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Datenblatt_Xilinx_Virtex-5_LX.pdf
0 ohm Speed Selection: (Auto-Neg enabled) JT18: pins 1-2 0 ohm Speed1 Speed0 Speed Advertised 1 1 1000BASE-T, 10BASE-T (Speed1 – 0) 1 0 1000BASE-T 0 1 1000BASE-T, 100BASE-TX Speed 0* JT11: pins 1-2 0 ohm 0 0 1000BASE-T, 100BASE-TX, 10BASE-T JT12: pins 1-2 0 ohm Default: 1000BASE-T, 100BASE-TX, 10BASE-T
in „Ethernetschnittstelle programmieren - Anfänger“ · FPGA, VHDL & Co. ·
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PDF
Datenblatt_Xilinx_Virtex-5_LX.pdf
0 ohm Speed Selection: (Auto-Neg enabled) JT18: pins 1-2 0 ohm Speed1 Speed0 Speed Advertised 1 1 1000BASE-T, 10BASE-T (Speed1 – 0) 1 0 1000BASE-T 0 1 1000BASE-T, 100BASE-TX Speed 0* JT11: pins 1-2 0 ohm 0 0 1000BASE-T, 100BASE-TX, 10BASE-T JT12: pins 1-2 0 ohm Default: 1000BASE-T, 100BASE-TX, 10BASE-T
in „Ethernetschnittstelle Xilinx Virtex 5“ · FPGA, VHDL & Co. ·
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PDF
xapp694.pdf
USERIO CE M0 CF PROG M1 DIN/D0 DIN/D0 M2 XILINX CONFIGURATION XILINX FPGA PROM USERIO TCK TCK TCK TMS TMS TMS TDI TDI TDO TDI TDO TDO x694_01_033104 Figure 1: PROM and FPGA Connections with Additional Control Signal Table 1: Truth Table for PROM Control Inputs Control Inputs Outputs (1) Internal Address
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MyPC_sch.pdf
+C1 C3 2 c SUPPLY 100u MC34063AD 220pD S 1 0 47u R 6 GND GND 18k GND GND GND R3 + C2 3 2 k D R 1 1000u L g GND GND GND IC3 8 VIN VOUT 1 V 5 78L05SMD GND 100n 2 3 6 7 100n +C21 C19 C18 4,7u GND IC2 LP2985 V . 1 5 3 VIN VOUT . 1 3 ON-OFF DBYPASS 4 5 G 2 5 R 1 3.3V 2 C10 C9 C11 4 En 1u 10n 2,2u L g C14
in „Bitte Schaltplan&Layout checken“ · Mikrocontroller und Digitale Elektronik ·
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MyPC_sch.pdf
+C1 C3 2 c SUPPLY MC34063AD D S 100u 220p 3 0 47u R 6 GND GND 18k GND GND GND R3 + C2 3 2 k D R 1 1000u L g GND GND GND IC3 8 VIN VOUT 1 V 5 78L05SMD 100n GND 100n +C21 2 3 6 7 C19 C18 4,7u GND IC2 LP2985 . 1 5 3 VIN VOUT . 1 3 D 4 ON-OFF GBYPASS 2 5 R 1 3.3V C10 2 C9 C11 4 En 1u 10n 2,2u L g C14 h R27
in „Bitte Schaltplan&Layout checken“ · Mikrocontroller und Digitale Elektronik ·
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515502_1__2_.pdf
3.3V To Isolation Circuit To DRV From DRV J1 EMU0 100 50 EMU1 VCC_5V VCC_5V_CC TRSTn 99 EMU0 EMU1 49 TMS R18 330 SPI-SOMI SPI-SOMI [4] PWM_BL PWM_BL [3] ADC-Vhb1 ADC-Vhb1 [7] VCC_3.3V JP2 TDO 98 TRSTn TMS 48 TCK 1/10W 5% TDI 97 TD0 TCK 47 1 SPI-STE PWM_BH ADC-Vhb2 1 2 96 TDI DGND2 46 LED12 SPI-STE [4]
in „Allgemeine Frage bezüglich Motor Treiber/Inverter“ · Analoge Elektronik und Schaltungstechnik ·
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Sp3A-DSP-1800A-Starter-Schematic-Rev1.pdf
