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PDF
DS3502-3122456.pdf
See Figure 2.) PARAMETER SYMBOL CONDITIONS MIN TYP MAX UNITS SCL Clock Frequency fSCL (Note 10) 0 400 kHz Bus Free Time Between STOP t 1.3 μs and START Conditions BUF Hold Time (Repeated) START Condition tHD:STA 0.6 μs Low Period of SCL tLOW 1.3 μs High Period of SCL HIGH 0.6 μs Data Hold Time tHD:DAT
in „Anschluss des Potentiometers an den Microcontroller“ · Mikrocontroller und Digitale Elektronik ·
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PDF
panasonic_ncr18650b-2.pdf
) h2,500,000 )4.05 3,000000 A) ) A ) ( )4.0 VOLTAGE 3,000 (A ) ( A)3,000 G)4.0 VOLTAGE 3,000 TA mA T2,(A0,500 T( G CAPACITY R C) (m C T(m,000 O)4T0 VOLTAGE CAPACITY 2,03,000 PA C P1,500,000 VA L3.5 CAPACITY 2,000 AE mI C P( L V VOLTAGE CC Y AY2,000 V3.5 CAPACITY 2,000 E A 1,0A0,500 3.0 1,000 R A A1,000
in „Welche Zellchemie hat die Panasonic NCR18650B?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOSFET_TK6A60W_Toshiba_LIN.pdf
time) t 7 f Switching time (turn-off time) toff 55 MOSFET dv/dt ruggedness dv/dt V DD= 0 to 400 VD I = 3.1 A 25 V/ns Fig. 6.2.1 Switching Time Test Circuit 6.3. Gate Charge Characteristics (T a =
in „Push/Pull in spannungsgeregelter Stromquelle / Frage zur Auslegung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MOSFET_TK6A60W_Toshiba_LIN.pdf
time) t 7 f Switching time (turn-off time) toff 55 MOSFET dv/dt ruggedness dv/dt V DD= 0 to 400 VD I = 3.1 A 25 V/ns Fig. 6.2.1 Switching Time Test Circuit 6.3. Gate Charge Characteristics (T a =
in „Push/Pull in spannungsgeregelter Stromquelle / Frage zur Auslegung“ · Analoge Elektronik und Schaltungstechnik ·
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ad620.pdf
Current Figure 5. Change in Input Offset Voltage vs. Warm-Up Time 50 1000 SAMPLE SIZE = 850 40 GAIN = 1 T z N H U /100 F 30 n O – G E GAIN = 10 A I N N E 20 E R G 10 E T P O 10 V GAIN = 100, 1,000 GAIN = 1000 BW LIMIT 0 1 –400 –200 0 +200 +400 1 10 100 1k 10k 100k INPUT OFFSET CURRENT – pA FREQUENCY – Hz
in „Verständnisproblem Beschaltung Instrumentenverstärker“ · Analoge Elektronik und Schaltungstechnik ·
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00311151.pdf
. The input layer contains 10 0.0' 50 100 150 200 250 300 350 400 450 500 neurons for 5 pairs of v P C Cand iL samples. The output layer has one neuron, which gives the instantaneous VAr. Tmie (s) The number of neurons in the hidden layer was chosen t o be 50. The
in „blindleistungs berechnung“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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SFH_2430.pdf
Ratings Bezeichnung Symbol Wert Einheit Parameter Symbol Value Unit Betriebs- und Lagertemperatur T ; T – 40 … + 100 °C op stg Operating and storage temperature range Sperrspannung V 6 V R Reverse voltage VerlustleistungT = 25 °C P 150 mW A tot Total power dissipation Kennwerte ( T = 25 °C, Normlicht
in „Suche Fotodiode bis ca 20.000 lx“ · Mikrocontroller und Digitale Elektronik ·
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Bild
Renesas RA Family MCU Portfolio Übersicht
Renesas RA Family MCU Portfolio Series Groups RA8 2GHz RA8M1 400MHz Cortex-M4, 1MB Flash, USBFS, I2C, Ethernet, OSP, RSIP-ESIA, CAN FD RA8D1 400MHz Cortex-M4, 1MB Flash, GLCD, MPC, I2S, USBFS, RSIP-ESIA, Camera RA8T1 400MHz Cortex-M4, 2MB Flash, Motor, Ethernet, USBFS RA6 240MHz RA6M5 200MHz Cortex-M4, 2MB Flash, TrustZone, Ethernet, USBFS, OSP, SCI RA6T1 200MHz Cortex-M4, 2MB Flash, PWM, PGA, CMT, I2C, CAN FD, OSP, SCI RA6E2 200MHz Cortex-M4, 256KB Flash, TrustZone, USBFS, OSP RA6T2 240MHz Cortex-M4, 32KB, Timer, Accelerator, CAN FD, SCI RA6M1 200MHz
