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The Allen-Bradley MPL-B960D-MJ72AA is an industrial rotary servo motor from the MPL low-inertia brushless servo motor series. It is designed for automated machinery that requires controlled rotary movement, repeatable positioning, coordinated acceleration, and accurate speed regulation.
Unlike a conventional motor that primarily operates at a commanded speed, a servo motor works with a compatible servo drive and feedback system. The drive regulates the motor’s electrical output, while feedback information allows the control system to monitor movement and respond to differences between commanded and actual motion.
The MPL family is intended for industrial motion-control applications, including packaging equipment, automated assembly lines, indexing mechanisms, material handling systems, and precision positioning machinery.
The complete catalog number is important when identifying the correct motor. Similar model numbers can indicate differences in speed ratings, frame size, encoder configuration, shaft design, connector arrangement, and holding-brake options. Even small differences in a model suffix may affect electrical compatibility or mechanical installation.
This report focuses on the MPL-B960D-MJ72AA, including its product classification, technical characteristics, operating principle, practical applications, advantages, and ten related motor recommendations. Where an exact dimension, mass, or electrical rating cannot be confidently established, it is identified as requiring verification rather than replaced with an assumed value.
|
Item |
Specification |
|---|---|
|
Brand |
Allen-Bradley |
|
Product series |
MPL |
|
Product family |
MP-Series low-inertia servo motors |
|
Complete model number |
MPL-B960D-MJ72AA |
|
Product category |
Industrial rotary servo motor |
|
Motor construction |
Brushless permanent-magnet motor |
|
Electrical class |
460 V AC configuration |
|
Frame-size designation |
9 |
|
Frame dimension designation |
300 mm (11.81 in.) |
|
Magnet stack length |
152.4 mm (6.00 in.) |
|
Nominal speed classification |
2,000 RPM |
|
Feedback configuration |
Multi-turn, high-resolution encoder configuration; confirm exact catalog specification |
|
Shaft configuration |
Keyed shaft extension |
|
Connector configuration |
Right-angle SpeedTEC DIN arrangement; confirm exact suffix specification |
|
Holding brake |
No brake indicated for the MJ72AA configuration; confirm before ordering |
|
Mounting style |
Metric flange mounting; verify exact mounting drawing |
|
Main function |
Closed-loop rotary motion control |
|
Typical application |
Industrial automation and positioning |
|
Overall dimensions |
Exact dimensional drawing required |
|
Net weight |
Exact catalog-specific value not established |
|
Weight in kilograms (kg) |
Must be verified before engineering or purchasing |
The MPL-B960D-MJ72AA is associated with the 2,000 RPM nominal speed configuration within the B960 family. Its general frame and magnet stack designations provide a starting point for mechanical comparison with related MPL motors.
The speed classification does not, by itself, establish the motor’s maximum permissible speed, rated output power, continuous torque, or peak torque. Those values must be assessed using the exact motor specification and the requirements of the selected servo drive.
The following table presents the principal technical characteristics of the MPL-B960D-MJ72AA. Its identified configuration includes a 460 V motor class, 2,000 RPM nominal speed, 300 mm frame designation, 152.4 mm magnet stack, multi-turn absolute feedback, keyed shaft, and no integral holding brake.
