[15] Ederyd S. Cemented carbide tools: U.S. Patent 9,127,335[P]. 2015-9-8.
[16] Klocke F, Döbbeler B, Binder M, et al. Ecological Assessment of Coated
Cemented Carbide Tools and their Behavior during Machining[M]. Re-engineering Manufacturing for Sustainability. Springer Singapore, 2013: 257-262.
[17] Klocke F, Döbbeler B, Binder M, et al. Ecological Assessment of Coated Cemented Carbide Tools and their Behavior during Machining[M]. Re-engineering Manufacturing for Sustainability. Springer Singapore, 2013: 257-262.
[18] Neves D, Diniz A E, Lima M S F. Microstructural analyses and wear behavior of the cemented carbide tools after laser surface treatment and PVD coating[J]. Applied Surface Science, 2013, 282: 680-688.
[19] Zheng Y, Leng Y, Xin X, et al. Evaluation of mechanical properties of Ti (Cr) SiC (O) N coated cemented carbide tools[J]. Vacuum, 2013, 90: 50-58.
[20] Liu Z, Xu F, Xu J, et al. Preparation and Cutting Performance of Boron-Doped Diamond Coating on Cemented Carbide Cutting Tools with High Cobalt Content[J]. World Academy of Science, Engineering and Technology, International Journal of Chemical, Molecular, Nuclear, Materials and Metallurgical Engineering, 2015, 9(5): 567-570.
[21] Bai B, Su H H, He L J, et al. Study on the Machinability Characteristics of Ti2AlNb Based Alloy in Turning with Coated Cemented Carbide Tools[C]. Materials Science Forum. Trans Tech Publications, 2016, 836: 106-111.
[22] Lin Z, Bin Y, Wenzhuang L. Design of Nano/Micro-Structured Diamond Coating on Cemented Carbide[J]. Key Engineering Materials, 2016, 693.
[23] Cui X, Wang D, Guo J. Performance optimization for cemented carbide tool in high-speed milling of hardened steel with initial microstructure considered[J]. International Journal of Mechanical Sciences, 2016, 114: 52-59.
[24] 贺旭东, 明伟伟, 景璐璐, 等. 高效加工刀具技术研究现状及发展趋势[J]. 航空制造技术, 2016, 502(7): 55-59.
国内外刀具发展研究现状和参考文献(2):http://www.751com.cn/yanjiu/lunwen_67678.html