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PCB-Layout eines Programmers für Padauk PDK-Serie
Programmer for Padauk PDK-Series original project is EasyPadkProgrammer 10.2024 R. Seelig ICE-con target socket JP5 B4 B3 B5 B2 B6 B1 B7 B0 A7 gnd A6 A0 A5 A4 A3 Vdd 5v pw supply JP4 3.3v JP3 HV_test swdio swclk GND swd JP1 +3.3v 100n 100n 22k 10k 10k 2.2k 100n 270k 10k 100n 6.8k 2.2k 10k 100n
in „EasyPDKProgrammer - Clone für Padauk MCUs“ · Projekte & Code · · Layouts
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Schaltplan eines 160W SMPS Netzteils
FUSE1 4A AC+ CY1 0.33uF/275VAC CX2 0.33uF/275VAC BR1 6A/400V C1 470uF/400V C2 15nF/630V TR1 18 17 15 16 12 11 8 7 4 5 2 1 3 4 R1 33k/2Ω L2 20uH D3 STTA506D 120V/0.83A C8 100uF/160V C9 47uF/160V GND L3 20uH C7 1000uF/50V C10 470uF/50V 33V/1.5A GND 12V/0.85A GND C5 47pF/1kV C15 1000uF/50V C17 470uF/50V C12 100nF/50V IC1 ICE2QS01 16 18 2 1 3 4 5 6 7 8 12 15 16 17 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48
in „Hameg HMO3524 Netzteil defekt“ · Analoge Elektronik und Schaltungstechnik · · Schaltpläne
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PDF
Samsung_Power_Board_Circuit_BN44-00357B.pdf
2012)FDM802 6 10K(2012)F 6 6.8K(2012)F 6.8K(2012)F BB804 SMAW200A-H18C3 C ICM801 EP10QY04 BEAD 3.5*6.0*1.0 C ICE1HS01G 1 D12V Vdrv 2 1 8 3T _DET FMIN VCC DM803 7 BLU 2 CS H-G7 P-GND LMDL6050T1G 3 D12V _On/Off 3 FB L-G6 DM804 2 ! EP10QY04 1 QM804 DM406 PWM 4 VINS GND5 4 RM817 3FQPF 9N50CT(500V/9A) FMW-
in „Defekten NTC ersetzen“ · Analoge Elektronik und Schaltungstechnik ·
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copter1-2.pdf
MOTOR4 V + 1 2 V D D 3 L L 4 5 6 7 8 + 8 3 1 1 1 1 1 2 3 + 2 3 4 5 6 JP2 2 2 2 2 2 D 2 1 1 29 AIN1/P1.0 / / / / / V TX/CTSN/P0.0 26 R R T 2 30 M M M M M 25 A 3 31 RX/AIN2/P1.2 W W W W W SPISS/RX/RTSN/P0.1 24 BK_CSN U 4 32 TX/AIN3/P1.3 P P P P / SPISS/PWM5/P0.4 23 BK_MOS 1 CPN0/AIN4/P1.4 O MOSI/P0.5 22 CPP0/AIN5/P1.5 P MISO/P0.6 BK_MIS C SPICLK/P0.7 21 BK_CLK GND 3 CPN1/AIN6/P3.0 MO1SEN 5 CPP1/AIN7/P3.1 IC1 ICE_CLK/P4.6 19 V 6 T0EX/STADC/INT0/P3.2 IDE_DAT/P4.7 20 3 MO2SEN 7 SDA/T0/P3.4 +JP1 MO3SEN 8 MINI
in „ATTiny85 Drohne“ · Mikrocontroller und Digitale Elektronik ·
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log.txt
] 9 [39] # [23] A [41] V [56] R [52] D [44] R [52] A [41] G [47] O [4f] N [4e] . [00] Raw message: 0x86 0x01 0xff 0x26 0x07 0x01 0xff 0x26 0x07 0x07 0x00 0xa2 0x00 0x05 0x39 0x23 0x41 0x56 0x52 0x44 0x52 0x41 0x47 0x4f 0x4e 0x00 Sign-on succeeded JTAG ICE mkII sign-on message: Communications protocol
in „AVR Dragon Probleme: RSP_FAILED“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATTiny1624.pdf
Package SOIC SOIC,VQFN VQFN Maximum frequency (MHz) 20 20 20 General purpose I/O 12 18 22 PORT PA[7:0], PB[3:0] PA[7:0], PB[5:0], PA[7:0], PB[7:0], PC[3:0] PC[5:0] External interrupts 12 18 22 Event system channels 6 6 6 CCL LUTs 4 4 4 Real-Time Counter (RTC) 1 1 1 16-bit Timer/Counter type A (TCA) 1
in „Neues Produkt AtTiny1624“ · Mikrocontroller und Digitale Elektronik ·
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Datei
log.txt
