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Bild
Schaltplan eines AT90CAN128-16AI Mikrocontrollers
U1 AT90CAN128-16AI, VCC_2, VCC, GND_2, GND, AVCC, AGND, AREF, RESET, XTAL2, XTAL1, PG0_(WR), PG1, PG2_(ALE), PG3, PG4, PF7_(ADC7_TDI), PF6_(ADC6_TDO), PF5_(ADC5_TMS), PF4_(ADC4_TCK), PF3_(ADC3), PF2_(ADC2)
in „SPI Kommunikation zwischen AT90CAN und ATmega16 (AVR)“ · Mikrocontroller und Digitale Elektronik · · Schaltpläne
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PDF
AT90CAN128.pdf
Voltages: 2.7 - 5.5V • Operating temperature: Industrial (-40°C to +85°C) • Maximum Frequency: 8 MHz at 2.7V, 16 MHz at 4.5V Rev. 7679D–CAN–02/07 Note: 1. Details on section 19.4.3 on page 253. 1 1. Description 1.1 Comparison Between AT90CAN32, AT90CAN64 and AT90CAN128 AT90CAN32, AT90CAN64 and AT90CAN128
in „Umrechnen von analog to digital“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT90CAN128.pdf
Voltages: 2.7 - 5.5V • Operating temperature: Industrial (-40°C to +85°C) • Maximum Frequency: 8 MHz at 2.7V, 16 MHz at 4.5V Rev. 7679H–CAN–08/08 Note: 1. Details on section 19.4.3 on page 242. 1. Description 1.1 Comparison Between AT90CAN32, AT90CAN64 and AT90CAN128 AT90CAN32, AT90CAN64 and AT90CAN128
in „uC + 3 Schieberegister + 7-Segmentanzeige“ · Mikrocontroller und Digitale Elektronik ·
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Datei
usart_at90can128.c
/***************************************************** Project : usart_at90can128 Comments: Versuch Chip type : AT90CAN128 Clock frequency : 16,000000 MHz *****************************************************/ #include <90can128.h> // Alphanumeric LCD Module functions #asm
in „USART0 - Programmierung bei AT90CAN128“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AT90CAN128_Test.asm
;############################################################################# ;# # ;# Erstes Lebenszeichen des CAN Anwendung # ;# # ;# 2007-08-30 # ;# # ;############################################################################# ; ***AUTOR: Jörg Seemann*** ;///////////////////////// .include "can128def.inc";/ ;///////////////////////// ; Interupt-Sprungadressen: ;____________________________________________________________________________ .org 0x0000; Sprungadresse nach Reset-Interupt ] rjmp STACK; ] ; ] .org CANITaddr; Sprungadresse bei Timer0-Interupt ] rjmp CAN_RX; ] ;_____________________________
in „AT90CAN128 - CAN RX Interrupt?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MigrationDiff.pdf
, AT89C51CC03 users convert existing designs to AT90CAN128, AT90CAN64, AT90CAN32. The CAN controller used in T89C51CC01/AT89C51CC03 and the CAN ApplicationNote controller used in AT90CAN128 are almost identical
in „Migration von AT89C51CC03 nach AT90CAN128 - wie?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mega128-can128.pdf
AVR096: Migrating from ATmega128 to AT90CAN128 This application note is a guide to help current ATmega128 users convert existing designs to AT90CAN128. The information given will also help users migrating from any ATmega microcontroller to AT90CAN128. Additionally, the electrical characteris- tics of the AT90CAN128 are different than those of ATmega128. Check the datasheets of both of these products for detailed information. 8-bit Features
in „AtMega128 - At90Can128“ · Mikrocontroller und Digitale Elektronik ·
