• 제목/요약/키워드: seismic anchor force

검색결과 13건 처리시간 0.029초

On determining seismic anchor force of anchoring frame structure supporting three-stage slope

  • Lin, Yu-liang;Lu, Li;Li, Ying-xin;Xue, Yuan;Feng, Zhi-jun;Wang, Zhi-meng;Yang, Guo-lin
    • Geomechanics and Engineering
    • /
    • 제22권3호
    • /
    • pp.265-275
    • /
    • 2020
  • As a flexible supporting structure, the anchoring frame structure is widely adopted to support multistage slopes in high earthquake-intensity area for its effectiveness and practicality. The previous study indicates that the anchor of anchoring frame structure is the most likely to be damaged during earthquakes. It is crucial to determine the pull-out capacity of anchor against seismic force for the seismic design of anchoring frame structure. In this study, an analytical model of a three-stage slope supported by anchoring frame structure is established, and the upper bound method of limit analysis is applied to deduce the seismic anchor force of anchoring frame structure. The pull-out capacity of anchor against seismic force of anchoring frame structure at each stage is obtained by computer programming. The proposed method is proved to be reasonable and effective compared with the existing published solution. Besides, the influence of main parameters on the pull-out capacity of anchor against seismic force is analyzed to provide some recommendations for the seismic design of anchoring frame structure.

Seismic holding behaviors of inclined shallow plate anchor embedded in submerged coarse-grained soils

  • Zhang, Nan;Wang, Hao;Ma, Shuqi;Su, Huaizhi;Han, Shaoyang
    • Geomechanics and Engineering
    • /
    • 제28권2호
    • /
    • pp.197-207
    • /
    • 2022
  • The seismic holding behaviors of plate anchor embedded into submerged coarse-grained soils were investigated considering different anchor inclinations. The limit equilibrium method and the Pseudo-Dynamic Approach (PDA) were employed to calculate the inertia force of the soils within the failure rupture. In addition, assuming the permeability of coarse-grained soils was sufficiently large, the coefficient of hydrodynamic force applied on the inclined plate anchor is obtained through adopting the exact potential flow theory. Therefore, the seismic holding resistance was calculated as the combination of the inertia force and the hydrodynamic force within the failure rupture. The failure rupture can be developed due to the uplift loads, which was assumed to be an arc of a circle perpendicular to the anchor and inclines at (π/4 - φ/2). Then, the derived analytical solutions were evaluated by comparing the static breakout factor Nγ to the published experimental and analytical results. The influences of soil and wave properties on the plate anchor holding behavior are reported. Finally, the dynamic anchor holding coefficients Nγd, were reported to illustrate the anchor holding behaviors. Results show that the soil accelerations in x and z directions were both nonlinear. The amplifications of soil accelerations were more severe at lower normalized frequencies (ωH/V) compared to higher normalized frequencies. The coefficient of hydrodynamic force, C, of the plate anchor was found to be almost constant with anchor inclinations. Finally, the seismic anchor holding coefficient oscillated with the oscillation of the inertia force on the plate anchor.

Investigation on seismic behavior of combined retaining structure with different rock shapes

  • Lin, Yu-liang;Zhao, Lian-heng;Yang, T.Y.;Yang, Guo-lin;Chen, Xiao-bin
    • Structural Engineering and Mechanics
    • /
    • 제73권5호
    • /
    • pp.599-612
    • /
    • 2020
  • A combination of a gravity wall and an anchor beam is widely used to support the high soil deposit on rock mass. In this study, two groups of shaking table test were performed to investigate the responses of such combined retaining structure, where the rock masses were shaped with a flat surface and a curved surface, respectively. Meanwhile, the dynamic numerical analysis was carried out for a comparison or an extensive study. The results were studied and compared between the combined retaining structures with different shaped rock masses with regard to the acceleration response, the earth pressure response, and the axial anchor force. The acceleration response is not significantly influenced by the surface shape of rock mass. The earth pressure response on the combined retaining structure with a flat rock surface is more intensive than the one with a curved rock surface. The anchor force is significantly enlarged by seismic excitation with a main earthquake-induced increment at the first intensive pulse of Wenchuan motion. The value of anchor force in the combined retaining structure with a flat rock surface is generally larger than the one with a curved rock surface. Generally, the combined retaining structure with a curved rock surface presents a better seismic performance.

