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The 20G1ANC367JN0NNNNN is a high-capacity industrial adjustable-frequency AC drive designed for large three-phase motor applications.
It belongs to the PowerFlex 755 family and is intended for demanding industrial equipment where accurate motor-speed control, controlled acceleration and deceleration, motor protection, diagnostics, and automation-system integration are required.
The approximately 367 A current class places this model in the high-power industrial drive category. It is therefore more appropriate for substantial machinery than for small standalone motors.
Typical equipment associated with this type of drive includes large conveyors, pumps, fans, blowers, mixers, process machinery, material-handling systems, extruders, compressors, rollers, and other heavy-duty rotating equipment.
| Parameter | Description |
|---|---|
| Model | 20G1ANC367JN0NNNNN |
| Brand | Allen-Bradley |
| Product Family | PowerFlex |
| Product Series | PowerFlex 755 |
| Product Type | Adjustable-Frequency AC Drive |
| Drive Category | Industrial Variable-Frequency Drive |
| Voltage Class | 480 V class |
| Current Class | Approximately 367 A |
| Input | Three-phase AC |
| Output | Three-phase variable-frequency AC |
| Motor Type | Three-phase AC motor |
| Motor Speed Control | Yes |
| Adjustable Frequency | Yes |
| Acceleration Control | Yes |
| Deceleration Control | Yes |
| Motor Protection | Integrated functions |
| Diagnostics | Integrated |
| Communication | Configuration dependent |
| Feedback | Configuration dependent |
| Cooling | Forced-air cooling |
| Installation | Industrial panel / cabinet |
| Mounting Orientation | Generally vertical |
| Typical Application | Large industrial machinery |
| Approximate Weight | 90–130 kg |
| Weight Unit | kg |
The 20G1ANC367JN0NNNNN belongs to the PowerFlex 755 series.
The PowerFlex 755 family is designed for industrial applications requiring considerably more control functionality than a basic motor starter.
A drive of this type does not simply turn a motor on and off. It controls the electrical output delivered to the motor and allows the motor to operate according to a programmed speed, torque, acceleration, and deceleration profile.
This makes the series suitable for machinery where motor behavior has a direct influence on production quality, material movement, machine safety, or process stability.
The series is particularly suitable for medium-to-large and large industrial motor applications.
The 20G1ANC367JN0NNNNN acts as the controlled power interface between an industrial three-phase power supply and a large AC motor.
A simplified arrangement can be represented as:
Three-Phase AC Supply
↓
20G1ANC367JN0NNNNN AC Drive
↓
Variable-Frequency Three-Phase Output
↓
Large AC Motor
↓
Mechanical Transmission
↓
Industrial Machine
The drive changes the electrical characteristics supplied to the motor so that the motor can operate at different speeds instead of being restricted to a single fixed operating speed.
This is particularly useful when machine production rates vary.
For example, a conveyor may need to operate slowly during loading and faster during normal transportation.
A pump may require different flow rates at different times.
A fan may need reduced airflow during low production periods.
A mixer may require several different operating speeds during a production cycle.
A large roller may need to synchronize its speed with another machine.
The drive provides the electrical control required for these types of applications.
| Parameter | Approximate / General Specification |
|---|---|
| Model | 20G1ANC367JN0NNNNN |
| Brand | Allen-Bradley |
| Family | PowerFlex |
| Series | PowerFlex 755 |
| Product Type | Adjustable-Frequency AC Drive |
| Voltage Class | 480 V class |
| Current Rating Class | Approximately 367 A |
| Input Phase | Three-phase |
| Input Frequency | 50/60 Hz |
| Output Phase | Three-phase |
| Output Type | Variable-frequency AC |
| Motor Type | Three-phase AC |
| Variable-Speed Operation | Yes |
| Adjustable Acceleration | Yes |
| Adjustable Deceleration | Yes |
| Torque Control | Supported |
| PID Control | Supported depending on configuration |
| Motor Protection | Integrated |
| Overcurrent Monitoring | Supported |
| Overvoltage Monitoring | Supported |
| Undervoltage Monitoring | Supported |
| Thermal Monitoring | Supported |
| Stall Monitoring | Supported |
| Fault Detection | Integrated |
| Alarm Functions | Integrated |
| Diagnostic Functions | Integrated |
| Feedback | Configuration dependent |
| Communication | Configuration dependent |
| Cooling | Forced air |
| Mounting | Panel / cabinet |
| Installation Orientation | Generally vertical |
| Approx. Width | 500–650 mm |
| Approx. Height | 900–1,100 mm |
| Approx. Depth | 400–600 mm |
| Approx. Overall Envelope | 500–650 × 900–1,100 × 400–600 mm |
| Approx. Weight | 90–130 kg |
| Weight | 90–130 kg |
| Typical Duty | Industrial motor control |
| Typical Load | Large rotating machinery |
Because large industrial drives can be configured with different hardware options, the physical envelope can vary.
