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Betriebsanleitung_optoNCDT_1420pdf__1_.pdf
Differenzsignale von MICRO-EPSILON nach EIA-422, nicht Kabelstecker kabel galvanisch von der Tx + (Pin 5) grau Rx + (Pin 3) Versorgungsspannung Tx -(Pin 6) rosa Rx -(Pin 4) getrennt. Rx + (Pin 3) grün Tx + (Pin 1) Verwenden Sie ein Rx -(Pin 4) gelb Tx -(Pin 2) geschirmtes Kabel mit verdrillten Adern, z. B. GND (
in „Sensor mit RS422 interface und Konverter verbunden an Esp32 via TTL“ · Mikrocontroller und Digitale Elektronik ·
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Pingu920-0.9.2.pdf
D D D D D D D D D D D D I I I I I I I I I I I I I O P P C C C C C SDCKE SDCKE VCCIO RXD 38 PLLRCB N N N N N N N N N N N N N N N N N N N N N D D D D D D D D D D D D D D D D D D D D D SDWE 178 SDWE RTS 3 G G G G G G G G G G G G G G G G G G G G G V V V V V V V V V V V V V V V V V V V V V USBD-C 19 RESET
in „"Pingu920" - ARM9 Linux Embedded zum selbst Löten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheetMax3392.pdf
8Mbps, C = 15pF M 500kbps, OPEN-DRAIN, CLOAD= 15pF M M A LOAD A A 300 ( ( 2.5 ( 8Mbps, CLOAD= 15pF M N 400 N N 250 – E E 2.0 E U 300 U 8Mbps, CLOAD= 15pF U 200 500kbps, OPEN-DRAIN, LOAD = 15pF E Y Y 1.5 Y L P L 150 0 U 200 500kbps, OPEN-DRAIN, CLOAD= 15pF U U 9 S S 1.0 230kbps, CLOAD= 50pF S 230kbps,
in „Max3392 Pegelwandler, BlueNiceCom 4“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Metrawatt-MA_5D.pdf
::5.577.346.01 I C63 C63 Ta-Elko 2,2~f 35V 3.577.348.01 C64 C64 Ta-Elko 2,2\lF 35V 3.577.348.01 I C65 C65 Ta-Elko 2, ~1f 35V 3.577.348.01 - C66 C66 Ta-Elka 2, ~ 35V 3.577.348.01 I .- C67 C67 Ker-Kond 220pf 400V 3.577.315.01 C68 Kar-Kond O,1uf 30V 3.577.390.01 I N N B'" Bemerkungf:!n, Remarks, Rerndrque
in „S: DMM mit dB-Anzeige“ · Markt ·
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PDF
Metrawatt-MA_5D.pdf
::5.577.346.01 I C63 C63 Ta-Elko 2,2~f 35V 3.577.348.01 C64 C64 Ta-Elko 2,2\lF 35V 3.577.348.01 I C65 C65 Ta-Elko 2, ~1f 35V 3.577.348.01 - C66 C66 Ta-Elka 2, ~ 35V 3.577.348.01 I .- C67 C67 Ker-Kond 220pf 400V 3.577.315.01 C68 Kar-Kond O,1uf 30V 3.577.390.01 I N N B'" Bemerkungf:!n, Remarks, Rerndrque
in „Metrawatt MA5D Abgleichanleitung A DC Bereich“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
startup.asm
IRQHandler ; ADC1 & ADC2 DCD USB_HP_CAN1_TX_IRQHandler ; USB High Priority or CAN1 TX DCD USB_LP_CAN1_RX0_IRQHandler ; USB Low Priority or CAN1 RX0 DCD CAN1_RX1_IRQHandler ; CAN1 RX1 DCD CAN1_SCE_IRQHandler ; CAN1 SCE DCD EXTI9_5_IRQHandler ; EXTI Line 9..5 DCD TIM1_BRK_IRQHandler ; TIM1 Break DCD TIM1_
in „Erste Schritte: Bekomme STm32 nicht zum Laufen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS2413.pdf
updating. Transmission N OK? Y DS2413 Samples 1) DS2413 Updates 1) PIO Pin Status PIO Output Latch Bus Master RX Confirmation AAh Bus Master RX “1”s N Master TX Reset? Y Bus Master RX DS2413 Samples 1) PIO Pin Status PIO Pin Status Bus Master RX PIO Pin Status Master N N Master TX Reset? TX Reset? Y Y Y To ROM Functions Flow Chart (Figure 10) 7 of 18 DS2413: 1-Wire Dual Channel Addressable Switch PIO ACCESS WRITE [5Ah] The PIO Access Write command
