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The 20F1ANC170AA0NNNNN is a high-capacity industrial adjustable-frequency AC drive designed for variable-speed control of three-phase AC motors.
It belongs to the PowerFlex 753 product series and is intended for industrial machinery where accurate motor-speed regulation, controlled acceleration and deceleration, motor protection, diagnostics and automation integration are required.
The 170 A class places this drive in the higher-capacity range of the PowerFlex 753 family. It is therefore more appropriate for large industrial motors and demanding machinery than for small or compact motor applications.
Typical equipment that can benefit from this type of drive includes heavy conveyors, pumps, fans, blowers, mixers, material-handling systems, rollers, feeders and various processing machines.
The basic power arrangement is:
Three-Phase AC Supply → Adjustable-Frequency Drive → Three-Phase Motor → Mechanical Load
The drive controls the motor by regulating the electrical output supplied to the motor. This allows the motor speed and operating behavior to be adjusted according to machine requirements.
| Item | Description |
|---|---|
| Model | 20F1ANC170AA0NNNNN |
| Brand | Allen-Bradley |
| Product Family | PowerFlex |
| Product Series | PowerFlex 753 |
| Product Type | Adjustable-Frequency AC Drive |
| Application Category | Industrial motor control |
| Current Class | Approximately 170 A |
| Voltage Class | 480 V class |
| Input | Three-phase AC |
| Output | Three-phase variable-frequency AC |
| Motor Type | Three-phase AC motor |
| Installation | Industrial panel or cabinet |
| Cooling | Forced-air cooling |
| Control | Programmable motor control |
| Diagnostics | Integrated |
| Motor Protection | Integrated |
The 20F1ANC170AA0NNNNN is designed for industrial applications where a motor needs to operate at different speeds rather than simply being switched between a stopped condition and full operating speed.
Many industrial processes operate under changing production conditions.
For example, a conveyor may need a low speed during loading and a higher speed during normal transportation.
A pump may need to change speed according to flow demand.
A fan may require different airflow levels depending on production conditions.
A mixer may use several speed stages during loading, mixing and discharge.
A feeder may require accurate speed adjustment to regulate material flow.
In such applications, an adjustable-frequency drive provides much greater operating flexibility than a conventional motor starter.
The drive can act as the electrical and control interface between the industrial power system and the motor while also communicating important operating information to the machine-control system.
The basic operating process can be represented as follows:
Industrial AC Power
↓
Power Conversion
↓
Controlled Voltage and Frequency
↓
Three-Phase Motor
↓
Mechanical Equipment
The drive receives electrical power from the industrial power system and produces a controlled three-phase output for the motor.
The output frequency is an important factor in determining motor speed.
The drive also manages output voltage and motor-control characteristics according to the configured operating mode.
A machine controller can provide commands such as:
The drive can return information such as:
This allows the drive to operate as part of a larger automated machine rather than as an isolated motor controller.
| Parameter | Reference Specification |
|---|---|
| Model | 20F1ANC170AA0NNNNN |
| Brand | Allen-Bradley |
| Product Family | PowerFlex |
| Series | PowerFlex 753 |
| Product Type | Adjustable-Frequency AC Drive |
| Voltage Class | 480 V class |
| Current Class | Approximately 170 A |
| Input Phase | Three-phase |
| Input Frequency | 50/60 Hz |
| Output Phase | Three-phase |
| Output Type | Variable-frequency AC |
| Motor Type | Three-phase AC motor |
| Variable-Speed Operation | Yes |
| Acceleration Control | Yes |
| Deceleration Control | 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 Protection | Supported |
| Fault Monitoring | Integrated |
| Diagnostic Functions | Integrated |
| Feedback | Configuration dependent |
| Communication | Configuration dependent |
| Cooling | Forced air |
| Mounting | Panel / cabinet |
| Approximate Width | 450–550 mm |
| Approximate Height | 750–900 mm |
| Approximate Depth | 350–500 mm |
| Approximate Overall Envelope | 450–550 × 750–900 × 350–500 mm |
| Approximate Weight | 50–70 kg |
| Weight Unit | kg |
The physical dimensions and weight shown above are preliminary engineering reference values.
Actual mechanical dimensions and mass may vary according to the exact hardware configuration, installation arrangement, accessories and enclosure requirements.
The catalog number 20F1ANC170AA0NNNNN identifies a specific configuration within the PowerFlex 753 family.
The complete catalog number should always be considered when selecting a replacement.
Two drives can have similar current ratings while differing in configuration, control hardware, options or other characteristics.