|
Parameter |
Specification |
|---|---|
|
Model number |
MPL-B960D-MJ72AA |
|
Brand |
Allen-Bradley |
|
Series |
MPL |
|
Product family |
MP-Series low-inertia servo motors |
|
Motor type |
AC rotary servo motor |
|
Motor construction |
Brushless permanent-magnet motor |
|
Armature voltage |
460 V |
|
Drive supply class |
480 V AC system classification |
|
Frame size |
9 |
|
Frame dimension designation |
300 mm (11.81 in.) |
|
Magnet stack length |
152.4 mm (6.00 in.) |
|
Nominal speed |
2,000 RPM |
|
Feedback type |
Multi-turn absolute encoder |
|
Encoder resolution |
High-resolution; exact interface and resolution to be confirmed |
|
Shaft type |
Keyed shaft extension |
|
Shaft seal |
Confirm exact configuration; catalog descriptions may specify no shaft seal |
|
Connector |
SpeedTEC DIN connector |
|
Connector orientation |
Right-angle |
|
Connector rotation |
180° rotatable |
|
Holding brake |
No |
|
Brake supply |
Not applicable to the no-brake configuration |
|
Mounting |
IEC metric flange, free mounting holes, Type FF |
|
Rated continuous torque |
Verify exact motor performance table |
|
Peak torque |
Verify exact motor performance table |
|
Rated current |
Verify exact motor performance table |
|
Peak current |
Verify exact motor performance table |
|
Rated output power |
Verify exact motor performance table |
|
Maximum operating speed |
Verify applicable motor and drive limits |
|
Overall length |
Exact dimensional drawing required |
|
Overall width |
Exact dimensional drawing required |
|
Overall height |
Exact dimensional drawing required |
|
Shaft diameter |
Exact dimensional drawing required |
|
Shaft extension length |
Exact dimensional drawing required |
|
Net motor weight |
Approximately 14.52 kg; verify against the supplied unit |
|
Shipping weight |
May differ substantially from net motor weight |
|
Protection rating |
Confirm the exact configuration |
|
Operating temperature |
Confirm the applicable technical limits |
|
Control modes |
Position, velocity, and torque control when supported by the complete drive system |
The physical dimensions of a servo motor are critical for replacement projects, machine design, and installation planning. The frame-size designation and magnet stack length identify important parts of the motor configuration, but neither represents the complete external envelope.
|
Physical parameter |
Value |
Notes |
|---|---|---|
|
Frame-size designation |
300 mm (11.81 in.) |
Frame designation |
|
Magnet stack length |
152.4 mm (6.00 in.) |
Motor stack designation |
|
Overall motor length |
Not confirmed |
Obtain the dimensional drawing |
|
Motor body width |
Not confirmed |
Obtain the dimensional drawing |
|
Motor body height |
Not confirmed |
Obtain the dimensional drawing |
|
Mounting flange dimensions |
Not confirmed |
Verify bolt pattern and flange geometry |
|
Shaft diameter |
Not confirmed |
Required for coupling selection |
|
Shaft extension length |
Not confirmed |
Required for coupling engagement |
|
Connector clearance |
Installation-dependent |
Allow sufficient cable-routing space |
|
Net motor weight |
Approximately 14.52 kg |
Confirm the actual catalog configuration |
|
Net weight in kilograms (kg) |
Approximately 14.52 kg, subject to verification |
Do not substitute packaged shipping weight |
|
Packaged shipping weight |
Not confirmed |
Depends on packaging and accessories |
The 14.52 kg figure is a reported motor weight for this model. For a formal specification sheet, machine support calculation, or lifting plan, confirm whether the figure refers to the bare motor and whether any supplied accessories are included.
For installation purposes, the full dimensional drawing should be used to establish the mounting flange, shaft extension, connector clearance, and overall length. A matching frame-size designation alone is not sufficient to guarantee that a replacement motor will fit.
|
Characteristic |
Description |
Engineering significance |
|---|---|---|
|
Voltage class |
460 V AC motor configuration |
Must match the compatible drive |
|
Nominal speed |
2,000 RPM |
Defines the nominal speed classification |
|
Torque generation |
Permanent-magnet synchronous motor principle |
Controlled through the servo drive |
|
Position feedback |
Multi-turn absolute encoder |
Supports position tracking across multiple revolutions |
|
Speed regulation |
Closed-loop drive control |
Depends on feedback, tuning, and load conditions |
|
Acceleration |
Depends on motor and load inertia |
Determines achievable cycle time |
|
Deceleration |
Depends on load, drive, and regenerative handling |
Important for stopping performance |
|
Continuous operation |
Limited by thermal and electrical ratings |
Requires duty-cycle assessment |
|
Peak operation |
Limited by motor and drive ratings |
Relevant to acceleration and transient loads |
|
Mechanical loading |
Subject to shaft and bearing limits |
Excessive loads may shorten service life |
|
Holding function |
No integral holding brake |
Separate holding arrangements may be necessary |
A 2,000 RPM classification does not mean that the motor can deliver its maximum torque at every speed. The available torque depends on the motor’s performance curve, drive current, thermal conditions, and operating point.
The continuous and peak ratings should be checked separately. Continuous ratings determine suitability for sustained operation, while peak ratings apply to limited operating conditions specified for the motor and drive.
