Our advantage
Global Logistics
We have a 10-year logistics and express cooperation agreement, so our products can be shipped to any place in the world.
Brand new and original
Our products are imported in bulk from the place of origin. Because of the cooperative relationship, our products are all original and 100% new.
24-hour service
We provide 7*24 hours service to our customers. We will be there whenever you need us.
Price advantage
All our products are priced very favorably because we have our own warehouse and supply.
| Company Information | |||
| [email protected] | |||
| Mobile | +8615980777398 | ||
| +8615980777398 | |||
| 15980777398 |

The Allen-Bradley 20G1ANE063AN0NNNNN is a PowerFlex 755 AC variable frequency drive designed for industrial motor-control applications requiring a 600 VAC three-phase power system, substantial output current, flexible speed control, industrial network communication, and reliable cabinet-based operation.
This model is part of the PowerFlex 755 family and is rated at 63 A, with a 60 HP normal-duty rating and a 50 HP heavy-duty rating. It uses a 600 VAC, three-phase input class, an air-cooled Frame 6 construction, and an open-type IP20/IP00 installation arrangement.
One of the most important characteristics of this exact model is its configuration. The 20G1ANE063AN0NNNNN is a filtered drive with the CM jumper removed and no internal dynamic-braking transistor. This distinguishes it from other closely related 63 A PowerFlex 755 models, such as configurations with an internal braking transistor or a different common-mode jumper arrangement.
The drive also includes embedded Ethernet/IP communication, making it suitable for integration into industrial automation systems where drive commands, operating status, speed references, alarms, and diagnostic information need to be exchanged with a controller or supervisory system.
| Item | Specification |
|---|---|
| Brand | Allen-Bradley |
| Product Family | PowerFlex |
| Product Series | PowerFlex 755 |
| Product Type | AC Variable Frequency Drive |
| Drive Category | Industrial AC Motor Drive |
| Cooling Method | Forced Air / Air Cooled |
| Voltage Class | 600 VAC |
| Input Phase | Three Phase |
| Frame Size | Frame 6 |
| Communication | Embedded Ethernet/IP |
| Enclosure Type | IP20/IP00, NEMA/UL Open Type |
| Primary Function | Variable-speed motor control |
| Typical Installation | Industrial electrical cabinet |
The PowerFlex 755 series is intended for industrial applications where motor control is more demanding than a basic standalone variable-frequency-drive application.
The architecture is particularly useful when a drive needs to communicate with an automation system, provide operating and diagnostic information, support different motor-control strategies, and operate reliably as part of a larger production system.
| Parameter | Specification |
|---|---|
| Model | 20G1ANE063AN0NNNNN |
| Series | PowerFlex 755 |
| Drive Type | AC Variable Frequency Drive |
| Voltage | 600 VAC |
| Phase | 3 Phase |
| Output Current | 63 A |
| Normal-Duty Rating | 60 HP |
| Heavy-Duty Rating | 50 HP |
| Approx. Normal-Duty Power | 45 kW |
| Approx. Heavy-Duty Power | 37 kW |
| Frame Size | Frame 6 |
| Cooling | Forced Air / Air Cooled |
| Input Type | AC Input with Precharge |
| DC Terminals | No external DC terminals |
| Enclosure | IP20/IP00, NEMA/UL Open Type |
| Filtering | Filtered |
| CM Jumper | Removed |
| Dynamic Braking | No Internal Dynamic-Braking Transistor |
| Human Interface Module | Blank / No HIM |
| Communication | Embedded Ethernet/IP |
| Protection Configuration | Standard Protection |
| Installation | Industrial Cabinet / Enclosure |
| Approx. Height | 665.5 mm |
| Approx. Width | 308 mm |
| Approx. Depth | 346.4 mm |
| Approx. Dimensions | 665.5 × 308 × 346.4 mm |
| Approx. Weight | 38.6 kg |
| Motor-Control Application | Industrial AC motor control |
The approximate dimensions and weight correspond to the Frame 6 open-type construction. Actual installation drawings should be used for final cabinet layout, mounting-hole positioning, clearance, and service-access planning.
