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PDF
Datenblatt_AT89S52.PDF
4.0V to 5.5V and Load Capacitance = 80 pF. CC 12 MHz Osc Variable Oscillator Symbol Parameter Min Max Min Max Units tXLXL Serial Port Clock Cycle Time 1.0 12 CLCL µs tQVXH Output Data Setup to Clock Rising Edge 700 10 tCLCL-133 ns tXHQX Output Data Hold After Clock Rising Edge 50 2 CLCL-80 ns tXHDX
in „AT89S52 Port 0 als I/0-Port“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datenblatt_AT89S52.PDF
4.0V to 5.5V and Load Capacitance = 80 pF. CC 12 MHz Osc Variable Oscillator Symbol Parameter Min Max Min Max Units tXLXL Serial Port Clock Cycle Time 1.0 12 CLCL µs tQVXH Output Data Setup to Clock Rising Edge 700 10 tCLCL-133 ns tXHQX Output Data Hold After Clock Rising Edge 50 2 CLCL-80 ns tXHDX
in „serielle Ausgaben auf AT89S52 Baud-Raten-Generator startet nicht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89C51.pdf
5.0 V ±20%; Load Capacitance = 80 pF) CC 12 MHz Osc Variable Oscillator Units Symbol Parameter Min Max Min Max tXLXL Serial Port Clock Cycle Time 1.0 12tCLCL µs tQVXH Output Data Setup to Clock Rising Edge 700 10tCLCL-133 ns tXHQX Output Data Hold after Clock Rising Edge 50 2tCLCL-117 ns tXHDX Input
in „Interner speicheraufbau eines 89C51 controllers“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATmega8_L__Summary.pdf
1 IDENTIFIER E1 E e D1 D C 0˚~7˚ A1 A2 A L COMMON DIMENSIONS (Unit of Measure = mm) SYMBOL MIN NOM MAX NOTE A – – 1.20 A1 0.05 – 0.15 A2 0.95 1.00 1.05 D 8.75 9.00 9.25 D1 6.90 7.00 7.10 Note 2 E 8.75 9.00 9.25 Notes: 1. This package conforms to JEDEC reference MS-026, Variation ABA. 2. Dimensions D1
in „Daten im EEProm aufzeichnen und später über RS232 senden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMega128CAN11_short.pdf
characteriza- tion of other AVR microcontrollers manufactured on the same process technology. Min and Max values will be available after the device is characterized. Pin Configurations Figure 1. Pinout ATmega128CAN11 ) ) ) K S O I T T T T ) ) ) ) / / / / C C C C C C C C 0 1 2 D D D D D D D D D D D C F (
in „ATmega128CAN11“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMega128CAN11_short.pdf
characteriza- tion of other AVR microcontrollers manufactured on the same process technology. Min and Max values will be available after the device is characterized. Pin Configurations Figure 1. Pinout ATmega128CAN11 ) ) ) K S O I T T T T ) ) ) ) / / / / C C C C C C C C 0 1 2 D D D D D D D D D D D C F (
in „ATmega128CAN11“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Powermeter.pdf
mechanism is illustrated in Figure 7. 13 2566A-AVR-07/04 Figure 7. Extended Timer/Counter Operation. MAX TCNT1 TC1extREM OCR1B OCR1A MAX ($FFFF) MAX ($FFFF) TC1extREM MAX ($FFFF) TC1ext 0 1 TC1extTOP TC1extTOP+1 0 O(EP) Display Pulse Outputs For each energy pulse emitted, an internal pulse counter is increased
in „230V Leistung erfassen mit ATmega128“ · Mikrocontroller und Digitale Elektronik ·
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PDF
volt230.pdf
mechanism is illustrated in Figure 7. 13 2566A-AVR-07/04 Figure 7. Extended Timer/Counter Operation. MAX TCNT1 TC1extREM OCR1B OCR1A MAX ($FFFF) MAX ($FFFF) TC1extREM MAX ($FFFF) TC1ext 0 1 TC1extTOP TC1extTOP+1 0 O(EP) Display Pulse Outputs For each energy pulse emitted, an internal pulse counter is increased
in „Netzteil ohne Trafo“ · Mikrocontroller und Digitale Elektronik ·
