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31.
融合机床精度与工艺参数的铣削误差预测模型   总被引:2,自引:1,他引:1  
熊青春  王家序  周青华 《航空学报》2018,39(8):421713-421713
为弥补现有五轴联动数控铣床加工飞机结构件的加工精度评估系统的不足,提出利用机床精度检测数据和零件特征及其工艺参数来构建评估指标体系,基于BP神经网络建立了飞机结构件加工误差预测模型。通过完成训练的网络权值分布,计算出各输入指标对最后评估结果的影响,并通过实例分析检验了模型的可靠性。结果表明,经BP神经网络模型训练得到的结果和样本零件的三坐标测量机测量数据基本吻合,选取的评价指标具有有效性。该评估模型能够有效地融合机床精度检测数据和零件特征及其加工工艺参数,对飞机结构件的铣削加工误差进行预测。  相似文献   
32.
《中国航空学报》2021,34(4):540-567
Continuous fiber reinforced SiC ceramic matrix composites (FRCMCs-SiC) are currently the preferred material for hot section components, safety–critical components and braking components (in the aerospace, energy, transportation) with high value, and have triggered the demand for machining. However, the high brittleness, anisotropy, and heterogeneity of materials bring great challenges to machining, due to high mechanical and thermal loads, severe tool wear, and poor machining quality. With the increasing demand of FRCMCs-SiC parts, high-quality and high-efficient machining has become a hot issue. This review paper provides a detailed literature survey on the machining of FRCMCs-SiC. The material removal mechanism, defect form, and interfacial mechanical properties of FRCMCs-SiC were summarized. The machining processes of FRCMCs-SiC were introduced, and their respective advantages and disadvantages were compared. Given the low machinability (high hardness, high brittleness, anisotropy, and heterogeneity) of FRCMCs-SiC, preliminary experiments have proved that ultrasonic-assisted machining and laser-assisted machining have shown unique advantages in reducing force and tool wear, improving machining quality and machining efficiency. The machined surface integrity was discussed, the influence of process parameters on the machined surface quality was analyzed, and the machining defects of FRCMCs-SiC were summarized. But for FRCMCs-SiC, the existing quantitative evaluation of the machined surface integrity was weak and unsystematic.  相似文献   
33.
航空、航天和兵器工业的迅猛发展,迫切需要能加工大口径、高强度、特种合金材料的高精度、薄壁管形件的旋压机床.为满足国内用户需求,开发研制了100T立式强力旋压机床,为重型强力旋压机的研制做出有益探索.  相似文献   
34.
本文介绍了数控编程和数控加工中保证零件的尺寸和公差要求的方法。一种方法是用公差的中间值作为终点坐标的尺寸编程;另一种方法是用公称尺寸编程,用公差的中间值作与公称尺寸的差值作为刀补值,通过刀具补偿保证尺寸要求。  相似文献   
35.
基于动力学仿真技术的TC4整体叶轮铣削参数优化   总被引:3,自引:1,他引:2  
针对某航空发动机TC4整体叶轮在数控加工过程中存在颤振、加工效率低及因加工变形而导致局部超差等问题,提出了相应的铣削参数优化解决方案。在进行切削力系数辨识试验获取TC4材料的切削力系数及锤击试验获取加工系统动力学特性参数的基础上,通过综合使用自行开发的铣削加工动力学仿真软件SimuCut和国外的CutPro软件进行动力学仿真与优化,获得了优化的切削参数。使用优化的切削参数进行加工,有效地消除了颤振和因加工变形引起的局部超差,提高了加工效率。  相似文献   
36.
数控加工运动的平滑处理   总被引:16,自引:0,他引:16  
张得礼  周来水 《航空学报》2006,27(1):125-130
为了满足高速加工的要求,提出假设圆弧过渡法来处理两相邻运动矢量拐角处的速度,过渡小圆弧的半径能随加工精度的变化而自动地调整,通过限制加工小圆弧的最大速度来限制拐角处的速度,利用超前分析的方法,根据减速所需的最大距离提出了一种多程序段运动平滑算法,实现进给速度提前减速,从而防止刀具在拐角处发生过载,并有效地减少了工件形状在拐角处,或小半径圆弧的加工误差;用等效的梯形加减速方法实现了S型曲线加减速的分析,导出了S型曲线加减速实时精确的插补算法,从而克服了用查表法来近似计算速度的缺点。这些算法简单、有效,已在最新开发的高速铣床上得到应用。在高速加工时获得了高的加工精度。  相似文献   
37.
技术改造实施成功与否,很大程度取决于该项目的工艺设计水平。本文从柔性生产线工艺设计依据、指导思想、主要设计内容,以及生产线总体技术水平和经验教训等方面,较详细地介绍了摩托车发动机机加柔性生产线工艺设计的全过程。  相似文献   
38.
复合材料后加工技术的研究现状及发展趋势   总被引:18,自引:4,他引:14       下载免费PDF全文
分析了国内外复合材料后加工技术的研究现状和发展趋势,重点阐述了复合材料切削力和切削温度、切削刀具材料及结构、特种加工技术、表面质量评价技术研究等方面的研究成果,同时提出了建议。  相似文献   
39.
Predicting the cutting forces required for five-axis flank milling is a challenging task due to the difficulties involved in determining the Undeformed Chip Thickness(UCT) and CutterWorkpiece Engagement(CWE). To solve these problems, this paper presents a new mechanistic cutting force model based on the geometrical analysis of a flank milling process. In the model,the part feature and corresponding cutting location data are taken as input information. The UCT considering cutter runout is calculated according to the instantaneous feed rate of the element cutting edges. A solid-discrete-based method is used to precisely and efficiently identify the CWE between the end mill and the surface being machined. Then, after calibrating the specific force coef-ficients, the mechanistic milling force can be obtained. During the validation process, two practical operations, three-axis flank milling of a vertical surface and five-axis flank milling of a nondevelopable ruled surface, are conducted. Comparisons between predicted and measured cutting forces demonstrate the reliability of the proposed cutting force model.  相似文献   
40.
《中国航空学报》2019,32(8):2009-2016
The Blade Integrated Disk (Blisk) is one of the key components in the aero-engine, it is generally manufactured by the multi-axis milling and almost 90% raw materials are removed. To avoid the full immersion of a cutter in the rough machining of a blisk channel, the trochoidal milling is a promising strategy since it can keep a small immersion angle in the rough milling process while maintaining the high machining efficiency. However, while toolpaths are being planned for the trochoidal milling process, the conventional methods are mainly for the planar machining area with fixed tool orientations, which cannot be used for complex channels where the multi-axis machining should be employed. To this end, this paper presents a four-axis trochoidal toolpath planning method with a ball-end cutter, and thus the blisk channel can be machined efficiently. For this to happen, the trochoidal paths are planned in the parametric domain and then mapped into the physical domain, with tool orientations controlled by the quaternion interpolation method to have smooth tool movement along the toolpaths. Both geometric simulation and physical milling experiments of the proposed method have convincingly demonstrated the validation of the proposed method.  相似文献   
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