load pdf in webbrowser control c# : Extract images pdf acrobat SDK Library API .net wpf windows sharepoint E82EV__8200%20vector%200.25-90kW__v3-0__EN46-part1621

DC−bus operation
Conditions for trouble−free DC−bus operation
Possible combinations of Lenze controllers in a network of several drives
12
461
EDS82EV903−3.0
12.3.1
Possible combinations of Lenze controllers in a network of several drives
Combinations in the 230 V mains
Type
Data
E82xVxxxK2C
E82xVxxxK2C
3 / PE / AC / 100 V − 0 % ... 264 V + 0%
45 Hz − 0 % ... 65 Hz + 0 %
DC 140 V ... 370 V
DC 380 V
Combinations in the 400 V mains
Type
Data
E82xVxxxK4x
93xx
E82xVxxxK4x
3 / PE / AC / 320 V − 0 % ... 440 V + 0 %
45 Hz − 0 % ... 65 Hz + 0 %
93xx
DC 460 V ... 620 V
DC 725 V
max. permissible range mains voltage
permissible range DC−bus voltage
switching threshold of the braking unit
12.3.2
Mains connection
Cable protection and cable cross−section
Dimension the mains fuses and the cable cross−section of the mains cables for the mains
current resulting from the maximum supply power P
DC100%
. Additional basic conditions
such as local regulations, temperatures, etc. must also be observed. (  467)
Note!
An asymmetrical DC−bus system may require higher dimensioning by factor
1.35 ... 1.5.
Mains current
Rule of thumb for the mains current in a DC−bus system:
I
Netz
[A] 
P
DC100%
[W]
1.6 U
Netz
[V]
Mains chokes. EMC
The application of mains chokes limits and proportionally allots the current and the power
of the mains input circuits of the controllers (depending on their performance).
Only use mains chokes that are specified for DC−bus operation. (  465)
Note!
Please observe that the DC−bus operation may require different mains chokes,
mains fuses and cable cross−sections than the individual operation.
Compliance with the EMC Directive may not be ensured. Check the application
of central interference suppression (collective filter) in the AC supply.
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DC−bus operation
Conditions for trouble−free DC−bus operation
Mains connection
12
462
EDS82EV903−3.0
Controller protection
Please ensure that all controllers in the DC−bus system are connected simultaneously to the mains
supply.
Starting conditions
Use a central mains contactor (  480)
Decentralised switching of the mains supply is possible if the connection of the individual
contactors is monitored (feedback to PLC) and the contactors are switched with the same
cycle.
A1
A2
An
F4, F5
F1 ... F3
AC
M
M
M
K1
DC
K2
Kn
PLC
K1
K2
Kn
K2
K1
K2
Kn
Z1
Z2
Zn
8200vec650
Fig. 12−1
Decentralised switching of the mains supply in network operation
A1 ... An
Controller 1 ... controller n
F1 ... F3
Mains fuses
F4 ... F5
Fuses on DC level
Z1 ... Zn
Mains choke
K1 ... Kn
Mains contactors
Adapt to the mains voltage
Select the same value for the switching threshold of the brake module / brake chopper for
all controllers in the DC−bus system:
93xx: C0173
8200 vector: C0174
Mains phase failure detection with decentralised supply
Monitor the mains supply for every controller because all active mains input circuits of the
system may be overloaded in the event of a mains failure.
Note!
Switch off the entire drive system in the event of a mains failure or mains
phase failure (  480)
Use thermal overcurrent releases for the mains failure detection and reports
(bimetal relays) which are connected downstream of the mains fuses.
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DC−bus operation
Conditions for trouble−free DC−bus operation
DC−bus connection
12
463
EDS82EV903−3.0
Additional capacities on the DC bus
Additionally operated capacities on the DC bus may overload the input rectifier of the
controllers or the 934X power supply unit.
Hence, install corresponding charging resistors or symmetrical resistors for additional
capacities.
12.3.3
DC−bus connection
Ensure short cable connections to the common DC−bus star point.