in „OneWire Problem DS2413“ · Mikrocontroller und Digitale Elektronik ·
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PDF
GM47_Integrators_Manual_R1C.pdf
E2SPI=<op> • ERROR interface [,<byteformat> • OK [,<InitSync>]] • *E2SPI: [,<byte1>,<byte2>,..., <byte1rx>,<byte2rx>,..., <byte n>] <bytenrx> OK Show the current AT*E2SPI? • *E2SPI: <active>, setting <byteformat> OK Shows if the AT*E2SPI=? • *E2SPI: (list of supported command is <op>s,list of supported supported
in „GM47 GSM Spannungsversorgung aus LiIo-Akku“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t.lst
** ; 51 ; 52 #define RX_BUFFER_SIZE 30 ; 53 char rx_buffer[RX_BUFFER_SIZE]; .DSEG _rx_buffer: 000160 .BYTE 0x1E ; 54 unsigned char rx_wr_index,rx_rd_index,rx_counter; ; 55 // This flag is set on USART Receiver buffer overflow
in „Problem mit CodevisionAVR 1.23.8c Standard“ · Mikrocontroller und Digitale Elektronik ·
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Datei
t.lst
** ; 51 ; 52 #define RX_BUFFER_SIZE 30 ; 53 char rx_buffer[RX_BUFFER_SIZE]; .DSEG _rx_buffer: 000160 .BYTE 0x1E ; 54 unsigned char rx_wr_index,rx_rd_index,rx_counter; ; 55 // This flag is set on USART Receiver buffer overflow
in „Problem mit CodevisionAVR 1.23.8c Standard“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
master starting at 0x01. Received data is expected to // be same as the previous transmission. USCI RX ISR is used to handle // communication with the CPU, normally in LPM0. If high, P1.0 indicates // valid data reception. // ACLK = n/a, MCLK = SMCLK = DCO ~1.2MHz, BRCLK = SMCLK/2 // // Use with SPI Slave
in „MSP430 G2553 mit DOGL128W-6 Display“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LiveDesign_EB_Schematics-xilinx_spartan.pdf
C8S C24S C25S C26S C27S C28S C29S C30S C31S C32S C33S C34S DIG0_SEG[7..0] DIG0_SEG[7..0] VCC 10uF 220nF 220nF 220nF 220nF 220nF 10nF 10nF 10nF 10nF 10nF 10nF 10nF 10nF 10nF 10nF 10nF DIG1_SEG[7..0] DIG1_SEG[7..0] RS232_TX RS232_TX DIG2_SEG[7..0] DIG2_SEG[7..0] RS232_RX RS232_RX DIG3_SEG[7..0] DIG3_SEG
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Improved_S-Parameter_Test_Set.pdf
fact, that both rf signals from TX and RX of the network analyzer passes the same relay in the same time. Furthermore, the open contacts of the relays generate stubs in the signal path. To counter that facts it is nessecary to use four instead
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PDF
mc68hc11a1.pdf
SS PD5 A8 PB0 I B SPI SCK PD4 E T MOSI D PD3 A D 8 MISO D T PD2 A7/D7 PC7 S S KBYTES T O A6/D6 PC6 N E ROM O P A5/D5 PC5 D A D P A4/D4 PC4 T D H D SCI TxD PD1 A3/D3 PC3 R T A RxD PD0 P O A2/D2 PC2 P A1/D1 PC1 A0/D0 PC0 R/W STRB AS STRA PARALLEL I/O EQUIVALENT TO MC68HC24 Figure 1 MC68HC11A8 Block Diagram
in „mc68hc11a1fn-uC-8bit“ · Markt ·
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PDF
dm9161-ds-f05_091008.pdf
