• Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive
  • Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive
  • Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive
  • Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive
Allen-Bradley 20F1ANF212JN0NNNNN — Detailed Product Specifications, Introduction, Applications, Advantages and Related Models 1. Product Overview The 20F1ANF212JN0NNNNN is a high-power Allen-Bradley Pow……
Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive
  • Allen Bradley
  • 20F1ANF212JN0NNNNN
  • PowerFlex AC Drive
  • USA
  • 881.5 × 430 × 349.6 mm
  • 108.9kg
  • Xiamen, China
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Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive

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We have a 10-year logistics and express cooperation agreement, so our products can be shipped to any place in the world.

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Our products are imported in bulk from the place of origin. Because of the cooperative relationship, our products are all original and 100% new.

Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive

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Allen Bradley 20F1ANF212JN0NNNNN PowerFlex AC Drive

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Allen-Bradley 20F1ANF212JN0NNNNN — Detailed Product Specifications, Introduction, Applications, Advantages and Related Models

1. Product Overview

The 20F1ANF212JN0NNNNN is a high-power Allen-Bradley PowerFlex 753 AC Drive designed for large three-phase industrial motor applications.

It belongs to the PowerFlex 750-Series and is intended for applications that require reliable variable-speed control of large AC motors in demanding industrial environments.

This model is rated for 690 VAC, three-phase power, with a 212 A Normal Duty rating and a 200 kW Normal Duty power rating. Under Heavy Duty operation, it is rated at approximately 171 A and 160 kW.

The drive uses a Frame 7 construction with forced-air cooling and an open-type IP00/IP20 configuration.

An important characteristic of this exact catalog number is that it does not include an internal dynamic-braking transistor. The model uses the J filtering/common-mode configuration, meaning the common-mode capacitor jumper is installed.

This makes the model particularly appropriate for large industrial motors where variable-speed operation is required but an internal braking transistor is not part of the selected drive configuration.


2. Brand and Product Series

Item Specification
Brand Allen-Bradley
Product Family PowerFlex
Product Series PowerFlex 753
Product Family Classification PowerFlex 750-Series
Product Type Air-Cooled AC Drive
Catalog Number 20F1ANF212JN0NNNNN
Drive Type Variable Frequency AC Drive
Voltage Class 690 VAC
Input Phase 3 Phase
Output Phase 3 Phase
Normal Duty Current 212 A
Normal Duty Power 200 kW
Heavy Duty Current 171 A
Heavy Duty Power 160 kW
Frame Size Frame 7
Cooling Forced Air
Enclosure Open Type
Protection IP00/IP20
Input Type AC Input with Precharge
DC Terminals None
Dynamic Braking None
Internal DB Transistor None
Filtering Filtered
CM Jumper Installed
Embedded I/O Yes
PID Control Yes
Integrated Motion No
HIM / Keypad Blank / No HIM
Installation Electrical Cabinet / Industrial Panel

3. Detailed Technical Parameters

Parameter Specification
Model 20F1ANF212JN0NNNNN
Brand Allen-Bradley
Series PowerFlex 753
Product Family PowerFlex 750-Series
Product Type Air-Cooled AC Drive
Input Voltage 690 VAC
Input Phase 3 Phase
Output Phase 3 Phase
Input Frequency 50/60 Hz
Normal Duty Current 212 A
Normal Duty Power 200 kW
Heavy Duty Current 171 A
Heavy Duty Power 160 kW
Frame Size Frame 7
Cooling Method Forced Air
Enclosure Type Open Type
Protection IP00/IP20
NEMA/UL Type Open
Input Type AC Input with Precharge
DC Terminals No
Dynamic Braking None
Internal Dynamic-Braking Transistor No
Filtering Filtered
Common-Mode Jumper Installed
Embedded I/O Yes
PID Yes
Integrated Motion No
HIM / Keypad Blank / No HIM
Installation Method Cabinet / Panel
Motor Type Three-Phase AC Motor
Height 881.5 mm
Width 430 mm
Depth 349.6 mm
Dimensions H × W × D 881.5 × 430 × 349.6 mm
Weight Approx. 72.6–108.9 kg, depending on configuration
Frame 7 Weight Range Approx. 72.6–108.9 kg
Typical ND Application Variable-Torque Loads
Typical HD Application Constant-Torque / Demanding Loads

The Frame 7 dimensions are approximately 881.5 mm high × 430 mm wide × 349.6 mm deep.

The published Frame 7 weight range is approximately 72.6 to 108.9 kg, depending on the specific configuration and hardware arrangement. For cabinet and transportation planning, it is therefore safer to use the actual product configuration rather than assuming a single fixed shipping weight.


4. Product Introduction

The 20F1ANF212JN0NNNNN is a large industrial variable frequency drive intended to control high-power three-phase AC motors.

Its primary function is to control motor speed and torque by adjusting the electrical frequency and voltage supplied to the motor.

Instead of forcing a motor to operate continuously at one fixed speed, the drive allows the motor to operate according to the actual requirements of the machine.

