HV590L Series Frequency Inverter. User Manual (Version: 3.1.14) - page 3

 

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HV590L Series Frequency Inverter. User Manual (Version: 3.1.14) - page 3

 

 

If filtering time is small, inverter output torque might fluctuate greatly, but response speed will be fast.
P2.10
0
AI1
1
AI2
2
AI3(Potentiometer)
3
Torque upper limit source in
P2.09
0
speed control mode
PULSE setup
4
Communication setup
5
Min(AI1,AI2)
6
Max(AI1,AI2)
7
Torque upper limit digital setup
P2.10
0.0%~200.0%
150.0%
in speed control mode
In speed control mode, inverter maximum torque output is controlled by torque upper limit.
Range for 1-7 selections of P2.09 are corresponding to the setting range of P2.10.
P2.09 is used to select torque upper limit source. When P2.09 is set through analog, PULSE setup,
communication setup, which 100% corresponding to P2.10. 100% of P2.10 is the rated torque of the
inverter.
Excitation regulation
P2.13
0~20000
2000
proportional gain
Excitation regulation
P2.14
0~20000
1300
integration gain
Torque regulation
P2.15
0~20000
2000
proportional gain
Torque requlation integration
P2.16
0~20000
1300
gain
Vector control current-loop PI regulation, which is automatically obtained after asynchronous motor
complete tuning or synchronous motor complete tuning. It generally needs not to be modified.
CautionIntegration regulator of current loop directly set integration gain without taking integration
time as the dimension. Excessive current loop PI gain may lead oscillation to the entire control loop circuit.
If current oscillation or torque fluctuation is relatively big, users could manually turn down the PI
proportional gain or integration gain.
5.5 V/F control groupP3.00-P3.15
This function group is only valid for V/F control mode.
V/F control is suitable for general load such as draught fan, pump. It is also appropriate for
situations where one inverter driving multiple motors or there is big difference between inverter
power and motor power.
FactoryChange
Code
Description/Display
Setting Range
Setting
Limite
Beeline V/F
0
P3.00
V/F curve setup
0
Multi-point V/F
1
64
Square V/F
2
Power of 1.2 V/F
3
Power of 1.4 V/F
4
Power of 1.6 V/F
6
Power of 1.8 V/F
8
Reserved
9
VF complete separation mode
10
VF semi separation mode
11
This parameter defines the V/F setup mode so as to meet the requirements of various load characteristics.
0Beeline V/F
It is suitable for the ordinary constant torque load.
1Multi-point V/F
It is suitable for special loads such as dehydrator and centrifugal machine. It can be self-defined.
Refer to the description of functional codes of Group F1-07 to F1-12 for details.
2Square V/F
It is suitable for centrifugal loads such as fan and pump.
3~8These are relation curve situated between beeline V/F curve and square V/F curve.
9Reserved
10VF complete separation mode
Inverter output frequency and output voltage are mutually independent. Output frequency is decided
by frequency source,while output voltage is decided by P3.13(VF separation voltage source).
VF complete separation mode is generally applied in induction heating, inverter power supply, torque
motor control fields etc.
11VF semi separation mode
In this case, V is proportional to F. Proportional relationship can be set by the voltage source
P3.13. The relationship between V&F is connected with P1 group(motor rated voltage and rated
frequency).
Suppose that voltage source input is X (X from 0~100%), the V,F relationship is
V/F=2*X*(Motor rated voltage)/(Motor rated frequency)
P3.01
Torque boost value
0.0%~30%
-
P3.02
Torque boost cut-off frequency
0.00~Maximum frequency
50.00Hz
Output voltage
Vb
V1
f1
fb
Output frequency
V1:Manual torque boost voltage
Vb:Maximum output voltage
f1:Cutt-off frequency of torque boost fb:Rated running frequency
65
Fig. 5-3 Manual torque boost schematic diagram
To compensate the low frequency torque characteristics of V/F control, boost compensation should be
made to inverter low frequency output voltage.
Torque hoist it will be set according to the percentage of input rated voltage to the inverter. Below
are explanations of setting torque increase
1) When the torque hoist is set as 0.0%, the inverter will aYpt auto torque hoist.
2) This parameter can be properly hoisted for small motor, while for large motor; the parameter can be
properly decreased.
3) If the torque hoist is set to be too large, the motor may be overheated, and the inverter may be
over-current.
Torque hoist cut-off frequency As shown in Fig. 5.3, the torque hoist is valid when the cutoff
frequency below this setting. Otherwise, the torque hoist will be invalid.
Multi-point V/F frequency
P3.03
0.00Hz~P3.05
1.50Hz
point F1
Multi-point V/F voltage point
P3.04
0.0%~100.0%
6.0%
V1
Multi-point V/F frequency
P3.05
P3.03~P3.07
3.00Hz
point F2
Multi-point V/F voltage point
P3.06
0.0%~100.0%
8.0%
V2
P3.05~Motor rated frequency(P1.04)NoteMotor
Multi-point V/F frequency
P3.07
2\3\4 rated frequency respectively
8.00Hz
point F3
A2.04\A3.04\A4.04
Multi-point V/F voltage point
P3.08
0.0%~100.0%
20.0%
V3
Six parameters of P3.03 to P3.08 define the multi-point V/F curve.
The setup value of multi-point V/F curve is generally set in accordance with the load characteristics of
the motor.
Caution
1) It must be set as follows V1V2V3F1F2F3. Fig5.4 is schematic diagram for multi-point
V/F curve.
2) If the voltage is set too high at the time of low frequency, it may cause overheating and even
burning of the motor as well as stall over current or over current protection of the inverter.
Voltage %
Vb
V3
V2
V1
F1
F2
F3
Fb
Frequency %
V1-V3MS speed V/F 1~3 segment
F1-F3MS speed V/F 1~3 segment
voltage proportion
frequency proportion
VbRated motor frequency
FbRated motor running frequency
Fig. 5-4 Multi-point V/F curve setup schematic diagram
66
P3.09
V/F slip compensation gain
0%~200.0%
0.0%
This parameter is only valid for asynchronous motor.
VF slip compensation can compensate asynchronous motor speed deviation ,in this way ,motor rotary
speed could be maintained in basically stable state during load change. In general, 100% corresponds to
the rated slip of the motor with rated load. For motor rated slip , it can be get through auto calculation of P1
motor rated frequency and rated revolving speed.
The slip compensation gain adjustment may be performed referring to the following principle When
the load is rated load, and the slip compensation coefficient is set to 100%, the rotary speed of the motor is
close to the reference speed.
P3.10
VF over-excitation gain
0~200
0
The role of over excitation gain function is to suppress the rise of bus voltage during the inverter
deceleration process, thus avoiding occurrence of over voltage fault due to bus voltage exceeding over
voltage protection limitation value. The higher the over excitation gain is, more powerfully the suppression
effect is. The setting is described as follows
In the applications where over-voltage alarm easily occurs, it needs to improve the over-excitation
gain. Excessive over-excitation gain easily lead to increasing of output current .Users should keep the
balance during operation.
In the applications where the inertia is very low, the over excitation gain is set to 0, while in the
applications where there is brake resistor ,the over excitation gain is set to 0 as well.
VF oscillation suppression
P3.11
0~100
-
gain
When the motor has no oscillation, please select this gain to 0. Only when the motor has obvious
oscillation and Yes not run normally can the gain be properly increased. The bigger the gain is, the better
oscillation suppression result will be.
The gain shall be set as small as possible under the condition that the oscillation is suppressed
effectively so as to avoid high influences on the V/F operation.
