• 제목/요약/키워드: SCS method

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CLARK 유역추적법에 의한 계획홍수량 산정에 미치는 매개변수의 민감도 분석 (A Sensitivity Analysis of Model Parameters involved in Clark Method on the Magnitude of Design Flood for urban Watersheds)

  • 윤광원;원석연;윤용남
    • 물과 미래
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    • 제27권4호
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    • pp.85-94
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    • 1994
  • 본 연구에서는 국내에서 도시하천유역의 설계홍수량 산정을 위해 사용되고 있는 Clark 유역추적방법에서의 매개변수들의 민감도 분석을 실시하여, 각 매개변수가 도시소유역의 계획홍수량에 미치는 영향을 살펴보고자 하였다. 먼저 적용강우의 시간분포형태에 따른 영향을 살펴보기 위해 Huff 분포, Yen & Chow 분포 그리고 일본에서 사용되는 중앙집중형 강우분포를 단기간강우로 선정하였으며, 국내에서 가장 널리 사용되고 있는 강우분포인 Mononobe 24시간-강우분포를 선정하였다. 또한 유효강우량의 산정을 위해 사용되는 SCS 방법의 CN 값과 시간-면적 곡선의 작성을 위한 소유역 구분 방법의 영향도 검토하였다. 저류상수 K는 Clark 방법의 매개변수 중 계획홍수량에 가장 큰 영향을 주는 인자이므로, 본 연구에서는 K값이 계획홍수량에 미치는 영향을 분석하였고, 실측자료가 없는 유역에서는 K값 산정을 위해 사용될 수 있는 다중 회귀방정식을 제시하였다.

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A high-order analytical method for thick composite tubes

  • Sarvestani, Hamidreza Yazdani;Hojjati, Mehdi
    • Steel and Composite Structures
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    • 제21권4호
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    • pp.755-773
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    • 2016
  • In the present paper, a new high-order simple-input analytical method is used to study thick laminated composite straight tubes subjected to combined axial force, torque and bending moment. The most general displacement field of elasticity for an arbitrary laminated composite straight tube is obtained to analytically calculate stresses under combined loadings based on a layerwise method. The accuracy of the proposed method is subsequently verified by comparing the numerical results obtained using the proposed method with finite element method (FEM) and experimental data. The results show good corresponded. The proposed method provides advantages in terms of computational time compared to FEM.

유출모형을 이용한 곡교천 유역의 강우-유출 특성 분석 (Analysis of Rainfall-Runoff Characteristics in Gokgyochun Basin Using a Runoff Model)

  • 황병기;조용수;양승빈
    • 한국산학기술학회논문지
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    • 제20권2호
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    • pp.404-411
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    • 2019
  • 곡교천 유역의 홍수-유출 특성을 파악하는 연구를 수행하기 위하여 HEC-HMS 모형을 적용하였다. 이 유역은 일부 소유역에서 대규모 농업용 저수지가 있어 소유역으로부터 발생한 초기 유출이 저수지에 의해서 상당량 저류되는 특징을 갖고 있다. 이러한 현상을 반영하기 위하여 3가지 침투모의 방법을 사용하였으며, 방법 1은 기존의 유출곡선지수법, 방법 2는 방법 1에 표면법 기능을 추가한 방법, 방법 3은 초기 및 일정손실율 방법이다. 모형은 3가지 방법으로 손실계산, Clark의 단위도법으로 강우의 직접유출 변환, 지수함수적 감소법으로 기저유량, Muskingum 법으로 하도추적 하는 과정을 포함한다. 모형에서 최적화 기법을 시행착오법과 병행하여 최적화 변수를 도출하였다. NSE, RAR, and PBIAS 등의 평가지표를 사용하여 모형의 보정을 수행하였다. 유출체적, 첨두유량, 첨두발생시각 등에 대하여 모의치와 실측치를 비교한 결과 초기손실을 반영할 수 있도록 설계된 방법2와 3에서 우수한 결과를 나타낸 반면, 그렇지 못한 방법 1은 모의치와 실측치의 차이가 큰 것으로 나타났다. 복합 강우인 경우에 방법 3은 방법 2에 비하여 좋은 결과를 나타내지 못하였다. 결론적으로 방법 2가 단일 강우나 복합강우 모두 좋은 결과를 주는 것으로 나타났다. 본 연구의 결과는 정책입안자가 홍수관리대책을 수립하는 데 유용한 도구로서 사용되어 질 수 있을 것으로 판단된다.

Transient analysis of cross-ply laminated shells using FSDT: Alternative formulation

  • Sahan, Mehmet Fatih
    • Steel and Composite Structures
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    • 제18권4호
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    • pp.889-907
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    • 2015
  • This paper aims to present an alternative analytical method for transient vibration analysis of doubly-curved laminated shells subjected to dynamic loads. In the method proposed, the governing differential equations of laminated shell are derived using the dynamic version of the principle of virtual displacements. The governing equations of first order shear deformation laminated shell are obtained by Navier solution procedure. Time-dependent equations are transformed to the Laplace domain and then Laplace parameter dependent equations are solved numerically. The results obtained in the Laplace domain are transformed to the time domain with the help of modified Durbin's numerical inverse Laplace transform method. Verification of the presented method is carried out by comparing the results with those obtained by Newmark method and ANSYS finite element software. Also effects of number of laminates, different material properties and shell geometries are discussed. The numerical results have proved that the presented procedure is a highly accurate and efficient solution method.