For this reason, the complete catalog number is more useful for replacement and engineering purposes than simply identifying a drive by its horsepower or current rating.
| Identification Item | Description |
|---|---|
| Catalog Number | 20F1ANC170AA0NNNNN |
| Product Family | PowerFlex |
| Product Series | PowerFlex 753 |
| Product Category | Industrial AC Drive |
| Current Class | Approximately 170 A |
| Voltage Class | 480 V class |
| Input | Three-phase AC |
| Output | Variable-frequency three-phase AC |
| Installation | Industrial cabinet / panel |
| Cooling | Forced air |
| Application | Large industrial motor control |
One of the main purposes of the drive is to provide adjustable motor speed.
A fixed-speed motor generally operates close to its normal operating speed when energized.
A variable-frequency drive provides a different approach.
The motor can operate at multiple speeds depending on the process.
For example:
| Machine Condition | Typical Speed Strategy |
|---|---|
| Loading | Low speed |
| Initial Operation | Low or medium speed |
| Normal Production | Medium speed |
| High Production | Higher speed |
| Inspection | Reduced speed |
| Product Changeover | Low speed |
| Unloading | Low speed |
| Stopping | Controlled deceleration |
This can provide considerably more flexibility for industrial machinery.
Large industrial equipment often contains substantial mechanical inertia.
Examples include:
If full operating power is applied immediately, mechanical components can experience significant starting stress.
The drive can use an acceleration ramp to increase motor speed progressively.
This can help reduce mechanical shock on:
Controlled acceleration can also provide smoother machine operation.
The same principle applies when stopping.
Instead of simply removing power from the motor, the drive can reduce motor speed according to the programmed deceleration profile.
This is useful for equipment with significant rotating mass.
Potential applications include:
The correct stopping method depends on the machine’s inertia, stopping-time requirements and braking arrangement.
The motor speed can be used as an active machine-control variable.
A production machine may require several operating speeds during one production cycle.
For example:
Loading → Slow Speed
Processing → Medium Speed
High Production → Higher Speed
Inspection → Reduced Speed
Unloading → Slow Speed
The drive can support this type of operating strategy.
This can be especially useful where the machine needs to respond to changing process requirements.
Industrial machines often experience changing mechanical loads.
A conveyor carrying a light load may require relatively little torque.
The same conveyor carrying heavy material may require substantially more torque.
A mixer may also experience changing resistance as material is added.
The drive can manage motor operation according to the selected motor-control method and programmed motor data.
Torque performance depends on several factors, including:
Proper commissioning is therefore important for obtaining the required machine performance.
The drive incorporates monitoring and protective functions designed to help manage abnormal operating conditions.
Typical protective functions can include:
These functions can help protect the motor and drive from unsuitable operating conditions.
Protection settings should be selected according to the actual motor and machine requirements.
Industrial production equipment must be easy to troubleshoot because unexpected downtime can be expensive.
The drive can provide operating information that helps maintenance personnel identify problems.
Typical information can include:
| Diagnostic Information | Purpose |
|---|---|
| Drive Status | Indicates current operating condition |
| Motor Current | Indicates electrical loading |
| Output Frequency | Shows drive output |
| Speed Reference | Shows requested speed |
| Actual Speed | Shows motor operation |
| Fault Status | Identifies shutdown conditions |
| Alarm Status | Identifies warning conditions |
| Temperature | Supports thermal diagnosis |
| Communication Status | Helps identify control-network problems |
| Operating Parameters | Supports commissioning |
This information can help technicians determine whether an issue is associated with the electrical system, motor, mechanical equipment, control system or operating environment.
The drive can be incorporated into an industrial automation architecture.
A typical structure is:
Industrial Controller
↓
I/O / Communication Interface
↓
20F1ANC170AA0NNNNN
↓
Three-Phase Motor
↓
Machine
The controller can provide:
The drive can provide:
This makes the drive a useful component in automated production machinery.
| Application | Suitability | Primary Function |
|---|---|---|
| Heavy Conveyor | Excellent | Speed and starting control |
| Large Pump | Excellent | Flow and pressure regulation |
| Industrial Fan | Excellent | Airflow adjustment |
| Large Blower | Excellent | Variable airflow |
| Heavy Mixer | Excellent | Adjustable mixing speed |
| Industrial Feeder | Excellent | Controlled material flow |
| Roller System | Excellent | Speed regulation |
| Material Handling | Excellent | Controlled movement |
| Production Line | Very Good | Speed coordination |
| Processing Machinery | Very Good | Variable process speed |
| Packaging Machinery | Very Good | Production-speed control |
| Large Rotating Machinery | Very Good | Speed and torque control |
Heavy conveyors are a natural application for a high-current variable-frequency drive.
