国产日韩欧美一区二区三区三州_亚洲少妇熟女av_久久久久亚洲av国产精品_波多野结衣网站一区二区_亚洲欧美色片在线91_国产亚洲精品精品国产优播av_日本一区二区三区波多野结衣 _久久国产av不卡

?

Modelling and simulation of high-speed milling chatter regeneration based on MATLAB

2015-03-03 08:01:22MEIWentaoYUANLinglingZHENGYongfengLIHongsheng
關(guān)鍵詞:頻響天津建模

MEI Wen-tao, YUAN Ling-ling, ZHENG Yong-feng, LI Hong-sheng

(Tianjin Bohai Vocational Technical College, Tianjin 300402, China)

?

Modelling and simulation of high-speed milling chatter regeneration based on MATLAB

MEI Wen-tao, YUAN Ling-ling, ZHENG Yong-feng, LI Hong-sheng

(TianjinBohaiVocationalTechnicalCollege,Tianjin300402,China)

Considering the deficiency in milling process parameters selection, based on the modelling of dynamic milling force and the deduction of chatter stability limits, the chatter stability lobes simulation program for milling is developed with MATLAB. The simulation optimization application software of dynamics was designed using engineering simulation software Visio Basic. The chatter stability lobes for milling, which can be used as an instruction guide for the selection of process parameters, are simulated with frequency response functions (FRFs) gained by hammer test. The validation and accuracy of the simulation algorithm are verified by experiments. The simulation method has been used in a factory with an excellent application effect.

chatter stability lobes; machining process simulation; milling

0 Introduction

The milling is a process in which the workpiece is manufactured by the milling machine based on computer numerical control (NC) technology. The most important mission for high speed milling is to determine the reasonable cutting parameters. The study on cutting force simulation and chatter has very important significance to optimization of machining parameters and working efficiency. Therefore, the genetic research and rules of the machine tool in high-speed milling chatter suppression method can effectively avoid the instability caused by vibration of the milling[1-5]. In this paper, the regenerative chatter stability domain simulation flow chart is established by analysis of high-speed milling processing and simulation analysis of MATLAB simulation algorithm[7-9]. Cutting chatter can be avoided by choosing appropriate parameters in the stable region. The simulation method has been applied in the factory to good effect.

1 Chatter theory of high-speed milling

1.1 Chatter stability lobes algorithm

The static high-speed milling force model does not consider the effect of dynamic characteristic parameters of milling, and the cutting thickness of milling process is simply considered to be nonlinear relationship between feed rate and the instantaneous angle, but the influence of vibration in milling process is ighored. Therefore, the milling parameters are changed due to workpiece vibration. As a result, the static milling force model can not describe the actual milling process, and dynamics modelling has become an inevitable trend, as shown in Fig.1.

The dynamic milling force formula can be simplified as

(1)

In the milling chatter stability analysis, the effects of dynamic milling force produced by the dynamic displacement of the tool and workpiece are considered, but the milling force of the static component of the cutting thickness is neglected. The reason is that the change of the cutting depth and cutting force direction is the periodic change of dynamic milling force coefficient matrix. In the frequency domain analysis, the vibration vector equation is described by harmonic function and transformed into frequency domain equation. Regeneration displacement equation has been obtained by the above transformation as

(2)

Fig.1 Schematic diagram of dynamic milling system

Substituting Eq.(2) into Eq.(1), dynamic milling force considering the regenerative vibration can be obtained by

(3)

For the flutter frequency, the mathematical formula is characteristic equation, namely characteristic equation of the closed loop dynamic milling system solutions. The mathematical formula is established based on the chatter stability analysis of closed loop feedback dynamic milling system as

(4)

(5)

According to Euler’s formula, in the actual production, axial back engagement is real. The expression of the limit shaft support engagement in the plural form has been calculated. This expression has been calculated in the chatter frequency and carried out under the condition of stable cutting. And all the conditions are critical ones as

(6)

In the actual production of milling,apmust be real, therefore imaginary part of type 7 must be zero. Then the simplified limit formula of axial cutting depth can be obtained by

(7)

In the milling cutter tooth, the cutting cycleTunder the known conditions, among the critical axial depth of cutting and spindle speed relatively has been obtained by

(8)

wherekrepresentsleafnumberofgraphsinthechatterstabilityanalysis.

