• 제목/요약/키워드: approximate derivation

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오대산지진(M=4.8, '07. 1. 20)의 단층파열방향성 (Fault rupture directivity of Odaesan Earthquake (M=4.8, '07. 1. 20))

  • 연관희
    • 지구물리와물리탐사
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    • 제11권2호
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    • pp.137-147
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    • 2008
  • 2007년 1월 20일 발생한 '오대산지진(M = 4.8)'의 특징적인 점은 근거리 지역 관측소인 DGY(기상청 대관령, 진앙거리 = 7 km)에서 기록된 비정상적으로 높은 PGA(최대지반가속도) 관측값(< 0.1 g)이다. 한편 DGY 관측소는 진앙지인근에 위치한 매우 양호한 지진관측소(연관희와 서정희, 2007)로 분류되므로 지진파전달이나 부지증폭특성으로는 설명될 수 없으며, 고주파지진동에 큰 영향을 주는 지진원 특성인 단층파열방향성(rupture directivity)에 의한 것으로 예비 해석될 수 있다. 이 연구에서는 Boatwright (2007)의 방법을 이용하여 단층파열속도(v)의 전단파속도(c)에 대한 상대적 비(= v/c) 및 파열진행방향과의 이격각(${\theta}$, deviation angle)에 대한 함수로 주어지는 일방향 단층파열방향성(unilateral rupture directivity)을 추정하였다. 이러한 단층파열방향성을 평가하기 위해 진앙지 인근 지역의 지진관측소에 대한 점지진원 스펙트럼 모델(Boore, 2003)에 대한 예측오차를 오대산지진의 전 여진 관측자료을 이용하여 계산한 후, 본진 관측자료를 이용한 예측오차와 상대적으로 비교하였다. 본진의 전 여진에 대한 상대적인 스펙트럼 예측오차로부터 관측소별 PGA의 상대적인 크기를 추정하고 이 결과를 이용하여 오대산지진의 단층파열 방향성을 평가한 결과, 오대산지진 인근에서의 높은 PGA 관측값은 NWW-SEE 방향의 북측으로 고각을 갖는 단층면상에서 SE 방향을 따라 거의 수직하게 지표면으로 빠르게 진행된 단층파열의 영향으로 해석되었다.

R.C. 휨부재(部材)의 L.R.F.D. 신뢰성(信賴性) 설계기준(設計基準)에 관한 연구(研究) (A Study on LRFD Reliability Based Design Criteria of RC Flexural Members)

  • 조효남
    • 대한토목학회논문집
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    • 제1권1호
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    • pp.21-32
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    • 1981
  • 최근 구미(歐美) 선진제국(先進諸國)에서는 확률적(確率的)인 개념(槪念)에 의한 한계상태설계법(限界狀態設計法)을 표준시방서(標準示方書)로 도입(導入)하는 경향이 높아지고 있다. 이들 선진국(先進國)에서 채택한 LSD, LRFD, PBLSD 같은 신뢰성설계기준(信賴性設計基準)은 각종(各種) 시공재료(施工材料)에 대한 설계절차(設計節次)를 단순화(單純化)시킬 뿐만아니라 일관성(一貫性)있는 신뢰성(信賴性)을 갖게 하는 능력(能力)을 갖고 있다. 본(本) 연구(硏究)에서는 RC 휨부재(部材)에 대한 이러한 신뢰성설계기준(信賴性設計基準)을 제안(提案)하였다. 이를 위하여 Lind-Hasofer의 불변(不變)2차(次)모멘트 신뢰성이론(信賴性理論)에 의해 반복시행적(反復試行的) 신뢰성해석(信賴性解析) 및 하중(荷重)-저항계수(抵抗係數) 결정(決定)알고리즘을 유도하고, 또한 Cornell의 평균제(平均第)1계이차(階二次)모멘트법(法)을 사용하여 근사적(近似的)으로도 신뢰성(信賴性)을 해석(解析)하여 설계기준(設計基準)을 결정(決定)하도록 하였다. 휨부재(部材)의 저항(抵抗) 및 하중효과(荷重效果)에 대한 불확실양산정(不確實量算定)은 Ellingwood의 하중(荷重) 및 저항불확실량(抵抗不確實量) 해석방법(解析方法)을 따랐다. 현행(現行) 극한강설계시방서(極限强設計示方書) 기준(基準)으로 설계(設計)되는 R.C.휨부재(部材)의 상대적(相對的) 의미(意味)의 안전성수준(安全性水準)을 제안(提案)된 이차(二次)모멘트신뢰성이론(信賴性理論)에 의해 검토(檢討)하였다. 그리고 우리 현실(現實)을 고려한 ${\beta}_0=4$를 적절한 목표신뢰성지수(目標信賴性指數)로 간주(看做)하고 이에 대한 저항(抵抗) 및 하중계수(荷重係數)를 제안(提案)된 방법(方法)으로 계산(計算)하였으며, 현행(現行) 극한강설계기준(極限强設計基準)의 안전율(安全率)과 이들 계산(計算)된 계수(係數)를 비교(比較), 분석(分析)하였다. 현행(現行) 시방서(示方書)로 설계(設計)되는 휨부재(部材)의 신뢰성(信賴性) 수준(水準)은 적절(適切)하지 못하며, 현행(現行) 시방서(示方書)에 규정(規定)된 저항(抵抗) 및 하중계수(荷重係數)는 본연구(本硏究)의 신뢰성이론(信賴性理論)으로 유도한 저항(抵抗) 및 하중계수(荷重係數)와 상당히 차이(差異)가 있음을 발견(發見)할 수 있었다.

