Surface-coated cutting tool
A surface-coated cutting tool including a tool substrate containing WC crystal grains and insulating grains, and a coating layer composed of a multiple nitride of Ti, Al, and V and disposed on the surface of the tool substrate. The multiple nitride is represented by a compositional formula: Ti a Al b V c N satisfying the following relations: 0.25≤ a≤ 0.35, 0.64≤ b≤ 0.74, 0< c ≤0.06, and a+b+c= 1 wherein each of a, b, and c represents an atomic proportion. The coating layer is characterized by exhibiting a peak attributed to a hexagonal crystal phase and a peak attributed to a cubic crystal phase as observed through X-ray diffractometry.
1. A surface-coated cutting tool comprising a tool substrate containing WC crystal grains and insulating grains, and a coating layer composed of a multiple nitride of Ti, Al, and V and disposed on the surface of the tool substrate, characterized in that
the multiple nitride is represented by a compositional formula: Ti a Al b V c N satisfying the following relations:
0.25≤ a≤ 0.35,
0.64≤ b≤ 0.74,
0< c≤ 0.06, and
a+b+c= 1
(wherein each of a, b, and c represents an atomic proportion); and
the coating layer exhibits a peak attributed to a hexagonal crystal phase and a peak attributed to a cubic crystal phase as observed through X-ray diffractometry,
wherein the coating layer exhibits a peak intensity ratio (IA/IB) of 0.43 or more and 0.86 or less as determined through X-ray diffractometry, wherein
IA represents the intensity of the peak attributed to (100) plane of the hexagonal crystal phase, and
IB represents the intensity of the peak attributed to (200) plane of the cubic crystal phase.
2. A surface-coated cutting tool according to claim 1 , wherein the peak attributed to (200) plane of the cubic crystal phase in the coating layer has the highest peak intensity as determined through X-ray diffractometry.
3. A surface-coated cutting tool according to claim 1 , wherein the insulating grains are composed of at least one species selected from the group consisting of Al 2 O 3 , SiAlON, and silicon nitride.
4. A surface-coated cutting tool according to claim 1 , wherein the tool substrate is bonded to a base via a brazing material, and the base is formed of a cemented carbide.
5. A surface-coated cutting tool according to claim 1 , wherein the peak intensity ratio (IA/IB) is 0.43 or more and 0.62 or less.