−40 to +85 ºC DTS Mode 2 Storage Temperature −40 to +85 ºC LP Mode 6 Exceeding any of the limits of this section may lead to permanent damage to the device. Channel Spacing Furthermore, extended operation at these
−40 to +85 ºC DTS Mode 2 Storage Temperature −40 to +85 ºC LP Mode 6 Exceeding any of the limits of this section may lead to permanent damage to the device. Channel Spacing Furthermore, extended operation at these
Enabled) POWER-DOWN SUPPLY CURRENT vs. V CC WATCHDOG TIMER ENABLED 20 85 °C 18 25 °C -40 °C 16 14 12 ) ( C10 I 8 6 4 2 0 2 2.5 3 3.5 4 4.5 5 5.5 VCC (V) Standby Supply Figure 89. Standby Supply Current vs. V (455 kHz Resonator, Watchdog Timer
112 √ √ √ 4/101/104 Version 1.11 June 27, 2001 Universal Serial Bus HID Usage Tables 55 Ref: Typical AT-101 Usage ID Usage ID Usage Name Position PC- Ma UNI Boot (Dec) (Hex) AT c X 59 3B Keyboard F2 113 √ √ √ 4/101/104 60 3C Keyboard F3 114 √ √ √ 4/101/104 61 3D Keyboard F4 115 √ √ √ 4/101/104 62 3E Keyboard
es mit den SPI Settings aus? Ich nutze inen SAM7.. Hier das CS Register s_pSpi->SPI_CSR[0] = AT91C_SPI_NCPHA // (SPI) Display //AT91C_SPI_CSAAT | AT91C_SPI_BITS_16 | 55<< 8 //AT91C_SPI_SCB // (SPI) Serial Clock Baud Rate | 55<<16 //AT91C_SPI_DLYBS | 55<<24; //AT91C_SPI_DLYBCT; // (SPI) Delay Between Consecutive Transfers Da habe ich schon unterschiedliche Werte ausgetestet leider ohne Erfolg. Jens
T T -55°C = NL 90TH PERCENTILE P 0 V < PD < 15 V C 1.1 – 0.03 BF % 0.015 5 nA < I< 50 µA E -40°C Y L PD O 1.0 25°C I N D R0.025 I 0.01 O E - T 0.9 85°C I S 0.005 H 100°C - 0.02 E P 0.8 N B U N O 0.0 P 0.7 I0.015
T T -55°C = NL 90TH PERCENTILE P 0 V < PD < 15 V C 1.1 – 0.03 BF % 0.015 5 nA < I< 50 µA E -40°C Y L PD O 1.0 25°C I N D R0.025 I 0.01 O E - T 0.9 85°C I S 0.005 H 100°C - 0.02 E P 0.8 N B U N O 0.0 P 0.7 I0.015
T T -55°C = NL 90TH PERCENTILE P 0 V < PD < 15 V C 1.1 – 0.03 BF % 0.015 5 nA < I< 50 µA E -40°C Y L PD O 1.0 25°C I N D R0.025 I 0.01 O E - T 0.9 85°C I S 0.005 H 100°C - 0.02 E P 0.8 N B U N O 0.0 P 0.7 I0.015
Hi Simone, at your diagram I noticed some differences to the original of Markus Frejek: your R11 (3.3k) is in original 33k (R10) your R10 (2.7k) is in original 27k (R7) your C4 is missing in original your C2 is
www.reichelt.de/Atmel-ATMega-AVRs/2/index.html?;ACTION=2;LA=2;GROUPID=2959;SID=12UH65rH8AAAIAAEg1tPQad75c0b6c08258d5706b0ad08c4af89a Danke und Gruß Christian
