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Vishay high power products – C&H Technology 104MT..KPbF Series User Manual

Page 7

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Document Number: 94351

6

Revision: 05-May-08

54-94-104MT..KPbF Series

Vishay High Power Products

Three Phase AC Switch

(Power Modules), 50 A to 100 A

Fig. 9 - Maximum Non-Repetitive Surge Current

Fig. 10 - Maximum Non-Repetitive Surge Current

Fig. 11 - Current Ratings Characteristic

Fig. 12 - Forward Voltage Drop Characteristics

Fig. 13 - Total Power Loss Characteristics

700

750

650

600

550

500

450

400

350

Peak Half

S

ine Wave

On-

S

tate Current (A)

Number of Equal Amplitude Half

Cycle Current Pulses (N)

10

100

1

94MT..K Series

Per junction

At any rated load condition and with

rated V

RRM

applied following surge.

Initial T

J

= 125 °C

at 60 Hz 0.0083 s
at 50 Hz 0.0100 s

900

800

700

600

500

400

300

1000

Peak Half

S

ine Wave

On-

S

tate Current (A)

Pulse Train Duration (s)

0.01

0.1

1

Maximum non-repetitive surge current

versus pulse train duration. Control

of conduction may not be maintained.

94MT..K Series

Per junction

Initial T

J

= 125 °C

No voltage reapplied

Rated V

RRM

reapplied

90

80

70

60

120

130

100

110

Maximum Allowable Ca

s

e

Temperature (°C)

RMS Output Current (A)

20

40

100

120

60

80

0

104MT..K Series
Device fully turned-on

Per single AC switch

For all conduction angles

I

RMS

~

1

100

10

1000

In

s

tantaneou

s

On-

S

tate Current (A)

Instantaneous On-State Voltage (V)

1

2

3

4

5

0

T

J

= 25 °C

104MT..K Series

Per junction

T

J

= 125 °C

0

350

400

450

500

300

250

200

150

100

50

Maximum Total Power Lo

ss

(W)

(Per Total Module)

RMS Output Current (A)

20

40

60

80

100

120

0

180°
120°

90°
60°
30°

104MT..K Series
T

J

= 125 °C

Device fully
turned-on

Conduction angle

Ш

Ш

50

0

450

500

400

350

300

250

200

150

100

Maximum Total Power Lo

ss

(W)

(Per Total Module)

Maximum Allowable Ambient

Temperature (°C)

100

125

25

50

75

0

0.05 K/W

0.15 K/W

0.5 K/W

0.7 K/W

1.0 K/W

1.5 K/W

R

th

S

A

= 0.0

3 K/

W -

Δ

R

0.3

K/W