Baldor MN770 manual Section Hardware Information, General Considerations, Encoder Retrofit

Page 18

Section 4

Hardware Information

General Considerations

All Baldor Series H drives are designed for ease of use. The keypad interface provides

 

the same interface for each Series H control. In other words, if you are familiar with

 

parameter set-up for one Series H drive type, the set-up for another Series H drive is

 

similar.

 

Power and logic wiring are essentially the same. Depending on the technology, feedback

 

wiring may be different.

 

For elevator applications, it is not possible to uncouple the load from the motor to

 

ªAuto-tuneº the motor parameters. Therefore, the parameter values can be calculated

 

and manually entered manually.

Encoder Retrofit

Use care when an encoder is to be installed on a motor that is not equipped with one. An

 

encoder may be used with a DC SCR or Vector control and motor. Encoders cannot be

 

used with inverter controls and motors. The encoder housing must be rigidly mounted to

 

the existing motor case and an anti-backlash coupling must be used. Baldor offers a

 

special encoder kit designed for modernization which includes the rugged 1024 PPR H25

 

encoder, adapter, special coupling, stub shaft, hardware and mounting template.

 

Electrical isolation of the encoder case and shaft from the motor is highly recommended

 

to prevent capacitively-coupled motor noise from degrading the encoder signal. This

 

feature is standard on Baldor's Elevator Drive DC and Vector Drive motors. If the

 

encoder added during the modernization is later found to have electrical noise because it

 

couldn't be electrically isolated, adding an Isolated Encoder expansion board may help

 

with the electrical noise problems.

 

Cable Preparation

 

Encoder wiring must be shielded twisted pairs, #22 AWG (0.34mm2) minimum size, 200

 

maximum length, with an insulated overall shield. Belden 9891 and Manhattan M4190

 

cables are suitable.

Control End (See Figure 3-1.)

1.Strip the outside jacket approximately 0.375(9.5mm) from the end.

2.Solder a #22 AWG (0.34mm2) wire to the braided shield.

3.Connect all shields to J1-30. To do this, solder a ªDrain Wireº from each shield to the wire soldered to the braided shield in step 2.

4.Insulate or tape off ungrounded end of shields to prevent contact with other conductors or ground.

Encoder End

1.Strip the outside jacket approximately 0.375(9.5mm) from the end.

2.Identify each of the four twisted pair and label or use the color codes shown in Figure 3-2 for the optional Baldor Encoder Cable.

3.Insulate or tape off ungrounded end of shields and unused conductors to prevent contact with other conductors or ground.

CAUTION: Do not connect any shields to the encoder case or motor frame. The encoder +5VDC supply at J1-29 is referenced to circuit board common. Do not connect any shields to ground or another power supply or damage to the control may result.

MN770

Hardware Information 4-1

Image 18
Contents Elevator Application Guide MN770Table of Contents Ii Table of Contents MN770 Drive Definition Section General InformationIntroduction ModernizationsLimited Warranty Safety Notice VAC or 460 VAC maximum per control rating Perform a ªMeggerº test. Failure to disconnect motor fromUnderwriter Laboratory requirements Overview FeatureSection Technologies Drive Performance ComparisonDC SCR Control 20H ControlInverter 15H Control21H Control Vector 17H & 18H Controls22H Control Section Application Considerations Electric Drives Common Control Features Operating ModeAvailable Operating Modes Elevator Motor Horsepower Selection US Measurement SystemMetric Measurement System Motor Sizing Dynamic Brake Hardware Selection OCW =Encoder Retrofit Section Hardware InformationGeneral Considerations Cable PreparationEncoder Cables Encoder End Control End Encoder Cable ConnectionDifferential Connections Single Ended ConnectionsBuffered Encoder Output Field Control Section Set-Up InformationDC SCR Controls FeedbackFinal Installation Overload = Fault Following Error = on Torque Proving = onFinal Adjustments Speed Command Armature EnableBrake Release Signal ContactorInitial Installation and Startup Inverter ControlsPage TURN-ON Vector Controls Balanced Car Test Full Load TestFinal Wiring Connections Series 18H Control ConsiderationsProcedure Initial Set-upSlip Adjustment Value Rated Motor Load Slip Adjustment ValueFinal Set-up Power Up/Down Sequence for Vector Controls Pre-Installation Tests DateVector Control Worksheet Set-Up Information MN770 Section Troubleshooting Electrical Noise Display R-C Snubber Circuit & twisted-pair Electrical Noise Considerations10HP, 460VAC Drive 30HP, 500VDC Drive, Shielded 10 Isolated Mounting Method Analog Signal Wires Wiring PracticesPower Wiring Encoder CircuitsOptical Couplers Optical IsolationPlant Ground Fiber OpticsAppendix a Load Weighing / Torque Feed ForwardTable A-1 Description of OperationAppendix B Serial CommunicationsAppendix B MN770 Appendix C Elevator Industry GlossaryPage Page Appendix C MN770 Box  Baldor Electric Company MN770 97 C&J300

MN770 specifications

The Baldor MN770 is an impressive industrial motor designed for a variety of applications, showcasing robust construction and advanced technology. Known for its reliability and efficiency, the MN770 is manufactured by Baldor Electric Company, a prominent name in the electric motor industry.

One of the main features of the MN770 is its high-efficiency design. This motor adheres to stringent efficiency standards, helping to reduce energy consumption and lower operational costs. It typically meets or exceeds NEMA Premium Efficiency ratings, making it an excellent choice for businesses looking to optimize their energy use.

The MN770 motor is built with a durable cast iron frame, ensuring longevity and resistance to harsh operating conditions. Its weatherproof design is ideal for both indoor and outdoor applications, making it suitable for various environments, including manufacturing plants, water treatment facilities, and agricultural operations.

Another significant characteristic of the MN770 is its versatility. The motor is available in a range of horsepower ratings, allowing users to select the model that best fits their specific needs. Additionally, it offers various mounting configurations and voltage options, further enhancing its adaptability for diverse applications.

The motor utilizes advanced insulation systems and cooling technologies to ensure optimal performance and a longer lifespan. The robust design helps to dissipate heat effectively, enabling the motor to operate efficiently even under heavy loads. This characteristic is essential for applications requiring continuous operation without compromising reliability.

Moreover, the Baldor MN770 incorporates advanced design features such as precision-balanced rotors and high-performance bearings. These characteristics contribute to reduced vibration and noise levels, promoting a quieter working environment and improving overall operation efficiency.

In summary, the Baldor MN770 motor stands out due to its high efficiency, robust construction, versatility, and advanced technologies. Its ability to perform reliably in various industrial applications makes it a popular choice among engineers and facility managers. Investing in the MN770 not only enhances operational efficiency but also supports sustainability efforts by reducing energy consumption in industrial environments.