• 제목/요약/키워드: Tertiary sedimentary rocks

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포항지역 신생대 제3기 미고결 퇴적층의 암반분류 (Rock Mass Classification of Tertiary Unconsolidated Sedimentary Rocks In Pohang Area)

  • 김성욱;최은경;이융희
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 춘계 학술발표회
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    • pp.999-1008
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    • 2009
  • A series of sedimentary rocks which are formed in the Tertiary are distributed around Samcheok(Samcheok-Pukpyoung basin), Younghae(Younghae basin), Pohang(Pohang basin), Gyeongju(Yangnam basin), Ulsan(Ulsan basin), Jeju(Seogyuipo formation) in the southern region of the Korean Peninsula. This study concerned with geological, geophysical, geotechnical properties of the unconsolidated rocks in the Pohang area. A consolidated rocks are classified as hard rock - soft rock - weathered rock - residual soil follows in degree of weathering. But unconsolidated rocks has soil properties as well as rock's at the same time. The results of field excursion, boring, borehole-logging, rock testing, geophysical survey, laboratory test are soft rock range, but the durability of the rock until the residual soil from the weathered rock. We accomplished the rock mass classification of the unconsolidated rocks.

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양산단층지역에 분포하는 퇴적암 및 화성암류에 대한 고자기 연구 (Palaeomagnetic Study of Sedimentary and Igneous Rocks in the Yangsan Strike-slip Fault Area, SE Korea)

  • 강희철;김인수;손문;정현정
    • 자원환경지질
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    • 제29권6호
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    • pp.753-765
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    • 1996
  • It is a well known fact that the remanent magnetization direction of the Tertiary rocks is deflected significantly clockwise (about $50^{\circ}$) in the Tertiary basins of the southeastern part of Korean peninsula. This fact has been interpreted as an evidence of north-south spreading of the East Sea (Sea of Japan) and dextral strike-slip motion of the Yangsan fault. As deflection (rotation) of remanent magnetizations is frequently reported from various regions of the world in the vicinities of strike-slip fault, such phenomena are to be expected in the Yangsan fault region also. It was the purpose of this study to clarify whether such premise is right or not. A total of 445 independently oriented core samples were collected from Cretaceous rocks of various lithology (sedimentary rocks, andesites and I-type granites) in the Yangsan fault area. In spite of through AF and thermal demagnetization experiments, no sign of remanent magnetization deflection was found. Instead, palaeomagnetic poles calculated from formation-mean ChRM directions are very similar to those of contemporary (Barremian, and late Cretaceous-Tertiary) sedimentary and plutonic rocks in the other parts of $Ky{\check{o}}ngsang$ basin as well as those of China. Therefore, possibility of tilting of granite plutons and horizontal block rotation of study area is excluded. It is also concluded that the Yangsan fault did not take any significant role in the Cenozoic tectonic evolution of southeast Korea and the East Sea region. The boundary between rotated and unrotated region of remanent magnetization is not the Yangsan fault line, but must lie further east of it.

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Geochemistry for the mafic volcanic rocks from the Korean Tertiary basins

  • Song, Suck-Hwan;Lee, Hyun-Koo
    • 대한자원환경지질학회:학술대회논문집
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    • 대한자원환경지질학회 2003년도 춘계 학술발표회 논문집
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    • pp.330-330
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    • 2003
  • Several volcanics are found within the Tertiary sedimentary basins, southeastern part of Korea. The sedimentary basins have been interpreted to have formed in the framework of separation of the East Sea. The volcanics are Eocene or Early and Middle Miocene in ages, showing a distincetve chronological gap, and show mafic and silicic (bimodal) in composotion. The Miocene volcanics were regionally and stratigraphically grouped into two varieties along the Hyeongsan fault; younger volcanics (13.6-15.2 Ma, K) from the north of the fault, erupted after the opening of the East Sea, and older volcanics (16.2-21.1 Ma) from the south of the fault. (omitted)

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한반도 동해안의 모래해안 발달과 암석 분포 사이의 상관성 (The Relation between Sandy Shore Distribution and Basic Rock in the East Coast of the Korean Peninsula)

