• 제목/요약/키워드: Masonry Structure

검색결과 200건 처리시간 0.02초

조적벽의 전단강도를 고려한 철근콘크리트골조의 비탄성 거동 (Inelastic Behavior of Reinforced Concrete Frame Structure with Shear Strength of Masonry Wall)

  • 윤태호;강경수
    • 한국산학기술학회논문지
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    • 제12권9호
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    • pp.4216-4222
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    • 2011
  • 본 연구는 조적 끼움벽을 고려하지 않은 기존 학교건물의 비탄성 거동과 조적 끼움벽을 고려한 기존 학교 건물의 거동특성을 비교 검토하였다. 해석 결과와 실험 결과를 비교했을 때 하중-변위 곡선과 소성힌지 분포상태에서 유사함을 확인할 수 있었다. 따라서 조적 끼움벽을 고려한 비선형 정적해석의 유효성을 검증하였다. 골조내부가 전부 조적벽으로 채워진 경우 조적벽체의 영향에 의하여 초기 강성과 강도가 증가하고 항복 전까지는 근사한 거동을 보여주며 항복이후에는 변형이 커질수록 오차가 증가하며, 골조높이의 2/3 높이가 조적벽으로 채워진 경우 초기 강성과 항복강도가 단순골조에 비하여 약간 크게 나타나고 있으며, 조적벽체의 균열이 발생한 이후에는 급격히 강도가 저하되고 있다. 골조높이의 1/3 높이가 조적벽으로 채워진 경우 초기 강성과 항복강도가 단순골조와 비슷하며 항복점은 오히려 단순 골조의 항복점보다 저하되나, 최대강도는 단순 골조와 유사하다. Pushover 해석에 의한 하중-변위 관계곡선과 실제 실험에 의한 하중-변위 관계곡선을 비교해 보면 항복 전까지는 근사한 거동을 보여주며 항복이후에는 변형이 커질수록 오차가 증가하나 실제 구조물에서는 변형의 한계가 존재하므로 해석모델로서 유용하게 사용할 수 있다.

고대 로마건축의 석축기법에 관한 연구 (A Study on Masonry Techniques in Ancient Roman Architecture)

  • 윤성호
    • 한국산학기술학회논문지
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    • 제11권10호
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    • pp.4031-4040
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    • 2010
  • 건축의 시작은 벽체를 구축하는 작업이다. 고대 로마건축에서의 석축기법은 매우 다양하며 새로운 기술의 반복적인 실험을 통하여 로마제국시대의 위대한 건축물들을 완성할 수 있었다. 본 논문에서는 고대로마의 석축기법을 양식적, 구조적, 재료적 또한 의장적인 다양한 관점에서 연구하여 그 변화의 과정을 단계적으로 분석하였으며 심도있는 자료의 수집과 정리를 통하여 로마건축이 인류에게 남긴 위대한 유산의 일부분을 깊이 있게 파헤쳐 보았다. 아직도 우리에게 영향력을 미치고 있는 로마건축의 연속성을 뒷받침 하는 것은 건축의 시작인 석축기술에 있다는 것도 재확인 할 수 있었다. 다양한 실험적 정신이 훌륭한 건축물이 만들어지는 토대가 됨을 로마건축은 보여주고 있다.

Strengthening techniques for masonry structures of cultural heritage according to recent Croatian provisions

  • Hadzima-Nyarko, Marijana;Ademovic, Naida;Pavic, Gordana;Sipos, Tanja Kalman
    • Earthquakes and Structures
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    • 제15권5호
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    • pp.473-485
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    • 2018
  • The buildings of architectural and cultural heritage are mostly built with stone or brick wall elements, which are connected using limestone or limestone cement mortar, without a full knowledge of the mechanical properties of masonry structures. The compatibility of heritage masonry buildings with valid technical specifications and the rules for earthquake resistance implies the need for construction work such as repairs, strengthening or reconstruction. By strengthening the masonry buildings, ductility and bearing capacity are increased to a level, which, in the case of the earthquake design, allows for some damage to happen, however the structure retains sufficient usability and bearing capacity without the possibility of collapse. Comparison between traditional and modern techniques for seismic strengthening of masonry buildings is given according to their effects, benefits and disadvantages. Recent Croatian provisions provided for heritage buildings enabling deviation of technical specifications are discussed.

