Title:
Analysis of Milling Forces via Angular Convolution

dc.contributor.author Wang, J. - J. Junz
dc.contributor.author Liang, Steven Y.
dc.contributor.author Book, Wayne J.
dc.contributor.corporatename Georgia Institute of Technology. School of Mechanical Engineering
dc.contributor.corporatename Georgia Institute of Technology. Center for Robotics and Intelligent Machines
dc.date.accessioned 2011-06-16T15:54:40Z
dc.date.available 2011-06-16T15:54:40Z
dc.date.issued 1991
dc.description © American Society of Mechanical Engineers en_US
dc.description.abstract The measurement of cutting force systems is one of the most frequently used techniques for the monitoring of machining processes. Its wide spread application ranges from tool condition identification, feedback control, cutting system design, to process optimization. To gain fundamental understanding of the force system in machining, this paper presents the work of establishing a closed form expression for the cutting force in end milling as an explicit function of cutting parameters and tool/workpiece geometry. Based on the theoretical local cutting force model, the generation of total cutting forces is formulated as the angular convolution of three uncorrelated cutting process component functions, namely the elemental cutting force function, the chip width density function, and the tooth sequence function. The elemental cutting force function is related to the chip formation process in an elemental cutting area and it is characterized by the chip thickness variation, specific cutting pressure constants, and entry/exit angles. The chip width density function defines the chip width per unit cutter rotation along a cutter flute within the range of axial depth of cut as the function of the angular position of each cutting point. The tooth sequence function represents the spacing between flutes as well as their cutting sequence as the cutter rotates. The analysis of cutting forces is extended into the Fourier domain by taking the frequency multiplication of the transforms of the three component functions. Fourier series coefficients of the cutting forces are shown to be algebraic functions of various tool parameters and cutting conditions. Simulation results are presented in the frequency domain to illustrate the effects of process parameters. A series of end milling experiments are performed and their results discussed to validate the analytical model. en_US
dc.identifier.citation Wang, J.‑J., Liang, S.Y. and W.J. Book, "Analysis of Milling Forces via Angular Convolution," Proceedings of the 1991 ASME Winter Annual Meeting, Symposium on Sensors, Controls and Quality Issues in Manufacturing, PED‑Vol. 55, Atlanta, GA, 1991, pp.135‑150 en_US
dc.identifier.uri http://hdl.handle.net/1853/39157
dc.language.iso en_US en_US
dc.publisher Georgia Institute of Technology en_US
dc.publisher.original American Society of Mechanical Engineers
dc.subject Milling forces en_US
dc.subject Angular convolution en_US
dc.subject Feedback control en_US
dc.title Analysis of Milling Forces via Angular Convolution en_US
dc.type Text
dc.type.genre Proceedings
dspace.entity.type Publication
local.contributor.author Book, Wayne J.
local.contributor.author Liang, Steven Y.
local.contributor.corporatename George W. Woodruff School of Mechanical Engineering
local.contributor.corporatename College of Engineering
local.contributor.corporatename Institute for Robotics and Intelligent Machines (IRIM)
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