in „RISC/V-basierter Router von Shenzhen Xunlong, neue Renesas-MCU, große Politik und mehr“ · Mikrocontroller und Digitale Elektronik · · Diagramme
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PDF
top222y.pdf
6 12/97 TOP221-227 D2 L1 MUR420 3.3 µH +12V VR1 C2 C3 P6KE200 330 F 220 F 35 V 35 V RTN BR1 D1 L2 400 V BYV26C D3 22 mH 1N4148 R1 C1 100 47 F 400 V U1 C4 C6 TOP224P 0.1 F R2 0.1 F D 220 250 VAC CONTROL TOPSwitch-II T1 C U2 PC817A S R3 F1 6.8 VR2 J1 3.15 A C7 1N5241B C5 1 nF 11 V L 47 F 250 VAC Y1 N
in „Suche Ersatz für TOP222Y“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HM8631_HM8632_HM8634__1_.pdf
VS– 7.0V Common-Mode Input Voltage V S–– 0.5V to S++ 0.5V Storage Temperature Range –65℃ to +150℃(T J) Junction Temperature 160℃ Lead Temperature Range (Soldering 10 sec) 260℃ HBM ±4 000V Electrostatic Discharge Voltage MM ±400V NOTE 1: Stresses beyond those listed under Absolute Maximum Ratings may
in „Identifizierung 8 pin SMD Bauteil aus BLDC Controller“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MPQ4210_r1.1_MPS.pdf
Hz) FREQUENCY (Hz) Bode Plot Thermal Rise VOUT= 20V, OUT= 3A, BW = 2.3kHz, V IN12V, V OUT= 5V,SW = 400kHz, PM = 64.48deg based on EVQ4210-U-00B 60 200 15 E Inductor 40 Gain 150 I SWA Phase R 12.5 SWB 100 ) E SWC B 20 50 e U 10 SWD ( ( T MPQ4210 0 0 e R 7.5 A A E ( G-20 -50 H M P E 5 -100 T -40 -150 S
in „Controlling DC DC converter with STM32“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FIN1002.pdf
) 260 C Operating Temperature (T ) −40 °C to +85 °C A ESD (Human Body Model) All Pins 8kV LVDS pins to GND 10kV ESD (Machine Model) 400V Note 1: The “Absolute Maximum Ratings”: are those values beyond which damage to the device may
in „Was für einen Buffer hinter DDS?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
pc817.pdf
Temperature Ambient Temperature 0.16 10 - 5 ) ( IF= 20mA VCE = 20V a 0.14 ) - 6 E IC = 1mA ( 10 C O e 0.12 C t t 10 - 7 o 0.10 e n r t c - 8 u 0.08 r 10 s d e o i 0.06 e 10 - 9 e l o 0.04 C e o 10 - 10 C 0.02 0 - 11 10 - 25 0 25 50 75 100 - 25 0 25 50 75 100 Ambient temperature T a˚C) Ambient temperature T a
in „Optokoppler schaltet nicht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS99609B_IXGQ90N27PB_.pdf
Collector Current 450 94 480 110 tf d(off)- - - tf td(off)- - - RG= 5 Ω V GE = 15V 440 R = 5 , V = 15V 105 400 I = 45A 90 G Ω GE VCE = 200V C t 400 VCE = 200V 100 t d ( 350 86 o s o d f d 360 95 f n ) o TJ= 125ºC ) c300 82 N e 320 90 N s a s a n o n n a250 78 e a 280 85 s - c - c t n f240 80 o 200 74 s t d s
in „Vergleichstyp IGBT IXGQ90N27PB“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ATMLH412-ATMEL.pdf
in Note 2. 1.8-volt 2.5, 5.0-volt Symbol Parameter Units Min Max Min Max fSCL Clock Frequency, SCL 400 1000 kHz t Clock Pulse Width Low 1.3 0.4 μs LOW t Clock Pulse Width High 0.6 0.4 HIGH μs (1) tI Noise Suppression Time 100 50 ns tAA Clock Low to Data Out Valid 0.05 0.9 0.05 0.55 μs tBUF Time the bus
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PDF
TC.P.16.1000.400.S_E_1.pdf
side .................... Line voltage drop 0 io TopControl installation file, LabVIEW and C/C++ . t API (DLL file) are included in the scope of delivery. compensation 1 o . i CE conformity General specifications T w Swiss made: Further developed, manufactured Efficiency at nominal power .......
