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Datei
FLASH_BRAM_8.vhd
FLASH_CONTROLLER PORT MAP ( DA_H => DA_H, DA_L => DA_L, DATA_EN_H => DATA_EN_H, DATA_EN_L => DATA_EN_L, BYTE_SR => BYTE_SR, ADD_ZE => ADD_ZE, ADD_V => ADD_V, ADD_EN => ADD_EN, BRAM_WR_RD_ENABLE => BRAM_WR_RD_ENABLE, BRAM_R_ADD_COUNT_ENABLE => BRAM_R_ADD_COUNT_ENABLE, BRAM_R_ADD_COUNT_VOLL => BRAM_R_ADD_COUNT_VOLL
in „Daten von FLASH in 2 BRAM schreiben“ · FPGA, VHDL & Co. ·
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PDF
MOC3061M.pdf
(Bsc) 15° (Typ.) o 0.41–0.51 (0.86) 2.54 (Bsc) s 1.02–1.78 0.41–0.51 0.20–0.30 0.76–1.14 1.02–1.78 10.16–10.80 P 0.76–1.14 o t t i a c D Surface Mount i e 8.13–8.89 (1.78) r 6 4 O (1.52) p o (2.54) c 6.10–6.60 (7.49) o 8.43–9.90 (10.54) p l r ( 1 3 6 Pin 1 (0.76) 0 Rcommended Pad Layout V o t P 0.25–
in „Mehrere Lasten an Wechselspannung schalten (Mosfet)“ · Analoge Elektronik und Schaltungstechnik ·
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Commodore BASIC 4.0 Assembler Monitor
*** commodore basic 4.0 *** 31743 bytes free ready. sys40960 b* pc irq sr ac xr yr sp ; a06f a355 33 00 a0 00 f8 .a 1000 d8 cld .a 1001 18 clc .a 1002 a2 10 ldx #$10 .a 1004 a9 80 lda #$80 .a 1006 69 02 adc #$02 .a 1008 ca dex .a 1009 d0 fb bne $1006 .a 100c 00 brk .g 1000 b* pc irq sr ac xr yr sp ; 100c a355 32 a0 00 f8 .m 1000 1010 d8 18 a2 10 a9 80 69 02 ca d0 fb 00 aa aa aa x.".)jp;**** . 1010 aa aa aa aa**********
in „Einfache CPU, einfacher Rechner, nur zum Lernen, Erfahrung?“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Datei
fet140_uart01_09600_2.c
UCTL0 |= CHAR; // 8-bit character UTCTL0 |= SSEL0; // UCLK = ACLK UBR00 = 0x03; // 32k/9600 - 3.41 UBR10 = 0x00; // UMCTL0 = 0x4A; // Modulation UCTL0 &= ~SWRST; // Initialize USART state machine IE1 |= URXIE0; // Enable USART0 RX interrupt // Mainloop for (;;) { _BIS_SR(LPM3_bits + GIE); // Enter LPM3
in „MSP430F169 UART LFXTL Einstellungen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_bq27441.pdf
[BI_PU_EN] = 1 and use a BIN 10 DI 10-kΩ pulldown resistor from BIN to SS. If [BI_PU_EN] = 0, then the host must inform the gauge of battery insertion and removal with the BAT_INSERT and BAT_REMOVE subcommands. A 10- kΩ pulldown resistor
in „Zustandsdaten Lithium Batterie“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
usart-adc.txt
single conversions ADC10CTL1 = INCH_3 | SHS_0 | ADC10DIV_0 | ADC10SSEL_0 | CONSEQ_0; ADC10AE0 = BIT3; // Enable analog input on channel 1 ADC10CTL0 |= ENC; // Enable conversions for (;;) { ADC10CTL0 |=ADC10SC; // Trigger new
in „MSP430G2231 USART letztes Zeichen kaputt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Rotz.c
pio.OutputLevelLow(CLK); if (x & (1<<i)) pio.OutputLevelHigh(MOSI); else pio.OutputLevelLow(MOSI); Wait_us(10); pio.OutputLevelHigh(CLK); Wait_us(10); } } char SPI_READ() { char ret = 0; pio.OutputLevelLow(CLK); for(int i = 7; i >= 0; i--) { pio.OutputLevelHigh(CLK); Wait_us(10); if (pio.GetInputLevel(MISO))
