研究目的
Investigating the femtosecond laser pulse ablation characteristics of polymer-derived SiAlCN ceramics to understand the laser–material interactions and machining characteristics.
研究成果
The study demonstrated that femtosecond laser pulse ablation is effective for precision machining of SiAlCN ceramics, with optimal results achieved at specific energy fluences and rotational speeds. The findings contribute to the understanding of laser–material interactions in PDCs and guide precision machining practices.
研究不足
The study is limited by the specific laser parameters and materials used, and the potential for heat-affected zones and cracks at high energy fluences.
1:Experimental Design and Method Selection:
The study employed a femtosecond laser pulse for precision machining of SiAlCN ceramics, focusing on the effects of laser energy fluence and rotational speed.
2:Sample Selection and Data Sources:
SiAlCN ceramic wafers were prepared and polished for the experiments.
3:List of Experimental Equipment and Materials:
A four-axis ultrafast laser micromachining instrument (LMM-50) with a regenerative amplified Yb-doped solid-state ultra-fast laser system was used.
4:Experimental Procedures and Operational Workflow:
The study involved machining single circular lines, blind holes, and through-holes under varying laser parameters.
5:Data Analysis Methods:
SEM, EDS, XPS, 3D optical profilometry, and micro-computed tomography were used for microstructure analysis.
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scanning electron microscopy
S4700
Hitachi, Japan
Assessing morphologies of laser-treated samples
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X-ray photoelectron spectroscopy
K-Alpha
Thermo Scientific, USA
Detecting phase structure and chemical bond states
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four-axis ultrafast laser micromachining instrument
LMM-50
Xi'an MicroMach Technology Co., Ltd., China
Used for laser processing experiments
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regenerative amplified Yb-doped solid-state ultra-fast laser system
Generates femtosecond laser pulses
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energy dispersion spectroscopy
Elemental composition analysis
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three-dimensional optical profilometry
ST400
NANOVEA, USA
Identifying morphologies of single circular lines
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micro-computed tomography
MU2000-D
YXLON, German
Identifying cross-section features of micro-holes
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