GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Features
▪
Compliant to RoHS Directive 2011/65/EU and
amended Directive (EU) 2015/863 (Z versions)
▪
Compliant to REACH Directive (EC) No 1907/2006
▪
Compatible in a Pb-free or SnPb wave-soldering
environment (Z versions)
▪
▪
Wide input voltage range (4.5Vdc-14Vdc)
▪
Tunable LoopTM to optimize dynamic output voltage
response
▪
Fixed switching frequency
Applications
▪
Output overcurrent protection (non-latching)
▪
Distributed power architectures
▪
Over temperature protection
▪
Intermediate bus voltage applications
▪
Remote On/Off
▪
Telecommunications equipment
Servers and storage applications
▪
Networking equipment
▪
▪
▪
Remote Sense
▪
RoHS Compliant
Output voltage programmable from 0.59Vdc to 6Vdc
via external resistor
Power Good Signal
Small size:
36.8 mm x 15.5 mm x 9.2 mm
(1.45 in. x 0.61 in. x 0.36 in)
▪
▪
Wide operating temperature range (-40°C to 85°C)
▪
ISO** 9001 and ISO 14001 certified manufacturing
facilities
ANSI/UL* 62368-1 and CAN/CSA† C22.2 No.
62368-1 Recognized, DIN VDE‡ 0868-1/A11:2017
(EN62368-1:2014/A11:2017)
Description
The Naos Raptor 20A SIP power modules are non-isolated dc-dc converters in an industry standard package that
can deliver up to 20A of output current with a full load efficiency of 91% at 3.3Vdc output voltage (V IN = 12Vdc).
These modules operate over a wide range of input voltage (VIN = 4.5Vdc-13.8Vdc) and provide a precisely regulated
output voltage from 0.59Vdc to 6Vdc, programmable via an external resistor. Features include remote On/Off,
adjustable output voltage, over current and over temperature protection. A new feature, the Tunable LoopTM, allows
the user to optimize the dynamic response of the converter to match the load.
* UL is a registered trademark of Underwriters Laboratories, Inc.
†
CSA is a registered trademark of Canadian Standards Association.
VDE is a trademark of Verband Deutscher Elektrotechniker e.V.
** ISO is a registered trademark of the International Organization of Standards
‡
February 19, 2021
©2016 General Electric Company. All rights reserved.
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Absolute Maximum Ratings
Stresses in excess of the absolute maximum ratings can cause permanent damage to the device. These are absolute stress ratings
only, functional operation of the device is not implied at these or any other conditions in excess of those given in the operations
sections of the data sheet. Exposure to absolute maximum ratings for extended periods can adversely affect the device reliability.
Parameter
Device
Symbol
Min
Max
Unit
All
VIN
-0.3
15
Vdc
All
TA
-40
85
°C
All
Tstg
-55
125
°C
Input Voltage
Continuous
Operating Ambient Temperature
(see Thermal Considerations section)
Storage Temperature
Electrical Specifications
Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions.
Parameter
Device
Symbol
Min
Typ
Max
Unit
Operating Input Voltage
All
VIN
4.5
12.0
13.8
Vdc
Maximum Input Current
All
IIN,max
20
Adc
VO,set = 0.6 Vdc
IIN,No load
50
mA
VO,set = 5.0Vdc
IIN,No load
110
mA
All
IIN,stand-by
6.08
mA
Inrush Transient
All
I2t
Input Reflected Ripple Current, peak-to-peak
(5Hz to 20MHz, 1μH source impedance; VIN, min to
VIN, max, IO= IOmax ; See Test configuration section)
All
34.4
Input Ripple Rejection (120Hz)
All
43
(VIN= VIN, min to VIN, max, IO=IO, max VO,set = 3.3Vdc)
Input No Load Current
(VIN = 12Vdc, IO = 0, module ON)
Input Stand-by Current
(VIN = 12Vdc, module disabled)
February 19, 2021
©2016 General Electric Company. All rights reserved.