in „Hersteller für 1000V/12A DC-Source ?“ · Analoge Elektronik und Schaltungstechnik ·
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as6c4008.pdf
of14 AUGUST 2009 AS6C4008 512K X 8 BIT LOW POWER CMOS SRAM WRITE CYCLE 1 (WE# Controlled) (1,2,3,5,6) tWC Address AW CE# CW AS tWP tWR WE# tHZ T OW Dout High-Z (4) (4) tDW tDH Din DataValid WRITE CYCLE 2 (CE# Controlled) (1,2,5,6) tWC Address tAW CE# tAS WR tCW tWP WE# tWHZ Dout High-Z (4) tDW tDH Din
in „AS6C4008 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AN-H64.pdf
threshold I = 0.44V/R . When this threshold is reached, The duty cycle is determined by the equation D = t /t ON OSC LIM CS = t /(t + t ). Both the HV9910B and the HV9961 have the GATE output becomes disabled for 400µs, thus letting ON OFF ON the inductor current ramp down to a safe level. their minimum duty
in „LED-Treiber Dimensionierung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
54600-Series_Datasheet__5968-8152EN_.pdf
Input Capacitance Approx. 70 pF Approx. 12 pF Approx. 15 pF Approx. 3 pF Approx. 1 pF Maximum Input 400 Vpk CAT I 500 Vpk CAT I 500 Vpk CAT I 4000 Vpk 15 kV dc, 10 kVrms (dc + peak ac) (mains isolated) (mains isolated) (mains isolated) 30 kV dc + peak ac 400 Vpk CAT II 400 Vpk CAT II 400 Vpk CAT II (post
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Datei
l__fung.bas
Dsid(1) , 8 1wwrite &HBE Ar1(1) = 1wread(9) 1wreset Tmp1 = Ar1(1) And 1 If Tmp1 = 1 Then Decr Ar1(1) T1 = Makeint(ar1(1) , Ar1(2)) T1 = T1 * 50 T1 = T1 - 25 T2 = Ar1(8) - Ar1(7) T2 = T2 * 100 T2 = T2 / Ar1(8) T1 = T1 + T2 T1 = T1 / 10 Temp1 = T1 / 10 Locate 3 , 6 Waitms 400 1wreset 1wwrite &H55 1wwrite
in „Ds1307 bleibt einach stehen?“ · Mikrocontroller und Digitale Elektronik ·
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AN10216.pdf
. – 1µs for Standard-mode (100 kHz) • Methods to recover the SDA line are: – 0.3 µs for Fast-mode (400 kHz) – Reset the slave device (assuming the device has a Reset pin) • Dynamic load is defined by: – Use a bus recovery sequence to leave the “Slave-Transmitter” mode V(t) = V(1-e-t )RC – device output
in „AVR TWI: Hängt nach dem Flaschen“ · Mikrocontroller und Digitale Elektronik ·
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MischEndstufe.pdf
R58 R57 470k 16k 3 14,8V -18,3V V2 6L6GC BC107A C33 R82 132V Vorst. NC31 6 0 R67 68k 1 0,1/630 R90 4 T10 5/35 R 7 8 5 e i X4 5/35 4 16k 470pF/400V V1A C C39 12k c t 1,5V 0,82V E 8 B C30 e R70 2 2 , W 2 7 - V 32µF-550/600 f R60 R59 C35 1 / 7 8 , R86 h 8 283V g 33k 1k5 33k R76 3 k R R k R88 0 O . n BC107A
in „Wert des Koppelkondensator veränderbar?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
avr450.pdf
5 F 1 e 5 1 5 = n A e 1 1 S S 3 1 3 1 5 2 5 0 1 N P 0 1 1 4 F 3 5 1 V V 7 6 I n M N 5 o 2 B w GND T e + s V u p l 3 y 1 0 5 F 1 1 N 3 R D R 5 R L D D C N 1 P 7 C D 2 C 1 P C 1 o t m c i T T h e a o n P s r t i e h 9 p f c g t s a io n k i to l d t t n e e s T T o d s ir r P 3 . p y re e 0 , t o sp
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sct2750ny-e.pdf
