• 제목/요약/키워드: Splitting Tensile Strength

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불포화 폴리에스터 수지를 이용한 고강도 폴리머 콘크리트의 역학적 특성 (Mechanical Properties of High Strength Polymer Concrete Using Unsaturated Polyester Resin)

  • 연규석;김관호;이필호;김동수;박윤제
    • 콘크리트학회지
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    • 제6권3호
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    • pp.131-141
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    • 1994
  • 이 연구는 불포화 폴리에스터 수지를 이용한 고강도 폴리머 콘크리트를 제조하여 구성재료와 첨가제의 변화에 따른 역학적 특성을 실험적으로 구명한 것이다. 그 결과 제조된 폴리머 콘크리트는 재령7일에서 압축강도$1,291~1,445kg/cm^2$, 할열인장강도 $106~145kg/cm^2$, 휨강도 $182~235kg/cm^2$를 발현하였으며, 이들에 대한 탄성계수 및 포아슨비를 구해 보았던 바 $2.8~3.8{\times}10^5\;kg/cm^2$, 0.21~0.32였고, 최대압축변형도는 0.005~0.0065로서 시멘트 콘크리트에 비해 매우 크게 나타났다.

Improving the brittle behavior of high-strength shielding concrete blended with lead oxide, bismuth oxide, and tungsten oxide nanoparticles against gamma ray

  • Mohamed Amin;Ahmad A. Hakamy;Abdullah M. Zeyad;Bassam A. Tayeh;Ibrahim Saad Agwa
    • Structural Engineering and Mechanics
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    • 제85권1호
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    • pp.29-53
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    • 2023
  • High-strength shielding concrete against gamma radiation is a priority for many medical and industrial facilities. This paper aimed to investigate the gamma-ray shielding properties of high-strength hematite concrete mixed with silica fume (SF) with nanoparticles of lead dioxide (PbO2), tungsten oxide (WO3), and bismuth oxide (Bi2O3). The effect of mixing steel fibres with the aforementioned binders was also investigated. The reference mixture was prepared for high-strength concrete (HSCC) containing 100% hematite coarse and fine aggregate. Thirteen mixtures containing 5% SF and nanoparticles of PbO2, WO3, and Bi2O3 (2%, 5%, and 7% of the cement mass, respectively) were prepared. Steel fibres were added at a volume ratio of 0.28% of the volume of concrete with 5% of nanoparticles. The slump test was conducted to workability of fresh concrete Unit weight water permeability, compressive strength, splitting tensile strength, flexural strength, and modulus of elasticity tests were conducted to assess concrete's engineering properties at 28 days. Gamma-ray radiation of 137Cs emits photons with an energy of 662 keV, and that of 60Co emits two photons with energies of 1173 and 1332 keV were applied on concrete specimens to assess radiation shielding properties. Nanoparticles partially replacing cement reduced slump in workability of fresh concrete. The compressive strength of mixtures, including nanoparticles was shown to be greater, achieving 94.5 MPa for the mixture consisting of 7.5 PbO2. In contrast, the mixture (5PbO2-F) containing steel fibres achieved the highest values for splitting tensile, flexural strength, and modulus of elasticity (11.71, 15.97, and 42,840 MPa, respectively). High-strength shielded concrete (7.5PbO2) showed the best radiation protection. It also showed the minimum concrete thickness required to prevent the transmission of radiation.

층간 보강재로 보강한 3D 프린팅 콘크리트의 강도 특성 (Strength Characteristics in 3D-printed Concrete with Interlayer Reinforcements)