[01] . [f3] . [97] avrdude: jtagmkII_recv(): avrdude: jtagmkII_recv(): Got message seqno 0 (command_sequence == 0) avrdude: Recv: . [86] . [01] . [ff] . [0b] . [06] . [01] . [ff] . [0b] . [06] . [06] . [00] . [a2] . [00] . [00] . [00] . [07] A [41] V [56] R [52] D [44] R [52] A [41] G [47] O [4f] N [4e] . [00] Raw message: 0x860x010xff0x0b0x060x010xff0x0b0x060x060x000xa20x000x000x000x07 0x410x560x520x440x520x410x470x4f0x4e0x00 Sign-on succeeded JTAG ICE mkII sign-on message: Communications protocol version: 1 M_MCU: boot-loader
in „AVR DRAGON defekt?“ · Mikrocontroller und Digitale Elektronik ·
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schematic.pdf
PSU_DISABLE 20 EN VOUT 29 VOUT 36 37 VOUT +5V_PSU 18 9 C PGOOD_PU VCC C R? 17 PGOOD 22 BIAS_SEL FB 15 0.0 13 19 SS/TRK 12 SYNC 8 RT PGND 11 1 PGND 23 SW PGND 2 SW PGND 30 3 SW PGND 34 4 SW PGND 35 R? 5 SW PGND 38 64.9k 6 40 R39 31 SW PGND 41 10k 32 SW PGND 21 33 SW AGND 16 SW AGND LMZM33606 GND GND AGND_2 AGND_2 AGND_2 GND AGND_2 GND GND D D Title (Vc-Vf)/Rint (8.5-1.4)/6600 = 1mA(If) CTR = 0.5*130% = 65% (worst) Size Number Revision Ice = 1mA*0.65 = 650uA Rpullup = 18k (270uA) A3 Date: 3/4/2021 Sheet of File: Sheet1.SchDoc Drawn By: 1 2 3 4 5 6 7 8
in „Umschaltlösung professionell realisieren“ · Analoge Elektronik und Schaltungstechnik ·
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UM_10120_LPC213x_User_Manual.pdf
Interrupt Controller (VIC) Block Flag(s) VIC Channel # and Hex Mask WDT Watchdog Interrupt (WDINT) 0 0x0000 0001 - Reserved for Software Interrupts only 1 0x0000 0002 ARM Core Embedded ICE, DbgCommRx 2 0x0000 0004 ARM Core Embedded ICE, DbgCommTX 3 0x0000 0008 TIMER0 Match 0 - 3 (MR0, MR1, MR2, MR3)
in „Zeichen im Interrupt empfangen“ · Mikrocontroller und Digitale Elektronik ·
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UM10120_1.pdf
Interrupt Controller (VIC) Block Flag(s) VIC Channel # and Hex Mask WDT Watchdog Interrupt (WDINT) 0 0x0000 0001 - Reserved for Software Interrupts only 1 0x0000 0002 ARM Core Embedded ICE, DbgCommRx 2 0x0000 0004 ARM Core Embedded ICE, DbgCommTX 3 0x0000 0008 TIMER0 Match 0 - 3 (MR0, MR1, MR2, MR3)
in „Baudrate Abtastfrequenz“ · Mikrocontroller und Digitale Elektronik ·
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OSXXXX5A31A-CRLED14.pdf
Maximum Rating (Ta=25℃) ■ Directivity Item Symbol Value Unit 0 30° 30° DC Forward Voltage V F 20 V Power Dissipation P D 320 mW 60° 60° Operating Temperature Topr -30 ~ +85 ℃ Storage Temperature Tstg -40~ +100 ℃ 901 0.5 0 0.5 190° Lead Soldering Temperature Tsol
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Datei
log.txt
avrdude: Recv: . [2e] avrdude: Recv: . [85] avrdude: jtagmkII_recv(): Got message seqno 0 (command_sequence == 0) Raw message: 0x86 0x01 0xff 0x26 0x07 0x01 0xff 0x26 0x07 0x07 0x00 0xa2 0x00 0x05 0x39 0x23 0x41 0x56 0x52 0x44 0x52 0x41 0x47 0x4f 0x4e 0x00 Sign-on succeeded JTAG ICE mkII
in „AVR Dragon Probleme: RSP_FAILED“ · Mikrocontroller und Digitale Elektronik ·
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Datei
32mz.c
