• Title/Summary/Keyword: OPC replacement

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Concrete physical properties with substitution ratio of recycled Coarse aggregate and recycled fine aggregate (순환굵은골재와 순환잔골재 치환율에 따른 콘크리트의 물리적 특성에 관한 연구)

  • Yoon, Seung-Joe;Seo, Soo-Yeon;Lee, Woo-Jin;Kim, Dae-Young
    • Proceedings of the Korea Concrete Institute Conference
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    • 2006.05b
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    • pp.161-164
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    • 2006
  • The main objective of this study was to evaluated the physical properties of concrete with substitution ratio of recycled fine aggregate and recycled coarse aggregate made of waste concrete. The replacement ratios of recycled coarse and fine aggregate decided 0%, 30%, 40% and 50% respectively to get the deregulate of floor space Index. The test result showed that compression strength of cylinder mold decrease with the substitution ratio increase but its strength of replaced recycled fine aggregate higher than OPC.

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Effect of elevated temperature on physico-mechanical properties of metakaolin blended cement mortar

  • Morsy, M.S.;Rashad, A.M.;El-Nouhy, H.A.
    • Structural Engineering and Mechanics
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    • v.31 no.1
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    • pp.1-10
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    • 2009
  • An experimental investigation was conducted to evaluate the performance of mortars with and without Metakaolin (MK) exposed to elevated temperatures $200^{\circ}C$, $400^{\circ}C$, $600^{\circ}C$ and $800^{\circ}C$ for two hours. The binder to sand ratio was kept constant (1:5.23). The ordinary Portland cement (OPC) was replaced with MK at 0%, 5%, 10% 20% and 30%. All mixtures were designed to have a flow of $94{\pm}5%$. The compressive strength of mortars before and after exposure to elevated temperature was determined. The formation of various decomposition phases were identified using X-ray diffractometry (XRD) and differential thermal analysis (DTA). The microstructure of the mortars was examined using scanning electron microscope (SEM). Test results indicated that MK improves the compressive strength before and after exposure to elevated temperature and that the 20% cement replacement of MK is the optimum percentage.

Utilization of waste fine tailing as cement mineral admixture (폐광미 미립분의 시멘트 혼화재로의 활용)

  • An, Yang-Jin;Yu, Seung-Wan;Mun, Kyoung-Ju;Park, Won-Chun;Soh, Yang-Seob
    • Proceedings of the Korea Concrete Institute Conference
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    • 2005.05b
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    • pp.381-384
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    • 2005
  • The purpose of this study reutilization of waste fine tailing (FT) as admixture for cement and concrete. Various admixtures were made of Fine tailings and 2 Types of OPC, fly-ash and blast furnace slag. Cement mortars and concrete with FT are tested for fluidity and compressive strength. Also, the hydration reactivity of cement mortar with FT was examined by XRD and SEM morphology analysis. This work showed that the waste fine tailing could be effectively utilized as replacement materials of cement without any decrease in the strength if we can control the blaine of materials like cement, blast furnace slag and fly ash.

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Effect on the corrosion of steel by unburnt carbon in fly ash cement mortar (미연탄소분이 플라이 애시 시멘트 모르타르내 철근의 부식에 미치는 영향)

  • Ha, Tae-Hyun;Bae, Jeong-Hyo;Lee, Hyun-Goo;Kim, Dae-Kyeong;Ha, Yoon-Cheol
    • Proceedings of the KIEE Conference
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    • 2006.07c
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    • pp.1416-1417
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    • 2006
  • The increase of carbon contents in fly ashes accelerate the corrosion of steel embedded in ordinary portland cement mortar. Cement losses its identity of colour, when the % of carbon is increased. More than 60[%] area was rusted, when carbon content is increased beyond 8[%] for the exposure period of one year. Comparable corrosion rate with OPC was obtained up to 6[%] carbon level only. The tolerable limit of replacement for various admixed carbon system under aggressive alternate wetting and drying condition with 3[%] NaCl was found to be 6 to 8[%].

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A Study on the Basic Properties of Cement Mortar Using Limestone Powder (석회석 미분말을 사용한 시멘트 모르타르의 기초특성에 관한 연구)

  • Kang, In-Gyu;La, Jung-Min;Kim, Jin-Man
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2022.04a
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    • pp.19-20
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    • 2022
  • Portland Limestone Cement (PLC) is a blended cement using limestone powder as SCMs (Supplementary Cementitious Materials), and is currently regarded as an essential means for achieving carbon neutral in the cement industry. This study was performed to investigate the fresh and hardened properties of cement mortar according to the fineness and replacement ratio of limestone powder. As a result, the compressive strength of mortar used high blaine limestone powder were equivalent level of that of OPC.

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Changes in Cement Hydrate Characteristics and Chloride Diffusivity in High Performance Concrete with Ages (재령에 따른 고성능 콘크리트의 수화 특성치와 염화물 확산성 변화)

  • Koh, Tae-Ho;Kwon, Seung-Jun
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.23 no.6
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    • pp.9-17
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    • 2019
  • Cement hydrates and the related characteristics change with ages, and the behaviors are much related with chloride diffusion. In this work, 30% replacement ratio with FA(Fly Ash) and GGBFS(Ground Granulated Blast Furnace Slag) are considered for concrete with three levels of W/B (Water to Binder ratio) and 2 years of curing period. Chloride diffusion coefficients from accelerated condition are obtained at 5 measurement period (28days, 56days, 180days, 365days, and 730days), and the results are compared with porosity, binding capacity, and permeability from program-DUCOM. The similar changing pattern between chloride diffusion and permeability is observed since permeability is proportional to the square of porosity. Curing period is grouped into 4 periods and the changing ratios are investigated. Cement hydrate characteristics such as porosity, permeability, and diffusion coefficient are dominantly changed at the early ages (28~56 days), and diffusion coefficient in OPC concrete with low W/B continuously changes to 180days.

