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Cutting Temperature Thermo-electrical Measurements
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Thermoelectric Signal Characteristics and Average Interfacial Temperatures in the Machining of Metals under Geometrically Defined Conditions
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On-line Estimation of Tool/Chip Interface Temperatures for a Turning Operation
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Finite-Difference Solution to the Problem of Temperature Distribution under a Moving Heat Source, Using the Concept of a Quasi-Stationary State
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Modeling of Tool Forces for Worn Tools:-Flank Wear Effects
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Die Messung der Schneidentemperatur beim Abdrehen von Flusseisen
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Experimental Measurement of Temperature Distribution in Tool-Chip Interface
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On the Analysis of Cutting Tool Temperatures
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A Study of the Effects of Tool Flank Wear on Tool Chip Interface Temperature
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The Influence of Wear on the Temperature Distribution at the Rake Face
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Thermoelectric Measurement of Cutting Tool Temperature
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The Relation Between the Rubbing Interface Temperature Distribution and Dynamic Thermocouple Temperature
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Shu, H.H.H.1
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Assessment of Steady-State Metal Cutting Temperature Models Based on Simultaneous Infrared and Thermocouple Data
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Stephenson, D. A., 1991, “Assessment of Steady-State Metal Cutting Temperature Models Based on Simultaneous Infrared and Thermocouple Data,” ASME Journal of Engineering for Industry, Vol. 113, pp. 121-128.
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Tool-Work Thermocouple Temperature Measurements: Theory and Implementation issues
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Stephenson, D. A., 1992, “Tool-Work Thermocouple Temperature Measurements: Theory and Implementation issues,” ASME Journal of Engineering for Industry, Vol. 115, No. 4, pp. 432-437.
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The Mechanism of Crater Wear of Cemented Carbide Tools
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Trigger, K. J., and Chao, B. T., 1956, “The Mechanism of Crater Wear of Cemented Carbide Tools,” Transactions of the ASME, Vol. 78, pp. 1119-1126.
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Trigger, K.J.1
Chao, B.T.2
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