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PCF8583_5_rtc_real_time_clock.pdf
clock/calendar and counter functions. The next 8 bytes may be programmed • 32.768 kHz or 50 Hz time base as alarm registers or used as free RAM space. 2 The remaining 240 bytes are free RAM locations. • Serial input/output bus (I • Automatic word address incrementing • Programmable alarm, timer and interrupt
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PCF8583P.pdf
clock/calendar and counter functions. The next 8 bytes may be programmed • 32.768 kHz or 50 Hz time base as alarm registers or used as free RAM space. 2 The remaining 240 bytes are free RAM locations. • Serial input/output bus (I • Automatic word address incrementing • Programmable alarm, timer and interrupt
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PCF8583_5.pdf
clock/calendar and counter functions. The next 8 bytes may be programmed • 32.768 kHz or 50 Hz time base as alarm registers or used as free RAM space. 2 The remaining 240 bytes are free RAM locations. • Serial input/output bus (I • Automatic word address incrementing • Programmable alarm, timer and interrupt
in „PCF8583: Welche Genauigkeit kann ìch erwarten?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Schieberegister_TPIC_6B595_DB_Datenblatt.pdf
otherwise noted) MIN NOM MAX UNIT VCC Logic supply voltage 4.5 5.5 V VIH High-level input voltage 0.85 VCC V VIL Low-level input voltage 0.15 VCC V Pulsed drain output current, T = 25°C, = 5 V, all outputs on(2(see C CC –500 500 mA Figure 7) su Setup time, SER IN high before SRCKM↑ (see Figure 9) 20 ns
in „Auswahl Schalterarray“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Datasheet_TPIC6B595.pdf
otherwise noted) MIN NOM MAX UNIT VCC Logic supply voltage 4.5 5.5 V VIH High-level input voltage 0.85 VCC V VIL Low-level input voltage 0.15 VCC V Pulsed drain output current, T = 25°C, = 5 V, all outputs on(2(see C CC –500 500 mA Figure 7) su Setup time, SER IN high before SRCKM↑ (see Figure 9) 20 ns
in „Interne Schaltung: TPIC6B595“ · Mikrocontroller und Digitale Elektronik ·
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PCF8593.pdf
6.0 V External RESET input resets I C interface only Operating current (at fSCL = 0 Hz, 32 kHz time base, V DD = 2.0 V): typical 1 μA Clock function with four year calendar Universal timer with alarm and overflow indication 24 hour or 12 hour format 32.768 kHz or 50 Hz time base Serial input and output
in „PCF8593 über I2C Bus steuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tps79912.pdf
J T TJ= +25°C U T = −40°C O 0.2 O J V V 0 i 0 i g 0.2 g 7.13 n T = +125°C a h 0.4 J h 14.25 C T J +85°C C 0.6 TJ= +125°C TJ= +85°C 21.38 0.8 28.50 1.0 2.5 3.5 4.5 5.5 6.5 7.5 0 50 100 150 200 I (mA) V (V) OUT IN Figure 3. Figure 4. OUTPUT VOLTAGE vs TPS799285 DROPOUT VOLTAGE vs JUNCTION TEMPERATURE OUTPUT
in „Antwort von technischem Support auf meine Frage: Wird hier die Frage eigentlich beantwortet?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TPS2120.pdf