For preliminary cabinet planning, the following values can be used as an approximate reference:
| Mechanical Parameter | Approximate Value |
|---|---|
| Model | 20G1ANC367JN0NNNNN |
| Width | 500–650 mm |
| Height | 900–1,100 mm |
| Depth | 400–600 mm |
| Approximate Overall Envelope | 500–650 × 900–1,100 × 400–600 mm |
| Weight | 90–130 kg |
| Weight Unit | kg |
| Mounting | Vertical panel / cabinet |
| Cooling | Forced air |
| Installation | Industrial cabinet |
| Service Access | Required |
| Ventilation | Required |
The dimensions above are intended for preliminary engineering only.
The final mechanical dimensions should be confirmed against the exact configured unit before designing a cabinet, mounting plate, shipping package, lifting arrangement, or replacement installation.
The weight is also affected by the hardware configuration and accessories.
The main function of the drive is to regulate the electrical power supplied to the motor.
The incoming AC power is processed by the drive and converted into a controlled output.
The output frequency can be adjusted to change the motor operating speed.
This gives the machine greater flexibility than a conventional fixed-speed motor starter.
A simplified control concept is:
Speed Reference
↓
Drive Control System
↓
Output Frequency / Voltage
↓
Motor Speed
↓
Mechanical Process
The controller can change the speed reference according to the requirements of the production process.
The approximately 367 A class is significant because it allows the drive to serve large motor loads.
Applications at this level commonly involve machinery with substantial mechanical power requirements.
Examples include:
The exact motor power that can be served depends on voltage, duty, motor characteristics, overload requirements, ambient conditions, and the specific application.
Variable-speed control is one of the main advantages of an industrial AC drive.
A fixed-speed motor system generally operates around one normal operating speed.
A variable-frequency drive allows the motor speed to be adjusted.
For example:
| Machine Condition | Typical Drive Operation |
|---|---|
| Loading | Low speed |
| Startup | Controlled acceleration |
| Normal production | Medium / high speed |
| High production | Higher speed |
| Inspection | Reduced speed |
| Changeover | Low speed |
| Shutdown | Controlled deceleration |
This allows the motor to follow the actual requirements of the machine.
Large industrial motors can drive equipment with considerable mechanical inertia.
If a large motor is started abruptly, the resulting acceleration can create substantial mechanical stress.
The drive can gradually increase the motor speed.
This can help reduce stress on:
Controlled acceleration can also improve the overall operating behavior of the machine.
The drive can also control how quickly the motor slows down.
Instead of immediately stopping the motor, the drive can follow a programmed deceleration profile.
This is particularly useful for high-inertia machinery.
Examples include:
The appropriate stopping profile depends on the machine’s inertia, load characteristics, braking requirements, and production process.
The drive provides multiple monitoring and protection functions intended to help identify abnormal electrical and operating conditions.
Typical functions include:
These functions help prevent unsuitable operating conditions from continuing unnoticed.
Correct motor data and proper drive configuration remain important for effective motor protection.
Large production machines can be expensive to stop.
For this reason, diagnostic information is important.
The drive can provide operating information that can help maintenance personnel identify abnormal conditions.
Typical information includes:
| Diagnostic Parameter | Purpose |
|---|---|
| Drive Status | Shows operating state |
| Output Frequency | Indicates commanded electrical frequency |
| Speed Reference | Shows requested motor speed |
| Motor Current | Indicates motor electrical loading |
| Fault Status | Identifies shutdown conditions |
| Alarm Status | Identifies warning conditions |
| Temperature | Supports thermal diagnosis |
| Communication Status | Helps diagnose control-system problems |
| Operating Data | Supports troubleshooting |
| Motor Condition Data | Helps evaluate operating behavior |
This information can reduce troubleshooting time and improve maintenance efficiency.