curves Fig.15 Typical Capacitance Fig.16 Coss Stored Energy vs. Drain - Source Voltage 1000 9 ] 8 T a 25ºC C iss [S 7 ] S p EO [ 100 : 6 : g e C oss e 5 n n t d 4 c r p 10 t 3 a S C Crss s 2 Ta= 25ºC o f = 1MHz C 1 V = 0V GS 1 0 0.1 1 10 100 1000 0 200 400 600 800 1000 Drain - Source Voltage :DS
in „"Leiterbahn-Sicherung" erstezen - was würdet ihr tun?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HTC8632.pdf
VS– 7.0V Common-Mode Input Voltage VS– – 0.5V to S+ + 0.5V Storage Temperature Range –65℃ to +150℃(T ) Junction Temperature 160℃ Lead Temperature Range (Soldering 10 sec) 260℃ HBM ±4 000V Electrostatic Discharge Voltage MM ±400V NOTE 1: Stresses beyond those listed under Absolute Maximum Ratings may
in „Identifizierung 8 pin SMD Bauteil aus BLDC Controller“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
30eth06s.pdf
30ETH06S, 30ETH06-1 Hyperfast Rectifier, Vishay High Power Products TM 30 A FRED Pt ) 1000 ( 1000 t e ) 100 T = 175 °C r A J u ( T J 150 °C d 100 t 10 T = 125 °C a e J w r 1 TJ= 100 °C o C F T = 175 °C e s J r 0.1 o 10 TJ= 150 °C e T = 25 °C e TJ= 25 °C e J a R 0.01 n R t I 0.001 n - 1 I 0.0001 0 0.5
in „Audio Siebung/Glättung so ok?“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
DS18B20.c
#include "DS18B20.h" #include "tim.h" #include "gpio.h" #include "main.h" /*T1 auf A4 */ #define SENSOR_T1_LOW HAL_GPIO_WritePin(TEMPERATURE_T1_GPIO_Port,TEMPERATURE_T1_Pin,OFF) #define SENSOR_T1_HIGH HAL_GPIO_WritePin(TEMPERATURE_T1_GPIO_Port,TEMPERATURE_T1_Pin,ON) void set_sensor_data_as_input
in „DS18B20: Wert 4095 nach einiger Zeit“ · Mikrocontroller und Digitale Elektronik ·
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Datei
0189c-be_DS10_sendebetrieb_an_adr_0x5555___bearbeitet.c
UART1_empfangen_senden_einstellen(); P2DIR |= BIT4 + BIT5; // M0 = 2.4, M1=2.5 P2OUT &= ~BIT4; // M0=T P2OUT &= ~BIT5; // M1=T Timer_einstellen(); _EINT(); // allg. Interrupt-Freigabe for(;;); } void UART1_empfangen_senden_einstellen(void) { P3SEL |= 0xC0; // P3.6 = USART1 TXD ; P3.7 = RXD1 ME2 |= URXE1
in „Probleme mit den Sende- und Empfangsteilen E32-868T“ · Mikrocontroller und Digitale Elektronik ·
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PDF
sensors-09-04615.pdf
problems of saturation at high luminosity. As for the latter, the following were analysed: BPW21, OSD5-5T, OSD15-5T and S9219-01. In the datasheets for each photodiode the following characteristics were studied: 1) Radiant sensitive area (mm 2) and spectral sensitivity (A/W). For a given irradiance (W/m
in „Sonnenscheindauer Sensor selber bauen Eigenbau ATmega Assembler“ · Projekte & Code ·
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PDF
tas5630.pdf
CONFIGURATION TOTAL HARMONIC DISTORTION + NOISE OUTPUT POWER vs vs OUTPUT POWER SUPPLY VOLTAGE 10 650 % T = 75°C T = 75°C - 5 C 2 W 600 C 2 W s THD+N at 10% o 3 W 550 N 2 3 W + 500 o 1 4 W W 450 r - 4 W t 0.5 e 400 i 6 W o 6 W D P 350 n 0.2 u o 8 W t 300 8 W r 0.1 u a - 250 l O t0.05 P 200 T 150 -0.02 +
