컴퓨터 기술의 발전으로 인해 근래 들어 수치지형발달모형을 개발하고 이를 이용하여 다양한 관점에서 지형발달과정의 역동성을 파악하기 위한 시도들이 활발하게 행해졌다. 하지만 국내...

http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.
변환된 중국어를 복사하여 사용하시면 됩니다.
https://www.riss.kr/link?id=A60018404
2011
Korean
980
KCI등재
학술저널
673-692(20쪽)
2
0
상세조회0
다운로드컴퓨터 기술의 발전으로 인해 근래 들어 수치지형발달모형을 개발하고 이를 이용하여 다양한 관점에서 지형발달과정의 역동성을 파악하기 위한 시도들이 활발하게 행해졌다. 하지만 국내...
컴퓨터 기술의 발전으로 인해 근래 들어 수치지형발달모형을 개발하고 이를 이용하여 다양한 관점에서 지형발달과정의 역동성을 파악하기 위한 시도들이 활발하게 행해졌다. 하지만 국내에서는 수치지형발달모형을 활용하거나 개발하는 시도가 거의 없었다. 이에 본 연구에서는 2차원상에서 지질시간 규모의 지형발달을 모의하는 수치지형발달모형을 개발하고 이의 유용성을 확인해 보았다. 개발된 모형은 지표 구성물질을 기반암과 이동 가능한 토양으로 구분하고 토양층의 두께를 모의하기 위해 기반암 풍화를 포함한다. 이를 통해 사면에서는 운반제어환경뿐만이 아니라 풍화제어환경도 모의 가능하다. 또한 토양포행과 같은 사면에서의 점진적인 물질이동과는 별개로 활동(landslide) 역시 주요한 지형형성작용으로 포함한다. 그리고 하천 운반력이 하상물질의 양보다 큰 곳에서는 기반암 하상 침식이 발생하여 분리제어환경도 모의한다. 한편 무한 유향 알고리듬을 이용하여 흐름을 분배하기 때문에 최대하부 경사 유향 알고리듬을 이용할 때 나타나는 흐름 분배상의 문제점을 줄일 수 있다. 개발된 모형을 이용한 모의실험 결과, 본 모형은 지질시간 규모의 지형발달과정을 비교적 합리적으로 모의하였다.
다국어 초록 (Multilingual Abstract)
Advances in computer technology have enabled us to develop and use numerical landscape evolution models (NLEMs) for exploring the dynamics of geomorphic system from a variety of viewpoints which previously could have not been taken. However, as of yet...
Advances in computer technology have enabled us to develop and use numerical landscape evolution models (NLEMs) for exploring the dynamics of geomorphic system from a variety of viewpoints which previously could have not been taken. However, as of yet there have been no trials using or developing NLEMs in Korea. The purpose of this research is to develop a 2 dimensional NLEM on a geological time scale and evaluate its usefulness. The newly developed NLEM (ND-NLEM) treats bedrock weathering as one of the major geomorphic processes and attempts to simulate the thickness of soil. As such it is possible to model the weathering-limited as well as the transport-limited environment on hillslopes. Moreover the ND-NLEM includes not only slow and continuous mass transport like soil creep, but also rapid and discrete mass transport like landslides. Bedrock incision is simulated in the ND-NLEM where fluvial transport capacity is large enough to move all channel bed loads, such that ND-NLEM can model the detachment-limited environment. Furthermore the ND-NLEM adopts the D-infinity algorithm when routing flows in the model domain, so it reduces distortion due to the use of the steepest descent slope flow direction algorithm. In the experiments to evaluate the usefulness of the ND-NLEM, characteristics of the channel network observed from the model results were similar to those of the case study area for comparison, and the hypsometry curve log during the experiment showed rational evidence of landscape evolution. Therefore, the ND-NLEM is shown to be useful for simulating landscape evolution on a geological time scale.