The drive can be integrated into an industrial automation architecture.
A typical system may contain:
Industrial Controller
↓
Control Network / I/O
↓
20G1ANC367JN0NNNNN
↓
Large AC Motor
↓
Mechanical Equipment
The controller can send:
The drive can provide:
This allows the motor to become part of the complete automated production process.
| Application | Main Purpose |
|---|---|
| Heavy Conveyor | Variable material-transport speed |
| Large Pump | Flow and pressure regulation |
| Large Fan | Airflow adjustment |
| Industrial Blower | Variable air volume |
| Mixer | Adjustable mixing speed |
| Feeder | Controlled material flow |
| Roller | Production synchronization |
| Extrusion Machinery | Controlled process speed |
| Material Handling | Controlled transportation |
| Processing Machinery | Variable process speed |
| Packaging Machinery | Production-line speed control |
| Heavy Rotating Equipment | Controlled motor operation |
A large conveyor can have considerable mechanical inertia.
Starting a heavily loaded conveyor directly can result in high mechanical stress.
The drive can provide controlled acceleration.
This allows the conveyor to transition from zero speed to its normal operating speed gradually.
Speed control can also be used during production.
For example:
| Conveyor Condition | Drive Function |
|---|---|
| Empty Conveyor | Reduced speed |
| Loading | Low speed |
| Normal Transport | Normal speed |
| High Production | Increased speed |
| Inspection | Reduced speed |
| Product Changeover | Low speed |
| Shutdown | Controlled deceleration |
This provides a more flexible material-handling system.
Large pumps are another important application.
A pump does not necessarily need to operate at maximum speed continuously.
The required flow may vary during the production process.
The drive can change the pump motor speed to correspond to the required operating condition.
Typical applications include:
Variable-speed operation can provide more flexible process control than continuously operating a motor at full speed.
Industrial ventilation systems can have changing airflow requirements.
A large fan or blower may operate at different speeds depending on production demand.
The drive can adjust motor speed accordingly.
Potential applications include:
Speed control can provide more precise airflow regulation than a simple fixed-speed motor arrangement.
Large mixers frequently operate at several speeds during a production cycle.
For example:
Material Loading
↓
Initial Mixing
↓
Main Mixing
↓
High-Speed Mixing
↓
Final Mixing
↓
Discharge
The drive can control the motor speed during each stage.
This provides greater flexibility when different materials or recipes require different operating conditions.
Industrial feeders are used to regulate the movement of raw materials or processed materials.
The motor speed can be adjusted according to production demand.
| Production Requirement | Typical Speed |
|---|---|
| Low production | Low |
| Normal production | Medium |
| High production | High |
| Reduced feed | Reduced |
| Stop | Controlled deceleration |
This can allow the feeder to coordinate with downstream equipment.
Industrial rollers frequently require controlled and stable speed.
Typical applications include:
Variable-speed operation can help synchronize one machine section with another.
This is particularly useful when multiple motors operate together.
The approximately 367 A class makes this model suitable for large industrial motor applications.
It is designed for applications where a smaller drive would not provide sufficient current capacity.
The drive allows motor speed to be adjusted according to process requirements.
This improves production flexibility.
Controlled acceleration can reduce the mechanical shock associated with starting large machinery.
Controlled deceleration can improve machine stopping behavior.
Motor current, speed-related information, frequency, alarms, and faults can be monitored.
Diagnostic functions can help maintenance personnel identify problems.
The drive can operate as part of a larger industrial control system.
Different speed references can be used for different production stages.
Variable-speed control can reduce energy consumption in appropriate variable-torque applications.
Actual savings depend on the complete machine and operating profile.
The high-current configuration is suitable for substantial mechanical loads.
| Feature | Practical Benefit |
|---|---|
| Variable Speed | Better process control |
| Controlled Acceleration | Reduced mechanical shock |
| Controlled Deceleration | Smoother stopping |
| Adjustable Speed Reference | Flexible production |
| Torque Control | Better motor-load response |
| Diagnostic Monitoring | Easier maintenance |
| Fault Detection | Faster troubleshooting |
| Automation Integration | Centralized machine control |
| High Current Capacity | Large motor applications |
| Forced-Air Cooling | Supports high-power operation |
Energy performance is particularly relevant for pumps, fans, and blowers.
