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PDF
STM32F4-BASE.pdf
C23 KYOCERAST3215SB J 100nF A S 28pF C25 T R 28pF 28pF FTSH-105-01-F- +3V3 28pF T 2 1 L1 +3V3 S 4 3 C6 1 2 R IO 6 5 J D L 8 7 10nF WE-CBF_0805 N S C O I 10 9 Sehr nah an MCU & guter Ceramic Cap! ST3215SB32768C0HPWBB / W W D Würth Electronics
in „STM32F407 (100pin) Basisboard - Review bitte“ · Mikrocontroller und Digitale Elektronik ·
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Datei
log.txt
-------CONFIGURATION: https://docs.platformio.org/page/boards/ststm32/nucleo_f303k8.html PLATFORM: ST STM32 (16.1.0) > ST Nucleo F303K8 HARDWARE: STM32F303K8T6 72MHz, 12KB RAM, 64KB Flash DEBUG: Current (stlink) On-board (stlink) External (blackmagic, cmsis-dap, jlink) PACKAGES: - framework-arduinoststm32 @ 4.20500.230714 (2.5.0) - framework-cmsis @ 2.50700.210515 (5.7.0) - tool-dfuutil @ 1.11.0 - tool-openocd @ 3.1200.0 (12.0) - tool-stm32duino @ 1.0.2 - toolchain-gccarmnoneeabi @ 1.100301.220327 (10.3.1) LDF: Library Dependency Finder -> https://bit.ly/configure-pio-ldf LDF Modes: Finder
in „Nucleo + PlatformIO upload Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
9e.pdf
- 60 Companies approved to ISO 9001:2000 www.keller-druck.com KELLER Specifications Excitation I = 1 mA Pressure Ranges (FS) and Overpressure in Bar. Signal Output in mV. PR-9 -1 -0,5 -0,2 -0,1 0,1 0,2 0,5 1 2 5 10 20 PD-9 0,1 0,2 0,5 1 2 5 10 20 PAA-9 0,1 0,2 0,5 1 2 5 10 20 PA-9 1 2 5 10 20 50 100
in „Differential spannung auswerten“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AVR-ASM-Tutorial_16_05_08_v2.pdf
subi temp1,low(-100) ; +100 sbci temp2,high(-100) brcs _a8ser st X+,temp5 ; im Puffer speichern ldi temp5, -1 + '0' _a9ser: inc temp5 subi temp1, 10 ; -10 brcc _a9ser st X+,temp5 ; im Puffer speichern ldi temp5, 10 + '0' _a10ser: dec temp5 subi temp1, -1 ; +1 brcs _a10ser st X+,temp5 ; im Puffer speichern ret - 154 - 16A VR-Tutorial: Tasten Bisher beschränkten sich die meisten Programme auf reineAusgabe an einem
in „AVR-ASM-Tutorial: PDF 16.5.08“ · www.mikrocontroller.net ·
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Datei
Firmware_v1.2.c
sizeof(DmxRxField)) //all ch received? { gDmxState= IDLE; //wait for next break } } } /* * Firmware_v1.c * * Created: 29.07.2012 11:54:18 * Author: Domi */ /* ATmega168A @ 8MHz (Reset) PC6 1 28 PC5 S1 DMX PD0 2 27 PC4 S2 DMX PD1 3 26 PC3 S3 DMX PD2 4 25 PC2 S4 PD3 5 24 PC1 S6 PD4 6 23 PC0 S6 VCC 7 22 GND GND 8 21 AREF Quartz PB6 9 20 AVCC Quartz PB7 10 19 PB5 S7 S10 PD5 11 18 PB4 S8 PD6 12 17 PB3 S9 PD7 13 16 PB2 gruen blau PB0 14 15 PB1 rot */ #include <avr/io.h> #include <stdint.h> #include <avr/interrupt.h> #include "lib_dmx_in.h" int main(void)
in „DMX steuerbaren RGB LED PAR oder Pinnspot selber bauen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Firmware_v1.2.c
