RISS 학술연구정보서비스

검색

인기 검색어

    다국어 입력

    http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.

    변환된 중국어를 복사하여 사용하시면 됩니다.

    예시)
    • 中文 을 입력하시려면 zhongwen을 입력하시고 space를누르시면됩니다.
    • 北京 을 입력하시려면 beijing을 입력하시고 space를 누르시면 됩니다.
    닫기
    KCI등재

    자기공명 호환성 향상을 위한 롬버스 메커니즘 기반의 이식형 골전도 압전트랜스듀서 설계 = Design of Bone Conduction Implants Piezoelectric Transducer Based on Rhombus Mechanism for Magnetic Resonance Compatibility Improvement

    한글로보기

    https://www.riss.kr/link?id=A108736056

    • 0

      상세조회
    • 0

      다운로드
    서지정보 열기
    • 내보내기
    • 내책장담기
    • 공유하기
    • 오류접수

    부가정보

    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    This study introduces a novel piezoelectric transducer for bone conduction implants that combines piezoelectric elements with a rhombus mechanism to enhance compatibility with magnetic resonance environments. To derive the optimal design of the rhombus structure, various parameters were investigated using theoretical analysis and finite element analysis. A theoretical model of the rhombus structure was employed to identify the parameters affecting displacement amplification magnitude. Based on this, a parametric analysis was performed to calculate the displacement amplification ratio according to these parameters. The results showed that as the beam thickness and width increased, the amplification ratio reduced, while with an increased length, the amplification ratio was increased. Therefore, the optimal rhombus structure for the transducer featured beam dimensions of 0.15 mm thickness, 2 mm width, 3.5 mm length, and 5.5° inclination. This configuration amplified piezoelectric element displacement by a factor of 7.02. The amplification ratio remained constant as long as the mass applied to the rhombus frame to control mechanical resonance did not exceed the blocking force of the piezoelectric element. When a mass of 0.3 g was applied to the frame, mechanical resonance occurred at a frequency of 2 kHz, making it suitable as a transducer for bone conduction implants.
    번역하기

    This study introduces a novel piezoelectric transducer for bone conduction implants that combines piezoelectric elements with a rhombus mechanism to enhance compatibility with magnetic resonance environments. To derive the optimal design of the rhombu...

    This study introduces a novel piezoelectric transducer for bone conduction implants that combines piezoelectric elements with a rhombus mechanism to enhance compatibility with magnetic resonance environments. To derive the optimal design of the rhombus structure, various parameters were investigated using theoretical analysis and finite element analysis. A theoretical model of the rhombus structure was employed to identify the parameters affecting displacement amplification magnitude. Based on this, a parametric analysis was performed to calculate the displacement amplification ratio according to these parameters. The results showed that as the beam thickness and width increased, the amplification ratio reduced, while with an increased length, the amplification ratio was increased. Therefore, the optimal rhombus structure for the transducer featured beam dimensions of 0.15 mm thickness, 2 mm width, 3.5 mm length, and 5.5° inclination. This configuration amplified piezoelectric element displacement by a factor of 7.02. The amplification ratio remained constant as long as the mass applied to the rhombus frame to control mechanical resonance did not exceed the blocking force of the piezoelectric element. When a mass of 0.3 g was applied to the frame, mechanical resonance occurred at a frequency of 2 kHz, making it suitable as a transducer for bone conduction implants.

    더보기

    참고문헌 (Reference)

    1 정의성 ; 성기웅 ; 박영상 ; 신동호, "인공 유양돌기를 이용한 이식형 골전도 보청기용 진동체 성능 평가" 한국멀티미디어학회 25 (25): 1689-1697, 2022

    2 신동호 ; 김명남 ; 성기웅, "유한요소해석을 이용한 이식형 골전도 보청기 트랜스듀서의 자기공명 안전성과 호환성 향상 연구" 한국멀티미디어학회 26 (26): 254-263, 2023

    3 B. Balachandran, "Vibrations 3rd Edition" Cambridge University Press 2018

    4 G.M. Sprinzl, "The Bonebridge Bone Conduction Hearing Implant:Indication Criteria, Surgery and a Systematic Review of the Literature" 41 (41): 131-143, 2016

    5 S. E. Ellsperman, "Review of Bone Conduction Hearing Devices" 11 (11): 207-219, 2021

    6 S. H. Lee, "Optimization and Performance Evaluation of a Transducer for Bone Conduction Implants" 8 : 100448-100457, 2020

    7 A. Winkler, "Open Versus Closed Hearing-Aid Fittings: A Literature Review of Both Fitting Approaches" 20 : 2331216516631741-, 2016

    8 R. Weiss, "New Adhesive Bone Conduction Hearing System as a Treatment Option for Transient Hearing Loss after Middle Ear Surgery" 277 (277): 751-759, 2020

    9 K. J. F. Jansson, "MRI Induced Torque and Demagnetization in Retention Magnets for a Bone Conduction Implant" 61 (61): 1887-1893, 2014

