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PDF
LM35DZ.pdf
/5516–21 *Case is connected to negative pin (GND)Order Number LM35CZ, Top View LM35CAZ or LM35DZ N.C. No Connection Order Number LM35H, LM35AH, See NS Package Number Z03A LM35CH, LM35CAH or LM35DH Order Number LM35DM See NS Package Number H03H See NS Package Number M08A TO-202 Typical Applications Plastic
in „Temperatursensor LM35 DZ will nicht funktionieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AFGHL75T65SQDC-D.PDF
75 A 1 10 0 10 20 30 40 50 0 10 20 30 40 50 Rg, GATE RESISTANCE (W) Rg, GATE RESISTANCE (W) Figure 13. Turn−On Characteristics vs. Gate Figure 14. Turn−Off Characteristics vs. Gate Resistance Resistance 500 1000 T = 25°C TC= 25°C C tr T = 175°C TC = 175°C C s s ( 100 ( E E 100 td(off) I td(on) I T T
in „PV Wechselrichter startet nicht mehr und verursacht Kurzschluss bzw. hohen Strom“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AFGHL75T65SQDC-D.PDF
75 A 1 10 0 10 20 30 40 50 0 10 20 30 40 50 Rg, GATE RESISTANCE (W) Rg, GATE RESISTANCE (W) Figure 13. Turn−On Characteristics vs. Gate Figure 14. Turn−Off Characteristics vs. Gate Resistance Resistance 500 1000 T = 25°C TC= 25°C C tr T = 175°C TC = 175°C C s s ( 100 ( E E 100 td(off) I td(on) I T T
in „PV Wechselrichter startet nicht mehr und verursacht Kurzschluss bzw. hohen Strom“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRG4BC20U_INR.pdf
) = 6.5A 27 41I g C Qge Gate - Emitter Charge (turn-on) 4.5 6.8 nC V CC= 400V See Fig. 8 Q Gate - Collector Charge (turn-on) 10 16 V = 15V gc GE d(on) Turn-On Delay Time 21 t RiseTime 13 T = 25°C r ns J d(off) Turn-Off
in „LED Stripe über IGBT schalten“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
SDRSharp_20190803_155652Z_145802000Hz_IQ_ISS_okay_bild.txt
18:00:05$ fm DL1FX-0 to APRX29-0 via DB0FDA-0 UI PID=F0 !4944.13NI00834.57E& BC1 Raspberry RX/TX APRX iGate QTH: Haehnlein JN49GR OP: Peter 18:00:05$ fm DB0AIS-0 to APGW1K-0 via DB0FDA-0,WIDE2-2 UIv PID=F0 !4959.31N/00835.51Er438.387MHz C4FM/WiresX+FM 67Hz 13.7V 18
in „SDR: ISS SSTV Signal durch Digipeater gestört - Quelle finden“ · HF, Funk und Felder ·
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PDF
Option_LAN.pdf
C21_60 PI14102SD7 SD9 PIU2102087A10 C21_151 C6100n PIU2102015 SD10 PIU2102086A11 15100n PIU2102016D SD11 PIU2102085A12 +3.3D PIU2102017T1 SD12 PIU2102084A13 PIU2102018T2 SD13 PIU2102083A14 GND PIU2102019T3
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT32UC3C2.pdf
BLM21AG102SN1D 18 VDDANA PD30 61 PD30 L1 17 60 PD29 100nF 3 GNDANA PD29 59 PD28 C PD28 GND PD27 58 CS_SCH1 5V 51 VDDIO3 57 CS_Temp1 35 VDDIO2 PD21 4.7uF 1nF 5 PD14 56 CS_RTC VDDIO1 55 CS_EEProm PD13 C4 C7 PD12 54 PD12 PD11 53 PD11 50 CS_SDKarte PD03 GND 27 PD02 49 SCK0 VDDIN_5 48
in „AT32UC3C2 Schaltplan“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOSFET-FCPF20N60.pdf