  • 이정우;박지훈;부이광테;조창빈;양인환
    • 한국건설순환자원학회논문집
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    • 제9권3호
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    • pp.338-347
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    • 2021
  • 본 논문은 층간 보강재를 보강한 3D 프린팅 콘크리트의 부착강도를 평가하기 위해 수행되었다. 겹침이음 길이에 따라 두 종류의 층간 보강 방법을 고려하였다. 첫 번째 방법은 층간 보강재의 겹침이음을 하지 않았으며, 두 번째 방법은 40mm의 겹침이음을 고려하였다. 또한, 기건양생 조건과 수중양생 조건의 서로 다른 양생 조건을 고려하였다. 실험 변수를 고려하여 3D 프린팅 콘크리트 시편의 압축강도, 쪼갬인장강도 및 휨인장강도를 세가지 하중 방향에서 측정하였다. 압축강도, 쪼갬인장강도 및 휨인장 강도는 하중방향에 영향을 받았다. 특히 3D 프린팅으로 제작한 콘크리트 시편의 층간 부착면에 인장력이 작용하면 쪼갬인장강도 및 휨인장강도가 크게 감소하였다. 그러나 층간 보강재가 보강된 층의 종방향으로 하중이 가해질 때, 프린팅된 시편의 휨인장강도 또는 부착강도는 크게 증가하였다. 또한 기건양생 조건의 휨인장강도 또는 부착강도는 감소하였으며, 기건 양생 조건에 의해 더 많은 공극의 형성을 유발하여 하중에 더 취약해지는 것으로 나타났다.

Predicting the splitting tensile strength of manufactured-sand concrete containing stone nano-powder through advanced machine learning techniques

  • Manish Kewalramani;Hanan Samadi;Adil Hussein Mohammed;Arsalan Mahmoodzadeh;Ibrahim Albaijan;Hawkar Hashim Ibrahim;Saleh Alsulamy
    • Advances in nano research
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    • 제16권4호
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    • pp.375-394
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    • 2024
  • The extensive utilization of concrete has given rise to environmental concerns, specifically concerning the depletion of river sand. To address this issue, waste deposits can provide manufactured-sand (MS) as a substitute for river sand. The objective of this study is to explore the application of machine learning techniques to facilitate the production of manufactured-sand concrete (MSC) containing stone nano-powder through estimating the splitting tensile strength (STS) containing compressive strength of cement (CSC), tensile strength of cement (TSC), curing age (CA), maximum size of the crushed stone (Dmax), stone nano-powder content (SNC), fineness modulus of sand (FMS), water to cement ratio (W/C), sand ratio (SR), and slump (S). To achieve this goal, a total of 310 data points, encompassing nine influential factors affecting the mechanical properties of MSC, are collected through laboratory tests. Subsequently, the gathered dataset is divided into two subsets, one for training and the other for testing; comprising 90% (280 samples) and 10% (30 samples) of the total data, respectively. By employing the generated dataset, novel models were developed for evaluating the STS of MSC in relation to the nine input features. The analysis results revealed significant correlations between the CSC and the curing age CA with STS. Moreover, when delving into sensitivity analysis using an empirical model, it becomes apparent that parameters such as the FMS and the W/C exert minimal influence on the STS. We employed various loss functions to gauge the effectiveness and precision of our methodologies. Impressively, the outcomes of our devised models exhibited commendable accuracy and reliability, with all models displaying an R-squared value surpassing 0.75 and loss function values approaching insignificance. To further refine the estimation of STS for engineering endeavors, we also developed a user-friendly graphical interface for our machine learning models. These proposed models present a practical alternative to laborious, expensive, and complex laboratory techniques, thereby simplifying the production of mortar specimens.

고로슬래그 분말을 혼화재로 사용한 고강도콘크리트의 기초적 성질에 대한 연구 (A Study on the Fundamental Properties of High-Strength Concrete Using Ground Granulated Blast-Furnace Slag as an Admixture)

  • 문한영;최연왕;문대중;송용규
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1995년도 봄 학술발표회 논문집
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    • pp.30-35
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    • 1995
  • This paper presents fundamental experiment for the properties of high performance concrete in its fresh and hardened state made with ground granulated blast-furnace (GGBF) slag. The result is that the effect of decreasing xoncrete temperature is to the mixing ratio of GGBF slag, but it presents disadvantage in the slump loss phase. In addition to, we know that the splitting tensile strength, compressive strength and elastic modulus of concrete mixed with high fineness GGBF slag are increased at age 28days.