The complete catalog number 20G1ANE063AN0NNNNN identifies a specific combination of voltage class, current rating, filtering, grounding/common-mode configuration, braking configuration, and other options.
| Catalog Number Portion | General Identification |
|---|---|
| 20G1 | PowerFlex 755 family |
| A | Air-cooled configuration |
| N | 600 VAC class |
| E063 | 63 A current class |
| A | CM jumper removed / corresponding filtering configuration |
| N | No internal dynamic-braking transistor |
| 0 | Configuration position |
| NNNNN | Additional option/configuration positions |
The 063 section is especially important because it identifies the 63 A current class.
The N voltage designation identifies the 600 VAC class.
The AN configuration is particularly important because this is not simply a generic 63 A drive. It indicates the combination of the common-mode/filter configuration and the absence of an internal dynamic-braking transistor.
| Electrical Parameter | Specification |
|---|---|
| Input Voltage Class | 600 VAC |
| Input Phase | Three Phase |
| Output Current | 63 A |
| Normal-Duty Rating | 60 HP |
| Heavy-Duty Rating | 50 HP |
| Approx. ND Power | 45 kW |
| Approx. HD Power | 37 kW |
| Input Configuration | AC Input with Precharge |
| DC Bus Terminals | Not supplied externally in this configuration |
| Cooling | Forced Air |
| Filtering | Filtered |
| CM Jumper | Removed |
| Dynamic-Braking Transistor | None |
| Communication | Embedded Ethernet/IP |
The 600 VAC rating makes this model suitable for industrial facilities using a higher-voltage three-phase distribution system.
The actual motor should be selected according to its nameplate voltage and full-load current rather than simply matching the horsepower value.
This is especially important for industrial motors because motor efficiency, power factor, service factor, temperature, winding design, and operating conditions can all affect actual current requirements.
The drive has two important application ratings.
| Duty Type | Motor Rating | Approx. Power |
|---|---|---|
| Normal Duty | 60 HP | Approx. 45 kW |
| Heavy Duty | 50 HP | Approx. 37 kW |
| Output Current | 63 A | — |
The 60 HP normal-duty rating is appropriate for applications where the motor does not continuously experience severe overload conditions.
The 50 HP heavy-duty rating applies to applications requiring greater overload capability or more demanding torque characteristics.
Normal-duty applications can include many centrifugal pumps, fans, blowers, and similar variable-torque loads.
Heavy-duty applications may include conveyors, mixers, material-handling systems, and machinery with greater starting or accelerating torque.
The final selection should always be based on the motor full-load current and the actual load profile.
Physical dimensions are particularly important when the drive is being installed into an existing cabinet or replacing an older drive.
| Mechanical Parameter | Approximate Value |
|---|---|
| Frame Size | Frame 6 |
| Height | 665.5 mm |
| Width | 308 mm |
| Depth | 346.4 mm |
| Overall Size | 665.5 × 308 × 346.4 mm |
| Approximate Weight | 38.6 kg |
| Cooling | Forced Air |
| Installation Style | Open Type |
| Enclosure Class | IP20/IP00 |
The approximately 38.6 kg weight should be taken into consideration when designing the mounting structure.
The cabinet should provide adequate mechanical support and sufficient clearance for wiring, ventilation, inspection, and service work.
Because the drive is air cooled, the installation must also provide a suitable airflow path.
The 20G1ANE063AN0NNNNN is designed as a high-performance industrial AC drive for controlling medium-to-large motors in demanding automation environments.
Rather than simply supplying fixed-frequency power to a motor, the drive continuously controls the electrical conditions supplied to the motor so that motor speed can be adjusted according to the process.
This allows industrial machinery to operate at different speeds during starting, production, acceleration, deceleration, or process changes.
For example, a conveyor may operate at low speed during product loading and then increase to production speed.
A pump may operate at different speeds depending on the required flow or pressure.
A fan can be slowed when the required airflow decreases.
A mixer can operate at different speeds during different stages of the production process.
The PowerFlex 755 platform is particularly useful in these situations because the drive can be incorporated into a larger automation system rather than operating as an isolated motor controller.
A major feature of this model is its embedded Ethernet/IP communication capability.
This allows the drive to communicate with an industrial control system through the network.
Typical information that can be exchanged includes:
This type of communication can reduce the need for extensive hardwired control signals.
It also allows operators and maintenance personnel to access drive information from a centralized automation environment.
For systems containing multiple drives, centralized communication can be particularly useful because the controller or supervisory system can monitor several motors simultaneously.
