Figure 43, Figure 44 – Rockwell Automation 294D ArmorStart LT Distributed Motor Controller DeviceNet Version - User Manual User Manual

196

Rockwell Automation Publication 290D-UM001A-EN-P - June 2012

Appendix A

Applying More Than One ArmorStart LT Motor Controller in a Single Branch Circuit on Industrial Machinery

Figure 43 - ArmorStart LT NFPA 79 Multi-Motor Branch Circuit —
Conductor and Controller Protection

Figure 44 - ArmorStart LT NFPA 79 Multi-Motor Branch Circuit Minimum Conductor Ampacity

½ HP

Bulletin 294

2 HP

Bulletin 294

5 HP

Bulletin 291

5 HP

Bulletin 290

1 HP

Bulletin 294

Overload

Class 10

Overload

Class 10

Overload

Class 10/15/20

Overload

Class 10/15/20

Overload

Class 10

Nameplate*

Nameplate*

Nameplate*

Nameplate*

Nameplate*

1/2 HP

FLC =

1.1 A**

2 HP

FLC =

3.4 A**

5 HP

FLC =

7.6 A**

5 HP

FLC =

7.6 A**

1 HP

FLC =

2.1 A**

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

Combined Load Conductors

10 AWG

* Each controller is suitable for group installation with the same maximum ratings of fuse.
** Table 430.250 of NFPA 70-2011

Electrical Supply -

480Y/277V

Available Fault Current

Sym. Amps RMS 9 KA

Disconnecting

Means

Branch short-circuit

and ground-fault
protection device

Fuses

45 A Max,

CC, J or T

Controller

ratings
further

restrict the

fuse

Compare to

controller max

fuse ratings

“Suitable for Motor Group Installation”

Max. Ratings

5 KA 10 KA

45A 45A*

Sym. Amps RMS
Fuse

* Type CC, J and T fuses only

Conductor

protection -

60 A max,

any class

Determine

fuse class

and max

rating for

conductor
protection

Conductor
protection

“Smallest

conductor”

7.2.10.4(2) -

“smallest

conductor in

the circuit”

= 14 AWG

Table 7.2.10.4

Max
Fuse
AWG (A)
- -
14 60
12 80
10 100
8 150
- -

a

d

d

a

b

c

Electrical Supply

Min Amp. =

125% * 1.8 A

Min Amp. =

125% * 5.5 A

Min Amp. =

125% * 7.6 A

Min Amp. =

125% * 7.6 A

Min Amp. =

125% * 3.0 A

Min Amp. =

125% * 1.1A

Min Amp. =

125% * 3.4 A

Min Amp. =

125% * 7.6 A

Min Amp. =

125% * 7.6 A

Min Amp. =

125% * 2.1 A

Minimum Required Ampacity (MRA)
MRA = 1.25 * Max {controller input currents} + Sum {remaining controller input currents}
Controller input currents = {I1,I2,I3,I4,I5}
Max controller input current = I3 = I4, choose I3 as Max (either is ok)
MRA = 1.25 * I3 + (I1 + I2 + I4 + I5}
= 1.25 * 7.6 A + (1.8 A + 5.5 A + 7.6 A + 3.0 A) = 27.4 A

c

a

b

a

b

½ HP

Bulletin

294

2 HP

Bulletin

294

5 HP

Bulletin

291

5 HP

Bulletin

290

1 HP

Bulletin

294

Combined Load Conductors

I1 =

1.8 A

I2 =

5.5 A

I3 =

7.6 A

I4 =

7.6 A

I5 =

3.0 A

1/2 HP

FLC =

1.1 A**

2 HP

FLC =

3.4 A**

5 HP

FLC =

7.6 A**

5 HP

FLC =

7.6 A**

1 HP

FLC =

2.1 A**

** Table 430.250 of NFPA 70-2011

1.1 A

3.4 A

7.6 A

7.6 A

2.1 A

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

14 A

W

G

10 AWG