• 제목/요약/키워드: large sectional tunnel

검색결과 20건 처리시간 0.023초

Effects of frequency ratio on bridge aerodynamics determined by free-decay sectional model tests

  • Qin, X.R.;Kwok, K.C.S.;Fok, C.H.;Hitchcock, P.A.
    • Wind and Structures
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    • 제12권5호
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    • pp.413-424
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    • 2009
  • A series of wind tunnel free-decay sectional model dynamic tests were conducted to examine the effects of torsional-to-vertical natural frequency ratio of 2DOF bridge dynamic systems on the aerodynamic and dynamic properties of bridge decks. The natural frequency ratios tested were around 2.2:1 and 1.2:1 respectively, with the fundamental vertical natural frequency of the system held constant for all the tests. Three 2.9 m long twin-deck bridge sectional models, with a zero, 16% (intermediate gap) and 35% (large gap) gap-to-width ratio, respectively, were tested to determine whether the effects of frequency ratio are dependent on bridge deck cross-section shapes. The results of wind tunnel tests suggest that for the model with a zero gap-width, a model to approximate a thin flat plate, the flutter derivatives, and consequently the aerodynamic forces, are relatively independent of the torsional-to-vertical frequency ratio for a relatively large range of reduced wind velocities, while for the models with an intermediate gap-width (around 16%) and a large gap-width (around 35%), some of the flutter derivatives, and therefore the aerodynamic forces, are evidently dependent on the frequency ratio for most of the tested reduced velocities. A comparison of the modal damping ratios also suggests that the torsional damping ratio is much more sensitive to the frequency ratio, especially for the two models with nonzero gap (16% and 35% gap-width). The test results clearly show that the effects of the frequency ratio on the flutter derivatives and the aerodynamic forces were dependent on the aerodynamic cross-section shape of the bridge deck.

급축소관을 전파하는 압축파에 관한 실험적 연구 (Experimental study on compression wave propagating in a sudden reduction duct)

  • 김희동
    • 대한기계학회논문집B
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    • 제21권9호
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    • pp.1139-1148
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    • 1997
  • Compression waves propagating in a high-speed railway tunnel develops large pressure fluctuations on the train body or tunnel structures. The pressure fluctuations would cause an ear discomfort for the passengers and increase the aerodynamic resistance of trains. As a fundamental research to resolve the pressure wave phenomenon in the tunnel, experiments were carried out by using a shock tube with an open end. A blockage to model trains inside the tunnel was installed on the lower wall of shock tube, thus forming a sudden cross-sectional area reduction. The compression waves were obtained by the fast opening gate valve instead of a conventional diaphragm of shock tube and measured by the flush mounted pressure transducers with a high sensitivity. The experimental results were compared with the previous theoretical analyses. The results show that the ratio of the reflected to the incident compression wave at the sudden cross-sectional area reduction increases but the ratio of the passing to the incident compression wave decreases, as the incident compression wave becomes stronger. This experimental results are in good agreements with the previous theoretical ones. The maximum pressure gradient of the compression wave abruptly increases but the width of the wave front does not vary, as it passes over the sudden cross-sectional area reduction.

시공단계를 고려한 대단면 정거장 터널 안정성 해석 (The stability analysis on large sectional tunnel station considering construction steps)

  • 강은구;김양운;안경철;한명식
    • 한국철도학회:학술대회논문집
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    • 한국철도학회 2009년도 춘계학술대회 논문집
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    • pp.1062-1068
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    • 2009
  • Urban construction has numerous difficulties due to ground weakness and various complaints from third party, so it is not economically efficient and constructability is not favorable. Therefore, underground, which has good ground conditions, was used for construction field and facilities such as stations, and they are scaled up to enhance accommodation of facility limitation and function of stations. Large section tunnel station construction has numerous risk factors such as work boundary of excavation equipment, a relaxation of stress concentration, a safety plan of tunnel stability, and so on. Therefore, by using large section tunnel station stability analysis considering construction step, we expect to analyze the latent problem during construction, and to stabilize a future project plan of a large section structure design by using an auxiliary method and a support design.

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터널 입구부 대절토 사면 안정성 사례 연구 (Case Study of the Stability of a Large Cut-Slope at a Tunnel Portal)