(Note 4, 5) tf Turn-Off Fall Time -- 65 140 ns Q g Total Gate Charge VDS = 480V, D = 20A -- 75 98 nC Q Gate-Source Charge VGS = 10V -- 13.5 18 nC gs Q gd Gate-Drain Charge (Note 4, 5)-- 36 -- nC Drain-Source Diode Characteristics and Maximum Ratings IS Maximum Continuous Drain-Source Diode Forward Current
in „Berechnen Irr von MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
atmel_32uc.pdf
RESET_N Table 6-4. BGA144 Package Pinout A9..M12 9 10 11 12 A PA26 PA25 PA24 PA23 B PA27 PA21 GND PA22 C ADVREF GNDANA PX19 PA19 D PA18 PA20 DP DM E PX18 PX17 VDDIO VBUS F PA17 PX15 PA15 PA14 G PA13 PA12 PA11 NC H PX11 PA08 VDDCORE VDDCORE J PX14 PA07 PX13 PA09 K PX08 GND PA05 PX12 L PX06 PX10 GND PA06
in „V: ATMEL 32UC3A0512-U“ · Markt ·
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PDF
LGP42-10LF_EAY60869402_PLHF-L923A.pdf
P604 STTH10LCD06FP LB601 PFC_INV 32’ 37’ 42’ TH600 TH601 J101,102 1 LLF-100 LLF-101 LLF-102 32’ N.C 5D-15 JUMPER OPTION4 32" 37" 42" 3R R-TYPE LF101 7.7mH 17mH 9mH TH601 0P 37’ N.C 5D-15 JUMPER 6 1 Q601 STF13NM60 TK10A60 STF13NM60 BM LLF-103 LLF-103 LLF-104 P Q602 N.C TK10A60 STF13NM60 Q601 LJ LF102,103
in „LG Inverter Kapazitator abgebrannt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Zeilensteuerung.pdf
DM54LS154 DM74LS154 4-Line to 16-Line Decoders Demultiplexers Function Table Inputs Outputs G1 G2 D C B A 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 L L L L L L L H H H H H H H H H H H H H H H L L L L L H H
in „128x128 LED-Matrix mit AVR statt Atari ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
564746-da-01-en-MOSFET_N_KA_800V_STP4N80K5_TO_220AB_STM.pdf
Drain-source voltage 800 V VGS Gate- source voltage ±30 V D Drain current (continuous) Ct T = 25 °C 3 3(1) 3 A D Drain current (continuous) Ct T = 100 °C 1.7 1.7(1) 1.7 A (2) (1) DM Drain current (pulsed) 12 12 12 A P TOT Total dissipation Ct T = 25 °C 60 20 60 W I Avalanche current, repetitive or
in „Anodenspannungsstabilisierung für Röhrenverstärker mit IRF840 als Längsregler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SK6805-EC10-000_REV.01_EN.pdf
temperature Topt -40~+80 ℃ Storage temperature Tstg -40~+80 ℃ ESD pressure(HBM) VESD 2K V ESD pressure(DM) VESD 200 V 9. Electrical/Optical Characteristics: SK6805-EC10-000 5mA Color Dominate wavelength(nm) Luminance(mcd) Red 620-625 40-160 520-530 120-240 Green Blue 460-470 20-80 6/13 Document No.: SPC
in „Platinen Anschluss?“ · Platinen ·
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PDF
177932_1.pdf
Oscillator Internal or external External only Operating frequency 1.1 MHz 2.4 MHz Pin arrangement Pin 6: C Pin 6: CE and signal name Pin 7: R Pin 7: OE Pin 9: CPO Pin 9: NC Package marking A B to see figure Package Marking 3D13 Lot No. A HD61830A00 JAPAN 3D13 Lot No. B HD61830B00 JAPAN Ordering Information
in „GrafikLCD an ATmega328“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet.pdf
Static Parameters are the Same for both TMOS V and TMOS E–FET Surface Mount Package Available in 16 mm 13–inch/2500 Unit Tape & Reel, Add T4 Suffix to Part Number MAXIMUM RATINGS (TC= 25⋅C unless otherwise noted) Rating Symbol Value Unit Drain–to–Source Voltage VDSS 60 Vdc Drain–to–Gate VoltageGSR = 1.0
