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Copper vapor laser drilling of copper, iron, and titanium foils in atmospheric pressure air and argon

机译:铜,铁和钛箔在大气压空气和氩气中铜蒸汽激光钻孔

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摘要

A copper vapor laser (511 and 578 nm) is used to drill submillimeter diameter holes in 0.025–0.127 mm thick foils of copper, iron, and titanium. Foils are machined in atmospheric pressure air and argon. The laser is repetitively pulsed at 10 kHz with a per pulse energy of 0.5 mJ giving an average power of 5 W at the sample surface for a pulse width of 40 ns. A p‐i‐n photodiode and a photomultiplier tube detector are connected to a digital‐display timing circuit that records the number of incident laser pulses used to drill through the sample. The number of pulses is converted to an average drilling time and can provide an estimate for the average laser energy used to drill the hole. Typical data for all three materials with a per‐pulse fluence of 0.7 J/cm2 ranged from 0.1 to 500 s to produce holes of ∼0.3 mm diameter. Drilling times decreased in some cases by an order of magnitude when machining in air. This is attributed to the increased laser absorption of the metal‐oxide layer formed in air and was especially noticeable with titanium. A continuous wave thermal model is used to compare experimental data as well as verify the thermal machining mechanism.
机译:铜蒸气激光器(511和578nm)用于钻取亚铜,铁和钛的0.025-0.127mm厚的箔。箔在大气压空气和氩气中加工。激光器在10kHz下重复脉冲,每脉冲能量为0.5MJ,在样品表面处的平均功率为5W,脉冲宽度为40ns。 P-I-N光电二极管和光电倍增管检测器连接到数字显示定时电路,该电路记录用于钻通过样品的入射激光脉冲的数量。脉冲的数量被转换为平均钻井时间,并且可以提供用于钻孔的平均激光能量的估计。所有三种材料的典型数据,每脉冲流量为0.7J / cm2的0.1至500秒,产生直径〜0.3毫米的孔。在空气中加工时,钻井时间在某些情况下减少了数量级。这归因于在空气中形成的金属氧化物层的激光吸收增加,并且与钛尤其明显。连续波热模型用于比较实验数据以及验证热加工机构。

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