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ADA4817-1_4817-2.pdf
. 6 6 ) G = 1, DUAL G = 1, SINGLE ) B B ( 3 ( 3 G = 2 N G = 2 N G = 1, SINGLE A A G = 1, DUAL G G P 0 P 0 O O L L D D E G = 5 E G = 5 S –3 S –3 L L C C D D Z –6 Z –6 L L A A M M R –9 R –9 N N –12 6 –12 0 100k 1M 10M
in „Alternative zum OPA656“ · Analoge Elektronik und Schaltungstechnik ·
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ADA4817-1_4817-2.pdf
. 6 6 ) G = 1, DUAL G = 1, SINGLE ) B B ( 3 ( 3 G = 2 N G = 2 N G = 1, SINGLE A A G = 1, DUAL G G P 0 P 0 O O L L D D E G = 5 E G = 5 S –3 S –3 L L C C D D Z –6 Z –6 L L A A M M R –9 R –9 N N –12 6 –12 0 100k 1M 10M
in „Wittig(welec) DSO W20xxA Hardware“ · Mikrocontroller und Digitale Elektronik ·
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PCA63100_Schematic_And_PCB.pdf
FQ Q A t 3 PP40 P P 0 PQ5 0 P1 0 PQ5 0 PQ i 4 CO C67 Power input switch 5 P8 5 P 5 P53 5 P0 n P P NLE0POERI CQ1 2Q R1 8 2P0 R10 2P CR3 2Q R59 P 10µF 100nFIP7 EXT_ OWER_IN PI60 P04 N 1M0 N 1M0 N 1M0 N 1M0 TP7 P3V3 P8V0 EFC6604R M P8
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ULN2803-D.pdf
25⋅C) All Types – – 50 (VO = 50 V,AT = +70⋅C,IV = 6.0 V) ULN2802 – – 500 (VO = 50 V,AT = +70⋅C,IV = 1.0 V) ULN2804 – – 500 Collector–Emitter Saturation Voltage (Figure 2) VCE(sat) V (I = 350 mA, I = 500 A) All Types – 1.1 1.6 C B (C = 200 mA,BI = 350 A) All Types – 0.95 1.3 (C = 100 mA,BI = 250 A) All
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ULN2803-D.pdf
25⋅C) All Types – – 50 (VO = 50 V,AT = +70⋅C,IV = 6.0 V) ULN2802 – – 500 (VO = 50 V,AT = +70⋅C,IV = 1.0 V) ULN2804 – – 500 Collector–Emitter Saturation Voltage (Figure 2) VCE(sat) V (I = 350 mA, I = 500 A) All Types – 1.1 1.6 C B (C = 200 mA,BI = 350 A) All Types – 0.95 1.3 (C = 100 mA,BI = 250 A) All
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ULN2803-D.pdf
25⋅C) All Types – – 50 (VO = 50 V,AT = +70⋅C,IV = 6.0 V) ULN2802 – – 500 (VO = 50 V,AT = +70⋅C,IV = 1.0 V) ULN2804 – – 500 Collector–Emitter Saturation Voltage (Figure 2) VCE(sat) V (I = 350 mA, I = 500 A) All Types – 1.1 1.6 C B (C = 200 mA,BI = 350 A) All Types – 0.95 1.3 (C = 100 mA,BI = 250 A) All
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ULN2803_ULN2804.pdf
25⋅C) All Types – – 50 (VO = 50 V,AT = +70⋅C,IV = 6.0 V) ULN2802 – – 500 (VO = 50 V,AT = +70⋅C,IV = 1.0 V) ULN2804 – – 500 Collector–Emitter Saturation Voltage (Figure 2) VCE(sat) V (I = 350 mA, I = 500 A) All Types – 1.1 1.6 C B (C = 200 mA,BI = 350 A) All Types – 0.95 1.3 (C = 100 mA,BI = 250 A) All
in „Ansteuerung Nixie und Leuchtmelder“ · Mikrocontroller und Digitale Elektronik ·
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PDF
366828_DS.pdf
25⋅C) All Types – – 50 (VO = 50 V,AT = +70⋅C,IV = 6.0 V) ULN2802 – – 500 (VO = 50 V,AT = +70⋅C,IV = 1.0 V) ULN2804 – – 500 Collector–Emitter Saturation Voltage (Figure 2) VCE(sat) V (I = 350 mA, I = 500 A) All Types – 1.1 1.6 C B (C = 200 mA,BI = 350 A) All Types – 0.95 1.3 (C = 100 mA,BI = 250 A) All