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Datei
TimerPrescalersSorted.txt
AT86RF401.xml:16: <CORE_VERSION>V2</CORE_VERSION> AT90CAN128.xml:11754: <TIMER0> AT90CAN128.xml:11762: <Prescaler>1:8:64:256:1024</Prescaler> AT90CAN128.xml:11764: <TIMER1> AT90CAN128.xml:11782: <TIMER2> AT90CAN128.xml:11788: <Prescaler>1:8:32:64:128:256:1024</Prescaler> AT90CAN128.xml:5: <CORE_VERSION>V2E</CORE_VERSION> AT90CAN32.xml:11694: <TIMER0> AT90CAN32.xml:11702: <Prescaler>1:8:64:256:1024</Prescaler
in „Timer Vorteiler Werte Definition“ · Mikrocontroller und Digitale Elektronik ·
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Datei
x.txt
addressing mode for X. -mtiny-stack Change only the low 8 bits of the stack pointer Known MCU names: at43usb320 at43usb355 at76c711 at86rf401 at90c8534 at90can128 at90can32 at90can64 at90pwm1 at90pwm161 at90pwm2 at90pwm216 at90pwm2b at90pwm3 at90pwm316 at90pwm3b at90pwm81 at90s1200 at90s2313 at90s2323
in „Eclipse (mars) und AVR -- Fehlermeldungen“ · Mikrocontroller und Digitale Elektronik ·
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avrdude.pdf
c32 AT90CAN32 c64 AT90CAN64 pwm2 AT90PWM2 pwm2b AT90PWM2B pwm3 AT90PWM3 pwm316 AT90PWM316 pwm3b AT90PWM3B 1200 AT90S1200 (****) 2313 AT90S2313 2333 AT90S2333 2343 AT90S2343 (*) 4414 AT90S4414 4433 AT90S4433
in „AVRDude als Tool in AVR Studio 4 einbinden“ · Mikrocontroller und Digitale Elektronik ·
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doc7593.pdf
Extended I/O memory and the next 4,096/8,192 locations address the internal data SRAM. 20 ATmega32U6/AT90USB64/128 7593J–AVR–03/09 ATmega32U6/AT90USB64/128 An optional external data SRAM can be used with the ATmega32U6/AT90USB64/128. This SRAM will occupy an area in the remaining address locations in the
in „Problem mit dem TC4469“ · Mikrocontroller und Digitale Elektronik ·
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avr8-gnu-toolchain-3.4.0.663-readme.pdf
atmega6490 atmega6490a atmega6490a atmega64a atmega64c1 atmega64m1 atmega64hve atmega32hvb atmega32hvbrevb at90can64 at90pwm216 at90pwm316 atmega16c1 atmega32c1 atmega16m1 atmega32m1 6 AVR 8-bit GNU Toolchain AVR 8-bit GNU Toolchain atmega16u4 atmega32u4 at90scr100 at90usb646 at90usb647 at94k m3000 atmega128a atmega1280 atmega1281 atmega1284 atmega1284p atmega128rfa1 at90can128 at90usb1287 atmega2560 atmega2561 atxmega16a4 atxmega16a4u atxmega16d4 atxmega32a4 atxmega32a4u atxmega32d4 atxmega32x1 atxmega64a3 atxmega64a3u atxmega64d3 atxmega64a1u atxmega64a4u
in „ATtiny10 ISR TIM0_COMPB_vect“ · Mikrocontroller und Digitale Elektronik ·
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Datei
dumpspecs1.txt
-m avr2}%{mmcu=atmega103|mmcu=atmega603|mmcu=at43*|mmcu=at76*:-m avr3}%{mmcu=atmega8*|mmcu=atmega48:-m avr4}%{mmcu=atmega16*|mmcu=atmega32*|mmcu=atmega64*|mmcu=atmega128|mmcu=at90can128|mmcu=at94k:-m avr5}%{mmcu=atmega325|mmcu=atmega3250|mmcu=atmega48|mmcu=atmega88|mmcu=atmega64|mmcu=atmega645|mmcu=atmega6450|mmcu=atmega128|mmcu=at90can128|mmcu=at90can128|mmcu=atmega162|mmcu=atmega165|mmcu=atmega168|mmcu=atmega169: -Tdata 0x800100} *lib: %{!mmcu=at90s1*:%{!mmcu=attiny11:%{!mmcu=attiny12:%{!mmcu=attiny15:%{!mmcu=attiny28
in „ATtiny24 - ISR wird nie gerufen __vectors> fehlt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr-libc-user-manual-1.8.0.pdf