functionality) #pragma config CP = ON // Code Protect (Protection Enabled) int main(void){ OSCCONbits.FRCDIV = 0; OSCCONbits.COSC = 0; OSCCONbits.NOSC = 0; OSCCONbits.SLOCK = 0; OSCCONbits.SOSCEN = 0; OSCCONbits.CLKLOCK = 0; OSCTUNbits.TUN = 0b011111; while(PB1DIVbits.PBDIVRDY == 0); PB1DIVbits.PBDIV = 0b0000011; // PB1DIVbits.ON = 1; TRISB=0xFFFFFFFF; TRISE=0x00000000; unsigned int a[10]; while(1){ LATE=0x00000000; Nop(); Nop(); Nop(); Nop(); Nop(); Nop(); Nop(); Nop(); Nop(); Nop(); LATE=0xFFFFFFFF; }//while } // END main()
in „PIC32MZ 200MHZ“ · Mikrocontroller und Digitale Elektronik ·
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RF_PICKIT.pdf
a a a a a e e e e e e n n n n e i A A 0 r r H o D C C C C C C C C R R R R R R I I I I F S S S 1 C C U M r e v a e 3 3 e c 3 0 0 6 6 e e 3 3 3 6 0 0 , , 3 g R 0 0 0 0 , R R R 3 3 0 6 A z H 2 0 0 0 R 7 7 X X 3 6 6 6 0 3 3 3 3 h H M 4 e 0 0 0 X , , , , 6 , , , ,m 6 6 6 6 0 i M 0 2 0 a P P P , F F pF p , m m m h o , , , , 0 R 2 2 0 X e P , , , p 0 0 00 0 m o ho h o K H H H H Z i 5 5 D R a o p p p 0 0 0 0 0 o 0 0 o K 0 n n n n 0 - . . R r V N 3 6 7 3 1 1 3 4 0 3 4 1 1 10
in „[V] Verkaufe RF PIC KIT Transmitter & Receiver Module“ · Markt ·
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Pytes-Batterien-Produktvorstellung.pdf
Protokoll RS232 RS485 CAN Ladezyklen >6000 Zyklen bei 25C° Lebensdauer >10 Jahre Betriebstemperatur Laden 0 C° bis 45C° Entladen -10C° bis 55C° Zertifikate ICE62619 / UL 1973 / UN38.3 Verbindungsmetode Parallel Speichertemperatur Innerhalb eines Monats -20C°-55C° Innerhalb 1-3 Monaten 0C°-35C° Innerhalb 3-
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miniat91.pdf
FuntionKey로 편리하게 다운로드 할 수 있다. Copyright 2005 Digiparts Co., Inc. All rights reserved. (Manual Ver1.0 ) - 16 - SAM7SXX Mini Board 5. Board Schematic. Copyright 2005 Digiparts Co., Inc. All rights reserved. (Manual Ver1.0 ) - 17 - 5 4 3 2 1 +3.3V +1.8V +3.3V +1.8V +3.3V U1 LED1 PA0 / 7 VDDIN PWM0/TIOA0
in „AT91SAM7 Mini Board“ · Mikrocontroller und Digitale Elektronik ·
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D130906D.pdf
480V, V = 15V D F CE GE N 30 F - - 200 R VCE = 480V, GE = 15V R U U , 20 , ) ) O F d ( t t 10 100 0 10 20 30 40 0 10 20 30 40 ICE, COLLECTOR TO EMITTER CURRENT (A) CE , COLLECTOR TO EMITTER CURRENT (A) FIGURE 7. TURN-ON DELAY TIME vs COLLECTOR TO FIGURE 8. TURN-OFF DELAY TIME vs COLLECTOR TO EMITTER
in „Blitz Leistungsregelung“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
main.c
CS12)|(1<<CS11)|(1<<CS10)) #define CK_0008_Select (1<<CS11) #define OC1_HIGH ((1<<COM1A1)|(1<<COM1A0)) //damit OC1 (PD5) -> HIGH #define OC1_LOW (1<<COM1A0) //für OC1 -> LOW (&= ~) #define CK 3.686400 //systemtakt [Hz] mit JTAG-ICE //#define CK 8.0 //systemtakt [Hz] #define Tper 15000. //Gesamtperiode
in „8035 und ICP“ · Mikrocontroller und Digitale Elektronik ·
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Datei
main.c
CS12)|(1<<CS11)|(1<<CS10)) #define CK_0008_Select (1<<CS11) #define OC1_HIGH ((1<<COM1A1)|(1<<COM1A0)) //damit OC1 (PD5) -> HIGH #define OC1_LOW (1<<COM1A0) //für OC1 -> LOW (&= ~) #define CK 3.686400 //systemtakt [Hz] mit JTAG-ICE //#define CK 8.0 //systemtakt [Hz] #define Tper 15000. //Gesamtperiode
in „ICP bei 8535“ · Mikrocontroller und Digitale Elektronik ·
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Elektronikkomponenten und Dokumentation auf Holzboden
