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PDF
AD620.pdf
Power, 1.3 mA max Supply Current +IN 3 6 OUTPUT EXCELLENT DC PERFORMANCE (“B GRADE”) –VS 4 AD620 5 REF 50 mV max, Input Offset Voltage TOP VIEW 0.6 mV/8C max, Input Offset Drift 1.0 nA max, Input Bias Current 100 dB min Common-Mode Rejection Ratio (G = 10) 1000. Furthermore, the AD620 features 8-lead
in „Probleme mit Instrumentenverstärker AD620“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX4194-MAX4197.pdf
MAX4196 Yes +10 115 Bridge Amplifier MAX4197 Yes +100 115 Pin Configurations TOP VIEW RG- 1 8 RG+ REF 1 8 SHDN IN-2 7 CC IN-2 7 VCC MAX4194 MAX4195 IN+3 6 OUT IN+3 MAX4196 6 OUT MAX4197 EE 4 5 REF EE 4 5 FB SO SO Rail-to-Rail is a registered trademark of Nippon Motorola, Ltd. _______________________
in „ADC nicht sauber sinus auf oszi“ · Mikrocontroller und Digitale Elektronik ·
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PDF
B150XG01.pdf
color for R/G/B LCD DSPTMG Controller TFT Vsync 1024(R/G/B) x 3 Hsync (3 pairs LVDS) Converter DTCLK Ref circuit (1 pair LVDS) Y-Drivr VDD X -Drivr GND LCD Connector JAE JAE FI-XB30R-HF11 LampConnector JST BHSR-02VS-1 Mating Type JAE FI-S30M Mating yp e SM02B-BHSS-1 (C) Copyright AU Optronics, Inc. August
in „15" XGA Display an Computer anschließen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
W83627HF_datasheet.pdf
FDC. It is pulled high internally. PD1 41 I/O12t PRINTER MODE: PD1 Parallel port data bus bit 1. Refer to the description of the parallel port for the definition of this pin in ECP and EPP mode. INt EXTENSION FDD MODE: TRAK02# This pin is for Extension FDD B; its function is the same as the TRAK0# pin of FDC. It is pulled high internally. INt EXTENSION. 2FDD MODE: TRAK02# This pin is for Extension FDD A and B; its function is the same as the TRAK0# pin of FDC. It is pulled high internally. PD2 40 I/O12t PRINTER MODE: PD2 Parallel port data bus bit 2. Refer to the description
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PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 20St 4-Bit I2C LED PWN Treiber NXP PCA9533 (SO8) (1€/St)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] einige 4 Bit I2C LED PWN Treiber NXP PCA9533 (SO8)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (1€/St)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (12€ / 20St)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] nochmal 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (12€ / 20St)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (12€ / 20St)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (30St/17€)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (30St/12€)“ · Markt ·
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PDF
PCA9533.pdf
range PCA9533D/01 P9533/1 Tamb= −40 °C to +85 °C PCA9533D/02 P9533/2 Tamb= −40 °C to +85 °C PCA9533DP/01 P33/1 Tamb= −40 °C to +85 °C PCA9533DP/02 P33/2 Tamb= −40 °C to +85 °C PCA9533_3 © NXP B.V. 2009. All rights reserved. Product data sheet Rev. 03 Ñ 27 April
in „[V] 4-Bit I2C LED PWN Treiber NXP PCA9533 (TSSOP-8) (30St/12€)“ · Markt ·
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PDF
MAX534.pdf
