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MJ10009 Schematic ( PDF Datasheet ) - ON Semiconductor

Teilenummer MJ10009
Beschreibung NPN SILICON POWER DARLINGTON TRANSISTORS
Hersteller ON Semiconductor
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Gesamt 8 Seiten
MJ10009 Datasheet, Funktion
MOTOROLA
SEMICONDUCTOR TECHNICAL DATA
Order this document
by MJ10009/D
Designer's Data Sheet
SWITCHMODE Series
MJ10009*
*Motorola Preferred Device
NPN Silicon Power Darlington
Transistor with Base-Emitter
Speedup Diode
The MJ10009 Darlington transistor is designed for high–voltage, high–speed,
power switching in Inductive circuits where fall time is critical. It is particularly suited
for line operated switchmode applications such as:
20 AMPERE
NPN SILICON
POWER DARLINGTON
TRANSISTORS
450 and 500 VOLTS
175 WATTS
Switching Regulators
Inverters
Solenoid and Relay Drivers
Motor Controls
Deflection Circuits
Fast Turn–Off Times
1.6 µs (max) Inductive Crossover Time – 10 A, 100_C
3.5 µs (max) Inductive Storage Time – 10 A, 100_C
Operating Temperature Range –65 to + 200_C
100_C Performance Specified for:
100 15
CASE 1–07
TO–204AA
(TO–3)
Reversed Biased SOA with Inductive Loads
Switching Times with Inductive Loads
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎSaturation Voltages
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎLeakage Currents
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎMAXIMUM RATINGS
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎRating
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎCollector–Emitter Voltage
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎCollector–Emitter Voltage
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎCollector–Emitter Voltage
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎEmitter Base Voltage
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎCollector Current — Continuous
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎΗ Peak(1)
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎBase Current — Continuous
— Peak (1)
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎTotal Power Dissipation @ TC = 25_C
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ@ TC = 100_C
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎDerate above 25_C
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎOperating and Storage Junction Temperature Range
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎTHERMAL CHARACTERISTICS
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎCharacteristic
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎThermal Resistance, Junction to Case
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎMaximum Lead Temperature for Soldering Purposes: 1/8from Case for 5 Seconds
ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎv(1) Pulse Test: Pulse Width = 5 ms, Duty Cycle 10%.
Symbol
VCEO
VCEX
VCEV
VEB
IC
ICM
IB
IBM
PD
TJ, Tstg
Value
500
500
700
8
20
30
2.5
5
175
100
1
– 65 to + 200
Unit
Vdc
Vdc
Vdc
Vdc
Adc
Adc
Watts
W/_C
_C
Symbol Max Unit
RθJC
TL
1 _C/W
275 _C
Designer’s and SWITCHMODE are trademarks of Motorola, Inc.
Designer’s Data for “Worst Case” Conditions — The Designer’s Data Sheet permits the design of most circuits entirely from the information presented. SOA Limit
curves — representing boundaries on device characteristics — are given to facilitate “worst case” design.
Preferred devices are Motorola recommended choices for future use and best overall value.
REV 2
©MMoototorroollaa, IBncip. 1o9la95r Power Transistor Device Data
1






MJ10009 Datasheet, Funktion
MJ10009
The Safe Operating Area figures shown in Figures 11 and 12 are
specified ratings for these devices under the test conditions
shown.
50
20 10 µs
10 100 µs
5
2
1 ms
1
0.5 dc
0.2
0.1
0.05
0.02
0.01
0.005
6
BONDING WIRE LIMIT
THERMAL LIMIT @ TC = 25°C
(SINGLE PULSE)
SECOND BREAKDOWN LIMIT
MJ10009
10 20
50 100 200
450 600
500
VCE, COLLECTOR–EMITTER VOLTAGE (VOLTS)
Figure 11. Forward Bias Safe Operating Area
20
18 TC = 100°C
16 IC/IB1 20
14
12
10
8
6 VBE(off) = 5 V
4 VBE(off) = 2 V
2 VBE(off) = 0 V
0
0 100 200 300 400 500
VCE, COLLECTOR–EMITTER VOLTAGE (VOLTS)
Figure 12. Reverse Bias Switching
Safe Operating Area (MJ10009)
SAFE OPERATING AREA INFORMATION
FORWARD BIAS
There are two limitations on the power handling ability of a
transistor: average junction temperature and second break-
down. Safe operating area curves indicate IC – VCE limits of
the transistor that must be observed for reliable operation,
i.e., the transistor must not be subjected to greater dissipa-
tion than the curves indicate.
The data of Figure 11 is based on TC = 25_C; TJ(pk) is
variable depending on power level. Second breakdown pulse
limits are valid for duty cycles to 10% but must be derated
when TC 25_C. Second breakdown limitations do not der-
ate the same as thermal limitations. Allowable current at the
voltages shown on Figure 11 may be found at any case tem-
perature by using the appropriate curve on Figure 13.
TJ(pk) may be calculated from the data in Figure 10. At
high case temperatures, thermal limitations will reduce the
power that can be handled to values less than the limitations
imposed by second breakdown.
REVERSE BIAS
For inductive loads, high voltage and high current must be
sustained simultaneously during turn–off, in most cases, with
the base to emitter junction reverse biased. Under these
conditions the collector voltage must be held to a safe level
at or below a specific value of collector current. This can be
accomplished by several means such as active clamping,
RC snubbing, load line shaping, etc. The safe level for these
devices is specified as VCEX(sus) at a given collector current
and represents a voltage–current condition that can be sus-
tained during reverse biased turn–off. This rating is verified
under clamped conditions so that the device is never sub-
jected to an avalanche mode. Figure 12 gives the complete
reverse bias safe operating area characteristics. See Table 1
for circuit conditions.
100
80
60
40
20
0
0
FORWARD BIAS
SECOND BREAKDOWN
DERATING
THERMAL DERATING
40 80 120 160
TC, CASE TEMPERATURE (°C)
Figure 13. Power Derating
200
6
10
7
IC = 10 A
5
2
SEE TABLE 1 FOR CONDITIONS,
FIGURE 7 FOR WAVESHAPE.
0
01 2
5 78
VBE(off), REVERSE BASE CURRENT (VOLTS)
Figure 14. Reverse Base Current versus
VBE(off) with No External Base Resistance
Motorola Bipolar Power Transistor Device Data

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