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top200yai.pdf
W Bias Supply Utilizing the TOP200. D 6 7/96 TOP200-4/14 D2 L1 UG8BT 3.3 H 7.5 V R1 39 R2 68 VR1 C2 C3 P6KE150 680 F 120 F 25 V 25 V U2 D1 NEC2501 VR2 UF4005 1N5234B BR1 C1 6.2 V L2 400 V 33 F RTN 22 mH 400 V D3 1N4148 CIRCUIT PERFORMANCE: Line Regulation - ±0.5% C6 C5 C7 (85-265 VAC) 0.1 F 47 F T1
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AON6500.pdf
C iss Input Capacitance 7036 pF C Output Capacitance V =0V, V =15V, f=1MHz 2778 pF oss GS DS C rss Reverse Transfer Capacitance 353 pF R g Gate resistance V GSV, V =DS, f=1MHz 0.5 1.1 1.7 SWITCHING PARAMETERS
in „Unbekanntes Bauteil?“ · Analoge Elektronik und Schaltungstechnik ·
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EUP3453-EutechMicroelectronics.pdf
A Quiescent Current V OVEN = 0V, VFB= 1V 0.55 1 mA Soft -Start Period 10 ms Thermal Shutdown 160 °C DS3453 Ver1.2May 2012 4 EUP3453 Typical Operating Characteristics V IN2V, V OUT=5V, C IN0 F×2, C OUT=22 F×2, L1=33 H, T =A5°C, unless otherwise noted. DS3453 Ver1.2 May 2012 5 EUP3453 Typical Operating Characteristics (continued) V IN2V, V OUT=5V, C IN0 F×2, C OUT=22 F×2, L1=33 H, T =A5°C, unless otherwise noted. DS3453 Ver1.2 May 2012 6 EUP3453 Typical Operating Characteristics (continued) V IN2V, V OUT=5V, C IN0 F×2, C OUT=22 F×2, L1=33 H, T =
in „Unbekannter IC aus Ergometer“ · Mikrocontroller und Digitale Elektronik ·
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MOSFET-FCPF20N60.pdf
Capacitance Characteristics Figure 6. Gate Charge Characteristics 10000 12 CissCgs CgdCds shorted) 9000 Coss ds+ gd V DS= 100V CrssCgd 8000 ] 10 VDS = 250V [ V = 400V 7000 g DS F t 8 [ 6000 Coss o e V n 5000 c 6 i Notes : u c 4000 C iss 1. GS= 0 V o p 2. f = 1 MHz - 4 a 3000 t C G 2000 C ,S rss G 2 1000 V Note
in „Berechnen Irr von MOSFET“ · Analoge Elektronik und Schaltungstechnik ·
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24lc16.pdf
not 100% tested. FIGURE 1-1: BUS TIMING START/STOP V HYS SCL THDSTA TSUSTA TSU:STO SDA START STOP DS20070L-page 2 Preliminary 2000 Microchip Technology Inc. 24LC16B TABLE 1-3: AC CHARACTERISTICS VCC = +2.5V to 5.5V Commercial (C): Tamb = 0°C to +70°C Industrial (I): Tamb = -40°C to +85°C Automotive (E): Tamb = -40°C to 125°C Parameter Symbol Min Max Units Conditions Clock frequency Fclk — 400 kHz 4.5V≤ VCC ≤5.5V — 100 2.5V≤VCC ≤ 5.5V (E-temp range) Clock high time Thigh 600 — ns 4.5V≤ VCC ≤5.5V 4000 — 2.5V≤VCC ≤
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LT1161.pdf
