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Reduced sputtering of the divertor plate for ITER by thermionic electron emission

机译:通过热电子发射减少用于ITER的分流板的溅射

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The erosion rate and lifetime of the high heat-flux components for next generation fusion devices such as the ITER (International Thermonuclear Experimental Reactor) are mainly limited by ion sputtering. The energy of the impinging ions and consequently the sputtering rate is enhanced by the presence of a negative electrostatic field near the high heat-flux components. The sheath potential near (and the sputtering rate of) the divertor plate of the ITER can be very sensitive to electron-emission mechanisms such as secondary electron emission and thermionic electron emission (i.e. the emission of electrons from a hot surface). It is shown that the mechanism of thermionic electron emission could lead to significantly lower incident-ion energies striking the divertor plate for ITER-relevant plasma-edge conditions. The transition temperature of the high heat-flux components for a significant reduction of the sheath potential was found to be in the range of 700-1100 K for materials with a low work function ( approximately=1.5-2.5 eV), and approximately=1500-1800 K for refractory metals (e.g. tungsten) with high work functions ( approximately=4-5 eV). It is expected that this transition temperature would be about 1800 K for carbon or TiC.
机译:下一代聚变设备(如ITER(国际热核实验反应堆))的高​​热通量组件的腐蚀速率和寿命主要受到离子溅射的限制。在高热通量组件附近存在负静电场,可以提高碰撞离子的能量,从而提高溅射速率。 ITER分流器板附近的护套电势(及其溅射速率)可能对电子发射机制(例如二次电子发射和热电子发射)(即从热表面发射电子)非常敏感。结果表明,在与ITER有关的等离子边缘条件下,热电子发射的机理可能导致撞击分流板的入射离子能量大大降低。对于具有低功函(大约= 1.5-2.5 eV)的材料,发现用于显着降低护套电势的高热通量组分的转变温度在700-1100 K的范围内,大约= 1500 -1800 K用于具有高功函(大约= 4-5 eV)的难熔金属(例如钨)。预期对于碳或TiC,该转变温度将为约1800K。

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