The most important configuration difference between this model and some other 63 A PowerFlex 755 versions is that the 20G1ANE063AN0NNNNN does not include an internal dynamic-braking transistor.
This should be carefully considered when selecting the drive for a machine requiring rapid deceleration.
During motor deceleration, mechanical energy can be transferred back toward the drive’s DC bus.
If the application generates substantial regenerative energy, the DC bus voltage can rise.
A properly designed braking system can dissipate excess energy when required.
However, because this specific model does not contain the internal dynamic-braking transistor, an application that requires dynamic braking may need an appropriate external braking arrangement or a different drive configuration.
This distinction is important for:
The braking requirement should therefore be evaluated before selecting this model.
The 20G1ANE063AN0NNNNN uses a filtered configuration with the CM jumper removed.
This configuration can be relevant when the drive is being installed into an electrical system where grounding and common-mode behavior are important design considerations.
Common-mode configuration can influence leakage current and the interaction between the drive’s input circuitry, ground system, and facility electrical distribution.
For this reason, the CM jumper configuration should not be treated as a cosmetic catalog-number difference.
When replacing an existing drive, engineers should verify that the new drive’s grounding and filtering configuration is compatible with the existing electrical system.
The drive is configured as a filtered PowerFlex 755 unit.
Filtering can help manage electrical noise associated with variable-frequency-drive operation.
VFD systems use high-speed switching devices to generate the required motor waveform.
This switching action is fundamental to variable-speed operation, but it can also produce electrical noise and common-mode effects.
Appropriate filtering, grounding, motor-cable selection, cabinet layout, and installation practices can therefore be important in industrial environments.
The model is configured as Blank / No HIM.
This means the catalog-number configuration does not include a standard local Human Interface Module.
This arrangement can be useful in systems where the drive is primarily controlled through an automation network or an external HMI.
For example, an operator may start, stop, or adjust the motor from a centralized machine-control screen rather than interacting directly with a keypad mounted on the drive.
For commissioning and maintenance, technicians may use appropriate configuration and service methods instead of relying on a permanently installed local keypad.
Conveyors are one of the most common applications for industrial AC drives.
The drive can provide controlled acceleration and adjustable operating speed.
This is useful for:
The correct duty rating should be selected according to the conveyor load and acceleration requirements.
The drive is suitable for many industrial pumping applications.
Variable-speed pump control can provide better process regulation than operating a motor continuously at one fixed speed.
Potential applications include:
Pump applications often benefit from PID control, where feedback from a pressure or flow sensor is used to adjust motor speed.
Fans and blowers are also well suited to variable-speed control.
Instead of running continuously at maximum speed, the motor can operate according to actual airflow requirements.
Applications include:
Mixing equipment can require different motor speeds at different stages of production.
The drive can allow operators or the control system to adjust motor speed according to the process recipe.
Applications include:
The actual suitability depends on motor torque requirements and the mechanical characteristics of the mixer.
Material-handling systems can require controlled acceleration and deceleration.
The drive can be used in:
For applications with high inertia or frequent rapid stopping, braking requirements must be evaluated separately because this particular model has no internal dynamic-braking transistor.
The drive can be used for appropriate industrial compressor applications.
However, compressor systems often have specific minimum-speed, maximum-speed, torque, cooling, and acceleration requirements.
The compressor manufacturer’s operating range and the motor’s characteristics should therefore be checked before final selection.
The drive can be integrated into production machinery where the motor needs to respond to commands from a PLC or supervisory control system.
Examples include:
The 63 A output rating allows the drive to control considerably larger motors than compact industrial drives.
Its 60 HP normal-duty rating makes it suitable for a wide range of medium-to-large machinery.
The 600 VAC class provides compatibility with industrial power systems using higher distribution voltages.
This can be particularly useful for large facilities and industrial machinery designed around 600 VAC electrical systems.
Integrated Ethernet/IP communication makes the drive suitable for networked industrial automation.
This allows the drive to become part of a centralized control architecture.
Motor speed can be adjusted according to the production process.
This can improve process control and may reduce unnecessary motor operation at full speed in appropriate applications.
The PowerFlex 755 architecture provides extensive operating and diagnostic information.
This can help maintenance personnel identify issues involving:
The filtered configuration can be beneficial in installations where electromagnetic compatibility and electrical-noise management are important considerations.
