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산지하천 만곡부의 편수위 산정

Estimation of Superelevation in Mountainous River Bends

  • 박상덕 (강릉원주대학교 토목공학과) ;
  • 이승규 (강릉원주대학교 토목공학과) ;
  • 신승숙 (강릉원주대학교 방재연구소) ;
  • 조재웅 (국립재난안전연구원 방재연구실)
  • 투고 : 2014.09.30
  • 심사 : 2014.11.05
  • 발행 : 2014.12.31

초록

홍수 시 하천 만곡부에서 유수의 원심력에 의한 횡단 수면경사가 발생한다. 하천 경사와 유량이 증가하면 그 수면경사는 더욱 커진다. 경사가 급한 산지하천 만곡부는 제방의 여유고보다 수면상승이 큰 경우가 빈번하게 발생하기 때문에 홍수피해가 크다. 따라서 편수위에 따른 수면 상승효과는 산지하천 만곡부의 설계를 위해 고려되어야 한다. 본 연구에서는 산지하천 만곡부의 편수위를 산정할 수 있는 기법을 제안하고, 편수인자들의 곱으로 편수위계수를 정의하였다. 양양남대천 만곡부에서 측정한 편수위와 $90^{\circ}$ 만곡 자갈하상에 대한 수리실험에서 측정한 편수위 자료를 이용하여 편수인자별 영향인자 값을 제시하였다. 내린천 만곡부에서 측정한 편수위를 이용하여 편수위 산정기법의 적용성을 검증하였다.

In a river bend the water surface is inclined by the centrifugal force toward the transverse section. If channel slope and flow rate increase, the gradient is rising generally. There are lots of the flood damage at the bends of mountain river because the flood water levels have exceeded frequently the levee levels which are added a free board to the design flood water level. Therefore the superelevation should be considered in designing the mountainous river bend. In present study it was proposed to estimate the superelevation at the bend of mountain river and the superelevation coefficient defined from multiplying the sub-factors. The values of the influence factors for the superelevation coefficient were suggested from analyzing the superelevation measured at the bends in Yangyangnamdae river and the hydraulic experiments in gravel-bed channel with a $90^{\circ}$ bend. The applicability of these methods to estimate the superelevation at the bends in mountain river was verified by the superelevation measured at the bend in Naerin river.

키워드

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