Accurate motor rated current and no-load current parameters are required during using oscillation
suppression function, or VF oscillation suppression effect will not be excellent.
Digital setup(P3.14)
0
AI1
1
AI2
2
AI3(Potentiometer)
3
PULSE pulse setup(DI5)
4
0
P3.13
VF separation voltage source
MS command
5
Simple PLC
6
PID
7
Communication setup
8
100% corresponding to the rated motor voltage (P1.02A4.02
A5.02A5.02)
VF separation voltage digital
P3.14
0V~rated motor voltage
0V
setup
VF separation is generally applied to induction heating control, inverter power supply control and
torque motor control etc.
67
In VF separation control mode, output voltage can be set through function code P3.14, analog value,
MS command , PLC, PID or communication setup.
When P3.13 is nonnumeric setup, each 100% of the setting corresponds to rated moter voltage. When
output setting percentage is negative, it’s absolute value is the valid setting value.
0Digital setup(P3.14)
Voltage is directly set through P3.14.
1 AI1
2 AI2
3AI3(Potentiometer)
Voltage is set through analog input terminal.
4 PULSE pulse setup(DI5) voltage set through terminal pulse.
Pulse setup signal specificationvoltage range 9V~30V, frequency range 0kHz~100kHz.
5 MS command voltage source is MS command.
Corresponding relationship between set signal and set voltage is determined through
P4 group and PC group.
6 Simple PLC
When voltage source is simple PLC, output voltage is set through PC group parameters.
7 PID
Output voltage through PID closed loop.For specifications please refer to PA group for PID detailed
description.
8Communication setup
Communication setup refers to voltage that set by position machine through communication mode.
When the above voltage source selection is 1~8, 0~100% corresponds to output voltage 0V~motor
rated voltage.
VF separation voltage rise
P3.15
0.0s~1000.0s
0.0s
time
P3.15 refers to the time that needed for output voltage varying from 0V to motor rated voltage.As
shown in fig.5-5.
Output voltage V
Rated motor voltage
Output voltage target value
t
Actual voltage rise time
Actual voltage fall time
Setting voltage rise time
Setting voltage fall time
Fig. 5-5 VF separation schematic diagram
5.6 Input terminalP4.00-P4.40
HV590L series inverter has 6 multifunctional digital input terminals (DI1 to DI6), of which
DI5 can be used as high-speed pulse input terminal, and HV590L series inverter also has 2
analog input terminals.If system needs more input/output terminal, it can be equipped with multi-
function input/output expansion card and 1 analog input terminal(AI3x).
68
Multi-function input/output expansion card has
4 multi-function digit input
terminal(DI7~DI10).
FactoryChange
Code
Description/Display
Setting Range
Setting
Limite
P4.00
DI1terminal function selection
0~59
1
P4.01
DI2 terminal function selection
0~59
2
P4.02
DI3 terminal function selection
0~59
12
P4.03
DI4 terminal function selection
0~59
13
P4.04
DI5 terminal function selection
0~59
14
P4.05
DI6 terminal function selection
0~59
0
P4.06
DI7 terminal function selection
0~59
0
P4.07
DI8 terminal function selection
0~59
0
P4.08
DI9 terminal function selection
0~59
0
P4.09
DI10 terminal function selection
0~59
0
These parameters are used to set digital multi-function input terminals, as shown in the table below
Setting
Function
Specification explanation
Set useless terminals to “no function”, in order to prevent
0
No- function
misoperation.
1
Forward command (FWD)
The forward jog and reverse jog of the inverter are
2
Reverse command (REV)
controlled via the external terminals.
Set inverter running mode as three line control mode.For
3
Three line running control
details please refer to function code P4.11(Terminal
command mode).
FWD JOG
4
FJOG refers to jog forward running, RJOG refers to jog
command(FJOG)
reverse running. For jog running frequency, jog acc./dec.
REV JOG
5
time please refer to P8.00P8.01P8.02 for details.
command(RJOG)
6
Up command
When command source is set as “Digital Setup”, the
increase or decrease of the set frequency is implemented
7
DOWN command
through the external terminal.
When this terminal command is unvalid, meaning that the
8
IGBT Enable
inverter locks the output, the load will free stop according
to the mechanical inertia.this way is the same withP6.10
When this terminal command is valid, inverter’s fault can
9
Fault reset(RESET)
be reset. It has the same function with RESET key on the
keyboard.This function can realize remote fault reset.
Inverter decelerates to stop, but all operation parameters
are memorized. E.g PLC parameter, swing frequency
10
Operation suspended
parameter, PID parameter. When this terminal signal
disappeared, inverter restored to running status as before.
External default normally
When the inverter detects that the signal occurs , it will
11
open input
report “15=Err15” fault, and handle the fault according to
69
the fault protection action mode.(Please refer to P9.47 for
details).
12
Multi-stage speed terminal1
13
Multi-stage speed terminal2
The setting of 16-segment speeds can be realized by the
combinations of the terminal status when the frequency
14
Multi-stage speed terminal3
source is “MS Speed”. Refer to schedule 1 for details.
15
Multi-stage speed terminal4
Acc./dec.time selection
16
It can realize 4 kinds of acc./dec. selection mode by 4
terminal 1
combination status of this 2 terminals.For details please
Acc./dec.time selection
17
refer to schedule2.
terminal 2
It is used to switch to choose different frequency sources.
18
Frequency source switching
It realizes switching between
2 kinds of frequency
sources according to the setup of P0.07.
When the frequency source is given as “Digital Setup”
UP/DOWN setup
and the terminal command is valid, it can clear the
19
reset(terminal and
frequency values changed through keyboard or terminals
keyboard)
UP/DOWN and restore the reference frequency to the
setup value of “Preset Frequency"( P0.08).
When command source is set to terminal control
(P0.02=1), the terminal could realize switching between
Running command
terminal control and keyboard control.
20
switching terminal
When command source is set to communication
control(P0.02=2), the terminal could realize switching
between communication control and keyboard control.
When this terminal command is valid, it can maintain the
21
Acc./dec forbidden
current frequency output while stopping.
PID temporary invalid, the inverter maintains the current
22
PID pause
frequency output and no longer taking PID adjustment of
frequency source.
When this terminal command is valid, it clears the
23
PLC status reset
memorized PLC running phase and running time, and
restores to the initial status of PLC running.
When this terminal command is valid, the inverter maintains
24
Swing frequency pause
the frequency output of the swing frequency center, and the
swing frequency pauses.
25
Counter input
It is used as input terminal of the counting pulse.
When this terminal command is valid, it clears the
26
Counter reset
counting value of the counter to zero.
27
Length counting input
It is used as pulse input terminal of the length counting.
When this terminal is valid, it clears the length counting to
28
Length counting reset
zero.
It prohibits inverter torque control. Inverter enters in
29
Torque control forbidden
speed control mode.
PULSE
frequency
30
DI5 is used as pulse input terminal.
input(Only valid for DI5)
31
Reserved
Reserved
70
When this terminal is valid, inverter directly switch to dc
32
Immediate DC braking
braking state.
External default normally
When the inverter detects that the signal occurs , it will
33
closed input
report “Err15” fault, and stop running.
Frequency modification
If the function is valid, inverter Yes not respond to
34
enable
frequency change until the function turns to be invalid.
PID and PA.03 set values are set in oppoisite directions
35
PID direction reversed
when the terminal is valid.
It could make inverter stop when in keyboard control.
36
External stop terminal1
Equivalent to function of STOP key on the keyboard.
