Tingli Yang
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Featured researches published by Tingli Yang.
Journal of Mechanical Design | 2009
Tingli Yang; Anxin Liu; Qiong Jin; Yufeng Luo; Huiping Shen; Lu-Bin Hang
This paper presents the explicit mapping relations between topological structure and position and orientation characteristic (POC) of mechanism motion output. It deals with (I) the symbolic representation and the invariant property of the topological structure of the mechanism, (2) the matrix representation of POC of mechanism motion output, and (3) the POC equations of serial and parallel mechanisms and the corresponding symbolic operation rules. The symbolic operation involves simple mathematic tools and fewer operation rules and has clear geometrical meaning, so it is easy to use. The POC equations cannot only be used for structural analysis of the mechanism (such as determining POC of the relative motion between any two links of a mechanism and the rank of single-loop kinematic chain and calculating the full-cycle DOF of a mechanism, etc.) but can be used for structural synthesis of the mechanism as well (e.g., structural synthesis of the rank-degenerated serial mechanism, the over constrained single-loop mechanism, and the rank-degenerated parallel mechanism, etc.).
international conference on intelligent robotics and applications | 2016
Tingli Yang; Anxin Liu; Huiping Shen; Lubin Hang
A systematic method for topological structure synthesis of PM based on POC equations is introduced. The complete synthesis process includes the following several steps: (a) synthesize all candidate SOC and HSOC branches based on the POC equation for serial mechanisms, (b) determine branch combination schemes and geometrical conditions for branches to be assembled on two platforms based on POC equation for PMs, (c) check the obtained PMs for design requirements and obtain all usable PMs. Topological structure synthesis of 3T1R PM which can be used in SCARA robot is discussed in detail to illustrate to procedure of this method. 18 types of 3T1R PMs containing no prismatic pair are obtained.
ieee international conference on computer-aided industrial design & conceptual design | 2009
Huiping Shen; Ju Li; Jiaming Deng; Yuan-wei Liu; Lei Ding; Jiangtao Zhang; Hui-fang Zhang; Tingli Yang
A new concept of vibration sieve based on parallel kinematic mechanism (PKM) is proposed in this paper and a novel 2-DOF spatial parallel mechanism is also designed here. The screen box fixed on the moving platform of the parallel mechanism poses an independent vertical translation and two rotations (one rotation is independent and the other is derivative). The trajectory of the screen-surface appears a serial of complex spatial curves, which is suitable for sieving materials effectively. A kinematics model for positive and inverse solution of the mechanism is also derived. According to the technical demands of the sieving, the dimensions of the links are designed, and the three-dimension solid model motion is simulated. Then, the track equation of points on the moving platform is deduced and the track curves are plotted using MATLAB. The prototype is manufactured at last. All these works provide a foundation for optimizing design of the technical parameters.
robotics and biomimetics | 2012
Tongzhu Yu; Huiping Shen; Jiaming Deng; Yixiao Kong; Hongbo Yin; Tingli Yang
This paper proposes an easily manufactured structure for 1–2–3-SPS type 6-DOF basic parallel mechanism by splitting a triple spherical joint into three single spherical joints, which are arranged on a push rod dividually. Based on structural analysis, we obtain that the coupling degree of the mechanism is zero. Then a unified formulation of forward kinematics can be obtained by solving each basic kinematic chain successively. The forward position solutions are verified by performing an inverse position analysis. This closed-form solution, based on the structural analysis, do not need to deduce and solve a monobasic high power equation with complicated mathematic methods and is easy to accomplish real-time control and do some research of workspace and error analysis. In addition, the calculation is also very simple.
