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T22C686M050CSS Datasheet(PDF) 8 Page - Vishay Siliconix

Part # T22C686M050CSS
Description  Wet Tantalum SMD Capacitors, Tantalum Metal Case With Glass-to-Tantalum Hermetic Seal
PDF  10 Pages
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Manufacturer  VISHAY [Vishay Siliconix]
Direct Link  http://www.vishay.com
Logo VISHAY - Vishay Siliconix

T22C686M050CSS Datasheet(HTML) 8 Page - Vishay Siliconix

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T22
www.vishay.com
Vishay
Revision: 13-May-2020
8
Document Number: 40187
For technical questions, contact: tantalum@vishay.com
THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT
ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT www.vishay.com/doc?91000
7.1 The maximum leakage current for any capacitor shall
not exceed the maximum value in μA listed in the
Standard Ratings table for each capacitor.
Note
• Leakage current varies with applied voltage. See graph next
column for the appropriate adjustment factor
8.
Low Temperature Impedance: the impedance of any
capacitor at -55 °C at 120 Hz, shall not exceed the
values given in the Standard Ratings table.
9.
Life Test: capacitors are capable of withstanding a
2000 h life test at a temperature of +85 °C or +125 °C at
the applicable rated DC working voltage.
9.1 Following the life test, the capacitors shall be returned
to 25 °C ± 5 °C. The leakage current, measured at
the
+85 °C rated voltage, shall not be in excess of
the original requirement; the capacitance value shall
not exceed 150 % of the initial requirement; the
capacitance value shall not change more than + 10 % /
- 20 % from the initial measurement.
10.
Ripple Life Test at +85 °C: capacitors shall be tested
in
accordance
with
military
specification
MIL-PRF-39006 except that:
a) Operation conditions: this test shall be run at a
frequency of 40 kHz ± 2 kHz sinusoidal and at the
RMS ripple current levels specified in the Standard
Ratings table.
b) Applied DC voltage shall be reduced so that the
peak AC voltage plus DC voltage shall not exceed
the rated voltage of the capacitor in either the
forward or reverse direction.
10.1 When tested as specified above, capacitors shall meet
the following requirements:
a) The DC leakage current at +25 °C and at +85 °C
shall not exceed the original requirements.
b) The capacitance shall not change more than ± 15 %
from the initial measured value.
c) The dissipation factor shall not exceed the original
requirements.
d) Visual examination: There shall be no damage,
obliteration of marking or leakage of electrolyte.
GUIDE TO APPLICATION
1. AC Ripple Current: subjecting a capacitor to an AC
voltage causes an AC current to flow through it. The
amplitude of the current is dependent on the impedance
of the capacitor at the frequency of the applied signal:
where:
I = ripple current
V = applied AC voltage
Z = impedance of capacitor (frequency dependent)
This current causes heating in the capacitor because of
I2R losses (R is the equivalent series resistance at the
applied frequency). This heating or power dissipation, is
one of the limiting factors of the capacitor’s ripple current
rating.
These power dissipation ratings are based on a
calculated +50 °C internal temperature rise in still air. The
maximum allowable ripple currents given in the Standard
Ratings table are based on these ratings and the
maximum equivalent series resistance at that frequency.
The relationship is written as follows:
where:
P = maximum power
I = maximum ripple current
R = equivalent series resistance
Therefore:
where:
R is in
P is in W
I is in ARMS
TYPICAL LEAKAGE CURRENT FACTOR
RANGE
0
10
20
30 40 50 60
90 100
70 80
1.0
0.9
0.8
0.6
0.5
0.7
0.4
0.3
0.2
0.09
0.08
0.06
0.05
0.07
0.04
0.03
0.02
0.1
0.01
PERCENT OF RATED VOLTAGE
I
V
Z
---
=
PI
2
R
=
I
P
R
----
=



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