Control command
It is used to switch control mode between terminal and
37
switching terminal 2
communication.
When it is valid, PID integration regulation function pauses,
PID
integration
38
while PID proportional regulation and differential regulation
suspension
function are still valid.
Frequency source X and
When it is valid, frequency source X is replaced by the
39
preset frequency switching
preset frequency P0.08.
Frequency source Y and
When it is valid, frequency source Y is replaced by the
40
preset frequency switching
preset frequency P0.08.
41
Motor selection terminal1
It can realize 4 groups of motor parameters switching by 4
combination status of this 2 terminals.For details please
42
Motor selection terminal2
refer to schedule3.
PA.18=1, the parameter is invalid, PID parameter takes
43
PID parameter switching
use of PA.05~PA.07. On the contrary, PA.15~PA.17 are
taken for the use.
44
User-defined fault 1
When user-defined fault 1&2 are valid, inverter alarm fault
number 27= E.USt1 & 28= E.USt2 respectively. Inverter will
45
User-defined fault 2
handle the fault according to the mode selected by P9.49.
It enables control mode to switch between inverter torque
Speed control/ torque
control and speed control. Inverter running in the A0.00
46
control switching
defined mode when the terminal is invalid, and will switch
to another mode when it is valid.
Inverter stops at the fastest speed when the terminal is
valid. Current is set to the current upper limit during this
47
Emergency stop
stop process. This function is used for inverter fast stop ,
which can meet the stop need in system emergency.
This terminal can be used to stopthe inverter in any
circumstances
(panel control
,terminal control and
48
External stop terminal 2
communication control). Deceleration time is fixed to
deceleration time 4.
If it is valid, inverter first decelerates to stop DC braking
49
Deceleration DC braking
start frequency and then switches to DC braking state.
Inverter running time of this time is cleared if the terminal is
50
Running time reset
valid. It operates with the use of P8.42 and P8.53.
If it is valid, the UPS function is enable. Otherwise it is
51
UPS function enable
disable.
If it is valid, two phase UPS selection is enable. Otherwise
52
UPS Phase selection
single phase UPS selection is enable.
53-59
Reserved
Reserved
71
Schedule 1 MS command function description
4 MS command terminals, which can be combined into 16 states. For 16 corresponding values, please
refer to schedule 1 as below
Corresponding
K4
K3
K2
K1
Command setup
parameter
OFF
OFF
OFF
OFF
MS command 0
PC.00
OFF
OFF
OFF
ON
MS command 1
PC.01
OFF
OFF
ON
OFF
MS command 2
PC.02
OFF
OFF
ON
ON
MS command 3
PC.03
OFF
ON
OFF
OFF
MS command 4
PC.04
OFF
ON
OFF
ON
MS command 5
PC.05
OFF
ON
ON
OFF
MS command 6
PC.06
OFF
ON
ON
ON
MS command 7
PC.07
ON
OFF
OFF
OFF
MS command 8
PC.08
ON
OFF
OFF
ON
MS command 9
PC.09
ON
OFF
ON
OFF
MS command 10
PC.10
ON
OFF
ON
ON
MS command 11
PC.11
ON
ON
OFF
OFF
MS command 12
PC.12
ON
ON
OFF
ON
MS command 13
PC.13
ON
ON
ON
OFF
MS command 14
PC.14
ON
ON
ON
ON
MS command 15
PC.15
When frequency source is set to multi-stage speed mode, 100.0% of function code PC.00~PC.15 are
corresponding to maximum frequency P0.10. To meet the need, MS command can be used not only for
multi-stage speed function, but also PID setup source or VF separation voltage source.
Schedule 2 Acceleration / deceleration terminal selection description
Corresponding
Terminal2
Terminal1
Acc./dec. selection
parameter
OFF
OFF
Acc./dec. time 1
P0.17P0.18
OFF
ON
Acc./dec. time 2
P8.03P8.04
ON
OFF
Acc./dec. time 3
P8.05P8.06
ON
ON
Acc./dec. time 4
P8.07P8.08
Schedule 3 Motor terminal selection description
Corresponding
Terminal2
Terminal1
Acc./dec. selection
parameter
OFF
OFF
Motor 1
P1P2 group
OFF
ON
Motor 2
A2 group
ON
OFF
Motor 3
A3 group
ON
ON
Motor 4
A4 group
72
P4.10
DI filter time
0.000s~1.000s
0.010s
If the digital input terminal malfunction because it is vulnerable to interference , users could increase
the parameter value to enhance the interference immunity. However, this operation may cause reduced
sensitivity of the DI terminal.
Terminal input command
1bit
mode
Two-line mode 1
0
Two-line mode 2
1
Three-line mode1
2
Three-line mode2
3
P4.11
Terminal command mode
Two-line mode 3
4
0
Three-line mode3
5
Terminal input priority
10bit
mode
Point
move priorrun command
0
FWD,REV
run command FWD,REV priorPoint
1
move
0 bit
This parameter defines 6 different modes of controlling the forward and reverse rotations of the inverter via
the external terminal.
NOTE:In order to explainThe following arbitrary selection DI1DI10 multifunctional input terminal
DI1DI2DI3 three terminals as external terminalsThat is, by setting the value ofP4.00P4.02 to select
DI1DI2DI3 three terminal functionsDetailed function definition is P4.00P4.09 setting range
0Two-line mode 1
This mode is the most commanly used forward/reverse rotation control mode. The forward/reverse
rotation of the motor is decidedby the Di1, DI2 terminal commands. The descriptions on the terminal running
command are as shown as below
Terminal
Set value
Description
DI1
1
Forward(FWD)
DI2
2
Reverse(REV)
Among them ,DI1DI2 are DI1~DI10 muti-fuction input terminal, level valid.
0 invalid1 valid
K1
K2
Command
0
0
Stop
0
1
Reverse(REV)
1
0
Forward(FWD)
1
1
Stop
73
HV590L
K1
DIx (FWD)
K2
DIy (REV)
COM
Fig. 5-6 Two-line control mode 1
1 Two-line mode 2
In this operation mode,DI1 terminal function is to enable operation,while DI2 terminal function is to
determine running direction. The descriptions on the terminal running command are as shown as below
Terminal
Set value
Description
DI1
1
Forward(FWD)
DI2
2
Reverse(REV)
Among them DI1DI2 are DI1~DI10 multi-fuction input terminal, level valid
0 invalid1 valid
K1
K2
Command
0
0
Stop
0
1
Stop
1
0
Forward(FWD)
1
1
Reverse(REV)
HV590L
K1
DIx (FWD)
K2
DIy (REV)
COM
Fig. 5-7 Two-line control mode 2
2Three-line mode1
In this operation mode, DI3terminal is the enable terminal, running direction controlled by
DI1terminal DI2terminal. The descriptions on the terminal running command are as shown as below
Terminal
Set value
Description
DI1
1
Forward(FWD)
DI2
2
Reverse(REV)
DI3
3
Three-line running control
When in the need of running, users should first connect DI3 terminal. Forward and reverse running is
realized through the rising edge of Di1 or DI2.
When in the need of stop, user should disconnect DI3 terminal to meet the need. Among them, DI1
74
DI2DI3 are multi-function input terminal of DI1~DI10. DI1,DI2 are of pulse valid, while DI3 level valid.
