• 제목/요약/키워드: elastic limit strength

검색결과 120건 처리시간 0.027초

온도와 응력에 따른 폴레에틸렌(PE)의 크리프특성 (Creep Characteristic of the Polyethylene(PE) at Various Stresses and Temperatures)

  • 강석춘;이용원
    • 한국정밀공학회지
    • /
    • 제26권7호
    • /
    • pp.99-104
    • /
    • 2009
  • Creep characteristic is an important failure mechanism when evaluating engineering materials that are soft as polymers or used as mechanical elements at high temperatures. One of the popular thermo-elastic plastics, Polyethylene(PE) which is used broadly for engineering purposes, as it has good properties and merits compared to other plastics, was studied for creep characteristic at various level of stresses and temperatures. From the experimental results, the creep limit of PE at room temperature is 75% of tensile strength. Also the creep limits decreased exponentially as the temperatures increased, up to 50% of the melting point. Also the secondary stage among the three creep stages was nonexistent nor was there any rupture failure which occurred for many metals.

응력과 온도에 따른 폴리카보네이트(PC)의 크리프특성 (Creep Characteristic of the Polycarbonate(PC) at Various Stresses and Temperatures)

  • 강석춘;이용원
    • 한국정밀공학회지
    • /
    • 제27권9호
    • /
    • pp.78-85
    • /
    • 2010
  • Creep characteristic is an important failure mechanism when evaluating engineering materials that are soft material as polymers or used as mechanical elements at high temperatures. One of the popular thermo-elastic polymers, Polycarbonate(PC) which is used broadly for engineering polymer, as it has excellent mechanical and thermal properties compared to other polymers, was studied for creep characteristic at various level of stresses and temperatures. From the experimental results, the creep limit of PC at room temperature is 85 % of tensile strength. which is higher than PE (75%)at room temperature. Also the creep limits decreased exponentially as the temperatures increased, up to 50 % of the melting point($267^{\circ}C$). Also the first and third stage among the three creep stages was non-existent nor was there any rupture failure which occurred for many metals.

응력과 온도에 따른 아크릴(PMMA)의 크리프특성 (Creep Characteristic of the Polymethyl Methacrylate(PMMA) at Stresses and Temperatures)

  • 강석춘
    • 한국정밀공학회지
    • /
    • 제28권12호
    • /
    • pp.1403-1410
    • /
    • 2011
  • Creep characteristic is an important failure mechanism when evaluating engineering materials that are soft material as polymers or used as mechanical elements at high temperatures. One of the popular thermo-elastic polymers, Polymethyl methacrylate(PMMA) which is used broadly for engineering polymer, as it has excellent mechanical and thermal properties compared to other polymers, was studied for creep characteristic at various level of stresses and temperatures. From the experimental results, the creep limit of PMMA at room temperature is 85 % of tensile strength. which is higher than that of PE (75%)at room temperature. Also the creep limits decreased to nil linearly as the temperatures increased, up to $120^{\circ}C$ of the melting point($267^{\circ}C$). Also the first and third stage among the three creep stages were non-existent nor were there any rupture failure which occurred for many metals at high temperatures.

Postbuckling strength of an axially compressed elastic circular cylinder with all symmetry broken

  • Fujii, Fumio;Noguchi, Hirohisa
    • Structural Engineering and Mechanics
    • /
    • 제11권2호
    • /
    • pp.199-210
    • /
    • 2001
  • Axially compressed circular cylinders repeat symmetry-breaking bifurcation in the postbuckling region. There exist stable equilibria with all symmetry broken in the buckled configuration, and the minimum postbuckling strength is attained at the deep bottom of closely spaced equilibrium branches. The load level corresponding to such postbuckling stable solutions is usually much lower than the initial buckling load and may serve as a strength limit in shell stability design. The primary concern in the present paper is to compute these possible postbuckling stable solutions at the deep bottom of the postbuckling region. Two computational approaches are used for this purpose. One is the application of individual procedures in computational bifurcation theory. Path-tracing, pinpointing bifurcation points and (local) branch-switching are all applied to follow carefully the postbuckling branches with the decreasing load in order to attain the target at the bottom of the postbuckling region. The buckled shell configuration loses its symmetry stepwise after each (local) branch-switching procedure. The other is to introduce the idea of path jumping (namely, generalized global branch-switching) with static imperfection. The static response of the cylinder under two-parameter loading is computed to enable a direct access to postbuckling equilibria from the prebuckling state. In the numerical example of an elastic perfect circular cylinder, stable postbuckling solutions are computed in these two approaches. It is demonstrated that a direct path jump from the undeformed state to postbuckling stable equilibria is possible for an appropriate choice of static perturbations.