9 GND TDI 10 49R9 R5 JTAG_TDI 7 8 JTAG_TDO 5 GND TDO 6 49R9 R4 3 GND TCK 4 49R9 R3 JTAG_TCK 1 GND TMS 2 JTAG_TMS GND VREF 49R9 R2 +2.5V 87332-1420 +2.5V B RP1 B C49 C48 4 5 JTAG_TMS +2.5V +3.3V +3.3V +2.5V JTAG_TCK 0.1uF 0.1uF 3 6 JTAG_TDI 2 7 1 8 J8 2 1 4.7K 4 3.3V 3.3V 3 JTAG_TDO 6 GND TDO 5 JTAG_TMS
in „Schematics von Spartan 3A-DSP 1800 Board“ · FPGA, VHDL & Co. ·
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PDF
Disp14SegSch.pdf
8 9 DCLK 40 20 SDA R2I R2Q DDAT 41 PB0/T0/XCK SDA/PC1 21 TCK JTAG VCC 1 DSTB 42 PB1/T1 TCK/PC2 22 TMS 1 2 2 SSTB 43 PB2/AC0/INT2TMS/PC3 23 TDO 3 4 3 BLANK 44 PB3/AC1/OC0TDO/PC4 24 TDI /RESET 5 6 PB4/SS TDI/PC5 GND 4 1 PB5/MOSI OSC1/PC6 25 PC6 7 8 5 1 GND 2 PB6/MISO OSC2/PC7 26 PC7 9 10 SEG_R 6 2 VCC
in „Achtung, Newbie, LED-Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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MAX186-MAX188.pdf
MAX186) M operation. The 4-wire serial interface directly connects to SPI™, SPI-, QSPI-, Microwire-, TMS320-Compatible A 4-Wire Serial Interface X QSPI™ and Microwire™ devices without external logic. A Software-Configurable Unipolar or Bipolar Inputs serial strobe output allows direct connection to TMS320
in „Allgemeine Frage zu ADC Spezifikationen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD7908_7918_7928.pdf
SAMPLE TA = 25°C AV DD = VDRIVE= 2.70V RANGE = 0V TO REF IN 55 0 10 100 1000 8 INPUT FREQUENCY (kHz) 3 0 Figure5.AD7928SINADvs.AnalogInputFrequencyfor VariousSupplyVoltagesat1MSPS Rev. C | Page 13 of 28 AD7908/AD7918/AD7928 –50 1.0 f = 1MSPS R = 1000Ω SAMPLE IN AV DD = VDRIVE
in „Leakage Current am Analog Input bei A/D-Wandler AD7928“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD7908_7918_7928.pdf
SAMPLE TA = 25°C AV DD = VDRIVE= 2.70V RANGE = 0V TO REF IN 55 0 10 100 1000 8 INPUT FREQUENCY (kHz) 3 0 Figure5.AD7928SINADvs.AnalogInputFrequencyfor VariousSupplyVoltagesat1MSPS Rev. C | Page 13 of 28 AD7908/AD7918/AD7928 –50 1.0 f = 1MSPS R = 1000Ω SAMPLE IN AV DD = VDRIVE
in „ADC-Überspannungschutz mit Z-Diode; Einfluss auf die Messgenauigkeit“ · Mikrocontroller und Digitale Elektronik ·
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Prime_Sense_DevKit_V2_reduced_size.pdf
org. FPGA design as Prime Sense DevKit V2 (Kinect) 34 free High Speed I/O over MICTOR header 04-PS1000.SchDoc 34 free High Speed I/O over MICTOR header 04-PS1000.SchDoc USB Port -> CY7C68000 -> PS1000 C C 34 free High Speed I/O over MICTOR header 36 free High Speed I/O over MICTOR header Prime Sense ASIC PS1000 04-PS1000.SchDoc Video Port (2 x 2.56Gbit SERDES) USB Port -> directly to PS1000 this must be Kinect port, see image below 05-Power.SchDoc Power supply - onlypartialy as i don't care about D D 99-picture.SchDoc
in „Preisgünstige elektronische Geräte für reverse-engineering - Part 3“ · Mikrocontroller und Digitale Elektronik ·
