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Journal articles on the topic 'Stick-slip motion mode'

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1

Karachevtseva, Iuliia, Arcady V. Dyskin, and Elena Pasternak. "The Cyclic Loading as a Result of the Stick-Slip Motion." Advanced Materials Research 891-892 (March 2014): 878–83. http://dx.doi.org/10.4028/www.scientific.net/amr.891-892.878.

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We investigate the influence of oscillating normal force on the frictional sliding. Frictional sliding in the case of a simple mass-spring model of Burridge and Knopoff type demonstrates stick-slip even when the friction coefficient is constant. Oscillations of the normal force in this case do not produce noticeable changes in the stick-slip sliding mode. A completely different picture is observed when the oscillations of normal force are applied to the system, which is in the state of steady sliding. In this case the normal oscillations turn the steady sliding into stick slip. A special case
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2

Shi, Yunlai, Chengshu Lou, and Jun Zhang. "Investigation on a Linear Piezoelectric Actuator Based on Stick-Slip/Scan Excitation." Actuators 10, no. 2 (2021): 39. http://dx.doi.org/10.3390/act10020039.

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To perform a high resolution and long stroke application in optical precision instruments, a linear piezoelectric actuator operated in stick-slip/scan modes for driving a linear motion table is presented. The proposed piezoelectric actuator is a piezoelectric composite structure, which includes a metal elastomer, a piezoelectric stack, and a frictional ball. The purpose of this paper is to describe the operation principle, design, and the running test and resolution test of the linear motion table driven by the proposed piezoelectric actuator. The notable feature is the flexible hinges of the
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3

Liu, Yang. "Control of a class of multibody underactuated mechanical systems with discontinuous friction using sliding-mode." Transactions of the Institute of Measurement and Control 40, no. 2 (2016): 514–27. http://dx.doi.org/10.1177/0142331216661759.

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This paper studies sliding-mode control of a class of multibody underactuated systems with discontinuous friction on the unactuated configuration variable taking into account parametric uncertainties. Global motion for this class system including sticking, stick-slip, and slip regimes are analysed, and their corresponding equilibria are identified. The control objective is to avoid the sticking and the stick-slip regimes while tracking a desired velocity in the slip regime. Three sliding-mode controllers which are robust to parametric uncertainties are proposed, and their stabilities are prove
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4

Pilipchuk, V. N., R. A. Ibrahim, and P. G. Blaschke. "Disc Brake Ring-Element Modeling Involving Friction-Induced Vibration." Journal of Vibration and Control 8, no. 8 (2002): 1085–104. http://dx.doi.org/10.1177/107754602029587.

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This paper presents the analytical modeling and dynamic characteristics of disc brake systems under equal contact loads on both sides of the disc. The friction force acting on the pad is assumed to be concentrated along its trailing edge due to the moment arising from the friction force, and thus results in a redistribution of normal forces. In view of equal contact forces, the disc will not experience transverse motion but only tangential and radial vibrations. The only nonlinearity involved in the model arises mainly from contact forces. The dependence of the friction coefficient between the
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5

Kinder, Helmut. "Drum Coater With Reel-to-Reel Mode Enabled by Stick-Slip-Motion." IEEE Transactions on Applied Superconductivity 27, no. 4 (2017): 1–4. http://dx.doi.org/10.1109/tasc.2016.2644982.

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6

Berger, E. J., M. R. Begley, and M. Mahajani. "Structural Dynamic Effects on Interface Response: Formulation and Simulation Under Partial Slipping Conditions." Journal of Applied Mechanics 67, no. 4 (2000): 785–92. http://dx.doi.org/10.1115/1.1330545.

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A new formulation for dynamic sliding contact problems with partial slipping is presented and used to investigate the influence of structural dynamic response on interface behavior. The mixed differential-algebraic equation (MDAE) approach uses differential equations to describe the slipping dynamics and algebraic (constraint) equations to model interfacial sticking. An efficient method for solving the case of partial interface slipping has been developed, and special consideration has been given to the changing equations of motion (at the transition from stick-to-slip and slip-to-stick). An e
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7

Chandler, David M., Richard I. Waller, and William G. Adam. "Basal ice motion and deformation at the ice-sheet margin, West Greenland." Annals of Glaciology 42 (2005): 67–70. http://dx.doi.org/10.3189/172756405781813113.