수치해석을 통한 지진하중의 주기특성에 따른 그라운드 앵커의 거동 (Behaviour of Ground Anchor According to Period Characteristic of Seismic Load Using Numerical Analysis)

  • 오동욱;정혁상;윤환희;이용주
    • 터널과지하공간
    • /
    • 제28권6호
    • /
    • pp.635-650
    • /
    • 2018
  • 최근 국내에 발생된 지진으로 인해 더 이상 한반도가 지진으로부터 안전지대가 아니라는 것이 많은 사람들에게 각인되었다. 경주와 포항에서 발생된 지진은 그 동안 국내에서 내진설계에 기준으로 고려한 지진의 특성과 상이하게 나타났고, 그에 따른 내진설계 방법에 대한 연구 또한 많은 연구자들에 의해 수행되어 지고 있다. 이러한 지진하중에 대한 고려는 주로 기존 상부 구조물에 초점이 맞춰져 있으며, 그에 따른 연구 또한 활발히 이루어지고 있는 실정이다. 하지만, 지반의 구조적 안정성을 확보하기 위해 시공된 네일, 록볼트, 그라운드 앵커 등과 같은 지중구조물에 대한 지진하중으로부터의 구조적 안정성에 대한 고려는 많이 이루어지지 않고 있는 실정이다. 본 연구에서는 풍화암에 정착된 그라운드 앵커에 대해 정하중이 작용할 때와 지진하중이 앵커에 미치는 영향을 분석하였다. 정하중에 의한 영향은 현장 인장시험 결과로, 지진하중 영향은 수치해석을 통해 파악하였다. 그 결과, 앵커에 긴장력 도입으로 인한 반력판의 침하가 발생하는 것으로 나타났으며, 그로 인한 앵커의 축력 감소가 발생하였다. 또한 지진하중에 의해 앵커 정착부의 변위가 증가하였으며, 정착부 길이가 길수록 장주기 지진에 의한 영향이 큰 것으로 나타났다.

Experimental Study on Seismic Behavior of Roof Joint

  • Cui, Yao;Gao, Xiaoyu;Liu, Hongtao;Yamada, Satoshi
    • 국제강구조저널
    • /
    • 제18권4호
    • /
    • pp.1373-1383
    • /
    • 2018
  • Experimental study was conducted to investigate the seismic behavior of roof joint. Eight full-scale specimens were tested considering the effects of axial force, joint height, hole shape of base plate and edge distance of concrete on the failure mode and resistance capacity of roof joint. With the increase of axial force, the hysteretic curves were fuller. The mechanical model of roof joint change from bending to shear. With the increase of joint height, the ultimate strength of roof joint decreased. If the hole shape of base plate changed from circle to loose, the slip behavior of roof joint appeared and the ultimate strength of roof joint decreased. The damage of edge concrete may occur if the edge distance of concrete was not big enough.

Seismic response of combined retaining structure with inclined rock slope

  • Yu-liang, Lin;Jie, Jin;Zhi-hao, Jiang;Wei, Liu;Hai-dong, Liu;Rou-feng, Li;Xiang, Liu
    • Structural Engineering and Mechanics
    • /
    • 제84권5호
    • /
    • pp.591-604
    • /
    • 2022
  • A gravity wall combined with an anchoring lattice frame (a combined retaining structure) is adopted at a typical engineering site at Dali-Ruili Railway Line China. Where, the combined retaining structure supports a soil deposit covering on different inclined rock slopes. With an aim to investigate and compare the effects of inclined rock slopes on the response of combined retaining structure under seismic excitation, three groups of shaking table tests are conducted. The rock slopes are shaped as planar surfaces inclined at angles of 20°, 30°, and 40° with the horizontal, respectively. The shaking table tests are supplemented by dynamic numerical simulations. The results regarding the horizontal acceleration response, vertical acceleration response, permanent displacement mode, and axial anchor force are comparatively examined. The acceleration response is more susceptible to outer structural profile of combined retaining structure than to inclined angle of rock slope. The permanent displacement decreases when the inclined angle of the rock slope increases within a range of 20°-40°. A critical inclined angle of rock slope exists within a range of 20°-40°, and induces the largest axial anchor force in the combined retaining structure.

점성토 지반에 설치되는 앵커로 지지된 널말뚝의 내진설계 (Seismic Design of Anchored Sheet Pile Walls in c-0 Soils)

  • 김홍택
    • 한국지반공학회지:지반
    • /
    • 제8권1호
    • /
    • pp.41-58
    • /
    • 1992
  • 본 연구에서는 항만공사에 이용되는 앵커로 지지된 널말뚝의 내진설계를 위한 해석방법의 제시가 이루어 졌다. 제시된 해석방법은 지진하중시의 동수압을 포함하였으며, 침투에 의한 영향을 고려할 경우에도 적용이 가능하다. 또한 적용범 위는 모래 및 점성토(c-0 soil)로 이루어진 지반의 경우이고, 자유지지법을 토대로 하였다. 아울러, 널말뚝 양쪽면의 수위차, 앵커의 위치, 벽마찰각, 준설저면의 경사각, 부착력, 점착력 등이 근입깊이, 앵커하중 및 최대모멘트에 미치는 영향을 제시된 해석방법을 토대로 분석하였다. 이외에도 서로 다른 안전율 정의에 관한 비교 및 내진설계시의 유의 사항에 대한 검토가 이루어 졌다.