sizeof(DmxRxField)) //all ch received? { gDmxState= IDLE; //wait for next break } } } /* * Firmware_v1.c * * Created: 29.07.2012 11:54:18 * Author: Domi */ /* ATmega168A @ 8MHz (Reset) PC6 1 28 PC5 S1 DMX PD0 2 27 PC4 S2 DMX PD1 3 26 PC3 S3 DMX PD2 4 25 PC2 S4 PD3 5 24 PC1 S6 PD4 6 23 PC0 S6 VCC 7 22 GND GND 8 21 AREF Quartz PB6 9 20 AVCC Quartz PB7 10 19 PB5 S7 S10 PD5 11 18 PB4 S8 PD6 12 17 PB3 S9 PD7 13 16 PB2 gruen blau PB0 14 15 PB1 rot */ #include <avr/io.h> #include <avr/io.h> #include <stdint.h> #include <avr/interrupt.h> #include "lib_dmx_in.h
in „DMX steuerbaren RGB LED PAR oder Pinnspot selber bauen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Triac_Snubber_Network.pdf
/dt 2 conventional snubberless limitedto10 V/ s. 10,1 0,2 0,5 1 2 5 10 20 50 100 IS IT ALWAYS POSSIBLE TO REMOVE THE SNUBBER CIRCUIT ? dV/dt (V/us) The answer is not in the affirmative because sometimesit has other functions: So we can specifynow
in „Ansteuerschaltung Thyristor und Triac“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
STM32_general-purpose_timer_cookbook_en.DM00236305.pdf
the Prescaler value immediately */ TIM2->EGR = TIM_EGR_UG; TIM2->CCMR1 &= ~TIM_CCMR1_CC2S; /* Connect the Timer input to IC2 */ TIM2->CCMR1 |= TIM_CCMR1_CC2S_0; Input capture configuration /* Enable the DMA1 */ DMA1_Channel7->CCR |= DMA_CCR_EN; /* Enable the TIM Capture
in „STM32 Timer Cookbook PWM - Beispiel 6.2“ · Mikrocontroller und Digitale Elektronik ·
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Datei
grab4HA.py
13, 14, 15, 16] temperature3_name=["unknown"]*20 temperature3_name[0]="084 142" temperature3_name[1]="st3" temperature3_name[2]="st4" temperature3_name[3]="000 000" temperature3_name[4]="xxx" #oder 000 003 temperature3_name[10]="Stoe_str" sensors3 = [1, 2, 4] sensorsx = [1] temperature4_name=["unknown
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Datei
Servo_abstand_LCD.ino
#include <TFT.h> #include <SPI.h> #include <Servo.h> #define echo 4 #define trig 10 #define CS A3 #define DC A2 #define RES 7 #define MOSI 6 #define SCLK 2 Adafruit_ST7735 screen = Adafruit_ST7735(CS, DC, MOSI, SCLK, RES); Servo myservo; // create servo object to control a servo // a maximum of eight servo objects can be created int dis; char disC[5]; String disS; int pos = 0; // variable to store the servo position void abstand(){ digitalWrite(trig, LOW); delayMicroseconds(2); digitalWrite(trig, HIGH); delayMicroseconds(10); digitalWrite(trig, LOW); dis = pulseIn
in „Servo Arduino“ · Mikrocontroller und Digitale Elektronik ·
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Datei
lcdconpar.asm
2,304MHz Timer Takt out TCCR0, temp out TCNT0, null ldi temp, 2 ;TOV Interrupt out TIMSK, temp ldi temp, (1<<INT0) ;INT0 Interrupt out GICR, temp ldi temp, (1<<SRE)|(1<<ISC01) ;Enable XRAM out mcucr, temp ldi temp, (1<<COM1B1)|(1<<COM1B0)|(1<<WGM10) ;Enable PWM out TCCR1A, temp ldi temp, 128 out OCR1BL, temp ;PWM: 50% Duty Cycle ldi temp, (1<<CS10) ;72kHz PWM Frequenz out TCCR1B, temp clr XAdresseLow ;Adresse auf XRAM Beginn setzten ldi ZeileL, YMin czeilc: ;SRAM löschen st X+, null cpi ZeileL, 255 brne czeilc ldi ZL, low(2*BMP) ldi ZH,
in „LCD Controller für 640x480 LCD mit mega8515“ · Projekte & Code ·
