• 제목/요약/키워드: Quadrilateral

검색결과 280건 처리시간 0.027초

우리나라 초등학교 수학과에서의 각도 관련 내용의 분석과 비판 (An Analysis and Criticism on Contents Related on Angular Measure in Korean Elementary Mathematics Subject)

  • 박교식
    • 대한수학교육학회지:학교수학
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    • 제12권1호
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    • pp.45-60
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    • 2010
  • 학교수학에서 '각도'는 용어로서의 실효성을 상실한 반면에, '각의 크기' 라는 표현이 우세한 만큼, 그 표현의 수용을 고려할 필요가 있다. 교과서에서 각의 크기는 변의 길이와 관계없이 두 변이 벌어진 정도에 따라 다르다는 것을 명시할 필요가 있다. 해설서의 내용과 교과서의 내용을 일치시켜야 한다. 교과서에서는 각의 크기를 측정하기 위한 임의단위를 취급하지 않는다. 임의단위에 의한 각의 크기의 측정을 생각할 수는 있지만, 그것이 그다지 행해지지 않는다는 실정을 받아들여, 해설서에서 그것을 요구하지 않는 것을 고려할 필요가 있다. 해설서에서 1직각의 표준단위로서의 역할을 명시할 필요가 있고, 교과서에서도 그것을 활용하는 장면을 제시해야 한다. 교과서에서는 삼각형의 세 각의 크기의 합을 구하는 과정과 사각형의 네 각의 크기의 합을 구하기 위해 삼각형과 사각형을 각각 잘라 붙이는 과정에서, 학생들이 크기가 180도인 각과 360도인 각이 그림으로 어떻게 표현될 수 있는지 알고 있다는 것을 전제로 하고 있다. 그것은 비약이다.

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Different approaches for numerical modeling of seismic soil-structure interaction: impacts on the seismic response of a simplified reinforced concrete integral bridge

  • Dhar, Sreya;Ozcebe, Ali Guney;Dasgupta, Kaustubh;Petrini, Lorenza;Paolucci, Roberto
    • Earthquakes and Structures
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    • 제17권4호
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    • pp.373-385
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    • 2019
  • In this article, different frequently adopted modeling aspects of linear and nonlinear dynamic soil-structure interaction (SSI) are studied on a pile-supported integral abutment bridge structure using the open-source platform OpenSees (McKenna et al. 2000, Mazzoni et al. 2007, McKenna and Fenves 2008) for a 2D domain. Analyzed approaches are as follows: (i) free field input at the base of fixed base bridge; (ii) SSI input at the base of fixed base bridge; (iii) SSI model with two dimensional quadrilateral soil elements interacting with bridge and incident input motion propagating upwards at model bottom boundary (with and without considering the effect of abutment backfill response); (iv) simplified SSI model by idealizing the interaction between structural and soil elements through nonlinear springs (with and without considering the effect of abutment backfill response). Salient conclusions of this paper include: (i) free-field motions may differ significantly from those computed at the base of the bridge foundations, thus put a significant bias on the inertial component of SSI; (ii) conventional modeling of SSI through series of soil springs and dashpot system seems to stay on the safer side under dynamic conditions when one considers the seismic actions on the structure by considering a fully coupled SSI model; (iii) consideration of abutment-backfill in the SSI model positively affects the general response of the bridge, as a result of large passive resistance that may develop behind the abutments.

패널법에 의한 날개끝판부착 프로펠러의 해석 (Analysis of End-Plated Propellers by Panel Method)

  • 이창섭;문일성;김영기
    • 대한조선학회논문집
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    • 제32권4호
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    • pp.55-63
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    • 1995
  • 본 논문은 경계적분법에 의해 날개끝판이 부착된 프로펠러(EPP)의 성능을 해석하는 방법을 기술하고 있다. 나선 프로펠러 날개와 날개끝판을 사각형 판요소로 치환하고, 균일 세기의 쏘오스와 법선 다이폴을 분포하여 해석한다. 포텐셜을 기저로 하는 정식화 과정을 통해 적분방정식을 구하고, 나선날개와 날개끝판에서 동시에 법선방향 비침투조건을 만족시킴으로써 섭동 속도 포텐셜을 구하였다. Kutta조건은 반복작업을 통해 나선날개와 날개끝판의 뒷날에서 압력점프가 없어지도록 함으로써 만족시켰다. 예제계산을 통하여 날개끝판이 나선날개의 날개끝 부근의 하중을 증가시킴을 보였고, 동시에 날개끝판의 뒷날에 걸쳐 후연 보오텍스를 분산시킴으로써 강력한 날개끝 보오텍스의 형성을 피할 수 있음을 확인하였다. EPP의 성능을 추정한 결과는 실험결과와 좋은 일치를 보인다. 에너지절약 추진장치로 채택될 수 있는 EPP의 설계 및 해석을 위하여 본 연구에서 확립된 방법이 적용가능하리라 판단된다.