, AT90PWM216, AT90PWM2- B, AT90PWM316, AT90PWM3B, AT90P- WM3, AT90PWM2, AT90PWM1, AT90- CAN128, AT90CAN32, AT90CAN64, A- Tmega103, ATmega128, ATmega1284P, - ATmega16, ATmega161, ATmega162, - ATmega163, ATmega168P
in „Interrupt Probleme beim Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATT5FCA9.pdf
STK501 ATmega325 STK502 ATmega8535 ATtiny2313 AT90S2343 ATmega1280 STK503 ATmega329 STK502 AT90CAN32 STK501 ATtiny2STK504 AT90S4414 ATmega1281 STK501 ATmega406 ATAVRSB10AT90CAN64 STK501 ATtiny25 AT90S4433 ATmega161 ATmega640 STK503 AT90CAN128 STK501
in „Angebot STK500+STK501+JTAGICE“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AVRootloader.asm
; copyright HR .nolist ; supported devices ;.include "can128def.inc" ; AT90CAN128 ;.include "can32def.inc" ; AT90CAN32 ;.include "can64def.inc" ; AT90CAN64 ;.include "m1280def.inc" ; ATmega1280 ;.include "m1281def.inc" ; ATmega1281 ;.include "m1284Pdef.inc
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Datei
AVRootloader.asm
; copyright HR .nolist ; supported devices ;.include "can128def.inc" ; AT90CAN128 ;.include "can32def.inc" ; AT90CAN32 ;.include "can64def.inc" ; AT90CAN64 ;.include "m1280def.inc" ; ATmega1280 ;.include "m1281def.inc" ; ATmega1281 ;.include "m1284Pdef.inc
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Datei
AVRootloader.asm
; copyright HR .nolist ; supported devices ;.include "can128def.inc" ; AT90CAN128 ;.include "can32def.inc" ; AT90CAN32 ;.include "can64def.inc" ; AT90CAN64 ;.include "m1280def.inc" ; ATmega1280 ;.include "m1281def.inc" ; ATmega1281 ;.include "m1284Pdef.inc
in „Bootloader von Hagen - Port toggeln während des Flashens“ · Mikrocontroller und Digitale Elektronik ·
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Datei
mlib-gen-3.diff
atmega1284p) -AM_CONDITIONAL(HAS_atmega1284p, test "x$HAS_atmega1284p" = "xyes") - -CHECK_AVR_DEVICE(at90can128) -AM_CONDITIONAL(HAS_at90can128, test "x$HAS_at90can128" = "xyes") - -CHECK_AVR_DEVICE(at90usb1286) -AM_CONDITIONAL(HAS_at90usb1286, test "x$HAS_at90usb1286" = "xyes") - -CHECK_AVR_DEVICE(at90usb1287
in „Fork: avr-libc version 3, für xtiny“ · Mikrocontroller und Digitale Elektronik ·
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STK200.pdf
D D D ATmega64 Socket Support ATmega169 DEVICE SOCKET DEVICE SOCKET DEVICE SOCKET ISP supportonly- AT90S1200 20D ATmega48 28D ATtiny26 20A boardsupporton STK300: AT90S2313 20D ATmega88 28D ATtiny2313 20D AT90S2323 8D ATmega168 28D ATtiny12 8D ATmega103 AT90S2343 8D ATmega8 28D ATtiny13 8D ATmega128 AT90S2333
in „Wer kennt dieses AVR-Board?“ · Mikrocontroller und Digitale Elektronik ·
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at29c010.pdf
Ordering Information t ICC(mA) ACC (ns) Active Standby Ordering Code Package Operation Range 70 50 0.1 AT29C010A-70JC 32J Commercial AT29C010A-70PC 32P6 (0° to 70°C) AT29C010A-70TC 32T 90 50 0.1 AT29C010A-90JC 32J Commercial AT29C010A-90PC 32P6 (0° to 70°C) AT29C010A-90TC 32T 50 0.3 AT29C010A-90JI 32J Industrial AT29C010A-90PI 32P6 (-40° to 85°C) AT29C010A-90TI 32T 120 50 0.1 AT29C010A-12JC 32J Commercial AT29C010A-12PC 32P6 (0° to 70°C) AT29C010A-12TC 32T 50 0.3 AT29C010A-12JI 32J Industrial AT29C010A-12PI 32P6
in „Beschaltung AT29C010 /Pulldowns?“ · Mikrocontroller und Digitale Elektronik ·
