이 논문은 72m 초고강도 콘크리트 섬유보강 콘크리트 프리스트레스트 박스거더의 비선형 거동을 해석하는 3차원 해석방법을 제 시하였다. UHPC재료의 비선형 거동을 나타내기 위해 콘크리트 손상소성(CDP)모델을 채택하였다. 제시된 응력-변형률 관계 곡선에 근거한 수치해석 모델은 50m UHPC 프리스트레스트 박스 거더 휨실험결과로 검증하였다. 검증된 해석모델을 사용하여 72m UHPC 프리스트레스트 박스거더의 휨거동을 파악하는데 적용하였다. 각 하중단계에 따른 하중 변위관계, 응력상태 및 연결부분 상세를 해 석하였다. 하중-변위관계 곡선과 설계하중 및 극한하중 비교 결과는 UHPC 박스거더 휨거동을 해석하는 적절한 수단으로써 비선형 유한요소법의 적용성을 입증하고 있다.
본 연구는 초고강도 콘크리트판, 그라우팅 및 모체 콘크리트 내에 후크와 스터드로 연결한 합성접합부의 전단 실험 을 수행하고 그 거동을 파악하고자 한다. 압축강도 35 MPa, 50 MPa 및 90 MPa 그라우팅의 강도, 4종류의 전단연결재 배치를 실험변수로 총 12개의 시험체를 제작하였다. 합성접합부의 전단력은 그라우팅 콘크리트의 압축강도에 따라 비례적 관계를 가지 고 있다. 휨모멘트가 지배적인 힘이 아니고 면적이 크며 서로 다른 시기에 콘크리트를 친 경계면 합성체에서 콘크리트 전단력 은 무시할 정도 크기가 아니다. 콘크리트 모체 압축강도보다 그라우팅의 압축강도가 크다면 접합부에서 콘크리트 전단력이 유 의미하게 크며 전단연결재를 병용하면 더 큰 전단력을 얻을 수 있다.
초고강도 섬유보강 콘크리트 데크플레이트는 높은 콘크리트 압축력과 섬유에 의한 휨인장력의 우력으로 동바리 지지없이 얇은 두께의 데크플레이트로 고정하중과 작업하중을 견딜 수 있는 강성을 가지고 있다. 본 연구는 슬래브 두께, 섬유의 종류와 혼입률, 철근 및 GFRP를 변수로 휨실험을 수행하였다. 40mm∼50mm 두께의 120MPa 초고강도 콘크리트에 강섬유를 체적 대비 1.5% 이상을 혼입한 데크플레이트로 슬래브의 자중과 작업하중을 부담할 수 있으며, 철근을 보강하면 내하력이 더욱 증진 되고 연성거동을 하는 데크플레이트 특성을 가지는 것을 검증하였다.
UHPFRC 15 M 분절형 박스거더에 대한 비선형 재료 및 비선형 기하학적 유한요소해석을 수행하였다. UHPFRC의 인장 및 압축 영역에서의 구성방정식은 공시체 시험을 기반으로 하였고, 체적 대비 강섬유 혼입률이 각각 1.0%, 1.5% 및 2.0%에 대해 해석을 수행하였다. UHPFRC를 위한 3차원 8 node hexahedron brick model과 1차원 embedded steel element를 기반으로 모델링하였다. UHPFRC 박스거더 단면에서 하부플랜지에 14개, 24개, 32개의 15.2mm 강연선을 모델링하여 실험결과와 비교하였다. 하중과 변위관계, 선형거동에서 비선형거동으로 변하는 시점에서 하중 및 중립축 변화 과정이 실험결과와 비교해 볼 때 정확하게 산출되었다. 따라서, 압축 및 인장구역에서 구성방정식을 반영한 재료적 비선형해석, UHPFRC 분절형 박스의 기하학적 비선형 해석이 유효함을 알 수 있다.
This paper presents the design, analysis, and experimental evaluations of precast reinforced UHPC (ultra high-performance concrete) beams with a new design concept of non-uniform flexural members. With outstanding mechanical properties of UHPC which can develop the compressive strength up to 200MPa, the tensile strengths up to 8~20MPa and the tensile strain up to 1~5%, a non-uniform structural shape of UHPC flexural beams were optimally designed using three-dimensional finite element analysis. The experiments were carried out and compared with the design strength in order to verify the performance of them. Proposed non-uniform UHPC beams were evaluated by a series of three-point beam loading test as well as estimated by design bending and shear strength of members. The newly designed UHPC beams show excellent performances not only in transverse load capacities but also in deformation capacities.
In current research, it was attempted a preliminary design and evaluation of non-uniform ultra high-strength concrete (UHSC) truss members. UHSC used here has the compressive strength of 180 MPa, the tensile strength of 8 to 20 MPa, and the tensile strain after cracks up to 2%. By the three-dimensional finite element stress analysis as well as strut-tie approach on concrete solid beams, the non-uniform truss shape of UHSC truss was designed with the architectural esthetic concept. In a series of examples, to compare with conventional concrete members, the proposed UHSC truss members have advantages in capabilities of the slender design with minimum weight with high performances under transverse loadings as well as the aesthetically non-uniform design for spatial structures.
