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电动汽车驱动电机对佩戴心脏起搏器乘客的电磁辐射暴露水平。

Electromagnetic Exposure Levels of Electric Vehicle Drive Motors to Passenger Wearing Cardiac Pacemakers.

机构信息

Key Laboratory of Opto-Electronic Technology and Intelligent Control of the Ministry of Education, Lanzhou Jiaotong University, Lanzhou 730070, China.

出版信息

Sensors (Basel). 2024 Jul 6;24(13):4395. doi: 10.3390/s24134395.

Abstract

The number of individuals wearing cardiac pacemakers is gradually increasing as the population ages and cardiovascular disease becomes highly prevalent. The safety of pacemaker wearers is of significant concern because they must ensure that the device properly functions in various life scenarios. Electric vehicles have become one of the most frequently used travel tools due to the gradual promotion of low-carbon travel policies in various countries. The electromagnetic environment inside the vehicle is highly complex during driving due to the integration of numerous high-power electrical devices inside the vehicle. In order to ensure the safety of this group, the paper takes passengers wearing cardiac pacemakers as the object and the electric vehicle drive motors as the exposure source. Calculation models, with the vehicle body, human body, heart, and cardiac pacemaker, are built. The induced electric field, specific absorption rate, and temperature changes in the passenger's body and heart are calculated by using the finite element method. Results show that the maximum value of the induced electric field of the passenger occurs at the ankle of the body, which is 60.3 mV/m. The value of the induced electric field of the heart is greater than that of the human trunk, and the maximum value (283 mV/m) is around the pacemaker electrode. The maximum specific absorption rate of the human body is 1.08 × 10 W/kg, and that of heart positioned near the electrode is 2.76 × 10 W/kg. In addition, the maximum temperature increases of the human torso, heart, and pacemaker are 0.16 × 10 °C, 0.4 × 10 °C, and 0.44 × 10 °C within 30 min, respectively. Accordingly, the induced electric field, specific absorption rate, and temperature rise in the human body and heart are less than the safety limits specified in the ICNIRP. The electric field intensity at the pacemaker electrode and the temperature rise of the pacemaker meet the requirements of the medical device standards of ICNIRP and ISO 14708-2. Consequently, the electromagnetic radiation from the motor operation in the electric vehicle does not pose a safety risk to the health of passengers wearing cardiac pacemakers in this paper. This study also contributes to advancing research on the electromagnetic environment of electric vehicles and provides guidance for ensuring the safe travel of individuals wearing cardiac pacemakers.

摘要

随着人口老龄化和心血管疾病的高发,佩戴心脏起搏器的人数逐渐增加。起搏器佩戴者的安全是一个非常重要的问题,因为他们必须确保设备在各种生活场景下正常运行。由于各国逐渐推行低碳出行政策,电动汽车已成为最常用的出行工具之一。在驾驶过程中,由于车内集成了众多高功率电气设备,车内的电磁环境非常复杂。为了确保这一群体的安全,本文以佩戴心脏起搏器的乘客为对象,以电动汽车驱动电机为辐射源。建立了包含车身、人体、心脏和心脏起搏器的计算模型。采用有限元法计算乘客体内的感应电场、比吸收率和体温变化。结果表明,乘客体内感应电场最大值出现在人体脚踝处,为 60.3 mV/m。心脏处的感应电场值大于人体躯干处的感应电场值,最大值(283 mV/m)位于起搏器电极附近。人体最大比吸收率为 1.08×10 W/kg,靠近电极处心脏的比吸收率最大为 2.76×10 W/kg。此外,在 30 min 内,人体躯干、心脏和起搏器的最大温升分别为 0.16×10°C、0.4×10°C和 0.44×10°C。因此,人体和心脏内的感应电场、比吸收率和温升均低于 ICNIRP 规定的安全限值。起搏器电极处的电场强度和起搏器的温升均满足 ICNIRP 和 ISO 14708-2 医疗器械标准的要求。因此,电动汽车电机运行产生的电磁辐射不会对佩戴心脏起搏器的乘客健康造成安全风险。本研究也为推进电动汽车电磁环境研究提供了参考,为保障佩戴心脏起搏器人群的安全出行提供了指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0493/11244417/917a62aad238/sensors-24-04395-g001.jpg

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