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Datei
demo_lcd.c
lcd_write_byte_top (char c) { DATA_PORT.OUT = c; // Place data on Data Port COMM_PORT.OUTSET = LCD_E1; // set E1 line high _delay_us(1); COMM_PORT.OUTCLR = LCD_E1; // set E1 line low to latch data into LCD _delay_ms(10); } // // // This function writes a byte to the LCD (top controller) void lcd_write_byte_bottom
in „Zeiger auf String in Flash - warning incompatible pointer type“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BTA12_BTB12_T12.pdf
board FR4, copper versus pulse duration. thickness: 35µm),full cycle. IT(RMS) (A) K=[Zth/Rth] 3.5 1E+0 D PA2 3.0 (S=1cm ) Zth(j-c) 2.5 2.0 1E-1 Zth(j-a) 1.5 1.0 0.5 Tamb(°C) tp(s) 0.0 1E-1E-3 1E-2 1E-1 1E+0 1E+1 1E+2 5E+2 0 25 50 75 100 125 4/7 BTA/BTB12 and T12 Series Fig. 4: On-state characteristics
in „Thyristortetrode für Wechselspannung geeignet ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BTA12_BTB12_T12.pdf
board FR4, copper versus pulse duration. thickness: 35µm),full cycle. IT(RMS) (A) K=[Zth/Rth] 3.5 1E+0 D PA2 3.0 (S=1cm ) Zth(j-c) 2.5 2.0 1E-1 Zth(j-a) 1.5 1.0 0.5 Tamb(°C) tp(s) 0.0 1E-1E-3 1E-2 1E-1 1E+0 1E+1 1E+2 5E+2 0 25 50 75 100 125 4/7 BTA/BTB12 and T12 Series Fig. 4: On-state characteristics
in „Thyristortetrode für Wechselspannung geeignet ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
datenblatt_transistor.pdf
mA IB= 50 mA 0.7 V Saturation Voltage VBE(on) Base-Emitter On C = 500 mA V CE= 1 V 1.2 V Voltage hFE∗ DC Current Gain C = 100 mA VCE = 1 V for BC337-25 160 400 for BC337-40 250 600 fT Transition Frequency C = 10 mA V CE = 5 V f = 100MHz 100 MHz C CBO Collector-Base E = 0 VCB = 10
in „PWM und Transistor“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datenblatt_Eurola_8-24kW.pdf
,n+ +,r .ült0.,n Tr0nkw(ss,rĆ V,ror+nun. /(t un+ vor/(n+,n, W(ss,rĆ G,mäßĂTRFĂ1996ĆB(n+Ă2Ă-Ă.ült0. s,0t (u-),r,0tun.s(nl(.,nmän.,l-r,0(r),0t,n. 1.ĂS,pt,m),rĂ1997Ă-Ă0st ),0m E0n)(u +,s Eurol( unt,r Er+.l,0*/, k,0n ,xt,rn,s S0*/,r/,0tsm(.n,tv,nt0l m,/r ,r-or+,rĆ l0*/. D,r /o/, S0*/,r/,0tsst(n+(r+ m0t
in „Schaltplan/Hilfe bei Steuerung Eurola OC“ · Haus & Smart Home ·
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PDF
sv-ic5.pdf
Referencefrequency:duringstop ACC Accelerationtime 0to6000[sec] 5 Yes DEC Decelerationtime 0to6000[sec] 10 Yes 0(Keypad) Drv Drivemode 1(Fx/Rx-1) 1 No 2(Fx/Rx-2) 3(ModBus) 0(Keypad-1) 1(Keypad-2) 2(Volume) 3(V1) Frq Frequency mode 4(I)0 No 5(Volume+1) 6(V1+I) 7(Volume+V1) 8(ModBus) St1 Stepfrequency1 0toMax.frequency
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PDF
TD340.pdf
tipr Retrigger 0.1 s treset Reset Pulse Width 10 20 40 s TEMPERATURE OUTPUT VT Output Voltage T= 25 oC 2.58 2.68 2.78 V VT Output Temperature Drift -7 -7.5 -7.8 mV/ C Notes : 1. For proper operation, a 5.6k resistor needs
in „Suche Vollbrücken Gatetreiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AVR-ASM-Tutorial_16_05_08_v1.pdf