  • 김영래
    • 한국지형학회지
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    • 제25권4호
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    • pp.21-35
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    • 2018
  • The distribution and size of sandy beaches along eastern Korea has a close relationship with the presence of granite rocks. In general, elongated and wide beaches with abundant sands are likely to develop along the coasts where granitic basic rocks comprise the dominant geology or where a large amount of sands are supplied by streams from inland granitic rocks. Small sandy beaches, in contrast, appear in non-granitic rocks (i.e., under sedimentary and/or metamorphic geology). Hence, large beaches are observed continuously along the shore of Gangwon-do, of which coasts consist predominantly of granitic geology. Such continuity declines from Samcheok city to Pohang city. The rock of Gyeonbuk-do is commonly known as sedimentary, deposited between the late Triassic and the early Tertiary Periods. Because few sands are supplied from the upstream areas, sandy beaches unlikely develop along the coasts of the province, only showing a sporadic, discontinuous distribution under Bulguksa granite, granitic gneiss, and some volcanic rocks. Erosion was rarely observed in the beaches where granitic rocks are distributed, whereas merely five beaches seemed to have undergone some level of erosion in non-granitic regions. This is presumably because a larger amount of sands than that which had been eroded away was replenished in areas under granitic geology, while under non-granitic geology having a deficit in sands, no large sandy beaches had formed at first.

포텐셜필드의 스텍트럼대비법을 이용한 의성소분지의 지구조 연구 (Geologic Structure of Euiseong Sub-basin from Spectrally Correlated Geopotential Field Anomalies)

  • 김원균
    • 자원환경지질
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    • 제33권3호
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    • pp.217-228
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    • 2000
  • We use spectral correlation method to analyze gravity and magnetic anomalies of Euiseong Sub-basin for distribution of rock facies and gelogic structures. The analysis reveals distinct polarity between gravity and magnetic anomaly correlation ; intermediate to mafic intrusives, extrusives, and the Tertiary basin shows positive gravity (+G) and positive magnetic (+M) correlation. Granitic gneiss and felsic volcanics negative gravity 9-G) and negative magnetic (-M) correlation. The Palgongsan granite, felsic to mafic extrusives and Mesozoic granites are characterized by -G and + M correlation. +G and -M correlations in the sedimentary formations are interpreted by uplift of pre-Cretaceous basement rocks . The + G and + M correlation characteristics in northeastern part of Euiseong Sub-basin including the Tertiary sedimentary basin result from the uplift of crustal materials. Major axes of spectrally correlated amomalies have mostly NW-SE or NE-SW directions. The former is due to the intrusives along strike-slip faults, and the latter which is observed in sedimentary formations is related to geological structures of basement associated new insight into the boundary between Euiseong and Milyang Sub-basin.

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멕시코 산 루이스 포토시주의 지질 및 광화작용에 대한 고찰 (A Study on Geology and Mineralization in San Luis Potosi, Mexico)

  • 오일환;허철호
    • 한국지구과학회지
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    • 제40권2호
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    • pp.163-176
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    • 2019
  • 멕시코 중부 산 루이스 포토시주의 기반암은 상부 고생대 변성암으로 구성되어있으며, 산 루이스 포토시주의 북동쪽에 위치한 시에라 데 카토르세 중심부에 노출되어있다. 고생대 기반암을 부정합으로 덮고 있는 퇴적층은 상부 쥬라기 해성층으로 구성되며, 자카테카스층과 상부 트라이아스기 육성 우이자찰층의 적색층준과 일치한다. 이들 층은 쥬라기 라 호야 적색층 또는 상부 쥬라기 해성층에 의해 부정합으로 덮혀있다. 산 루이스 포토시주에서, 이 층위에는 백악기 석회질 해성층이 정합으로 놓여있다. 신생대층들은 상기한 암석들중 일부를 부정합으로 덮고 있으며, 해성 쇄설암뿐만아니라 미분화된 화산암들로 구성된다. 현존하는 관입 화성암들은 산성 내지 중성 조성이며 변성 기반암 및 퇴적암을 관입한다. 플라이스토세에 증발성 퇴적물을 수반한 역암들이 퇴적되었다. 제4기 지질은 현무암류, 산록퇴적물, 충적층, 증발암 및 염류 피각층으로 구성되어있다. 산 루이스 포토시 주에는, 매우 다양한 금속 및 비금속 광상유형이 알려져있다. 이들 광상의 모암은 매우 다양하며 고생대부터 제3기까지를 구성하는 층들을 포함한다. 광화연령은 약 75%가 제3기이며 주로 후생성 광상이다. 결론적으로, 멕시코 산 루이스 포토시주의 지질-자원 정보는 향후 국내기업이 멕시코의 광업분야 진출시 금속 및 비금속 광화대 부존지 예측 및 유망광화대 선정에 활용될 것으로 판단된다.