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tlv320aic12k.pdf
PFB 48 1000 330.0 16.4 9.6 9.6 1.5 12.0 16.0 Q2 TLV320AIC24CPFBR TQFP PFB 48 1000 330.0 16.4 9.6 9.6 1.5 12.0 16.0 Q2 TLV320AIC24IPFBR TQFP PFB 48 1000 330.0 16.4 9.6 9.6 1.5 12.0 16.0 Q2 TLV320AIC25CPFBR TQFP
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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Aufgabe_Probleme.pdf
die PCI-Steckkarten sind nicht günstiger. Ein bezahlbarer Preis wäre ein Betrag zwischen 500€ und 1000€. Deshalb wollte ich Sie fragen ob Sie evtl. eine günstigere Realisierung hierfür kennen, oder gibt es noch schnellere DA-Wandler Module (als 500KHz) für das Virtex2 Bord? Ist so etwas vielleicht sogar
in „Probleme bei der IIR-Filter Realisierung“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
Application_Note_SPI_Protocol_e.pdf
R1 (Ω) R2 (Ω) R3 (kΩ) R4 (Ω) R5 (kΩ) MOS (V) (V) (V) type 5VµCtrl w/o O.D. w/o 3.3V 5V 5V 5V 100 1000 20 1000 20 BS 170 5VµCtrl w/o O.D. w 3.3V 5V 3,3V 5V 150 1000 N/A 1000 20 BS 170 3,3VµCtrl w/o O.D. (*1) 3,3V 3,3V 5V 150 1000 N/A N/A N/A BS 170 5VµCtrl w O.D. w/o 3.3V(*2) 5V 5V 5V 100 1000 20 1000
in „SPI Winkelsensor Novotechnik RFC4800 will nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ug_m10_config.pdf
tri-stated if data is not shifted out of the • boundary-scan test data device. • programming data TMS Input pin that provides the control signal•toTMS is sampled on the rising edgTCKf determine the transitions of the TAP • TMS pins have internal weak pull-up resistors. controller state machine. TCK
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XMEGA-A3BU_XPLAINED_Design_Documentation_rev2.PDF
XMEGA-A3BU_XPLAINED_TopLevel.SchDoc 1 2 3 4 5 6 7 8 1 2 3 4 5 6 7 8 A A 3.3V linear regulator with input range from - 4.4V - 18V U1000 VCC_USB_VBUS_P5V0 NCP1117LPST33T3G VCC_P3V3 VCC_USB_VBUS_P5V0 PIU10003VIN VOUT PIU10002 VCC_P3V3 10C1000 PIU10001GND VOUT_PAD PIU10004 I0 NOTE!! ESR on output capacitor should be between USB 2.0 Input
in „LED toggeln mit ATxmega256A3BU“ · Mikrocontroller und Digitale Elektronik ·
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miniat91.pdf
JTAGSEL 50 MOSI/PWM2_PA13 21 PA14 S C9 C10 C11 C12 47K R9 TCK 53 JTAGSEL SPCK/PWM3_PA14 20 PA15 47K R10 TMS 51 TCK TF/TIOA1_PA15 19 PA16 R2 0 G Q1 100nF 100nF 100nF 100nF 47K R11 TDO 49 TMS TK/TIOB1_PA16 TDI TDO PA17 IRLML6401 33 TDI TD/PCK1/AD0_PA17 9 PA18 ADVREF RD/PCK2/AD1_PA18 10 PA19 H->L (After Reset
in „AT91SAM7 Mini Board“ · Mikrocontroller und Digitale Elektronik ·
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AD2S90.pdf
proces- the TMS32020. The interface is configured in alternate internal sor needs to execute four right shifts. Once the NEC7720 has framing, external clock (externally inverted) mode. Sixteen bits read 16 bits, an
