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PDF
am29dl323db.pdf
Parameter Description Test Conditions Min Typ Max Unit VIN V SSto VCC ILI Input Load Current V = V ±1.0 µA CC CC max I A9 Input Load Current V = V ; A9 = 12.5 V 35 µA LIT CC CC max V = V to V , LO Output Leakage Current OUT SS CC ±1.0 µA VCC = VCC max CE# = V IL, V ,= IH 5 MHz 10 16 Byte Mode VCC Active Read
in „55 Stk. Flashbausteine 32Mbit, TSSOP48, 3,3V AM29DL323DB-90“ · Markt ·
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PDF
Support-Schematic.PDF
P01 R1 SCR-RS PCmtr07 PCmtr081-8 PICable207 PICable208 I 11 5V R11 R22 R33 R44 R55 PCmtr097 8 PCpt1101-10 SIPO-IN2 PICable209 8 PCbe00ISO-OUT2 P I I C 1 0 1 PIIC1014 10K 330 10K 10K 330 PISO11 P44 GND SIPO-IN 9 10 SCR-RESETB SIPO-SRCK 9 10 PISO-CP R1 2 1A VCC 13 P0 BLINK-DISABLE 20 I2 P02 R2 PISO- UT2T
in „Projekt: Schachcomputer mit OLED-Display, Gehäuse aus Holz (open source)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
A25L080_Flash.pdf
Current ± 2 µA ICC1 Standby Current S = VCC V INV SS or VCC 25 µA I Deep Power-down Current 25 µA CC2 S = VCC V INV SS or VCC C= 0.1V / 0.9.V at 100MHz, DO = open 25 mA CC CC I Operating Current (READ) CC3 C= 0.1V CC / 0.9.CC at 50MHz, DO = open 20 mA C= 0.1V / 0.9.V at 33MHz, DO = open 15 mA CC CC I Operating Current (PP) S 15 mA CC4 = V CC ICC5 Operating Current (WRSR) S 15 mA = V CC ICC6 Operating Current (SE) S 15 mA = V CC ICC7 Operating Current (BE) S 25 mA = V CC VIL Input Low Voltage –0.5 0.3VCC V V Input High Voltage 0.7V
in „MSP430 SPI A25L080 Flash“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tiny13_doc2535.pdf
V IL1 CLKI pin CC CC Input High-voltage VCC = 1.8V - 2.4V 0.8VCC(3) V IH1 (3) VCC +0.5 V CLKI pin VCC = 2.4V - 5.5V 0.7VCC V Input Low-voltage V = 1.8V - 5.5 -0.5 0.2V V IL2 RESET pin CC CC Input High-voltage V IH2 VCC
in „Atmel AVRs: SRAM so unwichtig?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PDIUSBD11_N_3.pdf
for other V O 0 to VCC 〉 15 mA I DC output sink or source current for D+/D– V = 0 to V 〉 50 mA O O CC GND ,CC DC V CCor GND current 〉 100 mA T STG Storage temperature range –60 +150 ⋅C P TOT Power dissipation per package NOTES: 1. Stresses beyond those listed may cause damage to the device. These are
in „AVR - USB - Interface“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PDIUSBD11.pdf
for other V O 0 to VCC 〉 15 mA I DC output sink or source current for D+/D– V = 0 to V 〉 50 mA O O CC GND ,CC DC V CCor GND current 〉 100 mA T STG Storage temperature range –60 +150 ⋅C P TOT Power dissipation per package NOTES: 1. Stresses beyond those listed may cause damage to the device. These are
in „PDIUSBD11... jemand schon mal was gemacht damit?“ · Mikrocontroller und Digitale Elektronik ·
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Thread
ATMega32 + LCD + Timer0
