A simple analytic model of impurity leakage from the divertor and accumulation in the main scrape-off layer

被引:33
|
作者
Stangeby, P. C. [1 ]
Moulton, D. [2 ]
机构
[1] Univ Toronto, Inst Aerosp Studies, 4925 Dufferin St, Toronto, ON M3H 5T6, Canada
[2] UKAEA CCFE, Culham Sci Ctr, Abingdon OX14 3DB, Oxon, England
关键词
impurities; divertor impurity leakage; impurity accumulation in the edge; ATOMIC PROCESSES; ASDEX UPGRADE; EDGE PHYSICS; PLASMA EDGE; TRANSPORT; TUNGSTEN; POWER; FLOW; SIMULATIONS; RETENTION;
D O I
10.1088/1741-4326/ab9e16
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Edge codes such as SOLPS-ITER find distributions of impurity ions, e.g. of C, N, Ne and Ar, in the divertor and SOL which are quite non-uniform spatially, both poloidally and radially. Poloidally, impurity ion density distributions often have strong peaks near the targets as well as a peak on/near the separatrix in the main SOL near the outside midplane. A high density of low-Z impurities near the targets is quite desirable since cold, dense divertor plasma conditions there result in very efficient radiative dissipation of power. By contrast, impurity concentration near the outside midplane separatrix is often quite undesirable since the impurity density there is essentially the boundary value for impurity levels in the confined plasma. In order to better understand the poloidal distribution of impurities in the edge plasma, a simple analytic 1D impurity fluid model, 1DImpFM, has been developed for the transport along open field lines of impurity ions in a specified fuel-plasma background. Often, the strongest parallel forces acting on impurity ions in the edge plasma are (i)FiG, the (fuel) ion temperature parallel-gradient force ('thermal force'), and (ii)FF, the friction force between fuel and impurity ions ('friction force'). Recently, Senichenkovet al(2019Plasma Phys. Control. Fusion61045013) reported the extremely useful and informative result that the impurity ion parallel velocity calculated by the SOLPS-ITER code can be remarkably well reproduced by assuming the simple force balanceFF+FiG= 0. In the present paper the basis for, and a number of basic predictions of, the 1DImpFM are reported including an assessment of the circumstances under whichFF+FiG= 0 can be expected to be a good approximation. The 1DImpFM is used to elucidate the competing roles of thermal and friction forces, as they control three key features of edge impurity behavior: (a) leakage of impurity ions from the divertor, (b) the peaking of impurity density near the targets, and (c) impurity ion accumulation near the midplane separatrix; the model provides simple analytic expressions for estimating the divertor leakage rate (ions/m(2)/s) and impurity density peaking/accumulation (ions/m(3)). A subsequent paper will report comparisons of results from the 1DImpFM and from SOLPS-ITER modeling of some ITER cases with neon impurities.
引用
收藏
页数:21
相关论文
共 30 条
  • [21] Reduced-model scrape-off layer turbulence (nSOLT) simulations comparing three fueling scenarios
    Russell, D. A.
    Myra, J. R.
    Militello, F.
    Moulton, D.
    PHYSICS OF PLASMAS, 2021, 28 (09)
  • [22] The impact of non-local parallel electron transport on plasma-impurity reaction rates in tokamak scrape-off layer plasmas
    Power, Dominic
    Mijin, Stefan
    Verhaegh, Kevin
    Militello, Fulvio
    Kingham, Robert J.
    PLASMA PHYSICS AND CONTROLLED FUSION, 2025, 67 (04)
  • [23] Impact of ICRF on the scrape-off layer and on plasma wall interactions: From present experiments to fusion reactor
    Bobkov, V
    Aguiam, D.
    Bilato, R.
    Brezinsek, S.
    Colas, L.
    Czarnecka, A.
    Dumortier, P.
    Dux, R.
    Faugel, H.
    Funfgelder, H.
    Jacquetg, Ph
    Kaltenbach, A.
    Krivska, A.
    Klepper, C. C.
    Lerche, E.
    Lin, Y.
    Milanesio, D.
    Maggiora, R.
    Monakhovg, I
    Neu, R.
    Noterdaeme, J-M
    Ochoukov, R.
    Piitterich, Th
    Reinke, M.
    Tierens, W.
    Tuccilo, A.
    Tudisco
    Van Eester, D.
    Wright, J.
    Wukitchk, S.
    Zhang, W.
    Abduallev, S.
    Abhangi, M.
    Abreu, P.
    Afzal, M.
    Aggarwal, K. M.
    Ahlgren, T.
    Ahn, J. H.
    Aho-Mantila, L.
    Aiba, N.
    Airila, M.
    Albanese, R.
    Aldred, V.
    Alegre, D.
    Alessi, E.
    Aleynikov, P.
    Alfier, A.
    Alkseev, A.
    Allinson, M.
    Alper, B.
    NUCLEAR MATERIALS AND ENERGY, 2019, 18 : 131 - 140
  • [24] Utilization of outer-midplane collector probes with isotopically enriched tungsten tracer particles for impurity transport studies in the scrape-off layer of DIII-D (invited)
    Donovan, D. C.
    Unterberg, E. A.
    Stangeby, P. C.
    Zamperini, S.
    Auxier, J. D., II
    Rudakov, D. L.
    Wampler, W. R.
    Zach, M.
    Abrams, T.
    Duran, J. D.
    Elder, J. D.
    Neff, A. L.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2018, 89 (10):
  • [25] Turbulent broadening of electron heat-flux width in electromagnetic gyrokinetic simulations of a helical scrape-off layer model
    Mandell, N. R.
    Hammett, G. W.
    Hakim, A.
    Francisquez, M.
    PHYSICS OF PLASMAS, 2022, 29 (04)
  • [26] A theoretical interpretation of the main scrape-off layer heat-flux width scaling for tokamak inner-wall limited plasmas
    Halpern, F. D.
    Horacek, J.
    Pitts, R. A.
    Ricci, P.
    PLASMA PHYSICS AND CONTROLLED FUSION, 2016, 58 (08)
  • [27] A gyrokinetic simulation model for 2D equilibrium potential in the scrape-off layer of a field-reversed configuration
    Wang, W. H.
    Wei, X. S.
    Lin, Z.
    Lau, C.
    Dettrick, S.
    Tajima, T.
    PHYSICS OF PLASMAS, 2024, 31 (07)
  • [28] Core-edge integrated predictive studies of ST40 and NSTX plasmas with the scrape-off layer box model
    Zhang, X.
    Lopez, N. A.
    Emdee, E. D.
    Poli, F. M.
    O'Gorman, T.
    Buxton, P. F.
    Marsden, C.
    Moscheni, M.
    Lowe, H. F.
    Rengle, A.
    PHYSICS OF PLASMAS, 2025, 32 (03)
  • [29] The distribution of ion orbit loss fluxes of ions and energy from the plasma edge across the last closed flux surface into the scrape-off layer
    Stacey, Weston M.
    Schumann, Matthew T.
    PHYSICS OF PLASMAS, 2015, 22 (04)
  • [30] A self-consistent κ-model for anomalous transport due to electrostatic, interchange-dominated E x B drift turbulence in the scrape-off layer and implementation in SOLPS-ITER
    Dekeyser, Wouter
    Coosemans, Reinart
    Carli, Stefano
    Baelmans, Martine
    CONTRIBUTIONS TO PLASMA PHYSICS, 2022, 62 (5-6)