0 invalid. 1 valid. X arbitrarily
SB1
SB2
SB3
Command
0
X
X
Stop
1
1
0
Forward(FWD)
1
0
1
Reverse(REV)
1
1
0->1
Reverse(REV)
1
0->1
1
Forward(FWD)
HV590L
SB2
DIx
(FWD)
SB1
DIn
3-line running control
SB3
DIy
(REV)
COM
Fig. 5-8 Three-line control mode 1
Among them
SB1Stop button
SB2Forward rotation button
SB3Reverse rotation button
3Three-line mode2
In this operation mode, DI3 terminal is the enable terminal, Direction by the state of the DI2 to decide,while
DI1 terminal function is to determine running direction. The descriptions on the terminal running command
are as shown as below
Terminal
Set value
Description
DI1
1
Forward(FWD)
DI2
2
Reverse(REV)
DI3
3
Three-line running control
When in the need of running, users should first connect DI3 terminal. DI1 pulse rising edge gives
running command signal, while DI2 status gives running direction signal.
When in the need of stop, user should disconnect DIn terminal to meet the need. Among them, DI1, DI2,
DI3 are multi-function input terminals of DI1~DI10. DI1 is of pulse valid, while DI2, DI3is of level valid.
0 invalid. 1 valid. X arbitrarily
SB1
SB2
K
Command
0
X
X
Stop
1
1
0
Forward(FWD)
1
1
1
Reverse(REV)
75
Fig. 5-9 Three-line control mode 2
Among them
SB1Stop button
SB2Running button
4Two-line mode3
this operation mode is Priority control two-line mode.The forward/reverse rotation of the motor is
decidedby the Di1, DI2 terminal commands. The descriptions on the terminal running command are as
shown as below
Terminal
Set value
Description
DI1
1
Forward(FWD)
DI2
2
Reverse(REV)
Among them DI1DI2 are DI1~DI10 multi-fuction input terminal, level valid
0 invalid1valid
K1
K2
Command
0
0
Stop
0
1
Reverse(REV)
1
0
Forward(FWD)
1
0->1
Forward(FWD)
0->1
1
Reverse(REV)
5Three-line mode3
In this operation mode, DI3 terminal is the enable terminal, running direction controlled by
DI1terminal DI2terminal. The descriptions on the terminal running command are as shown as below
Terminal
Set value
Description
DI1
1
Forward(FWD)
DI2
2
Reverse(REV)
DI3
3
Three-line running control
When in the need of running, users should first connect DI3 terminal. Forward and reverse running is
realized through the rising edge of Di1 or DI2
Direction as first control priority controlwhen DI1 is validDI2 pulse rising edge is invalid,when DI2 is
validDI1 pulse rising edge is invalid,When in the need of stop, user should disconnect DI3 terminal to
meet the need. Among them, DI1DI2DIn are multi-function input terminal of DI1~DI10. DI1,DI2 are of
pulse valid, while DI3 level valid.
0 invalid. 1 valid. X arbitrarily
76
SB1
SB2
SB3
Command
0
X
X
Stop
1
1
0
Forward(FWD)
1
0
1
Reverse(REV)
1
1
0->1
Forward(FWD)
1
0->1
1
Reverse(REV)
HV590L
SB2
DIx
(FWD)
SB1
DIn
3-line running control
SB3
DIy
(REV)
COM
Fig. 5-8 Three-line control mode 1
Among them
SB1Stop button
SB2Forward rotation button
SB3Reverse rotation button
Terminal UP/DOWN variation
P4.12
0.01Hz/s~65.535Hz/s
1.00Hz/s
rate
It is used to set the frequency variation rate (frequency variation per second) when adjusting the set
frequency with terminals UP/DOWN.
When P0.22 (frequency decimal point) is set to 2, range of P4.12 value is 0.001Hz/s~65.535Hz/s.
When P0.22 (frequency decimal point) is set to 1, range of P4.12 value is 0.01Hz/s~655.35Hz/ s.
P4.13
AI curve 1 minimum input
0.00V~P4.15
0.00V
AI curve 1 minimum input
P4.14
-100.00%~100.0%
0.0%
corresponding setup
P4.15
AI curve 1 maximum input
P4.13~10.00V
5.00V
AI curve 1 maximum input
P4.16
-100.00%~100.0%
100.0%
corresponding setup
P4.17
AI1 filter time
0.00s~10.00s
0.10s
77
Corresponding setting
(frequency,torque)
100%
A1
0V(0mA)
10V(20mA)
Corresponding setting
(frequency,torque)
100%
A1
0V(0mA)
10V(20mA)
-100%
Fig. 5-10 Relationship between analog input and setup value
The parameters mentioned above define the relationship between analog input voltage and the analog
input setup value.
When analog input voltage exceeds the setup “maximum input” limit, analog voltage is calculated as
“maximum input” .Similarly, when analog input is smaller than the setup “minimum input”,analog voltage is
calculated as minimum input or 0.0% according to the setting of P4.34.
AI used as current input terminal 1mA current equals to 0.5V voltage.
AI input filtering time is used to set AI1 software filtering time.When field anlog quantity is vulnerable,
please increase the filtering time so that anlog quantity tends to be stable. But excessive filtering time will
lead to slow response time to anlog detection. User should balance it according to practical application
cases.
In various application cases, the nominal value corresponding to 100% of analog reference will be
different. Refer to specific application description for the specific value.
Figure 5.10 shows typical setup cases.
P4.18
AI curve 2 minimum input
0.00V~P4.20
0.00V
78
AI curve 2 minimum input
P4.19
-100.00%~100.0%
0.0%
corresponding setup
P4.20
AI curve 2 maximum input
P4.18~10.00V
10.00V
AI curve 2 maximum input
P4.21
-100.00%~100.0%
100.0%
corresponding setup
P4.22
AI2 filter time
0.00s~10.00s
0.10s
For function and usage of curve 2, please refer to description of curve 1.
P4.23
AI curve 3 minimum input
-10.00V~P4.25
-10V
AI curve 3 minimum input
P4.24
-100.00%~100.0%
0.0%
corresponding setup
P4.25
AI curve3 maximum input
P4.23~10.00V
10.00V
AI curve 3 maximum input
P4.26
-100.00%~100.0%
100.0%
corresponding setup
P4.27
AI3filter time
0.00s~10.00s
0.10s
For function and usage of curve 3, please refer to description of curve 1.
P4.28
PULSE minimum input
0.00kHz~P4.30
0.00kHz
PULSE minimum input
P4.29
-100.00%~100.0%
0.0%
corresponding setup
P4.30
PULSE maximum input
P4.28~50.00kHz
50.00kHz
PULSE maximum input
P4.31
-100.00%~100.0%
100.0%
corresponding setup
P4.32
PULSE filter time
0.00s~10.00s
0.10s
This group of parameters are used to set relationship between DI5 pulse frequency and it’s
corresponding settings.
Pulse frequency can be only input to the inverter through DI5 channel. This function group’s
applications are similar to curve 1,please refer to the description of curve 1.
1bit
AI1 curve selection
Curve1(2 pointssee P4.13~P4.16)
1
Curve2(2 pointssee P4.18~P4.21)
2
Curve3(2 pointssee P4.23~P4.26)
3
Curve4(4 pointssee A6.00~A6.07)
4
P4.33
AI curve selection
321
Curve5(4 pointssee A6.08~A6.15)
5
10bit
AI2 curve selection
Curve1(2 pointssee P4.13~P4.16)
1
Curve2(2 pointssee P4.18~P4.21)
2
Curve3(2 pointssee P4.23~P4.26)
3
79
Curve4(4 pointssee A6.00~A6.07)
4
Curve5(4 pointssee A6.00~A6.07)
5
100bit
AI3 curve selection
Curve1(2 pointssee P4.13~P4.16)
1
Curve2(2 pointssee P4.18~P4.21)
2
Curve3(2 pointssee P4.23~P4.26)
3
Curve4(4 pointssee A6.00~A6.07)
4
Curve5(4 pointssee A6.00~A6.07)
5
The 1bit, 10bit, 100bit of the function code are used to choose the set curve of analog input AI1
AI2AI3 respectively.
