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MOSFET-FCPF20N60.pdf
Operating Area F E for FCP20N60 for FCPF20N60 T 2 Operation in This Area 2 Operation in This Area 10 is Limited DS(on) 10 is Limited DS(on) 100 us ] ] 100 us [ 10 1 1 ms [ 101 1 ms n 10 ms n r r 10 ms u DC u 100 ms C 10 0 C 100 i i DC r r , Notes : , Notes : ID -1 1. C= 2°C ID -1 1. C= 2°C 10 2. J= 15°C 10 2. J= 15°C 3. Single Pulse 3. Single Pulse -2 -2 10 0 1 2 3 10 0 1 2 3 10 10 10 10 10 10 10 10 V , Drain-Source Voltage [V] V , Drain-Source Voltage [V] DS DS Figure 10. Maximum Drain Current vs. Case
in „Berechnen Irr von MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1789204.pdf
Power Supply Supply Voltage V 4.5 — 18.0 V DD Power Supply Current IS — 0.85 1.1 mA VIN= 3V IS — 0.10 0.20 mA VIN= 0V Note 1: Switching times ensured by design. 2: Tested during characterization, not production tested. 2007-2013 Microchip Technology Inc. DS20002052C-page 3 MCP1401/02 DC CHARACTERISTICS
in „Low Side MOSFET Treiber als Pegelwandler“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
ds18x20lib.c
used_pin); // define as input _delay_us(10); } if (wrbit ==1) { DS1820_DDR |= 1<<used_pin; // define as ouput _delay_us(6); DS1820_DDR &= ~(1<<used_pin); // define as input _delay_us(64); } } //----------------------------------------- // Read
in „DS18B20 probleme mit Pull-Up“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irf7389.pdf
N-P ±100 nA VGS = ±20V Q Total Gate Charge N-Ch 22 33 g P-Ch 23 34 N-Channel N-Ch 2.6 3.9 D = 5.8A, DS = 15V, GS = 10V Q gs Gate-to-SourceCharge nC P-Ch 3.8 5.7 P-Channel Q Gate-to-Drain("Miller")Charge N-Ch 6.4 9.6 gd P-Ch 5.9 8.9 D = -4.9A, DS= -15V, GS = -10V N-Ch 8.1 12 td(on) Turn-On Delay Time N-Channel
in „Treiber für Push-Pull 12V?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irf7389.pdf
N-P ±100 nA VGS = ±20V Q Total Gate Charge N-Ch 22 33 g P-Ch 23 34 N-Channel N-Ch 2.6 3.9 D = 5.8A, DS = 15V, GS = 10V Q gs Gate-to-SourceCharge nC P-Ch 3.8 5.7 P-Channel Q Gate-to-Drain("Miller")Charge N-Ch 6.4 9.6 gd P-Ch 5.9 8.9 D = -4.9A, DS= -15V, GS = -10V N-Ch 8.1 12 td(on) Turn-On Delay Time N-Channel
in „Brushless DC Motorsteureung Dysfunktion AVR444“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BUK7514-55A.pdf
, T = 25 ˚C.j Fig.8. Typical transfer characteristics. ID = f(V DS parameter V GS D = f(V )GS conditions: V DS = 25 V; parameter T j RDS(ON)/mOhm 30 30 5.5 6.0 gfs/S 28 25 26 24 20 22 15 20 6.5 18 7.0 10 16 7.5 14 8.0 5 12 10.0 10 0 5 10 15 20 25 30 35 40 45 50 0 20
in „Wärmewiderstandsberechnung FET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BUK_7514-55.pdf
, T = 25 ˚C.j Fig.8. Typical transfer characteristics. ID = f(V DS parameter V GS D = f(V )GS conditions: V DS = 25 V; parameter T j RDS(ON)/mOhm 30 30 5.5 6.0 gfs/S 28 25 26 24 20 22 15 20 6.5 18 7.0 10 16 7.5 14 8.0 5 12 10.0 10 0 5 10 15 20 25 30 35 40 45 50 0 20
in „Brauche Hilfe bei Motoransteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KM416C1204C.pdf
