• 제목/요약/키워드: channel fills

검색결과 8건 처리시간 0.02초

Channel-fill Deposits of Gravel-bed Stream, Southeastern Eumsung Basin (Cretaceous), Korea

  • Ryang, Woo-Hun
    • 한국지구과학회지
    • /
    • 제27권7호
    • /
    • pp.757-767
    • /
    • 2006
  • Alluvial-plain deposits in the southeastern part of the Eumsung Basin (Cretaceous) are characterized by coarse-grained channel fills encased in purple siltstone beds. It represents distinct channel geometry, infill organization, and variations in facies distribution. The directions of paleocurrent, sedimentary facies changes, and channel-fill geometry can be used to reconstruct a channel network in the alluvial system developed along the southeastern margin of the basin. The channel-fill facies represent downstream changes: 1) down-sizing and well-sorting in clast and martix of channel fills and 2) internal organization of scour fill or gravel lag and overlying cross-stratified, planar-stratified beds. These findings suggest multiple stages of channel-filling processes according to flooding and subsequent stream flows. In the small-scale pull-apart Eumsung Basin (${\sim}7{\times}33km^2$ in area), vertical-stacked alluvial architecture of the coarse-grained channel fills encased in purple siltstone is expected to result from episodic channel shifting under a rapidly subsiding setting.

Sedimentary Facies and Architecture of a Gigantic Gravelly Submarine Channel System in a Cretaceous Foredeep Trough (the Magallanes Basin, Southern Chile)

  • Sohn, Young Kwan;Jo, Hyung Rae;Woo, Jusun;Kim, Young-Hwan G.;Choe, Moon Young
    • Ocean and Polar Research
    • /
    • 제39권2호
    • /
    • pp.85-106
    • /
    • 2017
  • The Lago Sofia conglomerate in southern Chile is a deep-marine gravelly deposit, which is hundreds of meters thick and kilometers wide and extends laterally for more than 100 km, filling the foredeep trough of the Cretaceous Magallanes Basin. For understanding the depositional processes and environments of this gigantic deep-sea conglomerate, detailed analyses on sedimentary facies, architecture and paleoflow patterns were carried out, highlighting the differences between the northern (Lago Pehoe and Lago Goic areas) and southern (Lago Sofia area) parts of the study area. The conglomerate bodies in the northern part occur as relatively thin (< 100 m thick), multiple units intervened by thick mudstone-dominated sequences. They show paleoflows toward ENE and S to SW, displaying a converging drainage pattern. In the southern part, the conglomerate bodies are vertically interconnected and form a thick (> 400 m thick) conglomerate sequence with rare intervening fine-grained deposits. Paleoflows are toward SW. The north-to-south variations are also distinct in sedimentary facies. The conglomerate bodies in the southern part are mainly composed of clast-supported conglomerate with sandy matrix, which is interpreted to be deposited from highly concentrated bedload layers under turbidity currents. Those in the northern part are dominated by matrix- to clast-supported conglomerate with muddy matrix, which is interpreted as the products of composite mass flows comprising a turbidity current, a gravelly hyperconcentrated flow and a mud-rich debris flow. All these characteristics suggest that the Lago Sofia conglomerate was formed in centripetally converging submarine channels, not in centrifugally diverging channels of submarine fans. The tributaries in the north were dominated by mass flows, probably affected by channel-bank failures or basin-marginal slope instability processes. In contrast, the trunk channel in the south was mostly filled by tractive processes, which resulted in the vertical and lateral accretion of gravel bars, deposition of gravel dunes and filling of scours and channels, similar to deposits of terrestrial gravel-bed rivers. The trunk channel developed along the axis of foredeep trough and its confinement within the trough is probably responsible for the thick, interconnected channel fills. The large-scale architecture of the trunk-channel fills shows an eastward offset stacking pattern, suggesting that the channel migrated eastwards most likely due to the uplift of the Andean Cordillera.

마젤란 분지의 백악기 심해저 하도 퇴적계의 퇴적상 및 진화 (Sedimentary Facies and Evolution of the Cretaceous Deep-Sea Channel System in Magallanes Basin, Southern Chile)

