An Investigation on Conductive Intracardiac Communication Dynamic Channel Gain During the Cardiac Cycle for Leadless Pacemakers

被引:4
|
作者
Chen, Liting [1 ]
Liu, Yiming [1 ]
Chen, Zhizhang [1 ]
Pun, Sio Hang [2 ]
Vai, Mang, I [2 ]
Gao, Yueming [1 ]
机构
[1] Fuzhou Univ, Coll Phys & Informat Engn, Fuzhou 350108, Peoples R China
[2] Univ Macau, State Key Lab Analog & Mixed Signal VLSI, Taipa 999078, Macao, Peoples R China
基金
中国国家自然科学基金;
关键词
Blood volume; cardiac cycle; galvanic coupling conductive intracardiac communication; pacemakers; DIASTOLIC FUNCTION; COMPLICATIONS; AREA; THERAPY;
D O I
10.1109/JERM.2022.3221317
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In galvanic coupling conductive intracardiac communication(GCCIC) of the leadless pacemakers, the electrical signal transmitted directly through the myocardium and blood is inevitably affected by the cardiac cycle. Established studies focused more on the effect of the myocardium. However, our preliminary in-vitro experiments suggested that blood volume variations also significantly impacted signal transmission. In this article, we analyzed the blood volume variations during the cardiac cycle and designed an in-vitro experimental platform containing a simulated heart beating system and an automatic channel characteristic acquisition system, which controlled two peristaltic pumps to realize the periodic blood volume variations and the continuous acquisition of channel gain. Through the in-vitro porcine heart experiment, the effect of frequency and blood volume variations during the cardiac cycle on two channel gains was analyzed. Considering the impact of high-frequency signal leakage, the channel gain variations of the low frequency are the main concern. The results showed that the channel gain was positively correlated with frequency; it changed periodically with blood volume variations in the cardiac cycle, and the trends were different due to the different signal paths of the two channels. For the Right Ventricle-Right Atrium channel, the gain varied from $-67$ dB to $-53$ dB and is inversely correlated with blood volume. The gain fluctuation range was smaller for the Right Ventricle-Left Ventricle channel, about 2 dB. This study shows that the gain of intracardiac communication channels, especially the RV-RA channel, is influenced by blood volume variations during the cardiac cycle.
引用
收藏
页码:82 / 89
页数:8
相关论文
共 41 条
  • [1] Dynamic Equivalent Circuit Models for Intracardiac Communication in Leadless Pacemakers
    Li, Dongming
    Wang, Jiamei
    Mou, Pedro Antonio
    Yin, Yadong
    Pun, Sio Hang
    Mak, Peng Un
    Li, Hungchun
    Gao, Yueming
    Vai, Mang, I
    [J]. 9TH EUROPEAN MEDICAL AND BIOLOGICAL ENGINEERING CONFERENCE, VOL 1, EMBEC 2024, 2024, 112 : 336 - 345
  • [2] An Investigation on the Influence of Blood Volume in the Cardiac Cycle on Channel Gain of Intracardiac Communication Channels
    Liu, Yiming
    Gao, Yueming
    Chen, Liting
    Chen, Zhizhang
    Pun, Sio Hang
    Vai, Mang, I
    [J]. 2022 IEEE MTT-S INTERNATIONAL MICROWAVE BIOMEDICAL CONFERENCE (IMBIOC), 2022, : 144 - 146
  • [3] Human Body Communication Channel Characterization for Leadless Cardiac Pacemakers
    Maldari, Mirko
    Amara, Karima
    Rattalino, Ismael
    Jabbour, Chadi
    Desgreys, Patricia
    [J]. 2018 25TH IEEE INTERNATIONAL CONFERENCE ON ELECTRONICS, CIRCUITS AND SYSTEMS (ICECS), 2018, : 185 - 188
  • [4] Conductive Backscatter Communication for Dual-Chamber Leadless Pacemakers
    Noormohammadi, Reza
    Khaleghi, Ali
    Bergsland, Jacob
    Balasingham, Ilangko
    [J]. IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2022, 70 (04) : 2442 - 2450
  • [5] Conductive Impulse for Wireless Communication in Dual-Chamber Leadless Pacemakers
    Khaleghi, Ali
    Noormohammadi, Reza
    Balasingham, Ilangko
    [J]. IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 2021, 69 (01) : 443 - 451
  • [6] Fundamental Characterization of Conductive Intracardiac Communication for Leadless Multisite Pacemaker Systems
    Bereuter, Lukas
    Kuenzle, Timon
    Niederhauser, Thomas
    Kucera, Martin
    Obrist, Dominik
    Reichlin, Tobias
    Tanner, Hildegard
    Haeberlin, Andreas
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2019, 13 (01) : 237 - 247
  • [7] RF Channel Modeling for Implant-to-Implant Communication and Implant to Subcutaneous Implant Communication for Future Leadless Cardiac Pacemakers
    Bose, Pritam
    Khaleghi, Ali
    Albatat, Mohammad
    Bergsland, Jacob
    Balasingham, Ilangko
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2018, 65 (12) : 2798 - 2807
  • [8] A Time-Varying Equivalent Circuit Modeling and Measuring Approach for Intracardiac Communication in Leadless Pacemakers
    Wei, Ziliang
    Wang, Han
    Li, Dongming
    Vai, Mang, I
    Pun, Sio Hang
    Yang, Jiejie
    Du, Min
    Gao, Yueming
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2024, 18 (04) : 872 - 884
  • [9] Linear Channel Characteristics Analysis for Conductive Intracardiac Communication
    Wu, Chengfeng
    Liu, Tao
    Gao, Yueming
    Wei, Ziliang
    [J]. 2022 IEEE 10TH ASIA-PACIFIC CONFERENCE ON ANTENNAS AND PROPAGATION, APCAP, 2022,
  • [10] Intracardiac Turbines Suitable for Catheter-Based Implantation-An Approach to Power Battery and Leadless Cardiac Pacemakers?
    Haeberlin, Andreas
    Rosch, Yannick
    Tholl, Maximilien Victor
    Gugler, Yvan
    Okle, Jan
    Heinisch, Paul Philipp
    Reichlin, Tobias
    Burger, Juergen
    Zurbuchen, Adrian
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2020, 67 (04) : 1159 - 1166