Page 198 - 《爆炸与冲击》2026年第3期
P. 198
第 46 卷 贾 果,等: 适用于激光驱动方式的金属粉末冲击压缩特性实验技术 第 7 期
设计不仅为装配过程提供可视化校准基准,同时通过金属膜层的高光学反射率降低了胶层对诊断发光
信号的干扰。综上措施,可有效规避胶水对测量冲击波在石英层中渡越时间的影响。另外,装配前事先
采用共聚焦显微镜测量挖孔石英层的厚度,可确保获得石英台阶的真实厚度,结合图 3 所示的轮廓仪测
量技术,可同步获取粉末层真实厚度信息,有效保证了状态方程实验中标准材料石英和待测材料铜粉厚
度数据的可靠性。
Screws
d=4 mm
Upper
PC sheet
d=3 mm
Quartz platen layer CH
Upper quartz sheet Aluminum
Glue coatings
Hole-quartz sheet Copper
powder
Base quartz sheet
Base
d=8 mm aluminum sheet
图 1 实验用靶构型设计
Fig. 1 Design of the target configuration for the experiment
②
250 μm
Laser ablation zone
Hole area: coating area
powder filling Uncoated
quartz area
~50 μm
①
图 2 挖孔层石英边缘镀 250 μm 宽铝膜
Fig. 2 Aluminum film with a width of 250 microns deposited on the quartz edge of the borehole layer
Profile meter
250 μm coating area
Hole-quartz Base quartz sheet Hole-quartz sheet Cu powder ~3 mm
~4 mm ~4 mm Hole-quartz sheet Cu powder
Base quartz sheet
~3 mm
Perform surface thickness
characterization along the line
(a) Digging quartz holes (b) The upper surface after powder filling (c) Thickness consistency testing
图 3 粉末材料初始密度表征流程示意
Fig. 3 Schematics of the process for characterizing the initial density of powder materials
074202-3