100MbpsFastEthernetPhysicalLayer TX/FXSingleChipTransceiver 4. Pin Configuration: DM9161 LQFP E S B 1 N E [ [ [ [ [ M D D D D D R Y Y Y Y I A C # H H H H M H / R ] P]P ] ] / / L D N N D [ [ [ [ O L S C N D E D D D D D D C C R D M R D R R R R MX X X 6 5 4 3 2 1 0 9 8 7 6 5 3 3 3 3 3 3 3 2 2 2 2 2 RXDV/TESTMODE
in „Beschaltung VICOM DM9161CEP“ · Mikrocontroller und Digitale Elektronik ·
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RichWave.pdf
achieve an on-chip harmonic filter as well as a substrate-free assembly • providing a wide variety of RX FEM (LNA/SW) and full FEM (PA/LNA/SW) solutions to meet WiFi 802.11a,b,g,n,ac,ax,be requirements in medium power (+21dBm and lower) and high power (over +21dBm) applications WiFi 7 FEM - 6GHz Part No
in „RF Transceiver IC für 5-6 GHz gesucht“ · HF, Funk und Felder ·
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PDF
Last_board.pdf
NC OUT 2 1 U e - N o V G 4 3 v n A a e 4 3 A R n r D t w 3 3 0 r V V V L > i , + + 7 - W x 3 0 m a C p p 3 1 a n C 3 n 4 n S b n v R 0 R 0 W n e r n ö S p g +8V r S o 8 6 a i S R 0 R 0 l t e +8V V t ä e 4,7µf C1 3 i s
in „Schaltplankontrolle Last- + HMI-Board“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IA4421-DS.pdf
disabled TX data input Transmit Not used el = 1 Internal TX data register enabled nFFS input (TX data register can be accessed) ef = 0 Receiver FIFO disabled RX data output RX data clock output Receive ef = 1 Receiver FIFO disabled nFFS input FFIT output (RX data FIFO can be accessed
in „Software SPI zur Chip Konfig“ · Mikrocontroller und Digitale Elektronik ·
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PDF
twist-200-EL_46736V000_112019_0-DRE_Rev-I_DE.pdf
Betriebstemperatur –30 °C bis +70 °C Emissionswert nach Be- 47 dB(A) triebsumgebung IP Schutzart Steuerung IP65 100 1,5 2 2,5 IP Schutzart Antrieb IP44 Länge (m) 1-flügelig und 2-flügelig Schutzklasse I Max. Schubgeschwindigkeit 16,5 mm/s Tabelle Füllung Max. Zug- und Druckkraft je Flügel 2.000 N Höhe (m) Füllung
in „Relais für Abschaltverzögerung 24V gesucht“ · Haus & Smart Home ·
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PDF
Si_4421__RFM12B_.pdf
disabled TX data input Transmit Not used el = 1 Internal TX data register enabled nFFS input (TX data register can be accessed) ef = 0 Receiver FIFO disabled RX data output RX data clock Receive output ef = 1 Receiver FIFO disabled nFFS input FFIT output (RX data FIFO can be accessed
in „RFM12b ideale Konfiguration“ · Mikrocontroller und Digitale Elektronik ·
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PDF
2243913.pdf
value Register 4-2. • The RxA, RxB, and RxW bits return to controlling When the RxHW bit is a “0”, the selected resistor net- the terminal connection state of that resistor net- work is forced into the following state: work • The
in „[V] 11St. SMD Dual Digital Poti - I2C Microchip MCP4561-103 10kOhm 256Steps Nonvolatile (8€)“ · Markt ·
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PDF
22107B-1180063.pdf