in „Resolver Anschließen“ · Analoge Elektronik und Schaltungstechnik ·
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iPhone_4_schem.pdf
JTAG_TRSTN XO0 A12 XTAL_24M_O 1R41 C 5% 14 DOCK_TCK JTAG_ST B15 JTAG_TCK CRYSTAL 1.00M Y2 C 1MF2W DOCK_TMS JTAG_ST USB_ANALOGTEST N20 NC 1% SM-2 01005 14 2 JTAG_ST D18 JTAG_TMS USB_ID R22 NC MF32W R40 24.000MHZ-16PF-60PPM 14 DOCK_TDI A19 JTAG_TDI P26 USBHS_P 201005 1 22 2 XTAL_24M_O_R 1 3 14 DOCK_TDO JTAG_ST
in „iphone 4 smd abgebrochen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AD7912_7922.pdf
protocols. INVRFS = INVTFS = 1,active low frame signal DTYPE = 00,right-justify data AD7912/AD7922toTMS320C541Interface The serial interface on the TMS320C541 uses a continuous ISCLK = 1,internal serial clock TFSR = RFSR = 1,frame every word serial clock and frame synchronization signals to synchronize
in „Problem mit STM32 und AD7912“ · Mikrocontroller und Digitale Elektronik ·
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PDF
msp430fr2532.pdf
clock pulse duration 2 V, 3 V 15 ns TCK,Low tTCK,High TCK high clock pulse duration 2 V, 3 V 15 ns tSU,TMS TMS setup time (before rising edge of TCK) 2 V, 3 V 11 ns tHD,TMS TMS hold time (after rising edge of TCK) 2 V, 3 V 3 ns tSU,TDI TDI setup time (before rising edge of TCK) 2 V, 3 V 13 ns t TDI hold
in „MSP430 Output nur auf zwei von vier Pinnen möglich?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avr_sim_deviceu.pas
begin Case Uppercase(LeftStr(s,5)) Of 'AT90P': begin ns:=nPwmStart; ne:=nAT90SStart; sn:=Copy(s,8,1000); end; 'AT90S': begin ns:=nAT90SStart; ne:=MaxDevices+1; sn:=Copy(s,6,1000); end; 'ATMEG': begin ns:=nMegaStart; ne:=nPwmStart; sn:=Copy(s,7,1000); end; 'ATTIN': begin ns:=1; ne:=nMegaStart; sn:=Copy(s,7,1000); end; end; n:=1; While (n<=Length(sn)) And (sn[n]>='0') And (sn[n]<='9') Do Inc(n); If n<=Length(sn) Then sn:=LeftStr(sn,n-1); n:=ns; While (n<ne) And (Pos(sn,LeftStr(aDevice[n],Pos('*',aDevice[n])
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PFC_FBC.pdf
VCC +5V_SEC I I I L4 100µH S S C13 C1 1 A S S S S C19 C18 (TOSC2/PCINT23)PC7 26 R R R PIN2 2 T1/T2 1000µF1000µF D B TR1 1000µ1000µF (TOSC1/PCINT22)PC6 25 _ _ _ +35V_PRI_SENSE T6/T7 T8/T9 T10/T11 T12/T13 OUT_SEC_SENSE OUT_SEC_SENSE IN+ CLK ADC_CLK_SEC (TDI/PCINT21)PC5 24 S K A PIN1 1 100nF100n100nF 23
in „PFC + Vollbrücken-Gegentaktwandler“ · Analoge Elektronik und Schaltungstechnik ·
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LCMXO640C-3TN144C.pdf
6 LLM0_PLLC_IN_A C* P1 PL11D 3 C P1 PL16B 6 C P1 PL19B 6 C P2 GNDIO2 2 P2 GNDIO5 5 P2 GNDIO5 5 P3 TMS 2 TMS P3 TMS 5 TMS P3 TMS 5 TMS M3 PB2C 2 T M3 PB2C 5 T M3 PB2A 5 T N3 PB2D 2 C N3 PB2D 5 C N3 PB2B 5 C P4 TCK 2 TCK P4 TCK 5 TCK P4 TCK 5 TCK M4 PB3B 2 M4 PB3B 5 M4 PB3B 5 N4 PB3C 2 T N4 PB4A 5 T N4
