Electrostatic-resistant heat conducting plastic
A thermally conductive plastic and antistatic technology, applied in the field of thermally conductive materials, can solve the problems of easy generation of static electricity, large equipment wear, equipment failure, etc., and achieve the effect of preventing static electricity accumulation, small equipment wear and low cost.
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Embodiment 1
[0026] An antistatic heat-conducting plastic, which consists of the following components in parts by weight,
[0027] Polyphenylene sulfide 59%
[0029] Silane coupling agent 0.5%
[0030] Modified Ethylene Bis Fatty Acid Amide 0.5%.
[0031] A preparation method of an antistatic thermally conductive plastic comprises the following steps:
[0032] (1) 400Kg particle size distribution is earlier: 50 microns account for 30%, 400 microns account for 70% of zinc sulfide and 5Kg silane coupling agent to add in the high-speed mixer, mix at a temperature of 100 ° C;
[0033] (2) Add 590Kg polyphenylene sulfide and 5Kg modified ethylene bis fatty acid amide dispersant to the high-speed machine and mix,
[0034] (3) The mixture is then transferred to an extruder, extruded and granulated at a temperature of 290° C.; that is, an antistatic heat-conducting plastic is obtained.
Embodiment 2
[0036] An antistatic heat-conducting plastic, which consists of the following components in parts by weight,
[0037] Polyphenylene sulfide 48.9%
[0038] Zinc sulfide 50%
[0039] Aluminate coupling agent 0.5%
[0040] Modified Ethylene Bis Fatty Acid Amide 0.6%.
[0041] A preparation method of an antistatic thermally conductive plastic comprises the following steps:
[0042] (1) First, 500Kg particle size distribution is: 1 micron accounts for 30%, 100 micron accounts for 70% zinc sulfide and 5Kg aluminate coupling agent are added in the high-speed mixer, and mixed at a temperature of 80°C;
[0043] (2) Add 489Kg polyphenylene sulfide and 6Kg modified ethylene bis fatty acid amide dispersant to the high-speed machine and mix,
[0044] (3) The mixture is then transferred to an extruder, extruded and granulated at a temperature of 280° C.; that is, an antistatic heat-conducting plastic is obtained.
Embodiment 3
[0046] An antistatic heat-conducting plastic, which consists of the following components in parts by weight,
[0047] Polyphenylene sulfide 38.8%
[0048] Zinc sulfide 60%
[0049] Titanate coupling agent 0.5%
[0050] Modified Ethylene Bis Fatty Acid Amide 0.7%.
[0051] A preparation method of an antistatic thermally conductive plastic comprises the following steps:
[0052] (1) First, 600Kg particle size distribution is: 10 microns account for 30%, 150 microns account for 70% zinc sulfide and 5Kg titanate coupling agent are added in a high-speed mixer, and mixed at a temperature of 90°C;
[0053] (2) Add 388Kg polyphenylene sulfide and 7Kg modified ethylene bis fatty acid amide dispersant to the high-speed machine and mix,
[0054] (3) The mixture is then transferred to an extruder, extruded and granulated at a temperature of 280° C.; that is, an antistatic heat-conducting plastic is obtained.
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