value Register 4-2. • The RxA, RxB, and RxW bits return to controlling When the RxHW bit is a “0”, the selected resistor net- the terminal connection state of that resistor net- work is forced into the following state: work • The
in „[V] 24St SMD Digital I2C / 256 Steps 5K Dual Poti Microchip MCP4561- 502E/MS (MSOP8) (alle 15€)“ · Markt ·
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PDF
2243913.pdf
value Register 4-2. • The RxA, RxB, and RxW bits return to controlling When the RxHW bit is a “0”, the selected resistor net- the terminal connection state of that resistor net- work is forced into the following state: work • The
in „[V] 44St. SMD Digital I2C / 256 Steps 10K Poti Microchip MCP4561- 103E/MS (MSOP8 Gehäuse)“ · Markt ·
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PDF
2243913.pdf
value Register 4-2. • The RxA, RxB, and RxW bits return to controlling When the RxHW bit is a “0”, the selected resistor net- the terminal connection state of that resistor net- work is forced into the following state: work • The
in „[V] 10St. Digitalpoti MCP4561-103E/MS 8MSOP orginalverpackt. (9€)“ · Markt ·
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PDF
Schematics_v2.pdf
IN_W_P 3 2 SPI_SCK 7 SPI_nSCS GPIO1/ADC_I1_MCD 70 3 VIN VOUT 2 IN_V_N 4 3 SPI_MOSI 8 SPI_SCK GPIO0/ADC_I0_MCD 69 VOUT 4 C29 1 2 IN_V_P 5 4 SPI_MISO 9 SPI_MOSI REF_R 68 C15 C14 IN_U_N 5 UART_RX SPI_MISO REF_H C11 C12 C13 GND 25MHz 6 6 10 UART_RXD REF_L 67 100nF IN_U_P 7 7 UART_TX 11 UART_TXD ENC2_N 66 10uF 10uF 10uF 100nF 1 10uF 8 8 STATUS 12 STATUS ENC2_B 65 GND 9 +3V3 13 64 VCC 10 9 GND 14 VCCIO2 ENC2_A 63 VCC_CORE_3 10 VCC_CORE_1 15 GNDIO2 VCC_CORE3 62
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PDF
TARGET__HiQTRX_V24S_Circuit.pdf
7 8 2 ATT8dB 82 IO IO 219 nRESET 30 MDIO GND_IO 96 N V GND K RN7 D8 V G . 1 K 1 ATT10dB IO VCCINT . RX_DV VDD_IO 3 RN9 GND GND GND 1 0 4 5 D7 2 1 81 220 + 29 97 + N x 9 ATT20dB IO IO +3.3V VDD_IO nLED1 R 4 3 3 6 2 1 D6 D 80 221 D D 28 98 4 5 1 R N GND GND N N GND_IO nLED2 4 3 2 1 2 7 D3 2 1 G 79 222 G G 27 E 99 3 6 IO IO RX_CLK R R nLED3 DUPLEX/ 1 8 2 1 V 78 223 26 E E L L O O 100 2 7 4x220E . VCCIO3 IO R N I I R T R P 1 2 P C C NETACTIVE/ 3 77
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PDF
cp2102n-datasheet.pdf
’s UART RX FIFO has not reached the FLOW OFF watermark level of 448 bytes and is ready to accept more data. When the amount of data in the RX FIFO reaches the watermark, the CP2102N pulls RTS high to indicate to
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PDF
cp2102n-datasheet.pdf
’s UART RX FIFO has not reached the FLOW OFF watermark level of 448 bytes and is ready to accept more data. When the amount of data in the RX FIFO reaches the watermark, the CP2102N pulls RTS high to indicate to
in „[V] 10 St. Silabs CP2102N-A01 QFN20 USB-to-UART bridge controller.“ · Markt ·
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PDF
cp2102n-datasheet.pdf
’s UART RX FIFO has not reached the FLOW OFF watermark level of 448 bytes and is ready to accept more data. When the amount of data in the RX FIFO reaches the watermark, the CP2102N pulls RTS high to indicate to
