About |
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VALOX 357X is an impact modified, flame retarted PBT+PC blend. Applications like bobbins, switches and enclosures.&& |
Product Description | |
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Supplier | SABIC |
Generic | PC+PBT |
Material Status | Commercial: Active |
Features | High impact resistance,Flame Characteristics,V-0,5VA |
Availabilitys | Europe |
Process Methods | Injection Molding |
Technical Data | |||
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IMPACT | Nominal value | Unit | Test method |
Charpy Notched Impact Strength | |||
-30℃ | 20 | kJ/m² | ISO 179/1eA, ISO 179/2C |
23℃ | 45 | kJ/m² | ISO 179/1eA |
23℃ | 40 | kJ/m² | ISO 179/2C |
Charpy Unnotch Impact strength | ISO 179/1eU, ISO 179/2U | ||
23℃ | 无断裂 | ||
Impact strength of cantilever beam notch | |||
-30℃ | 150 | J/m | ASTM D256 |
0℃ | 190 | J/m | ASTM D256 |
23℃ | 500 | J/m | ASTM D256 |
-30℃ | 10 | kJ/m² | ISO 180-1A |
0℃ | 20 | kJ/m² | ISO 180-1A |
23℃ | 40 | kJ/m² | ISO 180-1A |
Notched impact strength of cantilever beam | ASTM D4812, ISO 180/1U | ||
-30℃ | 无断裂 | ||
Dart impact equipped with measuring instruments | |||
23℃,Total Energy | 35.0 | J | ASTM D3763 |
THERMAL | Nominal value | Unit | Test method |
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Hot deformation temperature | |||
0.45 MPa, unannealed, 3.2 mm | 130 | ℃ | ASTM D648 |
0.45 MPa, unannealed, 100 mm span | 135 | ℃ | ISO 75-2/Be |
0.45 MPa, unannealed, 64 mm span | 130 | ℃ | ISO 75-2/Bf |
1.8 MPa, unannealed, 3.2 mm | 85.0 | ℃ | ASTM D648 |
1.8 MPa, unannealed, 100 mm span | 85.0 | ℃ | ISO 75-2/Ae |
1.8 MPa, unannealed, 64 mm span | 85.0 | ℃ | ISO 75-2/Af |
Vicat Softening Temp | |||
B50 | 145 | ℃ | ASTM D1525, ISO 306/B50 13 22 |
A50 | 180 | ℃ | ASTM D1525,ISO 306 |
B120 | 150 | ℃ | ISO 306/B120 |
Ball pressure test | |||
125℃ | Pass | IEC 60695-10-2 | |
Linear coefficient of thermal expansion | |||
MD:-40~40℃ | 9.2E-5 | 1/℃ | ASTM E831 |
MD:23~80℃ | 1.0E-4 | 1/℃ | ISO 11359-2 |
TD:-40~40℃ | 8.4E-5 | 1/℃ | ASTM E831 |
TD:23~80℃ | 1.0E-4 | 1/℃ | ISO 11359-2 |
Thermal conductivity coefficient | 0.17 | W/m/K | ISO 8302 |
Relative temperature index | 140 | ℃ | UL 746 |
Electrical performance | 120 | ℃ | UL 746 |
Impact mechanical performance | 120 | ℃ | UL 746 |
Electrical performance | Nominal value | Unit | Test method |
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Surface resistivity | > 1.0E+15 | ohms | IEC 60093 |
Volume resistivity | > 1.0E+15 | ohms·cm | ASTM D257,IEC 60093 |
Dielectric strength | |||
1.6 mm in oil | 25 | kV/mm | ASTM D149 |
3.2 mm in oil | 17 | kV/mm | ASTM D149 |
0.8 mm in oil | 34 | kV/mm | IEC 60243-1 |
1.6 mm in oil | 25 | kV/mm | IEC 60243-1 |
3.2 mm in oil | 17 | kV/mm | IEC 60243-1 |
Dielectric constant | |||
1 MHz | 3.00 | ASTM D150,IEC 60250 | |
50 Hz | 3.00 | IEC 60250 | |
60 Hz | 3.00 | IEC 60250 | |
Dissipation factor | |||
1 MHz | 0.013 | ASTM D150 | |
50 Hz | 2.0E-3 | IEC 60250 | |
60 Hz | 2.0E-3 | IEC 60250 | |
1 MHz | 1.3E-3 | IEC 60250 | |
Arc resistance | PLC 6 | ASTM D495 | |
Compared to the leakage tracing index | PLC 3 | UL 746 | |