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격자유형과 해상도를 고려한 2차원 홍수범람 모델링 (Two-Dimensional(2-D) Flood Inundation Modeling Considering Mesh Type and Resolution)

  • 김병현
    • 대한토목학회논문집
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    • 제39권2호
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    • pp.247-256
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    • 2019
  • 본 연구에서는 홍수모델링을 위해 삼각격자와 사각격자를 포함하는 혼합격자의 적용이 가능한 2차원 Godunov형 유한체적모형을 이용하여 격자형상과 해상도에 따른 홍수위, 홍수범람범위, 모형의 계산시간을 비교 분석하였다. 연구유역은 2000년 10월 29일부터 11월 19일까지 22일 동안 홍수가 발생한 영국의 Upton-upon Severn 유역이다. 홍수 모델링을 위해 고해상도 LiDAR (Light Detection And Ranging)를 이용하여 지형자료를 구축하였으며, 격자유형 및 해상도에 따른 2차원 홍수모델링 결과는 홍수기간 동안 촬영된 4개의 ASAR (Airborne Synthetic Aperture Radar) 영상자료와 비교하였다. 본 연구는 동일한 지형과 경계조건을 사용하더라도, 격자의 형상과 해상도에 따라 홍수위와 범람범위가 큰 차이를 가질 수 있음을 보여주었으며, 2차원 홍수모델링의 목적과 상황에 맞는 적절한 격자유형과 해상도의 선택이 필요함을 보여준다.

Stability analysis of coal face based on coal face-support-roof system in steeply inclined coal seam

  • Kong, Dezhong;Xiong, Yu;Cheng, Zhanbo;Wang, Nan;Wu, Guiyi;Liu, Yong
    • Geomechanics and Engineering
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    • 제25권3호
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    • pp.233-243
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    • 2021
  • Rib spalling is a major issue affecting the safety of steeply inclined coal seam. And the failure coal face and support system can be affected with each other to generate a vicious cycle along with inducing large-scale collapse of surrounding rock in steeply inclined coal seam. In order to analyze failure mechanism and propose the corresponding prominent control measures of steeply inclined coal working face, mechanical model based on coal face-support-roof system and mechanical model of coal face failure was established to reveal the disaster mechanism of rib spalling and the sensitive analysis of related factors was performed. Furthermore, taking 3402 working face of Chen-man-zhuang coal mine as engineering background, numerical model by using FLAC3D was built to illustrate the propagation of displacement and stress fields in steeply inclined coal seam and verify the theory analysis as mentioned in this study. The results show that the coal face slide body in steeply inclined working face can be observed as the failure height of upper layer smaller than that of lower layer exhibiting with an irregular quadrilateral pyramid shape. Moreover, the cracks were originated from the upper layer of sliding body and gradually developed to the lower layer causing the final rib spalling. The influence factors on the stability of coal face can be ranked as overlying strata pressure (P) > mechanical parameters of coal body (e.g., cohesion (c), internal fraction angle (φ)) > support strength (F) > the support force of protecting piece (F') > the false angle of working face (Θ). Moreover, the corresponding control measures to maintain the stability of the coal face in the steeply inclined working face were proposed.