A conveyor may operate at different speeds during:
The drive can allow different speed references to be selected for these operating stages.
Large conveyors can also have high inertia.
Controlled acceleration can reduce mechanical shock when starting a heavily loaded belt.
This can help reduce stress on:
Industrial pumps frequently operate under changing process requirements.
A pump that continuously operates at maximum speed may produce more flow than the process actually requires.
A variable-speed drive allows pump speed to be adjusted.
Potential applications include:
Potential benefits include:
Actual energy savings depend on the pump characteristics and operating conditions.
Industrial fans and blowers often operate under changing airflow requirements.
For example, a ventilation system may require high airflow during intensive production and lower airflow when production demand is reduced.
The drive can adjust motor speed according to airflow requirements.
Typical applications include:
Variable-speed operation can provide better airflow control and may reduce energy consumption when full-speed operation is unnecessary.
Mixers often require several speed stages during a production cycle.
A typical sequence may be:
Loading → Initial Mixing → Main Mixing → Intensive Mixing → Final Mixing → Discharge
The drive can provide different operating speeds for different stages.
This can make the machine more adaptable to different materials and production recipes.
The actual speed requirements depend on the product, mixer design and mechanical load.
Industrial feeders are commonly used to deliver material at a controlled rate.
Motor speed is often directly related to material throughput.
The drive can therefore become part of the material-flow control system.
A typical operating strategy might be:
Low Demand → Low Speed
Normal Demand → Medium Speed
High Demand → Higher Speed
This can help coordinate the feeder with downstream equipment.
Roller systems often require stable speed regulation.
Possible applications include:
The drive can allow roller speed to be adjusted to match other sections of a production line.
This can be particularly useful when several motors need to operate at coordinated speeds.
The approximately 170 A class makes this drive suitable for relatively large motor applications.
Potential high-inertia applications include:
For such equipment, acceleration and deceleration times should be selected carefully.
If rapid stopping is required, the braking arrangement should be evaluated separately.
The approximately 170 A class provides substantial capacity for large industrial motor applications.
This makes the drive appropriate for equipment requiring significantly more current than compact industrial drives.
The motor can operate at different speeds according to process requirements.
This can improve production flexibility and machine coordination.
The motor can be accelerated progressively instead of being forced immediately to its final operating condition.
This can reduce mechanical starting shock.
The drive can reduce motor speed according to a programmed deceleration profile.
This can improve stopping behavior for high-inertia machinery.
Motor speed can be used as an active process parameter.
This is useful for pumps, fans, conveyors, feeders, mixers and rollers.
Operating information such as current, speed and fault status can be monitored.
This provides useful information for machine operation and maintenance.
Alarm and fault information can assist maintenance personnel during troubleshooting.
The drive can be incorporated into an industrial automation system.
This allows motor operation to be coordinated with the rest of the machine.
Different speed references can be used for different stages of production.
Variable-speed operation can reduce unnecessary motor operation in suitable applications.
This can be particularly useful for pumps, fans and blowers.
Actual savings depend on the application and operating profile.
For preliminary cabinet planning, the following values can be used as engineering references.
| Mechanical Parameter | Approximate Reference |
|---|---|
| Model | 20F1ANC170AA0NNNNN |
| Mounting | Panel / cabinet |
| Mounting Orientation | Vertical |
| Approximate Width | 450–550 mm |
| Approximate Height | 750–900 mm |
| Approximate Depth | 350–500 mm |
| Approximate Overall Envelope | 450–550 × 750–900 × 350–500 mm |
| Approximate Weight | 50–70 kg |
| Weight Unit | kg |
| Cooling | Forced air |
| Ventilation | Required |
| Cabinet Installation | Yes |
| Maintenance Clearance | Required |
The dimensions and weight are approximate planning values.
Final cabinet fabrication should use the exact mechanical configuration of the actual drive.
The drive should be installed in an appropriate industrial enclosure with sufficient space for electrical connections and cooling.
The cabinet should provide adequate space for:
The cooling airflow should not be blocked by adjacent equipment.
When several drives are installed in the same enclosure, their combined heat generation should also be considered.
The drive generates heat during normal operation.
Actual heat generation depends on:
Adequate ventilation is therefore important.
Dust accumulation should also be controlled because blocked ventilation paths can reduce cooling performance.
For high-current applications, cabinet thermal design is especially important.