in „ULN2803 in einem Weichendecoder DCC“ · Analoge Elektronik und Schaltungstechnik ·
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DCF77-Modul_UTC.pdf
) 1,0 µV Max. Eingangsspannung (Ant.-Eingang) 20 mV Result. Empfindlichkeit ** £ 50 µV/m Verhältnis Max/Min 20/1 Einschwingzeit nach Power ON ca. 10 s Ausgangsstrom High (0,8 Ub) > 5 µA Ausgangsstrom Low
in „DCF-Modul defekt?“ · Mikrocontroller und Digitale Elektronik ·
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DS18b20.pdf
V DD Thermometer Error tERR -10°C to ±0.5 °C 3 +85°C -55°C to ±2 +125°C Input Logic Low V -0.3 +0.8 V 1,4,5 IL Input Logic High V IH Local Power +2.2 The lower of V 1, 6 5.5 Parasite Power +3.0 or V DD + 0.3 Sink Current IL VI/O.4V 4.0 mA 1 Standby Current
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DS18b20.pdf
V DD Thermometer Error tERR -10°C to ±0.5 °C 3 +85°C -55°C to ±2 +125°C Input Logic Low V -0.3 +0.8 V 1,4,5 IL Input Logic High V IH Local Power +2.2 The lower of V 1, 6 5.5 Parasite Power +3.0 or V DD + 0.3 Sink Current IL VI/O.4V 4.0 mA 1 Standby Current
in „Displaybeleuchtung faden ohne Analog I/O“ · Mikrocontroller und Digitale Elektronik ·
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LSIsforLCDs.PDF
Common Supply Model No. Panel type Function output current output currenvoltage Package circuits (mA) MAX. (mA) MAX. (V) TYP. IR3E201N/ IR3E204N 10 - 1 -1 5 P-MFP018 .Small panels built-in dividing resistorsr for LCD drivers, Line inversion drive + IR3E3XX 5 - 1 -1 5 P-SSOP012-0225 IR3E08M1 .Medium
in „LEXIBOOK LCD-Konsole mit 120 Spiele“ · Mikrocontroller und Digitale Elektronik ·
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2N3904.pdf
voltage VCE(sat) - - 0.3 V C/IB = 50mA/5mA 0.65 - 0.85 I/IB = 10mA/1mA Base-emitter saturation voltage V BE(sat) V - - 0.95 C/IB = 50mA/5mA 40 - - VCE = 1V , IC = 0.1mA 70 - - VCE = 1V , IC = 1mA DC current transfer ratio h FE 100 - 300
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NJU7201.pdf
CONDITION MIN. TYP. MAX. UNIT OutputVoltage V OUT VIN3.0V, I OUT=5mA 1.14 1.20 1.26 V DropoutVoltage ∆V IO OUT=0.5mA - 0.020 0.30 V InputVoltage V IN - - 12 V OperatingCurrent Q VIN3.0V - 19 30 µA LoadRegulation ∆VOUT /∆IOUT VIN3.0V,I OUT =1~15mA - 10 180 mV LineRegulation ∆VOUT /(∆VINV OUT) VIN1.5~12V - 0.10 - %/V +1.5VVersion (C =IN=0.1oF,T =25°C) a PARAMETER SYMBOL CONDITION MIN. TYP. MAX. UNIT OutputVoltage V OUT VIN3.0V, I OUT=5mA 1.425 1.500 1.575 V DropoutVoltage ∆V IO OUT=0.5mA - 0.020
in „UT61E Battery verpolt“ · Analoge Elektronik und Schaltungstechnik ·
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ds1820.pdf
+3.0 V DD Thermometer Error tERR -10°C to ±0.5 °C 3 +85°C -55°C to ±2 +125°C Input Logic Low V -0.3 +0.8 V 1, 4, 5 IL Input Logic High V IH Local Power +2.2 The lower of V 1, 6 5.5 Parasite Power +3.0 or VDD + 0.3 Sink Current IL V I/O4V 4.0 mA 1 Standby Current IDDS 750 1000 nA 7, 8 Active Current I V =5V 1 1.5 mA 9 DD DD DQ Input Current IDQ 5 µA 10 Drift ±0.2 °C 11 NOTES: 1) All voltages are referenced to ground. 2) The Pullup Supply Voltage specification assumes that the pullup device is ideal, and therefore
