应用激光
應用激光
응용격광
APPLIED LASER
2010年
1期
1-5
,共5页
周杰%马增辉%逄熹睿%王红颖%郭作兴%胡建东%王耀民%Romanov, Oleg G.
週傑%馬增輝%逄熹睿%王紅穎%郭作興%鬍建東%王耀民%Romanov, Oleg G.
주걸%마증휘%방희예%왕홍영%곽작흥%호건동%왕요민%Romanov, Oleg G.
脉冲激光%金属材料%瞬态温度场%解析计算%Visual C++%界面
脈遲激光%金屬材料%瞬態溫度場%解析計算%Visual C++%界麵
맥충격광%금속재료%순태온도장%해석계산%Visual C++%계면
pulse laser%metal materials%transient state temperature field%analysis calculation%Visual C++%living window
建立了脉冲激光辐照金属材料表面的热学模型,通过拉普拉斯变换法求解了热传导方程,得出金属材料在激光辐照下加热和冷却过程瞬态温度场分布的精确解析解.基于Visual C++编程并实现界面化,实现对于具体材料激光辐照下瞬态温度场的预测和分析.并以纯铝的激光熔覆和镁合金的激光熔凝实验为例,验证了瞬态温度场的分布.结果表明,金属材料在一个脉冲时间内温度随激光辐照时间的增加而升高,辐照结束后,表面温度迅速下降,内部温度下降较慢.分析结论与相关实验结果基本吻合,证实了所建模型的合理性.该结论对其它激光表面处理过程具有一定的指导作用.
建立瞭脈遲激光輻照金屬材料錶麵的熱學模型,通過拉普拉斯變換法求解瞭熱傳導方程,得齣金屬材料在激光輻照下加熱和冷卻過程瞬態溫度場分佈的精確解析解.基于Visual C++編程併實現界麵化,實現對于具體材料激光輻照下瞬態溫度場的預測和分析.併以純鋁的激光鎔覆和鎂閤金的激光鎔凝實驗為例,驗證瞭瞬態溫度場的分佈.結果錶明,金屬材料在一箇脈遲時間內溫度隨激光輻照時間的增加而升高,輻照結束後,錶麵溫度迅速下降,內部溫度下降較慢.分析結論與相關實驗結果基本吻閤,證實瞭所建模型的閤理性.該結論對其它激光錶麵處理過程具有一定的指導作用.
건립료맥충격광복조금속재료표면적열학모형,통과랍보랍사변환법구해료열전도방정,득출금속재료재격광복조하가열화냉각과정순태온도장분포적정학해석해.기우Visual C++편정병실현계면화,실현대우구체재료격광복조하순태온도장적예측화분석.병이순려적격광용복화미합금적격광용응실험위례,험증료순태온도장적분포.결과표명,금속재료재일개맥충시간내온도수격광복조시간적증가이승고,복조결속후,표면온도신속하강,내부온도하강교만.분석결론여상관실험결과기본문합,증실료소건모형적합이성.해결론대기타격광표면처리과정구유일정적지도작용.
A calorifics model of pulse laser radiation to metal material surface is established and the thermal conducting equation was solved through Laplace transforming, receiving the precise analyse result of transient state temperature field distributed under heating and cooling process of laser irradiation to metal material. Based on Visual C++ programme, interface living window was set up, realizing the transient temperature field forecast and analysis of laser radiation to materials by feeding with different parameters. Taking pure aluminum of laser alloying and magnesium alloy of laser remelting as examples verified the distributing of transient state temperature field. The results show that the temperature of metal material within a range of pulse time will increase with time, after radiating, the surface temperature will drop fast but the internal temperature decreases slowly. The analysis results are almost in agreement with experiment result, verifying the rationality of the established model. The results can taken as basic guidance to develop laser surface treatment.