Before installation, the environment should be evaluated.
| Environmental Factor | Consideration |
|---|---|
| Ambient Temperature | Must remain within acceptable limits |
| Humidity | Condensation should be avoided |
| Dust | Can affect cooling and electronics |
| Chemical Vapors | May affect electronic components |
| Vibration | Should be evaluated |
| Altitude | Can affect thermal performance |
| Airflow | Must remain adequate |
| Cabinet Protection | Should match the environment |
| Maintenance | Cooling paths should be inspected |
Harsh industrial environments may require additional enclosure or environmental protection.
The drive must be appropriately matched with the motor.
Important motor parameters include:
| Motor Parameter | Importance |
|---|---|
| Rated Voltage | Determines electrical compatibility |
| Full-Load Current | Critical for drive selection |
| Rated Power | Supports preliminary sizing |
| Rated Frequency | Required for configuration |
| Rated Speed | Required for motor setup |
| Power Factor | Useful for calculations |
| Efficiency | Useful for energy calculations |
| Motor Type | Important for control selection |
| Overload Requirement | Important for application sizing |
| Feedback | Determines feedback requirements |
Motor full-load current should be considered one of the most important selection criteria.
A drive should not be selected solely according to horsepower or kilowatt rating.
For large industrial equipment, several factors should be reviewed.
The machine may require high torque during startup.
Large rotating masses may require longer acceleration times.
High-inertia equipment may require additional stopping considerations.
Continuous high-current operation can increase thermal stress.
Frequent starting and stopping can increase both electrical and mechanical stress.
Belts, gearboxes, shafts, couplings and bearings should be evaluated over the complete operating-speed range.
A typical power system can be represented as:
Three-Phase AC Supply
↓
Main Disconnect / Protection
↓
20F1ANC170AA0NNNNN
↓
Three-Phase AC Motor
↓
Gearbox / Coupling
↓
Mechanical Equipment
A typical control system can be represented as:
Industrial Controller
↓
I/O / Communication
↓
AC Drive
↓
Motor Speed / Torque
↓
Machine Process
This allows the drive to operate as an important part of the overall machine-control system.
The controller provides a start command.
The drive increases output frequency according to the configured acceleration ramp.
The motor reaches the required operating speed.
The speed reference can be changed according to process requirements.
The drive adjusts motor operation to follow the requested speed.
The controller sends a stop command.
The drive reduces output frequency according to the configured deceleration profile.
The motor reaches the required stopped condition.
The following models can be considered for comparison when evaluating different current capacities within the same general drive family.
| Model | Product Series | Voltage Class | Approx. Current Class | Input | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|
| 20F1ANC104AA0NNNNN | PowerFlex 753 | 480 V class | 104 A | Three-phase | 350–450 × 650–800 × 300–450 mm | 35–50 | Large industrial machinery |
| 20F1ANC140AN0NNNNN | PowerFlex 753 | 480 V class | 140 A | Three-phase | 400–500 × 700–850 × 350–450 mm | 40–60 | Heavy industrial machinery |
| 20F1ANC140JA0NNNNN | PowerFlex 753 | 480 V class | 140 A | Three-phase | 400–500 × 700–850 × 350–450 mm | 40–60 | High-current machinery |
| 20F1ANC170AA0NNNNN | PowerFlex 753 | 480 V class | 170 A | Three-phase | 450–550 × 750–900 × 350–500 mm | 50–70 | Large heavy-duty machinery |
| 20F1ANC180AA0NNNNN | PowerFlex 753 | 480 V class | 180 A | Three-phase | 450–550 × 750–900 × 350–500 mm | 50–70 | Large heavy-duty machinery |
These models cover several current levels around the target 170 A class.
The 104 A and 140 A models may be suitable where the motor current requirement is lower.
The 180 A class provides additional current capacity where the application requires a larger drive.
The complete catalog configuration should be checked before treating any model as a direct replacement.
