• 제목/요약/키워드: Cable structure

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Geotechnical Engineering Progress with the Incheon Bridge Project

  • Cho, Sung-Min
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 세계 도시지반공학 심포지엄
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    • pp.133-144
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    • 2009
  • Incheon Bridge, 18.4 km long sea-crossing bridge, will be opened to the traffic in October 2009 and this will be the new landmark of the gearing up north-east Asia as well as the largest & longest bridge of Korea. Incheon Bridge is the integrated set of several special featured bridges including a magnificent cable-stayed girder bridge which has a main span of 800 m width to cross the navigation channel in and out of the Port of Incheon. Incheon Bridge is making an epoch of long-span bridge designs thanks to the fully application of the AASHTO LRFD (load & resistance factor design) to both the superstructures and the substructures. A state-of-the-art of the geotechnologies which were applied to the Incheon Bridge construction project is introduced. The most Large-diameter drilled shafts were penetrated into the bedrock to support the colossal superstructures. The bearing capacity and deformational characteristics of the foundations were verified through the world's largest static pile load test. 8 full-scale pilot piles were tested in both offshore site and onshore area prior to the commencement of constructions. Compressible load beyond 30,000 tonf pressed a single 3 m diameter foundation pile by means of bi-directional loading method including the Osterberg cell techniques. Detailed site investigation to characterize the subsurface properties had been carried out. Geotextile tubes, tied sheet pile walls, and trestles were utilized to overcome the very large tidal difference between ebb and flow at the foreshore site. 44 circular-cell type dolphins surround the piers near the navigation channel to protect the bridge against the collision with aberrant vessels. Each dolphin structure consists of the flat sheet piled wall and infilled aggregates to absorb the collision impact. Geo-centrifugal tests were performed to evaluate the behavior of the dolphin in the seabed and to verify the numerical model for the design. Rip-rap embankments on the seabed are expected to prevent the scouring of the foundation. Prefabricated vertical drains, sand compaction piles, deep cement mixings, horizontal natural-fiber drains, and other subsidiary methods were used to improve the soft ground for the site of abutments, toll plazas, and access roads. Light-weight backfill using EPS blocks helps to reduce the earth pressure behind the abutment on the soft ground. Some kinds of reinforced earth like as MSE using geosynthetics were utilized for the ring wall of the abutment. Soil steel bridges made of corrugated steel plates and engineered backfills were constructed for the open-cut tunnel and the culvert. Diverse experiences of advanced designs and constructions from the Incheon Bridge project have been propagated by relevant engineers and it is strongly expected that significant achievements in geotechnical engineering through this project will contribute to the national development of the longspan bridge technologies remarkably.

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전기적 신호의 반사파 측정법을 적용한 부식 진단 기술의 개발 및 시뮬레이션 (Development and Simulation of a Detecting Method using Reflectometry of Electrical Signal)

  • 윤승현;방수식;신용준;임윤묵
    • 한국전산구조공학회논문집
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    • 제31권6호
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    • pp.367-372
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    • 2018
  • 오래된 구조물의 내부 결함은 그 구조물의 안전에 큰 영향을 미친다. 따라서 안전에 문제가 생기기 전에 미리 검사를 진행하고 발견하는 것이 중요하다. 가장 쉽고 효율적인 방법은 육안으로 구조물을 진단하는 것이나, 프리스트레스트 콘크리트(PSC) 교량과 같은 구조물에서 부식이나 공극 같은 결함들은 피복으로 감싸져 있어 육안으로는 확인이 불가하다. 따라서 내부 결함도 진단할 수 있는 비파괴검사방법을 이용하여 진단해야 한다. 본 연구에서 사용되는 기술은 전력용 케이블을 진단할 때 주로 사용되는 시간 영역의 반사파 계측법과 시간-주파수 영역의 반사파를 적용하여 종단지점에 부착된 측정기계에서 인가한 신호가 이동하는 중 전기적 임피던스 변화에 의해 발생하는 반사파를 분석하는 기술로 측정시간 단축, 검사의 간편 성과 같은 측면에서 훨씬 큰 효율성을 가진다. 하지만 토목 구조물은 전력용 케이블과 달리 내부 구조가 복잡하여, 실제 진단을 진행하는데 어려움이 있기에 본 연구에서는 실제 실험과 COMSOL을 이용한 시뮬레이션의 결과를 확인 및 비교하여 시뮬레이션의 정확도와 적용가능성을 확인하였고, 반사파 계측법이 복잡한 구조물을 대상으로도 사용 가능한지 그 가능성 또한 보았다. 또한 더 나아가, 시뮬레이션을 통해 프리스트레스트 콘크리트(PSC) 교량의 덕트 내부에 공극 및 부식과 같은 결함이 생겼을 때, 그 결함들이 반사파에 미치는 영향을 보았다.

