首页> 外文期刊>Journal of Physics, B. Atomic, Molecular and Optical Physics: An Institute of Physics Journal >A radiation-damped R-matrix approach to the electron-impact excitation of helium-like ions for diagnostic application to fusion and astrophysical plasmas
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A radiation-damped R-matrix approach to the electron-impact excitation of helium-like ions for diagnostic application to fusion and astrophysical plasmas

机译:辐射衰减的R矩阵方法可对氦样离子进行电子碰撞激发,可用于融合和天体等离子体的诊断应用

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Electron-impact excitation collision strengths for transitions between all singly excited levels up to the n = 4 shell of helium-Eke argon and the n = 4 and 5 shells of helium-like iron have been calculated using a radiation-damped R-matrix approach. The theoretical collision strengths have been examined and associated with their infinite-energy limit values to allow the preparation of Maxwell-averaged effective collision strengths. These are conservatively considered to be accurate to within 20% at all temperatures, 3 x 10(5)-3 x 10(8) K forAr(16+) and 10(6)-10(9) K for Fe24+. They have been compared with the results of previous studies, where possible, and we find a broad accord. The corresponding rate coefficients are required for use in the calculation of derived, collisional-radiative, effective emission coefficients for helium-like lines for diagnostic application to fusion and astrophysical plasmas. The uncertainties in the fundamental collision data have been used to provide a critical assessment of the expected resultant uncertainties in such derived data, including redistributive and cascade collisional-radiative effects. The consequential uncertainties in the parts of the effective emission coefficients driven by excitation from the ground levels for the key w, x, y and z lines vary between 5% and 10%. Our results remove an uncertainty in the reaction rates of a key class of atomic processes governing the spectral emission of helium-like ions in plasmas. [References: 32]
机译:已经使用辐射阻尼R矩阵方法计算了直到n = 4的氦-Eke氩壳和所有n = 4和5的氦样铁壳的所有单激发能级之间的跃迁的电子碰撞激发碰撞强度。 。对理论碰撞强度进行了检查,并将其与无限能量极限值相关联,以允许准备麦克斯韦平均有效碰撞强度。保守地认为,在所有温度下这些精度均在20%以内,对于Ar(16+)为3 x 10(5)-3 x 10(8)K,对于Fe24 +为10(6)-10(9)K。在可能的情况下,将它们与以前的研究结果进行了比较,我们发现了广泛的共识。需要相应的速率系数,才能用于计算氦样线的碰撞碰撞辐射有效发射系数,以用于融合和天体等离子体的诊断应用。基本碰撞数据中的不确定性已用于对此类衍生数据中预期的结果不确定性提供关键评估,包括重新分配碰撞和级联碰撞辐射效应。对于关键的w,x,y和z线,由地面激发产生的有效发射系数的各个部分的不确定性在5%至10%之间变化。我们的结果消除了控制等离子体中氦样离子光谱发射的关键原子过程的反应速率的不确定性。 [参考:32]

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