MSK5934ERHD [MSK]

Fixed Mixed LDO Regulator, 2 Output, 12V1, -12V2, BENT DOWN, SIP-5;
MSK5934ERHD
型号: MSK5934ERHD
厂家: M.S. KENNEDY CORPORATION    M.S. KENNEDY CORPORATION
描述:

Fixed Mixed LDO Regulator, 2 Output, 12V1, -12V2, BENT DOWN, SIP-5

文件: 总5页 (文件大小:192K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
MIL-PRF-3 8 5 3 4 CERTIFIED  
RAD HARD DUAL POS/NEG,  
3 AMP, LOW DROPOUT  
5930RH  
SERIES  
FIXED VOLTAGE REGULATORS  
M.S.KENNEDY CORP.  
4707 Dey Road Liverpool, N.Y. 13088  
(315) 701-6751  
FEATURES:  
Manufactured using  
Space Qualified RH1085 and RH1185 Die  
Total Dose Tested to 300 Krads(Si) (Method 1019.7 Condition A)  
Dual Low Dropout Voltage  
Internal Short Circuit Current Limit  
Output Voltages Are Internally Set To ± 1% Max  
Electrically Isolated Case  
Internal Thermal Overload Protection  
Many Output Voltage Combinations  
Alternate Package and Lead Form Configurations Available  
Alternate Output Voltages Available  
Contact MSK for MIL-PRF-38534 Qualification and Appendix G (Radiation) Status  
DESCRIPTION:  
The MSK 5930RH Series offers low dropout voltages on both the positive and negative regulators while offering radia-  
tion tolerance for space applications. This, combined with the low θJ C, allows increased output current while providing  
exceptional device efficiency. Because of the increased efficiency, a small hermetic 5 pin package can be used providing  
maximum performance while occupying minimal board space. Output voltages are internally trimmed to ± 1% maximum  
resulting in consistent and accurate operation. Additionally, both regulators offer internal short circuit current and thermal  
limiting, which allows circuit protection and eliminates the need for external components and excessive derating.  
EQUIVALENT SCHEMATIC  
TYPICAL APPLICATIONS  
PIN-OUT INFORMATION  
1
2
3
4
5
+ Vin  
+ Vout  
GND  
-Vin  
High Efficiency Linear Regulators  
Constant Voltage/Current Regulators  
System Power Supplies  
Switching Power Supply Post Regulators  
-Vout  
Rev. C 12/08  
1
9
ABSOLUTE MAXIMUM RATINGS  
± 30V  
Internally Limited  
± 3A  
± VIN  
TST  
TLD  
Input Voltage (WRT VOUT)  
Power Dissipation  
Output Current  
-65° C to + 150° C  
300° C  
Storage Temperature Range  
Lead Temperature Range  
(10 Seconds)  
Case Operating Temperature  
MSK 5930-5939RH  
MSK 5930K/H/E RH-  
5939K/H/E RH  
PD  
IOUT  
TJ  
+ 150° C  
J unction Temperature  
TC  
-40° C to + 85° C  
-55° C to + 125° C  
ELECTRICAL SPECIFICATIONS  
MSK 5930K/H/E RH  
SERIES  
MSK 5930RH SERIES  
Group A  
3
11  
Parameter  
Test Conditions  
Units  
Max.  
Subgroup  
Typ.  
Max.  
Typ.  
Min.  
Min.  
POSITIVE OUTPUT REGULATORS  
Output Voltage Tolerance  
%
%
2 .0  
-
1
0 .1  
0 .1  
1 .5  
1 .3  
0 .2  
0 .3  
0 .1  
0 .2  
1 0  
1 .0  
2 .0  
3 .0  
1 .5  
1
0 .1  
-
-
-
IOUT= 0A; VIN= VOUT+ 3V  
2 ,3  
-
-
%
3 .0  
1 .6  
2
1
1 .5  
1 .3  
0 .2  
-
Post Radiation  
0 AIOUT3A; VOUT= 50mV  
-
-
2
V
Dropout Voltage  
1
-
-
%
1 0 0 mAIOUT3 A  
VIN= VOUT+ 3 V  
1
-
-
Load Regulation  
%
-
2 ,3  
2
-
-
%
IOUT= 0A  
0 .5  
0 .7 5  
1 5  
-
0 .6  
-
1
0 .1  
-
-
-
-
-
Line Regulation  
%
(VOUT+ 3 V)VIN(VOUT+ 1 5 V)  
VIN= VOUT+ 3V; IOUT= 0A  
VIN= VOUT+ 5 V  
2 ,3  
m A  
A
Quiescent Current  
1 5  
-
1 ,2 ,3  
1 0  
4
-
-
2
9
Short Circuit Current  
Ripple Rejection  
-
-
-
4
3 .2  
6 0  
-
3 .0  
6 0  
-
dB  
° C/W  
IOUT= 3A; COUT= 25µF; f= 120Hz  
J UNCTION TO CASE @ 125° C  
8
-
-
2
7 5  
7 5  
2 .9  
Thermal Resistance  
3 .2  
3 .2  
2
2 .9  
NEGATIVE OUTPUT REGULATORS  
%
%
2 .0  
-
1
0 .1  
0 .1  
1 .0  
0 .8  
0 .2  
0 .3  
0 .1  