The Frame 6 design provides substantial motor-control capability without requiring the physical size associated with very large PowerFlex 755 frames.
The approximate physical dimensions are 665.5 × 308 × 346.4 mm.
Although the absence of an internal braking transistor can be a limitation for applications requiring dynamic braking, it can also be appropriate for systems that do not require internal dynamic braking.
This can simplify selection when the application has relatively controlled deceleration and does not require braking-resistor operation.
The drive can be used to regulate motor speed according to machine requirements.
A basic control structure can be represented as:
Controller → Ethernet/IP Network → PowerFlex 755 → Motor → Mechanical Load
The controller can provide the speed reference and operating command.
The drive then converts these commands into appropriate motor-control output.
The drive can also return operating information to the controller.
This makes the system suitable for automated production environments where motor operation is part of a larger sequence.
PID control is especially useful for process applications.
For example, a pump can be controlled according to system pressure.
The pressure sensor provides feedback.
The controller compares the measured pressure with the desired setpoint.
The motor speed can then be adjusted to compensate for changes in system demand.
Similar principles can be applied to:
This approach can provide smoother operation than simply switching a motor between full-speed and stopped conditions.
The drive should be installed in a suitable electrical cabinet or enclosure.
Important installation considerations include:
| Installation Item | Requirement / Consideration |
|---|---|
| Input Voltage | Confirm 600 VAC compatibility |
| Phase | Three-phase supply |
| Motor Current | Confirm motor full-load current |
| Motor Voltage | Confirm motor voltage |
| Duty | Confirm ND or HD requirements |
| Cabinet | Suitable industrial enclosure |
| Cooling | Adequate forced-air ventilation |
| Grounding | Verify facility grounding arrangement |
| CM Configuration | Confirm removed-jumper configuration is appropriate |
| Motor Cable | Select suitable VFD-rated cable |
| Cable Length | Evaluate according to application |
| Braking | Determine whether external braking is required |
| Network | Confirm Ethernet/IP architecture |
| Service Clearance | Provide sufficient maintenance space |
| Mechanical Support | Support approximately 38.6 kg |
| Ambient Temperature | Maintain suitable operating conditions |
The PowerFlex 755 Frame 6 design uses forced-air cooling.
Cooling is one of the most important aspects of reliable VFD installation.
Heat generated by semiconductor switching, power conversion, and other internal components must be transferred away from the drive.
The cabinet should therefore provide:
Dust accumulation can reduce cooling performance.
For installations in dusty environments, ventilation filters and cooling paths should be inspected regularly.
Because the model uses an open-type IP20/IP00 configuration, it is normally intended to be installed within an appropriate electrical enclosure or control cabinet.
The enclosure should provide the necessary protection against:
The drive itself should not be treated as a fully protected outdoor enclosure.
The cabinet and surrounding installation must provide the environmental protection required by the application.
The following models are useful for comparison with the requested 63 A configuration.
| Model | Voltage | Output Current | Normal Duty | Heavy Duty | Frame | Braking | CM Jumper | Approx. Dimensions | Approx. Weight |
|---|---|---|---|---|---|---|---|---|---|
| 20G1ANE053AN0NNNNN | 600 VAC, 3PH | 53 A | 50 HP | 40 HP | 6 | No Internal DB | Removed | 665.5 × 308 × 346.4 mm | 38.6 kg |
| 20G1ANE063AN0NNNNN | 600 VAC, 3PH | 63 A | 60 HP | 50 HP | 6 | No Internal DB | Removed | 665.5 × 308 × 346.4 mm | 38.6 kg |
| 20G1ANE077AN0NNNNN | 600 VAC, 3PH | 77 A | 75 HP | 60 HP | 6 | No Internal DB | Removed | 665.5 × 308 × 346.4 mm | 38.6 kg |
| 20G1ANE099AN0NNNNN | 600 VAC, 3PH | 99 A | 100 HP | 75 HP | 6 | No Internal DB | Removed | 665.5 × 308 × 346.4 mm | 38.6 kg |
| 20G1ANE063AA0NNNNN | 600 VAC, 3PH | 63 A | 60 HP | 50 HP | 6 | Internal DB Transistor | Removed | 665.5 × 308 × 346.4 mm | 38.6 kg |
The first four models are particularly useful when selecting different motor capacities within the same 600 VAC PowerFlex 755 family.
