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Datei
lcd.c
Feldausrichtung links oder rechts char fNegative:1; // Auszugebende Zahl ist negativ. } flags; #define SCRATCH 16 unsigned char scratch[SCRATCH]; unsigned char format_flag; unsigned int u_val=0, base=0; unsigned char *ptr; char hexA = 'a'; char *p; int n; int nLen; va_list ap; va_start (ap, Buffer); //Berechnet
in „Probleme mit der lcd.c von Ullrich Radig“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
(RAM_REG+REG_HCYCLE, 0x03, 0xA0); wr16(RAM_REG+REG_HOFFSET, 0x00, 0x58); wr16(RAM_REG+REG_HSYNC0, 0x00, 0x00); wr16(RAM_REG+REG_HSYNC1, 0x00, 0x30); wr16(RAM_REG+REG_VCYCLE, 0x02, 0x0D); wr16(RAM_REG+REG_VOFFSET, 0x00, 0x20); wr16(RAM_REG+REG_VSYNC0, 0x00, 0x00); wr16(RAM_REG+REG_VSYNC1, 0x00, 0x03); wr8(RAM_REG+REG_SWIZZLE, 0x00); wr8(RAM_REG+REG_PCLK_POL, 0x01); wr8(RAM_REG+REG_CSPREAD, 0x00); wr16(RAM_REG+REG_HSIZE, 0x03, 0x20); wr16(RAM_REG+REG_VSIZE, 0x01, 0xE0
in „STM32F407 DISCOVERY mit EVE3 50GTPC von MatrixOrbital“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_Shunts.pdf
www.murata-ps.com DMS Accessories 50mV and 100mV Base-mounted DC Shunts Murata Power Solutions’ 50mV and 100mV base-mounted current shunts are designed for measuring dc currents from 5A to 1200A.These preci- sion shunts (+/–0.25% accuracy) connect directly
in „Operationsverstärker nichtinvertierende Grundschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Master.cpp
DAQ_PIPE_TX_BUFFERSIZE; i++) tx_frame[i] = 0; // Set CS DAQ_SET_CS(); // Set DMA Rx stream DMA2_Stream2->NDTR = (uint16_t)3; DMA2_Stream2->M0AR = (uint32_t)&rx_frame; // Enable DMA Rx DMA2_Stream2->CR |= (uint32_t)DMA_SxCR_EN; // Enable SPI Rx SPI1->CR2 |= (uint16_t)SPI_I2S_DMAReq_Rx; // Copy command tx_frame[0] = DAQ_PIPE_CMD_CONNECT
in „2 STM32F4 SPI Master/Slave FullDuplex“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Arrr12.asm
msg02: ldi zl,low (msg_base + msg_len *2);init z pointer lo_byte ldi zh,high(msg_base + msg_len *2);init z pointer hi_byte ret msg03: ldi zl,low (msg_base + msg_len *3);init z pointer lo_byte ldi zh,high(msg_base + msg_len *3);init z pointer hi_byte ret msg04: ldi zl,low (msg_base + msg_len *4);init z pointer lo_byte ldi zh,high(msg_base + msg_len *4);init z pointer hi_byte ret msg05: ldi zl,low (msg_base + msg_len *5);init z pointer lo_byte ldi zh,high(msg_base + msg_len *5)
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PDF
Hameg_HM8021-3_Universal_Counter_User_manual.pdf
première transition active du position 10s et se monte à 0,1Hz. signai suivant le retour au niveau bas de l’entrée (16). Le temps de porte externe se substitue Mesure de périodes entièrementautempsdeportechoisiquiestalors En mesure de périodes la valeur réciproque de inopérant.Lesignaldetempsdeporteexternedoit
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PDF
Hameg_HM8021-3_Universal_Counter_User_manual.pdf
première transition active du position 10s et se monte à 0,1Hz. signai suivant le retour au niveau bas de l’entrée (16). Le temps de porte externe se substitue Mesure de périodes entièrementautempsdeportechoisiquiestalors En mesure de périodes la valeur réciproque de inopérant.Lesignaldetempsdeporteexternedoit