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DS1820-DS1820S.pdf
1-WIRE PORT 4.7K DQ 1-wire Bus Pin R RX X 5 µA Typ. T X T X 100 Ω M OSFET RX= RECEIVE T = TRANSMIT X TRANSACTION SEQUENCE The transaction sequence for accessing the DS18S20 is as follows: Step 1. Initialization
in „1-Wire & Pull-UP“ · Mikrocontroller und Digitale Elektronik ·
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Datei
flap_mehrzeilig_flugplan.htm
; var gefunden=0; var zeichensatz = new Array(" ","A","B","C","D","E","F","G","H","I","J","K","L","M","N","O","P","Q","R","S","T","U","V","W","X","Y","Z","0","1","2","3","4","5","6","7","8","9",".",",","&","!","?","-","_","Ü","Ä","Ö","ß",":"," "); ziffer=zeichensatz.indexOf(zeichen); ziffer++; buchstabe
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Motorola_MC44353_MC44354_MC44355_1998.pdf
Modulation Sensitivity (Control Bits) Audio Input for FM Audio Input for FM Audio Input for AM AMD2 AMD1 AMD0 PAL/NTSC SECAM PAL/NTSC (MC44353/4) (MC44353 Only) (MC44355 Only) 0 0 0 420 mVrms 405 mVrms Not Programmable 0 0 1 375 mVrms 365 mVrms Not Programmable 0 1 0 335 mVrms 325 mVrms Not Programmable 0 1 1 300 mVrms 290 mVrms Not Programmable 1 0 0 270 mVrms 260 mVrms Not Programmable 1 0 1 240 mVrms 230 mVrms Not Programmable 1 1 0 215 mVrms 205 mVrms Not Programmable 1 1 1 190 mVrms 185 mVrms 190 mVrms
in „Pollin ist pleite :-(“ · Offtopic ·
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PIC_Simulator_-_Free_Online_PIC_Microcontroller_Simulator.pdf
======== 332 ; delay10 333 ; delays del10 x 10mS 334 ;============================================ 335 delay10: 336 ;delayloop 10 mS 337 movlw .40 338 movwf del1 339 dec250u: 340 ;delayloop 250 uS 341 movlw .83 342 movwf del0 343 dec1u: 344 decfsz
in „IC-Idenifikation für Garagentor Zahlenschloß“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Code_IR_Empfaenger_Datenanzeige_09022013.pdf
unten rechts #define SEG_OL (1<<PA1) // Segment unten rechts #define SEG_M (1<<PD1) // Segment unten rechts // ==================================================================================================================== //
in „_delay_ms(500) funktioniert nur sporadisch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
IR_Empfaenger_LED_Anzeige_v04.c
unten rechts #define SEG_OL (1<<PA1) // Segment unten rechts #define SEG_M (1<<PD1) // Segment unten rechts // ===================================================================================== // NEC Code: Dauer der Puls- und
in „IR Dekoder - Problem mit Interrupt-/Programmsteuerung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
IR_Empfaenger_LED_Anzeige_v04.c
unten rechts #define SEG_OL (1<<PA1) // Segment unten rechts #define SEG_M (1<<PD1) // Segment unten rechts // ===================================================================================== // NEC Code: Dauer der Puls- und
