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PDF
DD19FCD3d01.pdf
. T = -A0°C - 85°C Symbol Parameter Condition Min Typ Max Units Resolution 10 Bits V = 4V, V = 4V, REF CC 2 LSB ADC clock = 200 kHz VREF = 4V, CC = 4V 3 LSB Absolute accuracy ADC clock = 1 MHz (Including INL, DNL, and VREF = 4V, CC = 4V Quantization, Gain and Offset ADC clock = 200 kHz 1.5 LSB Errors
in „HV-Prog für ATtiny13“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc2535.pdf
T = -A0°C to +85°C Symbol Parameter Condition Min Typ Max Units Resolution 10 Bits V = 4V, V = 4V, REF CC 2 LSB ADC clock = 200 kHz VREF = 4V, VCC= 4V 3 LSB Absolute accuracy ADC clock = 1 MHz (Including INL, DNL, and VREF = 4V, VCC= 4V Quantization, Gain and Offset ADC clock = 200 kHz 1.5 LSB Errors
in „RGB PWM mit Attiny13“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc2535.pdf
T = -A0°C to +85°C Symbol Parameter Condition Min Typ Max Units Resolution 10 Bits V = 4V, V = 4V, REF CC 2 LSB ADC clock = 200 kHz VREF = 4V, VCC= 4V 3 LSB Absolute accuracy ADC clock = 1 MHz (Including INL, DNL, and VREF = 4V, VCC= 4V Quantization, Gain and Offset ADC clock = 200 kHz 1.5 LSB Errors
in „ATtiny13 mit 20MHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tps61202.pdf
Charge l VCELL C1 1 C FF storage e VAUX UVLO 6 FB C2 C PS S VAUX VAUX R2 device r P l T o S GND PGND C3 RefDes Value C1 >10mF C2 >20mF R5 C3 1mF VAUX C4 1mF C4 C5 10 nF R3 C 33 pF FF R8 L1 4.7mH R6 R4 V CELL OPA379 RefDes Value R1 750 k TLV431 R2 200 k R3 1 k R4 1 M R7 Power ground R5 100W R6 1 M MPP circuit
in „Schaltplan überprüfen gerne auch Verbesserungen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX146-MAX147.pdf
Width High CH 200 ns 7 SCLK Pulse Width Low tCL 200 ns SCLK Fall to SSTRB tSSTRB Figure 1 240 ns CS Fall to SSTRB Output Enable tSDV External clock mode only, Figure 1 240 ns CS Rise to SSTRB Output Disable tSTR External
in „Atmega16 und spi bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX146-MAX147.pdf
Width High CH 200 ns 7 SCLK Pulse Width Low tCL 200 ns SCLK Fall to SSTRB tSSTRB Figure 1 240 ns CS Fall to SSTRB Output Enable tSDV External clock mode only, Figure 1 240 ns CS Rise to SSTRB Output Disable tSTR External
in „Atmega16 und spi bus“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Si4497DY_HS.txt
SPICE modeling guideline and does not *constitute a commercial product datasheet. Designers should refer to the *appropriate datasheet of the same number for guaranteed specification *limits. .SUBCKT Si4497DY D G S M1 3 GX S S PMOS W= 20692500u L= 0.25u M2 S GX S D NMOS W= 20692500u L= 2.177e-07 R1 D
in „Magnetisch betätigen Schalter für Tauchlampe“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
interrupt.h> //Für Lampe an (33+1)kOhm Spannungsteiler //#define Warnung 315 #define aus 301 #define Warnung 200 //Für 1.5 V Batterie an 25kOhm Poti //#define Warnung 465 //#define aus 300 void ADC_Init(){ //ADC Initialisierung ADMUX|=(1<<REFS0); //Nutze interne Referenzspannung, 1.1V ADMUX|=(1<<MUX0); //Wähle
in „Tiefentladeschutz MOSFET Problem“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