0 25 50 75 100 –50 –25 0 25 50 75 100 TEMPERATURE (°C) TEMPERATURE (°C) TEMPERATURE (°C) 1161 G06 1161 G04 1161 G05 Turn-ON Time Driving MOSFET Turn-OFF Time Driving MOSFET Automatic Restart Period 500 100 1000 + 450 IRFZ34 90 IRFZ34 V = 24V CT= 3.3 F 400 80 ) s 350 s 70 m ( ( ( CT= 1 F E 300 M 60 I T T NORMAL E N 250 F 50 P 100 - - R C = 0.33 F R 200 R 40 T T T U E 150 T 30 R 100 20 CURRENT LIMIT CT= 0.1 F 50 10 0 0 10 0 10 20 30 40 50 0 10 20 30 40 50
in „Erfahrungen mit LT1161“ · Mikrocontroller und Digitale Elektronik ·
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BMA423.pdf
axis) Output Data Rate ODR LPM Low-power mode 0.78 400 Hz Nonlinearity NL Nominal VDD and 0.5 %FS VDD ,IO5°C, g FS4g Output Noise ndens Nominal VDD and 140 µg/Hz Density VDD ,IO5°C, g FS4g Power Supply PSRR 1 mg/50m Rejection Ratio V BST-BMA423-DS000-00
in „LilyGo T-Watch 2020 v1 Micropython“ · Mikrocontroller und Digitale Elektronik ·
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Switch.pdf
-62F1 G3VM-62F1 B 9.66 SMD8 SMT 500mA 2500 1Ω 130pF 1nA 653-G3VM-62J1 G3VM-62J1 C 9.40 SOP8 SMT 400mA 1500 1Ω 130pF 1nA 80V Lastspannung, SPST-NO Kontaktart 653-G3VM-81GR G3VM-81GR C 3.90 SOP4 SMT 40mA 1500 16Ω 2.5pF 0.5nA 653-G3VM-81GR1 G3VM-81GR1 C 3.90 SOP4 SMT 200mA 1500 5Ω 6.5pF
in „Ausfallursache Printtaster DeLonghi Kaffeeautomat?“ · Mikrocontroller und Digitale Elektronik ·
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irfp260n.pdf
( VDS = 100V rss gd g VDS = 40V 6000 Coss = ds + gd l 12 F o ( Ciss V c5000 c a u c4000 S 8 p o a Coss - ,3000 t C G 2000 , 4 Crss S V 1000 0 0 0 50 100 150 200 1 10 100 1000 Q , Total Gate Charge (nC) V , Drain-to-Source Voltage (V) G DS Fig 5.
in „Strom bei 50 A begrenzen“ · Analoge Elektronik und Schaltungstechnik ·
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APT10050B2VR_B.pdf
5.5V, 10V & 15V S E 40 E 40 E E VGS =5.5V, 10V & 15V P P A A ( 30 5V ( 30 5V N N E E R R U 20 U 20 C C I I A 4.5V A 4.5V D 10 D 10 , , ID ID 4V 4V 00 100 200 300 400 500 00 4 8 12 16 20 V DS, DRAIN-TO-SOURCE VOLTAGE (VOLTS) V DS, DRAIN-TO-SOURCE VOLTAGE (VOLTS) FIGURE 2, TYPICAL OUTPUT CHARACTERISTICS
in „SMA SB4200TL-MS Reparatur“ · Analoge Elektronik und Schaltungstechnik ·
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K4097.pdf
C C a 10 a 10 r r D D 6V 5 5 V =5V GS 00 5 10 15 20 25 30 00 2 4 6 8 10 12 14 16 18 20 Drain-to-Source Voltage, V DS -- V IT12372 Gate-to-Source Voltage, V GS -- V IT12373 R DS (on) -- V GS R DS (on) -
in „MOSFET (K4097) Ersatztyp“ · Analoge Elektronik und Schaltungstechnik ·
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irlml6344pbf.pdf
14.0 VGS = 0V, f = 1 MHZ ID= 5.0A C iss= Cgs+ Cgd, CdsSHORTED V DS= 24V C = C ) 12.0 V = 15V rss gd ( DS C oss= Cds+ Cgd g V DS= 6.0V F l 10.0 ( 1000 o e C iss e n r 8.0 i o a - a Coss - 6.0 C C t C 100 rss a , 4.0 S V 2.0 0.0 10 1 10