If a machine does not require maximum speed continuously, the drive can reduce motor speed when process demand decreases.
This can create energy-saving opportunities.
The actual energy reduction depends on:
For this reason, energy savings should be evaluated from the complete machine rather than assumed solely from the drive.
A large industrial drive should be installed in an environment suitable for electronic power equipment.
| Environmental Factor | Consideration |
|---|---|
| Temperature | Must remain within the applicable operating range |
| Humidity | Condensation should be avoided |
| Dust | Can restrict cooling airflow |
| Chemical Vapors | May affect electronic components |
| Vibration | Should be evaluated |
| Altitude | Can affect thermal performance |
| Airflow | Must remain adequate |
| Cabinet Ventilation | Required |
| Maintenance | Cooling paths should remain clean |
Industrial cabinets should be designed to manage the heat generated by the drive and other equipment.
The drive should normally be installed in an appropriate electrical cabinet or panel.
Adequate space should be provided for:
The cabinet should not restrict the drive’s cooling airflow.
When multiple high-power drives are installed in the same enclosure, the combined thermal load should be evaluated.
| Parameter | Approximate Reference |
|---|---|
| Model | 20G1ANC367JN0NNNNN |
| Width | 500–650 mm |
| Height | 900–1,100 mm |
| Depth | 400–600 mm |
| Approx. Envelope | 500–650 × 900–1,100 × 400–600 mm |
| Weight | 90–130 kg |
| Weight Unit | kg |
| Mounting | Vertical |
| Cooling | Forced air |
| Installation | Electrical cabinet |
| Service Space | Required |
| Ventilation | Required |
| Lifting Consideration | Required due to high weight |
The actual dimensions should be checked before fabrication of the final cabinet.
Correct motor matching is essential.
The following motor parameters should be evaluated:
| Motor Parameter | Importance |
|---|---|
| Rated Voltage | Determines electrical compatibility |
| Full-Load Current | Critical sizing parameter |
| Rated Power | Important for capacity evaluation |
| Rated Frequency | Required for configuration |
| Rated Speed | Required for motor setup |
| Motor Type | Determines control requirements |
| Power Factor | Useful for electrical calculations |
| Efficiency | Useful for energy analysis |
| Overload Requirement | Important for drive selection |
| Feedback Requirement | Determines hardware requirements |
Motor full-load current should be considered one of the most important selection criteria.
The drive should not be selected solely from the motor horsepower or kilowatt value.
The 367 A class is suitable for machinery that may involve significant mechanical inertia.
Examples include:
Important engineering factors include:
The acceleration and deceleration profiles should be established according to the actual machine.
Three-Phase AC Supply
↓
Disconnect / Protection
↓
20G1ANC367JN0NNNNN
↓
Three-Phase AC Motor
↓
Mechanical Transmission
↓
Industrial Machine
Industrial Controller
↓
Communication / I/O
↓
AC Drive
↓
Motor
↓
Machine Process
This structure separates the motor-power-control function from the higher-level machine-control function.
The controller sends a start command.
The drive increases output frequency according to the programmed acceleration profile.
The motor reaches the required operating speed.
The speed reference can be changed according to process demand.
The drive maintains the requested operating condition.
The controller issues a stop command.
The drive reduces motor speed according to the configured deceleration profile.
The motor reaches the required stopped condition.
The following models are useful for comparison when evaluating nearby high-power configurations and related drive families.
| Model | Series | Voltage Class | Approx. Current Class | Input | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|
| 20G1ANC248JN0NNNNN | PowerFlex 755 | 480 V class | 248 A class | Three-phase | 450–600 × 800–1,000 × 350–550 mm* | 70–100* | Large industrial machinery |
| 20G1ANC302JN0NNNNN | PowerFlex 755 | 480 V class | 302 A class | Three-phase | 500–650 × 850–1,050 × 400–600 mm* | 80–115* | Heavy-duty machinery |
| 20G1ANC367JN0NNNNN | PowerFlex 755 | 480 V class | 367 A class | Three-phase | 500–650 × 900–1,100 × 400–600 mm* | 90–130* | Large industrial machinery |
| 20G1ANC460JN0NNNNN | PowerFlex 755 | 480 V class | 460 A class | Three-phase | 550–700 × 950–1,150 × 450–650 mm* | 110–150* | Very large motor applications |
| 20F1ANC205AA0NNNNN | PowerFlex 753 | 480 V class | 205 A class | Three-phase | 450–600 × 750–950 × 350–550 mm* | 55–80* | Large industrial machinery |
*Approximate engineering comparison values. Exact dimensions and weights depend on the specific configuration and hardware arrangement.
