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at98c51ed2.pdf
(7) 0.1 V/µs dV/dt Notes: 1. Operating I CC is measured with all output pins disconnected; XTAL1 driven with T CLCH , CHCL = 5 ns (see Figure 55), V IL VSS + 0.5V, VIH= V CC - 0.5V; XTAL2 N.C.; EA = RST = Port 0 = V CC . CC would be slightly higher
in „8051: An Port 0 kann nichts ausgegeben werden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SSD1332_R1.61.pdf
is VCC – 3V, the value of resistor R1 can be found as below. R1 = (Voltage at IREF– V SS/ IREF = (V CC – 3) / 10uA ≈ 910kΩ for V CC = 12V. SSD1332 Rev 1.6 P 17/56 June 2005 Solomon Systech Segment Drivers/Common Drivers Segment drivers consists of 288 (96 x 3 colors) current sources to drive OLED panel
in „OLED und 8051“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
(7) 0.1 V/µs dV/dt Notes: 1. Operating I CC is measured with all output pins disconnected; XTAL1 driven with T CLCH , CHCL = 5 ns (see Figure 55), V IL VSS + 0.5V, VIH= V CC - 0.5V; XTAL2 N.C.; EA = RST = Port 0 = V CC . CC would be slightly higher
in „Displaybeleuchtung mit PWM dimmen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
(7) 0.1 V/µs dV/dt Notes: 1. Operating I CC is measured with all output pins disconnected; XTAL1 driven with T CLCH , CHCL = 5 ns (see Figure 55), V IL VSS + 0.5V, VIH= V CC - 0.5V; XTAL2 N.C.; EA = RST = Port 0 = V CC . CC would be slightly higher
in „Displaybeleuchtung faden ohne Analog I/O“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
(7) 0.1 V/µs dV/dt Notes: 1. Operating I CC is measured with all output pins disconnected; XTAL1 driven with T CLCH , CHCL = 5 ns (see Figure 55), V IL VSS + 0.5V, VIH= V CC - 0.5V; XTAL2 N.C.; EA = RST = Port 0 = V CC . CC would be slightly higher
in „Temperatur ohne AD-Eingang messen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Ethernet_Hub_LXT914PE.pdf
65432109 10 1111111 40 1- 15 N T TT 65432109 0 12345678 f 1111111 40 0 1- C1 10 f T RT na fo 0 ed cc C1 12345678 ii ii p 42 0 0 f C1 4 0 % 3 0 % 3 0 0 R 1 1 R 1 1 1 3 C1 C R 3 0 0 V 6 0 11111111 1 0 % 2 0 % R 3 1 R 1 1 R 1 1 99999999 1 3 44444444 R 3 22222222 5 0 1 3 d R 3 567891112 RRRRRRRR e 45678
in „Ethernet Transceiver und Hub auf einer Platine verbinden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
Input Low Voltage -0.5 0.2 V - 0.1 V IL CC V IH Input High Voltage except RST, XTAL1 0.2 VCC+ 0.9 V CC+ 0.5 V VIH1 Input High Voltage RST, XTAL1 0.7 CC V CC+ 0.5 V V = 4.5V to 5.5V CC (4) 0.3 V IOL= 100 µA 0.45 V I = 1.6 mA (4) (6) OL V OL Output
in „EEPROM schreiben/lesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
(7) 0.1 V/µs dV/dt Notes: 1. Operating I CC is measured with all output pins disconnected; XTAL1 driven with T CLCH , CHCL = 5 ns (see Figure 55), V IL VSS + 0.5V, VIH= V CC - 0.5V; XTAL2 N.C.; EA = RST = Port 0 = V CC . CC would be slightly higher
in „Mikrocontrollerboard: Funktioniert das?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
at98c51ed2.pdf
Input Low Voltage -0.5 0.2 V - 0.1 V IL CC V IH Input High Voltage except RST, XTAL1 0.2 VCC+ 0.9 V CC+ 0.5 V VIH1 Input High Voltage RST, XTAL1 0.7 CC V CC+ 0.5 V V = 4.5V to 5.5V CC (4) 0.3 V IOL= 100 µA 0.45 V I = 1.6 mA (4) (6) OL V OL Output
in „8051: Oszillatorfrequenz und Maschinenzyklus“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd61830.pdf
input set-up time t — — 180 ns 2 SSY Notes: 1. Applied to external clock input terminal. T T h l 0.7 CC 0.5 CC 0.3 CC Oscillator CR Duty cycle =Th × 100% trcp tfcp Th+ Tl 2. Applied to $< terminal. 0.7 VCC CR 0.3CC DSY DSY tHSYO HSYO SYNC 0.7 V (Output: CC at master 0.3 CC mode) t HSYI SSY HSYI SSY SYNC