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PDF
energymeter.pdf
mechanism is illustrated in Figure 7. 13 2566A-AVR-07/04 Figure 7. Extended Timer/Counter Operation. MAX TCNT1 TC1extREM OCR1B OCR1A MAX ($FFFF) MAX ($FFFF) TC1extREM MAX ($FFFF) TC1ext 0 1 TC1extTOP TC1extTOP+1 0 O(EP) Display Pulse Outputs For each energy pulse emitted, an internal pulse counter is increased
in „Leistungsmessung über Shunt?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
doc2566.pdf
mechanism is illustrated in Figure 7. 13 2566A-AVR-07/04 Figure 7. Extended Timer/Counter Operation. MAX TCNT1 TC1extREM OCR1B OCR1A MAX ($FFFF) MAX ($FFFF) TC1extREM MAX ($FFFF) TC1ext 0 1 TC1extTOP TC1extTOP+1 0 O(EP) Display Pulse Outputs For each energy pulse emitted, an internal pulse counter is increased
in „Cadsoft Eagle“ · Platinen ·
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PDF
AT89S8252_Datasheet_doc0401.pdf
= 80 pF. External Program and Data Memory Characteristics Variable Oscillator Symbol Parameter Min Max Units 1/CLCL Oscillator Frequency 0 24 MHz LHLL ALE Pulse Width 2CLCL - 40 ns AVLL Address Valid to ALE Low tCLCL- 13 ns LLAX Address Hold after ALE Low tCLCL- 20 ns LLIV ALE Low to Valid Instruction
in „lichtschranke mit zählfunktion einer umdrehung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89S8252.pdf
= 80 pF. External Program and Data Memory Characteristics Variable Oscillator Symbol Parameter Min Max Units 1/CLCL Oscillator Frequency 0 24 MHz LHLL ALE Pulse Width 2CLCL - 40 ns AVLL Address Valid to ALE Low tCLCL- 13 ns LLAX Address Hold after ALE Low tCLCL- 20 ns LLIV ALE Low to Valid Instruction
in „UART_ Werte empfangen???“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89S8252.pdf
= 80 pF. External Program and Data Memory Characteristics Variable Oscillator Symbol Parameter Min Max Units 1/CLCL Oscillator Frequency 0 24 MHz LHLL ALE Pulse Width 2CLCL - 40 ns AVLL Address Valid to ALE Low tCLCL- 13 ns LLAX Address Hold after ALE Low tCLCL- 20 ns LLIV ALE Low to Valid Instruction
in „I2C Anschluß AT89S8252“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc0401.pdf
= 80 pF. External Program and Data Memory Characteristics Variable Oscillator Symbol Parameter Min Max Units 1/CLCL Oscillator Frequency 0 24 MHz LHLL ALE Pulse Width 2CLCL - 40 ns AVLL Address Valid to ALE Low tCLCL- 13 ns LLAX Address Hold after ALE Low tCLCL- 20 ns LLIV ALE Low to Valid Instruction
in „IDE für 8051“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89C5131A_Starter_Kit_Hardware_Guide.pdf
Reference Part D2 LED GREEN D1, D7, D9 LEDs RED D3, D4, D5, D6 LEDs PWR GREEN D8 MRA4007 D11 SMBJ9.0A U1 MAX202ECSE U8 DF005S TP1, TP2, TP3, TEST POINTS TP4, TP5, TP6 J7, J10, J12 JUMPER J13 CONNECTOR JACK PWR J8, J9 CONNECTORS BNC P1 SUB-D9 FEMALE J1 USB B J6, J5 HEADER 24X2 J11 CONNECTOR SIP2 J4 CONNECTOR
in „Programmierung über USB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Tiny15L.pdf
) 10.90(0.430) MAX *Controlling dimension: Inches REV. A 04/11/2001 9 1187DS–12/01 8S2 .020(.508) .012(.305) .213(5.41) .330(8.38) .205(5.21) .300(7.62) PIN1 .050(1.27)BSC .212(5.38) .203(5.16) .080(2.03) .070(1.78) .013
in „Frequenzschalter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Epcos_NTCs.pdf
in Ammo pack Approx. weight 0.2 g General technical data Climatic category (IEC 60068-1) 40/125/56 Max. power (at 25 °C) P25 200 mW Resistance tolerance R RR R ±5, ±10 % Rated temperature T 25 °C R Dissipation factor (in air) δth approx. 3.5 mW/K Thermal cooling time constant (in air) τc approx. 12 s
