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mc14553b-d-1192980.pdf
to V) Q2 6 SS 10 LE Q3 5 Parameter Symbol Value Unit O.F. 14 DC Supply Voltage Range V DD −0.5 to +18.0 V 11 DIS DS1 2 Input or Output Voltage Range Vin −0.5 to DD V DS2 1 (DC or Transient) V out + 0.5 13 MR DS3 15 Input Current (DC or Transient) per Pin Iin ±10 mA V DD= PIN 16 Output Current (DC or
in „MC14553BCP - Alternative“ · Analoge Elektronik und Schaltungstechnik ·
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MCP1802.pdf
-1.90 IN -45 -22.5 0 22.5 45 67.5 90 Temperature (°C) FIGURE 2-15: Dynamic Line Response. FIGURE 2-18: Load Regulation vs. Temperature. 2010 Microchip Technology Inc. DS22053C-page 7 MCP1802 Note: Unless otherwise indicated: V = 3.3V, C = 1 µF Ceramic (X7R), C = 1 µF Ceramic (X7R), I = 100 µA, R OUT
in „Spannungsregler LDO - Ausgangs-Spannung schaltet nicht 100% ab“ · Analoge Elektronik und Schaltungstechnik ·
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MCP1801.pdf
L -1.60 -45 -22.5 0 22.5 45 67.5 90 Temperature (°C) FIGURE 2-15: Dynamic Line Response. FIGURE 2-18: Load Regulation vs. Temperature. 2010 Microchip Technology Inc. DS22051D-page 7 MCP1801 Note: Unless otherwise indicated: V = 3.3V, C = 1 µF Ceramic (X7R), C = 1 µF Ceramic (X7R), I = 100 µA, R OUT
in „USB-Spannungsversorgung lässt PIC24FJ128 abstürzen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet_ao3400.pdf
Drain-Source Breakdown Voltage ID=250 A, V GSV 30 V V =30V, V =0V 1 IDSS Zero Gate Voltage Drain Current DS GS A T J55°C 5 IGSS Gate-Body leakage current V DSV, V =GS12V 100 nA VGS(th) Gate Threshold Voltage V DS GS D =250 A 0.65 1.05 1.45 V I On state drain current V =4.5V, V =5V 30 A D(ON) GS DS V GS=10V, ID=5.8A 18 28 m TJ=125°C 28 39 R DS(ON) Static Drain-Source On-Resistance V GS.5V, I D5A 19 33 m V =2.5V, I =4A 24 52 m GS D gFS Forward Transconductance V DSV, I D5.8A 33 S VSD Diode Forward Voltage IS=1A,V GSV
in „24v rgbww controller mosfets und ic's“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
1811081213_Alpha---Omega-Semicon-AO3400A_C20917.pdf
Drain-Source Breakdown Voltage ID=250 A, V GSV 30 V V =30V, V =0V 1 IDSS Zero Gate Voltage Drain Current DS GS A T J55°C 5 IGSS Gate-Body leakage current V DSV, V =GS12V 100 nA VGS(th) Gate Threshold Voltage V DS GS D =250 A 0.65 1.05 1.45 V I On state drain current V =4.5V, V =5V 30 A D(ON) GS DS V GS=10V, ID=5.7A 18 26.5 m TJ=125°C 28 38 R DS(ON) Static Drain-Source On-Resistance V GS.5V, I D5A 19 32 m V =2.5V, I =3A 24 48 m GS D gFS Forward Transconductance V DSV, I D5.7A 33 S VSD Diode Forward Voltage IS=1A,V
in „Suche Bauteil XOXL-3E“ · Analoge Elektronik und Schaltungstechnik ·
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AO3400A.pdf
Drain-Source Breakdown Voltage ID=250 A, V GSV 30 V V =30V, V =0V 1 IDSS Zero Gate Voltage Drain Current DS GS A T J55°C 5 IGSS Gate-Body leakage current V DSV, V =GS12V 100 nA VGS(th) Gate Threshold Voltage V DS GS D =250 A 0.65 1.05 1.45 V I On state drain current V =4.5V, V =5V 30 A D(ON) GS DS V GS=10V, ID=5.7A 18 26.5 m TJ=125°C 28 38 R DS(ON) Static Drain-Source On-Resistance V GS.5V, I D5A 19 32 m V =2.5V, I =3A 24 48 m GS D gFS Forward Transconductance V DSV, I D5.7A 33 S VSD Diode Forward Voltage IS=1A,V
