Advanced Search+
Muzhi Tan, Jianqiang Xu, Huarong Du, Jiaqi Dong, Huasheng Xie, Xueyun Wang, Xianli Huang, Yumin Wang, Xiang Gu, Bing Liu, Yuejiang Shi, Yunfeng Liang. Predictions of gyrokinetic turbulent transport in hydrogen-boron plasmas on EHL-2 spherical torus[J]. Plasma Science and Technology. DOI: 10.1088/2058-6272/adad1a
Citation: Muzhi Tan, Jianqiang Xu, Huarong Du, Jiaqi Dong, Huasheng Xie, Xueyun Wang, Xianli Huang, Yumin Wang, Xiang Gu, Bing Liu, Yuejiang Shi, Yunfeng Liang. Predictions of gyrokinetic turbulent transport in hydrogen-boron plasmas on EHL-2 spherical torus[J]. Plasma Science and Technology. DOI: 10.1088/2058-6272/adad1a

Predictions of gyrokinetic turbulent transport in hydrogen-boron plasmas on EHL-2 spherical torus

  • The EHL-2 spherical torus at ENN is the next-generation experimental platform under conceptual design, aiming at realizing hydrogen-boron (H-B11) thermonuclear fusion which is an attractive pathway towards neutron-free fusion. In order to achieve high performance steady-state plasma, it is extremely necessary to study the turbulence transport characteristics with high boron content in the plasma core. This work investigates the transport properties in the core internal transport barrier (ITB) region of hydrogen-boron plasma utilizing the gyrokinetic code GENE in view of the high ion temperature scenario of EHL-2, specifically focusing on the impact of boron fractions and plasma β on the microinstabilities and corresponding transport features. Numerical findings indicate that the inclusion of boron species effectively suppresses the trapped electron modes (TEMs) as well as promoting a transition from electromagnetic to electrostatic turbulence with increased boron fraction, which is a result of the suppression of microinstabilities by effective charge and mass. Moreover, it has been identified that the external E×B rotational shear has a notable inhibitory influence on transport which can reduce the transport level by 2-3 orders of magnitude especially at medium boron contents. The suppressive effects of E×B on turbulence is weakened once the kinetic ballooning mode (KBM) is excited and the transport shows a rapid increase with β together with a reduction in zonal flow amplitude which is consistent with previous findings. Therefore, it is strongly suggested that exploring advanced strategies for mitigating turbulent transport at high β regimes are necessary for the active control of plasma behavior regarding H-B11 plasma based fusion devices such as EHL-2.
  • loading

Catalog

    Turn off MathJax
    Article Contents

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return