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main.c
********************************************************************* // Timer 2 Interrupt Routine 10.000Hz oder alle 100µs // ********************************************************************************** void TIM2_IRQHandler(void) { while( (TIM2->SR & (1<<0)) > 0 ) TIM2->SR &= ~(1<<0); // clear
in „STM32F4 DISCOVERY und SainSmart 3.2″ Display“ · Mikrocontroller und Digitale Elektronik ·
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AD7190.pdf
RS2, Bit RS1, and Bit RS0 with 0. Table 16 outlines the bit designations for the status register. SR0 through SR7 indicate the bit locations, SR denoting that the bits are in the status register. SR7 denotes the first bit of the data stream. The number in parentheses indicates the power-on/reset default status of that bit. SR7 SR6 SR5 SR4 SR3 SR2 SR1 SR0 RDY(1) ERR(0) NOREF(0) Parity(0) 0(0) CHD2(0) CHD1(0) CHD0(0) Table 16. Status Register Bit Designations BitLocation BitName Description SR7 RDY Ready bit for the ADC. Cleared
in „AD7190 Clock“ · Analoge Elektronik und Schaltungstechnik ·
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OPALjrManual.pdf
PAL20P8 PAL20R4 PAL20R6 PAL20R8 PAL20RP4 PAL20RP6 PAL20RP8 PAL functions that are replaceable by a GAL22V10 are: PAL12H10 PAL12L10 PAL12P10 PAL14H8 PAL14L8 PAL14P8 PAL16H6 PAL16L6 PAL16P6 PAL18H4 PAL18L4 PAL18P4 PAL20H2 PAL20H8 PAL20L2 PAL20L8 PAL20P2 PAL20P8 PAL20H10 PAL20L10 PAL20P10 PAL20R4 PAL20R6 PAL20R8
in „Suche Infos zu ICT Peel 18CV8P 35NS Software JDEC File erzeugen?“ · Mikrocontroller und Digitale Elektronik ·
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HW11PCV3.PDF
siehe Tabelle 1 Verschmutzungsausgang Elektrisch PNP Öffner/Schließer umschaltbar Versorgungsspannung 10...30 V DC Stromaufnahme (Ub = 24V) < 40 mA Anschlussbild-Nr. 105 Schaltfrequenz 600 Hz Ansprechzeit 833 µs Bedienfeld-Nr. D 5 Temperaturdrift < 5 % passender Stecker-Nr. Temperaturbereich -25...60 °C
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45890.pdf
IOUT GBP SR maxV S AD711 FET 300µV 15pA 0.5V 3.5V 1.1V 1.7V 25mA 4MHz 20V/µs 36V AD820 FET 100µV 2pA 1V -0.2V 0.01V 0.005V 15mA 1.9MHz 3V/µs 36V AD825* FET 1mV 10pA 1.5V 1.5V 1.6V 1.6V 26mA 46MHz 140V/µs 36V AD843
in „Schaltung Spannungsverstärkung in -5 - 5V out -50 - 50V ??“ · Analoge Elektronik und Schaltungstechnik ·
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Bootstrapping_your_op_amp_yields_wide_Voltage_Swings.pdf
IOUT GBP SR maxV S AD711 FET 300µV 15pA 0.5V 3.5V 1.1V 1.7V 25mA 4MHz 20V/µs 36V AD820 FET 100µV 2pA 1V -0.2V 0.01V 0.005V 15mA 1.9MHz 3V/µs 36V AD825* FET 1mV 10pA 1.5V 1.5V 1.6V 1.6V 26mA 46MHz 140V/µs 36V AD843
in „Frequenzgenerator für 200V Vss“ · Mikrocontroller und Digitale Elektronik ·
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PDF
op-amp_bootstrapping__high_output_voltage_.pdf
IOUT GBP SR maxV S AD711 FET 300µV 15pA 0.5V 3.5V 1.1V 1.7V 25mA 4MHz 20V/µs 36V AD820 FET 100µV 2pA 1V -0.2V 0.01V 0.005V 15mA 1.9MHz 3V/µs 36V AD825* FET 1mV 10pA 1.5V 1.5V 1.6V 1.6V 26mA 46MHz 140V/µs 36V AD843