멕시코 자카테카스 주의 지질 및 광화작용 (Geology and Mineralization in Zacatecas State, Mexico)

  • 허철호;오일환
    • 광물과 암석
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    • 제34권1호
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    • pp.69-81
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    • 2021
  • 멕시코 자카테카스 주의 지질은 주로 중생대 퇴적암 및 화산암, 신생대 화산암 및 심성암으로 구성된다. 주 북서쪽의 고생대 변성암은 층서적으로 가장 오래된 암석이다. 이 암석은 층서적으로 카오파스층과 일치하며 이 층하부에는 후기 고생대 로데오층이 놓여있다. 중생대 층서는 후기 삼첩기의 해양성 퇴적층서와 삼첩기-쥐라기 나자스층의 적색층이 대표적이다. 상부 쥐라기 해양성 퇴적층은 나자스층 또는 고생대 변성암 상위에 놓여있다. 백악기층은 북쪽 및 북동쪽에 부존하는 해양성 퇴적암과 중앙 및 남동쪽의 화산성 퇴적암으로 구성된다. 신생대는 화산성 미분화 암석, 산성 및 중성의 조성을 지닌 관입성 화성암 및 증발성 퇴적물을 지닌 대륙성 역암으로 구성된다. 제4기는 현무암, 산록 퇴적물, 충적층, 증발암 및 염류피각을 포함한다. 다양한 유형의 금속 및 비금속광상이 자카테카스 주에 분포한다. 이들 광상을 구성하는 암석들은 다양하며 고생대부터 제3기까지 층들을 포함한다. 광상 생성시기는 90%가 제3기에 해당되며, 광상생성은 주로 후생기원이다.

멕시코 이달고주의 지질 및 광화작용 (Geology and Mineralization in Hidalgo State, Mexico)

  • 오일환;허철호
    • 한국광물학회지
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    • 제31권1호
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    • pp.57-65
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    • 2018
  • 멕시코 이달고주의 지질은 선캠브리아기 변성암이 기저부를 이루며 상부에 고생대 퇴적암이 부정합으로 놓여있다. 트라이아스기-쥬라기 및 백악기 퇴적암은 상기 언급한 암석들위에 경사부정합적으로 놓여있다. 이들 중생대 암석들은 기저부가 해양성 기원인 신생대 암석들에 의해 덮혀있다. 신생대 암층의 정상부는 안산암질 및 현무암질 조성의 화산암으로 변화한다. 그리고, 매우 다양한 금속 및 비금속 광상들이 이달고주에 부존한다. 이들 광상을 배태하고 있는 암석들은 역시 매우 다양하며, 대부분 중생대에서 제3기층에 해당한다. 그리고, 광화연령은 90%가 제3기에 해당된다. 이달고주는 멕시코에서 은과 망간의 주요 산지로 대부분의 주요 광상들은 퇴적암 배태 함은맥상 광상에 속한다. 다음으로는 연과 아연, 일부 소규모 철광상도 부존하고 있다. 주석과 몰리브데늄 광화작용의 증거가 있으나, 이들 광상들은 저품위고 매장량이 적어서 아직까지 개발되지 않았다. 그리고, 퇴적기원, 열수기원, 변성기원 및 화산기원의 다양한 비금속 광상들이 부존되어있는 것으로 보고되어있다.