in „verstärkerschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
general.ucf
NET "mcb3_dram_a[0]" LOC = "H2" ; NET "mcb3_dram_a[10]" LOC = "G4" ; NET "mcb3_dram_a[11]" LOC = "C1" ; NET "mcb3_dram_a[12]" LOC = "D1" ; NET "mcb3_dram_a[13]" LOC = "G6" ; NET "mcb3_dram_a[1]" LOC = "H1" ; NET "mcb3_dram_a[2]" LOC = "H5" ; NET "mcb3_dram_a[3]" LOC = "K6" ; NET "mcb3_dram_a[4]" LOC
in „MIG mit AXI4 Interfacenauf Spartan 6“ · FPGA, VHDL & Co. ·
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PDF
AN-9010.PDF
Temperature (T J D www.onsemi.com 15 AN−9010/D • Case Temperature (T ): Temperature at a point T * T C R + J C [°CńW] of the package that has the semiconductor chip inside. qJC P D (eq. 13) • Heat Sink Temperature (T )S Condition T C 25°C means the infinite heat sink is • Ambient Temperature (T ):ATemperature
in „SMD Mosfet mit Z-Diode für induktive Last“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTA316B-600C.pdf
trigger voltage V D 12 V; I T 0.1 A; T =j25 °C; - 0.8 1 V Fig. 11 V D 400 V; I T 0.1 A; T =j125 °C; 0.25 0.4 - V Fig. 11 ID off-state current V D 600 V; T =j125 °C - 0.1 0.5 mA Dynamic characteristics dV Ddt rate of rise of off-statV DM = 402 V; T j 125 °C; (V DM = 67% 500 - - V/µs voltage of VDRM ); exponential waveform; gate open circuit dIcom/dt rate of change of V D 400 V; T =j125 °C; I T(RMS)= 16 A; 15 - - A/ms commutating current dV com/dt = 20 V
in „Gibt es einen Triac der zwischen zwei Ausgängen wechseln kann?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TheHelperV2.pdf
1 2 3 4 5 6 SWD: I2C1: I2C3: ====== ====== ====== PG10: Reset PA15: SCL PA8: SCL PA14: SWCLK PB7: SDA PB5: SDA Place close to U2 +12V +3.3V +3.3VA PA13: SWDIO J1 L1 1 A 4 600R@100MHz A Power Input 2 C1 C9 C2 C7 C8 3 4u7/
in „Schaltplancheck Powermonitor“ · Mikrocontroller und Digitale Elektronik ·
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Datei
factoryvars.txt
adc_change34_reg : 200000a * * adc_ctr12_reg : 0 * adc_ctr34_reg : 0 * * S1Ptr : 91cc00 * S2Ptr : 920c00 * * S3Ptr : 924c00 * S4Ptr : 928c00 * * ------------------------------------*-------------------------------------* * MainTimebase : 13 * timebase register : ffffffe7 * * DelayedTimebase : 1 * Frame
in „Wittig(welec) DSO W20xxA Open Source Firmware (Teil5)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irg4bc30w.pdf
99 150 IC= 12A, VCC = 480V f Fall Time — 67 100 V GE= 15V, RG= 23Ω Eon Turn-On Switching Loss — 0.13 — Energy losses include "tail" Eoff Turn-Off Switching Loss — 0.13 — mJ See Fig. 9, 10, 13, 14 Ets Total Switching Loss — 0.26 0.35 d(on) Turn-On Delay Time — 24 — TJ= 150°C, r Rise Time — 17 — ns IC
in „Ersatz für IGBT G4BC30W“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
CH340G_UNO_ArduinoBoard_3.pdf
