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泵浦强度 meaning in English

pumintensity

Examples

  1. From the efficiency curves , we can obviously see that it has the fittest length of crystal and the power of pump if the other condition is determined
    提出了在双谐振时,平面波和高斯光束在一定的泵浦条件下,都存在最佳长度、最佳泵浦强度的问题,并对其进行了计算机数值模拟。
  2. We also calculated the threshold and efficiency curves with the crystal length , pump power , wavelength of signal wave and mismatch etc on the single resonance oscillator ( sro ) of clbo . the most obviously difference of dro and sro is that when the pump power is higher and the crystal length is longer , the efficiency curves become smooth but not descend in comparing sro to that of dro
    在对单谐振和双谐振的振荡阈值和转换效率的理论研究中,得到了单谐振与双谐振不同的是:在单谐振情况下,随泵浦强度、晶体长度的增加,转换效率曲线只有饱和的趋势,而无下降趋势的结论。
  3. Based on these foundations , we give a perfect scheme of the bbo opos : single pass amplification coefficient of the opg under different pump intensity is calculated ; collinear type - i and type - ii phase matching tuning curve pumped by the q switch nd : yag various harmonics as well as noncollinear type - i tuning curve are calculated in details ; the effect of the walkoff for the nonlinear effect coefficient and the group velocity matching are analyzed ; the acceptance angle in parametric process is calculated ; the numerical threshold of the bbo opo is calculated ; the process of the saturation and depletion of the pump beam are analyzed ; the relationship of the conversion efficiency and reflectance of output mirror are discussed ; various linewidth controlling methods are discussed ; the improvement of the beam quality applying the unstable cavity is discussed ; and the crystal bbo design is considered
    在此基础上,给出了一整套bbo - opo激光参数设计方案:计算了不同泵浦强度下的参量放大倍数;详细计算了在nd : yag调q激光器各次谐波泵浦条件下的共线类和类相位匹配的调谐曲线,以及非共线类相位匹配调谐曲线;分析了走离角对非线性系数和群速匹配的影响;计算了参量过程的允许角;计算了bbo - opo的理论阈值条件;分析了饱和与泵浦光束的消耗过程;给出了转换效率与超过泵浦阈值的倍数的关系;讨论了转换效率与输出镜反射率的关系;讨论了线宽控制的各种方法;研究了利用非稳腔改善光束质量的方法;考虑了bbo晶体的设计。

Related Words

  1. 浦查
  2. 金浦
  3. 洋浦
  4. 浦坂
  5. 手浦
  6. 黄浦
  7. 木浦
  8. 饱浦
  9. 泷浦
  10. 釜浦
  11. 泵浦气体
  12. 泵浦腔
  13. 泵浦区
  14. 泵浦全固态
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