1
A2s
mAp-p
dB
Page 2
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Electrical Specifications (continued)
Parameter
Device
Symbol
Min
Output Voltage Set-point (with 0.5% tolerance
for external resistor used to set output voltage)
All
VO, set
-1.5
Output Voltage
All
VO, set
–3.0
All
VO
0.59
Typ
Max
Unit
+1.5
% VO, set
+3.0
% VO, set
6
Vdc
⎯
+0.2
% VO, set
⎯
0.8
% VO, set
⎯
+5
mV
⎯
20
mV
⎯
(Over all operating input voltage, resistive load,
and temperature conditions until end of life)
Adjustment Range
Selected by an external resistor
Output Regulation (for VO 2.5V)
Line (VIN=VIN, min to VIN, max)
All
Load (IO=IO, min to IO, max
All
-0.2
Output Regulation (for VO < 2.5V)
Line (VIN=VIN, min to VIN, max)
All
Load (IO=IO, min to IO, max)
All
-5
Output Ripple and Noise on nominal output
(VIN=VIN, nom and IO=IO, min to IO, max, Cout = 0μF)
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 0.59V
⎯
20
mVpk-pk
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 1.2V
⎯
23
mVpk-pk
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 1.8V
⎯
25
mVpk-pk
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 2.5V
⎯
30
mVpk-pk
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 3.3V
⎯
40
mVpk-pk
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 5.0V
⎯
50
mVpk-pk
Peak-to-Peak (5Hz to 20MHz bandwidth)
Vo = 6.0V
⎯
60
mVpk-pk
300
μF
External Capacitance
1`
Without the Tunable LoopTM
All
CO, max
⎯
⎯
ESR ≥ 0.15 mΩ
All
CO, max
0
⎯
1500
μF
ESR ≥ 10 mΩ
All
CO, max
0
⎯
10000
μF
0
⎯
20
ESR ≥ 1 mΩ
With the Tunable LoopTM
Output Current
All
Io
Output Current Limit Inception (Hiccup Mode )
All
IO, lim
140
% Io
Adc
Output Short-Circuit Current
All
IO, s/c
1.1
Arms
(VO≤250mV) ( Hiccup Mode )
VO,set = 0.59Vdc
η
72.7
%
VIN= 12Vdc, TA=25°C
VO,set = 1.2Vdc
η
82.3
%
IO=IO, max , VO= VO,set
VO,set = 1.8Vdc
η
87.5
%
VO,set = 2.5Vdc
η
90.2
%
VO,set = 3.3Vdc
η
92.1
%
VO,set = 5.0Vdc
η
94.3
%
Efficiency
(Vin=9Vdc)
Switching Frequency
VO,set = 6.0Vdc
η
All
fsw
95.0
⎯
600
%
⎯
kHz
1
External capacitors may require using the new Tunable LoopTM feature to ensure that the module is stable as well as getting the best
transient response. See the Tunable LoopTM section for details.
February 19, 2021
©2016 General Electric Company. All rights reserved.
Page 3
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
General Specifications
Parameter
Min
Calculated MTBF (VIN=12V, VO=5Vdc, IO=0.8IO, max, TA=40°C) Per
Telcordia Issue 2, Method I Case 3
Max
Unit
16,061,773
⎯
Weight
Typ
Hours
⎯
6.6 (0.23)
g (oz.)
Feature Specifications
Unless otherwise indicated, specifications apply over all operating input voltage, resistive load, and temperature conditions. See
Feature Descriptions for additional information.