interrupt.h> //Für Lampe an (33+1)kOhm Spannungsteiler //#define Warnung 315 #define aus 301 #define Warnung 200 //Für 1.5 V Batterie an 25kOhm Poti //#define Warnung 465 //#define aus 300 void ADC_Init(){ //ADC Initialisierung ADMUX|=(1<<REFS0); //Nutze interne Referenzspannung, 1.1V ADMUX|=(1<<MUX0); //Wähle ADC1, PB2 ADCSRA=(1<<ADPS2); //Frequenzteiler auf 16 setzen damit Frequenz zwischen 50 und 200 KHz liegz, 1.2Mhz/8=75KHz ADCSRA|=(1<<ADEN); //ADC einschalten ADCSRA|=(1<<ADSC); //Kalibrierwandlung while(ADCSRA&(1<<ADSC)){ //Auf Ende der Wandlung warten } (void) ADCW; //Blind auslesen } /* ADC
in „Tiefentladeschutz MOSFET Problem“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
an19fc.pdf
(P() L ( e ( )4π Ve= 2 (ferrite cores) For ΔI = 1A, L = 200μH, μ= 75 and BAC = 300 gauss, ( O ⎛10 −8⎞ 2 ⎝ ⎠ () ⎛200•10 −6⎞ ( )0( ) VC= ⎝ ⎠ = 5.25 cm 3 L = required inductance (henries) 4 300 2 ⎛10−8⎞ IP= peak inductor current (amps) () ( ) ⎝ ⎠ μe= effective
in „LT1270 dimensionieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A200_MCP1407-EP_MIC.pdf
Note: Unless otherwise indicated, T = +A5°C with 4.5V <= V DD <= 18V. 120 80 10,000 pF 10,000 pF 70 8,200 pF 100 8,200 pF 4,700 pF 4,700 pF ) 2,500 pF )60 1,000 pF n 80 n 2,500 pF 6,800 pF e 1,000 pF (50 i 60 6,800 pF m40 T T s 40 l30 R F 20 20 10 100 pF 100 pF 0 0 4 6 8 10 12 14 16 18 4 6 8 10 12 14 16
in „Treiber für IRF1404 ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at91rm9200-ek.pdf
R245 0R100 2.2µF U1 5V 5 V+ + 1 8 L1 22uH C2 2 7 3.8A TP3 220uF 3 6 16V SHDN CS 3 6 2 3/5 4 EXT 7 5 4 REF Q200 + C233 C3 8 GND OUT 1 IRF7425 + + 2.2µF 100NF CR5 MAX1626ESA STPS340U B C232 C21 B 100NF 220uF 16V C20 220uF 16V C19 220uF 16V Z6 Z7 Z9 Z13 Z8 Z10 Z3 - Z5 are mounting holes. GUARD RING The Z reference
in „SD-RAM aus PC für AT91RM9200 (ARM9)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM1458M.pdf
Typ Max Input Offset Voltage TA= 25˚C, RS≤ 10 kΩ 1.0 5.0 1.0 6.0 mV Input Offset Current TA= 25˚C 80 200 80 200 nA Input Bias Current TA= 25˚C 200 500 200 500 nA Input Resistance TA= 25˚C 0.3 1.0 0.3 1.0 MΩ Supply Current Both T = 25˚C, V = ±15V 3.0 5.0 3.0 5.6 mA A S Amplifiers Large Signal Voltage Gain
in „Operationsverstaerker widerstaende LM1458M“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Vishay_Tantal-faq.pdf
high temperature, 175 °C, automotive grade • TMCTX built-in-fuse • TH5 HITM ® very high temperature, 200 °C • TMCR low ESR • TL3 very low DC leakage B1. Vishay Polytech, high reliability • TM3 for medical instruments • TMCH hi rel • 793DX CECC 30801/005 approved • THC high temperature 150 °C, hi rel •
in „Überspannungsschutz günstiger“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
GLCD.pdf
temperature Endurance test applying the high storage 60 °C ------ storage temperature for a long time. 200 hrs 2 Low temperature Endurance test applying the low storage -10 °C ------ storage temperature for a long time. 200 hrs 3 High temperature Endurance test applying the electric stress 50 °C operation (Voltage & Current) and the thermal stress to 200 hrs ------ the element for a long time. 4 Low temperature Endurance test applying the electric stress 0 °C ------ operation under low temperature for a long time. 200 hrs 5 High temperature / Endurance
