VFD Braking Resistor Calculator
Calculate ohmic value and peak power rating for dynamic braking resistors.
Application Data
Resistor Specification
Sizing Dynamic Braking Resistors (DBR) for VFDs
To properly size a dynamic braking resistor for a Variable Frequency Drive (VFD) in industrial automation, engineers must determine two critical values: Resistance (Ohms) and Power Rating (Watts). Properly specifying these ensures the VFD’s braking chopper can safely dissipate regenerative energy without overloading.
1. Determining Resistance (Ω)
The resistance value is paramount for protecting the drive’s internal circuitry. Most VFD manufacturers specify a minimum allowable resistance in their manuals. Never select a resistor below this minimum, as it could damage the braking transistor.
If a specific value isn’t provided, it can be estimated using the DC bus voltage (V_dc) and the required peak braking power (P_peak):
R = (V_dc)² / P_peak
2. Determining Power Rating (Watts)
The wattage rating depends on the generated energy during deceleration and the duty cycle. The duty cycle is how often and for how long the braking occurs.
- Peak Power (P_peak): The maximum power generated during deceleration. A common rough estimation is 1.5 times the motor power rating.
- Average Power (P_avg): Since braking is typically intermittent, the resistor doesn’t need a continuous rating for peak power. Calculate average power using: P_avg = P_peak × Duty Cycle.
Best Practices and Manufacturer Tools
While manual calculations provide a good baseline, the most reliable approach is to use a VFD Braking Resistor Calculator provided by the drive manufacturer (such as Rockwell, Siemens, or SEW). Additionally, it is highly recommended to install a thermal overload relay to protect the resistor from overheating during unintended continuous braking events.