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PDF
Polyswitch_Sicherung.pdf
) 18 AWG AGR:Radial-Leaded Dimensions (millimeters/inches) Part IH* (A) H *(A) V max. I max. R min. R 1ax. Ramax. A B C number R max. R max. (Vdc) (A) (Ω) (Ω) (Ω) (max.) (max.) (typ.) Fig. 1 a AGR400 4.0 3.0 16 100 0.0186 0.061 0.085 8.9 (0.35) 14.1 (0.56) 5.08 (0.2) 2 AGR500 5.0 4.3
in „Tipps für 24V DC Absicherung gesucht ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
vprd_dsw.pdf
Quick Connect Terminals With Quick Connect Terminals VPR_-15_ _4 VPR_-35_ _4 and VPR_-65_ _4 1.12 MAX. 1.12 MAX. (28.5) .654 (28.5) (16.6) .354 .024 (9.0 0.6) .858 0.20 1.004 MAX. (21.8 0.5) (25.5) .453 MAX. +0.02 (11.5) .262 -.006 .110 .018 .032 .001 .110 +.005 (2.8 0.45) (2.8) ( 6.65 -.015 ) 1.8 MAX
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Datei
bascom.bas
$regfile "m644def.dat" $crystal = 4000000 $hwstack = 400 $swstack = 400 $framesize = 400 $baud = 9600 Const Uart_input_max = 10 Const Char_match = 13 Const Uart_input_max_inc = Uart_input_max + 1 Dim Input_data As String * Uart_input_max At &H600 Dim B(uart_input_max_inc
in „Bascom Serialin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
vishayHVTantal.pdf
Wet Tantalum Capacitors Vishay Cylindrical Body, Hermetically Sealed DIMENSIONS AND STANDARD RATINGS MAX. MAX. DCL AT MAX. MAX. % CAP. MAX. RIPPLE SIZE CAP. WORKING TYPICAL MAX. WVDC Z CHANGE FROM APPROX 120 Hz RMS D H VOLTAGE ESR IN µA - 55 °C ROOM TEMP. WEIGHT - 55 °C TO + + PART + 175 °C 0.031 0.062
in „Tantal für 400V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
SeikoChar.pdf
Characteristics 1 1 Input : 5V DC 2 Common:GND Item Conditions Specifications Unit Brightness 100V, 400Hz 40 min. cd/m² i 3 Output m Sinew ave 2 Current 100V, 400Hz 1.5 max. mA Sinew ave 1 Life 100V, 400Hz, Sinew ave 3,000 3-∅0.6 3 5 1 25ºC,50%RH hrs 3 2 Using 5S Inverter 6,000 1 25ºC,50%RH 8.5 13 2.25
in „Display Seiko L2432 und Kontrastproblem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Spartan-3A_FPGA_Family.pdf
) Speed Grade -5 -4 Symbol Description Conditions DELAY_VALUE Device Max Max Units TIOPLID The time it takes for data to traLVCMOS25 (2) 5 XC3S400A 3.55 4.18 ns from the Input pin through the IFF latch to the I output with the input 6 4.34 5.03 ns delay programmed 7 5.09
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PDF
MCP3221.pdf
noted, all parameters aDDly at V,SS = GND, R PU= 2 kΩ TAMB = -40°C to +85°C, I C Fast Mode TiminSCL= 400 kHz (Note 3). Parameters Sym Min Typ Max Units Conditions DC Accuracy Resolution 12 bits Integral Nonlinearity INL — ±0.75 ±2 LSB Differential Nonlinearity DNL — ±0.5 ±1 LSB No missing codes Offset
in „Suche Bauteilbezeichnung 5-Pin SOT-23 mit "S1SD" Marking“ · Mikrocontroller und Digitale Elektronik ·
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PDF
10_1536_SE_P_Circuit_Breaker_Catalog.pdf
COMPENSATED PER FO R M A N C E DATA Three-Pole High Performance Interrupting Capacity 1,000A at 205V, 400 Hz., three-phase symmetrical fault Three-Phase Protection 1,000A at 120V, 400 Hz., single-phase fault Common trip mechanism trips Endurance At 120VAC, 400 Hz.: inductive load — 5,000 cycles; resistive
