IL CHATTER E LE VIBRAZIONI NELLE

Size: px
Start display at page:

Download "IL CHATTER E LE VIBRAZIONI NELLE"

Transcription

1 IL CHATTER E LE VIBRAZIONI NELLE MACCHINE UTENSILI Origine e modalità di riduzione Ing. Massimo Goletti Ing. Paolo Albertelli

2 2 Agenda Machine Tools performance Vibration Issues Cutting process instability Stability Lobes Estimation Experimental procedure Uncertainty in SDL estimation Structural optimization with metal foams Vibration Mitigation strategies and Spindle Speed Variation (SSV) SSV in turning operations Vibration and cutting forces mitigation effectiveness Industrial feasibility: promising applications SSV in milling operations Vibration and cutting forces mitigation effectiveness SSSV parameter selection

3 3 Machine tool performances Finishing operations Complex geometry components (3 or more axes) Roughing operations Components require high cutting capability High feed rates and 3D trajectories precision (tracking requirements) Material Removal Rate maximization High performances axes dynamics HSM: High Speed Machining High roughing operation (hard materials) Forces vibrations and auto-regenerative chatter

4 4 Effects of vibrations in machine tools Undesired effects Poor surface finish quality Increased tool wear and chipping probability High spindle bearings load

5 5 Effects of vibrations in machine tools Undesired effects Poor surface finish quality Increased tool wear and chipping probability High spindle bearings load Commonly accepted approach to reduce vibration effects Cutting parameter reduction: depth of cut and spindle speed Productivity limitation

6 6 Classification of vibration in machine cutting Forced vibrations Regenerative vibrations x vibrazioni [mm] vibrazioni [mm] tempo [s] tempo [s] Directly related to machine dynamics Technological signature (waviness) on machine surface Linked to the machine dynamics Related to the interaction between successive tooth pass waviness The chip thickness has an unstable dynamic component

7 7 Tooth pass and surface waviness Machine tool is not a rigid system b y k y k x Tooth j-1 Tooth j Cutting forces deforms the machine tool Real tooth position can be defined y b x x Tooth j studying the dynamic compliance of the system Tooth j-1 leaves a waviness on the machined surface Tooth j leaves a waviness that interacts with the previous one Chip thickness is modulated

8 8 Chip thickness modulation Rigid system Compliant system (Forced vibrations) Auto-regenerative vibrations = = = Phase shift ε=0 Phase shift ε 0

9 9 Chip thickness modulation Cutting forces are proportional to chip thickness Auto-regenerative vibrations Chip thickness is proportional to surface waviness Vibrations are proportional to cutting forces - Successive tooth vibrations affects surface waviness = Phase shift ε 0

10 10 Estimation of the stability lobes diagram x y df t,j φ, z = K ts h j φ j z + K te dz df r,j φ, z = K rs h j φ j z + K re dz df a,j φ, z = K as h j φ j z + K ae dz φ z K s FRF Tool Stability lobes diagram n [rpm] a p [mm] ω c [Hz] FRF Workpiece

11 11 Cutting coefficient determination dft dfr df, j, j a, j, z Kts hj j z, z K rs hj j z, z K h z h j as j j K K te K z a sin z j z j re ae dz dz dz z y φ j j th tooth x feed n a z y φ st φ j φ ex df r df t x The select force model is the mechanicistic one Mean cutting forces are estimated as a function of a z A regression of the mean forces as a function of the a z allows to determine the cutting coefficients

12 12 Determination of structure dynamics The dynamic compliance at the tool allows to describe system behavior There are two ways for Frequency Response Function (FRF) determination (1) Experimental measurement (2) Finite Element Modeling

13 13 Experimental FRF measurement Two typologies of measurement Impact test: instrumented hammer and accelerometers Measurement with actuators: complex function with force sensor and actuator (1.1) Impact testing (1.2) Measurement with actuator

14 14 Impact testing Solicitation Displacement (double integration) Frequency Response Function estimation FRF Acceleration

15 15 Stability lobes diagram FRF 1 ELEMENTS Virtual Model K0 M0 K0 SEP :51:43 K0 K0 M0 M0 K0 K0 M0 K0 M0 K0 K0 K0 K0 M0 K0 M0 M0 M0 K0 M0 K0 K0 Z Y X K0 K0 Instrumented hammer Accelerometer profondità di passata, b [mm] UNSTABLE REGION STABLE REGION vibrazioni [mm] x vibrazioni [mm] tempo [s] tempo [s] velocità del mandrino, n [rpm]

16 Vibrations in machine tools Experimental modal analysis

17 17 Why the Lobes Diagram is not widely applied? Comments The Stability Lobes Diagram (SLD) is not reliable Whenever used it is experimentally verified Needs Quantify the errors on SLD estimation Quantify the errors is SLDalgorithm Proposed approach Propagation of uncertainty

18 18 Propagation of uncertainty Uncertainty of y is calculated as the composition of uncertainties of the various inputs x i The combined uncertainty is computed as follows: N N u 2, c y u xi u xi x j i1 f x y f x, x,, i 2 x N N i1 ji1 f x i f x j This equation is the law of propagation of uncertainty UNI CEI ENV 13005:2000. Guida all espressione dell incertezza di misura. Milano: UNI CEI, 2000.

19 19 Multivariate propagation of uncertainty The covariance matrix of the output variables (matricial version of the law of propagation of uncertainty) is: f 1 u 2 f f 1 1 y 1 u y 1, y M x 1 x N u 2 f M x 1 u x 1, x N x 1 x 1 = u y M, y 1 u 2 y f M M f M u x N, x 1 u 2 x f N 1 f M x 1 x N x N x N M M M N N N N M The uncertainty region in a plane of two correlated factor is an ellipse (with normality assumption) Im Im Im z s u s v θ Re θ = 1 2 atan2 2s x, y s 2 x s 2 y θ Re z

20 20 Analysis of the input and output variables Uncertainty affected input quantities Cutting coefficients Frequency Response Functions Output quantities (with uncertainty) Depth of cut Spindle speed Independent variable (without uncertainty) Chatter frequency a lim c Re N K Im Re 2 2 t 1 n 2 tan 60 z T c z 2k

21 21 Uncertainty for cutting coefficients A regression of mean forces as a function of a z is needed Uncertainty of the predictors can be estimated with regression Feed Regression Source DF SS MS F Regression , , ,5613 Error , ,306 Total ,6 F x F xs a z F xe Cutting coefficient K ts = 1911±53 [N/mm 2 ] K rs = 747,7±19 [N/mm 2 ] K as = 7,696±12 [N/mm 2 ] K te = 17,18±9,3 [N/mm] K re = 65,04±3,4 [N/mm] K ae = -21,07±1,6 [N/mm] From the cutting force model it is possible to estimate the cutting coefficients with uncertainty Hypothesis testing must be done after regression analysis

22 22 Uncertainty in Frequency Response Function estimation Frequency Response Function is the result of a series of repeated measurements The quantities F(t), s(t) are noise affected Estimators minimize these measurement noises The coherence function shows the linearity of the measure as a function of frequency F(t) e 1 (t) ˆ 2 Linear system s(t) + + x(t) e 2 (t) y(t) H ˆ1 H ˆ2 Gˆ Gˆ Gˆ Gˆ Gˆ xx xy xx yy yx Gˆ xy Gˆ yy 2