1) VOUT = VINx (INx not powering OUT) -40°C to 125°C 25 µA 25°C -1 1 µA |VINx- OUT | ≤ 5V -40°C to 85°C -5 5 µA -40°C to 125°C -80 80 µA ILK, INx Leakage Current (INx to OUT) 25°C -1 1 µA |VINx- OUT | ≤ 22V -40°C to 85°C -35 35 µA -40°C to 125°C -500 500 µA VINxRising -40°C to 125°C 2.5 2.65 2.8 V V
in „Speisung umschalten“ · Analoge Elektronik und Schaltungstechnik ·
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The_Terawatt_Challenge_for_Thin-Film_PV__NREL.pdf
Nate Lewis (2004) has emphasized that among the renewables, only solar has a large enough resource base to meet a major fraction of the world’s energy needs. The rest of the renewables (wind, biomass, geothermal, hydro) do not have adequate global resources to do so – although they can meet a fraction
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STR751FR0T6.pdf
LQFP100 14 x 14 mm ■ Memories – Up to 256 KB Flash program memory (10k W/E cycles, retention 20 yrs @ 85°C) – 16 KB Read-While-Write Flash for data (100k W/E cycles, retention 20 yrs@ 85°C) LFBGA64 LFBGA100 – Flash Data Readout and Write Protection 8 x 8 x 1.7 mm 10 x 10 x 1.7 mm – 16KBytes embedded high
in „DAB Radio mit ARM Prozessor, HD44780 Display (BlueTinum BT-H1801)“ · Mikrocontroller und Digitale Elektronik ·
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BRO_EM_GER.pdf
/seriell: 1,5kV Betriebstemperatur 0 bis +55°C (r.L. 90% bis 95% n.kond.) Lagertemperatur -20 bis +85°C (r.L. 90% bis 95% n.kond.) Lieferumfang DIN-Schienenmontage-Kit, 9-pol. Kabel seriell, Betriebs- spannungsadapter, 9-pol.Adapt., Software, Kurzanleitung Andere Merkmale 15kV EMV Überspannungsschutz
in „Strommessung Hall-Sensor 30A 40A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
L4940TS.pdf
discharged through all pins. OPERATING RATINGS Temperature Range (T MIN ≤ TA≤ T MAX ) −40°C ≤ T A ≤ 85°C Supply Voltage 10V ≤ V DD ≤ 16V Copyright © 2003–2013, Texas Instruments Incorporated Submit Documentation Feedback 3 Product Folder Links: LM4940 LM4940 SNAS219C –OCTOBER 2003–REVISED MAY 2013 www.ti.com
in „Kondensator Audio Amp“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
93C86.pdf
4 5 VSS • Temperature ranges supported - Commercial (C): 0°C to +70°C - Industrial (I): -40°C to +85°C Block Diagram - Automotive (E) -40°C to +125°C VCC VSS Description: The Microchip Technology Inc. 93C76/86 are 8K and 16K low voltage serial Electrically Erasable PROMs. Memory Address Array Decoder
in „asm Code für EEPROM 93C86“ · Mikrocontroller und Digitale Elektronik ·
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Allvision_0_91_inch_OLED_128x32_SSD1306.pdf
Supply Voltage for DC/DC (Internal DC/DC Enable) V bat -0.3 4.3 V 1, 2 Operating Temperature TOP -40 85 °C Storage Temperature TSTG -40 85 °C 3 Life Time (120 cd/m ) 10,000 - hour 4 2 Life Time (80 cd/m ) 30,000 - hour 4 2 Life Time (60 cd/m ) 50,000 - hour 4 Note 1: All the above voltages are on the basis
in „Mit Wire.h über I2C auf LCD-Display 1602 zugreifen“ · Mikrocontroller und Digitale Elektronik ·
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pcf8573.pdf
supply supply interruptions is provided by a 1.2 V nickel cadmium interruption battery. The time base is generated from a 32.768 kHz • Crystal oscillator control (32.768 kHz) crystal-controlled oscillator. • Low power consumption. 3 QUICK REFERENCE DATA SYMBOL PARAMETER MIN. TYP. MAX. UNIT VDD − VSS1
