• 제목/요약/키워드: moving storm

검색결과 52건 처리시간 0.019초

국내 고속도로 휴게소지역 비점오염원 유출특성 분석 (Evaluation of Pollutants Concentrations and Runoff Characteristics in Highway Rest Area)

  • 김정현;강희만;고석오
    • 한국도로학회논문집
    • /
    • 제12권4호
    • /
    • pp.131-137
    • /
    • 2010
  • 최근 비점오염원에 대한 관심이 높아지면서, 환경부 및 유관단체를 중심으로 노면 유출수를 포함한 비점오염원(Non point source)에 대한 현황 조사 및 처리 방법에 대한 관심이 증가하고 있다. 고속도로 휴게소 주차장 노면 유출수는 고속도로 본선 노면 유출수보다 유해물질 오염도가 높을 것으로 예상되어, 본 연구는 이 지역의 노면 유출수 오염도 조사를 통해 유출수 평가 및 노면 유출수 저감시설의 저감효과를 분석하여 휴게소 노면유출수 관리방안을 수립하는 것을 목적으로 하고 있다. 휴게소지점에 대한 강우 유출수 분석 결과 포장지역의 특성인 초기강우현상을 볼 수 있었으며, 강우초기에 입자상물질은 중금속과 결합하여 다량 유출되는 특성을 나타내었다. 휴게소 지점의 강우유출수에 대한 오염물질별 EMC에 대한 95% 확신범위로는 TSS 128.2-273.4mg/L, COD 145.4-310.1mg/L, TN 6.1-11mg/L, TP 1.9-2.9mg/L의 범위로 분석되어 고속도로에서 유출되는 강우유출수와 비슷한 수준으로 유출되는 것으로 분석되었으나, 중금속의 경우 고속도로에 비해 고농도의 중금속이 유출되는 것으로 나타났는데, 이것은 차량 정차시 브레이크 패드나 타이어의 마모등에 의한 것으로 판단된다. 휴게소지점에 대한 면적당 발생되는 부하량 통계분석결과, TSS의 평균 부하량은 $1411.6mg/m^2$로 산정되었으며, COD $709.7mg/m^2$, TN $44.0mg/m^2$, TP $10.4mg/m^2$로 산정되었다. 중금속의 경우 Total Cu $12927.4{\mu}g/m^2$, Total Fe $32074.4{\mu}g/m^2$, Total Pb $40371{\mu}g/m^2$, Total Ni $10679.2{\mu}g/m^2$로 산정되었다.

Origin of limestone conglomerates in the Choson Supergroup(Cambro-Ordovician), mid-east Korea

  • Kwon Y.K.;Chough S.K.;Choi D.K.;Lee D.J.
    • 한국석유지질학회:학술대회논문집
    • /
    • 한국석유지질학회 2001년도 제8차 학술발표회 발표논문집
    • /
    • pp.63-65
    • /
    • 2001
  • The Chosen Supergroup (Cambro-Ordovician), mid-east Korea consists mainly of shallow marine carbonates and contains a variety of limestone conglomerates. These conglomerates largely comprise oligomictic, rounded lime-mudstone clasts of various size and shape (equant, oval, discoidal, tabular, and irregular) and dolomitic shale matrices. Most clasts are characterized by jigsaw-fit (mosaic), disorganized, or edgewise fabric and autoclastic lithology. Each conglomerate layer is commonly interbedded with limestone-dolomitic shale couplets and occasionally underlain by fractured limestone layer, capped by calcareous shale. According to composition, characteristic sedimentary structures, and fabric, limestone conglomerates in the Hwajol, Tumugol, Makkol, and Mungok formations of Chosen Supergroup can be classified into 4 types: (1) disorganized polymictic conglomerate (Cd), (2) horizontally stratified polymictic conglomerate (Cs), (3) mosaic conglomerate (Cm), and (4) disorganized/edgewise oligomictic conglomerate (Cd/e). These conglomerates are either depositional (Cd and Cs) or diagenetic (Cm and Cd/e) in origin. Depositional conglomerates are interpreted as storm deposits, tidal channel fills, or transgressive lag deposits. On the other hand, diagenetic conglomerates are not deposited by normal sedimentary processes, but formed by post-depositional diagenetic processes. Diagenetic conglomerates in the Chosen Supergroup are characterized by autoclastic and oligomictic lithology of lime-mudstone clasts, jigsaw-fit (mosaic) fabric, edgewise fabric, and a gradual transition from the underlying bed (Table 1). Autoclastic and oligomictic lithologies may be indicative of subsurface brecciation (fragmentation). Consolidation of lime-mudstone clasts pre-requisite for brecciation may result from dissolution and reprecipitation of CaCO3 by degradation of organic matter during burial. Jigsaw-fit fabric has been considered as evidence for in situ fragmentation. The edgewise fabric is most likely formed by expulsion of pore fluid during compaction. The lower boundary of intraformational conglomerates of depositional origin is commonly sharp and erosional. In contrast, diagenetic conglomerate layers mostly show a gradual transition from the underlying unit, which is indicative of progressive fragmentation upward (Fig. 1). The underlying fractured limestone layer also shows evidence for in situ fragmentation such as jigsaw-fit fabric and the same lithology as the overlying conglomerate layer (Fig, 1). Evidence from the conglomerate beds in the Chosen Supergroup suggests that diagenetic conglomerates are formed by in situ subsurface fragmentation of limestone layers and rounding of the fragments. In situ subsurface fragmentation may be primarily due to compaction, dewatering (upward-moving pore fluids), and dissolution, accompanying volume reduction. This process commonly occurs under the conditions of (1) alternating layers of carbonate-rich and carbonate-poor sediments and (B) early differential cementation of carbonate-rich layers. Differential cementation commonly takes place between alternating beds of carbonate-rich and clay-rich layers, because high carbonate content promotes cementation, whereas clay inhibits cementation. After deposition of alternating beds and differential cementation, with progressive burial, upward-moving pore fluid may raise pore-pressure in the upper part of limestone layers, due to commonly overlying impermeable shale layers (or beds). The high pore-pressure may reinforce propagation of fragmentation and cause upward-expulsion of pore fluid which probably produces edgewise fabric of tabular clasts. The fluidized flow then extends laterally, causing reorientation and further rounding of clasts. This process is analogous to that of autobrecciation, which can be analogously termed autoconglomeration. This is a fragmentation and rounding process whereby earlier semiconsolidated portions of limestone are incorporated into still fluid portions. The rounding may be due mainly to immiscibility and surface tension of lime-mud. The progressive rounding of the fragmented clasts probably results from grain attrition by fluidized flow. A synthetic study of limestone conglomerate beds in the Chosen Supergroup suggests that very small percent of the conglomerate layers are of depositional origin, whereas the rest, more than $80\%$, are of diagenetic origin. The common occurrence of diagenetic conglomerates warrants further study on limestone conglomerates elsewhere in the world.

  • PDF