Inhibition behavior of milling hole outlet defects inhibition on quartz fiber polyimide composite through LN2 inner cooling

IF 2.7 4区 工程技术 Q2 ENGINEERING, MANUFACTURING
Fengbiao Wang, Mathew Kuttolamadom
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引用次数: 0

Abstract

Abstract The helical milling hole process of quartz fiber reinforced polyimide composites (QFRP) aimed to remove high-strength fiber and low-strength resin through thermodynamic interaction. But the defects, especially delamination at hole outlet, were difficult inhabited because of heterogeneous and anisotropic of composite. A mechanics model of milling hole force of QFRP was established by considering the shearing force of single fiber and temperature. A liquid nitrogen (LN2) inner-cooling machining equipment was employed for cryogenic milling hole testes. Compared with the conventional dry milling hole, the processed composite surface morphologies, cutting temperature, and milling force were investigated at hole outlet in detail. The study results show the predict values of the established model are compared and verified through the experimental measurement. And the cryogenic coolant processes can improve the composite mechanics properties, milling forces, and cutting heat. The composite can be completely chip breaking in cryogenic cooling, and the burr and delamination are effectively inhabited at hole outlet. Meanwhile, the rapid decline of cutting force and lower interlamination bonding force problems can be solved by the cryogenic cooling cutting. And the fiber avoidance can be improved through the increased tangential force, and the fiber can be efficiency chip breaking under the bigger tangential force. In addition, LN2 cooling can inhabit the cutting high temperature and increase the bonding force, the delamination defect of composite can be adequately improved in cryogenic.
LN2内冷却对石英纤维聚酰亚胺复合材料铣削孔出口缺陷的抑制行为
石英纤维增强聚酰亚胺复合材料(QFRP)的螺旋铣孔工艺旨在通过热力学相互作用去除高强纤维和低强树脂。但由于复合材料的非均质性和各向异性,缺陷尤其是孔出口处的分层难以修复。建立了考虑单纤维剪切力和温度的QFRP铣削孔力力学模型。采用液氮(LN2)内冷加工设备对孔头进行低温铣削。与传统的干铣削孔相比,对加工后的复合材料表面形貌、切削温度和铣削力进行了详细的研究。研究结果表明,所建立的模型的预测值通过实验测量得到了比较和验证。低温冷却剂工艺可以提高复合材料的力学性能、铣削力和切削热。该复合材料在低温冷却下能完全断屑,在孔出口处能有效抑制毛刺和分层。同时,低温冷却切削可以解决切削力下降快、层间结合力低的问题。增大切向力可提高纤维的规避性,在较大的切向力作用下,纤维可有效断屑。此外,LN2冷却可以抑制切削高温,提高结合力,在低温下可以充分改善复合材料的分层缺陷。
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来源期刊
Machining Science and Technology
Machining Science and Technology 工程技术-材料科学:综合
CiteScore
5.70
自引率
3.70%
发文量
18
审稿时长
6 months
期刊介绍: Machining Science and Technology publishes original scientific and technical papers and review articles on topics related to traditional and nontraditional machining processes performed on all materials—metals and advanced alloys, polymers, ceramics, composites, and biomaterials. Topics covered include: -machining performance of all materials, including lightweight materials- coated and special cutting tools: design and machining performance evaluation- predictive models for machining performance and optimization, including machining dynamics- measurement and analysis of machined surfaces- sustainable machining: dry, near-dry, or Minimum Quantity Lubrication (MQL) and cryogenic machining processes precision and micro/nano machining- design and implementation of in-process sensors for monitoring and control of machining performance- surface integrity in machining processes, including detection and characterization of machining damage- new and advanced abrasive machining processes: design and performance analysis- cutting fluids and special coolants/lubricants- nontraditional and hybrid machining processes, including EDM, ECM, laser and plasma-assisted machining, waterjet and abrasive waterjet machining
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