• 제목/요약/키워드: mixing ratio of aggregate

검색결과 199건 처리시간 0.023초

포러스 콘크리트의 배합요인 및 골재 혼합비율이 강도 및 투수성능에 미치는 영향 (Influence of Mix Factors and Mixing Ratio of Aggregate on the Strength and Water Permeability of Porous Concrete)

  • 김무한;김규용;백용관
    • 콘크리트학회논문집
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    • 제12권6호
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    • pp.91-98
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    • 2000
  • Porous concrete having continuous voids is gaining more interest as an ecological material. It has several useful functions such as water and air permeability, sound absorption, etc. Its strengths are considerably lower than those of conventional concrete due to the large and continuous voids in it. This study has been carried out to investigate the influence of mix factors and mixture proportion of aggregate on the strengths and water permeability of porous concrete. And it has been carried out to investigate the evaluation of void of porous concrete by the ultra-sonic pulse velocity. The results f this study are as follows: 1) The theoretical void ratio has greater influence than any other factor on the strengths and water permeability of porous concrete. And it is a little affected by the replacement proportion of silica-fume and mixture proportion of aggregate. 2) Because the coefficients of correlation between the void ratio and ultra-sonic pulse velocity were relatively high, it will be possible that the void ratio is predicted by the ultra-sonic pulse velocity.

제지애쉬를 혼입한 모르터의 특성에 관한 실험적 연구 (An Experimental Study on the Properties of Mortar Mixing Paper Ash)

  • 이시우
    • 한국건축시공학회지
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    • 제2권3호
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    • pp.115-121
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    • 2002
  • The purpose of this study is investigating characteristics of paper-ash mortar according to partial replacement of fine aggregate by Paper-ash. For this purpose, selected test variables were mixing ratio with two levels of mortar(1:2, 1:3), and 3 types of paper-ash(A, B, C), and paper-ash content with four levels(5%,, 10%, 15%, 20%). As a result of this study, in all mixes with partial replacement of fine aggregate by Paper-ash generally Produced Paper-ash mortar with decreased compressive strength at ail age as compared to ordinary mixes. The mixing rate 1:2 was the higher increasing rate of strength than the mixing rate 1:3. The flow value and unit weight of paper-ash mortar were decreased with increasing of the paper-ash content. And the thermal conductivity of the thermal conductivity of the paper-ash mortar was lower than normal mixing without paper-ash.

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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플라이애쉬를 혼합한 재생골재 콘크리트의 강도 및 동결융해 특성 (Strength and Freezing-Thawing Properties of Recycled aggregate Concrete Mixed Fly Ash)

  • 구봉근;류택은;이재범;양승규
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1999년도 학회창립 10주년 기념 1999년도 가을 학술발표회 논문집
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    • pp.241-244
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    • 1999
  • This study is represented the strength and freeing-thawing properties of recycled aggregate concrete mixed fly ash by experiment. The experimental variables are the substitution ratio of recycled aggregate and the mixing ratio of fly-ash. For each specimens, there were tested compressive strength and freeze-thaw resistance. It is able to find from the experimental result that the recycled aggregate concrete has good properties as general concrete on the compressive strength and the durability.

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인공경량굵은골재 혼합비율에 따른 경량콘크리트의 기건단위질량 및 압축강도 특성 (The Unit Weight and Compressive Strength Properties of Lightweight Concrete by the Mixing Ratio of Artificial Lightweight Coarse Aggregate)

  • 김도빈;김영욱;오태규;김정현;반준모;최세진
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2018년도 춘계 학술논문 발표대회
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    • pp.218-219
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    • 2018
  • This study analyzed the unit weight and compressive strength properties of lightweight concrete using high volume blast furnace slag powder by the mixing ratio of lightweight coarse aggregate to investigate the properties of lightweight concrete using domestic artificial lightweight aggregate.

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순환골재 콘크리트의 염화물 확산성에 관한 연구 (A Study on the Chloride Diffusivity of Recycled Aggregate Concrete)

  • 배종민;김영수
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2009년도 추계 학술논문 발표대회
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    • pp.87-91
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    • 2009
  • Recycling demolished concrete as an alternative source of coarse aggregates for the production of new concrete can help solve the growing waste disposal crisis and the problem of depleted natural aggregates. The purpose of this study is to investigate chloride migration of recycled aggregate concrete containing pozzolanic materials by chloride migration coefficient. The specimens were made with recycled coarse aggregate as various replacement ratio(10, 30, 50%) and metakaolin, blast furnace slag, fly ash is replaced for recycled concrete with mixing ratio 20%. The major results are as follows. 1) Compressive strength of recycled aggregate concrete containing pozzolanic materials increase as curing age and chloride migration decrease. 2) When the replacement ratio of recycled coarse aggregate is 30%, the chloride migration coefficient of recycled concrete containing blast furnace slag, metakaolin shows the similar or lower value than plain concrete at all ages.

