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The Schneider ATV930D15N4 Altivar Process ATV930 Variable Speed Drive is an industrial AC motor drive used where motor speed, torque, and process demand need to be coordinated. It belongs to the Altivar Process ATV930 family and is intended for motor-driven equipment that benefits from controlled variable-speed operation.
In a typical installation, the drive receives electrical power from the plant supply and delivers controlled power to the motor. The motor then drives equipment such as a pump, fan, compressor, or conveyor. Commands and operating information can be incorporated into a PLC, DCS, HMI, or SCADA architecture, allowing motor operation to follow the wider process strategy.
The ATV930D15N4 is also relevant to retrofit and maintenance work where an existing industrial motor-control system needs a compatible ATV930 drive replacement. Drive selection should always consider the motor, load characteristics, electrical supply, control method, and installation environment together.
| Parameter | Specification |
|---|---|
| Manufacturer | Schneider Electric |
| Model | ATV930D15N4 |
| Product Family | Altivar Process ATV930 |
| Product Type | Variable Speed Drive |
| Primary Function | AC Motor Speed and Torque Control |
| System Role | Motor Drive / Process Control |
| Application | Industrial Automation / Process Equipment |
| Dimensions | 211 × 545.9 × 235 mm |
| Weight | 13.6 kg |
The ATV930D15N4 is suited to industrial applications where the motor needs to respond to changing operating conditions.
Key characteristics include:
The listed 13.6 kg weight should be considered when planning mounting, transportation, and service access.
The ATV930D15N4 controls the motor by regulating the electrical power delivered from the drive output to the connected AC motor.
The basic power path is:
AC Power Supply → ATV930D15N4 → AC Motor → Mechanical Load
The drive adjusts the motor operating conditions so that speed and torque can be controlled according to the required process state. Instead of operating the motor continuously at one fixed speed, the drive can change its output as the machine load or process demand changes.
For example, in a fan system, airflow requirements may vary during production. The drive can regulate motor operation to match the required airflow rather than maintaining maximum motor speed throughout the entire operating cycle.
The control system can also exchange commands, status information, alarm conditions, and relevant operating data with the drive, making the ATV930D15N4 part of the wider automation architecture.
The ATV930D15N4 operates between the electrical supply and the motor-driven equipment.
Incoming Power → ATV930D15N4 → Motor → Process Equipment
A complete control loop can be represented as:
PLC / DCS → Drive → Motor → Process → Sensor Feedback → PLC / DCS
| System Layer | Typical Component | Function |
|---|---|---|
| Electrical Layer | AC Power Supply | Supplies drive input power |
| Drive Layer | ATV930D15N4 | Controls motor operation |
| Motor Layer | AC Motor | Converts electrical energy to mechanical power |
| Equipment Layer | Pump / Fan / Compressor | Performs the process function |
| Feedback Layer | Process Sensors | Measures operating conditions |
| Control Layer | PLC / DCS | Executes process logic |
| Operator Layer | HMI / SCADA | Provides monitoring and control |
This arrangement allows motor regulation and process control to operate as coordinated functions.
The ATV930D15N4 can be used in industrial systems where variable-speed motor control is required.
| Application | Typical Use |
|---|---|
| Pump Stations | Flow and pressure control |
| Industrial Fans | Airflow adjustment |
| HVAC Systems | Variable-speed ventilation |
| Compressor Systems | Process capacity regulation |
| Conveyors | Controlled material transport |
| Water Treatment | Pump and process equipment control |
| Manufacturing Lines | Variable-speed machinery |
| Process Plants | Continuous-duty motor applications |
Applications should be evaluated according to motor characteristics, load behavior, required control accuracy, and process conditions.
Correct installation is important for maintaining stable drive operation over the service life of the equipment.
Recommended checks include:
During replacement work, recording the original drive configuration before removal can reduce commissioning time and help preserve established operating parameters.
The ATV930D15N4 normally works together with several electrical and automation components.
| Component | Function |
|---|---|
| AC Power Supply | Provides incoming electrical power |
| ATV930D15N4 | Regulates motor operation |
| AC Motor | Produces mechanical output |
| Motor Cable | Transfers drive output to the motor |
| Circuit Protection | Protects the electrical installation |
| PLC / DCS | Provides operating and process commands |
| HMI / SCADA | Displays drive and process information |
| Process Sensors | Supplies process feedback |
| Pump / Fan / Compressor | Performs the required process task |
| Communication Interface | Transfers control and diagnostic information |
Correct coordination between the drive and these components is important for reliable motor control.
| Model / Product Family | Product Type | Typical Application |
|---|---|---|
| Schneider ATV930D15N4 | Altivar Process ATV930 Variable Speed Drive | Industrial AC motor control |
| Schneider ATV930D11N4 | Altivar Process ATV930 Variable Speed Drive | Process motor applications |
| Schneider ATV930D18N4 | Altivar Process ATV930 Variable Speed Drive | Variable-speed machinery |
| Schneider ATV930D22N4 | Altivar Process ATV930 Variable Speed Drive | Larger motor-driven equipment |
| Schneider ATV930 Series | Altivar Process Variable Speed Drive | Industrial process control |
A related model should not be selected based only on nominal power or physical appearance. Motor data, supply conditions, application load, control requirements, and system configuration should all be verified.
The drive allows motor operation to be adjusted according to process demand. A PLC, DCS, or other control system can determine the required operating point while the drive manages the corresponding motor-control function.
The motor nameplate data, drive configuration, incoming power, motor wiring, grounding, rotation direction, acceleration and deceleration parameters, and control signals should be checked before placing the equipment into normal operation.
Different machines place different demands on a motor. Pumps, fans, conveyors, and compressors can have substantially different torque and speed characteristics, so drive selection should reflect the actual application rather than relying on motor power alone.
Excessive heat, blocked ventilation paths, dust accumulation, loose electrical connections, abnormal motor loading, and unsuitable installation conditions can increase thermal and electrical stress. Regular inspection of the drive environment and connections helps identify these issues early.