TY - JOUR
T1 - Measurement of end-loss ions originated from spontaneously excited high frequency waves by using an MCP detector on GAMMA 10/PDX
AU - Izumi, Koki
AU - Ikezoe, Ryuya
AU - Ichimura, Makoto
AU - Hirata, Mafumi
AU - Sakamoto, Mizuki
AU - Sumida, Shuhei
AU - Jang, Seowon
AU - Tanaka, Atsuto
AU - Kubota, Yushi
AU - Sekine, Ryo
AU - Kayano, Hiroki
AU - Nakashima, Yousuke
N1 - Funding Information:
The authors acknowledge the member of Plasma Research Center in University of Tsukuba for their collaboration. This work was partly supported by the bidirectional collaborative research program of the National Institute for Fusion Science, Japan (NIFS14KUGM086 and NIFS17KUGM132) and JSPS KAKENHI (18K03574)
Publisher Copyright:
© 2019 The Japan Society of Plasma Science and Nuclear Fusion Research.
PY - 2019
Y1 - 2019
N2 - Effective ICRF heating creates a high ion-temperature plasma with strong ion-temperature anisotropy in the GAMMA 10/PDX central cell, where several Alfvén-ion-cyclotron (AIC) waves are spontaneously excited. It is clearly measured with a microwave reflectometer installed in the central cell that waves with the difference frequencies of the AIC waves are excited in a core region. In addition, it has been observed with an end-loss high-energy ion detector that high-energy ions of over 6 keV are axially transported along the magnetic field lines with the same frequencies as the difference frequencies of the AIC waves. In this study, in order to understand the related wave-particle interaction, another end-loss high-energy ion detector using a micro-channel plate has been developed. By changing the ion retarding grid voltage, which the new detector equips, it is found that an energy dependence exists in the loss mechanism; some frequencies that the axial transport includes disappear for high-energy ions of over 6 keV while they are significant for low-energy ions. In addition, by changing the radial position of the new detector, a radial localization of the axial transport to a core region, which is consistent with the profile of the difference frequencies waves, is indicated.
AB - Effective ICRF heating creates a high ion-temperature plasma with strong ion-temperature anisotropy in the GAMMA 10/PDX central cell, where several Alfvén-ion-cyclotron (AIC) waves are spontaneously excited. It is clearly measured with a microwave reflectometer installed in the central cell that waves with the difference frequencies of the AIC waves are excited in a core region. In addition, it has been observed with an end-loss high-energy ion detector that high-energy ions of over 6 keV are axially transported along the magnetic field lines with the same frequencies as the difference frequencies of the AIC waves. In this study, in order to understand the related wave-particle interaction, another end-loss high-energy ion detector using a micro-channel plate has been developed. By changing the ion retarding grid voltage, which the new detector equips, it is found that an energy dependence exists in the loss mechanism; some frequencies that the axial transport includes disappear for high-energy ions of over 6 keV while they are significant for low-energy ions. In addition, by changing the radial position of the new detector, a radial localization of the axial transport to a core region, which is consistent with the profile of the difference frequencies waves, is indicated.
UR - http://www.scopus.com/inward/record.url?scp=85063613781&partnerID=8YFLogxK
UR - http://www.scopus.com/inward/citedby.url?scp=85063613781&partnerID=8YFLogxK
U2 - 10.1585/pfr.14.2402033
DO - 10.1585/pfr.14.2402033
M3 - Article
AN - SCOPUS:85063613781
SN - 1880-6821
VL - 14
JO - Plasma and Fusion Research
JF - Plasma and Fusion Research
IS - Specialissue1
M1 - 2402033
ER -