SYSTEM GND positive output is the lower endpoint. Power Sequencing OUTC OUTB The voltage applied to REF should not exceed V DD at OUTD OUTA any time. If proper power sequencing is not possible, connect an external Schottky diode between REF and AGND REF VDD to ensure compliance with the absolute maximum
in „D/A Wandler und der reference pin...“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HCPL7800.pdf
= 7800B 1-217 Gull Wing Surface Mount Option 300* PIN LOCATION (FOR REFERENCE ONLY) 9.65 ± 0.25 1.02 (0.040) (0.380 ± 0.010) 1.19 (0.047) 8 7 6 5 4.83 TYP. (0.190) HP 7800 6.350 ± 0.25 YYWW (0.250 ± 0.010) 9.65 ± 0.25 (0.380 ± 0.010) MOLDED 1 2 3 4 0.380 (0.015) 0.635 (0.025) 1.19 (0.047) 1.78 (0.070
in „Galvanisch getrennten 1-10V Ausgang regeln“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HCPL7800.pdf
= 7800B 1-217 Gull Wing Surface Mount Option 300* PIN LOCATION (FOR REFERENCE ONLY) 9.65 ± 0.25 1.02 (0.040) (0.380 ± 0.010) 1.19 (0.047) 8 7 6 5 4.83 TYP. (0.190) HP 7800 6.350 ± 0.25 YYWW (0.250 ± 0.010) 9.65 ± 0.25 (0.380 ± 0.010) MOLDED 1 2 3 4 0.380 (0.015) 0.635 (0.025) 1.19 (0.047) 1.78 (0.070
in „8fach Trennverstärker 0..10V - wie realisieren?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ise_tutorial_ug695.pdf
, click Restart. X-Ref Target - Figure 5-8 Figure 5-8: Restart Dialog Box 3. At the ModelSim command prompt, enter run 2000 ns. 4. Press Enter. X-Ref Target - Figure 5-9 Figure 5-9: Entering the Run Command The simulation
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DS8816A-05.pdf
Technology Corporation. DS8816A-05 March 2019 www.richtek.com 15 RT8816A R = VREFIN STANDBY N = max Vmax R REF2 REF1 RBOOT V STANDBY R V V R R REF2 VREF STANDBY REF1 REF2 BOOT N = 2 N = 1 Normal Mode Vmin VID Duty 0 0.5 1 If the VIDpin is driven by a PWM signal and switch Q1 is disabledasshowninFigure9
in „Spule auf Synchronwandler wird innerhalb sekunden brennend heiß“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Test2.c
Frequenzvorteiler // setzen auf 8 (1) und ADC aktivieren (1) ADMUX = mux; // Kanal waehlen ADMUX |= (1<<REFS1) | (1<<REFS0); // interne Referenzspannung nutzen /* nach Aktivieren des ADC wird ein "Dummy-Readout" empfohlen, man liest also einen Wert und verwirft diesen, um den ADC "warmlaufen zu lassen" */
in „ATMega32, Falsche Ausgabe vom AD-Wandler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Spannung.c
einstellen ADMUX = ADMUX | channel; // AN ADC0 ist die zumessende Spannung angeschlossen ADMUX |= (1<<REFS1) | (1<<REFS0); // interne Referenzspannung nutzen // Dummie readout ADCSRA |= (1<<ADSC); while (!(ADCSRA & (1<<ADIF))); ADCSRA |= (1<<ADIF); for (i=0;i<mittel;i++) { // Messvorgang bestehend aus 8
in „2 Spannungen mit ADC direkt nacheinander messen“ · Analoge Elektronik und Schaltungstechnik ·
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LCD_Counter_Schematic_.pdf
dig31 D0 C S2b Q13 dig30 BLANK B S2a 9 lcd2c Q12 A I_70 Q11 dig23 I_255 TIMGEN Q10 dig22 37 lcd2b ref_clk 11 I_223 TimeRef Res RES Q9 dig21 I_66 RegClk Gate EN Q8 dig20 Start 2 Start CLK Q7 dig13 38 lcd2a I_246 I_248 Q6 dig12 I_65 cnt_inp 33 dig11 I_229 Q5 dig10 31 I_71 lcd1g Q4 dig03 Q3 dig02 32 lcd1f
in „Lattice PLD Seminararbeitthema gesucht - ispLSI1016e“ · FPGA, VHDL & Co. ·