in „Erfahrung mit Siglent SDG 10xx Arbitrary Generatoren?“ · Markt ·
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AD7302.pdf
Output AD7302 1111 1111 2 × 255/256 × V REFV CLR B B 1111 1110 2 × 254/256 × V REFV PD VOUT VOUT 1000 0001 2 × 129/256 × V V A/B CS WR LDAC REF D7–D0 1000 0000 V REFV VDD 0111 1111 2 × 127/256 × V REFV DATA BUS CONTROL INPUTS 0000 0001 2 × V REF/256 V 0000 0000 0 V Figure 27. Typical Configuration Selecting
in „(S) AD7302BNZ DAC DIP20“ · Markt ·
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sniu023.pdf
User Interface (GUI) to modify the registers and display the data. 1 EVM Key Features 1. Evaluate TDC1000 Ultrasonic Analog-Front-End (AFE) 2. On-board C2000-TMS320F28035PAG Microcontroller 3. User Friendly TDC1000-C2000 GUI interface 4. Ports for two Ultrasonic Transducers 5. Ports for two RTD Sensors
in „Ultraschallwandler ansteuern“ · Analoge Elektronik und Schaltungstechnik ·
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CE041_schematics.pdf
TDO A14 TDO TDO 4 3 TCK EXT1_IO26 C13 IO_L10N_1_LDC2 FX2_PKTEND B2 IO_L01P_3 r r 1 I O TCK B13 TCK TMS 2 1 TDI a t S C TMS B14 TMS 3.3VCCO E13 VCCO_1_E13 3.3VCCO E1 VCCO_3_E1 m se C 3.3VCCO M14 VCCO_1_M14 3.3VCCO J2 VCCO_3_J2 * r X T some confidential information removed here ..... SPI FLASH N 3.3VCCO
in „CESYS EFM01 Spartan3E hack? - Frage“ · FPGA, VHDL & Co. ·
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PDF
board_schematic2.pdf
10 LINK100/SLED# A4 A26 SATA2_RX- 18 LCDD10 LVDS_B0- PCIE_RX2- PCIE2_RX- 10 19 LINK100/SLED# LINK1000# A5 GBE0_LINK100# SATA2_RX- SATA2_RX- 7 LCDD13 B73 A58 PCIE3_TX+ 19 LINK1000# GBE0_LINK1000# B22 SATA3_TX+ 18 LCDD13 LCDD12 B74 LVDS_B1+ PCIE_TX3+ A59 PCIE3_TX- PCIE3_TX+ 9 SATA3_TX+ B23 SATA3_TX- SATA3
in „USB 2.0 Beschaltung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Testboard_KK32F7.PDF
C TCK/SWCLK 10MHz clock TCK/SWCLK TDI TDI USART1_RX USART1_RX TDO/SWO TDO/SWO USART1_TX USART1_TX TMS/SWDIO TMS/SWDIO TRST TRST CAN1_TX CAN1_TX 84MHz clock CAN1_RX CAN1_RX TRACE_CK TRACE_CK CAN2_TX CAN2_TX TRACE_D0 TRACE_D0 CAN2_RX CAN2_RX TRACE_D1 TRACE_D1 TRACE_D2 TRACE_D2 BOOT0 U_KK32F7_Sheet5 TRACE_D3
in „STM32F7 Discovery Board“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Inout.c
SCIRXD bit 0 0: 0=IOPA0, 1=SCITXD */ *MCRB = 0xFE00; /* group B pins */ /* bit 15 1: 0=reserved, 1=TMS2 (always write as 1) bit 14 1: 0=reserved, 1=TMS (always write as 1) bit 13 1: 0=reserved, 1=TD0 (always write as 1) bit 12 1: 0=reserved, 1=TDI (always write as 1) bit 11 1: 0=reserved, 1=TCK (always
in „TMS320LF2407 ???“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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Datei
devlist.txt
