Last modified by Theodore Xu on 2025/02/21 14:13

From version 15.1
edited by Theodore Xu
on 2023/09/21 15:18
Change comment: There is no comment for this version
To version 19.1
edited by Mora Zhou
on 2023/12/21 15:07
Change comment: There is no comment for this version

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Title
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1 -8 Function parameter details
1 +08 Function parameter details
Author
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1 -XWiki.AiXia
1 +XWiki.Mora
Content
... ... @@ -1,4 +1,4 @@
1 -= 1 F0 group basic parameters =
1 += F0 group basic parameters =
2 2  
3 3  (% class="table-bordered" %)
4 4  |(% rowspan="3" %)**F0.00**|(% colspan="2" %)Motor control mode|Default|0
... ... @@ -13,7 +13,10 @@
13 13  
14 14  It is suitable for occasions where the load requirements are not high or one AC drive drives multiple motors, such as fans and pumps.
15 15  
16 -**✎Note**: The motor parameter identification process must be carried out when selecting the SVC mode. Only accurate motor parameters can give full play to the advantages of it
16 +(% class="box infomessage" %)
17 +(((
18 +**✎Note**: The motor parameter identification process must be carried out when selecting the SVC mode. Only accurate motor parameters can give full play to the advantages of it.
19 +)))
17 17  
18 18  (% class="table-bordered" %)
19 19  |(% rowspan="4" %)**F0.01**|(% colspan="2" %)Command source selection|Default|0
... ... @@ -44,7 +44,7 @@
44 44  
45 45  This function is only valid for the digital setting of the frequency source. It is used to determine whether the set frequency is the current operating frequency or the current target frequency in UP/DOWN. .
46 46  
47 -(% class="table-bordered" %)
50 +(% class="table-bordered" style="width:1474px" %)
48 48  |(% rowspan="11" %)**F0.03**|(% colspan="2" %)Setting main frequency source X|Default|1
49 49  |(% rowspan="10" %)Setting Range|0|(% colspan="2" %)Digital setting (non-retentive at power failure)
50 50  |1|(% colspan="2" %)Digital setting (retentive at power failure)
... ... @@ -85,7 +85,9 @@
85 85  
86 86  Pulse given signal specifications: voltage range 9V~~30V, frequency range 0kHz~~100kHz.
87 87  
88 -Note: Pulse reference can only be input from the multi-function input terminal, __**requires custom control board development.**__
91 +{{info}}
92 +**✎**Note: Pulse reference can only be input from the multi-function input terminal, __**requires custom control board development.**__
93 +{{/info}}
89 89  
90 90  **6: **Multi-stage speed
91 91  
... ... @@ -130,8 +130,8 @@
130 130  
131 131  (% class="table-bordered" %)
132 132  |(% rowspan="3" %)**F0.05**|(% colspan="2" %)Range of auxiliary frequency source Y|Default|0
133 -|(% rowspan="2" %)Setting Range|0|(% colspan="2" %)Relative to the maximum frequency
134 -|1|(% colspan="2" %)Relative to the frequency source X
138 +|(% rowspan="2" style="width:494px" %)Setting Range|(% style="width:271px" %)0|(% colspan="2" %)Relative to the maximum frequency
139 +|(% style="width:271px" %)1|(% colspan="2" %)Relative to the frequency source X
135 135  |(% rowspan="2" %)**F0.06**|(% colspan="2" %)Percentage range of auxiliary frequency source Y|Default|0
136 136  |(% colspan="2" %)Setting Range|(% colspan="2" %)0%~~150%
137 137  
... ... @@ -154,13 +154,13 @@
154 154  
155 155  Use this parameter to select the frequency given channel. The frequency setting is realized by the combination of the main frequency source X and the auxiliary frequency source Y.
156 156  
157 -One’s digit:Selection of frequency source
162 +One’s digit: Selection of frequency source
158 158  
159 -0:main frequency source X
164 +0: Main frequency source X
160 160  
161 161  The main frequency X is used as the target frequency.
162 162  
163 -1: main and auxiliary calculation results
168 +1: Main and auxiliary calculation results
164 164  
165 165  The main and auxiliary calculation result is used as the target frequency (The calculation relationship is determined by the ten’s digits).
166 166  
... ... @@ -178,9 +178,9 @@
178 178  
179 179  4: Switchover between Y and main (X) & auxiliary(Y) calculation
180 180  
181 -When the multi-function input terminal 18: frequency source switching is invalid, the auxiliary frequency source Y is taken as the target frequency.