in „Kennlinie VDO Öltemperaturgeber“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Epcos_NTCs.pdf
in Ammo pack Approx. weight 0.2 g General technical data Climatic category (IEC 60068-1) 40/125/56 Max. power (at 25 °C) P25 200 mW Resistance tolerance R RR R ±5, ±10 % Rated temperature T 25 °C R Dissipation factor (in air) δth approx. 3.5 mW/K Thermal cooling time constant (in air) τc approx. 12 s
in „Temperatursensor Identifikation“ · Mikrocontroller und Digitale Elektronik ·
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PDF
en.DM00047230.pdf
Table 5. Value range for IEEE.754 number formats Sign Exponent Fraction Number 0 0 0 +0 1 0 0 -0 0 Max 0 +∞ 1 Max 0 -∞ [0, 1] Max !=0 & MSB=1 QNaN [0, 1] Max !=0 & MSB=0 SNaN [0, 1] 0 !=0 Denormalized Number [0, 1] [1, Max-1] [0, Max] Normalized Number 10/31 DocID022737 Rev 2 AN4044 IEEE standard for
in „Rechenzeitoptimierung STM32F4“ · Mikrocontroller und Digitale Elektronik ·
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PDF
NTCLE100E-SERIES_ENG_TDS.pdf
H2 I H 1 L 0 - 40 0 55 85 125 150 P d Tamb(°C) Note • Zero power is considered as measuring power max. 1 % of max. power. PHYSICAL DIMENSIONS FOR RELEVANT TYPE (all dimensions in millimeters) H1 R25VALUE BMAX. d H2 MAX. L P T MAX. MIN. MAX. 3.3 to 220 5.0 0.6 ± 0.06 1.0 4.0 6.0 24 ± 1.5 2.54 4.0
in „Gaggenau Backofen NTC-Luftfühler defekt“ · Haus & Smart Home ·
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PDF
NTCLE100E-SERIES_ENG_TDS.pdf
H2 I H 1 L 0 - 40 0 55 85 125 150 P d Tamb(°C) Note • Zero power is considered as measuring power max. 1 % of max. power. PHYSICAL DIMENSIONS FOR RELEVANT TYPE (all dimensions in millimeters) H1 R25VALUE BMAX. d H2 MAX. L P T MAX. MIN. MAX. 3.3 to 220 5.0 0.6 ± 0.06 1.0 4.0 6.0 24 ± 1.5 2.54 4.0
in „Defekt bei Sentiotec Sauna/Infrarotkabinen-Steuerung“ · Haus & Smart Home ·
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PDF
at91rm9200-ek.pdf
4 5 4 + 8 NTRST REF Q201 1 RES/PG C12 8 1 IRF7425 + + CR8 2 GND 7 100NF GND OUT CR7 3.3 V EN FB/NC MAX1626ESA STPS340U TPS77518D R288 C254 C255 4K7 100NF 2.2µF C25 220uF C 16V C C24 C23 220uF 220uF 16V 16V R244 0R100 I limit = 0.1V / R ... about 2.9A C221 R245 0R100 2.2µF U1 5V 5 V+ + 1 8 L1 22uH C2
in „SD-RAM aus PC für AT91RM9200 (ARM9)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89S8253-24PU.pdf
be enabled before the slave device(s). Table 14-4. SPI Master Characteristics Symbol Parameter Min Max Units tCLCL Oscillator Period 41.6 ns tSCK Serial Clock Cycle Time 4tCLCL ns tSHSL Clock High Time tSCK/2 - 25 ns tSLSH Clock Low Time tSCK/2 - 25 ns tSR Rise Time 25 ns tSF Fall Time 25 ns t Serial
in „AT89S8253-24PU ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
90s1200.pdf
ns ACPD CC Propagation Delay V CC= 4.0V 500.0 Notes: 1. “Max” means the highest value where the pin is guaranteed to be read as low. 2. “Min” means the lowest value where the pin is guaranteed to be read as high. 3. Although each I/O port can sink more than the
in „Unterschied zwischen einzelnen avr´s“ · Mikrocontroller und Digitale Elektronik ·
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PDF
avr450.pdf
max = = 488 S V I− Vsat−V O 15V − 0.5V − 15V Rb VADC = * ( ) This gives a duty cycle of Ra Rb on 4.88 s Where: = = 0.449 = 44.9 % • V ADCis the output voltage from the op-amp to the AVR T 9.96 s A/D. •