in „HD61830A durch HD61830B ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780.pdf
cycles; 43 to Hz for 1/11 duty cycle) 80 Hz for 1/11 duty cycle) Rfresistance 91 k ±2% 91 k ±2% (when V CC= 5V) 75 k ±2% (when V CC= 3V) Instructions Fully compatible within the HD44780S CPU bus timing 1 MHz 1 MHz (when V = 3V) CC 2 MHz (when V CC= 5V) Package FP-80 FP-80B FP-80A TFP-80F 170 HD44780U HD44780U
in „LCD ohne Umlaute?“ · Mikrocontroller und Digitale Elektronik ·
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hd44780u.pdf
VLCD VCC1/5 VLCD V2 VCC1/2 VLCD VCC2/5 VLCD V3 VCC1/2 VLCD VCC3/5 VLCD V4 V –3/4 VLCD V –4/5 VLCD CC CC V5 V –VLCD V –VLCD CC CC V CC(+5 V) VCC (+5 V) VCC VCC R R V1 V1 R V2 R V2 VLCD R VLCD V3 R V3 V4 R V4 R R V5 V5 VR VR –5 V –5 V 1/4 bias 1/5 bias (1/8, 1/11 duty cycle) (1/16, duty cycle) Figure
in „2. Zeile LCD“ · Mikrocontroller und Digitale Elektronik ·
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ltc485.pdf
, otherwise specifications are at T =A25°C.V CC = 5V 5%, unless otherwise noted. (Notes 2 and 3) SYMBOL PARAMETER CONDITIONS MIN TYP MAX UNITS I Supply Current No Load, Pins 2, Outputs Enabled 500 900 A CC 3, 4 = 0V or 5V Outputs Disabled 300 500
in „IR mit langer Leitung“ · Mikrocontroller und Digitale Elektronik ·
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74HC4066_74HCT4066_SMDHC4066_PHI.pdf
1.0 1.0 A 6.0 VCC current 0.2 2.0 2.0 10.0 or GND ±IS analog switch 0.1 1.0 1.0 A 10.0 V IH VS= V CC − GND OFF-state or (see Fig.7) current per V IL channel ±IS analog switch 0.1 1.0 1.0 A 10.0 V IH VS= V CC − GND ON-state current or (see Fig.8) VIL I quiescent 2.0 20.0 40.0 A 6.0 V V = GND or CC CC
in „welche relais für rs232 und atmega32“ · Mikrocontroller und Digitale Elektronik ·
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at98c51ed2.pdf
Input Low Voltage -0.5 0.2 V - 0.1 V IL CC V IH Input High Voltage except RST, XTAL1 0.2 VCC+ 0.9 V CC+ 0.5 V VIH1 Input High Voltage RST, XTAL1 0.7 CC V CC+ 0.5 V V = 4.5V to 5.5V CC (4) 0.3 V IOL= 100 µA 0.45 V I = 1.6 mA (4) (6) OL V OL Output
in „Kleine 8051 Fragen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
slaa081-clock-system.pdf
characteristics for a range of temperatures and supply voltages. fACLK is the actual A CLK frequency seen. I CC is the current consumption in active mode, with an MCLK of 1 MHz. V CC(ACLK)low is derived by reducing V CC until the oscillator stops, and then raising V CC again until the oscillator restarts. V CC
in „Interne Oszillatoren des MSP430“ · Mikrocontroller und Digitale Elektronik ·
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hd61830.pdf
input set-up time t — — 180 ns 2 SSY Notes: 1. Applied to external clock input terminal. T T h l 0.7 CC 0.5 CC 0.3 CC Oscillator CR Duty cycle =Th × 100% trcp tfcp Th+ Tl 2. Applied to $< terminal. 0.7 VCC CR 0.3CC DSY DSY tHSYO HSYO SYNC 0.7 V (Output: CC at master 0.3 CC mode) t HSYI SSY HSYI SSY SYNC
in „ATMega als LCD-Controller“ · Mikrocontroller und Digitale Elektronik ·
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Datei
schemath.txt
RT1601 BOSCH:BTO1A/BTO2A BTO3A/BTO4A BRITICH COM.COR.:BCC69 CONDOR:16 TMC82 TMC87 M3000/SE550 COSSOR:CC300 DANISH:DANCALL RT400(VT) DEBEG:6310 6311 6410 FURUNO: LC70 FM252 GENERAL ELECTRIC: FA-33 FE-36 FE-33 FE-36 MA-33 MA-36 ME-33 MA-36 GUNDIG:FK101 FK102 FK105/80/160/460 FK156 VAN DER HEEM: HTC1105 HTC1205
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X1205.pdf