186 +When the multi-function input terminal 18: Frequency source switching is invalid, the auxiliary frequency source Y is taken as the target frequency.
182 182  
183 -When the multi-function input terminal 18: frequency source switching is valid, the main and auxiliary calculation result is taken as the target frequency.
188 +When the multi-function input terminal 18: Frequency source switching is valid, the main and auxiliary calculation result is taken as the target frequency.
184 184  
185 185  Ten’s digit:X and Y calculation relationship:
186 186  
... ... @@ -205,30 +205,30 @@
205 205  The result of multiplying the main frequency source X by the auxiliary frequency source Y is used as the target frequency.
206 206  
207 207  (% class="table-bordered" %)
208 -|(% rowspan="2" %)**F0.08**|Keypad setting frequency|Default|50.00Hz
209 -|Setting Range|(% colspan="2" %)0.00~~Maximum frequency F0.10 (valid for digital setting for frequency source selection)
213 +|(% rowspan="2" style="width:126px" %)**F0.08**|(% style="width:296px" %)Keypad setting frequency|(% style="width:525px" %)Default|(% style="width:504px" %)50.00Hz
214 +|(% style="width:296px" %)Setting Range|(% colspan="2" %)0.00~~Maximum frequency F0.10 (valid for digital setting for frequency source selection)
210 210  
211 211  When the frequency source is selected as "digital setting" or "terminal UP/DOWN", the function code value is the initial value of the frequency digital setting of the inverter.
212 212  
213 -(% class="table-bordered" %)
214 -|(% rowspan="3" %)**F0.09**|(% colspan="2" %)Running direction selection|Default|0
215 -|(% rowspan="2" %)Setting Range|0|(% colspan="2" %)Forward direction
216 -|1|(% colspan="2" %)Reverse direction
218 +(% class="table-bordered" style="width:1454px" %)
219 +|(% rowspan="3" style="width:134px" %)**F0.09**|(% colspan="2" style="width:825px" %)Running direction selection|(% style="width:405px" %)Default|(% style="width:117px" %)0
220 +|(% rowspan="2" style="width:288px" %)Setting Range|(% style="width:528px" %)0|(% colspan="2" style="width:513px" %)Forward direction
221 +|(% style="width:528px" %)1|(% colspan="2" style="width:513px" %)Reverse direction
217 217  
218 218  By changing this parameter, the rotation direction of the motor can be changed without changing any other parameters. Its function is equivalent to realizing the conversion of the rotation direction of the motor by adjusting any two cables of the motor (U, V, W).
219 219  
220 220  Tip: After the parameters are initialized, the motor running direction will return to the original state. Use it with caution when it is forbidden to change the rotation of the motor after the system is debugged.
221 221  
222 -(% class="table-bordered" %)
223 -|(% rowspan="2" %)**F0.10**|(% colspan="2" %)Maximum Frequency|Default|50.00 Hz
224 -|(% colspan="2" %)Setting Range|(% colspan="2" %)50.00Hz~~500.00Hz
225 -|(% rowspan="7" %)**F0.11**|(% colspan="2" %)Source of frequency upper limit|Default|0
226 -|(% rowspan="6" %)Setting Range|0|(% colspan="2" %)Set by F0.12
227 -|1|(% colspan="2" %)AI1
228 -|2|(% colspan="2" %)AI2
229 -|3|(% colspan="2" %)Reserved
230 -|4|(% colspan="2" %)Reserved
231 -|5|(% colspan="2" %)Communication setting
227 +(% class="table-bordered" style="width:1473px" %)
228 +|(% rowspan="2" style="width:135px" %)**F0.10**|(% colspan="2" style="width:815px" %)Maximum Frequency|(% style="width:376px" %)Default|50.00 Hz
229 +|(% colspan="2" style="width:815px" %)Setting Range|(% colspan="2" style="width:501px" %)50.00Hz~~500.00Hz
230 +|(% rowspan="7" style="width:135px" %)**F0.11**|(% colspan="2" style="width:815px" %)Source of frequency upper limit|(% style="width:376px" %)Default|0
231 +|(% rowspan="6" style="width:285px" %)Setting Range|(% style="width:530px" %)0|(% colspan="2" style="width:501px" %)Set by F0.12
232 +|(% style="width:530px" %)1|(% colspan="2" style="width:501px" %)AI1
233 +|(% style="width:530px" %)2|(% colspan="2" style="width:501px" %)AI2
234 +|(% style="width:530px" %)3|(% colspan="2" style="width:501px" %)Reserved
235 +|(% style="width:530px" %)4|(% colspan="2" style="width:501px" %)Reserved
236 +|(% style="width:530px" %)5|(% colspan="2" style="width:501px" %)Communication setting
232 232  
233 233  Define the source of the upper limit frequency. The upper limit frequency can come from the digital setting (F0.12) or the analog input channel. When using the analog input to set the upper limit frequency, 100% of the analog input setting corresponds to F0.12.
