Charging Current Characteristics and Effect of Casing Material in Wireless Recharging of Active Implantable Medical Devices Using Transcutaneous Energy Transfer System

被引:0
作者
Nair, Sarath S. [1 ]
Muniyandi, Manivannan [2 ]
Nagesh, D. S. [1 ]
Muraleedharan, C., V [1 ]
Joseph, Roy [1 ]
Harikrishnan, S. [3 ]
机构
[1] SCTIMST, Dept Med Devices Engn, Biomed Technol Wing, Thiruvananthapuram, India
[2] Indian Inst Technol, Dept Appl Mech, Madras, India
[3] SCTIMST, Dept Cardiol, Thiruvananthapuram, India
来源
PROGRESS IN ELECTROMAGNETICS RESEARCH M | 2023年 / 122卷
关键词
ARTIFICIAL-HEART; TRANSMISSION; BATTERIES;
D O I
10.2528/PIERM23082001
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
Batteries inside an active implantable medical device (AIMD) need to be replaced every few years. However, rechargeable batteries can enhance the life of such devices to a large extent. Transcutaneous Energy Transfer System (TETS) is a promising method for recharging these batteries inside medical devices. These devices are generally made of metal casings to avoid fluid ingress and provide better mechanical strength. However, the metal cases when being present in the path of electromagnetic energy induces eddy current thus producing excessive temperature rise due to thermal loss. Thus, the selection of an interface casing material plays a significant role in the performance of the wireless recharging. In this paper, the performance of a transcutaneous energy transfer system for recharging an AIMD with different axial gaps and casing materials is reported. The effect of these variations on the output voltage, recharge current, and efficiency of operation was quantified. It has been found that, with TETS the charging current of 0.3 A to 0.5 A can be obtained to charge the implanted battery within 180 minutes. It was found that the induced voltage in the secondary coil is substantially reduced with the presence of titanium casing compared to epoxy encapsulation. Thermal studies were performed with titanium casing material of various thicknesses. The casing temperature rose to above 70 degrees C within the first 10 minutes for 0.5 mm thickness and within 50 minutes in the case of 0.25 mm. With epoxy encapsulation, the casing temperature rose to only 30 degrees C. The charging voltage of 5 V and charging current of more than 0.3 A were obtained with epoxy encapsulation. A polymeric material casing or epoxy encapsulation is the best choice in the interface region to get a high recharging current in the case of wireless recharging of implantable medical devices. With the proposed design modification, wireless energy transfer and recharging implanted batteries shall be done in a more energy-efficient manner with less thermal damage to nearby tissues.
引用
收藏
页码:137 / 144
页数:8
相关论文
共 35 条
  • [31] Design of disposable film-type capacitive wireless charging for implantable medical devices
    Tamura, Masaya
    Murai, Kousuke
    Matsumoto, Marimo
    [J]. 2021 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM (IMS), 2021, : 58 - 61
  • [32] Efficient Power-Transfer Capability Analysis of the TET System Using the Equivalent Small Parameter Method
    Wu, Yanzhen
    Hu, Aiguo Patrick
    Budgett, David
    Malpas, Simon C.
    Dissanayake, Thushari
    [J]. IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2011, 5 (03) : 272 - 282
  • [33] Power sources and electrical recharging strategies for implantable medical devices
    Wei X.
    Liu J.
    [J]. Frontiers of Energy and Power Engineering in China, 2008, 2 (1): : 1 - 13
  • [34] Wireless Power Transmission for Implantable Medical Devices Using Focused Ultrasound and a Miniaturized 1-3 Piezoelectric Composite Receiving Transducer
    Yi, Xiyuan
    Zheng, Weicheng
    Cao, Hua
    Wang, Shenggeng
    Feng, Xiaoli
    Yang, Zengtao
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2021, 68 (12) : 3592 - 3598
  • [35] Wireless Power Transfer for Implanted Medical Application: A Review
    Zhou, Yujing
    Liu, Chunhua
    Huang, Yongcan
    [J]. ENERGIES, 2020, 13 (11)