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微细波纹板激光热应力成形边界效应的抑制方法

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激光热应力成形为微细薄板结构的无模制造提供了解决方案,然而其边界效应严重影响成形精度.针对金属薄板激光热应力成形过程中的边界效应,采用振镜式激光,结合有限元模拟和成形试验分析激光工艺参数对边界效应的影响规律.研究了变速度、变方向以及两者耦合的边界效应抑制策略,进而用于微细波纹板成形过程.结果表明,扫描路径上的温度与应力分布不均是造成边界效应的主要原因,薄板成形过程中的热累积主要存在于扫描结束端,激光工艺参数是影响弯曲成形件变形的重要因素;采用变向-变速耦合策略比单方向扫描的相对角度变化减小77.8%,实现了深宽比大于0.75的微细波纹板精密成形.变向-变速耦合策略能够有效抑制微细波纹板激光热应力成形中的边界效应,为高质量微细薄板成形提供参考.
Edge-effect Suppression Method for Microcorrugated Sheets by Laser Thermal Stress Forming
Laser thermal stress forming,which is a contactless and highly flexible manufacturing technology,can minimize problems such as springback,cracking,and wrinkling caused by mold or tool manufacturing,thus providing a precision manufacturing solution for microcorrugated sheets.However,microcorrugated sheets are prone to edge effects due to the uneven distribution of energy input and constraint differences during the scanning process.Because of the multipass and multicycle scanning involved in the laser thermal stress forming process of microcorrugated sheets,the surface distortion and residual stress caused by the previous scanning affect the thermal deformation in the subsequent scanning.This effect is amplified by the superposition of edge effects during multiple scanning,which exacerbates the instability of microcorrugated sheet forming.Therefore,the suppression of edge effects in the laser thermal stress forming of microcorrugated sheets should be a major focus.In addition,the mechanism of the surface distortion caused by multipass coupling is complex.In this study,the effects of laser process parameters on the edge effect are analyzed by numerical simulations and experimental studies.A varying velocity round-trip coupling scanning strategy is proposed to suppress the edge effect and is also applied to microcorrugated sheet forming,as this provides a reference for the analysis and suppression of edge effects in multiple scanning.The heat accumulation and displacement distribution at the free end after scanning are analyzed through numerical simulations under various scanning strategies.An experimental platform of laser thermal stress forming is constructed.The specimen used in the experiments is 304 stainless steel sheets with dimensions of 30 × 30 × 0.4 mm.The study employs a 500-W oscillator continuous fiber laser with a laser power of 150-450 W,velocity range of 10-70 mm/s,and scanning number range of 5-20.Response surface analysis(RSA)is used to analyze the effects of different laser process parameters on the edge effect.Suppression of the edge effect using the varying velocity round-trip coupling scanning strategy is then conducted,and the displacement of the free end of the forming sheet is determined.To observe the local morphology of the formed end of the sheet,a local 3D solid contour is acquired using confocal microscopy.According to the RSA,laser process parameters are critical factors that affect the deformation of bending parts.The smallest change in relative angle with constant-velocity scanning are obtained when the scanning number and velocity are 15 and 50 mm/s,respectively.Furthermore,the results show that a varying velocity strategy(an early-stage scanning velocity of 30 mm/s combined with a later-stage scanning velocity with 50 mm/s)exhibits a smaller change in relative angle as compared with constant-velocity scanning(a scanning velocity of 30 mm/s),with a reduction of approximately 63.0%.Based on the suppression of the varying velocity strategy,a varying velocity round-trip coupling scanning strategy is proposed,and the mechanism of edge-effect suppression under different strategies is investigated by numerical simulations and experimental studies.The study finds that the varying velocity round-trip coupling scanning strategy effectively reduces terminal heat accumulation and improves the temperature field distribution in the scanning process.Both the round-trip and varying velocity scanning strategies can improve the edge effect within a certain range of processes.In addition,the coupling of these two strategies can achieve further optimization because the temperature fields at both ends of the sheets can be controlled.Furthermore,the relative angle change is reduced by 77.8%using the varying velocity round-trip coupling scanning strategy.Finally,laser thermal stress forming of trapezoidal corrugated sheets with depth-width ratios of greater than 0.75 is achieved.Under this strategy,a flat profile appears on one side of the trapezoidal corrugated sheet wall,and a smaller height difference can be observed in the flow channel forming.Both numerical and experimental results reveal that round-trip scanning restrains the edge effect in the forming by balancing the temperature field at the beginning of the scanning line,whereas the varying velocity suppresses the end displacement height by reducing the terminal heat accumulation at the scanning line.Laser process parameters are also significant factors that affect the deformation of sheets.In summary,the varying velocity round-trip coupling scanning strategy can effectively suppress the edge effect of forming parts and realize the precision forming of microcorrugated sheets with large depth-width ratios,thus providing a reference for high-quality microcorrugated sheet forming.

laser materials processingcorrugated sheetlaser thermal stress formingedge effectsuppression strategylaser process parameters

姚喆赫、范伟鑫、陈志敏、张群莉、姚建华

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浙江工业大学激光先进制造研究院 杭州 310023

浙江工业大学特种装备制造与先进加工技术教育部/浙江省重点实验室 杭州 310023

浙江工业大学机械工程学院 杭州 310023

激光材料加工 波纹板 激光热应力成形 边界效应 抑制策略 激光工艺参数

国家自然科学基金国家自然科学基金浙江省"领雁"研发攻关计划

U1809220521754432022C01117

2024

中国表面工程
中国机械工程学会

中国表面工程

CSTPCD北大核心
影响因子:0.652
ISSN:1007-9289
年,卷(期):2024.37(3)