• 제목/요약/키워드: Main Bearing

검색결과 599건 처리시간 0.032초

다얼성 옥수수 연구 IV. IK형 분얼 옥수수의 잎 특성 (Maize with Multiple Ears and and Tillers(MET) IV. Leaf Characteristics of IK Type Maize with Tillers)

  • Choe, Bong-Ho;Lee, Hee-Bong;Lee, Won-Koo;Kang, Kwon-Kyu;Choi, Chang-Yeol
    • 한국작물학회지
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    • 제34권4호
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    • pp.364-369
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    • 1989
  • 분얼하는 옥수수 교잡종 (IK//1R1/B68)의 잎이 분얼하지 않는 옥수수(진주옥)의 잎과 길이나, 폭 또는 면적에 있어서 차이가 있는지의 여부를 알기위해 주경 또는 분얼경의 지엽으로 부터 아래로 9개 잎을 수확기에 취하여 엽장, 엽폭, 엽면적을 측정하였다. 1. 개체당 주경의 평균 엽장은 IK형 (IK//IRI/B68)이나 진주옥이 거의 같았으나 평균 엽폭은 IK형이 진주옥보다 약 2cm 좁았다. 평균 엽면적 역시 IK형이 적었는데 그 이유는 엽폭이 좁았기 때문이었다. 2. IK형 옥수수에서 주경과 분엽경간의 잎특성(장, 폭. 면적)은 서로 비슷하였다. 3. IK형 옥수수는 착수절 바로 아래 절의 잎이 가장 길었고 착수절 바로 위의 잎이 가장 넓었다. 4. IK형 옥수수 잎의 절입별 병이계수를 비교한 결과 착수절을 포함한 착수절 근처 잎이 변이계수가 가장 낮았고, 착수절에서 멀리 떨어진 잎일수록 변이계수의 값이 컸다. 특히 정엽의 변이계수는 다른 잎들보다 훨씬 컸다. 이같은 경향은 주경과 분얼경의 잎이 모두 같았다. 5. 기존의 공식(장$\times$$\times$0.75)에 의해 추정한 엽면적보다는 직접 측정한 엽면적이 컸다. 따라서 IK형 옥수수의 엽장과 엽폭에 의한 엽면적 추정은 기존의 0.75 대신에 0.80을 이용하는 것이 보다 타당할 것으로 생각된다.

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LRB, FPS 지진격리시스템의 지진응답특성 비교연구 (Seismic Response Comparative Evaluation Study on Floor Isolation using LRB and FPS in Main Control Room of Nuclear Power Plant)

  • 이경진;함경원
    • 한국지진공학회논문집
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    • 제13권4호
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    • pp.15-23
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    • 2009
  • 본 연구에서는 원전 주제어실의 층 지진격리시스템에 대한 지진동 저감성능과 적용성을 평가하기 위해서 실험연구를 수행하였다. 층 지진격리시스템에 적용하기 위해서 납-고무 베어링(LRB)과 마찰진자장치(FPS)를 설계하고 제작하였다. 제어 캐비닛과 액세스 플로어로 구성된 원전 주제어실 부분 실험모형을 제작하여 납-고무 베어링과 마찰진자장치를 각각 설치하여 진동대 실험을 수행하여 지진응답특성을 비교, 평가하였다. 실험을 위해서 원전 주제어실의 운전기준지진(OBE)과 안전정지지진(SSE)의 수평방향 층응답 스펙트럼을 이용하여 인공지진 시간이력을 만들어서 진동대 실험에 사용하였다. 입력지진에 대한 실험모형의 지진응답은 마찰진자장치를 적용한 경우 상대적으로 우수한 지진동 저감특성을 나타냈다.

