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30D278G016FK2T

Description
Aluminum Electrolytic Capacitor, Polarized, Aluminum (wet), 16V, 75% +Tol, 10% -Tol, 2700uF, Through Hole Mount, AXIAL LEADED
CategoryPassive components    capacitor   
File Size297KB,11 Pages
ManufacturerBarker Microfarads (BMI)
Download Datasheet Parametric View All

30D278G016FK2T Overview

Aluminum Electrolytic Capacitor, Polarized, Aluminum (wet), 16V, 75% +Tol, 10% -Tol, 2700uF, Through Hole Mount, AXIAL LEADED

30D278G016FK2T Parametric

Parameter NameAttribute value
Objectid1599420797
package instruction,
Reach Compliance Codeunknown
ECCN codeEAR99
capacitance2700 µF
Capacitor typeALUMINUM ELECTROLYTIC CAPACITOR
dielectric materialsALUMINUM (WET)
ESR138 mΩ
leakage current0.02278 mA
Manufacturer's serial number30D
Installation featuresTHROUGH HOLE MOUNT
negative tolerance10%
Number of terminals2
Maximum operating temperature105 °C
Minimum operating temperature-40 °C
Package shapeTUBULAR PACKAGE
method of packingTR
polarityPOLARIZED
positive tolerance75%
Rated (DC) voltage (URdc)16 V
ripple current825 mA
surface mountNO
Terminal shapeWIRE
+105°C
General Purpose
Miniature Axial Lead,
Aluminum Capacitors
Features-
+105°C, Long Life, High Performance
High CV Per Case Size
General Specifications-
Operating Temperature:
-40 to +105°C
Voltage Range:
3 – 450 VDC
Capacitance Range:
1µF to 10,000µF
Capacitance Tolerance:
±20% (Std.)
Case Size Range:
6.3 X 13.0mm – 18.0 X 40.0mm
Termination:
20 ga. Axial leads with lead forming
available.
Life Validation Test: 4,000hrs @ +105°C
Δ
CAP
20% From initial measurement.
Δ
ESR
1.5X Initial specified limit.
Δ
DCL
Initial specified limit.
Shelf Test: 1,000hrs @ +105°C
Δ
CAP
20% From initial measurement.
Δ
ESR
1.5X Initial specified limit.
Δ
DCL
2X Initial specified limit.
DC Leakage Current:
For: 3 – 16VDC
For: 25 – 450VDC
Where:
I is in µA
C is in µF
V is in Volts
Ripple Current Multipliers:
Temperature:
Ambient Temp.
Multiplier
Frequency (Hz):
VDC
3-50
51-450
50-60
0.9
0.8
100-120
1.0
1.0
300-400
1.1
1.2
1k-100k
1.4
1.6
+105°C
0.5
+85°C
1.0
±65°C
2.0
I
=
0.1 CV
+
2
I
=
0.2 CV
+
2
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