MSFM050-2 (0.5A) 5 VCC R7 7 3 4 2 TX GND 5 6 GND VCC 3 +5V 1K 6 GND 4 GND 8 "L"-LED HEADER 3X2 Vcc U5C LM358 CON4 C LM358 VCC C Vee J5 4 10 SCL GND R6 D2 9 SDA AREF 8 AREF C5 10K S0157 ZU4 GND 7 GND 29 17 SCK RES/PC6 SCK/PB5 16 MISO 6 D13 0U1 MISO/PB4 15 5 D12 MOSI/PB3 MOSI 4 D11 AREF AREF 20 AREF SS/PB2 14 SS 3 D10 X2 C4 13 IO9 S USB-JACK-MINI OC1/PB1 12 IO8 2 D9 U 0u1 ICP/PB0 1 D8 B +B 1 USBVCC 18 AVCC C DM 2 ZU3 VCC C8 ADC7 22 IOH N 3 1 16 19 J6 N DP 4 OUT GND 2 GND VCC 15 21 ADC6 28 AD5/SCL C COM C1 TXD R232 0u1
in „Arduino CH340G UNO mit ATMEGA328P-TQFP32 China Board Informationen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CH340G_UNO_ArduinoBoard_3.pdf
MSFM050-2 (0.5A) 5 VCC R7 7 3 4 2 TX GND 5 6 GND VCC 3 +5V 1K 6 GND 4 GND 8 "L"-LED HEADER 3X2 Vcc U5C LM358 CON4 C LM358 VCC C Vee J5 4 10 SCL GND R6 D2 9 SDA AREF 8 AREF C5 10K S0157 ZU4 GND 7 GND 29 17 SCK RES/PC6 SCK/PB5 16 MISO 6 D13 0U1 MISO/PB4 15 5 D12 MOSI/PB3 MOSI 4 D11 AREF AREF 20 AREF SS/PB2 14 SS 3 D10 X2 C4 13 IO9 S USB-JACK-MINI OC1/PB1 12 IO8 2 D9 U 0u1 ICP/PB0 1 D8 B +B 1 USBVCC 18 AVCC C DM 2 ZU3 VCC C8 ADC7 22 IOH N 3 1 16 19 J6 N DP 4 OUT GND 2 GND VCC 15 21 ADC6 28 AD5/SCL C COM C1 TXD R232 0u1
in „Arduino Uno über 9-Pol D-Sub FTDI programmieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CH340G_UNO_ArduinoBoard_3.pdf
MSFM050-2 (0.5A) 5 VCC R7 7 3 4 2 TX GND 5 6 GND VCC 3 +5V 1K 6 GND 4 GND 8 "L"-LED HEADER 3X2 Vcc U5C LM358 CON4 C LM358 VCC C Vee J5 4 10 SCL GND R6 D2 9 SDA AREF 8 AREF C5 10K S0157 ZU4 GND 7 GND 29 17 SCK RES/PC6 SCK/PB5 16 MISO 6 D13 0U1 MISO/PB4 15 5 D12 MOSI/PB3 MOSI 4 D11 AREF AREF 20 AREF SS/PB2 14 SS 3 D10 X2 C4 13 IO9 S USB-JACK-MINI OC1/PB1 12 IO8 2 D9 U 0u1 ICP/PB0 1 D8 B +B 1 USBVCC 18 AVCC C DM 2 ZU3 VCC C8 ADC7 22 IOH N 3 1 16 19 J6 N DP 4 OUT GND 2 GND VCC 15 21 ADC6 28 AD5/SCL C COM C1 TXD R232 0u1
in „Komisches Verhalten von RX am Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CH340G_UNO_ArduinoBoard_3.pdf
MSFM050-2 (0.5A) 5 VCC R7 7 3 4 2 TX GND 5 6 GND VCC 3 +5V 1K 6 GND 4 GND 8 "L"-LED HEADER 3X2 Vcc U5C LM358 CON4 C LM358 VCC C Vee J5 4 10 SCL GND R6 D2 9 SDA AREF 8 AREF C5 10K S0157 ZU4 GND 7 GND 29 17 SCK RES/PC6 SCK/PB5 16 MISO 6 D13 0U1 MISO/PB4 15 5 D12 MOSI/PB3 MOSI 4 D11 AREF AREF 20 AREF SS/PB2 14 SS 3 D10 X2 C4 13 IO9 S USB-JACK-MINI OC1/PB1 12 IO8 2 D9 U 0u1 ICP/PB0 1 D8 B +B 1 USBVCC 18 AVCC C DM 2 ZU3 VCC C8 ADC7 22 IOH N 3 1 16 19 J6 N DP 4 OUT GND 2 GND VCC 15 21 ADC6 28 AD5/SCL C COM C1 TXD R232 0u1
in „Stromquelle bevorzugen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
INTERFACE_FT2232H.pdf
symbol shown in Figure 3.1. 3.1.1 Schematic Symbol 4 9 2 7 4 0 1 2 6 V V V V V V V V 50 VREGIN P P C C C C C C C ADBUS0 16 Y L R R R I I I I 17 49 E E E O O O O ADBUS1 18 VREGOUT ADBUS2 19 ADBUS3 21 ADBUS4 22 ADBUS5 23 ADBUS6 24 ADBUS7 ACBUS0 26 7 DM ACBUS1 27 8 DP ACBUS2 28 ACBUS3 29 6 REF ACBUS4 30
in „LC Filter nach LDO nötig?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS_FT2232H.pdf
