• Title/Summary/Keyword: early strength cement

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Analysis of Crack Pattern of Very-Early Strength Latex-Modified Concrete (초속경 라텍스개질 콘크리트의 균열발생 특징분석)

  • Lee, Bong-Hak;Choi, Pan-GiI
    • Journal of Industrial Technology
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    • v.27 no.A
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    • pp.103-110
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    • 2007
  • Concrete is a material that will crack during its service life by its very nature. For bridge decks this is especially significant as these cracks allow accelerated ingress of chlorides and the subsequent corrosion of the reinforcing steel and deck deterioration. Very-early strength latex-modified concrete (below ; VES-LMC) was developed in order to realize early-opening-to-traffic bridge deck concrete. Although there has been little research to document the degree of cracking in VES-LMC overlay, there has been a general perception among highway agencies that overlay cracking of VES-LMC, particularly early-age cracking, is a one of problems which should be solved. The purpose of this study was to analyze the cause of map, transverse and longitudinal cracking in VES-LMC and to provide a control methods for minimizing the occurrence of cracks. The proposed prevention against map and transverse cracking was verified by field applications. VES cement was modified, the unit cement contents was reduced into $360kg/m^3$ from $390kg/m^3$, the maximum size of coarse aggregate was increase into 19mm from 13mm, wire mesh and steel fibers were incorporated in concrete mixture.

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Early-Age Compressive Strength of Magnesia-Phosphate Composite with Phosphate Type (인산염 종류에 따른 마그네시아-인산염 복합체의 초기 압축강도 특성)

  • Lee, Kyung-Ho;Yang, Keun-Hyeok
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2016.05a
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    • pp.185-186
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    • 2016
  • Four mortar mixes tested to evaluate the early-age compressive strength of magnesia-phosphate composite with phosphate type. Monopotassium phosphate, dipotassium phosphate, ammonium dihydrogen phosphate and diammonium phosphate used as phosphate. Test results show that the compressive strength of mortar used monopotassium phosphate as phosphate was highest, while compressive strength of mortars used dipotassium phosphate and diammonium phosphate as phosphate were not developed.

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Fundamental Properties of Mortar Using Rapid-Setting Cement (초속경시멘트를 혼입한 모르타르의 기초물성평가)

  • Kim, Seong-Soo;Jung, Ho-Seop;Park, Kwang-Pil;Koh, Joon-Ho;Jeon, Chan-Ki;Jeon, Joong-Kyu
    • Proceedings of the Korea Concrete Institute Conference
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    • 2006.05b
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    • pp.589-592
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    • 2006
  • The growth in concrete structure repair has prompted major efforts to develop high early strength concrete. So, we were examined fundamental properties of cement mortar using the ordinary portland cement with rapid-setting cement. The experiments were carried out to investigate the characteristics of rapid-setting cement according to the blended ratio. The containing ratio of rapid-setting cement were changed five steps (20, 30, 50, 70, 100%) and then the flow value, setting time, compressive and bond strength test of cement mortar with RSC were investigated in this study.

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Effects of Cement Fineness Modulus (CFM) on the Fundamental Properties of Concrete (시멘트 입도계수(CFM)가 콘크리트의 기초적 특성에 미치는 영향)

  • Noh, Sang-Kyun;Han, Cheon-Goo
    • Journal of the Korea Institute of Building Construction
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    • v.12 no.3
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    • pp.284-290
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    • 2012
  • Cement Fineness Modulus (CFM) is a method of expressing the distribution of particle sizes of cement in numeric form. If CFM is controlled through crush process of cement without modifying the chemical components or mineral composition of cement, it is judged to be able to produce a cement satisfying various requirements because it is estimated to enable various approaches to cement such as high early strength, moderate heat, low heat cement and so on. Therefore, in this study, as basic research for manufacturing special cement utilizing the controls of CFM, the intention was to review the impacts of CFM on the fundamental properties of concrete. To summarize the result, as mixture characteristics of fresh concrete, ratio of small aggregate and unit quantity were gradually increased, securing greater fluidity, with an increase in CFM, while the amount of AE and SP were reduced gradually. In addition, setting time was delayed as CFM increased. Furthermore, compression strength was relatively high during initial aging as CFM became smaller, but as time passed, compression strength became smaller, and it showed the same level of strength as aging time passed about three years.

A Study on the Effect of strength improvement and $CO_2$ reduction by using Eco-concrete in construction site (에코콘크리트 현장 적용에 따른 강도 상승 효과 및 이산화탄소 절감 효과에 관한 연구)

  • Kim, Jeong-Jin;Hwang, Yin-Seong;Lee, Sang-Hyun;We, Joon-Woo
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.6 no.1
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    • pp.80-87
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    • 2011
  • Blast furnance slag cement is a cement manufactured with using industrial by-product and it can reduce $CO_2$ by replacing cement when same uit volume concrete is produced. But Blast furnance slag has a short point that early strength of concrete is not good in winter season and it can be used. So, in this study, as long as replacement ratio of Blast furnance slag to original portland cement is under 30%, developed cement, ecoment, improve early strength of concrete and it applied to constructoin site. As a result, it improves 37% in terms of 1-day strength, it reduces 6.7% in terms of $CO_2$ emission when $1m^3$ concrete was produced. The importance and applicability of study wll be expected to increase cosidering global effort and green growth-strategy in country for reducing greenhouse gases.