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PIRuaa4713.pdf
POWER MAINS VOLTAGE V AC(V) (W) ITSM at TJ initial⋅C 240 110 t = 8.3mA:63A 600 BTA 06 600 CW BTA 08 400 CW t = 10ms: 60A 1,000 BTA 08 600 CW BTA 12 400 CW The choice of the Triac is defined by the following > 1,000 BTA X 600 CW BTA X 400 CW applicationparameters: X = 10 X = 12 a)The starting performance
in „Bewegungsmelder Schaltplan“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LP2950.pdf
50 150 50 150 mV max IL= 100mA 450 450 450 mV max 380 600 380 600 380 600 mV max Ground IL= 100µA 75 120 75 120 75 120 µA max Current 140 140 140 µA max IL= 100mA 8 12 8 12 8 12 mA max 14 14 14 mA max Dropout V = (V NOM
in „Suche stromsparenden Spannungsregler“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
vcs_vfp_csng.pdf
±0.02% 1467 = VCS332Z A= ±0.05% B = ±0.1% C= ±0.25% D= ±0.5% FOR EXAMPLE: ABOVE GLOBAL ORDER Y1468 400R000 T 9 L: VALUE: 400Ω ABSOLUTE TOLERANCE: ±0.01% TERMINATION: lead (Pb)-free PACKAGING: bulk HISTORICAL PART NUMBER: VFP4Z 400R T B (will continue to be used) VFP4Z T 400R T B MODEL TERMINATION RESISTANCE
in „Grundlagen: Widerstandstypen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Alliance_-_as7c34098a_v2.1-1.pdf
650 mW /max @ 10 ns • Low power consumption: STANDBY - 28.8 mW /max CMOS • Individual byte read/write controls Logic block diagram Pin arrangement for SOJ and TSOP 2 44-pin (400 mil) SOJ A0 TSOP2 A2 e VCC A3 o
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Datei
serial_in.bas
$regfile "m644def.dat" $crystal = 4000000 $hwstack = 400 $swstack = 400 $framesize = 400 $baud = 9600 Const Uart_input_max = 10 Const Char_match = 13 Const Uart_input_max_inc = Uart_input_max + 1 Dim Input_data As String * Uart_input_max At &H600 Dim B(uart_input_max_inc
in „Bascom Serialin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
FGH40N6S2D.pdf
= 125 C ) ) ( ( H E T ( I 11 450 N Y T R C VGE= 15V N R E 100 A C U S 9 T E f = 0.05 / (t + t ) H 400 U R MAX1 d(OFF)I d(ON)I I SC C F MAX2 = (D - C ) /ON2+ EOFF) W I N I C T P C= CONDUCTION DISSIPATION C 7 350 R A 10 (DUTY FACTOR = 50%) I O E R = 0.27 C/W, SEE NOTES VGE = 10V C S P θJC T K , O 5 300
in „Inverter Elektroden-Schweißgerät abgeraucht -> IGBT defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS_IRFB7430.pdf
. Max. Units Conditions V (BR)DSS Drain-to-Source Breakdown Voltage 40 ––– ––– V VGS= 0V, ID= 250μA V (BR)DSSTJ Breakdown Voltage Temp. Coefficient ––– 0.014 ––– V/°C Reference to 25°C, D = 1.0mA d R Static
in „MOSFET Steuer vs Hauptkreis“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
CUPP_RELAYS.pdf
10.16–0.18 (0.400–0.007) CUP P 5A/2A2B 0.50 CUP E 5A CUP P 2A2B (0.020) 11 3 11 7 3 11 7 3 – 9 5 + 13 9 5 1 9 5 13 1 13 1 33.00MAX. 22.86–0.18 (1.300) (0.900–0.007) 27.94–0.18 (1.100–0.007) 0.64 12 8 4 (0.025) 14 10 6 2 12 4 3.20 12 8 4 10 6 (0.125) 5.08–0.18 10 6 19.70MAX. 10.00MAX. (0.200–0.007) TopView TopView (0.775) (0.393) 10.16–0.18 (0.400–0.007) 15.24–0.18 (0.600–0.007) U S A 1-877-4REMTECH Europe 32-11-300868 Japan 81-3-3667-3302 Ext. 2419 HongKong/China/Korea
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PDF
LF-SMCJ.pdf
