TY - JOUR
T1 - A Preliminary Numerical Study on the Interactions Between Nonlinear Ultrasonic Guided Waves and a Single Crack in Bone Materials With Motivation to the Evaluation of Micro Cracks in Long Bones
AU - XIE, Yujuan
AU - CHEN, Shengjiang
AU - WAN, Xiang
AU - TSE, Peter W.
PY - 2020
Y1 - 2020
N2 - Fatigue damage in a bone occurs in the form of micro-scale cracks with the lengths as small as to a few microns. The evaluation of cracks in bones has recently been a hot topic. However, the current most frequently used method is based on traditional linear ultrasound, which is just sensitive to gross damages rather than micro cracks. Nonlinear ultrasonic technique, which is capable of detecting micro-scale damages, has been widely used in metallic structures. However, few study has been directed to employing second harmonic generation of nonlinear ultrasound to evaluate fatigue damages in bones. In this study, a preliminary study is conducted on the interactions between nonlinear guided waves and a single crack in bone materials motivating to the evaluation of micro cracks in long bones. Considering the symmetry, asymmetry, location, orientation, length and width of the crack in bone materials, their influences on second harmonic responses are discussed in detail. Our results are presented as follows. Firstly, not only the primary S0 but also A0 mode Lamb wave generates the second harmonic component of S0 mode after interacting with a symmetric crack. Secondly, along the thickness direction, the primary S0 mode Lamb wave possesses almost the same detection sensitivity, no matter where the crack is located. Thirdly, the amplitudes of S0 mode second harmonic component are increased slightly when the oblique angle of the crack is set from 0° to 45°, while the amplitudes increase dramatically when the oblique angle changes to 67.5° and 90°. Lastly, the second harmonic amplitude and the relative acoustical nonlinear parameter are increased with the length of the crack, while they possess a monotonically decreasing relationship with the width of the crack. Our preliminary studies will provide priori knowledge when using nonlinear ultrasonic guided waves for detecting micro-scale cracks in long bones in future clinical inspections.
AB - Fatigue damage in a bone occurs in the form of micro-scale cracks with the lengths as small as to a few microns. The evaluation of cracks in bones has recently been a hot topic. However, the current most frequently used method is based on traditional linear ultrasound, which is just sensitive to gross damages rather than micro cracks. Nonlinear ultrasonic technique, which is capable of detecting micro-scale damages, has been widely used in metallic structures. However, few study has been directed to employing second harmonic generation of nonlinear ultrasound to evaluate fatigue damages in bones. In this study, a preliminary study is conducted on the interactions between nonlinear guided waves and a single crack in bone materials motivating to the evaluation of micro cracks in long bones. Considering the symmetry, asymmetry, location, orientation, length and width of the crack in bone materials, their influences on second harmonic responses are discussed in detail. Our results are presented as follows. Firstly, not only the primary S0 but also A0 mode Lamb wave generates the second harmonic component of S0 mode after interacting with a symmetric crack. Secondly, along the thickness direction, the primary S0 mode Lamb wave possesses almost the same detection sensitivity, no matter where the crack is located. Thirdly, the amplitudes of S0 mode second harmonic component are increased slightly when the oblique angle of the crack is set from 0° to 45°, while the amplitudes increase dramatically when the oblique angle changes to 67.5° and 90°. Lastly, the second harmonic amplitude and the relative acoustical nonlinear parameter are increased with the length of the crack, while they possess a monotonically decreasing relationship with the width of the crack. Our preliminary studies will provide priori knowledge when using nonlinear ultrasonic guided waves for detecting micro-scale cracks in long bones in future clinical inspections.
KW - Bones
KW - Acoustics
KW - Harmonic analysis
KW - Frequency conversion
KW - Ultrasonic imaging
KW - Damping
KW - Dispersion
KW - Nonlinear ultrasonic Lamb waves
KW - bone structures
KW - the detection of cracks in bones
KW - second harmonic component
KW - the relative acoustical nonlinear parameter
KW - ultrasonic signal processing
KW - EMPIRICAL MODE DECOMPOSITION
KW - CORTICAL BONE
KW - LAMB WAVES
KW - QUANTITATIVE ULTRASOUND
KW - HARMONIC-GENERATION
KW - PROPAGATION
KW - DAMAGE
KW - TRANSMISSION
KW - ELEMENT
KW - SIMULATION
KW - Bones
KW - Acoustics
KW - Harmonic analysis
KW - Frequency conversion
KW - Ultrasonic imaging
KW - Damping
KW - Dispersion
KW - Nonlinear ultrasonic Lamb waves
KW - bone structures
KW - the detection of cracks in bones
KW - second harmonic component
KW - the relative acoustical nonlinear parameter
KW - ultrasonic signal processing
KW - EMPIRICAL MODE DECOMPOSITION
KW - CORTICAL BONE
KW - LAMB WAVES
KW - QUANTITATIVE ULTRASOUND
KW - HARMONIC-GENERATION
KW - PROPAGATION
KW - DAMAGE
KW - TRANSMISSION
KW - ELEMENT
KW - SIMULATION
KW - Bones
KW - Acoustics
KW - Harmonic analysis
KW - Frequency conversion
KW - Ultrasonic imaging
KW - Damping
KW - Dispersion
KW - Nonlinear ultrasonic Lamb waves
KW - bone structures
KW - the detection of cracks in bones
KW - second harmonic component
KW - the relative acoustical nonlinear parameter
KW - ultrasonic signal processing
KW - EMPIRICAL MODE DECOMPOSITION
KW - CORTICAL BONE
KW - LAMB WAVES
KW - QUANTITATIVE ULTRASOUND
KW - HARMONIC-GENERATION
KW - PROPAGATION
KW - DAMAGE
KW - TRANSMISSION
KW - ELEMENT
KW - SIMULATION
UR - https://www.scopus.com/pages/publications/85102750646
UR - http://gateway.isiknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcAuth=LinksAMR&SrcApp=PARTNER_APP&DestLinkType=FullRecord&DestApp=WOS&KeyUT=000572890600001
UR - https://www.scopus.com/record/pubmetrics.uri?eid=2-s2.0-85102750646&origin=recordpage
U2 - 10.1109/ACCESS.2020.3022925
DO - 10.1109/ACCESS.2020.3022925
M3 - RGC 21 - Publication in refereed journal
SN - 2169-3536
VL - 8
SP - 169169
EP - 169182
JO - IEEE Access
JF - IEEE Access
ER -