subi temp1,low(-100) ; +100 sbci temp2,high(-100) brcs _a8ser st X+,temp5 ; im Puffer speichern ldi temp5, -1 + '0' _a9ser: inc temp5 subi temp1, 10 ; -10 brcc _a9ser st X+,temp5 ; im Puffer speichern ldi temp5, 10 + '0' _a10ser: dec temp5 subi temp1, -1 ; +1 brcs _a10ser st X+,temp5 ; im Puffer speichern ret - 151 - 16A VR-Tutorial: Tasten Bisher beschränkten sich die meisten Programme auf reineAusgabe an einem
in „AVR-ASM-Tutorial: PDF 16.5.08“ · www.mikrocontroller.net ·
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PDF
Bedienungsanleitung.pdf
näherungsweise errechnen: Bohrerdurchmesser D in mm N = 320 x v/D Schnittgeschwindigkeit v gemäß Tabelle in m/s Beispiel: Ein HSS-Bohrer Ø 10 mm in Werkstoff St37 soll laut Tabelle 1 bei einer Schnittgeschwin- digkeit von 35 m/s also N = 320 x 35/10 das sind N = 1120 U/min verwendet werden. Stellen Sie die Drehzahl
in „Elektra Beckum TB1500/W12 Unterlagen / Keilriemen / Motorkondensator“ · Mechanik, Gehäuse, Werkzeug ·
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Datei
TransponderArduino.ino
22 #define A_Stallicht 28 #define A_Steckdose 30 #define S_FutterstandBigBag 35 #define S_Futterboxgeber 44 #define S_Ultraschallgeber 45 #define T_Melkbetrieb 50 #define T_Ruckwarts 51 #define S_Waschwassergeber 52 #define T_KarusellStop A1 //PullUP #define
in „Arduino Mega für Programm nicht richtig aus“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Schaltplan Sinotimer CN101S-5V
Eingang ST2 +5V D3 R13 2 R2 4k7 2 1 Q1 BC817 3 R11 2k 1 D6 SS14 1xON LED- LED+ ON/OFF CLOCK+ zum Uhrenmodul R10 15k Q2 BC817 D4 SS14 R4 1k5 2 R5 1k5 1 N141848 D8 D1 R3 0 1 BATT+ B1 C8 1uF GND C2 1uF 2V0 C4 100uF U1 TL431 R 1k 1N4148 D2 GND GND-OUT ST4 +5V ST5 Ausgang P S GND Eingang
in „Schaltplan Sinotimer für 5 VDC“ · Projekte & Code · · Schaltpläne
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PDF
RDA5807SP_ProgManual_2.5.pdf
I2S bus enable 0 If 0, disabled; If 1, enabled. 5:4 GPIO3[1:0] General Purpose I/O 3. 00 00 = High impedance 01 = Mono/Stereo indicator (ST) 10 = Low 11 = High 3:2 GPIO2[1:0] General Purpose I/O 2. 00 00
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PDF
CFAH2002L-TMI-ETDatasheetReleaseDate2017-07-28.pdf
7.2 (W) x 10.98 (H) 0.283 (W) x 0.432 (H) Dot Size 1.12 (W) x 1.12 (H) 0.044 (W) x 0.044 (H) Dot Pitch 1.22 (W) x 1.22 (H) 0.048 (W) x 0.048 (H) Weight (Typical) 52 grams 1.83 ounces Page | 4 Crystalfontz CFAH2002L-TMI-ET
in „[V] 2 gebrauchte große lange LCD 2x20 9,6mm Zeichenhöhe blau/weiß und grün/gelb (12“ · Markt ·
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PDF
AT070TN07-V2.pdf
Item Symbol Unit Remark Min. Typ. Max. Rising time tr - - 10 ns Note 1 Falling time tf - - 10 ns Note 1 High and low level pulse width tCPH 99 103 107 ns CPH1~CPH3 CPH pulse duty tCWH 40 50 60 % CPH1~CPH3 tC1 CPH pulse delay ns CPH1~CPH3 tC2 30 CPH/3 CPH/2 tC3
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PDF
Servicemanual_Hameg_HM_305-2.pdf
from 5ns/div to 5s/div. Output min. 10mV into 50 Ohm (e.g. HZ62, TEK TG501). 5) Pre-attenuator 2:1 (1 M Ohm parallel with 12-48pF), e.g. HZ20. 6) 50 Ohm BNC through termination, e.g. HZ22. 7) 2 BNC-cables, 50 Ohm, e.g.