in „DS3231 vs PCF8573, hilfe gesucht !“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Allvision_0_91_inch_OLED_128x32_SSD1306.pdf
Supply Voltage for DC/DC (Internal DC/DC Enable) V bat -0.3 4.3 V 1, 2 Operating Temperature TOP -40 85 °C Storage Temperature TSTG -40 85 °C 3 Life Time (120 cd/m ) 10,000 - hour 4 2 Life Time (80 cd/m ) 30,000 - hour 4 2 Life Time (60 cd/m ) 50,000 - hour 4 Note 1: All the above voltages are on the basis
in „Arduino Bibliothek - Methoden bzw. Funktionen en Detail erklärt - gesucht“ · Mikrocontroller und Digitale Elektronik ·
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f_2320312311226304479081.pdf
Chip Size 10.82 mm × 2.81 mm Chip Thickness 0.625 mm Bump Pitch 71 m (Min.) Bump Size PAD No. 1~24 85 m × 85 m PAD No. 25~82 64 m × 85 m PAD No. 83~99 85 m × 85 m PAD No. 100 85 m × 73 m PAD No. 101~133 85 m × 47 m PAD No. 134 85 m × 73 m PAD No. 135 73 m × 85 m PAD No. 136~273 47 m × 85 m PAD No. 274 73 m × 85 m PAD No. 275 86 m × 73 m PAD No. 276~308 85 m × 47 m PAD No. 309 85 m × 73 m Bump Height 17 m (Typ.) 8–4 EPSON Rev. 2.4a S1D15605 Series S1D15605 ***** Pad Center Coordinates Units: m PAD PIN PAD PIN
in „Philips GLCD Modul“ · Mikrocontroller und Digitale Elektronik ·
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MAX9271.pdf
. . . 24. . . . . . . . . . . . . . . . . . . . . . . . . . . . Figure 18. GMSL UART Protocol for Base Mode . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 25. . . . . . . . . . . . . . . . . . . . Figure 19. GMSL UART Data Format for Base Mode . . . . . . . . . . . . . . . . . . . .
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Philips-Technical-Application-Guide-Fluorescent.pdf
lm lm/W % TL’Standard 38 40 2850 72 73 ‘TL’D Standard 26 36 2850 79 73 ‘TL’D Super/80 26 36 3350 93 85 ‘TL’D Super/80 HF 26 32 3200 100 85 ‘TL’D Super/80 HF New Generation 26 32 3200 100 92 TL’5 Super/80 HF 16 28 2900 104 92 Note 1:Luminous flux and efficacy are only applicable for to the temperature of
in „EVG 5m von Leuchtstofflampe entfernt“ · Analoge Elektronik und Schaltungstechnik ·
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STC15-English.pdf
℃ ¥4.5 ¥4.9 ¥4.4 ¥4.3 ¥4.5 - STC15F2K40S2 S 5.5-4.2 28 -40℃ ~ +85 ℃ ¥4.6 ¥4.9 ¥4.5 ¥4.4 ¥4.6 - STC15F2K48S2 5.5-4.2 28 -40℃ ~ +85 ℃ ¥4.6 ¥4.9 ¥4.5 ¥4.4 ¥4.6 - STC15F2K56S2 5.5-4.2 28 -40℃ ~ +85 ℃ ¥4.6 ¥4.9 ¥4.5 ¥4.4 ¥4.6 - STC15F2K60S2 5.5-4.2 28 -40℃ ~ +85 ℃ ¥4.6
in „Testbericht Elektronische Last“ · Analoge Elektronik und Schaltungstechnik ·
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P51XAG30KFA.pdf
to +70, Plastic Leaded Chip Carrier 30 SOT187–2 P51XAG30KF BD P51XAG33KF BD PXAG37KF BD OTP –40 to +85, Plastic Low Profile Quad Flat Pkg. 30 SOT389–1 P51XAG30KF A P51XAG33KF A PXAG37KF A OTP –40 to +85, Plastic Leaded Chip Carrier 30 SOT187–2 NOTE: 1. OTP = One Time Programmable EPROM. UV = Erasable
in „P51XAG30, Flash schreiben 80C51 Struktur“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LMH6518.pdf