Parameter
Device
Symbol
Min
Typ
Max
Unit
Input High Current
All
IIH
0
⎯
0.5
mA
Input High Voltage
All
VIH
1.0
⎯
5.5
V
On/Off Signal Interface
(VIN=VIN, min to VIN, max ; open collector or equivalent,
Signal referenced to GND)
Logic High (On/Off pin open – Module ON)
Logic Low (Module OFF)
Input Low Current
All
IIL
⎯
⎯
200
µA
Input Low Voltage
All
VIL
-0.3
⎯
0.4
V
PwGood (Power Good)
Signal Interface Open Collector/Drain
PwGood = High = Power Good
PwGood = Low = Power Not Good
Logic level low voltage, Isink = 5 mA
0
Sink Current, PwGood = low
0.35
V
10
mA
Turn-On Delay and Rise Times
(VIN=VIN, nom, IO=IO, max , VO to within ±1% of steady state)
Case 1: On/Off input is enabled and then
input power is applied (delay from instant at
which VIN = VIN, min until Vo = 10% of Vo, set)
All
Tdelay
2
3
msec
Case 2: Input power is applied for at least one second
and then the On/Off input is enabled (delay from instant
at which On/Off is enabled until Vo = 10% of Vo, set)
All
Tdelay
2
3
msec
Output voltage Rise time (time for Vo to rise from
10% of Vo, set to 90% of Vo, set)
All
Trise
3
6
msec
0.5
% VO, set
Output voltage overshoot
IO = IO, max; VIN, min – VIN, max, TA = 25 oC
Remote Sense Range
All
Over Temperature Protection
All
⎯
Tref
⎯
0.5
V
130
ºC
(See Thermal Considerations section)
Input Undervoltage Lockout
Turn-on Threshold
All
4.2
Vdc
Turn-off Threshold
All
4.1
Vdc
February 19, 2021
©2016 General Electric Company. All rights reserved.
Page 4
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves
The following figures provide typical characteristics for the Naos Raptor 20A modules at 0.6Vout and 25ºC.
22
90
20
OUTPUT CURRENT, Io (A)
EFFICIENCY, (%)
85
80
Vin = 6V
75
Vin = 9V
Vin = 4.5V
70
65
60
0
5
10
15
February 19, 2021
NC
0.5m/s
(100LFM)
8
25
35
45
55
65
75
85
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT CURRENT,
OUTPUT VOLTAGE
Figure 5. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1.5m/s
(300LFM)
10
TIME, t (100s /div)
VIN (V) (5V/div)
Figure 4. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=9V.
INPUT VOLTAGE
VO (V) (200mV/div)
TIME, t (1ms/div)
1m/s
(200LFM)
12
Figure 2. Derating Output Current versus Ambient
Temperature and Airflow.
VO (V) (200mV/div)
ON/OFF VOLTAGE
VON/OFF (V) (2V/div)
OUTPUT VOLTAGE
Figure 3. Typical output ripple and noise (VIN = 9V, Io =
Io,max).
2m/s
(400LFM)
14
AMBIENT TEMPERATURE, TA OC
OUTPUT VOLTAGE
VO (V) (10mV/div)
OUTPUT VOLTAGE
TIME, t (1s/div)
16
20
OUTPUT CURRENT, IO (A)
Figure 1. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 6. Typical Start-up Using Input Voltage (VIN =
9V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 5
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves (continued)
The following figures provide typical characteristics for the Naos Raptor 20A modules at 1.2Vout and 25ºC.
22
95
20
OUTPUT CURRENT, Io (A)
EFFICIENCY, (%)
90
Vin = 4.5V
85
Vin = 12V
80
Vin = 14V
75
70
0
5
10
15
February 19, 2021
0.5m/s
(100LFM)
NC
8
35
45
55
65
75
85
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT CURRENT,
OUTPUT VOLTAGE
Figure 11. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1.5m/s
(300LFM)
10
TIME, t (20s /div)
INPUT VOLTAGE
VIN (V) (5V/div)
Figure 10. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=12V.
VO (V) (500mV/div)
VON/OFF (V) (2V/div)
VO (V) (500mV/div)
TIME, t (1ms/div)
1m/s
(200LFM)
12
Figure 8. Derating Output Current versus Ambient
Temperature and Airflow.
OUTPUT VOLTAGE
VO (V) (10mV/div)
OUTPUT VOLTAGE
ON/OFF VOLTAGE
OUTPUT VOLTAGE
Figure 9. Typical output ripple and noise (VIN = 12V, Io =
Io,max).
2m/s
(400LFM)
14
AMBIENT TEMPERATURE, TA OC
OUTPUT CURRENT, IO (A)
TIME, t (1s/div)
16
25
20
Figure 7. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 12. Typical Start-up Using Input Voltage (VIN =
12V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 6
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves (continued)
The following figures provide typical characteristics for the Naos Raptor 20A modules at 1.8Vout and at 25ºC.