in „Problem mit IC6963“ · Mikrocontroller und Digitale Elektronik ·
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PDF
astable.pdf
Oscilloscope trace (a)— Trl collector (b)— Tr2 collector (c)— Trl base (d)— Tr2 base Horizontal scale = 200nS/cm., verticalscale = 5V/cm. All these circuits can of course be used with p-n-p transistorsifalldiodes and the supply volt- age are reversed. All the waveforms produced will also be inverted. Many
in „Astabiler Multivibrator“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
GPM1421C0.pdf
respectively. The response time is defined as the time interval between the 10 % and 90 % of amplitudes. Refer to figure as below: Note 5. Definition of contrast ratio: Contrast ratio is calculated with the following formula. Note 6. Definition of viewing angle: Refer to the figure as below Note 7. Definition
in „LCD Connector Signal auf VGA (oder ähnliches) adaptieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mt9v403_ds.pdf
inch optical format and (shuttered-node active pixel) delivers superb resolution at a turbocharged 200 fps, Optical Format: 1/2-inch making it the perfect solution for machine vision Frame Rate: 0-200 frames/sec progressive scan assembly lines, airbag deployment, golf swing analysis, Data Rate: 66 MB
in „Wer hat Interesse an CMOS Bildsensoren?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TDA7294S.PDF
Voltage Rejection f = 100Hz; V = 0.5Vrms 60 75 dB ripple TS Thermal Shutdown 150 ⋅C STAND-BY FUNCTION (Ref: -V Sor GND) V ST on Stand-by on Threshold 1.5 V V ST off Stand-by off Threshold 3.5 V ATTst-by Stand-by Attenuation 70 90 dB q st-by Quiescent Current @ Stand-by 1 3 mA MUTE FUNCTION (Ref: -V S or
in „TDA7294 tiefes lautes Brummen wenn kein Audiosignal“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PT2260.pdf
of 2 pulse cycles. Each pulse cycle has 512 oscillating clock periods. For further details, please refer to the diagram below: α OSC 1 bit = 1024α Bit"0" 128α Bit"1" 384α 128α Bit"f" Floating where: α = Oscillating C lock Period PT2260 V1.3 - 4 - November, 2004 Tel: 886-2-66296288 Fax: 886-2-29174598
in „Lieferkosten aus Asien, was habe ich falsch gemacht?“ · Offtopic ·
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PDF
EKF.pdf
simulations with: Fig. 11. Fixed point experimental results with: -15 -15 q = 2 , ω b = 1 rad/s, ω ref= 8 rpm, N p = 12, T sc= 16 ms q = 2 , ω b= 1 rad/s, ω ref 8 rpm, N p= 12, T sc= 16 ms (a) actual and estimated sen-cos; (b) estimated speed. (a) actual and estimated sen-cos; (b) estimated speed. Finally
in „Problem mit Kalman-Filter“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
ABG128064A23-BIW-R.pdf
~20K) D 5 Seg Driver1Seg Driver2 V0 VEE o MODULE C VSS VSS RS,R/W 4 E,RST LEDA CS1 80mA LEDK CS2 (Refer Voltage:5.0V) DB0~DB7 8 Figure 1. Block diagram 1 Free Datasheet http://www.datasheet4u.com/ 4. DIMENSIONALOUTLINE A B C D 7 E 0 1 单 m A期 8 面 I m D 日 - 7 图 N U 期 2 应 O U A 8 适 0 a 日 - ± a 6 E G I 1
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PDF
ttester.pdf