| Parameter | 20F1ANC104AA0NNNNN | 20F1ANC140AN0NNNNN | 20F1ANC140JA0NNNNN | 20F1ANC170AA0NNNNN | 20F1ANC180AA0NNNNN |
|---|---|---|---|---|---|
| Product Series | PowerFlex 753 | PowerFlex 753 | PowerFlex 753 | PowerFlex 753 | PowerFlex 753 |
| Voltage Class | 480 V | 480 V | 480 V | 480 V | 480 V |
| Current Class | 104 A | 140 A | 140 A | 170 A | 180 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 | 350–450 mm | 400–500 mm | 400–500 mm | 450–550 mm | 450–550 mm |
| Approx. Height | 650–800 mm | 700–850 mm | 700–850 mm | 750–900 mm | 750–900 mm |
| Approx. Depth | 300–450 mm | 350–450 mm | 350–450 mm | 350–500 mm | 350–500 mm |
| Approx. Weight | 35–50 kg | 40–60 kg | 40–60 kg | 50–70 kg | 50–70 kg |
| Model | Series | Product Type | Voltage Class | Approx. Current Class | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|
| 20F1ANC104AA0NNNNN | PowerFlex 753 | AC Drive | 480 V class | 104 A | 350–450 × 650–800 × 300–450 mm | 35–50 | Large industrial machinery |
| 20F1ANC140AN0NNNNN | PowerFlex 753 | AC Drive | 480 V class | 140 A | 400–500 × 700–850 × 350–450 mm | 40–60 | High-current machinery |
| 20F1ANC140JA0NNNNN | PowerFlex 753 | AC Drive | 480 V class | 140 A | 400–500 × 700–850 × 350–450 mm | 40–60 | High-current machinery |
| 20F1ANC180AA0NNNNN | PowerFlex 753 | AC Drive | 480 V class | 180 A | 450–550 × 750–900 × 350–500 mm | 50–70 | Large heavy-duty machinery |
| 20G1AND248JN0NNNNN | PowerFlex 755 | AC Drive | 480 V class | 248 A class | 350–450 × 600–800 × 300–400 mm | 55–80 | Large process equipment |
| Model | Product Series | Voltage Class | Approx. Current Class | Input | Variable Speed | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|---|
| 20F1ANC170AA0NNNNN | PowerFlex 753 | 480 V class | 170 A | Three-phase | Yes | 450–550 × 750–900 × 350–500 mm | 50–70 | Large industrial machinery |
| 20F11NC085AA0NNNNN | PowerFlex 753 | 480 V class | 85 A | Three-phase | Yes | 350–450 × 600–750 × 300–400 mm | 28–42 | Heavy industrial machinery |
| 20F11NC104AA0NNNNN | PowerFlex 753 | 480 V class | 104 A | Three-phase | Yes | 350–450 × 650–800 × 300–450 mm | 35–50 | Large industrial machinery |
| 20G1AND248JN0NNNNN | PowerFlex 755 | 480 V class | 248 A class | Three-phase | Yes | 350–450 × 600–800 × 300–400 mm | 55–80 | Large process 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 |
The five models above represent different capacity levels and application positions.
The PowerFlex 525 configuration is significantly smaller and is generally more suitable for compact machinery.
The PowerFlex 753 configurations are more appropriate for medium and large industrial machinery.
The PowerFlex 755 configuration is positioned toward larger and more demanding process-control applications.
| Feature | PowerFlex 525 | PowerFlex 753 | PowerFlex 755 |
|---|---|---|---|
| Product Position | Compact industrial drive | Industrial drive | High-performance industrial drive |
| Typical Machine Size | Small / medium | Medium / large | Large |
| Variable Speed | Yes | Yes | Yes |
| Controlled Acceleration | Yes | Yes | Yes |
| Controlled Deceleration | Yes | Yes | Yes |
| Torque Control | Supported | Advanced | Advanced |
| PID Functions | Supported | Supported | Supported |
| Diagnostics | Yes | Yes | Yes |
| Feedback | Configuration dependent | Available | Available |
| Communication | Available | Available | Extensive options |
| Expansion Capability | Good | Strong | Strong |
| Larger Motor Applications | Limited | Good | Excellent |
| Complex Machinery | Good | Very Good | Excellent |
| Large Process Equipment | Limited | Good | Excellent |
| Function | Conventional Motor Starter | 20F1ANC170AA0NNNNN |
|---|---|---|
| Start / Stop | Yes | Yes |
| Variable Speed | No | Yes |
| Controlled Acceleration | Limited | Yes |
| Controlled Deceleration | Limited | Yes |
| Motor Current Monitoring | Limited | Yes |
| Motor Protection | Basic | Advanced |
| Process Speed Control | No | Yes |
| PID Functions | No | Supported |
| Diagnostics | Limited | Advanced |
| Automation Integration | Limited | Yes |
| Preset Speeds | No | Yes |
| Potential Energy Optimization | Limited | Yes |
The primary difference is the level of control provided to the motor.
A conventional starter is primarily designed for switching.
An adjustable-frequency drive provides continuous control of motor operating conditions and can exchange operating information with an automation system.
Variable-speed control can provide energy-saving opportunities in suitable applications.
Typical examples include:
In a fixed-speed system, a motor may continue operating at high speed even when process demand is low.