in „Umsetzung eines 5V Output mit ESP32 und AQY Halbleiterrelais“ · Mikrocontroller und Digitale Elektronik ·
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74hct595.pdf
shift register clock input 12 ST_CP storage register clock input 13 OE output enable (active LOW) 14 DS serial data input 15 Q0 parallel data output 16 V CC positive supply voltage handbook, halfpage Q1 VCC 1 16 handbook, halfQ1ge1 16 V CC Q2 2 15 Q0 Q2 2 15 Q0 3 14 Q3 Q3 DS 3 14 DS Q4 4 13 OE Q4 4 13
in „74HC595 wie steuert man das latch an?“ · Mikrocontroller und Digitale Elektronik ·
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74HC595_Philips.pdf
shift register clock input 12 ST_CP storage register clock input 13 OE output enable (active LOW) 14 DS serial data input 15 Q0 parallel data output 16 V CC positive supply voltage handbook, halfpage Q1 VCC 1 16 handbook, halfQ1ge1 16 V CC Q2 2 15 Q0 Q2 2 15 Q0 3 14 Q3 Q3 DS 3 14 DS Q4 4 13 OE Q4 4 13
in „Definierter Einschaltzustand beim 74HC595“ · Mikrocontroller und Digitale Elektronik ·
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74HC595_Shiftregister.pdf
shift register clock input 12 ST_CP storage register clock input 13 OE output enable (active LOW) 14 DS serial data input 15 Q0 parallel data output 16 V CC positive supply voltage handbook, halfpage Q1 VCC 1 16 handbook, halfQ1ge1 16 V CC Q2 2 15 Q0 Q2 2 15 Q0 3 14 Q3 Q3 DS 3 14 DS Q4 4 13 OE Q4 4 13
in „Unterschied 74HCT595, 74HC595“ · Mikrocontroller und Digitale Elektronik ·
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74HC_HCT595.pdf
shift register clock input 12 ST_CP storage register clock input 13 OE output enable (active LOW) 14 DS serial data input 15 Q0 parallel data output 16 V CC positive supply voltage handbook, halfpage Q1 VCC 1 16 handbook, halfQ1ge1 16 V CC Q2 2 15 Q0 Q2 2 15 Q0 3 14 Q3 Q3 DS 3 14 DS Q4 4 13 OE Q4 4 13
in „74HC595 und ATtiny13 Lauflicht“ · Mikrocontroller und Digitale Elektronik ·
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PSU.pdf
r r tin_Headers:Pin_Header5StraightN1x08 r 0 _ R s R7 s i 8 R 1 i (PCINT16/RXD)PD0 30 StatusLEDMCU DS18B20 l S N i 2 D DAC_Spannung d R d d R R R 31 S H r 6 O e C-3 NPN S Resistors_SMD:R_0805_HandSolderinr S D i (PCINT17/TXD)PD1 a S e 7 C R O r a a l Spannung_st n S d 32 r _ U a T B gi _ _ d Housings_SOIC
in „Labornetzteil“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
_zucMain.h
;lw("x"); li(ds1820_tmp[3]);sub_set_Comma();lw("x"); li(ds1820_tmp[4]);sub_set_Comma();lw("x"); } if(soundtimer){ soundtimer--; if(!soundtimer)sound_off(); if(soundtimer==18)OCR2A=30; if(soundtimer==16)OCR2A=60; if(
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176001-da-01-en-ic_lm317t.pdf
Characteristics Output Capacitor = 0 µF unless otherwise noted Load Regulation Current Limit Adjustment Current DS009063-37 DS009063-38 DS009063-39 Dropout Voltage Temperature Stability Minimum Operating Current DS009063-40 DS009063-41 DS009063-42 Ripple Rejection Ripple Rejection Ripple Rejection DS009063-43 DS009063
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176001-da-01-en-IC_LM317T.pdf