time (rise and fall) T 2 50 2 50 2 50 ns 2 RAS precharge time RP 30 30 40 ns RAS pulse width RAS 45 10K 50 10K 60 10K ns RAS hold time RSH 13 13 17 ns CAS hold time CSH 36 40 50 ns CAS pulse width CAS 7 10K 8 10K 10 10K ns 18 RAS to CAS delay time RCD 19 31 20 35 20 43 ns 4 RAS to column address delay
in „Suche DRAM Chips“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt.pdf
IN 60 pF TC9402 VIN – +5V 0V –10V 510 kΩ Zero Adjust Op Amp 50 kΩ 2 + -5V IBIAS VSS VREF GND 1 4 7 6 Adjust 10 kΩ R BIAS 100 kΩ Reference Voltage (Typically -5V) -5V FIGURE 3-1: 10 Hz to 10 kHz V/F Converter. DS21483D-page 8 © 2007
in „Frequenz-Spannungswandler OP-Verstärkung“ · Mikrocontroller und Digitale Elektronik ·
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DS2450_ADU.pdf
before issuing a reset pulse should result in all 1’s if the conversion time was calculated correctly. 10 of 24 DS2450 With V CC power supply the bus master may either send a reset pulse to exit the Convert command or continuously generate read data time slots. As long as the DS2450 is busy with conversions
in „1-Wire Quad ADC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
device_list_hilo_all03_v9-12.pdf
*CAT28F002B *CAT28F002T CAT28F010/I CAT28F010V5/I CAT28F020/I CAT28F512/I CAT28F512V5/I <<DALLAS>> DS1213B (2K*8) DS1213B (8K*8) DS1213C (32K*8) DS1213C (8K*8) DS1213D (128K*8) DS1213D (32K*8) DS1213D (512K*8) DS1213D (8K*8) DS1216B (2K*8) DS1216B/C/E (8K*8) DS1216C/D/E (32K*8) DS1216D/F (128K*8) DS1216F (32K*8) DS1216F (8K*8) DS1220Y/AB/AD DS1225AB/AD/D/E/Y DS1230Y/AB DS1235Y/AB DS1243Y DS1244Y DS1245EE DS1245Y/AB DS1248Y DS1286 DS12887 DS1386 (32K*8) DS1386 (8K*8) DS1387 DS1486 DS1630Y/AB DS1642 DS1643 DS1645EE
in „PROM programmieren“ · Mikrocontroller und Digitale Elektronik ·
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DCL9G_ds300.pdf
Table 2: Maximum JTAG Clock Frequencies CText Display Maximum JTAG Clock Device Family Frequency Units DS300_10_111904 Figure 10: iMPACT Status Bar XC9500/XL/XV 10 MHz XPLA3 10 MHz Status Indicator CoolRunner-II 33 MHz Platform Cable USB uses a bi-color Status LED to indicate XC18V00 10 MHz the presence
in „USBprog CPLD Starterkit Wie bauen?“ · FPGA, VHDL & Co. ·
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PDF
sct2080ke-e.pdf
VGS 20V VGS 16V VGS 20V 35 18 VGS 14V VGS 18V V GS14V 16 30 ] A 14 VGS 12V [ 25 [ I ID 12 t t n 20 e 10 r VGS 12V r u 15 u 8 C C i VGS 10V a 6 V GS10V r 10 r D D 4 5 T a 25ºC T = 25ºC Pulsed 2 a Pulsed 0 0 0 2 4 6 8 10 0 1 2 3 4 5 Drain - Source Voltage : DS[V] Drain - Source Voltage :DS [V] Fig.6 Typical
in „Datenblatt fraglich?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
oneWire.c
[4]=0; scratchpad[5]=0; scratchpad[6]=0; scratchpad[7]=0; scratchpad[8]=0; error=ds1820_reset(port, used_pin); //1. Reset if (error==0){ ds1820_wr_byte(0xCC, port, used_pin); //2. skip ROM ds1820_wr_byte(0x44, port, used_pin); //3. ask for temperature conversion while (GPIO_ReadInputDataBit
in „Timingproblem mit Onewire und STM32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