A hybrid inverse method for small scale parameter estimation of FG nanobeams

  • Darabi, A.;Vosoughi, Ali R.
    • Steel and Composite Structures
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    • 제20권5호
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    • pp.1119-1131
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    • 2016
  • As a first attempt, an inverse hybrid numerical method for small scale parameter estimation of functionally graded (FG) nanobeams using measured frequencies is presented. The governing equations are obtained with the Eringen's nonlocal elasticity assumptions and the first-order shear deformation theory (FSDT). The equations are discretized by using the differential quadrature method (DQM). The discretized equations are transferred from temporal domain to frequency domain and frequencies of the nanobeam are obtained. By applying random error to these frequencies, measured frequencies are generated. The measured frequencies are considered as input data and inversely, the small scale parameter of the beam is obtained by minimizing a defined functional. The functional is defined as root mean square error between the measured frequencies and calculated frequencies by the DQM. Then, the conjugate gradient (CG) optimization method is employed to minimize the functional and the small scale parameter is obtained. Efficiency, convergence and accuracy of the presented hybrid method for small scale parameter estimation of the beams for different applied random error, boundary conditions, length-to-thickness ratio and volume fraction coefficients are demonstrated.

Buckling of symmetrically laminated quasi-isotropic thin rectangular plates

  • Altunsaray, Erkin;Bayer, Ismail
    • Steel and Composite Structures
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    • 제17권3호
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    • pp.305-320
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    • 2014
  • The lowest critical value of the compressive force acting in the plane of symmetrically laminated quasi-isotropic thin rectangular plates is investigated. The critical buckling loads of plates with different types of lamination and aspect ratios are parametrically calculated. Finite Differences Method (FDM) and Galerkin Method are used to solve the governing differential equation for Classical Laminated Plate Theory (CLPT). The results calculated are compared with those obtained by the software ANSYS employing Finite Elements Method (FEM). The results of Galerkin Method (GM) are closer to FEM results than those of FDM. In this study, the primary aim is to conduct a parametrical performance analysis of proper plates that is typically conducted at preliminary structural design stage of composite vessels. Non-dimensional values of critical buckling loads are also provided for practical use for designers.

Direct strength method for high strength steel welded section columns

  • Choi, Jong Yoon;Kwon, Young Bong
    • Steel and Composite Structures
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    • 제29권4호
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    • pp.509-526
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    • 2018
  • The direct strength method adopted by the AISI Standard and AS/NZS 4600 is an advanced design method meant to substitute the effective width method for the design of cold-formed steel structural members accounting for local instability of thin plate elements. It was proven that the design strength formula for the direct strength method could predict the ultimate strength of medium strength steel welded section compressive and flexural members with local buckling reasonably. This paper focuses on the modification of the direct strength formula for the application to high strength and high performance steel welded section columns which have the nominal yield stress higher than 460 MPa and undergo local buckling, overall buckling or their interaction. The resistance of high strength steel welded H and Box section columns calculated by the proposed direct strength formulae were validated by comparison with various compression test results, FE results, and predictions by existing specifications.

Nonlocal geometrically nonlinear dynamic analysis of nanobeam using a meshless method

  • Ghadiri Rad, Mohammad Hossein;Shahabian, Farzad;Hosseini, Seyed Mahmoud
    • Steel and Composite Structures
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    • 제32권3호
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    • pp.293-304
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    • 2019
  • In the present paper, the element free Galerkin (EFG) method is developed for geometrically nonlinear analysis of deep beams considering small scale effect. To interpret the behavior of structure at the nano scale, the higher-order gradient elasticity nonlocal theory is taken into account. The radial point interpolation method with high order of continuity is used to construct the shape functions. The nonlinear equation of motion is derived using the principle of the minimization of total potential energy based on total Lagrangian approach. The Newmark method with the small time steps is used to solve the time dependent equations. At each time step, the iterative Newton-Raphson technique is applied to minimize the residential forces caused by the nonlinearity of the equations. The effects of nonlocal parameter and aspect ratio on stiffness and dynamic parameters are discussed by numerical examples. This paper furnishes a ground to develop the EFG method for large deformation analysis of structures considering small scale effects.

Ratcheting boundary of pressurized pipe under reversed bending

  • Chen, Xiaohui;Chen, Xu;Li, Zifeng
    • Steel and Composite Structures
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    • 제32권3호
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    • pp.313-323
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    • 2019
  • Ratcheting boundary is firstly determined by experiment, elastic-plastic finite element analysis combined with C-TDF and linear matching method, which is compared with ASME/KTA and RCC-MR. Moreover, based on elastic modulus adjustment procedure, a novel method is proposed to predict the ratcheting boundary for a pressurized pipe subjected to constant internal pressure and cyclic bending loading. Comparison of ratcheting boundary of elbow pipe determined by the proposed method, elastic-plastic finite element analysis combined with C-TDF and linear matching method, which indicates that the predicted results of the proposed method are in well agreement with those of linear matching method.

Geometrically nonlinear meshfree analysis of 3D-shell structures based on the double directors shell theory with finite rotations

  • Mellouli, Hana;Jrad, Hanen;Wali, Monther;Dammak, Fakhreddine
    • Steel and Composite Structures
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    • 제31권4호
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    • pp.397-408
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    • 2019
  • In this paper, a geometrically nonlinear meshfree analysis of 3D various forms of shell structures using the double director shell theory with finite rotations is proposed. This theory is introduced in the present method to remove the shear correction factor and to improve the accuracy of transverse shear stresses with the consideration of rotational degrees of freedom.The present meshfree method is based on the radial point interpolation method (RPIM) which is employed for the construction of shape functions for a set of nodes distributed in a problem domain. Discrete system of geometrically nonlinear equilibrium equations solved with the Newton-Raphson method is obtained by incorporating these interpolations into the weak form. The accuracy of the proposed method is examined by comparing the present results with the accurate ones available in the literature and good agreements are found.