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유역특성에 의한 합성단위도의 유도에 관한 연구 (Derivation of the Synthetic Unit Hydrograph Based on the Watershed Characteristics)

  • 서승덕
    • 한국농공학회지
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    • 제17권1호
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    • pp.3642-3654
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    • 1975
  • The purpose of this thesis is to derive a unit hydrograph which may be applied to the ungaged watershed area from the relations between directly measurable unitgraph properties such as peak discharge(qp), time to peak discharge (Tp), and lag time (Lg) and watershed characteristics such as river length(L) from the given station to the upstream limits of the watershed area in km, river length from station to centroid of gravity of the watershed area in km (Lca), and main stream slope in meter per km (S). Other procedure based on routing a time-area diagram through catchment storage named Instantaneous Unit Hydrograph(IUH). Dimensionless unitgraph also analysed in brief. The basic data (1969 to 1973) used in these studies are 9 recording level gages and rating curves, 41 rain gages and pluviographs, and 40 observed unitgraphs through the 9 sub watersheds in Nak Oong River basin. The results summarized in these studies are as follows; 1. Time in hour from start of rise to peak rate (Tp) generally occured at the position of 0.3Tb (time base of hydrograph) with some indication of higher values for larger watershed. The base flow is comparelatively higher than the other small watershed area. 2. Te losses from rainfall were divided into initial loss and continuing loss. Initial loss may be defined as that portion of storm rainfall which is intercepted by vegetation, held in deppression storage or infiltrated at a high rate early in the storm and continuing loss is defined as the loss which continues at a constant rate throughout the duration of the storm after the initial loss has been satisfied. Tis continuing loss approximates the nearly constant rate of infiltration (${\Phi}$-index method). The loss rate from this analysis was estimated 50 Per cent to the rainfall excess approximately during the surface runoff occured. 3. Stream slope seems approximate, as is usual, to consider the mainstreamonly, not giving any specific consideration to tributary. It is desirable to develop a single measure of slope that is representative of the who1e stream. The mean slope of channel increment in 1 meter per 200 meters and 1 meter per 1400 meters were defined at Gazang and Jindong respectively. It is considered that the slopes are low slightly in the light of other river studies. Flood concentration rate might slightly be low in the Nak Dong river basin. 4. It found that the watershed lag (Lg, hrs) could be expressed by Lg=0.253 (L.Lca)0.4171 The product L.Lca is a measure of the size and shape of the watershed. For the logarithms, the correlation coefficient for Lg was 0.97 which defined that Lg is closely related with the watershed characteristics, L and Lca. 5. Expression for basin might be expected to take form containing theslope as {{{{ { L}_{g }=0.545 {( { L. { L}_{ca } } over { SQRT {s} } ) }^{0.346 } }}}} For the logarithms, the correlation coefficient for Lg was 0.97 which defined that Lg is closely related with the basin characteristics too. It should be needed to take care of analysis which relating to the mean slopes 6. Peak discharge per unit area of unitgraph for standard duration tr, ㎥/sec/$\textrm{km}^2$, was given by qp=10-0.52-0.0184Lg with a indication of lower values for watershed contrary to the higher lag time. For the logarithms, the correlation coefficient qp was 0.998 which defined high sign ificance. The peak discharge of the unitgraph for an area could therefore be expected to take the from Qp=qp. A(㎥/sec). 7. Using the unitgraph parameter Lg, the base length of the unitgraph, in days, was adopted as {{{{ {T}_{b } =0.73+2.073( { { L}_{g } } over {24 } )}}}} with high significant correlation coefficient, 0.92. The constant of the above equation are fixed by the procedure used to separate base flow from direct runoff. 8. The width W75 of the unitgraph at discharge equal to 75 per cent of the peak discharge, in hours and the width W50 at discharge equal to 50 Per cent of the peak discharge in hours, can be estimated from {{{{ { W}_{75 }= { 1.61} over { { q}_{b } ^{1.05 } } }}}} and {{{{ { W}_{50 }= { 2.5} over { { q}_{b } ^{1.05 } } }}}} respectively. This provides supplementary guide for sketching the unitgraph. 9. Above equations define the three factors necessary to construct the unitgraph for duration tr. For the duration tR, the lag is LgR=Lg+0.2(tR-tr) and this modified lag, LgRis used in qp and Tb It the tr happens to be equal to or close to tR, further assume qpR=qp. 10. Triangular hydrograph is a dimensionless unitgraph prepared from the 40 unitgraphs. The equation is shown as {{{{ { q}_{p } = { K.A.Q} over { { T}_{p } } }}}} or {{{{ { q}_{p } = { 0.21A.Q} over { { T}_{p } } }}}} The constant 0.21 is defined to Nak Dong River basin. 11. The base length of the time-area diagram for the IUH routing is {{{{C=0.9 {( { L. { L}_{ca } } over { SQRT { s} } ) }^{1/3 } }}}}. Correlation coefficient for C was 0.983 which defined a high significance. The base length of the T-AD was set to equal the time from the midpoint of rain fall excess to the point of contraflexure. The constant K, derived in this studies is K=8.32+0.0213 {{{{ { L} over { SQRT { s} } }}}} with correlation coefficient, 0.964. 12. In the light of the results analysed in these studies, average errors in the peak discharge of the Synthetic unitgraph, Triangular unitgraph, and IUH were estimated as 2.2, 7.7 and 6.4 per cent respectively to the peak of observed average unitgraph. Each ordinate of the Synthetic unitgraph was approached closely to the observed one.

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