in „Hochspannungs OPV Fehler/Vorschlag?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
twi.c
received twi_stop(); break; // TW_MR_ARB_LOST handled by TW_MT_ARB_LOST case // Slave Receiver case TW_SR_SLA_ACK: // addressed, returned ack case TW_SR_GCALL_ACK: // addressed generally, returned ack case TW_SR_ARB_LOST_SLA_ACK: // lost arbitration, returned ack case TW_SR_ARB_LOST_GCALL_ACK: // lost arbitration
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st7920_chinese_font_controller.pdf
data to select CGRAM bit4 to bit15 must be “0”. Bit0 and bit3 value are “don’t care”. V3.0 13/42 2002/10/11 ST7920 ICON RAM address ICON RAM data Set SR ”0”, and then set IRAM address AC3….AC0 Higher byte Lower byte AC3 AC2 AC1 AC0 D15 D14 D13 D12 D11 D10 D9 D8 D7 D6 D5 D4 D3 D2 D1 D0 0 0 0 0 SEG0 SEG1
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st7920_chinese.pdf
data to select CGRAM bit4 to bit15 must be “0”. Bit0 and bit3 value are “don’t care”. V3.0 13/42 2002/10/11 ST7920 ICON RAM address ICON RAM data Set SR ”0”, and then set IRAM address AC3….AC0 Higher byte Lower byte AC3 AC2 AC1 AC0 D15 D14 D13 D12 D11 D10 D9 D8 D7 D6 D5 D4 D3 D2 D1 D0 0 0 0 0 SEG0 SEG1
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MOC3041-M.pdf
(0.50) 0.008 (0.21) 0.016 (0.41) 0.425 (10.80) 0.400 (10.16) NOTE All dimensions are in inches (millimeters) DS300256 8/06/01 7 OF 9 www.fairchildsemi.com 6-PIN DIP ZERO-CROSS OPTOISOLATORS TRIAC DRIVER OUTPUT (250/400 VOLT PEAK) MOC3031M MOC3032M
in „Triac schaltet nicht ab“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
Das Programm sollte wie folgt funktionieren: * Durch die Tatsache, dass die Pins 5V und GND des HC-SR04 Moduls mit den entsprechenden Pins des STM32F4 Boards verbunden sind, * ist das Modul mit Strom und Spannung versogt und funktionsbereit. * * Durch die Pin PC6 (TIMER 3 Channel 1) wird es ständig über den TRIGGER Pin des Moduls ein 10us Signal mit einem Intervall von 100ms geschickt, * damit ein Ping erstellt wird. * * Der ECHO Pin des Moduls ist mit dem Pin PB7 (TIMER 4) verbunden. * Von dem TIMER 4 benutzen wir zwei Channels (1
in „STM32F4 Discovery Board: Aufruf Funktionen in Atollic TrueStudio“ · Mikrocontroller und Digitale Elektronik ·
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XL4001_datasheet.pdf
Temperature T J -40 to 125 ºC Storage Temperature T -65 to 150 ºC STG Lead Temperature (Soldering, 10 sec) T LEAD 260 ºC ESD (HBM) 2000 V Note1: Stresses greater than those listed under Maximum Ratings may cause permanent damage to the device. This is a stress rating only and functional operation of
in „DC-DC LED Treiber PWM Anschlussprobleme TC420“ · Mikrocontroller und Digitale Elektronik ·
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STM.pdf
QA’ to QH’ Serial Outputs (Standard Output) 9 CLEAR Asynchronous Master Reset Input (Active LOW) 11 SR Serial Data Shift Right Input 12 CLOCK Clock Input (LOW to HIGH, Edge-triggered) 18 SL Serial Data Shift Left Input 10 GND Ground (0V) 20 V CC Positive Supply Voltage ABSOLUTE MAXIMUM RATINGS Symbol