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opa128lm.pdf
Common-Mode Input Range ±10 ±12 ±10 ±12 ±10 ±12 ±10 ±12 V Common-Mode Rejection VIN= ±10VDC 80 118 90 118 90 118 90 118 dB OPEN-LOOP GAIN, DC Open-Loop Voltage Gain R ≥ 2k 94 128 110 128 110 128 110 128 dB L FREQUENCY RESPONSE Unity Gain, Small Signal (2) 0.5 1 0.5 1 0.5 1 0.5 1 MHz Full Power Response
in „Verkaufe 15 x OPA128LM“ · Markt ·
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AVRDUDE-doc-5.5.pdf
. If a part is unknown to AVRDUDE, it means that there is no config file entry for that part, but it can be added to the configuration file if you have the Atmel datasheet so that you can enter the programming specifications. Currently, the following MCU types are understood: c128 AT90CAN128 pwm2 AT90PWM2 pwm3 AT90PWM3 1200 AT90S1200 2313 AT90S2313 2333 AT90S2333 2343 AT90S2343 (*) 4414 AT90S4414 4433 AT90S4433 4434 AT90S4434 8515 AT90S8515 8535 AT90S8535 m103 ATmega103 m128 ATmega128 m1280 ATmega1280 m1281 ATmega1281
in „USB-ISP PRogrammer unter Ubuntu“ · PC Hard- und Software ·
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edip128-6e.pdf
rectangle from (0,0) to (64,15). No additional software or drivers are required. Strings and images can be placed with pixel accuracy. Text and graphics can be combined at any time. Different character sets can be used at same time. Each character set and the images can be zoomed from 2 to 8 times and
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S29GL512N.pdf
35 35 S29GL128N Part Number S29GL128N V = 2.7–3.6 V 80 90 Speed Option IO VCC= 2.7–3.6 V V = 1.65–1.95 V 90 10 IO Max. Access Time (ns) 80 90 90 100 Max. CE# Access Time (ns) 80 90 90 100 Max. Page access tiPACCt
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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OPA128KM.pdf
Common-Mode Input Range ±10 ±12 ±10 ±12 ±10 ±12 ±10 ±12 V Common-Mode Rejection VIN= ±10VDC 80 118 90 118 90 118 90 118 dB OPEN-LOOP GAIN, DC Open-Loop Voltage Gain R ≥ 2k 94 128 110 128 110 128 110 128 dB L FREQUENCY RESPONSE Unity Gain, Small Signal (2) 0.5 1 0.5 1 0.5 1 0.5 1 MHz Full Power Response
in „OPA 128 KM - veraltet?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Burr-Brown-ADS1230.pdf
(3) External Oscillator 90 100 dB Common-Mode Rejection at DC, AVDD = 0.1V 110 dB DATA= 10SPS 53 nV, rms Input-Referred Noise DATA= 80SPS 100 nV, rms Power-Supply Rejection at DC, AVDD = 0.1V 90 100 dB Voltage Reference Input
in „Konzept für eine Waage gesucht“ · Mikrocontroller und Digitale Elektronik ·
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at90can-v1.1.pdf
A11 PC3/A11 39 A12 AT90CAN128-TQFP PC4/A12 40 A13 PC5/A13 41 17 PC6/A14 42 A14 PB7/OC1C/OC0A 16 PC7/A15 A15 PB6/OC1B 15 PB5/OC1A B PG0/WR 33 WR PB4/OC2A 14 LED B PG1/RD 34 RD PB3/MISO 13 PG2/ALE 43 ALE EXTIF PB2/MOSI 12 PG3
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Preview_of__io.h_.pdf
<avr/io90pwmx.h> #elif defined (__AVR_AT90PWM2B__) # include <avr/io90pwm2b.h> #elif defined (__AVR_AT90PWM3__) # include <avr/io90pwmx.h> #elif defined (__AVR_AT90PWM3B__) # include <avr/io90pwm3b.h> #elif defined
in „µC am Mac mit C programmieren“ · Mikrocontroller und Digitale Elektronik ·
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COMPARISON_AVR_C51.PDF