A variable-frequency drive can reduce motor speed when less output is required.
For suitable variable-torque applications, reducing speed can significantly reduce mechanical power requirements.
Actual energy savings depend on:
Energy savings should therefore be evaluated using the actual machine operating profile.
Monitoring and diagnostic functions can support preventive maintenance.
Maintenance personnel can monitor:
This information can help identify whether a problem is related to:
A structured troubleshooting process can reduce unnecessary downtime.
The 20F1ANC170AA0NNNNN can be considered for modernization projects where an existing motor-control system needs more sophisticated speed control.
Potential modernization objectives include:
A modernization project should evaluate:
| Equipment | Main Function |
|---|---|
| Heavy Conveyor | Controlled material transportation |
| Large Pump | Flow and pressure control |
| Industrial Fan | Airflow regulation |
| Large Blower | Variable air movement |
| Mixer | Process-speed control |
| Feeder | Material-flow control |
| Roller System | Speed regulation |
| Production Line | Machine synchronization |
| Processing Machine | Variable process speed |
| Packaging Machinery | Production-rate adjustment |
| Material Handling System | Controlled movement |
| Large Rotating Machinery | Variable motor control |
The drive should be installed in an appropriate industrial electrical enclosure.
The installation should provide sufficient space for:
The drive should normally be installed in the recommended orientation.
Ventilation openings and cooling paths should remain unobstructed.
The cabinet structure should also be capable of supporting the drive’s physical weight.
| Parameter | Engineering Reference |
|---|---|
| Drive Model | 20F1ANC170AA0NNNNN |
| Approx. Width | 450–550 mm |
| Approx. Height | 750–900 mm |
| Approx. Depth | 350–500 mm |
| Approx. Weight | 50–70 kg |
| Weight Unit | kg |
| Mounting | Vertical panel / cabinet |
| Cooling | Forced air |
| Ventilation | Required |
| Cable Routing | Required |
| Maintenance Space | Required |
| Cabinet Support | Must support drive weight |
| Installation Environment | Suitable industrial environment |
These values are intended for preliminary cabinet planning.
Final mechanical engineering should use the actual physical configuration of the selected unit.
When selecting a drive for an industrial motor, the following factors should be reviewed.
The motor’s rated voltage should be compatible with the drive voltage class.
The actual full-load motor current should be compared with the applicable drive rating.
Motor power provides useful preliminary information, but current and duty are equally important.
Determine whether the motor operates continuously, intermittently or with frequent acceleration and deceleration.
Determine the torque required during startup.
Determine the minimum and maximum operating speeds.
Determine whether normal stopping or rapid braking is required.
Determine whether encoder or other feedback is required.
Evaluate temperature, humidity, dust, vibration and installation altitude.
Determine the required I/O and communication architecture.
Consider a conveyor with:
The drive can provide:
Final drive selection should still be based on the actual motor current, duty cycle and application requirements.
A large pump may operate at several flow levels.
A possible operating strategy is:
Low Demand → Low Speed
Medium Demand → Medium Speed
High Demand → Higher Speed
This provides more flexibility than simply switching the pump ON and OFF.
For suitable variable-torque applications, reducing motor speed can also provide substantial energy-saving opportunities.
An industrial fan may require several airflow levels.
The drive can increase or decrease motor speed according to airflow demand.
Potential benefits include:
A production mixer may require multiple speed stages.
| Process Stage | Speed Strategy |
|---|---|
| Loading | Low speed |
| Initial Mixing | Low / medium |
| Main Mixing | Medium |
| Intensive Mixing | Higher speed |
| Final Mixing | Controlled speed |
| Unloading | Low speed |
| Stop | Controlled deceleration |
This approach can make the machine more adaptable to different products and process conditions.
A material feeder may need to maintain a controlled delivery rate.
The controller can adjust the speed reference according to production demand.
The drive changes motor speed accordingly.
This can allow the feeder to respond to:
| Check | Purpose |
|---|---|
| Incoming Voltage | Verify electrical supply |
| Motor Current | Check electrical loading |
| Output Frequency | Verify drive output |
| Speed Reference | Verify requested speed |
| Actual Speed | Check motor response |
| Fault Status | Identify shutdown condition |
| Alarm Status | Identify warning condition |
| Motor Wiring | Verify electrical connections |
| Motor Condition | Check motor health |
| Cooling | Check airflow |
| Cabinet Temperature | Check thermal condition |
| Communication | Verify controller connection |
| Mechanical Load | Check excessive resistance |
A systematic troubleshooting process can help separate electrical, mechanical, control and environmental problems.
