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PDF
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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Datei
pt2262Dec.asm
100 ; Minimal Länge 0 Bit .equ PMitte = (PPeriode)/2 ; Mitte zwischen 0/1 .equ SenderAdr1 = 0b0100_1101 ; codierte Hardware Adresse 1.Byte 433 Adresse 1 .equ SenderAdr1a =0b1100_1101 ; codierte Hardware Adresse 1.Byte alternativ Adresse 2 .equ SenderAdr2 = 0b0100_0001 ; codierte Hardware Adresse 2.Byte
in „Probleme bei 433Mhz Datenübertragung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
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
Transistor_2N3904.pdf
saturation voltage I = 10 mA; I = 1 mA; note 1 − 850 mV BEsat C B IC= 50 mA; B = 5 mA; note 1 − 950 mV Cc collector capacitance IE= e = 0; CB= 5 V; f = 1 MHz − 4 pF Ce emitter capacitance IC= c = 0; EB= 500 mV; f = 1 MHz − 8 pF T transition frequency IC= 10 mA; VCE = 20 V; f = 100 MHz300 − MHz F noise figure
in „12V relais lässt nicht los“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PCA82C251_PHI.pdf
Rs MODE RESULTING VOLTAGE OR CURRENT AT PIN Rs V > 0.75V standby −I < 10 A Rs CC Rs 10 A < −I Rs < 200 A slope control 0.4VCC < VRs < 0.6VCC V Rs< 0.3V CC high-speed −IRs < 500 A 2000 Jan 13 4 Philips Semiconductors Productspecification CAN transceiver for 24 V systems PCA82C251 LIMITING
in „Differentielle Datenübertragung, welcher Baustein empfehlenswert?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT77C101B.pdf
CC Active current on V pin, 1 MHz, 25°C I 6 10 mA CC ICC Active current on CC pin, load 0 pF IV 5 6 mA Power dissipation on VCC I 20 36 mW C = 0 PCC IV 17 22 mW load Current on V in NAP mode I I 10 µA CC
in „Atmel Fingerchip —> welches Flexkabel?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RHS_3.pdf
XTAL1/TOSC1)PB6 GDO2 GND (PCINT7/XTAL2/TOSC2)PB7 XTAL2 7 GDO0 C2 8 (PCINT8/ADC0)PC023 A0 CSN GND 24 A1 CC1101 GND 100n (PCINT9/ADC1)PC1 C11 (PCINT10/ADC2)PC225 A2 B 9p 26 A3 B (PCINT11/ADC3)PC3 XTAL1 (PCINT12/SDA/ADC4)PC427 A4 0 1 VCC GND 19 28 A5 1 R ADC6 (PCINT13/SCL/ADC5)PC5 SW1 C12 Y1 22 ADC7 (PCINT14
in „Atmega328p fuses falsch gesetzt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
WeAct-EpaperModule_SchDoc.pdf
E_SDA PI J1011 PIN11 E_GDR 1QIP QQ 0402 PI J1010 AO3402 PIN10 PI P1 PI P IJ1909 PIN9 CO8 AO3402 C9 CC0 P IJ1808 E_RESR SOT23-3 GND 1 1uF 7 PIN8 PI1uF PI0.1uF P12 P0 P IJ1 07 PIN7 0402 0402 C11 0402 P IJ1606 P1 P2 PC 1uF 5 PIN6 RR RR C12 P12 P0 P IJ1 05 PIN5 0402 0603 PC100pF NC C13 0402 E_VGH P IJ1404 PIN4 B P1 P2 1uF 3 B 100K 3R 0402 P12 P3 P IJ1 03 PIN3 C14 0402 E_VGL P IJ1202 PIN2 P12 P4uF P IJ1101 0402 PIN1 P2 E_BUSY RR BUSY GND 2 PI0 PI0 GND 0402 GND 100R R4 E_RES RES GND PI0 PI0 0402 100R RR E_D/C PI0 PI0 D/C 0 0402 100R BUSY PIJ21 PIN1 CJ2 RES 2 Wafer-1.25-8P RR PIJ22 PIN2 P1 E_CS PI0 PI0
in „Spezialtransistor: Benötige Hilfe bei der Identifikation“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Datasheet_ILI9225DS_V022.pdf
depends on external resistance and capacitance. Power Supply ON (V , V , IOV ) Display ON Setting CC CI CC Normal Display D[1:0]=11 V IOV V GON=1 CC CC CI GND V IOV V or Display OFF CC CC CI Sequence V IOV V Simultaneously CC, CC, CI Display OFF Setting 1ms or more Power On Reset DTE = 0 and GON = 0
in „STM32F103 TFT SPI ILI9225“ · Mikrocontroller und Digitale Elektronik ·
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PDF
cc1100.pdf
