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MZ4617RA1

型号:

MZ4617RA1

品牌:

TAK_CHEONG[ Tak Cheong Electronics (Holdings) Co.,Ltd ]

页数:

9 页

PDF大小:

462 K

®
Licensed by ON Semiconductor,  
A trademark of semiconductor  
Components Industries, LLC for  
Zener Technology and Products.  
TAK CHEONG  
500 mW DO-35 Hermetically  
Sealed Glass Zener Voltage  
Regulators  
Maximum Ratings (Note 1)  
Rating  
Symbol  
Value  
Units  
Maximum Steady State Power Dissipation  
mW  
PD  
500  
@TL75, Lead Length = 3/8”  
4.0  
mW/℃  
Derate Above 75℃  
Operating and Storage  
Temperature Range  
AXIAL LEAD  
DO35  
TJ, Tstg  
-65 to +200  
°C  
Note 1: Some part number series have lower JEDEC registered ratings.  
Specification Features:  
ƒ
ƒ
ƒ
ƒ
ƒ
Zener Voltage Range = 1.8V to 10V  
ESD Rating of Clas 3 (>6 KV) per Human Body Model  
DO-35 Package (DO-204AH)  
Double Slug Type Construction  
Metallurgical Bonded Construction  
Cathode  
Anode  
Specification Features:  
Case  
Finish  
: Double slug type, hermetically sealed glass  
: All external surfaces are corrosion resistant and leads are readily solderable  
L
Polarity : Cathode indicated by polarity band  
Mounting: Any  
MZ  
4x  
xx  
Maximum Lead Temperature for Soldering Purposes  
230, 1/16” from the case for 10 seconds  
L
= Logo  
MZ4xxx  
= Device Code  
Ordering Information  
Device  
MZ4xxx  
Package  
Axial Lead  
Axial Lead  
Axial Lead  
Lead Form  
Lead Form  
Axial Lead  
Axial Lead  
Axial Lead  
Axial Lead  
Quantity  
3000 Units / Box  
MZ4xxxRL  
5000 Units / Tape & Reel  
5000 Units / Tape & Reel  
3000 Units / Radial Tape & Reel  
3000 Units / Radial Tape & Reel  
5000 Units / Tape & Ammo  
5000 Units / Tape & Ammo  
3000 Units / Radial Tape & Ammo  
3000 Units / Radial Tape & Ammo  
MZ4xxxRL2*  
MZ4xxxRR1 !  
MZ4xxxRR2 i  
MZ4xxxTA  
MZ4xxxTA2*  
MZ4xxxRA1 !  
MZ4xxxRA2 i  
* The “2” suffix refer to 26mm tape spacing.  
!
i
“1”: Polarity band up with cathode lead off first.  
“2”: Polarity band down with cathode lead off first.  
Devices listed in bold italic are Tak Cheong Preferred  
devices. Preferred devices are recommended choices  
for future use and best overall value.  
December 2005 / B  
http://takcheong.com  
1
MZ4614 through MZ4104 Series  
Designed for 250mW applications requiring low leakage and  
low leakage and low impedance. Zener impedance and zener  
voltage specified for low-level operation at IZT = 250µA.  
ELECTRICAL CHARACTERISTICS (TA  
= 25ºC unless  
otherwise noted. VF = 1.1 V Max @ IF = 200mA for all types)  
Symbol  
Parameter  
VZ  
IZT  
ZZT  
IZM  
IR  
Reverse Zener Voltage @ IZT  
Reverse Zener Current  
Maximum Zener Impedance @ IZT  
Maximum DC Zener Current  
Reverse Leakage Current @ VR  
Reverse Voltage  
VR  
IF  
Forward Current  
VF  
Forward Voltage @ IF  
ELECTRICAL CHARACTERISTICS (TA = 25ºC unless otherwise noted, VF = 1.1 V Max @ IF = 200mA for all types)  
(Note 3 & 4.)  
(Note 5.)  
(Note 6.)  
Zener Impedance  
Zener Voltage  
VZ (Volts)  
Leakage Current  
IZM  
IR @ VR  
ZZT @ IZT  
Device  
Device  
Min  
Nom  
Max  
(mA)  
(Volts)  
Marking  
(µA Max)  
(Max)  
(Note 2.)  
MZ4614  
MZ4615  
MZ4616  
MZ4617  
MZ4618  
MZ4619  
MZ4620  
MZ4621  
MZ4622  
MZ4623  
MZ4624  
MZ4625  
MZ4626  
MZ4627  
MZ4099  
MZ4614  