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AbstractMeasurements of basal ice deformation at the margin of Russell Glacier, West Greenland, have provided an opportunity to gain more insight into basal processes occurring near the margin. The basal ice layer comprises a debris-rich, heterogeneous stratified facies, overlain by a comparatively debris-poor dispersed facies. Ice velocities were obtained from anchors placed in both ice facies, at three sites under 5–15 m ice depth. Mean velocities ranged from 20 to 43 m a–1, and velocity gradients indicate high shear strain rates within the basal ice. Stick–slip motion and diurnal variations
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8

Tsetas, Athanasios, Apostolos Tsouvalas, Timo Molenkamp, and Andrei V. Metrikine. "A mode-matching method for the prediction of stick-slip relative motion of two elastic rods in frictional contact." Acta Mechanica 233, no. 2 (2022): 753–73. http://dx.doi.org/10.1007/s00707-021-03132-z.

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AbstractThis paper presents a computationally efficient mode-matching method to predict the relative axial motion of two elastic rods in frictional contact. The motion is of the stick-slip type and is non-uniform along the rods. The proposed method utilizes the piecewise linearity of the problem in time and space. The original set of nonlinear partial differential equations describing the dynamics of the coupled system is first reduced to a system of linear, per time interval, ordinary differential equations by means of modal decomposition. The global modes are used for one of the two rods, wh
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9

Ning, Peng, Guangda Qiao, Xiao Xia, Xiaohui Lu, and Tinghai Cheng. "A stick–slip linear actuator with high speed and nano-resolution by resonance/non-resonance hybrid driving." Review of Scientific Instruments 93, no. 5 (2022): 055002. http://dx.doi.org/10.1063/5.0082660.

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To achieve high speed, nano-resolution, and large stroke, a resonance/non-resonance hybrid piezoelectric stick–slip actuator with a lever-type flexure hinge (LTFH-PSSA) is proposed in this work. The actuator can achieve high speed and large stroke in the resonance mode by the stick–slip working principle and achieve nano-resolution in the non-resonant mode by the direct drive working principle. The excitation electrical signals used in the two working modes are the sine waveform and half-sine waveform, respectively. Compared with the traditional sawtooth waveform, the excitation signal of the
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10

Richard, Thomas, and Emmanuel Detournay. "Stick–slip motion in a friction oscillator with normal and tangential mode coupling." Comptes Rendus de l'Académie des Sciences - Series IIB - Mechanics 328, no. 9 (2000): 671–78. http://dx.doi.org/10.1016/s1620-7742(00)01240-x.

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11

Zhu, Junhui, Siyuan Meng, Yong Wang, Ming Pang, Zhiping Hu, and Changhai Ru. "A Novel Monopolar Cross-Scale Nanopositioning Stage Based on Dual Piezoelectric Stick-Slip Driving Principle." Micromachines 13, no. 11 (2022): 2008. http://dx.doi.org/10.3390/mi13112008.

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The precise characterization and measurement of new nanomaterials and nano devices require in situ SEM nanorobotic instrumentation systems, which put forward further technical requirements on nanopositioning techniques of compact structure, cross-scale, nanometer accuracy, high vacuum and non-magnetic environment compatibility, etc. In this work, a novel cross-scale nanopositioning stage was proposed, which combined the advantages of piezoelectric stick-slip positioner and piezoelectric scanner techniques and adopted the idea of macro/micro positioning. A new structure design of a single flexi
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12

Barton, David A. W., Bernd Krauskopf, and R. Eddie Wilson. "Nonlinear Dynamics of Torsional Waves in a Drill-string Model with Spatial Extent." Journal of Vibration and Control 16, no. 7-8 (2010): 1049–65. http://dx.doi.org/10.1177/1077546309341108.

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In this paper we investigate the dynamics and bifurcations of an oil-well drill-string model that takes the form of a neutral delay differential equation. We consider the torsional mode of the drill-string and investigate the associated stick-slip motion. To analyze the model we develop numerical continuation routines based on Fourier methods since existing routines based on polynomial approximations are unable to cope with the presence of arbitrarily weakly damped modes. We find “resonance peaks” in the dynamics where a high-frequency mode is superimposed on the underlying periodic behavior,
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13

Jalili, Hadi, Hassan Salarieh, and Gholamreza Vossoughi. "Motion type analysis of a piezoelectric-actuated vibratory micro-robot in hybrid stick-slip-jump mode." Journal of Sound and Vibration 436 (December 2018): 81–94. http://dx.doi.org/10.1016/j.jsv.2018.08.024.