The fifth model, 20G1ANE063AA0NNNNN, has the same 63 A and 60 HP / 50 HP rating as the requested model, but its braking configuration is different.
This makes it a useful comparison when the application requires dynamic braking.
| Model | Current | ND Rating | HD Rating | CM Jumper | Dynamic Braking |
|---|---|---|---|---|---|
| 20G1ANE053AN0NNNNN | 53 A | 50 HP | 40 HP | Removed | None |
| 20G1ANE063AN0NNNNN | 63 A | 60 HP | 50 HP | Removed | None |
| 20G1ANE077AN0NNNNN | 77 A | 75 HP | 60 HP | Removed | None |
| 20G1ANE099AN0NNNNN | 99 A | 100 HP | 75 HP | Removed | None |
| 20G1ANE063AA0NNNNN | 63 A | 60 HP | 50 HP | Removed | Internal DB Transistor |
| 20G1ANE063JN0NNNNN | 63 A | 60 HP | 50 HP | Installed | None |
This table demonstrates the importance of the final catalog-number configuration.
The 20G1ANE063AN0NNNNN and 20G1ANE063AA0NNNNN have the same voltage, current, normal-duty rating, heavy-duty rating, and basic Frame 6 architecture.
The major difference is the dynamic-braking configuration.
The 20G1ANE063AN0NNNNN does not have the internal dynamic-braking transistor, while the 20G1ANE063AA0NNNNN includes one.
Likewise, the 20G1ANE063JN0NNNNN has a different CM-jumper configuration.
Therefore, the complete catalog number should always be checked before ordering a replacement.
The following models represent useful comparison points across the broader Allen-Bradley variable-frequency-drive portfolio.
| Model | Series | Voltage Class | Current / Rating | Motor Rating | Approx. Dimensions | Approx. Weight |
|---|---|---|---|---|---|---|
| 25B-D017N104 | PowerFlex 525 | 380–480 VAC | 17 A | Approx. 10 HP | Approx. 130 × 260 × 212 mm | Approx. 3.0 kg |
| 25B-D024N114 | PowerFlex 525 | 380–480 VAC | 24 A | Approx. 15 HP | Approx. 130 × 260 × 212 mm | Approx. 3.2 kg |
| 20F11ND034JA0NNNNN | PowerFlex 753 | 480 VAC class | 34 A | Approx. 25 HP class | Approx. 350 × 170 × 200 mm | Approx. 10 kg |
| 20G1AND302JN0NNNNN | PowerFlex 755 | 480 VAC, 3PH | 302 A | 250 HP ND / 200 HP HD | Approx. 842 × 410 × 346.4 mm | Approx. 79 kg |
| 20G1AND477AN0NNNNN | PowerFlex 755 | 480 VAC, 3PH | 477 A | 400 HP ND / 300 HP HD | Approx. 881.5 × 430 × 349.6 mm | Approx. 68 kg |
These five models cover very different application ranges.
The PowerFlex 525 examples are considerably smaller and are generally associated with smaller machines.
The PowerFlex 753 is designed for more advanced industrial applications.
The larger PowerFlex 755 examples are suitable for much higher-current motors and large industrial machinery.
The requested 20G1ANE063AN0NNNNN sits between compact drives and very large PowerFlex 755 installations, making it suitable for medium-to-large industrial motor applications.
| Application | Typical Drive Requirement | Suitability of 20G1ANE063AN0NNNNN |
|---|---|---|
| Industrial Pump | Variable speed / PID | Excellent |
| Large Fan | Variable speed | Excellent |
| Industrial Blower | Adjustable airflow | Excellent |
| Conveyor | Speed and acceleration control | Excellent |
| Mixer | Adjustable speed / torque | Excellent |
| Agitator | Variable speed | Excellent |
| Compressor | Speed control | Application dependent |
| Material Handling | Speed and acceleration | Good |
| High-Inertia Machine | Controlled deceleration | Requires braking evaluation |
| Production Line | Networked motor control | Excellent |
| Process Machinery | Network and process control | Excellent |
| Rapid Stop Application | High braking demand | Requires external braking evaluation |
The 20G1ANE063AN0NNNNN can be especially useful in variable-torque applications.
For a pump or fan, operating at maximum speed all the time may not be necessary.
If the process requires less flow or airflow, the motor can be operated at a lower speed.
The drive can therefore respond to process demand rather than forcing the motor to operate continuously at full speed.