in „LEDs: Konstantstrom-Multiplexing. Schaltung & Teile so ok?“ · Mikrocontroller und Digitale Elektronik ·
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pic16f88.pdf
= 0) 83 71 72 SCK (CKP = 1) 80 SDO MSb Bit 6 - - - - - -1 LSb 75, 76 77 SDI MSb In Bit 6 - - - -1 LSb In 74 Note: Refer to Figure 18-3 for load conditions. 2005 Microchip Technology Inc. DS30487C-page 185 PIC16F87/88 TABLE 18-8:
in „auftrennen einer 2stelligen Dezimalzahl in asm (pic 16f88)“ · Mikrocontroller und Digitale Elektronik ·
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irf_1404.pdf
° e ) TJ= 25 C n ( t n TJ= 175 C i 2.0 e e u R C n ) e O e 1.5 u r li o100 u a - S mo - t N 1.0 i n ( r a D D , , 0.5 ID n ( V DS = 25V D 20µs PULSE WIDTH R VGS =10V 10 0.-60 -40 -20 0 20 40 60 80 100 120 140 160 180
in „Pulsschweisgerät mit Auto Batt Schaltungs Verbesserung“ · Analoge Elektronik und Schaltungstechnik ·
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FCPF11N60B.pdf
MHz C eff. Effective Output Capacitance V = 0V to 480 V, V = 0 V -- 95 -- pF oss DS GS Switching Characteristics d(on) Turn-On Delay Time -- 34 80 ns V DD = 300 V,DI = 11 A, r Turn-On Rise Time R G = 25 Ω
in „Kühlkörper Dimensionieren“ · Mikrocontroller und Digitale Elektronik ·
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tca8418.pdf
R7DS R6DS R5DS R4DS R3DS R2DS R1DS R0DS 0x15 GPIO_DAT_STAT2 GPIO data status C7DS C6DS C5DS C4DS C3DS C2DS C1DS C0DS (read twice to clear) 0x16 GPIO_DAT_STAT3 GPIO data status N/A N/A N/A N/A N/A N/A C9DS
in „Keypad 3x4 (am Tasmota o.ä.)“ · Mikrocontroller und Digitale Elektronik ·
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nFET_ZXM61N02FTA.pdf
0.8 t n Refer Note (b) e 1 t Refer Note (a) r a 0.6 u i C i i DC D 0.4 r 100m 1s e - 100ms w D 11ms o 0.2 I P 100us a 10m M 0 0.1 1 10 100 0 20 40 60 80 100 120 140 160 V DS - Drain-Source Voltage (V) T - Temperature (°C) Safe Operating Area Derating Curve ) 180 Refer Note (b) ) 240 W 160 W Refer Note (a) C C 200 ( 140 ( e e n 120 n 160 t 100 t i D=0.5 i 120 e 80 e D=0.5 R 60 R a a 80 m 40 D=0.2 m D=0.2 e e 40 h 20 D=0.1 h D=0.1 Single Pulse T 0 D=0.05 Single Pulse T 0 D=0.05 0.0001 0.001 0.01 0.1 1 10
in „5V Schalten mit GPIO 3,3V.“ · Analoge Elektronik und Schaltungstechnik ·
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ZXM61N02F-56180.pdf