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14

Moradian, H., and GR Vossoughi. "Robust velocity control for an A-shaped micro-robot with stick-slip locomotion." Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 230, no. 14 (2015): 2413–26. http://dx.doi.org/10.1177/0954406215596358.

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In this paper, the problem of velocity control of a micro-robot’s locomotion with nanometric resolution has been investigated. A sliding, A-shaped micro-robot, used in precision positioning applications is analyzed. This micro-robot is actuated by means of a piezoelectric stack actuator in order to produce translational and periodic motion. A dynamic model of the robot is proposed assuming linear behavior for the piezoelectric stack and Coulomb friction model. Then, in order to control the velocity of micro-robot, first a robust sliding mode control is used so that the relative angle between t
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15

Ning, Peng, Xiao Xia, Guangda Qiao, et al. "A dual-mode excitation method of flexure hinge type piezoelectric stick-slip actuator for suppressing backward motion." Sensors and Actuators A: Physical 330 (October 2021): 112853. http://dx.doi.org/10.1016/j.sna.2021.112853.

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16

Liu, Yanwei, Zhi Xu, Xuan Li, Wuxiang Sun, and Hu Huang. "A high-performance stick-slip piezoelectric actuator achieved by using the double-stator cooperative motion mode (DCMM)." Mechanical Systems and Signal Processing 172 (June 2022): 108999. http://dx.doi.org/10.1016/j.ymssp.2022.108999.

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17

Araujo, George, Zhaoyi Zheng, Jae Jong Oh, and Jay X. Tang. "Assessment of a Weak Mode of Bacterial Adhesion by Applying an Electric Field." Applied Microbiology 1, no. 2 (2021): 255–69. http://dx.doi.org/10.3390/applmicrobiol1020019.

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Microbial attachment to surfaces is ubiquitous in nature. Most species of bacteria attach and adhere to surfaces via special appendages such as pili and fimbriae, the roles of which have been extensively studied. Here, we report an experiment on pilus-less mutants of Caulobacter crescentus weakly attached to polyethylene surface. We find that some individual cells transiently but repeatedly adhere to the surface in a stick-slip fashion in the presence of an electric field parallel to the surface. These bacteria move significantly slower than the unattached ones in the same field of view underg
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18

Čeponis, Andrius, Vytautas Jūrėnas, Dalius Mažeika, and Dovilė Deltuvienė. "Development of inertial piezoelectric linear actuator with asymmetric design." Vibroengineering Procedia 50 (September 21, 2023): 15–20. http://dx.doi.org/10.21595/vp.2023.23539.

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This article represents a numerical and experimental investigation of a piezoelectric linear actuator with asymmetric design. The actuator is based on a square-shaped rod with asymmetrical cut and T-shaped clamping. The cylindrical rail, with slider, is on the opposite side of the T-shaped clamping. The low-volume and mass of piezoelectric actuator allows to mount it directly to printed circuit board (PCB). The actuator operation is based on the inertial stick – slip operation principle inducted by the first longitudinal vibration mode excited by two sawtooth signals with phase difference π. F
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19

Park, Changhoon, Jinhee Jang, and Jae Won Hahn. "Analysis of line-edge roughness due to the stick/slip motion of a contact-mode scanning probe in plasmonic lithography." Journal of Micro/Nanolithography, MEMS, and MOEMS 13, no. 4 (2014): 043020. http://dx.doi.org/10.1117/1.jmm.13.4.043020.

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20

MORA, PETER, and DAVID PLACE. "A LATTICE SOLID MODEL FOR THE NONLINEAR DYNAMICS OF EARTHQUAKES." International Journal of Modern Physics C 04, no. 06 (1993): 1059–74. http://dx.doi.org/10.1142/s0129183193000823.