symbol shown in Figure 3.1. 3.1.1 Schematic Symbol 4 9 2 7 4 0 1 2 6 V V V V V V V V 50 VREGIN P P C C C C C C C ADBUS0 16 Y L R R R I I I I 17 49 E E E O O O O ADBUS1 18 VREGOUT ADBUS2 19 ADBUS3 21 ADBUS4 22 ADBUS5 23 ADBUS6 24 ADBUS7 ACBUS0 26 7 DM ACBUS1 27 8 DP ACBUS2 28 ACBUS3 29 6 REF ACBUS4 30
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PDF
DS_FT2232H.pdf
symbol shown in Figure 3.1. 3.1.1 Schematic Symbol 4 9 2 7 4 0 1 2 6 V V V V V V V V 50 VREGIN P P C C C C C C C ADBUS0 16 Y L R R R I I I I 17 49 E E E O O O O ADBUS1 18 VREGOUT ADBUS2 19 ADBUS3 21 ADBUS4 22 ADBUS5 23 ADBUS6 24 ADBUS7 ACBUS0 26 7 DM ACBUS1 27 8 DP ACBUS2 28 ACBUS3 29 6 REF ACBUS4 30
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PDF
IRLR6225PBF_NMOS.pdf
Ratings Parameter Max. Units VDS Drain-to-Source Voltage 20 V VGS Gate-to-Source Voltage ±12 I@ T = 25°C Continuous Drain Current,@ 10V 100h D C GS D@ T C 100°C Continuous Drain CurreGS,@ 10V 63h A DM Pulsed Drain Currcnt 400 P @T = 25°C Power Dissipation D C 63 W PD@ T C 100°C Power Dissipation 25 Linear
in „FET abgeraucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Si9435BDY.PDF
D −4.6 −3.2 A A Pulsed Drain Current I −30 DM continuous Source Current (Diode Conduction) I −2.3 −1.1 S TA= 25_C 2.5 1.3 Maximum Power Dissipation P W TA= 70_C D 1.6 0.8 Operating Junction and Storage Temperature Range TJ, stg −55 to 150 _C THERMAL
in „AVR Ausgang an FET, galvanisch getrennt, so ok?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRF8736.pdf
Drain-to-Source Voltage 30 V VGS Gate-to-Source Voltage ± 20 Continuous Drain Current, V0V D @ TA= 25°C GS 18 D @ TA= 70°C Continuous Drain CurreGS, V0V 14.4 A Pulsed Drain Current DM 144 PD@T A 25°C Power Dissipation 2.5 W Power Dissipation PD@T A 70°C 1.6 Linear Derating Factor 0.02 W/°C TJ Operating
in „IRF8736 - Was haltet Ihr davon?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRFP450B-1.pdf
ballasts based on half bridge. D ! ● ◀ ▲ G! ● TO-3P ! G D S IRFP Series S Absolute Maximum Ratings TC= 25°C unless otherwise noted Symbol Parameter IRFP450B Units V Drain-Source Voltage 500 V DSS D Drain Current - Continuous (C= 25°C) 14 A - Continuous (T = 100°C) C 8.8 A DM Drain Current - Pulsed (Note 1)
in „Suche IRFP 450B“ · Markt ·
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PDF
phoenix-contact-1574198-de.pdf
MΩ Klimatische Prüfung Prüfspezifikation DIN EN ISO 22479:2022-08 3 3 Korrosionsbeanspruchung 0,2 dm SO a2f 300 dm /40 °C/1 Zyklus Wärmebeanspruchung 100 °C/168 h Stehwechselspannung 2,21 kV Umgebungsbedingungen Umgebungstemperatur (Betrieb) -60 °C ... 100 °C (in Abhängigkeit der Derating-Kurve) Umgebungstemperatur (Lagerung/Transport) -40 °C ... 70 °C Relative Luftfeuchte (Lagerung/Transport) 30 % ... 70 % Umgebungstemperatur (Montage) -5 °C ... 100 °C Verpackungsangaben Verpackungsart verpackt im Karton 07.08.2024, 09:06 Seite 4 (9) PST
in „KNX-Stiftleiste Phönix 1574198 -> Alternativen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
u-boot-output.txt
