Experimental Study of a Coil Type Steam Boiler Operated on an Oil Field in the Subarctic Continental Climate
Abstract
:1. Introduction
1.1. Operating Conditions of the Installation
1.2. Review of Works on the Research Topic
1.3. The Design of the Steam Generator under Consideration
2. Materials and Methods
- (1)
- Random component of the thermometer reading Ti, caused by a random change in all possible effects affecting the measurement result.
- (2)
- Inaccuracy of the method for estimating the correction introduced to account for the effect of the heat sink effect on the thermometer body.
- (3)
- The probabilistic nature of the estimation of the error of the thermometer. Total standard uncertainty of temperature measurement can be described by the following relation:
- (1)
- The random component of the pressure gauge readings caused by a random change in all possible effects affecting the measurement result.
- (2)
- The probabilistic nature of the estimation of the error of the pressure gauge. Total standard uncertainty of temperature measurement can be described by the following relation:
3. Mathematical and Computer Modeling of a Direct-Flow Steam Generator of the Coil Type
3.1. Mathematical Description and Boundary Conditions
3.2. Visualization of Simulation Results
3.3. Recommendations for Calculating the Speed of the Steam-Water Mixture in Coils
4. Experimental Data
5. Empirical Coefficients Obtained from the Results of Experiments
6. Results and Discussion
7. Conclusions
- (1)
- We introduce correction factors for the equation of the convective component of radiant-convective heat transfer in the gas ducts. With these correction factors, is close to the real value, taking into account the design features of the boiler. The results of the dependence of the correction factor on the temperature of the outside and heated air are presented. During experimental operation, the advantages of the compact design of the boilers were proven.
- (2)
- Testing the boiler plant showed that a stable fuel temperature provided the required viscosity and good fuel atomization. Along with the change in the consumption of feed water and fuel, there was a significant change in temperature and steam pressure due to the low storage capacity of the once-through boilers. Losses with underburning and outgoing heat have decreased.
- (3)
- A methodological basis for analytical and experimental studies of radiation and convective heat transfer in a direct-flow steam generator of the coil type has been developed.
- (4)
- For the first time, experimental coefficients have been obtained that can be used for direct-flow steam generators of the coil type, which will increase the efficiency of these heat exchange devices.
- (5)
- The experimental data underwent sensitivity analysis, including an uncertainty band, and the methodology was validated. Data from experiments and simulations are compared with the results of other authors.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
HF is the height of the furnace HF, m; |
D1 and D2 are the diameters of the coaxial cylinders of the coils, m; |
k is the heat transfer coefficient, W/(m2·K); |
is the beam thermal efficiency coefficient; |
and are the heat transfer coefficients by convection and radiation, W/(m2·K); |
Tc.a. and Th.a. are the temperature of cold and hot air, K; |
is fuel consumption, kg/s; |
is steam capacity, kg/s; |
is the enthalpy of steam and feed water, MJ/kg; |
is net calorific value of fuel, MJ; |
is boiler efficiency, %; |
is the temperature difference, ; |
is characteristic temperature of the gas-air flow, ; |
is the average temperature of the furnace wall, . |
is the internal surface area of the furnace, m2. |
is the air temperature, ; |
is the temperature correction; |
is the gas temperature, . |
is the heat loss with exhaust gases, %; |
is the correction for deviation of cold air temperature; |