in „_delay_ms(500) funktioniert nur sporadisch“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SCT2024V01_03.pdf
Symbol Rating Unit Supply voltage VDD 7.0 V Input voltage VIN 0.2 to VDD0.2 V Output current OUT 60 mA/Channel SDO 0.2 to VDD0.2 V Output voltage OUT0~OUT15 V OUT 0.2 to 17 V Total GND terminals current GND 960 mA SOP24 1.92 SSOP24 1.42 Power dissipation P D W SSOP24 1.0 1.74 TQFN24 2.08 SOP24 65 Thermal
in „riesige LED-Matrix“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SCT2024V01_03.pdf
Symbol Rating Unit Supply voltage VDD 7.0 V Input voltage VIN 0.2 to VDD0.2 V Output current OUT 60 mA/Channel SDO 0.2 to VDD0.2 V Output voltage OUT0~OUT15 V OUT 0.2 to 17 V Total GND terminals current GND 960 mA SOP24 1.92 SSOP24 1.42 Power dissipation P D W SSOP24 1.0 1.74 TQFN24 2.08 SOP24 65 Thermal
in „16Segmentanzeige mit MAX7219 o.ä. steuern?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SCT2024CSSG.pdf
Symbol Rating Unit Supply voltage VDD 7.0 V Input voltage VIN 0.2 to VDD0.2 V Output current OUT 60 mA/Channel SDO 0.2 to VDD0.2 V Output voltage OUT0~OUT15 V OUT 0.2 to 17 V Total GND terminals current GND 960 mA SOP24 1.92 SSOP24 1.42 Power dissipation P D W SSOP24 1.0 1.74 TQFN24 2.08 SOP24 65 Thermal
in „LEDs flackern unregelmäßig bei geringer Helligkeit“ · Mikrocontroller und Digitale Elektronik ·
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Datei
IR_Empfaenger_LED_Anzeige_v04.c
unten rechts #define SEG_OL (1<<PA1) // Segment unten rechts #define SEG_M (1<<PD1) // Segment unten rechts // ===================================================================================== // NEC Code: Dauer der Puls- und
in „Compiler Optimization Level (-O1) ändert Ablauflogik?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
K4097.pdf
’s ideal heat dissipation condition) 35 W Channel Temperature Tch 150 °C Storage Temperature Tstg -55 to +150 °C Avalanche Energy (Single Pulse) *3 E AS 280 mJ Avalanche Current *4 AV 9.5 A *1 Shows chip capability *2 Package limited *3 VDD =99V, L=5mH, I AV =9.5A *4 L≤5mH, single pulse Marking : K4097
in „MOSFET (K4097) Ersatztyp“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
bd4856.pdf
-0.3 to +10 Output Voltage V OUT V CMOS Output GND-0.3 to VDD0.3 Output Current Io 70 mA SSOP5 *1*4 540 Power *2*4 Dissipation SSOP3 Pd 700 mW VSOF5 *3*4 210 Operating Temperature Topr -40 to +105 °C Ambient Storage Temperature Tstg -55 to +125 °C *1 Reduced by 5.4mW/°C when used over 25°C. *2 Reduced by 7.0mW/°C when used over 25°C. *3 Reduced by 2.1mW/°C when used over 25°C. *4 When mounted on ROHM standard circuit board (70mm×70mm×1.6mm, glass epoxy board). ●Electrical Characteristics (Unless Otherwise
in „Batterieschutzschaltung. Murks oder möglich?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
175269-da-01-en-Spannungsregler_MC78T05CT.pdf