in „[V] HAMEG 8001 Grundgerät + 8030-4 Generator + 8021-3 Counter“ · Markt ·
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Datei
sendmail.patch
]); @@ -119,15 +119,15 @@ if (message_code == 334) { MAIL_DEBUG("2: Send Username: "); - decode_base64((unsigned char*)SMTP_USERNAME,mail_auth_str); + decode_base64((unsigned char*)SMTP_USERNAME,(unsigned char*)mail_auth_str); MAIL_DEBUG("%s",mail_auth_str); MAIL_DEBUG("\r\n"); - memcpy(ð_buffer
in „AVR für wenig Geld im LAN“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BD135_137_139_3.pdf
Absolute Maximum Rating System (IEC 134). SYMBOL PARAMETER CONDITIONS MIN. MAX. UNIT VCBO collector-base voltage open emitter BD135 − 45 V BD137 − 60 V BD139 − 100 V V collector-emitter voltage open base CEO BD135 − 45 V BD137 − 60 V BD139 − 80 V VEBO emitter-base voltage open collector − 5 V I collector
in „Alternative BC327 und 337“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Manual_netX_Program_Reference_Guide_Rev02_GB.pdf
- R 0x00 15:2 DPM_BASE_ADDR Base address of handshake register pair in Dual-Port meR/Wy. 0x00 1 reserved - R 0 Selectthe handshake register pair width 0 8/16_BIT 0 : 8 bit cell R/W 0 1 : 16 bit cell When more than one register
in „netX500 mit ARM-Kern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LTC2387_16.vhd
; DA: in std_logic; DB: in std_logic); end LTC2387_16; architecture Behavioral of LTC2387_16 is signal CLK125: std_logic:='0'; signal CLK125_buff: std_logic:='0'; signal CLK200: std_logic:='0'; signal CLK200_buff: std_logic:='0'; signal CLK250: std_logic
in „Spartan 3 mit two lane LVDS á 200Mbit/s“ · FPGA, VHDL & Co. ·
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Datei
incomingData.c
MAC_McpsDcfmInd_s *psMcpsInd) { MAC_RxFrameData_s *psFrame; MAC_Addr_s *psAddr; tsNodeData *psNodeData; uint16 u16NodeAddr; uint8 u8Node; uint8 u8Count; psFrame = &psMcpsInd->uParam.sIndData.sFrame; /* Check that MCPS frame is a valid sensor one */ if ((psMcpsInd->u8Type != MAC_MCPS_IND_DATA) || (psFrame->u8SduLength
in „brauche Hilfe bei Funktion zur seriellen Ausgabe auf PC“ · Softwareentwicklung ·
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Datei
DG24128.asm
--------------------- .equ F_CPU = 8000000 .equ CYCLES_PER_US = ((F_CPU+500000)/1000000) .equ TXT_BASE = $0000 .equ GFX_BASE = $0200 .equ SPALTEN = 240/8 .equ GFX_ZEILEN = 128 .equ TXT_ZEILEN = 128/8 ; 0bxxxxxyyyyyyyyzzz ; x - CHR_OFFSET ; y - CHR_CODE ; z = CHR_LINE .equ CHR_OFFSET = 3 .equ CHR_CODE
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Datei
stm32f103xb.h
register 2, used for ADC multimode (bits common to several ADC instances). Address offset: ADC1 base address + 0x08 */ uint32_t RESERVED[16]; __IO uint32_t DR; /*!< ADC data register, used for ADC multimode (bits common to several ADC instances). Address offset: ADC1 base address + 0x4C */ } ADC_Common_TypeDef
in „System Workbench für STM32 Anfängerfragen“ · PC Hard- und Software ·
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Datei
cpu_z_log.txt