23 23 Uncertainty in Frequency Response Function estimation There is a formulation for the estimation of uncertainty for H 1 FRF estimator as a function of coherence function H 1 sin n d 1 2 H1 H1 2n d

24 24 Stability Lobes Diagram with uncertainty (HSM)

25 25 Stability Lobes Diagram with uncertainty (example) Spindle speed 3000 rpm Axial depth of cut 1.5 mm Slot milling on aluminum Three different milling tests with a z : mm/z K ts = 575,8±27 [N/mm 2 ] K rs = 74,79±4,2 [N/mm 2 ] K as = -10,01±5,4 [N/mm 2 ] K te = 24,94±4,1 [N/mm] K re = 21,37±0,64 [N/mm] K ae = 13,84±0,67 [N/mm]

26 26 Stability Lobes Diagram with uncertainty (example): performed tests

27 Known case: Vibrations in machine tools 27 Receptance Coupling Substructure Analysis (RCSA) Need to save time: complex industrial productive scenarii + s s s s Coupling dynamic systems Finite Element Analysis (FEA) A lot of research have been done but the RCSA technique still shows important limitation due to the dynamics prediction accuracy Different RCSA techniques were developed

28 28 Tool tip dynamic prediction properties: RCSA evaluation s s 10-4 m/n 10-6 s s tool tool1 H 11 tool2 H 11 tool2 H 11 RCSA deg hz

29 29 Stability Lobes Prediction: RCSA evaluation [Hz] axial depth of cut [mm] axial depth of cut [rpm] chatter frequency x tool1-measured tool tip compliance tool2 -measured tool tip compliance tool2 - predicted tool tip compliance (RCSA) [rpm] x 10 4

30 Axial depth of cut [mm] Vibrations in machine tools 30 Facing regenerative chatter Cutting parameters (spindle speed) selection Regenerative chatter modelling and stability prediction accuracy (process damping, low mill engagement) Stability Lobes Diagram (SLD) uncertainties Fast SLD prediction-receptance Substructuring Analysis Improve the Machine Tool dynamics cutting process oriented MT and components design increase structural damping Active or passive damping solutions Smart materials Metal foams Spindle Speed Modulation lobe j lobe 1 lobe 0 Stable Cutting Unstable Cutting Spindle speed A Ω 0 s s 1/f

31 Axial depth of cut [mm] Vibrations in machine tools 31 Machine tool Performance enhancement Cutting performance prediction and parameters selection Stability Lobes estimation Uncertainty and SLD estimation Receptance Coupling Sub-structuring Analysis s s lobe j lobe 1 lobe 0 Stable Cutting Unstable Cutting Spindle speed Machine Tool Dynamics improvement through subsystems dynamic interaction exploitation Spindle-Machine Tool Structure interaction Spindle-Control Interaction 1 A axis b Y Z X NODAL SOLUTION STEP=1 SUB =3 FREQ= USUM (AVG) RSYS=0 DMX = SMX = Z Y X MAR :59:17 0 RAM_Z_ACCIAIO Machine Tools performance enhancement & chatter vibration mitigation Spindle Speed Variation and vibration controller SSV turning A SSV milling Innovative Materials Increase the machine tool structural damping (metal foams) Ω 0 1/f

32 32 Machine Tool Dynamics improvement through subsystems dynamic interaction exploitation Machine Tool Structure Control interaction Z Is it possible to exploit the regulator tuning to improve the cutting process stability? a) increase the damping (loop velocity) b) introduce a quasi-static compliance contribute A axis b Y X x 10-7 FRF: tool tip dynamic compliance real[m/n] X: 23 Y: 7.679e-008 A axis locked Titanium milling Milling Parameter Value Tool diameter [mm] 32 Radial immersion a e [mm] 32 Feed rate a z [mm/rev tooth] 0.9 Tooth number z A axis Locked (2 brakes) 70 hz

33 machine machine spindle&a trasmission spindle&a transmission Vibrations in machine tools 33 Machine Tool Dynamics improvement through subsystems dynamic interaction exploitation c 1 k 1 Real part[m/n] dominant eigenmode m 1dof A axis controller A axis controller J eq Residual frequency(hz) F tool tip F tool tip ω n 1 + 2ξ Goal: Define some tuning criteria to enhance the cutting stability

34 34 Machine Tool Dynamics improvement through subsystems dynamic interaction exploitation Depth of Cut [mm] 2.5 Real [m/n] Chatter Freq. [Hz] Imaginary [m/n] Tool compliance: 1-1 x 10-7 X real F % 100 X real F tool tool tool tool ( ) ( ) Acontroller global 1dof 4 % tool tip dynamic compliance (A axis controller tuning effects) M J 1dof 2 A / b identified from experimental tests X: Y: e X: tool tip dyn. compliance (structural contribute) 10 2 Y: e-007 tool tip dyn. compliance (global - optimized tuning) x 10-7 Stability Lobes Diagramm: Cutting Stability oriented A axes control tuning tool tip dyn. compliance (controller contribute - optimized) tool tip dyn. compliance (controller contribute - standard tuning) tool tip dyn. compliance (global - standard tuning) Spindle Speed [rpm] hz A blocked Cutting Stability Oriented tuning (A axes controller ) Contribute linked to the regulator Tool compliance: Computed using the identified criteria

35 35 Spindle Speed Variation SSV Sinusoidal Spindle Speed Variation (SSSV) Infinite acceleration values are not required Can be easily tracked by Numerical Control systems ( t) 0 RVA sen( 0 0 RVF t ) W 0 = nominal spindle speed RVA A 0 2 f RVF 0 A Ω 0 reasonable values RVA = 0 40% RVF = 0 40% Spindle Speed Variation 1/f

36 36 Experimental set-up description flexible reeds fixing washers internal shaft x 10-4 External hollow cylinder AXIAL WORKPIECE COMPLIANCE design of a specific workpiece with a calibrated compliance 4 FEM MODEL EXPERIMENTAL sensorized tool laser beam displacement sensor 2 Re(FRF) [mm/n] Hz steel turning, d=110mm, axial freq=85hz The SSSV seems to be effective for high dominant frequency/nominal spindle speed Spindle Speed Variation -4-6 X: Y: X: 86 Y: frequency, f [Hz]

37 37 Turning Model Validation Chip thickness reconstruction: from laser measurement [mm] TEST 1 - CSM: unstable cutting Tool disengagement experimental simulated [mm] TEST 2 - SSSV (RVA=30% RVF=10%): stable cutting 0.15 experimental 0.1 simulated 0.05 [mm] TEST 3 - SSSV (RVA=10% RVF=30%): unstable cutting experimental simulated [mm] TEST 4 - SSSV (RVA=30% RVF=30%): stable cutting experimental simulated Spindle Speed Variation [s]

38 38 Turning: simulation results Tool load force (Root Mean Square) Surface quality Workpiece vibration (Root Mean Square) RVA=0.3, RVF= Vibration reduction [%]: CSM Vs (RVA=0.3,RVF=0.1) Force reduction [%]: CSM Vs (RVA=0.3,RVF=0.1) depth of cut[mm] % 91% 92% -2% spindle speed [rpm] depth of cut [mm] % 7% 4% -2% -1% spindle speed [rpm] Spindle Speed Variation