in „74HC299 8-bit PIPO Shift Register“ · Mikrocontroller und Digitale Elektronik ·
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Datei
w5500.c
socket closed status */ void waitUntilSocketClosed(uint8_t s) { while (getSn_SR(s) != SOCK_CLOSED) ; } /** * open socket and wait for initiated status */ void openSocketOnPort(uint8_t s, uint8_t port) { socket(s, Sn_MR_TCP, port, 0x00); while (getSn_SR(s) != SOCK_INIT); } /** *
in „Send response (Action *Var)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
74HC299_74HCT299_PHI.pdf
maximum clock frequency 50 46 MHz max CI input capacitance 3.5 3.5 pF CI/O input/output capacitance 10 10 pF CPD power dissipation capacitance per package notes 1 and 2 120 125 pF Notes 1. C PDis used to determine the dynamic power 2. For HC the condition is V = GND to V I CC dissipation (D in W): For
in „74HC299 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
event_ctrl.ino
uint8_t stb) ---------------------------------------------------------------------- */ shiftreg595 sr(7, 5, 6); /* ---------------------------------------------------------------------- Dip-Schalter an Pin 4 und Pin 3 angeschlossen ---------------------------------------------------------------------
in „Schulnotenbewertung eines Arduino-Programms“ · Mikrocontroller und Digitale Elektronik ·
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Datei
event_ctrl.ino
uint8_t stb) ---------------------------------------------------------------------- */ shiftreg595 sr(7, 5, 6); /* ---------------------------------------------------------------------- Dip-Schalter an Pin 4 und Pin 3 angeschlossen ---------------------------------------------------------------------
in „Schulnotenbewertung eines Arduino-Programms“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
UCSWRST; // Use SMCLK, keep SW reset UCB0BR0 = 10; // fSCL = SMCLK/12 = ~100kHz UCB0BR1 = 0; UCB0I2CSA = itgAddress; // Slave Address is 069h UCB0CTL1 &= ~UCSWRST; // Clear SW reset, resume operation IE2 |= UCB0RXIE + UCB0TXIE; //Enable RX and TX interrupt
in „MSP430G2553 / DHT12 Sensoranbindung / Initialsierung anfangs fehlerhaft“ · Mikrocontroller und Digitale Elektronik ·
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Datei
twi_lib.c
wie OelE.AdrTempPfrHigh [17] = 17, // 1-10-001-000 PfrE.AdrTemp1 // gleicher Sensor wie OelE.AdrTempPfrLow [18] = 18, // 1-10-010-000 PfrE.AdrTemp2 [19] = 19, // 1-10-011-000 PfrE.AdrTemp3 [20] = 20, // 1-10-100-000 PfrE.AdrTemp4 [21] = 21, /
in „TWI MUX per SW an einem Port“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM8_Programming_Manual.pdf
, EV5: SB=1, cleared by reading SR1 register followed by writing DR register. EV6: ADDR=1, cleared by reading SR1 register followed by reading SR3. In 10-bit master receiver mode, this sequence should be followed by writing CR2 with
in „STLINK V2 und China Boards“ · Mikrocontroller und Digitale Elektronik ·
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IR2130.pdf