100000000C942A000C9447000C9447000C94470071 :100010000C9447000C94E3090C9447000C9447009F :100020000C9447000C9447000C9447000C94CC09A6 :100030000C9447000C9447000C9447000C94470024 :100040000C9447000C9447000C9447000C94470014 :100050000C94470011241FBECFE5D8E0DEBFCDBF12 :1000600010E0A0E6B0E0E4E5F3E202C005900D92F6 :10007000A238B107D9F710E0A2E8B0E001C01D92A4
100C90009D810197F1F79D838C838E819F810197C0 :100CA0009F838E838E819F81009769F724C068851A :100CB00079858A859B850E941D0DDC01CB019F8370 :100CC0008E838E819F819B838A838A819B810197FA :100CD000F1F79B838A830FC069897A898B899C8904 :100CE0000E941D0DDC01CB01888B88898983898155 :100CF0008A95F1F7898369960FB6F894DEBF0FBE27 :100D0000CDBFCF91DF910895DF93CF93CDB7DEB7FD
Mikrocontroller und Digitale Elektronik ·Max Meier · ·29 Antworten
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PDF
89C51CC01C-SLSUM.pdf
Pins are OL OL not guaranteed to sink current greater than the listed test conditions. Figure 59. I CC Test Condition, Active Mode VCC I CC V CC V CC V P0 CC RST EA (NC) XTAL2 CLOCK XTAL1 SIGNAL V SS All other pins are disconnected. 138 T89C51CC01 4129E–8051–03/02 T89C51CC01 Figure 60. I CC Test Condition, Idle Mode V CC I CC V CC V CC P0 RST EA (NC) XTAL2 CLOCK XTAL1 SIGNAL V SS All other pins are disconnected. Figure 61. I CC Test Condition, Power-Down Mode VCC ICC V CC V CC P0 RST EA (NC) XTAL2 XTAL1 VSS All other
in „Bit Adressierung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tiny13.pdf
Except RESET pin 0.6V CC V CC+0.5 V (3) V IH2 Input High-voltage RESET pin 0.9V CC V CC+0.5 V (4) V OL Output Low Voltage IOL= 20 mA, V CC= 5V 0.7 V (PB5, PB1 and PB0) IOL= 10 mA, V CC= 3V 0.5 V (4) V Output Low Voltage IOL=
in „ATtiny13 Datenblatt External Clock Source on T0-Pin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc2535.pdf
V CC= 2.4V - 5.5V -0.5 0.3VCC (2) V VIL Input Low Voltage, (2) RESET Pin as Reset (3) V CC= 1.8V - 5.5 -0.5 0.2VCC V V = 1.8V - 2.4V 0.7V (4) V + 0.5 V Input High Voltage, CC CC CC Any Pin as I/O V = 2.4V - 5.5V 0.6V (4) V + 0.5 V VIH CC CC CC Input High Voltage, (3) V CC= 1.8V - 5.5V 0.9V CC(4) VCC + 0.5 V RESET Pin as Reset Output Low Voltage, IOL= 20 mA, V CC = 5V 0.7 V Pins PB0 and PB1 (5) IOL= 10 mA, V CC = 3V 0.5 V VOL Output Low
in „RGB PWM mit Attiny13“ · Mikrocontroller und Digitale Elektronik ·
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PDF
doc2535.pdf
V CC= 2.4V - 5.5V -0.5 0.3VCC (2) V VIL Input Low Voltage, (2) RESET Pin as Reset (3) V CC= 1.8V - 5.5 -0.5 0.2VCC V V = 1.8V - 2.4V 0.7V (4) V + 0.5 V Input High Voltage, CC CC CC Any Pin as I/O V = 2.4V - 5.5V 0.6V (4) V + 0.5 V VIH CC CC CC Input High Voltage, (3) V CC= 1.8V - 5.5V 0.9V CC(4) VCC + 0.5 V RESET Pin as Reset Output Low Voltage, IOL= 20 mA, V CC = 5V 0.7 V Pins PB0 and PB1 (5) IOL= 10 mA, V CC = 3V 0.5 V VOL Output Low
in „ATtiny13 mit 20MHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DD19FCD3d01.pdf
