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SIHG47N60AEL-GE3

MOSFET N-CHAN 600V

器件类别:半导体    分立半导体   

厂商名称:Vishay(威世)

厂商官网:http://www.vishay.com

器件标准:

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器件参数
参数名称
属性值
FET 类型
N 沟道
技术
MOSFET(金属氧化物)
漏源电压(Vdss)
600V
电流 - 连续漏极(Id)(25°C 时)
47A(Tc)
驱动电压(最大 Rds On,最小 Rds On)
10V
不同 Id,Vgs 时的 Rds On(最大值)
65 毫欧 @ 23.5A,10V
不同 Id 时的 Vgs(th)(最大值)
4V @ 250µA
不同 Vgs 时的栅极电荷 (Qg)(最大值)
222nC @ 10V
Vgs(最大值)
±30V
不同 Vds 时的输入电容(Ciss)(最大值)
4600pF @ 100V
功率耗散(最大值)
379W(Tc)
工作温度
-55°C ~ 150°C(TJ)
安装类型
通孔
供应商器件封装
TO-247AC
封装/外壳
TO-247-3
文档预览
SiHG47N60AEL
www.vishay.com
Vishay Siliconix
EL Series Power MOSFET
D
FEATURES
• Low figure-of-merit (FOM) R
on
x Q
g
• Low input capacitance (C
iss
)
• Reduced switching and conduction losses
TO-247AC
G
• Ultra low gate charge (Q
g
)
• Avalanche energy rated (UIS)
• Material categorization: for definitions of compliance
please see
www.vishay.com/doc?99912
S
D
G
S
N-Channel MOSFET
APPLICATIONS
• Server and telecom power supplies
• Switch mode power supplies (SMPS)
PRODUCT SUMMARY
V
DS
(V) at T
J
max.
R
DS(on)
typ. () at 25 °C
Q
g
max. (nC)
Q
gs
(nC)
Q
gd
(nC)
Configuration
V
GS
= 10 V
222
25
36
Single
650
0.53
• Power factor correction power supplies (PFC)
• Lighting
- High-intensity discharge (HID)
- Fluorescent ballast lighting
• Industrial
- Welding
- Induction heating
- Motor drives
- Battery chargers
- Renewable energy
- Solar (PV inverters)
ORDERING INFORMATION
Package
Lead (Pb)-free and halogen-free
TO-247AC
SiHG47N60AEL-GE3
ABSOLUTE MAXIMUM RATINGS
(T
C
= 25 °C, unless otherwise noted)
PARAMETER
Drain-source voltage
Gate-source voltage
Continuous drain current (T
J
= 150 °C)
Pulsed drain current
a
Linear derating factor
Single pulse avalanche
energy
b
E
AS
P
D
T
J
, T
stg
dv/dt
For 10 s
Maximum power dissipation
Operating junction and storage temperature range
Reverse diode dv/dt
d
SYMBOL
V
DS
V
GS
V
GS
at 10 V
T
C
= 25 °C
T
C
= 100 °C
I
D
I
DM
LIMIT
600
± 30
47
30
140
3.0
691
379
-55 to +150
50
260
UNIT
V
A
W/°C
mJ
W
°C
V/ns
°C
Soldering recommendations (peak temperature)
c
Notes
a. Repetitive rating; pulse width limited by maximum junction temperature
b. V
DD
= 120 V, starting T
J
= 25 °C, L = 28.2 mH, R
g
= 25
,
I
AS
= 7.0 A
c. 1.6 mm from case
d. I
SD
I
D
, di/dt = 100 A/μs, starting T
J
= 25 °C
S18-0347-Rev. A, 26-Mar-18
Document Number: 92081
1
For technical questions, contact:
hvm@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
SiHG47N60AEL
www.vishay.com
Vishay Siliconix
SYMBOL
R
thJA
R
thJC
TYP.
-
-
MAX.
40
0.33
UNIT
°C/W
THERMAL RESISTANCE RATINGS
PARAMETER
Maximum junction-to-ambient
Maximum junction-to-case (drain)
SPECIFICATIONS
(T
J
= 25 °C, unless otherwise noted)
PARAMETER
Static
Drain-source breakdown voltage
V
DS
temperature coefficient
Gate-source threshold Voltage (N)
Gate-source leakage
Zero gate voltage drain current
Drain-source on-state resistance
Forward transconductance
a
Dynamic
Input capacitance
Output capacitance
Reverse transfer capacitance
Effective output capacitance, energy
related
a
Effective output capacitance, time
