Control Panel Heat Dissipation Estimator
Sum up watts lost by panel components to recommend cooling fan CFM.
Panel Parameters
Cooling Requirement
Managing Thermal Loads in Industrial Enclosures
Excessive heat is one of the leading causes of premature component failure in industrial automation. To ensure system reliability, engineers must accurately estimate heat dissipation and determine if an enclosure can naturally reject the generated heat or if active cooling is required.
Step 1: Calculate Total Internal Heat Load
The first step is identifying all heat-generating components within the control panel (PLCs, VFDs, power supplies). You must consult datasheets for their specific power dissipation in Watts (W)—not their total power consumption. Sum these values to find the total internal thermal load. For VFDs, a quick estimate is multiplying the drive’s power rating by its efficiency loss (e.g., 5% loss for a 95% efficient drive).
Step 2: Calculate Effective Surface Area
Not all enclosure surfaces dissipate heat equally. You must calculate the total exposed surface area, subtracting any side mounted against a wall or floor. Vertical and top surfaces are generally the most effective for natural convection.
Step 3: Determine Temperature Rise (ΔT)
The temperature rise is the difference between the maximum allowable internal temperature (typically targeted around 35°C / 95°F) and the maximum ambient temperature outside the enclosure.
Step 4: Estimating Dissipation
For sealed, unventilated steel enclosures in still-air conditions, a common empirical formula estimates required surface area:
Required Area (in²) ≈ (Total Heat Load in Watts × 300) / ΔT (°C)
If the calculated heat load exceeds the panel’s natural dissipation capacity, active cooling solutions like filter fans, heat exchangers, or air conditioners must be implemented. Using a Control Panel Heat Dissipation Estimator streamlines these calculations and ensures your enclosure designs protect critical automation hardware.