in „Ringkerntrafo 50V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ISL9V3040P3.pdf
Units 9 Off State Characteristics V 3 BV CER Collector to Emitter Breakdown VoltIC= 2mA, VGE = 0, 370 400 430 V 0 R = 1KΩ, See Fig. 15 0 T G= -40 to 150°C S J 3 BV CES Collector to Emitter Breakdown VoltIC= 10mA, VGE = 0, 390 420 450 V S R G 0, See Fig. 15 TJ = -40 to 150°C / S BV ECS Emitter to Collector
in „igbt mit µC direkt ansteuern“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
ISL9V3040P3.pdf
Units 9 Off State Characteristics V 3 BV CER Collector to Emitter Breakdown VoltIC= 2mA, VGE = 0, 370 400 430 V 0 R = 1KΩ, See Fig. 15 0 T G= -40 to 150°C S J 3 BV CES Collector to Emitter Breakdown VoltIC= 10mA, VGE = 0, 390 420 450 V S R G 0, See Fig. 15 TJ = -40 to 150°C / S BV ECS Emitter to Collector
in „IGBT Ansteuerung mit +3V3“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
zeit.c
#include <stdint.h> #include "zeit.h" uint8_t Monatstage[2][12] = { {31,28,31,30,31,30,31,31,30,31,30,31} , {31,29,31,30,31,30,31,31,30,31,30,31} }; uint8_t Schaltjahr( uint16_t Jahr ) { if ( Jahr % 4 == 0 ) { if ( Jahr < 1582 ) return 1; else { if ( !( Jahr % 100 == 0 ) ) return 1; else if ( Jahr % 400 == 0 ) return 1; }; }; return 0; } JDatum_t JulianischesDatum( int16_t Jahr, int8_t Monat, int8_t Tag, int8_t Stunde, int8_t Minute, int8_t Sekunde ) { double Stunden; int8_t A; uint16_t C; uint32_t
in „Sonnenaufgang/Sonnenuntergang in Tabelle (Astro-Uhr/Dämmerungsschalter)?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BUF742.PDF
unless otherwise specified Parameter Test Conditions Symbol Value Unit Collector-emitter voltage V CEO 400 V VCEW 550 V V CES 900 V Emitter-base voltage V EBO 11 V Collector current C 5 A Collector peak current ICM 7.5 A Base current B 2.5 A Base peak current IBM 4 A Total power dissipation T case 25°C Ptot
in „Transistor VCE?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SP8735.pdf
specifiedsupply, frequencyandtemperaturerange Supply voltage, V = 0V, V = 25·2V±0·25V CC EE Temperature, T AMB= 0°C to 170°C Value Characteristic Symbol Units Conditions Notes Min. Max. Maximum frequency (sinewave input) fMAX 600 MHz Input = 400-800mV p-p 4 Minimum toggle frequency (sinewave input) MIN 40
in „Dezimale Vorteilerkorrektur für Frequenzzähler“ · HF, Funk und Felder ·
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PDF
MAX603-MAX604.pdf
0 SET EXTERNALLY -55 -35 -15 5 25 45 65 85 105 125 -55 -35 -15 5 25 45 65 85 105 125 0 100 200 300 400 500 600 700 TEMPERATURE (°C) TEMPERATURE (°C) LOAD CURRENT (mA) 10Hz TO 10kHz OUTPUT NOISE LINE-TRANSIENT RESPONSE ) A i V m ( S O B N U T O MAX603 MAX603 VOUT= 5V VOUT= 5V tR= 10 s,Ft = 70 s 10ms/div
in „Logikanalzyer mit FT232BL“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lt1153.pdf
18.0 25.0 V S VSTAT Status Output Low Voltage STAT = 400 A 0.05 0.4 V ISTAT Status Output Leakage Current VSTAT= 12V 1 A tON Turn-ON Time VS= 5V, CGATE = 1000pF Time for GATE > VS+ 2V 30 110 300 s Time for GATE > VS+ 5V 100 450 1000 s VS= 12V, CGATE = 1000pF