meldet der Tester nach längerer Zeit „Cell!”. Beispiel: CFLAGS += -DCAP_EMPTY_LEVEL=3 56 WITH_AUTO_REF Mit dieser Option wird die Referenzspannung gemessen, um den aktuellen Faktor für die Kapazitätsmessung von kleineren Kapazitäten (unter 40µF) zu ermitteln. Beispiel: CFLAGS += -DWITH_AUTO_REF REF_C_KORR
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PDF
ssd1803_2_0.pdf
clock width (high, low) 200 - - tsu1 Chip select setup time 60 - - (3) Serial Interface Mode (refer to Figure 15-3) th1 Chip select hold time 20 - - ns tsu2 Serial input data setup time 100 - - th2 Serial input data hold time
in „DIP203 LCD mit TMS320F28335 per SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
3957_Datenblatt.pdf
Offset Voltage Mixed-Decay Comparator ∆V IO(PFD) 5.0 25 55 mV Hysteresis Reference Input Current IREF V REF= 0 V to 2.5 V — — ±5.0 µA Reference Divider Ratio V REF/VS at trip,0D = 1 = 2 = D3= 2 V — 3.0 — — Digital-to-Analog Converter — 1.0 V < VREF≤ 2.5 V — — ±3.0 % Accuracy* 0.5 V < V ≤ 1.0 V — — ±4.0 % REF Current-Sense Comparator V V = 0 V — ±16 — mV IO(S) REF Input Offset Voltage* Step Reference SRCR D = D = D = D = 0.8 V — 0 — % Current Ratio 0 1 2 3 D 1 2 V, D 0 D 2 D =30.8 V — 17.4 — % D 0 D 1 2
in „Library für 3957 Microstepping Motor Driver?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
B150XG01.pdf
Stripe Display Mode Normally White Typical White Luminance (ICFL=6.0mA) [cd/m ] 180 (5 point average) 200 (center) Luminance Uniformity 1.25 max. (5 pts) 1.65 max. (13pts) Contrast Ratio 300 Optical Rise Time/Fall Time [msec] 24/11 Nominal Input Voltage VDD [Volt] +3.3 Typ. Typical Power Consumption [Watt
in „15" XGA Display an Computer anschließen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
s202se2_e.pdf
10 charac- Isolation resistance RISO DC500V, 40 to 60%RH 10 − − Ω teristicTurn-on time ton V Drms)=200V, AC60Hz − − 9.3 ms Turn-off time toff IT(rms)=2A, Resistance load,FI =20mA − − 9.3 ms R th-c) Between junction and case − 4.5 − Thermal resistance ˚C/W R thj-a) Between junction and ambient − 40 −
in „Solid State Relais an 3,3 Volt PIC“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MIC2951.pdf
Regulation Note 13 0.05 0.20 %/W Output Noise 10Hz to 100kHz, CL= 1.5µF 430 µV RMS 10Hz to 100kHz, CL= 200µF 160 µV RMS 10Hz to 100kHz, C = 3.3µF, 100 µV L RMS 0.01µF bypass Feedback to Output Reference Voltage MIC295x-02/-05 (±0.5%) 1.220 1.235 1.250 V 1.200 1.260 V MIC295x-03/06 (±1%) 1.210 1.235 1.260 V 1.200 1.270 V MIC2951-3.3 (±1%) 1.210 1.235 1.260 V 1.200 1.270 V MIC2951-4.8 (±1%) 1.210 1.235 1.260 V 1.200 1.270 V Reference Voltage MIC295x-02/-05 (±0.5%), Note 14 1.190 1.270 V MIC295x-03/-06 (±1%),
in „Highside-Switch gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IS2200E_V1.61.pdf
-88 C4- C4- O Step-up capacitor Refer to Chapter 10 for a recommended 91-92 C5- C5- capacitor and how to connect. 95-96 C6- C6- VDD2͇̎or VDD2x3 output (gate raster-row drive negative voltage) 78-80 VDD1 VDD1 O Bypass capacitor Refer to
in „LCD-Modul OPTREX 351570AG“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Atmel-M90E32AS-Datasheet.pdf
, • T0 is the nominal temperature, If (Irms > Irms0) GainIrms = GainIrms0, Irms_ref = Irms0, GainIrms_offset = 0, If (Irms1<Irms < Irms0) GainIrms = GainIrms1, Irms_ref = Irms0, GainIrms_offset = 0, If (Irms < Irms1) GainIrms = GainIrms2, Irms_ref = Irms1 GainIrms1*(Log( Irms1 )) GainIrms_offset