15V 15V VCC VS0 VCC 3V + CA- + CAO CAO CA- - 0V - VS0 VSS 50 pF VSS + 20k T1 T2 0.2V 1k 3V 90% V 0V 10% V CAO VOS = - 0.2V V V 21 SR+ = T1 SR- = T2 Figure 7. Operational Amplifier Slew Rate Figure 8. Operational Amplifier Input Offset Voltage Measurement Measurement VCC VS0 15V + VCC CA- CAO - - CA- CAO
in „Wie gross muss C für Ladungspumpe IR2130 sein?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
05_TLV272CS-13.pdf
- 2 www.diodes.com © Diodes Incorporated TLV271/TLV272 Typical Performance Characteristics (cont.) 10.0 3 VDD= 10V ) T = +125°C (8.0 A 2.5 E A SR- L s 2 O TA= +105°C / V6.0 ( SR+ T E P A1.5 T TA= +70°C R T O W L4.0 E C V S 1 U E T = +25°C D - A W2.0 O L TA= 0°C 0.5 R VDD= 5VV A =L1, R = 10k, P TA= -40
in „TLV272 Rail to Rail Problem DIODES“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
ENABLE); GPIO_PinAFConfig(GPIOA, GPIO_PinSource9, GPIO_AF_1); GPIO_PinAFConfig(GPIOA, GPIO_PinSource10, GPIO_AF_1); // Configure USART2 pins: Rx and Tx -> PA9+PA10 (datasheet) GPIO_InitStructure.GPIO_Pin = GPIO_Pin_9 | GPIO_Pin_10; GPIO_InitStructure.GPIO_Speed = GPIO_Speed_50MHz; GPIO_InitStructure.GPIO_Mode
in „SPI-RAM-Bank an STM32F0-Discovery - write, kein read“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
#include "stm32f10x.h" uint32_t CRC32(uint8_t* buf, int len) { uint32_t crc = 0xFFFFFFFF; for(int i=0; i<len; i++) { uint32_t byte = buf[i]; crc = crc^byte; for(int j=7; j>=0; j--) { uint32_t mask = -(crc & 1); crc = (
in „STM32F103C8T6 - Fälschung von ST bestätigt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
PIO_SODR_P27; } else { ledOn = true; PIOB->PIO_SODR = PIO_SODR_P27; } } // Daten gesendet? if (!(SPI0->SPI_SR & SPI_SR_TDRE)) { // Byte für Übnertragung bereitstellen. SPI0->SPI_TDR = 0x5Aul | SPI_TDR_LASTXFER; // Warten bis alle Daten gesendet wurden. while ((SPI0->SPI_SR & SPI_SR_RDRF) == 0); } } return 0;
in „SAM3X8E Problem mit SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
asus-p701-unlocked.pdf
hobi-elektronika.net A3 P701 1.2G Date: Friday, August 24, 2007 Sheet 14 of 47 5 4 3 2 1 5 4 3 2 1 +3V +3V STP_PCI# SR20 1 2 10KOhm /X STP_CPU# SR21 1 2 10KOhm /X U2A PM_VCOREL1 SR38 10KOhm /X PCI_DEVSEL# SRN2B PM_VCOREL2 SR39 1 2 10KOhm /X T64 TPC26T PCI_PAR PCI_IRDY# 3 10KOhm 4 SRN2A LPC_AD[3:0] [32,33] 1 2 1 PCI_DEVSEL
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4N27-M.pdf
T Turn-off Time I = 10mA, V = 10V, 4N25M, 4N26M, 2 µs OFF F CC R L 100Ω (Fig. 11) 4N27M, 4N28M, H11A1M, H11A2M, H11A3M, H11A4M, H11A5M IC = 2mA, CC = 10V, 4N35M, 4N36M, 2 10 R L= 100Ω (Fig. 11) 4N37M * Typical values At T
in „Wechselspannungs Fragen :(“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datenblatt_PIC12F1822.pdf
Reference OSC2/CLKOUT Timing Generation CPU PORTA OSC1/CLKIN INTRC Oscillator (Figure 2-1) PORTC (3) MCLR SR Timer0 Timer1 ADC DAC Comparators Latch 10-Bit Modulator FVR ECCP1 MSSP EUSART CapSense Note 1: See applicable chapters for more information on peripherals. 2: See Table 1-1 for peripherals available
in „PIC12F1822-PWM Mode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_PIC12F1822.pdf
