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ATtiny841_Datasheet.pdf
Resistor Current vs. Input Voltage, V = 2.7V CC 80 70 60 50 ] u P40 105 I 30 85 25 20 0 10 -40 0 0.0 0.5 1.0 1.5 2.0 2.5 3.0 VOP[V] Figure 26-36.I/O Pin Pull-Up Resistor Current vs. Input Voltage, V = 5.0V CC 160 140 120
in „sleep und Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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ATtiny841_Datasheet.pdf
Resistor Current vs. Input Voltage, V = 2.7V CC 80 70 60 50 ] u P40 105 I 30 85 25 20 0 10 -40 0 0.0 0.5 1.0 1.5 2.0 2.5 3.0 VOP[V] Figure 26-36.I/O Pin Pull-Up Resistor Current vs. Input Voltage, V = 5.0V CC 160 140 120
in „Takt-Vorskalierungsregister beim Attiny841“ · Mikrocontroller und Digitale Elektronik ·
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ADT7301_-__1_C_Accurate__13_Bit__Digital_Temperature_Sensor__ADT7301.pdf
Table 5. Temperature Data Format Temperature Digital Output DB13 …DB0 00, 0000, 0000, 0001 −40°C 11, 1011 0000 0000 –0.03125°C −30°C 11, 1100 0100 0000 –40°C 11, 1111, 1111, TEMPERATURE (°C) 150°C −25°C 11, 1100 1110 0000 −10°C 11, 1110 1100 0000 –30°C 11, 1100, 0100, 0000 −0.03125°C 11, 1111 1111 1111 - 0°C 00, 0000 0000 0000 8 11, 1011, 0000, 0000 0 +0.03125°C 00, 0000 0000 0001 Figure13.Temperature-to-DigitalTransferFunction +10°C 00, 0001 0100 0000 +25°C 00, 0011 0010 0000 1ADC code uses all 14 bitsof thedatabyte, includingthe sign
in „Implementierung eines ADT7301 an einem MSP430FR5729“ · Mikrocontroller und Digitale Elektronik ·
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tmp175.pdf
2007 TYPICAL CHARACTERISTICS At A = +25°C and V+ = 5.0V, unless otherwise noted. QUIESCENT CURRENT vs TEMPERATURE SHUTDOWN CURRENT vs TEMPERATURE 85 1.0 0.9 75 0.8 0.7 65 0.6 ) V+ = 5V A µ ( 0.5 ( 55 D 0.4 I I 0.3 45 V+ = 2.7V 0.2 0.1 35 0.0 Serial Bus Inactive −0.1 25 −55 −35 −15 5 25 45 65 85 105 125 130 − 55 −35 −15 5 25 45 65 85 105 125 130 Temperature ( C) Temperature ( C) CONVERSION TIME vs TEMPERATURE TEMPERATURE ACCURACY vs TEMPERATURE 300 2.0 1.5 ) V+ = 5V ) s 250 _ 1.0 ( r e r 0.5 i E n 200 r 0.0 i V+ = 2.7V t r r −0.5 v p o e C 150 T −1.0 −1.5 12−bit resolution. 3 typical units 12−
in „Temperaturmessung mit dem LM75“ · Mikrocontroller und Digitale Elektronik ·
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rfm63dw.PDF
sales@hoperf.com http://www.hoperf.com RFM63W ADVANCED COMMUNICATIONS& SENSING 7.6.2. Sensitivity vs. LO Drift Sensitivity Loss vs. LO Drift 6.0 5.0 4.0 B [ s o 3.0 y v i 2.0 n S 1.0 0.0 -1.0 -25 -20 -15 -10 -5 0 5 10 15 20 25 LO Drift [kHz] Figure 63: FSK Sensitivity Loss vs. LO Drift Sensitivity Loss
in „JDY-40 ein neuer Geniestreich aus China?“ · Mikrocontroller und Digitale Elektronik ·