목차 (Table of Contents)
참고문헌 (Reference)
1 윤순옥, "한반도 중부 동해안 정동진, 대진지역의 해안단구 지형발달" 대한지리학회 38 (38): 156-172, 2003
2 변종민, "무한 유향 알고리듬과 Horn 경사 알고리즘이 TOPMODEL 지형지수와 수문반응에 미치는 영향" 대한지리학회 44 (44): 207-223, 2009
3 Oh, K. S, "ountain range system’used since the Japanese Ruling era and ‘ountain scenery system’of traditional geography: Characteristics and problems from a geomorphological point of view" 2 : 1-21, 2000
4 Montgomery, D. R, "Where do channels begin" 336 (336): 232-234, 1988
5 Kim, S. H, "Topographic development of the Central Korea" 10 : 111-123, 1961
6 Heimsath, A. M, "The ‘humped’ soil production function: Eroding Arnhem land, Australia" 34 (34): 1674-1684, 2009
7 Heimsath, A. M, "The soil production function and landscape equilibrium" 388 (388): 358-361, 1997
8 Ahnert, F, "The point of modelling geomorphological systems, In Geomorphology sans frontières" John Willey & Sons 91-113, 1996
9 Gilbert, G, "The convexity of hilltops" 17 : 344-350, 1909
10 Lee, M. B, "The age dating of slope landform in Korea using diffusion equation model" 34 (34): 371-384, 1999
1 윤순옥, "한반도 중부 동해안 정동진, 대진지역의 해안단구 지형발달" 대한지리학회 38 (38): 156-172, 2003
2 변종민, "무한 유향 알고리듬과 Horn 경사 알고리즘이 TOPMODEL 지형지수와 수문반응에 미치는 영향" 대한지리학회 44 (44): 207-223, 2009
3 Oh, K. S, "ountain range system’used since the Japanese Ruling era and ‘ountain scenery system’of traditional geography: Characteristics and problems from a geomorphological point of view" 2 : 1-21, 2000
4 Montgomery, D. R, "Where do channels begin" 336 (336): 232-234, 1988
5 Kim, S. H, "Topographic development of the Central Korea" 10 : 111-123, 1961
6 Heimsath, A. M, "The ‘humped’ soil production function: Eroding Arnhem land, Australia" 34 (34): 1674-1684, 2009
7 Heimsath, A. M, "The soil production function and landscape equilibrium" 388 (388): 358-361, 1997
8 Ahnert, F, "The point of modelling geomorphological systems, In Geomorphology sans frontières" John Willey & Sons 91-113, 1996
9 Gilbert, G, "The convexity of hilltops" 17 : 344-350, 1909
10 Lee, M. B, "The age dating of slope landform in Korea using diffusion equation model" 34 (34): 371-384, 1999
11 Davis, W. M, "The Geographical Cycle" 14 (14): 481-504, 1899
12 Kirchnet, J. W, "Statistical inevitability of Horton’s laws and the apparent randomness of stream channel networks" 21 (21): 591-594, 1993
13 Smith, T. R, "Stability and the conversion of mass in drainage basin evolution" 8 (8): 1506-1529, 1972
14 Wilkinson, M. T, "Soil production in heath and forest, Blue Mountains, Australia: Influence of lithology and palaeoclimate" 30 (30): 923-934, 2005
15 Whipple, K. X, "River incision into bedrock: Mechanics and relative efficacy of plucking, abrasion, and cavitation" 112 (112): 490-503, 2000
16 Woo, H, "River hydraulics" Cheongmoongak 2001
17 Gilbert, G, "Report on the Geology of the Henry Mountains" Washington 1877
18 Park, B. K, "Recent tectonism in the Korean Peninsula and sea floor spreading" 4 : 39-43, 1971
19 Strahler, A. N, "Quantitative analysis of watershed geomorphology" 38 (38): 913-920, 1957
20 McKean, J. A, "Quantification of soil production and downslope creep rates from cosmogenic 10Be accumulations on a hillslope profile" 21 : 343-346, 1993