39 39 Turning: simulation results Tool load force (Root Mean Square) Surface quality Workpiece vibration (Root Mean Square) RVA=0.1, RVF= Vibration reduction [%]:CSM Vs (RVA=0.1,RVF=0.3) Force reduction [%]: CSM Vs (RVA=0.1,RVF=0.3) depth of cut[mm] % depth of cut [mm] % spindle speed [rpm] 0-0.6% spindle speed [rpm] 0 Spindle Speed Variation

40 40 Milling application microphone dynamometer Experimental set-up inserts Mechanicl head 3 axial accelerometer Xm:feed Zm Tool type Tool lenght 270mm Tool diameter 80mm Z 6 Insert Walter P R WTL71 Spindle Speed Variation Analog ouputs insert

41 41 Head Vibration (Resultant RMS value): CSM Vs (RVA=0.1,RVF=0.3) RMS vibration CSM RVA=0.1,RVF= b [mm] Spindle Speed Variation n [rpm]

42 42 Interesting cases n=455rpm b=1.5mm RVA=0.1, RVF=0.3 Spindle Speed Variation

43 43 Iteresting cases n=500rpm b=1.5mm RVA=0.1, RVF=0.3 Spindle Speed Variation

44 44 Mandelli CN & DRIVES Additional Sensors on machine Additional Sensors on workpiece/fixture signals from the NC Feed and Speed regulation Spindle Speed Variation EPC EPC main tasks Machine Tool state & Tool state reconstruction Process quality estimation Cutting process parameters automatic regulation Chatter vibration techniques (i.e. SSV) implementation Active vibration damping system (workpiece) control Data logging

45 Axial depth of cut [mm] Vibrations in machine tools 45 Vibration Mitigation Strategies Regenerative chatter S parameter Spindle Speed Variation Spindle Speed regulation Forced Vibration feed parameter regulation lobe j lobe 1 lobe 0 SSV can be a vibration suppression low spindle speeds (even if process damping exists). It is more flexible than variable pitch tools. SSV probably is non effective when high feed tools are used. +Process damping Lobe 5 Spindle speed Spindle Speed regulation: automatic spindle speed tuning algorithm definition (robustness) Spindle Speed variation: continuously spindle speed modulation parameter selection(sinusoidal Spindle Speed Variation) Spindle Speed Variation

46 46 Control strategy development on updated models The model reproduces well the real behaviour Spindle Speed Variation

47 47 Control strategy development on updated models SSSV parameters: RVA=0.3; RVA=0.1 Rms cutting forces Rms tool vibratiojn Spindle Speed Variation

48 48 Control strategy development on updated models Considering also the pulsing vibrations SSSV parameters: RVA=0.3; RVA=0.1 Rms (moving window) cutting forces Rms tool (moving window) vibration Spindle Speed Variation

49 49 Control strategy development on updated models SSSV parameters selection Optimization Rms tool (moving window) vibration Optimal parameters map Spindle Speed Variation

50 50 Representation of the machin-tool control logic Spindle Speed Variation

51 51 Numerical Results Feed Force [N] Feed Acc. [m/s 2 ] Spindle Vel. [rpm] Time [s] Spindle Speed Variation

52 52 Control action tested on the updated numerical model Spindle Speed Variation

53 53 State flow implementation control action (SSSV) results resuming Spindle Speed Variation

54 54 Metal Foams 1 min 2 min 3 min 4 min 5 min 6 min 7 min 8 min 9 min

55 55 Ing. Massimo Goletti Ing. Paolo Albertelli

Machining Dynamics. Experimental characterization of machining processes. TEQIP Workshop on. Dr. Mohit Law

Machining Dynamics. Experimental characterization of machining processes. TEQIP Workshop on. Dr. Mohit Law TEQIP Workshop on Machining Dynamics Machining Process Modelling + Machine Tool Dynamic Testing + Avoidance of Chatter Vibrations 18-22 July 2016 Experimental characterization of machining processes Dr.

More information

Evaluation of active structural vibration control strategies in milling process

Evaluation of active structural vibration control strategies in milling process Evaluation of active structural vibration control strategies in milling process Monnin, J. (a); Wegener, K. (a) a) Institute of Machine Tools and Manufacturing, Zurich, Switzerland Keywords: Mechatronics,

More information

UNCERTAINTY PROPAGATION FOR SELECTED ANALYTICAL MILLING STABILITY LIMIT ANALYSES

UNCERTAINTY PROPAGATION FOR SELECTED ANALYTICAL MILLING STABILITY LIMIT ANALYSES UNCERTAINTY PROPAGATION FOR SELECTED ANALYTICAL MILLING STABILITY LIMIT ANALYSES G. Scott Duncan, Mohammad H. Kurdi, Tony L. Schmitz Department of Mechanical and Aerospace Engineering University of Florida

More information

Control of Chatter using Active Magnetic Bearings

Control of Chatter using Active Magnetic Bearings Control of Chatter using Active Magnetic Bearings Carl R. Knospe University of Virginia Opportunity Chatter is a machining process instability that inhibits higher metal removal rates (MRR) and accelerates

More information

PERIOD-N BIFURCATIONS IN MILLING: NUMERICAL AND EXPERIMENTAL VERIFICATION

PERIOD-N BIFURCATIONS IN MILLING: NUMERICAL AND EXPERIMENTAL VERIFICATION PERIOD-N BIFURCATIONS IN MILLING: NUMERICAL AND EXPERIMENTAL VERIFICATION Andrew Honeycutt and Tony L. Schmitz Department of Mechanical Engineering and Engineering Science University of North Carolina

More information

Evaluation of Cutting Forces and Prediction of Chatter Vibrations in Milling

Evaluation of Cutting Forces and Prediction of Chatter Vibrations in Milling H. B. Lacerda and V. T. Lima H. B. Lacerda and V. T. Lima Federal University of Uberlândia School of Mechanical Engineering Av. João Naves de Ávila, Bl. M 38400-90 Uberlândia, MG. Brazil helder@mecanica.ufu.br

More information

Precision Engineering

Precision Engineering Precision Engineering 46 2016) 73 80 Contents lists available at ScienceDirect Precision Engineering jo ur nal ho me p age: www.elsevier.com/locate/precision A coupled dynamics, multiple degree of freedom

More information

Process Damping Coefficient Identification using Bayesian Inference

Process Damping Coefficient Identification using Bayesian Inference Process Damping Coefficient Identification using Bayesian Inference Jaydeep M. Karandikar, Christopher T. Tyler, and Tony L. Schmitz Mechanical Engineering and Engineering Science University of North Carolina

More information

Vibration modelling of machine tool structures

Vibration modelling of machine tool structures Vibration modelling of machine tool structures F. Haase, S. Lockwood & D.G. Ford The Precision Engineering Centre, University of Huddersfield (UK) Abstract Productivity in modem machine tools is acheved

More information

Stability of orthogonal turning processes

Stability of orthogonal turning processes Stability of orthogonal turning processes M.A.M. Haring DC 21.16 Traineeship report Coach: A. Aygun, M.A.Sc. candidate (The University of British Columbia) Supervisors: Prof. H. Nijmeijer Prof. Y. Altintas

More information

Structural Dynamic Behavior of a High-Speed Milling Machine

Structural Dynamic Behavior of a High-Speed Milling Machine Structural Dynamic Behavior of a High-Speed Milling Machine FEA Vs. EMA Assessment * J. Rotberg, ** B. Bork * "Technion" I.I.T ** Technische Universitat Darmstadt Faculty of Mechanical Eng. PTW Institut

