bnp-b2365(eng)b.pdf - 第30页

1. Installation 1 - 14 1-3-6 Heat radiation countermeasures In order to secure reliability and life, design the temperature in the panel so that the ambient temperature of each unit is 55°C or less. If heat accumulates a…

100%1 / 399
1. Installation
1 - 13
1-3-5 Heating value
Each heating value is calculated with the following values.
The values for the servo drive unit are for a stall output, and the values for the spindle drive unit are for
a continuous rated output. The value for the power supply unit includes the AC reactor's heating value.
Servo drive unit Spindle drive unit Power supply unit
Heating amount
[W]
Heating amount
[W]
Heating amount
[W]
Heating amount
[W]
Type
MDS-C1-
Inside
panel
Outside
panel
Type
MDS-C1-
Inside
panel
Outside
panel
Type
MDS-C1-
Inside
panel
Outside
panel
Type
MDS-C1-
Inside
panel
Outside
panel
V1- 01 21 0 V2-0101 38 0 SP- 04 30 0 CV- 37 21 34
V1- 03 27 0 V2-0301 41 0 SP- 075 40 0 CV- 55 23 42
V1- 05 37 0 V2-0303 43 0 SP- 15 49 0 CV- 75 25 55
V1- 10 53 0 V2-0501 46 0 SP- 22 26 42 CV-110 26 99
V1- 20 25 66 V2-0503 52 0 SP- 37 28 51 CV-150 29 126
V1- 35 30 102 V2-0505 62 0 SP- 55 31 76 CV-185 33 162
V1- 45S 34 124 V2-1005 78 0 SP- 75 35 102 CV-220 35 175
V1- 45 37 148 V2-1010 96 0 SP-110 41 140 CV-260 40 220
V1- 70S 38 151 V2-2010 37 117 SP-150S 48 140 CV-300 46 274
V1- 70 50 234 V2-2020 41 137 SP-150 48 187 CV-370 54 346
V1- 90 56 275 V2-3510S 44 146 SP-185 62 280
V1-110 74 392 V2-3510 42 148 SP-220 65 301
V1-150 96 545 V2-3520S 48 165 SP-260 80 403
V2-3520 45 168 SP-300 98 522
V2-3535 51 209
V2-4520 52 214
V2-4535 57 249
V2-4545S 55 225
V2-4545 64 295
V2-7035 70 336
V2-7045 77 382
V2-7070S 65 300
V2-7070 90 468
V2-9090S 65 300
POINT
Design the panel's heating value taking the actual axis operation (load rate) into
consideration. With a general machine tool, the servo drive unit's load rate is
approx. 50%, so the heating values inside the panel are half the values shown
above. (Excluding the power supply and spindle drive unit.)
When using MDS-C1-CV-260, MDS-C1-SP[]-185 and MDS-C1-V2-3535
Total heating value = (40 + 220) + (62 + 280) + (51 + 209) = 862 [W]
Heating value in panel = (40) + (62) + (51 × 0.5) = 127.5 [W]
(Example 1)
1. Installation
1 - 14
1-3-6 Heat radiation countermeasures
In order to secure reliability and life, design the temperature in the panel so that the ambient
temperature of each unit is 55°C or less.
If heat accumulates at the top of the unit, etc., install a fan so that the temperature in the panel remains
constant.
(Note) Due to the structure, heat easily accumulates at the
top of the unit. Install a fan in the power distribution
panel to circulate the heat at the top of the unit.
Fan
(Ins ide panel)
Wind speed 2m/ s or more
1. Installation
1 - 15
Please refer to following method for heat radiation countermeasures.
Heat
exchange
r
Unit
Flow of air
Flow of air
Relay, etc
Examples of mounting and temperature measurement positions (reference)
z
Measurement position (example)
Calculate total heat radiation of each
mounted unit (W)
Comparison of W and W1
W W1
Collection of internal temperature rise
distribution data
Mounting design
Improvements
Completion
Selection of heat exchanger
Evaluation
W>W1
T10°C
T>10°C
Calculate cabinet’s cooling capacity
(W1)
<Hypothetical conditions>
(1) Average temperature in cabinet : T 55°C
(2) Cabinet peripheral temperature : Ta 0°C to 45°C
(3) Internal temperature rise value : T =T–Ta
max= 10°C
<Supplement>
1) Refer to Specifications Manual, etc. for the heat
generated by each unit.
2) Enclosed cabinet (thin steel plate) cooling capacity
calculation equation
W1 = U × A × T
U: 6W/m
2
×
°C (with internal agitating fan)
4W/m
2
× °C (without internal agitating fan)
A: Effective heat radiation area (m
2
)
(Heat dissipation area in panel)
Sections contacting other objects are excluded.
T: Internal temperature rise value (10°C)
3) Points of caution for heat radiation countermeasures
when designing mounting state
Layout of convection in panel
Collect hot air at suction port in heat exchanger
cabinet.
4) Understanding the temperature rise distribution in the
panel
T (average value) 10°C
T
max (maximum value) 15°C
R (inconsistency) = (T
maxTmin) 6°C
(Evaluate existence of heat spots)