Reference OSC2/CLKOUT Timing Generation CPU PORTA OSC1/CLKIN INTRC Oscillator (Figure 2-1) PORTC (3) MCLR SR Timer0 Timer1 ADC DAC Comparators Latch 10-Bit Modulator FVR ECCP1 MSSP EUSART CapSense Note 1: See applicable chapters for more information on peripherals. 2: See Table 1-1 for peripherals available
in „Interrupt-PIC12F1822“ · Mikrocontroller und Digitale Elektronik ·
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PDF
12F1822_1823.pdf
Reference OSC2/CLKOUT Timing Generation CPU PORTA OSC1/CLKIN INTRC Oscillator (Figure 2-1) PORTC (3) MCLR SR Timer0 Timer1 ADC DAC Comparators Latch 10-Bit Modulator FVR ECCP1 MSSP EUSART CapSense Note 1: See applicable chapters for more information on peripherals. 2: See Table 1-1 for peripherals available
in „Auflösung PWM-Mode“ · Mikrocontroller und Digitale Elektronik ·
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PDF
12F1822_1823.pdf
Reference OSC2/CLKOUT Timing Generation CPU PORTA OSC1/CLKIN INTRC Oscillator (Figure 2-1) PORTC (3) MCLR SR Timer0 Timer1 ADC DAC Comparators Latch 10-Bit Modulator FVR ECCP1 MSSP EUSART CapSense Note 1: See applicable chapters for more information on peripherals. 2: See Table 1-1 for peripherals available
in „8Bits und 2Bits in eine Integer-Variable“ · Mikrocontroller und Digitale Elektronik ·
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PDF
12F1822_1823.pdf
Reference OSC2/CLKOUT Timing Generation CPU PORTA OSC1/CLKIN INTRC Oscillator (Figure 2-1) PORTC (3) MCLR SR Timer0 Timer1 ADC DAC Comparators Latch 10-Bit Modulator FVR ECCP1 MSSP EUSART CapSense Note 1: See applicable chapters for more information on peripherals. 2: See Table 1-1 for peripherals available
in „Timer2 auf 10bit einstellen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PIC12FLF1822PIC16FLF1823.pdf
Reference OSC2/CLKOUT Timing Generation CPU PORTA OSC1/CLKIN INTRC Oscillator (Figure 2-1) PORTC (3) MCLR SR Timer0 Timer1 ADC DAC Comparators Latch 10-Bit Modulator FVR ECCP1 MSSP EUSART CapSense Note 1: See applicable chapters for more information on peripherals. 2: See Table 1-1 for peripherals available
in „PIC16lf1823 General purpose I/Os mit Schmitt Trigger ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Coaxial_Resonators_for_VCO.pdf
profile. SMV1104-34 R2 C2 100 C4 3.3 J1 Skyworks D +10dBm SR8800SPQ1160BY C 10 875MHz Table 1. Wavelength (λ ) in DielGctric TRL ATF 21186 Material εR Wavelength Formula forλ G(inches) C3 S 1000 10.5 ± 0.5 3642/O 3.3 2000 20.6 ± 1.0 2601/O 8800 39.0 ± 1.5
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DS14C232.pdf
Input Voltage 2 V CC V V Low Level Input Voltage GND 0.8 V IL IH High Level Input Current VIN≥ 2.0V −10 +10 µA IL Low Level Input Current VIN≤ 0.8V −10 +10 µA V High Level Output Voltage R = 3 k 5.0 8.0 V OH L VOL Low Level Output Voltage RL = 3 k −7.0 −5.0 V OS+ Output High Short Circuit VO = 0V, VIN=
in „Schnittstellentreiber IC DS14C232“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Hargassner_Datenprotokoll_155_Pakete.pdf
