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STTH12R06DIRGSTN/a1550avaiTURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIER
STTH12R06GSTMN/a5avaiTURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIER


STTH12R06DIRG ,TURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIERFEATURES AND BENEFITS■ Ultrafast switchingK■ Low reverse recovery current■ Low thermal resistanceA■ ..
STTH12R06FP ,TURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIERFEATURES AND BENEFITSKn Ultrafast switchingn Low reverse recovery currentn Reduces switching losses ..
STTH12R06G ,TURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIERapplications.Table 2: Order CodesPart Number MarkingSTTH12R06D STTH12R06DSTTH12R06FP STTH12R06FPSTT ..
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T6 ,1/4 in Multiturn Fully Sealed Container, Military and Professional GradeFEATURES• Military and professional grade• 0.25 Watt at 85°C• CECC 41 101-005 (A, B, C, D)• MIL-R-2 ..
T620600W ,SNUBBERLESS TRIACFEATURESA An I =6A 2 1TRMSn V =V = 600VDRM RRMGn EXCELLENT SWITCHING PERFORMANCESn INSULATING VOLTA ..
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STTH12R06DIRG-STTH12R06G
TURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIER
1/9
Table 1: Main Product Characteristics
STTH12R06

TURBO 2 ULTRAFAST HIGH VOLTAGE RECTIFIER
October 2004 REV. 2
FEATURES AND BENEFITS
Ultrafast switching Low reverse recovery current Low thermal resistance Reduces switching losses
DESCRIPTION

The STTH12R06, which is using ST Turbo 2 600V
technology, is specially suited as boost diode in
continuous mode power factor corrections and
hard switching conditions.
This device is also intended for use as a free
wheeling diode in power supplies and other power
switching applications.
Table 2: Order Codes
STTH12R06
Table 3: Absolute Ratings (limiting values)
Table 4: Thermal Resistance
Table 5: Static Electrical Characteristics

To evaluate the conduction losses use the following equation: P = 1.16 x I F(AV) + 0.053 IF2 (RMS)
Table 6: Dynamic Characteristics
STTH12R06
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Figure 1: Conduction losses versus average
current
Figure 2: Forward voltage drop versus forward
current
Figure 3: Relative variation of thermal
impedance junction to case versus pulse
duration (TO-220AC, TO-220AC Ins., D2 PAK))
Figure 4: Relative variation of thermal
impedance junction to case versus pulse
duration (TO-220FPAC)
Figure 5: Peak reverse recovery current versusF /dt (typical values)
Figure 6: Reverse recovery time versus dIF/dt
(typical values)

120
STTH12R06
Figure 7: Reverse recovery charges versus
dIF/dt (typical values)
Figure 8: Softness factor versus dIF /dt (typical
values)
Figure 9: Relative variations of dynamic
parameters versus junction temperature
Figure 10: Transient peak forward voltage
versus dIF /dt (typical values)
Figure 11: Forward recovery time versus dIF/dt
(typical values)
Figure 12: Junction capacitance versus
reverse voltage applied (typical values)

STTH12R06
5/9
Figure 14: TO-220FPAC Package Mechanical Data
Figure 13: Thermal resistance junction to
ambient versus copper surface under tab
(epoxy FR4, eCU =35µm) (D2 PAK)
STTH12R06
Figure 15: D2 PAK Package Mechanical Data
Figure 16: D2 PAK Foot Print Dimensions

(in millimeters)
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