Development Kit 1 433 CC1100-1150DK-868 CC1100-1150DK- CC1100/CC1150-868/915 MHz Development 1 868 Kit CC1100EMK-433 CC1100EMK-433 CC1100 433 MHz Evaluation Module Kit 1 CC1100EMK-868 CC1100EMK-868 CC1100 868/915 MHz Evaluation
in „Scrambler für Funkstrecke“ · 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
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
CY7C63813-SXC-Cypress-Semiconductor-datasheet-11779157.pdf
Ignore 1000 OUT <=MAX valid valid NAK If Enabled NAK OUT Data In Endpoints ACK IN (STALL Bit = 0) 1101 OUT x x x Ignore 1101 IN x x x HostNot ACK'd 1101 IN x x x TX 1 1100 Yes Host ACK'd ACK IN (STALL Bit = 1) 1101 OUT x x x Ignore Document 38-08035 Rev. *P Page 65 of 86 CY7C63310, CY7C638xx 23. Details
in „Welche Relais und Controller zum Schalten von USB?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
6ff78f.pdf
4 3 5 S 0 0 9 8 4 7 P P P P 1 C 2 1 P 7 1 7 1 7 0 7 8 3 7 C n 4 D D D 6 C C CC 0 C 0 C R 2 C 0 6 8 R 4 C A 1 9 7 D R R R G 3 1 0 95 0 1 0 7 1 R V 2C n 3 2 1 R / 2 2 V 5 9 8 8 8 R 0 8 n 2 n 0 7 2 81 K 8 2 5 1 5 2 0 9 8 7 K 5 2 6 V -T F CC K 5 Q Q Q Q D D D D 12 8 1 6 4 2 2 ? 9 7
in „Mischpult "Alesis Multimix 8" (Knallen auf allen Ausgängen)“ · Analoge Elektronik und Schaltungstechnik ·
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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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PDF
slaa081.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 „MSP430-MCLK/SMCLK einstellung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tca8418.pdf
7 8 A A t tir B ir B INT A tiv tsps A Data Into Address Data 1 Data 2 Port 0.7 ´ V INT 0.5 ´ V SCL CC CC R/W A 0.3 ´ V CC t iv tir Pn 0.5 ´ V INT 0.5 ´ CC CC View A−A View B−B A. CLincludes probe and jig capacitance. B. All inputs are supplied by generators having the following characteristics: PRRO≤
in „Keypad 3x4 (am Tasmota o.ä.)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
TS80C51U2_ATMELCorporation.pdf
Low Voltage -0.5 0.2 CC - 0.1 V VIH Input High Voltage except XTAL1, RST 0.2 CC + 0.9 V CC+ 0.5 V V IH1 Input High Voltage, XTAL1, RST 0.7 CC V CC+ 0.5 V VOL Output Low Voltage, ports 1, 2, 3 0.3 V IOL= 100 A (4) 0.45 V (4)
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PDF
Bildschirmfoto_2026-02-01_um_16.11.33.pdf
. These are stress ratings only and functional operation of the device at Front plane FPL GND to V CC+0.5 these or any other conditions beyond Digital input voltage RST PCLK GND to V CC+0.5 those indicated in the operational sections of this specification is not Storage temperature Tstg -50 to +95 implied
in „Atmel Fingerchip —> welches Flexkabel?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „TOCPMSA1 und TOCPMCOE Verhalten beim Attiny 841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny441_841.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „Suche nach ATtiny mit ADC und Gain > 20x“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „sleep und Interrupt“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ATtiny841_Datasheet.pdf
– 5.5V 0.3V CC Input High-voltage VCC = 1.7V – 2.4V 0.7V CC(2) Except RESET pin(12) V = 2.4V – 5.5V 0.6V (2) V CC+0.5 V CC CC VIH Input High(12)tage V = 1.7V to 5.5V 0.9V (2) V +0.5 V RESET pin CC CC CC ATtiny441/841
in „Takt-Vorskalierungsregister beim Attiny841“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AT89S8253-24PU.pdf