This can provide:
The actual energy savings depend on the mechanical system and operating profile.
Conveyor systems often benefit from controlled starting.
Starting a large conveyor directly across the line can produce significant mechanical and electrical stress.
A VFD allows the motor to accelerate progressively.
This can help reduce:
The drive can also allow production personnel to change conveyor speed according to the production process.
However, applications requiring rapid stopping or regenerative braking require a separate braking evaluation because this specific model does not contain an internal dynamic-braking transistor.
A modern production line may contain dozens of motors.
Using network-connected drives allows these motors to become part of one coordinated automation architecture.
The control system can monitor:
This can improve maintenance visibility.
If a motor stops unexpectedly, the control system can identify the associated drive and provide diagnostic information rather than requiring technicians to inspect every motor individually.
Regular maintenance can help maintain reliable drive operation.
Recommended inspection areas include:
Check cooling fans, air passages, cabinet filters, and accumulated dust.
Inspect power terminals, motor connections, grounding connections, and control wiring.
Check motor bearings, insulation condition, ventilation, mechanical loading, and nameplate information.
Check Ethernet/IP communication, network connections, and controller communication.
Verify that motor data and application parameters remain appropriate.
Review drive faults and warnings to identify repeated problems.
Repeated faults should not simply be cleared without investigating the underlying cause.
| Symptom | Possible Area to Investigate |
|---|---|
| Drive Does Not Start | Control command, interlock, network, input power |
| Motor Does Not Accelerate | Speed reference, current limit, load, motor data |
| Excessive Current | Mechanical load, motor condition, acceleration setting |
| Overtemperature | Cabinet airflow, cooling fan, ambient temperature |
| Network Communication Loss | Ethernet connection, controller, network configuration |
| DC Bus Overvoltage During Stop | Deceleration time, regenerative energy, braking requirements |
| Motor Runs at Incorrect Speed | Reference source, scaling, motor parameters |
| Repeated Drive Faults | Motor, load, power supply, parameters, cooling |
| Excessive Electrical Noise | Grounding, motor cable, filtering, installation layout |
A particularly important point for this model is DC-bus overvoltage during rapid deceleration.
If the machine has substantial inertia and the motor is repeatedly forced to decelerate quickly, the application may require an appropriately engineered external braking solution or another drive configuration.
Before selecting the 20G1ANE063AN0NNNNN, the following items should be confirmed.
| Selection Parameter | Required Confirmation |
|---|---|
| Supply Voltage | 600 VAC class |
| Supply Phase | Three Phase |
| Motor Voltage | Compatible with drive output |
| Motor Current | Within 63 A drive capability |
| Normal Duty | Up to 60 HP class |
| Heavy Duty | Up to 50 HP class |
| Braking | Confirm whether internal braking is required |
| CM Jumper | Confirm removed configuration is suitable |
| Filtering | Confirm filtered configuration is appropriate |
| Cabinet | Suitable enclosure required |
| Cooling | Adequate airflow required |
| Motor Cable | Suitable VFD cable |
| Network | Ethernet/IP requirements |
| Mechanical Size | 665.5 × 308 × 346.4 mm approximate |
| Weight | Approximately 38.6 kg |
| Environment | Confirm temperature, humidity, contamination, altitude |
| Service Access | Provide sufficient working clearance |
The difference between PowerFlex 755 catalog numbers can be subtle.
For example:
20G1ANE063AN0NNNNN
and
20G1ANE063AA0NNNNN
both represent 63 A, 600 VAC, Frame 6 drives with 60 HP normal-duty and 50 HP heavy-duty ratings.
However, the braking configuration is different.
The first model does not contain the internal dynamic-braking transistor.
The second model includes the internal dynamic-braking transistor.
Similarly:
20G1ANE063AN0NNNNN
and
20G1ANE063JN0NNNNN
have different CM-jumper configurations.
This means that replacing one catalog number with another based only on horsepower and current can result in an incorrect configuration.