  • PDF

항만공사에 이용되는 널말뚝의 내진설계 (Seismic Design of Sheet Pile Walls Used in Harbor Construction)

  • 김홍택;방윤경;강인규;조원희
    • 대한토목학회논문집
    • /
    • 제11권4호
    • /
    • pp.171-187
    • /
    • 1991
  • 본 연구에서는 항만공사에 이용되는 캔틸레버식 널말뚝 및 앵커로 지지된 널말뚝의 내진설계를 위한 해석방법의 제시가 이루어졌다. 제시된 해석방법은 침투에 의한 수압 및 유효수평응력의 변화를 고려하였으며, 또한 Mononobe-Okabe 토압이론 및 Westergaard, Matsuo-Ohara의 동수압 계산식이 적용되었다. 아울러 앵커로 지지된 널말뚝의 경우에 대해 안전율의 크기 선택에 관한 비교가 이루어졌으며, 또한 조밀한 모래지반의 경우에 대해, 준설저면의 경사각, 널말뚝 양쪽면의 수위차, 앵커의 위치, 벽마찰각 등이 근입깊이, 앵커하중 및 최대모멘트에 미치는 영향이 분석되었다. 이외에도 조밀한 모래지반에 설치되는 앵커로 지지된 널말뚝의 예비설계를 위한 표의 제시가 이루어졌으며, 본 연구 해석방법의 적용범위는 자유지지법의 경우로 한정된다.

  • PDF

선설치앵커의 동적 전단하중에 대한 저항강도: 비보강 앵커 (Shear Resistance of CIP Anchors under Dynamic Loading: Unreinforced Anchor)

  • 박용명;강문기;김동현;이종한;강충현
    • 한국강구조학회 논문집
    • /
    • 제26권1호
    • /
    • pp.11-20
    • /
    • 2014
  • 2001년 이후 앵커의 설계는 Concrete Capacity Design(CCD) 방법이 적용되고 있는데, 국내 기준에서는 지진하중에 대한 콘크리트의 파열파괴강도를 정적 파괴강도의 75%로 제한하고 있다. 본 연구에서는 무근콘크리트에 매입된 선설치앵커의 동적 전단하중에 대한 콘크리트 파열파괴강도 평가하기 위한 실험을 수행하였다. 이를 위해 직경 20 mm의 앵커에 대해 정적 하중과 동적 편진하중에 대한 실험을 각각 3개의 시험체에 대해 수행하였으며, 앵커의 연단거리는 120 mm를 적용하였다. 동적 실험은 15 cycle의 편진하중을 1 Hz의 속도로 재하하였으며 반복하중단계의 크기를 키워가면서 최종 파괴 시까지 가력하였다. 실험으로부터 동적 전단하중에 의한 콘크리트 파열파괴강도는 정적하중에 의한 것과 거의 같은 파괴강도를 보였다.

Experimental and numerical investigation on exposed RCFST column-base Joint

  • Ben, Mou;Xingchen, Yan;Qiyun, Qiao;Wanqiu, Zhou
    • Steel and Composite Structures
    • /
    • 제45권5호
    • /
    • pp.749-766
    • /
    • 2022
  • This paper investigates the seismic performance of exposed RCFST column-base joints, in which the high-strength steel bars (USD 685) are set through the column and reinforced concrete foundation without any base plate and anchor bolts. Three specimens with different axial force ratios (n = 0, 0.25, and 0.5) were tested under cyclic loadings. Finite element analysis (FEA) models were validated in the basic indexes and failure mode. The hysteresis behavior of the exposed RCFST column-base joints was studied by the parametrical analysis including six parameters: width of column (D), width-thickness ratio (D/t), axial force ratio (n), shear-span ratio (L/D), steel tube strength (fy) and concrete strength (fc). The bending moment of the exposed RCFST column-base joint increased with D, fy and fc. But the D/t and L/D play a little effect on the bending capacity of the new column-base joint. Finally, the calculation formula is proposed to assess the bending moment capacities, and the accuracy and stability of the formula are verified.