- 5.5V -0.5 0.3V CC(1) V VIL Input Low Voltage, (1) RESET Pin as Reset (2) VCC = 1.8V - 5.5 -0.5 0.2V CC V V = 1.8V - 2.4V 0.7V (3) V + 0.5 V Input High Voltage, CC CC CC Any Pin as I/O V = 2.4V - 5.5V 0.6V (3) V + 0.5 V VIH CC CC CC Input High Voltage, (2) VCC = 1.8V - 5.5V 0.9V CC(3) V CC+ 0.5 V RESET Pin as Reset Output Low Voltage, OL = 20 mA, VCC = 5V 0.7 V Pins PB0 and PB1 (4) OL = 10 mA, VCC = 3V 0.5 V VOL Output Low
in „HV-Prog für ATtiny13“ · Mikrocontroller und Digitale Elektronik ·
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Thread
Eigenartiges Verhalten von Li-Batterien
/868 (mit irgendeinem Protokoll wie Bidcos, Zwave, ..., oder was selbstgestricktes). Die Hardware (CC1101 und Co.) ist preiswert; Reichweite, Energiebedarf und Datenrate sind dem Einsatzzweck angemessen. WLAN ist mMn einfach ungeeignet für deine Anwendung, auch wenn die ESPs so schön billig sind.
Analoge Elektronik und Schaltungstechnik ·GEKU · ·129 Antworten
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Datei
avr-gdb_verbose.txt
="push\tr28"},{address="0x000000ca",func-name="main",offset="4",inst="push\tr0"},{address="0x000000cc",func-name="main",offset="6",inst="in\tr28, 0x3d\t; 61"},{address="0x000000ce",func-name="main",offset="8",inst="in\tr29, 0x3e\t; 62"}]},src_and_asm_line={line="14",file="../main.c",line_asm_insn=[{address
in „XP Eclipse AVR Debugging sehr langsam“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1353_0.11.pdf
.. .. .. 1101 34h 0.79 x CC 1110 38h 0.81 x V CC 1111 3Ch 0.84 x CC 0 E2 1 1 1 0 0 0 1 0 Reset display circuit and stop Graphic Acceleration Software Reset operations. 0 E3 1 1 1 0 0 0 1 1 NOP Command for no operation
in „RitDisplay RTS18160128FHC04 P16885 1,8" OLED Touch STM8“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Attiny24a-44a-84a.pdf
0.3V (3) V V IL CC CC Input Low Voltage, (4) V CC= 1.8V - 5.5 -0.5 0.2VCC(3) RESET Pin as Reset (2) Input High-voltage V CC= 1.8V - 2.4V 0.7VCC VCC +0.5 V Except RESET pin (2) V V CC= 2.4V - 5.5V 0.6VCC VCC +0.5 V IH Input
in „Kann jemand über meine Inialisierung drüberfliegen?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
PCM_master.vhd
", 1089 => x"E879C76D", 1090 => x"E84E50CA", 1091 => x"E822EAC7", 1092 => x"E7F79584", 1093 => x"E7CC511F", 1094 => x"E7A11DB7", 1095 => x"E775FB69", 1096 => x"E74AEA54", 1097 => x"E71FEA96", 1098 => x"E6F4FC4E", 1099 => x"E6CA1F99", 1100 => x"E69F5495", 1101 => x"E6749B62", 1102 => x"E649F41C", 1103
in „DDS mit DE0-Nano Board nur niedrige Frequenzen?“ · FPGA, VHDL & Co. ·
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Thread
steuerprogram ledmatrix hat fehler
001001 101001 dann 2mal so 0110 0110 1001 1001 1111 1001 1001 dann so 0110 0010 1001 1101 1011 1001 1001 dann so 0110 1000 1001 1111 1001 1001 1001 danach wird es dann richtig angezeigt bis die anzeige einmal im Greis herum ist und es beginnt von neuem versteht das jemand ?
