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Evaluation of the Shape Accuracy of Turning Operations

선삭가공에서의 형상 정밀도에 대한 평가

  • 박동근 (경기대학교 기계시스템공학과) ;
  • 이준성 (경기대학교 기계시스템공학과)
  • Received : 2014.09.25
  • Accepted : 2015.03.12
  • Published : 2015.03.31

Abstract

This paper describes the changes of shape accuracy in workpiece materials depending on the turning clearance angle. The experiments started from choosing three workpiece materials, SM45C(machine structural carbon steel), STS303(stainless steel) and SCM415 (chrome-molybdenum steel). The experiments showed specifically how features of selected materials changed when they were processed with diverse machining depths, 0.1 mm, 0.2 mm and 0.3 mm, with various negative angles, $0.0^{\circ}(-6.0^{\circ})$, $0.3^{\circ}(-6.3^{\circ})$ and $0.9^{\circ}(-6.9^{\circ})$, and called cutting edge inclination starting from a fixed rotational speed, 2,500 rpm, focusing on the feed rate, 0.07 mm/rev and 0.10 mm/rev. The results of the accuracy of processing, cylindricity, deviation from coaxiality, etc. were compared using the graph and table. The accuracy of cylindricity in the order of degree $0.0^{\circ}{\rightarrow}0.3^{\circ}{\rightarrow}0.9^{\circ}$ depending on the workpiece materials showed the best cylindricity when it was $0.9^{\circ}$. In conclusion, the accuracy improved in specific degrees irrespective of the quality of the materials when the bite negative angles increased. This means that workability improved in these experiments. In addition, the processing shape changed depending on depth of the cut and feed rate.

본 연구에서는 선삭 작업에서 가공 여유각 변경에 따른 피삭재의 형상정밀도가 어떻게 변화되는지 분석하고자 하였다. 피삭재는 3가지로 SM45C(기계구조용탄소강), SCM415(크롬몰리브덴강), STS303(스테인리스강)을 선택하여 정해진 가공조건인 회전속도 2,500 rpm으로 시작하여 이송속도 0.07 mm/rev와 0.10 mm/rev를 기준으로 가공깊이 0.1 mm, 0.2 mm, 0.3 mm 그리고, 절인 경사각인 네거티브 경사각 $0.0^{\circ}(-6.0^{\circ})$, $0.3^{\circ}(-6.3^{\circ})$, $0.9^{\circ}(-6.9^{\circ})$의 3가지 형태로 가공하였을 경우, 재료별 가공정밀도, 원통도, 동축도, 진원도 등의 결과를 비교 분석하였다. 피삭재의 재질별로 알아본 원통도의 정밀도는 $0.0^{\circ}{\rightarrow}0.3^{\circ}{\rightarrow}0.9^{\circ}$의 순으로 $0.9^{\circ}$일 경우가 가장 좋은 원통도 값을 나타냈다. 결과적으로 바이트의 네거티브 경사각이 커지면 정밀도가 특정 부분에서 재질에 관계없이 좋아져서 가공성이 향상됨을 알 수 있었다. 또한, 이송속도와 절삭 깊이에 따라 가공형상이 변화한다는 것과 재질에 따라 다르게 적용되어야 한다는 것을 확인하게 되었다.

Keywords

References

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