cycles after the rising edge. At that time CLKM is turned off. If the CLKM output is turned off (bits CLKM_CTRL = 0 in register 0x03), the SLEEP state is entered immediately. 22 AT86RF230 5131E-MCU Wireless-02/09 AT86RF230 Setting SLP_TR
0.93 0.92 0.91 z H t t 0.9 o k 3.0 V f 0.89 1.8 V 0.88 0.87 -40 -30 -20 -10 0 10 20 30 40 50 60 70 80 90 T [°C] 81 8067I–AVR–04/09 XMEGA A1 Figure 34-23. Internal 2 MHz Oscillator CalA Calibration Step Size T = -40 to 85°C, CC = 3V 0.006 0.005
of V CC n ×10 impedance transformation, but does not change logic voltage levels NXP Semiconductors P82B715 2 I C-bus extender n Supply voltage range 3 V to 12 V n Clock speeds to at least 100 kHz and 400 kHz
-lead TQFP, 64-lead QFN, 64-lead CA-BGA Op– 2.7 - 5.5Vages Operating temperature – Industrial (-40°C +85°C) and Automotive (-40°C +125°C) Maximum Frequency – 8 MHz at 2.7V - Industrial range Rev. 4251A–AVR–May 2003 16 MHz at 4.5V - Industrial range Advance Information 1 Advance Information Disclaimer
-lead TQFP, 64-lead QFN, 64-lead CA-BGA Op– 2.7 - 5.5Vages Operating temperature – Industrial (-40°C +85°C) and Automotive (-40°C +125°C) Maximum Frequency – 8 MHz at 2.7V - Industrial range Rev. 4251A–AVR–May 2003 16 MHz at 4.5V - Industrial range Advance Information 1 Advance Information Disclaimer
SEC. Tp 260 +0/-5 °C 217 °C TL RAMP-UP R 3 °C/SEC. MAX. RAMP-DOWN U 150 - 200 °C 6 °C/SEC. MAX. AT smax R Tsmin P M s tL T PREHEAT 60 to 150 SEC. 60to180SEC. 25 t 25 °C to PEAK TIME NOTES: THE TIME FROM 25 °C to PEAK TEMPERATURE
DC CHARACTERISTICS (Under operating range) Symbo (2) l Parameter Condition Min Typ Max Units NORD at 50MHz, 5 9 (3) FRD Single at 133MHz 7 11 ICC1 V CCActive Read current FRD Quad at 133MHz 10 14 FRD Quad DTR at 66MHz 10 14 85°C 20 (4) ICC2 V CCProgram Current CE# = VCC 105°C 17 22 (4) 125°C 25 (4)
2013 Sheet 35 of 49 2.0 A B C D ▯ A B C D E E BTB Conn From Port 1 SATA Conn 22 M M 1 R_SATA1TXN_C CC90 C0.01u25X0402 SATA1TXN_CCJNC 19 3 3 M 3 R_SATA1RXP_C CC7 C0.01u25X0402 SATA1RXP_CCJNC 16 +5VRUN_C 30 15 15 4 27 12 +5VRUN_C 12 4 C0.1u16Y0402 24 90 SATA1TXP_C 19 21 6 SATA1RXN_C CC12 CC13 6 PCBC1 18 3 SATA1RXP_C ▯ C10u10Y0805 C10u10Y0805 3 16 1 +3VRUN_C X_0R0402 1 3 3 E 3 ▯ M Q Q 1 SATA22PSF_BLACK-P E E M ▯ A A T N5N-22F0210-A81
sind die auch mit NC angegeben. Im Vorgänger mit dem AT89C51CC03 waren es 20MHz mit 2*33pF.