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Fresh and hardened properties of expansive concrete utilizing waste aluminum lathe

  • Yasin Onuralp Ozkilic;Ozer Zeybek;Ali Ihsan Celik;Essam Althaqafi;Md Azree Othuman Mydin;Anmar Dulaimi;Memduh Karalar;P. Jagadesh
    • Steel and Composite Structures
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    • 제50권5호
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    • pp.595-608
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    • 2024
  • In this study, aluminum lathe waste was used by replacing aggregates in certain proportions in order to obtain expansive concrete using recycled materials. For this reason, five different aluminum wastes of 1%, 2%, 3%, 4% and 5% were selected and also reference without aluminum waste was produced. Based on the mechanical tests conducted, which included slump, compression, splitting tensile, and flexural tests, it was evident that the workability of the material declined dramatically once the volume ratio of aluminum exceeded 2%. As determined by the compressive strength test (CST), the CS of concrete (1% aluminum lathe wastes replaced with aggregate) was 11% reducer than that of reference concrete. It was noted that the reference concrete's CS values, which did not include aluminum waste, were greater than those of the concrete that contained 5% aluminum. When comparing for splitting tensile strength (STS), it was observed that the results of STS generally follow the parallel inclination as the CS. The reduction in these strengths when 1% aluminum is utilized is less than 10%. These ratios modified 18% when flexural strength (FS) is considered. Therefore, 1% of aluminum waste is recommended to obtain expansive concrete with recycled materials considering minimum loss of strength. Moreover, Scanning Electron Microscope (SEM) analysis was performed and the results also confirm that there was expansion in the aluminum added concrete. The presence of pores throughout the concrete leads to the formation of gaps, resulting in its expansion. Additionally, for practical applications, basic equations were developed to forecast the CS, STS, and FS of the concrete with aluminum lathe waste using the data already available in the literature and the findings of the current study. In conclusion, this study establishes that aluminum lathe wastes are suitable, readily available in significant quantities, locally sourced eco-materials, cost-effective, and might be selected for construction using concrete, striking a balance among financially and ecological considerations.

강섬유 보강 콘크리트와 GFRP 보강근의 부착특성에 관한 실험적 연구 (Experimental Study on the Bond Properties between GFRP Reinforcements and Steel Fiber Reinforced Concrete)

  • 최윤철
    • 콘크리트학회논문집
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    • 제25권5호
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    • pp.573-581
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    • 2013
  • 이 논문은 강섬유보강콘크리트와 GFRP (glass fiber reinforced polymer)사이의 부착 특성을 조사하기 위한 실험적 연구를 수행하였다. 실험 주요 변수로는 보강근 지름, 섬유혼입량, 피복두께 및 콘크리트의 압축강도를 설정하였다. 부착파괴는 주로 콘크리트 피복에서의 쪼갬으로 인하여 유발되며, 이러한 콘크리트의 쪼갬파괴는 보강근과 콘크리트 사이의 변형 차이로 유발되는 인장력때문에 발생한다. 따라서, 보강근과 콘크리트 사이의 부착파괴를 방지하기 위하여, 콘크리트 피복부위의 인장강도를 향상시켜야 한다. 실험결과를 살펴보면, 섬유혼입량 증가는 부착강도를 크게 향상시키고 있으며, 피복두께는 최종 파괴모드를 변화시킴을 확인할 수 있었다. 보강근의 지름 또한 최종 파괴모드를 변화시킴을 확인할 수 있었다. 일반적으로 보강근의 지름은 부착특성에 영향을 미치는 것으로 알려져 있으나, 섬유혼입량은 부착특성에 큰 영향이 없는 것으로 알려져 있다. 콘크리트 압축강도의 증가는 보강근과 콘크리트 사이의 부착강도를 증가시켰으며, 이는 압축강도의 증가가 직접적으로 인장강도의 증가를 유발하기 때문이라고 판단된다.

