• Title/Summary/Keyword: 구조정

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A Two-Step Soft Output Viterbi Algorithm with Algebraic Structure (대수적 구조를 가진 2단 연판정 출력 비터비 알고리듬)

  • 김우태;배상재;주언경
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.26 no.12A
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    • pp.1983-1989
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    • 2001
  • A new two-step soft output Viterbi algorithm (SOVA) for turbo decoder is proposed and analyzed in 7his paper. Due to the algebraic structure of the proposed algorithm, slate and branch metrics can be obtained wish parallel processing using matrix arithmetic. As a result, the number of multiplications to calculate state metrics of each stage and total memory size can be decreased tremendously. Therefore, it can be expected that the proposed algebraic two-step SOVA is suitable for applications in which low computational complexity and memory size are essential.

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Investigation of Interaction between Crystal Stress and Intergranular Misorientation using Single Crystal Yield Vertex Analysis (단결정 항복 꼭지점 분석을 이용한 입자간 방위차와 결정응력의 상호작용 조사)

  • Han, Tong-Seok
    • Proceedings of the Computational Structural Engineering Institute Conference
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    • 2011.04a
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    • pp.269-272
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    • 2011
  • 새로운 재료의 개발과 사용 중인 기존재료의 손상을 판단하기 위해서 변형 중 재료 거동을 정확히 파악하는 것이 중요하다. 하지만, 대부분의 공학 재료는 다결정으로 이루어져 결정 상호작용의 규명이 복잡하여 정밀한 분석이 어렵다. 고에너지 X-ray 회절실험법을 이용한 다결정 고체 거동의 측정기법이 발전함에 따라 해석을 통한 실험법의 검증 및 추가 분석 방법에 대해서도 연구가 활발히 진행되고 있다. 본 연구에서는 특정 결정과 주변 결정 간의 결정간 방위차(intergranular misorientation)의 상호작용에 의한 결정 거동 영향을 조사하였다. 결정간 방위차를 정의하고 결정 응력 방향 변화를 단결정 항복면 꼭지점과 방향과 비교함으로써 결정간 방위차의 변화에 대한 결정 응력 변화를 분석하였다. 소성 발생이 증가함에 따라 결정 응력의 방향은 단결정 항복면 꼭지점으로 이동하지만 결정간 방위차에 의해서 응력 분포가 변화함을 정량적으로 확인하였다.

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Design Approach of Concrete Structures Considering the Targeted CO2 Reduction (목표 탄소배출량 저감을 고려한 콘크리트 구조물의 설계 절차)

  • Jung, Yeon-Back;Yang, Keun-Hyeok
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.3 no.2
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    • pp.115-121
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    • 2015
  • The objective of this study is to present the design approach of low $CO_2$ concrete structures for reduction of $CO_2$ emissions. The design approach was implemented considering the system boundary for each processing presented in the ISO 13315-2. As for life-cycle inventory(LCI) for $CO_2$ assessment of concrete structures, data provided from domestic LCI DB was used. Based on the process presented in this study, case studies on the life-cycle $CO_2$ assessment of shear wall concrete structure was conducted. As substitution level of GGBS is 25%, the amount of $CO_2$ emissions and $CO_2$ uptake by concrete carbonation was decreased in the material, demolition and crushing, and transport phase. The amount of $CO_2$ emissions of column and total member was decreased by 26% and 22% respectively, compared to that of OPC.

A Model for Lifecycle CO2 Assessment of Building Structures Considering the Mixture Proportions of Concrete (콘크리트 배합설계를 고려한 구조물의 전과정 CO2평가 모델)

  • Yang, Keun-Hyeok;Seo, Eun-A
    • Journal of the Korea Concrete Institute
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    • v.26 no.2
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    • pp.201-210
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    • 2014
  • The present study proposes a phased model to assess the lifecycle $CO_2$ amount of concrete structures. The considered system boundary is from cradle to recycling, which includes constituent material, transportation, batching and mixing in ready-mixed concrete plant, use and demolition of structure, and crushing and recycling of demolished concrete. The $CO_2$ uptake of concrete by carbonation during lifetime (40 years) of a structure and the recycling life (20 years) after demolition is estimated using a simple approach generalized to predict the carbonation depth from the surfaces of concrete element and recycled aggregates. Based on the proposed phased model, a performance evaluation table is realized to straightforwardly examine the lifecycle $CO_2$ amount of concrete structures. The proposed model demonstrates that the contribution of ordinary portland cement (OPC) to lifecycle $CO_2$ emission of the concrete structure occupies approximately 85%. Furthermore, the $CO_2$ uptake is estimated to be approximately 15~18% of the lifecycle $CO_2$ emissions of concrete structures, which corresponds to be 19~22% of the emissions from OPC production. Overall, the proposed $CO_2$ performance table is expected to be practically useful as a guideline to determine the $CO_2$ emission or uptake at each phase of concrete structures.