  • 박동순;배종섬
    • 지질공학
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    • 제25권1호
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    • pp.115-129
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    • 2015
  • 대단면 터널 입구부의 대절토 사면은 불안정한 응력분포 및 소성변형 가능성으로 인해 잠재적 취약부로 인식되고 있다. 본 사례연구에는 대단면 터널 갱구부 대절토 사면의 강우 후 유실사고 및 원인규명, 복구공법을 분석하여 제시하였다. 대상 현장은 46 mm의 강우 후 암반의 불연속면을 따라 대규모 평면파괴가 발생하였으며, 상부 절토사면의 불안정을 야기하였다. 지질조사 및 매핑 자료 분석 결과, 붕괴 원인은 풍화된 암반의 불연속면에 협재된 충전물과 지반 포화로 인한 절리면 연화(softening)로 판단되었다. 알칼리 장석이 풍부한 화강편마암은 풍화에 취약한 것으로 나타났다. 침하량 계측자료 분석 결과, 붕괴 직전에 급격한 변위량 증가를 관찰하였으며, 향후 사면 계측관리에 활용할 수 있을 것으로 판단된다. 응급복구 대책으로 콘크리트 공동충전 및 외부로부터 압성토 채움을 성공적으로 시행하였다. 항구복구 대책으로 사면부에는 격자블럭 및 지중 앵커 시스템을, 터널 측벽부에는 추가 락볼트 보강 및 그라우팅 공법을 성공적으로 적용하였다. 한계평형해석과 평사투영해석을 통해 원 사면의 불안정성과 보강방법의 유효성을 확인하였다. 본 사례연구는 향후 유사한 대절토 사면에 귀중한 참고자료로 활용될 것으로 기대된다.

Mechanism on suppression in vortex-induced vibration of bridge deck with long projecting slab with countermeasures

  • Zhou, Zhiyong;Yang, Ting;Ding, Quanshun;Ge, Yaojun
    • Wind and Structures
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    • 제20권5호
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    • pp.643-660
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    • 2015
  • The wind tunnel test of large-scale sectional model and computational fluid dynamics (CFD) are employed for the purpose of studying the aerodynamic appendices and mechanism on suppression for the vortex-induced vibration (VIV). This paper takes the HongKong-Zhuhai-Macao Bridge as an example to conduct the wind tunnel test of large-scale sectional model. The results of wind tunnel test show that it is the crash barrier that induces the vertical VIV. CFD numerical simulation results show that the distance between the curb and crash barrier is not long enough to accelerate the flow velocity between them, resulting in an approximate stagnation region forming behind those two, where the continuous vortex-shedding occurs, giving rise to the vertical VIV in the end. According to the above, 3 types of wind fairing (trapezoidal, airfoil and smaller airfoil) are proposed to accelerate the flow velocity between the crash barrier and curb in order to avoid the continuous vortex-shedding. Both of the CFD numerical simulation and the velocity field measurement show that the flow velocity of all the measuring points in case of the section with airfoil wind fairing, can be increased greatly compared to the results of original section, and the energy is reduced considerably at the natural frequency, indicating that the wind fairing do accelerate the flow velocity behind the crash barrier. Wind tunnel tests in case of the sections with three different countermeasures mentioned above are conducted and the results compared with the original section show that all the three different countermeasures can be used to control VIV to varying degrees.

Evaluation on bridge dynamic properties and VIV performance based on wind tunnel test and field measurement

  • Yang, Yongxin;Ma, Tingting;Ge, Yaojun
    • Wind and Structures
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    • 제20권6호
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    • pp.719-737
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    • 2015
  • Full scale measurement on the structural dynamic characteristics and Vortex-induced Vibrations (VIV) of a long-span suspension bridge with a central span of 1650 m were conducted. Different Finite Element (FE) modeling principles for the separated twin-box girder were compared and evaluated with the field vibration test results, and the double-spine model was determined to be the best simulation model, but certain modification still needs to be made which will affect the basic modeling parameters and the dynamic response prediction values of corresponding wind tunnel tests. Based on the FE modal analysis results, small-scaled and large-scaled sectional model tests were both carried out to investigate the VIV responses, and probable Reynolds Number effects or scale effect on VIV responses were presented. Based on the observed VIV modes in the field measurement, the VIV results obtained from sectional model tests were converted into those of the three-dimensional (3D) full-scale bridge and subsequently compared with field measurement results. It is indicated that the large-scaled sectional model test can probably provide a reasonable and effective prediction on VIV response.

Use of large-scale shake table tests to assess the seismic response of a tunnel embedded in compacted sand

  • Zhou, Hao;Qin, Xiaoyang;Wang, Xinghua;Liang, Yan
    • Earthquakes and Structures
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    • 제15권6호
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    • pp.655-665
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    • 2018
  • Shield tunnels are widely used throughout the world. However, their seismic performance has not been well studied. This paper focuses on the seismic response of a large scale model tunnel in compacted sand. A 9.3 m long, 3.7 m wide and 2.5 m high rigid box was filled with sand so as to simulate the sandy soil surrounding the tunnel. The setup was excited on a large-scale shake table. The model tunnel used was a 1:8 scaled model with a cross-sectional diameter of 900 mm. The effective shock absorbing layer (SAL) on the seismic response of the model tunnel was also investigated. The thickness of the tunnel lining is 60 mm. The earthquake motion recorded from the Kobe earthquake waves was used. The ground motions were scaled to have the same peak accelerations. A total of three peak accelerations were considered (i.e., 0.1 g, 0.2 g and 0.4 g). During the tests, the strain, acceleration and soil pressure on the surface of the tunnel were measured. In order to investigate the effect of shock absorbing layer on the dynamic response of the sand- tunnel system, two tunnel models were set up, one with and one without the shock absorbing layer of foam board were used. The results shows the longitudinal direction acceleration of the model tunnel with a shock absorbing layer were lower than those of model tunnel without the shock absorbing layer, Which indicates that the shock absorbing layer has a beneficial effect on the acceleration reduction. In addition, the shock absorbing layer has influence on the hoop strain and earth pressure of the model tunnel, this the effect of shock absorbing layer to the model tunnel will be discussed in the paper.