Characteristics Output Capacitor = 0 µF unless otherwise noted Load Regulation Current Limit Adjustment Current DS009063-37 DS009063-38 DS009063-39 Dropout Voltage Temperature Stability Minimum Operating Current DS009063-40 DS009063-41 DS009063-42 Ripple Rejection Ripple Rejection Ripple Rejection DS009063-43 DS009063
in „Spannungsregler“ · Mikrocontroller und Digitale Elektronik ·
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93C86.pdf
cn) to receive the most current information on our products. 1996-2012 Microchip Technology Inc. DS21132F-page 17 93C76/86 NOTES: DS21132F-page 18 1996-2012 Microchip Technology Inc. Note the following details of the code protection feature on Microchip devices: • Microchip products meet the specification
in „asm Code für EEPROM 93C86“ · Mikrocontroller und Digitale Elektronik ·
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LM317.pdf
Characteristics Output Capacitor = 0 µF unless otherwise noted Load Regulation Current Limit Adjustment Current DS009063-37 DS009063-38 DS009063-39 Dropout Voltage Temperature Stability Minimum Operating Current DS009063-40 DS009063-41 DS009063-42 Ripple Rejection Ripple Rejection Ripple Rejection DS009063-43 DS009063
in „Einfaches regelbares Netzteil mit LM350“ · Analoge Elektronik und Schaltungstechnik ·
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OZ960_O2MICRO.pdf
r i NMCA D I N I t p VV DVE G V E D S O J 5 Figure 1: An 8-22V Application Circuit of OZ960 OZ960-DS-1.6 Page 2 OZ960 I=3uA 1 NDR_B 20 CTIMR NDR_B 2 + OVP I=6uA Protection OVP 2 - hys. PDR_A 19 PDR_A COMP Soft POFF Start ENA 3 + 18 CT ACTIVE ENA "HIGH" V - HF 1 hys. OSC 4 COMP 17 SST RT POFF VDDA 5
in „Ic´s (unbekannt) für den Tft monitor gesucht“ · Mikrocontroller und Digitale Elektronik ·
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OZ960.pdf
r i NMCA D I N I t p VV DVE G V E D S O J 5 Figure 1: An 8-22V Application Circuit of OZ960 OZ960-DS-1.6 Page 2 OZ960 I=3uA 1 NDR_B 20 CTIMR NDR_B 2 + OVP I=6uA Protection OVP 2 - hys. PDR_A 19 PDR_A COMP Soft POFF Start ENA 3 + 18 CT ACTIVE ENA "HIGH" V - HF 1 hys. OSC 4 COMP 17 SST RT POFF VDDA 5
in „BenQ FP71Bildschirm fällt nach einiger Zeit aus“ · Mikrocontroller und Digitale Elektronik ·
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OZ960.pdf
r i NMCA D I N I t p VV DVE G V E D S O J 5 Figure 1: An 8-22V Application Circuit of OZ960 OZ960-DS-1.6 Page 2 OZ960 I=3uA 1 NDR_B 20 CTIMR NDR_B 2 + OVP I=6uA Protection OVP 2 - hys. PDR_A 19 PDR_A COMP Soft POFF Start ENA 3 + 18 CT ACTIVE ENA "HIGH" V - HF 1 hys. OSC 4 COMP 17 SST RT POFF VDDA 5
in „Monitor defekt!“ · Analoge Elektronik und Schaltungstechnik ·
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EE93LC46A.pdf
X X — HIGH-Z 10 EWDS EWEN 1 00 1 1 X X X X X — HIGH-Z 10 READ 1 10 A6 A5 A4 A3 A2 A1 A0 — D7 - D0 18 1 01 A6 A5 A4 A3 A2 A1 A0 D7 - D0 (RDY/BSY) 18 WRITE WRAL 1 00 0 1 X X X X X D7 - D0 (RDY/BSY) 18 TABLE 2-2 INSTRUCTION SET FOR 93LC46B Instruction SB Opcode Address Data In Data Out Req. CLK Cycles
in „Programieren eines 93LC46A (EEPROM) mit einem Attiny 13A“ · Mikrocontroller und Digitale Elektronik ·
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PIC16F18344.pdf
