| Maximum Continuous Operating Voltage (MCOV), Uc | The highest specified continuous RMS voltage that may be applied across the arrester under normal operating conditions. | 2.55–29.0 kV in common medium-voltage rating points. | A higher MCOV improves temporary-overvoltage withstand but generally produces a higher protective voltage. | MCOV must be equal to or greater than the actual continuous phase-to-ground voltage, including system voltage tolerance and grounding conditions. |
| Arrester Rated Voltage, Ur | The manufacturer-declared voltage reference associated with the arrester’s temporary-overvoltage and operating-duty characteristics. | 3–36 kV representative medium-voltage rating points. | Provides a standardized reference for comparing arrester duty and temporary-overvoltage capability. | Rated voltage is not the same as MCOV. The two values must be checked separately. |
| Nominal Discharge Current | The crest value of the standard 8/20 μs current impulse used to classify and compare arrester discharge performance. | 5 kA, 10 kA, or 20 kA are commonly encountered values. | Higher nominal discharge current ratings generally indicate greater surge-current test capability, but they do not alone define the complete energy capability. | Choose the value according to the installation’s lightning exposure, fault environment, coordination study, and applicable standard. |
| 8/20 μs Current Waveform | A standardized impulse current that reaches its peak in approximately 8 μs and decreases to half its peak value in approximately 20 μs. | 8 μs virtual front time / 20 μs time to half-value | Allows repeatable comparison of discharge voltage, current withstand, and protective behavior. | The 8/20 μs waveform is not a complete model of every lightning event or switching surge. |
| Residual Voltage, Ures | The voltage measured across the arrester while it conducts a specified impulse current. | Must be specified at a stated current, such as 5 kA, 10 kA, or 20 kA. | Lower residual voltage generally provides better insulation protection. | Residual voltage should be coordinated with the equipment insulation withstand level and installation lead length. |
| Energy Capability | The arrester’s ability to absorb and dissipate surge energy without thermal failure or loss of protective characteristics. | Not represented by one universal kJ value; it depends on arrester design, voltage, current, duration, repetition, and applicable test class. | Determines how well the arrester withstands repeated or high-energy surges and temporary overvoltages. | Review the specified energy, charge, line-discharge class, switching-surge duty, and thermal-stability test information rather than relying only on kA. |
| Temporary Overvoltage (TOV) Capability | The voltage-versus-time withstand capability during abnormal but temporary power-frequency overvoltage conditions. | Must be evaluated as a voltage-time curve; it is not a single fixed voltage. | Helps prevent arrester thermal runaway during ground faults, load rejection, resonance, or other system events. | System grounding method and fault-clearing time are essential inputs for TOV coordination. |
| Response Behavior | The arrester’s nonlinear change in resistance as voltage rises above its normal operating region. | High resistance at normal voltage; low resistance during a surge | Diverts surge current to ground and limits the voltage applied to protected equipment. | Short, straight, low-inductance connections improve the practical protection level. |