http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.
변환된 중국어를 복사하여 사용하시면 됩니다.
마이크로 엔드밀링시 공구 변형이 가공오차에 미치는 영향에 관한 연구
서태일,손종인,이학용,Seo, Tae-Il,Sohn, Jong-In,Lee, Hak-Yong 한국생산제조학회 2009 한국생산제조학회지 Vol.25 No.4
Micro end-milling has been becoming an important machining process to manufacture a number of small products such as micro-devices, bio-chips, micro-patterns and so on. Many related researches have given grand effects to micro end-milling phenomenon, for example, micro end-milling mechanism, cutting force modeling and machinability. This paper strongly concerned actual problem, micro tool deflection, which causes excessive machining errors on the workpiece. Machining error were predicted and measured through a series of test micro cutting and analysis of their SEM images and FEM analysis. Experiments are carried out to validate the approaches.
박준식,서태일,배종석,윤길상,Park, Joon-Sik,Seo, Tae-Il,Bae, Jong-Suk,Yoon, Gil-Sang 한국생산제조학회 2006 한국생산제조학회지 Vol.15 No.3
Existing orthopedic implants such as pedicle screw and spinal cage were designed to fix the spinal structure. But, nowadays, physicians want to rehabilitate there original functions. To achieve this request, we studied micro-movable structure for interspinous. As a first step, we designed interspinous structure by 3D CAD to join each spinous processes. Next, we simulate it with various factors such as the thickness of micro-movement structure and the design of clip. At last, we performed static compressive test to satisfy the failure load of 339N and dynamic endurance test of 1.2M cycle. As a result, we developed interspinous implant and did several surgery to evaluated its satisfaction.
유한요소법을 이용한 마이크로 평엔드밀링에서의 공구변형 예측
임정수,조희주,서태일,Lim, Jeong-Su,Cho, Hee-Ju,Seo, Tae-Il 한국생산제조학회 2010 한국생산제조학회지 Vol.25 No.6
The main purpose of this study strongly concerned micro machining error estimation by using FEM analysis of tool deflection shapes in micro flat end-milling process. For the precision micro flat end-milling process, analysis of micro cutting errors is mandatory. In general, tool deflection is a major factor which causes cutting error and limits realization of the high-precision cutting process. Especially, in micro end-milling process, micro tool deflection generates very serious problems in contrast to macro tool deflection. Methods which deal with compensation of cutting error by tool deflection in macro end-milling process have been studied plentifully but, few researches transact with micro scaled cutting tool deflection in micro cutting process. Therefore, the trend of micro tool deflection was estimated by using FEM analysis in this paper. Cutting forces were acquired by micro dynamometer and these were utilized in FEM analysis. In order to verify FEM analysis results, micro machining processes were carried out and real machined profiles were compared with FEM results. Finally through the proposed approach well suited FEM results were obtained.
유동해석을 통한 유체제어벨브 시스템의 내부 유동 특성 분석
손창우(Chang-Woo Son),서태일(Tae-Il Seo),김광희(Kwang-Hee Kim),이선용(Sun-Ryong Lee) 한국산학기술학회 2018 한국산학기술학회논문지 Vol.19 No.6
세계적으로 반도체장비 시장은 오래전부터 성장하고 있다. 유체제어시스템은 반도체 제조 장비에 사용되어지는 배관을 집적화시켜 유체의 공급을 제어할 수 있도록 모듈화, 소형화한 시스템이다. 반도체의 제조공정은 여러 종류의 맹독성 가스를 필수적으로 다루어야 한다. 특히 실제 작업 공정에서는 이러한 맹독성 가스의 정밀한 제어가 필요하다. 이러한 맹독성가스를 제어하는 시스템은 피팅, 밸트, 튜브, 필터, 레귤레이터 등 다양한 부품들로 구성되어 있다. 이 부품들은 누출없이 고압 가스를 계속 제어해야 하기 때문에 정밀하게 제조되어야 하고 내부식성이 있어야 한다. 이를 위해 금속 블록 및 금속 가스킷의 표면 가공 및 경화 기술을 연구해야 한다. 본 논문에서는 이러한 유체제어시스템에서 가장 기본이 되는 V-Block의 직경, 유량, 각도를 다르게 설계하여 내부에서 어떠한 유동흐름을 보이는지 파악하고자 하며, 유체제어시스템에서 가장 기본이 되는 유체제어벨브 시스템의 내부 유동해석을 통하여 안정적인 유량을 공급할 수 있는 설계의 최적화에 대해 연구하고 분석하였다. The worldwide semi-conductor market has been growing for a long time. Manufacturing lines of semi-conductors need to handle several types of toxic gases. In particular, they need to be controlled accurately in real time. This type of toxic gas control system consists of many different kinds of parts, e.g., fittings, valves, tubes, filters, and regulators. These parts obviously need to be manufactured precisely and be corrosion resistant because they have to control high pressure gases for long periods without any leakage. For this, surface machining and hardening technologies of the metal block and metal gasket need to be studied. This type of study depends on various factors, such as geometric shapes, part materials, surface hardening method, and gas pressures. This paper presents strong concerns on a series of simulation processes regarding the differences between the inlet and outlet pressures considering several different fluid velocity, tube diameters, and V-angles. Indeed, this study will very helpful to determine the important design factors as well as precisely manufacture these parts. The EP (Electrolytic Polishing) process was used to obtain cleaner surfaces, and hardness tests were carried out after the EP process.