DocumentCode
1363988
Title
A Micropower Miniature Piezoelectric Actuator for Implantable Middle Ear Hearing Device
Author
Wang, Zhigang ; Mills, Robert ; Luo, Hongyan ; Zheng, Xiaolin ; Hou, Wensheng ; Wang, Lijun ; Brown, Stuart I. ; Cuschieri, Alfred
Author_Institution
Inst. for Med. Sci. & Technol. (IMSaT), Univ. of Dundee, Dundee, UK
Volume
58
Issue
2
fYear
2011
Firstpage
452
Lastpage
458
Abstract
This paper describes the design and development of a small actuator using a miniature piezoelectric stack and a flextensional mechanical amplification structure for an implantable middle ear hearing device (IMEHD). A finite-element method was used in the actuator design. Actuator vibration displacement was measured using a laser vibrometer. Preliminary evaluation of the actuator for an IMEHD was conducted using a temporal bone model. Initial results from one temporal bone study indicated that the actuator was small enough to be implanted within the middle ear cavity, and sufficient stapes displacement can be generated for patients with mild to moderate hearing losses, especially at higher frequency range, by the actuator suspended onto the stapes. There was an insignificant mass-loading effect on normal sound transmission (<;3 dB) when the actuator was attached to the stapes and switched off. Improved vibration performance is predicted by more firm attachment. The actuator power consumption and its generated equivalent sound pressure level are also discussed. In conclusion, the actuator has advantages of small size, lightweight, and micropower consumption for potential use as IMHEDs.
Keywords
biomedical equipment; finite element analysis; hearing; hearing aids; laser applications in medicine; low-power electronics; medical disorders; piezoelectric actuators; actuator power consumption; actuator vibration displacement; finite-element method; flextensional mechanical amplification structure; implantable middle ear hearing device; laser vibrometer; micropower consumption; micropower miniature piezoelectric actuator; middle ear cavity; miniature piezoelectric stack; moderate hearing loss; normal sound transmission; small actuator; sound pressure level; temporal bone model; vibration performance; Actuators; Auditory system; Bones; Displacement measurement; Ear; Finite element methods; Vibrations; Actuator; finite-element method (FEM) modeling; hearing; implants; measurement; Electricity; Finite Element Analysis; Hearing Aids; Humans; Ossicular Prosthesis; Prosthesis Design; Vibration;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2010.2090150
Filename
5613157
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