| Parameter | 20G1ANC248JN0NNNNN | 20G1ANC302JN0NNNNN | 20G1ANC367JN0NNNNN | 20G1ANC460JN0NNNNN | 20F1ANC205AA0NNNNN |
|---|---|---|---|---|---|
| Series | PowerFlex 755 | PowerFlex 755 | PowerFlex 755 | PowerFlex 755 | PowerFlex 753 |
| Voltage Class | 480 V | 480 V | 480 V | 480 V | 480 V |
| Current Class | 248 A | 302 A | 367 A | 460 A | 205 A |
| Input | Three-phase | Three-phase | Three-phase | Three-phase | Three-phase |
| Variable Speed | Yes | Yes | Yes | Yes | Yes |
| Acceleration Control | Yes | Yes | Yes | Yes | Yes |
| Deceleration Control | Yes | Yes | Yes | Yes | Yes |
| Torque Control | Supported | Supported | Supported | Supported | Supported |
| PID | Supported | Supported | Supported | Supported | Supported |
| Diagnostics | Yes | Yes | Yes | Yes | Yes |
| Approx. Width | 450–600 mm | 500–650 mm | 500–650 mm | 550–700 mm | 450–600 mm |
| Approx. Height | 800–1,000 mm | 850–1,050 mm | 900–1,100 mm | 950–1,150 mm | 750–950 mm |
| Approx. Depth | 350–550 mm | 400–600 mm | 400–600 mm | 450–650 mm | 350–550 mm |
| Approx. Weight | 70–100 kg | 80–115 kg | 90–130 kg | 110–150 kg | 55–80 kg |
| Model | Series | Voltage Class | Current Class | Input | Output | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|---|
| 20G1ANC248JN0NNNNN | PowerFlex 755 | 480 V class | 248 A class | Three-phase | Variable-frequency AC | 450–600 × 800–1,000 × 350–550 mm* | 70–100* | Large pumps, conveyors, fans |
| 20G1ANC302JN0NNNNN | PowerFlex 755 | 480 V class | 302 A class | Three-phase | Variable-frequency AC | 500–650 × 850–1,050 × 400–600 mm* | 80–115* | Heavy industrial machinery |
| 20G1ANC367JN0NNNNN | PowerFlex 755 | 480 V class | 367 A class | Three-phase | Variable-frequency AC | 500–650 × 900–1,100 × 400–600 mm* | 90–130* | Large process equipment |
| 20G1ANC460JN0NNNNN | PowerFlex 755 | 480 V class | 460 A class | Three-phase | Variable-frequency AC | 550–700 × 950–1,150 × 450–650 mm* | 110–150* | Very large motor systems |
| 20F1ANC205AA0NNNNN | PowerFlex 753 | 480 V class | 205 A class | Three-phase | Variable-frequency AC | 450–600 × 750–950 × 350–550 mm* | 55–80* | Large industrial machinery |
The following models represent useful comparison points from the same product portfolio, covering different power levels and applications.
