Cleveland Range inverter Function 1 Group FU1, Parameter Description FU1, FU1-03 Run Prevention

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Chapter 4 - Parameter Description [FU1]

4.2 Function 1 Group [FU1]

FU1-00: Jump to Desired Code #

Jumping directly to any parameter code can be accomplished by entering the desired code number.

FU1-03: Run Prevention

This function prevents reverse operation of the motor. This function may be used for loads that rotate only in one direction such as fans and pumps.

Setting Range

Description

Select

Display

 

None

0

Forward and reverse run is available.

Forward

1

Forward run is prevented.

Prevention

 

 

Reverse

2

Reverse run is prevented.

Prevention

 

 

FU1-05: Acceleration Pattern

FU1-06: Deceleration Pattern

Different combinations of acceleration and deceleration patterns can be selected according to your application.

Setting Range

Description

Select

Display

 

Linear

0

This is a general pattern for constant

torque applications.

 

 

 

 

This pattern allows the motor to

 

 

accelerate and decelerate smoothly.

 

 

The actual acceleration and

 

 

deceleration time takes longer- about

S-Curve

1

40% than the time set in DRV-01 and

DRV-02.

 

 

 

 

This setting prevents shock during

 

 

acceleration and deceleration, and

 

 

prevents objects from swinging on

 

 

conveyors or other moving equipment.

 

 

This pattern provides more efficient

U-Curve

2

control of acceleration and deceleration

 

 

in typical winding machine applications.

 

 

The inverter makes shorten the

 

 

acceleration time by accelerating with a

 

 

current rate of about 150% of its rated

 

 

current and reduces the deceleration

 

 

time by decelerating with a DC voltage

 

 

rate of 95% of its over-voltage trip level.

Minimum

3

Appropriate application: When the

 

 

maximum capability of the inverter and

 

 

the motor are required.

 

 

Inappropriate application: The current

 

 

limit function may operate for a long

 

 

period of time for loads that have high

 

 

inertia such as fans.

 

 

The inverter accelerates with a current

Optimum

4

rate of about 120% of its rated current

and decelerates with a DC voltage rate

 

 

 

 

of 93% of its over-voltage trip level.

Note: In case of selecting the ‘Minimum’ or ‘Optimum’, the DRV-01 [Accel Time] and DRV-02 [Decel Time] is ignored.

Note: ‘Minimum’ and ‘Optimum’ functions operate normally when the load inertia is less than 10 times compared to the motor inertia. (FU2-37)

Note: ‘Optimum’ is useful when the motor capacity is smaller than the inverter capacity.

Note: ‘Minimum’ and ‘Optimum’ functions are not appropriate for down operation in an elevator application.