in „Wahl eines passenden Mikrocontrollers zur Ansteuerung des M90E32AS Energy Metering IC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
0754-200.pdf
Min. Typ. Max. Units Primary Sampled Current P –200 – 200 A Supply Voltage V 4.5 5.0 5.5 V CC Supply Current ICC VCC = 5.0 V, output open 6.5 8 10 mA Output Resistance R I = 1.2 mA – 1 2 Ω OUT OUT Output Capacitance Load CLOAD VOUT to GND – – 10 nF Output
in „ACS750 -200A meßauflöung mit 10bit zu gering“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LB-Mod_en.pdf
......................................................17 Page 1 W2000A Low Budget Mod Preface The W200A Series mainly suffers from two problems: • Strong noise, especially in the 1 and 2 per div. voltage ranges • Strongly non linear amplitude response. From 50MHz to 200MHz amplitude readings are way
in „Wittig(welec) DSO W20xxA Hardware (Teil 2)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
aqh3213.pdf
control FEATURES Supports 0.3 A, 0.6 A, 0.9 A and 1.2 A ON-state RMS currents. Handles both 100 and 200 Vrms loads. High dielectric strength: 5,000 Vrms Safety standards • C-UL (UL1577) certified • VDE (EN60950-1) reinforced insulation certified − − 1 8 1 8 TYPICAL APPLICATIONS + + 2 2 Home appliances
in „230V LED-Lampe (kleiner Strom) schalten (SSR, Optotriac,.)?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1327_1.2.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 7.7 Graphic
in „OLED Display mit SSD1327 Controller ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Hantek_Tekway_DSO_v1.03.pdf
Control Relay 2 1GSs/500MSs Control Relay 2 F F F SoC SoC F F F TRG-CH1+ INDATA2 TRG-CH1- ADC ADC ADC REF OUTAD9288 (ch1) REF OUTAD9288 (ch1) CLK100M CLK100M REF OUTTRIGGER CPLD TRIGGER FPGA Cyclone III REF OUTAD9288 (ch2) REF OUTAD9288 (ch2) TRIGGER XBUS 08-CPLD.SchDoc INDATA2 1GSs/500MSs CH2 RL1+ 1GSs
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheet_SC16IS750.pdf
83 - 67 - ns tCH SCLK HIGH time 30 - 25 - ns tCL SCLK LOW time 30 - 25 - ns t CS HIGH pulse width 200 - 200 - ns CSW td9 SPI output data valid time 200 - 200 - ns td10 SPI modem output data valid time 200 - 200 - ns td11 SPI transmit interrupt clear time 200 - 200 - ns td12 SPI modem input interrupt clear time 200 - 200 - ns t SPI interrupt clear time 200 - 200 - ns d13 td14 SPI receive interrupt clear time 200 - 200 - ns CS CSH tCL CH tCSW tCSS CSH SCLK t DH tDS SI DO TR SO 002aab066 Fig 34. Detailed SPI-bus
in „UART_Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ProgrammV1.asm
Vorteiler 32 ;ADLAR=1 linksbündig ergebniss in ADCH + niederwertigste 2 bit in ADCL 6 u 7 ldi temp1, (0<<REFS1)|(1<<REFS0) out ADMUX, temp1 ;ADEN=ADC ein,ADPS2-0= Vorteiler 32 (sollte zwischen 50-200kHz liegen(4.000khz/32=125kHz)) ldi temp1, (1<<ADEN) | (1<<ADPS2) | (0<<ADPS1) | (1<<ADPS0) out ADCSRA, temp1
in „Analog zu PWM. Fehler im Programm?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Schrittmotoransteuerung.c