제3기 퇴적암 및 화산암 분포지의 산사태 예측모델 (A Prediction Model of Landslides in the Tertiary Sedimentary Rocks and Volcanic Rocks Area)

  • 채병곤;김원영;나종화;조용찬;김경수;이춘오
    • 지질공학
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    • 제14권4호
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    • pp.443-450
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    • 2004
  • 이 연구는 제3기 퇴적암과 화산암이 분포하는 지역의 자연사면에서 발생하는 토석류 산사태를 예측하고자 로지스틱 회귀분석(logistic regression analysis)을 이용하여 예측모델을 개발한 것이다. 통계적 방법을 이용한 산사태 예측모델 개발을 위해 산사태 자료는 경북 포항지역에서 1998년 발생한 산사태를 대상으로 수집하였다. 로지스틱 회귀분석의 기본 특성을 고려하여 현장조사 및 실내토질시험은 산사태 발생지점 전체와 임의로 선택한 미발생 지점을 대상으로 실시하였다. 산사태 발생에 영향을 미치는 인자는 로지스틱 회귀분석을 실시하여 최종적으로 6개 영향인자를 선정하였다. 이들 6개 인자는 지형요소 2개와 지질요소 4개로 구성되어 있다. 개발된 모델은 신뢰성 검증을 수행한 결과 $90\%$ 이상의 예측률을 확보한 것으로 나타났다. 이 모델을 바탕으로 기존에 제시된 변성암 및 화강암 분포지에서의 산사태 예측모델과 함께 지질특성을 고려한 산사태 발생의 가능성을 확률적${\cdot}$정량적으로 예측할 수 있게 되었다.

포항(浦項) 및 장기분지(盆地)에 대한 고지자기(古地磁氣), 층서(層序) 및 구조연구(構造硏究); 화산암류(火山岩類)의 K-Ar 연대(年代) (Paleomagnetism, Stratigraphy and Geologic Structure of the Tertiary Pohang and Changgi Basins; K-Ar Ages for the Volcanic Rocks)