6E F0 0A 20 20 08 00 05 00 A8 1B 28 28 00 78 00 14 3C 00 00 30 00 00 00 00 00 00 00 00 00 00 00 00 16 36 16 36 40 16 36 16 36 00 00 16 36 16 36 16 36 16 36 00 00 50 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 60 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 00 70 00 00 00 00 00 00 9C B5 00 00 00 00
in „Frage zu neues Mainboard anschaffen“ · PC Hard- und Software ·
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PDF
2N3055-TOSH.pdf
Base Current IB 7 A 1.BASE 2.EMITTER * Collector Power Dissipation PC 115 W COLLECTOR (CASE) (Tc=25°C) Derate Linearly 0.66 w °c / JEDEC T0-2 4MA/TO— * Junction Temperature T 200 °c i EIAJ TC—3 ,TB— * Storage
in „2N3055 , was sind aktuelle Alternativen ?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
ow.c
/////////////////////////////////////////////////////////////////////// static unsigned long time_base; static unsigned short us500; static unsigned short us420; static unsigned short us120; static unsigned short us70; static unsigned short us12; static unsigned short us2; volatile unsigned char *PORT_OW
in „Falsche TEMP mit DS1820“ · Mikrocontroller und Digitale Elektronik ·
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Datei
EEPROM_Programmer.ino
1) + digitalRead(pin); } digitalWrite(OUTPUT_ENABLE, HIGH); return data; } void dump() { for (int base = 0; base <= 255; base += 16) { byte data[16]; for (int offset = 0; offset <= 15; offset += 1) { data[offset] = readData(base + offset); } char buf[80]; sprintf(buf, "%03x: %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x %02x", base, data[0], data[1], data[2], data[3], data[4], data[5], data[6], data[7], data[8], data[9], data[10], data[11], data[12], data[13], data[14], data[15]); Serial.println(buf); } } void setAddress(int address
in „Arduino EEPROM Programmer, kann zwar lesen, aber nicht schreiben“ · Mikrocontroller und Digitale Elektronik ·
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Datei
061219_SPI.txt
---------------------------- void change_speed ( void ) {//* Begin if ( (AT91F_PIO_GetInput(AT91D_BASE_PIO_SW) & AT91B_SW1) == 0 ) { if ( LedSpeed > SPEED ) LedSpeed -=SPEED ; } if ( (AT91F_PIO_GetInput(AT91D_BASE_PIO_SW) & AT91B_SW3) == 0 ) { if ( LedSpeed < AT91B_MAIN_OSC ) LedSpeed +=SPEED ; } }//
in „AT91SAM7X schwächelt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ATTiny24_QTouch-V-2.txt
_________________________________________ 'Definitionen Programm allgemein Dim Cycles As Word Dim BaseCycles As Word Dim EqualVal As Word Dim CyclesCnt As Word Dim BaseCalibCnt As Byte Dim IsCalibd As Bit Dim DimmDown As Bit Dim OutC1 As Integer ' aktueller DIMM-Wert Dim LastState As Byte ' Unterscheidung
in „LED Dimmer mit Touch Sensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DTC114EP-D.PDF
STYLE 5: STYLE 6: PIN 1. EMITTER 2 CANCELLED CANCELLED PIN 1. CATHODE PIN 1. ANODE PIN 1. ANODE 2 2. BASE 2 2. CATHODE 2. ANODE 2. N/C 3. COLLECTOR 1 3. COLLECTOR 3. COLLECTOR 3. CATHODE 1 4. EMITTER 1 4. EMITTER 4. EMITTER 4. ANODE 1 5. BASE 1 5. BASE 5. BASE 5. N/C 6. COLLECTOR 2 6. ANODE 6. CATHODE 6
in „Kollektorschaltung statt KFZ Relais“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
BASIC131-PS3.a51
