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PDF
BD137__FAI-2013.pdf
respectively i c n Applications T •Medium Power Linear and Switching r TO-126 n 1 i 1. Emitt2.Collect3.Base t r Ordering Information Part Number Marking Package Packing Method BD13516S BD135-16 Bulk BD1356STU BD135-6 BD13510STU BD135-10 BD13516STU BD135-16 Rail BD13716STU BD137-16 BD13710STU BD137-10 BD13716S
in „High Freq Power Amplifier“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Scratch_MegaSample.c
DMA_InitTypeDef DMA_InitStruct; DMA_InitStruct.DMA_Channel = DMA_Channel; DMA_InitStruct.DMA_PeripheralBaseAddr = ADC_DMA_PeripheralBaseAddr; DMA_InitStruct.DMA_Memory0BaseAddr = (uint32_t)ADC_DMA_Buffer; DMA_InitStruct.DMA_DIR = DMA_DIR_PeripheralToMemory; DMA_InitStruct.DMA_BufferSize = 300; DMA_InitStruct.DMA_PeripheralInc
in „STM32F4 ADC/DMA Phänomene“ · Mikrocontroller und Digitale Elektronik ·
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PDF
QM300HA-2H.pdf
Collector-emitter voltage I=1A, VEB=2V 1000 V VCEX Collector-emitter voltage VEB=2V 1000 V VCBO Collector-base voltage Emitter open 1000 V VEBO Emitter-base voltage Collector open 7 V C Collector current DC 300 A –C Collector reverse current DC (forward diode current) 300 A PC Collector dissipation TC=25°C 1980 W B Base current DC 16 A –CSM Surge collector reverse current Peak value of one cycle of 60Hz (half wave) 3000 A (forward diode current) Tj Junction temperature –40~+150 °C Tstg Storage temperature –40~+125
in „Alternative Anwendungen für einen Bipolartransistor“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
TIM2, &TIM_TimeBaseInitTIM); // Timer7 config TIM_TimeBaseInitTIM.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBaseInitTIM.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseInitTIM.TIM_Period = 84; TIM_TimeBaseInitTIM.TIM_Prescaler = 1000; TIM_TimeBaseInit(TIM7, &TIM_TimeBaseInitTIM); // Timer6 config TIM_TimeBaseInitTIM.TIM_ClockDivision = TIM_CKD_DIV1; TIM_TimeBaseInitTIM.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseInitTIM.TIM_Period = 840
in „STM32 - Problem beim Compilieren mit CooCox ([cc] collect2.exe: error: ld returned 1 exit status)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
samsung_bn44-00264c.pdf
BP804 Jumper PFC OUT 2 1 ! ! ! 1KV 220pF(R) CP817 BP805 Jumper T3.15AH 250V A ! C N C 0 4 2 BP801 BAS3550TO . R 8 C 8 0 M 8 1 3 V LP801 BP802 BAS3550TO R 7 RP832 OVP u EER3120 RP802 F F 180uH DP802 SURF1060 1.5MRF 2012 0 4 ~ - 1 8 3324110023ND C ! ! 1 7 R 0RJ 3 4 RP804 P 4 M P QP803 1 7 F 2 RP835 MCR100
in „Samsung LE40B579 einschalten nicht möglich“ · Mikrocontroller und Digitale Elektronik ·
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PDF
samsung_bn44-00264c.pdf
BP804 Jumper PFC OUT 2 1 ! ! ! 1KV 220pF(R) CP817 BP805 Jumper T3.15AH 250V A ! C N C 0 4 2 BP801 BAS3550TO . R 8 C 8 0 M 8 1 3 V LP801 BP802 BAS3550TO R 7 RP832 OVP u EER3120 RP802 F F 180uH DP802 SURF1060 1.5MRF 2012 0 4 ~ - 1 8 3324110023ND C ! ! 1 7 R 0RJ 3 4 RP804 P 4 M P QP803 1 7 F 2 RP835 MCR100
in „Samsung Schaltnetzteil Defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
gu256x64d-7000_e01.pdf
, the display operation to the out of display screen of User-Window should be processed under Base-Window. When Base-Window is selected even if some User-Window is defined, all of display operation is processed under Base-Window. Therefore, the current display pattern of User-Window is overwritten