| Parameter | 20F1ANC104AA0NNNNN | 20F1ANC140AN0NNNNN | 20F1ANC140JA0NNNNN | 20F1ANC170AA0NNNNN | 20F1ANC180AA0NNNNN |
|---|---|---|---|---|---|
| Series | PowerFlex 753 | PowerFlex 753 | PowerFlex 753 | PowerFlex 753 | PowerFlex 753 |
| Voltage Class | 480 V | 480 V | 480 V | 480 V | 480 V |
| Current Class | 104 A | 140 A | 140 A | 170 A | 180 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 | 350–450 mm | 400–500 mm | 400–500 mm | 450–550 mm | 450–550 mm |
| Approx. Height | 650–800 mm | 700–850 mm | 700–850 mm | 750–900 mm | 750–900 mm |
| Approx. Depth | 300–450 mm | 350–450 mm | 350–450 mm | 350–500 mm | 350–500 mm |
| Approx. Weight | 35–50 kg | 40–60 kg | 40–60 kg | 50–70 kg | 50–70 kg |
| Model | Series | Voltage Class | Current Class | Input | Output | Approx. Dimensions | Weight (kg) | Typical Application |
|---|---|---|---|---|---|---|---|---|
| 20F1ANC104AA0NNNNN | PowerFlex 753 | 480 V class | 104 A | Three-phase | Variable-frequency AC | 350–450 × 650–800 × 300–450 mm | 35–50 | Large industrial machinery |
| 20F1ANC140AN0NNNNN | PowerFlex 753 | 480 V class | 140 A | Three-phase | Variable-frequency AC | 400–500 × 700–850 × 350–450 mm | 40–60 | High-current machinery |
| 20F1ANC140JA0NNNNN | PowerFlex 753 | 480 V class | 140 A | Three-phase | Variable-frequency AC | 400–500 × 700–850 × 350–450 mm | 40–60 | High-current machinery |
| 20F1ANC180AA0NNNNN | PowerFlex 753 | 480 V class | 180 A | Three-phase | Variable-frequency AC | 450–550 × 750–900 × 350–500 mm | 50–70 | Large heavy-duty machinery |
| 20G1AND248JN0NNNNN | PowerFlex 755 | 480 V class | 248 A class | Three-phase | Variable-frequency AC | 350–450 × 600–800 × 300–400 mm | 55–80 | Large process equipment |
| Model | Product Series | Voltage Class | Approx. Current Class | Input | Variable Speed | Approx. Dimensions | Weight (kg) | Application |
|---|---|---|---|---|---|---|---|---|
| 20F1ANC170AA0NNNNN | PowerFlex 753 | 480 V class | 170 A | Three-phase | Yes | 450–550 × 750–900 × 350–500 mm | 50–70 | Large industrial machinery |
| 20F11NC085AA0NNNNN | PowerFlex 753 | 480 V class | 85 A | Three-phase | Yes | 350–450 × 600–750 × 300–400 mm | 28–42 | Heavy industrial machinery |
| 20F11NC104AA0NNNNN | PowerFlex 753 | 480 V class | 104 A | Three-phase | Yes | 350–450 × 650–800 × 300–450 mm | 35–50 | Large industrial machinery |
| 20G1AND248JN0NNNNN | PowerFlex 755 | 480 V class | 248 A class | Three-phase | Yes | 350–450 × 600–800 × 300–400 mm | 55–80 | Large process 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 |
| Requirement | Recommended Direction |
|---|---|
| Compact machine | PowerFlex 525 |
| Small / medium motor | PowerFlex 525 |
| Medium industrial machine | PowerFlex 753 |
| Large industrial machine | PowerFlex 753 |
| Approximately 85 A | PowerFlex 753 |
| Approximately 104 A | PowerFlex 753 |
| Approximately 140 A | PowerFlex 753 |
| Approximately 170 A | 20F1ANC170AA0NNNNN |
| Approximately 180 A | Higher-current PowerFlex 753 configuration |
| Above 200 A | PowerFlex 753 / 755 depending on application |
| Large process equipment | PowerFlex 755 |
| Complex industrial application | PowerFlex 753 / 755 |
| High-current variable-speed application | PowerFlex 753 / 755 |
| Application | Main Benefit |
|---|---|
| Heavy Conveyor | Smooth starting and adjustable speed |
| Large Pump | Flow and pressure adjustment |
| Industrial Fan | Airflow regulation |
| Large Blower | Variable air volume |
| Mixer | Multiple operating speeds |
| Feeder | Controlled material flow |
| Roller | Stable speed control |
| Production Line | Coordinated machine speed |
| Packaging | Adjustable production rate |
| Processing Machinery | Flexible process control |
| Material Handling | Controlled movement |
| High-Inertia Machinery | Controlled acceleration and stopping |
The main practical advantage of the 20F1ANC170AA0NNNNN is the combination of high current capacity and flexible variable-speed motor control.