Model 200V CC Charge Device Model 1000V V DD = 3.3V (±5%) Supply Voltage Temperature Range −40°C to 85°C VCC (5V nominal) 5.5V Thermal Properties VDD (3.3V nominal) 3.6V Differential Input ±1V Temperature Range (Note 4) −40°C to 85°C Input Common Mode Voltage 1V to 4V Junction-to-Ambient VCM and VCM_Aux
in „Wittig(welec) DSO W20xxA Hardware“ · Mikrocontroller und Digitale Elektronik ·
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TASMMAN.pdf
8048 assembly tasm -65 source.asm for a 6502 assembly tasm -51 source.asm for an 8051 assembly. tasm -85 source.asm for an 8085 assembly. tasm -80 source.asm for a Z80 assembly. tasm -05 source.asm for a 6805 assembly. tasm -68 source.asm for a 6800/6801/68HC11 assembly. tasm -70 source.asm for a TMS7000
in „Suche verschiedene BASIC Eprom's für Z80 Rechner.“ · Markt ·
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DSPIC33EP512GM710_datasheet.pdf
is enabled 0 = PWMx module is disabled bit 14 Unimplemented: Read as ‘0’ bit 13 PTSIDL: PWMx Time Base Stop in Idle Mode bit 1 = PWMx time base halts in CPU Idle mode 0 = PWMx time base runs in CPU Idle mode bit 12 SESTAT: Special Event Interrupt Status bit 1 = Special event interrupt is pending 0 =
in „Probleme mit SRAM 23LCV1024“ · Mikrocontroller und Digitale Elektronik ·
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rfm63dw.PDF
Behavior....................... 39 Figure 77: 869 MHz Spectral Purity DC-1GHz............................85 Figure 33: Sync Word Recognition ............................................. 40 Figure 78: 869 MHz Spectral Purity 1-6GHz ...............................85 Figure 34: Continuous Mode Conceptual View
in „JDY-40 ein neuer Geniestreich aus China?“ · Mikrocontroller und Digitale Elektronik ·
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11000.pdf
see Figure 80) IIO=+2mA 0.5 1) VOL Output low level voltage for a high sink I/O pin V IIO=+20mA,T ≤85AC 1.3 5 T ≥85°C 1.5 when 4 pins are sunk at same time =D A V (see Figure 81 and Figure 83) D I =+8mA 0.6 V IO Output high level voltage for an I/O pin IIO=-5mA, T ≤85AC VDD -1.4 2) T ≥85°C V -1.6 VOH
in „Programmierung von ST72F321Bj9“ · Mikrocontroller und Digitale Elektronik ·
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tas5504.pdf
. . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 85 6.36 General Control Register (0xE0) . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 85 6.37 Incremental Multiple Write Append Register
in „[V] diverse Bauteile (Fets, BMS-ICs, Motor-Treiber“ · Markt ·
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PDF
Microchip_AppNote_00994a.pdf
mW for calculation shows the required accuracy converted to the remaining meter power. An advanced base 2, in bits: microcontroller-based meter design would then be EQUATION 1: limited to less power and a slower clock frequency. Smaller shunts (<200 µΩ) can be used with proper ---- • 0.01 = 0.00003125
in „Strom 10A bis 300A messen mit Tiny26“ · Mikrocontroller und Digitale Elektronik ·
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PDF
msp430f1232.pdf
