论文标题
离子运动的血浆Wakefield加速器的非线性平衡和发射量增长
Nonlinear equilibria and emittance growth in plasma wakefield accelerators with ion motion
论文作者
论文摘要
血浆韦克赛场加速器可以在未来的线性对撞机中加速颗粒,具有前所未有的加速梯度,超过了GEV/m范围。该应用的梁将具有极高的亮度,并且要受到激烈的等离子体离子衍生的聚焦的影响,它们将达到足够高的密度,以诱导血浆离子塌陷进入梁体积。这种非均匀离子密度会导致强烈的非线性聚焦,这可能会导致有害的束发射。最近已经通过粒子中的模拟研究了离子塌陷及其缓解措施的影响,这表明,通过将光束动态匹配到塌陷离子分布的聚焦,可以避免严重的发射率生长。我们通过探索离子崩溃后达到的梁离子系统的近平衡状态扩展了这项工作,从而产生了观察到的发射率降低的状态。我们通过PIC仿真和分析理论表明,在这种情况下,接近双电子束式贝内特型平衡分布。在这里,梁和离子分布具有几乎相同的形状,从而产生非线性横向电磁场。我们利用贝内特型模型来研究梁相位空间动力学和发射量的增长,比PIC模拟允许的时间尺度长得多,通过使用2D合成性跟踪代码,其基于Moliere的小角度多散射理论,并与Monte Carlo散射。我们发现,尽管由于血浆不均匀性而引起的光束大小引起的相位空间扩散是可以忽略的,但在线性碰撞器的情况下,塌陷离子的散射会导致可管理的发射量增长。检查了这些结果对在II中计划的实验的含义。
The plasma wakefield accelerator may accelerate particles to high energy in a future linear collider with unprecedented acceleration gradients, exceeding the GeV/m range. Beams for this application would have extremely high brightness and, subject to the intense plasma ion-derived focusing, they would achieve densities high enough to induce the plasma ions to collapse into the beam volume. This non-uniform ion density gives rise to strong nonlinear focusing which may lead to deleterious beam emittance growth. The effects of ion collapse and their mitigation has been investigated recently through particle-in-cell simulations, which show that by dynamically matching the beam to the focusing of the collapsed ion distribution, one may avoid serious emittance growth. We extend this work by exploring the near-equilibrium state of the beam-ion system reached after the ions have collapsed, a condition yielding the emittance growth mitigation observed. We show through PIC simulations and analytical theory that in this case a dual electron beam-ion Bennett-type equilibrium distribution is approached. Here, the beam and ion distributions share nearly the same shape, which generates nonlinear transverse electromagnetic fields. We exploit a Bennett-type model to study beam phase space dynamics and emittance growth over time scales much longer than permitted by PIC simulations through use of a 2D symplectic tracking code with Monte Carlo scattering based on Moliere's theory of small angle multiple scattering. We find that while phase space diffusion due to parametric excitations of the beam size due to plasma non-uniformity is negligible, scattering from collapsed ions gives rise to manageable emittance growth in the case of a linear collider. The implications of these results on experiments planned at FACET-II are examined.