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PDF
Intel_RC28fxxxj3_StrataFlash.pdf
datasheet to reflect the best known methods Updated max value for Clear Block Lock-Bits time 03/21/02 -011 Minor text edits 12/12/02 -012 Added nomenclature for J3C (0.18 µm) devices. Added 115 ns access speed 64 Mb J3C device. Added 120 ns access speed 128 01/24/03 -013 Mb J3C device. Added “TE” package
in „Geschwindigkeit Flash Memory“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD2S90.pdf
Positive voltage w.r.t. AGND indicates in- 3 2 1 20 19 creasing angle. FSD = 375 rps. DATA 4 PIN 1 18REF 18 REF Converter reference input. Normally derived IDENTIFIER from resolver primary excitation. REF = 2 V SCLK 5 AD2S90 17VEL CS 6 TOP VIEW 16CLKOUT rms nominal. Phase shift w.r.t. COS and SIN A 7 (
in „Resolver Anschließen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LP2950-D.PDF
mVrms n CL= 1.0 mF − 126 − CL= 100 mF − 56 − LP2951A/LP2951AC Only Reference Voltage (T = 25°C) V V A ref LP2951C/LP2951C−XX/NCV2951C* 1.210 1.235 1.260 LP2951AC/LP2951AC−XX/NCV2951AC* 1.220 1.235 1.250 Reference Voltage AT = −40 to +125°C) V ref V LP2951C/LP2951C−XX/NCV2951C* 1.200 − 1.270 LP2951AC/LP2951AC
in „Wie lange hält ein LM1117-5.0 ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LP2950_LP2951.pdf
mVrms n CL= 1.0 mF − 126 − CL= 100 mF − 56 − LP2951A/LP2951AC Only Reference Voltage (T = 25°C) V V A ref LP2951C/LP2951C−XX/NCV2951C* 1.210 1.235 1.260 LP2951AC/LP2951AC−XX/NCV2951AC* 1.220 1.235 1.250 Reference Voltage AT = −40 to +125°C) V ref V LP2951C/LP2951C−XX/NCV2951C* 1.200 − 1.270 LP2951AC/LP2951AC
in „Warum funktioniert mein Brückengleichrichter nicht?“ · Fahrzeugelektronik ·
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Datei
Projet_07_Akkulader.asm
normal modus operation arbeitet ldi TEMP,0b00000100 ;Timer 1 normal operation und prescaler 256(1,02s)einstellen out TCCR1B,TEMP ;Ich den bit7 auf null gesetzt weil ich nicht den Input Capture Noise Canceler Modus brauche ;Bit6 wurde auch auf null gesetzt weil ich nicht den Input Capture Edge Select
in „Wichtig: was ist hier im AVR programm falsch??“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Atmega_8_Solarpanel_ausrichten.c
Compare Match, löschen on Top TCCR1B |= (1<<WGM13 ); TCCR1B |= (1<<WGM12 ); // Binäre Zählung bei WGM02 -> WGM00 // TCCR1A |= (1<<WGM11 ); // Waveform Generation Mode TCCR1A |= (1<<WGM10 ); // Table 11-8 on Page 72 (ATTiny13(doc2535).pdf) // TCCR1B |= (1<<FOC0A ); // Nicht bei Fast PWM // TCCR1B |= (1<
in „ATMEGA 8 PWM geht nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmega2560_2561.pdf
the Timer/Counter0 Overflow interrupt is executed. The setting of this flag is dependent of the WGM02:0 bit setting. Refer to Table 79, “Waveform Generation Mode Bit Description” on page 131. 135 2549I–AVR–07/06 16-bit Timer/Counter (Timer/Counter 1, 3, 4, and 5) The 16-bit Timer/Counter unit allows
in „Ethernet Buchse“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS1000Z_Firmware_Release_Notes-7.pdf
DS1104Z-S, MSO1074Z, MSO1104Z, MSO1074Z-S, MSO1104Z-S Version Information Released version: 00.04.03.02.03 Release Date: 10/20/2015 Compatibility Compatible with earlier versions of the hardware Change Log Key: E – Enhancements. Changes that add functionality M – Modifications. Changes to improve performance