More information

This is an author-deposited version published in: Eprints ID: 13508

This is an author-deposited version published in:   Eprints ID: 13508 Open Archive Toulouse Archive Ouverte (OATAO) OATAO is an open access repository that collects the work of Toulouse researchers and makes it freely available over the web where possible. This is an author-deposited

More information

FORCES, VIBRATIONS AND ROUGHNESS PREDICTION IN MILLING USING DYNAMIC SIMULATION

FORCES, VIBRATIONS AND ROUGHNESS PREDICTION IN MILLING USING DYNAMIC SIMULATION FORCES, VIBRATIONS AND ROUGHNESS PREDICTION IN MILLING USING DYNAMIC SIMULATION Edouard Rivière (1), Enrico Filippi (2), Pierre Dehombreux (3) (1) Faculté Polytechnique de Mons, Service de Génie Mécanique,

More information

COMBINING TOOL WEAR AND DYNAMICS IN HIGH-SPEED MACHINING PERFORMANCE PREDICTION

COMBINING TOOL WEAR AND DYNAMICS IN HIGH-SPEED MACHINING PERFORMANCE PREDICTION COMBINING TOOL WEAR AND DYNAMICS IN HIGH-SPEED MACHINING PERFORMANCE PREDICTION By JAYDEEP MOHAN KARANDIKAR A THESIS PRESENTED TO THE GRADUATE SCHOOL OF THE UNIVERSITY OF FLORIDA IN PARTIAL FULFILLMENT

More information

Automated Identification of Cutting Force Coefficients and Tool Dynamics on CNC Machines

Automated Identification of Cutting Force Coefficients and Tool Dynamics on CNC Machines Automated Identification of Cutting Force Coefficients and Tool Dynamics on CNC Machines by Keith Dunwoody B.A.Sc., The University of British Columbia, 2005 A THESIS SUBMITTED IN PARTIAL FULFILLMENT OF

More information

Research Article The Microphone Feedback Analogy for Chatter in Machining

Research Article The Microphone Feedback Analogy for Chatter in Machining Shock and Vibration Volume 215, Article ID 976819, 5 pages http://dx.doi.org/1.1155/215/976819 Research Article The Microphone Feedback Analogy for Chatter in Machining Tony Schmitz UniversityofNorthCarolinaatCharlotte,Charlotte,NC28223,USA

More information

Manufacturing Equipment Control

Manufacturing Equipment Control QUESTION 1 An electric drive spindle has the following parameters: J m = 2 1 3 kg m 2, R a = 8 Ω, K t =.5 N m/a, K v =.5 V/(rad/s), K a = 2, J s = 4 1 2 kg m 2, and K s =.3. Ignore electrical dynamics

More information

Available online at ScienceDirect. 6th CIRP International Conference on High Performance Cutting, HPC2014

Available online at   ScienceDirect. 6th CIRP International Conference on High Performance Cutting, HPC2014 Available online at www.sciencedirect.com ScienceDirect Procedia CIRP 14 ( 2014 ) 170 175 6th CIRP International Conference on High Performance Cutting, HPC2014 Chatter stability prediction in milling

More information

INCREASING THE EFFICIENCY OF EXTERNAL TURNING BY USING THE MULTIPLE LAYER CONSTRUCTION OF THE CUTTING TOOL HOLDER

INCREASING THE EFFICIENCY OF EXTERNAL TURNING BY USING THE MULTIPLE LAYER CONSTRUCTION OF THE CUTTING TOOL HOLDER 8th International DAAAM Baltic Conference "INDUSTRIAL ENGINEERING - 19-21 April 2012, Tallinn, Estonia INCREASING THE EFFICIENCY OF EXTERNAL TURNING BY USING THE MULTIPLE LAYER CONSTRUCTION OF THE CUTTING

More information

The use of transmissibility properties to estimate FRFs on modified structures

The use of transmissibility properties to estimate FRFs on modified structures Shock and Vibration 7 (00) 56 577 56 DOI 0./SAV-00-058 IOS Press The use of transmissibility properties to estimate FRFs on modified structures R.A.B. Almeida a,, A.P.V. Urgueira a and N.M.M. Maia b a

More information

Vasishta Ganguly. Charlotte

Vasishta Ganguly. Charlotte CHARACTERIZATION OF THE DYNAMIC PERFORMANCE OF MACHINE SPINDLES by Vasishta Ganguly A dissertation submitted to the faculty of The University of North Carolina at Charlotte in partial fulfillment of the

More information

Elsevier Editorial System(tm) for Procedia CIRP Manuscript Draft

Elsevier Editorial System(tm) for Procedia CIRP Manuscript Draft Elsevier Editorial System(tm) for Procedia CIRP Manuscript Draft Manuscript Number: PROCIR-D-13-00750R2 Title: Modeling Errors influencing Active Structural Methods for Chatter Mitigation in Milling Process

More information

DYNAMIC RESPONSE OF DISCONTINUOUS BEAMS

DYNAMIC RESPONSE OF DISCONTINUOUS BEAMS DYNAMIC RESPONSE OF DISCONTINUOUS BEAMS By MICHAEL A. KOPLOW A THESIS PRESENTED TO THE GRADUATE SCHOOL OF THE UNIVERSITY OF FLORIDA IN PARTIAL FULFILLMENT OF THE REQUIREMENTS FOR THE DEGREE OF MASTER OF

More information

Chapter 23: Principles of Passive Vibration Control: Design of absorber

Chapter 23: Principles of Passive Vibration Control: Design of absorber Chapter 23: Principles of Passive Vibration Control: Design of absorber INTRODUCTION The term 'vibration absorber' is used for passive devices attached to the vibrating structure. Such devices are made

More information

Prediction of Light Rail Vehicle Noise in Running Condition using SEA

Prediction of Light Rail Vehicle Noise in Running Condition using SEA Prediction of Light Rail Vehicle Noise in Running Condition using SEA Sebastian PREIS ; Gérard BORELLO Siemens AG Austria Urban Transport, Austria InterAC, France ABSTRACT A complete Light Rail vehicle

More information

Performance Enhancement of Grinding Processes Mutual Interaction between the Material Removal Process and the Machine Tool

Performance Enhancement of Grinding Processes Mutual Interaction between the Material Removal Process and the Machine Tool CONTRIBUTION Performance Enhancement of Grinding Processes Mutual Interaction between the Material Removal Process and the Machine Tool Professor Ichiro INASAKI Institute of Science and Technology Research

More information

Research Article Modeling of Self-Vibratory Drilling Head-Spindle System for Predictions of Bearings Lifespan

Research Article Modeling of Self-Vibratory Drilling Head-Spindle System for Predictions of Bearings Lifespan Advances in Acoustics and Vibration Volume 211, Article ID 6687, 1 pages doi:1.1155/211/6687 Research Article Modeling of Self-Vibratory Drilling Head-Spindle System for Predictions of Bearings Lifespan

More information

Active in-process chatter control E.J.J. Doppenberg*, R.P.H. Faassen**, N. van de Wouw**, J.A.J. Oosterling*, H. Nijmeijer**,

Active in-process chatter control E.J.J. Doppenberg*, R.P.H. Faassen**, N. van de Wouw**, J.A.J. Oosterling*, H. Nijmeijer**, Active in-process chatter control E.J.J. Doppenberg*, R.P.H. Faassen**, N. van de Wouw**, J.A.J. Oosterling*, H. Nijmeijer**, *TNO Science and Industry, P.O. Box 155, 2600 AD Delft, The Netherlands 1 **Eindhoven

