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Modeling sound transmission of human middle ear and its clinical applications using finite element analysis

机译:用有限元分析模拟人中耳的声音传播及其临床应用

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We have developed a new finite element (FE) model of human right ear, including the accurate geometry of middle ear ossicles, external ear canal, tympanic cavity, and mastoid cavity. The FE model would be suitable to study the dynamic behaviors of pathological middle ear conditions, including changes of stapedial ligament stiffness, tensor tympani ligament (TTL), and tympanic membrane (TM) stiffness and thickness. Increasing stiffness of stapedial ligament has substantial effect on stapes footplate movement, especially at low frequencies, but less effect on umbo movement. Softer TTL will result in increasing umbo and stapes footplate displacement, especially at low frequencies (f<1000Hz). When the TTL was detached, the vibration amplitude of umbo increased by 6dB at 600Hz and two peaks (300 and 600Hz) were found in the vibration amplitude of stapes footplate. Increasing the stiffness of tensor tympani resulted in a slightly decreased umbo amplitude at very low frequencies (f<500Hz) and significantly decreased displacement up to 12dB at middle frequencies (1000Hz1500Hz. As?(TM) thickness was increased, the umbo displacement was reduced, especially at very low frequencies (f<600Hz). Otherwise, the stapes displacement was reduced at all frequencies.
机译:我们已经开发了一种新的人类右耳有限元(FE)模型,包括中耳小骨,外耳道,鼓膜腔和乳突腔的精确几何形状。 FE模型将适合研究病理性中耳疾病的动态行为,包括骨韧带刚度,张量鼓膜韧带(TTL)和鼓膜(TM)刚度和厚度的变化。骨韧带刚度的增加对骨足板的运动有重要影响,尤其是在低频时,但对骨运动的影响较小。较弱的TTL将导致增加的鼓音和骨踏板的位移,尤其是在低频(f <1000Hz)时。 TTL断开后,在600Hz时,超音波的振动幅度增加了6dB,并且在sta骨踏板的振动幅度中发现了两个峰值(300和600Hz)。张量鼓膜的刚度增加导致在非常低的频率(f <500Hz)处的超音波振幅略有降低,并且在中频(1000Hz 1500Hz频率下增加的位移。随着ΔTM厚度的增加,特别是在非常低的频率(f <600Hz)下,本振位移减小了。否则,sta骨位移在所有频率下都将减小。

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