Numerical formulation of a new solid-layer finite element to simulate reinforced concrete structures strengthened by over-coating

  • Suarez-Suarez, Arturo;Dominguez-Ramírez, Norberto;Susarrey-Huerta, Orlando
    • Coupled systems mechanics
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    • 제11권5호
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    • pp.439-458
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    • 2022
  • Over-coating is one of the most popular engineering practices to strengthen Reinforced Concrete (RC) structures, due to the relative quickness and ease of construction. It consists of an external coat bonded to the outer surface of the structural RC element, either by the use of chemical adhesives, mechanical anchor bolts or simply mortar injection. In contrast to these constructive advantages, the numerical estimation of the bearing capacity of the strengthened reinforced concrete element is still complicated, not only for the complexity of modelling a flexible membrane or plate attached to a quasi-rigid solid, but also for the difficulties that raise of simulating any potential delamination between both materials. For these reasons, the standard engineering calculations used in the practice remain very approximated and clumsy. In this work, we propose the formulation of a new 2D solid-layer finite element capable to link a solid body with a flexible thin layer, as it were the "skin" of the body, allowing the potential delamination between both materials. In numerical terms, this "skin" element is intended to work as a transitional region between a solid body (modelled with a classical formulation of a standard quadrilateral four-nodes element) and a flexible coat layer (modelled with cubic beam element), dealing with the incompatibility of Degrees-Of-Freedom between them (two DOF for the solid and three DOF for the beam). The aim of the solid-layer element is to simplify the mesh construction of the strengthened RC element being aware of two aspects: a) to prevent the inappropriate use of very small solid elements to simulate the coat; b) to improve the numerical estimation of the real bearing capacity of the strengthened element when the coat is attached or detached from the solid body.

Crack detection in folded plates with back-propagated artificial neural network

  • Oguzhan Das;Can Gonenli;Duygu Bagci Das
    • Steel and Composite Structures
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    • 제46권3호
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    • pp.319-334
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    • 2023
  • Localizing damages is an essential task to monitor the health of the structures since they may not be able to operate anymore. Among the damage detection techniques, non-destructive methods are considerably more preferred than destructive methods since damage can be located without affecting the structural integrity. However, these methods have several drawbacks in terms of detecting abilities, time consumption, cost, and hardware or software requirements. Employing artificial intelligence techniques could overcome such issues and could provide a powerful damage detection model if the technique is utilized correctly. In this study, the crack localization in flat and folded plate structures has been conducted by employing a Backpropagated Artificial Neural Network (BPANN). For this purpose, cracks with 18 different dimensions in thin, flat, and folded structures having 150, 300, 450, and 600 folding angle have been modeled and subjected to free vibration analysis by employing the Classical Plate Theory with Finite Element Method. A Four-nodded quadrilateral element having six degrees of freedom has been considered to represent those structures mathematically. The first ten natural frequencies have been obtained regarding healthy and cracked structures. To localize the crack, the ratios of the frequencies of the cracked flat and folded structures to those of healthy ones have been taken into account. Those ratios have been given to BPANN as the input variables, while the crack locations have been considered as the output variables. A total of 500 crack locations have been regarded within the dataset obtained from the results of the free vibration analysis. To build the best intelligent model, a feature search has been conducted for BAPNN regarding activation function, the number of hidden layers, and the number of hidden neurons. Regarding the analysis results, it is concluded that the BPANN is able to localize the cracks with an average accuracy of 95.12%.

Numerical formulation solid-layer finite element to simulate reinforced concrete structures strengthened by over-coating

  • Arturo Suarez-Suarez;Norberto Dominguez-Ramirez;Orlando Susarrey-Huerta
    • Coupled systems mechanics
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    • 제12권6호
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    • pp.481-501
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    • 2023
  • Over-coating is one of the most popular engineering practices to strengthen Reinforced Concrete (RC) structures, due to the relative quickness and ease of construction. It consists of an external coat bonded to the outer surface of the structural RC element, either by the use of chemical adhesives, mechanical anchor bolts or simply mortar injection. In contrast to these constructive advantages, the numerical estimation of the bearing capacity of the strengthened reinforced concrete element is still complicated, not only for the complexity of modelling a flexible membrane or plate attached to a quasi-rigid solid, but also for the difficulties that raise of simulating any potential delamination between both materials. For these reasons, the standard engineering calculations used in the practice remain very approximated and clumsy. In this work, we propose the formulation of a new 2D solid-layer finite element capable to link a solid body with a flexible thin layer, as it were the "skin" of the body, allowing the potential delamination between both materials. In numerical terms, this "skin" element is intended to work as a transitional region between a solid body (modelled with a classical formulation of a standard quadrilateral four-nodes element) and a flexible coat layer (modelled with cubic beam element), dealing with the incompatibility of Degrees-OfFreedom between them (two DOF for the solid and three DOF for the beam). The aim of the solid-layer element is to simplify the mesh construction of the strengthened RC element being aware of two aspects: a) to prevent the inappropriate use of very small solid elements to simulate the coat; b) to improve the numerical estimation of the real bearing capacity of the strengthened element when the coat is attached or detached from the solid body.

