Theory and design of thermoelectric generators using waste heat on vehicles
Keywords:
термоелектричний генератор, двигун внутрішнього згорання, утилізація теплаAbstract
The paper presents the results of the analysis of theoretical works concerning the use of thermoelectric generators for vehicles in order to obtain additional electricity and, accordingly, fuel saving. The trends and current state of development of such generators are considered. Bibl. 21.
References
Hendricks T.J. and Lustbader J.A. (2002). Advanced thermoelectric power system investigations for light-duty and heavy duty applications: Part 1," in 21st International Conference on Thermoelectrics, 381-386.
Hendricks T.J. (1988). Optimum design parameters in two-stage thermoelectric generators. Proc. 23rd Intersociety Energy Conversion and Engineering Conference (Denver, CO), Vol. 1, 339-345.
Korzhuev M.A., Svechnikova T.E. (2013). Thermodynamic restrictions for the net power of automotive thermoelectric generators and prospects of their use in transport. J.Thermoelectricity, 3.
Hцgblom Olle, Andersson Ronnie (2012). CFD modeling of thermoelectric generators in automotive EGR-coolers. 9th European Conference on Thermoelectrics AIP Conf. Proc. 1449, 497-500; doi: 10.1063/1.4731602.
Bethancourt A., Echigo R., and Yoshida H. (1995). Thermoelectric conversion analysis in a counter-flow heat exchanger. AIP Conference Proc., vol. 316, 299-304.
Mewng Jing-Hui, Wang Xiao-Dong, Chen Wei-Hsin (2016). Performance investigation and design optimization of a thermoelectric generator applied in automobile exhaust waste heat recovery. Energy Conversion and Management, 120, 71–80.
Crane D.T. and Jackson G.S. (2004). Optimization of cross flow heat exchangers for thermoelectric waste heat recovery. Energy Conversion and Management, 45, 1565-82.
Karri M.M. (2005). Modeling of an automotive exhaust thermoelectric generator. Mechanical Engineering. vol. Masters of Science Potsdam. NY: Clarkson University.
Kevin D. Smith (2009). An investigation into the viability of heat sources for thermoelectric power generation systems: Thesis for the Degree of Master of Science in Mechanical Engineering. Department of Mechanical Engineering Rochester Institute of Technology.
Anatychuk L.I., Luste O.J., Kuz R.V. (2011). Theoretical and experimental studies of thermoelectric generator for vehicles.J.Electronic Materials, 40(5).
Anatychuk L.I. and Kuz R.V. (2011). Computer designing and test results of automotive thermoelectric generator. Thermoelectrics goes automotive. (Berlin: Expert Verlag, 2011).
Anatychuk L.I. and Kuz R.V. (2012). Materials for vehicular thermoelectric generators. J. Electronic Materials, 41 (6).
Анатичук L.I., Kuz R.V. Rozver Yu.Yu (2011). Efficiency of thermoelectric recuperators of exhaust gas heat from internal combustion engines. J.Thermoelectricity, 4, 78-83.
Anatychuk L.I., Kuz R.V., Rozver Yu.Yu. (2012). Thermoelectric generator for petrol engine. J.Thermoelectricity, 2, 93-100.
Kuz R.V. (2012). Moving vehicle parameters monitorimng system. J.Thermoelectricity, 4, 89-94.
Anatychuk L.I., Kuz R.V. (2014). Effect of air cooling on the efficiency of thermoelectric generator in a diesel engined car. J.Thermoelectricity, 2, 60-67.
Anatychuk L.I., Kuz R.V. (2014). Effect of air cooling on the efficiency of thermoelectric generator in a car with a petrol engine. J.Thermoelectricity, 3, 87-91.
Anatychuk L.I., Kuz R.V. (2014). Effect of air cooling on the efficiency of sectional thermoelectric generator in a car with a diesel engine. J.Thermoelectricity, 4, 81-87.
Anatychuk L.I., Kuz R.V. (2014). Effect of air cooling on the efficiency of sectional thermoelectric generator for a car with a petrol engine. J.Thermoelectricity, 5, 49-54.
Anatychuk L.I., Kuz R.V. Materials Today: Proceedings 2 ( 2015 ) 871 - 876 (ECT-2014), Madrid.
Anatychuk L.I., Kuz R.V. (2016). Thermoelectric generator for trucks. J.Thermoelectricity, 3, 5-10.