Introduction
The Basler Electric IFM-150 Interface Firing Module receives a control signal from a DECS-400 or DECS
450 Digital Excitation Control System and calculates a phase-control firing angle that is synchronized with
the power transformer output. The IFM-150 then generates output pulses to drive the SCRs of an
excitation rectifier chassis.
The IFM-150 is available in two configurations that control either a single-phase rectifier module or a
three-phase rectifier chassis.

Three-phase IFM-150 modules can be user-configured to supply SCR firing pulses to a fully controlled or
half controlled (positive or negative) rectifier bridge. A fully controlled rectifier bridge requires that the IFM
150 supply six sets of firing pulses to drive the SCRs of the bridge. A half controlled rectifier bridge
contains three SCRs and three diodes. Positive control is used when the SCRs are connected to the
positive side (F+) of the field output. Negative control is used when the SCRs are connected to the
negative side (F–) of the field output.
A single-phase IFM-150 provides full control of a single-phase rectifier module. Four sets of firing pulses
are generated by the IFM-150 to drive the rectifier module SCRs.
Functional Description
Introduction
The IFM-150 Interface Firing Module receives a control signal from the DECS-400 or DECS-450 Digital
Excitation Control System and then calculates a time delay based on the zero crossing of each phase of
voltage from the synchronizing transformer. At the end of the time delay, the IFM-150 produces the
properly synchronized sets of pulses to drive the SCRs of the excitation system rectifier chassis. As the
DECS control signal increases (or decreases), the time interval between the zero crossing of each phase
voltage and the start of its next output pulse will decrease (or increase). This results in an increase (or
decrease) in the rectifier chassis output voltage.
A terminal voltage limiter within the IFM-150 can be enabled to monitor the generator voltage through the
synchronizing transformer or external voltage transducer and compare the measurement with a user
adjustable reference level. If the generator voltage exceeds the reference level for a user-adjustable
amount of time, the IFM-150 will modify the SCR firing pulses and limit the generator voltage.
Inputs
The function of each IFM-150 input is described in the following paragraphs.
Control Power (DC+, DC– and AC1. AC2)
Operating power for the Firing Circuit Chassis is applied to the Control Power inputs. If dc operating power
is used, 125 Vdc should be applied to terminals DC+ and DC–. If ac operating power is used, 120 Vac
should be applied to terminals AC1 and AC2. Both inputs may be used if redundant control power is desired.
Bridge Control Voltage (COM, VC+)
This signal determines the firing control angle of the rectifier bridge SCRs. The Bridge Control Voltage
Input accepts a voltage range of –10 to +10 Vdc. The DECS must be programmed to supply the same
range of control voltage. Refer to Basler publication 9369700990 for information about DECS-400
configuration and Basler publication 9597100990 for information about DECS-450 configuration.
Synchronization Voltage
Voltage is applied to this input and passed through the synchronizing transformer. These voltage signals
are used to define the time reference for the rectifier chassis SCR control pulses. The voltages are also
used for generator voltage metering in applications where the rectifier chassis operating power is supplied
from the generator output (if the Internal mode of the generator voltage sensing is selected (for three
phase applications only)).
Terminal labeling for the synchronization voltage input varies according to the model of IFM-150 (single
phase or three-phase control).
The single-phase IFM-150 accepts synchronization voltage at terminals A1 and B or A2 and B. Terminals
A1 and B are used for synchronization voltage in the 240 Vac or 480 Vac range. Terminals A2 and B are
used for synchronization voltage in the 120 Vac range.
The three-phase IFM-150 accepts synchronization voltage at terminals A, B, and C.
Generator Voltage (B2. B3)
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