Operating Temperature Of FBE Steel Pipes
FBE steel pipes refer to Fusion Bonded Epoxy Coated Steel Pipes. Their operating temperature mainly depends on the heat resistance of the FBE coating, with the core applicable temperature range and influencing factors as follows:
I. Core Operating Temperature Range
According to industry standards for FBE coatings (e.g., GB/T 23257-2017 Polyethylene Anticorrosive Coatings for Buried Steel Pipes, and anticorrosion requirements supporting API 5L Specification for Line Pipe), the operating temperature is divided into long-term use e short-term use:
- Long-term operating temperature: Generally -30℃ ~ 80℃
Within this temperature range, the FBE coating can maintain stable adhesion, impact resistance, and corrosion resistance, without cracking, peeling, or accelerated aging due to temperature changes (suitable for long-term stable working conditions such as buried water transportation, gas transmission, and ordinary chemical fluid transportation).
- Short-term operating temperature: Maximum tolerance up to 120℃ (duration ≤ 1 hour)
This is only applicable to temporary working conditions (e.g., pipeline hydrostatic testing, short-term transportation of slightly high-temperature media). Exceeding 120℃ or long-term exposure to environments above 80℃ will cause the coating to soften, decrease in strength, and even lead to thermal aging failure.
II. Key Factors Affecting Operating Temperature
- FBE Coating Formulation
- General-purpose FBE: The upper heat resistance limit is 80℃, suitable for normal-temperature media;
- High-temperature resistant FBE (modified grade): By adding heat-resistant resins (e.g., phenol-modified epoxy), the long-term operating temperature can be increased to 100℃ ~ 120℃ (suitable for working conditions such as hot oil and high-temperature sewage, requiring customized production separately).
- Coating Curing Quality
Insufficient curing of the FBE coating (e.g., insufficient curing temperature or too short curing time) will result in low coating crosslinking density, significantly reduced heat resistance, and potential blistering or peeling even at 60℃ ~ 70℃.
- Medium Environment
If the transported medium contains strongly corrosive substances (e.g., strong acids, strong alkalis, organic solvents), high temperatures will accelerate the chemical reaction between the medium and the coating. In such cases, the actual operating temperature should be reduced (e.g., using at normal temperature) to avoid premature coating failure.
III. Temperature Requirements for Typical Application Scenarios
| Application Scenario | Recommended Operating Temperature | Notes |
| Buried natural gas/petroleum transmission pipelines | -20℃ ~ 70℃ | Avoid local overheating of the pipe body caused by direct sunlight exposure |
| Municipal tap water/sewage pipelines | 0℃ ~ 60℃ | Prevent frost heaving at low temperatures and avoid microbial growth at high temperatures |
| Ordinary chemical fluid pipelines | -10℃ ~ 80℃ | Adjust according to the corrosiveness of the medium; reduce to normal temperature for strongly corrosive media |
| Temporary pressure testing/maintenance conditions | ≤120℃ (short-term) | Single duration should not exceed 1 hour; avoid frequent over-temperature |
IV. Precautions
- Prohibition of over-temperature use: Long-term exposure above 80℃ (for general-purpose FBE) or 120℃ (for high-temperature resistant FBE) will cause thermal aging of the coating and loss of adhesion, eventually leading to pipe rust;
- Low-temperature limitation: Below -30℃, the FBE coating will become brittle and its impact resistance will decrease. Avoid external impact on the pipeline (e.g., provide cushioning protection during burial);
- Selection matching: If the operating temperature exceeds 80℃, clearly require suppliers to provide “high-temperature resistant FBE coatings” and submit coating heat resistance test reports (e.g., high-temperature adhesion test, thermal aging test data).
In summary, the conventional operating temperature of FBE steel pipes is mainly -30℃ ~ 80℃. For special working conditions, adaptation can be achieved by customizing high-temperature resistant coatings or adjusting the operating temperature. The core principle is to ensure the coating maintains structural and performance stability throughout its service life.


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