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Schneider Electric Modicon AM-0984-Q20

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AM-0984-Q20

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The Schneider Electric AM-0984-Q20 is a sophisticated component in the Modicon series, designed for dynamic applications. This device features significant specifications including a 1.0 kW output power and operates at a maximum speed of 2000 RPM.

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Technical specifications for AM-0984-Q20

ManufacturerSchneider Electric
Product LineModicon
Part NumberAM-0984-Q20
Weight4.75 lbs (2.15 kg)
Rotor Inertia0.0026 kgm²
EncoderA1000
Speed2000 RPM
Output Power1.0 kW
Current4.6 A
Phase3-Phase
Frequency133 Hz
Voltage140 V
Thermal Time Constant0.004 s
Mechanical Time Constant0.65 ms
Armature Resistance0.36 Ω
Back EMF Constant1.1 V/1000 RPM
Torque Constant0.027 Nm/A (rms)
Continuous RMS Current at Stall5.6 A

The AM-0984-Q20 from Schneider Electric is engineered with a maximum output power of 1.0 kW, ensuring robust performance for demanding tasks. Operating efficiently at speeds of up to 2000 RPM, this device is built to handle substantial mechanical workloads.

Weighing in at 13 kg, this component is equipped with an A1000 encoder, enhancing its ability to track and measure precise rotational positions. The rotor’s inertia is rated at 0.0026 kgm², providing important details for dynamic response calculations. This model functions under a three-phase power system, drawing a continuous current of 4.6 A while maintaining a maximum voltage of 140 V. Furthermore, it operates at a frequency of 133 Hz, making it suitable for a variety of control applications.

The electrical performance characteristics include an armature resistance of 0.36 Ω and a continuous RMS stall current rated at 5.6 A, reflecting its capability to manage load demands effectively. The system has a back EMF constant of 1.1 V for every 1000 RPM, indicating efficiency at varying speeds. The torque constant is measured at 0.027 Nm/A (rms), showing the relationship between current input and torque output.

Thermal management is assured with a thermal time constant of 0.004 seconds, allowing for quick responses to temperature changes, while the mechanical time constant is specified at 0.65 ms, which contributes to the system's overall operational efficiency and responsiveness.