  • 최문영;손영관;조형래;김예동
    • Ocean and Polar Research
    • /
    • 제26권3호
    • /
    • pp.385-400
    • /
    • 2004
  • The Lago Sofia Conglomerate encased in the 2km thick hemipelagic mudstones and thinbedded turbidites of the Cretaceous Cerro Toro Formation, southern Chile, is a deposit of a gigantic submarine channel developed along a foredeep trough. It is hundreds of meters thick kilometers wide, and extends for more than 120km from north to south, representing one of the largest ancient submarine channels in the world. The channel deposits consist of four major facies, including stratified conglomerates (Facies A), massive or graded conglomerates (Facies B), normally graded conglomerates with intraformational megaclasts (Facies C), and thick-bedded massive sandstones (Facies D). Conglomerates of Facies A and B show laterally inclined stratification, foreset stratification, and hollow-fill structures, reminiscent of terrestrial fluvial deposits and are suggestive of highly competent gravelly turbidity currents. Facies C conglomerates are interpreted as deposits of composite or multiphase debris flows associated with preceding hyperconcentrated flows. Facies D sandstones indicate rapidly dissipating, sand-rich turbidity currents. The Lago Sofia Conglomerate occurs as isolated channel-fill bodies in the northern part of the study area, generally less than 100m thick, composed mainly of Facies C conglomerates and intercalated between much thicker fine-grained deposits. Paleocurrent data indicate sediment transport to the east and southeast. They are interpreted to represent tributaries of a larger submarine channel system, which joined to form a trunk channel to the south. The conglomerate in the southern part is more than 300 m thick, composed of subequal proportions of Facies A, B, and C conglomerates, and overlain by hundreds of m-thick turbidite sandstones (Facies D) with scarce intervening fine-grained deposits. It is interpreted as vertically stacked and interconnected channel bodies formed by a trunk channel confined along the axis of the foredeep trough. The channel bodies in the southern part are classified into 5 architectural elements on the basis of large-scale bed geometry and sedimentary facies: (1) stacked sheets, indicative of bedload deposition by turbidity currents and typical of broad gravel bars in terrestrial gravelly braided rivers, (2) laterally-inclined strata, suggestive of lateral accretion with respect to paleocurrent direction and related to spiral flows in curved channel segments around bars, (3) foreset strata, interpreted as the deposits of targe gravel dunes that have migrated downstream under quasi-steady turbidity currents, (4) hollow fills, which are filling thalwegs, minor channels, and local scours, and (5) mass-flow deposits of Facies C. The stacked sheets, laterally inclined strata, and hollow fills are laterally transitional to one another, reflecting juxtaposed geomorphic units of deep-sea channel systems. It is noticeable that the channel bodies in the southern part are of feet stacked toward the east, indicating eastward migration of the channel thalwegs. The laterally inclined strata also dip dominantly to the east. These features suggest that the trunk channel of the Lago Sofia submarine channel system gradually migrated eastward. The eastward channel migration is Interpreted to be due to tectonic forcing imposed by the subduction of an oceanic plate beneath the Andean Cordillera just to the west of the Lago Sofia submarine channel.

현생 및 고기 급경사 선상지-삼각쭈계 퇴적층의 특성과 퇴적상 (Depositional features and sedimentary facies of steep-faced fan-delta systems: modern and ancient)

  • 최문영;조성권;황인걸
    • 한국석유지질학회지
    • /
    • 제2권2호
    • /
    • pp.71-81
    • /
    • 1994
  • 선상지 삼각주는 흔히 깊은 분지로 전진하여 급경사의 전면층을 형성한다. 현생의 급경사 선상지-삼각주는 사태흔적, 츄트/협곡, 스웨일(swale), 로브(lobe), 스플레이(splay). 및 암설낙하(debris fall) 등의 표층 지형에 의해 특징지워진다. 이들은 강하구에서 발생하는 퇴적물 붕괴나 중력류에 의해 생성된다. 고기의 선상지-삼각주 퇴적상은 경사가 급한 전면층과 비교적 경사가 완만한 기저층 및 전삼각주(prodelta)층을 구성한다. 이는 다시 판상 또는 쐐기 모양의 역암 및 사암, 사태 충진층, 츄트/협곡 충진층, 판상층, 열편층, 사태층 등으로 구성된다.

  • PDF

대응분석을 이용한 은행 채널전략 수립연구 : 고객의 은행채널 선택요인을 바탕으로 (Establishment of Bank Channel Strategy using Correspondence Analysis : Based on the Customer's Choice Factors of Bank Channel)

  • 박운학;박영배
    • 한국산업정보학회논문지
    • /
    • 제28권6호
    • /
    • pp.151-171
    • /
    • 2023
  • 본 연구의 목적은 은행의 효율적인 채널전략 수립을 위해 채널을 유형별로 분류하고, 분류된 유형에 따라 대응분석을 실시하여 채널모형을 제안하는 것이다. 이를 위해 은행원 대상 설문조사를 실시하여 범주형 자료를 시각화하고 포지셔닝 맵을 작성하였다. 그 결과 첫째, 12개 은행채널을 업무처리 주체와 장소를 기준으로 4개 유형으로 분류하고, 이를 다시 풀뱅킹과 셀프뱅킹으로 그룹화 하였다. 둘째, 분류된 유형에 따라 대응분석을 실시하여 점포형은 상품설명과 고객관리에 적합하고, 뱅킹형은 시·공간 제약 없이 효율적인 업무처리에 적합하며, 기기형과 뱅킹형은 고객관리에 부적합하고, 이동형은 인식부족으로 운영효과가 낮은 상태라는 결과를 도출하였다. 이는 은행업무의 특성을 반영하고 채널간 부족한 부분을 보완하는 하이브리드형 융합채널이 필요함을 의미한다. 셋째, 업무처리주체와 장소로 구성된 2×2모형위에 공통분면이 추가된 채널모형을 도출하였다. 따라서 본 연구는 고객의 은행채널 선택요인을 바탕으로 채널 다각화와 채널유형 별 역할분담 요소를 고찰함에 기여하고, 미래채널 전략수립과 효율적인 채널운영을 위한 기초연구 결과를 제시하였다는 점에서 연구의 의의를 가진다.