Ultra high performance concrete which has recently been studied was developed to complement the brittle behaviour and dynamic uppermost limit of high strength concrete. Fiber reinforced concrete which mixed steel fiber is receiving attention as an alternative about this and is being developed to complement the disadvantages of high strength concrete including lower toughness coefficients and crack resistance and spalling in fires. Review about fiber reinforced ultra high strength concrete that this study tries to treat includes reduction of self shrinkage generated by high cement content per unit volume of concrete, evaluation of compression and tension strength to lower internal and external spalling resistance and fragility factors of member of framework, and flow characteristics of concrete which doesn't harden according to steel fiber amounts and used materials. As the result, the more fiber reinforcement increases, the more compression and tensile strength increase and deformation control of cement matrix and improvement of energy absorption ability showed the great effect in shrinkage reduction.
In this study, prediction of later-age compressive strength of ultra-high strength concrete, based on the accelerated strength of concrete cured in hot water was investigated. Comparing other acceleration method, hot water curing method is relatively easy and intuitive to use in the real construction site. The amount of time for evaluation of the concrete strength using the hot water curing method in KS and JIS is too long to predict the strength of the ultra-high strength concrete that are used in the tall building structure. For that reason, curing temperature of 40, 50, 60℃ 3 levels were examined to shorten the amount of time for the evaluation of the strength. When curing in warm water, different strength characteristics are verified from the experiment. In case of F3 substituting 30% fly ash in combination, because of the curing temperature sensitivity of fly ash, differences of strength expression velocity was verified according to the curing temperature at the same age. In case of B4 substituting 40% ground granulated blast furnace slag, there were no big strength expression velocity differences of the specimen cured in 3 different level of curing temperature(40, 50, 60℃). The results show reliable accuracy by regression relation between 28day strength cured by standard curing method and accelerated strength of concrete cured in warm water.(y=1x-0.0002 R2=0.9866) As a result, the feasibility of 3day-prediction was confirmed using warm water curing method with accelerated strength of concrete cured for three days in warm water.
In case of general concrete, autogenous shrinkage is about 10% of the drying shrinkage. Therefore it was not considered significant to be a subject matter about managing the crack control and design. It was reported that cracks can be generated from the autogenous shrinkage. Because of the low W/B rate and the high unit binder of the high strength concrete. In this study, autogenous shrinkage and drying shrinkage are examined which is the main reason of the cracks of the high strength concrete based on the previous studies. Comparing the data from this study and previous studies, we developed the shrinkage reduced concrete using shrinkage reducing agent. The purpose of this study is to provide the data for reducing and managing the column shortening of the high strength concrete structures.
In this study, prediction of later-age compressive strength of ultra-high strength concrete, based on the accelerated strength of concrete cured in hot water was investigated. Comparing other acceleration method, hot water curing method is relatively easy and intuitive to use in the real construction site. The amount of time for evaluation of the concrete strength using the hot water curing method in KS and JIS is too long to predict the strength of the ultra-high strength concrete that are used in the tall building structure. For that reason, curing temperature of 40, 50, 60˚c 3 levels were examined to shorten the amount of time for the evaluation of the strength. As a result, the feasibility of the three days hot water curing method was confirmed.
Recently Ultra high strength concrete is actively being developed and studied, and this trend is explained with the following effects. Technological effects expected from the application of Ultra high strength concrete include the reduction of section, the decrease of structure mass and the improvement of workability. As for the reduction of section, the use of Ultra high strength concrete is effective for plane and height, and the effect is even higher when it is applied to high-rise buildings. The decrease of concrete mass resulting from high strength is advantageous for earthquake resistance, reduces the use of earthquake-resistant members, and brings resource substitution effects. In addition, forms can be removed early thanks to self-fillability and early expression of strength resulting from the high fluidity, and this increases construction efficiency and shortens construction period. Recently there is increasing interest and investment in high-rise buildings throughout the world, and countries are competing for higher buildings in order to display national status and technological power through high-rise buildings. In addition, the use of concrete materials in steel-frame building is increasing as residential buildings are growing higher. Currently the application of Ultra high strength concrete is limited to high-rise buildings and protective buildings for special purposes. However, its application is expected to expand to attain the effects of Ultra high strength concrete. For this purpose, we tested the field applicability of Ultra high strength concrete using simulated members. Mixture ratios derived from basic experiment were tested using reduced simulated members. Using the obtained results, the decrease of hydration heat and the increase of compression strength were compared and the optimal mixture ratio was selected. Concrete of the selected mixture ratio was produced at a ready-mixed concrete factory and placed at a construction site using a pump car. Through the experiment on field applicability, we presented basic materials on the construction-related and mechanical characteristics of Ultra high strength concrete.
