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EtroX® I CM natural

PI

Prémiový produkt pro vysoce náročné aplikace

 

Náš prémiový materiál EtroX® I CM byl speciálně vyvinut tak, aby vyhovoval vysokým nárokům elektronického, leteckého a automobilového průmyslu. Jako čistý polyimid odolává zvláště vysokým teplotám. EtroX® I CM lze použít k navrhování součástí, které nabízejí významné výhody oproti jiným termoplastům.

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Characteristics

  • Heat resistant
  • High mechanical strength
  • Low creep tendency
  • High impact resistance
  • High stiffness
  • Good dimensional stability

Industries

Application Examples

Test socket for final chip testing

Electronic components (e.g. chips) undergo a test after manufacture. For this purpose, they are inserted into test sockets made of polyimide, which must have high dimensional stability and durability. Our EtroX® I CM material meets these requirements and offers the additional advantage of a long service life and usability as well as high stability and wear resistance. This rules out contamination of the components through abrasion of the test socket.

Thrust washer for electric cars

Thrust washers made of EtroX® I CM increase the efficiency of motors in electric cars due to their high mechanical strength. Compared with conventionally used steel, our material has a lower density and therefore lower rotational capability. It also withstands high temperatures and does not react with powertrain fluids. Due to its high strength, low wear and outstanding properties, electric motors can be operated efficiently.

Gripper for glass bottles

In the production of glass bottles, grippers are used to guide the bottles through the process. Compared to conventionally used materials (graphite or brass), grippers made of EtroX® I CM increase the service life of the component. Due to the high resistance to high temperatures and the good stability of polyimides, maintenance time can be reduces, resulting in less production downtime and more efficiency.

Technical Specifications EtroX® I CM natural

Test MethodUnitGuideline Value
HustotaDIN EN ISO 1183-1g / cm31,37
Absorpce vodyDIN EN ISO 62 (23°C / 24h)%0,6
Absorpce vodyDIN EN ISO 62 (23°C / 48h)%0,8
Absorpce vodyDIN EN ISO 62 (23°C / 3 Weeks)%2,4
Test MethodUnitGuideline Value
Elongation at breakDIN EN ISO 527%8
Tensile modulus of elasticityDIN EN ISO 527MPa3600
Tensile strengthDIN EN ISO 527MPa145
Notched impact strengthDIN EN ISO 179kJ / m210
Shore hardnessDIN EN ISO 868scale D89
Ball indentation hardnessDIN EN ISO 2039-1MPa240
Elastic modulus of compressionDIN EN ISO 604MPa4200
Tensile creep modulus, 1hISO 899-1MPa3390
Tensile creep modulus, 1000hISO 899-1MPa2730
Test MethodUnitGuideline Value
Glass transition temperatureISO 11357-3°C323
Service temperature, short term (max.)Average°C380
Mean coefficient of linear thermal expansionISO 11359-2K-141
Heat deflection temperatureDIN EN ISO 75°C319
Temp. of deflection under load, 1.80 MPaISO 75-1/-2°C319
Temp. of deflection under load, 0.45 MPaISO 75-1/-2°C343
Test MethodUnitGuideline Value
Volume resistivityDIN EN 62631-3-1Ω * cm> 1015
Dielectric constant @ 100HzIEC 602504,2
Dielectric constant @ 1kHzIEC 602504,2
Dielectric constant @ 10kHzIEC 602504,1
Dielectric constant @ 100 kHzIEC 602504,1
Dielectric constant @ 10GHzIEC 61189-2-7213,4
Dielectric constant @ 40GHzIEC 61189-2-7213,3
Dielectric constant @ 100GHzIEC 61189-2-7213,2
Specific Volume resistivityIEC 60093Ωm8*1013
Specific Surface resistivityIEC 60093Ω5*1015
Relative permittivity, 100HzIEC 62631-2-1-3,5
Relative permittivity, 1MHzIEC 62631-2-1-3,4
Dissipation factor, 1 MHzIEC 62631-2-1E-480
Electric strengthIEC 60243-1kV / mm34

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