방송 산업 내 플랫폼사업자와 콘텐츠사업자 간 공정거래환경 조성 연구 (A Study on Creation of Fair Transaction Environment between Platform Operator and Contents Provider in Broadcasting Industry)

  • 김용희;도준호
    • 한국인터넷방송통신학회논문지
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    • 제23권2호
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    • pp.175-183
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    • 2023
  • 플랫폼 사업자와 콘텐츠 사업자 간 밀접한 상호의존관계를 갖는 방송 시장환경에서, 지상파 재송신 대가와 관련한 갈등, 프로그램 사용료 갈등 및 홈쇼핑 송출 수수료 갈등 등의 문제가 심화되고 있다. 본 연구는 국내 방송시장의 환경을 분석하고 시사점을 제시하는 한편 플랫폼과 PP간 사용료 갈등 원인 분석 및 사용료 갈등 분쟁 해소를 위한 세부대안을 제안하고자 하였다. 국내 방송시장에 대한 환경분석 결과는 다음과 같다. 첫째, 방송산업의 성장 동력이 서비스이용료나 콘텐츠 사용료와 같은 직접 재원으로 변화하였고, 커머스가 증가하고 있다는 것이다. 둘째, 국내 방송시장의 헤게모니가 지상파에서 유료방송 그리고 OTT로 변화하면서 자발적 진입에 의한 방송 영역 전반의 독점이 해체되고 있다는 것이다. 셋째, 기존 방송시장의 해체와 재편으로 기존 규제 체계의 정비 필요성이 증가하고 있다. 한편, 본 연구는 유료방송플랫폼과 PP간 첨예하게 맞서는 사용료에 대한 분쟁을 해결하기 위해서는 PP의 수익구조 다변화, 선계약 후공급 정착 방안 및 CPS 협상력 강화 전략을 제안하였다.

단위유량도와 비수갑문 단면 및 방조제 축조곡선 결정을 위한 조속계산 (Calculation of Unit Hydrograph from Discharge Curve, Determination of Sluice Dimension and Tidal Computation for Determination of the Closure curve)

