• Title/Summary/Keyword: 비절삭저항

Search Result 29, Processing Time 0.035 seconds

The Effect of Back Rake Angle of Tool for Specific Cutting Resistance in Turning (선삭에서 공구의 윗면경사각이 비절삭저항에 미치는 영향)

  • 김정현
    • Journal of the Korean Society of Manufacturing Technology Engineers
    • /
    • v.7 no.6
    • /
    • pp.80-89
    • /
    • 1998
  • Back rake angle of tool is one of the fundamental effects to the cutting ability. In this paper, for several back rake angle of lathe tool (-5$^{\circ}$ , 0$^{\circ}$ , 5$^{\circ}$ , 10$^{\circ}$ , 15$^{\circ}$ ), we experimentally examine cutting forces via orthogonal cutting. Using measured cutting forces, a formula for specific cutting resistance is derived according to the variation of tool angle. Also, the measured cutting forces are analyzed in both time and frequency domain. Cutting parameters are obtained by measuring the thickness of chip, and the effect of the back rake angle of tool is manifested. This study maintains the predicted cutting model with improved accuracy.

  • PDF

Variation of Specific Cutting Pressure with Different Tool Rake Angles in Face Milling (정면밀링에서 공구경사각에 따른 비절삭저항 변화)

  • 류시형
    • Proceedings of the Korean Society of Precision Engineering Conference
    • /
    • 1996.04a
    • /
    • pp.63-68
    • /
    • 1996
  • In this study, the effect of tool rake angles and the change of cutting conditions on specific cutting pressure in face milling is investigated. The cutting force in face milling is predicted from the double cutting edge model in 3-dimensional cutting. Conventional specific cutting pressure model is modified by considering the variation of tool rake angles. Effectiveness of the modified cutting force model is verified by the experiments using special face milling cutters with different cutter pockets and various rake angles. From the comparison of the pressented model and the specific cutting pressure, it is shown that the axial force can be predicted by the tangential and redial forces without the knowledge of friction angle and shear angle. Also, the relation between specific cutting pressure and cutting cindition including feedrate, cutting velocity and depth of cut is studied.

  • PDF

A study on optimum of cutting ability with change of tool rake angles (바이트 인선각의 변화에 따른 절삭성의 최적화 방안에 관한 연구)

  • 염성하;오재응;현청남
    • Transactions of the Korean Society of Mechanical Engineers
    • /
    • v.12 no.5
    • /
    • pp.1043-1054
    • /
    • 1988
  • The optimum cutting condition of rake angle in turning was investigated in SM45C and SM20C. Results of experiments in SM45C and SM20C are as follow. Specific cutting resistance became higher as the depth of cutting, feed or cutting velocity decreases at same rake angle and resistance became low value at 20.deg.(SM45C), 10.deg.(SM20C). The optimum cutting condition for SM45C is depth of cutting 0.7mm, rake angle 30.deg., cutting velocity 200mm/min, feed 0.1mm/rev, and for SM20C is depth of cut 0.5mm, rake angle 10.deg., cutting velocity 150mm/min, feed 0.1mm/rev.The rake angle for good roughness is 15.deg for SM45C, and that for SM20C is 25.deg. The roughness is influenced by feed and it has the lowest value at 0.1mm/rev and the cutting condition is closely related with the change of cutting velocity and feed.

Modeling of the Specific Cutting Pressure to Predict the Cutting Force in Face Milling (정면 밀링 가공에서의 절삭력 예측을 위한 비절삭 저항 모델링)

  • Joo, Jung-Hoon;Kim, Kug-Weon
    • Proceedings of the KAIS Fall Conference
    • /
    • 2008.05a
    • /
    • pp.306-308
    • /
    • 2008
  • 본 논문은 정면 밀링 가공에서의 절삭력 예측을 위한 수학적 모델을 설정하고 컴퓨터 시뮬레이션을 수행하였다. 실험으로 얻은 절삭력 데이터를 이용하여 비절삭 저항을 모델링하였고 컴퓨터 시뮬레이션을 통해 절삭력을 예측하였다. 예측된 절삭력은 실제 실험을 통해 얻은 절삭력과 비교하여 본 모델의 타당성을 검증하였다.

  • PDF

Analysis of Variation of Specific Cutting Resistance in Nanoscale Cutting (나노스케일 절삭가공에서의 비절삭저항 변화 및 원인 분석)

  • Kwon, Ye-Pil;Kim, Si-Hoon;Jeon, Eun-chae
    • Journal of the Korean Society of Manufacturing Process Engineers
    • /
    • v.19 no.11
    • /
    • pp.23-28
    • /
    • 2020
  • In general, lithography techniques are applied when machining single-crystal silicon in nanoscale applications; however, these techniques involve low degrees of freedom for the vertical shapes. By applying mechanical techniques to machine silicon, nanopatterns having various types of vertical shapes can be manufactured. In this study, we determined the ductile-brittle machining transition point and analyzed the- variation of the specific cutting resistance within the ductile machining region in nanoscale applications. When brittle fracture occurred during the nanoscale cutting, the depth of cut and cutting force increased and decreased rapidly, respectively. The first point of rapid increase in the depth of cut was defined as the ductile-brittle machining point. Subsequently, the shape of the machining tool was observed using a scanning electron microscope to calibrate the machining area, considering the tip blunting. The specific cutting resistance decreased continuously and converged to a certain value during the nanoscale cutting. The decrease and convergence in the value can be attributed to the decrease in the ratio of the arc length to the area of the machining tool and silicon.