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실리카흄을 사용(使用)한 투수(透水)콘크리트의 강도(强度) 및 동결융해저항성(凍結融解抵抗性) (Increase of strength and freezing-thawing resistance of porous concrete by Silica-fume)

  • 홍창우
    • 자원리싸이클링
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    • 제19권4호
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    • pp.35-40
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    • 2010
  • 최근에 들어 투수콘크리트의 동결융해에 대한 저항성이 저하되는 것과 줄눈부에서의 골재박리 등의 많은 문제점들이 대두되고 있다. 따라서 본 연구에서는 기존의 투수콘크리트의 내구성을 향상시키기 위한 방안으로 잔골재와 실리카흄, 고성능감수제를 사용하여 강도 및 내구성 증진 방안을 연구하였다. 주요실험인자로 실리카흄 혼입률 10%와 잔골재 혼입률(0%, 7%, 15%)을 선정하고, 압축강도와 휨강도, 투수계수 및 공극률, 동결융해시험을 수행하였다. 실험결과 강도측면에서는 잔골재 혼입률이 증가함에 따라 압축 및 휨강도는 증가하는 경향을 보였으나, 상대적으로 공극률 감소로 인한 투수성은 저하되고, 동결융해 저항성도 크게 감소하는 것으로 나타났다. 따라서 투수콘크리트에 있어서 강도증진을 위해 사용되는 잔골재는 혼입률 제한이 필요하며, 실리카흄 10%이상을 사용하는 것이 강도 및 내구성 측면에서 효율적인 대안이 될 수 있을 것으로 판단된다.

폐비닐골재를 사용하는 아스팔트 콘크리트의 물리적 성질 (Physical Properties of Asphalt Concrete Using Wasted Vinyl Aggregates)

  • 김병준;김영진;박주영;정진훈
    • 한국도로학회논문집
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    • 제15권2호
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    • pp.73-81
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    • 2013
  • PURPOSES : In this study, various laboratory tests were performed to investigate basic physical properties of the asphalt concrete which uses wasted vinyl aggregates. METHODS : The thermal conductivity, ultrasonic velocity, Marshall stability, flow, indirect tensile strength were measured according to binder content and wasted vinyl aggregate content. An experimental construction was performed to verify construct ability of the asphalt pavement using the wasted vinyl aggregates. RESULTS : The thermal conductivity and ultrasonic velocity decreased showing insulation effect by mixing more wasted vinyl aggregate, whereas stability and flow increased. The void ratio shows similar value regardless of the mixing ratio. The highest indirect tensile strength was measured at 2.5% of wasted vinyl aggregate content. The construct ability was verified by observing the process of mixing, placing, and compaction and the state of the pavement surface. CONCLUSIONS : The basic properties and construct ability of the asphalt concrete using the wasted vinyl aggregates were verified. The temperature according to pavement depth will be measured to verify the insulation effect of the wasted vinyl aggregates. In addition, amount of snowfall, snowmelt area, and ice adhesion strength will be analyzed quantitively.

석분토와 바텀애쉬를 이용한 인공경량골재 제조 (Manufacturing of Artificial Lightweight Aggregate using Stone-Dust and Bottom Ash)

  • 윤섭;김정빈;정용;김양배
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 추계 학술발표회 제20권2호
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    • pp.381-384
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    • 2008
  • 부순골재 생산과정에서 발생하는 석분토와 화력발전소에서 발생하는 Bottom ash를 이용한 인공경량골재의 물리 화학적 특성을 분석하여 콘크리트용 인공경량골재의 사용여부를 검토하였는데, 그 결과는 다음과 같다. 석분토(이하 SD)와 Bottom ash(이하 BA)의 혼입비율에 따른 인공경량골재의 특성으로는 BA의 혼입비율이 커질수록 미연탄소와 $Fe_2O_3$의 함량 증가로 인해 소성 시 가스 발생량이 증가하여 밀도는 낮아지고 흡수율은 증가하는 것으로 나타났는데, 화학조성상 적절한 혼합비율은 SD : BA = 5:5 내외일 것으로 판단된다. Flux제 첨가에 따른 인공경량골재의 특성으로는 $Na_2SO_4$ 첨가율이 증가할수록 밀도는 낮아졌다. 이에 본 연구범위내에서는 SD: BA = 5:5, $Na_2SO_4$ 2%, $Fe_2O_3$ 1%, 소성 온도 $1,150^{\circ}C$, 소성시간 15분에서 밀도 $1.52g/cm^3$, 흡수율 7.3%의 인공경량골재를 개발할 수 있었다.

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경량콘크리트의 개발에 관한 실험적 연구 (An Experimental Study on the Development of Lightweight Concrete)

  • 김성완;성찬용;민정기;정현정
    • 한국농공학회지
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    • 제37권5호
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    • pp.90-100
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    • 1995
  • This study was performed to develop the lightweight concrete using synthetic lightweight aggregate and natural coarse aggregate. Mixing ratios were three types, the first type was mixed cement and synthetic lightweight fine aggregate (Type CP), the second type was mixed cement, synthetic lightweight fine aggregate and synthetic lightweight coarse aggregate (Type CPE), the third type was mixed cement, synthetic lightweight fine aggregate and natural coarse aggregate (Type CPN). The results of this study are summarized as follows ; 1. The W/C of each mixing ratio was increased with increase of the amount of cement used, and it was shown higher in order of Type CP, CPN, CPE. 2. The unit weight of Type CP, CPE and CPN was 1.473~1.647g/cm$^3$, 1.467~1.622g/cm$^3$ and 1.658~1 .838g/cm$^3$, respectively. And the absorption ratio was approximately 20%, which was higher than that of the normal cement concrete. 3. The compressive strength of Type CP was shown 178 ~249kg/cm2, Type CPE was shown 149~241kg/cm$^2$ and Type CPN was shown 196~297kg/cm$^2$, respectively. Each strength ratio was smaller than that of the normal cement concrete. 4. The pulse velocity of Type CP, CPE and CPN was 2, 688~3, 240m/sec, 2, 981~3, 324m/sec and 2, 989 ~ 3, 545m/sec, respectively. And it was increased with increase of strength and unit weight. 5. The length change ratio at 28 days was in the range of 0.057~0.077%, and earlier length change ratio was higher than that of the later.

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