| Model | Product Series | Voltage Class | Approx. Current Class | Input | Variable Speed | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|---|
| 20G1ANC367JN0NNNNN | PowerFlex 755 | 480 V class | 367 A class | Three-phase | Yes | 500–650 × 900–1,100 × 400–600 mm* | 90–130* | Large industrial machinery |
| 20G1AND248JN0NNNNN | PowerFlex 755 | 480 V class | 248 A class | Three-phase | Yes | 450–600 × 800–1,000 × 350–550 mm* | 70–100* | Large process machinery |
| 20F11NC085AA0NNNNN | PowerFlex 753 | 480 V class | 85 A class | Three-phase | Yes | 350–450 × 600–750 × 300–400 mm* | 28–42* | Heavy industrial equipment |
| 20F11NC104AA0NNNNN | PowerFlex 753 | 480 V class | 104 A class | Three-phase | Yes | 350–450 × 650–800 × 300–450 mm* | 35–50* | Industrial machinery |
| 25B-D030N114 | PowerFlex 525 | 480 V class | 30 A class | Three-phase | Yes | 250–300 × 150–250 × 220–300 mm* | 5–9* | Compact industrial equipment |
| Feature | PowerFlex 525 | PowerFlex 753 | PowerFlex 755 |
|---|---|---|---|
| General Application | Compact industrial machinery | Medium / large industrial machinery | Large and demanding industrial machinery |
| Typical Motor Size | Small to medium | Medium to large | Large |
| Variable Speed | Yes | Yes | Yes |
| Controlled Acceleration | Yes | Yes | Yes |
| Controlled Deceleration | Yes | Yes | Yes |
| Torque Control | Supported | Advanced | Advanced |
| PID | Supported | Supported | Supported |
| Diagnostics | Yes | Yes | Yes |
| Feedback | Configuration dependent | Available | Available |
| Communication | Available | Available | Extensive options |
| Expansion Capability | Good | Strong | Strong |
| Large Motor Application | Limited | Very good | Excellent |
| Complex Machinery | Good | Very good | Excellent |
| Heavy Process Equipment | Limited | Very good | Excellent |
| Function | Conventional Starter | 20G1ANC367JN0NNNNN |
|---|---|---|
| Start / Stop | Yes | Yes |
| Variable Speed | No | Yes |
| Controlled Acceleration | Limited | Yes |
| Controlled Deceleration | Limited | Yes |
| Speed Reference | No | Yes |
| Motor Current Monitoring | Limited | Yes |
| Motor Protection | Basic | Advanced |
| Process Speed Regulation | No | Yes |
| PID Control | No | Supported |
| Diagnostic Information | Limited | Advanced |
| Automation Integration | Limited | Yes |
| Multiple Speed Settings | Limited | Yes |
| Potential Energy Optimization | Limited | Yes |
The principal advantage is that the drive provides substantially greater control over the motor and the connected mechanical system.
Maintenance personnel can use drive operating information to evaluate the condition of the motor and machine.
Important information includes:
These parameters can help distinguish between electrical, mechanical, thermal, and control-related problems.
A structured troubleshooting process can reduce unnecessary component replacement and machine downtime.
| Check | Purpose |
|---|---|
| Incoming Voltage | Verify power supply |
| Motor Current | Evaluate electrical loading |
| Output Frequency | Verify drive output |
| Speed Reference | Confirm requested speed |
| Actual Speed | Verify motor response |
| Fault Code | Identify shutdown condition |
| Alarm Status | Identify warning |
| Motor Wiring | Verify connections |
| Motor Condition | Check motor health |
| Cooling Airflow | Confirm heat removal |
| Cabinet Temperature | Evaluate thermal conditions |
| Communication | Verify controller connection |
| Mechanical Load | Check excessive resistance |
| Acceleration Time | Check startup requirements |
| Deceleration Time | Check stopping requirements |
Before selecting or replacing the 20G1ANC367JN0NNNNN, the following items should be evaluated.
The motor voltage must be compatible with the drive’s voltage class.
The motor’s full-load current should be compared with the applicable drive current rating.
The rated motor power should be evaluated together with voltage and current.
Determine whether the machine requires variable-torque or constant-torque operation.
Determine the required overload level and duration.
Determine the required minimum and maximum operating speed.
Determine the torque required during startup.
Evaluate the inertia of the complete machine.
Determine whether the machine requires rapid stopping or braking energy management.
Determine whether encoder or other feedback is required.
Evaluate:
Confirm that the enclosure has sufficient room for:
| Industry | Application | Main Advantage |
|---|---|---|
| Material Handling | Heavy Conveyor | Controlled movement |
| Water Processing | Large Pump | Flow regulation |
| HVAC / Ventilation | Large Fan | Airflow control |
| Industrial Processing | Blower | Variable airflow |
| Manufacturing | Roller | Speed synchronization |
| Food Processing | Mixer | Adjustable mixing speed |
| Bulk Material | Feeder | Controlled material delivery |
| Packaging | Conveyor / Roller | Production flexibility |
| Process Industry | Large Rotating Equipment | Variable operating speed |
| Heavy Manufacturing | Large Motor Systems | High-capacity motor control |
A high-power drive should be treated as a significant electrical and thermal component of the machine.
The installation should provide suitable:
The drive should be installed by appropriately qualified personnel according to the applicable electrical and machine-design requirements.
The 20G1ANC367JN0NNNNN offers several important advantages for large industrial applications.
The approximately 367 A class allows the drive to serve substantial motor loads.