10 kWh급 초전도 베어링 회전자의 기계적 특성 평가 (Mechanical Properties of a High-temperature Superconductor Bearing Rotor in a 10 kWh Class Superconductor Flywheel Energy Storage System)

  • 박병준;정세용;김철희;한상철;박병철;한상진;두승규;한영희
    • Progress in Superconductivity
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    • 제13권1호
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    • pp.58-63
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    • 2011
  • Recently, superconductor flywheel energy storage systems (SFESs) have been developed for application to a regenerative power of train, a power quality improvement, the storage of distributed power sources such as solar and wind power, and a load leveling. As the high temperature superconductor (HTS) bearings offer dynamic stability without the use of active control, accurate analysis of the HTS bearing is very important for application to SFESs. Mechanical property of a HTS bearing is the main index for evaluating the capacity of an HTS bearing and is determined by the interaction between the HTS bulks and the permanent magnet (PM) rotor. HTS bearing rotor consists of PM and iron collector and the proper dimension design of them is very important to determine a supporting characteristics. In this study, we have optimized a rotor magnet array, which depends on the limited bulk size and performed various dimension layouts for thickness of the pole pitch and iron collector. HTS bearing rotor was installed into a single axis universal test machine for a stiffness test. A hydraulic pump was used to control the amplitude and frequency of the rotor vibration. As a result, the stiffness result showed a large difference more than 30 % according to the thickness of permanent magnet and iron collector. This is closely related to the bulk stiffness controlled by flux pining area, which is limited by the total bulk dimension. Finally, the optimized HTS bearing rotor was installed into a flywheel system for a dynamic stability test. We discussed the dynamic properties of the superconductor bearing rotor and these results can be used for the optimal design of HTS bearings of the 10kWh SFESs.

점토층 위 모래지반의 지지력비에 따른 얕은 기초의 지지력 거동 (Behavior of Bearing Capacity for Shallow Foundation on a Sand overlying Clay Depending on Bearing Capacity Ratio)

  • 정민형;신효희;이송
    • 한국구조물진단유지관리공학회 논문집
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    • 제15권1호
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    • pp.198-208
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    • 2011
  • 연약 점성지반 위에 상대적으로 낮은 하중의 구조물이 얹어질 때, 상부에 모래층을 두어 지지력을 증진시킬 수 있다. 이와같은 점토 위 모래층이 놓이는 조건에 대한 지지력 검증은 현장에서 평판재하시험 등을 통해 지지력 검증이 어렵기 때문에 설계단계에서부터 정확한 지지력 예측이 필요하다. 따라서, 본 연구는 점토 위 모래층이 놓이는 지반의 지지력 거동을 파악하기 위해 2차원 실내토조실험과 FEM 해석을 수행하였다. 주요 인자로 깊이비 H/B와 지지력비 $q_c/q_s$를 선정하여, 모래층 높이, 점토의 비배수전단강도 그리고 재하 폭을 변수로 하였다. 그 결과, 실내토조실험은 FEM 해석과 적합성이 상당히 높게 나타났다. 이론식과의 비교에 있어서 보다 최신 연구인 Okamura et al.(1998)의 메커니즘보다 관입전단 메커니즘과 그 유사성이 크게 나타났으며, 하중확산 메커니즘의 적용성을 위하여 등가하중확산각을 제시하였다. 또한, $q_c/q_s$에 대하여 무차원 단위의 한계깊이비 $H_f$의 선형 회귀식을 제안하였다.

자기베어링을 이용한 플라이휠 에너지 저장 시스템의 불평형 질량에 의한 베어링의 동적 부하 용량 (A magnetic bearing capacity due to unbalance mass in a flywheel energy storage system)

  • 김봉수;배용채;이욱륜;김희수;이두영
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2009년도 추계학술대회 논문집
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    • pp.176-181
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    • 2009
  • In this article, excitation forces due to unbalance mass in a flywheel energy storage system will be discussed, which mainly consists of a composite flywheel and active magnetic bearings and a motor/generator. Unbalance mass causes moments as well as centrifugal forces to the center of the flywheel when the flywheel rotates. The moment excites the flywheel to revolve in the shape of conical revolution and in real operation, the flywheel shows an aspect that conical revolution is a main mode when system failure occurs. Although there are several excitation sources to the flywheel including unbalance mass, an excitation from motor and control issues of the magnetic bearings, we could infer unbalance mass is the main cause of the failure from a comparison between a composite flywheel and a steel flywheel in the same condition. In this of view, excitation forces and moments induced by unbalance mass should be carefully considered in dynamics of the flywheel so that the energy storage system can be operated in more stable conditions.