3 analog input can choose any curve of the 5 types.
Curve1, curve 2, curve 3 are 2 points curve that set through P4 group function codes, while curve 4,
curve 5 are 4 points curve that set through A8 group function codes.
HV590L standard unit offers 3-channel analog input terminals. Multi-function I/O expansion card is
needed in the use of AI3x.
AI1 below minimum input setup
1bit
selection
Minimum input setup
0
0.0%
1
10bit
AI2 below minimum input setup selection
AI below minimum input
P4.34
Minimum input setup
0
000
setup selection
0.0%
1
100bit
AI3 below minimum input set selection
Minimum input setup
0
0.0%
1
This function code is used to dertermine analog quantity corresponding setup when analog input
voltage below the setup of minimum input.
The 1bit, 10bit, 100bit of the function code are corresponding to the analog input AI1AI2AI3
respectively. If the bit is set to 0 and AI is below the minimum setup , the analog input setup is the curve
“minimum input corresponding setup”(P4.14P4.19P4.24) . If the bit is set to 0 and AI is below the
minimum setup , the analog quantity corresponding setup is 0.0%.
P4.35
DI1 delay time
0.0s~3600.0s
0.0s
P4.36
DI2 delay time
0.0s~3600.0s
0.0s
P4.37
DI3 delay time
0.0s~3600.0s
0.0s
Only DI1, DI2, DI3 are able to set equipment delay time.
They are used to set delay time to inverter DI terminal state change.
P4.38
1bit
DI1 terminal valid state setup
00000
DI terminal effective mode
80
selection 1
High level valid
0
Low level valid
1
10bit
DI2 terminal valid state setup
High level valid
0
Low level valid
1
100bit
DI3 terminal valid state setup
High level valid
0
Low level valid
1
1000
DI4 terminal valid state setup
bit
High level valid
0
Low level valid
1
1000
DI5 terminal valid state setup
0bit
High level valid
0
Low level valid
1
1bit
DI6 terminal valid state setup
High level valid
0
Low level valid
1
10bit
DI7 terminal valid state setup
High level valid
0
Low level valid
1
100bit
DI8 terminal valid state setup
DI terminal effective mode
High level valid
0
P4.39
00000
selection 2
Low level valid
1
1000
DI9 terminal valid state setup
bit
High level valid
0
Low level valid
1
1000
DI10 terminal valid state setup
0bit
High level valid
0
Low level valid
1
It is used to set digital input terminal effective mode.
High level validConnection between COM and corresponding DI is valid,disconnection invalid.
Low level validConnection between COM and corresponding DI is invalid,disconnection valid.
81
5.7 Output terminalP5.00-P5.22
HV590L series inverter provides two multifunctional analog terminal output selections,two
multifunctional relay output terminal, oneDO terminal (can be used as high speed pulse output
terminal as well as open collector switching output). If the above output terminals can not meet
the field application, users should choose optional multi-function input/output expansion card.
Output terminals of multi-fuction input/output expansion card contain 1 multi-function analog
output terminal(DO2), 1 multi-function relay output terminal (relay 2) , 1 multi-function digital
output terminal(DO2).
Description/
FactoryChange
Code
Setting Range
Keyboard Display
Setting
Limite
Pulse output(Y1P)
0
Y terminal output mode
P5.00
1
selection
Switch output(Y1R)
1
Y1 is programmable multiplex terminal, which can be used as high speed pulse output terminal (Y1P)
or open collector switching output terminal (Y1R).
When P5.00 is set to 0, maximum output frequency can reach 10kHz , please refer to P5.06 for related
description.
Y1Rselection (open
P5.01
0-40
2
collector output terminal)
Relay output selection
P5.02
0-40
43
(TA1.TB1.TC1)
Expansion card relay output
P5.03
0-40
42
selection(TA2.TB2.TC2)
DO1 output selection(open
P5.04
0-40
0
collector output terminal)
Expansion card DO2 output
P5.05
0-40
0
selection
The above
5 function codes are used to select
5 digital output function. TA1.TB1.TC1 and
TA2.TB2.TC2 are control board and expansion card relay respectively.
Function selections are as follows
Set
Function
Description
value
0
No output
The output terminals have no function
1
Inverter in operation
When the inverter is running, ON signal is output.
When inverter fault happens and stops due to the fault ,
2
Output fault(Stop fault)
ON signal is output
Frequency level detection FDT1
3
Refer to P8.19 and P8.20 function codes for details
output
4
Frequency arrival
Refer to P8.21 function codes for details
When inverter is in running status and output 0Hz , ON
Null speed operation(stop without
5
signal is output.
output)
When inverter is in stop status, OFF signal is output.
82
Judgment will be made according to the prealarm
parameter value before the motor electronic thermal
protection is enabled. If it exceeds the pre-alarm
6
Motor overload pre-alarm
parameter value, ON signal will be output. Refer to
P9.00 to P9.02 function codes for the descriptions of
motor overload.
When it is found that the inverter is overloaded, ON
7
Inverter overload pre-alarm
signal will be output before the overload protection
occurs.
When the counting value reaches the value of PB.08, it
8
Setup counting value arrived
outputs ON signal.
When the counting value reaches the value of PB.09, it
9
Designated counting value arrived
outputs ON signal.Refers to PB group for details.
When the actual length exceeds the setup value in
10
Length arrived
PB.05, it outputs ON signal.
When the simple PLC running finishes one circulation, it
11
PLC circulation end
outputs a pulse signal with width of 250ms.
When the accumulated running time of the inverter
12
Total running time arrived
exceeds the setup time (P8.17), it outputs ON signal.
When set frequency exceeds upper limit frequency or
lower limit frequency,and inverter output frequency
13
Frequency limit
exceeds upper limit frequency or lower limit frequency,
it outputs ON signal.
In speed control mode, if output torque reaches the
14
Torque limit
torque limit, inverter will be in stall protection status and
output ON signal.
When the inverter has no fault and the bus voltage
works normally and the inverter is ready for running, it
15
RUN ready
outputs ON signal. Upon normal startup, it closes the
output.
When the voltage value of analog input AI1 is bigger
16
AI1>AI2
than that of analog input AI2, it output ON signal.
When the running frequency of the inverter reaches the
17
Frequency upper limit arrived
frequency upper limit, it outputs ON signal.
When the running frequency of the inverter reaches the
Frequency lower limit arrived
18
frequency lower limit, it outputs ON signal.And output
(stop without output)
OFF signal in stop status.
When inverter is in undervoltage status, it outpus ON
19
Undervoltage state output
signal.
20
Communication setup
Please refer to communication protocol.
21
Reserved
Reserved
22
Reserved
Reserved
Null speed operation 2(Stop with
When inverter output 0Hz , ON signal is output.
23
output)
When inverter is in stop status, ON signal is output.
When accumulated power-on time(P7.13) exceeds
24
Total power-on time arrival
P8.16 set value, it outputs ON signal.
25
Inspection level of FDT2 frequency
Please refer to function code P8.28P8.29 for details.
83
26
Frequency 1 arrival output
Please refer to function code P8.30P8.31 for details.
27
Frequency 2 arrival output
Please refer to function code P8.32P8.33 for details.