Selection of cable cross−section
Select the cable cross−section for the DC bus according to the sum of mains supplies:
Example
A1
F4,F5
F1 ... F3
3x16A
3x50A
3x 125A
AC
DC
M
M
M
A2
A3
Z
8200vec651
Fig. 12−2
Example: DC connection of three controllers
A1 ... An
Controller 1 ... controller n
F1 ... F3
Mains fuses
F4 ... F5
Fuses on DC level
Z1 ... Zn
Mains choke
Sum of the possible effective continuous currents of the parallel mains supplies:
16 A + 50 A + 125 A = 191 A
The cable cross−section results from the resulting current of 191 A and the local basic
conditions such as ambient temperature, conductor material, type of conductor, laying
system, volume expansion, standards and regulations.
Reduce conductor inductance
Reduced cable inductance through:
ƒ
Shielded cables (lay unshielded cables between controller (+U
G
, −U
G
) and DC busbar
in parallel, twist if required)
ƒ
DC busbar in the control cabinet
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DC−bus operation
Conditions for trouble−free DC−bus operation
DC−bus connection
12
464
EDS82EV903−3.0
Fusing
Assign DC−bus fuses to every controller on the side of the DC busbar to protect it against
a defective controller in the DC−bus system.
Note!
Two controllers in the DC−bus system:
ƒ
One pair of DC fuses suffices.
ƒ
Rate the fusing depending on the controller with the lower power.
More than two controllers in the DC−bus system:
ƒ
Connect one pair of DC fuses upstream to every controller.
Further information about fusing: (  474)
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DC−bus operation
Mains chokes for DC−bus operation
12
465
EDS82EV903−3.0
12.4
Mains chokes for DC−bus operation
Note!
In the DC−bus operation, mains chokes must be connected upstream to every
feeding point to ensure trouble−free operation. Mains filters can be used if
their inductance corresponds to the inductance of the specified mains choke.
The mains chokes specified in the tables refer to the load of the feeding point
during rated operation. They do not apply to the operation with increased
rated power.
8200 vector frequency inverter
Inverter
Mains
Mains chokes required for the feeding points
Type
Voltage
Rated current
Type
Inductance
Rated current
[A]
[mH]
[A]
E82xV551K2C
3/PE, 230 V
2.7
EZN3A0900H004
9.0
4.0
E82xV751K2C
3.6
E82xV152K2C
6.3
EZN3A0300H013
3.0
13.0
E82xV222K2C
9.0
Inverter
Mains
Mains chokes required for the feeding points
Type
Voltage
Rated current
Type
Inductance
Rated current
[A]
[mH]
[A]
E82xV302K2C
3/PE, 230 V
12.0
EZN3A0300H013
3.0
13.0
E82xV402K2C
16.0
ELN3−0120H017
1.2
17.0
E82xV552K2C
21.0
ELN3−0150H024
1.5
24.0
E82xV752K2C
28.0
ELN3−0088H035
0.88
35.0
Inverter
Mains
Mains chokes required for the feeding points
Type
Voltage
Rated current
Type
Inductance
Rated current
[A]
[mH]
[A]
E82xV551K4C
3/PE, 400 V
2.0
ELN3−1500H003−001
15.0
2.5
E82xV751K4C
2.3
E82xV152K4C
3.9
ELN3−0680H006−001
6.8
6.1
E82xV222K4C
5.1
ELN3−0500H007−001
5.0
7.0
E82xV302K4C
7.0
E82xV402K4C
8.8
ELN3−0250H013−001
2.5
13.0
E82xV552K4C
12.0
E82xV752K4C
15.0
ELN3−0150H024−001
1.5
24.0
E82xV113K4C
21.0
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DC−bus operation
Mains chokes for DC−bus operation
12
466
EDS82EV903−3.0
Inverter
Mains
Mains chokes required for the feeding points
Type
Voltage
Rated current
Type
Inductance
Rated current
[A]
[mH]
[A]