µC-Hersteller direkt die Antwort bekommen: Wenn das so ist (µC lange im Reset) sind externe Pulls zwingend. Heißt: Ein- und Ausschalten (!) der Versorgung müssen kontrollierte Verläufe haben. Ist das
copied from the BIOS ROM to system RAM for faster execution. The setting is either Enabled or Disabled. C000,16K Shadow C400,16K Shadow These options specify how the 32 KB of video ROM at C0000h is treated. The settings are: Enabled (default), Disabled and Cached. C800,16K Shadow CC00,16K Shadow D000,16K
, hab nur ne kurze Frage, schreibt jemmand den Webserver auch für einen 8051 von Philips (zb.: P89C51 etc)? Bitte melden hätte interesse an den Sourcecode MfG Titus
Programm annähernd einwandfrei übersetzt wird. Nur ganz am Schluß noch die Fehlermeldung: .... ccUhaaaa.s:3087 Error: garbage at end of line make: *** [main.o] Error 1 Hat da jemand noch eine Idee?!? MfG Kai Markus
B At A = 25°C, ±0.5 ±0.75 mV A input range = ±2.5 × REF At A = 25°C, ±0.5 ±1 mV A input range = ±1.25 × REF EO Offset error At A = 25°C, ±0.5 ±1.5 mV A input range = ±0.625 × REF At A = 25°C, ±0.5 ±2 mV A
gerade mal mit Assembler. Ich möchte die komplette Soundausgabe über eine Assembler-Routine in meinem C-Programm machen. Sie dazu den Beitrag im CC2-Forum: http://www.cczwei-forum.de/cc2/thread.php?postid=76548#post76548 Gruß Rolf
3 AN920/D 30 Q1 L ) TA= 25⋅C +V in +Vout A 10 VCC = 40 V ( + n V CC = 5 V MC34063 D1 Co RL r 3.0 A78S40 C g 1.0 g a a. Step–Down V out▯ Vin C 0.3 g L I 0.1 Ichg= Idischg +V in +Vout D1 + 0.030 0.2 0.4 0.6 0.8 1.0 MC34063 Q1 C R
3 AN920/D 30 Q1 L ) TA= 25⋅C +V in +Vout A 10 VCC = 40 V ( + n V CC = 5 V MC34063 D1 Co RL r 3.0 A78S40 C g 1.0 g a a. Step–Down V out▯ Vin C 0.3 g L I 0.1 Ichg= Idischg +V in +Vout D1 + 0.030 0.2 0.4 0.6 0.8 1.0 MC34063 Q1 C R
3 AN920/D 30 Q1 L ) TA= 25⋅C +V in +Vout A 10 VCC = 40 V ( + n V CC = 5 V MC34063 D1 Co RL r 3.0 A78S40 C g 1.0 g a a. Step–Down V out▯ Vin C 0.3 g L I 0.1 Ichg= Idischg +V in +Vout D1 + 0.030 0.2 0.4 0.6 0.8 1.0 MC34063 Q1 C R
3 AN920/D 30 Q1 L ) TA= 25⋅C +V in +Vout A 10 VCC = 40 V ( + n V CC = 5 V MC34063 D1 Co RL r 3.0 A78S40 C g 1.0 g a a. Step–Down V out▯ Vin C 0.3 g L I 0.1 Ichg= Idischg +V in +Vout D1 + 0.030 0.2 0.4 0.6 0.8 1.0 MC34063 Q1 C R
tied to VCC or SS D010 C INT Input capacitance — — 7 pF VCC = 0V, f = 1 MHz, Ta = 25°C (Note 1) D011 VDR RAM data retention — 1.0 — V (Note 2) voltage D012 VTRIP V BATChange Over 1.6 1.8 2.0 V Typical at Ta = 25°C (Note 1) D013
21 3 2 1 0 MSB Electronic Signature Out High Impedance Q 7 6 5 4 3 2 1 0 MSB AI04047C Note: The value of the 8-bit Electronic Signature, for the M25P64, is 16h. 25/38 M25P64 POWER-UP AND POWER-DOWN At Power-up and Power-down, the device must – t after V passed the V threshold PUW CC WI
Distributors for availability and specifications. ESD Susceptibility (Note 10) 800V D 0 Supply Voltage (CC ) (Note 3) 6.5V 8 Voltage Operating Ratings (Notes 1, 2) 0 / Logic Control Inputs −0.3V to +18V Temperature Range TMIN≤TA≤T MAX A At Other Input and Outputs −0.3V to (CC +0.3V) ADC0804LCJ −40˚C≤T A+85