reduces the Message object 11 AT90CAN128 Message object 10 host processor load. CAN Buffer Message object 9 Configuration Indirect addressing allows easy access to all the e Message object 8 e f i Data & Control bytes of the CAN controller
in „ata6660 und 89c51cc01“ · Mikrocontroller und Digitale Elektronik ·
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Crumb128-CAN_V5.0-5.1_infosheet.pdf
Peripherals Crumb128 V5.0 ATmega128 4kB SRAM 4kB EEPROM 128kB Flash - CP2102 USB-UART converter - mini USB B 5pin connector with RS232 - MAX3221 RS232 transceiver - status LED and tiny reset button Crumb128-CAN AT90CAN128 4kB SRAM 4kB EEPROM 128kB Flash - CP2102 USB-UART converter V5.0 - mini USB B 5pin connector - MAX3221 RS232 transceiver with RS232 - ISO 11898-24V standard CAN transceiver - status LED and tiny reset button Crumb128-CAN AT90CAN128
in „CAN Bus Kommunikation AT90CAN128, Crumb128-CAN V5.0 AVR CAN Modul“ · Mikrocontroller und Digitale Elektronik ·
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AD7193.pdf
100 dB E –70 L at 50 Hz ± 1 Hz and 60 Hz ± 1 Hz. F –80 0 –90 –10 –100 –20 –110 –30 –120 5 ) 0 30 60 90 120 150 7 B –40 FREQUENCY (Hz) 8 ( 0 I –50 Figure57.FilterResponseforAverage+DecimateFilter G –60 4 R (Sinc Filter
in „USB-Soundkarte zu einem Spannungslogger umbauen, wie die Eingänge schützen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
as5installer_stable-5.0.1038-readme-1.pdf
1.8 STK600 2.12 AVR Mega Series AVR Dragon AVRISP mkII AVR ONE! JTAGICE mkII QT600 Simulator STK600 AT90CAN128 Control Control AT90CAN32 Control Control AT90CAN64 Control Control AT90PWM1 Full Control Full Full Control AT90PWM216 Full Control Full Full Control AT90PWM2B Full Control Full Full Control
in „AVR-Studio 5“ · Mikrocontroller und Digitale Elektronik ·
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Datei
device.c
(6) - JMP(2) - TINY(10) { "AT90S2313", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP|DF_NO_LPM_X|DF_NO_ELPM|DF_NO_SPM|DF_NO_ESPM|DF_NO_MOVW|DF_NO_BREAK|DF_NO_EICALL|DF_NO_EIJMP}, { "AT90S2323", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP|DF_NO_LPM_X|DF_NO_ELPM|DF_NO_SPM|DF_NO_ESPM|DF_NO_MOVW|DF_NO_BREAK|DF_NO_EICALL|DF_NO_EIJMP}, { "AT90S2333", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP|DF_NO_LPM_X|DF_NO_ELPM|DF_NO_SPM|DF_NO_ESPM|DF_NO_MOVW|DF_NO_BREAK|DF_NO_EICALL|DF_NO_EIJMP}, { "AT90S2343", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP
in „AVR-ChipBasic2 - BASIC-Computer mit ATMega 644“ · Projekte & Code ·
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Datei
device.c
(6) - JMP(2) - TINY(10) { "AT90S2313", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP|DF_NO_LPM_X|DF_NO_ELPM|DF_NO_SPM|DF_NO_ESPM|DF_NO_MOVW|DF_NO_BREAK|DF_NO_EICALL|DF_NO_EIJMP}, { "AT90S2323", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP|DF_NO_LPM_X|DF_NO_ELPM|DF_NO_SPM|DF_NO_ESPM|DF_NO_MOVW|DF_NO_BREAK|DF_NO_EICALL|DF_NO_EIJMP}, { "AT90S2333", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP|DF_NO_LPM_X|DF_NO_ELPM|DF_NO_SPM|DF_NO_ESPM|DF_NO_MOVW|DF_NO_BREAK|DF_NO_EICALL|DF_NO_EIJMP}, { "AT90S2343", 1024, 0x60, 128, 128, DF_NO_MUL|DF_NO_JMP
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AVR_Product_Update_M__03.pdf