MZ4615  
MZ4616  
MZ4617  
MZ4618  
MZ4619  
MZ4620  
MZ4621  
MZ4622  
MZ4623  
MZ4624  
MZ4625  
MZ4626  
MZ4627  
MZ4099  
1.71  
1.9  
1.8  
2
1.89  
2.1  
120  
110  
100  
95  
90  
85  
80  
75  
70  
65  
60  
55  
50  
45  
35  
7.5  
5
1
1
1200  
1250  
1300  
1400  
1500  
1600  
1650  
1700  
1650  
1600  
1550  
1500  
1400  
1200  
200  
2.09  
2.2  
2.4  
2.7  
3
2.31  
4
1
2.28  
2.52  
2
1
2.565  
2.85  
2.835  
3.15  
1
1
0.8  
7.5  
7.5  
5
1
3.135  
3.42  
3.3  
3.6  
3.9  
4.3  
4.7  
5.1  
5.6  
6.2  
6.8  
3.465  
3.78  
1.5  
2
3.705  
4.085  
4.465  
4.845  
5.32  
4.095  
4.515  
4.935  
5.355  
5.88  
2
4
2
10  
10  
10  
10  
10  
3
3
4
5.89  
6.51  
5
6.46  
7.14  
5.2  
2. TOLERANCE AND TYPE NUMBER DESIGNATION (VZ)  
The type numbers listed have a standard tolerance on the nominal zener voltage of ±5%.  
3. ZENER VOLTAGE (VZ) MEASUREMENT  
Nominal zener voltage is measured with the device junction in the thermal equilibrium at the lead temperature (TL) at 30°C  
±1°C and 3/8” lead length.  
4. MAXIMUM ZENER CURRENT RATINGS (IZM  
)
This data was calculated using nominal voltages. The maximum current handling capability on a worst case basis is limited  
by the actual zener voltage at the operation point and the power derating curve.  
5. REVERSE LEAKAGE CURRENT (IR)  
Reverse leakage current are guaranteed and measured at VR shown on the table.  
6. ZENER IMPEDANCE (ZZT) DERIVATION  
The zener impedance is derived from the 60 cycle ac voltage, which results when an AC current having an rms value to 10%  
of the DC zener current (IZT) is superimposed on IZT.  
http://www.takcheong.com  
2
MZ4614 through MZ4104 Series  
ELECTRICAL CHARACTERISTICS (TA = 25ºC unless otherwise noted, VF = 1.1 V Max @ IF = 200mA for all types)  
(Note 8 & 9.)  
(Note 10.)  
(Note 11.)  
Zener Impedance  
Zener Voltage  
VZ (Volts)  
Leakage Current  
@ IZM  
IR @ VR  
ZZT @ IZT  
Device  
Device  
Min  
Nom  
Max  
(mA)  
(Volts)  
Marking  
(µA Max)  
(Max)  
(Note 7.)  
MZ4100  
MZ4101  
MZ4102  
MZ4103  
MZ4104  
MZ4100  
MZ4101  
MZ4102  
MZ4103  
MZ4104  
7.125  
7.79  
7.5  
8.2  
8.7  
9.1  
10  
7.875  
8.61  
31.8  
29  
10  
1
5.7  
6.3  
6.7  
7
200  
200  
200  
200  
200  
8.265  
8.645  
9.5  
9.135  
9.555  
10.5  
27.4  
26.2  
24.8  
1
1
1
7.6  
7. TOLERANCE AND TYPE NUMBER DESIGNATION (VZ)  
The type numbers listed have a standard tolerance on the nominal zener voltage of ±5%.  
8. ZENER VOLTAGE (VZ) MEASUREMENT  
Nominal zener voltage is measured with the device junction in the thermal equilibrium at the lead temperature (TL) at 30°C  
±1°C and 3/8” lead length.  
9. MAXIMUM ZENER CURRENT RATINGS (IZM  
)
This data was calculated using nominal voltages. The maximum current handling capability on a worst case basis is limited  
by the actual zener voltage at the operation point and the power derating curve.  
10. REVERSE LEAKAGE CURRENT (IR)  
Reverse leakage current are guaranteed and measured at VR shown on the table.  
11. ZENER IMPEDANCE (ZZT) DERIVATION  
The zener impedance is derived from the 60 cycle ac voltage, which results when an AC current having an rms value to  
10% of the DC zener current (IZT) is superimposed on IZT.  
http://www.takcheong.com  
3
MZ4614 through MZ4104 Series  
0.7  
0.6  
0.5  
0.4  