in „Rigol-DS1054Z“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NODEMCU_DEVKIT_V1_0.PDF
ORGANIZATION D NODE MCU TEAM D WEBSITE WWW.NODEMCU.COM 1 2 3 4 COJ1 COC1 COJ2 A11 A1 COU1 A21 A2A11 A02 A12 A1R13 A22 A13 A12 A01 A23 A1A13 A00 A14 A24 A14 A09COR1 A15 A15 A08A2 A25 COR2 A16 A16 A07A1 A26 A17 A06PAR502 A17 A1RA27 A18 A05 A18 U9 10 0 P02A03U4 A28 COC8 A19 PA21 P182PAU401 A29 COR8 COC2 COU4 A10 C2 PU02 P23 J01 PA22COC1 A403 COVT2 A10 A1PT0 J01 PCOR3COCORCOCOCCOCOR6 COCOR7 A12 P2 02R2 2 91A1 1 61A2 01R1 J02 L2A0 7A2PU1 A2PT0 A13 D1 PAU209 PAU2027OVT1J03 COD1COCCOC5U2011PAU20P13 A14 D2 PAPACPAU2014PAU2022
in „NodmCU ESP8266 nicht zu flashen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DLO7135.pdf
.310 (12.7) .018 pin 1 .075 .080 (3.56) .100 (.45) indicator (1.91) .48 (2.03) (7.87) (2.54) .30 sq. ref. (12.19) diam. ref. (7.62) S D .100 (2.54) .235 E L 1.00 (5.97) E 7 (2.54) I L 1.00 N 3 .800 typ. 0.18 .02 M O (typ.) S 5 (20.32) .68 (4.57) (.51) N 1 .43 .043 Y (17.27) S 5 (10.92) (1.09) W .100 (2.54
in „Ansteuerung 8x5 Led Matrix“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TT_Bausatz_mit_Deek_Robot-DIL28_Umbauten.pdf
UfAusgabe.o DisplayValue.o lcd-draw.o swuart.o wait1000ms.o sleep_5ms.o ReadADC.o wait_for_key_ms.o RefVoltage.o get_log.o main.o Battery_check.o CheckPins.o GetResistance.o ChargePin10ms.o EntladePins.o ReadCapacity.o GetRLmultip.o Calibrate_UR.o show_Resis_Cap.o ReadInductance.o GetESR.o GetVloss.o
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PDF
SSD1327-datasheet.pdf
Recommended I REF = 10uA. Since the voltage at IREF pin is V CC – 3V, the value of resistor R1 can be found as below: For IREF = 10uA, V CC = 12V: R1 = (Voltage at I REF – V SS/ I REF = (12 – 3) / 10uA ≈ 910k Ω 8.7 Graphic
in „OLED-Display SPI Psoc4“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1327-datasheet.pdf
Recommended I REF = 10uA. Since the voltage at IREF pin is V CC – 3V, the value of resistor R1 can be found as below: For IREF = 10uA, V CC = 12V: R1 = (Voltage at I REF – V SS/ I REF = (12 – 3) / 10uA ≈ 910k Ω 8.7 Graphic
in „OLED Stromverbrauch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
absolute_beginner_6.c
betrieben TCCR0A = ((1 <<WGM01)|(1<<WGM00)) ;// waveform generation mode auf "Fast PWM" setzen // WGM02 in TCCR0B bleibt auf 0 (default) TCCR0A |=(1<<COM0A1 ) ; // set compare output mode to non inverting mode) // COM0A0, COM0B1 and COM0B0 bleiben auf 0 (default) //TCCR0B =(1<<CS01|1<<CS00);// set clk prescaler to 64 (macht 122,1Hz PWM Frequenz) TCCR0B =(1<<CS02 ) ; // set clk prescaler to 256 (macht 15,3Hz PWM Frequenz) // WGM02, FOC0A and FOC0B bleiben auf 0 (default) OCR0A=0; // set initial value of OCR0A (0x00 erzeugt einen spike am output) TCNT0 = 0 ; /
in „Motor ansteuern mit Atmega8“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM229_MC3302_LM2901.pdf