21 van den Berg, J. H, "Prediction of alluvial channel pattern of perennial rivers" 12 (12): 259-279, 1995
22 Kim, I. S, "Origin and tectonic evolution of the East Sea(Sea of Japan) and the Yansan fault system: A new synthetic interpretation" 28 (28): 84-109, 1992
23 Holmgren, P. B, "Multiple flow direction algorithms for runoff modelling in grid based elevation models: an empirical evaluation" 8 (8): 327-334, 1994
24 Miller, J. R, "Morphometric assessment of lithologic controls on drainage basin evolution tin the Crawford Upland, south-centural Indiana" 290 (290): 569-599, 1990
25 Penck, W., "Morphological analysis of land forms: A contribution to physical Geology" MacMillan 1953
26 Anderson, R. S, "Modeling the tor-dotted crests, bedrock edges, and parabolic profiles of high alpine surfaces of the Wind River Range, Wyoming" 46 (46): 35-58, 2002
27 Densmore, A. L, "Landsliding and the evolution of normal-faultbounded mountains" 103 (103): 15203-15219, 1998
28 Kim, J. W, "Introduction to the method of the functional geomorphology" 22 : 15-27, 1989
29 김종연, "Influence of Tectonic Uplift on Longitudinal Profiles of Bedrock Rivers:Numerical Simulations" 대한지리학회 39 (39): 722-734, 2004
30 Chorley, R. J, "Illustrating the laws of morphometry" 94 (94): 140-150, 1957
31 Strahler, A. N, "Hypsometric (area-altitude) analysis of erosional topography" 63 (63): 1117-1142, 1952
32 Leopold, L. B, "Hydrology for urban land planning: a guidebook on the hydrologic effects of land use" US Geological Survey Circular 554-554, 1968
33 Tucker, G. E, "Hillslope processes, drainage density, and landscape morphology" 34 : 2751-2764, 1998
34 Champel, B, "Growth and lateral propagation of fault-related folds in the Siwaliks of western Nepal: Rates, mechanisms, and geomorphic signature" 107 (107): 2111-, 2002
35 Anderson, R, "Geomorphology: The mechanics and chemistry of landscapes" Cambridge University Press 2010
36 Pelletier, J. D, "Geomorphically based predictive mapping of soil thickness in upland watersheds" 45 (45): 2009
37 Kim, S. H, "Geomorphic studies of the erosion surfaces in Central Korea" 23 : 85-115, 1973
38 Kim, J. W, "Functional relationship among different factors of fluvial geomorphology" 26 (26): 1-29, 1991
39 Wilkinson, M. T, "Exploring pedogenesis via nuclide-based soil production rates and OSL-based bioturbation rates" 43 (43): 767-779, 2005
40 Roering, J. J, "Evidence for nonlinear, diffusive sediment transport on hillslopes and implications for landscape morphology" 35 (35): 853-870, 1999
41 Kooi, H, "Escarpment evolution on high-elevation rifted margins: insights derived from a surface processes model that combines diffusion, advection, and reaction" 99 (99): 12191-12209, 1994
42 Tucker, G. E, "Erosional dynamics, flexural isostasy, and long-lived escarpments: a numerical modeling study" 99 (99): 12229-12243, 1994
43 Horton, R. E, "Erosional development of streams and their drainage basins; Hydrophysical approach to quantitative morphology" 56 (56): 275-370, 1945
44 Beaumont, C, "Erosional control of active compressional orogens, in Thrust Tectonics" Chapman & Hall 1-18, 1992