315.00 1 414.0 3.7 1 X 1.5SMC350A 1.5SMC350CA 350A 350C 300.00 332.00 368.00 1 482.0 3.2 1 X 1.5SMC400A 1.5SMC400CA 400A 400C 342.00 380.00 420.00 1 548.0 2.8 1 X 1.5SMC440A 1.5SMC440CA 440A 440C 376.00 418.00 462.00 1 602.0 2.5 1 X 1.5SMC480A 1.5SMC480CA 480A 480C 408.00 456.00 504.00 1 658.0 2.3 1
in „Welches Bauteil ist das?“ · Analoge Elektronik und Schaltungstechnik ·
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Siferrit_materials.pdf
fmax 12 1,0 0,1 1 0,5 Relative at f tanδ/µ 10–6 < 40 < 12 < 2,7 < 15 < 20 min i –6 loss factor at max 10 < 120 < 20 < 4,2 < 60 < 30 Hysteresis η 10 /mT < 36 < 1,8 < 0,4 < 5 < 4,5 B material constant Curie temperature T °C > 400 > 200 > 170 > 150 > 150 C Relative temperature coefficientαF 10 /K at 25
in „Schaltregler und EMV?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TPS2113A.pdf
ELECTRICAL CHARACTERISTICS: Power Switch Over recommended operating junction temperature, R ILIM= 400 Ω, unless otherwise noted. TPS2112A TPS2113A PARAMETER TEST CONDITIONS MIN TYP MAX MIN TYP MAX UNIT VI(IN1)VI(IN2)5.0 V 120 140 84 110 T J 25°C, IL= 500 mA VI(IN1)VI(IN2)3.3 V 120 140 84 110 mΩ Drain-source
in „Speisung umschalten“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
hope.c
Abschluss der Konvertierung warten } result = ADCW; voltagemax=result*(1.0742 ); if ((voltagemax>1060) && (max==0)) { max=1; } } return(max); } /* festlegung der Rki Rka Sollwerte über Drehschalter -----------------------------------------------------*/ void RaSchwellwert(void) { unsigned char myValue; myValue
in „Atmega88 region text overflowed by 156 bytes“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Tajimi_Electronics_-_Push-Pull_Circular_Connectors__Fuer_ZT15-M36_Drucksensor_.pdf
Voltage (V RMS) 1800 1000 1200 1000 1000 1200 1000 1200 1200 1200 1200 Voltage Rating (V RMS) 600 350 400 350 350 400 350 400 400 400 400 Current Rating (A) 10 10 5 5 5 10 5 10 4 10 3 AWG#16 AWG#20 AWG- AWG- AWG- AWG- AWG- AWG- Applicable Wire Size 2 2 (1.4mm Max.) (0.5mm Max.) #16 #20 #16 #20 #16 #20 Contact Resistance 5mΩ Max. Insulation Resistance DC500V 1000MΩ min. * PRC03 series is only available in Insert Size 10, PRC04 series is only avilable Insert Size 16, 20 and 26. ■ Insert Size & Pin Arrangement Insertɹ10 Insertɹ16
in „Suche sehr speziellen Rund-Steckverbinder“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS100728A_IXTN660N04T4_-1022876.pdf
Transconductance 800 800 VDS = 5V V DS= 5V TJ= - 40ºC 700 700 600 600 25ºC s e500 n500 e e p e 150ºC m400 S400 - - D f I300 g300 TJ= 150ºC 25ºC - 40ºC 200 200 100 100 0 0 3.0 3.5 4.0 4.5 5.0 5.5 6.0 6.5 7.0 7.5 8.0 0 100 200 300 400 500 600 700 800 VGS - Volts ID- Amperes Fig. 9. Forward Voltage Drop of
in „Suche Power-MosFet für etwa 600A“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX481_422.pdf
Current MAX481/MAX485, DE = VCC 500 900 (Note 3) ICC RE = 0V or CC DE = 0V 300 500 µA A DE = VCC 300 500 X MAX1487, RE = 0V or CC DE = 0V 230 400 4 MAX483 350 650 8 MAX483/MAX487, DE = 5V MAX487 250 400 3 RE =
in „Problem mit MAX481 Transmitter“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX485.pdf
Current MAX481/MAX485, DE = VCC 500 900 (Note 3) ICC RE = 0V or CC DE = 0V 300 500 µA A DE = VCC 300 500 X MAX1487, RE = 0V or CC DE = 0V 230 400 4 MAX483 350 650 8 MAX483/MAX487, DE = 5V MAX487 250 400 3 RE =