Note1) ∆V O J - 7.5 55 mV 18V ≤ VI ≤ 30V, Io =2.0A 20V ≤ VI ≤ 26V, Io =3.0A 5mA ≤ Io ≤ 3.0A , T =+25 °C 10 30 mV Load Regulation (Note1) ∆V O J - 5mA ≤ Io ≤ 3.0A 15 80 mV Thermal Regulation Pulse =10ms, P
in „Versorgungsvermögen von MC7805C“ · Mikrocontroller und Digitale Elektronik ·
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PDF
APM2095.pdf
1.2 s s z s R a 1.1 e0.07 n m - O o 1.0 O N N )0.06 ( ( 0.9 ( D D R 0.8 R0.05 0.7 O RONT=2j C:70 m Ω 0.04 0.6 1 2 3 4 5 6 7 8 9 10 -50 -25 0 25 50 75 100 125 150 -VGS- Gate-to-Source Voltage (V) T J-JunctionTemperature
in „Ersatztyp P-Kanal MosFet APM2095P low gate voltage“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BA479G.pdf
) 100 d 20 ( i P–Circuitwith10dBAttenuation A o 0 V =40dBmV m 10 i 0 t D f1=100MHzunmodulated e i u Tamb=25⋅C l –20 d 1 d a o r M –40 F Scattering Limit r – 0.1 l IF c –60 p T 0.01 a –80 0 0.4 0.8 1.2 1.6 2.0 0 20 40 60 80 95 9735 V F Forward Voltage ( V ) 95 9733 f2, modulated with 200 kHz, m=100% (MHz) Figure 1. Forward Current vs. Forward Voltage Figure 3. Typ. Cross Modulation Distortion vs. Frequency f 2 )10000 ( c t s 1000 R r w o 100 l t f>20MHz r Tj=25⋅C f 10 D – rf 1 0.001 0.01 0.1
in „Welche Diode ist das?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Arduino_Mega_Shield_V1R11.PDF
4k7 R21 3k6 R2OR4k7 4k7 83 ARDUINO MEGA2560 5V5 Pin 1 - 6: IA2A 1206 0603 PA2A IC2C 1206 0603 PC2C NIADC 2242 R23 0603 ADCD 2 CD E N1 11 1 M M M M M M M MX0 0 X X X X X DC 5VP I U 1 0 8 2 ESCLC PIJ3034 PIJ904DA I2C Interface PIR19PIP0902 PIR201 PIR21PI60102
in „Arduino Mega 2560, schaltschranktauglich“ · Projekte & Code ·
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PDF
temperaturmessung.pdf
der zweiten Kontaktstelle berechnet werden (T M. U U T V Abb.2 T1= T V T 2 T M Abb.3 T M - 2 - Abb.3 zeigt eine andere, häufig angewendete Schaltung: T bMzeichnet die Messstelle; die beiden Nebenlötstellen 1 und 2 haben die gleiche, (meist Umgebungs
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PDF
0A1E438Cd01_batterypower_appnote.PDF
Voltage Voltage (V) (mA) Current (μA) OUT(mV) TC1016 6.0 1.8-3.0 80 50 150 Shutdown 5-pin SC-70 TC1017 6.0 1.8-4.0 150 53 285 Shutdown 5-pin SC-70/SOT-23A MCP1700 6.0 1.2-5.0 250 1.6 178 Shutdown, Power good output with3-pin
in „mit Akku Microcontroller versorgen, 3,6V auf 5V“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EP4CE6_CORE.pdf
1 2 3 4 5 6 7 8 U1A 1 LED6 U1B U1C U1D U1E 1 IO IO 2 LED7 IO, DIFFIO_L6n 28 EXIO4 IO, DIFFIO_B1p 38 EXIO10 IO, DIFFIO_B12p 54 EXIO19 IO 73 Key2 U1F K 3 LED8 2 30 EXIO5 3 39 EXIO11 4 55 EXIO20 5 74 Key1
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SR102-110.pdf
Voltage @ 1.0A V F 0.55 0.70 0.85 Volts O Maximum DC Reverse Current at Rated TA= 25 C I 1.0 mA DC Blocking Voltage per element (NoteTA= 100 C R 10 Typical Junction Capacitance C J 110 pF (Measured at 1.0MHz and
in „Dioden: Datenblatt / Vergleichbar“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L9480VB.pdf