선체판부재의 최종강도에 대한 횡압력의 영향에 관한 연구 (A Study on the Lateral Pressure Effect for Ultimate Strength of Ship Platings)

  • 박주신;고재용;이준교;이경환
    • 한국전산구조공학회:학술대회논문집
    • /
    • 한국전산구조공학회 2005년도 춘계 학술발표회 논문집
    • /
    • pp.583-591
    • /
    • 2005
  • The ship plating is generally subjected to combined in-plane load and lateral pressure loads. In-plane loads include axial load and edge shear, which are mainly induced by overall hull girder bending and torsion of the vessel. Lateral pressure is due to water pressure and cargo. These load components are not always applied simultaneously, but more than one can normally exist and interact. Hence, for more rational and safe design of ship structures, it is of crucial importance to bitter understand the interaction relationship of the buckling and ultimate strength for ship plating under combined loads. Actual ship plates are subjected to relatively small water pressure except for the impact load due to slamming and panting etc. The present paper describes an accurate and fast procedure for analyzing the elastic-plastic large deflection behavior up to the ultimate limit state of ship plates under combined loads. In this paper, the ultimate strength characteristics of plates under axial compressive loads and lateral pressure loads are investigated through ANSYS elastic-plastic large deflection finite element analysis with varying lateral pressure load level.

  • PDF

비탄성 설계법에 의한 플레이트 거더 연속교의 LRFD 설계 (Inelastic Design of Continuous-Span Composite Plate Girder Bridges by LRFD Method)

  • 조은영;신동구
    • 한국강구조학회 논문집
    • /
    • 제20권4호
    • /
    • pp.469-481
    • /
    • 2008
  • 연속경간 강합성 플레이트 거더교를 내측 교각 위 부모멘트부에서의 모멘트 재분배 효과를 고려하는 LRFD 비탄성설계법으로 설계하고 탄성설계법에 의한 설계결과와 비교하였다. 탄성 및 비탄성 설계 시에 교량은 3경간 연속교로 가정하였으며 경간비를 4:5:4로 중앙 경간 최대 경간장은 40m-70m를 고려하였다. 설계방법은 AASHTO-LRFD 규정을 적용하였으나 설계활하중은 최근 국내에서 새로이 제안된 활하중을 사용하였다. 탄성설계법으로 최대정모멘트 단면과 내측 교각 위 최대부모멘트 단면을 설계한 후에 내측 교각 위에서의 재분배모멘트를 계산하고 이를 최대정모멘트부의 설계모멘트에 추가하여 최대정모멘트부 단면에 대한 강도한계상태와 사용성한계상태에 대하여 검토하였다. 최대부모멘트부는 탄성설계법으로 구한 강거더 단면의 강재량을 감소시키고 비탄성설계법에 규정한 사용성한계상태 설계요구조건을 검토하였다. 5개의 연속교를 비탄성설계법으로 설계한 결과 최대부모멘트부의 강거더 단면적이 탄성설계에 비해 23% 내외 감소하는 것으로 분석되었다.

사장교계의 지지조건에 대한 연구 (A Study on the Support Conditions of Cable-stayed Bridge System)

  • 안주옥;윤영만
    • 한국방재학회 논문집
    • /
    • 제2권3호
    • /
    • pp.119-125
    • /
    • 2002
  • 본 논문에서는 사장교 전체구조계의 교축방향에 대해서 주형을 지지하는 방법에 따른 활하중과 지진하중에 의한 주형, 주탑단면력 및 케이블력의 변화를 3차원 수치해석을 통해 검토하였다. 교축방향에 대한 적합한 경계조건의 도입은 주형의 지지점과 주탑의 기초부의 반력뿐만 아니라 주형의 휨모멘트에서 많은 변화를 유도할 수 있다. 수치해석의 예에서, 주형받침의 교축방향 탄성계수값이 약 $1{\times}10^4$tonf/m/bearing인 경계조건과 주형이 주탑부에 고정된 경계조건을 수치해석한 결과, 주탑의 거동은 거의 유사하나, 주탑부의 고정된 경계조건시 크게 발생하는 주형 모멘트를 감소할 수 있는 종방향 탄성계수값(약 $1\{times}10^4$tonf/m/bearing)을 적용하는 것이 최적 지지조건 값이 됨을 알 수 있다. 또한, 주형 지지조건의 종방향 탄성계수값이 $1{\times}10^4$tonf/m/bearing 부근에서 지진하중 재하의 경우 교축방향에 대한 진동 주기가 약 1.4% 더 길어지는 경향을 보인다.