in „SPI-FRAM antwortet immer nur 0xFF“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Rotz.c
pio.OutputLevelLow(CLK); if (x & (1<<i)) pio.OutputLevelHigh(MOSI); else pio.OutputLevelLow(MOSI); Wait_us(10); pio.OutputLevelHigh(CLK); Wait_us(10); } } char SPI_READ() { char ret = 0; for(int i = 7; i >= 0; i--) { pio.OutputLevelLow(CLK); Wait_us(10); if (pio.GetInputLevel(MISO)) { ret |= (1<<i); } pio.OutputLevelHigh
in „SPI-FRAM antwortet immer nur 0xFF“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN96116.pdf
0.5 × 5V V SR = ---------------------------------------------------------------------------------------- kSE × Rext 7.6× 10–3-----R 7.6 ×10 –3------- × 24k s k ext k Example 2: To achieve a single-ended slew rate
in „Beschaltung von Rs am CAN-Bus (82C251 Transceiver)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MOC3020-M.pdf
0.30 m 0.41–0.51 15° (Typ.) (0.86) 2.54 (Bsc) P 1.02–1.78 0.41–0.51 0.20–0.30 h 0.76–1.14 1.02–1.78 10.16–10.80 a 0.76–1.14 e O p t i s l Surface Mount t o 8.13–8.89 (1.78) s 6 4 T (1.52) i c (2.54) 6.10–6.60 (7.49) D 8.43–9.90 (10.54) v e r O 1 3 (0.76) u Pin 1 p Rcommended Pad Layout u ( 2 0.25–0.36
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Datei
c64.asm
$D400 SID_FREQHI1 = $D401 SID_PWLO1 = $D402 SID_PWLHI1 = $D403 SID_CR1 = $D404 SID_AD1 = $D405 SID_SR1 = $D406 SID_FREQLO2 = $D407 SID_FREQHI2 = $D408 SID_PWLO2 = $D409 SID_PWLHI2 = $D40A SID_CR2 = $D40B SID_AD2 = $D40C SID_SR2 = $D40D SID_FREQLO3 = $D40E SID_FREQHI3 = $D40F SID_PWLO3 = $D410 SID_PWLHI3 = $D411 SID_CR3 = $D412 SID_AD3 = $D413 SID_SR3 = $D414 SID_FCLO = $D415 SID_FCHI = $D416 SID_RES_FILT= $D417 SID_MODE_VOL= $D418 SID_POTX = $D419 SID_POTY = $D41A SID_OSC3 = $D41B SID_ENV3 = $D41C ; VIC-II VIC_M0X = $D000 VIC_M0Y = $D001 VIC_M1X
in „Wettkampf Opa(MOS6502) gegen Frischling(ATmega)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Build_a_VGA_Monitor_Controller.pdf
. scan flops, and 11 AND gates. Yes, that’s When the scan reaches the end Vertical right, just two 10-bit binary up counters, of a row, it retraces to the begin- retrace four SR flip-flops, and 11 AND gates! ning of the next row. When it Now, of course, this isn’t a replacement reaches the last pixel
in „Grundsätzliche Verständnisfrage zu FPGAs und CPLDs“ · FPGA, VHDL & Co. ·
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PDF
MOC3041.pdf
(0.30) t 0.020 (0.50) 0.100 [2.54] 0.008 (0.21) r 0.016 (0.41) 0.425 (10.80) s 0.400 (10.16) r a c r NOTE v r All dimensions are in inches (millimeters) O u p t 2 5 / 0 V l t e a ) 8 www.fairchildsemi.com MOC3031M, MOC3032M, MOC3033M, MOC3041M, MOC3042M, MOC3043M Rev. 1.0.1
in „Triac am atmega anstelle MOC3041 und BTA08-400“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
94874_MOC3043_OptoTriac.pdf
(0.30) t 0.020 (0.50) 0.100 [2.54] 0.008 (0.21) r 0.016 (0.41) 0.425 (10.80) s 0.400 (10.16) r a c r NOTE v r All dimensions are in inches (millimeters) O u p t 2 5 / 0 V l t e a ) 8 www.fairchildsemi.com MOC3031M, MOC3032M, MOC3033M, MOC3041M, MOC3042M, MOC3043M Rev. 1.0.1