in „VFD Displays look“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Vorlage_100x75.pdf
VDDIO_2 0 + GND 8 n C 1 C C 1 N VBAT C VDDIO_1 G D D 1 2 3 4 5 6 1 2 3 4 5 6 +12V D2 T1 D4 T3 D7 T5 BAS21 FET-TO247 BAS21 FET-TO247 BAS21 FET-TO247 A R5 R39 R41 A IC2-HI 10 IC3-HI 10 IC4-HI 10 HO 7 HO 7 HO 7 C36 VB 5 VB 5 C34 VB 5 100nF VS C31 VS VS IR2010 IR2010 100nF IR2010 100nF PHASEA PHASEB PHASEC B B D1 D5 BAS21 T2 BAS21 T4 BAS21 T6 FET-TO247 FET-TO247 FET-TO247 +C25 R6 R40 R42 10µF IC2-LO 10 IC3-LO 10 IC4-LO 10 LO 1 LO 1 LO 1 VCC 3 C32 VCC 3 C35 VCC 3 C37 +C29 COM 2 COM 2 COM 2 100nF 100nF 0.1µF IR2010 IR2010
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Datei
sdio.patch
Foundation. + * + */ + +#ifndef _MVSDIO_INCLUDE +#define _MVSDIO_INCLUDE + +#define SDIO_REG(x) (KW_SDIO_BASE + (x)) + +#define SDIO_REG_WRITE32(offset,value) writel(value,SDIO_REG(offset)) +#define SDIO_REG_READ32(offset) readl(SDIO_REG(offset)) + +#define SDIO_REG_WRITE16(offset,value) writew(value,SDIO_REG(offset)) +#define SDIO_REG_READ16(offset) readw(SDIO_REG(offset)) + +#define MVSDMMC_DMA_SIZE 65536 +#define MVSDMMC_CMD_TIMEOUT 2 /* 100 usec*/ + +/* + * Clock rates + */ + +#define MVSD_CLOCKRATE_MAX 50000000 +#define MVSD_BASE_DIV_MAX
in „20Euro Embedded System mit ARM, 128MB ram und 256MB Flash“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sdio.patch
Foundation. + * + */ + +#ifndef _MVSDIO_INCLUDE +#define _MVSDIO_INCLUDE + +#define SDIO_REG(x) (KW_SDIO_BASE + (x)) + +#define SDIO_REG_WRITE32(offset,value) writel(value,SDIO_REG(offset)) +#define SDIO_REG_READ32(offset) readl(SDIO_REG(offset)) + +#define SDIO_REG_WRITE16(offset,value) writew(value,SDIO_REG(offset)) +#define SDIO_REG_READ16(offset) readw(SDIO_REG(offset)) + +#define MVSDMMC_DMA_SIZE 65536 +#define MVSDMMC_CMD_TIMEOUT 2 /* 100 usec*/ + +/* + * Clock rates + */ + +#define MVSD_CLOCKRATE_MAX 50000000 +#define MVSD_BASE_DIV_MAX
in „20Euro Embedded System mit ARM, 128MB ram und 256MB Flash“ · Mikrocontroller und Digitale Elektronik ·
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Datei
twi.c
ER_IRQn; #endif // !defined(STM32F0xx) && !defined(STM32L0xx) i2c_handles[0] = handle; } #endif // I2C1_BASE #if defined I2C2_BASE // Enable I2C2 clock if not done if (obj->i2c == I2C2) { __HAL_RCC_I2C2_CLK_ENABLE(); __HAL_RCC_I2C2_FORCE_RESET(); __HAL_RCC_I2C2_RELEASE_RESET(); obj->irq = I2C2_EV_IRQn; #if
in „Wer nutzt das Nucleo-64 und kann mir“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Code1.txt
//usart.c #include "AT91SAM7S256.h" #include "usart.h" AT91PS_PIO u_pPioA = AT91C_BASE_PIOA; AT91PS_PMC u_pPMC = AT91C_BASE_PMC; AT91PS_USART u_pUSART0 = AT91C_BASE_US0; AT91PS_USART u_pUSART1 = AT91C_BASE_US1; AT91PS_PDC u_pPDC0 = AT91C_BASE_PDC_US0; AT91PS_PDC u_pPDC1 = AT91C_BASE_PDC_US1; AT91PS_MC u_pMC = AT91C_BASE_MC; void InitUSART0(void) { u_pPioA->PIO_PDR = BIT0 | BIT1; //Disables the PIO from controlling the corresponding pin (enables peripheral control of the pin). u_pPioA->PIO_ASR = BIT0 | BIT1; //Assigns
in „Data aus USART vom SAM7-EX256 lesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Code1.c