Atmel Evaluations-Board Version 2.0 Best.Nr. 610 036 Streifen-/Punktrasterplatinenadapter Best.Nr. 610 036 Bausatz Portsplitter Best.Nr. 610 036 AVR JTAG ICE
in „[V] Atmel AVR Evaluationsboard mit Zubehör“ · Markt · · Fotos
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PDF
nunchuk.pdf
communicate with the Nunchuk, we must send a handshake signal. If you are using a black Wii Nunchuk, send 0xF0, 0x55es to initialize the first register and 0xFB, 0x00 to initialize the second register of the Nunchuk. On a white Wii Nunchuk, send 0x40, 0x00 followed by 0x00 . The I C address of both Wii Nunchuks
in „AVR8ASM TWI Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dw_fuse_loeschen.txt
. [14] u [75] A [41] V [56] R [52] D [44] R [52 ] A [41] G [47] O [4f] N [4e] . [00] Raw message: 0x86 0x01 0xff 0x18 0x07 0x01 0xff 0x18 0x07 0x07 0x00 0xa2 0x00 0x03 0x14 0x75 0x41 0x56 0x52 0x44 0x52 0x41 0x47 0x4f 0x4e 0x00 Sign-on succeeded JTAG ICE mkII sign-on message: Communications protocol
in „avrdude fuses aus debugwire schreiben“ · Mikrocontroller und Digitale Elektronik ·
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Arduino Code und Text über ATMEL-ICE und JTAG
Sketch.cpp* Disassembly Makefile Vorlage main.cpp* #include <Arduino.h> byte wert = 0b01000101; void setup() { Serial.begin( 9600 ); } void loop() { while(1) { Serial.print( wert, BIN ); } } Mittels ATMEL-ICE und JTAG debuggen und in HTerm ansehen
in „Mit dem ATMEL STUDIO 7 klarkommen“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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Adapter Atmel ICE für PDI und UPDI
Adapter Atmel ICE ISP 2,54 ISP 88 PDI UPDI PDI UPDI DATA GND VDD CLK RES JTAG ATMEL1284 RES GND Vref TDI TDO TMS TCK ISP-2 JTAG 2,0 JTAG 2,54 ISP Atmel JTAG 1,27 7181336A_V3.2-0318
in „neue AVR-µCs: Entwicklungsumgebung“ · Mikrocontroller und Digitale Elektronik · · Platinenfotos
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Transistor-Tester mit LCD-Display und Testplatine
NPN 123=EBC B=103 Ic=.97mA Ube=713mV ICE0=34uA SOT 23 TO18 SOT89-3 SO8323 TO263-2 SOT223-3 SMA SMB SO123 TO252-2 SHA SMB SO123 miniWELF HELF
in „[VS] SMD Adapterboard für den AVR-Transitortester“ · Markt · · Platinenfotos
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Datei
OutputSynthesis.txt
---------------------------------------------------------------- testFill.counter[1] SB_DFFE Q Out 0.796 0.796 - fifodin[1] Net - - 0.834 - 3 testFill.counter_1_cry_1_c SB_CARRY I0 In - 1.630 - testFill.counter_1_cry_1_c SB_CARRY CO Out 0.380 2.009 - counter_1_cry_1 Net - - 0.014 - 2 testFill.counter
in „If-Bedingung nach dem Einschalten, falsch initialisiert?“ · FPGA, VHDL & Co. ·
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Datei
sheeva-probleme.txt
sheevaplug_reflash_uboot_env Info : clock speed 2000 kHz Info : JTAG tap: feroceon.cpu tap/device found: 0x20a023d3 (mfg: 0x1e9, part: 0x0a02, ver: 0x2) Info : Embedded ICE version 0 Info : feroceon.cpu: hardware has 1 breakpoint/watchpoint unit Info : accepting 'telnet' connection from 4444 requesting target
in „Sheevaplug brauche eine Einführung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FHKU70.pdf