22
100
20
OUTPUT CURRENT, Io (A)
EFFICIENCY, (%)
95
90
Vin = 12V
85
Vin = 14V
Vin = 4.5V
80
75
70
0
5
10
15
February 19, 2021
10
0.5m/s
(100LFM)
NC
8
35
45
55
65
75
85
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT CURRENT,
OUTPUT VOLTAGE
Figure 17. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1m/s
(200LFM)
AMBIENT TEMPERATURE, TA C
TIME, t (100s /div)
VIN (V) (5V/div)
Figure 16. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=12V.
INPUT VOLTAGE
VON/OFF (V) (2V/div)
VO (V) (500mV/div)
TIME, t (1ms/div)
1.5m/s
(300LFM)
12
Figure 14. Derating Output Current versus Ambient
Temperature and Airflow.
VO (V) (500mV/div)
ON/OFF VOLTAGE
OUTPUT VOLTAGE
Figure 15. Typical output ripple and noise (VIN = 12V, Io
= Io,max).
2m/s
(400LFM)
14
O
OUTPUT VOLTAGE
VO (V) (10mV/div)
OUTPUT VOLTAGE
TIME, t (1s/div)
16
25
20
OUTPUT CURRENT, IO (A)
Figure 13. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 18. Typical Start-up Using Input Voltage (VIN =
12V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 7
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves (continued)
The following figures provide thermal derating curves for Naos Raptor 20A modules at 2.5Vout and 25ºC.
22
100
20
OUTPUT CURRENT, Io (A)
EFFICIENCY, (%)
95
90
Vin = 12V
85
Vin = 14V
Vin = 4.5V
80
75
70
0
5
10
15
February 19, 2021
0.5m/s
(100LFM)
10
NC
8
35
45
55
65
75
85
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT CURRENT,
OUTPUT VOLTAGE
Figure 23. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1m/s
(200LFM)
AMBIENT TEMPERATURE, TA C
TIME, t (100s /div)
VIN (V) (5V/div)
Figure 22. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=12V.
INPUT VOLTAGE
VON/OFF (V) (2V/div)
VO (V) (1V/div)
TIME, t (1ms/div)
1.5m/s
(300LFM)
12
Figure 20. Derating Output Current versus Ambient
Temperature and Airflow.
VO (V) (1V/div)
ON/OFF VOLTAGE
OUTPUT VOLTAGE
Figure 21. Typical output ripple and noise (VIN = 12V, Io
= Io,max).
2m/s
(400LFM)
14
O
OUTPUT VOLTAGE
VO (V) (10mV/div)
OUTPUT VOLTAGE
TIME, t (1s/div)
16
25
20
OUTPUT CURRENT, IO (A)
Figure 19. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 24. Typical Start-up Using Input Voltage (VIN =
12V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 8
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves (continued)
The following figures provide thermal derating curves for Naos Raptor 20A modules at 3.3Vout and 25ºC.
100
22
OUTPUT CURRENT, Io (A)
20
EFFICIENCY, (%)
95
90
Vin = 4.5V
Vin = 12V
Vin = 14V
85
80
0
5
10
15
February 19, 2021
1m/s
(200LFM)
0.5m/s
(100LFM)
10
NC
8
35
45
55
65
75
85
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT CURRENT,
OUTPUT VOLTAGE
Figure 29. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1.5m/s
(300LFM)
12
Figure 26. Derating Output Current versus Ambient
Temperature and Airflow.
TIME, t (100s /div)
VIN (V) (5V/div)
Figure 28. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=12V.
INPUT VOLTAGE
VON/OFF (V) (2V/div)
VO (V) (1V/div)
TIME, t (1ms/div)
14
AMBIENT TEMPERATURE, TA OC
OUTPUT VOLTAGE
ON/OFF VOLTAGE
OUTPUT VOLTAGE
Figure 27. Typical output ripple and noise (VIN = 12V, Io
= Io,max).
2m/s
(400LFM)
VO (V) (1V/div)
VO (V) (10mV/div)
OUTPUT VOLTAGE
TIME, t (1s/div)
16
25
20
OUTPUT CURRENT, IO (A)
Figure 25. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 30. Typical Start-up Using Input Voltage (VIN =
12V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 9
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves (continued)
The following figures provide thermal derating curves for Naos Raptor 20A modules at 5Vout and 25ºC.
