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Featured researches published by Enrong Wang.


Chinese Journal of Mechanical Engineering | 2013

Skyhook-based Semi-active Control of Full-vehicle Suspension with Magneto-rheological Dampers

Hailong Zhang; Enrong Wang; Fuhong Min; Rakheja Subash; Chunyi Su

The control study of vehicle semi-active suspension with magneto-rheological (MR) dampers has been attracted much attention internationally. However, a simple, real time and easy implementing semi-active controller has not been proposed for the MR full-vehicle suspension system, and a systematic analysis method has not been established for evaluating the multi-objective suspension performances of MR full-vehicle vertical, pitch and roll motions. For this purpose, according to the 7-degree of freedom (DOF) full-vehicle dynamic system, a generalized 7-DOF MR and passive full-vehicle dynamic model is set up by employing the modified Bouc-wen hysteretic force-velocity (F-v) model of the MR damper. A semi-active controller is synthesized to realize independent control of the four MR quarter-vehicle sub-suspension systems in the full-vehicle, which is on the basis of the proposed modified skyhook damping scheme of MR quarter-vehicle sub-suspension system. The proposed controller can greatly simplify the controller design complexity of MR full-vehicle suspension and has merits of easy implementation in real application, wherein only absolute velocities of sprung and unsprung masses with reference to the road surface are required to measure in real time when the vehicle is moving. Furthermore, a systematic analysis method is established for evaluating the vertical, pitch and roll motion properties of both MR and passive full-vehicle suspensions in a more realistic road excitation manner, in which the harmonic, rounded pulse and real road measured random signals with delay time are employed as different road excitations inserted on the front and rear two wheels, by considering the distance between front and rear wheels in full-vehicle. The above excitations with different amplitudes are further employed as the road excitations inserted on left and right two wheels for evaluating the roll motion property. The multi-objective suspension performances of ride comfort and handling safety of the proposed MR full-vehicle suspension are thus thoroughly evaluated by comparing with those of the passive full-vehicle suspension. The results show that the proposed controller can ideally improve multi-objective suspension performances of the ride comfort and handling safety. The proposed harmonic, rounded pulse and real road measured random signals with delay time and asymmetric amplitudes are suitable for accurately analyzing the vertical, pitch and roll motion properties of MR full-vehicle suspension system in a more realistic road excitation manner. This research has important theoretical significance for improving application study on the intelligent MR semi-active suspension.


Chinese Journal of Mechanical Engineering | 2015

Semi-active sliding mode control of vehicle suspension with magneto-rheological damper

Hailong Zhang; Enrong Wang; Ning Zhang; Fuhong Min; Rakheja Subash; Chunyi Su

The vehicle semi-active suspension with magneto-rheological damper(MRD) has been a hot topic since this decade, in which the robust control synthesis considering load variation is a challenging task. In this paper, a new semi-active controller based upon the inverse model and sliding mode control (SMC) strategies is proposed for the quarter-vehicle suspension with the magneto-rheological (MR) damper, wherein an ideal skyhook suspension is employed as the control reference model and the vehicle sprung mass is considered as an uncertain parameter. According to the asymptotical stability of SMC, the dynamic errors between the plant and reference systems are used to derive the control damping force acquired by the MR quarter-vehicle suspension system. The proposed modified Bouc-wen hysteretic force-velocity (F-v) model and its inverse model of MR damper, as well as the proposed continuous modulation (CM) filtering algorithm without phase shift are employed to convert the control damping force into the direct drive current of the MR damper. Moreover, the proposed semi-active sliding mode controller (SSMC)-based MR quarter-vehicle suspension is systematically evaluated through comparing the time and frequency domain responses of the sprung and unsprung mass displacement accelerations, suspension travel and the tire dynamic force with those of the passive quarter-vehicle suspension, under three kinds of varied amplitude harmonic, rounded pulse and real-road measured random excitations. The evaluation results illustrate that the proposed SSMC can greatly suppress the vehicle suspension vibration due to uncertainty of the load, and thus improve the ride comfort and handling safety. The study establishes a solid theoretical foundation as the universal control scheme for the adaptive semi-active control of the MR full-vehicle suspension decoupled into four MR quarter-vehicle sub-suspension systems.