Measured at Supply Pin 2 3 V up Voltage V Shutdown Voltage (dump 22 V sd protection threshold) V sat 1 Output Saturation Voltage field4 Ap 1.2 2 V V sat 2 Start Up Saturation Voltage field200 mA 0.7 1 V q Quiescent Current Field Off 20 mA s Supply Current field4 Ap 50 mA I Field Pin Sink Current Field Off 5 mA fs Field Pin @ 16 V V1 CLAMP Low Energy Clamping Zener clamp= 50 mA 120 V Voltage fsw Switching Frequency 01 n < alt 0.9 n 30 1000 Hz Note1: measured on an alternator with the following chnracterialt
in „Lichtmaschinen Regler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
L9480VB.pdf
Measured at Supply Pin 2 3 V up Voltage V Shutdown Voltage (dump 22 V sd protection threshold) V sat 1 Output Saturation Voltage field4 Ap 1.2 2 V V sat 2 Start Up Saturation Voltage field200 mA 0.7 1 V q Quiescent Current Field Off 20 mA s Supply Current field4 Ap 50 mA I Field Pin Sink Current Field Off 5 mA fs Field Pin @ 16 V V1 CLAMP Low Energy Clamping Zener clamp= 50 mA 120 V Voltage fsw Switching Frequency 01 n < alt 0.9 n 30 1000 Hz Note1: measured on an alternator with the following chnracterialt
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PDF
MHG2-6300P.pdf
- Ausgangsstrom Last- Rest- Nummer spannung min max regelung welligkeit +3,3 V 0 A 28,0 A ±5 % 50 mV +5,0 V 3 A 35,0 A ±5 % 50 mV MHG2-6300P +12,0 V 2 A 22,0 A ±5 % 120 mV -12,0 V 0 A 0,8 A ±5 % 150 mV -5,0 V 0 A 0,5 A ±5 % 150 mV +5,0 sb 0,1 A 2,0 A ±5 % 50 mV Die max. Ausgangsleistung beträgt 300
in „PC-Netzteil 12-Volt-Schienen verbinden ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UKW_Berichte_1963_2019.pdf
5 AP 1990/4 208…210 Verschiedenes Tiefpaßfilter für 2 m und 70 cm im Selbstbau, Teil 1 Gerhard Schmitt DJ 5 AP 2000/1 51…57 Filter Tiefpaßfilter für 2 m und 70 cm im Selbstbau, Teil 1 Gerhard Schmitt DJ 5 AP 2000/1 51…57 2-m-Band Tiefpaßfilter für 2 m und
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LM386.pdf
Characteristics TA e 25 § Parameter Conditions Min Typ Max Units Operating Supply VoltageS(V ) LM386N-1, -3, LM386M-1 4 12 V LM386N-4 5 18 V Quiescent CurrentQ(I ) VS e 6V, VINe 0 4 8 mA Output Power (OUT ) LM386N-1, LM386M-1 VS e 6V, RL e 8X, THD e 10% 250 325 mW LM386N-3 V e 9V, R e 8X, THD e 10% 500 700 mW S L LM386N-4 VS e 16V, RL e 32X, THD e 10% 700 1000 mW e e Voltage Gain (V ) VS 6V, f 1 kHz 26 dB 10 mF from Pin 1 to 8 46 dB Bandwidth (BW) VS e 6V, Pins 1 and 8 Open 300 kHz Total Harmonic Distortion
in „Anfängerfrage: Kondensator 250uF gebraucht, 220uF+330uF vorhanden“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RECOM_RAC01_12SC_NETZTEILMODUL.pdf
- RAC01-C 0 Rated Power 1 or 2 Watts max. C Input Frequency Range (for AC Input) 47-63Hz A Input Current (full load) RAC01 (115/230VAC) 34mA/23mA max. RAC02-C R RAC02 (115/230VAC) 55mA/36mA max. No Load Power Consumption @115VAC
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PDF
zmm33.pdf
ZMM1 ... ZMM75 (500 mW) ZMM1 ... ZMM75 (500 mW) Surface mount Silicon Planar Zener Diodes Silizium-Planar-Zener-Dioden für die Oberflächenmontage Version 2007-07-06 Maximum power dissipation 500 mW Maximale
