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The 20G11JC910AN4NNNNN is a high-power air-cooled AC drive from the PowerFlex 755 series, designed for large industrial motor-control applications.
It is a 400 VAC, three-phase, 910 A drive with a Frame 9 construction. Its rated power capability is approximately 560 kW for light-duty applications, 500 kW for normal-duty applications, and 400 kW for heavy-duty applications.
The model uses an 800 mm deep MCC-style Type 12 / IP54 enclosure configuration, making it considerably more suitable for industrial installation environments than an open-frame drive.
This particular configuration also includes an enhanced LCD full-numeric HIM with IP66 / NEMA Type 4X/12 protection, providing a practical local interface for setup, monitoring, diagnostics and operation.
The model is configured for AC input with precharge, includes EMC filtering with the common-mode jumper removed, and has no internal dynamic-braking transistor.
The product is best regarded as a large industrial variable-frequency drive for applications where motor speed, torque and process operation need to be controlled accurately rather than simply switched on and off.
| Item | Information |
|---|---|
| Brand | Allen-Bradley |
| Product family | PowerFlex |
| Series | PowerFlex 755 |
| Product type | Air-cooled AC drive |
| Drive category | High-power industrial variable-frequency drive |
| Catalog number | 20G11JC910AN4NNNNN |
| Frame size | Frame 9 |
| Cooling | Forced-air / air cooled |
| Voltage class | 400 VAC |
| Phase | Three-phase |
| Output-current class | 910 A |
| Enclosure | Type 12 |
| Environmental protection | IP54 |
| Enclosure depth | 800 mm MCC-style |
| Communication | Embedded EtherNet/IP |
| Local operator interface | Enhanced LCD, full numeric, IP66 / NEMA Type 4X/12 HIM |
| Input arrangement | AC input with precharge |
| Dynamic braking | None |
| EMC filtering | Filtered |
| Common-mode jumper | Removed |
| General application | Large industrial motor control |
| Parameter | Specification |
|---|---|
| Model | 20G11JC910AN4NNNNN |
| Brand | Allen-Bradley |
| Series | PowerFlex 755 |
| Product type | Air-cooled AC drive |
| Input voltage | 400 VAC |
| Input phase | 3-phase |
| DC bus voltage class | Approximately 540 VDC |
| Output current | 910 A |
| Light-duty rating | 560 kW |
| Normal-duty rating | 500 kW |
| Heavy-duty rating | 400 kW |
| Light-duty equivalent | Approximately 750 HP class |
| Normal-duty equivalent | Approximately 670 HP class |
| Heavy-duty equivalent | Approximately 535 HP class |
| Frame | Frame 9 |
| Cooling | Forced air |
| Enclosure | Type 12 |
| IP rating | IP54 |
| Cabinet depth | 800 mm |
| Input type | AC input with precharge |
| DC terminals | Available in the specified architecture |
| EMC filter | Yes |
| CM jumper | Removed |
| Internal braking transistor | None |
| HIM | Enhanced LCD, full numeric |
| HIM protection | IP66 / NEMA Type 4X/12 |
| Network | Embedded EtherNet/IP |
| PID capability | Yes |
| Motor-control capability | Variable-frequency AC motor control |
| Installation | MCC / industrial cabinet |
| Approx. dimensions | Approximately 2000 × 800 × 800 mm* |
| Approx. weight | Approximately 1,246 kg* |
| Cooling-air requirement | High-volume forced-air cooling |
| Application class | Large industrial machinery |
*The dimensions and weight are intended as practical reference values for the complete large-frame packaged configuration. Actual shipping weight and final mechanical dimensions can vary with factory options, enclosure arrangement, line-side equipment, and installation configuration. The 1,246 kg figure should not be confused with the weight of a small standalone drive power module; this is a large packaged drive configuration.
The catalog number 20G11JC910AN4NNNNN identifies a specific configuration rather than merely identifying the general PowerFlex 755 series.
The important portions can be interpreted at a high level as follows:
| Model Portion | General Identification |
|---|---|
| 20G | PowerFlex 755 AC drive family |
| 11 | PowerFlex 755 architecture / packaged-drive configuration |
| JC | 400 V-class configuration |
| 910 | 910 A output-current class |
| A | Specific configuration option |
| N4 | Factory-selected configuration including the specified operator interface arrangement |
| NNNNN | Additional catalog configuration positions |
The complete catalog number is important when ordering a replacement.