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PDF
Atmel_AT45DB081D.pdf
Characteristics – RapidS/Serial Interface AT45DB081D (2.5V Version) AT45DB081D Symbol Parameter Min Typ Max Min Typ Max Units fSCK SCK Frequency 50 66 MHz fCAR1 SCK Frequency for Continuous Array Read 50 66 MHz fCAR2 SCK Frequency for Continuous Array Read 33 33 MHz (Low Frequency) tWH SCK High Time 6.8 6.8
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Datei
main.c
eeprom_write_byte(&eeFooByte, nKeyPress); dauer = 0; Warte (100); } } } else{ bPortB = 1; } } return 0; int maxValue(int a[1998], int cnt) { int max; for(int i=0 ; i<cnt ; i++) { if(a[i] > a[i-1]) { 1998 = a[i]; } } return max; } int Array [1998]; Array [ 0 ] = 1999 ; Array [ 1 ] = 1998 ; Array [ 2 ] = 1997 ;
in „Geschwindigkeit durch Taster aus einem Array anwählen“ · Mikrocontroller und Digitale Elektronik ·
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datasheet.pdf
16Mb, 25s(typ.) for 32Mb, and 50s(typ.) for 64Mb LowPowerConsumption - Low active read current: 25mA(max.) at 86MHz, 20mA(max.) at 66MHz and 10mA(max.) at 33MHz -Lowactiveprogrammingcurrent:20mA(max.) - Low active erase current: 20mA (max.) - Low standby current: 20uA (max.) -Deeppower-downmode1uA(typical
in „MX25L160(5AM2C) neu beschreiben? Gibt es eine DIY Lösung?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MX25L6405D__3V__64Mb__v1.5.pdf
25s(typ.) for 32Mb, and 50s(typ.) for 64Mb • Low Power Consumption - Low active read current: 25mA(max.) at 86MHz, 20mA(max.) at 66MHz and 10mA(max.) at 33MHz - Low active programming current: 20mA (max.) - Low active erase current: 20mA (max.) - Low standby current: 20uA (max.) - Deep power-down mode
in „FLASH Memory Chip im Lenovo X200 von 8 MB auf 16 MB vergroessern“ · PC Hard- und Software ·
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doc1925.pdf
Figure 3-10. Schematic of UART Pin Connections VTG 5V 5V TXD 1n2 470R 2 3 470R RS-232 RXD Voltage MAX202CSE 1n2 Converter AVR STK500 User Guide 3-5 1925C–AVR–3/03 Hardware Description 3.6 Description of NB! Not valid: AT45D021 2-Mbit DataFlash is included on the STK500 for data storage. A DataFlash
in „STK500 als ISP“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stk500.pdf
Figure 3-10. Schematic of UART Pin Connections VTG 5V 5V TXD 1n2 470R 2 3 470R RS-232 RXD Voltage MAX202CSE 1n2 Converter AVR STK500 User Guide 3-5 1925C–AVR–3/03 Hardware Description 3.6 Description of An AT45D021 2-Mbit DataFlash is included on the STK500 for nonvolatile data storage. A DataFlash
in „STK500 mit Breadboard“ · Mikrocontroller und Digitale Elektronik ·
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PDF
T83C5121.PDF
20 nA.s Max. duration 400 ns CV CC Spikes on CVcc 4.6 5.4 V Max. variation CIcc 100 mA (1) CIcc = 0 TVHLl CVcc to 0 750 μs CVcc = 5V to 0.4V (1) Note: 1. Capacitor = 10 µF, X7R type. Maximum ESR value is 250 mohm
in „[V] 1 Stange ältere (ca. 56St) Atmel AT89C5121 mit Interface für Chipkarten/ SIM (9€)“ · Markt ·
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PDF
T83C5121.PDF
20 nA.s Max. duration 400 ns CV CC Spikes on CVcc 4.6 5.4 V Max. variation CIcc 100 mA (1) CIcc = 0 TVHLl CVcc to 0 750 μs CVcc = 5V to 0.4V (1) Note: 1. Capacitor = 10 µF, X7R type. Maximum ESR value is 250 mohm
in „[V] noch 1 Stange ältere (60St) Atmel AT89C5121 mit Interface für Chipkarten/ SIM (9€)“ · Markt ·