in „Vom Testaufbau in die Wirklichkeit“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TPCA8048-H_Toshiba.pdf
E AR 2.46 mJ (Tc = 25℃) (Note 4) 8 7 6 5 Channel temperature Tch 150 °C Storage temperature range T stg −55 to 150 °C Note: For Notes 1 to 4, refer to the next page. Using continuously under heavy loads (e.g. the
in „WER KENNT DIESES 10S BMS von 36V Lion Akku vom Hersteller GW.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1D_PSDs_von_Hamamatsu_-_s3979_etc_kpsd1002e04.pdf
180 ±15 ±60 40 0.1 5 2.5 20 0.1 S3931 320 to 110020 0.55 ±30 ±120 0.15 10 1.5 40 0.2 S3932 30 50 80 ±60 ±240 100 0.2 20 1.15 3.0 80 0.3 S3270 700 to 110060 0.55 10 15 20 ±100 ±400 300 0.5 20 1.0 100 2.8 *1: K: borosilicate
in „Beschaltung eines analogen Positionssensors“ · Analoge Elektronik und Schaltungstechnik ·
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usblc6-4sc6.pdf
) C(pF) 5.0 5.0 V OSC30mV RMS 4.5 F=1MHz 4.5 Tj25°C VOSC=30mV RMS V CC=0V 4.0 T=j5°C 4.0 3.5 3.5 C =I/O-GND O VCC=1.65V 3.0 3.0 2.5 2.5 CjI/O-I/O 2.0 2.0 1.5 1.5 1.0 1.0 0.5 0.5 Data line voltage (V) F(MHz) 0.0 0.0 0.0 0.5 1.0
in „Instabile USB Verbindung mit USBLC6-4SC6“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TPCA8028-H_datasheet_en_20080122.pdf
V) S 0.05 S • Enhancement mode: V th = 1.3 to 2.3 V (VDS = 10 V, ID= 1 mA) 1 4 1.1±0.2 . Absolute Maximum Ratings (Ta = 25°C) ± 0 0 4.25±0.2 3 Characteristic Symbol Rating Unit 8 5 0.8±0.1 Drain-source voltage VDSS 30 V 1,2,3:SOURCE 4:GATE
in „Ersatz für TPCA8028-H“ · Mikrocontroller und Digitale Elektronik ·
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Datasheet_MOSFET.pdf
(1) 4 5 Continuous Drain Current 8.0 G2 D2 I Pulsed Drain Current, T = 25°C) 108 A DM A PD Power Dissipation1) 2.1 W . TJ, Operating Junction and –55 to 150 °C Tstg Storage Temperature Range Avalanche Energy, single pulse . EAS I = 32, L = 0.1 mH, R = 25 Ω 51 mJ D G . 2 (1) Typical R θJA = 60°C/W on a 1-inch , 2-oz. Cu pad on a 0.06-inch thick FR4 PCB. (2) Max R = 20°C/W, pulse duration ≤100 μs, duty cycle ≤1% θJL . R DS(on) vs V GS Gate Charge
in „DRV8711 Steppermotortreiber - Hohe Geschwindigkeiten“ · Analoge Elektronik und Schaltungstechnik ·
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FDC638P-D.PDF
CURRENT (A) Figure 1. On-Region Characteristics. Figure 2. On-Resistance Variation with Drain Current and Gate Voltage. 1.6 0.15 I = -4.5A D I = -2.2A C V GS= -4.5V ) D N1.4 M 0.12 T H E I ( I S C L R1.2 N 0.09 M -N T R
in „richtiger n-Kanal MOSFET, 3,3V soll 5V und 100mA schalten“ · Analoge Elektronik und Schaltungstechnik ·
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tda7375.pdf
L1 21.7 22.1 22.5 0.854 0.870 0.886 L2 17.65 18.1 0.695 0.713 L3 17.25 17.5 17.75 0.679 0.689 0.699 L4 10.3 10.7 10.9 0.406 0.421 0.429 L7 2.65 2.9 0.104 0.114 M 4.25 4.55 4.85 0.167 0.179 0.191 M1 4.63
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