in „Oszilloskop - Bildröhre läuft unzuverlässig“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BSS89.pdf
drain current (DC) − − 300 mA Ptot total power dissipation Tamb ≤ 25 °C − − 1 W RDSon drain-source on-state resistanDe I = 400 mGS = 10 V − 4.5 6 yfs forward transfer admittance ID= 400 mA; VDS= 25 V 140 350 − mS 1998 Apr 24 2 Philips Semiconductors Product specification N-channel
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PDF
core.pdf
7 IO_A2 IO_B2 10SWDIO_ISO C310 C311 4 PC15 R +3V3 Conn_02x03_Odd_Even C GND GND C 10p 10p 1 VCCA VCCB 16 VCC3_ISO RST_OUT18 PB0 PA0 10 8 9 GND GND 19 11 C2009 GNDA GNDB C2010 GNDREF PB1 PA1 4u7 2 2 4u7 20 PB2 PA2 12
in „Review Eierlegende Wollmilchsau“ · Mikrocontroller und Digitale Elektronik ·
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PDF
kcg047qv1aa-a21.pdf
humidity *3 Hop 10 *4 %RH Storage humidity *3 HSTO 10 *4 %RH Vibration - *5 *5 - Shock - *6 *6 - *1 LCD's display quality shall not be guaranteed at the temperature range of : below 0℃ and upper 40℃. *2 Temp. = -20℃ <
in „lesbare schrift über PAL generieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sed1278.pdf
Enable rise/fall time rE, fE — 25 ns RS, R/W setup time tAS 40 — ns RS, R/W address hold time tAH 10 — ns Data setup time tDS 60 — ns Write data hold time tDH 10 — ns • MPU read cycle timing (read from SED1278) V RS IH1 VIL1 tAS tAH VIH1 R/W 7 2 AH D tWEH E fE S V E IH1 VIL1 r E DHR RD DB0 to DB7 VOH1
in „Suche Schaltplan, Peaktech 4010.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
EXO-3.pdf
CMOS Symmetry 40~60 Rise & Fall Times 15nS max (10nS typ) Output Load 50pF 15pF Table 1) Standard Frequency (Frequency Stability +/-100ppm) 1/2 0 1/21 1/2 2 1/2 3 1/2 4 1/25 1/2 6 1/27 1/28 12.00MHz 6.00MHz 3.00MHz 1.50MHz 750kHz 375kHz 187.5kHz
in „LM8560 Uhrchip: externen 50 hz-Sinusgenerator aufbauen, wie?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
167606-da-01-en-Transistor__BD243_B_C.pdf
Current Gain I = 0.3 A V = 4 V 30 FE C CE IC= 3 A V CE= 4 V 15 h fe Small Signal Current IC= 0.5 A V CE= 10 V f = 1MHz 3 Gain IC= 0.5 A V CE= 10 V f = 1KHz 20 ∗ Pulsed: Pulse duration = 300 s, duty cycle ≤ 2 % For PNP types voltage and current values are negative. Safe Operating Area 2/4 BD243B / BD243C /
in „Lüftersteuerung mit AVR über PWM ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
103359_mdv_2_schaltplan.pdf
C1 220n KL1 10V IC1 C2 1 24 LINN RINN R 220n 2 LINP RINP 23 10V 3 /SHUTDOWN BYPASS 22 4 21 IN PVDD PVDD +5V 5 LOUTP ROUTP 20 +5V KL2 +5V 6 PGND PGND 19 AGND 7 18 8 PGND PGND 17 L LOUTN ROUTN 9 PVDD PVDD
in „Vorschläge für kleinen Verstärker zum Lautsprecher messen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Applnote.pdf
different configurations, a set of software tools are needed: A development tool-chain supporting the ST-LINK debugger The STM32CubeMX software tool or later versions (v4.10.1 was the latest release when this application was developed). DocID028459 Rev 1 35/73 72 N-pulse waveform generation using one-pulse
in „PWM Signalerzeugung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Servo_abstand_LCD.ino