is the change in values when heating air in the air heater by ; |
is the sum of the products of the correction factors for the deviation of the initial parameter by ∆m, nominal or calculated. |
is the cold air temperature, calculated, °C; |
is the cold air temperature, experimental value, °C; |
is the flue gas temperature, °C; |
is the air temperature after the air heater, calculated, °C; |
is the air temperature after the air heater, experimental value, °C. |
is the correction factor; |
is the temperature correction, which summarizes the correction factors used in deviations for the cold air temperature and after the air heater; |
is the heat flux, which increases the convective component of radiant-convective heat exchange in gas ducts, W. |
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Parameter | 0.70·Dnom | 0.85 Dnom | 1.00 Dnom |
---|---|---|---|
Lf, meters | 1.32 | 1.78 | 2.33 |
T, Kelvins | 1648 | 1693 | 1721 |
№ | Temperature, °C | Speed (Experiment), m/s | Speed (Model), m/s |
---|---|---|---|
1 | 115 | 4.16 | 4.17 |
2 | 117 | 4.13 | 4.14 |
3 | 119 | 4.08 | 4.10 |
Experiment | Measurements | Water Consumption | Water Temperature | Fuel Consumption | Steam Temperature after the Boiler | Steam Pressure after the Boiler |
---|---|---|---|---|---|---|
No. | No. | kg/s | °C | kg/s | °C | MPa |
1 | 1 | 0.30944 | 44 | 0.01526 | 151 | 0.36 |
2 | 0.33167 | 44 | 0.01517 | 151 | 0.36 | |
3 | 0.33361 | 44 | 0.01431 | 149 | 0.35 | |
4 | 0.34917 | 46 | 0.01558 | 151 | 0.36 |
Experiment | Measurements | Water Consumption | Water Temperature | Fuel Consumption | Steam Temperature after the Boiler | Steam Pressure after the Boiler |
---|---|---|---|---|---|---|
No. | No. | kg/s | °C | kg/s | °C | MPa |
2 | 1 | 0.37444 | 31 | 0.01866 | 159 | 0.49 |
2 | 0.42389 | 26 | 0.01900 | 160 | 0.50 | |
3 | 0.43167 | 32 | 0.01873 | 159 | 0.49 | |
4 | 0.45750 | 32 | 0.01883 | 159 | 0.49 |
Experiment | Measurements | Water Consumption | Water Temperature | Fuel Consumption | Steam Temperature after the Boiler | Steam Pressure after the Boiler |
---|---|---|---|---|---|---|
No. | No. | kg/s | °C | kg/s | °C | MPa |
1 | 1 | 0.34278 | 45 | 0.01461 | 148 | 0.33 |
2 | 0.34028 | 45 | 0.01449 | 156 | 0.43 | |
3 | 0.40194 | 53 | 0.01455 | 161 | 0.51 | |
4 | 0.35167 | 55 | 0.01487 | 160 | 0.49 | |
2 | 1 | 0.38083 | 45 | 0.01983 | 152 | 0.36 |
2 | 0.37167 | 45 | 0.01978 | 156 | 0.43 | |
3 | 0.33417 | 53 | 0.01988 | 160 | 0.49 | |
4 | 0.35611 | 55 | 0.01990 | 161 | 0.52 |
With the Coldest Five Days, °C | At the Average Temperature of the Coldest Month, °C | At the Air Temperature t = +8 °C | |
---|---|---|---|
, C | −40 | −25 | +8 |
, C | +27 | +58 | +65 |
1.029 | 1.026 | 1.032 |
Parameter | Speed (Experiment), m/s | Speed (Model), m/s | Speed (Experiment), m/s [40] | Speed (Model), m/s [40] |
---|---|---|---|---|
temperature of 120 °C | 4.06 | 4.08 | 4.07 | 4.06 |
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Osintsev, K.; Aliukov, S.; Kuskarbekova, S. Experimental Study of a Coil Type Steam Boiler Operated on an Oil Field in the Subarctic Continental Climate. Energies 2021, 14, 1004. https://doi.org/10.3390/en14041004
Osintsev K, Aliukov S, Kuskarbekova S. Experimental Study of a Coil Type Steam Boiler Operated on an Oil Field in the Subarctic Continental Climate. Energies. 2021; 14(4):1004. https://doi.org/10.3390/en14041004
Chicago/Turabian StyleOsintsev, Konstantin, Sergei Aliukov, and Sulpan Kuskarbekova. 2021. "Experimental Study of a Coil Type Steam Boiler Operated on an Oil Field in the Subarctic Continental Climate" Energies 14, no. 4: 1004. https://doi.org/10.3390/en14041004
APA StyleOsintsev, K., Aliukov, S., & Kuskarbekova, S. (2021). Experimental Study of a Coil Type Steam Boiler Operated on an Oil Field in the Subarctic Continental Climate. Energies, 14(4), 1004. https://doi.org/10.3390/en14041004