in „STM32 UART Kommunikation -> Langsamer uC Tod“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ULN2803.pdf
004.C ULN2803 LINEAR INTEGRATED CIRCUIT TYPICAL CHARACTERISTICS IOUT– DUTY CYCLE IIN V IN 500 A m A T400 m 2 O N Max. I I N300 n=1 N E E R R Typ. U 2 U C200 C 1 T 3 T P Ta= 25℃ 7 5 U Min. T100 OnPCB 8 N U n-ch I O ACTIVE 0 0 0 20 40 60 80 100 2 3 4 5 DUTY CYCLE(%) INPUT VOLTAGE V (IN IOUT– DUTY CYCLE IIN
in „µC resetet von alleine (Überlastung?)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ULN2803A.pdf
004.C ULN2803 LINEAR INTEGRATED CIRCUIT TYPICAL CHARACTERISTICS IOUT– DUTY CYCLE IIN V IN 500 A m A T400 m 2 O N Max. I I N300 n=1 N E E R R Typ. U 2 U C200 C 1 T 3 T P Ta= 25℃ 7 5 U Min. T100 OnPCB 8 N U n-ch I O ACTIVE 0 0 0 20 40 60 80 100 2 3 4 5 DUTY CYCLE(%) INPUT VOLTAGE V (IN IOUT– DUTY CYCLE IIN
in „Erfahrungen ULN2803 bei 50kHz“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LT1014.pdf
noted LT1013AM/AC LT1013C/D/I/M SYMBOL PARAMETER CONDITIONS LT1014AM/AC LT1014C/D/I/M UNITS MIN TYP MAX MIN TYP MAX Input Resistance – Differenti(Note 1) 100 400 — 70 300 — M Common-Mode — 5 — — 4 — G AVOL Large Signal Voltage Gain VO=±10V, R L 2k 1.5 8.0 — 1.2 7.0 — V/ V VO=±10V, R L 600 0.8 2.5 — 0.5
in „Unterschied beim LT1014 ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LM10.pdf
10 20 12 30 nA 30 40 nA Input resistance 250 500 150 400 kΩ 150 115 kΩ Large signal voltageVS= 20V, IOUT=0 120 400 80 400 V/mV gain VOUT= 19.95V 80 50 V/mV VS= 20V, VOUT = 19.4V 50 130 25 130 V/mV IOUT= 20 mA ( 15 mA) 20 15 V/mV V = 0.6V (0.65V), I = 2 mA
in „Labornetzgerät als Projekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LM10.PDF
refers to limits over temperature range) (Note 5) Parameter Conditions LM10/LM10B LM10C Units Min Typ Max Min Typ Max Input offset voltage 0.3 2.0 0.5 4.0 mV 3.0 5.0 mV Input offset current 0.25 0.7 0.4 2.0 nA (Note 6) 1.5 3.0 nA Input bias current 10 20 12 30 nA 30 40 nA Input resistance 250 500 150 400
in „Suche Batteriewächter“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
M24CXX.pdf
5.5 V) (TA= 0 to 70 °C, or –40 to 85 °C; V CC = 1.8 to 3.6 V) Symbol Parameter Test Condition Min. Max. Unit I Input Leakage Current 0 V ≤V ≤ V ± 2 µA LI (SCL, SDA) IN CC LO Output Leakage Current 0 V ≤ VOUT ≤ VCC,SDA in Hi-Z ± 2 µA VCC5V, f c400kHz (rise/fall time < 30ns) 2 mA CC Supply Current -W series
in „serielles EEPROM“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ST24C16.pdf
5.5 V) (TA= 0 to 70 °C, or –40 to 85 °C; V CC = 1.8 to 3.6 V) Symbol Parameter Test Condition Min. Max. Unit I Input Leakage Current 0 V ≤V ≤ V ± 2 µA LI (SCL, SDA) IN CC LO Output Leakage Current 0 V ≤ VOUT ≤ VCC,SDA in Hi-Z ± 2 µA VCC5V, f c400kHz (rise/fall time < 30ns) 2 mA CC Supply Current -W series
in „24C16WP - Wie an Mega 16 anschließen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BC856_BC857_BC858.pdf
Product data sheet PNP general purpose transistors BC856; BC857; BC858 FEATURES PINNING • Low current (max. 100 mA) PIN DESCRIPTION • Low voltage (max. 65 V). 1 base 2 emitter APPLICATIONS 3 collector • General purpose switching and amplification. DESCRIPTION PNP transistor in a SOT23 plastic package. NPN