in „[V] 10 St. Silabs CP2102N-A01 QFN20 USB-to-UART bridge controller. (10€)“ · Markt ·
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PDF
cp2102n-datasheet.pdf
’s UART RX FIFO has not reached the FLOW OFF watermark level of 448 bytes and is ready to accept more data. When the amount of data in the RX FIFO reaches the watermark, the CP2102N pulls RTS high to indicate to
in „[V] 15St. Silabs CP2102N-A01 QFN20 USB-to-UART bridge controller.“ · Markt ·
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PDF
cp2102n-datasheet.pdf
’s UART RX FIFO has not reached the FLOW OFF watermark level of 448 bytes and is ready to accept more data. When the amount of data in the RX FIFO reaches the watermark, the CP2102N pulls RTS high to indicate to
in „Frage zu CP2102N und CP2104“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST7789V.pdf
2 D1 0 B1, Bit 1 B2, Bit 1 B3, Bit 1 B4, Bit 1 D0 0 B1, Bit 0 B2, Bit 0 B3, Bit 0 B4, Bit 0 Pixel n Pixel n+1 Pixel n+2 Pixel n+3 16 bits 16 bits Look-up table for 65k color data mapping (16 bits to 18 bits) 18 bits Frame memory R1 G1 B1 R2 G2 B2 R3 G3 B3 Note 1: The data order is as follows, MSB=D15
in „LilyGo T-Watch 2020 v1 Micropython“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Schaltplan eines HF-Verstärkers mit Filtern
RX IN U65 PE4283 3V3 C64 0.1uF BPF_A BPF_B U15 PE4283 TX DRV 3R C62 0.01uF PA IN U66 PE4283 1.8 MHz HPF D3 MA4P7102F C63 1000pF L48 3.9uH L3 3.9uH L1 100uH PA OUT Q1 2N7002 R23 220 2W C65 0.1uF 12PA ON
in „Elecraft KX3 - Empfangsempfindlichkeit“ · HF, Funk und Felder · · Schaltpläne
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PDF
esda6v1sc5.pdf
SYSTEMS - GSM HANDSETS AND ACCESSORIES - OTHER TELEPHONE SET FEATURES SOT23-5L (SC-59) SOT23-6L (SC-59) n 4 UNIDIRECTIONAL TRANSIL FUNCTIONS ESDAxxSC5 ESDAxxSC6 n LOW LEAKAGE CURRENT: I mRx. < 20 A at VBR n 500 W PEAK PULSE POWER (8/20 s) FUNCTIONAL DIAGRAM SOT23-5L DESCRIPTION The ESDAxxSC5 and ESDAxxSC6
in „Unbekanntes SMD Bauteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ABX00042-ABX00045-ABX00046-datasheet.pdf
Description Pin Description TX1 +/- High speed data path (TX for GND Cable Ground TX2 +/- USB, or RX for DP Alt Mode) RX1 +/- High speed data path (TX for VBUS Cable bus power RX2 +/- USB, or RX for DP Alt Mode) SBU1 For sideband use (Not used for D+/D- USB 2.0 Interface SBU2 USB) Plug configuration
in „Problem mit der SPI Datenübertragung zwischen einem Arduino Portenta H7 und einem ADS8684 (ADC)“ · Mikrocontroller und Digitale Elektronik ·
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Datei
httpboot-m1284p-8mhz-w5500.c
endif _delay_ms(10); } } wdt_reset(); mem = MEM_FLASH; process_start(); #ifdef DEBUG_PHASES uart_putc('n'); #endif while (1) { // uint16_t availbug = W51_read16twice(Sn_RX_RSR(sock)); addr = W51_read16(Sn_RX_RD(sock)); avail = W51_read16(Sn_RX_WR(sock))-addr; sr = W51_read(Sn_SR(sock)); if (sr!=SOCK_ESTABLISHED
in „Atmega Eeprom/Flash andauernde Schreibfehler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