0.8 t n Refer Note (b) e 1 t Refer Note (a) r a 0.6 u i C i i DC D 0.4 r 100m 1s e - 100ms w D 11ms o 0.2 I P 100us a 10m M 0 0.1 1 10 100 0 20 40 60 80 100 120 140 160 V DS - Drain-Source Voltage (V) T - Temperature (°C) Safe Operating Area Derating Curve ) 180 Refer Note (b) ) 240 W 160 W Refer Note (a) C C 200 ( 140 ( e e n 120 n 160 t 100 t i D=0.5 i 120 e 80 e D=0.5 R 60 R a a 80 m 40 D=0.2 m D=0.2 e e 40 h 20 D=0.1 h D=0.1 Single Pulse T 0 D=0.05 Single Pulse T 0 D=0.05 0.0001 0.001 0.01 0.1 1 10
in „Check Transistorschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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ZXM61N02F-56180.pdf
0.8 t n Refer Note (b) e 1 t Refer Note (a) r a 0.6 u i C i i DC D 0.4 r 100m 1s e - 100ms w D 11ms o 0.2 I P 100us a 10m M 0 0.1 1 10 100 0 20 40 60 80 100 120 140 160 V DS - Drain-Source Voltage (V) T - Temperature (°C) Safe Operating Area Derating Curve ) 180 Refer Note (b) ) 240 W 160 W Refer Note (a) C C 200 ( 140 ( e e n 120 n 160 t 100 t i D=0.5 i 120 e 80 e D=0.5 R 60 R a a 80 m 40 D=0.2 m D=0.2 e e 40 h 20 D=0.1 h D=0.1 Single Pulse T 0 D=0.05 Single Pulse T 0 D=0.05 0.0001 0.001 0.01 0.1 1 10
in „NPN zur Negierung von Reed (N/O) ?“ · Analoge Elektronik und Schaltungstechnik ·
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ZXM61N02F-56180.pdf
0.8 t n Refer Note (b) e 1 t Refer Note (a) r a 0.6 u i C i i DC D 0.4 r 100m 1s e - 100ms w D 11ms o 0.2 I P 100us a 10m M 0 0.1 1 10 100 0 20 40 60 80 100 120 140 160 V DS - Drain-Source Voltage (V) T - Temperature (°C) Safe Operating Area Derating Curve ) 180 Refer Note (b) ) 240 W 160 W Refer Note (a) C C 200 ( 140 ( e e n 120 n 160 t 100 t i D=0.5 i 120 e 80 e D=0.5 R 60 R a a 80 m 40 D=0.2 m D=0.2 e e 40 h 20 D=0.1 h D=0.1 Single Pulse T 0 D=0.05 Single Pulse T 0 D=0.05 0.0001 0.001 0.01 0.1 1 10
in „Mosfet mit Arduino Nano ansteuern (3,3V)“ · Mikrocontroller und Digitale Elektronik ·
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BP2836D.pdf
On Time 40 us V ROVP ROVP Pin Voltage 0.5 V MOSFET Section R Static Drain-source V =15V/I =0.4A 3 Ω DS_ON On-resistance GS DS Drain-Source Breakdown BV DSS Voltage VGS0V/I =DS0uA 500 V Power MOSFET Drain IDSS VGS0V/V =5DSV 1 uA Leakage Current Thermal Regulation Section Thermal Regulation TREG 150 ℃ Temperature Note 4: production testing of the chiC.is performed at 25° Note 5: the maximum and minimum parameters specified are guaranteed by test, the typical value are guaranteed by design, characterization and statistical analysis BP2836D_EN _DS_Rev
in „LED Deckenlampe dimmen“ · Analoge Elektronik und Schaltungstechnik ·
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R3112x_SERIES_Ricoh.pdf
1.0V O 1.0V 0 0 0 0.5 1 1.5 2 2.5 0 0.5 1 1.5 2 2.5 3 3.5 4 V DS(V) V DS(V) 5) Nch Driver Output Current vs. Input Voltage R3112x091x R3112x131x 2.0 5 ) ) A A 4 T1.5 T Topt=-40°C U U t t 3 n n 25°C r1.0 r u Topt=25°C u 2 t t 85°C p0.5 p u u 1 O 85°C O -40°C 0.0 0
