@misc{9233816,
  abstract     = {{This thesis investigates the wear behaviour of advanced cutting tools during the milling of fully pearlitic CGI 450 and ferritic-pearlitic SSF CGI 350. The hard CGI 450 primarily induced mechanical abrasive wear, whereas the highly ductile, ferrite-rich SSF CGI 350 triggered adhesive wear and built-up edge formation. EDS analysis confirmed the dynamic formation of a protective Mg-Si-O layer, which extended tool life under extreme loads. For tool life modelling, a Colding tool life model implemented in python achieved expected statistical accuracy. However, mathematical singularities emerged in the modelling results. These anomalies serve as mathematical proof of the micro-scale chemical interference, demonstrating that traditional empirical models become physically unstable under chemical interactions. This indicates that optimal machining of advanced cast irons requires tool selection strategies that balance mechanical abrasion resistance with chemical compatibility.}},
  author       = {{Liu, Yuxinyue}},
  language     = {{eng}},
  note         = {{Student Paper}},
  title        = {{Comparative wear behaviour of advanced tool materials in milling compacted graphite iron}},
  year         = {{2026}},
}

