Experiments on Waste Heat Thermoelectric Generation for Passenger Vehicles
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Setup
2.2. Data Reduction
3. Results and Discussions
3.1. Temperature
3.2. Power Load Feature
3.3. Efficiency
3.4. Influence of MPPT Technology on Electricity Output
3.5. Pressure Drop
4. Conclusions
- (1)
- The integrated molding design of heat collector with appropriate fin distribution was proven to be able to achieve a considerably low-pressure drop, while keeping a relatively high heat-collection efficiency. In the present TEG prototype, the pressure drop was 36 Pa, which is much lower than those of previous studies. Meanwhile, the heat collection efficiency of 46.5% was comparable with previous works;
- (2)
- The overall efficiency of the TEG system was relatively low (1.21% in maximum), which was determined by the heat collection efficiency and the thermoelectric efficiency. The experimental thermoelectric efficiency was 2.88%, which was close to the predicted value of 3.38%. Essential issues when applying TEG to recover waste heat include optimizing the heat collector and TE materials;
- (3)
- Maximum power point tracking (MPPT) direct current–direct current converters (DDC) should be used because they performed much better than regular converters. In the present work, the conversion efficiency of the MPPT DDC was 91.2%, whereas the average conversion efficiency was lower than 80% for regular DDCs.
- (4)
- The insufficient heat transfer nature between flue gases and the solid-heat collector must be improved in the future work. As revealed in the present work, the average hot-end temperatures were 46.9% lower than the inlet flue gas temperatures. This reduced the application potential of TEG for utilizing waste heat from passenger vehicles. Thermosyphon, staggered pin-fins and appropriate flow perturbations are possible research directions.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
k | thermal conductivity (W/m-K) |
L | length of the TE leg (m) |
n | electrical resistivity ratio (m) |
P | load power (W) |
Qconv | heat loss rate by convections (W) |
QHC | heat flow rate extracted by heat collector (W) |
Pin | heating power (W) |
Pmax | maximum electric power generated by the TEG system (W) |
Qrad | heat loss rate by thermal radiations (W) |
QTE | heat flow rate passing through the TE modules (W) |
ΔP | pressure drop (Pa) |
r | thermal contact ratio (dimensionless) |
R | load resistance (Ω) |
Tave | average temperature of hot and cold ends (°C), Tave = (Th + Tc)/2 |
t | time (minute) |
Tc | cold-end temperature (°C) |
Th | hot-end temperature (°C) |
Tin | inlet air temperature (°C) |
Tw,in | inlet cooling water temperature (°C) |
Tw,out | outlet cooling water temperature (°C) |
ΔT | temperature difference (°C), ΔT = Th − Tc |
Vair | air velocity (m/s) |
w | ratio of ceramic thickness to the length of TE leg (dimensionless) |
Z | figure-of-merit (1/K) |
α | Seebeck coefficient (V/K) |
ρ | electrical resistivity (Ωm) |
ηheat | heat collection efficiency (%) |
ηheat,eff | effective heat collection efficiency (%) |
ηsys | overall efficiency (%) |
ηTE | TE efficiency (%) |
DAQ | data acquisition |
DDC | DC-DC converter |
MPPT | maximum power point tracking |
TE | thermoelectric |
TEG | TE generator |
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Reference | Overall Efficiency (%) | Heat Collection Efficiency (%) | Pressure Drop (Pa) |
---|---|---|---|
Kim, Negash and Cho (2017) [6] | 1.4–2.0 | − * | 380 |
Li et al. (2017) [7] | 0.8~1.2 | − | 2000~10,000 |
Kim, Kwak and Kim (2018) [8] | 1.3~2.6 | 32.9 | 400~2000 |
Comamala et al. (2019) [26] | 1.08 | − | 5400 |
present | 1.21 | 46.5 | 36 |
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Chen, J.; Xie, W.; Dai, M.; Shen, G.; Li, G.; Tang, Y. Experiments on Waste Heat Thermoelectric Generation for Passenger Vehicles. Micromachines 2022, 13, 107. https://doi.org/10.3390/mi13010107
Chen J, Xie W, Dai M, Shen G, Li G, Tang Y. Experiments on Waste Heat Thermoelectric Generation for Passenger Vehicles. Micromachines. 2022; 13(1):107. https://doi.org/10.3390/mi13010107
Chicago/Turabian StyleChen, Jianfei, Wei Xie, Min Dai, Guorong Shen, Guoneng Li, and Yuanjun Tang. 2022. "Experiments on Waste Heat Thermoelectric Generation for Passenger Vehicles" Micromachines 13, no. 1: 107. https://doi.org/10.3390/mi13010107
APA StyleChen, J., Xie, W., Dai, M., Shen, G., Li, G., & Tang, Y. (2022). Experiments on Waste Heat Thermoelectric Generation for Passenger Vehicles. Micromachines, 13(1), 107. https://doi.org/10.3390/mi13010107