das hier :http://arduino.cc/en/Main/ArduinoBoardMega2560 und da oben ist ein Dreher drin auf dem Controller (ich mein das schwarze teil in der Mitte von dem Board) steht ATMEGA2560
Mikrocontroller und Digitale Elektronik ·Mike B. · ·21 Antworten
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PDF
AVR_ATtiny_24_44_84.pdf
Symbol Parameter Condition Min Typ Max Units V Input Offset Voltage V = 5V, V = V / 2 < 10 40 mV AIO CC IN CC I Input Leakage Current V = 5V, V = V / 2 -50 50 nA LAC CC IN CC V = 2.7V 750 Analog Propagation Delay CC (from saturation to slight overdrive) V = 4.0V 500 tAPD CC ns VCC = 2.7V 100 Analog Propagation
in „AVR Programm brennen ohne Bootloader“ · Mikrocontroller und Digitale Elektronik ·
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PDF
en.DM00091010.pdf
_SR) Address offset: 0x10 Reset value: 0x0000 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 Res. Res. Res. CC4OF CC3OF CC2OF CC1OF Res. BIF TIF COMIF CC4IF CC3IF CC2IF CC1IF UIF rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 rc_w0 Bits 15:13 Reserved, must be kept at reset value. Bit 12 CC4OF
in „EFM32F030 und Standby“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89C51CC03.pdf
to sink current greater than the listed test conditions. Figure 74. I Test Condition, Active Mode CC VCC ICC VCC V CC P0 VCC RST EA (NC) XTAL2 CLOCK XTAL1 SIGNAL V SS All other pins are disconnected. 162 AT89C51CC03 4182D–CAN–03/04 AT89C51CC03 Figure 75. I CC Test Condition, Idle Mode V CC I CC V CC
in „Einstellung Akzeptanzfilter - Programm / Tool gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
attiny84.pdf
0.3V V CC CC Input High-voltage V = 1.8V - 2.4V 0.7VCC (2) V IH CC (2) VCC +0.5(3) V Except RESET pin VCC = 2.4V - 5.5V 0.6VCC V Input High-voltage V = 1.8V to 5.5V 0.9V (2) V +0.5(3) V IH1 RESET pin CC CC CC
in „Attiny 84 ISP?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCB_Project_DC11.pdf
/T1) AVCC AREF +5 +5 1K R111 8 OUTA PI1C1025 OUTU Res2 Res2 RAFI PIU1011D6 (PCINT22/OC0A/AIN0) PIR1101PIR1102 P I IPWM1 0 8 OUTA P I I PIOUT01 I0150 12150 PIU1012D7 (PCINT23/AIN1) P2 P0 I2 42 1K PIOUT02 +5 S2 PB0 (PCINT0/CLKO/ICP1) C1C C2C C3C CO4 PIIC1026 PIIC1021 2 P I S 2 0 3 P I S 2 0 0 PIU1015 P0
in „PWM Frequenz für den VNH3SP30-E“ · Mikrocontroller und Digitale Elektronik ·
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PDF
80C51.pdf
PARAMETER TEST UNIT CONDITIONS MIN TYP 1 MAX V Input low voltage 4.5V < V < 5.5V –0.5 0.2V –0.1 V IL CC CC V Input high voltage (ports 0, 1, 2, 3, EA) 0.2V +0.9 V +0.5 V IH CC CC V Input high voltage, XTAL1, RST 0.7V V +0.5 V IH1 CC CC V = 4.5V VOL Output low voltage, ports 1, 2, 3 CC 2 0.4 V IOL= 1.6mA
in „Prüfen von Chips“ · Mikrocontroller und Digitale Elektronik ·
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Datei
bild_left.h