This is particularly useful in industrial processes where the motor does not need to operate at full speed all the time.

For example, a large pump may require maximum flow during one part of the production cycle but only partial flow during another.

The drive can reduce motor speed accordingly.

The same principle can be applied to large fans, blowers, conveyors, mixers, compressors and many other industrial machines.


5. Main Electrical Ratings

The core electrical ratings of the 20F1ANF212JN0NNNNN are:

Duty Rating Current Power
Normal Duty 212 A 200 kW
Heavy Duty 171 A 160 kW

These dual ratings are important because the same drive can be used for different types of load applications.

For a variable-torque application such as a centrifugal pump or fan, the 200 kW Normal Duty rating is the key rating.

For a more demanding constant-torque application, the 160 kW Heavy Duty rating is more appropriate.

The actual motor current, load profile and overload requirements should always be considered when selecting the drive.


6. 690 VAC Three-Phase Design

The 690 VAC rating places this model in the high-power industrial drive category.

It is intended for large industrial motor systems where higher motor voltage is commonly used.

Using a higher voltage at high power can help manage current levels compared with attempting to deliver the same power at a much lower motor voltage.

This makes 690 VAC systems particularly common in large industrial equipment.

Typical areas include:

  • Heavy manufacturing.
  • Water infrastructure.
  • Mining.
  • Material handling.
  • Large ventilation systems.
  • Process industries.
  • Large pumping systems.
  • Industrial production lines.

7. 212 A Current Capacity

The 212 A rating is one of the most important specifications of this drive.

It indicates that the drive belongs to the high-current portion of the PowerFlex 753 product family.

A 212 A drive is intended for large motors and should not be selected for a small motor simply because the available power rating appears sufficient.

Motor current should always be compared against the drive’s current capability.

Important motor parameters include:

  • Rated current.
  • Rated voltage.
  • Rated power.
  • Rated frequency.
  • Motor speed.
  • Power factor.
  • Overload requirements.
  • Load torque.
  • Acceleration requirements.
  • Deceleration requirements.

8. Normal Duty Rating — 200 kW

The 200 kW Normal Duty rating is particularly useful for variable-torque applications.

Typical examples include:

  • Large centrifugal pumps.
  • Large centrifugal fans.
  • Industrial blowers.
  • HVAC systems.
  • Cooling systems.
  • Water circulation.
  • Industrial ventilation.

In these applications, reducing motor speed can often reduce the amount of power required by the machine.

This makes the variable frequency drive useful not only for speed control but also for process optimization.


9. Heavy Duty Rating — 160 kW

The 160 kW Heavy Duty rating is intended for applications where the motor experiences more demanding torque conditions.

Typical applications can include:

  • Heavy conveyors.
  • Mixers.
  • Material-handling equipment.
  • Process machinery.
  • Certain compressor systems.
  • Mechanical production equipment.

The Heavy Duty rating should be considered together with the actual overload profile.

For a machine that has a large starting load, frequent acceleration or high torque at low speed, Heavy Duty selection becomes particularly important.


10. Dynamic Braking Configuration

The most important difference between the 20F1ANF212JN0NNNNN and some closely related models is its braking configuration.

This model has:

No internal dynamic-braking transistor.

This means the drive should not be treated as though it has an integrated braking transistor simply because it belongs to the same family as models that do.

This distinction is particularly important when replacing another PowerFlex 753 drive.

For example, a related model with an A braking configuration can include an internal dynamic-braking transistor, while the N configuration does not.

Therefore, the complete catalog number must be checked before making a replacement decision.


11. What the Lack of Internal Dynamic Braking Means

The absence of an internal braking transistor is not necessarily a disadvantage.

For many industrial applications, dynamic braking is simply not required.

For example, a large centrifugal pump may be allowed to decelerate gradually.

A large fan may also have a relatively long coast-down time.

In these cases, an internal braking transistor may provide little practical benefit.

The no-DB configuration can therefore be an appropriate choice for applications where controlled regenerative braking is not required.


12. Applications Where Dynamic Braking May Not Be Essential

The 20F1ANF212JN0NNNNN can be particularly suitable for applications such as:

  • Large centrifugal pumps.
  • Large fans.
  • Blowers.
  • HVAC equipment.
  • Cooling systems.
  • Water circulation.
  • Process ventilation.
  • Long-cycle industrial machinery.

These machines often do not require extremely short stopping times.

The drive can reduce motor speed according to the process requirements and allow the machine to decelerate using an appropriate controlled ramp.


13. Large Pump Applications

Large centrifugal pumps are a natural application for this drive.

Potential uses include:

  • Industrial water systems.
  • Cooling-water systems.
  • Water treatment.
  • Process-water circulation.
  • Pumping stations.
  • Irrigation systems.
  • Industrial fluid transfer.

A pump does not always need to operate at full speed.

The drive can adjust the motor speed according to actual demand.

This can improve process control and, under suitable operating conditions, reduce energy consumption.


14. Large Fan Applications

Large industrial fans can also benefit from variable-speed control.