: 0VGND FPM(Viton)/EPDMaufAnfrage 14°Fbis149°F Signalbelastung: max.20mA Turbine: PVDF Druckbereich: 20barbei20°C 290psi/68°F Leckstrom: max.10µA Magnete: KeramikSrFeO Anschlüsse: 3Pin-AMP2.8x0.8mm Einbaulage
in „Durchflussmesser an Atmega32“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FHKU70.pdf
: 0VGND FPM(Viton)/EPDMaufAnfrage 14°Fbis149°F Signalbelastung: max.20mA Turbine: PVDF Druckbereich: 20barbei20°C 290psi/68°F Leckstrom: max.10µA Magnete: KeramikSrFeO Anschlüsse: 3Pin-AMP2.8x0.8mm Einbaulage
in „Durchflusssensor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STK5Q4U362J-E-D.PDF
= 25C μ n f 100 o o TJ= 25C E200 E 50 0 0 0 2 4 6 8 10 12 14 16 18 20 0 2 4 6 8 10 12 14 16 18 20 Ic [A] Ic [A] Figure 7. EOFF versus ID for different temperatures Figure 6. EON versus ID for different temperatures 1.0 1.0 ] 0.8 W0.8 / C [ [ t 0.6 t0.6 R R e 0.4 e0.4 i i r r d 0.2 d0.2 a t S S 0.0 0.0 0.0001 0.01 1 100 0.0001 0.01 1 100 PT [s] PT [s] Figure 8. Thermal impedance plot (IGBT) Figure 9. Thermal impedance plot (FRD) X:100ns/div X
in „Ersatz für ON-Semi STK5Q4U362J-E / STK5Q4U363J-E bzw. passt da NFAQ1060L33T / NFAQ1060L36T“ · Analoge Elektronik und Schaltungstechnik ·
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MPLAB IPE Softwareoberfläche mit Programmierergebnissen
Selection Family: All Families Device: dsPIC33CK128MP502 Memory Model: Single Partition Tool: Atmel-ICE S.No : J41800112739 Apply Connect Results Checksum: EC60 Pass Count: 45 Fail Count: 0 Total Count: 45 Output - IPE Tool: NA Device: dsPIC33CK128MP502 Environment: dsPIC33CK-MP_DFP 1.11.346 Tool Pack
in „unterschied zwischen MPLAB X IDE und MPLAB X IPE?“ · Mikrocontroller und Digitale Elektronik · · Screenshots
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ATtiny212_412-Errata-and-Clarification-DS40002114B.pdf
Pulse-Width Measurement mode may lock to Freeze state if CLKSEL in TCB.CTRLA is set to any other value than 0x0. Work around Only use CLKSEL equal to 0x0 when using Input Capture Frequency and Pulse-Width Measurement mode. Affected Silicon Revisions Rev. A Rev. B X - 2.7.4 The TCA Restart Command Does Not Force
in „Attiny412 Temperatur intern“ · Mikrocontroller und Digitale Elektronik ·
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Datei
sheeva-probleme.txt
sheevaplug_reflash_uboot_env Info : clock speed 2000 kHz Info : JTAG tap: feroceon.cpu tap/device found: 0x20a023d3 (mfg: 0x1e9, part: 0x0a02, ver: 0x2) Info : Embedded ICE version 0 Info : feroceon.cpu: hardware has 1 breakpoint/watchpoint unit Info : accepting 'telnet' connection from 4444 Error: Invalid
in „Sheevaplug brauche eine Einführung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tn15def.inc
.device ATtiny15 ;***** I/O Register Definitions .equ SREG =$3F .equ SPL =$3D ; ICE only !!!!!! .equ GIMSK =$3B .equ GIFR =$3A .equ TIMSK =$39 .equ TIFR =$38 .equ MCUCR =$35 .equ MCUSR =$34 .equ TCCR0 =$33 .equ TCNT0 =$32 .equ OSCCAL =$31 .equ TCCR1 =$30 .equ TCNT1 =$2F .equ OCR1A
in „tn15def.inc????????“ · Mikrocontroller und Digitale Elektronik ·
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Datei
tn15def.inc