#include <TFT.h> #include <SPI.h> #include <Servo.h> #define echo 4 #define trig 10 #define CS A3 #define DC A2 #define RES 7 #define MOSI 6 #define SCLK 2 Adafruit_ST7735 screen = Adafruit_ST7735(CS, DC, MOSI, SCLK, RES); Servo myservo; // create servo object to control a servo //
in „Zuckungen Servo Arduino“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2clcd.h
1 << LCD_D7_PIN) /**< bit 7 in 2nd lower nibble */ #define LCD_RS (1 << LCD_RS_PIN) /**< RS-bit in 1st and 2nd higher nibble */ #define LCD_RW (1 << LCD_RW_PIN) /**< RW-bit in 1st and 2nd higher nibble
in „Probleme mit meinem LCD-Display“ · Mikrocontroller und Digitale Elektronik ·
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Datei
i2clcd.h
1 << LCD_D7_PIN) /**< bit 7 in 2nd lower nibble */ #define LCD_RS (1 << LCD_RS_PIN) /**< RS-bit in 1st and 2nd higher nibble */ #define LCD_RW (1 << LCD_RW_PIN) /**< RW-bit in 1st and 2nd higher nibble
in „Tastenentprellung seltsames Phänomen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCM9574.pdf
1 49 D10 50 GND C.19 PanelLink connector (CN22) 19 20 17 18 3 4 1 2 Table C-21: PanelLink connector (CN22) Pin Signal Pin Signal 1 TX1+ 2 TX1- 3 TX1 GND 4 TXC GND 96 PCM-9574 User's Manual 5 TXC+ 6 TXC
in „16 Pin Postenstecker auf 15pol-Sub-D (Advantech PCM 9574)“ · PC Hard- und Software ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „Zusätzlicher Schalter aber keine Ader frei.“ · Haus & Smart Home ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „Suche Halbleiterelement als Ersatz für Relai in Radar-Bewegungsmelder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „Triac vs Relais“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „Relais 12v nach Tagen benutzung kaputt - Jalousien steuerung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „230VAC Max 200mA mit ESP32 3,3VDC schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „Triac oder Relais“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
in „MOSFET 230V AC / 3V3 Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Current to Activate 60Hz F - - 5 mA Input Drop-outVoltage - - 0.8 - - V InputVoltage Drop F =5mA V F 0.9 1.2 1.4 V Reverse Input Current V =5V I - - 10 A R R Common Characteristics Input to Output Capacitance - C - - 3 pF I/O 1Zero Cross 1st half-cycle @ <100Hz. 2Snubber circuits may be required at low power
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PDF
BMA020_DataSheet_1.1_080114.pdf
The description of the digital signals acc_x, acc_y and acc_z is “2’s complement”. From negative to positive accelerations, the following sequence for the ±2g measurement range can be observed (±4g and ±8g correspondingly): -2.000g : 10 0000 0000 -1.996g : 10 0000 0001
in „Über Mikrocontroller Beschleunigungssensor auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BMA020_DataSheet_1.1_080114.pdf
The description of the digital signals acc_x, acc_y and acc_z is “2’s complement”. From negative to positive accelerations, the following sequence for the ±2g measurement range can be observed (±4g and ±8g correspondingly): -2.000g : 10 0000 0000 -1.996g : 10 0000 0001
in „Bosch BMA020 Zweierkomplement“ · Mikrocontroller und Digitale Elektronik ·