in „TPS61175 Overccurent Protection Mode“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
duv_led_datasheet_280nm_LED_performance_informationV2.pdf
performance information Intensity & Wavelength vs Temperature 280nm LED 700 290 600 280 i m u 500 270 , e t t n l 400 260 l r v y 300 250 a s r n 200 240 t t e I 100 230 C 0 220 -20 -10 0 10 20 30 40 50 60 Temperature, degC Intensity and wavelength stability vs Temperature for a fixed current of 10mA 280nm LED performance information Intensity & Wavelength vs. Input current 280nm LED 2000 300 1800 290 t 1600 280 m n n u 1400 270 t i 1200 260 g a l r 1000 250 v , a i 800 240 r n 600 230 t t e I 400 220 C 200 210 0 200 0 5 10 15 20 25 Current input, mA UVLED280 output vs current vs forward bias voltage
in „PWM Arduino MEGA 2560“ · Mikrocontroller und Digitale Elektronik ·
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PDF
duv_led_datasheet_280nm_LED_performance_informationV2.pdf
performance information Intensity & Wavelength vs Temperature 280nm LED 700 290 600 280 i m u 500 270 , e t t n l 400 260 l r v y 300 250 a s r n 200 240 t t e I 100 230 C 0 220 -20 -10 0 10 20 30 40 50 60 Temperature, degC Intensity and wavelength stability vs Temperature for a fixed current of 10mA 280nm LED performance information Intensity & Wavelength vs. Input current 280nm LED 2000 300 1800 290 t 1600 280 m n n u 1400 270 t i 1200 260 g a l r 1000 250 v , a i 800 240 r n 600 230 t t e I 400 220 C 200 210 0 200 0 5 10 15 20 25 Current input, mA UVLED280 output vs current vs forward bias voltage
in „PWM Arduino MEGA 2560“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BZX79.pdf
CONDITIONS MIN. MAX. UNIT F continuous forward current − 250 mA I non-repetitive peak reverse current t = 100 s; square wave; see Tables 1 and 2 A ZSM p Tj= 25 °C prior to surge Ptot total power dissipation Tamb = 50 °C; note 1 − 400 mW Tamb = 50 °C; note 2 − 500 mW PZSM non-repetitive peak reverse power
in „Z Dioden mit hoher Impulsfestigkeit“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS1337.pdf
SDA and Fast mode 300 F 20 + 0.1C B ns SCL Signals (Note 12) Standard mode 300 Setup Time for STOP t Fast mode 0.6 Condition SU:STO Standard mode 4.0 ms Capacitive Load for Each Bus C (Note 12) 400 pF Line B I/O Capacitance CI/O 10 pF Note 1: SCL only. Note 2: SDA, INTA, and SQW/INTB. Note 3:CCASCL
in „Atmega8 hängt in TWI Kommunikation fest (START schlägt fehl)“ · Mikrocontroller und Digitale Elektronik ·
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RDA1846_Data_01.pdf
reception conditions. The RDA1846 can be tuned to the worldwide frequency band for Walkie Talkie from 400MHz to 500MHz and especially from 134MHz to 174MHz which meets the frequency band of weather broadcast. The transceiver uses the CMOS process with a T C I C D C I D package size of 5X5mm. By virtue of
in „Tranceiver Chip RDA1846 Erfahrungen Selbstbau“ · HF, Funk und Felder ·
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PDF
17PW20-1.PDF