in „Triac Probleme mit MOC3043“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
hmpf.c
pio.OutputLevelLow(CLK); if (x & (1<<i)) pio.OutputLevelHigh(MOSI); else pio.OutputLevelLow(MOSI); Wait_us(10); pio.OutputLevelHigh(CLK); Wait_us(10); } pio.OutputLevelLow(CLK); } char SPI_READ() { char ret = 0; for(int i = 7; i >= 0; i--) { pio.OutputLevelLow(CLK); Wait_us(10); if (pio.GetInputLevel(MISO))
in „SPI-FRAM antwortet immer nur 0xFF“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Dokumentation.PDF
PIIC12010 NLMODE20A 1CR1 P0OR2 I1O2 RCO2 9CR2 1OR3 SPI2_MISO PIX50DAT0 NLSR0STB Q1 PIIC1204 NLMODE10A R12 R23 R24 R28 R29 R30 PIX50DAT1 SR_STB Q2 PIIC1205 NLMODE00A 10k 10k 10k 10k 10k 10k NLSPI20C PIX50DAT2 NLSR0O Q3 PIIC1206NLnENABLE0A 10 P0 I0 OX R0 90 2 SPI2_CS PIX50CD/DAT3 SR_OE Q4 PIIC1207nENLMODE20B
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PDF
Verkauf_Bauteile-2.pdf
40 la=10 470µF 400V 20 10 € ELKO THT 450MXK330MEFCSN25X40 d=25 l=40 la=10 330µF 450V 25 7 € ELKO THT Gemischt 330µF 420V 28 ELKO SMD UUR1H101MNL1GS d=10 l=10 100µF 50V 50 0,60 € ELKO SMD EEE-FK1H221P d=10 l=10,2
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PDF
SPI_74HC595.pdf
as a latch clock. It can be set up as either a slave-select or a general purpose output to transfer SR contents to the output latch after the data is shifted in. This is a positive edge triggered device. It requires: CPOL=CPHA=1. +5V 74HC595 10 RST QA15 QB 1 MOSI 14 SerIn QC 2 11 ShClk QD 3 Outputs SCK
in „SPI + 74HC595“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SPI_74HC595.pdf
as a latch clock. It can be set up as either a slave-select or a general purpose output to transfer SR contents to the output latch after the data is shifted in. This is a positive edge triggered device. It requires: CPOL=CPHA=1. +5V 74HC595 10 RST QA15 QB 1 MOSI 14 SerIn QC 2 11 ShClk QD 3 Outputs SCK
in „Porterweiterug und I2C bus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
X1205.pdf
Table 1. Clock/Control Memory Map t Reg Bit a Addr. Type Name 7 6 5 4 3 2 1 0 Range e D 003F Status SR BAT AL1 AL0 0 0 RWEL WEL RTCF 01h 0037 RTC (SRAM) Y2K 0 0 Y2K21 Y2K20 Y2K13 0 0 Y2K10 20h 0036 DW 0 0 0 0 0 DY2 DY1 DY0 0-6 00h 0035 YR Y23 Y22 Y21 Y20 Y13 Y12 Y11 Y10 0-99 00h 0034 MO 0 0 0 G20 G13
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PDF
cdj350.pdf
206,207 CKSSYB223K16 C 208 CKSSYB102K50 R 166,339,345 RS1/10SR0R0J R 186-188 RAB4CQ560J C 213,217-219 CKSSYB104K10 B R 189 RS1/16SS1002F C 215 CKSSYB471K50 R 190 RS1/16SS2002F C 216 CKSSYB681K50 R 255,347 RS1/10SR222J C 221-224,230,233 CKSSYB104K10 C 227 CCSSCH680J50
in „Diode (1SS352) in CD-Player ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Ausschnitt eines Schaltplans