고강도 원형강관 갭K형 접합의 사용성 해석 (An Availability Analysis on the Gap K-Joints using High Strength Circular Hollow Section Members)

  • 안관수;최병정;오영석;김재운
    • 한국강구조학회 논문집
    • /
    • 제22권2호
    • /
    • pp.109-119
    • /
    • 2010
  • 600MPa급 고강도 강관은 항복강도와 항복비에 대한 제한이 따른다. 현재 여러 기준에는 항복강도 360MPa 이하, 항복비 80% 이하를 사용하도록 권장하고 있다. 한계상태에서 고강도 강재의 압축세장비가 저강도 강재보다 작아져 압축지관의 좌굴발생이 야기되기 때문에 압축좌굴에 대한 거동을 이해하는 것은 필수적이다. 또한 각형강관에 대한 많은 실험데이터는 있지만 고강도 원형강관에 대한 실험은 많지 않다. 그래서 이 논문의 주된 목적은 실험에 앞서 원형강관을 유한요소 해석을 통하여 압축 좌굴과 고강도 강재의 접합부 한계상태식에 대한 검증을 통하여 600MPa와 400MPa 강재의 사용성을 알고자 하는 것이다. 이 해석은 구조물의 거동을 이해하기 위하여 폭두께비, 지관각도, 항복비, 편심을 주된 변수로 하여 범용프로그램인 아바쿠스를 사용하여 해석을 수행하였다. 그 결과 같은 하중에서 고강도 강재의 압축지관은 탄성좌굴이 발생하고 저강도 강재는 비탄성좌굴이 발생하는 것을 확인하였고 항복비가 80%이상인 경우 접합부가 취성파괴 되었다. 그리고 고강도 강재에서 주강관의 폭두께비를 변화시켰을 때 주관과 지관의 상대적인 폭두께비로 인해 해석값이 기준값보다 감소함을 알 수 있었다. 그러나 그 외 변수들로 인한 해석상 고강도 강재의 접합부 하중의 변화는 없는 것으로 확인하였다.

Compressive strength of circular concrete filled steel tubular stubs strengthened with CFRP

  • Ou, Jialing;Shao, Yongbo
    • Steel and Composite Structures
    • /
    • 제39권2호
    • /
    • pp.189-200
    • /
    • 2021
  • The compressive strength of circular concrete filled steel tubular (C-CFST) stubs strengthened with carbon fiber reinforced polymer (CFRP) is studied theoretically. According to previous experimental results, the failure process and mechanism of circular CFRP-concrete filled steel tubular (C-CFRP-CFST) stubs is analyzed, and the loading process is divided into 3 stages, i.e., elastic stage, elasto-plastic stage and failure stage. Based on continuum mechanics, the theoretical model of C-CFRP-CFST stubs under axial compression is established based on the assumptions that steel tube and concrete are both in three-dimensional stress state and CFRP is in uniaxial tensile stress state. Equations for calculating the yield strength and the ultimate strength of C-CFRP-CFST stubs are deduced. Theoretical predictions from the presented equations are compared with existing experimental results. There are a total of 49 tested specimens, including 15 ones for comparison of yield strength and 44 ones for comparison of ultimate strength. It is found that the predicted results of most specimens are within an error limit of 10%. Finally, simplified equations for calculating both yield strength and ultimate strength of C-CFRP-CFST stubs are proposed.

구조물 조건에 따른 비선형 직접스펙트럼법의 평균오차 특성 (Property of the Mean Errors of Nonlinear Direct Spectrum Method with Structure Parameters)

  • 강병두;전대한;김재웅
    • 한국전산구조공학회:학술대회논문집
    • /
    • 한국전산구조공학회 2003년도 봄 학술발표회 논문집
    • /
    • pp.211-218
    • /
    • 2003
  • Most structures are expected to deform beyond the limit of linearly elastic behavior when subjected to strong ground motion. Seismic evaluation of structure requires an estimation of the structural performance in terms of displacement demand imposed by earthquakes on the structure. Nonlinear response history analysis(NRHA) is the most rigorous procedure to compute seismic performance among various inelastic analysis methods. But nonlinear analysis procedures necessitate more practical and reliable tools for predicting seismic behavior of structures. This paper presents a nonlinear direct spectrum method(NDSM) to evaluate seismic performance of structures, without iterative computations, given by the structural initial elastic period and yield strength from the pushover analysis, especially for MDF(multi degree of freedom) system. The purpose of this paper is to investigate the accuracy and reliability of this method from a point of view of various earthquakes and structure parameters.

  • PDF