57)33 17 (23~64)43 25 (17~57)37 2 (20~70)45 10 (15~61)38 18 (26~69)47 26 (19~64)41 3 (17~68)42 11 (13~58)35 19 (21~64)42 27 (19~61)40 4 (21~71)46 12 (17~63)40 20 (23~71)47 28 (23~66)44 5 (20~71)45 13 (16~62)39 21 (23~73)48 29 (19~65)42 6 (25~71)48 14 (13~62)37 22 (25~70)47 30 (17~62)39 7 (29~72)50 15
in „Linux Kernel 5.1.1. auf dem BPi-R2“ · PC Hard- und Software ·
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PDF
MTP12P10_D-.pdf
− Non−repetitivp (t0 ms) VGSM ±40 Vpk Drain Current − Continuous ID 12 Adc Drain Current − Pulsed DM 28 TO−220AB Total Power Dissipation PD 75 W CASE 221A MTP12P10G Derate above 25°C 0.6 W/°C STYLE 5 AYWW Operating and Storage Temperature RangeTJ, stg −65 to 150 °C 1 2 3 Thermal Resistance °C/W − Junction
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PDF
s1d13700.pdf
A14 FPDAT3 A13 64 17 VSS 1 16 S 2 1 0 9 8 D 7 6 5 4 D 3 2 1 0 V A A A A A V A A A A V A A A A I E H R C Figure 5-1 Pinout Diagram (TQFP13 - 64 pin) S1D13700F01 Hardware Functional Specification X42A-A-002-04 Issue
in „LPC2140 an S1D13700 Display driver“ · Mikrocontroller und Digitale Elektronik ·
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PDF
s1d13700.pdf
A14 FPDAT3 A13 64 17 VSS 1 16 S 2 1 0 9 8 D 7 6 5 4 D 3 2 1 0 V A A A A A V A A A A V A A A A I E H R C Figure 5-1 Pinout Diagram (TQFP13 - 64 pin) S1D13700F01 Hardware Functional Specification X42A-A-002-04 Issue
in „[V] 8 LCDs 320x240 s/w, 6 Zoll, Touch, inkl Controller“ · Markt ·
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PDF
s1d13700.pdf
A14 FPDAT3 A13 64 17 VSS 1 16 S 2 1 0 9 8 D 7 6 5 4 D 3 2 1 0 V A A A A A V A A A A V A A A A I E H R C Figure 5-1 Pinout Diagram (TQFP13 - 64 pin) S1D13700F01 Hardware Functional Specification X42A-A-002-04 Issue
in „Erste GLCD (Touch) -Schaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
s1d13700.pdf
A14 FPDAT3 A13 64 17 VSS 1 16 S 2 1 0 9 8 D 7 6 5 4 D 3 2 1 0 V A A A A A V A A A A V A A A A I E H R C Figure 5-1 Pinout Diagram (TQFP13 - 64 pin) S1D13700F01 Hardware Functional Specification X42A-A-002-04 Issue
in „[v] LCDs 320x240 s/w, 6 Zoll, Touch, inkl Controller“ · Markt ·
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PDF
s1d13700_320-240_display.pdf
A14 FPDAT3 A13 64 17 VSS 1 16 S 2 1 0 9 8 D 7 6 5 4 D 3 2 1 0 V A A A A A V A A A A V A A A A I E H R C Figure 5-1 Pinout Diagram (TQFP13 - 64 pin) S1D13700F01 Hardware Functional Specification X42A-A-002-04 Issue
in „Anstuerung eines Grafik LCDs. Fragen zu Display und Controller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRG4BC30U_IR.pdf
— 2.52 — I = 23A See Fig.2, 5 CE(ON) V C — 2.09 — IC=12A,T J150°C V Gate Threshold Voltage 3.0 — 6.0 V = V ,I = 250µA GE(th) CE GE C ∆VGE(th)TJ Temperature Coeff. of Threshold Volta—e -13 — mV/°C VCE = VGE C= 250µA g Forward Transconductance
in „Ersatz für IGBT G4BC30W“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
ausgabe.txt