TMR2 = PR2 TMR2 = PWMDC TMR2 = 0 2015 Microchip Technology Inc. Preliminary DS40001800A-page 189 PIC16(L)F18324/18344 FIGURE 18-2: SIMPLIFIED PWM BLOCK DIAGRAM Duty Cycleregisters PWMDCH PWMDCL<7:6> R Q PWMx Comparator S Q TMR2 R Output Polarity (PWMPOL) Comparator PR2 18.1.1 PWM
in „EEPROM Verständnisproblem beim PIC 16F18344“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Tastatur.asm
r22 ;Bit 1 und 0= 00 ohne; 01 1Dezimalstelle; 10 2 DS; 11 3 DS; kopiert aus Steuer .def Steuer = r23 ; Bit2 gesetzt=Minus; ; Bit 1 und 0= 00 ohne; 01 1Dezimalstelle; 10 2 DS; 11 3 DS .def adl = r24 ; Ergebnis vom ADC; sonst für Bild in Adressspeicherung
in „Hausbus für Meß- und Steueraufgaben mit Attiny“ · Haus & Smart Home ·
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Datei
DS1820.c
*txt ) uart_putc ( *txt++ ); } // for 1 Wire Bus functions, defines Portbit #asm .equ __w1_port=0x18 ;PORTB .equ __w1_bit=3 #endasm #define MAX_DS1820 4 // maximum number of DS1820 devices connected to the 1 Wire bus unsigned char ds1820_devices; // number of DS1820 device connected to the 1 Wire bus unsigned char ds1820_rom_codes[MAX_DS1820][9]; // DS1820 ROM code storage area, 9 bytes void main(void) { char s[20]; int i, temp; suart_init(); // soft uart init (only txd) ds1820_devices = w1_search(0xf0,ds1820_rom_codes
in „AVR 8015 / DS1820“ · Mikrocontroller und Digitale Elektronik ·
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rt9198__rt9198a_richtek_DT_93R.pdf
50 t v-50 O D u e O D Time (100μs/Div) Time (100μs/Div) Start Up EN Pin Shutdown Response g RT9198-18, VIN 5V VOUT= 1.8V g RT9198-18, IN= 5V VOUT = 1.8V t 10 C INC OUT= 1uF LOAD= 1mA t 10 CIN C OUT= 1uF ILOAD= 1mA o ) o ) V ( 5 V ( 5 i i P 0 P 0 E E e g g l 2 l 2 V ) o ) u ( 1 t ( 1 t p u 0 u 0 O O Time
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rt9198__rt9198a_richtek_VR.pdf
50 t v-50 O D u e O D Time (100μs/Div) Time (100μs/Div) Start Up EN Pin Shutdown Response g RT9198-18, VIN 5V VOUT= 1.8V g RT9198-18, IN= 5V VOUT = 1.8V t 10 C INC OUT= 1uF LOAD= 1mA t 10 CIN C OUT= 1uF ILOAD= 1mA o ) o ) V ( 5 V ( 5 i i P 0 P 0 E E e g g l 2 l 2 V ) o ) u ( 1 t ( 1 t p u 0 u 0 O O Time
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ErklearungDriverSimulation.pdf
results from the simulation can be found in Figure 6 and Figure 7. © 2009 Microchip Technology Inc. DS01256A-page 3 AN1256 FIGURE 5: Default Simulator Setting Changes. DS01256A-page 4 © 2009 Microchip Technology Inc. AN1256 FIGURE 6: Boost Convert Waveforms. © 2009 Microchip Technology Inc. DS01256A-page
in „Spice Simulation von Treiber TC4229“ · Analoge Elektronik und Schaltungstechnik ·
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_Elmos__981_03.pdf
to permit improvements in the design of its products. Elmos Semiconductor AG Data Sheet QM-No.: 25DS0046E.03 18/51 KNX/ EIBTRANSCEIVER E981.03 PRODUCTION DATA - JAN 15, 2015 6.1 Reset / Power Up-&Down Sequence 6.2 Overall To ensure a stable function under all conditions the E981.03 supports several
in „Exposed Pad anschließen? (ATSAMD20E18A-MU und ELMOS E981.03)“ · Mikrocontroller und Digitale Elektronik ·
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tle5206_motorbridge.pdf