  • 최귀열
    • 한국농공학회지
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    • 제7권1호
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    • pp.861-876
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    • 1965
  • During my stay in the Netherlands, I have studied the following, primarily in relation to the Mokpo Yong-san project which had been studied by the NEDECO for a feasibility report. 1. Unit hydrograph at Naju There are many ways to make unit hydrograph, but I want explain here to make unit hydrograph from the- actual run of curve at Naju. A discharge curve made from one rain storm depends on rainfall intensity per houre After finriing hydrograph every two hours, we will get two-hour unit hydrograph to devide each ordinate of the two-hour hydrograph by the rainfall intensity. I have used one storm from June 24 to June 26, 1963, recording a rainfall intensity of average 9. 4 mm per hour for 12 hours. If several rain gage stations had already been established in the catchment area. above Naju prior to this storm, I could have gathered accurate data on rainfall intensity throughout the catchment area. As it was, I used I the automatic rain gage record of the Mokpo I moteorological station to determine the rainfall lntensity. In order. to develop the unit ~Ydrograph at Naju, I subtracted the basic flow from the total runoff flow. I also tried to keed the difference between the calculated discharge amount and the measured discharge less than 1O~ The discharge period. of an unit graph depends on the length of the catchment area. 2. Determination of sluice dimension Acoording to principles of design presently used in our country, a one-day storm with a frequency of 20 years must be discharged in 8 hours. These design criteria are not adequate, and several dams have washed out in the past years. The design of the spillway and sluice dimensions must be based on the maximun peak discharge flowing into the reservoir to avoid crop and structure damages. The total flow into the reservoir is the summation of flow described by the Mokpo hydrograph, the basic flow from all the catchment areas and the rainfall on the reservoir area. To calculate the amount of water discharged through the sluiceCper half hour), the average head during that interval must be known. This can be calculated from the known water level outside the sluiceCdetermined by the tide) and from an estimated water level inside the reservoir at the end of each time interval. The total amount of water discharged through the sluice can be calculated from this average head, the time interval and the cross-sectional area of' the sluice. From the inflow into the .reservoir and the outflow through the sluice gates I calculated the change in the volume of water stored in the reservoir at half-hour intervals. From the stored volume of water and the known storage capacity of the reservoir, I was able to calculate the water level in the reservoir. The Calculated water level in the reservoir must be the same as the estimated water level. Mean stand tide will be adequate to use for determining the sluice dimension because spring tide is worse case and neap tide is best condition for the I result of the calculatio 3. Tidal computation for determination of the closure curve. During the construction of a dam, whether by building up of a succession of horizontael layers or by building in from both sides, the velocity of the water flowinii through the closing gapwill increase, because of the gradual decrease in the cross sectional area of the gap. 1 calculated the . velocities in the closing gap during flood and ebb for the first mentioned method of construction until the cross-sectional area has been reduced to about 25% of the original area, the change in tidal movement within the reservoir being negligible. Up to that point, the increase of the velocity is more or less hyperbolic. During the closing of the last 25 % of the gap, less water can flow out of the reservoir. This causes a rise of the mean water level of the reservoir. The difference in hydraulic head is then no longer negligible and must be taken into account. When, during the course of construction. the submerged weir become a free weir the critical flow occurs. The critical flow is that point, during either ebb or flood, at which the velocity reaches a maximum. When the dam is raised further. the velocity decreases because of the decrease\ulcorner in the height of the water above the weir. The calculation of the currents and velocities for a stage in the closure of the final gap is done in the following manner; Using an average tide with a neglible daily quantity, I estimated the water level on the pustream side of. the dam (inner water level). I determined the current through the gap for each hour by multiplying the storage area by the increment of the rise in water level. The velocity at a given moment can be determined from the calcalated current in m3/sec, and the cross-sectional area at that moment. At the same time from the difference between inner water level and tidal level (outer water level) the velocity can be calculated with the formula $h= \frac{V^2}{2g}$ and must be equal to the velocity detertnined from the current. If there is a difference in velocity, a new estimate of the inner water level must be made and entire procedure should be repeated. When the higher water level is equal to or more than 2/3 times the difference between the lower water level and the crest of the dam, we speak of a "free weir." The flow over the weir is then dependent upon the higher water level and not on the difference between high and low water levels. When the weir is "submerged", that is, the higher water level is less than 2/3 times the difference between the lower water and the crest of the dam, the difference between the high and low levels being decisive. The free weir normally occurs first during ebb, and is due to. the fact that mean level in the estuary is higher than the mean level of . the tide in building dams with barges the maximum velocity in the closing gap may not be more than 3m/sec. As the maximum velocities are higher than this limit we must use other construction methods in closing the gap. This can be done by dump-cars from each side or by using a cable way.e or by using a cable way.

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