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산업부산물을 활용한 아스팔트 포장용 채움재 개발 및 현장시공 성능평가 연구

A Study on Asphalt Paving Filler Development from Industrial By-products and its Characteristics in Construction Site

  • 투고 : 2016.07.19
  • 심사 : 2016.08.31
  • 발행 : 2016.09.30

초록

국내 화력발전소의 추가 증설과 관련하여 발생 부산물의 신규 사용처 연구가 필요한 실정이다. 본 연구에서는 화력발전소에서 발생되는 플라이애시와 열병합발전소에서 발생되는 열병합애시, 배연탈황공정에서 발생되는 탈황석고 등 부산물로부터 아스팔트 포장용 채움재의 KS 규격을 만족하는 채움재를 제조하였다. 제조된 혼합 채움재와 기존 석회석 채움재의 특성을 비교하고, 각각의 채움재를 사용하여 아스팔트 혼합물을 제조하는 실내실험을 통해 특성을 비교하였다. 또한 혼합 채움재와 석회석 채움재를 사용하여 아스팔트 포장 현장실험을 실시하였다. 현장실험에 사용된 아스팔트 혼합물에 대해서 실내실험과 동일하게 동적안정도, 마샬안정도, 인장강도비, 포화도, 간극률, 흐름값을 평가하였다. 실내실험 및 현장시공시험 결과 기존 석회석 채움재를 사용한 경우보다 동적안정도 및 마샬안정도, 인장강도비에서 우수한 특성을 나타내었으며, 배합설계의 최적화를 통해 기존 석회석 채움재의 특성을 만족시키는 채움재 개발 가능성을 확인하였다.

In this study, asphalt paving filler, which satisfies the KS standards, were prepared from industrial by-products, such as fly ash generated from thermal power plants, cogeneration ash generated from cogeneration plants, and desulfurized gypsum generated from the flue-gas desulfurization process. The properties of the prepared mixed filler and the existing limestone filler were compared through laboratory tests for preparing asphalt mixture using each filler. In addition, asphalt pavement field tests were conducted using the limestone filler and mixed filler. The dynamic stability, Marshall stability, tensile strength ratio, saturation, porosity, and flow value of the asphalt mixtures used in the field test were evaluated, as was done in the laboratory test. The laboratory and field construction test results revealed outstanding tensile strength ratio, Marshall stability and dynamic stability when using the prepared filler than for the existing limestone filler. Through optimization of the mixing design, the possibility of developing fillers, which the characteristics of the existing limestone filler, was confirmed.

키워드

참고문헌

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