NEA0161501S0C [MURATA]

Non-Isolated 16A SIP/SMT DC/DC Converters; 非隔离16A的SIP / SMT DC / DC转换器
NEA0161501S0C
型号: NEA0161501S0C
厂家: muRata    muRata
描述:

Non-Isolated 16A SIP/SMT DC/DC Converters
非隔离16A的SIP / SMT DC / DC转换器

转换器 电源电路
文件: 总25页 (文件大小:1126K)
中文:  中文翻译
下载:  下载PDF数据表文档文件
Volant NEA016 Series  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Features:  
9 Small size, minimal footprint – SMT/SIP package  
9 16A Output Current (all voltages)  
9 High Efficiency: up to 94%  
9 High reliability  
9 RoHS Compliant  
9 Cost efficient open frame design  
9 Output voltage programmable by an external resistor.  
9 Monotonic Start with Pre-Bias.  
9 +ve Enable Logic and –ve Enable Logic models available  
Output  
Input  
Vin  
Nom.  
(V)  
Efficiency  
Full Load  
PARD  
(mVp-p)  
Regulation  
Max  
Range  
(V)  
Iin  
Typ  
(A)  
Vout  
(V)  
Iout  
(A)  
Typ. Max.  
Line  
Load  
Typ.  
0.75  
1.2  
1.5  
1.8  
2.0  
2.5  
3.3  
5.0  
16  
16  
16  
16  
16  
16  
16  
16  
50  
50  
50  
50  
50  
50  
50  
50  
75  
75  
75  
75  
75  
75  
75  
75  
+/-0.2%  
+/-0.2%  
+/-0.2%  
+/-0.2%  
+/-0.2%  
+/-0.2%  
+/-0.2%  
+/-0.2%  
+/-0.5%  
12  
12  
12  
12  
12  
12  
12  
12  
8.3 – 14  
8.3 – 14  
8.3 – 14  
8.3 – 14  
8.3 – 14  
8.3 – 14  
8.3 – 14  
8.3 – 14  
1.299  
1.928  
2.326  
2.727  
2.996  
3.704  
4.783  
7.092  
77%  
+/-0.5%  
+/-0.5%  
+/-0.5%  
+/-0.5%  
+/-0.5%  
+/-0.5%  
+/-0.5%  
83%  
86%  
88%  
89%  
90%  
92%  
94%  
Technical enquiries email: sales@murata-ps.com, tel: +508 339 3000  
1
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Input Characteristics  
Input Voltage Operating Range  
Input Reflected Ripple Current  
Inrush Current Transient  
Input Filter Type (external)  
Input Turn ON Threshold  
Input Turn OFF Threshold  
ON Control  
Notes & Conditions  
Min  
8.3  
Typ.  
12  
200  
Max  
14  
Units  
Vdc  
mA p-p  
A2s  
0.2  
100  
8.5  
8.0  
μF  
V
V
Open Circuit or =Vin  
< 0.4Vdc  
OFF Control  
Output Characteristics  
Vout Accuracy  
Output Loading  
Notes & Conditions  
100% load  
Min  
-1.5  
0
Typ.  
Max  
+1.5  
16  
Units  
%
A
Output Ripple & Noise  
@ 20Mhz Bandwidth.  
Maximum Capacitive Load  
Vout Trim Range (Nom)  
Total Accuracy  
75  
MVp-p  
Low ESR  
8000  
5.0  
μF  
V
0.75  
Over line/load temperature  
<2%  
23  
Current Limit  
A
%
%
%
Output Line Regulation  
Output Load Regulation  
Turn-on Overshoot  
-0.2  
-0.5  
+0.2  
+0.5  
1
SC Protection Technique  
Pre-bias Start-up at output  
Hiccup with auto recovery  
Unit starts monotonically with pre-  
bias  
Dynamic Characteristics  
Load Transient  
Notes & Conditions  
50% step, 0.1A/μs  
Settling Time  
Min  
Typ.  
Max  
100  
200  
Units  
mV  
μs  
KHz  
ms  
Frequency  
Rise Time  
Start-Up Time  
300  
3.5  
7
10% Vo to 90% Vo  
Vin to Vout and On/Off to Vout  
Vout rise to monotonic  
ms  
General Specifications  
MTBF  
Notes & Conditions  
Min Typ.  
