• 제목/요약/키워드: initial curing concrete

검색결과 115건 처리시간 0.018초

조강(早彈)시멘트를 사용(使用)한 3성분계(性分系) 콘크리트의 강도(彈度) 및 내구특성(耐久特性) (Durability and Strength of Ternary Blended Concrete Using High Early Strength Cement)

  • 홍창우;정원경
    • 자원리싸이클링
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    • 제19권5호
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    • pp.50-57
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    • 2010
  • 플라이애쉬와 고로슬래그를 첨가하여 만드는 3성분계 콘크리트는 산업부산물 이용에 따른 초기공사비 절감과, 환경친화적인 측면에서 매우 효과적이다. 3성분계 콘크리트는 장기강도의 안정적인 발현, 높은 작업성과 수화열 감소에도 매우 효과적인 것으로 알려져 있다. 그러나, 3성분계 콘크리트는 포졸란계 혼화재의 사용에 따른 초기강도 발현이 문제점이다. 이러한 문제는 시공성 및 경제성에 있어 3성분계 콘크리트 사용을 제약하는 요소로 작용하고 있다. 본 연구에서는 이러한 문제를 해결하기 위하여 플라이애쉬, 고로슬래그 미분말을 혼입한 콘크리트에 있어 조강시멘트를 사용하여 단기 및 장기강도 발현, 투수저항성 및 내화학약품성을 평가하였다. 플라이애쉬 혼입율은 10%로 고정하고 고로슬래그 미분말을 0, 10, 20, 및 30%로 혼입한 3성분계 조강콘크리트를 제작하였다. 실험결과, HE-TBC의 압축 및 휨강도의 우수한 초기강도발현 특성을 얻을 수 있었으며 특히, 플라이애쉬 10% 및 고로슬래그 30%가 혼입된 HE-TBC의 투수특성은 매우 낮은 투수성을 나타내어 새로운 3성분계 조강콘크리트의 활용이 가능할 것으로 판단되었다.

시멘트 계에서 액상 숏크리트용 급결제의 수화 특성에 관한 연구 (The Hydraulic Characteristics of Liquid Shotcrete Accelerators within Cement System)

  • 신진용;김재영;홍지숙;서정권;노재성
    • 콘크리트학회논문집
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    • 제17권6호
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    • pp.1011-1018
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    • 2005
  • 액상 숏크리트 급결제(알칼리 알루미네이트, 2종의 알카리프리)가 시멘트 계의 수화 특성에 미치는 영향을 조사했다. 새로운 알카리프리계 숏크리트용 급결제(AF2)를 적용할 경우 기존의 알칼리 알루미네이트 급결제에 비해 초결, 종결 시간은 단축되었고, 1일 압축 강도는 유사했다. 12시간 경과된 모르타르 시편의 압축 강도는 알칼리 급결제가 첨가된 시편이 가장 높았으나, 이후 최종 강도는 알칼리 급결제를 첨가한 시편이 가장 낮았다. 그러나 알카리프리가 첨가된 AF1, AE2 시편의 압축 강도는 28일까지 plain과 유사했다. XRD와 DSC 분석을 통해 알칼리계 급결제는 주로 수산화칼슘, 알카리프리계 급결제는 에트링자이트 결정 성장으로 응결이 촉진된 것을 확인했다.

산업부산물을 이용한 콘크리트 벤치플룸의 성능평가 (Performance Evaluation of Concrete Bench Flume Using Industrial by Products)

  • 정재호
    • 한국건설순환자원학회논문집
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    • 제11권3호
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    • pp.276-281
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    • 2023
  • 기존 보통포틀랜드시멘트를 사용하여 제작한 수로관은 시멘트의 수화생성물이 산에 취약한 특성으로 인하여 열화가 빠르게 진행되고 내구성이 저하되는 문제점이 발생되고 있다. 따라서 본 연구에서는 다양한 산업에서 발생되는 산업부산물인 고로슬래그와 플라이 애시를 이용하여 수로관을 제작하고 그 특성을 분석하였다. 실험결과 굳지 않은 콘크리트에서 슬럼프는 플라이애시의 볼베어링작용으로 인해 증가되는 경향을 나타내었고, 공기량은 미연탄분으로 인해 감소되어 내동해성에 대한 대책이 필요할 것으로 나타났다. 또한 압축강도는 증기양생을 통해 초기강도가 증가되었고, 슬래그 50 %이상의 배합에서는 OPC와 동등이상의 결과가 나타났다. 내산성결과는 질량감소율이 5 % 미만으로 나타나 내구성에 우수한 성능을 나타내었고, 벤치플룸의 휨파괴하중도 KS기준을 모두 상회하여 상용화가 가능할 것으로 판단된다.

세티메타를 이용한 초지연 모르타르의 응결시간 추정 (Estimation of Setting Time of Super Retarding Mortar Using Settimeter)

  • 정영진;현승용;한준희;김종;한민철
    • 한국건축시공학회지
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    • 제23권6호
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    • pp.673-682
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    • 2023
  • 본 연구에서는 모르타르 조건하에서 초지연제 혼입률, 양생온도 및 강도수준 변화에 따른 응결지연 특성을 고찰하고자 하였으며, 세티메타를 이용하여 공사현장의 다양한 외기조건 및 재료배합 조건하에서 초지연제를 사용한 콘크리트의 응결시간을 효율적으로 추정할 수 있는 객관적 방법을 제시하고자 하였다. 그 결과, 비선형 회귀모델의 추정식 및 세티메타을 이용하여 초지연 모르타르의 응결시간을 추정할 수 있을 것으로 사료되며, 초결은 45 ST, 종결은 80 ST 전후로 관리하는 것이 바람직할 것으로 판단된다. 또한, 이를 통해 초지연 콘크리트의 응결시관과 관련한 효율적인 품질관리가 가능할 것으로 사료된다.