D170086D.pdf
-11 DS012661-9 DS012661-10 5 www.national.com Typical Performance Characteristics (Circuits of Figure 2 and Figure 3) Unless otherwise specified, VIN= 12V for 3.3V, 5.0V and ADJ versions, VIN = 24V for 12V
in „LM2528-3.3 & SI4735 & Bluetooth anliegen“ · Mikrocontroller und Digitale Elektronik ·
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EMB20P03G.pdf
J On‐State Drain Current 1 I V = ‐5V, V = ‐10V ‐10 A D(ON) DS GS 1 Drain‐Source On‐State Resistance R DS(ON) VGS= ‐10V, I D ‐10A 17.5 20 mΩ V GS ‐4.5V, I D ‐7A 26 35 1 Forward Transconductance gfs V DS ‐5V, I D ‐10A 24 S DYNAMIC Input Capacitance C iss 1407 V = 0V, V = ‐15V, f = 1MHz Output Capacitance C oss GS DS 208 pF Reverse Transfer Capacitance C rss 164 Gate Resistance Rg V GS 15mV, V = 0DS f = 1MHz 4.5 Ω Total Gate Charge 1,2 Q gV GS0V) 20.3 Q g VGS4.5V ) V DS = ‐15V, V GS‐10V, 9.8 I = ‐10A nC Gate‐Source
in „Logo & Bezeichnung von defektem IC gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2sk3142.pdf
(BR)DSS 30 — — V ID= 10 mA, V GS = 0 Gate to source leak current GSS — — 0.1 A V GS= 20 V, V DS= 0 Zero gate voltege drain current DSS — — 10 A V DS= 30 V, VGS= 0 Gate to source cutoff voltage V 1.0 — 2.5 V I = 1 mA, V = 10
in „Geiger Counter Sparkfun“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ixys_21N100Q.pdf
.1. OutputCharacteristicsat25 C Fig.2. OutputCharacteristicsat125 C 50 30 O T = 125 C TJ= 25 C V = 10V J V = 10V 40 GS 25 GS 9V 9V s 8V 7V s 20 8V r r 7V e 30 e p p 15 6V A A - 20 - ID ID 10 6V 10 5V 5 5V 0 0 0 5 10 15 20 25 0 5 10 15 20 25 30 V - Volts V - Volts DS DS Fig.3. R vs.DrainCurrent Fig.4.R vs.T DS(ON) DS(ON) J 3.0 3.0 VGS= 10V V = 10V GS d 2.5 TJ= 125 C d 2.5 z e I = 21A l l 2.0 D a 2.0 a r r o o 1.5 - - N 1.5 ) ID= 10.5A ( T = 25 C ( 1.0 D J D R 1.0 R 0.5 0.5 0.0 0 5 10 15 20 25 30 -25 0 25 50
in „SMA SB4200TL-MS Reparatur“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TPCA8028-H_datasheet_en_20080122.pdf
−55°C o ID = 50 A D - 0.1 20 25 i 25 r D 12.5 0 0 0 1 2 3 4 5 0 2 4 6 8 10 Gate-source voltage VGS (V) Gate-source voltage VGS (V) ⎪Y fs⎪ – D R DS (ON) – D ) 1000 Common source 10 ( V DS = 10 V Common source | Pulse test Ta = 25°C f e Pulse test | n 100 t c s Ω n Ta = −55°C r m i - ( m 25 O ) d 10 100 e N r r ( 4.5 f u S n s R r i t 1 r VGS = 10V r D w o F 0.1 1 0.1 1 10 100 0.1 1 10 100 Drain current D (A) Drain current D (A) 4 2008-01-22 TPCA8028-H R – Ta I – V DS (ON) DR DS 5 100 Common source
in „Ersatz für TPCA8028-H“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM567.pdf
RETS567X drawing for specifications of military LM567H version. www.national.com 2 Schematic Diagram DS006975-3 Typical Performance Characteristics Typical Frequency Drift Typical Bandwidth Variation Typical Frequency Drift DS006975-10 DS006975-11 DS006975-12 3 www.national.com Typical Performance Characteristics
in „Frage zum NE567“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
