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碳纤维增强热塑性复合材料的变温单点飞切去除特性
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作者 鲍永杰 殷国运 +3 位作者 郑植 杨宇星 陈晨 程东 《浙江大学学报(工学版)》 北大核心 2025年第3期616-625,共10页
基于切削温度模拟与单点飞切试验研究碳纤维增强热塑性复合材料(CFRTP)的力热变化规律及其去除特性,分析不同纤维角度和切削温度下CFRTP去除过程和损伤特点.采用单点飞切试验开展CFRTP表面损伤特性研究,通过改变工艺参数、纤维方向和材... 基于切削温度模拟与单点飞切试验研究碳纤维增强热塑性复合材料(CFRTP)的力热变化规律及其去除特性,分析不同纤维角度和切削温度下CFRTP去除过程和损伤特点.采用单点飞切试验开展CFRTP表面损伤特性研究,通过改变工艺参数、纤维方向和材料加热温度,分析切削力热的变化趋势以及温度对材料去除的影响.当飞切速度从3 m/s增大到7 m/s时,切向力和法向力分别增大130.60%和147.80%;当飞切深度从0.05 mm增加到0.10mm时,切向力和法向力分别增大72.44%和58.13%;当纤维角度从0°增大到30°、45°、60°、90°时,切向力分别增大12.50%、37.50%、75.00%、137.50%.CFRTP在20.0℃下以剪切破坏为主,在高温下以拉伸破坏为主且易出现分层和纤维拉拔现象.随切削温度升高,热塑性树脂软化,CFRTP层间强度和承载性能降低,切削力下降,有效切断的纤维数量降低,加工表面质量变差. 展开更多
关键词 碳纤维增强热塑性复合材料(CFRTP) 单点飞切试验 切削温度模拟 去除特性 金刚石磨粒
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Modeling of Transient Thermal Conditions in Cutting
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作者 T. Augspurger F. Klocke +3 位作者 B. Dobbeler M. Brockmann S. Gierlings A. Lima 《Journal of Mechanics Engineering and Automation》 2017年第3期113-119,共7页
The thermal conditions like the temperature distribution and the heat fluxes during metal cutting have a major influence on the machinability, the tool lifetime, the metallurgical structure and thus the functionality ... The thermal conditions like the temperature distribution and the heat fluxes during metal cutting have a major influence on the machinability, the tool lifetime, the metallurgical structure and thus the functionality of the work piece. This in particular applies for manufacturing processes like milling, drilling and turning for high-value turbomachinery components like impellers, combustion engines and compressors of the aerospace and automotive industry as well as energy generation, which play a major role in modern societies. However, numerous analytical and experimental efforts have been conducted in order to understand the thermal conditions in metal cutting, yet many questions still prevail. Most models are based on a stationary point of view and do not include time dependent effects like in intensity and distribution varying heat sources, varying engagement conditions and progressive tool wear. In order to cover such transient physics an analytical approach based on Green's functions for the solution of the partial differential equations of unsteady heat conduction in solids is used to model entire transient temperature fields. The validation of the model is carried out in orthogonal cutting experiments not only punctually but also for entire temperature fields. For these experiments an integrated measurement of prevailing cutting force and temperature fields in the tool and the chip by means of high-speed thermography were applied. The thermal images were analyzed with regard to thermodynamic energy balancing in order to derive the heat partition between tool, chips and workpiece. The thus calculated heat flow into the tool was subsequently used in order to analytically model the transient volumetric temperature fields in the tool. The described methodology enables the modeling of the transient thermal state in the cutting zone and particular in the tool, which is directly linked to phenomena like tool wear and workpiece surface modifications. 展开更多
关键词 Metal cutting infrared thermography heat sources transient temperature fields model based on Green's functions.
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