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A lattice solid model is presented that is capable of simulating the nonlinear dynamical processes (friction and fracture) associated with earthquakes. It is based on molecular dynamics principles to model interacting particles by numerically solving their equations of motion. Particles represent indivisible units of the system such as grains and interactions are described through effective potential functions. In this initial work, particles interact through radial pairwise potentials and the solid is made of particles arranged in a two–dimensional triangular lattice which corresponds to an i
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21

Jalili, Hadi, Gholamreza Vossoughi, and Hassan Salarieh. "Motion analysis of a vibrational micro-robot with two perpendicular harmonic actuators and deriving the design parameters in stick-slip-jump mode." Journal of Sound and Vibration 372 (June 2016): 266–82. http://dx.doi.org/10.1016/j.jsv.2016.02.022.

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22

Lyashenko, Iakov, and Vadym Borysiuk. "Stick-slip motion in the contact between soft elastomer and spherical hard steel indenter: Model explanation of superplasticity mode in metal samples with grain boundary defects." Procedia Structural Integrity 36 (2022): 24–29. http://dx.doi.org/10.1016/j.prostr.2021.12.078.

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23

Jerome, Trevor. "Variability in measured resonance frequencies and loss factors of a bolted panel structure." INTER-NOISE and NOISE-CON Congress and Conference Proceedings 267, no. 1 (2023): 1–14. http://dx.doi.org/10.3397/no_2023_0006.

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Structural bolted joints are not perfectly contiguous or rigid. Instead, the joint stiffness, mass, and damping depend on many parameters including the joint thickness, number and size of bolts, the bolt preload, and the motion of the jointed region. Also, damping can vary with motion type (stick-slip for friction and impact for joint opening and closing) and amplitude. Finally, all joint dynamic parameters vary from installation to installation. We measured the variability of bolted joint stiffness and damping for four low-order modes of a bolted Aluminum panel structure - two flexural modes
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24

Liu, Y. F., J. Li, Z. M. Zhang, X. H. Hu, and W. J. Zhang. "Experimental comparison of five friction models on the same test-bed of the micro stick-slip motion system." Mechanical Sciences 6, no. 1 (2015): 15–28. http://dx.doi.org/10.5194/ms-6-15-2015.

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Abstract. The micro stick-slip motion systems, such as piezoelectric stick-slip actuators (PE-SSAs), can provide high resolution motions yet with a long motion range. In these systems, friction force plays an active role. Although numerous friction models have been developed for the control of micro motion systems, behaviors of these models in micro stick-slip motion systems are not well understood. This study (1) gives a survey of the basic friction models and (2) tests and compares 5 friction models in the literature, including Coulomb friction model, Stribeck friction model, Dahl model, LuG
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25

Zhang, Nong, Jin Zhang, and Yu Wang. "Experimental Verification of Stick–slip Motion between Two Rolling Contact Surfaces." Advanced Materials Research 230-232 (May 2011): 1362–66. http://dx.doi.org/10.4028/www.scientific.net/amr.230-232.1362.

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In this paper, a simplified drive train model with stick-slip nonlinearity is introduced for the study of stick-slip motion between the driving tires and the flywheel. Laboratory based tests are designed to investigate stick-slip motion of the tires contacting with the flywheels which simulate vehicle inertia. A description of the powertrain test rig, the associated instrumentation, the test inputs and operation conditions are provided. The experimental results are similar to those obtained from the numerical analysis using the introduced drive train model. They verify the validity of the stic
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26

Zhang, Lijun, Jianfeng Wu, and Dejian Meng. "A Method for Quantifying Automobile Brake Creep Groan Intensity Based on Friction-Induced Vibration and Noise." Shock and Vibration 2021 (October 18, 2021): 1–16. http://dx.doi.org/10.1155/2021/4885330.

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To quantify the intensity of automobile brake creep groan, both experimental and analytical studies are innovatively conducted on the friction-induced vibration and noise of the disc brake in this paper. Experimentally, three factors, brake disc initial temperature, terrain, and gear position, are comprehensively contemplated to design six different test conditions, based on which a creep groan vehicle road test is conducted. Depending on the subjective evaluation and statistical analysis of the annoyance degree caused by vibration and noise in the starting and braking process under different
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27

Fuadi, Zahrul, and Koshi Adachi. "Stiffness Effect on Low-Frequency Stick-Slip Motion Generated on a Simple Caliper-Slider Experimental Model." Applied Mechanics and Materials 758 (April 2015): 57–62. http://dx.doi.org/10.4028/www.scientific.net/amm.758.57.

