onsemi UniFET Type N-Channel MOSFET, 33 A, 250 V Enhancement, 3-Pin TO-220F FDPF33N25T

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Subtotal (1 pack of 5 units)*

R 244,21

(exc. VAT)

R 280,84

(inc. VAT)

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Orders below R 1 500,00 (exc. VAT) cost R 120,00.
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Units
Per unit
Per Pack*
5 - 20R 48.842R 244.21
25 - 245R 47.62R 238.10
250 - 495R 46.192R 230.96
500 - 995R 44.344R 221.72
1000 +R 42.57R 212.85

*price indicative

Packaging Options:
RS stock no.:
903-4166
Mfr. Part No.:
FDPF33N25T
Manufacturer:
onsemi
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Brand

onsemi

Product Type

MOSFET

Channel Type

Type N

Maximum Continuous Drain Current Id

33A

Maximum Drain Source Voltage Vds

250V

Package Type

TO-220F

Series

UniFET

Mount Type

Through Hole

Pin Count

3

Maximum Drain Source Resistance Rds

94mΩ

Channel Mode

Enhancement

Typical Gate Charge Qg @ Vgs

36.8nC

Minimum Operating Temperature

-55°C

Maximum Power Dissipation Pd

37W

Maximum Gate Source Voltage Vgs

±30 V

Forward Voltage Vf

1.4V

Maximum Operating Temperature

150°C

Length

10.36mm

Width

4.9 mm

Height

16.07mm

Standards/Approvals

No

Automotive Standard

No

UniFET™ N-Channel MOSFET, Fairchild Semiconductor


UniFET™ MOSFET is Fairchild Semiconductor's high voltage MOSFET family. It has the smallest on-state resistance among the Planar MOSFETs, and also provides superior switching performance and higher avalanche energy strength. In addition, the internal gate-source ESD diode allows UniFET-II™ MOSFET to withstand over 2000V HBM surge stress.

UniFET™ MOSFETs are suitable for switching power converter applications, such as power factor correction (PFC), flat panel display (FPD) TV power, ATX (Advanced Technology eXtended) and electronic lamp ballasts.

MOSFET Transistors, ON Semi


ON Semi offers a substantial portfolio of MOSFET devices that includes high-voltage (>250V) and low-voltage (<250V) types. The Advanced silicon technology provides smaller die sizes, which it is incorporated into multiple industry-standard and thermally-enhanced packages.

ON Semi MOSFETs provide superior design reliability from reduced voltage spikes and overshoot, to lower junction capacitance and reverse recovery charge, to elimination of additional external components to keep systems up and running longer.

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