C12 10uF/50V R12 560 R10 56K U3 NJM78M12FA C19 6800uF/50V C20 6800uF/50V D1 DBF40C CN5 1 AC2M+ 2 AC2MG 3 AC2M- 4 AC2D+ 6 AC2A+ 7 AC2AG 8 AC2A- CN5 B8P-VH U4 NJM78M12FA C27 47uF/50V C25 104Z/50V D5 1SR139 C28 47uF/50V C26 104Z/50V D6 1SR139 C23 104Z/50V C21 4700uF/25V C22 4700uF/25V F2 F4 F5 U6 PQ05RD11 Vo GND Vin R25 100R 1/2W R24 56K R23 330K U5 PST0600C C30 10uF/16V R21 2.2K R22 4.7K C29 4700uF/16V D3 DBF40C F3 B8P-VH CN5
in „Defektes EPiano reparieren“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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PDF
MC_productmatrix_022005.pdf
8Bit 3 14 / 3 UART - 6+1ch - 8 - P-DSO-28 (SMD) (CAPCOM6E) for motor control and lamp ballast C868-1SR 8K SRAM P-TSSOP-38 (SMD) XC866 26,67 MHz 75/150 12K Flash 4K 768 27 8/10Bit 3 14 / 4 UART - 6+1-ch. - 2 - ! P-TSSOP-38 OnChip OSC, OnChip Vreg, Brown-out detection ns SSC 16-bit Family e & r e e k r
in „8051-Derivat mit zwei UART gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
slau049f.pdf
maskable interrupts can be disabled by the general interrupt enable (GIE) bit in the status register (SR). Each individual peripheral interrupt is discussed in the associated peripheral module chapter in this manual. 2-10 System Resets, Interrupts, and Operating Modes System Reset and Initialization 2.2.3
in „Umrechnung: C-Code->Assembler-Code->Cycles“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main3.c
Stop WDT BCSCTL1|=XTS+XT2OFF; // initialisierung von ACLK, XTS aktiviert den externen quarz __BIC_SR_register(OSCOFF); //löscht das bit(0) OSCOFF im statusregister> LFXT1 is on _BIS_SR(GIE); do { // do-schleife überprueft ob OFIFG-flag gesetzt ist IFG1 &=~OFIFG; // löscht OFIFG for (i=0xff;i>0;i--);
in „MSP430 ADS7888 RS232“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main4.c
WDTHOLD; // Stop WDT BCSCTL1|=XTS; // initialisierung von ACLK, XTS aktiviert den externen quarz __bic_SR_register(OSCOFF); //löscht das bit(0) OSCOFF im statusregister> LFXT1 is on _BIS_SR(GIE); do { // do-schleife überprueft ob OFIFG-flag gesetzt ist IFG1 &=~OFIFG; // löscht OFIFG for (i=0xff;i>0;i--);
in „MSP430 ADS7888 RS232“ · Mikrocontroller und Digitale Elektronik ·
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PDF
xc164cm_ds_v1.4_2007_03.pdf
Conditions apply) Parameter Symbol Limit Values Unit Test Min. Max. Condition Analog reference supply VAREF SR 4.5 V DDP V 1) + 0.1 Analog reference ground V SR V - 0.1 V + 0.1 V – AGND SS SS Analog input voltage range VAIN SR V AGND V AREF V 2) 3) Basic clock frequency BC 0.5 20 MHz Conver4)on time for 10-bit
in „xc164cm16ff und cc770“ · Mikrocontroller und Digitale Elektronik ·
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PDF
map44_46xya_pinout.pdf
LV Sync. I S Input from Delay Line 9 9 I2S_DEL_OUT OUT LV Sync. I S Output to External Delay Line 10 10 I2S_DEL_CL OUT LV I S Clock Output for External Delay 11 11 I2S_DEL_WS OUT LV I S Word Strobe Output for External Delay 12 12 DVSUP IN OBL Digital Power Supply 13 13 DVSUP IN OBL Digital Power Supply
