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    Breathing characteristics of rotor cracks based on time-varying centroid position

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    https://www.riss.kr/link?id=A108640278

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    On the basis of material and fracture mechanics theory, the flexible matrix and stiffness matrix of crack elements are derived using the strain energy release rate and the Timoshenko beam element model of six degrees of freedom. In accordance with the geometric relationship between the opening and closing of crack, time-varying centroid coordinates of the crack are fixed by neutral axis theory, and the position of the crack closing line is obtained depending on the time-varying centroid coordinates, which describe the crack's breathing characteristics. On this basis, a time-varying centroid coordinate model is proposed and compared with the sinusoidal model, the Gaozhu model, and the zero-stress intensity factor model. Results show that the proposed model has more coupling characteristics. Finally, the flexibility matrix of oblique, straight, and semielliptical crack elements is derived, and the breathing mechanism of three kinds of cracks is studied.
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    On the basis of material and fracture mechanics theory, the flexible matrix and stiffness matrix of crack elements are derived using the strain energy release rate and the Timoshenko beam element model of six degrees of freedom. In accordance with the...

    On the basis of material and fracture mechanics theory, the flexible matrix and stiffness matrix of crack elements are derived using the strain energy release rate and the Timoshenko beam element model of six degrees of freedom. In accordance with the geometric relationship between the opening and closing of crack, time-varying centroid coordinates of the crack are fixed by neutral axis theory, and the position of the crack closing line is obtained depending on the time-varying centroid coordinates, which describe the crack's breathing characteristics. On this basis, a time-varying centroid coordinate model is proposed and compared with the sinusoidal model, the Gaozhu model, and the zero-stress intensity factor model. Results show that the proposed model has more coupling characteristics. Finally, the flexibility matrix of oblique, straight, and semielliptical crack elements is derived, and the breathing mechanism of three kinds of cracks is studied.

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    참고문헌 (Reference)

    1 Y. Wang, "Vibration and stability analysis of a bearing-rotor system with transverse breathing crack and initial bending" 9 (9): 2021

    2 A. Dimarogonas, "Torsional vibration of a shaft with a circumferential crack" 15 : 439-444, 1981

    3 C. Liu, "Torsional vibration characteristics and experimental study of cracked rotor system with torsional oscillation" 116 : 104737-, 2020

    4 C. A. Papadopoulos, "The strain energy release approach for modeling cracks in rotors : A state of the art review" 22 : 763-789, 2008

    5 J. Gao, "Study on the model of the shaft crack opening and closing" 9 : 108-112, 1992

    6 P. Rubio, "Stress intensity factor and propagation of an open sickle shaped crack in a shaft under bending" 96 : 688698-, 2018

    7 K. K. Schwarz, "Some problems of rotor dynamics" 12 : 369-370, 1966

    8 B. Zhang, "Six degrees of freedom coupled dynamic response of rotor with a transverse breathing crack" 78 : 1843-1861, 2014

    9 Y. LI, "Research on methods of signature extracting and dynamical behaviors of breath cracked fault" 23 : 5-, 2004

    10 B. Yang, "Optimisation method for determination of crack tip position based on gauss-newton iterative technique" 34 : 70-, 2021

    1 Y. Wang, "Vibration and stability analysis of a bearing-rotor system with transverse breathing crack and initial bending" 9 (9): 2021

    2 A. Dimarogonas, "Torsional vibration of a shaft with a circumferential crack" 15 : 439-444, 1981

    3 C. Liu, "Torsional vibration characteristics and experimental study of cracked rotor system with torsional oscillation" 116 : 104737-, 2020

    4 C. A. Papadopoulos, "The strain energy release approach for modeling cracks in rotors : A state of the art review" 22 : 763-789, 2008

    5 J. Gao, "Study on the model of the shaft crack opening and closing" 9 : 108-112, 1992

    6 P. Rubio, "Stress intensity factor and propagation of an open sickle shaped crack in a shaft under bending" 96 : 688698-, 2018

    7 K. K. Schwarz, "Some problems of rotor dynamics" 12 : 369-370, 1966

    8 B. Zhang, "Six degrees of freedom coupled dynamic response of rotor with a transverse breathing crack" 78 : 1843-1861, 2014

    9 Y. LI, "Research on methods of signature extracting and dynamical behaviors of breath cracked fault" 23 : 5-, 2004

    10 B. Yang, "Optimisation method for determination of crack tip position based on gauss-newton iterative technique" 34 : 70-, 2021

    11 A. L. Shudeifat, "On the finite element modeling of the asymmetric cracked rotor" 332 : 2795-2807, 2013

    12 Z. Zheng, "Numerical investigation on the nonlinear dynamics of a breathing cracked rotor supported by flexible bearings" 233 : 6815-6826, 2019

    13 C. Liu, "Nonlinear dynamics analysis of double-disc rotor with two breathing cracks" 32 : 136-140, 2012

    14 M. A. Al-Shudeifat, "New breathing functions for the transverse breathing crack of the cracked rotor system : Approach for critical and subcritical harmonic analysis" 330 : 526-544, 2011

    15 N. Kushwaha, "Modelling and analysis of a cracked rotor : A review of the literature and its implications" 90 : 1215-1245, 2020

    16 T. H. Patel, "Influence of crack breathing model on nonlinear dynamics of a cracked rotor" 311 : 953-972, 2008

    17 Bingxi Zhao ; Qi Yuan ; Pu Li, "Improvement of the vibration performance of rod-fastened rotor by multioptimization on the distribution of original bending and unbalance" 대한기계학회 34 (34): 83-95, 2020

    18 T. Q. Cui, "Fracture mechanism of transmission spindle system for high-speed tracked vehicle" 136 : 106174-, 2022

    19 T. Q. Cui, "Fracture mechanism and structure optimization of the main shaft of an asymmetric transmission system" 41 (41): 104-112, 2022

    20 D. Gayen, "Finite element based stability analysis of a rotor-bearing system having a functionally graded shaft with transverse breathing cracks" 157 : 403-414, 2019

    21 S. Wang, "Effects of unbalance on the nonlinear dynamics of rotors with transverse cracks" 91 (91): 2755-2772, 2018

    22 Y. Yang, "Dynamical analysis of hollow-shaft dual-rotor system with circular cracks" 1-14, 2020

    23 J. Zeng, "Dynamic characteristic analysis of cracked cantilever beams under different crack types" 74 : 80-94, 2017

    24 R. Gasch, "Dynamic behavior of a simple rotor with crosssectional crack" 76 (76): 123-128, 1976

    25 A. K. Darpe, "Coupled vibrations of a rotor with slant crack" 305 : 172-193, 2007

    26 S. A. Sekhar, "Condition monitoring of cracked rotors through transient response" 33 : 1167-1175, 1998

    27 H. Ma, "Analysis of the dynamic characteristics of a slantcracked cantilever beam" 75 : 261-279, 2016

    28 S. K. Georgantzinos, "An insight into the breathing mechanism of a crack in a rotating shaft" 318 : 279-295, 2008

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