mV overdrive. For larger signals, 300 ns is typical. + VCC + CC R3 10 k 10 k Rref Vin − V Rref VO ref 10 k + VCC + R1 − V R2 Vi R2 + O Vref n 10k R1 1.0 M VCCR1 10 k Vref R3 VCC R1 RrefR1 Vref 1.0 M RrefR1 R3 ] R1 / /ref/ / R2 R2 [ R1 / /ref R1 / /ref VH = R1/ / R + R2[VO(max) O(min) Amount of HystereHis V ref R2 R2 ơ Rref / / R1 VH= R2 + R3[(O(max) O(min) Figure 2. Inverting Comparator Figure 3. Noninverting Comparator with Hysteresis with Hysteresis http://onsemi.com 4 LM339, LM239, LM2901, LM2901V, NCV2901
in „Eingangssignal Verstärken (mit MC1458P?)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM229_MC3302_LM2901.pdf
mV overdrive. For larger signals, 300 ns is typical. + VCC + CC R3 10 k 10 k Rref Vin − V Rref VO ref 10 k + VCC + R1 − V R2 Vi R2 + O Vref n 10k R1 1.0 M VCCR1 10 k Vref R3 VCC R1 RrefR1 Vref 1.0 M RrefR1 R3 ] R1 / /ref/ / R2 R2 [ R1 / /ref R1 / /ref VH = R1/ / R + R2[VO(max) O(min) Amount of HystereHis V ref R2 R2 ơ Rref / / R1 VH= R2 + R3[(O(max) O(min) Figure 2. Inverting Comparator Figure 3. Noninverting Comparator with Hysteresis with Hysteresis http://onsemi.com 4 LM339, LM239, LM2901, LM2901V, NCV2901
in „Auslegung Optokoppler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Kemet_Tantalum_Chip_Capacitors__F3102TA_.pdf
S L* W* H* K* ± 0.20 F* ± 0.1 S* ± 0.3 B ± 0.15 X P R T A G E KEMET EIA ± (.008) ± (.004) ± (.012(Ref) (.006) (Ref) (Ref) (Ref) (Ref) (Min) (Ref) (Ref) A 3216-18 3.2± 0.2 1.6±0.2 1.6± 0.2 0.9 1.2 0.8 0.4 0.10± 0.10 0.4 0.4 0.13 0.8 1.1 1.3 (.12± .008) (.06±.008) (.06± .008) (.035) (.047) (.031) (.016
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PDF
L6219.pdf
With minimized copper area. ELECTRICAL CHARACTERISTICS (T = 25⋅C, V = 4jV, V S SS = 4.75Vto 5.25V, V REF = 5V; unless oth- erwise specified)See fig. 3. Symbol Parameter Test Condition Min. Typ. Max. Unit OUTPUT DRIVERS (OUT or OUT )A B VS Motor Supply Range 10 46 V ICEX Output Leakage Current VOUT = Vs
in „Schrittmotor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
I2cBusSniffer.pdf
have been necessary, but I don’t have an STK501, and so I needed a way to hook up the external SRAM (ref. A3808_pic_on_stk500.jpg). With the subset hardware on the STK500, I was able to focus on the software instead of worrying about the hardware. 2 All of the heavy work is done inside ISR’s. An I C bus
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Datei
ulog.c
STAT B,0 #define RS232_INV 0 // 0 or 1 #define SPI_INP 1 // read on high or low level #define ADC_REF ADC_VCC // END OF USER DEFINES // RS232 is something confusing or wrong, need further check. #if RS232_INV #define MARK HIGH #define SPACE LOW #else #define MARK LOW #define SPACE HIGH #endif // MACROS
in „Tipps analoger Datenlogger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LTC5507f.pdf
PACKAGE DESCRIPTIO S6 Package 6-Lead Plastic TSOT-23 (Reference LTC DWG # 05-08-1636) 2.90 BSC MAX2 REF5 (NOTE 4) 1.22 REF 3.85 MAX 2.62 REF 1.4 MIN 2.80 BSC 1.50 – 1.75 (NOTE 4) PIN ONE ID RECOMMENDED SOLDER PAD LAYOUT PER IPC CALCULATOR 0.95 BSC 6 PLCS (NOTE 3) 0.80 – 0.90 0.20 BSC 0.01 – 0.10 1.00 MAX DATUM ‘A’ 0.30 – 0.50 REF 1.90 BSC 0.09 – 0.20 NOTE: (NOTE 3) S6 TSOT-23 0302 1. DIMENSIONS ARE IN MILLIMETERS 2. DRAWING NOT TO SCALE 3. DIMENSIONS ARE INCLUSIVE OF PLATING 4. DIMENSIONS ARE EXCLUSIVE OF MOLD FLASH AND METAL
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PDF
L6219.pdf