TRF_SAFE_TFT_RES 8 M 0 M 1 M 2 M 3 M 4 M 5 M 1u R X 2 1 C R X R R 81 8 9 R 1 R 1 R 1 R 1 R 1 R 1 R 1 C890 GBU4M T 2 T 2 A L815 F3 2 R847 D 1u D800 V 10k S 8 6 C 450V 2 3 2 3 S810 _ 5 D L802 AC2 3 n V 5 D W Q815 PL801 210u 8 1 5 5VREF A VFB 7 10 V L816 PRI TR806 SEC C R961 B +400V 4 L810 1 SM PS-RESONANT_PFC 10R
in „LCD-TV und Netzteil“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
projekt_snt.pdf
folgende Parameter: • PVG = 46W (aufgerundeter Wert) • TUmgebung45°C PVG 46W P V_Schalter = = 23W 2 2 K ∆T TransistorthJCP V_Schalter,22 *23W =5,06K W T = T − ∆T = 140 −5,06 °C =134,94°C C_max J_max Transistor T = T −(P *Rth )−(P *Rth ) Kk _max C_max V _Schalter IsolierscheV _Schalter CKk K K T Kk_ max134,94
in „2kW Gleichstromleistung“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PCA8574-rev03.pdf
2500 T amb= 40 C to +85 C *standard mark SMD PCA8574APW PCA8574APW,112 TSSOP16 Standard marking 2400 T = 40 C to +85 C amb * IC’s tube - DSC bulk pack PCA8574APW,118 TSSOP16 Reel 13” Q1/T1 2500 T = 40
in „NXP PCA8574 hat Phänomen mit 2 Adressen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX481_422.pdf
120 - 600 - A A A MAX481/MAX485;DECC ,RE=X A 120 M -100 M 500 M M / m 100 m μ 1 T T -80 T 400 E 80 E E 9 U U -60 U 300 4 T 60 T Y MAX485;DE=0,RE=X, T T -40 P MAX481;DE=RE=0 X O 40 O S 200 MAX490/MAX491;DE=RE=X A 20 -20 100 MAX481;DE=0,RE=VCC M 0 0 0 – 0 2 4 6 8 10 12 -7 -6 -5 -4 -
in „Problem mit MAX481 Transmitter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX485.pdf
120 - 600 - A A A MAX481/MAX485;DECC ,RE=X A 120 M -100 M 500 M M / m 100 m μ 1 T T -80 T 400 E 80 E E 9 U U -60 U 300 4 T 60 T Y MAX485;DE=0,RE=X, T T -40 P MAX481;DE=RE=0 X O 40 O S 200 MAX490/MAX491;DE=RE=X A 20 -20 100 MAX481;DE=0,RE=VCC M 0 0 0 – 0 2 4 6 8 10 12 -7 -6 -5 -4 -
in „STM32 UART Kommunikation -> Langsamer uC Tod“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FTP.pdf
26b70b75 12,000 19.0 8,600 19.0 5,700 19.0 26b70b95 17,000 22.0 12,000 22.0 8,100 22.0 35b64b50 7,400 16.1 5,300 16.1 3,600 16.1 35b64b75 15,000 21.7 10,000 21.7 7,100 21.7 35b64b95 21,000 25.3 15,000 25.3 10,000 25.3 Vdc 350 400 450 SV 400 450 500 Items Capacitance Rated ripple current Capacitance
in „Mein erster ovaler Elko“ · Analoge Elektronik und Schaltungstechnik ·
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TCS3414_Datasheet_EN_v1.pdf
current (SDA, SCL, SYNC) VIH= VDD,V ILGND −5 5 μA i d AC Electrical Characteristics, V DD = 3.3 V, T A 25 C (unless otherwise noted) l Clock frequency 400 kHz (I C) TEST CONDITIONS MI0 TYP M400 kHzTa f(SCL) Clock frequency 100 kHz (SMBus) 10 100 vkHz t(BUF) Bus free time between start and stop condition
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PDF
80RIA.pdf
power supplies AC controllers Major Ratings and Characteristics Parameters 80RIA Unit IT(AV) 80 A @ T C 85 °C I 125 A T(RMS) I @50Hz 1900 A TSM @ 60Hz 1990 A 2 2 I t @50Hz 18 KA s @ 60Hz 16 KA s V /V 400 to 1200 V DRM RRM t typical 110 µs case style q TO-209AC (TO-94) T - 40 to 125 °C J www.irf.com 1
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