Effect of Partial Replacement of Water with Photosynthetic Bacteria on the Level of CO2 Absorption in Mortar (광합성균을 혼입한 시멘트 모르타르의 CO2 흡수성능에 관한 기초적 연구)

  • Joung, Jae-Ho;Lee, Gun-Cheol;Yoon, Seung-Joe;Joe, Jae-Heung;Choi, Jung-Gu
    • Journal of the Korea Institute of Building Construction
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    • v.15 no.1
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    • pp.17-23
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    • 2015
  • In this research, the $CO_2$ absorption performance of mortar was investigated. The level of $CO_2$ absorption in mortar with various binders including cement and nonsintered cement was examined. As a result for the mortar with photosynthetic bacteria, the compressive strength was similar to the one without the bacteria at early age but decreased at the age of 28 days. However, for the $CO_2$ absorption, with photosynthetic, the performance of the mortar with OPC, and nonsintered cement deceased to 21%(234 ppm) and 19.7%(243 ppm) respectively after 12 hours age.

Durability assessment of self-compacting concrete with fly ash

  • Deilami, Sahar;Aslani, Farhad;Elchalakani, Mohamed
    • Computers and Concrete
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    • v.19 no.5
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    • pp.489-499
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    • 2017
  • Self-Compacting Concrete (SCC) is a new technology capable to flow without segregation or any addition of energy which leads to efficient construction and cost savings. In this study, the effect of replacing the Ordinary Portland Cement (OPC) with Fly Ash (FA) on the strength, durability of the concrete was investigated experimentally, and carbon footprint and cost were also assessed. Four different replacement FA ratios (0%, 20%, 40% and 60%) were used to create four SCC mixes. Standard test methods were used to determine the workability, strength, and durability of the SCC mixes including resist chloride ion penetration, water permeability, water absorption, and initial surface absorption. The axial cube compressive strength tests were performed on the SCC mixes at 1, 7, 14, 28 and 35 days. Replacing the OPC with FA had a significant positive impact on chloride iron penetration resistance and water absorption but had a considerable negative impact on the compressive strength. The SCC mix with 60% FA had 36.7% and 15.8% enhancement in the resistance to chloride ion penetration and water absorption, respectively. Evaluation of the carbon footprint and the cost of each SCC mixes showed the $CO_2$ emissions mixes 1, 2, 3 and 4 were significantly reduced by increasing the FA content from 0% to 60%. Compared with the control mix, the cost of all mixes increased when the FA content increased, but no significant differences were seen between the estimated costs of all four mixes.

Engineering Characteristics Analysis of High Strength Concrete Followed in replacement ratio increase in Blast Furnace Slag (고로슬래그 미분말의 치환율 증가에 따른 고강도 콘크리트의 공학적 특성 분석)

  • Han, Cheon-Goo;Kim, Seoung Hwan;Son, Ho-Jung
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.4 no.3
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    • pp.62-68
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    • 2009
  • This research examined engineering properties of high performance concrete, when substitution rate of BS increases. A summary of the test result is as follows. The fluidity of unset concrete increases as the substitution rate of BS increases. The amount of air is reduced more or less, but it seems that enough amount of air can be secured by using more air-entraining agent. Setting time is dramatically delayed as the substitution rate of BS increases. The compressive strength of hardening concrete was weaker than OPC before 28 days passes, due to latent hydraulic property of BS. However, after 28 days, it shows same or better property, which is exceptional for the practical uses of hyper strength concrete. Changes in drying shrinkage rate is quite much, because when hydration happens, the amount of free water in concrete increased as W/B gets larger. The amount of drying shrinkage increases as BS substitution rate increases, but every composition shows less than $-500{\times}10^{-6}$, which is relatively fine.

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Strength Properties of High-Strength Concrete Piles Using an Industrial by-Product (산업부산물을 치환한 고강도 콘크리트 말뚝의 강도 특성)

  • Shin, Kyoung-Su;Lim, Byung-Hoon;Hwang, Sun-Kyung
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.24 no.6
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    • pp.85-91
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    • 2020
  • The necessity for ground reinforcement of structures has been increasing in South Korea because buildings have encountered constructional problems such as inclined structures and collapses caused by earthquakes or differential settlement of the foundations. With regard to a ground reinforcement method, an increasing number of high-strength concrete piles have been used based on their advantages, including a wide range of penetration depth and a high load-bearing capacity. However, problems such as the destruction of a pile head during on-site placement work can occur when the pile has insufficient strength. For this reason, the strength of such piles should be managed more thoroughly. Thus, this study analyzed the strength properties of high-strength concrete piles using blast furnace slag (BFS) powder as a cement replacement, which was generated as an industrial byproduct. The analysis results indicated that the compression strength of the concrete piles increased when 10% to 20% of the cement was replaced with ground granulated blast-furnace slag (GGBS). In addition, the compression strength of the concrete piles was calculated to be 80.6 MPa when 20% of the cement was replaced with GGBS, which was greater by 5% than that of an ordinary Portland cement (OPC) specimen.