Typical applications include:

  • Factory ventilation.
  • Industrial exhaust.
  • Furnace ventilation.
  • Cooling systems.
  • Dust collection.
  • Process ventilation.
  • Large HVAC systems.

The drive can increase or decrease fan speed according to airflow requirements.

This is particularly useful in processes where ventilation demand changes throughout the day or production cycle.


15. Blower Applications

Industrial blowers are another suitable application.

Examples include:

  • Wastewater aeration.
  • Pneumatic conveying.
  • Process air.
  • Industrial drying.
  • Combustion air.
  • Dust extraction.
  • Factory ventilation.

A blower controlled by a variable frequency drive can respond to changing pressure or airflow requirements.

The integrated PID function can also be useful for maintaining a process setpoint.


16. Conveyor Applications

The drive can control large conveyor motors.

Possible applications include:

  • Bulk material handling.
  • Mining conveyors.
  • Aggregate conveyors.
  • Industrial production lines.
  • Packaging systems.
  • Heavy material transfer.

The drive can provide controlled acceleration.

This can reduce sudden mechanical loading on the conveyor system.

However, if the conveyor has significant regenerative energy or requires very rapid stopping, the lack of an internal dynamic-braking transistor needs to be considered during system design.


17. Mixer Applications

Large mixers and agitators can require significant motor torque.

The Heavy Duty rating of 160 kW makes this drive relevant to many large mixing systems.

Possible applications include:

  • Chemical processing.
  • Cement processing.
  • Industrial blending.
  • Food processing.
  • Material mixing.
  • Large agitators.

The motor’s actual starting torque and operating current should be checked carefully before final selection.


18. Compressor Applications

Large compressors can also use variable frequency drives.

Variable-speed operation allows compressor output to follow changing process requirements.

However, compressor applications need careful evaluation.

The engineering review should consider:

  • Compressor type.
  • Motor current.
  • Starting torque.
  • Minimum operating speed.
  • Maximum operating speed.
  • Acceleration.
  • Deceleration.
  • Operating cycle.
  • Load profile.

The lack of an internal braking transistor may be completely acceptable in a compressor application if the compressor does not require significant regenerative braking.


19. PID Control

The PowerFlex 753 architecture provides PID capability.

PID control can be particularly useful in process applications.

For example:

Pressure Sensor → PID Controller → Drive → Pump

The drive can automatically adjust motor speed based on the feedback signal.

Examples include:

Application Controlled Variable
Pump Pressure
Water System Flow
Fan Air Pressure
Blower Airflow
Cooling System Temperature
Process Equipment Pressure / Flow

This can make the drive an active part of the process-control system.


20. Embedded I/O

The drive includes embedded I/O for integration with machine-control systems.

Possible functions include:

  • Start command.
  • Stop command.
  • Run status.
  • Fault status.
  • Analog reference.
  • Analog feedback.
  • Digital interlocks.
  • External control signals.

This can reduce the need for additional basic interface equipment.

It is particularly useful when the drive needs to communicate directly with machine control circuits.


21. EMC Filter and CM Jumper

The 20F1ANF212JN0NNNNN uses a filtered configuration with the common-mode jumper installed.

This is an important configuration detail.

The filtering arrangement can influence how the drive is installed in relation to:

  • Grounding.
  • Motor cables.
  • Shielding.
  • Cabinet bonding.
  • Electrical noise.
  • Common-mode currents.

Proper installation remains essential.

The filter does not eliminate the need for good grounding and cable-management practices.


22. Open-Type Construction

This model uses an IP00/IP20, NEMA/UL Open Type configuration.

This means it is intended to be incorporated into an appropriate electrical enclosure or cabinet.

It should not be treated as a fully enclosed standalone industrial device.

The cabinet needs to provide suitable environmental protection and thermal management.

This type of construction also gives system designers flexibility when creating custom electrical cabinets.


23. Forced-Air Cooling

The drive uses forced-air cooling.

At a power level of 200 kW, heat generation is an important part of the installation design.

The cabinet must provide sufficient ventilation and heat removal.

Important factors include:

  • Ambient temperature.
  • Cabinet temperature.
  • Airflow.
  • Cooling fan condition.
  • Air inlet arrangement.
  • Air outlet arrangement.
  • Dust accumulation.
  • Installation altitude.
  • Other heat-producing components.

Poor cabinet thermal design can negatively affect drive reliability.


24. Physical Dimensions and Weight

The Frame 7 construction is physically large.

Physical Parameter Specification
Height 881.5 mm
Width 430 mm
Depth 349.6 mm
Dimensions H × W × D 881.5 × 430 × 349.6 mm
Weight Approx. 72.6–108.9 kg
Frame Frame 7
Cooling Forced Air
Enclosure Open Type
Protection IP00/IP20
Mounting Cabinet / Panel
Installation Industrial Electrical Cabinet

The weight is shown as a range because the actual Frame 7 assembly weight can vary according to the exact configuration and hardware installed.

For transportation and cabinet mechanical design, it is advisable to use the actual unit’s shipping information rather than relying only on the nominal frame weight.