45 Dietrich, W. E, "Erosion thresholds and land surface morphology" 20 : 675-679, 1992
46 Lenzi, M. A, "Effective discharge for sediment transport in a mountain river: Computational approaches and geomorphic effectiveness" 326 : 257-276, 2006
47 Andrews, E. D, "Effective and bankfull discharges of streams in the Yampa River basin, Colorado and Wyoming" 46 (46): 311-330, 1980
48 Whipple, K. X, "Dynamics of the stream-power river incision model: Implications for height limits of mountain ranges, landscape response timescales, and research needs" 104 (104): 17661-17674, 1999
49 Tucker, G. E, "Drainage basin responses to climate change" 33 (33): 2031-2047, 1997
50 Byun, J, "Development and application of a numerical landscape evolution model to understand the uplift history of the Korean Peninsula" Seoul National University 2011
51 van der Beek, P, "Controls on postmid- Cretaceous landscape evolution in the southeastern highlands of Australia: Insights from numerical surface process models" 104 (104): 4945-4966, 1999
52 Bogaart, P. W, "Channel network morphology and sediment dynamics under alternating periglacial and temperate regimes: A numerical simulation study" 54 (54): 257-277, 2003
53 Montgomery, D. R, "Channel initiation and the problem of landscape scale" 255 : 826-830, 1992
54 Howard, A. D, "Channel changes in badlands" 94 (94): 739-752, 1983
55 King, L. C, "Canons of landscape evolution" 64 (64): 721-752, 1953
56 Ahnert, F, "Brief description of a comprehensive three-dimensional process-response model of landform development" 25 : 29-49, 1976
57 Dury, G. H, "Bankfull discharge: An example of its statistical relationships" 6 : 48-55, 1961
58 Dietrich, W. E, "Analysis of erosion thresholds, channel networks, and landscape morphology using a digital terrain model" 101 : 259-278, 1993
59 Tarboton, D. G, "A new method for the determination of flow directions and upslope areas in grid digital elevation models" 33 (33): 309-319, 1997
60 Howard, A. D, "A detachment-limited model of drainage basin evolution" 30 (30): 2261-2285, 1994
61 Willgoose, G, "A coupled channel network growth and hillslope evolution model, 1" 27 (27): 1671-1684, 1991
62 Coulthard, T. J, "A cellular model of Holocene upland river basin and alluvial fan evolution" 27 (27): 269-288, 2002
63 변종민, "2차원 지질시간 규모 수치지형발달모형의 활용과 개발을 위한 이론적 토대" 대한지리학회 46 (46): 331-350, 2011
Change in Travel Behavior of the Elderly in Seoul Metropolitan Area
Effectiveness of Online Learning Tools in College Education
학술지 이력
| 연월일 | 이력구분 | 이력상세 | 등재구분 |
|---|---|---|---|
| 2022 | 평가 | 계속평가 신청대상 (등재유지) | |
| 2017-01-01 | 등재 | 우수등재학술지 선정 (계속평가) | |
| 2014-01-03 | 학술지명변경 | 외국어명 : Journal of the Korean Geographic Society -> Journal of the Korean Geographical Society | ![]() |
| 2013-01-01 | 등재 | 등재학술지 유지 (등재유지) | ![]() |
| 2010-01-01 | 등재 | 등재학술지 유지 (등재유지) | ![]() |
| 2008-01-01 | 등재 | 등재학술지 유지 (등재유지) | ![]() |
| 2006-01-01 | 등재 | 등재학술지 유지 (등재유지) | ![]() |
| 2003-01-01 | 등재 | 등재학술지 선정 (등재후보2차) | ![]() |
| 2000-07-01 | 등재 | 등재후보학술지 선정 (신규평가) | ![]() |
학술지 인용정보
| 기준연도 | WOS-KCI 통합IF(2년) | KCIF(2년) | KCIF(3년) |
|---|---|---|---|
| 2016 | 1.14 | 1.14 | 1.28 |
| KCIF(4년) | KCIF(5년) | 중심성지수(3년) | 즉시성지수 |
| 1.17 | 1.13 | 1.701 | 0.52 |