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st6215c.pdf
1 prc 1 ind 2 JRNZ 4 CALL 2 JRNC 5 JRS 2 JRZ 4 LD 2 JRC 4 ANDI B e abc e b5,rr,ee e a,v e a,nn B 1011 1011 1 pcr 2 ext 1 pcr 3 bt 1 pcr 1 sd 1 prc 2 imm 2 JRNZ 4 CALL 2 JRNC 5 JRR 2 JRZ 2 JRC 4 SUB C e abc e b3,rr,ee e # e a,(x) C 1100 1100 1 pcr 2 ext 1 pcr 3 bt 1 pcr 1 prc 1 ind 2 JRNZ 4 CALL 2 JRNC
in „ST6 Familie von ST“ · Mikrocontroller und Digitale Elektronik ·
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ATtiny261A_Complete.pdf
vs. V CC WATCHDOG OSCILLATOR FREQUENCY vs. SUPPLY VOLTAGE 120000 115000 -40 °C z ( c 25 °C n u r F 110000 85 °C 105000 1.5 2 2.5 3 3.5 4 4.5 5 5.5 VCC(V) Figure 20-99. Frequency of Watchdog Oscillator vs
in „USI Interface als SPI Schnittstelle beim ATtiny261A“ · Mikrocontroller und Digitale Elektronik ·
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DSA0079368.pdf
(4) xxxx0100 (5) xxx0101 (6) xxx0110 (7) xxxx0111 (8) xxxx1000 (1) xxxx1001 (2) xxxx1010 (3) xxxx1011 (4) xxxx1100 (5) xxxx1101 (6) xxxx1110 (7) xxxx1111 (8) Figure 7. InputCode vs. Character Pattern Page 12 LCD Data Sheet Dot Matrix LCD Unit LM16152E OUTLINE DIMENSIONS 115 ±0.5 110 ±0.3 109.5±0.4 15
in „Pin Belegung LCD 1x16 Sharp LM16152“ · Mikrocontroller und Digitale Elektronik ·
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TM56E6422-tenxtechnology.pdf
mV DS-TM56E6422_E 103 Rev 0.9, 2024/04/10 TM56E6422 Data Sheet 10. Characteristics Graphs FIRC Freq vs. Vcc 17.00 16.00 -40℃ 15.00 -20℃ z M 0℃ q14.00 r 25℃ F 50℃ 13.00 70℃ 12.00 85℃ 11.00 105℃ 1.5V 2.0V 2.5V 3.0V 3.5V 4.0V 4.5V 5.0V 5.5V Vcc(V) FIRC Freq vs. Temperature 17.00 16.00 1.5V 2.0V 15.00 z 2.5V
in „MCU identifikation/Datenblatt - MC9989A0ZQ“ · Mikrocontroller und Digitale Elektronik ·
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TMP101.pdf
2007 TYPICAL CHARACTERISTICS At TA= +25°C and V+ = 5.0V, unless otherwise noted. QUIESCENT CURRENT vs TEMPERATURE SHUTDOWN CURRENT vs TEMPERATURE 70 1.0 0.9 0.8 60 0.7 V+ = 5V 0.6 ) ) A µ 0.5 ( 50 ( IQ IS 0.4 0.3 V+ = 2.7V 40 0.2 0.1 0.0 Serial Bus Inactive 30 −0.1 −60 −40 − 20 0 20 40 60 80 100 120 140 −60 −40 −20 0 20 40 60 80 100 120 140 Temperature ( C) Temperature ( C) CONVERSION TIME vs TEMPERATURE TEMPERATURE ACCURACY vs TEMPERATURE 400 2.0 1.5 ) s C 1.0 ( ( e350 V+ = 5V o 0.5 i r T e o t 0.0 r r v e −0.5 n300 m C V+ = 2.7V T −1.0 −1.5 NOTE: 12−bit resolution. 3 Typical Units NOTE:
in „TMP101 kein ordentlicher 5volt pegel“ · Mikrocontroller und Digitale Elektronik ·
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A4963-Datasheet.pdf