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This paper discusses the occurrence and non occurrence of low-frequency stick-slip motion on a simple caliper-slider experimental model. The analysis focused on the relationship between stiffness, i.e. contact stiffness and structure’s stiffness, and the generation of stick-slip motion. The occurrence of stick-slip motion is determined by analyzing the frequency characteristic of resulted vibration acceleration at the beginning of sliding which is resulted from a simultaneous application of force in tangential direction and slow release of force in normal direction. The results show that the o
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28

Sergienko, Olga V., Douglas R. MacAyeal, and Robert A. Bindschadler. "Stick–slip behavior of ice streams: modeling investigations." Annals of Glaciology 50, no. 52 (2009): 87–94. http://dx.doi.org/10.3189/172756409789624274.

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AbstractA puzzling phenomenon of ice-stream flow is the stick–slip motion displayed by Whillans Ice Stream (WIS), West Antarctica. In this study we test the hypothesis that the WIS stick–slip motion has features similar to those of other known stick–slip systems, and thus might be of the same origin. To do so, we adapt a simple mechanical model widely used in seismology to study classic stick–slip behavior observed in tectonic faults, in which the difference between static and dynamic friction allows for the generation and spatial propagation of abrupt slip events. We show how spatial variabil
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29

Jang, Min Gyu, Chul Hee Lee, and Seung Bok Choi. "Stick-Slip Compensation of Micro-Positioning Using Elastic-Plastic Static Friction Model." Advanced Materials Research 47-50 (June 2008): 246–49. http://dx.doi.org/10.4028/www.scientific.net/amr.47-50.246.

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In this paper, a stick-slip compensation for the micro-positioning is presented using the statistical rough surface contact model. As for the micro-positioning structure, PZT (lead(Pb) zirconia(Zr) Titanate(Ti)) actuator is used to drive the load for precise positioning with its high resolution incorporating with the PID (Proportional Integral Derivative) control algorithm. Since the stick-slip characteristics for the micro structures are highly nonlinear and complicated, it is necessary to incorporate more detailed stick-slip model for the applications involving the high precision motion cont
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30

Leine, R. I., D. H. van Campen, and W. J. G. Keultjes. "Stick-slip Whirl Interaction in Drillstring Dynamics." Journal of Vibration and Acoustics 124, no. 2 (2002): 209–20. http://dx.doi.org/10.1115/1.1452745.

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This paper attempts to explain the complicated behavior of oilwell drillstring motion when both torsional stick-slip and lateral whirl vibration are involved. It is demonstrated that the observed phenomena in experimental drillstring data could be due to the fluid forces of the drilling mud. A Stick-slip Whirl Model is presented which consists of a submodel for the whirling motion and a submodel for the stick-slip motion, both as simple as possible. The Stick-slip Whirl Model is a simplification of a drillstring confined in a borehole wall with drilling mud. The model is as simple as possible
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31

Larsson, H., and K. Farhang. "Vibrational Interaction of Two Rotors with Friction Coupling." Advances in Acoustics and Vibration 2016 (October 18, 2016): 1–9. http://dx.doi.org/10.1155/2016/9275147.

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A lumped parameter model is presented for studying the dynamic interaction between two disks in relative rotational motion and in friction contact. The contact elastic and dissipative characteristics are represented by equivalent stiffness and damping coefficient in the axial as well as torsional direction. The formulation accounts for the coupling between the axial and angular motions by viewing the contact normal force a result of axial behavior of the system. The model is used to investigate stick-slip behavior of a two-disk friction system. In this effort the friction coefficient is repres
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32

Li, Xiao Guang, Ping Zhao, and Jie Zhong. "Application Research of Stick-Slip Mechanism on MW Wind Turbine Yaw System." Applied Mechanics and Materials 220-223 (November 2012): 463–68. http://dx.doi.org/10.4028/www.scientific.net/amm.220-223.463.

