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    워터젯에 의한 난삭재 3D 형상 밀링가공 특성 = Machining Characteristic of 3D Milling on Hard-to-machine Materials by Waterjet

    한글로보기

    https://www.riss.kr/link?id=T14923282

    • 저자
    • 발행사항

      부산: 한국해양대학교 해사산업대학원, 2018

    • 학위논문사항
    • 발행연도

      2018

    • 작성언어

      한국어

    • KDC

      552.1 판사항(6)

    • 발행국(도시)

      부산

    • 형태사항

      50 p.: 삽도; 26cm.

    • 일반주기명

      한국해양대학교 논문은 저작권에 의해 보호받습니다.
      Machining Characteristic of 3D Milling on Hard-to-machine Materials by Waterjet
      지도교수:도덕희
      참고문헌: p.48-49

    • UCI식별코드

      I804:21028-200000105265

    • 소장기관
      • 국립한국해양대학교 도서관 소장기관정보
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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Recently, an attempt to use waterjet as a tool for abrasing of hard-to-machine materials, such as titanium and composites.
    When abrasing those materials with the conventional tools, rapid tool wear and thermal deformation are generated. Since waterjet process does not produce such kind of problems, the waterjet process are adopted for various machining for the hard-to-machine materials.
    In principle, water is pressurized with ultra high pressure with up to 3,000 bar or more with a high pressure pump for waterjet process and abrasive powder materials are mixed before injected to the target materials through an orifice and a nozzle for manufacturing.
    In this study, the influences of the cutting conditions of the abrasive waterjet such as pump pressure, feed rate, abrasive mass flow rate, SOD, onto the machining characteristics of the target materials are investigated.
    The cutting depths by the impact angle and by the overlap ratios have been measured for the materials, Ti6Al4V, SUS 304, and Inconel 600. From this, it has been verified that Ti6Al4V was the best machinability and Inconel 600 was the lowest machinability.
    It has been found that the cutting depths of AWJ increase the pump pressure and the amount of abrasive increase. On the contrary, the cutting depth of AWJ decrease as the feed rate of the mixed waterjet and S.O.D increases.
    It has been confirmed that the cutting depths increased by about 1.78 times as the overlapping ratio of the machining paths increased. It has been also confirmed that the surface roughness becomes less rough as the impact angle approaches 90°to the workpiece, since the water and the abrasive materials injected out from the nozzle become regular spreading.
    It has been verified that the waterjet cutting depth error was 10% less than those results obtained by 3D machining simulation.
    It is expected that the experimental results obtained through this study can be used as fundamental data for AWJ milling for various hard-to-machine materials.
    번역하기

    Recently, an attempt to use waterjet as a tool for abrasing of hard-to-machine materials, such as titanium and composites. When abrasing those materials with the conventional tools, rapid tool wear and thermal deformation are generated. Since waterjet...

    Recently, an attempt to use waterjet as a tool for abrasing of hard-to-machine materials, such as titanium and composites.
    When abrasing those materials with the conventional tools, rapid tool wear and thermal deformation are generated. Since waterjet process does not produce such kind of problems, the waterjet process are adopted for various machining for the hard-to-machine materials.
    In principle, water is pressurized with ultra high pressure with up to 3,000 bar or more with a high pressure pump for waterjet process and abrasive powder materials are mixed before injected to the target materials through an orifice and a nozzle for manufacturing.
    In this study, the influences of the cutting conditions of the abrasive waterjet such as pump pressure, feed rate, abrasive mass flow rate, SOD, onto the machining characteristics of the target materials are investigated.
    The cutting depths by the impact angle and by the overlap ratios have been measured for the materials, Ti6Al4V, SUS 304, and Inconel 600. From this, it has been verified that Ti6Al4V was the best machinability and Inconel 600 was the lowest machinability.
    It has been found that the cutting depths of AWJ increase the pump pressure and the amount of abrasive increase. On the contrary, the cutting depth of AWJ decrease as the feed rate of the mixed waterjet and S.O.D increases.
    It has been confirmed that the cutting depths increased by about 1.78 times as the overlapping ratio of the machining paths increased. It has been also confirmed that the surface roughness becomes less rough as the impact angle approaches 90°to the workpiece, since the water and the abrasive materials injected out from the nozzle become regular spreading.
    It has been verified that the waterjet cutting depth error was 10% less than those results obtained by 3D machining simulation.
    It is expected that the experimental results obtained through this study can be used as fundamental data for AWJ milling for various hard-to-machine materials.

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    목차 (Table of Contents)

    • 제 1 장 서 론 1
    • 1.1 연구배경 1
    • 1.2 연구목적 및 내용 4
    • 제 2 장 연마재 워터젯 가공의 개념 5
    • 제 1 장 서 론 1
    • 1.1 연구배경 1
    • 1.2 연구목적 및 내용 4
    • 제 2 장 연마재 워터젯 가공의 개념 5
    • 2.1 연마재 워터젯 가공시스템의 구조 5
    • 2.2 연마재 워터젯 가공 메커니즘 8
    • 제 3 장 워터젯 가공변수 및 소재 특성에 따른 가공성 분석 13
    • 3.1 워터젯 가공변수 및 가공 조건 선정 13
    • 3.2 워터젯 가공변수에 따른 난삭재의 피삭성 검토 15
    • 3.3 워터젯 가공변수에 따른 가공품질 평가 23
    • 제 4 장 난삭재 3D 워터젯 형상가공 특성평가 28
    • 4.1 가공조건-가공깊이 상호관계 분석을 통한 가공깊이 예측 28
    • 4.2 가공깊이 시뮬레이션 성능평가 35
    • 4.3 난삭재 3D 형상 워터젯 밀링 가공 성능평가 39
    • 제 5 장 결론 46
    • 참고문헌 48
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