Basedontheaboveanalysis,theultimateexpressionofhigh-speedmillingchatterstabilityhasbeenobtained.Dynamicsparametersofprocessingsystemarefrequencyresponsefunctionsoftheworkpiecemachiningpartsorthetooltippartsandhavebeenobtainedbyusingexperimentalmodalanalysismethod(Hammeringexperiment).

1.2 Simulation program design

Basedontheabovetheoreticalanalysis,thesimulationprogramisdevelopedbasedonsoftwareMATLAB7.1,andthesimulationinterfaceisdesignedbasedonMATLABGUIDEintegratedenvironment,ACCESSDatabaseandVisioBasic.Thesimulationresultsareoutputintheformofgraphicanddatafiles.TheflowchartofchatterstabilitylobesispresentedinFig.2.IncontrastwiththesimilarforeignsoftwareCUTPRO,twosimulationresultsarebasicallythesame,butourmethodhasfastersimulationspeed,asshowninTable1.

Fig.2 Flow chart of chatter stability lobes

Table 1 Comparison of simulation speed

2 Experimental verification

In order to verify the validity and accuracy of chatter stability lobes simulation algorithm, cutting experiment was carried out in FIDIA D318 high-speed machining center. The maximum speed of this machine tool is 30 000 r/min. The tool used by the experiment is the whole hard alloy cutter of Sandvik, diameter of 12 mm, 2 teeth, 30 spiral angles, overhang length 70 mm. The workpiece material is Al12, specimen size is 100×100×20 (mm). Hammer test was conducted based on “machine-tool” system. The results inXandYdirections of the FRFs were obtained. Compared with the tool, the box workpiece is considered to be a rigid body, and it can be neglected when the simulation occurs.

Fig.3 Simulation results

Fig.3 is the chatter stability lobes diagram of domain simulation. Validation experiments were performed in six selected points from the diagram (● chatter, ■ stable cutting zones). Table 2 is the processing parameters used in the experiment and verification results. Fig.3 and Table 2 show that chatter does not appear when cutting parameters of point 1, 2 and 3 are used. Chatter appears when cutting parameters points 4, 5 and 6 are used. This is fully consistent with the chatter stability lobes simulation results. Therefore, the stability simulation algorithm is proved to be effective and accurate.

Table 2 Flutter stability lobes verification (all slot milling, feed per tooth for 0.1 mm)

3 Application

The milling chatter stability lobes simulation method has been applied and good results were obtained in a large state-owned enterprise. Now taking the enterprise backbone machining center FIDIA D518 for example, the maximum speed of FIDIA D518 is 40 000 r/min, greater than parameters previously used. Dynamic parameters test and stability domain simulation were carried out on several commonly-used tools. Through the simulation experiment, cutting parameters were optimally selected. The comparison of cutting parameters and the material removal rates before and after optimization is shown in Table 3. Apparently, according to the simulation results of chatter stability lobes, cutting parameters are chosen more reasonably and the processing efficiency is higher.

Table 3 Cutting parameters before and after optimization

4 Conclusion

To solve the problem of selecting parameters in CNC milling process, based on calculation and analysis of the dynamic milling force modelling and chatter stability lobes, taking MATLAB as the development tool, the regeneration chatter milling simulation algorithm is established. The principle and steps of the algorithm are presented. The stability graphics of the whole machining system are given out. It provides a theoretical basis for the selection and optimization of milling parameters. The simulation algorithm proved to be efficient and accurate by cutting experiment.

[1] Gradisek J, Kalveam M, Weinert K. Mechanistic identification of specific force coefficients for a general end mill. International Journal of Machine Tools & Manufacture, 2004, 44(4): 401-414.

[2] Ratchev S, Liu S, Huang W, et al. A flexible force model for end milling of low-rigidity parts. Journal of Materials processing Technology, 2004, (153/154): 134-138.

[3] Ryu S H, Chu C N. The form error reduction in side wall machining using successive down and up milling. International Journal of Machine Tools & Manufacture, 2005, 45(12/13): 1523-1530.

[4] Mascardelli B A, Park S S, Freiheit T. Substructure coupling of micro end mills to aid in the suppression of chatter. Journal of Manufacturing Science and Engineering, 2008, 130(1): 1-12.

[5] ZHANG Lei, ZHENG Li. Prediction of cutting forces in milling of circular corner profiles. International Journal of Machine Tools & Manufacture, 2004, 44(2/3): 225-235.