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The “stick-slip” motion or creep phenomenon is often observed in MW wind turbine yaw system. Yam system stick-slip coupling phenomenon was analyzed, and stick-slip coupling kinematic model was established and simulated by Simulink. The influence of torsional stiffness, friction coefficient difference, rotating speed, damping ratio and tightening torque on system was researched. Main measures for elimination of stick-slip coupling phenomenon were given through theoretical analysis and simulation calculation.
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33

Qian, Peng Fei, Guo Liang Tao, Jian Feng Chen, and Bo Lu. "Modeling and Simulation of Stick-Slip Motion for Pneumatic Cylinder Based on Meter-In Circuit." Applied Mechanics and Materials 130-134 (October 2011): 775–80. http://dx.doi.org/10.4028/www.scientific.net/amm.130-134.775.

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For the stick-slip phenomenon encountered in the pneumatic cylinder motion in practical application, the stick-slip mechanism was analyzed and an nonlinear mathematical model based on the improved LuGre model of pneumatic cylinder movement was established. The movement of the piston and the pressure of the rodless chamber in the pneumatic cylinder based on meter-in circuit were obtained through solving the differential equations by four-order variable-step Runge-Kutta method. The comparison between simulation and experimental results shows that the established mathematical model can describe t
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34

Brunt, Kelly M., Matt A. King, Helen Amanda Fricker, and Douglas R. MacAyeal. "Flow of the Ross Ice Shelf, Antarctica, is modulated by the ocean tide." Journal of Glaciology 56, no. 195 (2010): 157–61. http://dx.doi.org/10.3189/002214310791190875.

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AbstractThe ice streams feeding the Ross Ice Shelf, Antarctica, have large tidally modulated (sinusoidal and stick–slip) flow, but the interaction with the ice shelf is poorly understood. We show that the flow of the Ross Ice Shelf front, up to ∼650 km from the ice streams, exhibits smooth, sinusoidal motions corresponding to tidal modulation. These observations suggest a possible linking of the ice shelf with the ice streams to form a unified system that responds to small perturbations in stresses associated with ocean tides. If this is the case, the presence of the sinusoidal motion but the
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35

Ozaki, S., Koichi Hashiguchi, and D. H. Chen. "Analysis of Stick-Slip Motion by the Rate-Dependent Friction Model." Advanced Materials Research 33-37 (March 2008): 867–74. http://dx.doi.org/10.4028/www.scientific.net/amr.33-37.867.

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In this study, the rate-dependent subloading-friction model, which can rationally describe the reciprocal transition of static-kinetic frictions by the unified formulation, is proposed. Then, the one-dimensional model of spring-mass system is implemented by incorporating the present friction model, and is applied to simulations of stick-slip motion. Further, we verified the validity of the present approach for the stick-slip motion by numerical experiments under various dynamic conditions.
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36

Jang, Min Gyu, Chul Hee Lee, and Seung Bok Choi. "Precision Motion Control of a Smart Structure Using an Enhanced Stick-Slip Model." Advances in Science and Technology 56 (September 2008): 98–103. http://dx.doi.org/10.4028/www.scientific.net/ast.56.98.

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In this paper, a smart structure for the micro position control is proposed using the piezo stack actuator. The smart structure is comprised with PZT based stack actuator, mechanical displacement amplifier and positioning devices. Based on the bridge-type flexural hinge mechanism, a displacement amplifier is designed and integrated with a piezo stack actuator to produce a desirable positioning stroke of the device. In order to achieve the high precision control performance in a positioning device, a stick-slip phenomenon should be suppressed in contacting surfaces of the device, which is gener
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37

Wang, Baojin, Zhongyang Wang, and Fushen Ren. "Dynamic Model and Quantitative Analysis of Stick-Slip Vibration in Horizontal Well." Shock and Vibration 2020 (July 22, 2020): 1–14. http://dx.doi.org/10.1155/2020/8831111.

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Stick-slip is very harmful to the service life of drillstring. The extended Hamilton principle is applied in the paper. Then, finite element method (FEM) is employed to describe the model. The drillstring-borehole impact and friction, fluid-structure interaction, bit-rock interaction, and gravity are considered in this model. The influence of axial and torsional excitation on stick-slip is analyzed. The nonlinear motion predicted by the model is consistent with the observation results in the experiments. The research shows that the fluctuation amplitude of the bit angular velocity also increas
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38

Djuidjé Kenmoé, G., A. Kenfack Jiotsa, and T. C. Kofané. "Nonlinear spring model for frictional stick-slip motion." European Physical Journal B 70, no. 3 (2009): 353–61. http://dx.doi.org/10.1140/epjb/e2009-00226-0.