)ec Min VGS(LS) -12 0 -14 2 4 6 8 10 12 14 16 18 20 V (V) BB Figure 3: Typical Low-Side Gate Drive vs. V Figure 4: Typical High-Side Gate Drive vs. V BB BB Allegro MicroSystems, LLC 9 115 Northeast Cutoff Worcester, Massachusetts 01615-0036 U.S.A. 1.508.853.5000; www.allegromicro.com A4963 Sensorless
in „A4963 BLDC Motor Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmega8China.pdf
vs. V CC 1.315 1.31 -40° V e 85° a 1.305 o V 25° a d 1.3 a B 1.295 1.29 2.5 3 3.5 4 4.5 5 5.5 Vcc (V) 257 2486N–AVR–07/04 Figure 167. 模拟比较器偏置电压和共模电压的关系 (V = 5V) CC ANALOG COMPARATOR OFFSET VOLTAGE vs. COMMON
in „Buch AVR von Günter Schmitt durcharbeiten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TFT_Adapter.pdf
P09109 VD20 VSS GPIO5 P0U2067 R4 P0P1010 N0VD21 18 P0U2018 GPIO6 1 VD21 19 P0U2019PIOVDD P0U2066 R5 P0P1011 N0VD22 VSS GPIO7 11 VD2 26 P0U2026 P0U20101101 R6 P0P1012 N0VD23 COREVDD GPIO_INT 12 VD23 27 P0U2027 R7 P013013 VD8N0VD8 VSS G0 28 P0U2028 P014014 VD9N0VD9 PIOVDD G1 41 P0U2041 P015015 VD10N0VD10 COREVDD
in „Cortex M3 + TFT Controller + 24bit TFT“ · Mikrocontroller und Digitale Elektronik ·
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MP3_FINAL_1.1.txt
lds temp1, vorspulabfrage ;falls am vorspulen, keine daten an VLSI senden cpi temp1, 0xFF breq no_VS1002_SDI rcall Read_Block_MMC ;liest cluster von der fat der MMc karte rcall VS1002_SDI no_VS1002_SDI: call ZEITZAEHLER ;;;;;;;;;;;;;;;;;;;;;;;;;;;PRÜFUNG OB SCHLUSS ldi r16, 0x00 ldi r17, 0x00 ldi r18
in „Atmega32, AVRstudio und SRAM“ · Mikrocontroller und Digitale Elektronik ·
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wt8871.pdf
4.3.3. Offset Settings of Scaler Page 0x03h Index Default R/W Bit Name Description 08h 2Eh R/W 7:0 vs_offset1 [7:0] Deinterlace odd vsync offset 09h R/W 1:0 vs_offset1[9:8] 7:2 Reserved 0Ah 2Eh R/W 7:0 vs_offset2 [7:0] Deinterlace even vsync offset 0Bh R/W 1:0 vs_offset2[9:8] 7:2 Reserved 0Ch 2Eh R/W
in „LCD Display HT070I36-E00“ · Mikrocontroller und Digitale Elektronik ·
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_Elmos__981_03.pdf
bus current slope (0x210) = 0x03 slope, 1.75 2 2.25 mA / in 2.5 mA/ms mode lim25_di/dt ms V > 20V, I VS= 0 ... I Output voltage at pin V20 V20 V20(max) VV20 18.5 20 21.5 V (positive output current) V <20V, Voltage drop linear voltage I VS=0...20mA regulator at under-voltage (positive output VV20,DROP 0.5
in „Exposed Pad anschließen? (ATSAMD20E18A-MU und ELMOS E981.03)“ · Mikrocontroller und Digitale Elektronik ·
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LP171WP4-TLB1.pdf
Stabilization Time Ts - - 3 Min 5 Life Time 10,000 - - Hrs 6 Established Starting Voltage 8 at 25℃ Vs 1300 VRMS at 0 ℃ 1500 VRMS Note) 1. The specified current and power consumption are under the Vcc = 3.3V , 25℃, fv = 60Hz condition whereas Mosaic pattern is displayed and fv is the frame frequency.