Symbol Parameter Conditions Min Typ Max Unit Notes I Read Active Supply V = 2.7V 400 µA 1, 5, 7, 14 CC1 Current CC VCC = 5.0V 800 µA CC2 Program Supply Current VCC = 2.7V 2.5 mA 2, 5, 7, 14 (nonvolatile) VCC = 5.0V 3.0 mA CC3 Main Timekeeping VCC = 2.7V 10 µA 3, 7, 8, 14, 15 Current V = 5.0V 20 µA CC
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at98c51ed2.pdf
Input Low Voltage -0.5 0.2 V - 0.1 V IL CC V IH Input High Voltage except RST, XTAL1 0.2 VCC+ 0.9 V CC+ 0.5 V VIH1 Input High Voltage RST, XTAL1 0.7 CC V CC+ 0.5 V V = 4.5V to 5.5V CC (4) 0.3 V IOL= 100 µA 0.45 V I = 1.6 mA (4) (6) OL V OL Output
in „Frequenz für µC AT89C51ED2“ · Mikrocontroller und Digitale Elektronik ·
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at98c51rd2.pdf
Input Low Voltage -0.5 0.2 V - 0.1 V IL CC V IH Input High Voltage except RST, XTAL1 0.2 VCC+ 0.9 V CC+ 0.5 V VIH1 Input High Voltage RST, XTAL1 0.7 CC V CC+ 0.5 V V = 4.5V to 5.5V CC (4) 0.3 V IOL= 100 µA 0.45 V I = 1.6 mA (4) (6) OL V OL Output
in „Alternative Funktion von Pins“ · Mikrocontroller und Digitale Elektronik ·
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hd44780.pdf
cycles; 43 to Hz for 1/11 duty cycle) 80 Hz for 1/11 duty cycle) Rfresistance 91 k ±2% 91 k ±2% (when V CC= 5V) 75 k ±2% (when V CC= 3V) Instructions Fully compatible within the HD44780S CPU bus timing 1 MHz 1 MHz (when V = 3V) CC 2 MHz (when V CC= 5V) Package FP-80 FP-80B FP-80A TFP-80F 170 HD44780U HD44780U
in „ATMEL_2x16LCD_Zeile 2“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TEA5880_2.pdf
GND 13 ground n.c. 14 not connected n.c. 15 not connected n.c. 16 not connected LR1 17 coil right V CC1 18 internal analog voltage V 19 internal analog voltage CC1 LL1 20 coil left reserved 21 reserved for testing use n.c. 22 not connected n.c. 23 not connected GND 24 ground 9397 750 13022 © Koninklijke
in „Einfaches Radio basteln“ · Mikrocontroller und Digitale Elektronik ·
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HD44780U.pdf
VLCD VCC1/5 VLCD V2 VCC1/2 VLCD VCC2/5 VLCD V3 VCC1/2 VLCD VCC3/5 VLCD V4 V –3/4 VLCD V –4/5 VLCD CC CC V5 V –VLCD V –VLCD CC CC V CC(+5 V) VCC (+5 V) VCC VCC R R V1 V1 R V2 R V2 VLCD R VLCD V3 R V3 V4 R V4 R R V5 V5 VR VR –5 V –5 V 1/4 bias 1/5 bias (1/8, 1/11 duty cycle) (1/16, duty cycle) Figure
in „444780 LCD 5x10 klappt nicht richtig!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780.pdf
cycles; 43 to Hz for 1/11 duty cycle) 80 Hz for 1/11 duty cycle) Rfresistance 91 k ±2% 91 k ±2% (when V CC= 5V) 75 k ±2% (when V CC= 3V) Instructions Fully compatible within the HD44780S CPU bus timing 1 MHz 1 MHz (when V = 3V) CC 2 MHz (when V CC= 5V) Package FP-80 FP-80B FP-80A TFP-80F 170 HD44780U HD44780U
in „Sinnlose Probleme mit LCD...“ · Mikrocontroller und Digitale Elektronik ·
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smi2c_10.pdf
for charging capacitors. The general form of this equation is: V = V + [V - V ] e -t/RC Equation 3 c cc o cc where R is pullup Rp, C is the total bus capacitance, t is the rise time, V is the initial o voltage on the bus capacitance, and V cis the voltage across the bus capacitance at any given time (in
in „Mehrfache Pullup's am I2C Bus ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780.pdf
43 to Hz for 1/11 duty cycle) 80 Hz for 1/11 duty cycle) Rfresistance 91 kΩ ±2% 91 kΩ ±2% (when V CC= 5V) 75 kΩ ±2% (when V = 3V) CC Instructions Fully compatible within the HD44780S CPU bus timing 1 MHz 1 MHz (when V CC= 3V) 2 MHz (when V CC= 5V) Package FP-80 FP-80B FP-80A TFP-80F 170 HD44780U HD44780U
in „HD44780 Zeichen im ROM“ · Mikrocontroller und Digitale Elektronik ·
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FM_AM-Tuner_TEA5757HL_5759HL_1.pdf