- Horizontal orientation 1001 --> Reserved 1010 --> Reserved 1011 --> Reserved 1100 --> Reserved 1101 --> Reserved 1110 --> Reserved 1111 --> Reserved Bit 5 - 7: Reserved Bit 8 - 10: 000 --> 256 colors or no palette 001 --> 128 colors 010 --> 64 colors 011 --> 32 colors 100 --> 16 colors 101 --> 8 colors
in „ATmega2560, Speicher voll bei Program: 30% Data 8%“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST_M25P64_data.pdf
Leakage Current ± 2 µA LI LO Output Leakage Current ± 2 µA ICC1 Standby Current S = V CCV INV SS orV CC 50 µA C = 0.1V CC/ 0.9.CC at 50MHz, 8 mA Q = open ICC3 Operating Current (READ) C = 0.1V CC/ 0.9.CC at 20MHz, Q = open 4 mA ICC4 Operating Current (PP) S = V CC 15 mA ICC5 Operating Current (WRSR) S = V CC 20 mA ICC6 Operating Current (SE) S = V CC 20 mA ICC7 Operating Current (BE) S = V CC 20 mA VIL Input Low Voltage – 0.5 0.3VCC V VIH Input High Voltage 0.7VCC V CC+0.2 V V OL Output Low Voltage IOL =
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PDF
ATtiny.pdf
Table 9. ATtiny12 Clock Options and Start-up Times Start-up Time, V = 1.8V, Start-up Time, V = 2.7V, CC CC CKSEL3..0 Clock Source BODLEVEL Unprogrammed BODLEVEL Programmed 1111 Ext. Crystal/Ceramic Resonator1) 1K CK 1K CK 1110 Ext. Crystal/Ceramic Resonator1) 3.6 ms + 1K CK 4.2 ms + 1K CK 1101 Ext. Crystal
in „Tiny 11 ,was ist davon zu halten?“ · PC Hard- und Software ·
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PDF
ADIS16209-246154.pdf
xx10 1010 0011 1110 0° = 0x0000, 1 LSB = 0.025°/LSB, ±180° range 3.3 10,813 0x2A3D xx10 1010 0011 1101 3.3 − 0.00030518 10,812 0x2A3C xx10 1010 0011 1100 3.0 9,830 0x2666 xx10 0110 0110 0110 Rev.C | Page 13of 20 ADIS16209 Data Sheet AuxiliaryADC Table 23. SLP_CNT Bit Descriptions The AUX_ADCregister(
in „Neigungswinkelinkelmessung beweglicher Teile“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TQM167-Modul.pdf
EPROMs, the following configuration is possible: Field in BUSCON: Value: Delay: MCTC [BUSCONx.0..3] 1101b 2 Waitstates (100ns) RWDC [BUSCONx.4] 1b Delay 0 ns MTTC [BUSCONx.5] 1b No Delay The associated C command could then be as follows: Ł BUSCONx = 0x04BD 8 © TQ omponentsG m bH 2000 Minim odu leTQM1 67
in „C167-Controller-Modul“ · Markt ·
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PDF
6291174.pdf
“L” 19 CS1 Chip Select 1 Fixed “L” 20 CS0 Chip Select 0 Fixed “H” -43- Waveforms VIDEO-IN Y-IN <IC1101-5> C-IN <IC1101-7> Y-OUT <IC1101-21> CB-OUT <IC1101-22> CR-OUT <IC1101-23> H-SYNC OUT <IC1101-9> V-SYNC OUT <IC1101-4> R-OUT <IC4101-35> G-OUT <IC4101-37> B-OUT <IC1101-7> R-DRIVE <TP52R/TP201R> G-DRIVE
in „Sanyo LCD Beamer PLC- XU30 defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HEIZUNG_UNGARN.PDF
PIU102 6 LCD6 P0 P6 P1 PU PI3 ATMEGA32/TQFP44 Y1 PY11 PY0 LCD[7..0] LCD[7..0] P1 3.6864MHz P2 RELAIS CC O 1 C2 GSM[ .. ] GSM[3..0] 27pF P1 P2 27pF Title Heizungssteuerung Ungarn - MICROCONTROLLER-RTC-1WIRE Size Document Number Rev A 00 Date: Sheet 1 of 5 D D 1 2 3 4 5 6 7 8 1 2 3 4 5 6 7 8 A A BUT_ENTER