AIP Advances | 2016

Bifurcations and chaos of a vibration isolation system with magneto-rheological damper

Hailong Zhang; Ning Zhang; Fuhong Min; Wei Yan; Enrong Wang

Magneto-rheological (MR) damper possesses inherent hysteretic characteristics. We investigate the resulting nonlinear behaviors of a two degree-of-freedom (2-DoF) MR vibration isolation system under harmonic external excitation. A MR damper is identified by employing the modified Bouc-wen hysteresis model. By numerical simulation, we characterize the nonlinear dynamic evolution of period-doubling, saddle node bifurcating and inverse period-doubling using bifurcation diagrams of variations in frequency with a fixed amplitude of the harmonic excitation. The strength of chaos is determined by the Lyapunov exponent (LE) spectrum. Semi-physical experiment on the 2-DoF MR vibration isolation system is proposed. We trace the time history and phase trajectory under certain values of frequency of the harmonic excitation to verify the nonlinear dynamical evolution of period-doubling bifurcations to chaos. The largest LEs computed with the experimental data are also presented, confirming the chaotic motion in the ex...


Chinese Physics B | 2016

Hysteresis-induced bifurcation and chaos in a magneto-rheological suspension system under external excitation*

Hailong Zhang; Enrong Wang; Fuhong Min; Ning Zhang

The magneto-rheological damper (MRD) is a promising device used in vehicle semi-active suspension systems, for its continuous adjustable damping output. However, the innate nonlinear hysteresis characteristic of MRD may cause the nonlinear behaviors. In this work, a two-degree-of-freedom (2-DOF) MR suspension system was established first, by employing the modified Bouc–Wen force–velocity (F–v) hysteretic model. The nonlinear dynamic response of the system was investigated under the external excitation of single-frequency harmonic and bandwidth-limited stochastic road surface. The largest Lyapunov exponent (LLE) was used to detect the chaotic area of the frequency and amplitude of harmonic excitation, and the bifurcation diagrams, time histories, phase portraits, and power spectrum density (PSD) diagrams were used to reveal the dynamic evolution process in detail. Moreover, the LLE and Kolmogorov entropy (K entropy) were used to identify whether the system response was random or chaotic under stochastic road surface. The results demonstrated that the complex dynamical behaviors occur under different external excitation conditions. The oscillating mechanism of alternating periodic oscillations, quasi-periodic oscillations, and chaotic oscillations was observed in detail. The chaotic regions revealed that chaotic motions may appear in conditions of mid-low frequency and large amplitude, as well as small amplitude and all frequency. The obtained parameter regions where the chaotic motions may appear are useful for design of structural parameters of the vibration isolation, and the optimization of control strategy for MR suspension system.


International Journal of Applied Electromagnetics and Mechanics | 2016

Analysis and mitigation on conducted electromagnetic interference of semi-active control strategy for magneto-rheological damper

Wei Yan; Jing Yu; Qiang Tang; Hailong Zhang; Jincheng Cao; Enrong Wang

The controllable magneto-rheological damper has been widely used in vibration mitigation system, such as vehi- cle suspension and aerospace landing gear, which is subjected to the direct magnetic field based on the magneto-rheological damper controller under semi-active control strategy. Due to the displacement vibration and semi-active control strategy, con- ducted electromagnetic noises are generated through the power supply. In the paper, the conducted electromagnetic interference noise mechanism and model are proposed for the magneto-rheological damper with semi-active control strategy based on the theoretical and simulation analysis. Then, a novel smoothing algorithm is designed to reduce the above conducted electromag- netic interference noises. The simulation and experiment results show that conducted electromagnetic interference noises can be suppressed 2-8 dBµV by employing the present smoothing algorithm and comply with EN 55022, thus it can support the development, application and safety & electromagnetic compatibility design for the MRD device.