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39

Lin, B., and P. L. Taylor. "Model of spatiotemporal dynamics of stick-slip motion." Physical Review E 49, no. 5 (1994): 3940–47. http://dx.doi.org/10.1103/physreve.49.3940.

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40

Karachevtseva, Iuliia, Arcady V. Dyskin, and Elena Pasternak. "Generation and propagation of stick-slip waves over a fault with rate-independent friction." Nonlinear Processes in Geophysics 24, no. 3 (2017): 343–49. http://dx.doi.org/10.5194/npg-24-343-2017.

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Abstract. Stick-slip sliding is observed at various scales in fault sliding and the accompanied seismic events. It is conventionally assumed that the mechanism of stick-slip over geo-materials lies in the rate dependence of friction. However, the movement resembling the stick-slip could be associated with elastic oscillations of the rock around the fault, which occurs irrespective of the rate properties of the friction. In order to investigate this mechanism, two simple models are considered in this paper: a mass-spring model of self-maintaining oscillations and a one-dimensional (1-D) model o
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41

Rosenhek-Goldian, Irit, Nir Kampf, Arie Yeredor, and Jacob Klein. "On the question of whether lubricants fluidize in stick–slip friction." Proceedings of the National Academy of Sciences 112, no. 23 (2015): 7117–22. http://dx.doi.org/10.1073/pnas.1505609112.

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Intermittent sliding (stick–slip motion) between solids is commonplace (e.g., squeaking hinges), even in the presence of lubricants, and is believed to occur by shear-induced fluidization of the lubricant film (slip), followed by its resolidification (stick). Using a surface force balance, we measure how the thickness of molecularly thin, model lubricant films (octamethylcyclotetrasiloxane) varies in stick–slip sliding between atomically smooth surfaces during the fleeting (ca. 20 ms) individual slip events. Shear fluidization of a film of five to six molecular layers during an individual slip
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42

Wang, Yanzhao, Guobin Xu, Zhicheng Liu, and Deming Yang. "Experimental Study on the Slip–Stick Vibration of Plane Gate." Water 16, no. 6 (2024): 912. http://dx.doi.org/10.3390/w16060912.

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The slip–stick vibration intensity of a plane gate is usually large, which often brings serious safety risks to itself and the auxiliary structure. The slip–stick vibration of a plane gate is investigated using an experimental model test. The test conditions mainly focus on the gate-closing and gate-opening processes in transient flow. Based on the results, comparison diagrams of the slip–stick vibration response versus the external fluid excitation are constructed. The intensity and period of the slip–stick vibration both gradually increase with the opening degree of the plane gate decreasing
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43

Zhang, Huidong, Xinqun Zhu, Zhongxian Li, and Shu Yao. "Displacement-dependent nonlinear damping model in steel buildings with bolted joints." Advances in Structural Engineering 22, no. 5 (2018): 1049–61. http://dx.doi.org/10.1177/1369433218804321.

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The stick–slip phenomenon is commonly found at structural connections in steel buildings. It is a major damping mechanism in a structure with bolted joints and makes a significant contribution to the total structural damping. This article reviews the stick–slip damping model of an elastic single-degree-of-freedom system with one stick–slip component. It is observed that the damping ratios of the system with the stick–slip mechanism first quickly increase when experiencing a very small displacement and then slowly decrease. After the number of activated slip surfaces is assumed to be a linear f
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44

Shi, Baoping, Abdolrasool Anooshehpoor, James N. Brune, and Yuehua Zeng. "Dynamics of thrust faulting: 2D lattice model." Bulletin of the Seismological Society of America 88, no. 6 (1998): 1484–94. http://dx.doi.org/10.1785/bssa0880061484.

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Abstract Particle motions in a foam rubber model of shallow-angle thrust faulting show many features different from those commonly assumed in dislocation models of subduction thrusts (Brune, 1996). As a complement to a physical foam rubber experiment, we have carried out dynamic simulation using a 2D lattice numerical model. The model is constructed as a triangular block sliding over a rectangular elastic block. It consists of a 2D set of particles interacting with each other by nonlinear Hooke's forces and obeying Newton's equations of motion. Rough surfaces are introduced on the contact plan
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45

Salcudean, S. E., and T. D. Vlaar. "On the Emulation of Stiff Walls and Static Friction With a Magnetically Levitated Input/Output Device." Journal of Dynamic Systems, Measurement, and Control 119, no. 1 (1997): 127–32. http://dx.doi.org/10.1115/1.2801204.

