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 EMC filter, Class AFilter for inverters without an internal filter for
Filters for frame sizes FX and GX are only permitted to be used in combination with a line commutating choke. All other inverters with the exception of inverters for 500Â V to 600Â V can be supplied with an internal Class A filter. The requirements are fulfilled using shielded cables with a max. length of 25Â m. EMC filter, Class BFilter for inverters without an internal filter for
The requirements are fulfilled using shielded cables with a max. length of 25 m. For inverters 15 kW to 75 kW without filters, EMC filters of Class B from Schaffner can be used. The requirements are fulfilled using shielded cables with a max. length of 25 m to 50 m (depending on the type, details on request). With this filter, the inverter complies with the emission standard EN 55 011, Class B for conducted interference emissions. Additional EMC filter, Class BAvailable for inverters with an internal Class A EMC filter, frame sizes A, B and C. The requirements are fulfilled using shielded cables with a max. length of 25 m. With this filter, the inverter complies with the emission standard EN 55 011, Class B for conducted interference emissions. Filter Class B with low leakÂage currentsEMC filter for 200 V to 240 V 1 AC inverters, frame sizes A and B, without an internal Class A EMC filter. With this filter, the inverter complies with the emission standard EN 55 011, Class B for conducted interference emissions. The leakage currents are reÂduced to < 3.5 mA. The requirements are fulfilled using shielded cables with a max. length of 5 m. Leakage currents: The leakage currents of the inverters with/without filter (internal/external) may exceed 30 mA. Typical values in practice are between 10 mA and 50 mA. The exact values deÂpend on the design, environment and cable lengths. Interference-free operation with residual current operated devices with a trigger value of 30 mA cannot be guaranteed. However, operation with residual current circuit breakers with a trigger value of 300 mA is possible. Please refer to the Instruction Manual for details. LC filter and sinusoidal filterThe LC filter/sinusoidal filter limits the rate of rise of voltage and the capacitive charge/discharge currents which usually occur with inverter operation. This means that much longer shielded motor cables are possible when using LC filters/sinusoidal filters and the service life of the motor achieves values similar to those with direct mains operation. Use of an output choke isn't required with that. Please note when using LC filters/sinusoidal filters:
The LC filters/sinusoidal filters can be used for all MICROMASTER 440 inverters of frame sizes A to GX.
Line commutating chokeLine commutating chokes are used to smooth voltage peaks or to bridge commutating dips. In line with EN 61 000-3-2 regÂulations "Limits for harmonic currents with device input current ≤16 A per phase", there are special aspects for drives with 250 W to 550 W and 230 V single-phase supplies which can be used in non-industrial applications (1st environÂment). For devices with 250 W and 370 W, it is necessary either to fit the recommended input chokes or to apply to the power utility company for authorization to connect the devices to the public power supply. No limits are currently defined in the EN 61 000-3-2 standard for professionally used devices with a connected load > 1 kW which means that the inverters with an output power ≥ 0.75 kW comply with the EN 61 000-3-2 standard. However, in accordance with the regulations of EN 61000-3-12 "Limits for harmonic currents > 16 A and ≤ 75 A per phase" an approval is necessary from the power supplier for drives that are intended to be connected to the public low-voltage network. Please refer to the Operating Instructions for the values of the harmonic currents. Output chokeOutput chokes can be supplied for reducing the capacitive compensation currents and dV/dt in the case of motor cables > 50 m (shielded) or > 100 m (unshielded). For max. permissible cable lengths, see the Technical Data. Brake resistorThe brake resistors are designed for use with the MICROMASTER 440 inverter series, frame sizes A to F, with internal brake chopper and enable loads with a large moment of inertia to be braked quickly. During braking of the motor and the load, excess energy is fed back to the inverter. This causes the voltage to rise in the DC link. The inverter transfers the excess energy to the externally mounted braking resistor. For MICROMASTER 440 inverters of frame sizes FX and GX, external SIMOVERT MASTERDRIVES brake units and the appropriate brake resistors can be used (see Catalog DA 65.10). Gland plateGland plates are available for inverters of frame sizes A, B and C. All the other frame sizes have the shield connection for the control cable integrated in the inverter. The shield for the power cable has to be connected externally (e.g. in the control cabinet). Exception: Inverters of frame sizes D and E and frame size F with integrated class A filter. In this case the shield connection is integrated in the inverter. The gland plate facilitates the shield connection of power and control cables and thus ensures optimum EMC performance.  Selection and ordering dataThe options listed here (filters, chokes, resistors, gland plates, fuses and circuit‑breakers) must be selected to match the corresponding inverter type. The inverter and the associated options have the same voltage ratings. Either fuses or circuit‑breakers may be used as listed in MICROMASTER Getting Started. Fuses type 3NA and circuit‑breakers type 3RV/3VL provide short circuit protection to the inverter supply. Fuses type 3NE1 provide short circuit protection to the inverter supply and are semiconductor protection devices. Notes for use in America: filters, chokes, resistors and gland plates are UL‑listed accessories. FS A‑C inverters require UL‑listed fuses e.g. Class J or semiconductor fuses type 3NE1 (UL recognized UR). Type E motor controller (type 3RV) may also be used. FS D‑GX inverters require semiconductor fuses type 3NE1. For further information about the use in Europe and America please refer to the MICROMASTER Getting Started |
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