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Evaluation of Adhesive Performance of Surface Finishing Material with Primer Based on Silane

실란계 프라이머를 활용한 바닥 마감재 부착성능 평가

  • Received : 2016.12.26
  • Accepted : 2017.06.22
  • Published : 2017.07.01

Abstract

The experimental research was conducted to evaluate the adhesive performance of surface finishing material with primer based on silane(primer). For this purpose, concrete specimens with compressive strength of 18, 30, 50 MPa were made and cured in water condition ($20{\pm}2^{\circ}C$) for 28 days. A primer was applied on the age of 28 days and evaluated according to based on the curing age of the surface finishing material. Moreover, the mortar specimen also made and tested as per KS F 4937 for compared with concrete-based test results. Test results indicated that the adhesive strength of specimens with primer exhibit similar than that of specimens without primer. Also, the adhesive performance improved with increasing in curing age and compressive strength. The correlation between compressive and adhesive strength of mortar and concrete specimens showed similar trend. It was noted that there is no significant effects of primer on adhesive performance of surface finishing material, thus use of primer has superior potential for solving durability problem of concrete slab surface.

본 연구에서는 프라이머 도포 여 부 및 압축강도수준 그리고 바닥 마감재 시공재령에 따른 주차장용 바닥 마감재 부착성능을 평가하였다. 또한 현행 KS 기준에서는 바닥 마감재 부착성능을 모르타르 공시체를 활용하여 평가하도록 제안하고 있지만, 실제 현장에서 바닥 마감재는 콘크리트 상부면에 시공되기 때문에 바탕면 변화에 따른 부착성능을 추가변수로 계획하여 평가를 진행하였다. 모르타르는 현행기준에서 제안하고 있는 배합표에 준하여 제작하였으며, 콘크리트 설계기준강도는 18, 30, 50 MPa로 계획하였다. 프라이머는 모르타르 및 콘크리트 재령 28일 변수에 따라 바닥 마감재와 함께 도포되었으며, KS 기준에 준하여 바닥 마감재 재령 일에 따라 부착성능을 평가하였다. 변수에 따른 부착성능 평가결과 바닥 마감재 재령이 경과함에 따라 바닥 마감재 부착성능은 향상되는 것으로 나타났으며, 압축강도가 높아짐에 따라 바닥 마감재 부착성능 또한 향상되는 것으로 나타났다. 이는 파괴양상을 고려하였을 때 콘크리트 쪼갬 인장강도의 영향을 받은 것으로 판단된다. 프라이머 도포에 따른 부착성능은 유사한 것으로 나타났으며, 프라이머의 사용은 부착강도에 문제없이 콘크리트 표면의 내구성을 향상시킬 수 있을 것으로 판단된다. 또한 콘크리트 및 모르타르 바탕면의 부착강도 특성을 비교한 결과 바닥재의 부착강도는 구성재료 보다 압축강도에 큰 영향을 받는 것으로 나타났다. 따라서 현행 KS 기준의 모르타르 바탕면 실험체의 부착강도를 근거로 실제현장의 부착강도를 예측할 수 있을 것으로 판단된다.

Keywords

References

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