The study is compressive strength of 110MPa PHC pile using ground granulated blast furnace slag to NAC, AC curing method. In the result, 20% of ground granulated blast furnace slag could be substituted for cement in PHC pile concrete.
In experimental results, the prediction equation for 28 day-strength of GGBF slag concrete could be produced through the linear regression analysis of early strength and 28 day-strength. In order to acquire the reliability, all mixture were repeated as 3 times and each mixture order was carried out by random sampling. The prediction equation for 28 day-strength of GGBF slag concrete by 1 day strength won the good reliability.
본 연구는 혼합 활성화제에 의한 알칼리 활성화 슬래그 시멘트(AASC)의 역학적 특성에 관한 연구이다. 사용된 활성화제는 황산칼슘(CaSO4, 이하 CS), 황산나트륨(Na2SO4, 이하 SS) 및 수산화나트륨(NaOH)이다. 황산염은 슬래그 중량의 2.5, 5.0, 7.5 및 10.0%로 치환하여 사용하였으며, NaOH는 2M 및 4M 농도의 수용액으로 사용하였다. 본 연구에서는 황산염(CS 및 SS) 치환율에 따른 배합(4가지 배합)과 2M 및 4M의 각각의 NaOH 수용액에 치환된 황산염을 혼합하여 시험체를 제작하였다. 시험체는 총 24가지의 배합에 따라 페이스트로 제작되었으며, 물-결합재 비는 0.5로 하였다. 경화된 시험체에 대해서 압축강도, 휨강도, 초음파속도(UPV), 흡수율 및 XRD 분석을 수행하였다. CS의 활성화제를 사용한 경우는 7.5% CS 치환율, 2M NaOH 수용액+ 5.0% CS 치환율 및 4M NaOH 수용액+ 5.0% CS 치환율의 시험체에서 최고의 압축강도를 나타내었다. 또한, SS의 활성화제를 사용한 경우는 10.0% SS 치환율, 2M NaOH + 7.5% SS 치환율 및 4M NaOH + 2.5% SS 치환율에서 최고의 압축강도 발현을 나타내었다. 휨강도, UPV 및 흡수율은 압축강도 발현 결과와 유사한 경향을 나타내는 것을 알 수 있었으며, XRD 분석결과 시험체 내에 생성된 반응물질은 ettringite, CSH 및 실리케이트계 수화물인 것으로 나타났다. AASC에서 황산염과 NaOH의 혼합 사용은 황산염의 단독 사용의 경우와 비교하여 일정 수준의 농도 범위에서 강도를 향상시키고 조직을 치밀화 시키는 등의 긍정적인 영향을 미치는 것으로 판단된다.
This research investigated the effects of adding ground granulated blast furnace slag (GGBS) on the pullout resistance of smooth steel fibers embedded in GGBS cement grouts. 40% of cement in the grouts was replaced with GGBS to enhance the flowability and durability of grouts containing steel fibers. The pullout resistance of steel fibers embedded in grouts showed continuous enhancement as the age of grouts increased. The pullout resistance of GGBS grouts was higher than that of grouts without GGBS.
In experimental results, the prediction equation for 28 day-strength of GGBF slag concrete could be produced through the linear regression analysis of early strength and 28 day-strength. In order to acquire the reliability, all mixture were repeated as 3 times and each mixture order was carried out by random sampling. The prediction equation for 28 day-strength of GGBF slag concrete by 1-day strength won the good reliability.
The study on physical properties of PHC pile and pile filler using blast furnace slag were evaluated. In the results, it was found that compressive strength and workability of PHC pile concrete with 20% of blast furnace slag adjusted S/a 27% were satisfied with desired properties and it was available to improve flow and compressive strength of file filler with 35% of blast furnace slag and TG as additive.
CO2 emitted from building materials and construction materials industry reaches about 67 million tons, which occupy about 30% of CO2 emitted from the construction field. Controls on the use of consumed fossil fuels and reduction of emission gases are essential for the reduction of CO2 in the construction area as we reduce the second and third curing to emit CO2 in the construction materials industry. Accordingly, this study applied the low energy curing admixture (hereinafter “LA”) to the extruded panels to observe the physical properties, depending on the mixing amount of fiber, type of fiber and mixing ratio of fiber. The type of fiber did not appear to be a main factor to affect strength, while the LA mixing ratio and mixing amount of fiber appeared to be major factors to affect strength. Especially, the highest strength was developed when the LA mixing ratio was 40%, whereas the test object with the mixing ratio of 50% resulted in the decrease of strength. In addition, it appeared that the mixing ratio of fiber greatly affected flexural strength and strength increased as the mixing ratio increased.