/'//> **** Temperatur Puffer oben 9 /'9/' name=/'TPm/' unit=/'°C/'//> **** Temperatur Puffer mitte 10 /'10/' name=/'TPu/' unit=/'°C/'//> \ **** Temperatur Puffer unten 11 /'11/' name=/'TFW/' unit=/'°C/'//> **** Temperatur FW 12 /'12/' name=/'TRL/' unit=/'°C/'//> **** Rücklauftemp 13 /'13/' name=/'TRLsoll
in „Hargassner Pelletheizung Betriebsdatenerfassung“ · Haus & Smart Home ·
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PDF
Hargassner_Datenprotokoll_155_Pakete.pdf
/'//> **** Temperatur Puffer oben 9 /'9/' name=/'TPm/' unit=/'°C/'//> **** Temperatur Puffer mitte 10 /'10/' name=/'TPu/' unit=/'°C/'//> \ **** Temperatur Puffer unten 11 /'11/' name=/'TFW/' unit=/'°C/'//> **** Temperatur FW 12 /'12/' name=/'TRL/' unit=/'°C/'//> **** Rücklauftemp 13 /'13/' name=/'TRLsoll
in „Hargassner / Rennergy Touchtronic Netzwerkanbindung/Visualisierung“ · Haus & Smart Home ·
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Datei
stm32f4x7_eth_bsp.c
emacBLOCK_TIME_WAITING_ETH_LINK_IT)) sys_arch_sem_wait( Ð_link_xSemaphore, 0); /* Get Ethernet link status*/ uint16_t sr = ETH_ReadPHYRegister(LAN8710A_PHY_ADDRESS, PHY_SR); if( sr & PHY_Linked_Status) { /* Set link up */ netif_set_link_up(&xnetif); } else { /* Set link down */ netif_set_link_down(&xnetif); } } } /** *
in „Olimex STM32E407, FreeRTOS und lwip“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CAN_ATMega-UVR-V5-1.bas
End If '----- Teste auf Empfang und auslesen ---------------------------- Reg = &H02 : Gosub C_rd : Sr = D Q = Sr And 2 : If Q = 2 Then Goto Clr_overrun Q = Sr And 1 : If Q = 0 Then Goto Prog Reg = &H14 : Gosub C_rd : Idh = D Reg = &H15 : Gosub C_rd : Idl = D Id = Idh * 8 : Hilf = Idl / 32 : Id = Id +
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Datei
msp430g2xx1_ta_uart9600.c
if (rxBuffer & 0x04) P1OUT |= 0x10; else P1OUT &= ~0x10; // P1.4 if (rxBuffer & 0x08) P1OUT |= 0x20; else P1OUT &= ~0x20; // P1.5 if (rxBuffer & 0x10) P1OUT |= 0x40; else P1OUT &= ~0x40; // P1.6 if (rxBuffer & 0x20) P1OUT |= 0x80; else
in „Erfahrungen UART TI Launchpad“ · Mikrocontroller und Digitale Elektronik ·
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Datei
MSP430g2231_UART_backup.c
Nicholas J. Conn - http://msp430launchpad.com * Email: webmaster at msp430launchpad.com * Date: 08-17-10 ******************************************************************************/ #include "msp430g2231.h" #include "stdbool.h" #define bit_get(p,m) ((p) & (m)) #define bit_setzen(p,m) ((p) |= (m)) #define
in „MSP430G2231 - UART 26 Bit übertragen/empfangen“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Vergleich der Strahlungsintensität ROHM SML-P14RW vs Standard NIR LED
Radiant Intensity Comparison of SML-P14RW vs Standard NIR LED 5 Radiant Intensity [mW/sr] 4 ROHM's New Product SML-P14RW (ROHM study) 3 Standard 1006 NIR LED 2.8mW/sr 2 22mA (31mW equivalent) approx. 1.4 times 1 30mA (45mW equivalent), 2.0mW/sr 0 Forward Current IF [mA] 0 10 20 30 40 50
in „Nuvoton erweitert AI-Angebote, ARMBian-Update und kostenlose Arduino Cloud-Nutzung“ · Mikrocontroller und Digitale Elektronik · · Diagramme
