• 제목/요약/키워드: fracture energy rate

검색결과 312건 처리시간 0.023초

Dynamic Fracture Properties of Modified S-FPZ Model for Concrete

  • Yon, Jung-Heum;Seo, Min-Kuk
    • International Journal of Concrete Structures and Materials
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    • 제19권1E호
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    • pp.25-32
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    • 2007
  • The fracture energy evaluated from the previous experimental results can be simulated by using the modified singular fracture process zone (S-FPZ) model. The fracture model has two fracture properties of strain energy release rate for crack extension and crack close stress versus crack width relationship $f_{ccs}(w)$ for fracture process zone (FPZ) development. The $f_{ccs}(w)$ relationship is not sensitive to specimen geometry and crack velocity. The fracture energy rate in the FPZ increases linearly with crack extension until the FPZ is fully developed. The fracture criterion of the strain energy release rate depends on specimen geometry and crack velocity as a function of crack extension. The behaviors of micro-cracking, micro-crack localization and full development of the FPZ in concrete can be explained theoretically with the variation of strain energy release rate with crack extension.

Experimental Determination of Concrete Fracture Properties with Modified S-FPZ Model

  • Yon, Jung-Heum;Kim, Tai-Hoon
    • International Journal of Concrete Structures and Materials
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    • 제18권3E호
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    • pp.213-219
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    • 2006
  • Modified singular fracture process zone(S-FPZ) model is proposed in this paper to determine a fracture criterion for continuous crack propagation in concrete. The investigated fracture properties of the proposed fracture model are strain energy release rate at a micro-crack tip and the relationship between crack closure stress(CCS) and crack opening displacement(COD) in the FPZ. The proposed model can simulate the actual fracture energy of experimental results fairly well. The results of the experimental data analysis show that specimen geometry and loading condition did not affect the CCS-COD relation. However, the strain energy release rate is a function of not only specimen geometry but also crack extension. The strain energy release rate remained constantly at the minimum value up to the crack extension of 25 mm, and then it increased linearly to the maximum value. The maximum fracture criterion occurred at the peak load for specimens of large size. The fracture criterion remained at the maximum value after the peak load. The variation of the fracture criterion is caused by micro-cracking and micro-crack localization. The fracture criterion of strain energy release rate can simply be the size effect of concrete fracture, and it can be used to quantify the micro-cracking and micro-crack localizing behavior of concrete.

에너지 방출률에 의한 접착이음의 계면균열에 대한 파괴인성의 평가 (Evaluation of Fracture Toughness by Energy Release Rate for Interface Crack in Adhesively Bonded Joints)

  • 정남용;이명대;강삼근
    • 대한기계학회논문집A
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    • 제24권9호
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    • pp.2174-2183
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    • 2000
  • In this paper, the evaluation method of interfacial fracture toughness to apply the fracture toughness was investigated in adhesively bonded joints of AI/Ced./A1. Four types of adhesively bonded double-cantilever beam(DCB) joints with the interface crack were prepared for the test of interfacial fracture toughness. The experiments to measure the interfacial fracture toughness were performed under the various mixed-mode conditions. The critical energy release rate, Gc, was obtained by the experimental measurement of compliances. From the experimental results, the interfacial fracture toughness for the mixed-mode specimens is well characterized by the energy release rate, and the method of strength evaluation by the interfacial fracture toughness was discussed in adhesively bonded joints.

수정 특이-파괴진행대이론의 파괴특성에 대한 균열속도의 영향 (Effects of Crack Velocity on Fracture Properties of Modified S-FPZ Model)

