TY - JOUR
T1 - Deuterium Gas-Driven Permeation and Retention Through Tungsten-Coated CLAM Steel
AU - Wang, Zhanlei
AU - Zhu, Kaigui
AU - Wang, Wei
AU - Rao, Yongchu
AU - Ye, Xiaoqiu
AU - Guo, Yakun
AU - Yan, Jing
AU - Chen, Chang An
N1 - Publisher Copyright:
© 2020, © 2020 American Nuclear Society.
PY - 2020/2/17
Y1 - 2020/2/17
N2 - Hydrogen isotope behavior in tungsten coated on reduced activation ferritic/martensitic (RAFM) steels such as China low activation martensitic (CLAM) steel has attracted more attention in the fusion engineering research community. This paper is mainly devoted to the investigation of the effect of tungsten coating on deuterium permeation and retention behavior in RAFM steels. The permeability and diffusion coefficients of CLAM, W-CLAM, and W were determined by gas-driven permeation (GDP) tests followed by thermal desorption spectroscopy to measure deuterium retention. It was found that the observed deuterium permeability and diffusivity of the composite W-CLAM specimen was reduced to about ~60% of the pure CLAM steel, whereas deuterium retention increased, evidently owing to the W coating on the surface that caused the slower release of D into the environment and increased of the effective surface area. In addition, a key finding was that the lath martensite–coarsened and more precipitate phase was found, which may be due to the migration of lath interface during the GDP test.
AB - Hydrogen isotope behavior in tungsten coated on reduced activation ferritic/martensitic (RAFM) steels such as China low activation martensitic (CLAM) steel has attracted more attention in the fusion engineering research community. This paper is mainly devoted to the investigation of the effect of tungsten coating on deuterium permeation and retention behavior in RAFM steels. The permeability and diffusion coefficients of CLAM, W-CLAM, and W were determined by gas-driven permeation (GDP) tests followed by thermal desorption spectroscopy to measure deuterium retention. It was found that the observed deuterium permeability and diffusivity of the composite W-CLAM specimen was reduced to about ~60% of the pure CLAM steel, whereas deuterium retention increased, evidently owing to the W coating on the surface that caused the slower release of D into the environment and increased of the effective surface area. In addition, a key finding was that the lath martensite–coarsened and more precipitate phase was found, which may be due to the migration of lath interface during the GDP test.
KW - China low activation martensitic
KW - Tungsten coating
KW - deuterium permeation
KW - gas-driven permeation
UR - https://www.scopus.com/pages/publications/85079735949
U2 - 10.1080/15361055.2019.1693192
DO - 10.1080/15361055.2019.1693192
M3 - 文章
AN - SCOPUS:85079735949
SN - 1536-1055
VL - 76
SP - 102
EP - 109
JO - Fusion Science and Technology
JF - Fusion Science and Technology
IS - 2
ER -