Assessment of wave energy resources and their associated uncertainties for two coastal areas in Japan
At reconnaissance to feasibility study stages of wave energy development, guidelines and standards recommend wave power assessments to be conducted for long periods of time, albeit at relatively coarse spatial resolutions. However, quite often developers need to make a preliminary site selection bas...
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Published in | Journal of marine science and technology Vol. 26; no. 3; pp. 917 - 930 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
Tokyo
Springer Japan
01.09.2021
Springer Springer Nature B.V |
Subjects | |
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Abstract | At reconnaissance to feasibility study stages of wave energy development, guidelines and standards recommend wave power assessments to be conducted for long periods of time, albeit at relatively coarse spatial resolutions. However, quite often developers need to make a preliminary site selection based on high-resolution information. Unfortunately, even with abundant computational resources nowadays, running a high-resolution coastal model for more than a decade is still not practical. In this paper, we propose to combine uncertainty estimates from a 21-year-long 1-km-resolution model and a high-resolution (10 m nearshore) coastal model to assess wave energy. Two sites in Japan facing the Pacific Ocean were selected for this study. One site located on the southern coast (site-S) is affected more by the passage of typhoons than another site located on the eastern coast (site-E). The estimated wave power climatology at site-S ranges between 3 and 7
kW
m
-
1
with an uncertainty of ± 0.27 to ± 0.51
kW
m
-
1
; whereas for site-E, the climatology varies between 3 and 9
kW
m
-
1
with uncertainties of ± 0.12 to ± 0.34
kW
m
-
1
. In general, the eastern coastal area of Japan is found to offer higher wave power and lower margins of uncertainty than compared with the southern coastal area. |
---|---|
AbstractList | At reconnaissance to feasibility study stages of wave energy development, guidelines and standards recommend wave power assessments to be conducted for long periods of time, albeit at relatively coarse spatial resolutions. However, quite often developers need to make a preliminary site selection based on high-resolution information. Unfortunately, even with abundant computational resources nowadays, running a high-resolution coastal model for more than a decade is still not practical. In this paper, we propose to combine uncertainty estimates from a 21-year-long 1-km-resolution model and a high-resolution (10 m nearshore) coastal model to assess wave energy. Two sites in Japan facing the Pacific Ocean were selected for this study. One site located on the southern coast (site-S) is affected more by the passage of typhoons than another site located on the eastern coast (site-E). The estimated wave power climatology at site-S ranges between 3 and 7 kWm-1 with an uncertainty of ± 0.27 to ± 0.51 kWm-1; whereas for site-E, the climatology varies between 3 and 9 kWm-1 with uncertainties of ± 0.12 to ± 0.34 kWm-1. In general, the eastern coastal area of Japan is found to offer higher wave power and lower margins of uncertainty than compared with the southern coastal area. At reconnaissance to feasibility study stages of wave energy development, guidelines and standards recommend wave power assessments to be conducted for long periods of time, albeit at relatively coarse spatial resolutions. However, quite often developers need to make a preliminary site selection based on high-resolution information. Unfortunately, even with abundant computational resources nowadays, running a high-resolution coastal model for more than a decade is still not practical. In this paper, we propose to combine uncertainty estimates from a 21-year-long 1-km-resolution model and a high-resolution (10 m nearshore) coastal model to assess wave energy. Two sites in Japan facing the Pacific Ocean were selected for this study. One site located on the southern coast (site-S) is affected more by the passage of typhoons than another site located on the eastern coast (site-E). The estimated wave power climatology at site-S ranges between 3 and 7 [Formula omitted] with an uncertainty of ± 0.27 to ± 0.51 [Formula omitted]; whereas for site-E, the climatology varies between 3 and 9 [Formula omitted] with uncertainties of ± 0.12 to ± 0.34 [Formula omitted]. In general, the eastern coastal area of Japan is found to offer higher wave power and lower margins of uncertainty than compared with the southern coastal area. At reconnaissance to feasibility study stages of wave energy development, guidelines and standards recommend wave power assessments to be conducted for long periods of time, albeit at relatively coarse spatial resolutions. However, quite often developers need to make a preliminary site selection based on high-resolution information. Unfortunately, even with abundant computational resources nowadays, running a high-resolution coastal model for more than a decade is still not practical. In this paper, we propose to combine uncertainty estimates from a 21-year-long 1-km-resolution model and a high-resolution (10 m nearshore) coastal model to assess wave energy. Two sites in Japan facing the Pacific Ocean were selected for this study. One site located on the southern coast (site-S) is affected more by the passage of typhoons than another site located on the eastern coast (site-E). The estimated wave power climatology at site-S ranges between 3 and 7 kW m - 1 with an uncertainty of ± 0.27 to ± 0.51 kW m - 1 ; whereas for site-E, the climatology varies between 3 and 9 kW m - 1 with uncertainties of ± 0.12 to ± 0.34 kW m - 1 . In general, the eastern coastal area of Japan is found to offer higher wave power and lower margins of uncertainty than compared with the southern coastal area. |
Audience | Academic |
Author | Nakano, Kunio Webb, Adrean Waseda, Takuji Miyajima, Shogo Sasmal, Kaushik |
Author_xml | – sequence: 1 givenname: Kaushik orcidid: 0000-0002-2727-8702 surname: Sasmal fullname: Sasmal, Kaushik email: kaushik.sasmal@gmail.com organization: Graduate School of Frontier Sciences, The University of Tokyo – sequence: 2 givenname: Takuji orcidid: 0000-0001-5403-5303 surname: Waseda fullname: Waseda, Takuji organization: Graduate School of Frontier Sciences, The University of Tokyo – sequence: 3 givenname: Adrean surname: Webb fullname: Webb, Adrean organization: Disaster Prevention Research Institute, Kyoto University – sequence: 4 givenname: Shogo surname: Miyajima fullname: Miyajima, Shogo organization: Akishima Laboratories (Mitsui Zosen) Inc – sequence: 5 givenname: Kunio surname: Nakano fullname: Nakano, Kunio organization: Tamano Works, Mitsui E&S Steel Structures Engineering Co., Ltd |
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SubjectTerms | Analysis Automotive Engineering Climate Climatology Coastal zone Coasts Computer applications Energy resources Energy sources Engineering Engineering Design Engineering Fluid Dynamics Feasibility studies Forecasts and trends High resolution Hurricanes Mechanical Engineering Ocean energy resources Offshore Engineering Original Article Resolution Site selection Typhoons Uncertainty Water-power Wave energy Wave power |
Title | Assessment of wave energy resources and their associated uncertainties for two coastal areas in Japan |
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