E82xV153K4B
3/PE, 400 V
29.0
ELN3−0075H045−001
0.75
45.0
E82xV223K4B
42.0
ELN3−0055H055−001
0.55
55.0
E82xV303K4B
55.0
E82xV453K4B
80.0
ELN3−0038H085−001
0.38
85.0
E82xV553K4B
100.0
ELN3−0027H105−001
0.27
105.0
E82xV753K4B
135.0
ELN3−0017H170
0.165
170.0
E82xV903K4B
165.0
9300 vector frequency inverter
Inverter
Mains
Mains chokes required for the feeding points
Type
Voltage
Rated current
Type
Inductance
Rated current
[A]
[mH]
[A]
EVF9321
3/PE, 400 V
1.5
EZN3A0900H004
9.0
4.0
EVF9322
2.5
EVF9323
3.9
EZN3A0500H007
5.0
7.0
EVF9324
7.0
EZN3A0300H013
3.0
13.0
EVF9325
12.0
EVF9326
20.5
ELN3−0150H024
1.5
24.0
EVF9327
29.0
ELN3−0075H045
0.75
45.0
EVF9328
42.0
ELN3−0055H055
0.55
55.0
EVF9329
55.0
EVF9330
80.0
ELN3−0027H105−001
0.27
105.0
EVF9331
100.0
EVF9332
135.0
ELN3−0017H170
0.165
170.0
EVF9333
165.0
9300 servo inverter
Inverter
Mains
Mains chokes required for the feeding points
Type
Voltage
Rated current
Type
Inductance
Rated current
[A]
[mH]
[A]
EVS9321
3/PE, 400 V
1.5
EZN3A0900H004
9.0
4.0
EVS9322
2.5
EVS9323
3.9
EZN3A0500H007
5.0
7.0
EVS9324
7.0
EZN3A0300H013
3.0
13.0
EVS9325
12.0
EVS9326
20.5
ELN3−0150H024
1.5
24.0
EVS9327
29.0
ELN3−0075H045
0.75
45.0
EVS9328
42.0
ELN3−0055H055
0.55
55.0
EVS9329
55.0
EVS9330
80.0
ELN3−0027H105−001
0.27
105.0
EVS9331
100.0
EVS9332
135.0
ELN3−0017H170
0.165
170.0
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DC−bus operation
Fuses and cable cross−sections
Mains supply
12
467
EDS82EV903−3.0
12.5
Fuses and cable cross−sections
12.5.1
Mains supply
Note!
The following applies to the mains supply:
The values in the tables refer to the operation of the controllers in a DC−bus
system with P
DC 
= 100 %, i.e. utilisation of the max. rated controller power on
DC−bus level. For the operation with lower powers, smaller fuses and cable
cross−sections are possible accordingly.
Installation in accordance with EN 60204−1
Supply conditions
Range
Description
Fuses
Utilisation category: only gG/gL or gRL
Cables
Laying systems B2 and C: Use of PVC−insulated copper cables, conductor temperature < 70 °C,
ambient temperature < 40 °C, no bundling of the cables or cores, three loaded cores. The data are
recommendations. Other dimensionings/laying systems are possible (e.g. in accordance with
VDE 0298−4).
Observe all national and regional regulations!
DC−bus operation
Fuses and cable cross−sections
Mains supply
12
468
EDS82EV903−3.0
8200 vector
Rated fuse current
Cable cross−section
Fuse
Circuit−breaker
Laying system L1, L2, L3, PE
B2
C
Type
[A]
[A]
[mm2]
[mm2]
Mains 3/PE AC 230/240 V − operation with mains choke/mains filter
E82xV551K2C
C6
1.0
1,0
E82xV751K2C
C6
1.0
1,0
E82xV152K2C
16
C16
2 x 1.5
2 x 1.5
E82xV222K2C
16
C16
2 x 1.5
2 x 1.5
E82xV302K2C
20
C20
4.0
2.5
E82xV402K2C
25
C25
6.0 1)
4.0
E82xV552K2C
C32
6.0 1)
E82xV752K2C
C32
6.0 1)
Mains 3/PE AC 400/500 V operation with mains choke/mains filter
E82xV551K4C
C6
1.0
1.0
E82xV751K4C
C6
1.5
1.0
E82xV152K4C
C10
1.5
1.0
E82xV222K4C
C10
1.5
1.0
E82xV302K4C
20
C20
4.0
2.5
E82xV402K4C
20
C20
4.0
2.5
E82xV552K4C
20
C20
4.0
2.5
E82xV752K4C
32
C32
6.0 1)
E82xV113K4C
32
C32
6.0 1)
E82xV153K4B
80
25
E82xV223K4B
80
25
E82xV303K4B
80
25
E82xV453K4B
160
70
E82xV553K4B
160
70
E82xV753K4B
250
120
E82xV903K4B
250
120
1)
Pin−end connector required, since a maximum cable cross−section of 4 mm2 can be connected to the inverter.
