An energy self-circulation system based on the wearable thermoelectric harvester for ART driver monitoring

被引:22
作者
Chen, Jiangfan [1 ]
Fang, Zheng [2 ]
Azam, Ali [2 ]
Wu, Xiaoping [2 ]
Zhang, Zutao [2 ]
Lu, Linhai [3 ]
Li, Dongyang [4 ]
机构
[1] Southwest Jiaotong Univ, Sch Informat Sci & Tech, Chengdu 610031, Peoples R China
[2] Southwest Jiaotong Univ, Sch Mech Engn, Chengdu 610031, Peoples R China
[3] Jinan Rail Transit Grp Co Ltd, Jinan 250014, Peoples R China
[4] China Railway Wuhan Electrificat Bur Grp Shanghai, Shanghai 201799, Peoples R China
关键词
Energy harvester; Self -circulation system; Wearable thermoelectric; Copper foam heatsink; Driver monitoring; FOAM HEAT SINKS; METAL FOAM; BODY HEAT; GENERATOR; DISTRACTION; PERFORMANCE; STORAGE; IMPACT; DEVICE;
D O I
10.1016/j.energy.2022.125472
中图分类号
O414.1 [热力学];
学科分类号
摘要
With the popularity and application of Autonomous-rail rapid transit in China, the status of drivers has also attracted more attention to reducing the number of accidents on complex urban roads. The previously used sensors to monitor driver status require external power, limiting the further development and application of the sensor. This paper proposes a sensor energy self-circulation system based on a copper foam heatsink using the wearable thermoelectric harvester. The proposed method consists of a thermoelectric harvester, boost circuit, and sensor module. The thermoelectric harvester module uses the wearable thermoelectric harvester to convert the waste heat of the human body into electric energy, the copper foam heatsink is used to enhance the heat dissipation capacity, and the PDMS film is used to reduce the heat loss. The DC-DC boost circuit module uses the LTC3108 to pull up the voltage to the starting voltage of the sensor and realizes power management. The sensor module uses the ultra-low-power sensor ADLX362 to detect changes in acceleration values. The experimental results show that the maximum output power of the system to the human body at a wind speed of 1.5 m/s is 145.7 mu W, which can realize the self-powered applications of the proposed sensor. The result proves the feasi-bility of a sensor energy self-circulation system using the wearable thermoelectric harvester based on a copper foam heatsink to monitor the status of drivers.
引用
收藏
页数:13
相关论文
共 58 条
[21]   Piezoelectric device operating as sensor and harvester to drive switching circuit in LED shoes [J].
Jeong, Se Yeong ;
Hwang, Won Seop ;
Cho, Jae Yong ;
Jeong, Jae Chul ;
Ahn, Jung Hwan ;
Kim, Kyung Bum ;
Hong, Seong Do ;
Song, Gyeong Ju ;
Jeon, Deok Hwan ;
Sung, Tae Hyun .
ENERGY, 2019, 177 :87-93
[22]   Powerful curved piezoelectric generator for wearable applications [J].
Jung, Woo-Suk ;
Lee, Min-Jae ;
Kang, Min-Gyu ;
Moon, Hi Gyu ;
Yoon, Seok-Jin ;
Baek, Seung-Hyub ;
Kang, Chong-Yun .
NANO ENERGY, 2015, 13 :174-181
[23]   Highly efficient and bending durable perovskite solar cells: toward a wearable power source [J].
Kim, Byeong Jo ;
Kim, Dong Hoe ;
Lee, Yoo-Yong ;
Shin, Hee-Won ;
Han, Gill Sang ;
Hong, Jung Sug ;
Mahmood, Khalid ;
Ahn, Tae Kyu ;
Joo, Young-Chang ;
Hong, Kug Sun ;
Park, Nam-Gyu ;
Lee, Sangwook ;
Jung, Hyun Suk .
ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (03) :916-921
[24]   Noninvasive Alcohol Monitoring Using a Wearable Tattoo-Based Iontophoretic-Biosensing System [J].
Kim, Jayoung ;
Jeerapan, Itthipon ;
Imani, Somayeh ;
Cho, Thomas N. ;
Bandodkar, Amay ;
Cinti, Stefano ;
Mercier, Patrick P. ;
Wang, Joseph .
ACS SENSORS, 2016, 1 (08) :1011-1019
[25]   High-performance flexible Bi2Te3 films based wearable thermoelectric generator for energy harvesting [J].
Kong, Deyue ;
Zhu, Wei ;
Guo, Zhanpeng ;
Deng, Yuan .
ENERGY, 2019, 175 :292-299
[26]   A hybrid piezo-dielectric wind energy harvester for high-performance vortex-induced vibration energy harvesting [J].
Lai, Zhihui ;
Wang, Shuaibo ;
Zhu, Likuan ;
Zhang, Guoqing ;
Wang, Junlei ;
Yang, Kai ;
Yurchenko, Daniil .
MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 2021, 150
[27]   Flexible perovskite solar cell-driven photo-rechargeable lithium-ion capacitor for self-powered wearable strain sensors [J].
Li, Chao ;
Cong, Shan ;
Tian, Zhengnan ;
Song, Yingze ;
Yu, Lianghao ;
Lu, Chen ;
Shao, Yuanlong ;
Li, Jie ;
Zou, Guifu ;
Rummeli, Mark H. ;
Dou, Shixue ;
Sun, Jingyu ;
Liu, Zhongfan .
NANO ENERGY, 2019, 60 :247-256
[28]   Experimental investigation on the heat transfer enhancement in a novel latent heat thermal storage equipment [J].
Liu, Yang ;
Duan, Jianguo ;
He, Xiufen ;
Wang, Yaxiong .
APPLIED THERMAL ENGINEERING, 2018, 142 :361-370
[29]   Causation Analysis of Hazardous Material Road Transportation Accidents Based on the Ordered Logit Regression Model [J].
Ma, Changxi ;
Zhou, Jibiao ;
Yang, Dong .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL RESEARCH AND PUBLIC HEALTH, 2020, 17 (04)
[30]   Safety of Public Transportation Occupational Drivers Risk Perception, Attitudes, and Driving Behavior [J].
Ma, Ming ;
Yan, Xinping ;
Huang, Helai ;
Abdel-Aty, Mohamed .
TRANSPORTATION RESEARCH RECORD, 2010, (2145) :72-79