0.3  
0.2  
0.1  
0
HEAT  
SINKS  
3/8"  
3/8"  
0
20  
40  
60  
80  
100  
120  
140  
160  
180  
200  
T
, LEAD TEMPERATURE (°C)  
L
Figure 1. Steady State Power Derating  
http://www.takcheong.com  
4
MZ4614 through MZ4104 Series  
APPLICATION NOTE - ZENER VOLTAGE  
500  
400  
Since the actual voltage available from a given zener  
diode is temperature dependent, it is necessary to determine  
junction temperature under any set of operating conditions  
in order to calculate its value. The following procedure is  
recommended:  
L
L
300  
200  
100  
Lead Temperature, TL, should be determined from:  
2.4-60 V  
TL = θLAPD + TA.  
θLA is the lead-to-ambient thermal resistance (°C/W) and PD  
is the power dissipation. The value for θLA will vary and  
depends on the device mounting method. θLA is generally 30  
to 40°C/W for the various clips and tie points in common use  
and for printed circuit board wiring.  
62-200 V  
0
0
0.2  
0.4  
0.6  
0.8  
1
The temperature of the lead can also be measured using a  
thermocouple placed on the lead as close as possible to the  
tie point. The thermal mass connected to the tie point is  
normally large enough so that it will not significantly  
respond to heat surges generated in the diode as a result of  
pulsed operation once steady-state conditions are achieved.  
Using the measured value of TL, the junction temperature  
may be determined by:  
L , LEAD LENGTH TO HEAT SINK (INCH)  
Figure 2. Typical Thermal Resistance  
1000  
7000  
5000  
TYPICAL LEAKAGE CURRENT  
AT 80% OF NOMINAL  
2000  
1000  
BREAKDOWN VOLTAGE  
TJ = TL + TJL  
.
700  
500  
TJL is the increase in junction temperature above the lead  
temperature and may be found from Figure 2 for dc power:  
200  
100  
70  
TJL = θJLPD.  
50  
For worst-case design, using expected limits of IZ, limits  
of PD and the extremes of TJ(TJ) may be estimated.  
Changes in voltage, VZ, can then be found from:  
20  
10  
V = θVZTJ.  
7
5
θVZ, the zener voltage temperature coefficient, is found  
from Figures 4 and 5.  
2
1
0.7  
0.5  
Under high power-pulse operation, the zener voltage will  
vary with time and may also be affected significantly by the  
zener resistance. For best regulation, keep current  
excursions as low as possible.  
+12C  
0.2  
Surge limitations are given in Figure 7. They are lower  
than would be expected by considering only junction  
temperature, as current crowding effects cause temperatures  
to be extremely high in small spots, resulting in device  
degradation should the limits of Figure 7 be exceeded.  
0.1  
0.07  
0.05  
0.02  
0.01  
0.007  
0.005  
+2C  
0.002  
0.001  
14  
3
4
5
6
7
8
9
10  
11  
12  
13  
15  
V
, NOMINAL ZENER VOLTAGE (VOLTS)  
Z
Figure 3. Typical Leakage Current  
http://www.takcheong.com  
5
MZ4614 through MZ4104 Series  
TEMPERATURE COEFFICIENTS  
(-55°C to +150°C temperature range; 90% of the units are in the ranges indicated.)  
+12  
+10  
100  
70  
50  
+8  
+6  
+4  
+2  
30  
20  
VZ @ IZ (NOTE 2)  
RANGE  
10  
7
5
RANGE  
VZ @ IZT  
0
-2  
-4  
3
2
(NOTE 2)  
1
2
7
10  
4
5
6
8
9
11  
10  
20  
30  
V , ZENER VOLTAGE (VOLTS)  
Z
50  
70  
100  
3
12  
V
, ZENER VOLTAGE (VOLTS)  
Z
Figure 4a. Range for Units to 12 Volts  
Figure 4b. Range for Units 12 to 100 Volts  
200  
180  