234 234  
... ... @@ -235,30 +235,30 @@
235 235  For example, in torque control, speed control is invalid. In order to avoid "overspeeding" due to material disconnection, the upper limit frequency can be set by analog. When the inverter runs to the upper limit frequency value, the torque control is invalid and the inverter continues to run at the upper limit frequency.
236 236  
237 237  (% class="table-bordered" %)
238 -|(% rowspan="2" %)**F0.12**|Frequency upper limit|Default|50.00Hz
239 -|Setting Range|(% colspan="2" %)Frequency lower limit (F0.14)~~F0.10
240 -|(% rowspan="2" %)**F0.13**|Upper limit frequency offset|Default|0.00Hz
241 -|Setting Range|(% colspan="2" %)0.00Hz ~~F0.10
243 +|(% rowspan="2" style="width:138px" %)**F0.12**|(% style="width:814px" %)Frequency upper limit|(% style="width:113px" %)Default|50.00Hz
244 +|(% style="width:814px" %)Setting Range|(% colspan="2" style="width:500px" %)Frequency lower limit (F0.14)~~F0.10
245 +|(% rowspan="2" style="width:138px" %)**F0.13**|(% style="width:814px" %)Upper limit frequency offset|(% style="width:113px" %)Default|0.00Hz
246 +|(% style="width:814px" %)Setting Range|(% colspan="2" style="width:500px" %)0.00Hz ~~F0.10
242 242  
243 243  When the upper limit frequency is given by the analog input, this parameter is used as the offset of the upper limit frequency calculation, and this upper limit frequency offset is added to the set value of the analog upper limit frequency as the final upper limit frequency setting value.
244 244  
245 245  (% class="table-bordered" %)
246 -|(% rowspan="2" %)**F0.14**|Frequency lower limit|Default|0.00Hz
247 -|Setting Range|(% colspan="2" %)0.00Hz~~F0.12
251 +|(% rowspan="2" style="width:136px" %)**F0.14**|(% style="width:670px" %)Frequency lower limit|(% style="width:217px" %)Default|0.00Hz
252 +|(% style="width:670px" %)Setting Range|(% colspan="2" style="width:491px" %)0.00Hz~~F0.12
248 248  
249 249  When the inverter starts to run, it starts from the starting frequency. If the given frequency is less than the lower limit frequency during operation, the inverter will run at the lower limit frequency, stop or run at zero speed. You can set which operating mode to use through F0.15.
250 250  
251 251  (% class="table-bordered" %)
252 -|(% rowspan="4" %)**F0.15**|(% colspan="2" %)The function of frequency lower limit|Default|0
253 -|(% rowspan="3" %)Setting Range|0|(% colspan="2" %)Running at frequency lower limit
254 -|1|(% colspan="2" %)Stop
255 -|2|(% colspan="2" %)Standby(Running at 0 Hz)
257 +|(% rowspan="4" style="width:136px" %)**F0.15**|(% colspan="2" style="width:676px" %)The function of frequency lower limit|(% style="width:546px" %)Default|0
258 +|(% rowspan="3" style="width:488px" %)Setting Range|(% style="width:188px" %)0|(% colspan="2" style="width:640px" %)Running at frequency lower limit
259 +|(% style="width:188px" %)1|(% colspan="2" style="width:640px" %)Stop
260 +|(% style="width:188px" %)2|(% colspan="2" style="width:640px" %)Standby(Running at 0 Hz)
256 256  
257 257  Select the running state of the AC drive when the set frequency is lower than the lower limit frequency. In order to prevent the motor from running at low speed for a long time, this function can be used to choose to stop.