25. Cabinet Space Requirements

The dimensions of the drive itself are approximately:

881.5 mm × 430 mm × 349.6 mm

However, the cabinet should be larger than the drive.

Additional space is needed for:

  • Power cables.
  • Control cables.
  • Cable bending.
  • Airflow.
  • Cooling.
  • Grounding.
  • Maintenance.
  • Inspection.
  • Protective equipment.
  • Optional components.

A cabinet should never be designed by simply adding the drive dimensions without considering installation clearances.


26. Mechanical Installation

Because the product can weigh more than 70 kg depending on configuration, mechanical handling should be considered carefully.

During installation, attention should be given to:

  • Cabinet mounting strength.
  • Mounting hardware.
  • Transportation.
  • Lifting.
  • Vibration.
  • Cable support.
  • Drive alignment.

The mounting structure should be capable of supporting the drive and all associated equipment without excessive vibration.


27. Electrical Installation

A 690 VAC, 212 A drive is a substantial industrial electrical device.

The installation should include appropriate consideration of:

  • Input protection.
  • Disconnect equipment.
  • Short-circuit protection.
  • Grounding.
  • Motor cable selection.
  • Control wiring.
  • EMC.
  • Cabinet bonding.
  • Motor grounding.
  • Cable routing.

The exact protection arrangement should be designed according to the electrical system and applicable installation requirements.


28. Motor Selection

The motor should be evaluated using its nameplate data.

Motor Parameter Importance
Rated Voltage Must be compatible with the drive system
Rated Current Critical for drive sizing
Rated Power Used with current and duty
Rated Frequency Determines operating characteristics
Rated Speed Determines speed range
Power Factor Affects current requirements
Motor Type Influences control configuration
Starting Torque Important for Heavy Duty applications
Load Torque Determines duty requirements
Motor Inertia Important for acceleration/deceleration

A motor rated at approximately 200 kW should not automatically be assumed to be suitable.

The motor current must also fall within the appropriate drive rating.


29. Advantages of the 20F1ANF212JN0NNNNN

29.1 High Power Capacity

The drive can handle a 200 kW Normal Duty application.

This makes it suitable for large industrial motors.


29.2 High Current Rating

The 212 A current capacity provides substantial motor-control capability.


29.3 690 VAC Architecture

The 690 VAC class is appropriate for large industrial motor systems.


29.4 Heavy Duty Capability

The 160 kW Heavy Duty rating allows the drive to be considered for demanding industrial loads.


29.5 No Unnecessary Internal Braking Hardware

For applications that do not need dynamic braking, the no-DB configuration can be a practical choice.

It avoids selecting a braking configuration when the process does not require it.


29.6 Embedded I/O

Embedded I/O makes integration into machine-control systems more straightforward.


29.7 PID Functionality

PID functionality is valuable for pressure, flow, airflow and other process-control applications.


29.8 Filtered Configuration

The filtered configuration supports appropriate EMC design when installed correctly.


29.9 Large Application Range

The drive can be used across many industrial sectors.


30. Potential Disadvantages and Selection Limitations

A good product selection should also consider what the drive does not provide.

The most important limitation of this exact model is the lack of an internal dynamic-braking transistor.

This should be considered when the application requires:

  • Very short stopping times.
  • Frequent braking.
  • High-inertia deceleration.
  • High regenerative energy.
  • Rapid reversing.
  • Repeated acceleration/deceleration.

In such applications, another PowerFlex 753 configuration with an internal braking transistor may be more appropriate.

Alternatively, the system may require another suitable braking architecture.


31. When the No-DB Configuration Is a Good Choice

The 20F1ANF212JN0NNNNN is particularly attractive when:

  • The motor does not need rapid stopping.
  • The machine has low regenerative energy.
  • The load is primarily variable torque.
  • The process allows a controlled ramp-down.
  • The application is a pump.
  • The application is a fan.
  • The application is a blower.
  • The application is a water system.
  • The application does not repeatedly regenerate energy.

In these situations, an internal braking transistor may not be necessary.


32. When a DB Configuration May Be Better

A different configuration should be considered when the machine has:

  • High inertia.
  • Short stopping times.
  • Frequent stopping.
  • Rapid reversing.
  • Large rotating masses.
  • Significant regenerative energy.

Examples include:

  • Centrifuges.
  • Heavy conveyors.
  • Hoists.
  • Cranes.
  • High-speed rollers.
  • Flywheel systems.
  • Certain unwinders and rewinders.

The correct choice depends on the actual braking energy and duty cycle.


33. Five Recommended Same-Series or Closely Related Models

The following models are useful when comparing PowerFlex 753 configurations around the same voltage and power range.