1 1 - - I 2.7-6.0 0-4 20 PDIP,SOIC now AT90S2313 2 128 128 15 - 1 - - - 1 1 - - I 4.0-6.0 0-10 20 PDIP,SOIC now AT90LS2323 2 128 128 3 - - - - - 1 - - - I 2.7-6.0 0-4 8 PDIP,SOIC now AT90S2323 2 128 128 3 - - - - - 1 - - - I 4.0-6.0 0-10 8PDIP,SOIC now AT90LS2343 2 128 128 5 - - - - - 1 - - - I 2.7-6.0 0-1 8PDIP,SOIC now AT90LS2343 2 128 128 5 - - - - - 1 - - - I 2.7-6.0 0-4 8PDIP,SOIC now AT90S2343 2 128 128 5 - - - - - 1 - - - I 4.0-6.0 0-10 8PDIP,SOIC
in „Atmel Familie“ · Mikrocontroller und Digitale Elektronik ·
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ATMegaEvoBoard.pdf
JP10 gesetzt ⇒ Versorgungsspannung VCC wird auf Pin 9 der SUB-D-Buchse herausgeführt. Einsatz des AT90CAN128 Folgende Bauteile können entfallen,wenn der On-Board-CAN des AT90CAN128 eingesetzt wird und der MCP2515 nicht benötigt wird : • JP4 • R26, R27 • IC7 (der MCP2515 natürlich) • C22, C23 • X3 Sollen
in „AT90CAN128 Development board“ · Mikrocontroller und Digitale Elektronik ·
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Datei
verlinkung.txt
aus Forenbeiträgen auf das Datenblatt # Verlinkung über verkürzte Bezeichnung auf ein Datenblatt - - AT32UC3L0128 - - AT32UC3L016 - - AT32UC3L0256 - - AT32UC3L032 - - AT32UC3L064 + * AT90CAN128 - - AT90CAN32 - - AT90CAN64 - - AT90PWM1 - - AT90PWM161 - - AT90PWM216 - # AT90PWM2B - - AT90PWM316 - # AT90PWM3B - - AT90PWM81 - - AT90USB1286 - - AT90USB1287 - - AT90USB162 - - AT90USB646 + * AT90USB647 - - AT90USB82 - - ATUC128L3U - - ATUC128L4U - - ATUC256L3U - - ATUC256L4U - - ATUC64L3U - - ATUC64L4U + - ATmega128
in „MC PIC - Warum diese Ungleichbehandlung?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
io.h
<avr/io90pwm2b.h> #elif defined (__AVR_AT90PWM3__) # include <avr/io90pwmx.h> #elif defined (__AVR_AT90PWM3B__) # include <avr/io90pwm3b.h> #elif defined (__AVR_AT90PWM216__) # include <avr/io90pwm216.h> #elif
in „direkt in ein Register des Tiny5 schreiben“ · Mikrocontroller und Digitale Elektronik ·
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Datei
AVRootloader.asm
; copyright HR .nolist ; supported devices ;.include "can128def.inc" ; AT90CAN128 ;.include "can32def.inc" ; AT90CAN32 ;.include "can64def.inc" ; AT90CAN64 ;.include "m1280def.inc" ; ATmega1280 ;.include "m1281def.inc" ; ATmega1281 ;.include "m1284Pdef.inc
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Datei
avr.h
atmega6450:crtm6450.o%s} \ %{mmcu=atmega649:crtm649.o%s} \ %{mmcu=atmega6490:crtm6490.o%s} \ %{mmcu=atmega128:crtm128.o%s} \ %{mmcu=atmega1280:crtm1280.o%s} \ %{mmcu=atmega1281:crtm1281.o%s} \ %{mmcu=atmega2560:crtm2560.o%s} \ %{mmcu=atmega2561:crtm2561.o%s} \ %{mmcu=at90can32:crtcan32.o%s} \ %{mmcu=at90can64:crtcan64.o%s} \ %{mmcu=at90can128:crtcan128.o%s} \ %{mmcu=at90usb646:crtusb646.o%s} \ %{mmcu=at90usb647:crtusb647.o%s} \ %{mmcu=at90usb1286:crtusb1286.o%s} \ %{mmcu=at90usb1287:crtusb1287.o%s} \ %{mmcu=at94k:crtat94k.o%s}" #define
in „ATtiny24 - ISR wird nie gerufen __vectors> fehlt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FLASH_IS25LP128.pdf
of SCK, and the data (interleave on dual I/O pins) shift out on both rising and falling edge of SCK at a maximum frequency. The 4-bit address can be latched-in at one clock, and 4-bit data can be read out at one clock, which means two bits at the rising edge of clock, the other two bits at the falling
in „STM32L4 memory-mapped QSPI Lesegeschwindigkeit maximieren“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IS25LP128.pdf