============================================== void ADC_Init(void) { uint16_t result; ADMUX = (0<<REFS1) | (1<<REFS0); // AVcc (5V) als Referenz benutzen ADCSRA = (1<<ADPS1) | (1<<ADPS0); // Frequenzvorteiler ADCSRA |= (1<<ADEN); // ADC aktivieren /* nach Aktivieren des ADC wird ein "Dummy-Readout" empfohlen
in „Kombination UART / TIMER“ · Mikrocontroller und Digitale Elektronik ·
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Datei
entprellen_part3.c
KEY2) // repeat: key1, key2 #define REPEAT_START 50 // after 500ms #define REPEAT_NEXT 20 // every 200ms //Initialisierung AD-Wandler void ADC_wandlung(); //Initialisierung UART void uart_init(); u8 key_state; // debounced and inverted key state: // bit = 1: key pressed u8 key_press; // key press detect
in „Tasten entprellen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2307271031_Shenzhen-Fuman-Elec-2302P-D_C7495028.pdf
1.050 0.035 0.041 b 0.300 0.500 0.012 0.020 c 0.080 0.150 0.003 0.006 D 2.800 3.000 0.110 0.118 E 1.200 1.400 0.047 0.055 E1 2.250 2.550 0.089 0.100 e 0.950 TYP. 0.037 TYP. e1 1.800 2.000 0.071 0.079 L 0.550 REF. 0.022 REF. L1 0.300 0.500 0.012 0.020 θ 0° 8° 0° 8° www.superchip.cn 第 5 页 共 5页 Version 1.0
in „MosFET schaltet PWM Signal nicht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2202251530_Shenzhen-Fuman-Elec-2302P_C2834503.pdf
1.050 0.035 0.041 b 0.300 0.500 0.012 0.020 c 0.080 0.150 0.003 0.006 D 2.800 3.000 0.110 0.118 E 1.200 1.400 0.047 0.055 E1 2.250 2.550 0.089 0.100 e 0.950 TYP. 0.037 TYP. e1 1.800 2.000 0.071 0.079 L 0.550 REF. 0.022 REF. L1 0.300 0.500 0.012 0.020 θ 0° 8° 0° 8° www.superchip.cn 第 5 页 共 5页 Version 1.0
in „MosFET schaltet PWM Signal nicht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ks0066u.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „4x40 LCD Display ohne HD Controller ansteuern.“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066_Samsung_553815_1.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „LCD unter Bascom, welches?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
KS0066.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „[ AVR ] Probleme mit LCD-Display (KS0066)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066u.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „LCD zeigt was falsches nach Reset; ATmega8 avrgcc“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „LCD nur 8 von 16 zeichen lassen sich beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LCD-20x2-ganz.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „Init Problem mit KS0066 (Conrad)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „Reloadwertberechnung C167“ · Mikrocontroller und Digitale Elektronik ·
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PDF
553815_1.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „Probleme mit 2ter Zeile bei KS0066 LCD: Lösung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ks0066u.pdf
. . . . . . V4 V5 B) B-type Waveform VDD V1 COM1 . V4 V5 1 FRAME 1 FRAME 1-Line selection period = 200 clocks 1 Frame = 200 ×16×3.7 μs = 11850 μs = 11.9 ms (1 clock=3.7 μs, fosc=270 kHz) Frame frequency = 1 / 11.9 ms = 84.3 Hz KS0066U 16COM / 40SEG DRIVER & CONTROLLER FOR DOT MATRIX LCD INITIALIZING
in „LCD einfach nur ansteuern.“ · Mikrocontroller und Digitale Elektronik ·