A model with the same 910 A rating but a different suffix can have different enclosure, filtering, HIM, braking, protection or other configuration characteristics.
For that reason, 20G11JC910AN4NNNNN should be treated as a complete catalog number rather than simply as “a 910 A PowerFlex 755.”
The PowerFlex 755 is a high-performance industrial AC drive platform developed for applications where the motor needs controlled speed, torque and acceleration.
Compared with a simple variable-frequency drive, this type of architecture is intended for considerably more demanding applications.
The 20G11JC910AN4NNNNN sits toward the high-power end of the product family. With a 910 A output rating and 500 kW normal-duty capacity, it is designed for large motors used in industrial production, material handling, utilities and process equipment.
The drive converts incoming three-phase AC power into controlled electrical output for the motor.
By adjusting the output frequency and voltage, motor speed can be controlled according to the requirements of the process.
This makes the drive especially useful when a motor does not need to operate continuously at full speed.
For example, a large pump can reduce its speed when the required flow is lower. A large fan can reduce speed when less ventilation is needed. A conveyor can accelerate gradually instead of applying full motor torque immediately.
The result is better process control, reduced mechanical shock and, in many applications, improved energy efficiency.
The most important characteristic of this model is its 910 A output-current rating.
This places it in a high-power industrial class.
The drive provides three different application power ratings:
| Duty Category | Rating |
|---|---|
| Light Duty | 560 kW |
| Normal Duty | 500 kW |
| Heavy Duty | 400 kW |
The distinction between these ratings is important.
A motor application with a relatively stable load may be evaluated using the normal-duty rating.
A machine that experiences frequent acceleration, higher torque demand or repeated overload conditions may need to be evaluated against the heavy-duty rating.
Therefore, selecting a drive based only on the motor’s nameplate kW can result in an incorrect selection.
The motor’s full-load current, overload profile and mechanical load characteristics should be considered first.
One of the notable features of 20G11JC910AN4NNNNN is its Type 12 / IP54, 800 mm deep MCC-style enclosure.
This is particularly useful in industrial environments where the drive needs more environmental protection than an open-frame installation can provide.
IP54 protection generally provides protection against harmful dust ingress and water splashing from various directions.
The Type 12 configuration is also intended for industrial cabinet environments.
Typical installation areas can include:
The enclosure does not eliminate the need for appropriate environmental engineering.
Temperature, humidity, corrosive gases, dust concentration, airflow and cabinet heat dissipation should still be considered.
The N4 configuration is important because the drive is equipped with an enhanced LCD full-numeric HIM.
This provides a local interface for functions such as:
The interface has IP66 / NEMA Type 4X/12 protection, which makes it considerably more suitable for industrial operating environments than an unprotected operator interface.
For maintenance personnel, having a local display can also reduce troubleshooting time because important operating information can be checked directly at the drive.
The PowerFlex 755 platform supports industrial network integration, and this configuration belongs to the embedded EtherNet/IP architecture.
This is particularly useful in a PLC-controlled production environment.
The drive can be integrated into a larger automation system for:
For a facility containing many large motors, network integration can simplify centralized control.
Instead of treating each drive as an independent device, the automation system can monitor the operating condition of multiple drives from a common control platform.
PID control is another important capability for process applications.
PID control can be used where the drive needs to maintain a process variable around a desired setpoint.
Typical variables include:
For example, a pump controlled by pressure feedback can automatically increase or decrease motor speed to maintain the desired pressure.
This is often more efficient and more responsive than operating the pump at maximum speed continuously and regulating the process through mechanical restrictions.
Large pumping systems are one of the strongest application areas for this type of drive.
Possible applications include:
The drive allows the pump motor to operate according to actual process demand.
This can reduce unnecessary full-speed operation and can also improve pressure and flow stability.
Large fans can consume substantial amounts of electricity when operated continuously at full speed.
A variable-frequency drive can adjust the fan speed to match actual airflow requirements.
Applications include:
Large conveyors often have substantial mechanical inertia.
Starting a large conveyor motor directly can result in significant mechanical stress.
A controlled drive can provide smoother acceleration and deceleration.
This is useful for:
Large compressors may require controlled motor speed and careful acceleration.
The suitability of the drive depends on the compressor design, torque requirements and operating profile.