  • 연정흠
    • 콘크리트학회논문집
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    • 제16권4호
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    • pp.511-520
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    • 2004
  • 이 연구에서는 기존의 콘크리트 실험에서 평가된 파괴에너지를 수정 특이-파괴진행대 이론에 대해 해석하였다. 수정 특이-파괴진행대 이론은 균열성장에 대한 에너지해방률과 균열면의 파괴진행에 대한 균열면응력-균열폭 관계의 두 파괴특성을 필요로 한다. 해석결과 균열면응력-균열폭 관계는 시험편의 형상과 균열속도에 민감하지 않았다. 파괴진행대에서 파괴에너지율은 파괴진행대가 완전히 형성될 때까지 균열성장길이에 선형으로 증가하였으며, 이후에는 파괴에너지밀도로 일정한 값을 유지하였다. 변형에너지방출률은 시험편의 형상과 균열속도에 큰 변화를 보였으며, 균열속도에 대해서는 선형의 대수함수로 표현될 수 있다. 균열성장에 대한 변형에너지방출률의 변화는 다른 실험의 미세균열의 성장과 국부화 그리고 완전 파괴진행대의 형성에 대한 이론적인 근거를 보여준다.

접착이음의 계면균열에 대한 파괴인성 및 평가방법 (Mehods of Fracture Toughness and Evaluation for Interface Crack in Adhesively Bonded Joints)

  • 정남용
    • 한국공작기계학회:학술대회논문집
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    • 한국공작기계학회 1998년도 춘계학술대회 논문집
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    • pp.220-226
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    • 1998
  • In this pater, a method of strength evaluation applying fracture mechanics in adhesively bonded joints of A1/A1 materials was investigated. Various adhesively bonded joints of double-cantilever beam with a interfacial crack in its adhesive layer were prepared for the fracture toughness test of comprehensive mixed mode conditions from nearly pure mode I to mode II. The experiment of fracture toughness was carried out under various mixed mode conditions with an interfacial crack and critical energy release rate, Gc by the experimental measurements of compliances was determined. From the results, fracture toughness on mixed mode with an interfacial crack is well characterized by strain energy release rate and a method of strength evaluation by the fracture toughness in adhesively bonded joints of A1/A1 materials was discussed.

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흑연/에폭시 복합재료의 혼합모우드 층간분리 해석 (Analysis of Mixed Mode Delamination in Graphite/Epoxy Composite)

  • 염영진;유희
    • 한국자동차공학회논문집
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    • 제4권4호
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    • pp.171-178
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    • 1996
  • DCB(pure mode I) and CLS(mixed mode) tests were performed to investigate the effect of fracture mode on the interlaminar fracture of composite laminate. Mode I critical strain energy release rate was found to be $133J/m^2$ from the DCB test and total strain energy release rate decreased from $1, 270J/m^2$ as thickness ratio(tl/t) varied from 0.333 to 0.667 from the crease from the CLS test. Crack length had no effect on the total strain energy release rate and load was almost constant during the crack growth of the specimen which had the specific thickness ratio. Crack initiated when the stress of the strap ply reached constant stress $42kgf/mm^2$ which was found to be independent of the thickness ratio.

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Effect of strain rate and stress triaxiality on fracture strain of 304 stainless steels for canister impact simulation

  • Seo, Jun-Min;Kim, Hune-Tae;Kim, Yun-Jae;Yamada, Hiroyuki;Kumagai, Tomohisa;Tokunaga, Hayato;Miura, Naoki
    • Nuclear Engineering and Technology
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    • 제54권7호
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    • pp.2386-2394
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    • 2022
  • In this paper, smooth and notched bar tensile tests of austenitic stainless steel 304 are performed, covering four different multi-axial stress states and six different strain rate conditions, to investigate the effect of the stress triaxiality and strain rate on fracture strain. Test data show that the measured true fracture strain tends to decrease with increasing stress triaxiality and strain rate. The test data are then quantified using the Johnson-Cook (J-C) fracture strain model incorporating combined effects of the stress triaxiality and strain rate. The determined J-C model can predict true fracture strain overall conservatively with the difference less than 20%. The conservatism in the strain-based acceptance criteria in ASME B&PV Code, Section III, Appendix FF is also discussed.