Compared to the leakage tracing index | IEC 60112 | ||
CTI | 225 | V | |
Solution B | 100 | V | |
High Arc Burning Index (HAI) | PLC 0 | UL 746 | |
High voltage arc marking rate | |||
HVTR | PLC 3 | UL 746 | |
Hot wire ignition | |||
HWI | PLC 3 | UL 746 |
FLAME CHARACTERISTICS | Nominal value | Unit | Test method |
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Flame retardant level | UL 94 | ||
0.75 mm | V-0 | ||
2.50 mm | 5VA | ||
Glowing wire flammability index | |||
1.0 mm | 960 | ℃ | IEC 60695-2-12 |
Extreme oxygen index | 30 | % | ISO 4589-2 |
MECHANICAL | Nominal value | Unit | Test method |
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Rockwell hardness | |||
R-level | 115 | ISO 2039-2 | |
Ball hardness | |||
H358/30 | 115 | MPa | ISO 2039-1 |
Tensile modulus | |||
— | 2000 | MPa | ASTM D638 |
— | 2200 | MPa | ISO 527-1-2 |
tensile strength | |||
yield | 50.0 | MPa | ASTM D638 |
yield | 50.0 | MPa | ISO 527-2/50 |
fracture | 40.0 | MPa | ASTM D638 |
fracture | 40.0 | MPa | ISO 527-2/50 |
Tensile strain | |||
yield | 5.0 | % | ASTM D638 |
yield | 5.0 | % | ISO 527-2/50 |
fracture | 30 | % | ASTM D638 |
fracture | 30 | % | ISO 527-2/50 |
Bending modulus | |||
50 mm span | 2100 | MPa | ASTM D790 |
— | 2000 | MPa | ISO 178 |
bending strength | |||
— | 80.0 | MPa | ISO 178 |
Yield, 50 mm span | 78.0 | MPa | ASTM D790 |
Taber abraser | |||
1000 cycles, 1000 g, CS-17 wheels | 33.0 | mg | Internal Method |
PHYSICAL | Nominal value | Unit | Test method |
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Density | 1.34 | g/cm³ | ASTM D792, ISO 1183 |
Melt Flow Rate | ASTM D1238 | ||
250℃,5.0kg | 9.6 | g/10min | |
265℃,5.0kg | 13 | g/10min | |
266℃,5.0kg | 13 | g/10min | |
Melt Volume Rate | ISO 1133 | ||
250℃,5 kg | 8.00 | cm³/10min | |
265℃,5 kg | 10.0 | cm³/10min | |
Shrinkage rate | Internal Method | ||
MD | 1.1 to 1.8 | % | |
MD:3.2 mm | 1.0 to 1.4 | % | |
TD | 0.90 to 1.8 | % | |
Water absorption rate | ISO 62 | ||
Saturation, 23 ℃ | 0.50 | % | |
Equilibrium, 23 ℃, 50% RH | 0.15 | % | |
Apparent viscosity of melt | |||
260℃,1500 sec^-1 | 310 | Pa·s | ISO 11443 |
Process Conditions | |||
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injection | Nominal value | Unit | Test method |
Drying temperature | 110 to 120 | °C | |
Drying time | 2.0 to 4.0 | hr | |
Recommended maximum moisture content | 0.020 | % | |
Hopper temperature | 40.0 to 60.0 | °C | |
Barrel rear temperature | 230 to 245 | °C | |
Barrel middle temperature | 240 to 255 | °C | |
Barrel front temperature | 245 to 265 | °C | |
Nozzle temperature | 240 to 260 | °C | |
Processing (melt) temperature | 250 to 270 | °C | |
Mold temperature | 40.0 to 100 | °C |
Notes |
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1. Typical properties: these are not to be construed as specifications. |
2. Tensile Bar |
3. 2.0 in/min |
4. Type I, 2.0 in/min |
5. 0.051 in/min |
6. 0.079 in/min |
7. at Yield |
8. 80*10*4 sp=62mm |
9. 80*10*4 mm |
10. 120*10*4 mm |
11. Rate A (50°C/h), Loading 1 (10 N) |
12. Rate A (50°C/h), Loading 2 (50 N) |
13. Tungsten Electrode |
14. Surface |
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