258 258  
259 259  (% class="table-bordered" %)
260 -|(% rowspan="2" %)** F0.16**|Carrier Frequency|Default|Model Dependent
261 -|Setting Range|(% colspan="2" %)0.5kHz~~16.0kHz
265 +|(% rowspan="2" style="width:139px" %)** F0.16**|(% style="width:680px" %)Carrier Frequency|(% style="width:429px" %)Default|(% style="width:204px" %)Model Dependent
266 +|(% style="width:680px" %)Setting Range|(% colspan="2" style="width:633px" %)0.5kHz~~16.0kHz
262 262  
263 263  = Carrier Frequency: =
264 264  
... ... @@ -389,7 +389,7 @@
389 389  
390 390  The decimal place of the control frequency related instruction, the default is 2 decimal places. After the parameter is set, the decimal place of the parameter associated with the frequency is automatically adjusted. This parameter is not affected by F0.20.
391 391  
392 -= 2 F1 group start & stop control =
397 += F1 group start & stop control =
393 393  
394 394  (% class="table-bordered" %)
395 395  |(% rowspan="4" %)**F1.00**|(% colspan="2" %)Starting mode|Default|0
... ... @@ -549,7 +549,7 @@
549 549  
550 550  Setting whether the AC drive has output when running frequency is 0
551 551  
552 -= 3 F2 group motor parameters =
557 += F2 group motor parameters =
553 553  
554 554  (% class="table-bordered" %)
555 555  |(% rowspan="5" %)**F2.00**|(% colspan="2" %)Motor type selection|Default|0
... ... @@ -643,7 +643,9 @@
643 643  
644 644  When F2.11 is set to 1 or 2 and then press the ENT key, "TUNE" is displayed and flashes at this time, and then press the RUN key to start parameter tuning, and the displayed "TUNE" stops flashing at this time. When the tuning is over, the display returns to the stop state interface. During the tuning process, you can press the STOP button to stop tuning. When the tuning is completed, the value of F2.11 automatically returns to 0.
645 645  
651 +{{info}}
646 646  **✎Note: Tuning can only be effective in keyboard control mode, and the factory default value of acceleration and deceleration time is recommended.**
653 +{{/info}}
647 647  
648 648  (% class="table-bordered" %)
649 649  |(% rowspan="3" %)**F2.12**|(% colspan="2" %)G/P type selection|Default|Model dependent
... ... @@ -662,7 +662,7 @@
662 662  
663 663  The main and auxiliary winding currents can be changed by adjusting the single-phase motor turns ratio. Generally, reducing the single-phase motor turns ratio can increase the main winding current, reduce the auxiliary winding current, and reduce the motor heating (only effective when F2.00 = 3) .
664 664  
665 -= 4 F3 group vector control parameters =
672 += F3 group vector control parameters =
666 666  
667 667  F3 group function codes are only valid in vector control mode, that is, it is valid when F0.00=0, and it is invalid when F0.00=1.
668 668  
... ... @@ -799,7 +799,7 @@
799 799  
800 800  During startup, torque command 1 = F3.11 * F3.24 / 100; after maintaining time F3.25 seconds, it will be restored to torque command 2 = F3.11; torque command 1/2 switching requires torque acceleration and deceleration time F3.14/F3.15.
801 801  
802 -= 5 F4 group v/f control parameters =
809 += F4 group v/f control parameters =
803 803  
804 804  This group of function codes is only valid for V/F control (F0.00=1), and invalid for vector control.
805 805  
... ... @@ -968,7 +968,7 @@
968 968  
969 969  According to the actual use, select the situation where the AVR function is enabled.
970 970  
971 -= 6 F5 group input terminals =
978 += F5 group input terminals =
972 972  
973 973  The standard unit of the VB series inverter has 6 multi-function digital input terminals and 2 analog input terminals.
974 974  
... ... @@ -1205,7 +1205,7 @@
1205 1205  
1206 1206  Low Level:The connection between DI terminal and COM is invalid, while disconnection is valid.
1207 1207  
1208 -= 7 F6 group output terminals =
1215 += F6 group output terminals =
1209 1209  
1210 1210  The standard unit of VB series inverter has 2 multi-function relay output terminals, 1 FM terminal and 2 multi-function analog output terminals.