Model Series Voltage ND Current ND Power HD Current HD Power Frame Dynamic Braking CM Configuration Dimensions Weight
20F1ANF171JN0NNNNN PowerFlex 753 690 VAC 171 A 160 kW 142 A 132 kW 7 No J / Installed 881.5 × 430 × 349.6 mm 72.6–108.9 kg
20F1ANF212JN0NNNNN PowerFlex 753 690 VAC 212 A 200 kW 171 A 160 kW 7 No J / Installed 881.5 × 430 × 349.6 mm 72.6–108.9 kg
20F1ANF263JN0NNNNN PowerFlex 753 690 VAC 263 A 250 kW 212 A 200 kW 7 No J / Installed 881.5 × 430 × 349.6 mm class 72.6–108.9 kg class
20F1ANF212JA0NNNNN PowerFlex 753 690 VAC 212 A 200 kW 171 A 160 kW 7 Yes J / Installed 881.5 × 430 × 349.6 mm 72.6–108.9 kg class
20F1ANF171JA0NNNNN PowerFlex 753 690 VAC 171 A 160 kW 142 A 132 kW 7 Yes J / Installed 881.5 × 430 × 349.6 mm class 72.6–108.9 kg class

These five models provide a useful comparison around the same 690 VAC PowerFlex 753 platform.

The most direct alternative is 20F1ANF212JA0NNNNN because it has the same main 212 A / 200 kW / 160 kW power class but adds an internal dynamic-braking transistor.


34. 20F1ANF171JN0NNNNN

The 20F1ANF171JN0NNNNN is a lower-power member of the same PowerFlex 753 family.

Its approximate ratings are:

171 A Normal Duty

160 kW Normal Duty

142 A Heavy Duty

132 kW Heavy Duty

It uses the same general no-internal-DB configuration.

This is a good option when the motor is smaller than the 200 kW class but the application still requires a high-power 690 VAC drive.


35. 20F1ANF263JN0NNNNN

The 20F1ANF263JN0NNNNN is the next higher capacity in this group.

Its approximate ratings are:

263 A Normal Duty

250 kW Normal Duty

212 A Heavy Duty

200 kW Heavy Duty

It can be considered when the motor current exceeds the 212 A capability.


36. 20F1ANF212JA0NNNNN

The 20F1ANF212JA0NNNNN is one of the closest alternatives to the target model.

The major electrical ratings are essentially the same:

  • 690 VAC.
  • 212 A Normal Duty.
  • 200 kW Normal Duty.
  • 171 A Heavy Duty.
  • 160 kW Heavy Duty.
  • Frame 7.

The major difference is:

20F1ANF212JN0NNNNN → No internal dynamic-braking transistor

20F1ANF212JA0NNNNN → Internal dynamic-braking transistor

Therefore, the JA configuration is more suitable when dynamic braking is required.


37. 20F1ANF171JA0NNNNN

The 20F1ANF171JA0NNNNN combines the lower 171 A / 160 kW class with internal dynamic-braking capability.

It can be useful where the motor is smaller than the target 212 A class but controlled braking is still important.


38. Five Same-Brand Popular Models

The following models are useful alternatives from the same Allen-Bradley product range.

Model Product Series Voltage Current ND Power HD Power Frame Main Characteristic Dimensions Weight
20G1ANF212JA0NNNNN PowerFlex 755 690 VAC, 3 Phase 212 A class Approx. 200 kW Approx. 160 kW 7 Advanced high-power control Frame 7 class Approx. 72.6–108.9 kg class
20G1ANF171JA0NNNNN PowerFlex 755 690 VAC, 3 Phase 171 A class Approx. 160 kW Approx. 132 kW 7 Advanced industrial control Frame 7 class Approx. 72.6–108.9 kg class
25B-D2P3N114 PowerFlex 525 380–480 VAC, 3 Phase 2.3 A Approx. 0.75 kW Small-motor class Compact Compact general-purpose drive Compact Lightweight
25B-D6P0N114 PowerFlex 525 380–480 VAC, 3 Phase 6.0 A Approx. 2.2 kW Small-motor class Compact Compact industrial drive Compact Lightweight
25B-D017N114 PowerFlex 525 380–480 VAC, 3 Phase 17 A Approx. 7.5 kW Small-motor class C General-purpose motor control Compact Lightweight

The PowerFlex 755 models are the most relevant alternatives when the application remains in the 690 VAC high-power range.

The PowerFlex 525 models are substantially smaller.

They are better regarded as popular same-brand models for smaller motors rather than direct replacements for the 20F1ANF212JN0NNNNN.


39. PowerFlex 753 and PowerFlex 755 Comparison

Feature PowerFlex 753 PowerFlex 755
Product Position Industrial architecture-class drive Advanced architecture-class drive
690 VAC Versions Yes Yes
Large Motor Control Yes Yes
Embedded I/O Yes Yes
PID Yes Yes
Dynamic Braking Configuration dependent Configuration dependent
Feedback Options Available More extensive
Advanced Control Strong More extensive
Motion Functions Limited More advanced
Typical Applications Pumps, fans, conveyors, process equipment Advanced machinery and coordinated systems
Main Strength High-power general industrial control Advanced high-power control

The PowerFlex 753 is particularly attractive for general high-power industrial motor control.

The PowerFlex 755 family becomes more attractive when advanced feedback, control or motion-related functionality is required.