For a heavy conveyor, the drive can provide controlled starting and stopping.
For a large pump, it can provide variable flow and pressure control.
For an industrial fan, it can adjust airflow according to demand.
For a mixer, it can provide multiple operating speeds.
For a feeder, it can help regulate material delivery.
For a production line, it can help coordinate motor speed between different machine sections.
For maintenance personnel, monitoring and diagnostic functions can provide additional information during troubleshooting.
When determining whether the 20F1ANC170AA0NNNNN is suitable for a particular machine, the following factors should be evaluated.
Confirm that the motor’s rated voltage matches the drive voltage class.
Compare the actual motor current with the applicable drive rating.
Check the motor’s rated power.
Determine whether the application is continuous duty, intermittent duty or frequent-cycle operation.
Determine whether the machine requires additional overload capability.
Evaluate the torque required during startup.
Determine the required minimum and maximum operating speeds.
Determine how quickly the machine needs to reach operating speed.
Determine the required stopping time.
Determine whether the machine requires rapid braking or another braking method.
Determine whether motor feedback is required.
Evaluate temperature, humidity, dust, vibration and altitude.
Determine the required I/O and communication functions.
Confirm that the cabinet can accommodate the physical size, heat generation and wiring requirements.
| Parameter | 20F1ANC170AA0NNNNN |
|---|---|
| Brand | Allen-Bradley |
| Product Family | PowerFlex |
| Product Series | PowerFlex 753 |
| Product Type | Industrial Adjustable-Frequency AC Drive |
| Voltage Class | 480 V class |
| Current Class | Approximately 170 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 Protection | Supported |
| Fault Detection | Integrated |
| Diagnostic Functions | Integrated |
| Feedback | Configuration dependent |
| Communication | Configuration dependent |
| Cooling | Forced air |
| Mounting | Panel / cabinet |
| Mounting Orientation | Normally vertical |
| Approx. Width | 450–550 mm |
| Approx. Height | 750–900 mm |
| Approx. Depth | 350–500 mm |
| Approx. Overall Envelope | 450–550 × 750–900 × 350–500 mm |
| Approx. Weight | 50–70 kg |
| Weight Unit | kg |
| Typical Applications | Heavy conveyors, pumps, fans, blowers, mixers, feeders, rollers, material handling and processing machinery |
| Main Advantages | High current capacity, variable speed, controlled acceleration/deceleration, motor protection, diagnostics and automation integration |
The 20F1ANC170AA0NNNNN is a high-current industrial adjustable-frequency drive intended for machinery that requires controlled variable-speed motor operation.
Its approximately 170 A current class makes it suitable for relatively large industrial motors and demanding applications.
The product belongs to the PowerFlex 753 series, a family intended for industrial motor-control applications where flexible speed control, motor protection, diagnostics and automation integration are important.
The drive is particularly suitable for:
One of its most important advantages is that motor speed becomes a controllable machine parameter.
Instead of operating continuously at one fixed speed, the motor can operate at different speeds according to production requirements.
This can improve process flexibility.
Controlled acceleration can also reduce mechanical shock during startup.
Controlled deceleration can improve stopping behavior when dealing with high-inertia machinery.
For suitable pumps, fans and blowers, variable-speed operation can provide opportunities to reduce energy consumption when full-speed operation is not required.
The integrated monitoring and diagnostic capabilities can also provide useful information for maintenance and troubleshooting.
For preliminary cabinet planning, an approximate physical envelope of 450–550 mm wide × 750–900 mm high × 350–500 mm deep and an approximate weight of 50–70 kg can be used as an engineering reference.
These dimensional and weight values should not be treated as final certified mechanical values because the actual physical arrangement may depend on the complete configuration and associated hardware.
Before final cabinet fabrication, lifting calculations, transportation planning or direct replacement, the exact configured unit should be checked against the required mechanical information.
The most important factors for final drive selection are motor voltage, motor full-load current, motor power, duty cycle, overload requirement, starting torque, operating-speed range, braking requirements, feedback requirements, environmental conditions and automation requirements.
Overall, the 20F1ANC170AA0NNNNN is a strong choice for large industrial machinery where the application requires high-current motor control, adjustable speed, controlled starting and stopping, motor monitoring and integration with an automated production system.