in „Display VGA --> lvds: LP171WP4 TLB1“ · Mikrocontroller und Digitale Elektronik ·
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ltc6812-1.pdf
Error Range GPIO Measurement Error Measurement Time vs Input RC Values vs Input RC Values vs Temperature . B R R R R . R R . R R R R . . R R R . . . R . R R . . INPUT RESISTANCE, R (Ω) INPUT RESISTANCE, R (Ω) R R + + + Sleep Supply Current vs V Standby Supply Current vs V REFUP Supply Current vs V . RR B RR R RR RR R RR RR R RR RR R RR . . R R R R . . B . R . . Measure Supply Current vs V + V vs Temperature V vs Temperature REF1 REF2 . . . R RR RR R RR . . . . . . R
in „Differenzverstärker INA105“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
beispiel.html
) </li> <li><b> VDD </b> (kicadlib.org/zip/sonde_vampire.zip/SondeLogique.cache.lib) </li> <li><b> VS1000 </b> (kicadlib.org/zip/vs10xx.lib.zip/vs10xx.lib) </li> <li><b> VS1002 </b> (kicadlib.org/zip/vs10xx.lib.zip/vs10xx.lib) </li> <li><b> VS1003 </b> (kicadlib.org/zip/vs10xx.lib.zip/vs10xx.lib) </li> <li><b> VS1033 </b> (kicadlib.org/zip/vs10xx.lib.zip/vs10xx.lib) </li> <li><b> VS1053 </b> (kicadlib.org/zip/vs10xx.lib.zip/vs10xx.lib) </li> <li><b> VSS </b> (kicadlib.org/zip/sonde_vampire.zip/SondeLogique.cache.lib
in „[KiCad] Bibliotheksaufbau - Konzeptideen gesucht“ · Platinen ·
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nightsky_arx15.pdf
36 SATA_5VS S4 D U43 SATA HDD RTD3 S6 JHDD_SATA_RXP0 C1444 0.01u_16V_X7R_04 SATA_RXN0_HDD 36 D SUPPORT RTD3 2.5A 5 1 2.5A S7 SATA_RXP0_HDD 36 VIN VOUT SATA_5VS 3.3VS C1425 C1449 GND 2 P1 R681 *10K_04 3.3VS *10u_
in „SMD TGAJ TVS Diode USB“ · Mikrocontroller und Digitale Elektronik ·
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Attiny24a-44a-84a.pdf
vs. V CC Internal RC Oscillator, 8 MHz 6 85 °C 5 25 °C -40 °C 4 A ( 3 C I 2 1 0 1.5 2 2.5 3 3.5 4 4.5 5 5.5 VCC (V) Figure 21-59. Active Supply Current vs. V CC Internal RC Oscillator, 1 MHz 1.2 85 °C 25
in „Kann jemand über meine Inialisierung drüberfliegen?“ · Mikrocontroller und Digitale Elektronik ·
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LIS3D.pdf
to 01 2 mg/digit FS bit set to 10 4 mg/digit FS bit set to 11 12 mg/digit TCSo Sensitivity change vs FS bit set to 00 0.01 %/°C temperature TyOff Typical zerog level FS bit set to 00 ±40 m g offset accuracy3),(4) TCOff Zero-g level change Max delta from 25 °C ±0.5 m g/°C vs temperature An Acceleration
in „SPI immer gleiche Antwort“ · Mikrocontroller und Digitale Elektronik ·
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LIS3DH.pdf
to 01 2 mg/digit FS bit set to 10 4 mg/digit FS bit set to 11 12 mg/digit TCSo Sensitivity change vs FS bit set to 00 0.01 %/°C temperature TyOff Typical zerog level FS bit set to 00 ±40 m g offset accuracy3),(4) TCOff Zero-g level change Max delta from 25 °C ±0.5 m g/°C vs temperature An Acceleration
in „Accelerometer“ · Mikrocontroller und Digitale Elektronik ·
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attiny84.pdf