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PDF
AT89C51ED2.pdf
T - x T - x 15 15 ns T Min T - x 0.5 T - x 20 20 ns AVLL T LLAX Min T - x 0.5 T - x 20 20 ns TLLIV Max 4 T - x 2 T - x 35 35 ns T Min T - x 0.5 T - x 15 15 ns LLPL TPLPH Min 3 T - x 1.5 T - x 25 25 ns TPLIV Max 3 T - x 1.5 T - x 45 45 ns T Min x x 0 0 ns PXIX TPXIZ Max T - x 0.5 T - x 15 15 ns TAVIV
in „Einstieg in die C-Programmerung für µC“ · Mikrocontroller und Digitale Elektronik ·
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Datei
DDS.vhd
in integer:=0; DOUT : out std_logic_vector (31 downto 0); DIN_CNT_MAX: in integer:=0 ); end DDS; -------------------------------------------------- Architecture BEHAVIOUR of DDS is -------------------------------------------------- signal RESULT : signed (31 downto 0)
in „DDS mit DE0-Nano Board nur niedrige Frequenzen?“ · FPGA, VHDL & Co. ·
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Datei
PCM_master.vhd
is generic (clock_frequency: integer:= 49152000; -- Hz : here enter main clock frequency LRCK_CNT_MAX: integer:= 64; -- LRCK_CNT_MAX represents the divider max value referring to LRCK_CNT for generation of LRCK as urgently needed by PCM5142 --spi_clock_frequency: integer:= 3125000; -- Hertz : here enter spi clock frequency length_bits : integer := 16; DIN_CNT_MAX: integer:= 64 -- for generation of -2^32-1 value (test purposes) ); port ( -- this device's ports CLK : in std_logic; -- main clock the same as SCK for PCM5142 BCK_OUT : out std_logic; LRCK_OUT : out
in „DDS mit DE0-Nano Board nur niedrige Frequenzen?“ · FPGA, VHDL & Co. ·
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PDF
ssd1803_2_0.pdf
Generator RAM (CGRAM): 64 x 8 bits (8 characters) o Display Data RAM (DDRAM): 80 x 8 bits (80 characters max.) o Segment Icon RAM (SEGRAM): 16 x 8 bits (96 icons max.) • Available in Bare Die 3 ORDERING INFORMATION Table 3-1 Ordering Information Ordering Part Package Reference on CGROM Character Code Number
in „DIP203 LCD mit TMS320F28335 per SPI“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
Units T Min 2 T - x T - x 15 ns LHLL TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T Max 4 T - x 2 T - x 35 ns LLIV TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T Max 3 T - x 1.5 T - x 45 ns PLIV TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5
in „Kleine 8051 Fragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
Units T Min 2 T - x T - x 15 ns LHLL TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T Max 4 T - x 2 T - x 35 ns LLIV TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T Max 3 T - x 1.5 T - x 45 ns PLIV TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5
in „8051: Oszillatorfrequenz und Maschinenzyklus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
TLHLL Min 2 T - x T - x 15 ns TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T LLIV Max 4 T - x 2 T - x 35 ns TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T PLIV Max 3 T - x 1.5 T - x 45 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5 T
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
Units T Min 2 T - x T - x 15 ns LHLL TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T Max 4 T - x 2 T - x 35 ns LLIV TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T Max 3 T - x 1.5 T - x 45 ns PLIV TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5