5262 D1,P1 38S030 . . . . .2) 5261 D1,P1 38SA030 . . . . .2) 5263 D1,P1 SE77C42 . . . . .1) 5304 D1 TMS320E14 . . . .1) 5305 D1,P6+ TMS320E15 . . . .1) 5306 D1 TMS320E17 . . . .1) 5307 D1 TMS320E25 . . . .1) 5308 D1,P6+ TMS320P14 . . . .1) 6381 D1,P6+ TMS320P15 . . . .1) 5987 D1 TMS320P17 . . . .1) 6382 D1 TMS320P25 . . . .1) 6383 D1,P6+ TMS370C050 . . .3) 5533 P6+ TMS370C052 . . .3) 5534 P6+ TMS370C056 . . .3) 5535 P6+ TMS370C250 . . .3) 5536 P6+ TMS370C256 . . .3) 5537 P6+ TMS370C756 . . .3) 5309 P6+ TMS370C758
in „PROM lesen /schreiben / Programmiergerät“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Midi.pdf
AIN0/INT2)PB2 2 (T1)PB1 1 (T0/XCK)PB0 29 (TOSC2)PC7 28 (TOSC1)PC6 (TDI)PC5 27 (TDO)PC4 26 LED EDIT (TMS)PC3 25 REL LOOP PRE (TCK)PC2 24 REL LOOP POST (SDA)PC1 23 REL CH1 (SCL)PC0 22 REL CH2 21 (OC2)PD7 20 (ICP)PD6 19 (OC1A)PD5 18 (OC1B)PD4 17 (INT1)PD3 16 (INT0)PD2 (TXD)PD1 15 7 2 7 3 7 4 7 5 6 1 5 (RXD
in „Probleme mit Atmega16 beim auschalten der Lötstation“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MSP430F2274_Family_datasheet.pdf
currents are terminated. Activation of the fuse check mode occurs with the first negative edge on the TMS pin after power up or if TMS is being held low during power up. The second positive edge on the TMS pin deactivates the fuse check mode. After deactivation, the fuse check mode remains inactive until
in „UART_Initialisierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
038-05058-01-X-MLCC_REVB03_SKIT.pdf
= 3.3V 8 1 C90 1 U25 1 C91 IN OUT 0.1UF SN74AVC2T245 0.1UF C78 1 C44 1 1 1 C79 25V 2 2 25V 10uF 1 1000PF R36 10UF 7 6 25V 2 R40 5 50V 2 56.2K 2 10V USB_PWRD_VCCIO VCCA VCCB EN D 10.0K 2 D 2 FB 4 FTDI_3V3_FB FTDI_TMS 8 A1 B1 5 JTAG_TMS_C2M [6] D 1 FTDI_TDO 9 A2 B2 4 JTAG_TDO_M2C [6] USB_PWRD_VCCIO FTDI
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Datei
OpenOCD_Ausgabe.txt
transports it allows; assuming legacy JTAG-only Info : only one transport option; autoselect 'jtag' tms sequence is long adapter speed: 1000 kHz adapter_nsrst_delay: 100 jtag_ntrst_delay: 100 cortex_m3 reset_config sysresetreq usb_set_debug: Setting debugging level to 10 (on) usb_os_init: Found USB VFS
in „USBprog4: Diverse Probleme und Fragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Cypress_CY8C58LP_001-84932_0F-491909.pdf
5 5 5 5 6 6 6 6 6 6 6 6 0 6 6 6 6 6 6 6 6 6 6 6 6 6 6 1 10 100 1000 2 2 2 2 2 2 2 2 2 2 2 2 2 2 Sample Rate, Ksps Code, 20bit Figure 11-30. Delta-sigma ADC Noise Histogram, 1000 Figure 11-31. Delta-sigma ADC Noise Histogram, 1000 Samples, 16-bit, 48 ksps, Ext Ref, V
in „UART-Schnittstelle 2x verwenden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Layout_v2.8.pdf
/INT7)PE7 8 e e REGULATOR TD3 56 PF6(ADC6/TDO) (T3/INT6)PE6 7 V R R 1 red LED OK4 0 2 TD2 PF5(ADC5/TMS) (OC3C/INT5)PE5 5 2 24VDC/0.25ADC Supply 3,3k LED6 1 R TD1 57 PF4(ADC4/TCK) (OC3B/INT4)PE4 6 V3 1 6 5VDC Output for the µC Reg-Monitor 58 PF3(ADC3) (OC3A/AIN1)PE3 5 V2 S 1 3 0-10V Command signal R28