atmel-8393-mcu_wireless-atmega256rfr2-atmega128rfr2-atmega64rfr2_datasheet.pdf
N _O O N FORCE_PLL_ON LL K N _ see notes From / To P AC _ E TRX_OFF _A L R From / To N R P _ TRX_OFF _ F T N C F _ F A X_ E OF X R AR X R T X_ T T SLPTR = 1 SHR or Detected TX_START BUSY_RX_AACK RX_AACK_ON
in „AVR-Verlustleistung maximieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
notes_82b96.pdf
differences require it. Philips Semiconductors Opto-isolation - full 100kHz clock speed 1 G *Note: 6N137 data suggests 0.1uF mounted between pins 5 and 8 P OptoIsolation at full 100kHz clock speed. Here the single bus line to the left of the circuit is split by the 82B96 into two separate signals RxD
in „18 x SHT11 an welchem Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
notes_82b96.pdf
differences require it. Philips Semiconductors Opto-isolation - full 100kHz clock speed 1 G *Note: 6N137 data suggests 0.1uF mounted between pins 5 and 8 P OptoIsolation at full 100kHz clock speed. Here the single bus line to the left of the circuit is split by the 82B96 into two separate signals RxD
in „I²C galvanisch trennen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stm32g030c6.pdf
A FT - TIM3_CH2, TIM16_BK, WKUP6 I2C1_SMBA USART1_TX, TIM1_CH3, 8 20 30 45 PB6 E/A FT_f - TIM16_CH1N, SPI2_MISO, - I2C1_SCL, EVENTOUT USART1_RX, SPI2_MOSI, - - - 46 PB7 E/A FT_f - TIM17_CH1N, I2C1_SDA, - VERANSTALTUNGSAUSGANG USART1_RX, SPI2_MOSI, 1 1 31 - PB7 E/A FT_fa - TIM17_CH1N, I2C1_SDA, ADC_IN11
in „Muß der STM32G programmiert werden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UserManual_STM32H747_DISCO.pdf
RD_P 6 11 4 RX+ 4 RMII_TXD1 TXD1 RXP 22 7 RD+ RX+ 10 5 NC 1 PC4 R171 33 8 RXN i RD_N 8 CT CT 9 6 NC RMII_RXD0 PC5 R175 33 7 RXD0/MODE0 3 i Diff Pair 100ohm RD- RX- 7 RX- RMII_RXD1 R163 10K 10 RXD1/MODE1 LED1/nINT/nPME
in „STM32H747-DISCO0 - Demo Sourcecode gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
M30201F6SP.pdf
clock is selected) CLK 0 CLK polarity reversing CLKS circuit Clock output pin select switch (UART1) RxD 1 TxD 1 Clock source selection Receive Transmit/ Bit rate generator 1/16 control circuit clock receive f1 unit f8 1 / (n+1) f32 Transmit fC 1/16 Transmission clock control circuit n : Values set to
in „Biete Mitsubishi / Renesas M30201F6SP aus der M16C60 Serie“ · Mikrocontroller und Digitale Elektronik ·
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PDF
CCP_Tricks.pdf
sending STOP bit BSF TxLine ;send STOP bit DS41214A-page 52 © 2003 Microchip Technology Inc. Tips ‘n Tricks FIGURE 20-2: RECEIVE ROUTINE RxRoutine BTFSC RxLine ;wait for receive ;line to go low GOTO RxRoutine MOVLW 8 ;initialize bit ;counter to 8 MOVWF Counter CALL Delay1HalfTb;delay 1/2 Tb here ;plus
in „Lüfter über PWM, Bauteilauswahl?!?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tmote-sky-datasheet.pdf
2 2 A DC7 P_DVCC P_DVCC 14 P1.2/TA1 P3.7/URXD1 35 U R 1RX UART1RX DAC0 DAC1/ SVSi nR15 TI_MSP43 0F16 1 GIO2 3 4 GIO3 RADIO_ GIO0 15 34 UART1TX Ti mer A Capt ur e 4 DMAE0 SVSout MOUNTING HOLES P1 3 /T 2 X 0 P3. /UX D UserINT 5 6 RESET 16 L A 33 U RT0RX 5 6 RADIO