본 연구에서는 표준실험체 (BSS), 순환굵은골재와 고로슬래그 미분말의 치환과 하이브리드섬유를 보강한 실험체 (BSPRR1, BSPRR2시리즈), 순환굵은골재와 고로슬래그 미분말의 치환과 PVA섬유를 보강한 실험체 (BSPG시리즈)로 총 13개의 실험체를 실물크기의 1/2로 축소 제작하여 실험을 수행하였다. 실험을 통하여 얻어진 결과를 비교⋅분석하여 하중-변위, 파괴형태, 최대내력 등을 규명함으로써 구조성능의 개선정도를 평가하였다. 실험결과 순환굵은골재와 고로슬래그 미분말을 치환한 콘크리트에 하이브리드섬유를 보강한 실험체 (BSPRR1, BSPRR2시리즈)의 경우 표준실험체 (BSS)에 비하여 압축강도는 최대 13%, 최대내력은 4~21%, 연성능력은 각각 4~28% 증가하는 결과를 나타내었다. 그리고 또한, 충분한 연성적인 거동과 안정적인 휨인장 파괴를 나타내었다.
Carbon dioxide generated from construction materials and construction material industry among the fields ofconstruction is approximately 67million tons. It is about 30% of the carbon dioxide generated in the fields of construction.In order to reduce carbon dioxide in the fields of construction, it is necessary to control the use of fossil fuel consumedand decrease carbon emission by reducing the secondary and tertiary curing generating carbon dioxide in constructionmaterial industry. Therefore, this study produced an extrusion panel by using cement as the base materials and substitutingbinding materials up to 40% to analyze strength characteristics. According to the results of strength characteristics bythe replacement binder (Low energy curing Admixture) showed an apparent active strength improvement. In particular,specimens substituting binder as 45% indicated the greatest strength improvement. When binding materials was used withsubstitution, it showed strength characteristics similar or higher than specimens made from tertiary autoclave curing assecondary steam curing.
Reaction degree of ground granulated blast furnace slag(GGBFS) in cement paste was measured by water-binder ratio and GGBFS replacement ratio, curing temperature with ages using selective dissolution. In result of experimental, when water-binder ratio and curing temperature were high and replace ratio of GGBFS was low, reaction degree was estimated high.
This study investigated the effect of cement type and ground granulated blast furnace slag (GGBS) on the mechanical properties and workability of grout for offshore PSC structures. As the replacement ratio of GGBS increased, the flowability of the grout increased and both intial and final setting times of grout was delayed regardless of cement type. However, the effects of GGBS on the bleeding of grout were different according to the type of cement: as the ratio of GGBS increased, less bleeding was observed for the grout with typeⅠ cement whereas higher bleeding was generated for the grout with type Ⅲ cement. However, there was no significant difference in their compressive strength at 28 day according the different replacement ratio of GGBS from 0 to 40%.
In this study, high performance fiber composites has developed using GGBS and Flyash with PVA fiber. Thus, four mixtures was determined accoding to the ratio of binder. A series of experiments, including slump flow, compressive strength, uniaxial tensile strength tests were carried out to characterize the mechanical properties of the fiber composites. The result of tests, slump flow showed an average 428mm and tensile strain 2% of behavior strain hardening of due to the occurrence multiple micro crack.
To evaluate the durability characteristics of low permeable concrete using ground granulated blast-furnace slag with fineness 4,650 cm2/g, carbonation depth was measured. From the test results, persisting period of that was calculated. And it was found that carbonation depth of concrete was proceed 29.5 mm for 100 years.
이 연구에서는 고로슬래그 미분말을 사용한 프리캐스트 보의 전단성능에 대하여 평가하였다. 실험체는 고로슬래그 미분말 치환율에 따라 총 4체의 실험체를 제작하였다. 모든 실험체는 전단경간비 2.5, 보의 폭 200mm, 유효깊이 300mm이며, 3점 가력을 받는 단순보로 계획하였다. 또한 이 연구에서는 실험체의 전단강도를 예측하기 위하여 기존 전단강도 예측식을 이용하여 실험결과와 비교하였으며, 총 89개의 기존 전단 실험결과를 이용하여 실험결과와 비교 분석하였다. 실험결과, 고로슬래그 미분말을 치환한 실험체는 포틀랜드 시멘트만을 사용한 실험체와 비교분석한 결과 유사한 전단성능을 나타내었다.
Recently, the amount of the mineral admixture including fly ash and ground granulated blast-furnace slag was increased for the purpose of CO2 gas emission reduction in the concrete industry. However, in the case of korea, estimation model of strength development in concrete structural design code was prescribed a constant value according to cement type and curing method about the portland cement. therefore, the properties of strength development according to time of concrete using fly ash and ground granulated blast-furnace slag does not reflected estimation model of strength development. Accordingly, this paper was evaluated strength according to time on the concrete strength range using fly ash and ground granulated blast-furnace Slag and the strength development constant Bsc of concrete according to the kind of the mineral admixture and mixing ratio was proposed
To the goal of improving the early compressive strength of the mortar including Ground granulated
blast furnace slag under low-temperature environment, Industrial byproducts including SiO2 and Al2O3 was fired and than 7% of it was added into Ground granulated blast furnace slag. By checking compressive strength and activity index from different mixing rate, in spite of low strength development than OPC 100%, when using firing powder, the expectation of increasing strength by curing time was affirmative
This study is to compare and analyze the characteristics of blast furnace slag for use in a NPP concrete, strength, drying shrinkage of concrete using fly ash and OPC. Experimental results, the OPC concrete drying shrinkage is the largest and most FA and GS the similar level.