| MOQ: | 1 Sets |
| Price: | 10000 USD |
| Delivery Period: | 2 months |
| Payment Method: | L/C,T/T |
| Supply Capacity: | 200 sets / days |
What is an EN 14015 Tank?
An EN 14015 tank is a large-scale, site-built, vertical, cylindrical steel storage vessel designed, fabricated, and tested in accordance with the European standard EN 14015:2004 (Specification for the design and manufacture of site built, vertical, cylindrical, above ground, welded, steel tanks for the storage of liquids at ambient temperature and above).
It is the primary European benchmark for industrial storage tanks. Unlike smaller tanks that are manufactured in a shop and transported to the site, EN 14015 tanks are too large for transport, requiring construction directly on the project site using welded steel plates. These tanks are typically used in oil refineries, chemical plants, and terminal storage facilities to store liquids at near-atmospheric pressures.
1. Scope and Applications
EN 14015 applies specifically to tanks that are:
Site-built: Constructed piece-by-piece at the location of use.
Vertical and Cylindrical: Designed for maximum volume with a minimal footprint.
Welded Steel: Utilizing standard structural steel grades compliant with European standards (such as EN 10025).
Atmospheric/Low Pressure: Designed for liquids at or near atmospheric pressure, though they can handle slight internal pressures if specifically engineered under the standard's provisions.
2. Key Engineering Components
An EN 14015 tank is not just a metal shell; it is a complex assembly that must account for hydrostatic pressure, wind loads, and seismic activity (as dictated by the Eurocodes).
Shell: The vertical wall composed of varying thicknesses of steel plates (the "courses"). The bottom course is the thickest due to the cumulative hydrostatic head (pressure) of the stored liquid.
Bottom: The tank floor, often featuring an annular plate design—a thicker ring of steel plates at the perimeter where the shell meets the floor to handle high bending moments.
Roof: These can be Fixed (cone or dome) or Floating (internal or external). The standard details specific requirements for the structural integrity of the roof based on snow and live loads.
Shell-to-Bottom Joint: A critical weld point that is rigorously tested to ensure leak-proof containment.
3. Design Methodology: Managing Loads
The design philosophy of EN 14015 relies on calculating the required shell thickness ($t$) at various heights. While the math is iterative, it follows the fundamental principle of limiting hoop stress.
Note: In practice, EN 14015 mandates minimum thicknesses to prevent buckling, regardless of the hydrostatic calculation.
4. Comparison: EN 14015 vs. API 650
Industry professionals often compare EN 14015 with the American Petroleum Institute (API) 650 standard. While they serve similar functions, they originate from different regulatory frameworks.
| Feature | EN 14015 | API 650 |
| Origin | European Committee for Standardization (CEN) | American Petroleum Institute (API) |
| Primary Region | Europe and regions adopting Eurocodes | Global (Americas, Middle East, Asia) |
| Material Standards | EN 10025 (European grades) | ASTM / ASME (US standards) |
| Design Philosophy | Integrated with Eurocode structural loads | Standalone design procedures |
| Flexibility | Highly prescriptive for European construction | Offers extensive appendices for varied conditions |
5. Frequently Asked Questions (FAQ)
Q: Can I use ASTM steel for an EN 14015 tank?
A: EN 14015 is built around EN-standard steel grades. If you wish to use ASTM material (e.g., A36), you must perform a thorough equivalence check to ensure the chemical composition, yield strength, and impact toughness properties meet the requirements of the European standard.
Q: Is EN 14015 suitable for high-pressure storage?
A: No. EN 14015 is specifically for atmospheric storage. For tanks operating at pressures exceeding standard atmospheric limits, you must look toward the EN 13445 (Unfired pressure vessels) standard or specific low-pressure tank codes.
Q: What inspection methods are required?
A: The standard requires rigorous Non-Destructive Examination (NDE). This typically includes visual inspection, vacuum box testing for bottom welds, and radiographic or ultrasonic testing for shell welds. The extent of the testing is determined by the specific "weld joint efficiency" factor used in your design calculations.
To help me provide the most precise engineering context for your facility, are you designing a new tank farm project that must meet European regulatory compliance, or are you looking to assess the maintenance requirements of an existing EN 14015 asset?