ENGLISH
65
Power supply cable section in mm²
10 m
20 m
30 m
40 m
50 m
60 m
70 m
80 m
90 m
100 m
120 m
140 m
160 m
180 m
200 m
4 A
1,5
1,5
1,5
1,5
2,5
2,5
2,5
2,5
4
4
4
6
6
6
10
8 A
1,5
1,5
2,5
2,5
4
4
6
6
6
10
10
10
10
16
16
12 A
1,5
2,5
4
4
6
6
10
10
10
10
16
16
16
16 A
2,5
2,5
4
6
10
10
10
10
16
16
16
20 A
4
4
6
10
10
10
16
16
16
16
24 A
4
4
6
10
10
16
16
16
28 A
6
6
10
10
16
16
16
Data concerning 3-core PVC cables (phase earth)
Table 2: Power supply cable section
Pump cable section
Required flow rate [A]
Section [mm²]
4
1.5
8
1.5
12
1.5
16
2.5
Data concerning 4-core PVC cables (3 earth) for lengths up to 10 m
Table 3: Pump cable section
Current absorption and thermal magnetic circuit breaker sizing for maximum power
MCE-22/P MCE-15/P MCE-11/P
Supply voltage [V]
230 V
230 V
230 V
Max. motor current absorption [A]
10,5
8,0
6,5
Max. inverter current absorption [A]
22,0
18,7
12,0
Rated current of thermal magnetic circuit
breaker [A]
25 20 16
Table 4: Current values
As regards the section of the earthing cable, refer to current standards.
2.2.2 Hydraulic
connections
The inverter is connected to the hydraulic section by means of pressure and flow sensors. The pressure
sensor is always required, while the flow sensor is optional if operating in stand alone mode, and is
compulsory when creating multi inverter systems.
Both are mounted on pump delivery and connected by means of the relative cables to the respective inputs
on the inverter board.
Always fit a check valve on pump suction and an expansion vessel on pump delivery.
In all circuits subject to the risk of water hammer (for example irrigation systems with flow rate interrupted
suddenly by solenoid valves), fit a further check valve downline of the pump and mount the sensors and
expansion vessel between the pump and valve.
The hydraulic connection between the pump and sensors must not have branched sections.
Pipelines must be sized according to the type of electric pump installed.
Excessively deformable systems may generate oscillations; if this occurs, the user may solve the problem by
adjusting control parameters “GP” and “GI” (see sections 6.6.4 and 6.6.5)
NOTE: The inverter makes the system work at constant pressure. This setting is best exploited if the
hydraulic system downline of the system is suitably sized. Systems with excessively small pipelines
can cause pressure drops for which the equipment is unable to compensate; the result is constant
pressure on the sensors but not on the utility.
Содержание MCE-22/P
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Страница 279: ...275 IEC 60634...
Страница 280: ...276 1 6 MCE 22 P MCE 15 P MCE 11 P 1 1 1...
Страница 282: ...278 2 5 2 1 2 1 2 2 1 1 2 1 2 L L L 2 2 4 15...
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Страница 288: ...284 DIN 43650 6 4 20 2 2 3 2 Flow 6 DIN 43650 6 DIN 43650 2 2 4 4 2 7 8 6 6 13 6 6 14 19 11 18 J5 18 50 A B C D...
Страница 291: ...287 3 9 64 X 128 4 MODE SET 9 7 MODE 1 SET 8 3 EEprom SET 6 SET MODE...
Страница 292: ...288 3 1 9 3 2 1 2 3 2 1 MODE SET MODE 8 2 2 5 5 5 2 2 9...
Страница 294: ...290 3 2 2 10 SET 10 15 12 11...
Страница 295: ...291 3 3 10 11 GO SB BL LP HP EC OC OF SC OT OB BP NC F1 F3 F4 P1 1 P2 2 P3 3 P4 4 E0 E16 0 16 EE EEprom WARN...
Страница 296: ...292 12 12 12 GO SB...
Страница 297: ...293 4 4 1 Link 8 4 2 4 2 1 Link 2 Link 5...