_0)){ u8_ho++; delay_ms(1000); ds1307_write_byte(0x02, ((u8_ho & HOURS) | CH)); } if(!io_get(GPIO_PUSH_BUTTON_1)){ state=Zeithours10; delay_ms(1000); } break; case Zeithours10: if(!io_get(GPIO_PUSH_BUTTON_0)){ u8_ho10++; delay_ms(1000); ds1307_write_byte(0x02, (((u8_min & HOURS)+((u8_ho10 <<4)& HOURS10)) | CH)); } if(!io_get(GPIO_PUSH_BUTTON_1)){ state=Zeitbestaetigen; delay_ms(1000); } break; case Zeitbestaetigen: ds1307_write_byte(0x00
in „AVR32 Timer Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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40146F.pdf
TXWAK=0) TBP=3XTE TBP TE LOGIC 0 LOGIC 1 Duty Cycle: 1/6-2/6 (TXWAK=1) TBP=6XTE TBP TXWAK=0 TBP 1 6 10 SPM=1 TXWAK=1 SPM=0 33% Duty Cycle Guard 18xTE Preamble 10xTE Sync 10xTEHeader Encrypted Portion Fixed Code Portion Time Pulse Code Word DS40146F-page 12 © 2011 Microchip Technology Inc. HCS361 FIGURE
in „Fehlersuche Funksender Zentralverriegelung Toyota Yaris“ · Fahrzeugelektronik ·
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PDF
PIC12F508_Datasheet.pdf
AN522 “Power-Up Considerations” (DS00522) and Reset. A maximum rise time for V DD is specified. See Section 10.0 “Electrical Characteristics” for details. AN607 “Power-up Trouble Shooting” (DS00607). When the devices start normal operation
in „Funktion Reifendruckanlerngerät EL-50448; OEC-T5; Welches Bauelement ist das?“ · Fahrzeugelektronik ·
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PDF
PIC12F508.pdf
AN522 “Power-Up Considerations” (DS00522) and Reset. A maximum rise time for V DD is specified. See Section 10.0 “Electrical Characteristics” for details. AN607 “Power-up Trouble Shooting” (DS00607). When the devices start normal operation
in „Funktion Reifendruckanlerngerät EL-50448; OEC-T5; Welches Bauelement ist das?“ · Fahrzeugelektronik ·
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Datei
test.ino.asm
cpse r18, r19 31a: 28 c0 rjmp .+80 ; 0x36c <__vector_11+0xf0> irq_flag = irq_flag_e::end; 31c: 10 92 67 01 sts 0x0167, r1 ; 0x800167 <ds+0xe> 320: 10 92 66 01 sts 0x0166, r1 ; 0x800166 <ds+0xd> 324: 23 c0 rjmp .+70 ; 0x36c <__vector_11+0xf0> PINB = (1 << PINB5); uint16_t delay = 0; switch (irq_flag
in „Atmega328 1-Wire mit Timer CTC/PWM“ · Mikrocontroller und Digitale Elektronik ·
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70599B.pdf
1 H 0 2 M 1 DS70599B-page 10 Preliminary 2009 Microchip Technology Inc. MRF24J40MB TABLE 2-1: MRF24J40MB BILL OF MATERIALS Designator Description Manufacturer Part Number C2 Chip Capacitor 0402 COG 0.5P Johanson
in „AVR32UC3B mit Funkmodul MRF24J40MB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
VMO1200-01F.pdf
auxiliary AC drives of TVJ 125°C 6 mA electric vehicles I V = ± 20 V;V = 0 V 1.2 µA - DC drives GSS GS DS Q g 1710 nC - power supplies Q V = 10 V;V = 50 V; I = 1000 A 396 nC gs GS DS D Q gd 1020 nC td(on) 360 ns tr inductive load 1620 ns td(off) 460 ns tf VGS= 10 V;V DS= 50 V 1020 ns E D = 1000 A; RG= 1.8
in „Impulsströme“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
VMO1200-01F.pdf