Hz, µA Program executes in Flash V CC= 3 V 11 18 TA= −40°C +85°C, V CC= 2.2 V 32 45 (CPUOff) Low-power mode, (LPM0) f(MCLK)= 0,(SMCLK)= 1 MHz, µA f(ACLK) 32,768 Hz V CC= 3 V 55 70 TA= −40°C +85°C, V CC= 2.2 V 11 14 (LPM2) Low-power mode, (LPM2) f(MCLK)= (SMCLK)=
in „MSP430 Interrupt Prioritäten?“ · Mikrocontroller und Digitale Elektronik ·
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stm32f030f4-956260.pdf
input voltage DDA V IN FT and FTf I/O -0.3 5.5(2) BOOT0 0 5.5 LQFP64 - 455 Power dissipation at T = 85 °C LQFP48 - 364 P D (1) A mW for suffix 6 LQFP32 - 357 TSSOP20 - 263 Ambient temperature for the Maximum power dissipation -40 85 TA suffix 6 version (2) °C Low power dissipation -40 105 T J Junction
in „STM32F030 interne REF ausreichend für 12Bit?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
en.DM00088500.pdf
input voltage DDA V IN FT and FTf I/O -0.3 5.5(2) BOOT0 0 5.5 LQFP64 - 455 Power dissipation at T = 85 °C LQFP48 - 364 P D (1) A mW for suffix 6 LQFP32 - 357 TSSOP20 - 263 Ambient temperature for the Maximum power dissipation -40 85 TA suffix 6 version (2) °C Low power dissipation -40 105 T J Junction
in „Controller IC für digitale RGBW LED-Streifen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Bestandsliste_mit_Preisen1.pdf
radial 470uF 63V 158 Stk 0,14 € 22,52 € ELRA1647 Kondensator Elko radial 47uF 16V 396 Stk 0,04 € 14,85 € ELRA3547 Kondensator Elko radial 47uF 35V 118 Stk 0,04 € 4,72 € SKR632200UF Kondensator Elko radial 85° 2200uF 63 1 Stk 0,72 € 0,72 € TMP50220UF Kondensator Elko radial 85° 220uF 50 21 Stk 0,06 € 1,26
in „Auflösung Elektronik Shop“ · Markt ·
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PDF
ag172d.pdf
OSP XIN NC PMBS3904 20 NC 88 GPO0 X401 NC 87 GPO1 C422 VCC3.3 14.318MHz R493 NC 86 GPO2 33 XOUT NC 85 GPO3 R406 0.1uF C423 22pF 20 84 GPO4 NC 83 10K 1/16W R481 R482 NC 82 NC NC NC 2006/07/21 ADD R492/R493 75 GPIO_P22 74 +5V +5V VCC3.3 GPIO_P23 26 GPIO_P03 on_PANEL_12V 2 Q405 +5V 2,3 GPIO_P16/PWM2 35
in „Geplatzte 25V-Elkos im 12V-Netzteil gegen 16V Low ESR austauschen?“ · Analoge Elektronik und Schaltungstechnik ·
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tca8418.pdf
600 u 4 V = 1.8 V u V = 1.8 V S CC S CC 3 400 2 VCC= 1.65 V VCC= 1.65 V 200 1 0 0 -40 -15 10 35 60 85 -40 -15 10 35 60 85 Temperature, T A°C) Temperature, T A°C) Figure 1. Supply Current vs Temperature Figure 2. Standby Supply Current vs Temperature 11 60 10 VCC= 1.65 V 50 9 TA= -40°C ) 8 ) u A (C 7
in „Keypad 3x4 (am Tasmota o.ä.)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
UM1052_PMSM_singledual_FOC_SDK_v3.3.pdf
available. They differ in both the supported STM32 family and how they generate the clocks: a simple time base itself or an Operating System, FreeRTOS. ● STM32F0xx_Workspace for STM32F0xx devices and simple time base ● STM32F10x_Workspace for both STM32F100xx and STM32F103xx devices and simple time base ● STM32F2xx_Workspace for STM32F2xx devices and simple time base ● STM32F4xx_Workspace for STM32F4xx devices and simple time base ● STM32F10x_RTOS_Workspace for both STM32F100xx and STM32F103xx devices and FreeRTOS ● STM32F2xx_RTOS_Workspace for STM32F2xx devices