in „IC von Tiefentladungsschutz identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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top247.pdf
nF 400 V D11 C17 C18 MBR1045 1000 µF 216 VF D1-D4 25 V RTN 1N4007 V D6 1N4937 C2 L1 68 µF 20 mH 400 V D6 C3 R7 R10 0.8A R1 1N4148 1 µF 150 Ω 15.0 2 MΩ 50 V kΩ C1 1/2 W T1 U2 R8 0.1 µF LTV817 1 kΩ R11 X1 9.53
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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top247.pdf
nF 400 V D11 C17 C18 MBR1045 1000 µF 216 VF D1-D4 25 V RTN 1N4007 V D6 1N4937 C2 L1 68 µF 20 mH 400 V D6 C3 R7 R10 0.8A R1 1N4148 1 µF 150 Ω 15.0 2 MΩ 50 V kΩ C1 1/2 W T1 U2 R8 0.1 µF LTV817 1 kΩ R11 X1 9.53
in „Hilfe bei Reparatur SNT Laderegler“ · Analoge Elektronik und Schaltungstechnik ·
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2N7002.pdf
DS TA= 125 C ID(ON) On-state drain current 500 - - mA VGS = 10V, V DS = 25V Static drain-to-source - - 7.5 VGS = 5.0V, ID= 50mA R DS(ON) Ω on-state resistance - - 7.5 V = 10V, I = 500mA GS D ∆R Change in R with temperature - - 1.0 %/ C V = 10V, I = 500mA DS(ON) DS(ON) GS D G Forward transconductance 80 - - mmho V = 25V, I = 500mA FS DS D C Input capacitance - - 50 ISS V = 0V, GS C OSS Common source output capacitance - - 25 pF VDS
in „MOSFET Beschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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LND150_C041114.pdf
1 -0.5V -0.5V -1.0V -1.0V 0 0 0 1 2 3 5 0 250 500 4 V DS) VDSV) 10 Transconductance vs. Drain Current Power Dissipation vs. Ambient Temperature 2 VDS = 400V TO-243AA 8 TA= -55°C s n e 6 s e 25°C t s a 1 l ( i 4 D ( 125°C P TO-92 F G 2 TO-236AB 0 0 0 2 4 6
in „DDR- Mosfet SM104 in Sinusgenerator GF22“ · Analoge Elektronik und Schaltungstechnik ·
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Infineon-IRFHS8342-DataSheet-v01_01-EN.pdf
Quantity IRFHS8342TRPbF PQFN 2mm x 2mm Tape and Reel 4000 IRFHS8342TR2PbF PQFN 2mm x 2mm Tape and Reel 400 EOL notice # 259 Absolute Maximum Ratings Parameter Max. Units V DS Drain-to-Source Voltage 30 V GS Gate-to-Source Voltage ±20 V ID@ T A 25°C Continuous Drain CurrenGS@ 10V 8.8d ID@ T A 70°C Continuous
in „IC identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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SG3525ANG.pdf
Line and Load Regulation over Temperature ▯Vref 4.95 − 5.25 Vdc Short Circuit Currenref= 0 V, J = +25⋅C) ISC − 80 100 mA Output Noise Voltage (10 Hz f 10 kJz, T = +25⋅C) Vn − 40 200 ▯V rms Long Term StabilityJ(T = +125⋅C) (Note 4) S − 20 50 mV/khr OSCILLATOR SECTION (Note 5, unless otherwise noted.
