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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Milling force of quartz fiber-reinforced polyimide composite based on cryogenic cooling
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Milling force of quartz fiber-reinforced polyimide composite based on cryogenic cooling

机译:基于低温冷却的石英纤维增强聚酰亚胺复合材料的铣削力

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The structure and physical properties of polyimide matrix composites lead to serious tool wear. And the cutting force is the obvious effect on machining efficiency in dry and cryogenic milling process. A predicted model was fabricated considering cutting temperature. The cryogenic cooling milling method was executed for a series of processing experiments. At the same time, the machining surface morphology, roughness, and cutting force were measured and analyzed compared with dry cutting. Meanwhile, the tool wear regular and mechanism were discussed. The result shows that the cutting force model of composite materials is improved based on cryogenic cutting performance. The friction coefficient of tool/workpiece on contact surface is greatly affected by the cutting heat, and the friction coefficient is reduced in the cutting force model. At the same time, the mechanical properties such as modulus in the model are increased with the decrease of temperature, and it leads to the increase cryogenic milling force. In the milling test, the increase of tensile and compressive strength of composite material is caused by cryogenic cooling. The change leads to the increase of material brittleness with bigger cutting force. Meanwhile, the breaking chip is changed with the improvement of processing quality. Similarly, the better cutting parameter is v(c) = 100/min, a(p) = 1.5 mm, and = 40 degrees. In cryogenics, because of the poor thermal conductivity of composite material, part of the fiber material is still not effectively cryogenic treated with the increase in cutting depth; it cannot be brittle cutting for bigger cutting depth material.
机译:聚酰亚胺基复合材料的结构和物理性质导致严重的工具磨损。切割力是干燥和低温研磨过程中加工效率的显而易见的影响。考虑到预测模型考虑了切削温度。对一系列加工实验执行了低温冷却铣削方法。同时,与干切削相比,测量并分析了加工表面形态,粗糙度和切割力。同时,讨论了刀具磨损定期和机制。结果表明,基于低温切削性能,改善了复合材料的切割力模型。接触表面上的工具/工件的摩擦系数受到切割热的大大影响,并且在切割力模型中减小了摩擦系数。同时,模型中的模量如模量随温度的降低而增加,导致增加低温铣削力。在铣削试验中,复合材料的拉伸和抗压强度的增加是由低温冷却引起的。变化导致材料脆性的增加,具有更大的切割力。同时,随着加工质量的提高而改变破碎芯片。类似地,更好的切割参数是V(c)= 100 / min,a(p)= 1.5mm,= 40度。在低温性中,由于复合材料的导热性差,部分纤维材料仍然没有有效地通过切割深度的增加处理;对于更大的切割深度材料,它不能脆性切割。

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