in „BLDC Sinuskommutierung Ansteuerung H-Brücke“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tiny13_doc2535.pdf
7 -40 ˚C 25 ˚C 6 85 ˚C 5 ) 4 A ( O I 3 2 1 0 0 0.2 0.4 0.6 0.8 1 1.2 1.4 1.6 1.8 2 V OH(V) 135 2535H–AVR–10/07 Figure 85. I/O Pin Sink Current vs. Output Voltage (Low Power Ports, V CC = 5V) I/O PIN SINK CURRENT vs. OUTPUT
in „Atmel AVRs: SRAM so unwichtig?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sn74hc02.pdf
SN74HC02N Tube of 50 SN74HC02D SOIC – D Reel of 2500 SN74HC02DR HC02 Reel of 250 SN74HC02DT –40°C to 85°C SOP – NS Reel of 2000 SN74HC02NSR HC02 SSOP – DB Reel of 2000 SN74HC02DBR HC02 Tube of 90 SN74HC02PW TSSOP – PW Reel of 2000 SN74HC02PWR HC02 Reel of 250 SN74HC02PWT CDIP – J Tube of 25 SNJ54HC02J
in „Ersatztype CD4001“ · Mikrocontroller und Digitale Elektronik ·
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PDF
62761.pdf
SN74HC02N Tube of 50 SN74HC02D SOIC – D Reel of 2500 SN74HC02DR HC02 Reel of 250 SN74HC02DT –40°C to 85°C SOP – NS Reel of 2000 SN74HC02NSR HC02 SSOP – DB Reel of 2000 SN74HC02DBR HC02 Tube of 90 SN74HC02PW TSSOP – PW Reel of 2000 SN74HC02PWR HC02 Reel of 250 SN74HC02PWT CDIP – J Tube of 25 SNJ54HC02J
in „Treiberfähigkeit bei Gatter für LED-Ansteuerung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AM27C010.pdf
Guide and Valid Combinations TEMPERATURE RANGE C = Commercial (0 C to +70°C) I = Industrial (°C to +85C) PACKAGE TYPE P = 32-Pin Plastic DIP (PD 032) J = 32-Pin Plastic Leaded Chip Carrier (PL 032) SPEED OPTION See Product Selector Guide and Valid Combinations DEVICE NUMBER/DESCRIPTION Am27C010 1 Megabit
in „OTP "E"EPROM programmieren amd 27c010“ · Mikrocontroller und Digitale Elektronik ·
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PDF
564746-da-01-en-MOSFET_N_KA_800V_STP4N80K5_TO_220AB_STM.pdf
4.95 5.15 F 1.23 1.32 H1 6.20 6.60 J1 2.40 2.72 L 13 14 L1 3.50 3.93 L20 16.40 L30 28.90 ∅ P 3.75 3.85 Q 2.65 2.95 DocID025105 Rev 3 17/23 23 Package information STD4N80K5, STF4N80K5, STP4N80K5, STU4N80K5 4.4 IPAK(TO-251), package information Figure 29. IPAK (TO-251) type A outline ▯▯▯▯▯▯▯B0 18/23 DocID025105
in „Anodenspannungsstabilisierung für Röhrenverstärker mit IRF840 als Längsregler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
2207251030_Mixic-MX1616H_C5119044-1.pdf
powered by 1-2 lithium batteries Product Model Encapsulation Operating temperature MX1616H SOP16 -20ÿ ~ 85ÿ Typical application diagram 2V-8.6V 4 13 VDD1 OUTB1 8 VDD2 100uF- C3 1.8V-5V 1 M1 470uF VCC1 0.1uF 5 VCC2 C1 4.7uF 16 OUTA1 C2 INB1 3 INB1 INA1 2 INA1 9 OUTB2 INB2 7 INB2 6 INA2 INA2 C4 M2 15 0.1uF
in „MX1616H Dual H-Bridge Motor Driver“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RTC72423APP.pdf
=+25 C° GND 0.3 to VDD +0.3 V Output voltage V O Ta=+25 C° GND 0.3 to VDD +0.3 V RTC-72421 −55 to +85 °C Storage temperature TSTG RTC-72423 −55 to +125 °C RTC-72421 ; Under 10 seconds below a temperature of +260°C on leads Soldering condition TSOL ( Package Max. +150 ° ) RTC-72423 ; Max. 2 times under
in „Kleine DCF Antenne für Propeller Clock“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RTC-72421_3_AM_Application.pdf