Potential applications include:
The drive can also be used for large process machines where controlled speed and torque are required.
Examples include:
The 910 A output rating is the defining characteristic of this model.
It allows the drive to control large industrial motors without having to use several smaller drives simply to achieve the required current capacity.
The approximately 500 kW normal-duty rating puts this model firmly in the large industrial-drive category.
It is suitable for applications where large motors need variable-speed operation.
The enclosed construction makes the unit more suitable for industrial environments than an open-frame drive.
This can simplify integration into industrial electrical rooms and MCC-style installations.
The enhanced LCD full-numeric HIM is useful for commissioning and maintenance.
Technicians can inspect drive status and operating values locally without relying entirely on the plant control system.
EtherNet/IP integration makes the drive suitable for modern automation systems.
This can improve:
PID functionality makes the drive useful for applications where the motor needs to respond to process feedback.
This is particularly valuable for pumps, fans and other variable-torque machinery.
Air cooling avoids the complexity of a dedicated liquid-cooling circuit.
For large industrial installations, this can make the overall cooling architecture easier to maintain.
However, the high heat output of a 910 A drive means that cabinet ventilation remains an important engineering consideration.
The specified configuration has no internal dynamic-braking transistor.
This is important for applications with significant regenerative energy.
For example, certain high-inertia machines, lowering applications and rapidly decelerating loads can return energy toward the drive DC bus.
If the application requires substantial braking, the complete braking strategy needs to be designed separately.
Possible engineering approaches can include an external braking solution or another suitable regenerative architecture, depending on the application.
Therefore, a user should not assume that the absence of an internal braking transistor means the drive cannot be used for a high-inertia application.
It means that the braking arrangement must be evaluated separately.
For this model, mechanical information is particularly important because it is a large Frame 9, 800 mm deep MCC-style packaged drive.
| Mechanical Parameter | Approximate Value |
|---|---|
| Frame | Frame 9 |
| Enclosure style | Type 12 / IP54 |
| Cabinet depth | 800 mm |
| Approximate overall height | 2,000 mm |
| Approximate overall width | 800 mm |
| Approximate depth | 800 mm |
| Approximate overall dimensions | 2,000 × 800 × 800 mm |
| Approximate weight | 1,246 kg |
| Cooling | Forced air |
| Installation | Floor-mounted / MCC-style |
| Service consideration | Front access and adequate ventilation required |
The 1,246 kg figure is a useful reference for planning transportation and installation.
For actual mechanical engineering, lifting and foundation design, the final shipping documentation and exact factory configuration should always be checked.
A drive of this size should not be handled or installed like a conventional wall-mounted VFD.
Because of the size and power of the unit, installation requires careful engineering.
The incoming power system must be properly sized for the drive.
Protection, disconnecting equipment, cables, busbars, grounding and short-circuit coordination should all be evaluated.
The motor cable must be selected according to current, insulation requirements, installation method, temperature and applicable electrical standards.
A 910 A drive generates significant heat.
The electrical room or cabinet must have adequate cooling capacity.
Airflow around the drive should not be obstructed.
Blocked airflow can result in excessive temperature and reduced drive performance.
Proper protective grounding is essential for both personnel safety and electromagnetic compatibility.
Because this configuration includes EMC filtering, the grounding and common-mode configuration should be implemented according to the intended installation arrangement.
The following models are useful comparison points within the PowerFlex 755 family.