160  
+6  
+4  
VZ @ IZ  
T = 25 °C  
A
+2  
0
20mA  
140  
0.01mA  
1mA  
VZ @ IZT  
120  
100  
-2  
-4  
(NOTE 2)  
NOTE: BELOW 3 VOLTS AND ABOVE 8 VOL TS  
NOTE: CHANGES IN ZENER CURRENT DO NOT  
NOTE: AFFECT TEMPERATURE COEFFICIENTS  
6
8
5
120  
130  
140  
150  
160  
170  
180  
190  
200  
3
4
7
V
, ZENER VOLTAGE (VOLTS)  
V
, ZENER VOL TAGE (VOLTS)  
Z
Z
Figure 4c. Range for Units 120 to 200 Volts  
Figure 5. Effect of Zener Current  
1000  
100  
70  
TA = 25°C  
500  
T= 25 °C  
50  
0V BIAS  
0 BIAS  
200  
100  
50  
30  
20  
1V BIAS  
1 VOLT BIAS  
10  
20  
7
5
50% OF V BIAS  
10  
5
50% OF  
V
BIAS  
Z
3
2
2
1
1
1
2
5
10  
20  
50  
100  
120  
140  
160  
180  
190  
200  
220  
V
, ZENER VOLTAGE (VOLTS)  
V , ZENER VOLTAGE (VOLTS)  
Z
Z
Figure 6a. Typical Capacitance 2.4-100 Volts  
Figure 6b. Typical Capacitance 120-200 Volts  
http://www.takcheong.com  
6
MZ4614 through MZ4104 Series  
100  
RECT ANGULAR  
WAVEFORM  
70  
50  
11V-91V NONREPETITIVE  
1.8V-10V NONREPETITIVE  
T
= 25°C PRIOR TO  
J
30  
20  
5% DUTY CYCLE  
INITIAL PULSE  
10  
10% DUTY CYCLE  
20% DUTY CYCLE  
7
5
3
2
1
0.01  
0.02  
0.05  
0.1  
0.2  
0.5  
1
2
5
10  
20  
50  
100  
200  
500  
1000  
PW, PULSE WIDTH (ms)  
Figure 7a. Maximum Surge Power 1.8-91 Volts  
1000  
500  
1000  
700  
500  
T
= 25°C  
(rms) = 0.1 Iz(dc)  
J
VZ = 2.7V  
i
Z
RECT ANGULAR  
WAVEFORM, TJ = 25°C  
f = 60 Hz  
300  
200  
200  
47V  
27V  
100  
100  
70  
50  
100-200 VOLTS NONREPETITIVE  
50  
20  
30  
20  
6.2V  
10  
7
10  
5
5
3
2
2
1
1
0.01  
0.1  
1
10  
100  
1000  
0.1  
0.2  
0.5  
1
2
5
10  
20  
50  
100  
PW, PULSE WIDTH (ms)  
I
, ZENER CURRENT (mA)  
Z
Figure 7b. Maximum Surge Power DO-35  
100-200Volts  
Figure 8. Effect of Zener Current on  
Zener Impedance  
1000  
700  
500  
1000  
TJ = 25°C  
iZ (rms) = 0.1 IZ (dc)  
MAXIMUM  
MINIMUM  
500  
200  
f = 60Hz  
IZ = 1mA  
5mA  
200  
100  
70  
50  
100  
50  
20mA  
20  
20  
10  
5
75°C  
10  
7
5
25°C  
0°C  
150°C  
2
1
2
1
1
2
3
5
7
10  
20  
30  
50 70 100  
0.4  
0.5  
0.6  
0.7  
V , FOR WARD VOLTAGE (VOLTS)  
F
0.8  
0.9  
1
1.1  
V
, ZENER VOLTAGE (VOLTS)  
Z
Figure 9. Effect of Zener Voltage on Zener Impedance  
Figure 10. Typical Forward Characteristics  
http://www.takcheong.com  
7
MZ4614 through MZ4104 Series  
20  
10  
T
= 25°C  
A
1
0.1  
0.01  
6
1
2
5
7
8
9
10  
11  
12  
13  
14  
15  
16  
3
4
V
, ZENER VOLTAGE (VOLTS)  
Z
Figure 1 1. Zener Voltage versus Zener Current - V = 1 thru 16 Volts  
Z
10  
T
= 25°C  
A
1
0.1  
0.01  
15  
16  
17  
18  
19  
20  
21  
22  
23  
24  
25  
26  
27  
28  
29  
30  
V
, ZENER VOL TAGE (VOL TS)  
Z
Figure 12. Zener Voltage versus Zener Current - V = 15 thru 30 Volts  
Z
http://www.takcheong.com  
8
MZ4614 through MZ4104 Series  
10  
T
= 25°  
A
1
0.1  
0.01  
30  
35  
40  
45  
50  
55  
60  
65  
70  
75  
80  
85  
90  
95  
100  
105  
V
, ZENER VOLTAGE (VOLTS)  
Z
Figure 13. Zener Voltage versus Zener Current - V = 30 thru 105 Volts  
Z
10  
1
0.1  
0.01  
110  
120  
130  
140  
150  
160  
170  
180  
190  
200  
210  
220  
230  
240  
250  
260  
V
, ZENER VOLTAGE (VOLTS)  
Z
Figure 14. Zener Voltage versus Zener Current - V = 110 thru 220 Volts  
Z
http://www.takcheong.com  
9
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