192 – “Reset Pin Input Hysteresis vs. VCC” on page 202 – “Reset Pin Input Hysteresis vs. VCC (Reset Pin Used as I/O)” on page 203 – “Watchdog Oscillator Frequency vs. VCC” on page 205 – “Watchdog Oscillator Frequency vs. Temperature” on page 205 – “Calibrated 8 MHz RC Oscillator Frequency vs. VCC” on page 206 – “Calibrated 8 MHz RC oscillator Frequency vs. Temperature” on page 206 – “ADC Current vs. VCC” on page 207 – “Programming Current vs. VCC (ATtiny24)” on page 209 – “Programming Current
in „Attiny 84 ISP?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AVR_ATtiny_24_44_84.pdf
192 – “Reset Pin Input Hysteresis vs. CC ” on page 202 – “Reset Pin Input Hysteresis vs. CC (Reset Pin Used as I/O)” on page 203 – “Watchdog Oscillator Frequency vs. V CC” on page 205 – “Watchdog Oscillator Frequency vs. Temperature” on page 205 – “Calibrated 8 MHz RC Oscillator Frequency vs. V CC” on page 206 – “Calibrated 8 MHz RC oscillator Frequency vs. Temperature” on page 206 – “ADC Current vs. V CC” on page 207 – “Programming Current vs. V CC(ATtiny24)” on page 209 – “Programming
in „AVR Programm brennen ohne Bootloader“ · Mikrocontroller und Digitale Elektronik ·
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ADC0804_NSC.pdf
Characteristics C 8 0 Logic Input Threshold Voltage Delay From Falling Edge of CLK IN Schmitt Trip Levels / vs. Supply Voltage RD to Output Data Valid vs. Supply Voltage A vs. Load Capacitance D 0 8 4 A D C 0 0 5 DS005671-38 DS005671-40 DS005671-39 fCLK vs. Clock Capacitor Full-Scale Error vs Effect of Unadjusted Offset Error Conversion Time vs. VREF/2 Voltage DS005671-41 DS005671-42 DS005671-43 Output Current vs Power Supply Current Linearity Error at Low Temperature vs Temperature (Note 9) V REF/2 Voltages DS005671-44 DS005671-46 DS005671
in „Probleme Verständnis ADC 0804-1“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADC0801_05.pdf
Characteristics C 8 0 Logic Input Threshold Voltage Delay From Falling Edge of CLK IN Schmitt Trip Levels / vs. Supply Voltage RD to Output Data Valid vs. Supply Voltage A vs. Load Capacitance D 0 8 4 A D C 0 0 5 DS005671-38 DS005671-40 DS005671-39 fCLK vs. Clock Capacitor Full-Scale Error vs Effect of Unadjusted Offset Error Conversion Time vs. VREF/2 Voltage DS005671-41 DS005671-42 DS005671-43 Output Current vs Power Supply Current Linearity Error at Low Temperature vs Temperature (Note 9) V REF/2 Voltages DS005671-44 DS005671-46 DS005671
in „Verständnisfrage zum ADC080x (VIN-MIN/DC-Offset)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PIC18Fxx2.pdf
= 0xFF Example 1: RRNCF REG, 1, 0 Before Instruction REG = 1101 0111 After Instruction REG = 1110 1011 RRNCF REG, 0, 0 Example 2: Before Instruction W = ? REG = 1101 0111 After Instruction W = 1110 1011 REG = 1101 0111 2002 Microchip Technology Inc. DS39564B-page 245 PIC18FXX2 SLEEP Enter SLEEP mode
in „AD1 und AD2 Multiplexen (PIC18F452)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TLC59116.pdf
channel to IO= 52 mA, VO= 0.8 V, Rext= 360 Ω, channel current error OUT0 to OUT15 T = 25°C ±6 % J I vs Output current vs output VO= 1 V to 3 V,OI = 26 mA ±0.1 OUT OUT0 to OUT15 %/V VOUT voltage regulation VO= 3 V to 5.5 V,OI = 26 mA to 120 mA ±1 OUT,Th1 Threshold current 1 for OUT0 to OUT15 I OUT,target26
