• 제목/요약/키워드: 시멘트 안정처리 기층

검색결과 7건 처리시간 0.019초

반사균열을 억제한 시멘트 안정처리 기층 재료개발 (The Development of Cement Treated Base Material with Restraint Reflection Crack)

  • 강성철;이강원;조윤호
    • 한국도로학회논문집
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    • 제7권2호
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    • pp.33-43
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    • 2005
  • 시멘트 안정처리 기층은 강성기층으로 러팅 저항성이 크고 상부하중 분산, 피로균열저항, 기층 보조기층의 파손 감소의 효과가 있으며 경제성이 뛰어나다는 장점이 있다. 그러나 건조수축에 의한 반사균열로 인하여 국내에서는 CTB가 전혀 적용되지 못하고 있는 실정이다. 따라서 본 연구는 국내에 CTB적용을 위한 기초연구로써 반사 균열을 최소화하기 위해 건조수축을 억제할 수 있는 저수축 시멘트 안정처리 기층 재료개발을 시도하였다. 건조수축 이론을 고찰하여 건조수축 저감방안을 수립하였고 건조수축에 미치는 영향인자를 선정하였으며, 각 혼화재의 메커니즘을 분석한 후 실내 실험 및 현장실험을 수행하였다. 예비실험을 통하여 플라이 애쉬 첨가비율은 25%로 제안하였고 시멘트량은 모든 배합이 도로공사 린 기층의 허용강도를 만족하는 7%로 하였다. 본 실험 결과를 바탕으로 강도, 건조수축율, 경제성을 고려한 결과, 플라이 애쉬 25%, 플라이 애쉬 25%에 팽창재를 10%를 혼합한 배합을 대안으로 결정하였다. 실내실험에서 결정된 대안을 현장 실험에 적용한 결과 플라이 애쉬(25%)+팽창재(10%)가 최적의 저수축 시멘트 안정 처리 기층 배합임을 제시하였다.

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저수축 시멘트 안정처리 기층의 특성분석 (Analysis of Characteristics in Low-shrinkage Cement Treated Base)

  • 이승우;전범준;김종원
    • 한국도로학회논문집
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    • 제6권2호
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    • pp.61-70
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    • 2004
  • 시멘트 안정처리는 우수한 강도발현, 내구성, 강성, 동상저항 등의 우수한 능력을 발휘하지만 건조수축으로 인해 표층부로의 반사균열을 발생시키는 단점을 가지고 친다. 이에 본 연구에서는 시멘트의 건조수축을 억제하여 표층부로의 반사균열을 억제할 수 있는 저수축 시멘트 안정처리기법에 대한 타당성을 연구하였다.

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시멘트계 고화재를 이용한 농로의 보조기층 안정처리공법 연구 (Subbase Treatment for Farm Road Using Geo-cement)

  • 공길용;장병욱
    • 한국농공학회지
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    • 제43권3호
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    • pp.77-84
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    • 2001
  • A few study has been performed on the durability of subbase treated with geo-cement for the farm road although many papers for the road treated with soil-cement were published. The objectives of the study are to develop the stabilizing method of subbase using additives of cement groups and 2nd additives such as gypsum and MgO, etc. A series of test was performed to investigate possible mixing ratios with geo-cement A, B, C, D and 2nd additives on the various soft soils from the rice paddy. Based on test results, durability index was greatly affected by geo-cement D which was mainly composed with gypsum. Compressive strength of clayey soil such as Soil I was less than threshold strength(30kgf/$\textrm{cm}^2$) but the strength was increased as addition of gypsum and MgO. It is recommended that geo-cement for soil stabilization has to be carefully chosen because strength characteristics of subbase are varied not only with soils but also with addition of geo-cement and 2nd additives. The developed method in this study can be used subbase treatment of low-cost agricultural roads.

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농도의 기층 및 보조기층 공법연구 -노상 및 시멘트 안정 처리층의 Mr 특성을 중심으로- (Study on the Base and Subbase Method of Agricultural Road -On the Resilient Modulus Characteristics of the Subgrade and Cement Treated Base-)

  • 도덕현
    • 한국농공학회지
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    • 제31권2호
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    • pp.66-81
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    • 1989
  • The characteristics of resilient modulus(Mr) which dominates the life of pavement and the design of pavement were investigated on the test specimens which were cement treated and non-treated of the three different soil types. The results are summarized as follows : 1. The resilient modulus was decreased by increasing the cyclic deviator stress ($\sigma$d) , especially the resilient modulus was gradually decreased or sometimes increased when the value of ad was greater than 0.75- 1. 0kg/cm$^2$. 2. The resilient modulus was increased by increasing the homogeneous confined stress ($\sigma$do) and such phenomena were distinct on the coarse soils. 3. The resilient modulus was increased by increasing the ratio of confined stress(Kc), and this phenomena were eminent on the coarse soils too, and the higher permanent strain was showed by increasing the value of Kc. 4. In the drained cyclic triaxial compression test, the value of ad, Kc, and (Oho) was introduced by the following interrelated equations which were similar to the Mr model of Cole. Kcn/Mr=K1(J$_2$/ $\tau$oct)K2 ............. (coarse soli) Mcn/Mr=K3($\sigma$dp/ $\tau$f)k4 ...............(fine soils) 5. The stress path was not much affected by the value of Mr, however, moisture content, dry desity, and contant of fines affected the value of Mr. 6. In the soil-cement specimens, the resilient compression strain($\varepsilon$d) was decreased by the increment of the $\sigma$ho, and Mr was decreased by increasing the $\sigma$d 7. In the flexible pavement. the cement treated layer should be designed not to fail by the fatigue before the designed traffic load, and actually the pavement could cover the traffic load to a certain extent under the post-crack phase, therefore farther studies on this phenomena' are required in the design analysis. 8. The finite element computer program (ANALYS) was used for displacement analysis of pavement containing the cement-treated layer, The result showed that the program used for this analysis was proved to be usable.

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공항포장 시멘트안정처리기층에 적용하기 위한 투수콘크리트 개발에 관한 기초연구 (Fundamental Study on Pervious Concrete Materials for Airport Pavement Cement Treated Base Course)

  • 김승원;오지현;장봉진;주민관;김인태;박철우
    • 한국도로학회논문집
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    • 제15권4호
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    • pp.65-73
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    • 2013
  • PURPOSES : As a research to develop a cement treated base course for an airport pavement which can enhance its drainage, this paper investigated the strength, infiltration performance and durability of the pervious concrete with respect to maximum coarse aggregate sizes and compaction methods. METHODS : This study measured compressive strength, infiltration rate, continuous porosity and freeze-thaw resistance of pervious concrete specimens, which were fabricated with five different compaction methods and different maximum aggregate sizes. In addition, in order to reduce the usage of Portland cement content and to enhance environment-friendliness, a portion of the cement was replaced with Ground Granulated Blast Furnace Slag (GGBS). RESULTS: Compressive strength requirement, 5 MPa at 7 days, was met for all applied compaction methods and aggregate sizes, except for the case of self-compaction. Infiltration rate became increased as the size of aggregate increased. The measured continuous porosities varied with the different compaction methods but the variation was not significant. When GGBS was incorporated, the strength requirement was successfully satisfied and the resistance to freezing-thawing was also superior to the required limit. CONCLUSIONS: The infiltration rate increased as the maximum size of aggregate increased but considering construct ability and supply of course aggregate, its size is recommended to be 25mm. With the suggested mix proportions, the developed pervious concrete is expected to successfully meet requirements for strength, drainage and durability for cement treated base or subbase course of an airport pavement.