Aseismic protection of historical structures using modern retrofitting techniques

  • Syrmakezis, C.A.;Antonopoulos, A.K.;Mavrouli, O.A.
    • Smart Structures and Systems
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    • 제4권2호
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    • pp.233-245
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    • 2008
  • For historical masonry structures existing in the Mediterranean area, structural strengthening is of primary importance due to the continuous earthquake threat that is posed on them. Proper retrofitting of historical structures involves a thorough understanding of their structural pathology, before proceeding with any intervention measures. In this paper, a methodology is presented for the evaluation of the actual state of historical masonry structures, which can provide a useful tool for the seismic response assessment before and after the retrofitting. The methodology is mainly focused on the failure and vulnerability analysis of masonry structures using the finite element method. Using this methodology the retrofitting of historical structures with innovative techniques is investigated. The innovative technique presented here involves the exploitation of Shape Memory Alloy prestressed bars. This type of intervention is proposed because it ensures increased reversibility and minimization of interventions, in comparison with conventional retrofitting methods. In this paper, a case study is investigated for the demonstration of the proposed methodologies and techniques, which comprises a masonry Byzantine church and a masonry Cistern. Prestressed SMA alloy bars are placed into the load-bearing system of the structure. The seismic response of the non-retrofitted and the retrofitted finite element models are compared in terms of seismic energy dissipation and displacements diminution.

줄눈 보강을 통한 면내 방향의 조적조 사인장 전단강도 평가 (Shear Strength Evaluation in Masonry Assemblages by Reinforcing Materials in Joint)

  • 우종훈;신경재;이준섭;한승윤
    • 대한건축학회논문집:구조계
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    • 제35권9호
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    • pp.191-198
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    • 2019
  • All over the Republic of Korea, there are many masonry buildings which have been built since 1970s. When the earthquake at Po-Hang occurred, this is the main cause of huge damage because the masonry buildings have not seismic capacity. When masonry buildings are failed, two type of the failure modes can be shown, which are in-plane mode and out-plane mode. In-plane mode can have seismic capacity in masonry so diagonal shear test is performed in this study. The purpose of this study was to find the best way to reinforce the materials through the diagonal shear test. Through the test, shear stress and shear modulus of elasticity will be calculated, referred to the ASTM E 519-02. The variables in this test are ${\phi}3$ wire, three types of wire meshes, polypropylene strap and different types of brick. Each variable is applied to the same condition of the $1.2m{\times}1.2m$ masonry walls which are made by ASTM E 519-02. Compared to each variable with shear stress and shear modulus of elasticity, the best way of reinforcing method to have seismic capacity will be proved in this study.

Damage evaluation of masonry buildings during Kahramanmaraş (Türkiye) earthquakes on February 06, 2023

  • Ercan Isik;Aydin Buyuksarac;Fatih Avcil;Enes Arkan;M.Cihan Aydin;Ali Emre Ulu
    • Earthquakes and Structures
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    • 제25권3호
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    • pp.209-221
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    • 2023
  • The Mw=7.7 (Pazarcık-Kahramanmaraş) and Mw=7.6 (Elbistan-Kahramanmaraş) earthquakes that occurred in Türkiye on 06.02.2023 with 9 hours' intervals, caused great losses of life and property as the biggest catastrophe in the instrumental period. The earthquakes affecting an area of 14% of the country were enormous and caused a great deal of loss of life and damage. Numerous buildings have collapsed or damaged at different levels, both in the city centers and in rural areas. Within the scope of this study, masonry structure damage built from different types of materials in the earthquake region was taken into consideration. In this study, the damage and causes of such masonry structures that do not generally receive engineering services were examined and explained in detail. Insufficient interlocking between wall-wall and wall-roof, inadequate masonry, lack of horizontal and vertical bond beams, usage of low-strength materials, poor workmanship, and heavy earthen roof are commonly caused to structural damages. Separation at the corner point and out-of-plane mechanism in structural walls, and heavy earthen roof damages are common types of damage in masonry structures.