in „Verstehe TWI überhaupt nicht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
generic_hid.c
ADC_FOSC_8 & ADC_RIGHT_JUST & ADC_0_TAD, ADC_CH0 & ADC_INT_OFF & ADC_VREFPLUS_VDD & ADC_VREFMINUS_VSS, 0b1011); // select A/D input channel - nach OpenADC mit ADC_CH0 als Param eigentlich überflüssig SetChanADC(ADC_CH0); // reset A/D-result result = 0; // config Port B for I2C on RB0(SDA) and RB1(SCL) - 0000
in „PIC18F generic HID - Probleme mit USB und I2C-Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A300_ATMEGA8xxx.pdf
vs. OUTPUT VOLTAGE Vcc = 5V 90 80 -40°C 70 25 °C 60 85 °C A 50 ( O 40 I 30 20 10 0 0 0.5 1 1.5 2 2.5 V OL(V) Figure 150. I/O Pin Sink Current vs. Output Voltage (V CC = 2.7V) I/O PIN SINK CURRENT vs. OUTPUT
in „atMega8-16 Au beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMEGA8_DATENBLATT.pdf
(˚C) Figure 166. Bandgap Voltage vs. V CC BANDGAP VOLTAGE vs. V CC 1.315 1.31 -40° ) ( g1.305 85° l o 25° p g n 1.3 B 1.295 1.29 2.5 3 3.5 4 4.5 5 5.5 Vcc (V) 273 2486X–AVR–06/10 Figure 167. Analog Comparator Offset Voltage vs. Common
in „I2C/TWI TWBR > 10 warum?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
db_atmega8.pdf
= 5V) I/O PIN SINK CURRENT vs. OUTPUT VOLTAGE Vcc = 5V 90 80 -40°C 70 25°C 60 85°C A50 ( O40 I 30 20 10 0 0 0.5 1 1.5 2 2.5 VOL(V) Figure 150. I/O Pin Sink Current vs. Output Voltage (V CC = 2.7V) I/O PIN SINK CURRENT vs. OUTPUT
in „ADC-Input und Auswahlverfahren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HX8340-B_T__DS_preliminary_v01_080313.pdf
setting of VS. In these two RGB interface mode, the input display data is not written to GRAM and is displayed directly. Vertical synchronization (VS) signal is used to tell when there is received a new frame of the
in „SAMMELBESTELLUNG: 2"2 TFT Display mit 16bit digital interface“ · Markt ·
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PDF
Last_board.pdf
SHUNT-FEEDBACK INA240A2DR 0 o V 1 8 3 3 = g N P 2 IN- IN+ 7 3 3 * u G O 3 GND REF1 6 + + 2 1 R r A 4 REF2 VS 5 = t 5 NC OUT 2 1 U e - N o V G 4 3 v n A a e 4 3 A R n r D t w 3 3 0 r V V V L > i , + + 7 - W x 3 0 m a C p p 3 1 a n C 3 n 4 n S b n v R 0 R 0 W n e r n ö S p g +8V r S o 8 6 a i S R 0 R 0 l t e
in „Schaltplankontrolle Last- + HMI-Board“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Cypress_CY8C58LP_001-84932_0F-491909.pdf
, MHz CPUFrequency, MHz Figure 11-3. Active Mode Current vs Temperature and F , Figure 11-4. Active Mode Current vs V and Temperature, CPU DD VDD = 3.3 V F CPU = 24 MHz 10 25 20 8 A 80 MHz A 85 °C m 15 24 MHz , 6 25 °C n n r 6 MHz r -40 °C C 10 C 4 5 2 0 0 -40
in „UART-Schnittstelle 2x verwenden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an131f.pdf
BAV-21 10k RECEIVER 3pF 0.22µF A1 20k* C1 5V ACOUSTIC PATH 20k LT1122 A2 LENGTH ≈ 12" + LT1220 A3 LT1011 1.3k + 500Ω – LT1220 + – GATED TRIGGER 15k 20k* – + 15µF 15µF – 20k* + + 15V TYPICAL = 8.0V BAV-99 10k 1k* 10k BAV-21 1k* 10µF 15V, 10µs START PULSE 15V TRIG OUT START PULSE GENERATOR LTC6993-1 1k GND
in „Acoustic Thermometry: Temperaturmessung über die Schallgeschwindigkeit (Letzte AN von Jim Williams)“ · Projekte & Code ·
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PDF