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PDF
321-19620-0-PC87200.pdf
Capacitance 10 pF f = 1MHz OUT CCLK CLK Input Capacitance 10 pF f = 1MHz Current Consumption ICC Active CC: PCICLK @ 33 MHz 30 160 mA ICCSS Standby CC (PCICLK Stopped) 10 uA PCICLK= 0MHz www.national.com 30 8.0 Electrical Characteristics (Continued) 8.7 AC Characteristics The following tables list the AC
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Datei
bootloader_v2.asm
$80 L0CBB ldab 0,SP ;$0CBB $E6 $80 bne L0CE4 ;$0CBD $26 $25 ldab #'U' ;$0CBF $C6 $55 ldy L04B9 ;$0CC1 $FD $04 $B9 stab 1,Y+ ;$0CC4 $6B $70 sty L04B9 ;$0CC6 $7D $04 $B9 ldab #$02 ;$0CC9 $C6 $02 stab L048E ;$0CCB $7B $04 $8E decb ;$0CCE $53 stab L04DE ;$0CCF $7B $04 $DE ldd #$000A ;$0CD2 $CC $00 $0A std
in „HCS12 CPU Disassembler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Tiny12.pdf
Table 10. ATtiny12 Clock Options and Start-up Times Start-up Time, Start-up Time, V = 1.8V, V = 2.7V, CC CC BODLEVEL BODLEVEL CKSEL3..0 Clock Source Unprogrammed Programmed (1) 1111 Ext. Crystal/Ceramic Resonator 1K CK 1K CK (1) 1110 Ext. Crystal/Ceramic Resonator 3.6 ms + 1K CK 4.2 ms + 1K CK (1) 1101
in „ATTiny12 uns SPI?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATTINY11_ATTINY12_ATM.pdf
Table 10. ATtiny12 Clock Options and Start-up Times Start-up Time, Start-up Time, V = 1.8V, V = 2.7V, CC CC BODLEVEL BODLEVEL CKSEL3..0 Clock Source Unprogrammed Programmed (1) 1111 Ext. Crystal/Ceramic Resonator 1K CK 1K CK (1) 1110 Ext. Crystal/Ceramic Resonator 3.6 ms + 1K CK 4.2 ms + 1K CK (1) 1101
in „Attiny12 Datenblatt?“ · Mikrocontroller und Digitale Elektronik ·
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Thread
Brauche Unterstützung beim OV7670 (bzw. SCCB)
schrieb im Beitrag #5792465: > Was ist denn ein „CUL“? Ich zitiere mal aus dem FHEMWIKI: "CUL (CC1101 USB Lite) ist ein RF-Gerät im Formfaktor eines USB-Dongles mit externer Antenne." Hat sich bei dem Home-Automatisierungskram irgendwie eingebürgert für alle Sachen, die irgendwelche (kommerziellen
seriell zur Verfügung stellen. Bei mir Arduino Nano mit passendem Funkmodul für 433 oder 868 MHz, meist CC1101, manchmal auch RFM12 oder RFM95 o.ä. Die stecken dann am RasPi-USB und der darf sich mit den Daten rumärgern, FHEM und openHAB unterstützen die dann direkt. Gruß aus Berlin Michael
Mikrocontroller und Digitale Elektronik ·David D. · ·763 Antworten
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PDF
Xmega_Stick.PDF
AT45DB642D VCC VCC R8 100k PIR802 5%R801 VCC GND GND GND C C OD1 PDI Programming Interface PP2 VCC 1 CC2 PIS2101Data 2 POPDI0DATA PIP201 2 PIP202 0 P O C S 0 S D 0 C A R D PISD103CMDDAT3 POPDI0CLK PIP205 6 PIP206 SPI_SD Karte VCC PISD104VDD 2 01 SCK PISD105CLK O9 02 Header 3X2 100n MOSI GND PISD106VSS