With minimized copper area. ELECTRICAL CHARACTERISTICS (T = 25⋅C, V = 4jV, V S SS = 4.75Vto 5.25V, V REF = 5V; unless oth- erwise specified)See fig. 3. Symbol Parameter Test Condition Min. Typ. Max. Unit OUTPUT DRIVERS (OUT or OUT )A B VS Motor Supply Range 10 46 V ICEX Output Leakage Current VOUT = Vs
in „NEOCENE 2T354211 mit BC337“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L6219.pdf
With minimized copper area. ELECTRICAL CHARACTERISTICS (T = 25⋅C, V = 4jV, V S SS = 4.75Vto 5.25V, V REF = 5V; unless oth- erwise specified)See fig. 3. Symbol Parameter Test Condition Min. Typ. Max. Unit OUTPUT DRIVERS (OUT or OUT )A B VS Motor Supply Range 10 46 V ICEX Output Leakage Current VOUT = Vs
in „Schrittmotor NEOCENE 2T354207“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L6219.pdf
With minimized copper area. ELECTRICAL CHARACTERISTICS (T = 25⋅C, V = 4jV, V S SS = 4.75Vto 5.25V, V REF = 5V; unless oth- erwise specified)See fig. 3. Symbol Parameter Test Condition Min. Typ. Max. Unit OUTPUT DRIVERS (OUT or OUT )A B VS Motor Supply Range 10 46 V ICEX Output Leakage Current VOUT = Vs
in „L6219 Schrittmotor Treiber - Fragen und Feedbackwunsch“ · Platinen ·
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PDF
FXOS8700CQ.pdf
a_z_out are the current accelerometer output values, and a_x_ref, a_y_ref, and a_z_ref are the reference values stored internally in the ASIC for each axis or in A_VECM_INIT_X/Y/Z registers if A_VECM_CFG[a_vecm_initm] is set. Please note that the x_ref, y_ref, and
in „Beschleunigungssensor auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pm2534ocr.pdf
T ES W I T O F FM A I NB E F O R E M O V IP A R T S . 6.2.1 Parts on the PCB - Dismantle PM2534 (refer to section 4.1) - Remove screening 6.2.2 LX- display, window and interconnection rubber - Ddismantle PM2534 (refer to section 4.1) - Remove screening (refer to section 4.2) - Remove front assembly
in „Pjilips PM2519“ · Markt ·
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AVX_Ta-Caps_11903.pdf
than those above and should be specified in the ordering information. (2) For D, H, a1d Hensions, refer to individual product on following pages. * For case size availability in tape and reel, please refer to page 7-8. 3 Dipped Radial Capacitors TAP Series SOLID TANTALUM RESIN DIPPED CAPACITORS TAP is
in „Widerstände und Tantal-Elkos“ · Analoge Elektronik und Schaltungstechnik ·
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78KSeries.pdf
Germany) GmbH Velizy-Villacoublay, France Seoul, Korea Duesseldorf, Germany Tel: 01-30-67 58 00 Tel: 02-528-0303 Tel: 0211-65 03 02 Fax: 01-30-67 58 99 Fax: 02-528-4411 Fax: 0211-65 03 490 NECElectronicsSingaporePte. Ltd. NEC Electronics (France) S.A. NEC Electronics (UK) Ltd. Madrid Office United Square
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LD1117.pdf
Regulation Ta = 25°C 30ms Pulse 0.01 0.1 %/W Table 11: Electrical Characteristics Of LD1117 (ADJUSTABLE) (refer to the test circuits, TJ= 0 to 125°C, C O 10 µF unless otherwise specified) Symbol Parameter Test Conditions Min. Typ. Max. Unit V Reference Voltage V - V = 2 V I = 10 mA T = 1.238 1.25 1.262 V ref
in „Probleme mit 12 Volt Spannungsversorgung“ · Analoge Elektronik und Schaltungstechnik ·