.device ATtiny15 ;***** I/O Register Definitions .equ SREG =$3F .equ SPL =$3D ; ICE only !!!!!! .equ GIMSK =$3B .equ GIFR =$3A .equ TIMSK =$39 .equ TIFR =$38 .equ MCUCR =$35 .equ MCUSR =$34 .equ TCCR0 =$33 .equ TCNT0 =$32 .equ OSCCAL =$31 .equ TCCR1 =$30 .equ TCNT1 =$2F .equ OCR1A
in „Probleme mit AVR-Studio4.12“ · Mikrocontroller und Digitale Elektronik ·
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C8051F310_short.pdf
switch between clock sources on-the-fly 15 µA at 32 kHz 32-Pin LQFP - Typical Stop Mode Current: <0.1 µA Temperature Range: –40 to +85 °C P0.0/VREF AnPowerDigital Port 0 P P0.1 VDD Latch 0 P0.2/XTAL1 P0.3/XTAL2 Port 1 D P0.5/RX Latch r P0.6/CNVST GND v P0.7 UART C2D 16 kB C P1.0 Debug 8 Timer R P P1.1
in „Welches 80C51 Derivat?“ · Mikrocontroller und Digitale Elektronik ·
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130729.future-strategic-issues-and-warfare.pdf
ECONOMIC WORLD 25 P U.S. D l 20 Europe b l China G o 15 India r a Japan S 10 e Brazil a n c 5 e P 0 1995 2020 2020 Low-Growth High-Growth OECD SCENARIOS Source: OCED, The World in 2020, p. 92 Future Strategic Issues, 7/01 Bio Revolution Applications • “Pharm Animals” [drugs, spare parts] • Fast Growing
in „The future is now! Kriegsführung der (nahen) Zukunft“ · Offtopic ·
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avr-jtag.pdf
Features: - Upgrades are done from AVR Studio AVR-JTAG (complete analog of ATMEL’s - Target Voltage 5.0V AVR JTAG ICE) is development tool for - No need for external power supply – power is programming, real time emulation and taken from target debugging for AVR microcontrollers JTAG interface (ATmega16
in „JTAG empfehlenswert?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr-jtag.pdf
Features: - Upgrades are done from AVR Studio AVR-JTAG (complete analog of ATMEL’s - Target Voltage 5.0V AVR JTAG ICE) is development tool for - No need for external power supply – power is programming, real time emulation and taken from target debugging for AVR microcontrollers JTAG interface (ATmega16
in „Anschluss JTAG am PC“ · Mikrocontroller und Digitale Elektronik ·
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icecubev1.2.pdf
C D4 C F 1 5 I C D R1 R2 D3 C C12 1 R3 IC3 2 ID LC10 L C11 C13 TP1 R 1 D SPK P J 26.01.21 23:15 f=0.60 /home/tobias/Documents/Projekte/Elektronik/IceCubeClock/Hardware/icecubev1.2.brd
in „Röhrenuhr IV-18“ · Projekte & Code ·
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PDF
icecubev1.2-brd.pdf
C D4 C F 1 5 I C D R1 R2 D3 C C12 1 R3 IC3 2 ID LC10 L C11 C13 TP1 R 1 D SPK P J 26.01.21 23:17 f=0.60 /home/tobias/Documents/Projekte/Elektronik/IceCubeClock/Hardware/icecubev1.2.brd
in „Röhrenuhr IV-18“ · Projekte & Code ·
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PDF
avr-usb-jtag.pdf
Full Support for Assembly and High Level AVR-USB-JTAG (complete analog of Languages ATMEL’s AVR JTAG ICE) is development tool - Program and Data Breakpoints for programming, real time emulation and - All Operations and Breakpoints are Real debugging for AVR microcontrollers with JTAG Time interface (ATmega16
in „programmer für avr studio 4.12 gesucht“ · Mikrocontroller und Digitale Elektronik ·
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Datei
help.txt
