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TUBALLMATRIXMATRIX822MATRIX 822

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Universelles leitfähiges Additiv auf Basis von Polyolester zur Herstellung von Masterbatches auf Basis von PP, TPU, gefülltem PPS, ABS, PC, PC-ABS, PA, GF PA. 

Die resultierenden Masterbatches können zur Compoundierung mit gefüllten Polymeren oder in Kombination mit anderen leitfähigen Füllstoffen eingesetztwerden, um deren Dosierung zu reduzieren und bessere mechanische Eigenschaften / Fließfähigkeit zu erreichen

Werkstoffsystem
Polypropylen, thermoplastisches Polyurethan (TPU), gefüllte Polyphenylensulfid (PPS), Acrylnitril-Butadien-Styrol (ABS), Polycarbonat (PC), ABS-PC, Polyamid (PA), glasfaserverstärktes Polyamid (GF PA)
Arbeitsdosierung
0.5–5 Gew.%
Trägerkonzentrat
Polyolester
Form
Granulat

Benefits

Elektrische Leitfähigkeit

Gewährleistet konstante und gleichmäßige elektrische Leitfähigkeit bei niedriger Arbeitsdosierung

Mechanische Eigenschaften

Erhält die wichtigsten mechanischen Eigenschaften des Ausgangsmaterial

Konstante Eigenschaften

Spezifischer Widerstand ist unabhängig von der Luftfeuchtigkeit

Weniger Ausschuss

Trägt zur Reduzierung von abgelehnten Fertigteilen bei 



Anwendungsbeispiele

E-painting
Klicken Sie, um Anwendungsfall anzusehen
E-painting

Unterlagen
Erhältlich in Sprachen:
english
TDS TUBALL MATRIX 822 ENG V05.PDF
PDF
102.40 kB
SDS TUBALL MATRIX 822 EU ENG V2-3.PDF
PDF
307.20 kB
SDS TUBALL MATRIX 822 CN ENG V1-1.PDF
PDF
307.20 kB
SDS TUBALL MATRIX 822 KR ENG V1-0.PDF
PDF
204.80 kB

Neuigkeiten

October 31
[💡R&D] Easy-to-process flexible thermoelectric materials with robust mechanical properties were developed by researches from National Research Council Canada and Leibniz-Institut für Polymerforschung Dresden. TUBALL–TPU nanocomposite shows ∼7-, 25-, and 250-fold improvements in stiffness, strength, and tensile toughness, respectively. These easily processed, self-supporting, and stretchable materials can be utilized for energy-harvesting modules based on the thermoelectric effect. Read the article in full here: https://pubs.acs.org/doi/full/10.1021/acsanm.3c03247 Learn more on graphene nanotube uses and applications: https://tuball.com/nanotubes-for?utm_source=facebook+&utm_medium=Post+campaign&utm_campaign=Oct+31%272023 #TEG #composites #TPU
July 13
[🤔 #Didyouknow?] The first car bumper appeared in 1897 for aesthetic purposes. In 1901, it was redesigned to protect vehicle parts and ensure road safety. Initially made of rubber, most bumpers are now made of plastic. To achieve consistent color, manufacturers prefer to use electrostatic painting for both metallic and plastic parts. To do this, first a conductive primer should be applied on plastic parts to enhance the adhesion of the paint. Graphene nanotubes enable the production of light-gray conductive primers with high transfer efficiency for use in e-painting. This leads to cost optimization and reduced basecoat consumption compared to black primers. Learn more on graphene nanotubes for automotive primers: https://tuball.com/nanotubes-for/conductive-primers?utm_source=Facebook&utm_medium=Post&utm_campaign=Did+you+know+Primer+July+23 #ElectrostaticPainting #Nanotubes #CarBumper
July 5
A signal lamp allows a miner to raise an alert and to be found in emergency situations. With graphene #nanotubes incorporated inside the #ABS case, the case of the lamp becomes anti-static, making it safe for use in hazardous areas like coal mines, where flammable gases or combustible dust can accumulate. By preventing the buildup of electrostatic charge, this modified lamp eliminates the risk of sparks and potential explosions. Learn more on electrically conductive agent for thermoplastics: https://tuball.com/nanotubes-in/thermoplastics