Distributors for availability and specifications. ESD Susceptibility (Note 10) 800V D 0 Supply Voltage (CC ) (Note 3) 6.5V 8 Voltage Operating Ratings (Notes 1, 2) 0 / Logic Control Inputs −0.3V to +18V Temperature Range TMIN≤TA≤T MAX A At Other Input and Outputs −0.3V to (CC +0.3V) ADC0804LCJ −40˚C≤T A+85
logo that is displayed when the gameboy gets turned on. The hexdump of this bitmap is: CE ED 66 66 CC 0D 00 0B 03 73 00 83 00 0C 00 0D 00 08 11 1F 88 89 00 0E DC CC 6E E6 DD DD D9 99 BB BB 67 63 6E 0E EC CC DD DC 99 9F BB B9 33 3E The gameboys boot procedure verifies the content of this bitmap (after
supply voltage and operating free-air temperature (unless otherwise noted) PARAMETER TEST CONDITIONS V CC TYP UNIT VLO VLO frequency Measured at MCLK 3 V 10 kHz (1) dfVLO/dT VLO frequency temperature drift Measured at MCLK 3 V 0.5 %/°C df /dV VLO frequency supply voltage drift Measured at MCLK (2) 1.8 V to 3.6 V 4 %/V VLO CC VLO,DC Duty cycle Measured at MCLK 3 V 50% (1) Calculated using the box method: (MAX(–40°C to 85°C) – MIN(–40°C to 85°C)) / MIN(–40°C to 85°C) / (85°C – (–40°C)) (2) Calculated using the box method:
oph,0x06 ; add 6 ori temp2,(1<<ZFL_H) ; set new H flag sbrc z_flags,ZFL_C ; | rjmp op_da_a02 ; if (C flag ... cpi opl,0x90 ; |... or upper nibble >= 0x90) brlo op_da_a03 ; | op_da_a02: ori oph,0x60 ; add 0x60 ori temp2,(1<<ZFL_C) ; set new C flag op_da_a03: ; endif rjmp op_da_ae
off low 0,59V/lsb 0xC7 00-7F read turn on low 0,59V/lsb 0xC8 00-7F read turn on high 0,59V/lsb 0xC9 00-7F read turn off high 0,59V/lsb 0xCA 00-7F motor 1 current 0,94A/lsb 0xCC 00-7F suppyl voltage 0,59V/lsb 0xCD 00-7F speed
C NN N N 2 2 2 22 2 S BB TN B B BBC N IA 3 3 33 3 IT A L CC C CC C CC C D 1 2 3 45 6 S ## BB # # ## C C NT 0 1 23 4 N# T K 1 1 1 99 99 9 9 9 99 9 8 8 88 88 88 8 87 7 7 77 7 77 7 7 6 66 6 6 0 0 0 9 876
günstige 'Konsole' mit: * Spielkonsole mit Tasten und Farbdisplay * USB-Updatemöglichkeit * 65c02 kompatibler CPU - dafür ACME und evtl. sogar mal cc65 zur Entwicklung Daher sehe ich das ähnlich wie beim C64 DTV.. Ideal für Hacker/Modder/Programmentwickler.. Das ist so alles schon toll.. und wenn wie gesagt erst C Programmierung über cc65 o.ä möglich ist.. und evtl. auch andere Teile im Flash genutzt werden können etc. gibt es hier doch so einige Möglichkeiten.. bis hin zu Hardwareerweiterunge über SPI o.ä..
PERCENTILE T T -55°C = NLBF 90TH PERCENTILE P 0 V <PD < 15 V C 1.1 – 0.03 – 0.015 5 nA <PD < 50 µA E -40°C Y L O 1.0 25°C I N D R0.025 I 0.01 O E - T 0.9 85°C I S 0.005 H 100°C - 0.02 E P 0.8 N B U N O 0.0 P 0.7 T0.015 T
irgendeine Enterprise Software, > die nur 3 Menschen in ganz Europa kennen und können^^mit PHP/Java/C# und > Opensource Framework-Kenntnissen wird man da wohl nicht so weit kommen > ... Nein, der oben benannte "AT-Bereich >100k€/a" ist kein AT, sondern Tarifgehalt Bayern bei 40h und damit auch ohne
Es ist ein DAX30 Konzern(Chemie), AT fängt bei 75K All-In an. AT bedeutet nicht immer direkt ÜT!