Страница 300: ...296 4 3 1 2 1 4 3 1 3 SET MODE LA RC FN MS FS FL AC AE O1 1 O2 2 4 4 ET 6 6 9 FL...
Страница 302: ...298 5 5 1 2 EC A 8 2 RC 5 1 1 EC MODE SET RC 16 0 A RC SET MODE RC 5 1 2 RC 5 1 1 MODE FN 50 RC FN OC OF BL RC FN...
Страница 305: ...301 6 6 1 MODE MODE 6 1 1 FR 6 1 2 VP 6 1 3 C1 A C1 RC 6 5 1 6 1 4 PO PO 6 1 5 SM 13 SB F 14 SM...
Страница 306: ...302 13 F Sb RC A SM 6 1 6 VE 6 2 2 SET MODE 6 2 1 VF 6 2 2 TE 6 2 3 BT 6 2 4 FF FF x y x y x 1 x y 64 RF 6 2 5 CT...
Страница 312: ...308 6 5 9 FI 17 0 1 F3 00 2 F3 00 3 4 18 6 5 9 1 FK FD 2 FZ 6 5 12 FZ FZ 2 6 6 3 FZ 1 FZ 6 5 5 2 FZ FZ 1 FZ 2 FZ...
Страница 324: ...320 7 BL OC OF SC PD FA 28 BL BP LP HP OT OB OC OF SC EC RC Ei i Vi i 29 7 1 7 1 1 BL TB BL 2 3...
Страница 325: ...321 7 1 2 BP BP 7 1 3 LP 295 348 7 1 4 HP 7 1 5 SC U V W PUMP 10 7 2 7 3 BL LP HP OT OB OC OF BP 29...
Страница 326: ...322 BL 10 6 24 24 30 LP 180 200 HP OT TE 100 C 85 C OB BT 120 C 100 C OC 10 6 OF 10 6 30...
Страница 327: ...323 8 8 1 PMW 4 2 8 2 8 3 8 3 SET EE EEprom FLASH...
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Страница 495: ...491 IEC 364 inverter...
Страница 496: ...492 1 Inverter inverter inverter 6 inverter MCE 22 P MCE 15 P MCE 11 P 1 1 1...
Страница 499: ...495 2 2 2 1 inverter inverter 2 2 1 1 inverter 3 1 LN 2 inverter 2 PVC 3 inverter 1 3 inverter...
Страница 500: ...496 4 4 inverter A 3 3 2 2 1 2 inverter 4 3 1 UVW 2 3 PVC 4 3 inverter inverter 50 Hz 60 Hz 200 Hz inverter 1...
Страница 502: ...498 4 2 2 3 Press Flow 5 A B C D d1 d2...
Страница 507: ...503 3 9 oled 64 X 128 4 MODE SET 9 inverter 7 MODE 1 SET 8 3 EEprom SET 6 SET MODE...
Страница 508: ...504 3 1 9 3 2 1 2 3 2 1 MODE SET Setpoint MODE 9 ONOMA TOY MENOY 2 Setpoint 2 5 5 5 2 2 9...
Страница 512: ...508 12 12 12 GO SB FAULT...
Страница 539: ...535 6 6 14 1 O1 1 1 1 26 6 6 14 2 O2 2 2 2 26 OUT1 OUT2 0 NC NC 1 NC NC 2 NC NC 3 NC NC 27 6 6 15 RF 2 RF 64 FF...
Страница 540: ...536 7 inverter inverter L C F SC PD FA 28 BL BP LP HP OT OB OC OF SC EC RC Ei i Vi i 29 7 1 7 1 1 L setpoint L 2 3...
Страница 542: ...538 BL 10 6 24 24 30 LP 180VAC 200VAC HP OT TE 100 C 85 OB BT 120 C 100 C OC 10 6 24 24 30 OF 10 6 24 24 30 30...
Страница 543: ...539 8 8 1 PMW 4 2 8 2 inverter 8 3 8 3 inverter SET EEPROM FLASH setpoint...
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