1.0  
Max  
Units  
x106 Hrs  
x106 Hrs  
°C  
Calculated (MIL-HDBK-217F)  
Calculated (Bellcore TR-332, Issue 6)  
Hotspot  
4.78  
110  
Thermal Protection  
Operating Temperature  
Operating Ambient Temperature  
SIP Dimensions  
Without derating 300LFM  
See Power derating curve  
2”Lx0.327”Wx0.512”H  
(50.8x8.3x13.0mm)  
-40  
-40  
50  
85  
°C  
°C  
SMT Dimensions  
1.30”Lx0.53”Wx0.366”H  
(33x13.46x9.3mm)  
SIP Pin Dimensions  
SMT Block Dimensions  
0.025” (0.64mm) SQUARE  
0.063” x0.065” x 0.112”  
SQUARE  
0.64  
10  
mm  
g
Pin and Block Material  
Weight  
Matte Sn Finish on component Leads  
Flammability Rating  
UL94V-0  
2
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Standards Compliance  
CSA C22.2, No.60950/UL 60950, Third Edition (2000), File UL E165113  
Thermal Considerations  
The power module operates in a variety of thermal environments; however, sufficient cooling should  
be provided to help ensure reliable operation of the unit.  
The thermal data presented is based on measurements taken at various airflows. Note that airflow is  
parallel to the long axis of the module as shown in Figure 1 and derating applies accordingly.  
Figure 1. Thermal Tests Set-Up.  
The temperature at either location should not exceed 110°C. The output power of the module should  
not exceed the rated power for the module(Vo,set X Io,max).  
Convection Requirements for Cooling  
To predict the approximate cooling needed for the module, refer to the Power Derating Curves in  
Figures 2-17 .  
These derating curve are approximations of the ambient temperature and airflow required to keep the  
power module temperature below it's maximum rating. Once the module is assembled in the actual  
system, the module's temperature should be verified.  
3
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
TYPICAL DERATING CURVES SIP/SMT VERSION  
NEA0161501S Vo=0.75V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig. 2. SMT Power Derating vs Output Current for 12Vin 0.75V Out.  
NEA0161501B Vo=0.75V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig. 3. SIP Power Derating vs Output Current for 12Vin 0.75V Out.  
4
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=1.2V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 4. SMT Power Derating vs Output Current for 12Vin 1.2V Out.  
NEA0161501B Vo=1.2V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 5. SIP Power Derating vs Output Current for 12Vin 1.2V Out.  
5
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=1.5V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 6. SMT Power Derating vs Output Current for 12Vin 1.5V Out.  
NEA0161501B Vo=1.5V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 7. SIP Power Derating vs Output Current for 12Vin 1.5V Out.  
6
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=1.8V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 8. SMT Power Derating vs Output Current for 12Vin 1.8V Out.  
NEA0161501B Vo=1.8V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 9. SIP Power Derating vs Output Current for 12Vin 1.8V Out.  
7
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=2.0V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 10. SMT Power Derating vs Output Current for 12Vin 2.0V Out.  
NEA0161501B Vo=2.0V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 11. SIP Power Derating vs Output Current for 12Vin 2.0V Out.  
8
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=2.5V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 12. SMT Power Derating vs Output Current for 12Vin 2.5V Out.  
NEA0161501B Vo=2.5V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 13. SIP Power Derating vs Output Current for 12Vin 2.5V Out.  
9
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=3.3V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig. 14. SMT Power Derating vs Output Current for 12Vin 3.3V Out.  
NEA0161501B Vo=3.3V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 15. SIP Power Derating vs Output Current for 12Vin 3.3V Out.  
10  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S Vo=5.0V Derating Curve  
18  
16  
14  
12  
10  
8
0LFM  
100LFM  
200LFM  
300LFM  
6
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig. 16. SMT Power Derating vs Output Current for 12Vin 5.0V Out  
NEA0161501B Vo=5.0V Derating Curve  
18  
16  
14  
12  
0LFM  
10  
100LFM  
8
200LFM  
6
300LFM  
4
2
0
20  
30  
40  
50  
60  
70  
80  
90  
100  
Ambient Temperature(C)  
Fig 17. SIP Power Derating vs Output Current for 12Vin 5.0V Out.  
11  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
TYPICAL EFFICIENCY CURVES FOR VARIOUS VOLTAGE MODELS SIP/SMT VERSION.  