황해 중동부 경기만의 후기 제4기 순차층서 연구 (Late Quaternary Sequence Stratigraphy in Kyeonggi Bay, Mid-eastern Yellow Sea)

  • 권이균
    • 한국지구과학회지
    • /
    • 제33권3호
    • /
    • pp.242-258
    • /
    • 2012
  • 황해 경기만은 제4기에 반복된 해침과 해퇴로 4개의 해침-해퇴 퇴적체(DS-1, DS-2, DS-3, DS-4)를 형성하였다. 본 연구는 황해 경기만 퇴적체의 형성을 6개 퇴적단계로 나누어 설명한다. A 단계는 MIS-6 저해수면 시기로서 큰 규모의 해수면 하강으로 인해 대부분의 지역이 대기에 노출되고 광범위한 하도 침식 및 풍화작용의 영향을 받았다. 이어지는 B 단계는 MIS-5e 까지 빠른 해수면 상승과정에서 MIS-5 시퀀스의 하부 해침퇴적체가 형성되었고, 다음에 이어지는 MIS-5d부터 MIS-4 저해수면 시기까지의 C 단계에서는 MIS-5 시퀀스의 상부인 해퇴퇴적체가 만들어졌다. 다음의 D 단계는 MIS-4 저해수면 시기부터 MIS-3c 고해수면 시기까지로 하도 침식 및 하도 충전 구조로 이루어진 MIS-3 해침 퇴적체가 형성되었다. 다음의 E 단계에서는 LGM 시기까지 계속적인 해수면 하강이 있었고 외해쪽에서는 천해 기원의 MIS-3 해퇴퇴적체가 만들어진 반면에, 내륙쪽에서는 노출된 환경에서 하도 충전 퇴적체나 범람원 퇴적체가 형성되었다. 마지막 단계인 F 단계는 황해 전체적으로 홀로세 해침이 발생하였고, 이 시기에 외해쪽에서는 대륙붕 사질 퇴적체와 조석사주 퇴적체가 형성되어 고해수면 시기인 현재까지 퇴적이 일어나고 있다.

해양 탄성파 탐사 결과로 본 한반도 남동부연안 4기 단층의 분포와 특성 (Distribution and characteristics of Quaternary faults in the coastal area of the southeastern Korean Peninsula: Results from a marine seismic survey)

  • 김한준;주형태;홍종국;박건태;남상헌;조현무
    • 한국지구물리탐사학회:학술대회논문집
    • /
    • 한국지구물리탐사학회 2002년도 정기총회 및 제4회 특별심포지움
    • /
    • pp.46-66
    • /
    • 2002
  • 스파커와 12채널 스트리머, 그리고 휴대용 기록기를 이용하여 고리원전 연안에서 탄성파탐사를 수행함으로써 4기 단층의 분포와 특성을 파악하였다. 스트리머의 채널간격은 6.25 m이며 스파커는 500 Hz까지의 음파를 발생시키므로 수평 및 수직분해능이 매우 높은 자료를 얻을 수 있었다. 조사지역에는 한반도의 동남부 해안을 따라 분포하는 mud belt를 구성하는 홀로세 퇴적물이 30-40 m의 두께로 쌓여 있다. 조사지역 전체에서 홀로세와 플라이스토세의 경계를 이루는 반사면은 매우 뚜렷하며 천부가스층의 분포도 확인되었다. 조사지역내에서 다수의 4기 단층들이 발견되는데 이들은 수직에 가까운 경사를 가지며 남북방향으로 연장되고 있다. 이들 단층들은 수백 m의 간격으로 배열되어 있으며 지역적으로 인장력에 의해 형성된 특성을 보여주기도 하지만 대체로 압축력이 우세한 영역에서 형성된 것으로 해석된다. 홀로세 전기동안 해침과 관련된 침식충진 퇴적층으로 해석되는 지층을 자르는 단층들도 지역적으로 발견되었다. Mud belt를 구성하는 퇴적층 내에 분포하는 천부가스는 균열이 생긴 단층면을 따라 올라온 것 같은 양상을 보여주기도 한다. 동해를 형성시킨 지구조 운동이 마이오세 후기 이후 약해졌지만 그 이후에 한반도의 남동연안에서 단층운동이 활발하였음은 아직도 정상보다 뜨거운 맨틀영역에 속하는 이 지역이 지체구조적으로 안정되지 못함을 지시한다.

  • PDF

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