table ; ;************************************************************** ; FP_BASE: AJMP FLOATING_ADD FP_BASE1: AJMP FLOATING_SUB FP_BASE2: AJMP FLOATING_COMP FP_BASE3: AJMP FLOATING_MUL FP_BASE4: AJMP FLOATING_DIV FP_BASE5: AJMP HEXSCAN FP_BASE6: AJMP FLOATING_POINT_INPUT FP_BASE7: AJMP FLOATING_POINT_OUTPUT FP_BASE8: AJMP CONVERT_BINARY_TO_ASCII_STRING FP_BASE9: AJMP CONVERT_ASCII_STRING_TO_BINARY FP_BASE10: AJMP MULNUM10 FP_BASE11: AJMP HEXOUT FP_BASE12: AJMP PUSHR2R0 ; ; FLOATING_SUB: ; MOV P2,#ARG_STACK_PAGE
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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Datei
max7219.c
DIGIT_2 0x0300 #define MAX7219_DIGIT_1 0x0200 #define MAX7219_DIGIT_0 0x0100 #define MAX7219_DIGIT_BASE 0x0100 /* -------------- Privat Global Variablen ---------------- */ /* -------------- Privat Funktionen Prototypen ----------- */ static void MAX7219_SendWord(uint16_t data); /* -------------- Funktionen
in „Codearchiv: STM32F4xx MAX7219 7-Segment Ansteuerung“ · Projekte & Code ·
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Datei
max7219.c
DIGIT_2 0x0300 #define MAX7219_DIGIT_1 0x0200 #define MAX7219_DIGIT_0 0x0100 #define MAX7219_DIGIT_BASE 0x0100 /* -------------- Privat Global Variablen ---------------- */ /* -------------- Privat Funktionen Prototypen ----------- */ static void MAX7219_SendWord(uint16_t data); /* -------------- Funktionen
in „Organisation der Header und Includes“ · Mikrocontroller und Digitale Elektronik ·
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Datei
max7219.c
DIGIT_2 0x0300 #define MAX7219_DIGIT_1 0x0200 #define MAX7219_DIGIT_0 0x0100 #define MAX7219_DIGIT_BASE 0x0100 /* -------------- Privat Global Variablen ---------------- */ /* -------------- Privat Funktionen Prototypen ----------- */ static void MAX7219_SendWord(uint16_t data); /* -------------- Funktionen
in „NRF24L01: Handauflegen hilft?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Miner.cpp
backend/common/Hashrate.h" #include "backend/cpu/Cpu.h" #include "backend/cpu/CpuBackend.h" #include "base/io/log/Log.h" #include "base/io/log/Tags.h" #include "base/kernel/Platform.h" #include "base/net/stratum/Job.h" #include "base/tools/Object.h" #include "base/tools/Timer.h" #include "core/config/Config.h
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PDF
BJTBasics_Georgia_Inst..pdf
Equations Figure 1 shows the circuit symbols for the npn and pnp BJTs. In the active mode, the collector-base junction is reverse biased and the base-emitter junction is forward biased. For the npn device, the active-mode collector and base currents are given by µ ¶ i = I exp vBE i = iC (1) C S VT B β where
in „Anfänger frage: Wiederstand in Transitor schaltung warum?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
files.txt
---- 1 root root 64 Mar 23 12:04 16 -> /tdc_overtime125M* lrwx------ 1 root root 64 Mar 23 12:04 17 -> /chk_base_volt* lrwx------ 1 root root 64 Mar 23 12:04 18 -> /help.db lrwx------ 1 root root 64 Mar 23 12:04 2 -> /dev/console lrwx-
in „TEKWAY DST1xx2B Oszilloskop“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IQmath_Quickstart.pdf
