An Experimental Investigation of Water Vapor Condensation from Biofuel Flue Gas in a Model of Condenser, (1) Base Case: Local Heat Transfer without Water Injection
Abstract
:1. Introduction
2. Experimental Setup
3. Methodology
- Twenty thermocouples were installed in the center of the calorimetric tube (tc) to measure the flue gas temperature along the tube. The distance between the thermocouples was approximately 0.28 m.
- Twenty thermocouples were installed at the inner wall of the calorimetric tube (tw) along the length of the tube. The distance between the thermocouples was approximately 0.28 m.
- Ten thermocouples were installed between the inner and the outer tubes to measure the cooling water temperature (tcw) along the space between the tubes. The distance between the thermocouples was approximately 0.56 m.
- Three thermocouples were installed in each of the water mixers to measure cooling water temperatures at the inlet and the outlet of the test section.
4. Results Analysis
4.1. Water-Vapor Mass Fraction 7%
4.2. Water-Vapor Mass Fraction 17%
4.3. Comparison of the Results for Different Water-Vapor Mass Fractions
5. Conclusions
- Performed analysis revealed the influence of inlet parameters on heat transfer processes occurring in condensing heat exchangers.
- The investigations of the local heat transfer along the tube (the model of the condensing heat exchanger) provided important findings related to the optimization of the operation of heat exchangers of such type.
- The investigations showed that, in some cases in the initial part of the condensing heat exchanger model, the heat from flue gas is recovered by convection. Only after that, a sharp increase is noticed in heat transfer due to water vapor condensation.
- The analysis showed that, in the case of water-vapor mass fraction ≈ 7%, the condensation efficiency was in the range between ≈ 15% and 26%. When the condensable gas mass fraction was increased until ≈ 17%, the condensation efficiency was in the range between ≈ 39% and 56%.
- To use the condensing heat exchangers efficiently, there is a need to adjust certain flue gas flow rate, temperature and humidity and other parameters in such a way that the condensation of water vapor would be from the beginning of the condensing heat exchanger.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Temperature | x/d |
---|---|
tc | 7.2; 15.4; 23.7; 31.9; 40.1; 48.4; 56.6; 64.9; 73.1; 81.3; 89.6; 97.8; 106.0; 114.3; 122.5; 130.7; 139.0; 147.2; 155.4; 163.7. |
tw | 7.2; 23.7; 40.1; 56.6; 73.1; 89.6; 106.0; 122.5; 139.0; 155.4. |
tcw | 7.2; 15.4; 23.7; 31.9; 40.1; 48.4; 56.6; 64.9; 73.1; 81.3; 89.6; 97.8; 106.0; 114.3; 122.5; 130.7; 139.0; 147.2; 155.4; 163.7. |
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Poškas, R.; Sirvydas, A.; Kulkovas, V.; Poškas, P. An Experimental Investigation of Water Vapor Condensation from Biofuel Flue Gas in a Model of Condenser, (1) Base Case: Local Heat Transfer without Water Injection. Processes 2021, 9, 844. https://doi.org/10.3390/pr9050844
Poškas R, Sirvydas A, Kulkovas V, Poškas P. An Experimental Investigation of Water Vapor Condensation from Biofuel Flue Gas in a Model of Condenser, (1) Base Case: Local Heat Transfer without Water Injection. Processes. 2021; 9(5):844. https://doi.org/10.3390/pr9050844
Chicago/Turabian StylePoškas, Robertas, Arūnas Sirvydas, Vladislavas Kulkovas, and Povilas Poškas. 2021. "An Experimental Investigation of Water Vapor Condensation from Biofuel Flue Gas in a Model of Condenser, (1) Base Case: Local Heat Transfer without Water Injection" Processes 9, no. 5: 844. https://doi.org/10.3390/pr9050844
APA StylePoškas, R., Sirvydas, A., Kulkovas, V., & Poškas, P. (2021). An Experimental Investigation of Water Vapor Condensation from Biofuel Flue Gas in a Model of Condenser, (1) Base Case: Local Heat Transfer without Water Injection. Processes, 9(5), 844. https://doi.org/10.3390/pr9050844