Zhiyuan Yao
Nanjing University of Aeronautics and Astronautics
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Featured researches published by Zhiyuan Yao.
Review of Scientific Instruments | 2016
Zhen Liu; Zhiyuan Yao; Xiang Li; Qianwei Fu
In this contribution, we propose a novel linear piezoelectric motor with a compact stator that is driven by a single mode. The linear piezoelectric motor can realize bidirectional motion by changing the vibration modes of the stator. Finite element analysis is performed to determine the required vibration mode of the stator and obtain the optimal stator structure and dimensions. Furthermore, the trajectories of the driving foot are analyzed with and without consideration of the mechanical contact with the slider. It is shown that the trajectory of the driving foot is an oblique line when disregarding the contact, and the trajectory becomes an oblique ellipse while taking into account the contact. Finally, a prototype of the motor is fabricated based on the results of finite element analysis. The optimization results show that the motor reaches its maximum thrust force of 4.0 kg, maximum thrust-weight ratio of 33.3, maximum unloaded velocity of 385 mm/s under the excitation of Mode-B, and maximum unloaded velocity of 315 mm/s under the excitation of Mode-L.
Ultrasonics | 2016
Xiang Li; Zhiyuan Yao; Shengli Zhou; Qibao Lv; Zhen Liu
In this paper, an integrated model is developed to analyze the fundamental characteristics of a modal-independent linear ultrasonic motor with double piezoelectric vibrators. The energy method is used to model the dynamics of the two piezoelectric vibrators. The interface forces are coupled into the dynamic equations of the two vibrators and the moving platform, forming a whole machine model of the motor. The behavior of the force transmission of the motor is analyzed via the resulting model to understand the drive mechanism. In particular, the relative contact length is proposed to describe the intermittent contact characteristic between the stator and the mover, and its role in evaluating motor performance is discussed. The relations between the output speed and various inputs to the motor and the start-stop transients of the motor are analyzed by numerical simulations, which are validated by experiments. Furthermore, the dead-zone behavior is predicted and clarified analytically using the proposed model, which is also observed in experiments. These results are useful for designing servo control scheme for the motor.
Review of Scientific Instruments | 2017
Xiaoniu Li; Zhiyuan Yao; Mojian Yang
A novel large thrust-weight ratio V-shaped linear ultrasonic motor with a flexible joint is proposed in this paper. The motor is comprised of a V-shaped transducer, a slider, a clamp, and a base. The V-shaped transducer consists of two piezoelectric beams connected through a flexible joint to form an appropriate coupling angle. The V-shaped motor is operated in the coupled longitudinal-bending mode. Longitudinal and bending movements are transferred by the flexible joint between the two beams. Compared with the coupled longitudinal-bending mode of the single piezoelectric beam or the symmetrical and asymmetrical modes of the previous V-shaped transducer, the coupled longitudinal-bending mode of the V-shaped transducer with a flexible joint provides higher vibration efficiency and more convenient mode conformance adjustment. A finite element model of the V-shaped transducer is created to numerically study the influence of geometrical parameters and to determine the final geometrical parameters. In this paper, three prototypes were then fabricated and experimentally investigated. The modal test results match well with the finite element analysis. The motor mechanical output characteristics of three different coupling angles θ indicate that V-90 (θ = 90°) is the optimal angle. The mechanical output experiments conducted using the V-90 prototype (Size: 59.4 mm × 30.7 mm × 4 mm) demonstrate that the maximum unloaded speed is 1.2 m/s under a voltage of 350 Vpp, and the maximum output force is 15 N under a voltage of 300 Vpp. The proposed novel V-shaped linear ultrasonic motor has a compact size and a simple structure with a large thrust-weight ratio (0.75 N/g) and high speed.