<base>\examples_ccsv4\Cpp\source Shared source code for the C++ example <base>\examples_ccsv4\Cpp\<device> Each device family has its own project folder <base>\examples\cmd Linker command files used by the
in „PID Regler in Q15 Format“ · Mikrocontroller und Digitale Elektronik ·
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Datei
ism.asm
: .db 129,64,32,21,15,10 data_rate_table: .db 20,10,5,4,3,2 base_frequency_table: .dw $a578,$a5a0,$a5c8,$a5f0,$a618,$a640,$a668,$a690,$a6b8,$a6e0 serial_settings_table: .db 6,$e,$26,$2e,$36,$3e,4,$24,$34,0 start: out SPL,R16 clr ZH ldi R16,-1 out PORTB,R16 out PORTD
in „Beispielprogramm für RFM12 433MHz Funk-Module“ · Projekte & Code ·
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Datei
UartPrintF.c
Ausgabefeldes an. Die Ausgabe erfolgt falls notwendig auch mit mehr Zeichen. */ { #define SCRATCH 16 BYTE scratch[SCRATCH]; BYTE format_flag; WORD u_val=0, base; BYTE *ptr; va_list ap; BYTE hexA = 'a'; nSent = 0; va_start (ap, format); for (;;) { /* In der folgenden Schleife werden alle Zeichen direkt
in „sprinf gesucht....“ · Mikrocontroller und Digitale Elektronik ·
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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 „Empfangen über UART mit ATmega32“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
GPIO_InitStructure.GPIO_Mode = GPIO_Mode_OUT; GPIO_Init(GPIOD, &GPIO_InitStructure); /*TIM_DeInit(TIM6); TIM_TimeBaseInitTypeDef TIM_TimeBaseInitStruct; TIM_TimeBaseStructInit(&TIM_TimeBaseInitStruct); TIM_TimeBaseInitStruct.TIM_Prescaler = (uint16_t) 100000; TIM_TimeBaseInitStruct.TIM_CounterMode = TIM_CounterMode_Up;*/ while (1) { USART_SendData(USART2, (uint16_t) 0x49); GPIO_ToggleBits(GPIOD, GPIO_Pin_13); //GPIO_ToggleBits(GPIOD, GPIO_Pin_5); delayLoop();delayLoop();delayLoop();delayLoop(); } return 0; }
in „STM32F2xx USART weigert sich“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Neues_Textdokument.txt
Alternative-Funktion mit dem IO-Pin verbinden GPIO_PinAFConfig(GPIOC, GPIO_PinSource9, GPIO_AF_TIM3); TIM_TimeBaseStructure.TIM_Period = 65535; TIM_TimeBaseStructure.TIM_Prescaler = 0; TIM_TimeBaseStructure.TIM_ClockDivision = 0; TIM_TimeBaseStructure.TIM_CounterMode = TIM_CounterMode_Up; TIM_TimeBaseStructure.TIM_RepetitionCounter = 0; TIM_TimeBaseInit(TIM3, &TIM_TimeBaseStructure); // Vorteiler einstellen (83 => 1MHz) TIM_PrescalerConfig(TIM3, 1, TIM_PSCReloadMode_Immediate); // Channel 4 TIM_ICInitStructure.TIM_Channel = TIM_Channel_4; TIM_ICInitStructure.TIM_ICPolarity
in „STM32 Frequenz Messung (>10MHz)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
061221_SPI.txt
-> /SYNC low { SW_abfrage = 1; lock=0; AT91F_PIO_ClearOutput( AT91C_BASE_PIOA, AT91C_PIO_PA11 ) ; // SYNC low wait(); AT91F_PIO_SetOutput( AT91C_BASE_PIOA, AT91C_PIO_PA11 ); // SYNC high // init_SPI(); } DRDY = (*(volatile unsigned int*)0xFFFFF43C); // laut Beschreibung:
in „AT91SAM7X schwächelt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
wiznet_driver.h
tcp_mac_addr[6]; // Socket destination IP address uint8_t tcp_ip_addr [4]; // IP address for WIZnet - base uint8_t tcp_ip_dest [4]; // destination IP for WIZnet - base uint8_t tcp_sub_mask[4]; // subnet mask for WIZnet uint8_t tcp_gtw_addr[4]; // gateway for WIZnet uint16_t tcp_port; } WIZ_data_t; //####
