Design of type 316L stainless steel 700 °C high-temperature piping
被引:3
|
作者:
Lee, Hyeong-Yeon
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机构:
Korea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South KoreaKorea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South Korea
Lee, Hyeong-Yeon
[1
]
Kim, Hyeonil
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机构:
Korea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South KoreaKorea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South Korea
Kim, Hyeonil
[1
]
Eoh, Jaehyuk
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Korea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South KoreaKorea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South Korea
Eoh, Jaehyuk
[1
]
机构:
[1] Korea Atom Energy Res Inst, 989-111 Daedeok daero, Daejeon 34057, South Korea
High-temperature piping;
Design evaluation;
Creep;
Material properties;
Design rules;
Thermal energy storage system;
D O I:
10.1016/j.net.2023.06.022
中图分类号:
TL [原子能技术];
O571 [原子核物理学];
学科分类号:
0827 ;
082701 ;
摘要:
High-temperature design evaluations were conducted on Type 316L stainless steel piping for a 700 degrees C large-capacity thermal energy storage verification test loop (TESET) under construction at KAERI. The hot leg piping with sodium coolant at 700 degrees C connects the main components of the loop heater, hot storage tank, and air-to-sodium heat exchanger. Currently, the design rules of ASME B31.1 and RCC-MRx provide design procedures for high-temperature piping in the creep range for Type 316L stainless steel. However, the design material properties around 700 degrees C are not available in those rules. Therefore, a number of material tests, including creep tests at various temperatures, were conducted to determine the insufficient material properties and relevant design coefficients so that high-temperature design on the 700 degrees C piping may be possible. It was shown that Type 316L stainless steel can be used in a 700 degrees C hightemperature piping system of Generation IV reactor systems or a renewable energy systems, such as thermal energy storage systems, for a limited operation time. (c) 2023 Korean Nuclear Society, Published by Elsevier Korea LLC. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
机构:
Korea Atom Energy Res Inst, 989-111 Daedeok Daero, Daejeon 34057, South KoreaKorea Atom Energy Res Inst, 989-111 Daedeok Daero, Daejeon 34057, South Korea
Lee, Hyeong-Yeon
Nam, Ki-Ean
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Korea Atom Energy Res Inst, 989-111 Daedeok Daero, Daejeon 34057, South KoreaKorea Atom Energy Res Inst, 989-111 Daedeok Daero, Daejeon 34057, South Korea
Nam, Ki-Ean
Eoh, Jaehyuk
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机构:
Korea Atom Energy Res Inst, 989-111 Daedeok Daero, Daejeon 34057, South KoreaKorea Atom Energy Res Inst, 989-111 Daedeok Daero, Daejeon 34057, South Korea
机构:
Univ Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, England
Chinese Acad Sci, Shanghai Inst Appl Phys, Shanghai 201800, Peoples R ChinaUniv Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, England
Chang, Litao
Mukahiwa, Kudzanai
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Univ Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, EnglandUniv Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, England
Mukahiwa, Kudzanai
Volpe, Liberato
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机构:
Univ Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, EnglandUniv Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, England
Volpe, Liberato
Scenini, Fabio
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机构:
Univ Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, EnglandUniv Manchester, Mat Performance Ctr, Manchester M13 9PL, Lancs, England