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Cleveland C95011 7/16-14UNC CTM 4F THREADMILL F/INT-TiAlN
MODEL C95011
$180.55 Each
Prices are subject to change
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Typically Ships in: 1 day
Returnable: Yes
Material
Carbide
Style
CTM
Surface Condition
TiAlN
Thread Form
UNC
Thread Pitch
14
Thread Size Equiv
0.4375"
Tool Size
7/16-14 UNC
# Cutting Tools ## Overview The **Cleveland C95011 7/16-14UNC CTM 4F Threadmill** is a high-performance cutting tool designed for precision threading in various materials, particularly in the automotive and manufacturing sectors. This threadmill features a robust helical flute design that enhances chip removal efficiency and provides excellent surface finish, making it ideal for creating internal threads with superior accuracy. ## Key Features • **Thread Specification**: 7/16-14UNC, ensuring compatibility with standard Unified National Coarse (UNC) threads. • **Flute Design**: Four-flute helix for optimal chip evacuation and reduced cutting forces during operation. • **Coating**: TiAlN (Titanium Aluminum Nitride) coating enhances tool life by providing increased wear resistance and thermal stability. • **Material Compatibility**: Suitable for cutting a wide range of materials, including steel, stainless steel, and aluminum. • **Diameter**: 7/16 inch, designed for precision threading applications requiring high accuracy. ## Applications • **Automotive Industry**: Perfect for machining internal threads in components requiring high-strength materials and precision. • **Manufacturing**: Widely used in various manufacturing applications where thread quality and durability are critical. • **General Engineering**: Suitable for general engineering applications where internal threads are required in assemblies. ## Benefits • **Enhanced Durability**: The TiAlN coating significantly extends tool life, reducing the frequency of tool changes and increasing productivity. • **Precision Machining**: The helical flute design allows for tighter tolerances and better surface finishes, essential for high-quality applications. • **Efficiency**: Improved chip removal and reduced cutting forces lead to faster machining cycles and lower operational costs. --- *Product information compiled with AI assistance for reference purposes.*
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