//usart.c #include "AT91SAM7S256.h" #include "usart.h" AT91PS_PIO u_pPioA = AT91C_BASE_PIOA; AT91PS_PMC u_pPMC = AT91C_BASE_PMC; AT91PS_USART u_pUSART0 = AT91C_BASE_US0; AT91PS_USART u_pUSART1 = AT91C_BASE_US1; AT91PS_PDC u_pPDC0 = AT91C_BASE_PDC_US0; AT91PS_PDC u_pPDC1 = AT91C_BASE_PDC_US1; AT91PS_MC u_pMC = AT91C_BASE_MC; void InitUSART0(void) { u_pPioA->PIO_PDR = BIT0 | BIT1; //Disables the PIO from controlling the corresponding pin (enables peripheral control of the pin). u_pPioA->PIO_ASR = BIT0 | BIT1; //Assigns
in „Data aus USART vom SAM7-EX256 lesen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TFT_DHT11_mit_1_8_TFT_LED.ino
= 0; colorIndex < sizeof(ledBaseColors) / 4 - 1; colorIndex++) { for (byte i = 0; i < NUMPIXELS; i++) { ring.setPixelColor(i, ledBaseColors[colorIndex]); ring.setPixelColor(NUMPIXELS - i, ledBaseColors[colorIndex + 1]); ring.show()
in „Sketch für Projekt will nicht so richtig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TFT_DHT11_mit_1_8_TFT_LED.ino
= 0; colorIndex < sizeof(ledBaseColors) / 4 - 1; colorIndex++) { for (byte i = 0; i < NUMPIXELS; i++) { ring.setPixelColor(i, ledBaseColors[colorIndex]); ring.setPixelColor(NUMPIXELS - i, ledBaseColors[colorIndex + 1]); ring.show()
in „Sketch für Projekt will nicht so richtig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
test.cpp
= 0; colorIndex < sizeof(ledBaseColors) / 4 - 1; colorIndex++) { for (byte i = 0; i < NUMPIXELS; i++) { ring.setPixelColor(i, ledBaseColors[colorIndex]); ring.setPixelColor(NUMPIXELS - i, ledBaseColors[colorIndex + 1]); ring.show()
in „Sketch für Projekt will nicht so richtig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ds18b20.h
(void); void write_1820(u8 data); void init_1820(void); extern void DS18B20_Convert(void); extern u16 DS18B20_Read(void); extern void delay_nus(vu32 nCount); extern char Temperature[]; #define GPIOC_OFFSET (GPIOC_BASE - PERIPH_BASE) // GPIOC offset #define GPIOC_ODR_OFFSET (GPIOC_OFFSET + 0x0C) // GPIOC
in „STM32 DS1820“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN-162.pdf
Q22 until its voltage matches that on of Q45 the circuit may be used as a comparator in which the base of Q16. When the voltage on Q16 base goes low, loads to either VCC or ground may be switched. Q45 is ca- pable of sinking 50 mA. Input bias current is typically 50 nA, Q16 turns ‘‘ON,’’ which results
in „LM2907/17 Frequenz-Spannungswandler“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
while\n\r"); } } void USART1_SendString(char* data) { while (*data) { USART_SendData(USART1, (uint16_t) * data); while (USART_GetFlagStatus(USART1, USART_FLAG_TC) == RESET) ; data++; } delay_ms(50); } void SetupTimer(void) { TIM_TimeBaseInitTypeDef TIM_TimeBase_InitStructure; NVIC_InitTypeDef NVIC_InitStructure
in „STM32 : Float linken mit Coocox“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PEP_SMART_I-O_Base.pdf
Computers GmbH Les Bureaux du Manoir PEP Modular Computers AB ul. Krzywickiego 9 Apfeltrangerstr. 16 18 Chemin du Fond du Chêne Box 1430 Pokoj 1001/1002 D-87600 KAUFBEUREN F-78 620 L’ETANG LA VILLE S-18314 TÄBY 02078 WARSZAWA Tel.: ++33 (0) 1 39 16 10 30 Tel.: ++46 (0) 8 756 72 60 Tel.: ++48 (0) 22
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Datei
panel-simple.c
.hsync_end = 1024 + 156 + 8, .htotal = 1024 + 156 + 8 + 156, .vdisplay = 600, .vsync_start = 600 + 16, .vsync_end = 600 + 16 + 6, .vtotal = 600 + 16 + 6 + 16, .vrefresh = 60, }; static const struct panel_desc auo_b101aw03 = { .modes = &auo_b101aw03_mode, .num_modes = 1, .bpc = 6, .size = { .width = 223
in „Linux RPI VC4 Driver - DRM NullPointer Exception“ · Mikrocontroller und Digitale Elektronik ·
