• Title/Summary/Keyword: machining theory

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Predicting Cutting Forces in Face Milling with the Orthogonal Machining Theory (2차원 절삭이론을 이용한 정면밀링 절삭력 예측)

  • 김국원
    • Journal of the Korean Society for Precision Engineering
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    • v.19 no.12
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    • pp.150-157
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    • 2002
  • This paper presents an effective cutting force model that enable us to predict the instantaneous cutting force in face milling from a knowledge of the work material properties and cutting conditions. The development of the model is based on the orthogonal machining theory with the effective rake angle which is defined in the plane containing the cutting velocity and chip flow vectors. Face milling testes are performed at different feeds and, a fairly good agreement is shown between the predicted cutting forces and test results.

Predicting cutting forces in face milling with the orthogonal machining theory

  • Kim Kug Wean
    • International Journal of Precision Engineering and Manufacturing
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    • v.6 no.3
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    • pp.13-18
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    • 2005
  • This paper presents an effective cutting force model that enables us to predict the instantaneous cutting force in face milling from knowledge of the work material properties and the cutting conditions. The development of the model is based on the orthogonal machining theory with the effective rake angle, which is defined in the plane containing the cutting velocity vector and the chip flow vector. Face milling tests are performed at different feeds and, a fairly good agreement is shown between the predicted cutting forces and the test results.

A Study on the cutting forces prediction using machining theory in end milling (절삭이론을 이용한 엔드밀 가공에서의 절삭력 예측에 관한 연구)

  • Jung, Sung-Chan;Kim, Kug-Weon
    • Proceedings of the KSME Conference
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    • 2004.11a
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    • pp.928-933
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    • 2004
  • A new approach for modelling and simulation of the cutting forces in end milling processes is presented. In this approach, the cutting forces in end milling are modelled based on a predictive machining theory, in which the machining characteristic factors are predicted from input data of fundamental workpiece material properties, tool geometry and cutting conditions. In the model, each tooth of a end milling cutter is divided into a number of slices along the cutter axis. The cutting action of each of the slices is modelled as an oblique cutting process. For the first slice of each tooth, it is modelled as oblique cutting with end cutting edge effect, whereas the cutting actions of other slices are modelled as oblique cutting without end cutting edge effect. The cutting forces in the oblique cutting processes are predicted using a predictive machining theory. The total cutting forces acting on the cutter is obtained as the sum of the forces at all the cutting slices of all the teeth. A Windows-based simulation system for the cutting forces in end milling is developed using the model. Experimental milling tests have been conducted to verify the simulation system.

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Development of new predictive analysis in the orthogonal metal cutting process by utilization of Oxley's machining theory

  • Abdelkader, Karas;Mohamed, Bouzit;Mustapha, Belarbi;Redha, Mazouzi
    • Steel and Composite Structures
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    • v.19 no.6
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    • pp.1467-1481
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    • 2015
  • This paper presents a contribution to improving an analytical thermo-mechanical modeling of Oxley's machining theory of orthogonal metals cutting, which objective is the prediction of the cutting forces, the average stresses, temperatures and the geometric quantities in primary and secondary shear zones. These parameters will then be injected into the developed model of Karas et al. (2013) to predict temperature distributions at the tool-chip-workpiece interface. The amendment to Oxley's modified model is the reduction of the estimation of time-related variables cutting process such as cutting forces, temperatures in primary and secondary shear zones and geometric variables by the introduction the constitutive equation of Johnson-Cook model. The model-modified validation is performed by comparing some experimental results with the predictions for machining of 0.38% carbon steel.

Theoretical Modeling for the Prediction of Face Milling Forces (정면밀링 절삭력 예측을 위한 이론적 모델링)

  • Kim, Kug-Weon;Lee, Woo-Young;Choi, Sung-Joo
    • Journal of the Korean Society of Manufacturing Process Engineers
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    • v.7 no.3
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    • pp.96-102
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    • 2008
  • In order to design establish automation or optimization of the machining process, predictions of the forces in machining are often needed. In this paper, a theoretical model in face milling is presented based on Oxley's predictive machining theory, where the cutting forces are predicted from input data of fundamental work material properties, tool geometry and cutting conditions without any preliminary cutting experiment. A simulation system for the cutting forces in face milling is developed using the model. Milling experimental tests are conducted to verify the model and the predictive results are compared and discussed with the experimental results.

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An analytical Machining models based on Flow Stress Properties for Non-Heat Treated and Heat Treated AISI 4140 Steel (열처리 및 비 열처리 AISI4140강의 유동응력 물성치를 기초로 하는 해석적 가공 모델 연구)

  • Lee, Tae-Hong
    • Journal of the Korean Society of Manufacturing Technology Engineers
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    • v.20 no.4
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    • pp.419-426
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    • 2011
  • In this study, an experimental and theoretical program were carried out to determine the cutting forces and chip formation at different cutting speeds using a 0.4mm nose radius ceramic insert and -7 rake angle for non heat-treated AISI 4140 (27HRc) and heat-treated AISI 4140 (45 HRc) steel. The results obtained were compared to show the hardness differences between the materials. The secondary deformation zone thicknesses when comparing the two materials show different physical structure but similar size. These results were also discussed in light of the heat treatment and the effects it had on the machining characteristics of the material. In addition, the Oxley Machining Theory was used to predict the cutting forces for these materials and a comparison made. The predicted cutting performances were verified experimentally and showed good agreement with experimental data.

Modeling of the Specific Cutting Pressure and Prediction of the Cutting Forces in Face Milling (정면 밀링 가공에서의 비절삭 저항 모델링 및 절삭력 예측)

  • Kim, Kug-Weon;Joo, Jung-Hoon;Lee, Woo-Young;Choi, Sung-Joo
    • Transactions of the Korean Society of Machine Tool Engineers
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    • v.17 no.5
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    • pp.116-122
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    • 2008
  • In order to establish automation or optimization of the machining process, predictions of the forces in machining are often needed. A new model fur farces in milling with the experimental model based on the specific cutting pressure and the Oxley's predictive machining theory has been developed and is presented in this paper. The specific cutting pressure is calculated according to the definition of the 3 dimensional cutting forces suggested by Oxley and some preliminary milling experiments. Using the model, the average cutting forces and force variation against cutter rotation in milling can be predicted. Milling experimental tests are conducted to verify the model and the predictive results agree well with the experimental results.

A study on the design and machining of Spiroid Bevel Gear (Spiroid Bevel Gear 설계 및 가공에 관한 연구)

  • 류미라;박영복;이춘만
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 1997.10a
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    • pp.698-701
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    • 1997
  • In this paper, we developed an automated program for the design and machining of spiroid bevel gear. A computer program employing the theory of gearing between gear and pinion is developed to design gear mechanism. A new method for machining spiro야 bevel gears is proposed, and effectively used for an example.

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A study on Finite Element Analysis of Tool Deformation in End Milling (엔드밀 가공에서의 공구 변형에 대한 유한요소해석)

  • Kim Kug Weon;Jung Sung Chan
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.6 no.1
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    • pp.83-86
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    • 2005
  • This study is predicted tool deformation by cutting forces and chip-tool interface temperature in machining process. Modeling of tool is made using 3D CAD software, finite element method is performed by cutting forces and temperature. Cutting forces and temperature used load conditions are predicted using the cutting force model based on machining theory. Experimental milling tests have been conducted to verify the cutting force model. Finally, this study is predicted cutting force components and temperature using cutting conditions, material property, tool geometry without experiment and tool deformation is predicted by cutting forces and temperature in machining process.

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