• 제목/요약/키워드: 톱니형 칩

검색결과 4건 처리시간 0.015초

STS304 선삭시 절삭조건에 의한 Chip형태 예측에 관한 연구 (A Study on the Prediction of the Chip Thpe by the Cutting Condition in Turning STS304)

  • 심기중;유기현;정진용;서남섭
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 1993년도 추계학술대회 논문집
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    • pp.89-94
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    • 1993
  • 최근들어 공작기계의 급속한 발전은 절삭작업의 자동화와 무인화를 가능하게 만들었으며 이에따라 절삭가공의 완전한 무인화를 실현하기 이해서는 절삭가공중 발생하는 각종 이상 상태를 in-process로 감시하고 검출하는것이 매우 중요하게 되었다. 이상상태는 절삭공구의 마모나 파손, 채터진동의 발생, 절삭가공에 방해를 주는 절삭칩등을 들수 있으며 이 같은 현상을 검출하기 위한 많은 연구가 활발히 진행되고 있다. 본 연구에서는 내식성,내마모성,내열성 및 기계적 성질이 우수하거나 절삭시 가공 경화성이 크고, 열 전도성이 불량하며, 공구재료와 응착이 쉬어 난색재로 알려지고 톱니형 연속칩이 주로 발생하는 STS304를 선택하여 절삭실험을 하였다. 절삭 조건에 따른 칩 형태를 관찰하여, 절삭조건과 절삭력을 이용하여 칩의 형태를 분류하였으며, 절삭가공중에 칩형태를 검출 할수 있는 가능성에 대하여 연구 하였다.

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STS304잘삭시 Chip Breaker를 이용한 Chip제어에 관한 연구 (A Study on the Chip Control in Machining STS304 Using a Chip Breaker)

  • Yeom, D.W.;Yu, K.H.;Seo, N.S.
    • 한국정밀공학회지
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    • 제11권6호
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    • pp.42-49
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    • 1994
  • One of the parameters that influence the productivity of every industry, involved in metal cutting, is the chip from ; continuous or broken chip. Chip form varies according to machining conditions, material used, tool geometry and chip breaker geometry. Therefore, in this study we carried out the experiment on the chip control in machining STS304 using an attached obstruction type chip breaker. Namely, with the change of a chip breaker distance, chip breaker angle, cutting characteristics in machining STS304 which is well-known as a machining difficult material and produces a saw-toothed chip. The results of the experiment are as follows : 1. The chip breaker distance and angle under which the preferred chip is produced, show 1.5mm and 60 .deg. , while chip breaker angle in machining an ordinary steel was well-known 45 .deg. . 2. During the cutting process, the change of feed than the change of velocity was applied as cutting conditions, effects more clearly on the chip breaking. 3. Considering a whole surface roughness, it is not advisable to apply chip breaker mentioned above for precision cutting.

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미소 전단 띠 형성에 의한 톱니형 칩 생성 예측 (Prediction of Serrated Chip Formation due to Micro Shear Band in Metal)

  • 임성한;오수익
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2003년도 춘계학술대회논문집
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    • pp.427-733
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    • 2003
  • Adiabatic shear bands have been observed in the serrated chip during high strain rate metal cutting process of medium carbon steel and titanium alloy. The recent microscopic observations have shown that dynamic recrystallization occurs in the narrow adiabatic shear bands. However the conventional flow stress models such as the Zerilli-Armstrong model and the Johnson-Cook model, in general, do not predict the occurrence of dynamic recrystallization (DRX) in the shear bands and the thermal softening effects accompanied by DRX. In the present study, a strain hardening and thermal softening model is proposed to predict the adiabatic shear localized chip formation. The finite element analysis (FEA) with this proposed flow stress model shows that the temperature of the shear band during cutting process rises above 0.5T$\sub$m/. The simulation shows that temperature rises to initiate dynamic recrystallization, dynamic recrystallization lowers the flow stress, and that adiabatic shear localized band and the serrated chip are formed. FEA is also used to predict and compare chip formations of two flow stress models in orthogonal metal cutting with AISI 1045. The predictions of the FEA agreed well with the experimental measurements.

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고속 절삭공정 중 톱니형 칩 생성 예측 (Prediction of Serrated Chip Formation in High Speed Metal Cutting)

  • 임성한;오수익
    • 소성∙가공
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    • 제12권4호
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    • pp.358-363
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    • 2003
  • Adiabatic shear bands have been observed in the serrated chip during high strain rate metal cutting process of medium carbon steel and titanium alloy The recent microscopic observations have shown that dynamic recrystallization occurs in the narrow adiabatic shear bands. However the conventional flow stress models such as the Zerilli-Armstrong model and the Johnson-Cook model, in general, do not predict the occurrence of dynamic recrystallization (DRX) in the shear bands and the thermal softening effects accompanied by DRX. In the present study, a strain hardening and thermal softening model is proposed to predict the adiabatic shear localized chip formation. The finite element analysis (FEA) with this proposed flow stress model shows that the temperature of the shear band during cutting process rises above 0.5Τ$_{m}$. The simulation shows that temperature rises to initiate dynamic recrystallization, dynamic recrystallization lowers the flow stress, and that adiabatic shear localized band and the serrated chip are formed. FEA is also used to predict and compare chip formations of two flow stress models in orthogonal metal cutting with AISI 1045. The predictions of the FEA agreed well with the experimental measurements.s.