in „suche Datenblatt/Pinbelegung für Micronas MAP5401“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SFH_7060__Lead__Pb__Free_Product_-_RoHS_Compliant.pdf
intensity (typ.) e 2.6 mW / sr (F = 20 mA, tp= 20 ms) Total radiant flux (typ.) e 6.4 mW (F = 20 mA, tp= 20 ms) Temperature coefficient of centroid (typ.) TC centroid 0.13 nm / K (I = 20 mA, -10°C ≤ T ≤ 100°C) F 2016-04-20 5
in „Wie funktioniert der O2-Sensor von einem Pulsoximeter?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SFH_7060__Lead__Pb__Free_Product_-_RoHS_Compliant.pdf
intensity (typ.) e 2.6 mW / sr (F = 20 mA, tp= 20 ms) Total radiant flux (typ.) e 6.4 mW (F = 20 mA, tp= 20 ms) Temperature coefficient of centroid (typ.) TC centroid 0.13 nm / K (I = 20 mA, -10°C ≤ T ≤ 100°C) F 2016-04-20 5
in „Transimpedanzwandler für SFH7060“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
mmc_stm32f0_spi.c
:true, no:false, default:false) #define SPIx_CR1 SPI2->CR1 #define SPIx_CR2 SPI2->CR2 #define SPIx_SR SPI2->SR #define SPIx_DR SPI2->DR #define FCLK_SLOW() { SPIx_CR1 = (SPIx_CR1 & ~0x38) | 0x30; } // Set SCLK = PCLK / 128, For init the clock should be <= 400kHz #define FCLK_FAST() { SPIx_CR1 = (SPIx_CR1
in „FatFs SD Keine Antwort“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mmc_stm32f1.c
csize = csd[9] + ((WORD)csd[8] << 8) + ((DWORD)(csd[7] & 63) << 16) + 1; *(DWORD*)buff = csize << 10; } else { /* SDC ver 1.XX or MMC ver 3 */ n = (csd[5] & 15) + ((csd[10] & 128) >> 7) + ((csd[9] & 3) << 1) + 2; csize = (csd[8] >> 6) + ((WORD)csd[7] << 2) + ((WORD)(csd[6] & 3) << 10) + 1; *(DWORD*)
in „STM32Fxxx: Frage zur Initialisierung mit der StdPeriphLib“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Mardenschreck.asm
***************************************** .def deltalight = r8 .def avglight = r9 .def ADClight = r10 .def Minlight = r11 .def Maxlight = r12 .def LightThresh = r13 .def Sr = r14 .def T0reload = r15 .def temp = r16 .def countL = r17 ; main timing .def countSec = r18 .def cntLight = r19 ; night light
in „Marderschreck Softwareproblem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Mardenschreck.asm
***************************************** .def deltalight = r8 .def avglight = r9 .def ADClight = r10 .def Minlight = r11 .def Maxlight = r12 .def LightThresh = r13 .def Sr = r14 .def T0reload = r15 .def temp = r16 .def countL = r17 ; main timing .def countSec = r18 .def cntLight = r19 ; night light
in „Marderschreck Softwareproblem“ · Mikrocontroller und Digitale Elektronik ·
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Datei
msp430f66xx_adc_10.c
|= ADC12SC; // Sampling and conversion start __bis_SR_register(LPM4_bits + GIE); // LPM0 with interrupts enabled __no_operation(); // Temperature in Celsius // ((A10/4096*1500mV) - 680mV)*(1/2.25mV) = (A10/4096*666) - 302 // = (A10 - 1858) * (666 / 4096
in „Brauche Hilfe beim abändern eines Examples von TI.“ · Mikrocontroller und Digitale Elektronik ·
