Design to Maximize Performance of a Thermoelectric Power Generator With a Dynamic Thermal Power Source

被引:40
|
作者
Crane, Douglas T. [1 ]
Bell, Lon E. [1 ]
机构
[1] BSST LLC, Irwindale, CA 91706 USA
关键词
automobiles; design engineering; heat recovery; hybrid electric vehicles; thermoelectric conversion; waste recovery;
D O I
10.1115/1.3066392
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
It is a difficult technical challenge to design thermoelectric power generation systems that work optimally over a broad dynamic range of thermal input power. Conventional systems are designed to work optimally for a nominal operating condition, while maintaining the ability to operate at off nominal and extreme operating conditions without damage to the system. For systems that operate in a narrow range of thermal power conditions, thermoelectric waste heat recovery system design is simplified. However, for applications that do have a wide range of operating conditions, designs typically exhibit overall average efficiencies that are reduced by approximately 20% or more compared with that achievable for the thermoelectric material operating at peak efficiency. Both cars and trucks consume significant fuel at low mass flow rates. Since the ultimate goal of waste heat recovery systems is to minimize fuel consumption, it is critical that the recovery system be designed to operate near peak efficiency over the range of mass flow rates that make a significant contribution to overall power recovery. Such performance capability is especially important in city driving, and in hybrid vehicle applications. This paper describes a design concept that maximizes the performance for thermoelectric power generation systems in which the thermal power to be recovered is from a fluid stream (e.g., exhaust gas) subject to varying temperatures and a broad range of exhaust flow rates. The device is constructed in several parts, with each part optimized for a specific range of operating conditions. The thermoelectric system characteristics, inlet mass flow rates and fluid temperatures, and load and internal electrical resistances are monitored and generator operation is controlled to maximize performance. With this design, the system operates near optimal efficiency for a much wider range of operating conditions. Application of the design concept to an automobile is used to show the benefits to overall system performance.
引用
收藏
页码:0124011 / 0124018
页数:8
相关论文
共 50 条
  • [1] Design to maximize performance of a thermoelectric power generator with a dynamic thermal power source
    Crane, Douglas T.
    Bell, Lon E.
    PROCEEDINGS OF THE ENERGY SUSTAINABILITY CONFERENCE 2007, 2007, : 361 - 369
  • [2] Optimal dynamic reconfiguration of thermoelectric generator array using RIME optimizer to maximize the generated power
    Yousri, Dalia
    Fathy, Ahmed
    Farag, Hany E. Z.
    El-Saadany, Ehab F.
    APPLIED THERMAL ENGINEERING, 2024, 238
  • [3] Design of a thermoelectric layer for a micro power generator
    Hyunse Kim
    Yanglae Lee
    Kong Hoon Lee
    International Journal of Precision Engineering and Manufacturing, 2012, 13 : 261 - 267
  • [4] Design of a Thermoelectric Layer for a Micro Power Generator
    Kim, Hyunse
    Lee, Yanglae
    Lee, Kong Hoon
    INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2012, 13 (02) : 261 - 267
  • [5] Performance Measurement and Analysis of a Thermoelectric Power Generator
    Han, Hun Sik
    Kim, Yun Ho
    Kim, Seo Young
    Um, Sukkee
    Hyun, Jae Min
    2010 12TH IEEE INTERSOCIETY CONFERENCE ON THERMAL AND THERMOMECHANICAL PHENOMENA IN ELECTRONIC SYSTEMS, 2010,
  • [6] Fabrication and performance of an oxide thermoelectric power generator
    Ono, Y
    Kimura, D
    Kawano, S
    Okamura, H
    Watanabe, R
    Kajitani, T
    XXI INTERNATIONAL CONFERENCE ON THERMOELECTRICS, PROCEEDINGS ICT '02, 2002, : 454 - 457
  • [7] The Feasibility of a Current-Source Thermoelectric Power Generator and Its Corresponding Structure Design
    Guangxi Wu
    Xiong Yu
    Journal of Electronic Materials, 2015, 44 : 1943 - 1947
  • [8] The Feasibility of a Current-Source Thermoelectric Power Generator and Its Corresponding Structure Design
    Wu, Guangxi
    Yu, Xiong
    JOURNAL OF ELECTRONIC MATERIALS, 2015, 44 (06) : 1943 - 1947
  • [9] Adaptability of grid connected PV inverters with thermoelectric generator as power source: a performance comparison
    Bijukumar, Bepinkumar
    Raam, Arunadevi Ganesan Kaushik
    Ganesan, Saravana Ilango
    Nagamani, Chilakapati
    IET POWER ELECTRONICS, 2020, 13 (05) : 981 - 990
  • [10] REACTIVE HEAT SOURCE FOR STANDALONE THERMOELECTRIC POWER GENERATOR: THERMAL ANALYSIS OF PYROPHORIC IRON MIXTURE
    Huang, Dale H. -Y.
    Tran, Thanh N.
    Yang, Bao
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2011, VOL 11, 2012, : 429 - 433