auxiliary AC drives of TVJ 125°C 6 mA electric vehicles I V = ± 20 V;V = 0 V 1.2 µA - DC drives GSS GS DS Q g 1710 nC - power supplies Q V = 10 V;V = 50 V; I = 1000 A 396 nC gs GS DS D Q gd 1020 nC td(on) 360 ns tr inductive load 1620 ns td(off) 460 ns tf VGS= 10 V;V DS= 50 V 1020 ns E D = 1000 A; RG= 1.8
in „Wie wähle ich Treiber für VMO1200-01F?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Heizplattenregler_DS18S20.c
/* * Heizplattenregler_DS18S20.c * * Created: 07.11.2011 21:53:45 * Author: Rocco * PORT D als LED Temperaturanzeige * PIN B als Soll Temperatur Input über 8er DIL Schalter * PORT C zum Anschluss des DS18S20 und eines Relais
in „Heizungssteuerung mit DS18S20 Relais "blinkt"“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MPLAYER.ASM
mov bx,[fi_Length] mov ch,TICol mov cl,TIRow-2 mov ah,Attr_BlackOnGrey call stringout push cs pop ds mov ah,035 mov al,010 int 021 jnc storeint10 jmp ps_error1 storeint10: lea si,OldInt10 mov [si],bx mov [si+2],es mov ah,025 mov al,010 push cs pop ds lea dx,vgahook int 021 push cs pop ds jnc insttimerhook
in „Kennt sich jemand mit Tastatur Puffern aus ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SI4946BEY.pdf
V = 60 V, V = 0 V 1 Zero Gate Voltage Drain Current I DS GS µA DSS VDS = 60 V, GS = 0 V, J = 55 °C 10 On-State Drain Current D(on) VDS ≥ 5 V, GS = 10 V 30 A a VGS = 10 V, D = 5.3 A 0.033 0.041 Drain-Source On-State Resistance R DS(on) Ω VGS = 4.5 V,DI = 4.7
in „Frage zu Ic SI4948“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FQP50N06L-244346.pdf
® 0 100 M 1010-1 100 10 0 2 4 6 8 10 O V ,Drain-SourceVoltage[V] V GSate-SourceVoltage[V] S DS F Figure 1. On-Region Characteristics Figure 2. Transfer Characteristics E T 60 e 102 n50 ] t [ i VGS10V n ] s40 r R u Ω n VGS5V
in „Mosfet Treiber (low side) mit current sense Beschaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM386_Low_Voltage_Audio_Power_Amplifier.pdf
Peak-to-Peak Output Voltage vs Supply Voltage (Referred to the Output) Swing vs Supply Voltage vs Frequency DS006976-5 DS006976-13 DS006976-12 Voltage Gain vs Frequency Distortion vs Frequency Distortion vs Output Power DS006976-14 DS006976-15 DS006976-16 Device Dissipation vs Output Device Dissipation vs Output
in „Elektretmikrofon und LM 386N-1 als Verstärker“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm386.pdf
Peak-to-Peak Output Voltage vs Supply Voltage (Referred to the Output) Swing vs Supply Voltage vs Frequency DS006976-5 DS006976-13 DS006976-12 Voltage Gain vs Frequency Distortion vs Frequency Distortion vs Output Power DS006976-14 DS006976-15 DS006976-16 Device Dissipation vs Output Device Dissipation vs Output
in „Spannanungsverstärkung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datasheet.pdf
100 µA V = –16 V, V = 0 DSS DS GS Gate to source cutoff voltage V –1.0 — –2.5 V I = –1 mA, V = –10 V GS(off) D DS Static drain to source on stateR DS(on) — 0.05 0.08 ID= –5 A, VGS= –10 V*1 resistance — 0.09 0.14 ID= –5 A, VGS= –4
in „Suche Mosfet oder Vergleichstyp“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLML6244TRPBF_Datenblatt.pdf