-tv --target-voltage <arg> Set the STK600, STK500 or Powerdebugger target voltage (float value). -a0 --aref0 <arg> Set the STK600 Aref0 or STK500 aref generator voltage (float value). -a1 --aref1 <arg> Set the STK600 Aref1 generator voltage (float value). -cg --clock-generator <arg> Set the STK600 or
in „atprogram.exe ISP geschwindigkeit einstellen / -cg Option Parameter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_TEC1-12705.pdf
Vmax when protection options (seeling). operating module. • Failure rate based on long time testings: 0.2%. • Life expectancy: 200,000 hours • Copyright HB Corporation. HB reserves the right to change these specifications witRev 2.03ice. 3
in „Kühlung unter 10°C mit Peltier“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datenblatt_TEC1-12705.pdf
Vmax when protection options (seeling). operating module. • Failure rate based on long time testings: 0.2%. • Life expectancy: 200,000 hours • Copyright HB Corporation. HB reserves the right to change these specifications witRev 2.03ice. 3
in „200W 2sec Zwischenkreiskondensator“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
serial.txt
raspi_read: from:30000 len:1000 .============================================ Ralink UBoot Version: 3.6.0.0 -------------------------------------------- ASIC 5350_MP (Port5<->None) DRAM_CONF_FROM: Boot-Strapping DRAM_TYPE: SDRAM DRAM_SIZE: 256 Mbits DRAM_WIDTH: 16 bits DRAM_TOTAL_WIDTH: 16 bits TOTAL_MEMORY_SIZE
in „Ralink RT5350F Board für 2,59 € !“ · Mikrocontroller und Digitale Elektronik ·
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Datei
avrdude_output.txt
jtagmkII_getsync(): Sending sign-on command: avrdude: jtagmkII_recv(): got wrong sequence number, 16 != 0 0x86 (26 bytes msg) JTAG ICE mkII sign-on message: Communications protocol version: 1 M_MCU: boot-loader FW version: 255 firmware version: 7.39 hardware version: 1 S_MCU: boot-loader FW version: 255
in „AVR Dragon ISP Programmierung langsam“ · Mikrocontroller und Digitale Elektronik ·
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Oliver_Lodge_patent_US609154.pdf
EECRC ELEGRAPHY. (ApplicationfiledFeb.1,1898.) (FloBiodel.)- .Sheets-Sheet . N.60,5. FtatdAg. ,19. .J.L0G. EECRC EEGRAPHY, (O ode.) a (Appl-cat,18-8.ed 2 sheets-Sheet 2. UN IT E DS T ATE S PA TE N TO FF ICE. t OLVERJOEPILODG, OFLVEROL ,ENGAND. ELECTRC TELEGRAPHY. eeIFCTINfrinprtfLtesaenN.6914,aeduust6198
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Synchronous_System_Measures___Ohms.pdf
Measurespas by Moshe Gerstenhaber and Mark Murphy The circuit in Fig 1 uses a synchronous-detection amp ICeRacts as a lowpass filter on the demodulated scheme to measure low-level resistances. Other low- voltage. The lowpass filtering will attenuate all uncor- resistance-measuring circuits sometimes inject
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IGrid-TT-10KW-15KW-Brochure.pdf
phase 184 - 264.5VAC per phase Nominal Output Current 14.5A per phase 21.7A per phase Power Factor > 0.99 EFFICIENCY 96% 95% OFF-GRID OPERATION AC INPUT AC Start-up Voltage/Auto Restart Voltage 120 - 140 VAC per phase / 180 VAC per phase Acceptable Input Voltage Range 170 - 280 VAC per phase Maximum AC
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