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PDF
MOSFET_Treiber_slup169.pdf
capabilities of the A typical example with logic level MOSFETs controller, the gate drive signal ofSR is applied driven by a 10V drive signal would yield a ratio and the MOSFET is turned on. At that time the of 0.417, which means that the pull down drive current transfers from the body diode to the impedance
in „Igbt über Trafo --> Ansteuerungssignal unsauber“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dac.h
DHR12R1; // 0C Channel1 12-bit left aligned data holding register (DAC_DHR12L1) uint32_t rsvd_0C; // 10 Channel1 8-bit right aligned data holding register (DAC_DHR8R1) uint32_t rsvd_10; // 14 Channel2 12-bit right aligned data holding register (DAC_DHR12R2) uint32_t DHR12R2; // 18 Channel2 12-bit left
in „(STM32) Register Lib mit define oder nicht define..“ · Mikrocontroller und Digitale Elektronik ·
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PDF
3986.pdf
Characteristics Symbol Test Conditions Min. Typ. Max. Units Current Control Blank Time tBLANK ROSC = 10 kΩ, 1.2 1.5 1.8 μs Fixed Off-Time t R = 10 kΩ, , SR= High 18.12 – 23.16 μs OFF OSC Reference Input Voltage VREF 0.8 – 2 V Internal Reference Voltage V 20 kΩ to V 1.9 2.0 2.1 V REFInt DD Current Trip
in „Schrittmotorsteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A4989-Datasheet-1.pdf
Characteristics Symbol Test Conditions Min. Typ. Max. Units Current Control Blank Time tBLANK ROSC = 10 kΩ, 1.2 1.5 1.8 μs Fixed Off-Time t R = 10 kΩ, , SR= High 18.12 – 23.16 μs OFF OSC Reference Input Voltage VREF 0.8 – 2 V Internal Reference Voltage V 20 kΩ to V 1.9 2.0 2.1 V REFInt DD Current Trip
in „Masseflächen?“ · Platinen ·
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PDF
SeikoChar.pdf
dots + cursor 5x7 dots + cursor 5x7 dots + cursor 5x7 dots + cursor Module Reflective 180,0 x 40,0 x 10,5 98,0 x 60,0 x 11,6 118,0 x 36,0 x 11,3 182,0 x 33,5 x 11,3 190,0 x 54,0 x 10,1 size EL backlight 180,0 x 40,0 x 10,5 98,0 x 60,0 x 11,6 118,0 x 36,0 x 11,3 182,0 x 33,5 x 11,3 190,0 x 54,0 x 10,1 (
in „Display Seiko L2432 und Kontrastproblem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PWM_20schemes_20for_20BLDC.pdf
Torque Speed Overall Eff. Total Loss Ratio of Loss (V) (Arms) (W) (oz-in) (RPM) (%) (W) (pwm1 = 1) Sin SR 18.45 1.040 14.848 10.01 2005 77.40 4.33 0.860 Sin PhR 18.44 1.070 14.848 10.01 2005 75.24 4.88 0.969 pwm 4 18.43 1.150 14.811 10.00 2002 69.88 6.38 1.266 pwm 3 18.43 1.163 14.811 10.00 2002 69.10 6.62
in „Diskrete H-Brücke“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tsal6102.pdf
optical counters and card readers • IR source for smoke detectors PRODUCT SUMMARY COMPONENT Ie(mW/sr) (deg) p(nm) tr(ns) TSAL6102 220 ± 10 940 15 Note • Test conditions see table “Basic Characteristics” ORDERING INFORMATION ORDERING CODE PACKAGING REMARKS PACKAGE FORM TSAL6102 Bulk MOQ: 4000 pcs,
in „LED Ansteuerung für Lazertag Projekt“ · Mikrocontroller und Digitale Elektronik ·