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Datei
NanoEveryRegister.h
const uint8_t portCtrl = 0x0A; // Slewrate Bit }; constexpr Offset addrOffset; struct Address // base addresses of registers { uint16_t vport; uint16_t port; uint8_t pinCtrl; uint8_t mask; }; // The index is always the Arduino pin number. constexpr Address baseAddr[] { // | VPORT | PORT | PINn | BIT | // | Base | Base | CTRL | MASK | // BIT | PIN {0x0008, 0x0440, 0x15, 0x20}, // 5 | 0 {0x0008, 0x0440, 0x14, 0x10}, // 4 | 1 {0x0000, 0x0400, 0x10, 0x01}, // 0 | 2 {0x0014, 0x04A0, 0x15, 0x20}, // 5 | 3 {0x0008
in „Fehlerhafte Adressierung von lokalen Arrays bei tinyAVR(R) 0-series“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SR0604100MSB.PDF
SR0604561KS ¡… 560.0 10% 24 1K 796K 2.5 4.000 0.18 SR0604681KS ¡… 680.0 10% 26 1K 796K 2.3 4.650 0.16 ¡… ¡Ó SR0604821KS 820.0 10% 25 1K 796K 2.0 5.200 0.14 1).¡…¡G Packaging information¡A Bulk B ¡GTaping Reel 2). IDC base on temp. rise 4max. & ¡µL/L0A=10% max. E ¡X 09 ¡· SR0805 Series Inductance Q Test
in „Pollin SMD-Induktivitäten identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
lcd.c
switch (by) { case 's': ptr = va_arg(ap,char *); while(*ptr) {lcd_write(*ptr++,1); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); lcd_write (format_flag++,1); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „Serielles Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Firmware_issues.pdf
channel mode and 1GSs, but test signal need to be higher to get same error) and applying for example 16MHz square wave the waveform is switching between proper square: and crippled square every second: 15. Display / Time base scaling strange behavior. When you apply e.g. 1kHz signal, set time base to 80us/DIV and move the waveform to 500us/DIV : When you now change time base to 40uS/DIV the falling edge (which should be still in the middle of the screen) has been moved to 454uS position (but it should stay on 500uS). The same happens of course with 20uS/DIV. 16. Develop
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
XPort_DS.pdf
CTS of attached The XPort software runs on a DSTni-EX controller device. which has 256 KB of SRAM, 16 KB of boot ROM, CP0 6 and a MAC with integrated 10/100BASE-TX PHY. • Programmable input/output: CP1 can The XPort communicates to the edge device be driven or read through software through a 3.3V serial
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PDF
bcm846s.pdf
Symbol Value Unit Collector-emitter voltage VCEO 65 V Collector-emitter voltage VCES 80 Collector-base voltage VCBO 80 6 Emitter-base voltage VEBO 100 mA Collector current C Peak collector current I 200 CM Total power dissipation- P 250 mW tot TS= 115 °C Junction temperature Tj 150 °C Storage temperature
in „BC547 matched“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
memory.c
APIs */ uint8_t FLASH_ReadByte(uint32_t flashAddr) { TBLPTRU = (uint8_t)((flashAddr & 0x00FF0000) >> 16); TBLPTRH = (uint8_t)((flashAddr & 0x0000FF00)>> 8); TBLPTRL = (uint8_t)(flashAddr & 0x000000FF); asm("TBLRD"); return (TABLAT); } uint16_t FLASH_ReadWord(uint32_t flashAddr) { return ((((uint16_t)FLASH_ReadByte
in „MPLAB X IDE Frage C code Programmierung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ws2812_stm32f4.c