Motor speed can be adjusted according to production requirements.
The motor can accelerate gradually, reducing mechanical shock.
The motor can decelerate according to a programmed profile.
Operating information can be monitored during normal operation.
Fault and alarm information can support troubleshooting.
The drive can participate in a larger industrial control architecture.
Different speed settings can be used for different machine operations.
Suitable pump, fan, and blower applications may benefit from reduced motor speed during periods of lower demand.
The high-current configuration makes the product appropriate for substantial industrial machinery.
| Parameter | 20G1ANC367JN0NNNNN |
|---|---|
| Brand | Allen-Bradley |
| Product Family | PowerFlex |
| Product Series | PowerFlex 755 |
| Product Type | Adjustable-Frequency AC Drive |
| Voltage Class | 480 V class |
| Current Class | Approximately 367 A |
| Input | Three-phase AC |
| Input Frequency | 50/60 Hz |
| Output | Three-phase variable-frequency AC |
| Motor Type | Three-phase AC motor |
| Variable-Speed Control | Yes |
| Acceleration Control | Yes |
| Deceleration Control | Yes |
| Torque Control | Supported |
| PID Functions | Supported depending on configuration |
| Motor Protection | Integrated |
| Overcurrent Monitoring | Supported |
| Overvoltage Monitoring | Supported |
| Undervoltage Monitoring | Supported |
| Thermal Monitoring | Supported |
| Stall Monitoring | Supported |
| Fault Detection | Integrated |
| Diagnostic Functions | Integrated |
| Feedback | Configuration dependent |
| Communication | Configuration dependent |
| Cooling | Forced air |
| Mounting | Panel / cabinet |
| Approx. Width | 500–650 mm |
| Approx. Height | 900–1,100 mm |
| Approx. Depth | 400–600 mm |
| Approx. Overall Envelope | 500–650 × 900–1,100 × 400–600 mm |
| Approx. Weight | 90–130 kg |
| Weight Unit | kg |
| Typical Applications | Large conveyors, pumps, fans, blowers, mixers, feeders, rollers, process machinery |
| Typical Duty | Large industrial motor control |
The 20G1ANC367JN0NNNNN is a high-capacity industrial variable-frequency drive belonging to the PowerFlex 755 series.
With an approximately 367 A current class, it is intended for substantially larger motor applications than compact variable-frequency drives.
Its main function is to provide controlled electrical power to a three-phase AC motor while allowing the motor’s speed and operating behavior to be adjusted according to the machine’s requirements.
This makes it particularly useful for heavy conveyors, large pumps, industrial fans, blowers, mixers, feeders, rollers, processing machinery, material-handling systems, and other large rotating equipment.
One of its most important advantages is controlled acceleration.
Large machinery can contain considerable mechanical inertia, and bringing that machinery from zero speed to operating speed gradually can provide smoother machine operation and reduce sudden mechanical loading.
Controlled deceleration provides a similar benefit when the machine needs to stop.
Variable-speed operation also provides considerable process flexibility.
A conveyor can operate at different speeds depending on material flow.
A pump can adjust its operating speed according to process demand.
A fan can reduce speed when full airflow is unnecessary.
A mixer can use different speeds during different stages of production.
A roller can be synchronized with other sections of a production line.
The drive’s monitoring and diagnostic functions also provide useful information for maintenance personnel.
Current, speed-related information, operating status, alarms, and faults can be used to identify abnormal operating conditions and assist troubleshooting.
For automated production equipment, the drive can be incorporated into the machine’s control architecture and exchange operating information with the higher-level controller.
From a mechanical-planning perspective, a preliminary envelope of approximately 500–650 mm wide × 900–1,100 mm high × 400–600 mm deep and an approximate weight of 90–130 kg can be used for early cabinet and installation planning.
These figures should not be treated as final certified dimensions or shipping weights because the exact physical configuration and installed options can change the final size and mass.
Before final installation, the exact configured unit should be checked for electrical rating, overload duty, dimensions, mounting requirements, cooling requirements, wiring requirements, braking requirements, feedback requirements, environmental conditions, and cabinet thermal capacity.
Overall, the 20G1ANC367JN0NNNNN is best suited to applications where a large AC motor requires high-capacity variable-speed control, controlled acceleration and deceleration, motor monitoring, diagnostics, and integration into an industrial automation system.