in „Gegentaktwandler Überschwingen im Leerlauf“ · Analoge Elektronik und Schaltungstechnik ·
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21425b.pdf
e.g., outside specified power supply range) and therefore outside the warranted range. Note: T A +25°C, with 4.5 V ≤ V DD ≤ 18 V. 140 140 2200 pF 2200 pF 120 120 100 1600 pF 100 1500 pF c c s 80 1000 pF s80 ( ( 1000 pF S60 L60 R F t 40 470 pF t40 470 pF 20 100 pF 20 100 pF 0 03 5 7 9 11 13 15 17 19 3
in „Problem mit dem TC4469“ · Mikrocontroller und Digitale Elektronik ·
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DS_K4B4G1646D-BC_I_P_Rev102.pdf
7.50 0.10 A 0.80 x 8 = 6.40 #A1 INDEX MARK (Datum A) 0.80 1.60 3.20 B 9 8 7 6 5 4 3 2 1 A B C D 0 (Datum B) E 6 0 F . 0 1 0 G 0 = 0 H 5 J x 3 K 0 3 . 1 L 0 M N 8 P 0 R T (0.30) MOLDING AREA (96 - 0.50 0.05) (0.60
in „DDR3 RAM Datenleitung beliebig anschliessen“ · Mikrocontroller und Digitale Elektronik ·
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adc0831.pdf
mA Current AC Characteristics The following specifications apply for CC = 5V, tr= tf= 20 ns and 25˚C unless otherwise specified. Typ Tested Design Limit Parameter Conditions (Note 12) Limit Limit Units (Note 13) (Note 14) fCLK, Clock Frequency Min 10 kHz Max 400 kHz tC, Conversion Time Not including
in „Ein an die SPI - Schnittstelle angeschlossener ADC macht Probleme“ · Mikrocontroller und Digitale Elektronik ·
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01149c.pdf
note. Constant Current ) 4.0 1000 ( ) g Thermal Regulation Termination0 A l 3.0 t V 600 e r 2.0 u t 400 C B 1.0 Constant 500 mA System Load 200 0.0 0 0 20 40 60 80 100 120 140 Time (Minutes) FIGURE 8: 450 mA Constant Charge Current Li-Ion Battery Charge Profile with a Constant 500 mA System Load. Stage
in „Frage zu AN1149 - Load Sharing Microchip“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AQ_Rly_Dm_lcd_lan_1_wire_18_11_12.pdf
type_s = 0; break; default: Serial.println("Device is not a DS18x20 family device."); return; } ds.reset(); ds.select(addr); ds.write(0x44,1); // start conversion, with parasite power on at the end delay(1000); // maybe 750ms is enough, maybe not // we might do a ds.depower() here, but the reset will take care of it. present = ds.reset(); ds.select(addr); ds.write(0xBE); // Read Scratchpad Serial.print(" Data = "); Serial.print(present,HEX); Serial.print(" "); for
in „Aquariumcontroller: hängt sich auf / stürzt ab / friert ein - Hilfe!“ · Mikrocontroller und Digitale Elektronik ·
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182853-da-01-en-IRLR_8103V.pdf
= 0V, f = 1MHz 6 C GS = C + C C SHORTED D = 15A V = 24V C iss= Cgs gd , ds ) V DS= 15V rss gd ( 5 DS 4000 C oss= Cds + Cgd e ) t p o e V 4 c 3000 C c t iss u c o 3 p - a 2000 - , C oss t C a 2 , 1000 S VG 1 C rss 0 0 1
in „Drehzahlmesser für Drehbank“ · Mikrocontroller und Digitale Elektronik ·
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PIC18Fxx2.pdf