The MPL-B960D-MJ72AA is designed to convert electrical power into controlled rotary motion. It operates as part of a servo-control system comprising a motor, compatible servo drive, feedback interface, controller, and mechanical load.
When the controller issues a motion command, the drive regulates the electrical current supplied to the motor. The motor produces the required torque, and the feedback system reports the motor’s position. The drive then adjusts its output according to the difference between the commanded and measured motion.
This closed-loop operating principle allows the machine to regulate movement rather than relying solely on a fixed electrical supply frequency.
The motor uses brushless permanent-magnet technology. Unlike a conventional brushed motor, it does not depend on brushes contacting a rotating commutator.
This construction is suitable for industrial motion-control applications because an electronic drive can regulate motor torque and speed. The absence of brushes also eliminates routine brush replacement, although bearings, connectors, cables, and other mechanical or electrical components still require maintenance.
The MPL family is designed for applications that benefit from responsive acceleration and deceleration.
Low rotor inertia can help a motor change speed quickly, particularly in machinery that performs frequent starts, stops, and direction changes. However, the complete system’s response also depends on the inertia of the connected load, transmission ratio, mechanical rigidity, and drive tuning.
For high-cycle machinery, calculating the motor-to-load inertia ratio is an important step in selecting and commissioning the motor.
The multi-turn absolute feedback arrangement provides information about shaft position across multiple revolutions.
This is useful when a machine must track the position of a rotating mechanism over a range greater than one complete revolution. The exact behavior following a power interruption depends on the encoder implementation and the drive and controller configuration.
When replacing an existing motor, the feedback type should be checked carefully. A single-turn encoder and a multi-turn encoder are not automatically interchangeable, even when their motors share the same frame size.
The keyed shaft provides a mechanical connection for a compatible coupling, pulley, gearbox, or driven assembly.
Correct shaft alignment is important. Incorrect coupling dimensions, excessive radial force, or unsuitable axial loading can increase vibration and bearing wear.
Before installation, verify the shaft diameter, key dimensions, shaft extension length, and permissible shaft loads against the machine’s mechanical requirements.
The right-angle connector can be rotated through 180°, providing flexibility when arranging motor cables in a compact machine assembly.
This can help prevent the connector from interfering with adjacent equipment. Sufficient space must still be provided for the connector body, cable bend radius, and maintenance access.
The MPL-B960D-MJ72AA configuration does not include an integral holding brake.
This arrangement may be suitable for horizontal rotary mechanisms that do not require a mechanical holding function when the motor is de-energized. Vertical axes, suspended loads, and mechanisms affected by gravity require a separate assessment.
A servo drive’s controlled stopping function should not be confused with a mechanical brake that holds a load after power is removed.
5.1 Packaging and Filling Machinery
Packaging systems use servo motors for indexing, product feeding, cutting, film handling, and synchronized machine movement.
A compatible servo system can coordinate these operations, helping maintain consistent product spacing and repeatable machine cycles.
The 2,000 RPM nominal speed classification makes the MPL-B960D configuration worth evaluating for applications requiring the corresponding speed range. Final selection depends on actual torque demand, cycle time, acceleration, and mechanical load.
5.2 Automated Assembly Equipment
Assembly machinery may use servo motors to position components, rotate fixtures, transfer workpieces, or synchronize several operations.
Feedback-based control helps the machine execute programmed movements consistently. Accurate alignment, correct drive tuning, and a suitable mechanical transmission remain essential.
5.3 Machine Tools and Rotary Positioning
Rotary tables, indexing units, auxiliary feed mechanisms, and positioning assemblies can use servo motors to control the movement of machine components.
Multi-turn feedback may be useful for mechanisms requiring position tracking across multiple shaft revolutions. Actual positioning accuracy depends on the encoder, controller, mechanical backlash, structural rigidity, and tuning.
5.4 Material Handling and Transfer Systems
Servo-controlled transfer units, sorting systems, and indexing conveyors can coordinate the movement of components between production stations.
The motor must be sized for the transported mass, transmission ratio, acceleration profile, and expected mechanical forces. A higher nominal speed does not eliminate the need to verify available torque.
5.5 Printing, Labeling, and Converting Equipment
Servo motors are used in material-feeding assemblies, registration mechanisms, rollers, cutting units, and synchronized rotary systems.