28
Current 1 arrival output
Please refer to function code P8.38P8.39 for details.
29
Current 2 arrival output
Please refer to function code P8.40P8.41 for details.
When inverter running time reaches the set timming
30
Timing arrival output
(P8.42 valid), it outputs ON signal.
When analog input value AI1 is bigger than P8.46 (AI1
31
AI1excessive input
input protection upper limit) or smaller than P8.45(AI1
input protection lower limit), it outpus ON signal.
32
Load off
Inverter in load off status, it outpus ON signal.
33
Reverse running
Inverter in reverse running mode, it outputs ON signal.
34
Zero current state
Please refer to function code P8.28P8.29 for details.
When module radiator temperature(P7.07) reaches the
35
Module temperature arrival
set value of P8.47, it outputs ON signal.
36
Software excessive current
Please refer to function code P8.36P8.37 for details.
When running frequency reaches frequency lower limit,
Frequency lower limit arrival(stop
37
it outputs ON signal.When in stop status ,it outputs ON
with output)
signal too.
When inverter fault with processing mode of continue
38
Alarm output
running, it outputs alarm signal.
When motor temperature reaches set value of P9.58 , it
39
Motor over temperature alarm
outputs ON signal.(temperature can be viewed through
U0.34)
When the running time exceeds the set value of P8.53 ,
40
The running time arrival
it outputs ON signal.
When inverter fault with processing mode of continue
41
Alarm output
running(uninclude under voltage fault), it outputs alarm
signal.
42
Brake output
Brake output
43
MC (magnetic contactor) output
MC (magnetic contactor) output
Y1P output function
P5.06
selection(pulse output
0-16
0
terminal)
P5.07
AO1 output function selection
0-16
3
P5.08
AO2 output function selection
0-16
1
Y1P terminal output pulse frequency range0.01kHz~P5.09(Y1P maximum frequency output), P5.09
could vary from 0.01kHz to 100.00kHz.
AO1, AO2 output ranges from 0V to 10V, or 0mA to 20mA.
The corresponding value range is shown in the table below
Setup
Function
Range
value
0
Running frequency
0~maximumoutputfrequency
84
1
Setupfrequency
0~maximumoutputfrequency
2
Outputcurrent
0~200%ofthe rated current oftheinverter
3
Outputtorque
0~200%ofthe rated torque oftheinverter
4
Outputpower
0~200% ofthe rated powerofthe inverter
5
Output voltage
0~120% of the rated voltage of the inverter
6
PULSEpulse input
0.01kHz~100.00kHz
7
AI1
0V~10V
8
AI2
0V~10V(Or 0~20mA)
9
AI3
0V~10V
10
Length
0~Maximum length
11
Countingvalue
0~Maximum counting value
12
Communication setup
0.0%~100.0%
13
Motor revolving speed
0~maximum output frequency corresponding speed
14
Output current
0.0A~1000.0A
15
Output voltage
0.0V~1000.0V
Y1P maximum output
P5.09
0.01kHz~100.00kHz
50.00kHz
frequency
When the multifunctional terminal output function selects Y1P pulse output, it can set the maximum
frequency value of output pulse.
P5.10
AO1 zero offset
-100.0%~+100.0%
0.0%
P5.11
AO1 gain
-10.00~+10.00
1.00
Expansion card AO2zero
P5.12
-100.0%~+100.0%
0.00%
offset
P5.13
Expansion card AO2 gain
-10.00~+10.00
1.00
Function codes above are generally used to modify the zero drift of the analog output and also be
used to define required AO output curves.
If b represents zero offset, k represents gain, Y represents actual output, and X represents standard
output, the actual output is calculated as follows Y=kX+b
AO1, AO2 zero offset coefficient 100% corresponds to 10V (20mA).
For example, if the analog output is the running frequency, and it is expected to output 8V (16mA)
when the frequency is 0, and output 3V (6mA) at the maximum frequency, the standard output 0V to 10V
shall be modified to 8V to 3V output. As per the above formula, AO zero offset coefficient shall be set to
“80%”, while A0 gain shall be set to “-0.50”.
P5.17
Y1R output delay time
0.0s~3600.0s
0.0s
P5.18
RELAY1 output delay time
0.0s~3600.0s
0.0s
P5.19
RELAY2 output delay time
0.0s~3600.0s
0.0s
P5.20
DO1 output delay time
0.0s~3600.0s
0.0s
85
P5.21
DO2 output delay time
0.0s~3600.0s
0.0s
Set output terminal Y1R, relay 1, relay 2, DO1 and DO2 delay time that begins from status changing to
real output changing.
1bit
Y1R valid state selection
Positive logic
0
Negative logic
1
10bit
RELAY1 terminal valid state setup
Positive logic
0
Negative logic
1
100bit
RELAY2 terminal valid state setup
Positive logic
0
DO output terminal valid
P5.22
00000
state selection
Negative logic
1
1000
DO1 terminal valid state setup
bit
Positive logic
0
Negative logic
1
10000
DO2 terminal valid state setup
bit
Positive logic
0
Negative logic
1
Define output terminal Y1RRelay 1Relay 2DO1 andDO2 output logic.
0 Positive logic
Digital output terminals and the corresponding public end connected as effective state, disconnect for
invalid state.
1Negative logic
Digital output terminals and the corresponding public end connected as invalid state, disconnect for
effective state.
5.8 Start/stop controlP6.00-P6.15
Description/
FactoryChange
Code
Setting Range
Keyboard Display
Setting
Limite
Direct startup
0
Revolving speed tracking startup
1
P6.00
Start mode
0
Pre-excitation startup
2
(AC asynchronous motor)
0 Direct startup
When the DC brake time is zero, it starts at the startup frequency.
When the DC brake time is non-zero value, it can perform DC brake before start. It is suitable for the
86
applications where small inertia may cause reverse rotation at the time of startup.
1Revolving speed tracking startup
The inverter firstly judges the revolving speed and direction of the motor and then starts at the
frequency corresponding to the tracked rotation velocity of the motor, and performs smooth startup of the
motor in rotation without impact.It is suitable for the applications where large inertia is restarted due to
transient power shutdown.In order to ensure the performance of the rotation velocity tracking startup, motor
parameters (Group P1) should be set correctly.
2Asynchronous pre-excitation startup
It is only valid for asynchronous motor , and is used to establish magnetic field before motor operation.
For pre-excitation current, pre-excitation time please refer to function code P6.05 and P6.06.
If pre-excitation time is set to 0, the pre-excitation process will be cancelled ,and start with start
frequency. If pre-excitation time is not set to 0, inverter first pre-excitation then starup. In this way, motor
dynamic response performance is promoted.
Start from stop frequency
0
Revolving speed tracking
P6.01
Start from zero speed
1
0
mode
Start from maximum frequency
2
In order to complete the rotation speed tracking process in the shortest period, it can select the mode
of inverter tracking the rotation velocity of motor
0 Track downward from the frequency at the time of stop, which is generally selected at first.
1 Track upward from zero frequency, which is used when the inverter is restarted upon long period of
power shutdown.
2 Track downward from the maximum frequency, which is generally used for power generating load.
Revolving speed tracking
P6.02
1~100
20
speed
In the mode of revolving speed tracking startup, it is used to select the speed of rotation tracking. The
higher the parameter value is, the faster the tracking velocity is, but too higher value may cause unreliable
tracking.
P6.03
Reserved
--
--
P6.04
Reserved
--
--
Start dc braking current
P6.05
0%~100%
0%
/pre-excitation current
Start dc braking time /pre-
P6.06
0.0s~100.0s
0.0s
excitation time
Pre-excitation is used to establish asynchronous motor magnetic field before startup, which would
improve response speed.