NEA0161501S (Eff Vs Io)  
Vout=0.75V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
65%  
60%  
55%  
50%  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 18. SMT Efficiency Curves for Vout=075V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=0.75V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
55%  
50%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 19. SIP Efficiency Curves for Vout=0.75V (25C)  
12  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=1.2V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 20. SMT Efficiency Curves for Vout=1.2V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=1.2V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 21. SIP Efficiency Curves for Vout=1.2V (25C)  
13  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=1.5V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 22. SMT Efficiency Curves for Vout=1.5V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=1.5V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 23. SIP Efficiency Curves for Vout=1.5V (25C)  
14  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=1.8V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 24. SMT Efficiency Curves for Vout=1.8V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=1.8V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
65%  
60%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 25. SIP Efficiency Curves for Vout=1.8V (25C)  
15  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=2.0V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 26. SMT Efficiency Curves for Vout=2.0V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=2.0V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 27. SIP Efficiency Curves for Vout=2.0V (25C)  
16  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=2.5V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 28. SMT Efficiency Curves for Vout=2.5V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=2.5V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 29. SIP Efficiency Curves for Vout=2.5V (25C)  
17  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=3.3V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 30. SMT Efficiency Curves for Vout=3.3V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=3.3V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 31. SIP Efficiency Curves for Vout=3.3V (25C)  
18  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
NEA0161501S (Eff Vs Io)  
Vout=5V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 32. SMT Efficiency Curves for Vout=5.0V (25C)  
NEA0161501B (Eff Vs Io)  
Vout=5V  
100%  
95%  
90%  
85%  
80%  
75%  
70%  
9V  
12V  
14V  
0
2
4
6
8
10  
12  
14  
16  
Current Load (A)  
Fig 33. SIP Efficiency Curves for Vout=5.0V (25C)  
19  
NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Typical Start Up  
Ch1. Vin  
Ch2. Vout, Full load.  
Ch3. Q1-Vgs  
Ch4. Q2-Vgs  
Typical Start Up with pre-bias  
Ch1 : Enable  
Ch2 : Vout  
Ch3 : Output current at Full Load.  
20  
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Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Typical Output Noise and Ripple  
Vin = 12Vdc , Vo=5.0V/16A  
Output with 1uF ceramic and 10uF tantalum capacitor  
Typical Output Transient Response  
Vin = 12Vdc , Vo=5.0V , 50% - 100% - 50% Load change , @0.1A/uS  
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NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Output Voltage Set point adjustment.  
The following relationship establish the calculation of external resistors:  
15× 0.7  
Vo 0.7525  
R
adj = (  
) 1 (KΩ)  
For Vout setting an external resistor is connected between the TRIM and Ground Pin.  
Resistor values for different output voltages are calculated as given in the table:  
Vo, set (Volts)  
RAdj (KΩ)  
Open  
22.46  
13.05  
9.024  
7.417  
5.009  
3.122  
1.472  
0.75  
1.2  
1.5  
1.8  
2.0  
2.5  
3.3  
5.0  
Remote Sense:  
All MURATA POWER SOLUTIONS SMT/SIP power modules offer an option for remote sense. The remote  
sense compensates for any distribution drops to accurately control voltage at the point of load. The voltage  
between the sense pin to Vout pin should not exceed 0.5V.  
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NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
SMT Lead free Reflow profile  
1. Ramp up rate during preheat : 1.33 /Sec ( From 30to 150)  
2. Soaking temperature : 0.29 /Sec ( From 150to 180)  
3. Ramp up rate during reflow : 0.8 /Sec ( From 220to 250)  
4. Peak temperature : 250, above 22040 to 70 Seconds  
5. Ramp up rate during cooling : -1.56 /Sec ( From 220to 150)  
Mechanical and pinning Information.  
Given below is the outline drawing showing physical dimensions of the SIP & SMT package.  
The external dimensions for SMT package are 33.00mm X 13.46mm X 9.3mm.  
BOTTOMVIEWOFBOARD  
Recommended PadLayout  
33.0  
(1.30)  
9.30  
(0.366)  
max.  