− 0.3 0.8 % SFE10.7MS3A20K-A MPX performance; note 3 αcs channel separation 26 30 − dB Notes 1. V CC1= 3 V; CC2 = 12 V; DDD = 3 V;if = 1 MHz; m = 0m3; f = 1 kHz; measured in Fig.11 with S1 in position A; S2 in position B; unless otherwise specified. 2. V CC1= 3 V; CC2 = 12 V; DDD = 3 V;if = 100 MHz;mf
in „Autoradio selber bauen.“ · Mikrocontroller und Digitale Elektronik ·
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kmi_151t.pdf
specified. SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT CC (low) current output signal low see Figs 6 and 8 5.6 7.0 8.4 mA CC (high) current output signal high see Figs 6 and 8 11.2 14.0 16.8 mA r output signal rise time CL= 100 pF; see Fig.9; 10 to 90% value
in „Signal am Zündkabel abgreifen ?!“ · Mikrocontroller und Digitale Elektronik ·
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PDF
66712.pdf
OSC2 The recommended oscillator resistor is as follows. HD66712 HD66712 i) HD66712S • Rf = 91 k 2% (V CC = 5V) • Rf = 75 k 2% (V = 3V) CC ii) HD66712U • Rf = 130 k 2% (V CC = 5V) • Rf = 110 k 2% (V = 3V) CC Figure 22 Oscillator Circuit (1) 1 /17 duty cycle 1-line selection period 1 2 3 4 16 17 1 2 3 16
in „ds89c420 @ 32mhz“ · Mikrocontroller und Digitale Elektronik ·
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super.pdf
...............................................96 11.4.3 Compare-Modus 0 mit den Registern CRC und CC1 bis CC3..................................98 11.4.4 Initialisierung von CRC und CC1 bis CC3................................................................99 11.4.5 Interrupts mit CRC und CC1 bis CC3
in „Facharbeit Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
super.pdf
...............................................96 11.4.3 Compare-Modus 0 mit den Registern CRC und CC1 bis CC3..................................98 11.4.4 Initialisierung von CRC und CC1 bis CC3................................................................99 11.4.5 Interrupts mit CRC und CC1 bis CC3
in „Handyansteuerung über uC“ · Mikrocontroller und Digitale Elektronik ·
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PDF
182853-da-01-en-kmi_151t_drehzahlmesser.pdf
specified. SYMBOL PARAMETER CONDITIONS MIN. TYP. MAX. UNIT CC (low) current output signal low see Figs 6 and 8 5.6 7.0 8.4 mA CC (high) current output signal high see Figs 6 and 8 11.2 14.0 16.8 mA r output signal rise time CL= 100 pF; see Fig.9; 10 to 90% value
in „Drehzahlmesser für Drehbank“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lcd-spec.pdf
Table 4. Character Codes HIGH-ORDER 4 BIT LOW- 0000 0010 0011 0100 0101 0110 0111 1010 1011 1100 1101 1110 1111 ORDER 4 BIT CG xxxx0000 RAM (1) xxxx0001 (2) xxxx0010 (3) (4) xxxx0011 xxxx0100 (5) xxx0101 (6) (7) xxx0110 (8) xxxx0111 xxxx1000 (1) (2) xxxx1001 (3) xxxx1010 xxxx1011 (4) xxxx1100 (5) (6) xxxx1101 xxxx1110 (7) xxxx1111 (8) NOTES: 1. The CG RAM generates character patterns in accordance with the user's program. 2. Shaded areas indicate 5 x 10 dot character patterns. 8 Display Unit User’s Manual
in „LCD Tutorial“ · Mikrocontroller und Digitale Elektronik ·
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PDF
hd44780.pdf
cycles; 43 to Hz for 1/11 duty cycle) 80 Hz for 1/11 duty cycle) Rfresistance 91 k ±2% 91 k ±2% (when V CC= 5V) 75 k ±2% (when V CC= 3V) Instructions Fully compatible within the HD44780S CPU bus timing 1 MHz 1 MHz (when V = 3V) CC 2 MHz (when V CC= 5V) Package FP-80 FP-80B FP-80A TFP-80F 170 HD44780U HD44780U
in „LCD (von Tel) -Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pdiusbd11.pdf