in „AtXmega256A3U Board mit USB Interface“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM32_F4VE_SCHEMATIC.PDF
SDIO_SCKR27OR2 10K PIC190 C3C N CO44 PIR60RSTST PB3/TDO 13P1011RTCK GND PI14012 CLK PI6505 PIR2701PIR2702 C1919 CC55 32 104 G P2 104 PIJ6011 PIRST01 PIRSTC2 RST P151013TDO GND PI16014 GND PI7 SDIO_D0 R28OR28 10K I2 104 PIC502 P1060 GND PIJ6022 SW-PB C6C PIR902 PIP1015nSRST GND PIP1016 DAT0 PIU507 COR22801PIR2802
in „Neues Entwicklungsboard STM32F407“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM32_F4VE_SCHEMATIC.PDF
SDIO_SCKR27OR2 10K PIC190 C3C N CO44 PIR60RSTST PB3/TDO 13P1011RTCK GND PI14012 CLK PI6505 PIR2701PIR2702 C1919 CC55 32 104 G P2 104 PIJ6011 PIRST01 PIRSTC2 RST P151013TDO GND PI16014 GND PI7 SDIO_D0 R28OR28 10K I2 104 PIC502 P1060 GND PIJ6022 SW-PB C6C PIR902 PIP1015nSRST GND PIP1016 DAT0 PIU507 COR22801PIR2802
in „STM32F407 Black und Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
big_pcb.PDF
PIU10020160 VCC VDD OUT15 VCC VDD OUT15 VCC VDD OUT15 VCC VDD OUT15 VCC VCC U1U U4U U7U U101 C1C10.1uf CC8 0.1uf PIC101 PIC102 PIC801 PIC802 R_OUT10 PIU202 SDI OUT0 PIU205 R17 R_OUT7 PIU502 SDI OUT0 PIU505 R65 R_OUT4 PIU802 SDI OUT0 PIU805 R113 R OUT1 PIU110SDI OUT0 PIU1105R161 R CLK PIU203 PIU206 R18 R
in „STC LED Cube 8x8x8 RGB“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1331_v1.2.pdf
: The Power OFF sequence Send command AEh for display OFF OFF V CC OFF V DD ,VDDIO V CC GND OFF V DD,V DDIO GND Note: (1Since an ESD protection circuit is connected between V ,V and V , V becomes lower than V DD DDIO CC CC DD whenever V DD,VDDIOis ON and V CC is OFF
in „Spannungsreglerproblem durch Frequenzen bei Arduino Adafruit“ · Mikrocontroller und Digitale Elektronik ·
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Datei
CMD_bm002_bm201.lst
(800EH) 2364 10F2 B7 OR A 2365 10F3 C0 RET NZ 2366 10F4 79 LD A,C 2367 10F5 FE 04 CP 04H 2368 10F7 CC 9F 10 CALL Z,L0323 2369 10FA 21 06 11 LD HL,1106H 2370 10FD 06 00 LD B,00H 2371 10FF 07 RLCA 2372 1100 07 RLCA 2373 1101 4F LD C,A 2374 1102 09 ADD HL,BC 2375 1103 C3 2B 10 JP L0017 2376 1106 54 LD D
in „DDR Schach-Computer Chess Master Diamond reparieren (Dauerton)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny26.pdf
(3) V CC+0.5 V Clock Selected (2) V IL2 Input Low Voltage RESET pin -0.5 0.2V CC V (3) V IH2 Input High Voltage RESET pin 0.9VCC V CC+0.5 V (2) V IL3 Input Low Voltage RESET pin as I/O -0.5 0.2V CC V (3) V IH3
in „ATtiny26(L) Analog-Digital-Wandler ( ADC ) Datenblattübersetzung“ · Mikrocontroller und Digitale Elektronik ·
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Datei
compile_Tasmota_stable_in_docker_container_versuch3.txt
VL53L0X> 1.0.2 | |-- <Wire> 1.0 |-- <VL53L1X> 1.0.1 | |-- <Wire> 1.0 |-- <C2Programmer> 1.0.0 |-- <cc1101> 1.0 | |-- <SPI> 1.0 |-- <arduino-mcp2515-1.0.1> | |-- <SPI> 1.0 |-- <A4988_Stepper> 0.0.1 |-- <Adafruit Fingerprint Sensor Library> 2.0.4 | |-- <TasmotaSerial> 3.5.0 |-- <Adafruit GFX Library> 1.5.6