More information

Experimental and Numerical Modal Analysis of a Compressor Mounting Bracket

Experimental and Numerical Modal Analysis of a Compressor Mounting Bracket IOSR Journal of Mechanical and Civil Engineering (IOSR-JMCE) e-issn: 2278-1684,p-ISSN: 2320-334X, Volume 14, Issue 1 Ver. VI (Jan. - Feb. 2017), PP 01-07 www.iosrjournals.org Experimental and Numerical

More information

The Design of a Multiple Degree of Freedom Flexure Stage with Tunable Dynamics for Milling Experimentation

The Design of a Multiple Degree of Freedom Flexure Stage with Tunable Dynamics for Milling Experimentation The Design of a Multiple Degree of Freedom Flexure Stage with Tunable Dynamics for Milling Experimentation Mark A. Rubeo *, Kadir Kiran *, and Tony L. Schmitz The University of North Carolina at Charlotte,

More information

Grandstand Terraces. Experimental and Computational Modal Analysis. John N Karadelis

Grandstand Terraces. Experimental and Computational Modal Analysis. John N Karadelis Grandstand Terraces. Experimental and Computational Modal Analysis. John N Karadelis INTRODUCTION Structural vibrations caused by human activities are not known to be particularly damaging or catastrophic.

More information

Analysis of Non-Linear Machine Tool Dynamic Behaviour

Analysis of Non-Linear Machine Tool Dynamic Behaviour Proceedings of the 5 th Manufacturing Engineering Society International Conference Zaragoza June 13 Analysis of Non-Linear Machine Tool Dynamic Behaviour A. S. Delgado (1), E. Ozturk (), N. Sims (3) (1)

More information

Design and analysis of a piezoelectric film embedded smart cutting tool

Design and analysis of a piezoelectric film embedded smart cutting tool Design and analysis of a piezoelectric film embedded smart cutting tool C Wang*, R Rakowski and K Cheng Advanced Manufacturing and Enterprise Engineering, School of Engineering and Design, Brunel University,

More information

DYNAMICS OF MILLING FLEXIBLE STRUCTURES. By Marc Lorenzo Campomanes B.Sc. The University of Manitoba, 1993

DYNAMICS OF MILLING FLEXIBLE STRUCTURES. By Marc Lorenzo Campomanes B.Sc. The University of Manitoba, 1993 DYNAMICS OF MILLING FLEXIBLE STRUCTURES By Marc Lorenzo Campomanes B.Sc. The University of Manitoba, 1993 A THESIS SUBMITTED IN PARTIAL FULFILLMENT OF THE REQUIREMENTS FOR THE DEGREE OF MASTER OF APPLIED

More information

Active control of time-delay in cutting vibration

Active control of time-delay in cutting vibration THEORETICAL & APPLIED MECHANICS LETTERS 3, 633 (213) Active control of time-delay in cutting vibration Pingxu Zheng a) and Xinhua Long b) State Key Laboratory of Mechanical System and Vibration, Shanghai

More information

Curve Fitting Analytical Mode Shapes to Experimental Data

Curve Fitting Analytical Mode Shapes to Experimental Data Curve Fitting Analytical Mode Shapes to Experimental Data Brian Schwarz, Shawn Richardson, Mar Richardson Vibrant Technology, Inc. Scotts Valley, CA ABSTRACT In is paper, we employ e fact at all experimental

More information

Efficient Reduced Order Modeling of Low- to Mid-Frequency Vibration and Power Flow in Complex Structures

Efficient Reduced Order Modeling of Low- to Mid-Frequency Vibration and Power Flow in Complex Structures Efficient Reduced Order Modeling of Low- to Mid-Frequency Vibration and Power Flow in Complex Structures Yung-Chang Tan Graduate Student Research Assistant Matthew P. Castanier Assistant Research Scientist

More information

USING ROTOR KIT BENTLY NEVADA FOR EXPERIMENTS WITH AEROSTATIC BEARINGS

USING ROTOR KIT BENTLY NEVADA FOR EXPERIMENTS WITH AEROSTATIC BEARINGS USING ROTOR KIT BENTLY NEVADA FOR EXPERIMENTS WITH AEROSTATIC BEARINGS ŠIMEK, J. 1, KOZÁNEK, J., STEINBAUER, P., NEUSSER, Z. 3 1 TECHLAB Ltd., Prague, Institute of Thermomechanics AS CR 3 CTU in Prague,

More information

STANDARD & OPTION 1 X, Y, Z axis linear scale 2 Saddle slideway cover 3 Table slideway cover 4 Table Splash guard 5 Working light 6 Coolant circulatio

STANDARD & OPTION 1 X, Y, Z axis linear scale 2 Saddle slideway cover 3 Table slideway cover 4 Table Splash guard 5 Working light 6 Coolant circulatio STANDARD & OPTION X, Y, Z axis linear scale 2 Saddle slideway cover 3 Table slideway cover Table Splash guard 5 Working light 6 Coolant circulation system 7 8 ITEM Bolts & leveling pads for installation

More information

CHATTER STABILITY OF TURNING AND MILLING WITH PROCESS DAMPING MAHDI EYNIAN. B.A. Sc. Sharif University of Technology, 2001

CHATTER STABILITY OF TURNING AND MILLING WITH PROCESS DAMPING MAHDI EYNIAN. B.A. Sc. Sharif University of Technology, 2001 CHATTER STABILITY OF TURNING AND MILLING WITH PROCESS DAMPING by MAHDI EYNIAN B.A. Sc. Sharif University of Technology, 1 M.A. Sc., Sharif University of Technology, 3 A THESIS SUBMITTED IN PARTIAL FULFILLMENT

More information

AN EXAMINATION OF SURFACE LOCATION ERROR AND SURFACE ROUGHNESS FOR PERIOD-2 INSTABILITY IN MILLING

AN EXAMINATION OF SURFACE LOCATION ERROR AND SURFACE ROUGHNESS FOR PERIOD-2 INSTABILITY IN MILLING AN EXAMINATION OF SURFACE LOCATION ERROR AND SURFACE ROUGHNESS FOR PERIOD-2 INSTABILITY IN MILLING Andrew Honeycutt and Tony L. Schmitz Mechanical Engineering and Engineering Science University of North

More information

Proceedings of the 2013 ASME International Manufacturing Science and Engineering Conference MSEC2013 June 10-14, 2013, Madison, Wisconsin, USA

Proceedings of the 2013 ASME International Manufacturing Science and Engineering Conference MSEC2013 June 10-14, 2013, Madison, Wisconsin, USA Proceedings of the 2013 ASME International Manufacturing Science and Engineering Conference MSEC2013 June 10-14, 2013, Madison, Wisconsin, USA MSEC2013-1152 REMAINING USEFUL TOOL LIFE PREDICTIONS USING

More information

PROJECT 1 DYNAMICS OF MACHINES 41514

PROJECT 1 DYNAMICS OF MACHINES 41514 PROJECT DYNAMICS OF MACHINES 454 Theoretical and Experimental Modal Analysis and Validation of Mathematical Models in Multibody Dynamics Ilmar Ferreira Santos, Professor Dr.-Ing., Dr.Techn., Livre-Docente