Their controlled motion can help maintain consistent feeding and timing between production stages. The selected motor must meet the required operating speed, load profile, and feedback requirements.
Other possible applications include automated inspection systems, rotary indexing stations, specialized manufacturing equipment, industrial test systems, and automated production machinery.
Suitability must be assessed for each application individually. The machine’s required torque, speed, positioning behavior, mechanical loading, environment, and control architecture determine whether this particular motor is appropriate.
|
Advantage |
Practical benefit |
Important consideration |
|---|---|---|
|
Brushless motor construction |
Eliminates routine brush replacement |
Bearings and electrical connections still require maintenance |
|
Low-inertia motor design |
Can support responsive acceleration and deceleration |
Load inertia must be calculated |
|
Multi-turn feedback |
Tracks position across multiple shaft revolutions |
Verify drive and controller compatibility |
|
High-resolution feedback |
Provides detailed position information |
System accuracy also depends on mechanical performance |
|
2,000 RPM classification |
Suitable candidate for the corresponding speed range |
Confirm torque at the required operating speed |
|
Keyed shaft extension |
Provides a conventional mechanical coupling interface |
Shaft and key dimensions must match |
|
Rotatable connector |
Offers flexible cable-routing options |
Adequate clearance and cable bend radius are required |
|
Metric flange mounting |
Can simplify integration into compatible machinery |
Verify mounting dimensions and bolt pattern |
|
No integral brake |
Avoids an unnecessary brake where mechanical holding is not required |
Additional holding provisions may be needed |
|
Related motor configurations |
Provides alternatives with different speeds, stack lengths, and brake options |
Catalog variants are not automatically interchangeable |
A properly sized and commissioned servo system can perform repeated movements with consistent timing and position feedback.
This is useful for production machinery that operates through repeated cycles. Actual repeatability depends on the feedback arrangement, controller, mechanical transmission, structural rigidity, and operating conditions.
A compatible servo drive can execute different movement profiles, including programmed acceleration, deceleration, speed regulation, and positioning sequences.
This flexibility can support different operating modes and coordination between multiple machine axes. Available functions depend on the selected drive and controller.
Brushless construction removes the need for routine brush replacement.
It does not make the motor maintenance-free. Bearing condition, vibration, connector integrity, cable condition, temperature, shaft alignment, and contamination should still be monitored.
The metric mounting arrangement, keyed shaft, and rotatable right-angle connector provide useful installation options.
These features can help with integration into suitable machine layouts. A complete mechanical drawing should still be used to confirm shaft geometry, mounting dimensions, connector clearance, and overall length.
The MPL motor family is designed for use with compatible industrial servo systems. When the motor, drive, feedback interface, and controller are correctly matched, they can operate as an integrated motion-control system.
Compatibility should be established before purchasing a replacement. Similar model numbers do not guarantee identical drive parameters, encoder interfaces, or mechanical dimensions.
The following five models are closely related configurations that can be evaluated alongside the MPL-B960D-MJ72AA.
The selection covers different speed classifications, feedback arrangements, brake options, and motor stack lengths. Dimensions and weights are listed separately so that unverified values are not confused with confirmed catalog measurements.
|
Model |
Voltage class |
Frame designation |
Stack length |
Speed |
Feedback |
Brake |
Overall dimensions |
Weight (kg) |
|---|---|---|---|---|---|---|---|---|
|
MPL-B960B-MJ72AA |
460 V |
9 / 300 mm |
152.4 mm |
1,000 RPM |
Multi-turn, high-resolution |
No |
Drawing required |
Approx. 14.52 kg; verify |
|
MPL-B960C-MJ72AA |
460 V |
9 / 300 mm |
152.4 mm |
1,500 RPM |
Multi-turn, high-resolution |
No |
Drawing required |
Verify exact model |
|
MPL-B960D-MJ74AA |
460 V |
9 / 300 mm |
152.4 mm |
2,000 RPM |
Multi-turn, high-resolution |
24 V DC brake |
Drawing required |
Verify exact model |
|
MPL-B980B-MJ72AA |
460 V |
9 / 300 mm |
203.2 mm |
1,000 RPM |
Multi-turn, high-resolution |
No |
Drawing required |
Verify exact model |
|
MPL-B980C-MJ72AA |
460 V |
9 / 300 mm |
203.2 mm |
1,500 RPM |
Multi-turn, high-resolution |
No |
Drawing required |
Verify exact model |
The approximate weight shown for the B960B model is a comparison reference, not a substitute for the exact B960D motor’s verified net weight. Obtain the dimensional drawing and weight data for each complete catalog number before purchase.
