共查询到18条相似文献,搜索用时 437 毫秒
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航空航天领域大量使用的薄壁叶片等复杂曲面零件,多采用立式铣削方法加工制造。增大刀具与工件接触可以提高加工效率,但刀具的结构参数对铣削质量影响较大。建立铣削力学模型,对立式铣削加工进行分析,确定铣削加工过程中的主要影响因素是铣刀螺旋角、铣刀直径和铣刀刃数。采用AdvantEdge FEM软件,以单变量因素进行铣削有限元仿真,分析铣削力、加工形变、应力应变等影响。结果表明:铣刀螺旋角增大,铣刀半径增加,铣刀刃数增加,可有效地改善刀具应力和形变,增强刀具振动的稳定性,提高加工质量。 相似文献
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航空航天最新难加工材料加工刀具 总被引:1,自引:0,他引:1
黛杰公司继2002年在全球推出第一个"比梦"系列整体烧结金刚石钻头之后,又陆续推出和扩展了"比梦"端铣刀、球头铣刀和镗刀等系列。作为加工上述超难材料的最佳刀具材料供应商,公司在刀具的几何构造、运用领域及其使用寿命方面取得了突破性的进展。 相似文献
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《航空材料学报》2017,(6)
为优化TC17钛合金球头铣刀高速铣削参数和为控制表面变质层提供实验依据,采用中心复合响应曲面法,建立表面粗糙度预测模型,采用方差分析对模型和输入参数的显著性进行检验,分析铣削参数对表面粗糙度的影响规律,同时对高、中、低三种铣削参数水平下的残余应力、显微硬度和微观组织进行检测。结果表明:该模型可以有效预测球头铣刀高速铣削TC17钛合金后的表面粗糙度,每齿进给量和铣削宽度对表面粗糙度影响显著;铣削后表面为残余压应力状态,随着铣削参数水平的增大,表面残余压应力增大,残余压应力层在20μm左右;表层显微硬度经历了"热软化-加工硬化-趋于稳定"的过程;表层晶粒出现了破碎、弯折,塑性变形层厚度约为10μm。 相似文献
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针对一种三元整体叶轮,采用B样条方法对叶片中性面上顶部和根部的两组数据点进行了插值曲线的反算,进而构造出直纹面形式的叶片中性面和叶片曲面;研究了在五坐标机床上采用球头棒铣刀侧铣加工叶轮时的刀位计算方法,给出了在UG环境下的叶轮曲面建模方法及其数控加工仿真步骤。 相似文献
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姚智奇 《航空精密制造技术》2021,57(1):5-8
为研究横向沟槽微织构的制备对刀具应力和应变的影响,采用有限元仿真方法,针对横向沟槽微织构形式,进行了刀具结构强度的仿真。同时,研究了不同横向沟槽微织构参数对球头铣刀结构强度的影响规律。 相似文献
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建立了适合任意进给方向的球头铣刀铣削力模型,并将铣削力仿真与几何仿真有机地结合起来,提出了快速准确地提取参与切削的切削微元的方法,并通过切削实验验证了铣削力模型。 相似文献
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为探索碳纤维增强树脂基复合材料(CFRP)铣削加工过程中切削力与工艺参数之间的映射关系,建立CFRP铣削加工有限元仿真模型并对切削力进行分析。基于ABAQUS软件通过定义材料属性、材料失效模型、纤维铺层数和纤维方向建立了CFRP铣削加工二维有限元仿真模型,并对该模型进行了实验验证。基于该模型,分析了切削力与纤维方向角、铣削速度、每齿进给量和刀具前角等工艺参数之间的映射关系。仿真结果表明:纤维方向角从0°增大到90°,切削力呈现降低趋势,而纤维方向角从90°增大到180°,切削力呈现增大趋势。随着切削速度和每齿进给量的增大,切削力随之增大,而随着刀具前角增大,切削力随之减小。 相似文献
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《中国航空学报》2020,33(4):1361-1374
In five-axis flank milling operations, the intersecting surfaces of different cutting edges create roughness on the milled surfaces that cannot be ignored in situations with strict requirements, especially in aeronautical manufacturing. To focus on motion problems in milling operations, this paper presents a new model that utilizes elliptical paths as cutting edge trajectories on 3D surface topography machined by peripheral milling. First, the cutter parallel axis offset and location angle are considered, which change the location of the ellipse center and intersection point of the cutting edges. Then, through the proposed model, the predicted surface topography is obtained, and the factors that affect the development tendency of roughness are analyzed. Next, the effects of the cutter location position (CLP) geometric parameters, cutter parallel axis offset and curvature on the roughness are evaluated by a numerical simulation. Finally, machining tests are carried out to validate the model predictions, and the results show that the surface topography predictions correspond well with the experimental results. 相似文献
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《中国航空学报》2016,(3):824-830