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Loss of strength in asbestos-cement water pipes due to leaching

  • Gil, Lluis;Perez, Marco A.;Bernat, Ernest;Cruz, Juan J.
    • Structural Engineering and Mechanics
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    • v.40 no.5
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    • pp.655-663
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    • 2011
  • Asbestos-cement is a material with valuable strength and durability. It was extensively used for water distribution pipes across the world from the 1950s until the early 1980s. The network of pipes in this case study dates from the 1970s, and after more than 30 to 40 years of service, some pipes have been found to break under common service pressure with no apparent reason. A set of mechanical tests was performed including bending, compression, pressure and crushing tests. Microscopy analysis was also used to understand the material behaviour. Tests showed that there was a clear loss of strength in the pipes and that the safety factor was under the established threshold in most of the specimens. Microscopy results showed morphological damage to the pipes. The loss of strength was attributed to a leaching effect. Leaching damages the cement matrix and reduces the frictional interfacial shear stress.

The Effects of Fine Particle Cement on the Quality of Fly Ash Concrete (플라이애시 사용 콘크리트의 품질에 미치는 미분시멘트의 영향)

  • Lee, Joung-Ah;Joeon, Kyu-Nam;Baek, Dae-Hyun;Park, Jong-Ho;Han, Min-Cheol;Han, Cheon-Goo
    • Proceedings of the Korean Institute of Building Construction Conference
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    • 2009.05b
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    • pp.113-117
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    • 2009
  • Fly ash (called FA hereafter) that results from thermal power plants is a long-term strength improving substance with reactivity to pozzolan and has been used for long. However, large amount of FA shows many advantages such as reduction of hydratio energy, long-term improvement in strength and economic feasibility and also has difficulties from reduction in initial strength and durability. In a preceding study, fine particle cement was applied to test the effects on initial strength. Therefore in this study, the effects of fine particle cement on the quality of FA concrete were reviewed. The results can be summarized as follows. Liquidity was increased by the most at FC substitution ratio of 15%. Air capacity was reduced according to increasing substitution ratio of FA and FC. Compressive strength showed high strength expression at all ages when FC was substituted at 45%. Synthesizing the above results, appropriate mixing of FC in FA concrete can improve liquidity, reduce unit quantity and show improvement in strength. In particular, mixed use of FC seems effective in improving early quality of concrete.

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Minimum Curing Time Prediction of Early Age Concrete to Prevent Frost Damage (동해방지를 위한 초기재령 콘크리트의 최소 양생 시간 예측)

  • Pae, Su-Won;Yi, Seong-Tae;Kim, Jin-Keun
    • Journal of the Korea Concrete Institute
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    • v.19 no.1
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    • pp.27-37
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    • 2007
  • The purpose of this study is to propose a method to predict the minimum curing time of early age concrete required to prevent frost damage. Tests were performed to examine major factors, which affect the compressive strength of concrete frozen at early ages and investigate the source of frost damage at early age concrete. The results from the tests showed that the loss rate of compressive strength decreases as the beginning time of frost damage was delayed and water-cement ratio was lower. In addition, the test results also showed that concrete made with type III cement was less susceptible to frost damage than concrete made with ordinary Portland cement and frost damage occurred through the formation of ice lenses. When early age concrete is being damaged by frozen, a phase transition into ice of free water presented at the capillary pores of the concrete gives a reason for the decrease of compressive strength. Accordingly, the frost resistance of fresh concrete can be determined based on the saturation degree of the capillary pores. The method to predict the minimum curing time was suggested using the concept of critical saturation degree of the capillary pores.

Influence of silpozz and rice husk ash on enhancement of concrete strength

  • Panda, K.C.;Prusty, S.D.
    • Advances in concrete construction
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    • v.3 no.3
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    • pp.203-221
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    • 2015
  • This paper presents the results of a study undertaken to investigate the enhancement of concrete strength using Silpozz and Rice Husk Ash (RHA). The total percentage of supplementary cementitious material (SCM) substituted in this study was 20%. Six different concrete mixes were prepared such as without replacement of cement with silpozz and RHA (0% silpozz and 0% RHA) is treated as conventional concrete, whereas in other five concrete mixes cement was replaced by 20% of silpozz and RHA as (0% silpozz and 20% RHA), (5% silpozz and 15% RHA), (10% silpozz and 10% RHA), (15% silpozz and 5% RHA) and (20% silpozz and 0% RHA) with decreasing water-binder (w/b) ratio i.e. 0.375, 0.325 and 0.275 and increasing super plasticiser dose. New generation polycarboxylate base water reducing admixture i.e., Cera Hyperplast XR-W40 was used in this study. The results of this research indicate that as w/b decreases, super plasticiser dose need to be increased so as to increase the workability of concrete. The effects of replacing cement by silpozz and RHA on the compressive strength, split tensile strength and flexural strength were evaluated. The concrete mixture with different combination of silpozz and RHA gives higher strength as compared to control specimen for all w/b ratios and also observed that the early age strength of concrete is more as compared to the later age strength. It is also observed that the strength enhancement of concrete mixture prepared with the combination of cement, silpozz and RHA is higher as compared to the concrete mixture prepared with cement and silpozz or cement and RHA.

Strength Development of Concrete Using Blast-Furnace Slag Cement under Various Curing Temperatures (양생온도변화에 따른 고로슬래그 시멘트를 사용한 콘크리트의 강도증진 성상)

  • 윤기원;유호범;한민철;한천구
    • Proceedings of the Korea Concrete Institute Conference
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    • 1999.10a
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    • pp.163-166
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    • 1999
  • In this paper, strength development of concrete using blast-furnace slag cement(BSC) and ordinary portland cement(OPC) are discussed under varius W/C and curing temperatures. According to the experimental results, strength development of BSC concrete is lower than that of OPC concrete in low temperature at early age and maturity. In high curing temperature, BSC concrete has higher strength development than that of low temperature regardless of the elapse of age and maturity. BSC has much effect on the strength development of concrete at the condition of mass concrete, hot weather concreting and the concrete products with the steam curing, which is influenced by high temperature.

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