Last_board_mixed.pdf
SHUNT-FEEDBACK IC402 0 o V 1 8 3 = g N P 2 IN- IN+ 7 3 * u G 5 O 3 GND REF1 6 + 2 1 R r A - 4 REF2 VS 5 = t NC OUT 1 2 1 h U e N INA240A2DR 4 O o V G B 4 3 0 v n A , a e 4 3 0 n r t w 3 3 r V V V > i , + p + p - W x n n 0 m a C 0 h 0 h 1 a n C 4 O 4 O b n v R 0 R 0 n e +8V r n ö S p g 3 0 h 0 h r S o
in „Schaltplankontrolle Last- + HMI-Board“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Vinculum_Firmware_User_Manual_V2.4_Rev_3.pdf
additional commands specifically for the VMUSIC range of devices to permit playback of MP3 files via a VLSI VS1003 MP3 decoder. The VS1011 MP3 decoder is also supported. 3.1.2 General Limitations All firmware versions support BOMS devices formatted in FAT12, FAT16 or FAT32 file systems only where the sector size
in „USB-Stick-Interface STI 100“ · Mikrocontroller und Digitale Elektronik ·
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PDF
EN0094EJ2V1DS00.pdf
system “ New media “ Control board for NC machine “ Monitors for process controller Document No(NC-1011)J2V1DS00 (2nd edition) Date Published May 1996 M Printed in Japan © 1995 - NL6448AC33 10 STRUCTURE AND FUNCTIONS A TFT color LCD module comprises a TFT LCD panel, LSIs for driving liquid crystal, and
in „TFT - Display Schnittstelle“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pic16f88.pdf
5.5 V DD (V) FIGURE 19-12: AVERAGE F OSC vs. V DD FOR VARIOUS VALUES OF R (RC MODE, C = 100 pF, +25°C) 2.5 2.0 3.3 kOhm 1.5 ) H 5.1 kOhm ( q r F 1.0 10 kOhm 0.5 100 kOhm 0.0 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 V DD (V) DS30487C-page 198 2005 Microchip
in „auftrennen einer 2stelligen Dezimalzahl in asm (pic 16f88)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
config-mod-LK511-mt7623n-BPiR2.txt
=y CONFIG_IP_VS_PROTO_ESP=y CONFIG_IP_VS_PROTO_AH=y CONFIG_IP_VS_PROTO_SCTP=y # # IPVS scheduler # CONFIG_IP_VS_RR=m CONFIG_IP_VS_WRR=m CONFIG_IP_VS_LC=m CONFIG_IP_VS_WLC=m # CONFIG_IP_VS_FO is not set CONFIG_IP_VS_OVF=m CONFIG_IP_VS_LBLC=m CONFIG_IP_VS_LBLCR=m CONFIG_IP_VS_DH=m CONFIG_IP_VS_SH=m CONFIG_IP_VS_MH=m CONFIG_IP_VS_SED=m CONFIG_IP_VS_NQ=m # # IPVS SH scheduler # CONFIG_IP_VS_SH_TAB_BITS=8 # # IPVS MH scheduler # CONFIG_IP_VS_MH_TAB_INDEX
in „Linux Kernel 5.1.1. auf dem BPi-R2“ · PC Hard- und Software ·
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PDF
HAMEG_HM1507-3_150MHZ_Oszilloskop_-_Service_Manual.pdf
c h 12 HF\MEE® ATT_1004 C02 R“ n g o' e w Dm f 960415 h 2'??= n1ch1 besíueckk o 22? = „Q1 wege« E1011 von t Aemiemngen vw1›ew<ı1ıen1/ subjecı 15 change wwwwx nufliw She-ek 01 n o 5 1 7 1 6 1 5 1 4 1 5 1 Z 1 1 c e Ä d e u g 8 \ 7 \ S \ 5 \ 4 I 3 \ 2 \ X e n o b e a e n TE1 TE2 / R2239 C +12\/' u +flV IERH
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B57164K_ENG_TDS.pdf
3450 ±3% B57164K0331+000 470 1306 3450 ±3% B57164K0471+000 680 1307 3560 ±3% B57164K0681+000 1 k 1011 3730 ±3% B57164K0102+000 1.5 k 1013 3900 ±3% B57164K0152+000 2.2 k 1013 3900 ±3% B57164K0222+000 3.3 k 4001 3950 ±3% B57164K0332+000 4.7 k 4001 3950 ±3% B57164K0472+000 6.8 k 2903 4200 ±3% B57164K0682
in „2,2 kOhm NTC-Widerstände“ · Markt ·
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PDF