| Model | Series | Voltage Class | Output Current | LD Power | ND Power | HD Power | Frame | Enclosure / Cooling |
|---|---|---|---|---|---|---|---|---|
| 20G11JC910AN0NNNNN | PowerFlex 755 | 400 V | 910 A | 560 kW | 500 kW | 400 kW | 9 | Type 12 / IP54, air cooled |
| 20G11JC910JN4NNNNN | PowerFlex 755 | 400 V | 910 A | 560 kW | 500 kW | 400 kW | 9 | Type 12 / IP54, air cooled |
| 20G11JD800AN4NNNNN | PowerFlex 755 | 480 V | 800 A | Approx. 600 kW class | Approx. 520 kW class | Approx. 450 kW class | 9 | Type 12 / IP54, air cooled |
| 20G11JE825AN4NNNNN | PowerFlex 755 | 600 V class | 825 A | Approx. 950 kW class | Approx. 900 kW class | Approx. 750 kW class | 9 | Type 12 / IP54, air cooled |
| 20G11JE900AN4NNNNN | PowerFlex 755 | 600 V class | 900 A | Approx. 1,000 kW class | Approx. 950 kW class | Approx. 800 kW class | 9 | Type 12 / IP54, air cooled |
| Model | Approx. Dimensions | Approx. Weight |
|---|---|---|
| 20G11JC910AN0NNNNN | Approx. 2,000 × 800 × 800 mm | Approx. 1,246 kg |
| 20G11JC910JN4NNNNN | Approx. 2,000 × 800 × 800 mm | Approx. 1,246 kg class |
| 20G11JD800AN4NNNNN | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg class |
| 20G11JE825AN4NNNNN | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg class |
| 20G11JE900AN4NNNNN | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg class |
The exact mechanical dimensions and weight of related configurations can change with options, so these figures should be regarded as preliminary engineering values.
Below are five useful models from the same brand that cover different power levels and application requirements.
| Model | Series | Voltage Class | Current / Power Class | Typical Application | Cooling | Approx. Dimensions | Approx. Weight |
|---|---|---|---|---|---|---|---|
| 20G11JC910AN4NNNNN | PowerFlex 755 | 400 V | 910 A / 500 kW ND | Large pumps, fans, conveyors | Air | 2,000 × 800 × 800 mm | 1,246 kg |
| 20G11JD800AN4NNNNN | PowerFlex 755 | 480 V | 800 A class | Large industrial machinery | Air | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg |
| 20G11JE825AN4NNNNN | PowerFlex 755 | 600 V class | 825 A class | Large process equipment | Air | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg |
| 20G11JE900AN4NNNNN | PowerFlex 755 | 600 V class | 900 A class | Large pumps and fans | Air | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg |
| 20G11JF960AN4NNNNN | PowerFlex 755 | 690 V class | 960 A class | High-power industrial equipment | Air | Approx. 2,000 × 800 × 800 mm | Approx. 1,200 kg |
The five models above are useful primarily as technical comparison candidates, rather than as direct drop-in replacements.
Voltage class is especially important.
A 480 V, 600 V or 690 V version should not be substituted for a 400 V model simply because its current rating appears similar.
| Parameter | 20G11JC910AN4NNNNN | 20G11JD800AN4NNNNN | 20G11JE825AN4NNNNN | 20G11JE900AN4NNNNN | 20G11JF960AN4NNNNN |
|---|---|---|---|---|---|
| Series | PowerFlex 755 | PowerFlex 755 | PowerFlex 755 | PowerFlex 755 | PowerFlex 755 |
| Voltage | 400 V | 480 V | 600 V class | 600 V class | 690 V class |
| Current | 910 A | 800 A | 825 A | 900 A | 960 A |
| Frame | 9 | 9 | 9 | 9 | 9 |
| Normal-duty power | 500 kW | Approx. 520 kW | Approx. 900 kW | Approx. 950 kW | Approx. 900 kW |
| Cooling | Air | Air | Air | Air | Air |
| Enclosure | Type 12 / IP54 | Type 12 / IP54 | Type 12 / IP54 | Type 12 / IP54 | Type 12 / IP54 |
| EtherNet/IP | Yes | Yes | Yes | Yes | Yes |
| Local HIM | Enhanced LCD | Configuration dependent | Configuration dependent | Configuration dependent | Configuration dependent |
| Dynamic braking | None | Configuration dependent | Configuration dependent | Configuration dependent | Configuration dependent |
| Approx. depth | 800 mm | 800 mm class | 800 mm class | 800 mm class | 800 mm class |
| Approx. weight | 1,246 kg | 1,200 kg class | 1,200 kg class | 1,200 kg class | 1,200 kg class |
| Load Type | Suitability | Reason |
|---|---|---|
| Large centrifugal pump | Excellent | Variable-speed control and process regulation |
| Large fan | Excellent | Speed adjustment can match airflow requirements |
| Large blower | Excellent | Good for variable-speed process air |
| Conveyor | Excellent | Controlled acceleration and deceleration |
| Mining conveyor | Excellent | High-current capability |
| Water system | Excellent | Suitable for pressure and flow control |
| Cooling-water system | Excellent | Good variable-speed application |
| Large compressor | Very good | Depends on compressor torque profile |
| Mixer | Very good | Depends on starting torque and inertia |
| Extruder | Good | Requires application-specific torque evaluation |
| Crusher | Application dependent | High starting and shock loads require careful sizing |
| Hoist | Application dependent | Braking/regeneration requirements must be evaluated |
The primary purpose of a large variable-frequency drive is not simply to change motor speed.
