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微孔的磨料水射流抛光CFD模拟及试验

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为解决飞秒激光微孔难以抛光的问题,结合磨料水射流去除函数稳定、自适应性强等特点,采用磨料水射流抛光方法提高飞秒激光微孔质量.利用Fluent软件对不同工艺参数下的磨料水射流微孔抛光过程进行计算流体力学(computational fluid dynamics,CFD)模拟,分析不同参数下的流场分布、侵蚀速率及壁面剪切力作用规律;然后通过响应面法对射流靶距、射流压力及磨料粒径等 3因素进行优化试验,以微孔内壁面剪切力均方差为响应值,建立其响应面方程,获得最佳抛光参数组合并进行试验验证.结果表明:射流压力对微孔内壁面剪切力的影响最大,当射流压力从 0.80 MPa增至 1.50 MPa时,微孔内壁面剪切力增大 2倍以上.射流的不同结构段因性质不同可适用于不同工况.利用响应面法分析得到水射流微孔抛光的最佳工艺参数组合是:射流冲击角,90°;射流靶距,3.5 mm;射流压力,1.10 MPa;磨料粒径,15.0 μm.在该条件下抛光微孔内壁面的表面粗糙度Ra降至 0.354 μm.磨料水射流抛光可显著改善微孔壁面质量,且响应面法预测的数据模型有较高准确性.
CFD simulation and experiments of abrasive water jet polishing for micropores
Objectives:Femtosecond laser technology has become the primary method for micropore processing due to its high precision and low energy consumption.However,during the process,it is easy to cause microcracks and burrs in the micropores.Additionally,due to the small size,low structural stability and weak wear resistance of the micropores,conventional methods are ineffective in polishing them.To address the challenge of polishing femtosecond laser-pro-cessed micropores,the abrasive water jet polishing method is employed.This method leverages the stable removal func-tion and strong adaptability of the abrasive water jet to improve the quality of femtosecond laser-processed micropores.Methods:Computational fluid dynamics(CFD)simulations of the abrasive water jet micropore polishing process under different process parameters were carried out by using Fluent software.A finite element model of abrasive water jet pol-ishing for femtosecond laser-processed micropores was established under various working conditions.The flow field distribution,the erosion rate and the wall shear force under different parameters were analyzed.Corresponding experi-ments were conducted for each variable discussed in the Fluent simulation,and the variation patterns of micropore inner wall roughness were summarized.Subsequently,optimization experiments were conducted on the three factors,namely jet target distance,jet pressure and abrasive particle size,using the response surface method.The mean square error of shear force on the inner wall of the hole was taken as the response value Y,and the response surface equation was estab-lished.The optimal polishing parameter combination was obtained through the response surface equation and experi-mentally verified.Results:A jet impact angle of 90° is suitable for polishing the inner wall of the micropore,as wall erosion is uniform and the shear force distribution is concentrated at this angle.At a target distance of 4.2 to 6.0 mm,the jet on the end face enters the deceleration stage,and the jet velocity decreases as the target distance increases.The shear force increases with increasing jet pressure.When the jet pressure is 0.80 MPa,the shear force is the smallest,concen-trated in the range of 1 500 to 3 500 Pa.At a jet pressure of 1.50 MPa,the shear force is the largest,concentrated in the range of 3 500 to 5 500 Pa.When jet pressure increases from 0.80 to 1.50 MPa,the shear force on the inner wall of the hole increases more than twice.The effects of abrasive particle size and jet pressure on wall shear force are similar.When the abrasive particle size is 1.0 μm,the shear force is the smallest,concentrated in the range of 1 000 to 2 500 Pa.At an abrasive particle size of 30.0 μm,the shear force reaches its maximum,concentrated between 3 000 and 5 500 Pa.Corresponding tests are carried out for each variable discussed in the simulation,and the minimum roughness Ra of the inner wall of the micropore was 0.386 μm.The optimal process parameter combination obtained through response sur-face analysis is as follows:jet impact angle of 90°,jet target distance of 3.5 mm,jet pressure of 1.10 MPa,and abrasive particle size of 15.0 μm.Under the optimal parameter combination,with an abrasive mass fraction of 5% and a polish-ing time of 5.0 minutes,the surface roughness Ra of the polished micropore inner wall surface was reduced to 0.354 μm,which is better than the minimum roughness of 0.386 μm observed in the simulation.Polishing efficiency is improved by about 3%,and the quality of the micropore inner wall surface is further enhanced.Conclusions:When the impact angle is constant,the shear force on the inner wall of the hole increases with increasing jet pressure and abrasive particle size.It increases first and then decreases with the increase in jet target distance,with jet pressure having the greatest in-fluence on the wall shear force.Different structural segments of the jet can be applied to different working conditions due to different properties.Additionally,the simulation and experimental results are in good agreement,and the im-provement in roughness is significant.This indicates that abrasive water jet polishing significantly enhances the quality of micropore walls,and the data model for response surface prediction has high accuracy.

abrasive water jetfemtosecond laser microporecomputational fluid dynamics(CFD)wall shear forcere-sponse surface method(RSM)

崔子含、韩冰、吴鹏程、李擎、马小刚、丁云龙

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辽宁科技大学 机械工程与自动化学院,辽宁 鞍山 114051

通用技术集团机床工程研究院有限公司大连分公司,辽宁 大连 116620

中国航发哈尔滨东安发动机有限公司,哈尔滨 150066

磨料水射流 飞秒激光微孔 计算流体力学 壁面剪切力 响应面法

辽宁省省科技厅重点研发计划辽宁科技大学省级重点实验室开放课题基金辽宁科技大学省级重点实验室开放课题基金

2023JH2/1013002262023KFKT-072022100305

2024

金刚石与磨料磨具工程
郑州磨料磨具磨削研究所

金刚石与磨料磨具工程

CSTPCD北大核心
影响因子:0.354
ISSN:1006-852X
年,卷(期):2024.44(4)
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