Dimensions areinmillimetes and(inches)  
4.83  
7.87  
(0.310)  
4.83  
4.83  
7.54  
7.87  
4.83  
4.83  
(0.190)  
4.83  
7.54  
1.65  
(0.065)  
(0.297)  
(0.190)  
(0.190)  
(0.190)  
(0.297)  
(0.310)  
(0.190)  
(0.190)  
COM  
+SENSE  
TRIM  
+VO  
COM  
TRIM  
+SENSE  
+VO  
13.46  
(0.530)  
10.29  
(0.405)  
10.29  
(0.405)  
10.92  
(0.430)  
TopViewof Board  
ON/OFF  
+VIN  
ON/OFF  
+VIN  
1.60  
(0.063)  
0.64  
(0.025)  
SURFACEMOUNTCONTACT  
(0.075)  
1.91  
29.90  
(1.177)  
1.22  
(0.048)  
2.84  
(0.112)  
L1INDUCTOR  
PADSIZE  
MIN:3.556x2.413(0.140x0.095)  
MAX:4.19x2.79(0.165x0.110)  
Dimensions areinmillimeters (Inches)  
Tolerances: X.X0.5mm(0.02in), X.XX0.25mm(0.010in),unless otherwisenoted.  
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NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Whereas, the external dimensions of the SIP version are 50.8mm X 12.70mm X 8.30mm.  
SIZE SIP  
0.327(8.30)max.  
2.00(50.8)  
PIN CONNECTION  
Pin FUNCTION  
0.23(5.8)  
+Output  
+Output  
+Sense  
+Output  
1
2
3
9
8
7
11  
10  
1 2 3 4  
6
5
0.14(3.6)  
0.100(2.54)  
0.50(12.70)  
4
0.010(0.25)  
mi n.  
0.025(0.64)  
1.000(25.40)  
5
6
Common  
Common  
0.28(7.1)  
0.050(1.30)  
0.025(0.64)  
0.400(10.20)  
+VInput  
+VInput  
No Pin  
Trim  
7
8
9
10  
LAYOUT PATTERN  
TOP VIEW  
0.33(8.4)  
0.29(7.4)  
All Di mmensi on In I nches(mm)  
Tolerance :  
11 On/Off Control  
1.1mmPLATED THROUGH HOLE  
1.6mmPAD SIZE  
.XX=  
.XXX=  
0.02 ( .X= 0.5)  
0.010 ( .XX= 0.25)  
Safety Considerations  
The NEA series of converters are certified to IEC/EN/CSA/UL 60950. If this product is built into information technology  
equipment, the installation must comply with the above standard. An external input fuse (no more 20 A recommended)  
must be used to meet the above requirements. The output of the converter [Vo(+)/Vo(-)] is considered to remain within  
SELV limits when the input to the converter meets SELV or TNV-2 requirements.  
The converters and materials meet UL 94V-0 flammability ratings.  
Ordering Information  
Part Number  
Vin  
Vout  
Iout Enable Logic Pin Length  
NEA0161500B0C 8.3V - 14.0V 0.75V – 5.0V 16A  
NEA0161500S0C 8.3V - 14.0V 0.75V – 5.0V 16A  
NEA0161501B0C 8.3V - 14.0V 0.75V – 5.0V 16A  
NEA0161501S0C 8.3V - 14.0V 0.75V – 5.0V 16A  
Negative  
Negative  
Positive  
Positive  
0.139"  
SMT  
0.139"  
SMT  
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NEA016_6200860000_B01_21/04/08  
Volant NEA016 Series  
Murata Power Solutions  
Non-Isolated 16A SIP/SMT DC/DC Converters  
Label Information  
N E A 0 1 6 1 5 0 0 B 0 – X C  
C = RoHS Compliant  
X = Factory control character  
(not required when ordering)  
Iout  
Vout  
0 = Standard. (No PGood option)  
P = Power Good Option  
Place Holder  
VoutRange  
F=Fixed  
A=Adjustable  
Pin Length Option  
B=0.139”  
S=SMT  
Vin (value or range)  
C= 3.3V-5.0V  
E= 8.3V-14V  
Enable Logic, 0 for–ve, 1 for +ve  
F= 6.0V-14V  
Non-Isolated Family  
RoHS Compliant  
The NEA016 series of converters is in compliance with the European Union Directive 2002/95/EC (RoHS) with repsect to the following sustances:  
lead (Pb), mercury (Hg), cadmium (Cd), hexavalent chromium, polybrominated biphenyls (PBB) or polybrominated diphenyl ethers (PBDE).  
25  
NEA016_6200860000_B01_21/04/08  

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