Performance of aerated lightweighted concrete using aluminum lathe and pumice under elevated temperature

  • Mohammad Alharthai;Yasin Onuralp Ozkilic;Memduh Karalar;Md Azree Othuman Mydin;Nebi Ozdoner;Ali Ihsan Celik
    • Steel and Composite Structures
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    • 제51권3호
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    • pp.271-288
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    • 2024
  • The primary objective of this study is to investigate the production and performance characteristics of structural concrete incorporating varying proportions (0%, 25%, and 50% by volume) of pumice stone, as well as aluminum lathe as an additive at 0%, 1%, 2%, and 3%, under fire conditions. The experiment will be conducted over a period of up to 1 hour, at temperatures ranging from 24℃, 200℃, 400℃ and 600℃. For the purpose of this, a total of twelve test samples were manufactured, and then tests of compressive strength (CS), splitting tensile strength (STS), and flexural strength (FS) were performed on these samples.Next, a comparison was made between the obtained values and the influence of temperature. To achieve this objective, the manufactured samples were placed at temperatures of 200℃, 400℃, and 600℃ for a duration of 1 hour, and were subjected to the influence of temperature.These values at 24 ℃ were then contrasted with the CS results obtained from test samples that were subjected to the temperature effect for an hour at 200 ℃, 400 ℃, and 600 ℃. A comprehensive analysis of the test outcomes reveals that the incorporation of aluminum lathe wastes into a mixture results in a significant reduction in the compressive strength of the concrete. As a result of this adjustment, the CS values dropped by 32.93%, 45.70%, and 52.07%, respectively. Furthermore, It was shown that testing the ratios of pumice stone alone resulted in a decrease in CS outcomes. Additionally, it was found that the presence of higher temperatures is clearly the primary factor contributing to the decrease in the strength of concrete. Due to elevated temperatures, the CS values decreased by 19.88%, 28.27%, and 38.61% respectively.After this investigation, an equation that explains the connection between CS and STS was provided through the utilization of the data of the experiments that were carried out.

강섬유 계수 및 혼입률을 고려한 SFRC의 강도 및 변형 특성 (Characteristic Strength and Deformation of SFRC Considering Steel Fiber Factor and Volume fraction)

  • 이현호;이화진
    • 콘크리트학회논문집
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    • 제16권6호
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    • pp.759-766
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    • 2004
  • 강섬유(steel fiber) 보강은 전단 강도와 같은 콘크리트 구조 부재의 많은 공학적 특성들을 현저히 향상시킨다. 본 연구는 구조 부재로의 실용적 사용을 위해 강섬유의 형상, 형상비, 혼입률, 강섬유 계수를 강도 특성 및 변형 특성의 수준으로 평가하였다. 기존 연구 및 본 연구의 재료 시험 결과들을 평가한 결과, 양단고리형 및 최대골재치수의 1.5배 이상되는 길이의 강섬유의 강도 보강효과가 우수한 것으로 판단된다. 또한 강도 및 변형 능력에 대한 상세 시험결과로부터, 형상비 75, 혼입률 $1.5\%$가 적절한 것으로 판단된다. 결론적으로 재료 성능 시험 결과들을 통계적로부터 추정한 결과, 강섬유 계수, 할렬인장강도, 휨강도가 SFRC의 주요한 특성인자로 판단된다.

콘크리트 파괴거동특성에 대한 실험적 연구II-직접인장시험 (Experimental Study on Failure Behavior of Plain Concrete - Direct Tension Test)

  • 이상근;이상민;이화미;한상훈;송영철
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2003년도 봄 학술발표회 논문집
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    • pp.287-292
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    • 2003
  • The large-scale direct tension tests of plain concrete were performed and then the complete load-CMOD(crack mouth opening displacement) curves with a stable postpeak descending part were presented. Two independently controlled actuators were used to ensure a homogeneous increasing of CMOD in both notches of a specimen and to avoid secondary flexural stresses. It was compared the fracture energies from the test results with them from a classical prediction equation by Bazant and Oh (983), The results are indicated that the fracture energies from these large-scale direct tensile tests are large as 1.5-2 times on average against them from the Bazants prediction equation. But the tensile strength for large-size specimens was about half of the values determined from the splitting tensile strength tests for 10 by 20mm cylindrical specimens due to size effect.

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