Tj = 25°C Tj = 150°C 0.1 0.1 0.1 1 10 100 0.1 1 10 100 V , Drain-to-Source Voltage (V) V , Drain-to-Source Voltage (V) DS DS Fig 1. Typical Output Characteristics Fig 2. Typical Output Characteristics 100 1.6 e I = 6.3A n D ) t VGS = 4.5V
in „passender FET wie beschalten?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOSFET_IRF630_N-Ch_TO-220AB_200V_9_A.pdf
= 125 C - - 250 µA On-State Drain Current (Note 2) D(ON) V DS > D(ON) x DS(ON)MAX , GS = 10V 9 - - A Gate to Source Leakage Current I V = ±20V - - ±100 nA GSS GS Drain to Source On Resistance (Note 2) rDS(ON) ID= 5A, V GS = 10V (Figure 8, 9) - 0.25 0.4 Ω Forward
in „Hilfe bei transistor auswahl/suche“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PSMN4R8-100PSE.pdf
Nexperia PSMN4R8-100PSE N-channel 100 V 5 mΩ standard level MOSFET with improved SOA in TO220 package 10 4 003aaj966 ID (A) 3 10 Limit DSon= DS D I 2 t =10 µ 10 p 100 µ s 10 1 ms DC 1 10 ms 100 ms -1 10 -1 2 3 10 1 10 10 V (V) 10 DS Fig. 3. Safe operating area; continuous and peak drain currents as a function
in „Problem mit N-MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PDF-Demo_Board.pdf
C GND Q1 1 1 PICDEM 2 PLUS R R S1 S2 S3 DEMO BOARD ©2002 M FIGURE A-1: PICDEM 2 Plus Parts Layout DS51275A-page 16 2002 Microchip Technology Inc. Hardware Detail +5V +5V R7 R1 47K 10K S3 S1 +5V 1 4 1 4 C2 2 3 2 3 0.1uF C1 C9 R19 U1 470 0.1uF 0.1uF 11 10 12 VDD RE2 9 RE2 +5V VDD RE1 RE1 R17 RE0 8 RE0
in „PIC steuert LED sehr seltsam“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRLR7843C.pdf
WIDTH Tj = 25°C Tj = 175°C 0.1 1 0.1 1 10 100 0.1 1 10 100 V , Drain-to-Source Voltage (V) V , Drain-to-Source Voltage (V) DS DS Fig 1. Typical Output Characteristics Fig 2. Typical Output Characteristics 1000 2.0 e I = 30A c D ) t VGS = 10V
in „H-Brücke - 30A - MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BUK100-50GL_1.pdf
) = f(T ); cmbditions: V = 5 V IS ID = f(V ); parameter V ; t = 250 s & t < t DS IS p p d sc 100 ID & IDM / A BUK100-50GL ID / A BUK100-50GL 40 DS/I tp = VIS / V = 6 )V 35 S(ON 10 us 5.5 RD 30 10 5 100 us 25 4.5 1 ms 20 DC 10 ms 15 4 1 100 ms 3.5 10 3 Overload protection characteristics
in „12V/2,5 A Sicher schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PIC24FJ256DA210_Development_Board_User_s_Guide__.pdf
HISTORY Revision A (June 2010) • Initial Release of this Document. 2010 Microchip Technology Inc. DS51911A-page 9 PIC24FJ256DA210 Development Board User’s Guide NOTES: DS51911A-page 10 2010 Microchip Technology Inc. PIC24FJ256DA210 DEVELOPMENT BOARD USER’S GUIDE Chapter 1. Introducing the Development
in „VGA Display am PIC24FJ256DA210 läuft nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BUK100-50.pdf
current V DS= 50 V; VIS 0 V - 1 20 A I Zero input voltage drain current V = 40 V; V = 0 V; T = 125 ˚C - 10 100 A DSS DS IS j R DS(ON) Drain-source on-state V IS5 V; I DM= 7.5 A; p ≤ 300 s; - 85 125 m resistance1
in „MOSFET SCHMILZT“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