For industrial replacement projects, the complete catalog number should therefore be matched carefully.
| Feature | Benefit |
|---|---|
| 600 VAC Class | Suitable for higher-voltage industrial power systems |
| 63 A Output | Supports medium-to-large motors |
| 60 HP ND | Strong normal-duty capacity |
| 50 HP HD | Suitable for more demanding duty within rating |
| PowerFlex 755 Platform | Advanced industrial drive architecture |
| Embedded Ethernet/IP | Easy integration with networked automation |
| Air Cooling | Practical industrial cabinet installation |
| Frame 6 | High power capability in a standardized frame |
| Filtered Configuration | Helps with electrical-noise management |
| CM Jumper Removed | Specific grounding/common-mode configuration |
| No Internal DB Transistor | Suitable where internal dynamic braking is not required |
| No HIM | Suitable for network-centered control systems |
| IP20/IP00 Open Type | Designed for installation within suitable enclosure |
| Flexible Control | Supports a wide range of industrial machinery |
The 20G1ANE063AN0NNNNN is a substantial industrial AC drive intended for applications that require considerably more power than compact machine-level drives.
Its 600 VAC three-phase input class, 63 A output rating, 60 HP normal-duty rating, and 50 HP heavy-duty rating make it suitable for medium-to-large industrial motors.
Its embedded Ethernet/IP communication is a major advantage for automated systems because the drive can exchange operating information with the wider control architecture.
The filtered configuration and removed CM jumper are also important when designing the drive into an industrial electrical system.
The most significant configuration point is the absence of an internal dynamic-braking transistor.
This means the model is particularly appropriate when the application does not require the drive’s internal braking transistor, while applications involving frequent rapid deceleration or substantial regenerative energy should be evaluated for an appropriate external braking arrangement or a different drive configuration.
| Category | Specification |
|---|---|
| Model | 20G1ANE063AN0NNNNN |
| Brand | Allen-Bradley |
| Series | PowerFlex 755 |
| Product Type | AC Variable Frequency Drive |
| Voltage | 600 VAC |
| Phase | 3 Phase |
| Current | 63 A |
| Normal Duty | 60 HP |
| Heavy Duty | 50 HP |
| Approx. ND Power | 45 kW |
| Approx. HD Power | 37 kW |
| Frame | Frame 6 |
| Cooling | Forced Air |
| Input | AC Input with Precharge |
| DC Terminals | No external DC terminals |
| Enclosure | IP20/IP00, NEMA/UL Open Type |
| Filtering | Filtered |
| CM Jumper | Removed |
| Dynamic Braking | No Internal DB Transistor |
| Communication | Embedded Ethernet/IP |
| HIM | Blank / No HIM |
| Approx. Height | 665.5 mm |
| Approx. Width | 308 mm |
| Approx. Depth | 346.4 mm |
| Approx. Dimensions | 665.5 × 308 × 346.4 mm |
| Approx. Weight | 38.6 kg |
| Typical Applications | Pumps, fans, blowers, conveyors, mixers, agitators, process machinery, production systems, material handling |
The Allen-Bradley 20G1ANE063AN0NNNNN PowerFlex 755 AC Drive is a 600 VAC, three-phase industrial variable-frequency drive designed for reliable and flexible control of medium-to-large AC motors.
With a 63 A output rating, it provides a 60 HP normal-duty rating and a 50 HP heavy-duty rating, making it suitable for a wide range of industrial applications including pumps, fans, blowers, conveyors, mixers, agitators, process machinery, material-handling equipment, and automated production systems.
The drive uses a Frame 6 forced-air-cooled construction with approximate dimensions of 665.5 × 308 × 346.4 mm and an approximate weight of 38.6 kg.
Its embedded Ethernet/IP communication capability allows it to operate as part of a larger industrial automation system, where drive commands, speed references, operating status, alarms, and diagnostic information can be exchanged through the control network.
The model is configured with filtering and a removed CM jumper, which makes its exact electrical configuration important during installation and replacement.
The defining characteristic of this model is that it does not include an internal dynamic-braking transistor. This configuration can be appropriate for applications where internal dynamic braking is not required. For machinery with high inertia, frequent rapid stopping, or significant regenerative energy, the braking system should be evaluated separately before the drive is selected.
The PowerFlex 755 platform also provides a flexible foundation for process control, network integration, diagnostics, speed regulation, and coordinated machine operation.
For applications where the incoming power is 600 VAC three phase, the motor is within the 63 A current capability, and the machine does not require an internal dynamic-braking transistor, the 20G1ANE063AN0NNNNN provides a strong industrial drive configuration with a combination of high current capacity, network connectivity, flexible control, and standardized Frame 6 construction.