The bigger benefit is that motor operation can be matched to the actual process requirement.
For variable-torque equipment such as centrifugal pumps and fans, reducing speed can substantially reduce the power required by the mechanical system.
For conveyors, controlled acceleration can reduce mechanical impact.
For process equipment, controlled speed can improve production consistency.
For large plants, networked monitoring can also improve maintenance efficiency because abnormal current, speed, temperature, faults and operating conditions can be identified earlier.
The local LCD operator interface provides useful information during maintenance.
A technician can inspect drive conditions without necessarily connecting additional equipment.
Typical maintenance tasks can include:
For a large 910 A drive, preventive maintenance is especially important.
Cooling fans, air passages, electrical connections and cabinet ventilation should be inspected regularly.
Before selecting this model for a new installation, the following parameters should be checked.
| Selection Item | Why It Matters |
|---|---|
| Motor voltage | Must match the drive voltage class |
| Motor rated current | Primary drive-sizing parameter |
| Motor power | Important, but should not be used alone |
| Duty cycle | Determines normal-duty vs heavy-duty suitability |
| Starting torque | Important for conveyors and high-inertia loads |
| Acceleration time | Determines required overload capability |
| Deceleration time | Determines braking requirements |
| Regenerative energy | Important because this configuration has no internal braking transistor |
| Ambient temperature | Affects drive capacity and cooling |
| Enclosure | Must suit the installation environment |
| Network | Important for PLC integration |
| HIM requirement | Determines local operator-control arrangement |
| EMC requirements | Important for system compatibility |
| Cabinet ventilation | Critical for a high-power air-cooled drive |
| Mechanical access | Important because of the large Frame 9 package |
| Transportation | Approximately 1.2-ton-class equipment requires appropriate handling |
| Advantage | Evaluation |
|---|---|
| High output current | Excellent |
| High motor-power capability | Excellent |
| Industrial enclosure | Excellent |
| Network integration | Excellent |
| Local operator interface | Excellent |
| Process control | Excellent |
| Large pump applications | Excellent |
| Large fan applications | Excellent |
| Conveyor applications | Excellent |
| Maintenance accessibility | Very good |
| Installation flexibility | Good |
| Compactness | Limited due to high-power construction |
| Braking capability | Requires additional consideration |
| Suitability for small motors | Poor / unnecessary |
The 20G11JC910AN4NNNNN is a large, high-capacity industrial AC drive intended for serious motor-control applications.
Its combination of 400 VAC input, 910 A output current, 500 kW normal-duty rating, 400 kW heavy-duty rating, Frame 9 construction, Type 12 / IP54 enclosure, forced-air cooling, embedded EtherNet/IP and enhanced LCD operator interface makes it particularly suitable for large industrial machinery.
Its strongest application areas are large pumps, fans, blowers, conveyors, process equipment, material-handling systems and other high-power motor-driven machinery.
The N4 configuration is particularly useful where local operator access is important because it provides an enhanced full-numeric LCD interface with a high-protection enclosure.
The absence of an internal dynamic-braking transistor is the main configuration point that needs additional attention when the machine has significant regenerative energy or requires rapid deceleration.
The mechanical size is also important. With an approximately 800 mm deep MCC-style construction and a reference weight of approximately 1,246 kg, this is equipment that should be planned as a major electrical installation rather than as a conventional small VFD.
For replacement work, the closest model to investigate is 20G11JC910JN4NNNNN, because it retains the same 910 A / 400 V / Frame 9 general configuration while representing the newer replacement configuration.
For capacity changes, models around the 800 A, 910 A and higher-current classes are useful comparison points.
For different supply systems, the 480 V, 600 V and 690 V variants can be considered, but these should be treated as different voltage-class products rather than direct substitutes.
Overall, the 20G11JC910AN4NNNNN is best suited to a large industrial installation where high motor current, process control, network communication, enclosed construction and reliable variable-speed operation are more important than minimizing physical size or initial equipment complexity.