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Datei
startup912.s
FMI_BBADR_OFS , 0x0C /* Boot Bank Base Address Register #!!! Documentation page 30,*/ .equ FMI_NBBADR_OFS , 0x10 /* Non-boot Bank Base Address Register #!!! adresseses do not correspond*/ .equ FMI_CR_OFS , 0x18 /* Control Register */ .equ FMI_SR_OFS , 0x1C /* Status Register */ .equ FMI_CR_Val , 0x00000018 /* FLASH
in „ganz einfaches ARM9 Beispiel mit gcc“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SpartanXL.pdf
Gates (Logic and RAM) Matrix CLBs Flip-flops User I/O RAM Bits XCS05 and XCS05XL 238 5,000 2,000-5,000 10 x 10 100 360 77 3,200 XCS10 and XCS10XL 466 10,000 3,000-10,000 14 x 14 196 616 112 6,272 XCS20 and XCS20XL 950 20,000 7,000-20,000 20 x 20 400 1,120 160 12,800 XCS30 and XCS30XL 1368 30,000 10,000-30,000
in „Logic Analyzer bauen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS18B20_2.asm
OneWire Reset ldi accu,0x55 ;Match_Rom einleiten rcall One_Wire_Write ;senden ldi index,8 ;8 Bytes SR10: ld accu,z+ ;Ein Byte aus der Romtabelle laden... rcall One_Wire_Write ;senden dec index ;schon 8 Bytes? brne SR10 ;wenn nicht - nächstes Byte ret SkipRom: rcall One_Wire_Reset ;1-Wire Bus Reset ldi
in „Probleme mit "MatchRom" bei DS18B20“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DS18B20_2.asm
OneWire Reset ldi accu,0x55 ;Match_Rom einleiten rcall One_Wire_Write ;senden ldi index,8 ;8 Bytes SR10: ld accu,z+ ;Ein Byte aus der Romtabelle laden... rcall One_Wire_Write ;senden dec index ;schon 8 Bytes? brne SR10 ;wenn nicht - nächstes Byte ret SkipRom: rcall One_Wire_Reset ;1-Wire Bus Reset ldi
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PDF
XCS20-3VQ100C.pdf
Logic and RAM) (1) Matrix CLBs Flip-flops User I/O RAM Bits XCS05 and XCS05XL 238 5,000 2,000-5,000 10 x 10 100 360 77 3,200 XCS10 and XCS10XL 466 10,000 3,000-10,000 14 x 14 196 616 112 6,272 XCS20 and XCS20XL 950 20,000 7,000-20,000 20 x 20 400 1,120 160 12,800 XCS30 and XCS30XL 1368 30,000 10,000-30,000
in „[V] Spartan FPGA“ · Markt ·
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PDF
AD7718B.pdf
8-/10-Channel,LowVoltage, a LowPower,⌺-⌬ADCs AD7708/AD7718 FEATURES GENERAL DESCRIPTION 8-/10-Channel, High Resolution ⌺-⌬ ADCs The AD7708/AD7718 are complete analog front-ends for low AD7708 Has 16-Bit Resolution
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PDF
AD7718_16Bit_SPI_AD-Wandler.pdf
8-/10-Channel,LowVoltage, a LowPower,⌺-⌬ADCs AD7708/AD7718 FEATURES GENERAL DESCRIPTION 8-/10-Channel, High Resolution ⌺-⌬ ADCs The AD7708/AD7718 are complete analog front-ends for low AD7708 Has 16-Bit Resolution
in „[V] Verschiedene SMD-IC's“ · Markt ·
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Datei
ioat91sam7se512.h
define AT91C_SPI_TPCS ((unsigned int) 0xF << 16) // (SPI) Peripheral Chip Select Status // -------- SPI_SR : (SPI Offset: 0x10) Status Register -------- #define AT91C_SPI_RDRF ((unsigned int) 0x1 << 0) // (SPI) Receive Data Register Full #define AT91C_SPI_TDRE ((unsigned int) 0x1 << 1) // (SPI) Transmit Data