, V CC = 2V to 5.5V VCC I CC RST VCC VCC P0 EA (NC) XTAL2 XTAL1 VSS 51 3286I–MICRO–10/05 45. I CC (Active Mode) Measurements o AT89S8253 I CC Active @ 25 C With Internal Clock Oscillator x1 Mode 4.00 A3.50
in „AT89S8253-24PU ersetzen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tlc5947.pdf
temperature range, unless otherwise noted. PARAMETER TLC5947 UNIT V Supply voltage: V –0.3 to +6.0 V CC CC O Output current (dc) OUT0 to OUT23 38 mA VI Input voltage range SIN, SCLK, XLAT, BLANK –0.3 toCC + 0.3 V SOUT –0.3 to V + 0.3 V VO Output voltage range CC OUT0 to OUT23 –0.3 to +33 V TJ(MAX) Operating
in „SPI Timing ATmega8 und TLC5947“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tlc5947.pdf
temperature range, unless otherwise noted. PARAMETER TLC5947 UNIT V Supply voltage: V –0.3 to +6.0 V CC CC O Output current (dc) OUT0 to OUT23 38 mA VI Input voltage range SIN, SCLK, XLAT, BLANK –0.3 toCC + 0.3 V SOUT –0.3 to V + 0.3 V VO Output voltage range CC OUT0 to OUT23 –0.3 to +33 V TJ(MAX) Operating
in „SPI Entstören“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FARNELL_STM25P40.pdf
CCV INV SS or VCC 50 µA ICC2 Deep Power-down Current S = V CCV INV SS or VCC 5 µA C = 0.1VCC / 0.9.CC at 25 MHz, ICC3 Operating Current (READ) 4 mA Q = open ICC4 Operating Current (PP) S = V CC 15 mA ICC5 Operating Current (WRSR) S = V CC 15 mA ICC6 Operating Current (SE) S = V CC 15 mA ICC7 Operating Current (BE) S = V CC 15 mA VIL Input Low Voltage – 0.5 0.3VCC V V Input High Voltage 0.7V V +0.4 V IH CC CC VOL Output Low Voltage IOL= 1.6 mA 0.4 V V OH Output High Voltage IOH = –100 A V CC–0.2 V 27/34 M25P40 Table 13.
in „SPI Flash Speicher beschreiben“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an10160.pdf
Figure 15. The pull-up resistors on the card side connect from SDAOUT to SCLOUT to V , and those on the CC2 backplane side connect from SDAIN and SCLIN to V . ThCCPCA9512 functions for voltages ranging from 2.7 V to 5.5 V on both V CC and V CC2 There is no constraint on the voltage magnitudes of CCand V CC2
in „Bussystem mit AVR für Baugruppenträger“ · Mikrocontroller und Digitale Elektronik ·
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PDF
an10160.pdf
Figure 15. The pull-up resistors on the card side connect from SDAOUT to SCLOUT to V , and those on the CC2 backplane side connect from SDAIN and SCLIN to V . ThCCPCA9512 functions for voltages ranging from 2.7 V to 5.5 V on both V CC and V CC2 There is no constraint on the voltage magnitudes of CCand V CC2
in „18 x SHT11 an welchem Mikrocontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pm2534ocr.pdf
1 0 3 C 1 5 0 8 - 2 0 + 8 0 % 2 2 N F 4 8 2 2 1 2 2 3 0 1 0 3 8-4 posno. description ordering no. Cc 1 5 0 9 - 2 0 + 8 0 % Z 2 N F 4 8 2 2 1 2 2 3 0 1 0 3 C 1 5 1 0 - 2 0 + 8 0 % 2 2 N F 4 8 2 2 1 2 2 3 0 1 0 3 Cc 1511 -204+80% 2eNF 4822 l22 30103 Cc 1512 —-20+80% Z22NF 4822 l22 30103 *8 Cc 1 5 1 3
in „Pjilips PM2519“ · Markt ·
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PDF
slau330a.pdf
. The following radio daughter cards are compatible with the MSP-EXP430F5529 Experimenter Board: • CC1100EMK/CC1101EMK – Sub-1-GHz radio • CC2500EMK – 2.4-GHz radio • CC2420EMK/CC2430EMK – 2.4-GHz 802.15.4 [SoC] radio • CC2520EMK/CC2530EMK – 2.4-GHz 802.15.4 [SoC] radio • CC2520 + CC2591 EM (if R4 and
in „Frage zu Schaltung (TI MSP430)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
slau330a.pdf