K2000-schematics.pdf
R125 24K HS RSENSE_HI WHT_YEL 18 C221 B AGND B INPUT_HI RED 8 S101-G 10 HI RINPUT_HI WHT_RED 12 2 E1011.5L 1 1M02 7 S101-B 2 576V1 103 1000V 9 R112100K1% FXR C102 1 AGND 11 1M01 AGND AGND AGND Front or Rear COMPANY: KEITHLEY2000@USER A A TITLE: FRONT/REAR DRAWN: DATED: Randy 2013.1.1 CHECKED: DATED: CODE
in „Kalibrierung Keithley 2000 Multimeter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Dot-Matrix-Driver_max6952eax.pdf
otherwise noted.) 5 A 9 6 INTERNAL OSCILLATOR INTERNAL OSCILLATOR FREQUENCY INTERNAL OSCILLATOR FREQUENCY vs. TEMPERATURE vs. SUPPLY VOLTAGE WAVEFORM AT OSC X 4.4 2 3 4.30 o t 2.5 t A 5 9 9 ) A z 4.3 A A H4.20 V+ = 2.7V M H M 2.0 M M ( ( 4.2 ) Y C ( N E 4.1 S U4.10 Q O 1.5 E V+ = 3.3V R A F F 4.0 G O O T 1.0
in „PIC: max6952 ansteuerung über SPI“ · Mikrocontroller und Digitale Elektronik ·
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16F648a_40044F.pdf
18-2: TYPICAL BASELINE I PD vs. VDD (85° C) 300 280 260 240 ) 220 A ( 200 D I +85°C 180 160 140 120 100 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 VDD (Volts) FIGURE 18-3: TYPICAL BASELINE CURRENT I PD vs. V DD (125°C) 2.4 2.2 2.0 ) A 1.8 (
in „16f627A schaltet RA5 u RA6 nicht“ · Mikrocontroller und Digitale Elektronik ·
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CY7C63813-SXC-Cypress-Semiconductor-datasheet-11779157.pdf
valid 0 STALL 0011 Yes Bad status 0010 OUT 2 valid 1 ACK 1 1 1 1 2 Yes Good status ACK_OUT_STATUS_IN 1011 SETUP >10 x x junk Ignore 1011 SETUP <=10 invalid x junk Ignore 1011 SETUP <=10 valid x ACK 1 1 0001 update 1 update data Yes ACK SETUP 1011 IN x x x TX 0 Host not ACK'd 1011 IN x x x TX 0 1 1 0011 Yes Host ACK'd 1011 OUT >10 x x junk Ignore 1011 OUT <=10 invalid x junk Ignore 1011 OUT <=10 valid x ACK 1 1 0001 update 1 update data Yes Good OUT STATUS_IN 0110 SETUP >10 x x junk Ignore 0110 SETUP <=10 invalid x junk
in „Welche Relais und Controller zum Schalten von USB?“ · Mikrocontroller und Digitale Elektronik ·
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HX8347-D_DS_T_v02_090324.pdf
pin. RCM1, RCM0 MCU and RGB Interface Mode Selection 0x System Interface (1) 10 RGB Interface (1) (VS+HS+DE) RCM1, RCM0 I 2 MCU 11 RGB Interface (2) (VS+HS) As internal RCM [1:0] bits are written, the external pin RCM [1:0] control is invalid, and RGB and System interface mode selection is controlled
in „HX8347 Display Treiber“ · Mikrocontroller und Digitale Elektronik ·
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A25L080_Flash.pdf
20h 3 0 0 BE Block Erase 1101 1000 D8h 3 0 0 CE Chip Erase 1100 0111 C7h 0 0 0 DP Deep Power-down 1011 1001 B9h 0 0 0 RDID Read Device Identification 1001 1111 9Fh 0 0 1 to ∞ Read Electronic Manufacturer & Device (3) REMS Identification 1001 0000 90h 1 2 1 to ∞ Release from Deep Power-down, and RES Read Electronic Signature 1010 1011 ABh 0 3 1 to ∞ Release from Deep Power-down 0 0 0 Note: (1) DIO = 6, D, D2, 0) DO = (D7, 5, 3, D1) (2) Dual Input, DIO = (A22, A20, A18, ………, A6, A4, A2, A0) DO = (A23, A21, A19, …….., A7, A5, A3, A1
in „MSP430 SPI A25L080 Flash“ · Mikrocontroller und Digitale Elektronik ·