in „AT91SAM7SE512 Einstieg“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Ausschnitt eines Schaltplans
F2 F1 VD1S1 J12 1 2 3 Q02 2SC1384R +12V T01 C04 330 C05 0.047(Sr) R03 2.2k D01 1SS81 D02 Z5C2 C09 10 C07 10 D13 HZ33-1 C08 0.01 R04 100 C06 0.01(Sr) Q46 2SA733Q
in „Vacuum fluorescent Display Netzteil von negativer Spannung auf positive Spannung umbauen“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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Datei
diskio.c
csd[9] + ((uint16_t)csd[8] << 8) + ((uint32_t)(csd[7] & 63) << 16) + 1; *(uint32_t*)buff = csize << 10; } else { /* SDC ver 1.XX or MMC ver 3 */ n = (csd[5] & 15) + ((csd[10] & 128) >> 7) + ((csd[9] & 3) << 1) + 2; csize = (csd[8] >> 6) + ((uint16_t)csd[7] << 2) + ((uint16_t)(csd[6] & 3) << 10) + 1; *
in „STm32F103: Beispielcode der Chan FatFs zum Laufen bekommen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
int enabled TACCR0 = 40-1; // Teiler 4MHz/1/100000 = 40 flag=false; LED(); _EINT(); for(;;){ _BIS_SR(LPM3_bits); //Enter LPM3 if(flag==false) flag=true; else flag=false; LED(); delay_10us(200); P2IFG &= ~0x08; } } //Verzögerung für x*10µs void delay_10us(unsigned int time_us) { irq_count = 0; // Zählvariable
in „Interrup bei MSP430 - Bewegungssensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
VTB5051UV.pdf
Coefficient 2850 K -2.0 mV/°C I Dark Current H = 0, VR = 2.0 V 250 pA D R SH Shunt Resistance H = 0, V = 10 mV .56 GΩ TC RSH R SHTemperature Coefficient H = 0, V = 10 mV -8.0 %/°C CJ Junction Capacitance H = 0, V = 0 3.0 nF SR Sensitivity 365 nm 0.1 A/W SR Sensitivity 220 nm .038 A/W λ range Spectral Application
in „[V] Photodiode plus OPV“ · Markt ·
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Datei
BitBangingTest.c
stm32f3xx.h" volatile _Bool interruptWarDa; void TIM2_IRQHandler(void) { interruptWarDa = 1; TIM2->SR &= ~TIM_SR_UIF; } // Function to delay in microseconds void Delay(uint32_t x){ RCC->APB1ENR |= RCC_APB1ENR_TIM2EN; interruptWarDa = 0; TIM2->DIER = TIM_DIER_UIE; // Update-Interrupt ein TIM2->CNT = 0
in „Bit Banging STM32 - F303RE ohne Library“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ADNS-3080-Avago.pdf
S - P0.4* 24 1 A + 2.2 E 3 NCS uF 3 P 7 3 10 KΩ 6 REFB 14 Vcc C C P0.2 RESET Scroll Wheel Y 4 10 KΩ 7 Encoder C P0.3 NPD OSC_IN 10 ALPS GUARD 9 24 MHz EC10E 7 P1.4 20KΩ 20KΩ Ceramic Resonator 5 OSC_OUT 8 QA 1 P1.0 L Murata QB 2 CSALS 24 M 0X 53
in „ADNS3080 Steuerung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
w5500.h
n Mode #define Sn_CR 0x01 // Socket n Command #define Sn_IR 0x02 // Socket n Interrupt #define Sn_SR 0x03 // Socket n Status #define Sn_PORT 0x04 // Socket n Source Port #define Sn_DHAR 0x06 #define Sn_DIPR 0x0C #define Sn_DPORT 0x10 #define Sn_MSSR 0x12 #define Sn_TOS 0x15 #define Sn_TTL 0x16 #define
in „Send response (Action *Var)“ · Mikrocontroller und Digitale Elektronik ·