LuefterProject.asm
ldi r18,10 ;r18 - 5 >= 0 !!; so just start with 10°C ;ldi r29,0 ;eeprom write address [0...127] MCU_Main_loop: mov gLastTemperature,r18 ;store old temp.-value into gLastTemperature ldi r16,cDS1621_FirstSlave rcall DS1621_startConversion ldi r18,40 ;wait r18*250ms=40*250ms=10sec MCU_Main_loop_sleepLoop: cpi r18,0 breq MCU_Main_loop_read ldi r16,250 rcall MCU_doSleep_1ms dec r18 rjmp MCU_Main_loop_sleepLoop MCU_Main_loop_read
in „AT90s2313 + ds1621 (liest nur Schrott)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS_DA221.pdf
unused unused fs[1] fs[0] Table 31.RANGE register description full scale 00: +/-2g fs[1:0] 01: +/-4g 10: +/-8g 22/ 34 www.miramems.com Mar. 2023 Rev 0.1 DS_da221 7.10. ODR_AXIS (10H) Table 32.ODR_AXIS register Default data: 0x0F Type: RW unused unused unused unused ODR[3] ODR[2] ODR[1] ODR[0] Table 33.
in „Seltsames Verhalten eines Beschleunigungssensors“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADC0804_NSC.pdf
Power Supply Current Linearity Error at Low Temperature vs Temperature (Note 9) V REF/2 Voltages DS005671-44 DS005671-46 DS005671-45 5 www.national.com 5 0 0 TRI-STATE Test Circuits and Waveforms C D = / 1H 1H, L 10 pF 0 8 0 D A 3 8 0 C D DS005671-48 / DS005671-47 t 20 ns 0 r 8 C t t , C=10 pF D 0H
in „Probleme Verständnis ADC 0804-1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADC0801_05.pdf
Power Supply Current Linearity Error at Low Temperature vs Temperature (Note 9) V REF/2 Voltages DS005671-44 DS005671-46 DS005671-45 5 www.national.com 5 0 0 TRI-STATE Test Circuits and Waveforms C D = / 1H 1H, L 10 pF 0 8 0 D A 3 8 0 C D DS005671-48 / DS005671-47 t 20 ns 0 r 8 C t t , C=10 pF D 0H
in „Verständnisfrage zum ADC080x (VIN-MIN/DC-Offset)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PMBFJ620_1.pdf
= 0 V 24 - 60 mA IGSS gate-source leakage current VGS = −15 V; DS = 0 V - - −1 nA R DSon drain-source on-state VGS = 0 V; DS = 100 mV - 50 - resistance yfs common source forward D = 10 mA; VDS = 10 V 10 - - mS transfer admittance yos common source output D = 10
in „Doppelfet für Vorstufe“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS2431-A1.pdf
1-Wire network attached. is valid during a read-time slot. The voltage VILMAX is relevant for the DS2431-A1 when determining a logical level, not triggering any events. Master-to-Slave For a write-one time slot, the voltage on the data line Figure 10 shows the initialization sequence required to must
in „Hardware Erkennung leicht gemacht“ · Mikrocontroller und Digitale Elektronik ·
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RequiresAcrobat6-5.pdf
Normalized On-Resistance Vs. Temperature IRL540N 3000 15 V GS=0V, f=1MHz ID = 18A C issC +Cgs C SHgdTED ds V DS = 80V C rssC gd C =C +C V DS = 50V oss ds gd 12 V DS = 20V C iss V e ) 2000 a ( l e V 9 n e i r c o p - 6 C - , 1000 C oss t C G , G3 C rss V FOR TEST CIRCUIT SEE FIGURE 13 0 A 0 A 1 10 100 0 20
in „Power Mosfet Hexfet wie ansteuern ?“ · Analoge Elektronik und Schaltungstechnik ·