in „Schematic + Board“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Layout_v2.8.pdf
/INT7)PE7 8 e e REGULATOR TD3 56 PF6(ADC6/TDO) (T3/INT6)PE6 7 V R R 1 red LED OK4 0 2 TD2 PF5(ADC5/TMS) (OC3C/INT5)PE5 5 2 24VDC/0.25ADC Supply 3,3k LED6 1 R TD1 57 PF4(ADC4/TCK) (OC3B/INT4)PE4 6 V3 1 6 5VDC Output for the µC EXT1 Reg-Monitor 58 PF3(ADC3) (OC3A/AIN1)PE3 5 V2 S 1 3 0-10V Command signal
in „Schematic + Board“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr_board_0_2.pdf
P V 7805 5 J 1 3 I2C D1 1 3 + 1 1N4001 VI VO PC1 2 V J1 1 C7 GND C8 3 + 2 +C6 2 4 3 100nF 100nF V 1000µF + CON12 9..12V 1µF X2-1 GND GND IC3 C12 + X1 1 C1+ 1 X2-2 +C9 V+ 2 2 6 3 C1- 3 7 B 1µF V- 6 4 8 B 4 C2+ 5 9 +C10 1µF 5 C2- + RS232 RS232 1µF C11 11 T1IN T1OUT 14 1 CON3 PD0 2 1 12 T2IN T2OUT 13 3
in „kleines AVR ATmega32 Board“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Bauteile.txt
voltage, TO126, 6 Stück 13. ICL7109, 12bit-A/D-Wandler, 3 Stück 14. M27C256B, 256kbit-UV-Eprom, neu 15. TMS27C010A, 1Mbit-UV-Eprom, 5 Stück, neu 16. M27C1001, 1Mbit-UV-Eprom, 5 Stück, neu 17. AM29F040B, 4Mbit-Flash, 20 Stück, neu 18. ADC0804, 8bit-A/D-Wandler, DIL20 19. PCA82C250, CAN-Controller-Interface, DIL8, neu 20. SJA1000, CAN-Controller, DIP28, neu 21. TIC206M, TRIAC 3A 600V, TO220, 6 Stück, neu 22. BU522, NPN-Darlington Transistor 7A 350V, TO220, 6Stück 24. MT4C4256, 1Mbit-DRAM, DIL20, 4 Stück 25. HY534256S, 1Mbit-DRAM
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PDF
88E1111_DS.pdf
M 7v MA el DE e rv UN 1 MaL, 4 e*TI a d E N f 681FI 3 e4 N 7 2. LED_LINK10, LuD_LINK100, LED_LINK1000, LED_DUPLEX, LED_RX, and LED_TX.], CRS, and COL. 4. TDI, TMS, TzK,LTRSTn, and TDO.1. 1z V December 3, Document Classification: Page 73tary Information 7v M Integrated 10/100/1000 Ultra Gigabit Ethernet
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PDF
PWM_20schemes_20for_20BLDC.pdf
= 1) SimulSine 11.90 1.891 14.870 20.10 1000 66.08 7.63 0.706 pwm 4 11.90 1.933 14.811 20.02 1000 64.39 8.19 0.758 pwm 3 11.89 2.066 14.796 20.00 1000 60.26 9.76 0.903 pwm 2 11.90 2.037 14.811 20.02 1000 61.10 9.43 0.872 pwm 1 11.88 2.156 14.796
in „Diskrete H-Brücke“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Full_Code.c
Example_F2802xEpwmDeadBand.c // // Title: Check PWM deadband generation // // Group: C2000 // Target Device: TMS320F2802x // //! \addtogroup example_list //! <h1>PWM deadband generation</h1> //! //! This example configures ePWM1, ePWM2 and ePWM3 for: //! - Count up/down //! - Deadband //! //! 3 Examples are included
in „Fließkommazahlen in Ganzzahlen umrechnen für Register“ · Mikrocontroller und Digitale Elektronik ·
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powercontrol_v1.1.pdf
