中耳力学:有限元仿真研究进展
张天宇;任柳杰;李辰龙;姚文娟;谢友舟
1:复旦大学附属眼耳鼻喉科医院眼耳鼻整形外科
2:复旦大学附属眼耳鼻喉科医院耳鼻喉科研究院
3:国家卫生健康委员会听觉医学重点实验室(复旦大学)
4:上海大学力学与工程科学学院
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[1]张天宇,王舒琪,任柳杰.中耳力学研究的新进展与展望[J].听力学及言语疾病杂志,2022,30(2):231-234.
[2]Bowers P,Rosowski JJ.A lumped-element model of the chinchilla middle ear[J].The Journal of the Acoustical Society of America,2019,145(4):1975-1992.
[3]Luo H,Wang F,Cheng C,et al.Mapping the Young's modulus distribution of the human tympanic membrane by microindentation[J].Hearing Research,2019,378:75-91.
[4]朱翊洲,陈力奋,张天宇,等.中耳有限元分析中内耳淋巴液作用的等效模型研究[J].振动与冲击,2010,29(7):79-82,125.
[5]Bevis N,Sackmann B,Effertz T,et al.The impact of tympanic membrane perforations on middle ear transfer function[J].European Archives of Oto-Rhino-Laryngology,2022,229(7):3399-3406.
[6]Muyshondt PG,Dirckx JJ.How flexibility and eardrum cone shape affect sound conduction in single-ossicle ears:a dynamic model study of the chicken middle ear[J].Biomechanics and Modeling in Mechanobiology,2020,19(1):233-249.
[7]Livens P,Muyshondt PG,Dirckx JJ.Sound localization in the lizard using internally coupled ears:a finite-element approach[J].Hearing Research,2019,378:23-32.
[8]Golabbakhsh M,Wang X,MacDougall D,et al.Finite-element modelling based on optical coherence tomography and corresponding x-ray microCT data for three human middle ears[J].Journal of the Association for Research in Otolaryngology,2023,24(3):339-363.
[9]Han H,Wang L,Zhu Y,et al.Finite element analysis of conductive hearing loss caused by fixation and detachment of ligament and tendon in the middle ear[J].Computer Methods and Programs in Biomedicine,2023,236(1):107540.
[10]Yu YC,Wang TC,Shih TC.Effects of age-related tympanic-membrane material properties on sound transmission in the middle ear in a three-dimensional finite-element model[J].Computer Methods and Programs in Biomedicine,2022,215:106619.
[11]Shi H,Xiang S,Wang L,et al.Characterization of middle ear soft tissue damping and its role in sound transmission[J].Biomechanics and Modeling in Mechanobiology,2023,22(3):1003-1018.
[12]Zhang J,Jiao C,Zou D,et al.Assigning viscoelastic and hyperelastic properties to the middle-ear soft tissues for sound transmission[J].Biomechanics and Modeling in Mechanobiology,2020,19(3):957-970.
[13]Muyshondt PG,Dirckx JJ.Structural stiffening in the human middle ear due to static pressure:finite-element analysis of combined static and dynamic middle-ear behavior[J].Hearing Research,2021,400:108116.
[14]Brown MA,Ji XD,Gan RZ.3D Finite element modeling of blast wave transmission from the external ear to cochlea[J].Annals of Biomedical Engineering,2021,49(2):757-768.
[15]Brown MA,Bradshaw JJ,Gan RZ.Three-dimensional finite element modeling of blast wave transmission from the external ear to a spiral cochlea[J].Journal of Biomechanical Engineering,2022,144(1):014503.
[16]Bradshaw JJ,Brown MA,Jiang S,et al.3D finite element model of human ear with 3-Chamber spiral cochlea for blast wave transmission from the ear canal to cochlea[J].Annals of Biomedical Engineering,2023,51(5):1106-1118.
[17]Zhou K,Liu H,Yang J,et al.Influence of middle ear disorder in round-window stimulation using a finite element human ear model[J].Acta of Bioengineering and Biomechanics,2019,21(1):3-12.
[18]Liu H,Wang W,Zhao Y,et al.Effect of stimulation sites on the performance of electromagnetic middle ear implant:a finite element analysis[J].Computers in Biology and Medicine,2020,124:103918.
[19]Hirabayashi M,Kurihara S,Ito R,et al.Combined analysis of finite element model and audiometry provides insights into the pathogenesis of conductive hearing loss[J].Frontiers in Bioengineering and Biotechnology,2022,10:967475.
[20]Ren W,Yan H,Yu Y,et al.Study on the prosthesis structural design and vibration characteristics based on the conduction effect of human middle ear[J].Applied Bionics and Biomechanics,2020,2020:4250257.
[21]Seivur S,Rathnakara SH,Ananthasuresh GK.Design of a S-shape middle-ear ossicular replacement prosthesis and its comparison with present-day prostheses using finite element modelling[J].Sādhanā,2022,47(4):235.
[22]Shende SB,Deoghare AB,Pandey KM.Characterization of harmonic response of human middle ear using finite element approach[J].Journal of Computational Science,2018,29:94-98.
[23]Lim J,Goo W,Kang DW,et al.Effect of closing material on hearing rehabilitation in stapedectomy and stapedotomy:a finite element analysis[J].Frontiers in Neuroscience,2023,17:1064890.