The Diagnostics of Power Boilers in Terms of Their Sustainability
Abstract
:1. Introduction
2. Materials and Methods
3. Results and Discussion
4. Conclusions
- The degree of degradation of steam superheaters is influenced by the atmosphere surrounding a given element in energy devices. Comparing the outer wall of the pipe with the inner one, significant degradation of the oxide layers was observed from the exhaust gas atmosphere more than from the circulating medium.
- The increase in temperature and time in these elements has a more negative impact on the condition of the steel surface (comparing material from the same steel grade).
- The mechanism of high-temperature corrosion is a very complex phenomenon, depending on both the thermal and chemical conditions prevailing in the combustion area. Under normal conditions, in an oxygen atmosphere with the exhaust gases, oxide layers are formed on the steel surface, mainly based on iron, which constitute a natural passive layer of the metal and a barrier to other gaseous components of the exhaust gases. However, if this phenomenon is disturbed, in addition to the actual oxide layer, thick layers of sediment also grow, which have an unfavorable effect. In the case of heated surfaces, this leads to an increase in the temperature of the material and thus an increase in the rate of high-temperature corrosion. The test results obtained in this work showed significant destruction of the material used at the following parameters: T = 540 °C and a time of 220,000 h. Undesirable compounds in energy equipment enter device circulation or are created, among others, during assembly or construction of individual devices as well as during operation (e.g., due to leaks). The impact of contamination on the durability of these devices varies.
- In order to prevent this type of corrosion, the operating conditions of the superheater elements should be adjusted to the materials from which they are made. However, this is very difficult because one contamination may make it impossible to meet the operating conditions. That is why it is so important to diagnose these devices in order to avoid their failure in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
LM | light microscopy |
SEM | scanning electron microscopy |
XRD | X-ray diffraction |
FTIR | Fourier-transform infrared spectroscopy |
RF | radio frequency |
GO | graphene oxide |
ITO | indium tin oxide |
ATR | attenuated total reflectance |
DTGS | spectrometer with a deuterated triglycine sulfate |
Sa | arithmetic mean of height |
Sz | maximum height |
Sp | height of the highest hill |
Sv | depth of the lowest depression |
Sq | rms height |
Ssk | skewness |
Sku | kurtosis |
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Sample | Temperature, °C | Time, h |
---|---|---|
1—from the outside | 375 | 120,000 |
1—from the inside | 375 | 120,000 |
2—from the outside | 375 | 220,000 |
2—from the inside | 375 | 220,000 |
3—from the outside | 540 | 220,000 |
3—from the inside | 540 | 220,000 |
The Inner Side of the Wall of the Pipe (from Water Steam) | The Outer Side of the Wall of the Pipe (from Flue Gas Flow) | |||||
---|---|---|---|---|---|---|
Sample | ||||||
1 | 2 | 3 | 1 | 2 | 3 | |
Sa/μm | 19.54 | 21.88 | 24.08 | 37.09 | 39.61 | 44.87 |
Sz/μm | 197.87 | 216.84 | 224.34 | 371.17 | 232.26 | 335.86 |
Sq/μm | 28.02 | 31.00 | 31.10 | 51.73 | 47.02 | 55.24 |
Ssk/- | 1.01 | −0.71 | 0.28 | 2.25 | 0.39 | −0.31 |
Sku/- | 5.91 | 5.19 | 3.47 | 11.18 | 2.13 | 3.08 |
Sp/μm | 114.05 | 97.75 | 119.06 | 306.36 | 106.24 | 142.70 |
Sv/μm | 83.83 | 119.10 | 105.28 | 64.81 | 126.03 | 193.16 |
Sample Designation | Structure Changes | Carbide Precipitation | Corrosion Along Grain boundaries | Layer (Oxides/Deposits) Growth | Layer (Oxides/Deposits) Degradation |
---|---|---|---|---|---|
1—from the outside | ↑ | ↑ | - | ↑↑ | ↑↑ |
1—from the inside | ↑ | ↑ | - | ↑ | ↑ |
2—from the outside | ↑↑ | ↑↑ | - | ↑↑↑ | ↑↑↑ |
2—from the inside | ↑↑ | ↑↑ | - | ↑↑ | ↑↑ |
3—from the outside | ↑↑↑ | ↑↑↑ | ↑ | ↑↑↑↑ | ↑↑↑↑ |
3—from the inside | ↑↑↑ | ↑↑↑ | ↑↑ | ↑↑↑ | ↑↑↑ |
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Gwoździk, M.; Depciuch, J. The Diagnostics of Power Boilers in Terms of Their Sustainability. Sustainability 2023, 15, 16877. https://doi.org/10.3390/su152416877
Gwoździk M, Depciuch J. The Diagnostics of Power Boilers in Terms of Their Sustainability. Sustainability. 2023; 15(24):16877. https://doi.org/10.3390/su152416877
Chicago/Turabian StyleGwoździk, Monika, and Joanna Depciuch. 2023. "The Diagnostics of Power Boilers in Terms of Their Sustainability" Sustainability 15, no. 24: 16877. https://doi.org/10.3390/su152416877
APA StyleGwoździk, M., & Depciuch, J. (2023). The Diagnostics of Power Boilers in Terms of Their Sustainability. Sustainability, 15(24), 16877. https://doi.org/10.3390/su152416877