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This technical brief addresses issues of mechanical emulation of stiff walls and stick-slip friction with a 6-DOF magnetically levitated joystick. In the case of stiff wall emulation, it is shown that the PD control implementation commonly used severely limits achievable wall damping and stiffness. It is also shown that the perceived surface stiffness can be increased without loss of stability by applying a braking force pulse when crossing into the wall. For stick-slip friction, Karnopp’s model was implemented using a PD controller within the stick friction threshold. Even though the PD contr
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Watanabe, Kazumi. "Wave Radiation from a Stick-Slip-Like Moving Source." Key Engineering Materials 452-453 (November 2010): 45–48. http://dx.doi.org/10.4028/www.scientific.net/kem.452-453.45.

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Waves generated by a moving source are discussed. Introducing a simple model for the stick-slip motion of the source, an exact response of SH-wave in an infinite elastic solid is derived. The response is composed of an infinite sum of time-harmonic wave with multiple frequency of the stick-slip motion and Doppler effects are derived from the far-field approximation. This shows that Doppler effects take place even if the source magnitude is uniform, not time-harmonic.
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47

Chuang, Yun-Ju, Ho Chang, Yin-Tung Sun, and Tsing-Tshih Tsung. "Stick–slip in hand guidance of palletizing robot as collaborative robot." International Journal of Advanced Robotic Systems 19, no. 5 (2022): 172988062211311. http://dx.doi.org/10.1177/17298806221131138.

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Stick–slip is a challenging problem in palletizing robots and constitutes one of the main problems in precision positioning control. This study analyzed the stick–slip of a four-degree-of-freedom ceiling-mounted hand-guiding collaborative robot in a working space. A brief perspective on the focus of the experimental design is presented on the stick–slip friction of a palletizing robot’s hand guidance as a collaborative robot. The palletizing robot typically has a simple mechanical structure but possesses over 16 bearings to constrain the motion of the dual-parallelogram linkage mechanism. Firs
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Matsubara, Atsushi, Atsuko Sayama, Taku Sakai, and Matthias Reuss. "Analysis of Measured Friction of Rolling Balls in Raceway Grooves." International Journal of Automation Technology 8, no. 6 (2014): 811–19. http://dx.doi.org/10.20965/ijat.2014.p0811.

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Friction in linear guideways has an influence on the motion accuracy of machine tool drives. As feedback control has a lag to the friction change in reverse motion, a feedforward compensation is generally used in friction models. However, it is difficult to estimate the friction of rolling balls in raceway grooves because it involves both stick and differential slip characteristics. In this paper, a measurement method is presented using an analytical procedure to clarify micro stick and slip factors in rolling friction. In the measurement test, four balls and two raceway grooves are used to me
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Batako, A. D. L., and P. T. Piiroinen. "Friction-driven vibro-impact system for percussive-rotary drilling: A numerical study of the system dynamics." Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science 222, no. 10 (2008): 1925–34. http://dx.doi.org/10.1243/09544062jmes888.

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Stick—slip-induced vibration in drilling has a detrimental effect on the drilling system and may lead to the failure of the drill string. This study is a further development of a friction-driven vibro-impact system which was investigated previously. The system used the stick—slip properties to generate a vibratory motion of a hammer that collides with the bit. The previous study focused on the influence of the friction on the response of the system without impacts. This paper investigates the full dynamic response of the model including friction and impact. Numerical bifurcation analysis of th
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Djerassi, S. "Stick-Slip, Imposition-Removal of Constraints and the Spinning Ball Problem." Journal of Applied Mechanics 67, no. 4 (2000): 720–26. http://dx.doi.org/10.1115/1.1334861.

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It has been observed that balls pressed between elastic bodies spin when subjected to linear, cyclic motion. This paper proposes an explanation to this phenomenon, based upon the stick-slip theory. To this end, a modified, vectorial formulation of the stick-slip theory is presented. The formulation is applied to a model comprising a ball pressed between pairs of springs and dampers. A computer program based on this formulation is used to predict the resulting motion. Predictions are shown to agree with experimental results. [S0021-8936(01)00701-2]
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