Справочник MOSFET. FQB4N90TM

 

FQB4N90TM MOSFET - описание производителя. Даташиты. Основные параметры и характеристики. Поиск аналога. Справочник


   Наименование прибора: FQB4N90TM
   Тип транзистора: MOSFET
   Полярность: N
   Pdⓘ - Максимальная рассеиваемая мощность: 140 W
   |Vds|ⓘ - Предельно допустимое напряжение сток-исток: 900 V
   |Vgs|ⓘ - Предельно допустимое напряжение затвор-исток: 30 V
   |Vgs(th)|ⓘ - Пороговое напряжение включения: 5 V
   |Id|ⓘ - Максимально допустимый постоянный ток стока: 4.2 A
   Tjⓘ - Максимальная температура канала: 150 °C
   Qgⓘ - Общий заряд затвора: 24 nC
   trⓘ - Время нарастания: 70 ns
   Cossⓘ - Выходная емкость: 90 pf
   Rdsⓘ - Сопротивление сток-исток открытого транзистора: 3.3 Ohm
   Тип корпуса: D2-PAK

 Аналог (замена) для FQB4N90TM

 

 

FQB4N90TM Datasheet (PDF)

 ..1. Size:644K  fairchild semi
fqb4n90tm fqi4n90tu.pdf

FQB4N90TM
FQB4N90TM

October 2001TMQFETFQB4N90 / FQI4N90900V N-Channel MOSFETGeneral Description FeaturesThese N-Channel enhancement mode power field effect 4.2A, 900V, RDS(on) = 3.3 @ VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typically 24 nC)planar stripe, DMOS technology. Low Crss ( typically 9.5 pF)This advanced technology has been es

 9.1. Size:726K  fairchild semi
fqb4n25tm fqi4n25tu.pdf

FQB4N90TM
FQB4N90TM

May 2000TMQFETQFETQFETQFETFQB4N25 / FQI4N25250V N-ChanneI MOSFETGeneraI Description FeaturesThese N-Channel enhancement mode power field effect 3.6A, 250V, RDS(on) = 1.75 @VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typical 4.3 nC)planar stripe, DMOS technology. Low Crss ( typical 4.8 pF)This advanced technology

 9.2. Size:8196K  fairchild semi
fqb4n80 fqi4n80.pdf

FQB4N90TM
FQB4N90TM

October 2008QFETFQB4N80 / FQI4N80800V N-Channel MOSFETGeneral Description FeaturesThese N-Channel enhancement mode power field effect 3.9A, 800V, RDS(on) = 3.6 @VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typical 19 nC)planar stripe, DMOS technology. Low Crss ( typical 8.6 pF)This advanced technology has been especially

 9.3. Size:517K  fairchild semi
fqb4n20ltm.pdf

FQB4N90TM
FQB4N90TM

December 2000TMQFETQFETQFETQFETFQB4N20L / FQI4N20L200V LOGIC N-Channel MOSFETGeneral Description FeaturesThese N-Channel enhancement mode power field effect 3.8A, 200V, RDS(on) = 1.35 @VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typical 4.0 nC)planar stripe, DMOS technology. Low Crss ( typical 6.0 pF)This advanced

 9.4. Size:704K  fairchild semi
fqb4n20 fqi4n20.pdf

FQB4N90TM
FQB4N90TM

April 2000TMQFETQFETQFETQFETFQB4N20 / FQI4N20200V N-ChanneI MOSFETGeneraI Description FeaturesThese N-Channel enhancement mode power field effect 3.6A, 200V, RDS(on) = 1.4 @VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typical 5.0 nC)planar stripe, DMOS technology. Low Crss ( typical 5.0 pF)This advanced technology

 9.5. Size:698K  fairchild semi
fqb4n20tm fqi4n20tu.pdf

FQB4N90TM
FQB4N90TM

April 2000TMQFETQFETQFETQFETFQB4N20 / FQI4N20200V N-ChanneI MOSFETGeneraI Description FeaturesThese N-Channel enhancement mode power field effect 3.6A, 200V, RDS(on) = 1.4 @VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typical 5.0 nC)planar stripe, DMOS technology. Low Crss ( typical 5.0 pF)This advanced technology

 9.6. Size:745K  fairchild semi
fqb4n50tm.pdf

FQB4N90TM
FQB4N90TM

April 2000TMQFETQFETQFETQFETFQB4N50 / FQI4N50500V N-ChanneI MOSFETGeneraI Description FeaturesThese N-Channel enhancement mode power field effect 3.4A, 500V, RDS(on) = 2.7 @VGS = 10 Vtransistors are produced using Fairchilds proprietary, Low gate charge ( typical 10 nC)planar stripe, DMOS technology. Low Crss ( typical 6.0 pF)This advanced technology

 9.7. Size:968K  onsemi
fqb4n80 fqi4n80.pdf

FQB4N90TM
FQB4N90TM

Is Now Part ofTo learn more about ON Semiconductor, please visit our website at www.onsemi.comPlease note: As part of the Fairchild Semiconductor integration, some of the Fairchild orderable part numbers will need to change in order to meet ON Semiconductors system requirements. Since the ON Semiconductor product management systems do not have the ability to manage part nomenclatur

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