. The following radio daughter cards are compatible with the MSP-EXP430F5529 Experimenter Board: • CC1100EMK/CC1101EMK – Sub-1-GHz radio • CC2500EMK – 2.4-GHz radio • CC2420EMK/CC2430EMK – 2.4-GHz 802.15.4 [SoC] radio • CC2520EMK/CC2530EMK – 2.4-GHz 802.15.4 [SoC] radio • CC2520 + CC2591 EM (if R4 and
in „MSP430 ADC sehr merkwürdige Werte“ · Mikrocontroller und Digitale Elektronik ·
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PDF
25P40_STMicroelectronics.pdf
. If 22/35 M25P40 POWER-UP AND POWER-DOWN At Power-up and Power-down, the device must – tPUW after CC passed the V WI threshold not be selected (that is Chip Select (S) must follow the voltage applied on V ) until V reaches the – tVSL afterVCC passed the V CC (min) level CC CC These values are specified in Table 7. correct value: – V CC (min) at Power-up, and then for a further de- If the delay,VSL, has elapsed, after CC has risen lay ofVSL above V CC(min), the device can be selected for READ instructions even if the PUW delay is not
in „SMD EEPROM: Reparatur gebrochenes Beinchen“ · Mikrocontroller und Digitale Elektronik ·
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Datei
SMY202.HEX.txt
2070A000A301FCC074610FFF74C8742E98F02C629104C6B1FFCD9101C7F0A301FCC01C619B :2070C00011111CD70FA1FCC01EB1101C931E011CC71E011C2FD8F0A1FCC01EB1101C931E64 :2070E000011CC71E011C2FC6F0A1FCC01EB1EF1C731E011CC71E011C2FB4F0EF7CFBB01CA0 :20710000CC381C079101C69102C6F0A30166E11EA30164E11CC301B8C01CC301BAC01EC91C :207120003700EF94F9F0C701FEC0009101C69120C7F0B1FF1CC701FEC01C9101C69120C728
in „[V] Rohde und Schwarz SMY02 9kHz-2.080Gh Signal Generator“ · Markt ·
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PDF
STM32H7XX_M_schematics.pdf
BOOT0 BOOT1 启动方式 GND PIJ4011 5151 U5 0 无关 用户闪存 J1J1 SDI PB15/MOSI PIJ4022 MiniSD 1 SDIO_D2 PC10 U1U CC1 NBO T 0 PIJ101 SCL PB13/SCK PIJ4043 G G DAT3 PIU502IO_D3 PC11 5V AMS1117-3.3V 3V3 1 0 ISP下载模式 PIC1PIC102 N3V3 PIJ102 1 CS PB12/CS PIJ4054 CMD PIU503IO_CMD PD2 3V3 P I U 1 VCCOUT P I U 1 0 2 GND 104
in „Problem mit USB auf STM32H743“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX44009.pdf
SDA, A0 Input Current IIH IL TA= +25NC 0.01 20 nA 0.3 x I C Input Low Voltage VIL_I2C SDA, SCL V V CC 0.7 x I C Input High Voltage VIH_I2C SDA, SCL V V CC Address Input Low Voltage VIL_A0 A0 0.3 V Address Input High Voltage VIH_A0 A0 VCC - V 0.3V Input Capacitance 3 pF 2 Maxim Integrated MAX44009 Industry
in „Helligkeitssensor Threshold festlegen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
STM8_Programming_Manual.pdf
: 0x00 7 6 5 4 3 2 1 0 CC2NP CC2NE CC2P CC2E CC1NP CC1NE CC1P CC1E rw rw rw rw rw rw rw rw Bit 7 CC2NP: Capture/compare 2 complementary output polarity Refer to CC1NP description. Bit 6 CC2NE: Capture/compare 2 complementary
in „STLINK V2 und China Boards“ · Mikrocontroller und Digitale Elektronik ·
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PDF
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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PDF
T83C5121.PDF
V CC CC ICC LI VCC V CC VCC P0 RST EA (NC) XTAL2 CLOCK SIGNAL XTAL1 VSS PLCC52 configuration All other pins are disconnected. Figure 53. I CC Test Condition, Power-down Mode VCC V CC CC LI VCC VCC V CC P0
in „[V] 1 Stange ältere (ca. 56St) Atmel AT89C5121 mit Interface für Chipkarten/ SIM (9€)“ · Markt ·
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T83C5121.PDF
V CC CC ICC LI VCC V CC VCC P0 RST EA (NC) XTAL2 CLOCK SIGNAL XTAL1 VSS PLCC52 configuration All other pins are disconnected. Figure 53. I CC Test Condition, Power-down Mode VCC V CC CC LI VCC VCC V CC P0