0 .2  
4 .5  
3 .5  
7 5  
1 .0  
2 .5  
2 .0  
1 .2  
1
0 .1  
-
-
-
Output Voltage Tolerance  
IOUT= 0A; VIN= VOUT+ 3V  
2 ,3  
-
-
%
2 .0  
1 .3  
2
Post Radiation  
0 AIOUT3A; VOUT= 50mV  
VIN= VOUT+ 3 V  
1
-
1 .0  
0 .8  
0 .2  
-
-
2
V
Dropout Voltage  
1
-
-
%
1
-
-
Load Regulation  
%
1 0 0 mAIOUT3 A  
2
-
2 ,3  
-
-
%
IOUT= 0A  
0 .5  
0 .7 5  
1 0  
-
0 .6  
-
1
0 .1  
-
-
-
-
-
Line Regulation  
%
(VOUT+ 3 V)VIN(VOUT+ 1 5 V)  
VIN= VOUT+ 3V; IOUT= 0A  
VIN= VOUT+ 5 V  
2 ,3  
m A  
A
Quiescent Current  
1 0  
-
1 ,2 ,3  
4 .5  
3 .5  
7 5  
3 .3  
-
-
2
Short Circuit Current  
-
-
-
3 .0  
6 0  
-
3 .0  
6 0  
-
dB  
° C/W  
Ripple Rejection  
2
IOUT= 3A; COUT= 25µF; f= 120Hz  
J UNCTION TO CASE @ 125° C  
-
-
2
Thermal Resistance  
3 .6  
3 .6  
3 .3  
7
PART  
OUTPUT VOLTAGES  
NUMBER  
POSITIVE  
+ 3 .3 V  
NEGATIVE  
NOTES:  
MSK5 9 3 0 RH  
MSK5 9 3 1 RH  
MSK5 9 3 2 RH  
MSK5 9 3 3 RH  
MSK5 9 3 4 RH  
MSK5 9 3 5 RH  
MSK5 9 3 6 RH  
MSK5 9 3 7 RH  
MSK5 9 3 8 RH  
MSK5 9 3 9 RH  
-5 .2 V  
Outputs are decoupled to ground using 33µF minimum low ESR capacitors unless otherwise specified.  
Guaranteed by design but not tested. Typical parameters are representative of actual device  
performance but are for reference only.  
1
2
+ 5 .0 V  
+ 5 .0 V  
-5 .0 V  
-5 .2 V  
All output parameters are tested using a low duty cycle pulse to maintain TJ = TC.  
Industrial grade and "E" suffix devices shall be tested to subgroup 1 unless otherwise specified.  
Military grade devices ("H" and "K" suffix) shall be 100% tested to subgroups 1,2 and 3.  
Subgroup 1  
Subgroup 2  
Subgroup 3  
3
4
5
6
+ 1 2 .0 V  
+ 1 2 .0 V  
+ 1 5 .0 V  
+ 1 5 .0 V  
+ 5 .0 V  
-5 .0 V  
TA= TC= + 2 C  
TA= TC= + 125° C  
TA= TC= -5 C  
-1 2 .0 V  
-1 5 .0 V  
-5 .0 V  
Please consult the factory if alternate output voltages are required.  
7
8
9
Input voltage (VIN= VOUT + a specified voltage) is implied to be more negative than VOUT.  
For compliance with Mil-STD 833 revision C current density specifications, the MSK 5930RH series is  
derated to 2 Amps for the positive regulator.  
-1 2 .0 V  
-1 5 .0 V  
-1 0 .0 V  
Continuous operation at or above absolute maximum ratings may adversely effect the device  
performance and/or life cycle.  
Pre and post irradiation limits, at 25° C, up to 100Krad TID, are identical unless otherwise specified.  
10  
11  
+ 5 .0 V  
+ 1 0 .0 V  
Rev. C 12/08  
2
APPLICATION NOTES  
BYPASS CAPACITORS  
OVERLOAD SHUTDOWN  
For most applications a 33uF minimum, low ESR (0.5-2 ohm)  
tantalum capacitor should be attached as close to the regulator's  
output as possible. This will effectively lower the regulator' s  
output impedance, increase transient response and eliminate any  
oscillations that are normally associated with low dropout regu-  
lators. Additional bypass capacitors can be used at the remote  
load locations to further improve regulation. These can be either  
of the tantalum or the electrolytic variety. Unless the regulator  
is located very close to the power supply filter capacitor(s), a  
4.7uF minimum low ESR (0.5-2 ohm) tantalum capacitor should  
also be added to the regulator' s input. An electrolytic may also  
be substituted if desired. When substituting electrolytic in place  
of tantalum capacitors, a good rule of thumb to follow is to  
increase the size of the electrolytic by a factor of 10 over the  
tantalum value.  
The regulators feature both power and thermal overload pro-  
tection. When the maximum power dissipation is not exceeded,  
the regulators will current limit slightly above their 3 amp rating.  