1211 1211  
... ... @@ -1465,7 +1465,7 @@
1465 1465  
1466 1466  Set the timer setting time
1467 1467  
1468 -= 8 F7 group keypad display =
1475 += F7 group keypad display =
1469 1469  
1470 1470  (% class="table-bordered" %)
1471 1471  |(% rowspan="4" %)**F7.00**|(% colspan="2" %)LCD keypad parameter copy|Default|0
... ... @@ -1676,7 +1676,7 @@
1676 1676  |(% rowspan="2" %)**F7.15**|Performance software version|Default|-
1677 1677  |Setting range|(% colspan="2" %)-
1678 1678  
1679 -= 9 F8 group auxiliary functions =
1686 += F8 group auxiliary functions =
1680 1680  
1681 1681  (% class="table-bordered" %)
1682 1682  |(% rowspan="2" %)**F8.00**|JOG running frequency|Default|2.00Hz
... ... @@ -1976,7 +1976,7 @@
1976 1976  
1977 1977  Enabling the fast current limiting function can minimize the inverter's overcurrent fault and protect the inverter from uninterrupted operation. After entering the fast current-limiting state for a period of time, a fast current-limiting fault (Err40) will be reported, indicating that the inverter is overloaded. Please refer to the handling of Err10.
1978 1978  
1979 -= 10 F9 group pid function of process control =
1986 += F9 group pid function of process control =
1980 1980  
1981 1981  PID control is a common method used in process control. It adjusts the output frequency of the inverter by performing proportional, integral, and differential calculations on the difference between the feedback signal of the controlled quantity and the target quantity signal to form a negative feedback system. The controlled amount is stable at the target amount. It is suitable for process control such as flow control, pressure control and temperature control. The basic control block diagram is as follows:
1982 1982  
... ... @@ -1983,6 +1983,9 @@
1983 1983  (% style="text-align:center" %)
1984 1984  [[image:CHAPTER 7 FUNCTIONAL PARAMETER DETAILS_html_972dcbcc01a1c9f6.png]]
1985 1985  
1993 +(% style="text-align:center" %)
1994 +[[image:生产流程图.png]]
1995 +
1986 1986  Figure 6-10-1 Block diagram of process PID principle
1987 1987  
1988 1988  (% class="table-bordered" %)
... ... @@ -2178,7 +2178,7 @@
2178 2178  
2179 2179  Figure 6-10-2 PID sleep and wake-up timing diagram
2180 2180  
2181 -= 11 FA group faults & protection =
2191 += FA group faults & protection =
2182 2182  
2183 2183  (% class="table-bordered" %)
2184 2184  |(% rowspan="3" %)**FA.00**|Motor overload protection selection|Default|1
... ... @@ -2413,7 +2413,7 @@
2413 2413  
2414 2414  Note: The function code display data is H.xxx, where H. means hexadecimal data.
2415 2415  
2416 -= 12 FB group frequency swing, length fixing and counting =
2426 += FB group frequency swing, length fixing and counting =
2417 2417  
2418 2418  The swing frequency function is suitable for textile, chemical fiber and other industries and occasions that require traverse and winding functions.
2419 2419  
... ... @@ -2500,7 +2500,7 @@
2500 2500  
2501 2501  Figure 6-12-2 Schematic diagram of set count value given and designated count value given
2502 2502  
2503 -= 13 FC group communication parameters =
2513 += FC group communication parameters =
2504 2504  
2505 2505  (% class="table-bordered" %)
2506 2506  |(% rowspan="2" %)**FC.00**|Local address|Default|1
... ... @@ -2551,7 +2551,7 @@
2551 2551  
2552 2552  Used to determine the output unit of the current value when the communication reads the output current.
2553 2553  
2554 -= 14 FD group muti-stage speed and simple plc functions =
2564 += FD group muti-stage speed and simple plc functions =
2555 2555  
2556 2556  The simple PLC function is that the inverter has a programmable controller (PLC) built in to complete automatic control of multi-segment frequency logic. The running time, running direction and running frequency can be set to meet the technological requirements. This series of inverters can realize 16-speed change control, and there are 4 kinds of acceleration and deceleration time for selection. When the set PLC completes a cycle, an ON signal can be output from the multifunctional digital output terminals DO1 and DO2 or multifunctional relay 1 and relay 2. See F1.02~~F1.05 for details. When the frequency source selection F0.07, F0.03, F0.04 is determined as the multi-speed operation mode, it is necessary to set FD.00~~FD.15 to determine its characteristics.
2557 2557  
... ... @@ -2710,7 +2710,7 @@
2710 2710  
2711 2711  This parameter determines the target quantity given channel of multi-speed 0.
2712 2712  
2713 -= 15 FE group user password management =
2723 += FE group user password management =
2714 2714  
2715 2715  (% class="table-bordered" %)
2716 2716  |(% rowspan="2" %)**FE.00**|User password|Default|0
生产流程图.png
Author
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1 +XWiki.AiXia
Size
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1 +1.0 MB
Content