More information

Transverse Vibrate Analysis and Optimization for a Tuck Cab

Transverse Vibrate Analysis and Optimization for a Tuck Cab Transverse Vibrate Analysis and Optimization for a Tuck Cab Shunming Li* and Kun Xu College of Energy and Power Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing, 2006, China. Abstract

More information

DYNAMIC ISSUES AND PROCEDURE TO OBTAIN USEFUL DOMAIN OF DYNAMOMETERS USED IN MACHINE TOOL RESEARCH ARIA

DYNAMIC ISSUES AND PROCEDURE TO OBTAIN USEFUL DOMAIN OF DYNAMOMETERS USED IN MACHINE TOOL RESEARCH ARIA 7 th INTERNATIONAL MULTIDISCIPLINARY CONFERENCE Baia Mare, Romania, May 17-18, 2007 ISSN -1224-3264 DYNAMIC ISSUES AND PROCEDURE TO OBTAIN USEFUL DOMAIN OF DYNAMOMETERS USED IN MACHINE TOOL RESEARCH ARIA

More information

Research Article Dynamic Modal Analysis of Vertical Machining Centre Components

Research Article Dynamic Modal Analysis of Vertical Machining Centre Components Advances in Acoustics and Vibration Volume 9, Article ID 5876, pages doi:.55/9/5876 Research Article Dynamic Modal Analysis of Vertical Machining Centre Components Anayet U. Patwari, Waleed F. Faris, A.

More information

This is an author-deposited version published in: Eprints ID: 6397

This is an author-deposited version published in:   Eprints ID: 6397 Open Archive Toulouse Archive Ouverte (OATAO) OATAO is an open access repository that collects the work of Toulouse researchers and makes it freely available over the web where possible. This is an author-deposited

More information

Analysis of the Temperature Influence on a Shift of Natural Frequencies of Washing Machine Pulley

Analysis of the Temperature Influence on a Shift of Natural Frequencies of Washing Machine Pulley American Journal of Mechanical Engineering, 2015, Vol. 3, No. 6, 215-219 Available online at http://pubs.sciepub.com/ajme/3/6/12 Science and Education Publishing DOI:10.12691/ajme-3-6-12 Analysis of the

More information

Application of a novel method to identify multi-axis joint properties

Application of a novel method to identify multi-axis joint properties Application of a novel method to identify multi-axis joint properties Scott Noll, Jason Dreyer, and Rajendra Singh The Ohio State University, 219 W. 19 th Avenue, Columbus, Ohio 4321 USA ABSTRACT This

More information

DYNAMICS OF MACHINERY 41514

DYNAMICS OF MACHINERY 41514 DYNAMICS OF MACHINERY 454 PROJECT : Theoretical and Experimental Modal Analysis and Validation of Mathematical Models in Multibody Dynamics Holistic Overview of the Project Steps & Their Conceptual Links

More information

IDENTIFICATION OF NONLINEAR CUTTING PROCESS MODEL IN TURNING

IDENTIFICATION OF NONLINEAR CUTTING PROCESS MODEL IN TURNING ADVANCES IN MANUFACTURING SCIENCE AND TECHNOLOGY Vol. 33, No. 3, 2009 IDENTIFICATION OF NONLINEAR CUTTING PROCESS MODEL IN TURNING Bartosz Powałka, Mirosław Pajor, Stefan Berczyński S u m m a r y This

More information

MASS, STIFFNESS AND DAMPING IDENTIFICATION OF A TWO-STORY BUILDING MODEL

MASS, STIFFNESS AND DAMPING IDENTIFICATION OF A TWO-STORY BUILDING MODEL COMPDYN 2 3 rd ECCOMAS Thematic Conference on Computational Methods in Structural Dynamics and Earthquake Engineering M. Papadrakakis, M. Fragiadakis, V. Plevris (eds.) Corfu, Greece, 25-28 May 2 MASS,

More information

DYNAMIC PARAMETER IDENTIFICATION IN NONLINEAR MACHINING SYSTEMS 1. INTRODUCTION

DYNAMIC PARAMETER IDENTIFICATION IN NONLINEAR MACHINING SYSTEMS 1. INTRODUCTION Journal of Machine Engineering, Vol. 13, No. 3, 2013 machining system, dynamic parameters. white noise excitation, self-excited vibration Mihai NICOLESCU 1 Andreas ARCHENTI 1 DYNAMIC PARAMETER IDENTIFICATION

More information

MODELLING AND ANALYSIS OF CHATTER MITIGATION STRATEGIES IN MILLING

MODELLING AND ANALYSIS OF CHATTER MITIGATION STRATEGIES IN MILLING MODELLING AND ANALYSIS OF CHATTER MITIGATION STRATEGIES IN MILLING by Khaled Saleh Submitted in fulfilment of the degree of Doctor of Philosophy June 2013 Department of Mechanical Engineering Sheffield,

More information

UPDATED TOOL PATH MODELLING WITH PERIODIC DELAY FOR CHATTER PREDICTION IN MILLING.

UPDATED TOOL PATH MODELLING WITH PERIODIC DELAY FOR CHATTER PREDICTION IN MILLING. ENOC-2005, Eindhoven, Netherlands, 7-12 August 2005 UPDATED TOOL PATH MODELLING WITH PERIODIC DELAY FOR CHATTER PREDICTION IN MILLING. Ronald Faassen Department of Mechanical Engineering Eindhoven University

More information

MODELING OF REGENERATIVE CHATTER OF A MILLING PROCESS TO DELINEATE STABLE CUTTING REGION FROM UNSTABLE REGION

MODELING OF REGENERATIVE CHATTER OF A MILLING PROCESS TO DELINEATE STABLE CUTTING REGION FROM UNSTABLE REGION International Journal of Mechanical Engineering and Technology (IJMET) Volume 9, Issue, November 208, pp. 748 757, Article ID: IJMET_09 076 Available online at http://www.iaeme.com/ijmet/issues.asp?jtype=ijmet&vtype=9&itype=

More information

High Frequency Variation Speed Control of Spindle Motor for Chatter Vibration Suppression in NC Machine Tools

High Frequency Variation Speed Control of Spindle Motor for Chatter Vibration Suppression in NC Machine Tools High Frequency Variation Speed Control of Spindle Motor for Chatter Vibration Suppression in NC Machine Tools Teruaki Ishibashi, Hiroshi Fujimoto, Shinji Ishii, Kouji Yamamoto, and Yuki Terada Abstract

More information

Chatter reduction through active vibration damping

Chatter reduction through active vibration damping Université Libre de Bruxelles F a c u l t y o f A p p l i e d S c i e n c e s Chatter reduction through active vibration damping 8 x 105 7 K cut 6 5 4 With active damping Without active damping 3 2 1 0

More information

Acknowledgments. Finally, I wish to thank my family for their unending support, especially my wife Regina who made me do it. iii

Acknowledgments. Finally, I wish to thank my family for their unending support, especially my wife Regina who made me do it. iii ABSTRACT CAULFIELD, FRANCIS DONALD. Electromechanical Actuator Development for Integrated Chatter Prediction on High Speed Machining Centers. (Under the direction of Gregory Dale Buckner) Machine tool

More information

Structural System Identification (KAIST, Summer 2017) Lecture Coverage:

Structural System Identification (KAIST, Summer 2017) Lecture Coverage: Structural System Identification (KAIST, Summer 2017) Lecture Coverage: Lecture 1: System Theory-Based Structural Identification Lecture 2: System Elements and Identification Process Lecture 3: Time and