Machining of carbon/carbon (C/C) composite materials is difficult to carry out due to its high specific stiffness, brittleness, anisotropic, non-homogeneous and low thermal conductivity, which can result in tear, burr, poor surface quality and rapid wear of cutters. Accurate and fast pre-diction of cutting forces is important for milling C/C composite materials with high quality. This paper presents an alternative cutting force model involving the influences of the directions of fiber. Based on the calculated and experimental results, the cutting forces’ coefficients of 2.5D C/C com-posites are evaluated using multiple linear regression method. Verification experiment has been car-ried out through a group of orthogonal tests. Results indicate that the proposed model is reliable and can be used to predict the cutting forces in ball-end milling of 2.5D C/C composites. 相似文献
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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
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《中国航空学报》2023,36(5):549-565
The aim of the present paper is to reveal the influence of different fiber orientations on the tool wear evolution and wear mechanism. Side-milling experiments with large-diameter milling tools are conducted. A finite element (FE) cutting model of carbon fiber reinforced plastics (CFRP) is established to get insight into the cutting stress status at different wear stages. The results show that different fiber orientations bring about distinct differences in the extent, profile and mechanism of tool wear. Severer wear occurs when cutting 45° and 90° plies, followed by 0°, correspondingly, the least wear is obtained when θ = 135° (θ represents the orientation of fibers). Moreover, the worn profiles of cutting tools when θ = 0° and 45° are waterfall edge, while round edge occurs when θ = 135° and a combined shape of waterfall and round edge is obtained when θ = 90°. The wear mechanisms under different fiber orientations are strongly dependent on the cutting stress distributions. The evolution of tool wear profile is basically consistent with the stress distribution on the tool surface at different wear stages, and the extent of tool wear is determined by the magnitude of stress on the tool surface. Besides, the worn edges produce an actual negative clearance angle, which decreases the actual cutting thickness and leads to compressing and bending failure of fibers beneath the cutting region as well as low surface qualities. 相似文献
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螺旋铣削加工工艺具有降低轴向力,改善排屑、散热条件等优点,螺旋铣削力是其重要过程指标之一。对单向CFRP螺旋铣削力建模方法展开研究,预测给定加工参数下的螺旋铣削力。首先,通过对螺旋铣削过程进行运动学分析和切屑几何分析,建立了螺旋铣削过程中侧刃、底刃动态切屑层模型,纤维切削方向角度模型和动态切削力计算模型。然后,分别通过侧刃直线槽铣实验和底刃半齿插铣实验,对各个切削方向角度下侧刃、底刃切削力系数进行了标定,并利用人工神经网络对切削力系数进行拟合。最后,将标定所得的切削力系数代入动态切削力计算模型中,建立了单向CFRP螺旋铣削过程动态切削力预测模型,并通过实验验证了模型的准确性。与现有模型相比,该模型不仅能够预测刀具螺旋运动周期内的切削力变化情况,还可以对每个刀具自转周期内的细节进行预测,通过考虑纤维切削方向角度对切削力系数的影响,反映了单向CFRP材料的各向异性,较为准确地预测了螺旋铣削力。 相似文献
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磨粒建模方法与切削过程仿真研究 总被引:1,自引:0,他引:1
针对砂轮表面上磨粒形状不规则、尺寸不确定的几何特征,研究了模拟实际磨粒的几何建模方法。采用随机空间平面切分正六面体的方法构建了具有实际磨粒几何特征的不规则多面体结构磨粒。基于LS-DYNA软件,采用流固耦合有限元法模拟了不规则多面体结构磨粒的切削过程。分析切削过程中工件材料的应力分布规律与切削变形规律,得出结论:工件材料的加工应力主要集中在与磨粒切削刃及棱角接触的区域;切屑沿磨粒挤压前面向上流动,并于挤压面法向方向上流出;磨粒挤压前角的增大有利于切屑的形成。利用陶瓷立方氮化硼(CBN)砂块进行了磨粒划擦试验,试验结果证实了磨粒切削仿真结果的准确性。 相似文献