TY - JOUR
T1 - Spectroscopic studies of fuel recycling and impurity behaviors in the divertor region of Wendelstein 7-X
AU - Wei, Yanling
AU - Wang, Erhui
AU - Liang, Yunfeng
AU - Brezinsek, Sebastijan
AU - Krychowiak, MacIej
AU - Hammond, Kenneth
AU - Neubauer, Olaf
AU - KÖnig, Ralf
AU - Sereda, Stepan
AU - Rudischhauser, Lukas
AU - Endler, Michael
AU - Blackwell, Boyd
AU - Linsmeier, Christian
N1 - Publisher Copyright:
© 2019 Hefei Institutes of Physical Science, Chinese Academy of Sciences, and IOP Publishing.
PY - 2019/7/23
Y1 - 2019/7/23
N2 - The first divertor operation phase (OP1.2a) was carried out on Wendelstein 7-X in the second half of 2017. Fuel recycling and impurity behaviors in the divertor region were investigated by employing a newly built ultraviolet-visible-near infrared overview spectroscopy system. The characteristic spectral lines of the working gases (hydrogen and helium), intrinsic impurities (carbon, oxygen and iron), and seeded impurities (neon and nitrogen) were identified and analyzed. The divertor electron temperature and density were measured using He I (667.8, 706.5, and 728.1 nm) line intensity ratios. The Hα (656.3 nm), He I (587.6 nm), C II (514.5 nm), and O I (777.2 nm) emissions were investigated over a wide range of operating conditions. The results showed that fuel and impurity emissions in the divertor region exhibit a strong dependence on magnetic topology and plasma conditions. The levels of Hα, He I, C II, and O I emissions are all reduced moving from the standard configuration to the high mirror configuration, and even further reduced for the high iota configuration, which is associated with decreasing connection length in these island divertor configurations. The H/He influx ratio shows that the plasma is a mixture of helium and hydrogen. The neutral and impurity influxes from the divertor target tend to increase with increasing divertor electron temperature.
AB - The first divertor operation phase (OP1.2a) was carried out on Wendelstein 7-X in the second half of 2017. Fuel recycling and impurity behaviors in the divertor region were investigated by employing a newly built ultraviolet-visible-near infrared overview spectroscopy system. The characteristic spectral lines of the working gases (hydrogen and helium), intrinsic impurities (carbon, oxygen and iron), and seeded impurities (neon and nitrogen) were identified and analyzed. The divertor electron temperature and density were measured using He I (667.8, 706.5, and 728.1 nm) line intensity ratios. The Hα (656.3 nm), He I (587.6 nm), C II (514.5 nm), and O I (777.2 nm) emissions were investigated over a wide range of operating conditions. The results showed that fuel and impurity emissions in the divertor region exhibit a strong dependence on magnetic topology and plasma conditions. The levels of Hα, He I, C II, and O I emissions are all reduced moving from the standard configuration to the high mirror configuration, and even further reduced for the high iota configuration, which is associated with decreasing connection length in these island divertor configurations. The H/He influx ratio shows that the plasma is a mixture of helium and hydrogen. The neutral and impurity influxes from the divertor target tend to increase with increasing divertor electron temperature.
KW - fuel recycling
KW - impurity
KW - spectroscopy diagnostic
UR - http://www.scopus.com/inward/record.url?scp=85072762911&partnerID=8YFLogxK
U2 - 10.1088/2058-6272/ab273b
DO - 10.1088/2058-6272/ab273b
M3 - Article
SN - 1009-0630
VL - 21
JO - Plasma Science and Technology
JF - Plasma Science and Technology
IS - 10
M1 - 105102
ER -