related
b
Total gate charge
Gate-source charge
Gate-drain charge
Turn-on delay time
Rise time
Turn-off delay time
Fall time
Gate input resistance
Drain-Source Body Diode Characteristics
Continuous source-drain diode current
Pulsed diode forward current
Diode forward voltage
Reverse recovery time
Reverse recovery charge
Reverse recovery current
I
S
I
SM
V
SD
t
rr
Q
rr
I
RRM
MOSFET symbol
showing the
integral reverse
p - n junction diode
D
SYMBOL
V
DS
V
DS
/T
J
V
GS(th)
I
GSS
I
DSS
R
DS(on)
g
fs
C
iss
C
oss
C
rss
C
o(er)
TEST CONDITIONS
V
GS
= 0 V, I
D
= 250 μA
Reference to 25 °C, I
D
= 1 mA
V
DS
= V
GS
, I
D
= 250 μA
V
GS
= ± 20 V
V
GS
= ± 30 V
V
DS
= 600 V, V
GS
= 0 V
V
DS
= 480 V, V
GS
= 0 V, T
J
= 125 °C
V
GS
= 10 V
I
D
= 23.5 A
V
DS
= 20 V, I
D
= 23.5 A
MIN.
600
-
2.0
-
-
-
-
-
-
-
-
-
-
TYP.
-
0.67
-
-
-
-
-
0.053
29
4600
186
7
121
635
111
25
36
55
65
267
71
0.7
MAX.
-
-
4.0
± 100
±1
1
10
0.065
-
-
-
-
UNIT
V
V/°C
V
nA
μA
μA
S
V
GS
= 0 V,
V
DS
= 100 V,
f = 1 MHz
pF
-
-
222
-
-
110
130
534
142
1.4
ns
nC
V
DS
= 0 V to 480 V, V
GS
= 0 V
C
o(tr)
Q
g
Q
gs
Q
gd
t
d(on)
t
r
t
d(off)
t
f
R
g
f = 1 MHz, open drain
V
DD
= 480 V, I
D
= 23.5 A,
V
GS
= 10 V, R
g
= 22
V
GS
= 10 V
I
D
= 23.5 A, V
DS
= 480 V
-
-
-
-
-
-
-
-
0.3
-
-
-
-
-
-
-
-
-
437
8.6
37
47
A
140
1.2
874
17.2
-
V
ns
μC
A
G
S
T
J
= 25 °C, I
S
= 23.5 A, V
GS
= 0 V
T
J
= 25 °C, I
F
= I
S
= 23.5 A,
di/dt = 100 A/μs, V
R
= 400 V
Notes
a. C
oss(er)
is a fixed capacitance that gives the same energy as C
oss
while V
DS
is rising from 0 % to 80 % V
DSS
b. C
oss(tr)
is a fixed capacitance that gives the same charging time as C
oss
while V
DS
is rising from 0 % to 80 % V
DSS
S18-0347-Rev. A, 26-Mar-18
Document Number: 92081
2
For technical questions, contact:
hvm@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
SiHG47N60AEL
www.vishay.com
TYPICAL CHARACTERISTICS
(25 °C, unless otherwise noted)
150
R
DS(on)
, Drain-to-Source On-Resistance
(Normalized)
15 V
14 V
13 V
12 V
11 V
10 V
9V
8V
7V
6V
BOTTOM 5 V
TOP
Vishay Siliconix
3.0
T
J
= 25 °C
2.5
I
D
= 23.5 A
I
D
, Drain-to-Source Current (A)
120
2.0
90
1.5
60
1.0
V
GS
= 10 V
0.5
30
0
0
10
15
V
DS
, Drain-to-Source Voltage (V)
5
20
0
-60 -40 -20
0 20 40 60 80 100 120 140 160
T
J
, Junction Temperature (°C)
Fig. 1 - Typical Output Characteristics
Fig. 4 - Normalized On-Resistance vs. Temperature
100
15 V
14 V
13 V
12 V
11 V
10 V
9V
8V
7V
6V
BOTTOM 5 V
TOP
T
J
= 150 °C
100 000
I
D
, Drain-to-Source Current (A)
10 000
C
iss
75
V
GS
= 0 V, f = 1 MHz
C
iss
= C
gs
+ C
gd
, C
ds
shorted
C
rss
= C
gd
C
oss
= C
ds
+ C
gd
C, Capacitance (pF)
1000
C
oss
100
C
rss
50
10
25
1
0
0
5
10
15
V
DS
, Drain-to-Source Voltage (V)
20
0.1
0
100
200
300
400
500
V
DS
, Drain-to-Source Voltage (V)
600
Fig. 2 - Typical Output Characteristics
Fig. 5 - Typical Capacitance vs. Drain-to-Source Voltage
150
T
J
= 25 °C
I
D
, Drain-to-Source Current (A)
30
5000
C
oss
, Output Capacitance (pF)
E
oss
, Output Capacitance
Stored
Energy (μJ)
25
100
20
C
oss
500
10
E
oss
15
T
J
= 150 °C
50
5
V
DS
= 23.2 V
0
0
5
10
15
V
GS
,
Gate-to-Source
Voltage (V)
20
50
0
100
200
300
400