of SCK, and the data (interleave on dual I/O pins) shift out on both rising and falling edge of SCK at a maximum frequency. The 4-bit address can be latched-in at one clock, and 4-bit data can be read out at one clock, which means two bits at the rising edge of clock, the other two bits at the falling
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PDF
S29WS064J.pdf
Sequential Burst to prevent program or erase operations within that Secured Silicon Sector region sector — 128 words accessible through a command sequence, — Sectors can be locked and unlocked in-system atCC 64words for the Factory Secured Silicon Sector and level 64words for the Customer Secured Silicon Sector
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc1925.pdf
SCKT3700A1 Blue 1 Socket is not in use in this version of STK500 ATmega103 Use the STK501 Top Module ATmega128 Figure 3-16 shows an example of how AT90S2313 can be In-System Programmed. The 6-wire cable is connected from the ISP6PIN header to the red SPROG3 target ISP header, and the AT90S2313 part is inserted
in „STK500 als ISP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stk500.pdf
SCKT3700A1 Blue 1 Socket is not in use in this version of STK500 ATmega103 Use the STK501 Top Module ATmega128 Figure 3-16 shows an example of how AT90S2313 can be In-System Programmed. The 6-wire cable is connected from the ISP6PIN header to the red SPROG3 target ISP header, and the AT90S2313 part is inserted
in „STK500 mit Breadboard“ · Mikrocontroller und Digitale Elektronik ·
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PDF
25AA128.pdf
tolerances. Microchip Technology Drawing C04-018B DS21831D-page 16 © 2009 Microchip Technology Inc. 25AA128/25LC128 8-Lead Plastic Small Outline (SN) – Narrow, 3.90 mm Body [SOIC] Note: For the most current package drawings, please see the Microchip Packaging Specification located at http://www.microchip.com
in „SPI EEPROM -> Kein Page read :- O“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Supercapacitor-Lifetime-Explained.pdf
Calculated Lifetime in Hours DeratedVoltage 4.8 5 5.2 5.4 5.6 5.8 6 25 1,448,155 724,077 362,039 181,019 90,510 45,255 22,627 30 1,024,000 512,000 256,000 128,000 64,000 32,000 16,000 u 35 724,077 362,039 181,019 90,510 45,255 22,627 11,314 a 40 512,000 256,000 128,000 64,000 32,000 16,000 8,000 e m 45 362,039 181,019 90,510 45,255 22,627 11,314 5,657 T e 50 256,000 128,000 64,000 32,000 16,000 8,000 4,000 a 55 181,019 90,510 45,255 22,627 11,314 5,657 2,828 e D 60 128,000 64,000 32,000 16,000 8,000 4,000 2,000 65 90,510
in „Solarleuchte ohne Akku“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ads122c04.pdf
the modulator runs at a higher frequency. Running the ADS122C04 in turbo mode at a comparable output data rate as in normal mode yields better noise performance. For example, the input-referred noise at 90 SPS in turbo mode
in „ads122C04 ADC 24Bit“ · Mikrocontroller und Digitale Elektronik ·
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Datei
can-receiver.bas
' demo for CAN transmission with AT90CAN128 and BASCOM (Version 1.11.9.3) ' ' sender-hardware : AT90CAN128 with PCA82C250, 16 MHz-Quarz and 2x 68pF ' receiver-hardware: AT90CAN128 with PCA82C250, 16 MHz-Quarz and
in „AVR AT90CAN128 bei CAN-Empfang langsam“ · Mikrocontroller und Digitale Elektronik ·