FE analysis of RC structures using DSC model with yield surfaces for tension and compression

  • Akhaveissy, A.H.;Desai, C.S.;Mostofinejad, D.;Vafai, A.
    • Computers and Concrete
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    • 제11권2호
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    • pp.123-148
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    • 2013
  • The nonlinear finite element method with eight noded isoparametric quadrilateral element for concrete and two noded element for reinforcement is used for the prediction of the behavior of reinforcement concrete structures. The disturbed state concept (DSC) including the hierarchical single surface (HISS) plasticity model with associated flow rule with modifications is used to characterize the constitutive behavior of concrete both in compression and in tension which is named DSC/HISS-CT. The HISS model is applied to shows the plastic behavior of concrete, and DSC for microcracking, fracture and softening simulations of concrete. It should be noted that the DSC expresses the behavior of a material element as a mixture of two interacting components and can include both softening and stiffening, while the classical damage approach assumes that cracks (damage) induced in a material treated acts as a void, with no strength. The DSC/HISS-CT is a unified model with different mechanism, which expresses the observed behavior in terms of interacting behavior of components; thus the mechanism in the DSC is much different than that of the damage model, which is based on physical cracks which has no strength and interaction with the undamaged part. This is the first time the DSC/HISS-CT model, with the capacity to account for both compression and tension yields, is applied for concrete materials. The DSC model allows also for the characterization of non-associative behavior through the use of disturbance. Elastic perfectly plastic behavior is assumed for modeling of steel reinforcement. The DSC model is validated at two levels: (1) specimen and (2) practical boundary value problem. For the specimen level, the predictions are obtained by the integration of the incremental constitutive relations. The FE procedure with DSC/HISS-CT model is used to obtain predictions for practical boundary value problems. Based on the comparisons between DSC/HISS-CT predictions, test data and ANSYS software predictions, it is found that the model provides highly satisfactory predictions. The model allows computation of microcracking during deformation leading to the fracture and failure; in the model, the critical disturbance, Dc, identifies fracture and failure.

MPI를 이용한 2차원 유한체적모형의 계산 성능 개선 (Performance Improvement of Computing Time of 2 Dimensional Finite Volume Model using MPI)

  • 김태형;한건연;김병현
    • 한국수자원학회논문집
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    • 제47권7호
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    • pp.599-614
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    • 2014
  • 본 연구에서는 삼각형 및 사각형 혼합격자의 적용이 가능하도록 기 개발된 2차원 유한체적모형의 계산속도를 개선하기 위해 모형의 병렬화를 수행하였다. 모형의 병렬화를 위해 코어 수의 제약에 자유로운 MPI 기법을 이용하였고, 프로그램 내의 흐름률 및 계산시간간격의 계산영역에 대해 논블록킹 점대점통신을 이용하였다. 병렬화 된 개발모형의 기존모형에 대한 계산결과의 일치성을 검증하고, 계산시간에 대한 성능향상도와 효율성을 검토하기 위해, $90^{\circ}$의 만곡이 존재하는 L자형 실험하도에 대한 댐 붕괴해석과 자연하천인 Malpasset 댐의 붕괴사상에 대해 모형을 적용하였다. 또한 격자수에 따라 4개의 Case로 구분하여 각각 모의함으로써, 입력규모의 크기에 따른 계산시간의 성능향상도를 함께 검토하였다. 분석결과 병렬화 모형에 의한 모의 결과는 기존모형 및 실측치와 비교하여 만족할 만한 정확도를 확보하였고, 기존모형에 대비해 약 3배 정도의 계산시간에 대한 성능이득을 얻을 수 있었다. 또한 입력자료 규모에 대한 Case별 모의 결과를 통해 적절한 입력자료의 규모와 프로세스 개수를 사용하는 것이 통신부하를 최소화할 수 있는 방안임을 확인할 수 있었다.