ASME 2009 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference | 2009
Tingli Yang; Anxin Liu; Yufeng Luo; Liping Zhang; Huiping Shen; Lubin Hang
Basic principles and main characteristics of three approaches for structure synthesis of robot mechanisms (the screw theory-based approach, the displacement subgroup-based approach and the approach based on position and orientation characteristic (in short, POC) ) are studied and compared in this paper. The comparison deals with the mathematical tools, the symbolic representation of mechanism topological structure, the mathematical representation of POC of the output motion link with respect to the frame link, the basic equations for structure synthesis of serial and parallel mechanisms and relevant operation rules, and the characteristics of their synthesized mechanisms, etc. This comparative study shows that the POC-based approach is totally different from the other two approaches: (1) the POC-based approach requires only simple mathematical tools (such as vector algebra, set theory, etc), (2) the POC-based approach is conceptually simpler and therefore easier to understand and to use, and (3) the POC-based approach is more general.Copyright
ASME 2009 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference | 2009
Tingli Yang; Anxin Liu; Qiong Jin; Yufeng Luo; Huiping Shen; Lu-Bing Hang
Based on the Position and orientation characteristic (POC) equation of serial mechanisms proposed by the author, this paper presents a novel systematic approach for structure synthesis of rank-degenerated serial mechanisms and over-constrained single-loop kinematic chains (KCs) (excluding the Bennett mechanism etc). This approach is totally different from the approaches based on the screw theory and based on the displacement subgroup, and only simple mathematical tools (vector algebra, etc.) are used. Using this approach, the structure types of serial mechanisms with the specified ranks and the specified degree of freedom (DOF) are synthesized firstly. After that, using the structure types of the obtained serial mechanisms, structure types of over-constrained single-loop KCs with the specified ranks and the specified DOF can be generated in a straightforward way. The structure types of the obtained serial mechanisms can be used as branches of parallel mechanisms. The structure types and the ranks of the obtained over-constrained single-loop KCs can be used to calculate the DOF of multi-loop mechanisms. In fact, the systematic approach proposed in this paper is a key component of the systematic approach for structure synthesis of parallel mechanisms.Copyright
ASME 2008 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference | 2008
Tingli Yang; Anxin Liu; Yufeng Luo; Xianwen Kong; Huiping Shen; Lu-Bin Hang; Qiong Jin; Fang-Hua Yao
A new viewpoint on structural composition of mechanism is proposed in this paper: any mechanism can be decomposed into a group of ordered single-open-chains (SOC). Based on the ordered SOC and its constraint property, the following concepts or principles are proposed or established: (1) the criteria for determination of basic kinematic chain (BKC). (2) the coupling degree of BKC, (3) the criteria for determination of types of degree-of-freedom, (4) the formula for calculation of number of mechanism configurations, and (5) a new unified modular method for structural, kinematic and dynamic analysis of mechanism.Copyright
Archive | 2019
Huiping Shen; Ke Xu; Guanglei Wu; Tingli Yang
This paper presents a simple and effective closed-form method for solving direct kinematics of parallel mechanism (PM) based on ordered single-open-chain units (SOCs). The method includes two steps. The first step is to establish the kinematic constraint equations that contain the least virtual variables of a PM, by using the modelling principle based on ordered SOCs. The second step is to derive and solve a nonlinear equation with one unknown from the constraint position equations by means of the software Mathematica. The method is applicable for direct kinematics of various complex planar and spatial PMs.
Archive | 2018
Tingli Yang; Anxin Liu; Huiping Shen; Lubin Hang; Yufeng Luo; Qiong Jin
Topology design of (3T-1R) parallel mechanism (PM) based on POC equations is discussed in detail as an example to illustrate the systematic method for topology design of PMs proposed in Chap. 9. The design process includes two stages. The first stage involves traditional structure synthesis, which results in 18 structure types of (3R-1R) PMs that contain no P pairs. The second stage includes topological performance analysis and classification of the obtained PM structure types which may help designer to select the most suitable structure type. Its core contents include: (1) Key steps of topology design for (3R-1R) PMs include: (a) Determine structure types of the SOC branch containing only R and P pairs according to the method for structure synthesis of SOC branch described in Chap.8. Then obtain corresponding HSOC branches through topologically equivalent principle in Chap.9. (b) Determine the geometrical condition for assembling branches between two platforms according to corresponding basic formulas in Chap. 9. Then determine different assembling schemes for the same geometrical condition. (c) Performance analysis and classification of the obtained PM structures are conducted based on topological characteristics of PMs in Chap. 9. The result can be used for assessment and optimization of (3R-1R) PM structure types. (2) 18 types of (3T-1R) PM structures containing no P pair are obtained, two of which have already been used in existing SCARA parallel robots. The other structure types may potentially be used in new SCARA parallel robots. (3) These 18 structure types of (3R-1R) PMs are classified into four types: Type-1 include four PMs containing only SOC branches; Type-2 include six PMs containing only HSOC branches; Type-3 include seven PMs containing both HSOC and SOC branches; Type-4 include three PMs with partial motion decoupling property. (4) According to topological performance analysis and classification of these PMs based on topological characteristics, the type-3 PM has a higher rigidity than a type-1 PM and a larger workspace than a type-2 PM. So, special attentions shall be paid to type-3 PMs.
Archive | 2018
Tingli Yang; Anxin Liu; Huiping Shen; Lubin Hang; Yufeng Luo; Qiong Jin
Topological structure of mechanisms and the symbolic representation are introduced in this chapter. The content deals with: (1) A new element for describing topological structure - geometric constraint type (the type of geometrical constraints to pair axes imposed by links, is proposed. This new element and the other two traditional elements (type of kinematic pair, connection relation between links) formed the three basic elements of topological structure. (2) The mechanism topological structure described using these three basic elements and the corresponding symbolic representation are independent of motion position of the mechanism and the fixed coordinate system. This feature is called the topological structure invariance during motion process. (3) The symbolic representation of topological structure and the topological structure invariance could be used for establishing the position and orientation characteristics (POC) equation for serial mechanisms, the POC equation for parallel mechanisms (PMs) and their operation rules (refer to Chaps. 4– 5). (4) Any serial mechanisms or multi-loop spatial mechanisms can be generated by connecting single-open-chain (SOC) in parallels or in series. The SOC unit is a new structure unit of mechanisms proposed by authors, which could be used for establishing the POC equation for serial mechanisms (refer to Chap. 4), the POC equation for PMs (refer to Chap. 5), the DOF formula (refer to Chap. 6) and the coupling degree formula (refer to Chap. 7).