Shock and Vibration | 2015

Nonlinear Dynamics Analysis of the Semiactive Suspension System with Magneto-Rheological Damper

Hailong Zhang; Enrong Wang; Fuhong Min; Ning Zhang; Chun-Yi Su; Subhash Rakheja

This paper examines dynamical behavior of a nonlinear oscillator which models a quarter-car forced by the road profile. The magneto-rheological (MR) suspension system has been established, by employing the modified Bouc-Wen force-velocity (F-v) model of magneto-rheological damper (MRD). The possibility of chaotic motions in MR suspension is discovered by employing the method of nonlinear stability analysis. With the bifurcation diagrams and corresponding Lyapunov exponent (LE) spectrum diagrams detected through numerical calculation, we can observe the complex dynamical behaviors and oscillating mechanism of alternating periodic oscillations, quasiperiodic oscillations, and chaotic oscillations with different profiles of road excitation, as well as the dynamical evolutions to chaos through period-doubling bifurcations, saddle-node bifurcations, and reverse period-doubling bifurcations.


Chinese Journal of Mechanical Engineering | 2017

High precision ultrasonic guided wave technique for inspection of power transmission line

Jun Cheng; Jinhao Qiu; Hongli Ji; Enrong Wang; Toshiyuki Takagi; Tetsuya Uchimoto

Due to the merits of high inspection speed and long detecting distance, Ultrasonic Guided Wave(UGW) method has been commonly applied to the on-line maintenance of power transmission line. However, the guided wave propagation in this structure is very complicated, leading to the unfavorable defect localization accuracy. Aiming at this situation, a high precision UGW technique for inspection of local surface defect in power transmission line is proposed. The technique is realized by adopting a novel segmental piezoelectric ring transducer and transducer mounting scheme, combining with the comprehensive characterization of wave propagation and circumferential defect positioning with multiple piezoelectric elements. Firstly, the propagation path of guided waves in the multi-wires of transmission line under the proposed technique condition is investigated experimentally. Next, the wave velocities are calculated by dispersion curves and experiment test respectively, and from comparing of the two results, the guided wave mode propagated in transmission line is confirmed to be F(1,1) mode. Finally, the axial and circumferential positioning of local defective wires in transmission line are both achieved, by using multiple piezoelectric elements to surround the stands and send elastic waves into every single wire. The proposed research can play a role of guiding the development of highly effective UGW method and detecting system for multi-wire transmission line.


Mathematical Problems in Engineering | 2016

Coupling Mechanism and Decoupled Suspension Control Model of a Half Car

Hailong Zhang; Ning Zhang; Fuhong Min; Subhash Rakheja; Chun-Yi Su; Enrong Wang

A structure decoupling control strategy of half-car suspension is proposed to fully decouple the system into independent front and rear quarter-car suspensions in this paper. The coupling mechanism of half-car suspension is firstly revealed and formulated with coupled damping force (CDF) in a linear function. Moreover, a novel dual dampers-based controllable quarter-car suspension structure is proposed to realize the independent control of pitch and vertical motions of the half car, in which a newly added controllable damper is suggested to be installed between the lower control arm and connection rod in conventional quarter-car suspension structure. The suggested damper constantly regulates the half-car pitch motion posture in a smooth and steady operation condition meantime achieving the expected completely structure decoupled control of the half-car suspension, by compensating the evolved CDF.


Composites Part B-engineering | 2017

Application of low frequency ECT method in noncontact detection and visualization of CFRP material

Jun Cheng; Jinhao Qiu; Hongli Ji; Enrong Wang; Toshiyuki Takagi; Tetsuya Uchimoto


SMO'07 Proceedings of the 7th WSEAS International Conference on Simulation, Modelling and Optimization | 2007

Characterization and modeling of symmetric and asymmetric damping properties of a magnetorheological damper

Enrong Wang; Wan-Jun Wang; Hui Wang; Subhash Rakheja; Chun-Yi Su

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Hailong Zhang

Nanjing Normal University

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Fuhong Min

Nanjing Normal University

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Ning Zhang

Nanjing Normal University

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Chun-Yi Su

South China University of Technology

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Chun-Yi Su

South China University of Technology

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Hongli Ji

Nanjing University of Aeronautics and Astronautics

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Jian Liu

Nanjing Normal University

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Jinhao Qiu

Nanjing University of Aeronautics and Astronautics

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Jun Cheng

Nanjing University of Aeronautics and Astronautics

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