에폭시 수지 모르터의 특성에 관한 실험적 연구 (Experimental Studies on the Properties of Epoxy Resin Mortars)

  • 연규석;강신업
    • 한국농공학회지
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    • 제26권1호
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    • pp.52-72
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    • 1984
  • This study was performed to obtain the basic data which can be applied to the use of epoxy resin mortars. The data was based on the properties of epoxy resin mortars depending upon various mixing ratios to compare those of cement mortar. The resin which was used at this experiment was Epi-Bis type epoxy resin which is extensively being used as concrete structures. In the case of epoxy resin mortar, mixing ratios of resin to fine aggregate were 1: 2, 1: 4, 1: 6, 1: 8, 1:10, 1 :12 and 1:14, but the ratio of cement to fine aggregate in cement mortar was 1 : 2.5. The results obtained are summarized as follows; 1.When the mixing ratio was 1: 6, the highest density was 2.01 g/cm$^3$, being lower than 2.13 g/cm$^3$ of that of cement mortar. 2.According to the water absorption and water permeability test, the watertightness was shown very high at the mixing ratios of 1: 2, 1: 4 and 1: 6. But then the mixing ratio was less than 1 : 6, the watertightness considerably decreased. By this result, it was regarded that optimum mixing ratio of epoxy resin mortar for watertight structures should be richer mixing ratio than 1: 6. 3.The hardening shrinkage was large as the mixing ratio became leaner, but the values were remarkably small as compared with cement mortar. And the influence of dryness and moisture was exerted little at richer mixing ratio than 1: 6, but its effect was obvious at the lean mixing ratio, 1: 8, 1:10,1:12 and 1:14. It was confirmed that the optimum mixing ratio for concrete structures which would be influenced by the repeated dryness and moisture should be rich mixing ratio higher than 1: 6. 4.The compressive, bending and splitting tensile strenghs were observed very high, even the value at the mixing ratio of 1:14 was higher than that of cement mortar. It showed that epoxy resin mortar especially was to have high strength in bending and splitting tensile strength. Also, the initial strength within 24 hours gave rise to high value. Thus it was clear that epoxy resin was rapid hardening material. The multiple regression equations of strength were computed depending on a function of mixing ratios and curing times. 5.The elastic moduli derived from the compressive stress-strain curve were slightly smaller than the value of cement mortar, and the toughness of epoxy resin mortar was larger than that of cement mortar. 6.The impact resistance was strong compared with cement mortar at all mixing ratios. Especially, bending impact strength by the square pillar specimens was higher than the impact resistance of flat specimens or cylinderic specimens. 7.The Brinell hardness was relatively larger than that of cement mortar, but it gradually decreased with the decline of mixing ratio, and Brinell hardness at mixing ratio of 1 :14 was much the same as cement mortar. 8.The abrasion rate of epoxy resin mortar at all mixing ratio, when Losangeles abation testing machine revolved 500 times, was very low. Even mixing ratio of 1 :14 was no more than 31.41%, which was less than critical abrasion rate 40% of coarse aggregate for cement concrete. Consequently, the abrasion rate of epoxy resin mortar was superior to cement mortar, and the relation between abrasion rate and Brinell hardness was highly significant as exponential curve. 9.The highest bond strength of epoxy resin mortar was 12.9 kg/cm$^2$ at the mixing ratio of 1:2. The failure of bonded flat steel specimens occurred on the part of epoxy resin mortar at the mixing ratio of 1: 2 and 1: 4, and that of bonded cement concrete specimens was fond on the part of combained concrete at the mixing ratio of 1 : 2 ,1: 4 and 1: 6. It was confirmed that the optimum mixing ratio for bonding of steel plate, and of cement concrete should be rich mixing ratio above 1 : 4 and 1 : 6 respectively. 10.The variations of color tone by heating began to take place at about 60˚C, and the ultimate change occurred at 120˚C. The compressive, bending and splitting tensile strengths increased with rising temperature up to 80˚ C, but these rapidly decreased when temperature was above 800 C. Accordingly, it was evident that the resistance temperature of epoxy resin mortar was about 80˚C which was generally considered lower than that of the other concrete materials. But it is likely that there is no problem in epoxy resin mortar when used for unnecessary materials of high temperature resistance. The multiple regression equations of strength were computed depending on a function of mixing ratios and heating temperatures. 11.The susceptibility to chemical attack of cement mortar was easily affected by inorganic and organic acid. and that of epoxy resin mortar with mixing ratio of 1: 4 was of great resistance. On the other hand, when mixing ratio was lower than 1 : 8 epoxy resin mortar had very poor resistance, especially being poor resistant to organicacid. Therefore, for the structures requiring chemical resistance optimum mixing of epoxy resin mortar should be rich mixing ratio higher than 1: 4.

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