40. Application Suitability

Application Suitability Reason
Large centrifugal pump ★★★★★ Excellent variable-speed application
Large centrifugal fan ★★★★★ Excellent variable-torque application
Large blower ★★★★★ Strong process-control application
Water circulation ★★★★★ Good PID and speed-control application
Large HVAC ★★★★★ Suitable for variable-speed operation
Heavy conveyor ★★★★☆ Good, but braking requirements must be evaluated
Large mixer ★★★★☆ Good Heavy Duty capability
Compressor ★★★★☆ Depends on compressor design
Material handling ★★★★☆ Good if braking requirements are moderate
Crane ★★★☆☆ Braking requirements need careful evaluation
Hoist ★★★☆☆ External/alternative braking architecture may be needed
Centrifuge ★★☆☆☆ High regenerative energy requires careful braking design
High-inertia machinery ★★☆☆☆ No internal DB transistor
Small motor ★☆☆☆☆ Drive is oversized

41. Energy-Saving Applications

The drive can provide energy-saving opportunities when applied to appropriate variable-torque systems.

The strongest applications are generally:

  • Centrifugal pumps.
  • Centrifugal fans.
  • Blowers.

A motor operating at full speed when the process requires only partial output can consume considerably more energy than necessary.

A variable frequency drive allows the motor speed to be reduced.

For suitable centrifugal systems, this can produce significant energy savings.

The actual savings depend on:

  • Operating hours.
  • Load profile.
  • Motor efficiency.
  • Pump efficiency.
  • Fan efficiency.
  • Required flow.
  • Required pressure.
  • Operating speed.
  • Process demand.

42. Mechanical Advantages

Variable-speed control can help reduce mechanical shock during starting and stopping.

Controlled acceleration can reduce sudden torque changes.

Controlled deceleration can allow the machine to stop according to a programmed ramp.

Potential benefits can include reduced stress on:

  • Shafts.
  • Couplings.
  • Bearings.
  • Gearboxes.
  • Belts.
  • Conveyor components.
  • Pump assemblies.
  • Fan assemblies.

However, when the machine requires very rapid deceleration, the no-DB configuration must be evaluated carefully.


43. Process-Control Advantages

The drive can become part of an automatic process-control loop.

For example:

Pressure Sensor → PID → Drive → Pump

Or:

Airflow Sensor → PID → Drive → Blower

Or:

Temperature Sensor → Control System → Drive → Fan

This allows the motor to respond automatically to changing process requirements.


44. High-Inertia Load Considerations

High-inertia applications deserve special attention.

When a high-inertia motor slows down, the mechanical energy stored in the rotating equipment can be returned to the drive.

If the regenerative energy causes the DC bus to rise excessively, the drive may need another method of managing the energy.

Because the 20F1ANF212JN0NNNNN has no internal dynamic-braking transistor, applications with substantial regenerative energy should be evaluated before selecting this model.

This does not mean the model cannot be used in high-inertia applications.

It means the complete braking strategy must be designed appropriately.


45. Braking Requirement Comparison

Application Typical Braking Requirement Suitability of No-DB Model
Centrifugal pump Low Excellent
Centrifugal fan Low Excellent
Blower Low to moderate Excellent
Water circulation Low Excellent
HVAC Low Excellent
Conveyor Moderate Good with evaluation
Heavy conveyor High Requires careful evaluation
Mixer Moderate Application dependent
Compressor Moderate Application dependent
Crane High Requires braking solution
Hoist High Requires braking solution
Centrifuge Very high Alternative braking arrangement recommended
Flywheel Very high Careful regenerative-energy analysis required

46. Cabinet Design Checklist

Item Recommended Consideration
Cabinet Height Allow clearance above and below the drive
Cabinet Width Allow room for wiring and maintenance
Cabinet Depth Allow cable connections and airflow
Cooling Provide sufficient heat removal
Airflow Do not obstruct cooling path
Power Cables Allow suitable bending radius
Control Wiring Keep organized and appropriately separated
Grounding Provide a suitable grounding system
EMC Consider shielding and cabinet bonding
Maintenance Provide practical service access
Mechanical Support Support approximately 72.6–108.9 kg frame weight as applicable
Protective Devices Provide appropriate upstream protection
Environment Protect the open-type drive from unsuitable conditions

47. Product Selection Checklist

Before selecting the 20F1ANF212JN0NNNNN, the following should be checked:

Selection Item Check
Motor Voltage 690 VAC system
Motor Current Within appropriate 212 A rating
Motor Power Compatible with 200 kW ND / 160 kW HD
Duty Type Normal Duty or Heavy Duty
Load Type Variable torque or constant torque
Acceleration Required acceleration time
Deceleration Required deceleration time
Regenerative Energy Must be evaluated
Dynamic Braking Not internally provided
Braking Resistor Evaluate if required by system
Cabinet Adequate physical space
Cooling Adequate airflow
Ambient Temperature Within applicable range
Altitude Check potential derating
Motor Cable Suitable VFD-rated cable
Grounding Proper grounding arrangement
EMC Proper installation required

48. Important Difference Between J and A Configurations

The catalog number contains configuration information that is important during model selection.