This model shares the general B960 frame and 152.4 mm stack designation but has a 1,000 RPM nominal speed classification.
It is worth evaluating when the machine requires a lower nominal speed range while retaining a related frame and feedback arrangement.
Selection consideration: Compare continuous torque, load inertia, operating speed, and the required machine cycle time.
The B960C configuration has a 1,500 RPM nominal speed classification and the same general B960 frame and stack-length designations.
It may be suitable for applications whose required speed falls between the B960B and B960D classifications.
Selection consideration: Verify the required torque at operating speed and confirm that the existing drive supports the motor.
This configuration is related to the reference motor but includes a 24 V DC holding brake.
The brake can be useful where a mechanism must remain stationary when the motor is de-energized, provided its specified holding capacity and operating conditions are appropriate.
Selection consideration: Check the brake wiring, control sequence, holding requirements, and whether a separate safety-rated stopping arrangement is required.
The B980B configuration uses a 203.2 mm magnet stack, longer than the 152.4 mm stack of the reference motor.
It is a candidate for applications requiring a different motor performance profile and a 1,000 RPM speed classification.
Selection consideration: Check the complete motor length, mounting clearance, torque-speed characteristics, and compatibility with the drive.
The B980C configuration combines a 203.2 mm stack designation with a 1,500 RPM speed classification.
It may be worth considering when the required nominal speed is similar to the B960C but a longer-stack configuration is needed.
Selection consideration: Confirm the full mechanical envelope and ensure that the selected motor meets the application’s torque and speed requirements.
These additional candidates broaden the comparison to other MPL configurations and a different servo motor family. They are suggested for technical evaluation rather than as a verified ranking of sales popularity.
|
Model |
Product family |
Voltage class |
Frame designation |
Stack length |
Speed classification |
Feedback / configuration |
Dimensions |
Weight (kg) |
|---|---|---|---|---|---|---|---|---|
|
MPL-B880C-SJ72AA |
MPL |
460 V |
8 / 265 mm |
203.2 mm |
1,500 RPM |
Single-turn, high-resolution |
Drawing required |
Verify exact model |
|
MPL-B880D-SJ72AA |
MPL |
460 V |
8 / 265 mm |
203.2 mm |
2,000 RPM |
Single-turn, high-resolution |
Drawing required |
Verify exact model |
|
MPL-B960B-SJ72AA |
MPL |
460 V |
9 / 300 mm |
152.4 mm |
1,000 RPM |
Single-turn, high-resolution |
Drawing required |
Verify exact model |
|
MPL-B980D-MJ72AA |
MPL |
460 V |
9 / 300 mm |
203.2 mm |
2,000 RPM |
Multi-turn, high-resolution |
Drawing required |
Verify exact model |
|
MPM-B1153F-MJ72AA |
MPM |
Verify exact configuration |
Verify drawing |
Verify drawing |
Verify exact catalog data |
Verify feedback configuration |
Drawing required |
Verify exact model |
The MPL models are related configurations. The MPM model is a broader family comparison, not a confirmed drop-in replacement. Verify its complete catalog identity and specifications before selecting it.
The B880C configuration has a frame-size-8 designation, a 203.2 mm stack length, and a 1,500 RPM nominal speed classification.
Its frame designation differs from the B960D, so the mounting arrangement and shaft geometry must be compared before considering it for a replacement project.
The B880D configuration has a 2,000 RPM nominal speed classification with the B880 frame and stack designation.
It may be suitable for a machine requiring a different frame size and the corresponding speed range. The torque-speed curve, shaft loading, and mechanical installation requirements must be checked.
The B960B-SJ72AA has a 1,000 RPM speed classification and single-turn feedback.
It provides a useful comparison for applications that do not require multi-turn feedback and have different nominal speed requirements.
The B980D configuration combines a 203.2 mm magnet stack with a 2,000 RPM speed classification and multi-turn feedback.
It is a candidate where the application requires a longer-stack motor configuration. The complete installation envelope and torque-speed characteristics must be evaluated.