Start dc current braking is only valid when it is direct startup. Inverter first carries out dc braking
according to the setup of start dc current braking , and then carries out operation after start dc braking
time.
If dc braking time is set to 0, inverter directly start without dc braking. The bigger the dc braking current
is , the greater the braking force is.
If start mode is asynchrounous motor pre-excitation start, inverter first establish magnetic field through
pre-excitation current setup, then start to run after pre-excitation time. If set pre-excitation time to 0,
inverter would directly start without pre-excitation process./
Start dc braking current/pre-excitation current is the relative percentage of rated current.
P6.07
Reserved
--
--
87
P6.08
Reserved
--
--
P6.09
Reserved
--
--
Speed-Down to stop
0
P6.10
Stop mode
0
Free stop
1
0Deceleration to stop
When the stop command is valid, the inverter will decelerate to stop according to the setup
deceleration time.
1 Free stop
When the stop command is valid, the inverter will terminate the output immediately and the load will
coast to stop according to the mechanical inertia.
P6.11
Reserved
--
--
P6.12
Reserved
--
--
P6.13
Reserved
--
--
P6.14
Reserved
--
--
P6.15
Brake utilization ratio
0%~100%
100%
It is only valid for the inverter with built-in brake unit.
It is used to adjust the duty ratio of the brake unit.When the brake utilization ratio is high,then the duty
ratio of brake unit action is high,braking effect is strong.But there will be big fluctuation of inverter bus
voltage.
5.9 Keyboard and displayP7.00-P7.14
Description/
FactoryChange
Code
Setting Range
Keyboard Display
Setting
Limit
MF/REV key invalid
0
Switching between operation panel com-
mand channel&the remote command
1
channel (terminal command channel or
P7.01
MF/REV key function selection
serial port command channel)
0
Switching between FWD&REV rotation
2
Forward jog command
3
Reverse jog command
4
It is used to set the functions of multifunctional MF/REV key.
0 Invalid function
1 Operation panel command channel and remote command channel
It can perform switching between the current command source and keyboard control(local
operation).The function key is invalid when current command source is keyboard control.
2 Switching between forward and reverse rotation
Switching the rotary direction of the motor via the MF/REV key on the keyboard is only enabled when
the command source is “operation panel command”.
3 Forward jog
88
It can perform forward jog (FJOG) operation via the MF/REV key on the keyboard.
4 Reverse jog
It can perform reverse jog (RJOG) operation via the MF/REV key on the keyboard.
The stop function of STOP/RES key is
0
valid only in the keyboard control mode.
P7.02
STOP/RESET function
1
The stop function of STOP/RES key is
1
valid in any control mode.
LED running display
P7.03
0000~FFFF
1F
parameter1
15
14
13
12
11
10
9
8
7
6
5
4
3
2
1
0
D0 output status
Running frequency 1(Hz)
AI1(V)
Setting frequency (Hz)
AI2(V)
Bus voltage(V)
AI3(V)
Output voltage(V)
Count value
Output current(A)
Length value
Output power(kW)
Load speed display
Output torque(%)
PID setting
DI input status(V)
If the above parameters need to be displayed during the operation, users can set their corresponding
positions to 1 and then convert this binary number into decimal number and set it to P7.03.
LED running display
P7.04
0000~FFFF
0
parameter 2
15
14
13
12
11
10
9
8
7
6
5
4
3
2
1
0
Linear speed
PID feedback
Present power-on time(Hour)
PLC stage
Present running time(Min)
Input pulse frequency (kHz)
Input pulse frequency(Hz)
Running frequency 2(Hz)
Communication setting
Surplus running time
Encoder feedback speed
AI1 voltage before correction(V)
Main frequency X display
AI2 voltage before correction(V)
Auxiliary frequency Y display
AI3 voltage before correction(V)
If the above parameters need to be displayed during the operation, users can set their corresponding
positions to 1 and then convert this binary number into decimal number and set it to P7.04.
Running display parameter is used to set paratermers which can be seen under inverter running state.
32 state parameters can be checked at most,you could choose the needed state parameter through
P7.03P7.04 binary digit,display sequence starts from P7.03 lowest digit order.
P7.05
LED stop display parameter
0000~FFFF
33
89
15
14
13
12
11
10
9
8
7
6
5
4
3
2
1
0
Length value
Setting frequency(Hz)
PLC stage
Bus voltage(V)
Load speed
DI input status
PID setting
DO output status
Input pulse frequency(Hz)
AI1 (V)
Reserved
AI2 (V)
Reserved
AI3 (V)
Reserved
Counter
If the above parameters need to be displayed at the time of stop, it can set their corresponding
positions to 1 and then convert this binary number into decimal number and set it to P7.05.
P7.06
Load speed coefficient
0.0001~6.5000
1.0000
When display of the load speed is necessary, P7.06 is used to adjust the corresponding relationship
between inverter frequency output and load speed. For details please refer to P7.12.
Inverter module radiator
P7.07
0.0~100.0
12
temperature
It is used to display IGBT temperature.
Different model’s inverter module is set with different IGBT over temperature protection value.
P7.08
Product ID
0
Display inverter product ID
P7.09
Accumulative running time
0h~65535h
0h
It is used to display the accumulated running time of the inverter. When the accumulated running time
reaches P8.17 setup running time, the multifunctional digital output terminal(12) will output ON signal.
Performance version
P7.10
Display performance version number
-
number
P7.11
Software version No.
Control board software version No.
-
No decimal place
0
One decimal place
1
Load speed display decimal
P7.12
1
digits
Two decimal places
2
Three decimal places
3
Decimal point position It is used to set the number of decimal places of the load speed.
For example, if the Load speed display coefficient P7.06 is 2.000,load speed display decimal digits is
2(Two decimal places),when inverter running frequency is
40.00Hz,the load speed will be
40.00*2.000=80.00(2 decimal digit display)
If the inverter is in stopped state, then load speed displays as corresponding set frequency speed.Take
set frequency of 50.00Hz as an example,the stop state load speed is 50.00*2.000=100.00(Two decimal
places)
P7.13
Accumulative power-on time
0h~65535h
-
It displays accumulative power-on time since leaving the factory.
When it reaches the set power-on time (P8.17) , multi-function digital output (24) ON signal.
P7.14
Accumulative power
0~65535
-
90
consumption
It displays the inverter accumulative power consumption.
5.10 Auxiliary functionP8.00-P8.53
Description/
FactoryChange
Code
Setting Range
Keyboard Display
Setting
Limit
P8.00
Jog running frequency
0.00Hz~maximum frequency
2.00Hz
P8.01
Jog acceleration time
0.0s~6500.0s
20.0s
P8.02
Jog deceleration time
0.0s~6500.0s
20.0s
It defines the reference frequency and acc. / dec. time of the inverter at the time of jogging.
The jog process is started and stopped according to direct startup mode(P6.00=0)and decelerate to
stop mode(P6.10=0).
P8.03
Acceleration time 2
0.0s~6500.0s
20.0s
P8.04
Deceleration time 2
0.0s~6500.0s
20.0s
P8.05
Acceleration time 3
0.0s~6500.0s
20.0s
P8.06
Deceleration time 3
0.0s~6500.0s
20.0s
P8.07
Acceleration time 4
0.0s~6500.0s
20.0s
P8.08
Deceleration time 4
0.0s~6500.0s
20.0s
HV590L offers 4 groups of speed-up/speed-down time,P0.17/P0.18 and 3 groups above.