For the filtering/common-mode configuration, the J designation indicates that the common-mode capacitor jumper is installed.

The A configuration indicates that the jumper is removed.

This means two drives with otherwise similar electrical ratings can have different electrical configurations.

Therefore, when replacing a drive, it is important to compare the entire catalog number rather than just the voltage, current and kW rating.


49. Important Difference Between N and A Braking Configurations

The braking configuration is another important catalog-number distinction.

The N configuration indicates:

No internal dynamic-braking transistor

The corresponding A configuration indicates:

Internal dynamic-braking transistor installed

Therefore:

20F1ANF212JN0NNNNN

means the 212 A / 200 kW PowerFlex 753 configuration has no internal dynamic-braking transistor.

Whereas:

20F1ANF212JA0NNNNN

is the corresponding configuration with internal dynamic-braking capability.

This is an important distinction for machine builders and replacement-drive selection.


50. Comparison With 20F1ANF212JA0NNNNN

Feature 20F1ANF212JN0NNNNN 20F1ANF212JA0NNNNN
Series PowerFlex 753 PowerFlex 753
Voltage 690 VAC 690 VAC
ND Current 212 A 212 A
ND Power 200 kW 200 kW
HD Current 171 A 171 A
HD Power 160 kW 160 kW
Frame 7 7
Dynamic Braking No Yes
Internal DB Transistor No Yes
Filtering Filtered Filtered
CM Jumper Installed Installed
Dimensions 881.5 × 430 × 349.6 mm 881.5 × 430 × 349.6 mm
Weight 72.6–108.9 kg class 72.6–108.9 kg class
Best Application Loads without significant regenerative braking Loads requiring dynamic braking

This is one of the most useful comparisons for the target model.

The two drives have essentially the same main power ratings.

The major difference is the braking configuration.


51. Comparison With 20F1ANF212AN0NNNNN

Feature 20F1ANF212JN0NNNNN 20F1ANF212AN0NNNNN
Voltage 690 VAC 690 VAC
ND Current 212 A 212 A
ND Power 200 kW 200 kW
HD Current 171 A 171 A
HD Power 160 kW 160 kW
Frame 7 7
Dynamic Braking No No
Internal DB Transistor No No
Filtering Filtered Filtered
CM Jumper Installed Removed
Dimensions 881.5 × 430 × 349.6 mm 881.5 × 430 × 349.6 mm class
Weight 72.6–108.9 kg class Frame/configuration dependent
Main Difference CM jumper installed CM jumper removed

This comparison shows why the complete model number matters.

The two models can look very similar from the basic power-rating perspective but have different filtering/common-mode configurations.


52. Five Recommended Models by Requirement

Requirement Recommended Model
Approximately 132 kW ND, no internal DB 20F1ANF171JN0NNNNN
Approximately 160 kW ND, no internal DB 20F1ANF171JN0NNNNN
200 kW ND, no internal DB 20F1ANF212JN0NNNNN
200 kW ND, internal dynamic braking 20F1ANF212JA0NNNNN
Approximately 250 kW ND, no internal DB 20F1ANF263JN0NNNNN

53. Recommended Model by Application

Application Recommended Configuration
Large centrifugal pump 20F1ANF212JN0NNNNN
Large centrifugal fan 20F1ANF212JN0NNNNN
Large blower 20F1ANF212JN0NNNNN
Water circulation 20F1ANF212JN0NNNNN
Large HVAC system 20F1ANF212JN0NNNNN
Heavy conveyor Evaluate 20F1ANF212JA0NNNNN if braking is required
Centrifuge Evaluate dynamic-braking configuration
Crane Evaluate complete braking architecture
Hoist Evaluate dynamic-braking and mechanical-brake system
High-inertia roller Consider dynamic-braking configuration
Large mixer Select according to torque and braking requirements
Compressor Select according to compressor operating profile

54. Five Same-Brand Models — Detailed Comparison

Model Series Voltage Current ND Power HD Power Braking Frame Dimensions Weight
20G1ANF212JA0NNNNN PowerFlex 755 690 VAC 212 A class 200 kW class 160 kW class Configuration dependent 7 Frame 7 class Approx. 72.6–108.9 kg class
20G1ANF171JA0NNNNN PowerFlex 755 690 VAC 171 A class 160 kW class 132 kW class Configuration dependent 7 Frame 7 class Approx. 72.6–108.9 kg class
25B-D2P3N114 PowerFlex 525 380–480 VAC 2.3 A Approx. 0.75 kW Small-motor class Configuration dependent Compact Compact Lightweight
25B-D6P0N114 PowerFlex 525 380–480 VAC 6.0 A Approx. 2.2 kW Small-motor class Configuration dependent Compact Compact Lightweight
25B-D017N114 PowerFlex 525 380–480 VAC 17 A Approx. 7.5 kW Small-motor class Configuration dependent C Compact Lightweight

These models represent a mixture of high-power and compact drives within the same brand portfolio.