(MHz) 2002 Microchip Technology Inc. DS39564B-page 291 PIC18FXX2 FIGURE 23-7: TYPICAL I DD vs. F OSC OVER V DD (LP MODE) 100 Typical: statistical mean @ 25°C 90 Maximum: mean + 3 σ (-40°C to 125°C) Minimum: mean – 3σ (-40°C to 125°C) 80 5.5V
in „AD1 und AD2 Multiplexen (PIC18F452)“ · Mikrocontroller und Digitale Elektronik ·
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stm32g030c6.pdf
mit DMA-Fähigkeit Tabelle 8. I2C- Implementierung I 2C-Funktionen(1) I2C1 I2C2 Standardmodus (bis zu 100 kbit/s) X X Schneller Modus (bis zu 400 kbit/s) X X Fast Mode Plus (bis zu 1 Mbit/s) mit zusätzlichen Ausgangs-Laufwerk-E/As X
in „Muß der STM32G programmiert werden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Chess-Schematic.PDF
PISIPO7011 150 ID60 LD60 R61 R625 5V PISO_PL PIPISO50PL P3 PIPISO504 150 GND PIPISO50GND P4 PIPISO5013 TPIC6C596 PIPISO50O5 P5 PIPISO5014 PIPISO50O6 P6 PIPISO5015 OSIO8 PIPISO50O7 P7 PIPISO501 PISIPO80SERIN DRAIN0 PISIPO8LD00 LD00 R71 R725 5V GND PISIPO80GND DRAIN1 PISIPO804 150 ID80 LD80 R81 R825 5V HEF4021B
in „Spannungsabfall bei Last“ · Analoge Elektronik und Schaltungstechnik ·
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A100_IRF7413_IR.pdf
VGS▯ VGS▯ TOP 10V TOP 10V 7.0V 7.0V ) 4.5V 4.5V A 4.0V A 4.0V t BOTTOM 3.0VV t BOTTOM 3.0V e e r r C u e e r 10 r 10 3.0V o o - - - t i 3.0V n r r D D , ,D ID I 20µs PULSE WIDTH▯ 20µs PULSE WIDTH▯ 1 TJ= 25°C A 1 TJ= 150°C A 0.1 1 10 0.1 1 10 V DS , Drain-to-Source Voltage (V) V DS , Drain-to-Source
in „MOSFET - Verständnisfrage“ · Analoge Elektronik und Schaltungstechnik ·
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SI4946BEY.pdf
A 0.041 0.052 a g V = 15 V, I = 5.3 A 24 S Forward Transconductance fs DS D Dynamic b Input Capacitance C iss 840 C V = 30 V, V = 0 V, f = 1 MHz Output Capacitance oss DS GS 71 pF Reverse Transfer Capacitance C rss 44 V DS = 30 V, GS = 10 V,DI = 5.3 A 17 25 Total Gate Charge
in „Frage zu Ic SI4948“ · Analoge Elektronik und Schaltungstechnik ·
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LM74.pdf
˚C to +110˚C ±2.1 +2.65/−2.15 ˚C (max) A T A = −40˚C to +85˚C +2.65/−1.65 ±2.15 ˚C (max) = T A −40˚C to +110˚C +2.65/ +2.65/−2.15 ˚C (max) −2.0 T A = −55˚C to +125˚C ±3.0 ±3.5 ˚C (max) T A = −55˚C to +150
in „suche I2C Themperatursensor, auf 0,1°C genau“ · Mikrocontroller und Digitale Elektronik ·
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irlml6402pbf.pdf
4.50V ) -4.50V ( -3.50V ( -3.50V n -2.70V n -2.70V e -2.50V e -2.50V u BOTTOM-2.25V u BOTTOM-2.25V C C c c u u o 10 o 10 - -2.25V - - - -2.25V i i r r D D ,D , - - 20μs PULSE WIDTH 20μs PULSE WIDTH 1 TJ= 25 C TJ= 150 C 0.1 1 10 100 10.1 1 10 100 -VDS , Drain-to-Source Voltage (V) -V DS , Drain-to-Source
in „TP4056 Polarity protection“ · Analoge Elektronik und Schaltungstechnik ·
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51292S.pdf
1.600 0.550 0.400 2.400 Top 0.335 Typical 0.560 Typical 0.062 Typical Side 2010 Microchip Technology Inc. DS51292S-page 47 Optional Headers AC244026, AC244027 Header Identification The header AC number is used for
in „PIC18F877 ICD2 bzw Brenner gesucht :-(“ · Mikrocontroller und Digitale Elektronik ·