U-Boot 1.3.2-g02c22ce0-dirty (May 14 2008 - 13:13:06) U-Boot code: 00000000 -> 0000e820 data: 00014098 -> 0001a788 SDRAM: 64 MB at address 0x10000000 Testing SDRAM...OK malloc: Using memory from 0x13fa5000 to 0x13fe5000
in „grasshopper Atmel buildroot 2.3.0 kompilieren avr32.ext2 make error 1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_irgbc20f.pdf
16 21 IC= 9.0A Q Gate - Emitter Charge (turn-on) — 2.4 3.4 nC V = 400V See Fig. 8 ge CC Qgc Gate - Collector Charge (turn-on) — 7.8 10 V GE= 15V t Turn-On Delay Time — 24 — T = 25°C d(on) J r Rise Time — 13 — ns IC= 9.0A, CC = 480V t Turn-Off Delay Time — 160 270
in „LTspice XVII: IGBT einfügen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRFR2307Z.pdf
Currect DM 210 P D@T C = 25°C Power Dissipation 110 W Linear Derating Factor 0.70 W/°C V GS Gate-to-Source Voltage ± 20 V E Single Pulse Avalanche Energy 100 mJ AS (Thermally limited) E AS(Tested ) Single Pulse
in „MOSFET IRFR2307Z“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ZXM61N02F.pdf
Drain Current (V GS=4.5V; TA=25°C)(b) D 1.7 A (VGS=4.5V; TA=70°C)(b) 1.3 Pulsed Drain Current (c) DM 7.4 A Continuous Source Current (Body Diode) (b) I 0.8 A S Pulsed Source Current (Body Diode) SM 7.4 A Power Dissipation at TA=25°C
in „74LS109 Toggelt nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
nFET_ZXM61N02FTA.pdf
Drain Current (V GS=4.5V; TA=25°C)(b) D 1.7 A (VGS=4.5V; TA=70°C)(b) 1.3 Pulsed Drain Current (c) DM 7.4 A Continuous Source Current (Body Diode) (b) I 0.8 A S Pulsed Source Current (Body Diode) SM 7.4 A Power Dissipation at TA=25°C
in „ESP8266 Module mit Batterie betreiben - Strom sparen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
nFET_ZXM61N02FTA.pdf
Drain Current (V GS=4.5V; TA=25°C)(b) D 1.7 A (VGS=4.5V; TA=70°C)(b) 1.3 Pulsed Drain Current (c) DM 7.4 A Continuous Source Current (Body Diode) (b) I 0.8 A S Pulsed Source Current (Body Diode) SM 7.4 A Power Dissipation at TA=25°C
in „Wellenlänge Infrarot Leuchtdiode?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
nFET_ZXM61N02FTA.pdf
Drain Current (V GS=4.5V; TA=25°C)(b) D 1.7 A (VGS=4.5V; TA=70°C)(b) 1.3 Pulsed Drain Current (c) DM 7.4 A Continuous Source Current (Body Diode) (b) I 0.8 A S Pulsed Source Current (Body Diode) SM 7.4 A Power Dissipation at TA=25°C
in „3.3V MOSFET ersetzen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
nFET_ZXM61N02FTA-1.pdf
Drain Current (V GS=4.5V; TA=25°C)(b) D 1.7 A (VGS=4.5V; TA=70°C)(b) 1.3 Pulsed Drain Current (c) DM 7.4 A Continuous Source Current (Body Diode) (b) I 0.8 A S Pulsed Source Current (Body Diode) SM 7.4 A Power Dissipation at TA=25°C
in „ATtiny13A: ESP8266 ein- und ausschalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
nFET_ZXM61N02FTA.pdf
Drain Current (V GS=4.5V; TA=25°C)(b) D 1.7 A (VGS=4.5V; TA=70°C)(b) 1.3 Pulsed Drain Current (c) DM 7.4 A Continuous Source Current (Body Diode) (b) I 0.8 A S Pulsed Source Current (Body Diode) SM 7.4 A Power Dissipation at TA=25°C
in „richtiger n-Kanal MOSFET, 3,3V soll 5V und 100mA schalten“ · Analoge Elektronik und Schaltungstechnik ·