Cutting Force Estimation Considering the Specific Cutting Force Constant (비절삭 저항상수에 따른 절삭력 예측)

  • Kim, Jong-Do;Yoon, Moon-Chul
    • Journal of the Korean Society of Manufacturing Process Engineers
    • /
    • v.18 no.10
    • /
    • pp.75-82
    • /
    • 2019
  • Few studies have been conducted regarding theoretical turning force modelling while considering cutting constant. In this paper, a new cutting force modelling technique was suggested which considers the specific cutting force coefficients for turning. The specific cutting force is the multiplication of the cutting force coefficient and uncut chip thickness. This parameter was used for experimental modelling and prediction of theoretical cutting force. These coefficients, which can be obtained by fitting measured average forces in several conditions, were used for the formulation of three theoretical cutting forces for turning. The cutting force mechanism was verified in this research and its results were compared with each of the experimental and theoretical forces. The deviation of force was incurred by a small amount in this model and the predicted force considering feed rate, nose radius, and radial depth shows a physical behavior in main force, normal force, and feeding force, respectively. Therefore, this modelling technique can be used to effectively predict three turning forces with different tool geometries considering cutting force coefficients.

The Characteristics and Stability Boundary Analysis of Chatter using Neural Network (신경회로망을 이용한 채터 특성 및 안정영역 분석)

  • Yoon, Moon-Chul;Kim, Young-Guk;Kim, Kwang-Heui
    • Journal of the Korean Society of Manufacturing Process Engineers
    • /
    • v.5 no.2
    • /
    • pp.16-21
    • /
    • 2006
  • In this study, the analytic realization of chatter mechanism using radial basis neural network(RBNN) was introduced and compared with the conventional stability analysis. In this regard, the FFT and time series spectrum analysis was used as a criterion for the existence of chatter in end-milling force. The desired coded outputs of chatter was trained and finally converged to desired outputs. The output of the RBNN match well with the conventional desired stability lobe. Using this trained data, the stability boundary of the radial basis neural network was acquired using the contour plotting. As a result, the proposed stability lobe boundary using RBNN consists well with the conventional analytical boundary that is calculated in characteristic equation of transfer function in chatter dynamics. In this RBNN analysis, two input and three output parameters were used in this paper.

  • PDF

Analysis on Specific Cutting Resistance Variation by Tool Angles Based on a Concept of Representative Stres (겉보기 응력 개념에 기반한 공구각에 따른 비절삭저항 변화 분석)

  • Jeon, Eun-Chae;Choi, Hwan-Jin;Lee, Kyu-Min;Lee, Yun-Hee;Je, Tae-Jin;Kim, Jeong-Hwan;Choi, Doo-Sun
    • Journal of the Korean Society of Manufacturing Process Engineers
    • /
    • v.13 no.2
    • /
    • pp.64-72
    • /
    • 2014
  • In the past, prism patterns have been linear triangular shapeswith a $90^{\circ}$ angle; however, new micro prism patterns having acute angles or obtuse angles have recently been the subject of demandin the display, lighting and photovoltaic industries. Micro-cutting experiments for micro-prism patterns having $60^{\circ}$, $90^{\circ}$, and $120^{\circ}$ angles on an electroplated Ni mold were performed and it was found in this study that the specific cutting resistance increased with a decrease in the tool angles (prism pattern angles). The cause of this variation had been thought to be the increase of the ploughing force due to tip rounding and the friction force due to the edge effect. However, the depth of the cut was large enough that it was possible to neglect these effects. Therefore, this study introduced the concept of representative stress of indentation. The measured stress was varied according to the indentation depth eventhoughthetestedspecimenswereidentical ; the varied stress was termed the representative stress. According to indentation theory, the strain that the Ni mold experienced increased with a decrease in the tool angle. Based on the stress-strain relationship, higher strain means higher stress and higher specific cutting resistance. Therefore, the specific cutting resistance was higher at smaller tool angles that had higher strain and stress.

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
    • /
    • v.17 no.5
    • /
    • pp.116-122
    • /
    • 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.

Development of mean specific cutting pressure model for cutting force analysis in the face milling process (정면 밀링의 절삭력 해석을 위한 평균 비절삭저항 모델의 개발)

  • Lee, B.C.;Hwang, J.C.;Kim, H.S.
    • Journal of the Korean Society for Precision Engineering
    • /
    • v.11 no.4
    • /
    • pp.13-25
    • /
    • 1994
  • In order to design and improve a new machine tool, there is a need for a better understanding of the cutting force. In this paper, the computer programs were developed to predict not only the mean specific cutting pressure but also the cutting force. The simulated cutting forces in X, Y, Z directions resulted form the developed cutting force model were compared with the measured cutting forces in the time and frequency domains. The simulated cutting forces resulted from the new cutting force model have a good agreement with the measured force in comparison with these resulted from the existing cutting force model.

  • PDF