As the Vin-Vout voltage increases, however, shutdown occurs in  
relation to the maximum power dissipation curve. If the device  
heats enough to exceed its rated die junction temperature due to  
excessive ambient temperature, improper heat sinking etc., the  
regulators also shutdown until an appropriate junction tempera-  
ture is maintained. It should also be noted that in the case of an  
extreme overload, such as a sustained direct short, the device  
may not be able to recover. In these instances, the device must  
be shut off and power reapplied to eliminate the shutdown con-  
dition.  
HEAT SINKING  
To determine if a heat sink is required for your application  
and if so, what type, refer to the thermal model and govern-  
ing equation below.  
LOAD REGULATION  
For best results the ground pin should be connected directly  
to the load as shown below, this effectively reduces the ground  
loop effect and eliminates excessive voltage drop in the sense  
leg. It is also important to keep the output connection between  
the regulator and the load as short as possible since this directly  
affects the load regulation. For example, if 20 gauge wire were  
used which has a resistance of about .008 ohms per foot, this  
would result in a drop of 8mV/ft at 1Amp of load current. It is  
also important to follow the capacitor selection guidelines to  
achieve best performance. Refer to Figure 1 for connection dia-  
gram.  
Governing Equation: Tj = Pd x (Rθjc + Rθcs + Rθsa) + Ta  
WHERE  
Tj = J unction Temperature  
Pd = Total Power Dissipation  
Rθjc = J unction to Case Thermal Resistance  
Rθcs = Case to Heat Sink Thermal Resistance  
Rθsa = Heat Sink to Ambient Thermal Resistance  
Tc = Case Temperature  
Ta = Ambient Temperature  
Avoiding Ground Loops  
Ts = Heat Sink Temperature  
EXAMPLE:  
This example demonstrates an analysis where each regulator  
is at one-half of its maximum rated power dissipation, which  
occurs when the output currents are at 1.5 amps each.  
Conditions for MSK 5932RH:  
Vin = ± 7.0V; Iout = ± 1.5A  
1.) Assume 45° heat spreading model.  
2.) Find negative regulator power dissipation:  
FIGURE 1  
Pd = (Vin - Vout)(Iout)  
Pd = (7-5)(1.5)  
= 3.0W  
TOTAL DOSE RADIATION TEST  
PERFORMANCE  
3.) For conservative design, set Tj = + 125° C Max.  
4.) For this example, worst case Ta = + 90° C.  
5.) Rθjc = 3.6° C/W from the Electrical Specification Table.  
6.) Rθcs= 0.15° C/W for most thermal greases.  
7.) Rearrange governing equation to solve for Rθsa:  
Radiation performance curves for TID testing have been  
generated for all radiation testing performed by MS Kennedy.  
These curves show performance trends throughout the TID  
test process and can be located in the MSK 5930RH radia-  
tion test report. The complete radiation test report will be  
available in the RAD HARD PRODUCTS section on the MSK  
website.  
Rθsa =  
((Tj - Ta)/Pd) - (Rθjc) - (Rθcs)  
(125° C - 90° C)/3.0W - 3.6° C/W - 0.15° C/W  
7.9° C/W  
=
=
The same exercise must be performed for the positive regulator.  
In this case the result is 7.9° C/W. Therefore, a heat sink with a  
thermal resistance of no more than 7.9° C/W must be used in  
this application to maintain both regulator circuit junction tem-  
peratures under 125° C.  
http://www.mskennedy.com/store.asp?pid=9951&catid=19680  
Rev. C 12/08  
3
TYPICAL PERFORMANCE CURVES  
Rev.B 12/08  
4
MECHANICAL SPECIFICATIONS  
WEIGHT= 7.9 GRAMS TYPICAL  
NOTE: ESD Triangle indicates Pin 1.  
ALL DIMENSIONS ARE ± 0.010 INCHES UNLESS OTHERWISE LABELED  
ORDERING INFORMATION  
MSK5930 H RH U  
LEAD CONFIGURATIONS  
S= STRAIGHT; U= BENT UP; D= BENT DOWN  
RADIATION HARDENED  
SCREENING  
BLANK= INDUSTRIAL; E= EXTENDED RELIABILITY  
H= MIL-PRF-38534 CLASS H; K= MIL-PRF-38534 CLASS K  
OUTPUT VOLTAGE (5930-5939)  
SEE PAGE 2 FOR PART NUMBERS & VOLTAGES  
GENERAL PART NUMBER  
The above example is a + 3.3V, -5.2V military regulator with leads bent up.  
M.S. Kennedy Corp.  
4707 Dey Road, Liverpool, New York 13088  
Phone (315) 701-6751  
FAX (315) 701-6752  
www.mskennedy.com  
The information contained herein is believed to be accurate at the time of printing. MSK reserves the right to make  
changes to its products or specifications without notice, however, and assumes no liability for the use of its products.  
Please visit our website for the most recent revision of this datasheet.  
Contact MSK for MIL-PRF-38534 qualification status.  
5
Rev. C 12/08  

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