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Hohe spezifische Härte und spezifisches Schubmodul von einem sparkplasmagesinterten Aluminium‐Kupfer‐Siliziumkarbid‐Titankarbid‐Verbundwerkstoff
Author(s) -
Saha S.,
Ghosh M.,
Kumar Pramanick A.,
Mondal C.,
Maity J.
Publication year - 2021
Publication title -
materialwissenschaft und werkstofftechnik
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.285
H-Index - 38
eISSN - 1521-4052
pISSN - 0933-5137
DOI - 10.1002/mawe.202100105
Subject(s) - materials science , spark plasma sintering , silicon carbide , powder metallurgy , titanium , composite number , aluminium , composite material , metallurgy , ceramic , copper , metal matrix composite , carbide , indentation hardness , titanium carbide , microstructure
Aluminium matrix hybrid composites have been consolidated effectively by spark plasma sintering with new combinations of reinforcement and high volume percentage of ceramic particulates to maximize specific hardness and specific modulus through the powder metallurgy route. The aforementioned techno‐scientific accomplishment with regard to metal matrix composite aims to meet a continuous increase in the global demand for a material with minimum structural weight and high‐modulus for structural (automotive and aerospace) applications. The new aluminium based hybrid composite developed by incorporating ceramic particulate reinforcements (12.5 wt.% silicon carbide and 12.5 wt.% titanium carbide) along with 22.5 wt.% copper as the metallic reinforcement attains significantly high specific hardness (85 HV/gcm −3 ), specific Young's modulus (33.56 GPa/g cm −3 ), specific bulk modulus (27.97 GPa/g cm −3 ) when compared with the reported range of specific hardness (13 HV/g cm −3 –89 HV/g cm −3 ), specific Young's modulus (24 GPa/g cm −3 –27 GPa/g cm −3 ) and specific bulk modulus (20 GPa/g cm −3 –22 GPa/g cm −3 ) possessed by structural steels. This is accredited to the genesis of a novel microstructure that consists of fine copper, silicon carbide and titanium carbide particulates together with a nominal in‐situ originated aluminium‐copper equilibrium phases distributed in a highly substructured aluminium based matrix with a significant dislocation density (7.56 ⋅ 10 14  m ‐2 ).

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