Source R – 220 350 m Ω 6 V <V < 18 V DS ON H S IOUT= – 3 A Tj= 25°C – 500 m Ω 6 V <VS < 18 V 350 500 m Ω VS ON<V S≤ 6 V Tj= 25°C – 800 m Ω VS ON<V S≤ 6 V Sink R – 230 350 m Ω 6 V <V <18 V DS ON L S IOUT= 3 A Tj= 25°C – 500 m Ω 6 V <V <18 V S 400 600 m Ω VS ON<V S≤ 6 V T = 25°C j – 1000 m Ω VS ON<V S≤ 6 V Note: Values ofDS ONforVS ON< VS≤ 6 V are guaranteed by design. Overcurrent Source shutdown trippoint –ISDH – – 10 A Tj= – 40C – 8
in „Diskrete H-Brücke“ · Analoge Elektronik und Schaltungstechnik ·
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nRF24L01P_Product_Specification_1_0.pdf
packet is received by the PRX, whereas the TX_DS IRQ is asserted when the packet is acknowl- edged and the ACK packet is received by the PTX. UL IRQ MCU PTX IRQ:TX DS (PID=1) 130us PTX TX:PID=1 RX RX ACK:PID=1 PRX IRQ: RX DR (PID=1) MCU PRX DL 1 Radio
in „NRF24L01+ erkennen ob gesendet wird“ · Mikrocontroller und Digitale Elektronik ·
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MCP6562.pdf
2.5 -1.0 0.0 1.0 2.0 3.0 4.0 5.0 6.0 V CM (V) V CM (V) FIGURE 2-15: Quiescent Current vs. FIGURE 2-18: Quiescent Current vs. Common-mode Input Voltage. Common-mode Input Voltage. © 2009 Microchip Technology Inc. DS22139B-page 7 MCP6561/1R/1U/2/4 Note: Unless otherwise indicated, V DD = +1.8V to +5.5V
in „Schmitttrigger mit MCP6562 unklare Abweichung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BF1009SW_2001_INF.pdf
50 nA G2SS ±V G2S = 8 V, G1S = 0 V, VDS = 0 V Drain current DSS - - 500 µA V = 9 V, V = 0 , V = 6 V DS G1S G2S Operating current (selfbiased) DSO 10 14 19 mA V DS = 9 V, G2S = 6 V Gate 2-source pinch-off voltage VG2S(p) - 0.9 - V V DS = 9 V,DI = 100 µA AC characteristics Forward transconductance (self
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BS170_2N7000.pdf
N-Channel 60-V (D-S) MOSFET FEATURES PRODUCT SUMMARY D TrenchFETr Power MOSFET D ESD Protected: 2000 V V DS (V) rDS(on) (W) V GS(th)(V) D (A) 2 @ V = 10 V 0.47 APPLICATIONS 60 GS 1.0 to 2.5 4 @ VGS = 4.5 V 0.33 D Direct Logic-Level Interface: TTL/CMOS D Soild State Relays D Drivers: Relays, Solenoids, Lamps
in „(Mosfet-) Alternative zu ULN2003“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
74LV595PW_118.pdf
10 - 41 - ns V CC = 2.7 V 25 8 - 30 - ns V CC = 3.0 V to 3.6 V [3] 20 6 - 24 - ns tsu set-up time DS to SHCP; see Figure 10 V = 1.2 V - 40 - - - ns CC V CC = 2.0 V 26 14 - 31 - ns V CC = 2.7 V 19 10 - 23 - ns [3] V CC = 3.0 V to 3.6 V 15 8 - 18 - ns SHCP to STCP; see Figure 9 V CC = 1.2 V - 40 - - - ns V CC = 2.0 V 26 14 - 31 - ns V = 2.7 V 19 10 - 23 - ns CC V CC = 3.0 V to 3.6 V [3] 15 8 - 18 - ns th hold time DS to SHCP; see Figure 10 V CC = 1.2 V - 10.0 - - - ns V CC = 2.0 V 5.0 4.0 - 5.0 - ns V CC = 2.7 V 5.0 3.0 - 5.0 - ns V CC = 3.0 V to 3.6 V 5.0 2.0 - 5.0 - ns t recovery time MR
in „Geschwindigkeit 74LV595 zu 74LV595 abhängig Leitungslänge“ · Mikrocontroller und Digitale Elektronik ·
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si1402dh.pdf
100 nA VDS = 30 V, GS = 0 V 1 Zero Gate Voltage Drain Current DSS V = 30 V, V = 0 V, T = 55 °C 5 µA DS GS J On-State Drain Current ID(on) V DS ≥ 5 V, GS = 4.5 V 4 A a V GS = 4.5 V,DI = 3.0 A 0.064 0.077 Drain-Source On-State Resistance R DS(on) Ω V GS = 2.5 V,DI = 2.0 A 0.095 0.120 a Forward Transconductance