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Contents 4 HP Installation, Operation Maintenance InstructionOtherwise, electric shock could occur Safety InstructionsOtherwise, fire could occur Otherwise, you may get an electric shockOtherwise, it could result in a secondary accident and fire Otherwise, fire or accident could occurOperating Precautions Page Page Contents 104 100105 106230V Class 0.5~5.4HP User Selection Guide Actionmaster Specifications460V Class 0.5~ 5.4HP Motor Rating1 Output Capacity2 kVAControl Control MethodInspection Installation008 Environmental ConditionsInstallation Other PrecautionsInverter Dimensions100 128 117.5 130.9 130 118 128 117.5 152.9SV037ACtionMaster 150 138 128 117.5 155.0 Mccb Basic WiringWiring Power Terminals Precautions on Wiring Power TerminalsGrounding Warning Wires and Terminal Lugs Screw Ring Terminals Wire6 Inverter Torque5 Mm2Motor should be connected to the U, V, and W Terminals Control Terminals 30A 30C 30BKgf·cm/lb-in Wiring Control Terminals Precautions on Wiring Inside InverterControl Circuit Terminal Keypad Connector Pin Configuration Inverter Side Keypad Wiring the KeypadPin No DescriptionOperation Keypad and Parameter Group SettingSegment RUN KeyProcedures Parameter Setting and ChangeSetting the DRV Group Data OperationExample Changing the F5 data to Adjusting Function and I/O Group DataFrequency Trip CurrentGroup Name Description Parameter GroupMoving Through DRV Group Codes Moving Through I/O Group Codes Moving Through Function Group CodesOperation Operation From Keypad and Control TerminalOperation From Control Terminal Operation From Keypad Drive Group DRV Parameter ListParameter List Function Group 1 FU150 / 60 Hz FU1-37 FU1-52FU1-53 Function Group 2 FU2 FU2-33 FU2-3214FU2-3415 FU2-36FU2-85 FU2-83FU2-88 FU2-8950 /60 Hz Input/Output Group I/OYes For Step Frequency Acceleration Time To 999.9 sec Yes For Step Frequency Deceleration Time To 999.9 secYes Deceleration Time To 999.9 sec Yes Acceleration Time To 999.9 secYes FM Frequency Meter Output Current Selection Voltage Acceleration Time To 999.9 secStall Yes Reference Free RunBit Yes Modbus-RTUParameter Description Related Functions DRV-04 Freq Mode FU1-20 Max FreqDRV-00 Output Frequency DRV-01 Acceleration Time DRV-02 Deceleration TimeDRV-04 Frequency Mode Frequency Setting Method Parameter Description DRV DRV-03 Drive Mode Run/stop MethodSelect the source of Run/Stop command Select the source of frequency settingDRV-05 ~ DRV-07 Step Frequency 1 ~ Parameter Description DRVDRV-08 Output Current DRV-09 Motor SpeedFault Contents DRV-12 Fault DisplayDRV-10 DC Link Voltage DRV-11 User Display SelectionPage Parameter Description FU1 Function 1 Group FU1FU1-00 Jump to Desired Code # FU1-03 Run PreventionSelects the stopping method for the inverter FU1-07 Stop ModeStop Mode ‘Free-run’ Output Frequency FU1-22 Time Output Voltage Freq. limit ‘Yes’ FU1-30 ~ FU1-37 User V/F Frequency and Voltage Parameter Description FU1 FU1-29 Volts/Hz PatternFU1-39 Energy Save Level FU1-38 Output Voltage AdjustmentMotor i2t Characteristic Curve FU1-54 Overload Warning Level FU1-55 Overload Warning Time St bit FU1-59 Stall Prevention Mode SelectionThis code is used to exit a group. Press Func key to exit Parameter Description FU1 FU1-99 Return CodeParameter Description FU2 Function 2 Group FU2FU2-00 Jump to Desired Code # FU2-07 Dwell Frequency FU2-08 Dwell TimeFU2-10 ~ FU2-16 Frequency Jump FU2-19 Input/Output Phase Loss Protection Bit SetFU2-21 Restart After Fault Reset FU2-20 Power on Start SelectionFU2-19 Phase Loss Protection Select Setting RangeFU2-22 Speed Search Select Motor Speed Time Output Frequency Output Voltage FU2-39 Carrier Frequency Parameter Description FU2 FU2-40 Control Method Selection This is to select the control method of inverterOutput frequency = Reference freq. + Delta freq Delta freq FU2-70 Reference Frequency for Accel/DecelParameter Description FU2 FU2-71 Accel/Decel Time Scale FU2-72 Power On DisplayFU2-73 User Display Selection FU2-74 Gain for Motor Speed DisplayFU2-79 Software Version FU2-76 Duty of DB Dynamic Braking ResistorFU2-81 ~ FU2-90 2nd Motor Related Functions Displays the software versionFU2-93 Parameter Initialize FU2-91 Parameter Read FU2-92 Parameter WriteFU2-94 Parameter Write Protection FU2-99 Return CodeParameter Description FU2 06 ~ I/O-10 Analog Current Input I Signal Adjustment 01 ~ I/O-05 Analog Voltage Input V1 Signal AdjustmentParameter Description I/O 00 Jump to Desired Code #Following table shows the selection in I/O-48 11 Criteria for Analog Input Signal LossStep Parameter Speed-H Speed-M Speed-L Speed-L, Speed-M, Speed-H2nd Function DC-BrakeAccel/Decel Parameter TimeV1-Ext WireUp, Down Ext Trip-A20 Jog Frequency 15 Terminal Input Status 16 Terminal Output Status21 ~ I/O-24 Step Frequency 4, 5, 6 Analog Hold40 FM Frequency Meter Output 41 FM Adjustment 25 ~ I/O-38 1st ~ 7th Accel/Decel TimeMulti-Accel/Decel Time Operation 44 Multi-function Output define MO-MG 42 FDT Frequency Detection Level 43 FDT BandwidthFDT-2 FDT-1FDT-3 FDT-4Stall IOL46 Inverter Number 47 Baud Rate 45 Fault Output Relay 30A, 30B, 30C99 Return Code 7-Segment Keypad 50 Communication Protocol SelectionSpecifications MODBUS-RTU CommunicationIntroduction Items Specifications InstallationConnecting the communication line System configurationCommunication Protocol Modbus-RTU OperatingFunction Code Name Exception Code NameError Response Negative Acknowledge Response Basic Format Command Message RequestCommunication Protocol CMC-BUS Ascii Normal Response Acknowledge ResponseDetail Communication Protocol Acknowledge ResponseNegative Acknowledge Response Request for Registration of ‘n’ numbers of Address Request for WriteError Code Common Parameter Description Unit Read/Write Data value HEX Parameter Code ListParameter Description Read/Write Data value HEXValue Description Default Max. value Min. value Unit 630A Retry delay180 SS I-GainGroup Parameter Description Default Max. value Min value UnitParameter Description Default Max. value Min value Unit Refer to this chapter when a trouble is occurred TroubleshootingMODBUS-RTU Communication Ascii Code List Character HexSpace Troubleshooting & Maintenance Fault DisplayDisplay Protective Description Troubleshooting & Maintenance Fault Inverter Fault Reset Protective Cause Remedy Fault RemedyCondition Check Point Elements Test Polarity Measured Value How to Check Power ComponentsShort ModulePrecautions MaintenanceRoutine Inspection Periodical InspectionDaily and Periodic Inspection Items Period InspectionInspection Method Criterion Measuring Instrument Fan Troubleshooting & Maintenance Options Braking Resistor400V Class Model Number 004-4 008-4 015-4 022-4 037-4 230V, or Phase 230/460V 50/60Hz PhaseOptions DB Resistor2Unit mm DIN Rail Base103 Use Related Parameter Code Appendix a Functions Based on the USEInverter Appendix B- Peripheral DevicesCD 73/23/EEC and CD 89/336/EEC Declaration of ConformityCharacteristics of information technology equipment Safety of information technology equipmentEN 50178 EN 55022Essential Requirements for CE Compliance EMC Installation Guide109 Footprint Filters RFI Filters Footprint Standard for ACtionMaster SeriesRevision Date Remarks Revision History112 Cleveland Motion Controls

inverter specifications

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