대단면 터널 보강을 위한 운모편암 단층대 특성 분석에 관한 연구 (A Study on Analysis for the Characteristics of Fault Zone at Mica-schist for Reinforcement of Large-Span Tunnel)

  • 정회용;김영근;박연준;유광호
    • 터널과지하공간
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    • 제19권2호
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    • pp.132-145
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    • 2009
  • 암반내 존재하는 단층은 암반의 거동에 미치는 영향이 매우 크기 때문에 암반사면, 터널과 같은 암반구조물의 설계 및 시공에 있어서 단층특성에 대한 조사는 무엇보다 중요하다 할 수 있다. 그러나 설계단계에서 이러한 특성을 파악하기에 한계가 있기 때문에 시공중 막장관찰과 추가지반조사를 통하여 터널주변에 존재하는 단층의 분포 및 공학적 특성에 대하여 조사하여야 한다. 본 연구에서는 운모편암지역에서의 대단면 터널 공사중 설계시 파악되지 않은 대규모 스러스트 단층대가 확인됨에 따라, 단층대의 특성을 규명하기 위하여 다양한 지질조사 및 현장시험을 실시하였다. 이러한 지반조사결과를 바탕으로 단층의 성인, 구조지질적 분포특성 및 단층암의 공학적 특성을 파악하였으며, 단층대 통과구간에서 안전하게 터널을 굴착할 수 있도록 합리적인 지보 및 보강대책을 수립하였다.

대배기구 배연방식을 적용한 소형차 전용 터널의 화재특성에 관한 해석적 연구 (An analytical study on the fire characteristics of the small tunnel with large smoke exhaust port)

  • 유지오;김진수;이관석
    • 한국터널지하공간학회 논문집
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    • 제19권3호
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    • pp.375-388
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    • 2017
  • 교통난 해소와 녹지공간의 확보를 위해서 도심지 소형차 전용 소단면 터널이 증가하는 추세이나 소단면 터널에 대한 방재시설 설치를 위한 기준은 미비한 실정이다. 이에 본 연구에서는 대배기구 방식을 적용한 소단면 터널에서 화재가 발생하는 경우 열환경 및 유해가스(CO)의 농도 특성을 고찰하기 위해 A86터널, 서울시에서 계획한 바 있는 U-Smartway터널, 서부간선터널을 모델로 하여 터널 단면적, 화재강도 및 배연풍량에 따른 화재시 터널내 온도 및 유해가스농도를 수치해석적인 방법으로 해석하고 비교 검토하였으며, 다음과 같은 결과를 얻었다. 터널 단면적이 감소하면 화원부의 온도는 증가하나 온도 상승률이 화재강도변화에 미치는 영향은 적다. 그러나 배연풍량 변화에 따라 큰 차이가 발생한다. 대배 기구 방식의 배연풍량으로 Q3+2.5Ar을 적용하는 경우, 화원부 온도는 서부간선터널($Ar=46.67m^2$)을 기준으로 하는 경우, A86($Ar=25.3m^2$)은 7.1배, U-smartway($Ar=37.32m^2$)는 5.4배가 증가하는 것으로 나타났다. 또한 화원부의 CO농도도 동일한 경향을 보이고 있으며, 서부간선터널 대비 A86터널은 10.7배 U-Smartway는 9.5배로 나타났다. 따라서 소단면 터널의 경우, 단면적감소에 따른 열환경 및 유해가스농도는 단면적 감소율 보다 상당히 크게 증가할 것으로 예상된다.

급축소관을 전파하는 압축파에 관한 이론적 연구 (Theoretical study on compression wave propagating in a sudden reduction duct)

  • 김희동;김태호
    • 대한기계학회논문집B
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    • 제21권1호
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    • pp.89-98
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    • 1997
  • Compression waves propagating in a high speed railway tunnel impose large pressure fluctuations on the train body or tunnel structures. The pressure fluctuations can cause ear discomfort for the passengers and increase the aerodynamic resistance of trains. As a fundamental research to resolve the pressure wave phenomenon in the tunnel, a steady theory of Chester-Chisnell- Whitham was applied to a simple shock tube with a sudden cross-sectional area reduction to model trains inside the tunnel. The results of the present theoretical analysis were compared with the experiments of the shock tube. The results show that the reflected compression wave from the model becomes stronger as the strength of incident compression wave and the blockage ratio increase. However, the compression wave passing through the model is not strongly dependent on the blockage ratio. The theoretical results are in good agreement with the experiments.