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2N4416.pdf
V, DS = 0 V (2N) −2 −100 −100 pA T = 150_C −4 −100 −100 Gate Reverse Current I A GSS VGS = −15 V,DS = 0 V (SST) −0.002 −1 nA TA= 125_C −0.6 Gate Operating Current I V = 10 V, I = 1 mA −20 G DG D pA Drain Cutoff
in „OP-Amp schützen“ · Analoge Elektronik und Schaltungstechnik ·
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MCP794xx.pdf
Decimal Value of Date’s Ones Digit Contains a value from 0 to 9 2011-2018 Microchip Technology Inc. DS20005009G-page 18 MCP79400/MCP79401/MCP79402 REGISTER 5-6: RTCMTH: TIMEKEEPING MONTH VALUE REGISTER (ADDRESS 0x05) U-0 U-0 R-0 R/W-0 R/W-0 R/W-0 R/W-0 R/W-1 — — LPYR MTHTEN0 MTHONE3 MTHONE2 MTHONE1 MTHONE0
in „MCP794xx EUI-64 Node Adresse“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds1820.c
{ ds1820_skip_rom(); ds1820_convert_t(); rc = ds1820_reset_pulse(); if (rc == DS1820_ERR_OK) { ds1820_skip_rom(); ds1820_read_scratchpad(sp); rc = ds1820_reset_pulse(); sp->crc_calc = ds1820_crc8((char *)
in „DS18S20 in C“ · Mikrocontroller und Digitale Elektronik ·
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WM12-DIN_20Data_D.pdf
15+10%, 50-60Hz Phasenstrom: 0,03A bis 6A D: 230VAC Nulleiterstrom: 0,09 bis 6A -15+10%, 50-60Hz 3: 18 bis 60VDC Technische Daten Eingang AnzahlderEingänge Temperaturabweichung ≤ 200ppm/ ° Strom 3 (Shunt) Abtastrate 1400Meßwertes/s@50Hz Spannung 4 1700Meßwertes/s@60Hz Genauigkeit (Anzeige, RS485) mitCT
in „Drehstromzähler“ · Projekte & Code ·
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433MHz__odul_antenne_0900766b802fb241.pdf
from RX to TX mode 1 uS Data Bit rate 20 20,000 bps Notes 1. Supply voltage should have <10mV ripple. DS0353-4 Sept ‘02 ©2002 Reg. No. 227 4001, ENGLAND Page 2 D UAL B AND FM W IRELESS T RANSCEIVER RXQ1 Mechanical Dimensions Top View RF GND 1 18 CS Antenna 2 17 Vcc RF GND 3 16 Rx SELECT NC 4 15 Tx SELECT
in „Funkempfänger/sender gesucht“ · Mikrocontroller und Digitale Elektronik ·
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DS2482-800DS18B20PAR_300.pdf
DS2482-800DS18B20PAR_300.pdf
in „Messung mit DS18B20PAR an DS2482-800 setzt bei niedriger Temperatur aus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Solar-DS.pdf
and DS Together! Set the DS and the bottom panel right next to each other, and make sure the wires from the DS can reach the chip. Solder the positive DS wire (the blue one near the top of the battery compartment
in „Woher Mini-Solarzellen?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
oneWire.c
byte by byte scratchpad[i]=ds1820_re_byte(port, used_pin); //9. read one DS18S20 byte } } //Umrechnung von Scratchpad zu Temperatur temp = ((scratchpad[0])>>4)+((scratchpad[1] & 0x07)<<4); temp += ((scratchpad[0] & 0x08)>>3)*0.5;
in „Timingproblem mit Onewire und STM32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds1820.c
detect short circuit uint8_t err; DS_PORT &= ~DS_BIT; // output is always low, signal is controlled by DDR DS_DDR |= DS_BIT; // pull bus low _delay_us(480); // wait 480 us cli(); DS_DDR &= ~DS_BIT; // release bus _delay_us(70); // wait
in „Vereinfache/Kompakte Libary für D18B20“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADG507A.pdf