= (uint16_t)( (SystemCoreClock / 2) / WS2812_TIM_FREQ) - 1; //tim3 runs at half the speed of the system ->divide by 2 TIM_TimeBaseInit(WS2812_TIM, &timbaseinit); TIM_OCStructInit(&timocinit); timocinit.TIM_OCMode
in „[STM32] Binäruhr bzw 12x4 RGB LED Display mit WS2812“ · Projekte & Code ·
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Datei
haa_bus.h
0 - SYNC0 0 0 1 0 1 1 0 1 - SYNC1 1 1 0 1 0 1 0 0 0 ADR Z8 Z4 Z2 Z1 Q8 Q4 Q2 Q1 1 FKT KOM REE SPG BAS - - - REP 2 STA ON - - - - - - KOK 3 UBAT 128 64 32 16 8 4 2 1 4 UOUT 128 64 32 16 8 4 2 1 5 RFSTATH 128 64 32 16 8 4 2 1 6 RFSTATL 128 64 32 16 8 4 2 1 7 LF 128 64 32 16 8 4 2 1 8 SW H8 H4 H2 H1 N8
in „Attiny13 spring t aus Hauptschleife“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bc847_p.pdf
Pinning information Table 3: Pinning Pin Description Simplified outline Symbol SOT23, SOT323, SOT416 1 base 2 emitter 3 3 3 collector 1 2 1 2 006aaa144 sym021 SOT883 1 base 2 emitter 1 3 3 3 collector 2 1 Transparent top view 2 sym021 SOT54 1 emitter 3 2 base 3 collector 1 2 2 3 001aab347 1 sym026 SOT54A
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PDF
qm300ha-2h.pdf
Collector-emitter voltage I=1A, VEB=2V 1000 V VCEX Collector-emitter voltage VEB=2V 1000 V VCBO Collector-base voltage Emitter open 1000 V VEBO Emitter-base voltage Collector open 7 V C Collector current DC 300 A –C Collector reverse current DC (forward diode current) 300 A PC Collector dissipation TC=25°C 1980 W B Base current DC 16 A –CSM Surge collector reverse current Peak value of one cycle of 60Hz (half wave) 3000 A (forward diode current) Tj Junction temperature –40~+150 °C Tstg Storage temperature –40~+125
in „Darlington mit zwei Basis Anschlüssen“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
read_it_first.txt
Programmiergeschicklichkeit ;-) Bei 1500 U/min, einer Aufloesung von 1° und einer Taktfrequenz von 16 MHz gilt: => 1500 U/min = 25 U/s ---> 40 ms/Umdrehung => 40 ms / 360 = 111 us ---> Zeit zwischen zwei Rotorpositionen => 16 MHz = 0,0625 us ---> 111 us / 0,0625 us = 1776 Maschinenzyklen D.h. bei Verwendung
in „Rotor-Display oder Propeller-Clock“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CNY17-2.pdf
DETECTOR Breakdown Voltage Collector to Emitter IC= 1.0 mA,FI = 0 BV CEO All 70 100 V Collector to Base IC= 10 µA,FI = 0 BV CBO All 70 120 V Emitter to Collector IE= 100 µA,FI = 0 BV ECO All 7 10 V Leakage Current Collector to Emitter VCE = 10 V,FI = 0 ICEO All 1 50 nA Collector to Base VCB = 10 V,FI
in „Optokoppler CNY17“ · Mikrocontroller und Digitale Elektronik ·
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Datei
blink.c
= GPIO_Pin_15; GPIO_Init(GPIOD, &GPIO_InitStructure); NVIC_InitTypeDef NVIC_InitStructure; // TimeBase RCC_APB2PeriphClockCmd(RCC_APB2Periph_TIM10, ENABLE); TIM_TimeBaseInitTypeDef timBase; TIM_TimeBaseStructInit (&timBase); timBase.TIM_Prescaler = ((SystemCoreClock) / 10000)-1; timBase.TIM_ClockDivision = TIM_CKD_DIV1; timBase.TIM_CounterMode = TIM_CounterMode_Up; timBase.TIM_Period = 5000; TIM_TimeBaseInit (TIM10, &timBase); NVIC_InitStructure.NVIC_IRQChannel = TIM1_UP_TIM10_IRQn; NVIC_InitStructure.NVIC_IRQChannelPreemptionPriority
in „STM32F4: Timerinterrupts nichtdeterministisch“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Daten.txt
PStateReg 0x00000000-0x00000000 Package Type 0x1 Model 00 String 1 0x0 String 2 0x0 Page 0x0 CmpCap 5 Base TDP 14 Watts Boosted P-States 2 Max non-turbo ratio 16.50x Max turbo ratio 19.50x Attached device PCI device at bus 0, device 24, function 0 Attached device PCI device at bus 0, device 24, function