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Geotechnical field investigation on giresun hazelnut licenced warehause and spot exchange

  • Angin, Zekai
    • Geomechanics and Engineering
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    • 제10권4호
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    • pp.547-563
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    • 2016
  • This paper describes a geotechnical field investigation in Giresun hazelnut licenced warehause and spot exchange during twelve months to determine the soil profile and static project applicability. It is also aimed to determine the superstructure loads and evaluate the relevance of foundation filling materials of the main, laboratory, package and admin buildings. The main building has $88.50{\times}63.20(5593.2)m^2$ site area. It has a big raft foundation. Eleven geotechnical reports were prepared between 2 December 2014 and 25 May 2015. Maximum settlements and safe bearing capacities were calculated to decide to be able to proceed to the next step. Also, the detail observations and evaluations were presented from October 2014 to December 2014. It has been seen that the foundation is designed as a single foundation one. But, in the light of observations, it has been evaluated that the foundation project for package building is not adequate, and after these excavations it must be revised as a raft foundation. The thickness of foundation and structural details should be defined/drawn after analyzing the details by using a special software. Construction joints should be designed between different buildings interfaces to avoid damages and cracks with in different settlements. The environmental drainage must be projected and applied to avoid the probable damage of surface waters on foundations.

Cyclic loading test of abnormal joints in SRC frame-bent main building structure

  • Wang, Bo;Cao, Guorong;Yang, Ke;Dai, Huijuan;Qin, Chaogang
    • Earthquakes and Structures
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    • 제20권4호
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    • pp.417-430
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    • 2021
  • Due to functional requirements, SRC column-RC beam abnormal joints with characteristics of strong beam weak column, variable column section, unequal beam height and staggered height exist in the Steel reinforced concrete (SRC) frame-bent main building structure of thermal power plant (TPP). This paper presents the experimental results of these abnormal joints through cyclic loading tests on five specimens with scaling factor of 1/5. The staggered height and whether adding H-shaped steel in beam or not were changing parameters of specimens. The failure patterns, bearing capacity, energy dissipation and ductile performance were analyzed. In addition, the stress mechanism of the abnormal joint was discussed based on the diagonal strut model. The research results showed that the abnormal exterior joints occurred shear failure and column end hinge flexural failure; reducing beam height through adding H-shaped steel in the beam of abnormal exterior joint could improve the crack resistance and ductility; the abnormal interior joints with different staggered heights occurred column ends flexural failure; the joint with larger staggered height had the higher bearing capacity and stiffness, but lower ductility. The concrete compression strut mechanism is still applicable to the abnormal joints in TPP, but it is affected by the abnormal characteristics.

Experimental study on shear, tensile, and compression behaviors of composite insulated concrete sandwich wall

  • Zhang, Xiaomeng;Zhang, Xueyong;Liu, Wenting;Li, Zheng;Zhang, Xiaowei;Zhou, Yilun
    • Advances in concrete construction
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    • 제11권1호
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    • pp.33-43
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    • 2021
  • A new type of composite insulated concrete sandwich wall (ICS-wall), which is composed of a triangle truss steel wire network, an insulating layer, and internal and external concrete layers, is proposed. To study the mechanical properties of this new ICS-wall, tensile, compression, and shearing tests were performed on 22 specimens and tensile strength and corrosion resistance tests on 6 triangle truss joints. The variables in these tests mainly include the insulating plate material, the thickness of the insulating plate, the vertical distance of the triangle truss framework, the triangle truss layout, and the connecting mode between the triangle truss and wall and the material of the triangle truss. Moreover, the failure mode, mechanical properties, and bearing capacity of the wall under tensile, shearing, and compression conditions were analyzed. Research results demonstrate that the concrete and insulating layer of the ICS-wall are pulling out, which is the main failure mode under tensile conditions. The ICS-wall, which uses a graphite polystyrene plate as the insulating layer, shows better tensile properties than the wall with an ordinary polystyrene plate. The tensile strength and bearing capacity of the wall can be improved effectively by strengthening the triangle truss connection and shortening the vertical distances of the triangle truss. The compression capacity of the wall is mainly determined by the compression capacity of concrete, and the bonding strength between the wall and the insulating plate is the main influencing factor of the shearing capacity of the wall. According to the tensile strength and corrosion resistance tests of Austenitic stainless steel, the bearing capacity of the triangle truss does not decrease after corrosion, indicating good corrosion resistance.