P8.03 to P8.08 parameters have the same definition with P0.17 and P0.18.You can switch to choose
the 4 groups through different combination of DI multi-function digital input terminal.For specific using
method,please refer to function code P4.01~P4.05 for details.
P8.09
Hopping frequency 1
0.00Hz~maximum frequency
0.00Hz
P8.10
Hopping frequency 2
0.00Hz~maximum frequency
0.00Hz
P8.11
Hopping frequency amplitude
0.00Hz~maximum frequency
0.00Hz
Output frequency
Hz
Hopping frequency amplitude
Hopping frequency 2
Hopping frequency amplitude
Hopping frequency amplitude
Hopping frequency 1
Hopping frequency amplitude
t
Fig.5-14Skip frequency schematicdiagram
When set frequency is within the range of hopping frequency,the actual running frequency will run
close to the set frequency of hopping frequency.Inverter can avoid load mechanical resonance by setting
hopping frequency.
HV590L can set 2 hopping frequency points,if both of them are set to 0,then the hopping frequency
function is canceled.Hopping frequency and hopping frequency amplitude schematic is shown in Fig5-14.
91
Dead zone time of
P8.12
0.00s~3000.0s
0.0s
forward&reverse rotations
It refers to the transit time at the 0Hz output point when the inverter switches between forward rotation
and reverse rotation. As shown in figure 5-15.
Output frequency
Hz
Forward
t
Reverse
Dead zone time
Fig.5-15Rotation dead zone timeschematicdiagram
Reverse rotation enabled
0
P8.13
Reverse rotation control
0
Reverse rotation forbidden
1
It is used to set if the inverter could run in reverse rotation state. If reverse rotation is not permitted,
P8.13 should be set to 1.
Run with frequency lower limit
0
Set frequency below lower
P8.14
stop
1
0
limit running mode
0 speed operation
2
It is used to select the running status of the inverter when the set frequency is lower than the
frequency lower limit. HV590L offers 3 kinds of running mode to meet all kins of applications.
P8.15
Droop control
0.00Hz~10.00Hz
0.00Hz
It is used for load distribution when multiple motors drive the same load.
Droop control refers to inverter output frequency decreasing with added load. In this way, motor with
heavy load output frequency decrease more, which could decrease the motor load to realize multiple motor
load uniformity .
This parameter is the output frequency declining value with rated output load.
Accumulative power-on time
P8.16
0h~65000h
0h
arrival setup
When the accumulative power on time (P7.13) reaches the P8.16 set value, inverter multi-function
digitalDO would output ON signal.
E.gInverter outputs fault alarm after 100-hour power-on time
Virtual terminal DI1 function user-defined fault1A1.00=44;
Virtual terminal DI1 valid statefrom virtual DO1A1.05=0000;
Virtual terminal DO1 function power-on time arrived A1.11=24;
Set cumulative power-on time to 100 hoursP8.16=100.
When accumulative power-on time reaches 100 hours, inverter outputs fault number 26= E.ArA.
92
Accumulative running time
P8.17
0h~65000h
0h
arrival setup
When the accumulated running time (P7.09) reaches this set running time, the digital output
terminalDO outputs the ON signal of running time arrival.
Invalid
0
P8.18
Start protection selection
0
Valid
1
This parameter is used to improve the safety protection coefficient.
If it is set to 1, it has two functions
1.If running command is valid upon power on (E.gClosed-state before terminal running command
power on), inverter will not respond to the running command. Users should first cancel running command,
after running command coming into valid again, the inverter then responds.
2.If running command is valid upon inverter fault reset, inverter will not respond to the running
command. Running protection status can be eliminated after cancelling the running command.
This can prevent the dangers caused by the automatic running of the motor under unexpected
condition.
Frequency detection
P8.19
0.00Hz~maximum frequency
50.00Hz
value(FDT1)
Frequency detection
P8.20
0.0%~100.0%(FDT1level)
5.0%
hysteresis value(FDT1)
Output frequency
Hz
FDT level
FDT hysteresis value
=P8.19*P8.20
t
Frequency arrival
detection signal
(DO,relay)
ON
t
Fig.5-16 FDT level schematic diagram
When the running frequency is higher than the frequency detection value,multi-function terminal DO
output ON signal.On the contrary,ON signal is canceled if running frequency is less than a certain value of
the detection valule.
It is used to set the detection value of the output frequency and the hysteresis value upon release of
the output action.P8.20 is the hysteresis frequency percentage relativing to P8.19 frequency detection
value.
93
Frequency arrival detection
P8.21
0.00~100%maximum frequency
0.0%
amplitude
When inverter running frequency is in certain target frequency ,multi-function terminalDO outputs ON
signal.
P8.21 is used to set frequency arrival detection amplitude,percentage relativing to the maximum
frequency.Frequency arrival schematic diagram is shown in Fig5-17.
Output frequency
Hz
Set frequency
Detection amplitude
t
Frequency arrival
detection signal
ON
ON
t
Fig.5-17 Frequency arrival detection amplitude schematic diagram
Acc./dec. hopping frequency
Invalid
0
P8.22
0
validity
Valid
1
It is used to set whether hopping frequency is effective during process of acceleration/deceleration.
P8.22 =1 Actual running frequency will skip the setting frequency boundary when running within the
range of hopping frequency.
Output frequency
Hz
Hopping frequency amplitude
Hopping frequency 2
Hopping frequency amplitude
Hopping frequency amplitude
Hopping frequency 1
Hopping frequency amplitude
t
Fig.5-18 Acc./dec. hopping frequency validity schematic diagram
P8.25
Acc. time1 & acc. time 2
0.00Hz~Maximum frequency
0.00Hz
94
frequency switching point
Dec. time1 & dec. time 2
P8.26
0.00Hz~Maximum frequency
0.00Hz
frequency switching point
It is valid when motor 1 is selected without switching acceleration / deceleration time through DI
terminal. In inverter running process, P8.25 & P8.26 choose different acceleration / deceleration time
according to the running frequency range.
As shown in fig.5-19
During acceleration process, if running frequency is less than P8.25 ,then choose acc. time2. If
running frequency is greater than P8.25, choose acc. time 1.
During deceleration process, if running frequency is greater than P8.26, then choose dec. time 1. If
running frequency is less than P8.26 , choose dec. time 2.
Output frequency
Hz
Setting frequency
P8.25
P8.26
t
Acc. time2
Dec. time2
Acc. time1
Dec. time1
Fig.5-19 Acc./dec. timeswitching schematic diagram
Invalid
0
P8.27
Terminal jog priority
0
Valid
1
It is used to set if terminal jog function has the highest priority.
When P8.27 is valid, if jog command occurring during running , inverter will switch to jog running
mode.
Frequency detection
P8.28
0.00Hz~Maximum frequency
50.00Hz
value(FDT2)
Frequency detection
P8.29
0.0%~100.0%(FDT2 level)
5.0%
hysteresis value(FDT2)
This frequency detection function and FDT1 function are exactly the same, for details please refer to
FDT1 , namely function codes P8.19, P8.20 description.
Random frequency arrival
P8.30
0.00Hz~Maximum frequency
50.00Hz
detection value1
Random frequency arrival
P8.31
0.0%~100.0%(Maximum frequency)
0.0%
detection range1
Random frequency arrival
P8.32
0.00Hz~Maximum frequency
50.00Hz
detection value2
P8.33
Random frequency arrival
0.0%~100.0%(Maximum frequency)
0.0%
95

 

 

 

 

 

 

 

 

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