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GA4A4P.pdf
80 60 k r t 40 i e R 20 - R 0 -25 0 25 50 75 100 TA - Ambient Temperature - °C 6 Data Sheet D16494EJ2V0DS GA4xxx [GA4L3M] TYPICAL CHARACTERISTICS (T A = 25°C) COLLECTOR TO EMITTER VOLTAGE vs. COLLECTOR
in „Was für ein Bauteil?“ · Mikrocontroller und Digitale Elektronik ·
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RGB_Bildsensor_-_D100997D.pdf
φ A φ , , φ φ V h H o φ φ t t C 1 1 S G G O I φ V t M N T 8 Data Sheet S15330EJ4V0DS µPD8872 o N 17801 l 07801 c ) 96801 o l 86801 p i 76801 i p 66801 a ( l ) I c e o p p 0 i 8 a 1 66 V ( e 56 t s 46 h e p p 36 l ( 26 v 16 I k l l
in „Pollin 1,95€ RGB Bildsensor - C-Mos Pegel“ · Mikrocontroller und Digitale Elektronik ·
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Micrel.pdf
OUT ≤ 1.5A Load Regulation — 0.2 1 % (Note 3, Note 4) Output Voltage (Note 4) ∆VO/∆T — 20 100 ppm/°C Temperature Coefficient — 80 200 MIC2915x OUT = 100 mA — 220 — MIC2915x OUT = 750 mA — 350 600 MIC2915x OUT = 1.5A — 80 175 MIC2930x OUT = 100 mA — 250 — MIC2930x I = 1.5A OUT Dropout Voltage — 370 600
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DIODES_INC_BCR420UW6_ENG_TDS.pdf
EN vs I OUT BCR420UW6 / BCR421UW6 5 of 13 November 2015 Document number: DS37667 Rev. 3 - 2 www.diodes.com © Diodes Incorporated BCR420UW6 / BCR421UW6 Typical Electrical Characteristics BCR421U (Cont.) (@TA= +25°C, unless otherwise specified.) 3.0m 0.015 -40°C 2.5m I = 0A R
in „BCR420W67 zu wenig strom“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ips021.pdf
voltage -0.3 7 Iin, max Maximum IN current -10 +10 mA Isdcont. Diode max. continous current (rth=62 C/W) IPS021 — 2.8 o (rth=10 C/W) IPS021 — 8 A (rth=80 C/W) IPS021S — 2.2 Isdpulsed Diode max. pulsed current — 10A (1) Pd Maximum power dissipation (rth=62 C/W) IPS021 — 2 W (rth=80 C/W) IPS021S — 1.56
in „Intelligenter Schalttransistor...“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ips021.pdf
voltage -0.3 7 Iin, max Maximum IN current -10 +10 mA Isdcont. Diode max. continous current (rth=62 C/W) IPS021 — 2.8 o (rth=10 C/W) IPS021 — 8 A (rth=80 C/W) IPS021S — 2.2 Isdpulsed Diode max. pulsed current — 10A (1) Pd Maximum power dissipation (rth=62 C/W) IPS021 — 2 W (rth=80 C/W) IPS021S — 1.56
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PDF
73493.pdf
ABSOLUTE MAXIMUM RATINGS T = 25 °C, unless otherwise noted A Parameter Symbol Limit Unit V Drain-Source Voltage DS - 40 V Gate-Source Voltage V GS ± 20 TC = 25 °C - 110a TC= 70 °C - 110a Continuous Drain Current JT = 175 °C) ID b, c TA
in „Messungen mit DMM Dual-Slope Verfahren am PMOS“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TNY256.pdf
EN/UV U1 BP R5 TNY256P 100 Ω R9 R7 85-265 RF1 S 470 Ω 26.1 kΩ VAC 10 Ω C1 C2 10 µF 10 µF 400 V 400 V U2 C11 Fusible SFH615-2 0.1 µF D3 D4 C4 1N4005 1N4005 0.1 µF U3 TL431CLP R8 10 kΩ C5 2200 pF Y1 Safety PI-2502-040901 Figure 12. 5.5 W AC Adapter with Universal Input (85-
in „Brauche Dringend Hilfe bei Bauteilbestimmung“ · Analoge Elektronik und Schaltungstechnik ·