in „MSP430 - Beste Möglichkeit der Kommunikation“ · Mikrocontroller und Digitale Elektronik ·
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Datei
OPA197.txt
N016 N023 CLAMP_AMP_LO V_ISCp N010 MID 65 V_ISCn N037 MID -65 XOL_SENSE MID N063 N062 N065 OL_SENSE R19 N037 MID R_NOISELESS 1e12 R20 N023 MID R_NOISELESS 1 C8 N024 MID 1e-15 R21 MID N016 R_NOISELESS 1
in „„Darlington mit Opamp“-Schaltung zum Schwingen bringen/Verständnisfrage“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
WLAN_Firmware_Spec_v5_1.pdf
Architecture Applications TCP UDP IP e Ethernet Driver 802.11Extensions r D s H Hardware Interface Driver C a n a Hardware Interface o a P h Hardware Interface Driver t h e Common Driver Interface a w i F Data Service A (Tx/Rx Buffer Management) 802.11 MAC Management L W WLAN Driver HAL Copyright © 2006 Marvell
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Schaltplan eines Ultraschall-Empfänger- und Auswertekreises
RX US1, R14 10k, R15 10n, C8 10n, Amp U2D LM324, R1 10k, R2 56k, R3 6k2, C10 1n, U2C LM324 Bandpass Filter, R5 7k5, C2 1n, R8 4k7, C4 1n, U2B LM324 Amp, R13 120k, R7 75k, R9 120k, R17 10k, C5 1u, +5V, GND, Comparator U2A LM324, R10 10k, R11 3k9, R16 10k, C8 10n, R12 75k, J1 4 pin, TRIG, ECHO, P50, P67, P66, U1 EM78P153S, 27MHz Q1, P65/OSC0, P62/TCC, P61, SIGNAL, P60/INT, P53, TX2, TX1, P51, U3 US-Drive, SLICE, SIGIN, SIGIN2, IN2, OUT2, IN1, OUT1, TX US2, VCC
in „Unterwasser-Sonar“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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Bild
Schaltplan eines Ultraschall-Empfänger- und Auswertekreises
RX US1, R14 10k, R15 10n, C8 10n, Amp U2D LM324, R1 10k, R2 56k, R3 6k2, C10 1n, U2C LM324 Bandpass Filter, R5 7k5, C2 1n, R8 4k7, C4 1n, U2B LM324 Amp, R13 120k, R7 75k, R9 120k, C5 1u, +5V, GND, Comparator U2A LM324, R10 10k, R11 3k9, R16, C8 10n, R17 10k, R12 75k, J1 4 pin, TRIG, ECHO, P50, P67, P66, U1 EM78P153S, 27MHz Q1, P65/OSC0, P62/TCC, P61, SIGNAL, P60/INT, P53, TX2, TX1, P51, SLICE, SIGIN1, SIGIN2, U3 US-Drive, VCC, OUT2, OUT2, IN2,
in „Entfernungsmesser: Ein Piezo für RX und TX (statt zwei Piezos)“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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PDF
Sager_D87P_Service_Manual_Part4.pdf
SENSE2- TG2 14 0.1uF 2 3 1 8 7 6 5 C PJ6 D SGND2 PC186 PR81 C C PL9 2.2UH PR65 7A S 0.01uF *1000PF 19.1K 1% 1000pF12 SENSE2+ N N RUN/SS2 13 1 2 G PQ67 PC181 PC66 *0.1U(0603) PC65 5m(1206) PC46 PC50 PC64 [34,36,37] DD_ONH 2N7002 PC184 1 1 6mm S PR93 0 PR89 *0 *0.1U(0603) 0.1uF 0.01uF
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PDF
PDF-Demo_Board.pdf
CONNECTIONS Device LEDs RS-232 S1 S2 S3 Pot LCD EEPROM Buzzer ICD Temp Y1/Y2 R16 Sensor 18-pin RB3:RB0 N/A MCLR RA4 RB0 RA0 N/A N/A N/A RB6/RB7 N/A Yes 28-pin RB3:RB0 RC6/RC7 MCLR RA4 RB0 RA0 RA3:RA1 RC3/RC4 RC2 RB6/RB7 RC3/RC4 Yes RD3:RD0 40-pin RB3:RB0 RC6/RC7 MCLR RA4 RB0 RA0 RA3:RS1 RC3/RC4 RC2 RB6/
in „PIC steuert LED sehr seltsam“ · Mikrocontroller und Digitale Elektronik ·