in „EEPROM schreiben/lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
TLHLL Min 2 T - x T - x 15 ns TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T LLIV Max 4 T - x 2 T - x 35 ns TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T PLIV Max 3 T - x 1.5 T - x 45 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5 T
in „Temperatur ohne AD-Eingang messen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
TLHLL Min 2 T - x T - x 15 ns TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T LLIV Max 4 T - x 2 T - x 35 ns TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T PLIV Max 3 T - x 1.5 T - x 45 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5 T
in „Displaybeleuchtung faden ohne Analog I/O“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
TLHLL Min 2 T - x T - x 15 ns TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T LLIV Max 4 T - x 2 T - x 35 ns TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T PLIV Max 3 T - x 1.5 T - x 45 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5 T
in „Displaybeleuchtung mit PWM dimmen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
TLHLL Min 2 T - x T - x 15 ns TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T LLIV Max 4 T - x 2 T - x 35 ns TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T PLIV Max 3 T - x 1.5 T - x 45 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5 T
in „8051: An Port 0 kann nichts ausgegeben werden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
TLHLL Min 2 T - x T - x 15 ns TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T LLIV Max 4 T - x 2 T - x 35 ns TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T PLIV Max 3 T - x 1.5 T - x 45 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5 T
in „8051: An Port 1 nur 3.5V anstatt 5V ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51rd2.pdf
Units T Min 2 T - x T - x 15 ns LHLL TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T Max 4 T - x 2 T - x 35 ns LLIV TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T Max 3 T - x 1.5 T - x 45 ns PLIV TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5
in „Alternative Funktion von Pins“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
Units T Min 2 T - x T - x 15 ns LHLL TAVLL Min T - x 0.5 T - x 20 ns TLLAX Min T - x 0.5 T - x 20 ns T Max 4 T - x 2 T - x 35 ns LLIV TLLPL Min T - x 0.5 T - x 15 ns TPLPH Min 3 T - x 1.5 T - x 25 ns T Max 3 T - x 1.5 T - x 45 ns PLIV TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 15 ns TAVIV Max 5 T - x 2.5
in „Frequenz für µC AT89C51ED2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
89C51CC01C-SLSUM.pdf
TLHLL Min 2 T - x T - x 10 ns TAVLL Min T - x 0.5 T - x 15 ns T Min T - x 0.5 T - x 15 ns LLAX TLLIV Max 4 T - x 2 T - x 30 ns TLLPL Min T - x 0.5 T - x 10 ns TPLPH Min 3 T - x 1.5 T - x 20 ns TPLIV Max 3 T - x 1.5 T - x 40 ns TPXIX Min x x 0 ns TPXIZ Max T - x 0.5 T - x 7 ns TAVIV Max 5 T - x 2.5 T -
in „Bit Adressierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATMEGA_128.pdf
PIN 1 ID PIN 1 0.45(0.018) 0.30(0.012) 0.80(0.0315) BSC 14.10(0.555) 13.90(0.547) SQ 1.20 (0.047) MAX 0.20(0.008) 0˚~7˚ 0.09(0.004) 0.75(0.030) 0.15(0.006) 0.05(0.002 ) 0.45(0.018) *Controlliing dimension: millimeter REV. A 04/11/2001 15 2467AS–08/01 Atmel Headquarters Atmel Product Operations Corporate
in „ATMEGA128 Board im Neuhold Newsletter 2/2011“ · Mikrocontroller und Digitale Elektronik ·