VSS VSS V SS V SS V SS VSS V min VDD VDD V DD V DD V DD VDD V max RON 500 500 500 typ 0 V V S +10 V,DS=0.5 mA; Test Circuit 1 700 1000 700 1000 700 1000 max RONDrift 0.6 0.6 0.6 %/°C typ 0 V VS +10 V, DS= 0.5 mA RONMatch 5 5 5 % typ 0 V VS +10 V, DS= 0.5 mA I (OFF), Off Input Leakage 0.02 0.02 0.02 nA
in „Videopfad - LM1881 -Sync-Problem“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTM190E4-L02.pdf
Symbol Min. Typ. Max. Unit Note Voltage of Power Supply V DD 4.5 5.0 5.5 V (1) Interface type LVDS DS90C383/385/387 DS90C386 Pair Current of (a) Black - 700 - mA Power (b) White I - 800 - mA (2),(3) DD Supply (c) 2 Line Stripe - 800 1050 mA Vsync Frequency fV 49 60 76 Hz Hsync Frequency fH 51 64 85 kHz
in „Ansteuerung LC Display LTM190E4-L03“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PMV15UNEA.pdf
250 µA; V GS = 0 V; Tj= 25 °C 20 - - V breakdown voltage VGSth gate-source threshold ID= 250 µA; V DS = V GS; j = 25 °C 0.4 0.65 0.9 V voltage I drain leakage current V = 20 V; V = 0 V; T = 25 °C - - 1 µA DSS DS GS j GSS gate leakage current V GS = 8 V; VDS = 0 V; j = 25 °C - - 10 µA V GS = -8 V; DS
in „Wahl des SynchrongleichrichterMOSFETs für Buck Converter“ · Analoge Elektronik und Schaltungstechnik ·
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IRF830.pdf
VDS = VGS ID= 250 A 2 3 4 V Voltage R Static Drain-source On V = 10V I = 2.7 A 1.35 1.5 DS(on) GS D Resistance ID(on) On State Drain Current VDS > ID(on) RDS(on)max 4.5 A VGS = 10 V DYNAMIC Symbol Parameter Test Conditions Min. Typ. Max. Unit g (∗) Forward V > I x R I = 2.7 A 2.5 S fs DS D(on) DS(on)max D Transconductance C Input Capacitance V = 25 V f = 1 MHz V = 0 610 pF iss DS GS Coss Output Capacitance 120 pF Crss Reverse Transfer 10 pF Capacitance 2/8 IRF830 ELECTRICAL CHARACTERISTICS (continued
in „Spannunngsübertragung mit Luftspulen“ · Analoge Elektronik und Schaltungstechnik ·
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FDW2501NZ.pdf
MOSFET General Description Features This N-Channel 2.5V specified MOSFET is a rugged • 5.5 A, 20 V. R DS(ON) 18 mΩ @ V GS= 4.5V gate version of Fairchild Semiconductor’s advanced R DS(ON) 25 mΩ @ V GS= 2.5V PowerTrench process. It has been optimized for power management applications with a wide range of
in „N-Fet leitet auch bei 0v Gate-Spannung?“ · Mikrocontroller und Digitale Elektronik ·
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Display_-_NL10276BC30-04D.pdf
CN23 CN24 Color of the cablegray, white, white Data Sheet EN0488EJ1V0DS00 9 NL10276BC30-04D CONNECTING THE THC63LVDF63A NL10276BC30-04D Note 2 THC63LVDF63A (THine) THC63LVDF64A R0 TA0 R1 TA1 TA+ Note 1 D0+ . . TA− D0− R5 TA5 G0 TA6 TB+ D1+ . G. TB. TB− D1− . G5 TB4 TC+ D2
in „VIA Nano Board LVDS Connector“ · Mikrocontroller und Digitale Elektronik ·
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Display_-_NL10276BC30-04D.pdf
CN23 CN24 Color of the cablegray, white, white Data Sheet EN0488EJ1V0DS00 9 NL10276BC30-04D CONNECTING THE THC63LVDF63A NL10276BC30-04D Note 2 THC63LVDF63A (THine) THC63LVDF64A R0 TA0 R1 TA1 TA+ Note 1 D0+ . . TA− D0− R5 TA5 G0 TA6 TB+ D1+ . G. TB. TB− D1− . G5 TB4 TC+ D2
in „günstiges ITX Mainboard mit LVDS Connector“ · Mikrocontroller und Digitale Elektronik ·