For a 690 VAC, approximately 200 kW application, the PowerFlex 755 models are much more relevant than the PowerFlex 525 models.


55. Overall Product Strengths

Strength Practical Meaning
690 VAC Suitable for large industrial motors
212 A High current capacity
200 kW ND Strong variable-torque capability
171 A HD Stronger constant-torque capability
160 kW HD Suitable for demanding applications
Frame 7 High-power mechanical platform
Forced-Air Cooling Suitable for high-power operation
Embedded I/O Easier machine integration
PID Useful for process regulation
Filtered Configuration Supports EMC-conscious installation
CM Jumper Installed Specific factory configuration
No Internal DB Appropriate where dynamic braking is unnecessary
Open Type Flexible cabinet integration
Wide Application Range Suitable for pumps, fans, blowers and process equipment

56. Final Technical Specification Table

Key Parameter Specification
Model 20F1ANF212JN0NNNNN
Brand Allen-Bradley
Product Series PowerFlex 753
Product Family PowerFlex 750-Series
Product Type Air-Cooled AC Drive
Input Voltage 690 VAC
Input Phase 3 Phase
Output Phase 3 Phase
Input Frequency 50/60 Hz
Normal Duty Current 212 A
Normal Duty Power 200 kW
Heavy Duty Current 171 A
Heavy Duty Power 160 kW
Frame Size Frame 7
Cooling Forced Air
Enclosure Open Type
Protection IP00/IP20
NEMA/UL Type Open
Input Type AC Input with Precharge
DC Terminals None
Dynamic Braking None
Internal DB Transistor None
Filtering Filtered
CM Jumper Installed
Embedded I/O Yes
PID Yes
Integrated Motion No
HIM Blank / No HIM
Installation Cabinet / Panel
Motor Type Three-Phase AC Motor
Height 881.5 mm
Width 430 mm
Depth 349.6 mm
Dimensions 881.5 × 430 × 349.6 mm
Weight Approx. 72.6–108.9 kg
Main Application Large industrial motor control
Main Duty 200 kW Normal Duty / 160 kW Heavy Duty
Main Configuration Characteristic No internal dynamic-braking transistor
Filtering Configuration Filtered, CM jumper installed

57. Final Conclusion

The 20F1ANF212JN0NNNNN is a high-power Allen-Bradley PowerFlex 753 AC Drive designed for large three-phase industrial motor applications.

Its principal electrical ratings are 690 VAC, 212 A Normal Duty, 200 kW Normal Duty, 171 A Heavy Duty and 160 kW Heavy Duty.

This places the drive firmly in the high-power industrial category.

The PowerFlex 753 platform is particularly suitable for applications where reliable variable-speed motor control is required together with industrial control integration, embedded I/O and process-control functions.

The drive is well suited to large pumps, fans, blowers, water systems, HVAC equipment, conveyors, mixers, compressors and other process machinery.

The most important characteristic of this particular catalog number is its no-internal-dynamic-braking configuration.

This should not automatically be viewed as a weakness.

For many applications, particularly large centrifugal pumps, fans and blowers, rapid dynamic braking is not required.

In those situations, the 20F1ANF212JN0NNNNN provides a straightforward high-power variable-speed solution without selecting an internal braking transistor that the application may not need.

On the other hand, if the machine has significant rotational inertia, requires rapid stopping or repeatedly returns regenerative energy to the drive, the braking arrangement needs to be examined carefully.

In such applications, a closely related configuration such as 20F1ANF212JA0NNNNN, which includes an internal dynamic-braking transistor, may be more appropriate.

The physical dimensions of the target model are approximately 881.5 × 430 × 349.6 mm, making it a substantial Frame 7 drive.

The published Frame 7 weight range is approximately 72.6–108.9 kg, depending on the exact configuration.

The cabinet therefore needs adequate mechanical strength, cooling capacity, ventilation, cable space and maintenance access.

The filtered configuration with the CM jumper installed is another important characteristic.

This means that the target model should not be treated as identical to every other 212 A / 200 kW PowerFlex 753 drive.

Catalog-number configuration matters.

When comparing the target model with the 20F1ANF212JA0NNNNN, the main difference is the internal dynamic-braking transistor.

When comparing it with the 20F1ANF212AN0NNNNN, the main difference is the common-mode jumper configuration.

Therefore, the complete catalog number should always be checked when purchasing, replacing or configuring a drive.

Overall, the 20F1ANF212JN0NNNNN can be described as a 690 VAC, 212 A, 200 kW Normal Duty / 160 kW Heavy Duty, Frame 7, forced-air-cooled PowerFlex 753 AC drive with embedded I/O, PID capability, filtered input configuration, CM jumper installed and no internal dynamic-braking transistor.

Its strongest advantages are its high power capacity, high current rating, 690 VAC architecture, industrial construction, embedded control functions, process-control capability and broad application range.

For large pumps, fans, blowers and other industrial machines that require variable-speed control but do not require an internal dynamic-braking transistor, this model is a strong and practical configuration.



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