More information

Chatter control in the high-speed milling process using - synthesis

Chatter control in the high-speed milling process using - synthesis Chatter control in the high-speed milling process using - synthesis Citation for published version APA): Dijk, van, N. J. M., Wouw, van de, N., Doppenberg, E. J. J., Oosterling, J. A. J., & Nijmeijer,

More information

CONTROL OF DIGITAL SYSTEMS

CONTROL OF DIGITAL SYSTEMS AUTOMATIC CONTROL AND SYSTEM THEORY CONTROL OF DIGITAL SYSTEMS Gianluca Palli Dipartimento di Ingegneria dell Energia Elettrica e dell Informazione (DEI) Università di Bologna Email: gianluca.palli@unibo.it

More information

NOISE REDUCTION OF THE DIFFERENTIAL SLEEVE BEARING

NOISE REDUCTION OF THE DIFFERENTIAL SLEEVE BEARING Engineering MECHANICS, Vol. 16, 29, No. 2, p. 93 12 93 NOISE REDUCTION OF THE DIFFERENTIAL SLEEVE BEARING Ivan Mazůrek, Milan Klapka, Jakub Roupec* This article describes a technique for noise reduction

More information

Extension of Tlusty s law for the identification of chatter stability lobes in multi-dimensional cutting processes

Extension of Tlusty s law for the identification of chatter stability lobes in multi-dimensional cutting processes Extension of Tlusty s law for the identification of chatter stability lobes in multi-dimensional cutting processes Andreas Otto a,, Stefan Rauh b,c, Martin Kolouch b, Günter Radons a a Institute of Physics,

More information

Identification of system parameters for end milling force simulation with tool and workpiece compliance

Identification of system parameters for end milling force simulation with tool and workpiece compliance University of New Hampshire University of New Hampshire Scholars' Repository Master's Theses and Capstones Student Scholarship Winter 2012 Identification of system parameters for end milling force simulation

More information

Available online at ScienceDirect. Procedia CIRP 36 (2015 ) CIRP 25th Design Conference Innovative Product Creation

Available online at  ScienceDirect. Procedia CIRP 36 (2015 ) CIRP 25th Design Conference Innovative Product Creation Available online at www.sciencedirect.com ScienceDirect Procedia CIRP 36 (2015 ) 111 116 CIRP 25th Design Conference Innovative Product Creation Machine stiffness rating: Characterization and evaluation

More information

Stability analysis of a whirling disk-spindle system supported by FDBs with rotating grooves

Stability analysis of a whirling disk-spindle system supported by FDBs with rotating grooves Microsyst Technol (011) 17:787 797 DOI 10.1007/s0054-010-111-9 TECHNICAL PAPER Stability analysis of a whirling disk-spindle system supported by FDBs with rotating grooves Jihoon Lee Gunhee Jang Kyungmoon

More information

PLEASURE VESSEL VIBRATION AND NOISE FINITE ELEMENT ANALYSIS

PLEASURE VESSEL VIBRATION AND NOISE FINITE ELEMENT ANALYSIS PLEASURE VESSEL VIBRATION AND NOISE FINITE ELEMENT ANALYSIS 1 Macchiavello, Sergio *, 2 Tonelli, Angelo 1 D Appolonia S.p.A., Italy, 2 Rina Services S.p.A., Italy KEYWORDS pleasure vessel, vibration analysis,

More information

Modeling and Analysis of Fixturing Dynamic Stability in Machining

Modeling and Analysis of Fixturing Dynamic Stability in Machining Modeling and Analysis of Fixturing Dynamic Stability in Machining Haiyan Deng, Ph.D. Candidate Precision Machining Research Consortium (PMRC) George W. Woodruff School of Mechanical Engineering Georgia

More information

RF APERTURE ARCHITECTURES 11 Nov. 08

RF APERTURE ARCHITECTURES 11 Nov. 08 RF APERTURE ARCHITECTURES 11 Nov. 08 r. Thomas Murphey Space Vehicles irectorate Mitigating Structural eformations Mitigating structural deformations in large apertures: There is always a trade between

More information

The Self-Excitation Damping Ratio in Variable Speed Milling

The Self-Excitation Damping Ratio in Variable Speed Milling Proceedings of the World Congress on Engineering 01 Vol III, Jul 4-6, 01, London, U.K. The Self-Excitation Damping Ratio in Variable Speed Milling K. Saleh and N.D. Sims Abstract During High Speed Machining

More information

Application of Spindle Speed Variation for Chatter Suppression in Turning

Application of Spindle Speed Variation for Chatter Suppression in Turning Application of Spindle Speed Variation for Chatter Suppression in Turning Andreas Otto a,, Günter Radons a a Institute of Physics, Chemnitz University of Technology, 917 Chemnitz, Germany Abstract In the

More information

Experimental Modal Analysis

Experimental Modal Analysis Experimental Modal Analysis Modal Analysis 1 Shanghai Jiaotong University 2006 m f(t) x(t) SDOF and MDOF Models c k Different Modal Analysis Techniques Exciting a Structure = + + + + Measuring Data Correctly

More information

Dynamic cutting force on-line estimation using a 4-electrode cylindrical capacitive displacement sensor mounted on a high speed milling spindle

Dynamic cutting force on-line estimation using a 4-electrode cylindrical capacitive displacement sensor mounted on a high speed milling spindle Journal of Mechanical Science and Technology Journal of Mechanical Science and Technology (8) 94~93 www.springerlink.com/content/738-494x Dynamic cutting force on-line estimation using a 4-electrode cylindrical

More information

Surface Roughness Prediction Technique For CNC End-Milling

Surface Roughness Prediction Technique For CNC End-Milling Volume 15, Number 1 - November 1998 to January 1999 Surface Roughness Prediction Technique For CNC End-Milling By Dr. Mike S. Lou, Dr. Joseph C. Chen & Dr. Caleb M. Li KEYWORD SEARCH Materials & Processes

More information

Introduction to Vibration. Professor Mike Brennan

Introduction to Vibration. Professor Mike Brennan Introduction to Vibration Professor Mie Brennan Introduction to Vibration Nature of vibration of mechanical systems Free and forced vibrations Frequency response functions Fundamentals For free vibration

More information

Track stiffness assessment. Abstract

Track stiffness assessment. Abstract Track stiffness assessment Alain Robinet, Engineering Department, SNCF, France Email: alain.robinet@sncf.fr Mohsen Hosseingholian, Civil Engineering Department, University of Caen, France Email: mhosseingholian@yahoo.com

More information

Effect of the Interaction Between Tool and Workpiece Modes on Turning with Round Inserts

Effect of the Interaction Between Tool and Workpiece Modes on Turning with Round Inserts International Journal of Dynamics and Control manuscript No. (will be inserted by the editor) Effect of the Interaction Between Tool and Workpiece Modes on Turning with Round Inserts Firas A. Khasawneh

More information

Suppression of Machine Tool Vibration Using Passive Damping

Suppression of Machine Tool Vibration Using Passive Damping ISSN 23951621 Suppression of Machine Tool Vibration Using Passive Damping #1 Nitasha B. Chaudhari, #2 R.N.Yerrawar 1 nitashachaudhari@gmail.com 2 rahul.yerrawar@mescoepune.org #12 Mechanical Engineering