in „Problem bei Übergabe von struct & Pointer“ · Mikrocontroller und Digitale Elektronik ·
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PDF
bc337.pdf
complementary PNP transistors Stromverstärkungsgruppen Empfohlene komplementäre PNP-Transistoren BC337-16 BC338-16 BC337-25 BC338-25 BC327 ... BC328 BC337-40 BC338-40 2 2 Maximum ratings ) Grenzwerte ) BC337 BC338 Collector-Emitter-volt. – Kollektor-Emitter-Spannung E-B short VCES 50 V 30 V Collector-Emitter-volt
in „chinesische Schaltung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
datei-dmesg.txt
. Priority:-1 extents:1 across:1569788k FS [ 15.760790] systemd-udevd[270]: starting version 204 [ 16.063527] lp: driver loaded but no devices found [ 16.119378] ppdev: user-space parallel port driver [ 16.160282] parport_pc 00:0a: reported by Plug and Play ACPI [ 16.160332] parport0: PC-style at 0x3bc, irq 7 [PCSPP,TRISTATE] [ 16.249253] EXT4-fs (sda1): re-mounted. Opts: errors=remount-ro [ 16.260359] lp0: using parport0 (interrupt-driven). [ 16.304685] ACPI: Video Device [VID] (multi-head: yes rom: no post: no) [ 16.315350]
in „Limux:: Netzwerk und WLAN futsch.“ · PC Hard- und Software ·
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Datei
uart_echo.c
{ unsigned long ulStatus; // // Get the interrrupt status. // ulStatus = ROM_UARTIntStatus(UART0_BASE, true); // // Clear the asserted interrupts. // ROM_UARTIntClear(UART0_BASE, ulStatus); // // Loop while there are characters in the receive FIFO. // while(ROM_UARTCharsAvail(UART0_BASE)) { // // Read
in „Probleme mit Array und launchpad lm4F120XL“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SDCARD.c
write sample data ---------------------------------------------- hugemem_ptr_t p = BOARD_EBI_SRAM_BASE; // calc loading-bar --------------------------------------- uint16_t bar_count = (uint32_t)(file_lenght / 128); uint16_t bar_count_temp = bar_count; uint8_t bar_value = 0; for (uint32_t i = 0; i <
in „MMC SD library FAT16 FAT32 read write“ · Projekte & Code ·
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Datei
version_1p3_assembler.asm
table ; ;************************************************************** ; FP_BASE: AJMP FLOATING_ADD FP_BASE1: AJMP FLOATING_SUB FP_BASE2: AJMP FLOATING_COMP FP_BASE3: AJMP FLOATING_MUL FP_BASE4: AJMP FLOATING_DIV FP_BASE5: AJMP HEXSCAN FP_BASE6: AJMP FLOATING_POINT_INPUT FP_BASE7: AJMP FLOATING_POINT_OUTPUT FP_BASE8: AJMP CONVERT_BINARY_TO_ASCII_STRING FP_BASE9: AJMP CONVERT_ASCII_STRING_TO_BINARY FP_BASE10: AJMP MULNUM10 FP_BASE11: AJMP HEXOUT FP_BASE12: AJMP PUSHR2R0 ; ; FLOATING_SUB: ; MOV P2,#ARG_STACK_PAGE
in „Spaß mit Kloeckner-Moeller PS3 in BASIC(?)“ · Projekte & Code ·
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PDF
ADNS2051.pdf
1.27 (0.050) 3.50 Avago Technologies provides an ∅ (1.38) IGES file drawing describing the (0.091) base plate molding features for lens and PCB alignment. 5.10 (0.201) The components interlock as 12.60 11.38 13.88 they are mounted onto defined (0.498)(0.448) (0.546) features on the base plate. 0 REF.