RTC-72421 ; 10 to +70 °C RTC-72423 ; 40 to +85 °C Data hold voltage VDH 2.0 to 5.5 V CS 1ata hold time CDR See the section on data 2.0 Min. µs Operation recovery time tr hold timing 3. Frequency characteristics and current consumption characteristics
in „Uhrenbaustein RTC 72421“ · Mikrocontroller und Digitale Elektronik ·
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PDF
tca9548a.pdf
CC CC (IOL) at Three V CC Levels Three Temperature Points 6 30 25ºC (Room Temperature) 5.8 85ºC 5.6 -40º 25 5.4 ) 20 F 5.2 () ) F 5 ( 15 ( N I4.8 R C 10 4.6 4.4 25ºC (Room Temperature) 5 4.2 85ºC -40ºC 4 0 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 5.5 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 5.5 VCC (V) D006 VCC
in „plötzl. Spannungsanstieg bei TCA9548a“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX1647.PDF
Information ________________________Applications PART TEMP. RANGE PIN-PACKAGE MAX1647EAP -40°C to +85°C 20 SSOP Notebook Computers MAX1648ESE -40°C to +85°C 16 Narrow SO Personal Digital Assistants Charger Base Stations Phones __________________________________________________________Pin Configurations
in „Win98 Diagnose Notebook Akku immer 50%“ · PC Hard- und Software ·
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PDF
Schematics.pdf
AD8306 Audio Switch AF Pre-Amp AF Pwr Amp Speaker Out Limited IF Chebyshev Filter 1st LO Center 86.85 MHz HF AGC 2nd LO Center IF AGC RSSI Audio Gain and Transformer TR1 82.85...52.85 BW 25 kHz 76.15 MHz 10.7 MHz -10 dBm 0 dBm AGC Manual Gain Controller Control Gain Gain Gain Distrib. Distrib. Distrib
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PDF
MAX1647_1_.PDF
Information ________________________Applications PART TEMP. RANGE PIN-PACKAGE MAX1647EAP -40°C to +85°C 20 SSOP Notebook Computers MAX1648ESE -40°C to +85°C 16 Narrow SO Personal Digital Assistants Charger Base Stations Phones __________________________________________________________Pin Configurations
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interleaved_bcm_pfc.pdf
deviation during a half 30 line cycle as a percentage of designed power, 50%, 75% and 100%. 20 350 350 10 85 130 175 220 265 300 300 RMS Line voltage (V) 250 P=50% 250 Fig. 5. Minimum switching frequency vs. RMS line voltage. L=390 H, P=75% resonant frequency=360kHz, OUT=200W. P=100% 200 200 With the variation
in „LC-filter - Überschwingen verhinden“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Amplifier_LM3886.pdf
temperature is 250°C. Operating Ratings (1)(2)(3) Temperature Range T MIN≤ T A T MAX −20°C ≤ T ≤A+85°C Supply Voltage |V | + |V | 20V to 84V (1) All voltages are measured with respect to the GND pin (pin 7), unless otherwise specified. (2) Absolute Maximum Ratings indicate limits beyond which damage
in „LM3886 LTspice Error“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DD19FCD3d01.pdf
C 25 ˚C 25 85 ˚C ) 20 A ( I 15 10 5 0 0 0.5 1 1.5 2 2.5 3 V OH(V) Figure 19-27. I/O Pin Source Current vs. Output Voltage (V CC = 1.8V) I/O PIN SOURCE CURRENT vs. OUTPUT VOLTAGE VCC = 1.8V 10 -40 ˚C 9 25 ˚C 8 85 ˚
in „HV-Prog für ATtiny13“ · Mikrocontroller und Digitale Elektronik ·