Resistance is 29 to 44 max provided 22 1% series resistors are used. 14 AGND Power Analog ground 15 AV CC Power Analog Supply 3.3V 0.3Volts. Normally connect to CC through some suppression to isolate any digital noise. 16 VBUS Input USB Power Sense. Full speed devices are identified by pulling D+ to 3.3V
in „PDIUSBD11... jemand schon mal was gemacht damit?“ · Mikrocontroller und Digitale Elektronik ·
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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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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
TLC2543.pdf
V VCC = 4.5 V to 5.5 V, OH = –20 A V CC –0.1 V = 4.5 V, I = 1.6 mA 0.4 V Low-level output voltage CC OL V OL VCC = 4.5 V to 5.5 V, OL = 20 A 0.1 High-impedance off-state outpuO = VCC , CS at CC 1 2.5 OZ current V = 0, CS at V 1 –2.5 A O CC
in „externer A/D Wandler“ · Mikrocontroller und Digitale Elektronik ·
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Thread
FS20 Sender mir ATmega8
Einfach das CUL (CC1101 transceiver mit USB Interface) nehmen und die ELFE.hex firmware (unter Demo firmware) drauf spielen, dann kommen alle ELV Protokolle (FS20,FHT,EM,KS,HMS) über die Serielle per USB rein. Senden
Mikrocontroller und Digitale Elektronik ·Jens Prager · ·125 Antworten
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Thread
MMC/SD-Karte mit FAT16 an AVR
selbstverständlich den Quelltext. Ich brauche dann aber Deine Mail Adresse und Dein Einverständnis das Roland ein Cc bekommt. Torsten
sd_raw_send_byte(uint8_t b) { uint8_t *SDAddress; uint16_t i; if (Initcard == 1) i = 0x1101; //write INIT Mode 400KBits/Sek. else i = 0x1102; //write fast mode 25MBits/Sek. SDAddress = (uint8_t *) i; *SDAddress = b; //write Data __asm__ __volatile__ ("nop"); //allow "Ready"
Projekte & Code ·Roland Riegel · ·650 Antworten
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Thread
LCD + Wert (aus ADC) ausgeben
www.dict.cc <== liegt auch quasi auf meinem Schreibtisch (ich meinte den in der Firma; zuhause liegen die Sachen auf der Fensterbank, weil der Schreibtisch schon voll ist...). Prinzip von ITOA (jetzt mal so aus
er Komplement an: alle Bits umdrehen 0110 1100 und 1 addieren 0110 1101 1 + 4 + 8 + 32 + 64 -> 109 Das Bitmuster entspricht also der Zahl -109 Warum macht man so komische Verrenkungen mit dem 2-er Komplement. Ganz einfach: Weil man dann bei
Mikrocontroller und Digitale Elektronik ·Daniel Stoeger · ·16 Antworten
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Thread
Protokoll für Funkübertragung
0 0101 1011 1 0010 1100 0 0011 1101 1 0100 1110 1 1000 1111 0 1111 Allgemeine Methode zur Konstruktion von Fehlerkorrigierenden Codes(=Hammingcodes) unter der
Hallo, schaut Euch mal den neuen Chip CC1100 von Chipcon an oder das neue Modul AMB8410 von Amber wireless. Die machen das was Ihr vorhabt.
Mikrocontroller und Digitale Elektronik ·Andreas Häusler · ·6 Antworten
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Thread
CAN Bus!
8051-er gibt es schon sehr sehr lange mit internem CAN (Infineon C505, Philips P89C592, Atmel T89C51CC01 usw.). Aber inzwischen sind auch fast alle anderen MC-Familien mit CAN verfügbar. Als externe CAN Controller werden gerne der SJA1000 (MMIO) und der MCP2515 (SPI) genommen. Peter
Beispiel: Sender 1 Adresse 0000 Sender 2 Adresse 0001 .... Sender 14 Adresse 1101 Sender 10 Adresse 1001 Ruhezustand der Leitung: ein Widerstand legt eine 1 an den Bus Wenn ein Sender sich aufschaltet dann zieht er seine Nullen "durch" Sobald eine Null gesendet wird
Mikrocontroller und Digitale Elektronik ·Munzur · ·5 Antworten