in „Dlock 11827 und Tasmota - compilieren für FW-Update“ · Haus & Smart Home ·
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BC847BS_2xnpn.pdf
voltageC = 10 mA; B = 0.5 mA − 755 − mV VBE base-emitter voltage C = 2 mA; VCE= 5 V 580 655 700 mV Cc collector capacitance E = e = 0;CB = 10 V; f = 1 MHz − − 1.5 pF Ce emitter capacitance C = c = 0;EB = 500 mV; f = 1 MHz − 11 − pF f transition frequency I = 10 mA; V = 5 V; f = 100 MHz100 − − MHz T C
in „BC547 matched“ · Analoge Elektronik und Schaltungstechnik ·
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BC337_3.pdf
− − 700 mV CEsat C B voltage V base-emitter voltage I = 500 mA; V = 1 V; note 1 − − 1.2 V BE C CE Cc collector capacitance E = e = 0;CB = 10 V; f = 1 MHz − 5 − pF T transition frequency C = 10 mA; VCE= 5 V; f = 100 MHz100 − − MHz Note 1. V BEdecreases by about 2 mV/K with increasing temperature. 1999
in „Stromverstärkung mit Transistor; Arduino“ · Analoge Elektronik und Schaltungstechnik ·
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datasheet.pdf
− − 700 mV CEsat C B voltage V base-emitter voltage I = 500 mA; V = 1 V; note 1 − − 1.2 V BE C CE Cc collector capacitance E = e = 0;CB = 10 V; f = 1 MHz − 5 − pF T transition frequency C = 10 mA; VCE= 5 V; f = 100 MHz100 − − MHz Note 1. V BEdecreases by about 2 mV/K with increasing temperature. 1999
in „Dimensionierung der Transistorschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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BC337_3.pdf
− − 700 mV CEsat C B voltage V base-emitter voltage I = 500 mA; V = 1 V; note 1 − − 1.2 V BE C CE Cc collector capacitance E = e = 0;CB = 10 V; f = 1 MHz − 5 − pF T transition frequency C = 10 mA; VCE= 5 V; f = 100 MHz100 − − MHz Note 1. V BEdecreases by about 2 mV/K with increasing temperature. 1999
in „Transistor für Bewegungsmelder“ · Analoge Elektronik und Schaltungstechnik ·
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Nexys4_DDR_schematic.pdf
Sheet# 1 out of 11 1 2 3 4 1 2 3 4 CAA PIR7I12 VCC3V3 VU5V0 CBB R766 100 31 PIR7712 32C35 R77 LD16 CC 100 R788 DISP1 GND 4.7uF I0 Q1AA AN33 PIR7I12 PIQ10PIRI10 R79 OQ5 NLD R811 100 I6 2.2K A PIRPIR79PILD+604 - PILD16565A R80 NLED160 CD PIR8812 PIDISPCA11 y I4 CQ1BR822 NLN2 A 86.6 Blue PIQ50PIR8801 LED16
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xe166_um_v2.1_2008_08_vol2per.pdf
match. DataRegisters Control Registers Interrupt Control T7, T7REL E T78CON T7IC T8, T8REL E T8IC CC16-CC19 CC2_M4 CC16IC-CC19IC E CC20-CC23 CC2_M5 CC20IC-CC23IC E CC24-CC27 CC2_M6 CC24IC-CC27IC E CC28-CC31 CC2_M7 CC28IC-CC31IC E CC2_SEE CC2_OUT CC2_SEM CC2_DRM CC2_ID CC2_IOC KSCCFG CC2_SEE CAPCOM SingleEvent
in „Kernel State Configuration Register KSCCFG xe164 xe166 xe164f xe16x“ · Mikrocontroller und Digitale Elektronik ·