500
600
V
DS
, Drain-to-Source Voltage (V)
0
Fig. 3 - Typical Transfer Characteristics
S18-0347-Rev. A, 26-Mar-18
Fig. 6 - C
oss
and E
oss
vs. V
DS
Document Number: 92081
3
For technical questions, contact:
hvm@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
SiHG47N60AEL
www.vishay.com
Vishay Siliconix
50
12
V
DS
= 480 V
V
DS
= 300 V
V
DS
= 120 V
I
D
, Drain Current (A)
V
GS
,
Gate-to-Source
Voltage (V)
40
9
30
6
20
3
10
0
0
30
60
90
Q
g
, Total
Gate
Charge (nC)
120
0
25
50
75
100
125
T
C
, Case Temperature (°C)
150
Fig. 7 - Typical Gate Charge vs. Gate-to-Source Voltage
Fig. 10 - Maximum Drain Current vs. Case Temperature
800
100
I
SD
, Reverse Drain Current (A)
V
DS
, Drain-to-Source Breakdown Voltage (V)
775
750
725
700
675
650
I
D
= 1 mA
625
-60 -40 -20
0 20 40 60 80 100 120 140 160
T
J
, Junction Temperature (°C)
10
T
J
= 150 °C
T
J
= 25 °C
1
0.1
0.2
0.4
0.6
0.8
1.0
1.2
V
SD
,
Source-Drain
Voltage (V)
V
GS
= 0 V
1.4
1.6
Fig. 8 - Typical Source-Drain Diode Forward Voltage
Operation in this area
limited by R
DS(on)
100
Fig. 11 - Temperature vs. Drain-to-Source Voltage
I
DM
limited
I
D
, Drain Current (A)
10
Limited by R
DS(on)
*
1
100 μs
1 ms
10 ms
0.1
T
C
= 25
°C
T
J
= 150 °C
single
pulse
1
BVDSS limited
0.01
10
100
1000
V
DS
, Drain-to-Source Voltage (V)
* V
GS
> minimum V
GS
at which R
DS(on)
is
specified
Fig. 9 - Maximum Safe Operating Area
S18-0347-Rev. A, 26-Mar-18
Document Number: 92081
4
For technical questions, contact:
hvm@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
SiHG47N60AEL
www.vishay.com
Vishay Siliconix
1
Duty cycle = 0.5
Normalized Effective Transient
Thermal Impedance
0.2
0.1
0.1
0.05
0.02
Single
pulse
0.01
0.0001
0.001
0.01
Pulse Time (s)
0.1
1
Fig. 12 - Normalized Thermal Transient Impedance, Junction-to-Case
V
DS
V
GS
R
g
R
D
t
p
D.U.T.
+
-
V
DD
V
DS
V
DS
V
DD
10 V
Pulse width ≤ 1 μs
Duty factor ≤ 0.1 %
I
AS
Fig. 13 - Switching Time Test Circuit
Fig. 16 - Unclamped Inductive Waveforms
V
DS
90 %
10 V
Q
gs
10 %
V
GS
t
d(on)
t
r
t
d(off)
t
f
Q
g
Q
gd
V
G
Charge
Fig. 14 - Switching Time Waveforms
L
V
DS
Vary t
p
to obtain
required I
AS
R
g
D.U.T.
I
AS
10 V
t
p
0.01
Ω
V
GS
3 mA
Fig. 17 - Basic Gate Charge Waveform
Current regulator
Same
type as D.U.T.
50 kΩ
+
- V
DD
12 V
0.2 μF
0.3 μF
+
D.U.T.
-
V
DS
Fig. 15 - Unclamped Inductive Test Circuit
I
G
I
D
Current
sampling
resistors
Fig. 18 - Gate Charge Test Circuit
S18-0347-Rev. A, 26-Mar-18
Document Number: 92081
5
For technical questions, contact:
hvm@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT
www.vishay.com/doc?91000
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A0 A1 A2 A3 A4 A5 A6 A7 A8 A9 AA AB AC AD AE AF AG AH AI AJ AK AL AM AN AO AP AQ AR AS AT AU AV AW AX AY AZ B0 B1 B2 B3 B4 B5 B6 B7 B8 B9 BA BB BC BD BE BF BG BH BI BJ BK BL BM BN BO BP BQ BR BS BT BU BV BW BX BY BZ C0 C1 C2 C3 C4 C5 C6 C7 C8 C9 CA CB CC CD CE CF CG CH CI CJ CK CL CM CN CO CP CQ CR CS CT CU CV CW CX CY CZ D0 D1 D2 D3 D4 D5 D6 D7 D8 D9 DA DB DC DD DE DF DG DH DI DJ DK DL DM DN DO DP DQ DR DS DT DU DV DW DX DZ
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