본 연구에서는 단일강섬유와 하이브리드강섬유로 보강된 UHPC의 휨강도 및 연성을 평가하기 위해 세 개의 휨파괴형 보에 대한 4점 가력 실험을 수행하였다. 실험 결과 단일섬유로 보강된 UHPC보다 하이브리드 섬유로 보강된 UHPC가 강도 및 연성 모든 측면에서 더 우수한 구조성능을 보유한 것으로 나타났다. 설계시의 안전성에 대해 평가하기 위하여, K-UHPC 구조설계지침에서 제공하는 방법에 따라 실험 체의 강도와 연성을 평가해본 결과 현재의 재료모델은 강도에 대해서는 보수적으로 평가할 수 있으나 연성에 대해서는 과대평가하는 것으로 나타났다.
본 연구에서는 일반적으로 사용되는 직사각형 부재 대신 초고강도 콘크리트를 적용하여 비정형 형상으로 제작된 구조부재를 설계 하였다. 비정형 형상으로 부재를 실험체를 제작하기 위해 80-200MPa의 높은 압축강도, 10-20MPa 인장강도와 1.0-5.0%정도의 고인성인장변형률을 가진 초고강도 콘크리트를 사용하였다. 또한 정확한 비정형 형상을 제작하기 위해 비정형 거푸집 기술을 새롭게 고안하여 적용 검토하였다.
본 연구에서는 비정질강섬유의 혼입이 초고강도콘크리트의 폭렬특성에 미치는 영향이 실험적으로 검토되었다. 콘크리트는 압축강도 100과 150 MPa의 초고강도콘크리트가 사용되었다. 폴리프로필렌섬유는 0.15 vol%, 비정질강섬유는 0.3 및 0.5 vol%가 혼입되었다. 시험체는 콘크리트의 압축강도와 섬유혼입 조건에 따라 6수준이 제작되었고, ISO-834 가열곡선에 의해 가열되었다. 결과로써 폴리프로필렌섬유와 비정질강섬유가 혼입된 초고강도콘크리트의 폭렬제어에 있어서는 용융된 폴리프로필렌섬유가 형성하는 공극네트워크를 통해 수증기가 이동하는 효과가 지배적인 것으로 나타났다. 또한, 비정질강섬유 0.3v ol% 혼입률에서는 폭렬제어에 큰 영향을 미치지 않지만, 0.5 vol%의 비정질강섬유가 혼입될 경우에는 수증기가 이동할 수 있는 균열의 발생이 억제됨으로써 콘크리트 폭렬의 원인으로 지적되고 있는 수분막힘층(moisture clog)가 형성될 가능성이 높은 것을 확인할 수 있었다.
Effect of confining pressure on the shear strength of ultra-high-performance fiber-reinforced concrete (UHPFRCs) was investigated using a new shear test setup. Different confining pressures were applied and maintained to the specimens prior to shear testing. The shear strength of UHPFRCs was obviously sensitive to the confining pressure: the higher confining pressure produced higher shear strength. The confined shear strength could be expressed as a function of unconfined shear strength, confining pressure, and tensile strength.
In this research, new structural design and manufacturing method of atypical irregular UHPC structural members were newly introduced. The atypical irregular UHPC member was optimized to design from the conventional rectangular section and a method of nonuniform formwork system was newly created to manufacture the irregular member. The specimens were evaluated by analysis and the newly designed member was improved in bending performance by 2.6 times compared to conventional rectangular concrete beams.
The purpose of this study is determining the effects of flexural behavior of aramid fibers in ultra high performance concrete. The 10 kinds of aramid fibers with different length, diameter and twisting were used. The flexural behavior was determined by bending tests on specimens, which was prepared by mixing 1 % of volume fractions of aramid fibers into ultra high performance concrete mortar. Consequently, the load-displacement relationship curves were obtained by using the test results for each kinds of aramid. While the specimen that contains the small diameter of aramid fiber gives the strong flexural strength due to large contact area between the fiber and concrete matrix, that specimen by small diameter of aramid fiber does not guarantee the ductile behavior of specimen like the steel fiber. But the length and twisting of aramid fiber gives the ductile behavior of ultra high performance concrete flexural specimen.
The load-deflection curve and neutral axis changing curve, which were drawn by data from tests were analyzed. Both of steel fiber and reinforcing bar habe effect to induce the behavior of segmental U-shaped girder. The combination of 0.7% or 1.0% steel fiber and reinforcing bar sowed the effective ductle behavior of segmental U-shaped girder. The relationship of load-deflection and the crack pattern indicate that the appropriate combination are UFS1.0 and CFS1.0
After the application of the formuar for the reinforcement index to the behavior of the UHPFRC box girders, reinforcement index does not determine the characteristic of behavior of UHPFRC box girder exactly. So the index should consider the dimension precisely and reference value corresponding to the 0.005 strain of the prestressing strands.
It was studied structural design of nonuniform UHPC concrete structural members. UHPC concrete has the compressive strength of 120-200MPa, the tensile strength of 8-20MPa, and the tensile strain of 1.0-5.0%. There are two types of specimens of nonuniform members improved in bending and shear performances. The specimens were evaluated by beam load test induced by bending and shear failures.