in „[V] noch 1 Stange ältere (60St) Atmel AT89C5121 mit Interface für Chipkarten/ SIM (9€)“ · Markt ·
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PDF
RJH60F5DPQ.pdf
Dynamic Input Characteristics (Typical) ) ( 800 V 16 ) E GE ( C E V VCE G e 600 12 V a V = 300 V e o CC a V 600 V o e 400 8 V i e m i E m r 200 V CC= 600 V 4 E t 300 V t e IC= 40 A t l Ta = 25°C G C 0 0 0 20 40 60 80 100 Gate Charge Qg (nc) R07DS0326EJ0200 Rev.2.00 Page 4 of 7 Jul 22, 2011 RJH60F5DPQ-A0
in „Inverter Elektroden-Schweißgerät abgeraucht -> IGBT defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BJTransistor_2N2222A.pdf
= 9.5 V; T = 500ps; t = r0 f; t = t ≤ 3 ns. R1 = 68 ; R2 = 325; R = 325; R = 160 . B C VBB= −3.5 V;CC= 29.5 V. Oscilloscope input impedince Z.= 50 Fig.2 Test circuit for switching times. 1997 May 29 5 Philips Semiconductors Product specification NPN switching transistors 2N2222; 2N2222A PACKAGE OUTLINE
in „DC DC Verstärkung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2N2222_2222A.pdf
= 9.5 V; T = 500ps; t = r0 f; t = t ≤ 3 ns. R1 = 68 ; R2 = 325; R = 325; R = 160 . B C VBB= −3.5 V;CC= 29.5 V. Oscilloscope input impedince Z.= 50 Fig.2 Test circuit for switching times. 1997 May 29 5 Philips Semiconductors Product specification NPN switching transistors 2N2222; 2N2222A PACKAGE OUTLINE
in „Transistor mit Basistrom im µA-Bereich schalten?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2n2222-datasheet.pdf
= 9.5 V; T = 500ps; t = r0 f; t = t ≤ 3 ns. R1 = 68 ; R2 = 325; R = 325; R = 160 . B C VBB= −3.5 V;CC= 29.5 V. Oscilloscope input impedince Z.= 50 Fig.2 Test circuit for switching times. 1997 May 29 5 Philips Semiconductors Product specification NPN switching transistors 2N2222; 2N2222A PACKAGE OUTLINE
in „Oszi v. SUN Motortester zeigt nur kurz einen Punkt.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
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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Datei
cd-loader.dump.hex.txt
81b7 280a db3c cb7f 2804 3e53 180c 3a82 ..(..<..(.>S..:. 0000690: 81b7 c8db 3ccb 77c8 3e52 214f 8077 1101 ....<.w.>R!O.w.. 00006a0: 00c3 3507 fe3d 2022 dd21 4f80 fd21 fd00 ..5..= ".!O..!.. 00006b0: 3e06 dd77 00fd 7e00 dd77 01fd 7e01 dd77 >..w..~..w..~..w 00006c0: 0211 0300 214f 80c3 3507 fe60 2004 3e00
in „Suche KL5C80A12 (Z80 Clone) Datenblatt / Register-Map“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCA63100_Schematic_And_PCB.pdf
PAU10 COP PA0 PU20 PA203 PPA APA0P P0 PPP0 P PR1O2 CO3 P AP3 05 PA P3 06 PTP270 COP2 CR CR COB1 CO1 CC6 CRA0 P2PR P P6COP21 CO2P2P P PA0 P P21 PR CR1 P AP3 07 PA P3 08 P3 PC2 P P PC0 AP09 PCO51 P22 CO2 COR2 P AP3 09 PAP 3010 PATP340 COP3 COPC1 P P PC0 C1 CC9 CC0 COP PA0 P PCOR0 CTP4 P1PA PCPA1 PC81PA12
in „Strommessung im µA-mA Bereich - Automatischen Umschalten, Ansätze, Fragen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
doc4113.pdf
conditions. 7. For other values, please contact your sales office. 61 4113D–8051–01/09 Figure 17-1. I CC Test Condition, Active Mode VCC ICC VCC V CC P0 VCC RST EA (NC) XTAL2 CLOCK XTAL1 SIGNAL V SS All other pins are disconnected. Figure 17-2. I CC Test Condition, Idle Mode VCC CC VCC V CC P0 RST EA (NC
in „STC12C5A60S2 (a.k.a 80C51) programieren mit mySmartUSB light“ · Mikrocontroller und Digitale Elektronik ·
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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 ·