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PDF
DM6852HR_BDM610010026C.pdf
after reset 14 BA+3 Clear interrupt (Write) 0x00H after reset 14 BA+4 PPI Port A (Read/Write) 14 Base+5 PPI Port B (Read/Write) 14 Base+6 PPI Port C (Read/Write low byte Read/Write high byte) 15 BA+7 PPI Control byte (Write only) 15 BA+8 IRQ mask bits (Read/Write) 0x00H after reset 17 BA+9 IRQ mask
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PDF
bs1Appnotes.pdf
site may be reached directly or through our web site at http://www.parallaxinc.com. ' PROGRAM: Keypad.bas ' The Stamp accepts input from a 16-key matrix keypad with the help of ' a 74C922 keypad decoder chip. Symbol E = 5 ' Enable pin, 1 = enabled Symbol RS = 4 ' Register select pin, 0 = instruction Page
in „Smartcard-Kode-Schloss mit PIC16F84“ · Mikrocontroller und Digitale Elektronik ·
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Datei
txt_util.vhd
hex conversion and other bases) function chr(int: integer) return character; -- converts integer into string using specified base function str(int: integer; base: integer) return string; -- converts integer to string, using base
in „Rechnen im Hex-Dezimalsystem mit Dezimalanzeige“ · FPGA, VHDL & Co. ·
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PDF
6n136.pdf
CO 125 pF VR=0 V, f=1 MHz Detector Temperature Coeffi- cient, Forward Voltage VF/ T A -1.7 mV/°C IF=16 mA Supply Voltage .....................................–0.5 to 15 V Output Voltage .................................... –0.5 to 15 Vr Emitter-Base Voltage......................................... 5 Vurrent I =16 mA, V open, F O Output Current.................................................8 mA CCL 150 A VCC =15 V Maximum Output Current..............................16 mASupply Current I =0 mA, V open, F O Base
in „High-speed Optokoppler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
but34rev.pdf
VEB= 2.0 VC I = 0) ÎÎÎSECOND BREAKDOWNÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ÎÎÎÎSecond Breakdown Collector Current with base forward biased S/b See Figure 16 ÎÎÎÎClamped Inductive SOA with Base Reverse Biased RBSOA See Figure 17 ÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ ON CHARACTERISTICS (1) ÎÎÎÎDC Current GainÎÎÎÎÎÎÎÎÎÎÎÎÎÎÎ hFE
in „Leistungs-Transistor Alternative“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
plugin.xml
version="3.3"?> <plugin> <extension point="org.eclipse.core.runtime.contentTypes"> <content-type base-type="fujitsuF2MC16.contenttype.hex" id="org.eclipse.cdt.fujitsuF2MC16.contenttype.hex" name="FLASH Hex-File" priority="high" /> <content-type base-type="fujitsuF2MC16.contenttype.mhx" id="org.eclipse.cdt.fujitsuF2MC16
in „Eclipse Plugin für Fujitsu 16bit µcs“ · Projekte & Code ·
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Datei
Full_Code.c
defined end // Initialize all the handles needed for this application myClk = CLK_init((void *)CLK_BASE_ADDR, sizeof(CLK_Obj)); myCpu = CPU_init((void *)NULL, sizeof(CPU_Obj)); myFlash = FLASH_init((void *)FLASH_BASE_ADDR, sizeof(FLASH_Obj)); myGpio = GPIO_init((void *)GPIO_BASE_ADDR, sizeof(GPIO_Obj)); myPie = PIE_init((void *)PIE_BASE_ADDR, sizeof(PIE_Obj)); myPll = PLL_init((void *)PLL_BASE_ADDR, sizeof(PLL_Obj)); myPwm1 = PWM_init((void *)PWM_ePWM1_BASE_ADDR, sizeof(PWM_Obj)); myPwm2 = PWM_init((void *)PWM_ePWM2_BASE_ADDR, sizeof
