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Density limit experiments on FTU

机译:FTU的密度极限实验

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One of the main problems in tokamak fusion devices concerns the capability to operate at a high plasma density, which is observed to be limited by the appearance of catastrophic events causing loss of plasma confinement. The commonly used empirical scaling law for the density limit is the Greenwald limit, predicting that the maximum achievable line-averaged density along a central chord depends only on the average plasma current density. However, the Greenwald density limit has been exceeded in tokamak experiments in the case of peaked density profiles, indicating that the edge density is the real parameter responsible for the density limit. Recently, it has been shown on the Frascati Tokamak Upgrade (FTU) that the Greenwald density limit is exceeded in gas-fuelled discharges with a high value of the edge safety factor. In order to understand this behaviour, dedicated density limit experiments were performed on FTU, in which the high density domain was explored in a wide range of values of plasma current (I_p = 500-900 kA) and toroidal magnetic field (B_T = 4-8T). These experiments confirm the edge nature of the density limit, as a Greenwald-like scaling holds for the maximum achievable line-averaged density along a peripheral chord passing at r/a ≈ 4/5. On the other hand, the maximum achievable line-averaged density along a central chord does not depend on the average plasma current density and essentially depends on the toroidal magnetic field only. This behaviour is explained in terms of density profile peaking in the high density domain, with a peaking factor at the disruption depending on the edge safety factor. The possibility that the MARFE (multifaced asymmetric radiation from the edge) phenomenon is the cause of the peaking has been considered, with the MARFE believed to form a channel for the penetration of the neutral particles into deeper layers of the plasma. Finally, the magnetohydrodynamic (MHD) analysis has shown that also the central line-averaged density at the onset of the MHD activity depends only on the toroidal magnetic field.
机译:托卡马克聚变设备的主要问题之一涉及在高血浆密度下操作的能力,据观察,这种能力受到造成血浆限制丧失的灾难性事件的出现所限制。密度极限的常用经验比例定律是格林瓦尔德极限,它预测沿着中央弦的最大可达到的线平均密度仅取决于平均等离子体电流密度。然而,在托卡马克实验中,在达到峰值密度分布的情况下,已经超过了格林瓦尔德密度极限,这表明边缘密度是造成密度极限的真实参数。最近,在Frascati Tokamak升级(FTU)中已显示,在气体安全的放电中,边缘安全系数值很高,超出了Greenwald密度极限。为了理解这种行为,在FTU上进行了专用的密度极限实验,其中在宽范围的等离子电流(I_p = 500-900 kA)和环形磁场(B_T = 4- 8T)。这些实验证实了密度极限的边缘性质,就像格林瓦尔德式缩放一样,沿着沿r / a≈4/5的外围弦,可以达到的最大线平均密度。另一方面,沿着中央弦的最大可达到的线平均密度不取决于平均等离子体电流密度,而基本上仅取决于环形磁场。根据高密度域中的密度分布峰化来解释此行为,在破坏时的峰化因子取决于边缘安全因子。已经考虑到MARFE(来自边缘的多面不对称辐射)现象是导致峰化的可能性,并且认为MARFE形成了一个通道,可将中性粒子渗透到等离子体的更深层中。最后,磁流体动力学(MHD)分析表明,MHD活动开始时的中心线平均密度也仅取决于环形磁场。

著录项

  • 来源
    《Nuclear fusion》 |2013年第8期|083002.1-083002.7|共7页
  • 作者单位

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    IFP-CNR, Assoc. Euratom-ENEA, Via R. Cozzi 53,I-20125 Milano, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    IFP-CNR, Assoc. Euratom-ENEA, Via R. Cozzi 53,I-20125 Milano, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    Consorzio RFX, Assoc. Euratom-ENEA, Corso Stati Uniti 4,I-35127 Padova, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    IFP-CNR, Assoc. Euratom-ENEA, Via R. Cozzi 53,I-20125 Milano, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    C.R. ENEA, Assoc. Euratom-ENEA, Via E. Fermi 45,I-00044 Frascati, Italy;

    Institute of Plasma Physics, Chinese Academy of Sciences, Hefei, 230031, People's Republic of China;

    Consorzio RFX, Assoc. Euratom-ENEA, Corso Stati Uniti 4,I-35127 Padova, Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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