Ultrasonics | 2017
Qibao Lv; Zhiyuan Yao; Xiang Li
&NA; The effects of surface roughness are not considered in the traditional motor model which fails to reflect the actual contact mechanism between the stator and slider. An analytical model for calculating the tangential force of linear ultrasonic motor is proposed in this article. The presented model differs from the previous spring contact model, the asperities in contact between stator and slider are considered. The influences of preload and exciting voltage on tangential force in moving direction are analyzed. An experiment is performed to verify the feasibility of this proposed model by comparing the simulation results with the measured data. Moreover, the proposed model and spring model are compared. The results reveal that the proposed model is more accurate than spring model. The discussion is helpful for designing and modeling of linear ultrasonic motors. HighlightsAn analytical model for calculating friction force of linear ultrasonic motor is presented.Surface roughness is considered in the proposed model.Compared with spring model, the calculated results of this proposed model show a better agreement with the measurements.
Ultrasonics | 2017
Yue Jian; Zhiyuan Yao; Vadim V. Silberschmidt
&NA; Thanks to their compactness and suitability for vacuum applications, linear ultrasonic motors are considered as substitutes for classical electromagnetic motors as driving elements in absolute gravimeters. Still, their application is prevented by relatively low power output. To overcome this limitation and provide better stability, a V‐type linear ultrasonic motor with a new clamping method is proposed for a gravimeter. In this paper, a mechanical model of stators with flexible clamping components is suggested, according to a design criterion for clamps of linear ultrasonic motors. After that, an effect of tangential and normal rigidity of the clamping components on mechanical output is studied. It is followed by discussion of a new clamping method with sufficient tangential rigidity and a capability to facilitate pre‐load. Additionally, a prototype of the motor with the proposed clamping method was fabricated and the performance tests in vertical direction were implemented. Experimental results show that the suggested motor has structural stability and high dynamic performance, such as no‐load speed of 1.4 m/s and maximal thrust of 43 N, meeting the requirements for absolute gravimeters. HighlightsA linear ultrasonic motor is used as driving element of an absolute gravimeter.A novel clamping method for USM‐one‐hinge‐end clamping‐is proposed.A mechanical model of a stator with a one‐hinge‐end clamping method is developed.Experiments showed that the motor had structural stability and high performance.
Review of Scientific Instruments | 2018
Bailiang Zhang; Zhiyuan Yao; Zhen Liu; Xiaoniu Li
In this study, a large thrust linear ultrasonic motor using an L-shaped stator is described. The stator is constructed by two mutually perpendicular rectangular plate vibrators, one of which is mounted in parallel with the slider to make the motor structure to be more compact. The symmetric and antisymmetric modes of the stator based on the first order bending vibration of two vibrators are adopted, in which each resonance mode is assigned to drive the slider in one direction. The placement of piezoelectric ceramics in a stator could be determined by finite element analysis, and the influence of slots in the head block on the vibration amplitudes of driving foot was studied as well. Three types of prototypes (non-slotted, dual-slot, and single-slot) were fabricated and experimentally investigated. Experimental results demonstrated that the prototype with one slot exhibited the best mechanical output performance. The maximum loads under the excitation of symmetric mode and antisymmetric mode were 65 and 90 N, respectively.
international conference on ubiquitous robots and ambient intelligence | 2016
Zhiyuan Yao; Qianwei Fu; Ranran Geng; Yue Jian; Zhen Liu
This paper proposed structural design methods for the development of high-efficiency linear ultrasonic motors (LUMs) that can be applied in robotic fields. A continuous variable cross-section Langevin vibrator was adopted for higher vibration efficiency of the stator. To improve the structural stability of the motor, the clamping component of the stator and the applying method of pre-pressure were modified as well. The clamping component was designed as a structure with flexible hinge. Furthermore, three types of LUMs were designed based on the proposed design methods. Experimental results showed that their feature size, maximum thrust, maximum speed and displacement resolution are 35-60 mm, 37 N, 1 mm/s and 50 nm, respectively, which indicated the designed LUMs had good output performance and precision. Finally, several applications of these designed LUMs including micromanipulator, absolute gravimeter and car top window were introduced.
Journal of Sound and Vibration | 2016
Xiang Li; Zhiyuan Yao; Qibao Lv; Zhen Liu
Smart Materials and Structures | 2018
Zhen Liu; Zhiyuan Yao; Yue Jian; Bailiang Zhang
Smart Materials and Structures | 2017
Zhen Liu; Zhiyuan Yao; Yue Jian; Xiang Li