in „Fließkommazahlen in Ganzzahlen umrechnen für Register“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sevs_rech_CPUZ.txt
00 00 00 00 00 00 00 00 00 00 00 00 00 00 Description USB Controller Location bus 0 (0x00), device 16 (0x10), function 0 (0x00) Common header Vendor ID 0x1022 Model ID 0x7812 Revision ID 0x03 PI 0x30 SubClass 0x03 BaseClass 0x0C Cache Line 0x10 Latency 0x00 Header 0x80 PCI header Address 0 (memory) 0xFEB4A000
in „Rechner bei Video-Aufnahmen zu lahm“ · PC Hard- und Software ·
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PDF
IP113A_Datasheet.pdf
IP113A LF Preliminary Data Sheet 10 /100Base-Tx/Fx Media Converter Features General Description A 10/100BASE-TX/ 100BASE-FX converter Built in a 10/100BASE-TX transceiver IP113A LF can be a 10/100BASE-TX to Built in a PHY for 100BASE-FX 100BASE-FX
in „Umsetzer Ethernet Glasfaser“ · Mikrocontroller und Digitale Elektronik ·
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PDF
1_AMD_BKDG_Family__15h_Mod_00h-0Fh_BKDG.pdf
Size Contents Access FE40h Word FS Selector Read-only FE42h 2 Bytes Reserved FE44h Doubleword FS Base {16'b[47], 47:32} FE48h Quadword Descriptor in memory format FE50h Word GS Selector Read-only FE52h 2 Bytes Reserved FE54h Doubleword GS Base {16'b[47], 47:32} FE58h Quadword Descriptor in memory format
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Datei
usart.c
) { case 's': ptr = va_arg(ap,char *); while(*ptr) { usart_write_char(*ptr++); } break; case 'b': Base = 2; goto ConversionLoop; case 'c': //Int to char format_flag = va_arg(ap,int); usart_write_char (format_flag++); break; case 'i': Base = 10; goto ConversionLoop; case 'o': Base = 8; goto ConversionLoop; case 'x': Base = 16; //**************************** ConversionLoop: //**************************** itoa(va_arg(ap,int),str_buffer,Base); int b=0; while (str_buffer[b++] != 0){}; b--; if (b<move) { move -=b; for (tmp
in „SD-Karte mit Mega644 & Software von Ulrich Radig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
io-controller-hub-9-datasheet.pdf
...........................................................548 14.1.15BAR — Legacy Bus Master Base Address Register (SATA–D31:F2)....................................................................................549 14.1.16ABAR/SIDPBA1 — AHCI Base Address Register/Serial ATA Index Data Pair Base
in „FLASH Memory Chip im Lenovo X200 von 8 MB auf 16 MB vergroessern“ · PC Hard- und Software ·
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PDF
BC337.pdf
Collector-Emitter Voltage BC337 VCES 50 V BC338 30 Collector-Emitter Voltage BC337 VCEO 45 V BC338 25 Emitter-Base Voltage VEBO 5 V Collector Current IC 800 mA Peak Collector Current ICM 1 A Base Current IB 100 mA (1) Power Dissipation atamb = 25°C P tot 625 mW (1) Thermal Resistance Junction to Ambient Air RθJA
in „Relais oder Transistoren?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
A100_BC337_BC338_VIS.pdf
Collector-Emitter Voltage BC337 VCES 50 V BC338 30 Collector-Emitter Voltage BC337 VCEO 45 V BC338 25 Emitter-Base Voltage VEBO 5 V Collector Current IC 800 mA Peak Collector Current ICM 1 A Base Current IB 100 mA (1) Power Dissipation atamb = 25°C P tot 625 mW (1) Thermal Resistance Junction to Ambient Air RθJA
in „LED-Flasher - Findet jemand einen Fehler“ · Mikrocontroller und Digitale Elektronik ·