The MPM family offers a broader alternative for motion-control systems with different motor requirements. This model should be treated as a preliminary comparison candidate until its complete catalog specification is confirmed.
Before considering a change from MPL to MPM, check the motor’s electrical ratings, encoder interface, drive compatibility, mounting dimensions, shaft configuration, brake options, and net weight.
|
Application requirement |
Model to evaluate |
Primary reason |
Critical verification |
|---|---|---|---|
|
Lower nominal speed |
MPL-B960B-MJ72AA |
Related B960 configuration |
Torque at the required operating point |
|
Intermediate nominal speed |
MPL-B960C-MJ72AA |
1,500 RPM classification |
Drive compatibility and load inertia |
|
Higher nominal speed |
MPL-B960D-MJ72AA |
2,000 RPM classification |
Permitted speed and torque-speed curve |
|
Holding brake required |
MPL-B960D-MJ74AA |
Brake-equipped configuration |
Brake ratings and control requirements |
|
Longer stack, lower speed |
MPL-B980B-MJ72AA |
203.2 mm stack designation |
Overall motor length and mechanical fit |
|
Longer stack, intermediate speed |
MPL-B980C-MJ72AA |
203.2 mm stack and 1,500 RPM classification |
Torque and mounting clearance |
|
Smaller frame configuration |
MPL-B880C-SJ72AA |
Frame-size-8 designation |
Mounting and shaft dimensions |
|
Smaller frame, higher speed |
MPL-B880D-SJ72AA |
Frame-size-8 and 2,000 RPM classification |
Load inertia and shaft loading |
|
Single-turn feedback |
MPL-B960B-SJ72AA |
Single-turn encoder configuration |
Controller position-reference strategy |
|
Alternative motor family |
MPM-B1153F-MJ72AA |
Broader family comparison |
Full electrical and mechanical compatibility |
The motor must be paired with a drive that supports its voltage class, feedback configuration, current requirements, and operating range.
Before installation, confirm the motor identification settings, encoder interface, wiring, grounding, and permitted drive parameters. Similar model numbers do not guarantee that existing drive settings can be reused without modification.
Check the mounting flange, bolt pattern, shaft diameter, key dimensions, coupling alignment, and available clearance.
Misalignment can increase vibration and bearing wear. A flexible coupling may accommodate limited alignment differences, but it must still be selected and installed within its specified limits.
The rotatable right-angle connector provides flexibility for cable routing. The connector and cable must remain clear of moving parts and nearby structures.
Avoid excessive cable bending, twisting, and strain. Follow the applicable installation requirements for connector engagement, grounding, and cable routing.
The motor’s operating temperature depends on load, current, duty cycle, ambient temperature, and installation.
When selecting the motor for continuous production, calculate the required continuous torque and evaluate the operating cycle. Peak torque should not be used as a substitute for continuous-duty capability.
A practical maintenance routine can include:
Inspecting cables and connectors for wear or damage.
Checking mounting bolts and mechanical alignment.
Monitoring vibration and abnormal noise.
Inspecting couplings and driven mechanisms.
Checking motor temperature during representative operation.
Reviewing drive alarms and feedback faults.
Confirming that the motor remains within its permitted operating limits.
The appropriate maintenance interval depends on operating hours, environmental conditions, load, and the machine’s maintenance plan.
The Allen-Bradley MPL-B960D-MJ72AA is a 460 V-class, 2,000 RPM low-inertia brushless rotary servo motor in the MPL series. Its principal identified characteristics include a 300 mm frame-size designation, 152.4 mm magnet stack, multi-turn absolute feedback, keyed shaft extension, rotatable right-angle connector, metric flange mounting, and no integral holding brake.
The motor is intended for controlled rotary motion in industrial machinery. Potential applications include packaging, automated assembly, indexing, material handling, and precision positioning, provided that its electrical and mechanical ratings meet the application’s requirements.
The most relevant related configurations are the B960B, B960C, B960D brake-equipped variant, and the longer-stack B980 series. The correct choice depends on speed, torque, feedback, brake requirements, and installation space.
For purchasing and engineering purposes, the net motor weight can be treated as approximately 14.52 kg pending confirmation against the supplied unit’s documentation. The complete external dimensions, rated electrical characteristics, and exact torque-speed data should be confirmed before finalizing the specification or selecting a replacement motor.