I. V. Kragelskii, M. N. Dobychin, and V. S. Kombalov, Friction and Wear: Calculation Methods

S. , S. M. , H. S. Lim, and J. H. Ahn, Effects of friction coefficient on minimum cutting thickness in micro cutting, International Journal of Machine Tools & Manufacture, pp.45-529, 2005.

S. , S. M. , H. S. Lim, and J. H. Ahn, The effect of vibration cutting on minimum cutting thickness, International Journal of Machine Tools & Manufacture, pp.46-2066, 2006.

G. Boothroyd and W. A. Knight, Fundamentals of Machining and Machine Tools, 1989.

C. , C. F. , and W. B. Lee, A theoritical and experimental investigation of surface roughness formation in ultra precision diamond turning, International Journal of Machine Tool & Manufacture, pp.40-979, 2000.

T. , M. , and Y. Beauchamp, Statistical investigation of modal parameters of cutting tool in dry turning, International Journal of Machine Tools & Manufacture, pp.43-1093, 2003.

H. , L. , and J. C. Chen, A multiple regression model to predict in-process surface roughness in turning operation via accelerometer, Journal of industrial technology, issue.2, p.17, 2001.

L. Calvez and C. , Etude des aspects thermiques et métallurgiques de la coupe orthogonale d'un acier au carbone, Mécanique et Matèriau, p.232, 1995.

V. D. Kuznetosov, Metal Transfer and Build-up in Friction and Cutting, 1966.

G. , F. , Y. Landon, and E. Duc, Modélisation de la coupe en Usinage à Grande Vitesse., in Usinage à grande vitesse, 1999.

M. Wiercigroch and E. Budak, Sources of nonlinearities, chatter generation and suppression in metal cutting, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, vol.359, issue.1781, pp.359-663, 1781.
DOI : 10.1098/rsta.2000.0750

URL : https://hal.archives-ouvertes.fr/hal-01693123

M. Wiercigroch and M. Krivtsov, Frictional chatter in orthogonal metal cutting, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, vol.359, issue.1781, pp.359-713, 1781.
DOI : 10.1098/rsta.2000.0752

G. Boothroyd, Effect of Surface Slope on Shear Angle in Metal Cutting, Journal of Engineering for Industry, vol.92, issue.1, pp.115-118, 1970.
DOI : 10.1115/1.3427694

T. , J. , and M. Polacek, The stability of the machine tools against selfexcited vibration in machining, Proceedings of the international research in production engineering conference, 1963.

D. , D. Usinage-haute, and . Vitesse, Available from, 2007.

M. , F. C. , and T. Kalmar-nagy, Nonlinear models for complex dynamics in cutting materials, Philosophical Transactions: Mathematical, Physical and Engineering Sciences, pp.359-695, 1781.

S. A. Tobias, Vibration of machine tools, Production Engineer, vol.43, issue.12, 1965.
DOI : 10.1049/tpe.1964.0084

A. , Y. Riviere, and E. , Manufacturing Automation: Metal Cutting Mechanics, Machine Tool Vibrations, and Cnc Design Etude et simulation de procédés de fraisage grande vitesse : Effort de coupe, Stabilité, Etats de surface, in Sciences Appliquées -Génie Mécanique, p.201, 2000.

F. Lapujoulade, Simulation des phénomènes vibratoires intervenant en usinage -Etat de recherches et perspectives, 2003.

M. , A. , P. Lorong, and G. Coffignal, Numérical simulation of a turning operation, 2nd International Seminar on Improving Machine Tool Performance, 2000.

E. , A. H. , and R. Kashani, Improving surface roughness in turning using optimal control of tool's radial position, Journal of Materials Processing Technology, vol.167, issue.1, pp.54-61, 2005.

K. , J. , and S. Nam, Developpement of an micro-depth control system for an ultra-precision lathe using a piezo-electric actuator, International Journal of Machine Tool & Manufacture, vol.37, issue.4, pp.495-509, 1997.

W. , A. , J. Huang, and Y. Altintas, Piezoelectric tool actuator for precision machining on conventional CNC turning centers. Precision Engineering, pp.27-335, 2003.

Z. , W. , M. B. Jun, and Y. Altintas, A fast tool servo design for precision turning of shafts on conventional CNC lathes, International Journal of Machine Tool & Manufacture, pp.41-953, 2001.

C. O. Buti, . En, . De-super-fi, . Ni, . On et al., Predicting High-Speed Machining Dynamics by Substructure Analysis CIRP Annals -Manufacturing Technology, pp.49-303, 2000.

A. , E. , J. Ni, and S. Lee, Programming spindle speed variation for machine tool chatter suppression, International Journal of Machine Tool & Manufacture, issue.12, pp.43-1229, 2003.

K. Jemielniak and A. Widota, Suppression of self-excited vibration by the spindle speed variation method, International Journal of Machine Tool Design and Research, vol.24, issue.3, pp.207-214, 1984.
DOI : 10.1016/0020-7357(84)90005-2

A. and C. Outil-matière, Domaine de fonctionnement des outils coupants Partie 4: mode d'obtention du couple outil-matière en tournage, pp.66-520, 1997.

L. Deshayes, Méthodologie d'étude de la coupe. Liaison entre Couple Outil Matière et Système Pièce Outil Machine, Mécanique. 2003, Institut National des Sciences Appliquées Lyon, p.271

M. Bellanger, Traitement numérique du signal -Théory et pratique, 2002.

D. J. Ewins, Modal testing -theory, practice and application. Engineering Dynamics Series, J.B. ROBERTS, vol.10, 2000.

R. Rakotomalala, TANAGRA, une plate-forme d'expérimentation pour la fouille de données, pp.70-85, 2005.

R. Rakotomalala, Analyse de corrélation. Étude des dépendances -Variables quantitatives, in Note de cours, p.82, 2008.