Novel Test Bench for the Active Reduction of Biomass Particulate Matter Emissions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Plant Description and Design
- (i)
- Plenum, which is where the primary air flows upwards in the facility. It is used for initiating the combustion reaction. Before the air reaches the fuel bed, the air passes through the grate, which consists of 625 holes with 3 mm diameter, which equates to a 20% open area.
- (ii)
- Cooled bed, which is formed by three rows of heat exchanger tubes and cooling jackets on the four walls. In addition, it also has an array of nine K-type thermocouples, which allow for monitoring temperature profiles inside the pellet bed during the whole burning test.
- (iii)
- Secondary air module, whose purpose is to provide the airflow used to complete the combustion of the unburned species formed during the first stages of the combustion. It has a single row of 45° oriented holes. This configuration enables the airflow to enter the combustion chamber with a swirl effect, which promotes turbulence; thus, a proper mixing of the oxidizing agent and fuel occur.
- (iv)
- Combustion chamber, which also has cooled walls. Its removable frontal face has the fuel inlet and a small visor for performing visual inspection of the flame during the combustion experiment. It has two temperature probes where a B-type thermocouple is inserted for flame temperature measurements.
- (v)
- Post-combustion chamber, where the secondary oxidation takes place. It is a refrigerated module that, as well as the bed, has three rows of tubes acting as heat exchangers in its upper zone. It allows for the possibility of inserting a block of a ceramic porous material in cases when flame confining is required.
2.2. Strategies for Combustion Improvement. Implemented Systems
2.2.1. Air Stratification
2.2.2. FGR
2.2.3. Refrigeration System
2.2.4. Temperature Monitoring
2.2.5. Auxiliary Systems
2.3. Design of Experiments
3. Preliminary Results
3.1. Plant Stability and Repeatability
3.2. Operation of the Implemented Systems: Cooled Bed
3.3. Operation of the Implemented Systems: FGR
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
Abbreviations
BCC | Bed cooling circuit |
FGR | Flue gas recirculation |
GCC | General cooling circuit |
HFM | Hot-film air-mass sensor |
IFGR | Internal flue gas recirculation |
O2,FGR | Oxygen content in the recirculated gas [%] |
O2,pf | Oxygen content supplied by the primary fan [%] |
O2,pl | Oxygen content entering through the plenum [%] |
PM | Particulate matter |
TB | Bed temperature [°C] |
TC | Chimney temperature [°C] |
TEM | Transmission electron microscope |
TP | Post-combustion temperature [°C] |
TPS | Termophoretic sampling |
λFGR | Air excess in FGR line (-) |
λpl | Air excess in plenum (-) |
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Constant Parameter | Value |
---|---|
Total airflow | 6 [kg/h] |
Air staging (%primary/%secondary) | 30%/70% |
Feeding cycle (time ON/time OFF) | 1/9 [s] |
Cooling bed system | ON |
Flue gas recirculation (FGR) system | OFF |
Constant Parameter | Value | ||
---|---|---|---|
Experiment set name | Raw | Cooled Bed (CB) | Flue gas recirculation (FGR) |
Total airflow [kg/h] | 6; 9 | 6; 9 | 6; 9 |
Air staging (%primary/% secondary) | 30%/70% | 30%/70% | 30%/70% |
50%/50% | 50%/50% | 50%/50% | |
Cooling bed system | OFF | ON | OFF |
General cooling system | ON | ON | ON |
Flue gas recirculation (FGR) system | OFF | OFF | ON |
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Pérez-Orozco, R.; Patiño, D.; Porteiro, J.; Míguez, J.L. Novel Test Bench for the Active Reduction of Biomass Particulate Matter Emissions. Sustainability 2020, 12, 422. https://doi.org/10.3390/su12010422
Pérez-Orozco R, Patiño D, Porteiro J, Míguez JL. Novel Test Bench for the Active Reduction of Biomass Particulate Matter Emissions. Sustainability. 2020; 12(1):422. https://doi.org/10.3390/su12010422
Chicago/Turabian StylePérez-Orozco, Raquel, David Patiño, Jacobo Porteiro, and José Luís Míguez. 2020. "Novel Test Bench for the Active Reduction of Biomass Particulate Matter Emissions" Sustainability 12, no. 1: 422. https://doi.org/10.3390/su12010422
APA StylePérez-Orozco, R., Patiño, D., Porteiro, J., & Míguez, J. L. (2020). Novel Test Bench for the Active Reduction of Biomass Particulate Matter Emissions. Sustainability, 12(1), 422. https://doi.org/10.3390/su12010422