ABSplus™ P430

Category: ABS , Acrylonitrile Butadiene Styrene
Manufacturer: Stratasys
Trademark: ABSplus™
Fillers: -
Ports: Qinzhou, Shekou, Shanghai, Ningbo
Delivery Terms FOB, CIF, DAP, DAT, DDP
PDF: B0gncZ_ABSplus-P430.pdf
PRICE: ​Order Products​ email   sales@su-jiao.com
Wechat: WECHAT
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Production-Grade Thermoplastic for Dimension 3D Printers

ABSplus is a true production-grade thermoplastic that is durable enough to perform virtually the same as production parts. When combined with Dimension 3D Printers, ABSplus is the ideal solution to printing 3D models in an office environment.
General Information
Features
  • Durable
Uses
  • Modeling Material
UL File Number
  • E345258
Appearance
  • Black
  • Blue
  • Dark Green
  • Dark Grey
  • Ivory
  • Orange
  • Red
  • White
  • Yellow
Processing Method
  • 3D Printing, Fused Filament Fabrication (FFF)
PhysicalNominal ValueUnitTest Method
Specific Gravity 1.04g/cm³ASTM D792
Thickness - Layer Capability 177.8 to 330.2µm
MechanicalNominal ValueUnitTest Method
Flexural Delamination 31.0MPaASTM D790
ElectricalNominal ValueUnitTest Method
Volume Resistance 16.0E+13 to 3.0E+14ohmsASTM D257
MechanicalNominal ValueUnitTest Method
Tensile Modulus 2(3.18 mm)2280MPaASTM D638
Tensile Strength 3(3.18 mm)36.5MPaASTM D638
Tensile Elongation 4(Break, 3.18 mm)3.0%ASTM D638
Flexural Modulus 52210MPaASTM D790
Flexural Strength 652.4MPaASTM D790
ImpactNominal ValueUnitTest Method
Notched Izod Impact (23°C)110J/mASTM D256A
ThermalNominal ValueUnitTest Method
Deflection Temperature Under Load ASTM D648
    0.45 MPa, Unannealed 95.6°C
    1.8 MPa, Unannealed 82.2°C
Glass Transition Temperature 108°CDMA
CLTE - Flow 8.8E-5cm/cm/°CASTM E831
ElectricalNominal ValueUnitTest Method
Dielectric Strength 7
    -- 80.10 to 0.32kV/mmASTM D149
    -- 28kV/mmIEC 60112
Dielectric Constant 92.60 to 2.90ASTM D150
Dissipation Factor 104.6E-3 to 5.3E-3ASTM D150
FlammabilityNominal ValueUnitTest Method
Flame Rating (2.29 mm)HBUL 94
Note Message
1 .All Electrical Property values were generated from the average of test plaques built with default part density (sparse). Test plaques were 4.0 x 4.0 x 0.1 inches (102 x 102 x 2.5 mm) and were built both in the flat and vertical orientation. The range of values is mostly the result of the difference in properties of test plaques built in the flat vs. vertical orientation.
2 .Type I, 5.1 mm/min
3 .Type I, 5.1 mm/min
4 .Type I, 5.1 mm/min
5 .Method I (3 point load), 1.3 mm/min
6 .Method I (3 point load), 1.3 mm/min
7 .All Electrical Property values were generated from the average of test plaques built with default part density (sparse). Test plaques were 4.0 x 4.0 x 0.1 inches (102 x 102 x 2.5 mm) and were built both in the flat and vertical orientation. The range of values is mostly the result of the difference in properties of test plaques built in the flat vs. vertical orientation.
8 .Method A (Short-Time)
9 .All Electrical Property values were generated from the average of test plaques built with default part density (sparse). Test plaques were 4.0 x 4.0 x 0.1 inches (102 x 102 x 2.5 mm) and were built both in the flat and vertical orientation. The range of values is mostly the result of the difference in properties of test plaques built in the flat vs. vertical orientation.
10 .All Electrical Property values were generated from the average of test plaques built with default part density (sparse). Test plaques were 4.0 x 4.0 x 0.1 inches (102 x 102 x 2.5 mm) and were built both in the flat and vertical orientation. The range of values is mostly the result of the difference in properties of test plaques built in the flat vs. vertical orientation.
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