in „Maussensor ADNS 2051 Bild auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Optokoppler_4N27.PDF
Breakdown Voltage* Collector-EmitteBVCEO 30 V C =1 mA Emitter-CollectoBVECO 7 E =100 A Collector-Base BVCBO 70 C =100 A ICEO(dark)* 4N25/26/27 5 50 nA VCE=10 V, (base open) 4N28 10 100 ICBO(dark)* 2 20 nA VCB=10 V, (emitter open) Capacitance, Collector-Emitter CCE 6 pF VCE=0 Package DC Current Transfer
in „Ansteuerung Opto 4N27“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
usart2dmactrl.c
DMA_InitStructure); // USART2_TX DMA Ch7 DMA_DeInit(DMA1_Channel7); DMA_InitStructure.DMA_PeripheralBaseAddr = (uint32_t)&(USART2->TDR); DMA_InitStructure.DMA_MemoryBaseAddr = (uint32_t)stUsart2Ctrl.txBuf; DMA_InitStructure.DMA_DIR = DMA_DIR_PeripheralDST; DMA_InitStructure.DMA_BufferSize = sizeof(TXBUFSIZE
in „STM32F303 USART2 DMA1 funktioniert halblebig ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2N4403-82294.pdf
T V Collector-Emitter Breakdown I = -1.0 mA, I = 0 -40 V 4 (BR)CEO Voltage(5) C B 0 3 V Collector-Base Breakdown I = -0.1 mA, I = 0 -40 V — (BR)CBO Voltage C E P V (BR)EBO Emitter-Base Breakdown Voltage E = -0.1 mA, C = 0 -5.0 V N IBL Base Cut-Off Current VCE = -35 V, EB = -0.4 V -0.1 μA P G ICEX Collector
in „moderner Ersatztyp für BC550 Audio low noise gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
LPC2300_s.txt
) <0x0-0xFFFFFFFF> ;// </h> Heap_Size EQU 0x00000600 AREA HEAP, NOINIT, READWRITE, ALIGN=3 __heap_base Heap_Mem SPACE Heap_Size __heap_limit ; System Control Block (SCB) Module Definitions SCB_BASE EQU 0xE01FC000 ; SCB Base Address PLLCON_OFS EQU 0x80 ; PLL Control Offset PLLCFG_OFS EQU 0x84 ; PLL Configuration
in „Bootloader & Interrupts (LPC2366)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
LPC2300.s
0xFFFFFFFF> ;// </h> ;//++0170 Heap_Size EQU 0x00001000 AREA HEAP, NOINIT, READWRITE, ALIGN=3 __heap_base Heap_Mem SPACE Heap_Size __heap_limit ; System Control Block (SCB) Module Definitions SCB_BASE EQU 0xE01FC000 ; SCB Base Address PLLCON_OFS EQU 0x80 ; PLL Control Offset PLLCFG_OFS EQU 0x84 ; PLL Configuration
in „Heap und Stack Einstellungen beim LPC23xx“ · Mikrocontroller und Digitale Elektronik ·
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PDF
REV12schoen.pdf
HLK-PM03 c _ 1 . M D B l GND E R 4 2 S 1 3 E m c T 1 2 2 AC_1 -V0 4 J m 2 m 2 1 C24 mlcc 100V 4.7uF C16 AC_2 +V0 7 9 o 1 c? R28 1 IC14 K 0 5 V 100Kohm 5 R22 4N35S-6A1 1 R24.9Kohm + 1 2 C25 2 P CRGH1206F390R 6 2 mlcc 1uf 16v 0 2 ANODE BASE 1 +3V3 GND GND 1 5 D 1 2 2 CATHODECOLLECTOR 5 W 1 2 GND C35 elko
in „Probleme mit Konstantstromtreiber / gatetreiber“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ADIS16209-246154.pdf
un-read data 14 Error/alarm = 1, when STATUS ≠ 0x0000 Table 16. TEMP_OUT (Base Address = 0x0A), Read Only [13:0] y-axis inclinometer output data, twos complement, Bits Description [15:0] Internal temperature data, binary format, 0° = 0x0000, 1 LSB = 0.025°/LSB,
in „Neigungswinkelinkelmessung beweglicher Teile“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
DG24128.asm
--------------------- .equ F_CPU = 8000000 .equ CYCLES_PER_US = ((F_CPU+500000)/1000000) .equ TXT_BASE = $0000 .equ GFX_BASE = $0300 .equ FONT_SIZE = 6 .equ SPALTEN = 240/FONT_SIZE .equ GFX_ZEILEN = 128 .equ TXT_ZEILEN = 128/8 ; 0bxxxxxyyyyyyyyzzz ; x - CHR_OFFSET ; y - CHR_CODE ; z = CHR_LINE .equ CHR_OFFSET