GND U (TOSC2)PC7 25 PC7 -1 A GND GND (TOSC1)PC6 PC6 (TDI)PC5 24 PC5 AUS (TDO)PC4 23 PC4 22 EIN3 L (TMS)PC3 21 PC3 -6 3N (TCK)PC2 PC2 JP1 ETO PC1(SDA) 20 PC1 +5V -5 O PC0(SCL) 19 PC0 VTG 2 3 GND ( RESET RST 5 4 GND EIN2 16 MOSI 1 6 GND -4 2 (OC2)PD7 PD7 MOSI MISO GND E (ICP)PD6 15 PD6 MISO 9 8 -3 D (OC1A
in „Meinung zu meiner Schaltung“ · Mikrocontroller und Digitale Elektronik ·
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powercontrol1.2.pdf
+5V B GND GND (TOSC1)PC6 25 PC6 C1+ 2 C 1 24 1 1 V+ + (TDI)PC5 23 PC5 C3 C1- D (TDO)PC4 PC4 6 + N (TMS)PC3 22 PC3 + 4 V- u 2 G (TCK)PC2 21 PC2 C2+ 1 1 20 1 9 C X6 PC1(SDA) 19 PC1 C5 C2- SV2 PC0(SCL) PC0 1 11 14 2 6 10 9 PD7 16 D TXD T1IN T1OUT PD4 8 7 (OC2)PD7 15 PD7 N 10 T2IN T2OUT 7 3 7 6 5 PD6 (ICP
in „Meinung zu meiner Schaltung“ · Mikrocontroller und Digitale Elektronik ·
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msp430fr5729.pdf
mode (6) Fault,LF (5) XTS = 0 10 10000 Hz OSC = 32768 Hz, XTS = 0, XT1BYPASS = 0, XT1DRIVE = {0}, 1000 T = 25°C, C = 6 pF START,LF Start-up time, LF mode (7) A L,eff 3 V ms OSC = 32768 Hz, XTS = 0, XT1BYPASS = 0, XT1DRIVE = {3}, 1000 T = 25°C, C = 12 pF A L,eff Integrated effective load CL,eff capacitance
in „Implementierung eines ADT7301 an einem MSP430FR5729“ · Mikrocontroller und Digitale Elektronik ·
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CD00002265_Triac_von_ST_Microelectonics.pdf
current and latching current versus junction dI/dt limitation: temperature (typical values) 50A/µs 2.0 1000 IGT TSM 1.5 IH& L 1.0 2 I t 0.5 T (°C) pulse with widthpt < 10 ms and corresponding value of p tms) j 100 0.0 0.01 0.10 1.00 10.00 -40 -20 0 20 40 60 80 100 120 140 Figure 9. Relative variation of critical
in „Triac Probleme mit MOC3043“ · Analoge Elektronik und Schaltungstechnik ·
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BTA16-600CWRG__600V__16A__TO220_isoliert__ST.pdf
current and latching current versus junction dI/dt limitation: temperature (typical values) 50A/µs 2.0 1000 IGT TSM 1.5 IH& L 1.0 2 I t 0.5 T (°C) pulse with widthpt < 10 ms and corresponding value of p tms) j 100 0.0 0.01 0.10 1.00 10.00 -40 -20 0 20 40 60 80 100 120 140 Figure 9. Relative variation of critical
in „MOIC ---> Triac, 115V, 400 Hz, 4A“ · Analoge Elektronik und Schaltungstechnik ·
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DOKUMENTATION_MSP430-F2013.pdf
0 0 CA4 (see Note 3) X X 1 0 TCK (see Note 4) X X X 1 P1.5/TA0/CA5/ 5 P1.5† Input/Output 0/1 0 0 0 TMS N/A 0 1 0 0 Timer_A2.TA0 1 1 0 0 CA5 (see Note 3) X X 1 0 TMS (see Note 4) X X X 1 P1.6/TA1/CA6/ 6 P1.6† Input/Output 0/1 0 0 0 TDI N/A 0 1 0 0 Timer_A2.TA1 1 1 0 0 CA6 (see Note 3) X X 1 0 TDI (see
in „MSP430 2013 XOUT/XIN ansteuern“ · Mikrocontroller und Digitale Elektronik ·