DC−bus operation
Fuses and cable cross−sections
Mains supply
12
469
EDS82EV903−3.0
9300 vector
Rated fuse current
Cable cross−section
Fuse
Circuit−breaker
Laying system L1, L2, L3, PE
B2
C
Type
[A]
[A]
[mm2]
[mm2]
Mains 3/PE AC 400/500 V operation with mains choke/mains filter
EVF9321
C10
1.5
1.0
EVF9322
C10
1.5
1.0
EVF9323
16
C16
2.5
2.5
EVF9324
16
C16
2.5
2.5
EVF9325
20
C20
4.0
2.5
EVF9326
32
C32
6.0
1)
EVF9327
80
25
EVF9328
80
25
EVF9329
80
25
EVF9330
160
70
EVF9331
160
70
EVF9332
250
120
EVF9333
250
120
1)
Pin−end connector required, since a maximum cable cross−section of 4 mm
2
can be connected to the inverter.
9300 servo
inverter
Rated fuse current
Cable cross−section
Fuse
Circuit−breaker
Laying system L1, L2, L3, PE
B2
C
Type
[A]
[A]
[mm2]
[mm2]
Mains 3/PE AC 400/500 V operation with mains choke/mains filter
EVS9321
C10
1.5
1.0
EVS9322
C10
1.5
1.0
EVS9323
16
C16
2.5
2.5
EVS9324
16
C16
2.5
2.5
EVS9325
20
C20
4.0
2.5
EVS9326
32
C32
6.0
1)
EVS9327
80
25
EVS9328
80
25
EVS9329
80
25
EVS9330
160
70
EVS9331
250
120
EVS9332
250
120
1)
Pin−end connector required, since a maximum cable cross−section of 4 mm
2
can be connected to the inverter.
DC−bus operation
Fuses and cable cross−sections
DC supply
12
470
EDS82EV903−3.0
12.5.2
DC supply
Note!
ƒ
All fuses specified here only have the purpose of disconnection after a short
circuit. For cable protection specific fuses must be used.
ƒ
In the following tables the rated currents of the Lenze fuses are listed. If
other fuses are used, other fuse currents and cable cross−sections may
result.
ƒ
We recommend using fuse holders with a signalling contact. Like this, the
entire drive system can be switched off (inhibited) when a fuse fails.
ƒ
Always fuse DC cables using 2 poles (+U
G
, −U
G
).
Supply conditions
Range
Description
Cables
Laying systems B2 and C: Use of PVC−insulated copper cables, conductor temperature < 70 °C,
ambient temperature < 40 °C, no bundling of the cables or cores, three loaded cores. The data are
recommendations. Other dimensionings/laying systems are possible (e.g. in accordance with
VDE 0298−4).
Observe all national and regional regulations!
8200 vector frequency inverter
Inverter
DC fuse 14 × 51
(EFSGR0xx0AYHx)
DC fuse 22 × 58
(EFSGR0xx0AYIx)
Installation in
accordance with
EN 60204−1
Type
Mains
Rated current of fuse
Rated current of fuse
+U
G
, −U
G
Laying system
B2
C
[A]
[A]
[mm2]
[mm2]
E82xV551K2C
3/PE
230 V
12
12
1.5
1.5
E82xV751K2C
12
12
1.5
1.5
E82xV152K2C
20
20
1.5
1.5
E82xV222K2C
20
20
2.5
2.5
E82xV302K2C
40
40
6.0
1)
4.0
1)
E82xV402K2C
40
40
6.0
1)
4.0
1)
E82xV552K2C
50
50
6.0
1)
E82xV752K2C
63
6.0
1)
1)
Pin−end connector required, since a maximum cable cross−section of 4 mm
2
can be connected to the inverter.
Documents you may be interested
Documents you may be interested