[6] Li Z Z, Zhang Z H, Zheng L. Feedrate optimization for variant milling process based on cutting force prediction. International Journal of Advanced Manufacturing Technology, 2004, 24(7/8): 541-552.

[7] Bravo U, Altuzarra O. Stability limits of milling considering the flexibility of the work-piece and the machine. International Journal of Machine Tools & Manufacture, 2005, 45(15): 1669-1680.

[8] Gagnol V, Bouzgarrou B C, Ray P, et al. Model-based chatter stability prediction for high-speed spindles. International Journal of Machine Tools & Manufacture, 2007, 47(7/8): 1176-1186.

[9] Ozlu E, Budak E. Analytical modeling of chatter stability in turning and boring operations. Journal of Manufacturing Science and Engineering, 2007, 129: 726-732.

[10] Altintas Y, Shamoto E, Lee P, et al. Analytical prediction of stability lobes in ball-end-milling . Journal of Manufacturing Science and Engineering, 1999, 121(1): 586-592.

[11] Budak E, Altintas Y, Armarego E J A. Prediction of milling force coefficients from orthogonal cutting data. Journal of Manufacturing Science and Engineering, 1996, 118(2): 216-224.

基于MATLAB的高速銑削加工再生型顫振的建模與仿真

梅文濤, 苑苓苓, 鄭勇峰, 李紅升

(天津渤海職業(yè)技術(shù)學(xué)院, 天津 300402)

針對(duì)國(guó)內(nèi)高速銑削加工工藝參數(shù)選擇存在的問題, 基于動(dòng)態(tài)銑削力建模和顫振穩(wěn)定域分析計(jì)算, 以MATLAB為開發(fā)工具, 得到了銑削加工再生型顫振仿真算法。 通過模態(tài)錘擊實(shí)驗(yàn)獲得頻響函數(shù), 利用Visio Basic軟件設(shè)計(jì)了圓柱立銑刀動(dòng)力學(xué)仿真系統(tǒng), 對(duì)整個(gè)加工系統(tǒng)的顫振穩(wěn)定域圖形進(jìn)行仿真, 為銑削加工切削參數(shù)選擇和優(yōu)化提供了理論依據(jù)。 實(shí)驗(yàn)驗(yàn)證了該仿真算法的有效性和準(zhǔn)確性, 并在實(shí)際應(yīng)用中取得了良好的效果。

顫振穩(wěn)定域; 加工過程仿真; 銑削

MEI Wen-tao, YUAN Ling-ling, ZHENG Yong-feng, et al. Modelling and simulation of high-speed milling chatter regeneration based on MATLAB. Journal of Measurement Science and Instrumentation, 2015, 6(2): 175-179.

10.3969/j.issn.1674-8042.2015.02.011

Foundation items: Tianjin Municipal Association of Higher Vocational & Technical Education Projects (No.XIV412 )

MEI Wen-tao (406091864@qq.com)

1674-8042(2015)02-0175-05 doi: 10.3969/j.issn.1674-8042.2015.02.011

Received date: 2015-03-12

CLD number: TP391.73 Document code: A

猜你喜歡
頻響天津建模
如果天津有“畫”說
聯(lián)想等效,拓展建模——以“帶電小球在等效場(chǎng)中做圓周運(yùn)動(dòng)”為例
基于分塊化頻響函數(shù)曲率比的砌體房屋模型損傷識(shí)別研究
天津卷
美團(tuán)外賣哥
《天津之眼》
基于PSS/E的風(fēng)電場(chǎng)建模與動(dòng)態(tài)分析
電子制作(2018年17期)2018-09-28 01:56:44
不對(duì)稱半橋變換器的建模與仿真
天津
汽車與安全(2016年5期)2016-12-01 05:21:56
頻響函數(shù)殘差法在有限元模型修正中的應(yīng)用
益阳市| 彩票| 额济纳旗| 旌德县| 溧阳市| 西畴县| 上犹县| 青河县| 榆树市| 河南省| 淳化县| 桐庐县| 广州市| 白水县| 滦平县| 锦州市| 东港市| 娄烦县| 澜沧| 米脂县| 美姑县| 乳山市| 霍林郭勒市| 彭泽县| 闻喜县| 青河县| 金溪县| 革吉县| 苍山县| 平乡县| 古丈县| 侯马市| 含山县| 仪陇县| 盘锦市| 安福县| 铜梁县| 福海县| 贺兰县| 中卫市| 思南县|