  • 이현구;문희수;민경덕;김인수;윤혜수;이타야 테츠마루
    • 자원환경지질
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    • 제25권3호
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    • pp.337-349
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    • 1992
  • The Tertiary basins in Korea have widely been studied by numerous researchers producing individual results in sedimentology, paleontology, stratigraphy, volcanic petrology and structural geology, but interdisciplinary studies, inter-basin analysis and basin-forming process have not been carried out yet. Major work of this study is to elucidate evidences obtained from different parts of a basin as well as different Tertiary basins (Pohang, Changgi, Eoil, Haseo and Ulsan basins) in order to build up the correlation between the basins, and an overall picture of the basin architecture and evolution in Korea. According to the paleontologic evidences the geologic age of the Pohang marine basin is dated to be late Lower Miocence to Middle Miocene, whereas other non-marine basins are older as being either Early Miocene or Oligocene(Lee, 1975, 1978: Bong, 1984: Chun, 1982: Choi et al., 1984: Yun et al., 1990: Yoon, 1982). However, detailed ages of the Tertiary sediments, and their correlations in a basin and between basins are still controversial, since the basins are separated from each other, sedimentary sequence is disturbed and intruded by voncanic rocks, and non-marine sediments are not fossiliferous to be correlated. Therefore, in this work radiometric, magnetostratigraphic, and biostratigraphic data was integrated for the refinement of chronostratigraphy and synopsis of stratigraphy of Tertiary basins of Korea. A total of 21 samples including 10 basaltic, 2 porphyritic, and 9 andesitic rocks from 4 basins were collected for the K-Ar dating of whole rock method. The obtained age can be grouped as follows: $14.8{\pm}0.4{\sim}15.2{\pm}0.4Ma$, $19.9{\pm}0.5{\sim}22.1{\pm}0.7Ma$, $18.0{\pm}1.1{\sim}20.4+0.5Ma$, and $14.6{\pm}0.7{\sim}21.1{\pm}0.5Ma$. Stratigraphically they mostly fall into the range of Lower Miocene to Mid Miocene. The oldest volcanic rock recorded is a basalt (911213-6) with the age of $22.05{\pm}0.67Ma$ near Sangjeong-ri in the Changgi (or Janggi) basin and presumed to be formed in the Early Miocene, when Changgi Conglomerate began to deposit. The youngest one (911214-9) is a basalt of $14.64{\pm}0.66Ma$ in the Haseo basin. This means the intrusive and extrusive rocks are not a product of sudden voncanic activity of short duration as previously accepted but of successive processes lasting relatively long period of 8 or 9 Ma. The radiometric age of the volcanic rocks is not randomly distributed but varies systematically with basins and localities. It becomes generlly younger to the south, namely from the Changgi basin to the Haseo basin. The rocks in the Changgi basin are dated to be from $19.92{\pm}0.47$ to $22.05{\pm}0.67Ma$. With exception of only one locality in the Geumgwangdong they all formed before 20 Ma B.P. The Eoil basalt by Tateiwa in the Eoil basin are dated to be from $20.44{\pm}0.47$ to $18.35{\pm}0.62Ma$ and they are younger than those in the Changgi basin by 2~4 Ma. Specifically, basaltic rocks in the sedimentary and voncanic sequences of the Eoil basin can be well compared to the sequence of associated sedimentary rocks. Generally they become younger to the stratigraphically upper part. Among the basin, the Haseo basin is characterized by the youngest volcanic rocks. The basalt (911214-7) which crops out in Jeongja-ri, Gangdong-myon, Ulsan-gun is $16.22{\pm}0.75Ma$ and the other one (911214-9) in coastal area, Jujon-dong, Ulsan is $14.64{\pm}0.66Ma$ old. The radiometric data are positively collaborated with the results of paleomagnetic study, pull-apart basin model and East Sea spreading theory. Especially, the successively changing age of Eoil basalts are in accordance with successively changing degree of rotation. In detail, following results are discussed. Firstly, the porphyritic rocks previously known as Cretaceous basement (911213-2, 911214-1) show the age of $43.73{\pm}1.05$$49.58{\pm}1.13Ma$(Eocene) confirms the results of Jin et al. (1988). This means sequential volcanic activity from Cretaceous up to Lower Tertiary. Secondly, intrusive andesitic rocks in the Pohang basin, which are dated to be $21.8{\pm}2.8Ma$ (Jin et al., 1988) are found out to be 15 Ma old in coincindence with the age of host strata of 16.5 Ma. Thirdly, The Quaternary basalt (911213-5 and 911213-6) of Tateiwa(1924) is not homogeneous regarding formation age and petrological characteristics. The basalt in the Changgi basin show the age of $19.92{\pm}0.47$ and $22.05{\pm}0.67$ (Miocene). The basalt (911213-8) in Sangjond-ri, which intruded Nultaeri Trachytic Tuff is dated to be $20.55{\pm}0.50Ma$, which means Changgi Group is older than this age. The Yeonil Basalt, which Tateiwa described as Quaternary one shows different age ranging from Lower Miocene to Upper Miocene(cf. Jin et al., 1988: sample no. 93-33: $10.20{\pm}0.30Ma$). Therefore, the Yeonil Quarterary basalt should be revised and divided into different geologic epochs. Fourthly, Yeonil basalt of Tateiwa (1926) in the Eoil basin is correlated to the Yeonil basalt in the Changgi basin. Yoon (1989) intergrated both basalts as Eoil basaltic andesitic volcanic rocks or Eoil basalt (Yoon et al., 1991), and placed uppermost unit of the Changgi Group. As mentioned above the so-called Quarternary basalt in the Eoil basin are not extruded or intruaed simultaneously, but differentiatedly (14 Ma~25 Ma) so that they can not be classified as one unit. Fifthly, the Yongdong-ri formation of the Pomgogri Group is intruded by the Eoil basalt (911214-3) of 18.35~0.62 Ma age. Therefore, the deposition of the Pomgogri Group is completed before this age. Referring petrological characteristics, occurences, paleomagnetic data, and relationship to other Eoil basalts, it is most provable that this basalt is younger than two others. That means the Pomgogri Group is underlain by the Changgi Group. Sixthly, mineral composition of the basalts and andesitic rocks from the 4 basins show different ground mass and phenocryst. In volcanic rocks in the Pohang basin, phenocrysts are pyroxene and a small amount of biotite. Those of the Changgi basin is predominant by Labradorite, in the Eoil by bytownite-anorthite and a small amount pyroxene.

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