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Effects of drive current rise-time and initial load density distribution on Z-pinch characteristics

机译:驱动电流上升时间和初始负载密度分布对Z夹点特性的影响

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摘要

A two-dimensional, three-temperature radiation magneto-hydrodynamics model is applied to the investigation of evolutional trends in x-ray radiation power, energy, peak plasma temperature and density as functions of drive current rise-time and initial load density distribution by using the typical experimental parameters of tungsten wire-array Z-pinch on the Qiangguang-Ⅰ generator. The numerical results show that as the drive current rise-time is shortened, x-ray radiation peak power, energy, peak plasma density and peak ion temperature increase approximately linearly, but among them the x-ray radiation peak power increases more quickly. As the initial plasma density distribution in the radial direction becomes gradually flattened, the peak radiation power and the peak ion-temperature almost exponentially increase, while the radiation energy and the peak plasma density change only a little. The main effect of shortening drive current rise-time is to enhance compression of plasma, and the effect of flattening initial load density distribution in the radial direction is to raise the plasma temperature. Both of the approaches elevate the x-ray peak radiation power.
机译:将二维,三温度辐射磁流体动力学模型用于研究X射线辐射功率,能量,峰值等离子体温度和密度随驱动电流上升时间和初始负载密度分布而变化的趋势。强光一号发生器钨丝阵列Z夹的典型实验参数。数值结果表明,随着驱动电流上升时间的缩短,X射线辐射峰值功率,能量,峰值等离子体密度和峰值离子温度近似线性增加,但其中X射线辐射峰值功率更快。随着径向上的初始等离子体密度分布逐渐变平,峰值辐射功率和峰值离子温度几乎成倍增加,而辐射能量和峰值等离子体密度仅发生少许变化。缩短驱动电流上升时间的主要作用是增强等离子体的压缩,而使径向上的初始负载密度分布平坦化的作用是升高等离子体的温度。两种方法都提高了X射线峰值辐射功率。

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