at 0.4–0.6 MPa plus manual brushing. Published data for end-use load cycles on this specific powder are limited; fatigue life is therefore validated through printed coupon testing rather than extrapolated datasheet values.

    Powder refresh ratio, recoater blade shear, and lot-to-lot particle size variation

    In continuous production, virgin powder is mixed with reclaimed overflow and part-cake powder. Uncontrolled refresh ratios above 50% reclaimed material can shift particle size distribution and reduce flowability because recycled polyurethane particle surfaces are partially sintered and less spherical than virgin material. Recoater speed and blade edge condition influence layer density; a worn blade can reduce packed density by 3–5%, producing porosity and low interlayer tear strength. Lot-to-lot variation in median particle size of ±10 µm is possible. Laser diffraction testing under ISO 13320 or sieve analysis should be used to monitor incoming batches. Production data indicate that maintaining a refresh ratio of 30–50% virgin powder and using hardened recoater blades above 50 HRC reduces build failures in long unattended operations. Published equipment-specific field data for this exact grade are limited; process validation on the intended SLS platform is therefore required before serial production.

    Blending with foreign powders is not recommended. Mixing this polyurethane powder with unmodified polyamide 12 powder or with TPU grades having different hard-segment melting ranges produces heterogeneous melt fronts and weak interlayer interfaces. The result is reduced tear strength and higher variability in elongation at break. If a hardness between 77 Shore A and another TPU grade is needed, the sintered part geometry should be adjusted instead of dry-blending powders, because particle-level fusion is composition-sensitive.

    Regulatory and handling boundaries must be confirmed against current Covestro material safety and product datasheets. The powder is not represented as a food-contact or implantable medical grade unless the processor obtains specific compliance certification under FDA 21 CFR or ISO 10993 protocols. Thermal decomposition during laser processing can release isocyanate-derived volatiles; exhaust and filtration should be sized for polyurethane laser processing. Powder disposal, workplace exposure limits, and air emissions require local regulatory review and, where applicable, REACH compliance documentation. Parts should not be placed into service until post-build conditioning, moisture content, and Z-direction mechanical testing have been completed against the targeted application load profile.

    ТОП