More information

Control System. Contents

Control System. Contents Contents Chapter Topic Page Chapter- Chapter- Chapter-3 Chapter-4 Introduction Transfer Function, Block Diagrams and Signal Flow Graphs Mathematical Modeling Control System 35 Time Response Analysis of

More information

Motion System Classes. Motion System Classes K. Craig 1

Motion System Classes. Motion System Classes K. Craig 1 Motion System Classes Motion System Classes K. Craig 1 Mechatronic System Design Integration and Assessment Early in the Design Process TIMING BELT MOTOR SPINDLE CARRIAGE ELECTRONICS FRAME PIPETTE Fast

More information

APVC2009. Forced Vibration Analysis of the Flexible Spinning Disk-spindle System Represented by Asymmetric Finite Element Equations

APVC2009. Forced Vibration Analysis of the Flexible Spinning Disk-spindle System Represented by Asymmetric Finite Element Equations Forced Vibration Analysis of the Flexible Spinning Disk-spindle System Represented by Asymmetric Finite Element Equations Kiyong Park, Gunhee Jang* and Chanhee Seo Department of Mechanical Engineering,

More information

Dynamics of Machinery

Dynamics of Machinery Dynamics of Machinery Two Mark Questions & Answers Varun B Page 1 Force Analysis 1. Define inertia force. Inertia force is an imaginary force, which when acts upon a rigid body, brings it to an equilibrium

More information

ANALYSIS OF RESONANCE OF A SURFACE GRINDER

ANALYSIS OF RESONANCE OF A SURFACE GRINDER ISSN: 0976-2876 (Print) ISSN: 2250-0138(Online) ANALYSIS OF RESONANCE OF A SURFACE GRINDER RAJ REDDY 1 Department of Mechanical Engineering, BKIT,Bhalki, Karnataka, India ABSTRACT The structure of a surface

More information

Aeroelastic effects of large blade deflections for wind turbines

Aeroelastic effects of large blade deflections for wind turbines Aeroelastic effects of large blade deflections for wind turbines Torben J. Larsen Anders M. Hansen Risoe, National Laboratory Risoe, National Laboratory P.O. Box 49, 4 Roskilde, Denmark P.O. Box 49, 4

More information

The application of Eulerian laser Doppler vibrometry to the on-line condition monitoring of axial-flow turbomachinery blades

The application of Eulerian laser Doppler vibrometry to the on-line condition monitoring of axial-flow turbomachinery blades UNIVERSITY OF PRETORIA The application of Eulerian laser Doppler vibrometry to the on-line condition monitoring of axial-flow turbomachinery blades by Abrie Oberholster Supervisor: Professor Stephan Heyns

More information

A Robust Semi-Analytical Method for Calculating the Response Sensitivity of a Time Delay System

A Robust Semi-Analytical Method for Calculating the Response Sensitivity of a Time Delay System A Robust Semi-Analytical Method for Calculating the Response Sensitivity of a Time Delay System Mohammad H. Kurdi 1 Postdoctoral Associate e-mail: mhkurdi@gmail.com Raphael T. Haftka Distinguished Professor

More information

Applications of Eigenvalues & Eigenvectors

Applications of Eigenvalues & Eigenvectors Applications of Eigenvalues & Eigenvectors Louie L. Yaw Walla Walla University Engineering Department For Linear Algebra Class November 17, 214 Outline 1 The eigenvalue/eigenvector problem 2 Principal

More information

Linear Control Systems Solution to Assignment #1

Linear Control Systems Solution to Assignment #1 Linear Control Systems Solution to Assignment # Instructor: H. Karimi Issued: Mehr 0, 389 Due: Mehr 8, 389 Solution to Exercise. a) Using the superposition property of linear systems we can compute the

More information

Helical Gears n A Textbook of Machine Design

Helical Gears n A Textbook of Machine Design 1066 n A Textbook of Machine Design C H A P T E R 9 Helical Gears 1. Introduction.. Terms used in Helical Gears. 3. Face Width of Helical Gears. 4. Formative or Equivalent Number of Teeth for Helical Gears.

More information

Stability lobes in turning of Inconel 718

Stability lobes in turning of Inconel 718 Stability lobes in turning of Inconel 78 G. Urbicain () J. A. Palacios () A. Fernández () A. Rodríguez () L. N. López de Lacalle () A. Elías-Zúñiga () () University of the Basque Country UPV/EHU ETSI Alda.

More information

Automated Estimation of an Aircraft s Center of Gravity Using Static and Dynamic Measurements

Automated Estimation of an Aircraft s Center of Gravity Using Static and Dynamic Measurements Proceedings of the IMAC-XXVII February 9-, 009 Orlando, Florida USA 009 Society for Experimental Mechanics Inc. Automated Estimation of an Aircraft s Center of Gravity Using Static and Dynamic Measurements

More information

Active elastomer components based on dielectric elastomers

Active elastomer components based on dielectric elastomers Gummi Fasern Kunststoffe, 68, No. 6, 2015, pp. 412 415 Active elastomer components based on dielectric elastomers W. Kaal and S. Herold Fraunhofer Institute for Structural Durability and System Reliability

More information

A priori verification of local FE model based force identification.

A priori verification of local FE model based force identification. A priori verification of local FE model based force identification. M. Corus, E. Balmès École Centrale Paris,MSSMat Grande voie des Vignes, 92295 Châtenay Malabry, France e-mail: corus@mssmat.ecp.fr balmes@ecp.fr

More information

Experimental Modal Analysis

Experimental Modal Analysis Copyright 2003 Brüel & Kjær Sound & Vibration Measurement A/S All Rights Reserved Experimental Modal Analysis Modal Analysis 1 m f(t) x(t) SDOF and MDOF Models c k Different Modal Analysis Techniques Exciting

More information

Perturbation of periodic equilibrium

Perturbation of periodic equilibrium Perturbation of periodic equilibrium by Arnaud Lazarus A spectral method to solve linear periodically time-varying systems 1 A few history Late 19 th century Emile Léonard Mathieu: Wave equation for an

More information

Stability Analysis of a Hydrodynamic Journal Bearing With Rotating Herringbone Grooves

Stability Analysis of a Hydrodynamic Journal Bearing With Rotating Herringbone Grooves G. H. Jang e-mail: ghjang@hanyang.ac.kr J. W. Yoon PREM, Department of Mechanical Engineering, Hanyang University, Seoul, 33-79, Korea Stability Analysis of a Hydrodynamic Journal Bearing With Rotating

More information

Applied Modal Analysis of Wind Turbine Blades

Applied Modal Analysis of Wind Turbine Blades Risø-R-1388(EN) Applied Modal Analysis of Wind Turbine Blades Henrik Broen Pedersen, Ole Jesper Dahl Kristensen Risø National Laboratory, Roskilde, Denmark February 2003 Abstract In this project modal

More information

Precision Machine Design

Precision Machine Design Precision Machine Design Topic 10 Vibration control step 1: Modal analysis 1 Purpose: The manner in which a machine behaves dynamically has a direct effect on the quality of the process. It is vital to

More information

Controlling the dynamic characteristics of machining systems through consciously designed joint interfaces

Controlling the dynamic characteristics of machining systems through consciously designed joint interfaces Controlling the dynamic characteristics of machining systems through consciously designed joint interfaces Constantinos Frangoudis Licentiate Thesis KTH Royal Institute of Technology Department of Production

More information