    10 E. Talon, "Influence of Head Orientation and Implantation Site of a Novel Transcutaneous Bone Conduction Implant on MRI Metal Artifact Reduction Sequence" 279 (279): 4793-4799, 2022

    1 정의성 ; 성기웅 ; 박영상 ; 신동호, "인공 유양돌기를 이용한 이식형 골전도 보청기용 진동체 성능 평가" 한국멀티미디어학회 25 (25): 1689-1697, 2022

    2 신동호 ; 김명남 ; 성기웅, "유한요소해석을 이용한 이식형 골전도 보청기 트랜스듀서의 자기공명 안전성과 호환성 향상 연구" 한국멀티미디어학회 26 (26): 254-263, 2023

    3 B. Balachandran, "Vibrations 3rd Edition" Cambridge University Press 2018

    4 G.M. Sprinzl, "The Bonebridge Bone Conduction Hearing Implant:Indication Criteria, Surgery and a Systematic Review of the Literature" 41 (41): 131-143, 2016

    5 S. E. Ellsperman, "Review of Bone Conduction Hearing Devices" 11 (11): 207-219, 2021

    6 S. H. Lee, "Optimization and Performance Evaluation of a Transducer for Bone Conduction Implants" 8 : 100448-100457, 2020

    7 A. Winkler, "Open Versus Closed Hearing-Aid Fittings: A Literature Review of Both Fitting Approaches" 20 : 2331216516631741-, 2016

    8 R. Weiss, "New Adhesive Bone Conduction Hearing System as a Treatment Option for Transient Hearing Loss after Middle Ear Surgery" 277 (277): 751-759, 2020

    9 K. J. F. Jansson, "MRI Induced Torque and Demagnetization in Retention Magnets for a Bone Conduction Implant" 61 (61): 1887-1893, 2014

    10 E. Talon, "Influence of Head Orientation and Implantation Site of a Novel Transcutaneous Bone Conduction Implant on MRI Metal Artifact Reduction Sequence" 279 (279): 4793-4799, 2022

    11 S. K. Plontke, "Implantation of a New Active Bone Conduction Hearing Device with Optimized Geometry" 68 (68): 106-115, 2020

    12 A. Mudry, "History of the Technological Development of Air Conduction Hearing Aids" 114 (114): 418-423, 2000

    13 M.M. Florentine, "Early Surgical and Audiologic Outcomes of Active, Transcutaneous, Osseointegrated Bone-Conduction Hearing Device (Osia 2® System)Placement" 156 : 111114-, 2022

    14 D. C. P. B. M. van Barneveld, "Determining Fitting Ranges of Various Bone Conduction Hearing Aids" 43 (43): 68-75, 2018

    15 S. Wen, "Design of a New Piezoelectric Energy Harvester Based on Compound Two-stage Force Amplification Frame" 18 (18): 3989-4000, 2018

    16 H. Liu, "Design and Characteristic Analysis of Magnetostrictive Vibration Harvester with Double-Stage Rhombus Amplification Mechanism" 10 (10): 848-, 2022

    17 N. Verstraeten, "Comparison of the Audiologic Results Obtained with the Boneanchored Hearing Aid Attached to the Headband, the Testband, and to the Snap Abutment" 30 (30): 70-75, 2009

    18 S. Busch, "Comparison of Alternative Coupling Methods of the Vibrant Soundbridge Floating Mass Transducer" 21 (21): 347-355, 2017

    19 J. Besser, "Comorbidities of Hearing Loss and the Implications of Multimorbidity for Audiological Care" 369 : 3-14, 2018

    20 W. Huang, "Bidirectional Drive with Inhibited Hysteresis for Piezoelectric Actuators" 22 (22): 1546-, 2022

    21 A. Magele, "Active Transcutaneous Bone Conduction Hearing Implants: Systematic Review and Meta-Analysis" 14 (14): 0221484-, 2019

    22 B. Håkansson, "A Novel Bone Conduction Implant(BCI) : Engineering Aspects and Pre-Clinical Studies" 49 (49): 203-215, 2010

    23 M. Manrique, "A New Bone Conduction Implant:Surgical Technique and Results" 35 (35): 216-220, 2014

    24 A. Canale, "A New Bone Conduction Hearing Aid to Predict Hearing Outcome with an Active Implanted Device" 276 (276): 2165-2170, 2019

    더보기

    분석정보

    View

    상세정보조회

    0

    Usage

    원문다운로드

    0

    대출신청

    0

    복사신청

    0

    EDDS신청

    0

    동일 주제 내 활용도 TOP

    더보기

    주제

    연도별 연구동향

    연도별 활용동향

    연관논문

    연구자 네트워크맵

    공동연구자 (7)

    유사연구자 (20) 활용도상위20명

    이 자료와 함께 이용한 RISS 자료

    나만을 위한 추천자료

    해외이동버튼