Enhancing the ability of strain energy release rate criterion for fracture assessment of orthotropic materials under mixed-mode I/II loading considering the effect of crack tip damage zone

  • Khaji, Zahra;Fakoor, Mahdi
    • Steel and Composite Structures
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    • 제44권6호
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    • pp.817-828
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    • 2022
  • In this study, considering dissipated energy in fracture process zone (FPZ), a novel criterion based on maximum strain energy release rate (SER) for orthotropic materials is presented. General case of in-plane loading for cracks along the fibers is assumed. According to the experimental observations, crack propagation is supposed along the fibers and the reinforcement isotropic solid (RIS) concept is employed as a superior model for orthotropic materials. SER in crack initiation and propagation phases is investigated. Elastic properties of FPZ are extracted as a function of undamaged matrix media and micro-crack density. This criterion meaningfully links between dissipated energy due to toughening mechanisms of FPZ and the macroscopic fracture by defining stress intensity factors of the damaged zone. These coefficients are used in equations of maximum SER criterion. The effect of crack initiation angle and the damaged zone is considered simultaneously in this criterion and mode II stress intensity factor is extracted in terms of stress intensity factors of damage zone and crack initiation angle. This criterion can evaluate the effects of FPZ on the fracture behavior of orthotropic material. Good agreement between extracted fracture limit curves (FLC's) and available experimental data proves the ability of the new proposed criterion.

Elastic-plastic fracture of functionally graded circular shafts in torsion

  • Rizov, Victor I.
    • Advances in materials Research
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    • 제5권4호
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    • pp.299-318
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    • 2016
  • Analytical investigations were performed of a longitudinal crack representing a cylindrical surface in circular shafts loaded in torsion with taking into account the non-linear material behavior. Both functionally graded and multilayered shafts were analyzed. It was assumed that the material is functionally graded in radial direction. The mechanical behavior of shafts was modeled by using non-linear constitutive relations between the shear stresses and shear strains. The fracture was studied in terms of the strain energy release rate. Within the framework of small strain approach, the strain energy release rate was derived in a function of the torsion moments in the cross-sections ahead and behind the crack front. The analytical approach developed was applied to study the fracture in a clamped circular shaft. In order to verify the solution derived, the strain energy release rate was determined also by considering the shaft complimentary strain energy. The effects were evaluated of material properties, crack location and material non-linearity on the fracture behavior. The results obtained can be applied for optimization of the shafts structure with respect to the fracture performance. It was shown that the approach developed in the present paper is very useful for studying the longitudinal fracture in circular shafts in torsion with considering the material non-linearity.

콘크리트의 연속적인 균열성장에 대한 수정 특이-파괴진행대 이론 (Modified S-FPZ Model for a Running Crack in Concrete)

  • 연정흠
    • 콘크리트학회논문집
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    • 제15권6호
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    • pp.802-810
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    • 2003
  • 이 논문에서는 균열성장에 따른 파괴기준의 변화를 고려할 수 있는 수정 특이-파괴진행대 이론이 제안되었다. 제안된 파괴이론의 파괴특성은 균열의 성장기준이 되는 미소균열단에서 에너지해방률과 미소균열단 뒤에 형성되는 파괴진행대에서 균열면 응력-변위 관계이다. 제안된 파괴이론에 의한 파괴에너지는 기존의 콘크리트 파괴실험 결과로부터 평가된 파괴에너지를 충분히 만족할 수 있었다. 실험자료의 분석결과는 파괴진행대에서 균열면 응력-변위 관계는 시험편의 기하학적 특성에 큰 영형을 받지 않으나, 에너지해방률의 파괴기준은 시험편의 기하학적 특성과 하중조건뿐만 아니라 균열성장길이에 영향을 받는 것을 보여준다. 25mm의 균열성장까지 일정한 값을 유지하던 에너지해방률은 균열성장에 대해 선형으로 최대 값까지 증가하였다. 충분한 크기의 시험편에서 최대 에너지해방률은 최대하중에서 발생되었으며, 최대하중 이후의 균열성장에 대해 이 값을 유지하였다. 균열성장에 따른 파괴기준의 변화는 미소균열의 성장과 국부화에 의한 것으로 판단된다. 에너지해방률에 의한 파괴기준의 평가는 콘크리트 파괴거동의 크기효과를 단순화하며, 미소균열의 성장과 국부화에 대한 정량화에 사용될 수 있을 것으로 기대된다.