100
22
OUTPUT CURRENT, Io (A)
20
EFFICIENCY, (%)
95
Vin = 12V
90
Vin = 14V
Vin = 6V
85
80
0
5
10
15
February 19, 2021
0.5m/s
(100LFM)
10
NC
8
35
45
55
65
75
85
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT CURRENT,
OUTPUT VOLTAGE
Figure 35. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1m/s
(200LFM)
TIME, t (100s /div)
VIN (V) (5V/div)
Figure 34. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=12V.
INPUT VOLTAGE
VON/OFF (V) (2V/div)
VO (V) (2V/div)
TIME, t (1ms/div)
1.5m/s
(300LFM)
12
Figure 32. Derating Output Current versus Ambient
Temperature and Airflow.
VO (V) (2V/div)
ON/OFF VOLTAGE
OUTPUT VOLTAGE
Figure 33. Typical output ripple and noise (VIN = 12V, Io
= Io,max).
2m/s
(400LFM)
14
AMBIENT TEMPERATURE, TA OC
OUTPUT VOLTAGE
VO (V) (10mV/div)
OUTPUT VOLTAGE
TIME, t (1s/div)
16
25
20
OUTPUT CURRENT, IO (A)
Figure 31. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 36. Typical Start-up Using Input Voltage (VIN =
12V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 10
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Characteristic Curves (continued)
The following figures provide thermal derating curves for Naos Raptor 20A modules at 6Vout and 25ºC.
22
100
OUTPUT CURRENT, Io (A)
20
EFFICIENCY, (%)
95
Vin = 12V
90
Vin = 14V
Vin = 7.5V
85
80
0
5
10
15
February 19, 2021
0.5m/s
(100LFM)
10
NC
8
35
45
55
65
75
85
OUTPUT CURRENT,
VO (V) (200mV/div)
IO (A) (5Adiv)
OUTPUT VOLTAGE
Figure 38. Derating Output Current versus Ambient
Temperature and Airflow.
TIME, t (100s /div)
VIN (V) (5V/div)
Figure 40. Transient Response to Dynamic Load
Change from 0% to 50% to 0% with VIN=12V.
INPUT VOLTAGE
VON/OFF (V) (2V/div)
VO (V) (2V/div)
Figure 41. Typical Start-up Using On/Off Voltage (Io =
Io,max).
1m/s
(200LFM)
12
AMBIENT TEMPERATURE, TA C
OUTPUT VOLTAGE
ON/OFF VOLTAGE
OUTPUT VOLTAGE
TIME, t (1ms/div)
1.5m/s
(300LFM)
VO (V) (2V/div)
VO (V) (10mV/div)
OUTPUT VOLTAGE
TIME, t (1s/div)
14
O
OUTPUT CURRENT, IO (A)
Figure 39. Typical output ripple and noise (VIN = 12V, Io
= Io,max).
2m/s
(400LFM)
16
25
20
Figure 37. Converter Efficiency versus Output Current.
18
TIME, t (1ms/div)
Figure 42. Typical Start-up Using Input Voltage (VIN =
12V, Io = Io,max).
©2016 General Electric Company. All rights reserved.
Page 11
GE
Data Sheet
Naos Raptor 20A: Non-Isolated DC-DC Power Modules
4.5Vdc –14Vdc input; 0.59Vdc to 6Vdc output; 20A Output Current
Test Configurations
Design Considerations
Input Filtering
CURRENT PROBE
The Naos Raptor 20A module should be connected to a lowimpedance source. A highly inductive source can affect the
stability of the module. An input capacitance must be placed
directly adjacent to the input pin of the module, to minimize
input ripple voltage and ensure module stability.
To minimize input voltage ripple, low-ESR ceramic or polymer
capacitors are recommended at the input of the module. Figure
46 shows the input ripple voltage for various output voltages at
20A of load current with 2x22 µF or 4x22 µF ceramic capacitors
and an input of 12V.
LTEST
VIN(+)
BATTERY
1μH
CIN
CS 1000μF
Electrolytic
2x100μF
Tantalum
E.S.R.