미얀마 파야똔주 사원의 지진거동 특성 및 내진성능 평가 (Earthquake Behavior Characteristics and Seismic Performance Evaluation of Phayathonzu Temple in Myanmar)

  • 김호수
    • 한국공간구조학회논문집
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    • 제24권2호
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    • pp.43-52
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    • 2024
  • Phayathonzu temple in Myanmar was made of masonry bricks, and so it was vulnerable to lateral load such as earthquake. Especially, it has many difficulties in structural modeling and dynamic analysis because the discontinuous characteristics of masonry structure should be considered. So, it is necessary to provide the seismic performance evaluation technology through the inelastic dynamic modeling and analysis under earthquake loads for the safety security of masonry brick temple. Therefore, this study analyzes the seismic behavior characteristics and evaluates the seismic performance for the 479 structure with many cracks and deformations. Through the evaluation results, we found out the structural weak parts on earthquake loads.

January 24, 2020 Sivrice Earthquake and the response of the masonry Haci Yusuf Tas (New) mosque

  • Firat, Fatih K.;Ural, Ali;Kara, Mehmet E.
    • Earthquakes and Structures
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    • 제22권4호
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    • pp.331-343
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    • 2022
  • Masonry structures are the most common structural systems that have been used almost all over the world from the earliest ages of history to the present day. These structural systems are often unfavorably affected by natural disasters such as earthquakes. The main reason for this is that they are built without sufficient engineering knowledge. On January 24, 2020, a severe earthquake occurred near the Sivrice District of Elazığ in eastern Turkey. According to the Turkish Directorate of Disaster and Emergency Management (AFAD), the magnitude of the earthquake was 6.8 and the focal depth 8 km. This earthquake caused damage and destruction to the masonry structures used extensively in the region. The Hacı Yusuf Taş (new) mosque in the Malatya city center, located about 64 km from the epicenter of the earthquake, was among the buildings affected by the earthquake. The mosque has smooth-cut stone walls and domes made of brick units. The main dome of the structure was severely damaged during the earthquake. In this study, information about the earthquake is first provided, and the damage to the mosque is then interpreted via photographs. In addition, two separate finite element models were produced, where the current state of mosque and solution suggestions are presented, and response spectrum analyses were carried out. According to these analyses and field observations, a buttress system to the main walls of the structure should be constructed in the direction which has little lateral rigidity.

FE model updating and seismic performance evaluation of a historical masonry clock tower

  • Gunaydin, Murat;Erturk, Esin;Genc, Ali Fuat;Okur, Fatih Yesevi;Altunisik, Ahmet Can;Tavsan, Cengiz
    • Earthquakes and Structures
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    • 제22권1호
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    • pp.65-82
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    • 2022
  • This paper presents a structural performance assessment of a historical masonry clock tower both using numerical and experimental process. The numerical assessment includes developing of finite element model with considering different types of soil-structure interaction systems, identifying the numerical dynamic characteristics, finite element model updating procedure, nonlinear time-history analysis and evaluation of seismic performance level. The experimental study involves determining experimental dynamic characteristics using operational modal analysis test method. Through the numerical and experimental processes, the current structural behavior of the masonry clock tower was evaluated. The first five experimental natural frequencies were obtained within 1.479-9.991 Hz. Maximum difference between numerical and experimental natural frequencies, obtained as 20.26%, was reduced to 4.90% by means of the use of updating procedure. According to the results of the nonlinear time-history analysis, maximum displacement was calculated as 0.213 m. The maximum and minimum principal stresses were calculated as 0.20 MPa and 1.40 MPa. In terms of displacement control, the clock tower showed only controlled damage level during the applied earthquake record.

Seismic assessment of historical masonry structures: The case of Amasya Taşhan

  • Karaca, Zeki;Turkeli, Erdem;Pergel, Senol
    • Computers and Concrete
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    • 제20권4호
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    • pp.409-418
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    • 2017
  • Turkey owns a very important cultural and historical heritage that bears the traces of thousands of years of culture and civilization. It is an inevitable duty to carry these treasuries to the future generations. In this paper, structural safety assessment and strengthening stages of one of these important historical heritages namely Amasya Taşhan was investigated in details as a case study. For this purpose, the detailed architectural projects of the structure with the information of all load carrying and structural elements were prepared. Then, the structural dynamic analyses were performed by using SAP2000. The internal forces obtained from the dynamic analyses determined the weak regions. By obtaining the information from dynamic analyses, the method of state of the art technique of application of the structure that needs structural strengthening was selected. The last step is the application of these precautions to the whole structure. At the end of this study, this study not also contains several strengthening techniques that is used in one masonry structure together but also provides a useful reference to the practicing engineers.