• 제목/요약/키워드: Weight measurement task

검색결과 23건 처리시간 0.021초

스트레인게이지 타입 회전형 공구동력계 개발과 3축 정적 하중 검증 (Development of Strain-gauge-type Rotational Tool Dynamometer and Verification of 3-axis Static Load)

  • 이동섭;김인수;이세한;왕덕현
    • 한국기계가공학회지
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    • 제18권9호
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    • pp.72-80
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    • 2019
  • In this task, the tool dynamometer design and manufacture, and the Ansys S/W structural analysis program for tool attachment that satisfies the cutting force measurement requirements of the tool dynamometer system are used to determine the cutting force generated by metal cutting using 3-axis static structural analysis and the LabVIEW system. The cutting power in a cutting process using a milling tool for processing metals provides useful information for understanding the processing, optimization, tool status monitoring, and tool design. Thus, various methods of measuring cutting power have been proposed. The device consists of a strain-gauge-based sensor fitted to a new design force sensing element, which is then placed in a force reduction. The force-sensing element is designed as a symmetrical cross beam with four arms of a rectangular parallel line. Furthermore, data duplication is eliminated by the appropriate setting the strain gauge attachment position and the construction of a suitable Wheatstone full-bridge circuit. This device is intended for use with rotating spindles such as milling tools. Verification and machining tests were performed to determine the static and dynamic characteristics of the tool dynamometer. The verification tests were performed by analyzing the difference between strain data measured by weight and that derived by theoretical calculations. Processing test was performed by attaching a tool dynamometer to the MCT to analyze data generated by the measuring equipment during machining. To maintain high productivity and precision, the system monitors and suppresses process disturbances such as chatter vibration, imbalances, overload, collision, forced vibration due to tool failure, and excessive tool wear; additionally, a tool dynamometer with a high signal-to-noise ratio is provided.

초고성능 콘크리트의 수화발열 및 역학적 특성 모델 (Models for Hydration Heat Development and Mechanical Properties of Ultra High Performance Concrete)

  • 차수원;김기현;김성욱;박정준;배성근
    • 콘크리트학회논문집
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    • 제22권3호
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    • pp.389-397
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    • 2010
  • 콘크리트는 역학적 성능, 내구성능, 경제성이 우수한 재료이지만 장경간 교량에 적용하기는 쉽지 않은데, 이는 콘크리트의 중량 대비 강도가 낮기 때문이다. 초고성능 콘크리트는 높은 압축강도를 가지며 굵은 골재를 사용하지 않으므로 단면의 크기를 줄일 수 있어, 장경간 교량 바닥판으로 활용이 기대된다. 그러나 초고성능 콘크리트는 재료 특성상 단위결합재량이 많으므로 바닥판 양생과정에서 수화열에 의한 균열이 발생할 수 있다. 이 연구에서는 UHPC 바닥판의 초기재령 균열 위험성을 평가하기 위한 기초 작업을 수행하였다. 먼저 단열온도 상승시험 결과를 바탕으로 2변수 모델과 S자형 함수의 중첩으로 단열온도 상승곡선을 모델링하고, 등가재령의 개념을 도입하여 UHPC의 아레니우스 상수를 결정하였다. 이상의 결과를 실물크기 시험체에 대한 수화발열 측정시험으로 검증하였다. 다음으로 초음파 속도 측정 결과와 하중 재하에 의하여 탄성계수, 인장강도, 압축강도와 같은 UHPC의 역학적 특성을 구하였다.

The Future of NVH Research - A Challenge by New Powertrains

  • Genuit, Ing. K.
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2010년도 춘계학술대회 논문집
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    • pp.48-48
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    • 2010
  • Sound quality and NVH-issues(Noise, Vibration and Harshness) of vehicles has become very important for car manufacturers. It is interpreted as among the most relevant factors regarding perceived product quality, and is important in gaining market advantage. The general sound quality of vehicles was gradually improved over the years. However, today the development cycles in the automotive industry are constantly reduced to meet the customers' demands and to react quickly to market needs. In addition, new drive and fuel concepts, tightened ecological specifications, increase of vehicle classes and increasing diversification(increasing market for niche vehicles), etc. challenge the acoustic engineers trying to develop a pleasant, adequate, harmonious passenger cabin sound. Another aspect concerns the general pressure for reducing emission and fuel consumption, which lead to vehicle weight reductions through material changes also resulting in new noise and vibration conflicts. Furthermore, in the context of alternative powertrains and engine concepts, the new objective is to detect and implement the vehicle sound, tailored to suit the auditory expectations and needs of the target group. New questions must be answered: What are appropriate sounds for hybrid or electric vehicles? How are new vehicle sounds perceived and judged? How can customer-oriented, client-specific target sounds be determined? Which sounds are needed to fulfil the driving task, and so on? Thus, advanced methods and tools are necessary which cope with the increasing complexity of NVH-problems and conflicts and at the same time which cope with the growing expectations regarding the acoustical comfort. Moreover, it is exceedingly important to have already detailed and reliable information about NVH-issues in early design phases to guarantee high quality standards. This requires the use of sophisticated simulation techniques, which allow for the virtual construction and testing of subsystems and/or the whole car in early development stages. The virtual, testing is very important especially with respect to alternative drive concepts(hybrid cars, electric cars, hydrogen fuel cell cars), where complete new NVH-problems and challenges occur which have to be adequately managed right from the beginning. In this context, it is important to mention that the challenge is that all noise contributions from different sources lead to a harmonious, well-balanced overall sound. The optimization of single sources alone does not automatically result in an ideal overall vehicle sound. The paper highlights modern and innovative NVH measurement technologies as well as presents solutions of recent NVH tasks and challenges. Furthermore, future prospects and developments in the field of automotive acoustics are considered and discussed.

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