Yongjia Wu
Virginia Tech
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Publication
Featured researches published by Yongjia Wu.
IEEE Transactions on Nuclear Science | 2016
Jie Chen; Jackson Klein; Yongjia Wu; Shaoxu Xing; Robert W. Flammang; Michael D. Heibel; Lei Zuo
Safety is the most important issue in the development of nuclear energy. This paper reports experimental studies of a thermoelectric energy harvesting system designed for integration in a nuclear power plant capable of performing in radiation rich environments and producing enough power to run wireless sensors meant to increase plant safety. Furthermore, the system, which utilizes wasted heat present in coolant system piping, has the unique ability to provide power in both normal and accidental situations, to run the sensors without the need for external power. Two energy harvesting prototypes were designed utilizing a heat pipe for heat transfer. The first can supply a maximum power of 2.25 W using two Bi2Te3 thermoelectric modules of 2.79cm (1.1) × 2.79 cm (1.1”), in a source temperature near 250 °C. A second design was put forward to extend the application in higher-temperature primary loops, in which one PbTe-Bi2Te3 hybrid TEG module of 5.6cm (2.2) × 5.6 cm (2.2) can provide a power of 3.0 W when the hot side temperature reaches 340 °C. In addition to the energy harvester, wireless communication circuits were developed along with an integrated power management circuit for wireless data transmission. A high intensity gamma radiation experiment was conducted during which each component was irradiated. A total dose of 200 kGy±10% (20M rads) was applied to the first prototype in order to approximate the expected lifetime accumulation for one implemented thermoelectric generator. Results showed that thermoelectric modules used in the prototype had no reduction in voltage output throughout irradiation. Throughout the experiment the harvester system witnessed a small voltage drop in open circuit voltage attributed to a reduction in heat pipe performance from radiation exposure. We also acquired a baseline radiation survivability level for non-hardened, non-shielded electronics of 102 Gy.
Energy | 2015
Tingzhen Ming; Yongjia Wu; Chong Peng; Yong Tao
Energy Conversion and Management | 2014
Yongjia Wu; Tingzhen Ming; Xiaohua Li; Tao Pan; Keyuan Peng; Xiaobing Luo
Energy Conversion and Management | 2016
Jie Chen; Lei Zuo; Yongjia Wu; Jackson Klein
Energies | 2015
Tingzhen Ming; Qiankun Wang; Keyuan Peng; Zhe Cai; Wei Yang; Yongjia Wu; Tingrui Gong
Renewable Energy | 2014
Wenqing Shen; Tingzhen Ming; Yan Ding; Yongjia Wu; Renaud Kiesgen de Richter
Energy | 2016
Yongjia Wu; Lei Zuo; Jie Chen; Jackson Klein
International Journal of Hydrogen Energy | 2017
Tingzhen Ming; Wei Yang; Yongjia Wu; Yitian Xiang; Xiaoming Huang; Jiangtao Cheng; Xiaohua Li; Jiyun Zhao
Energy Conversion and Management | 2017
Tingzhen Ming; Wei Yang; Xiaoming Huang; Yongjia Wu; Xiaohua Li; Jun Liu
Energy Conversion and Management | 2018
Yongjia Wu; Haifeng Zhang; Lei Zuo