in „LEDs: Konstantstrom-Multiplexing. Schaltung & Teile so ok?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
LR8_DS.pdf
Characteristics (Test conditions unless otherwise specifiAd: -40°C < T < 85°C.) Sym Parameter Min Typ Max Units Conditions V - V Input to output voltage difference 12 - 450 V --- IN OUT 13.2V < V < 400V, 1.14 1.20 1.26 V IN VOUT Overall output voltage regulation R1= 2.4kΩ, R 2 0 375 400 425 V R = 2.4kΩ,
in „Hochspannungs Linearregler 250V“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
71v416.pdf
single3.3Vsupply.Fullystaticasynchronouscircuitryisused,requiring Single 3.3V power supply noclocksorrefreshforoperation. Available in 44-pin, 400 mil plastic SOJ package and a 44- TheIDT71V416ispackagedina44-pin,400milPlasticSOJanda pin, 400 mil TSOP Type II package and a 48 ball grid array, 44-pin,400milTSOPTypeIIpackageanda48ballgridarray,9mmx
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PDF
LUXEON_K2_BLAU_LXK2_PB14_N00.pdf
Cycles 3 3 3 Autoclave Conditions 121°C at 2 ATM, 121°C at 2 ATM, 121°C at 2 ATM, 100% RH for 72 hours max 100% RH for 72 hours max 100% RH for 72 hours max Reverse Voltage (Vr) See Note 2 See Note 2 See Note 2 Notes for Table 7: 1. Proper current derating must be observed to maintain junction temperature
in „[S] LED aus Feuerwehr Singalleuchte (Blitzlicht)“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Avantek_Octave_Band_Series_YIG.pdf
310 KHz/mA 310 KHz/mA 310 KHz/mA 450 KHz/mA 450 KHz/mA 3 dB Bandwidth, Typ. 800 KHz 800 KHz 800 KHz 400 KHz 400 KHz Deviation at 3 dB Bandwidth, Max 40 MHz 40 MHz 40 MHz 70 MHz 40 MHz Input impedance @ 1KHz, Typ 1 ohm in series 1 ohm in series 1 ohm in series 0.5 ohm in series 0.5 ohm in series with 1.7
in „HP Signalgenerator reparierbar?“ · HF, Funk und Felder ·
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PDF
EEPROM_s_93Cxx.pdf
Output Low Voltage (Q) V = 5V, I = 2.1mA 0.4 V OL CC OL VOH Output High Voltage (Q) V CC= 5V, OH = –400 A 2.4 V Table 5B. DC Characteristics for M93CXX (TA= –40 to 125°C; V CC = 4.5V to 5.5V) Symbol Parameter Test Condition Min Max Unit ILI Input Leakage Current 0V ≤ VIN≤ VCC ±2.5 A ILO Output Leakage
in „EEPROM 93C86 ansteuern“ · Mikrocontroller und Digitale Elektronik ·
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PDF
datasheetFilter.pdf
fn) (dB) Deviation Impedance Part Number (kHz) (kHz) (kHz) (dB) (dB) (dB) (dB) ( µsec.) (kΩ) T15.0max. (T6.5) CFWC455E1 455 T6.5min. 55min. 50min. 20min. 4.0max. 3.0max. Y Y 1.5 T15.5max. (T6.5) (T3kHz) (T5kHz) CFWC455E4 455 T6.5min. 55min. 50min. 20min. 4.0max. 2.0max. 20max. 50max. 1.5 Note : For
in „Superhet mit einer Loop-Antenne=Empangsspule für KW“ · HF, Funk und Felder ·
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PDF
82400102.pdf
VIO2.5V 0.4 0.6 pF X f=1MHz, between I/O pins Würth Elektronik eiSos GmbH & Co. KG D-74638 Waldenburg · Max-Eyth-Strasse 1 · Germany · Phone (+49) (0) 7942 - 945 - 0 · Fax (+49) (0) 7942 - 945 - 400 http://www.we-online.com PAGE 1 OF 5 Specification for release Customer : Ordercode: 82400102 Description :
in „Unbekanntes Bauteil in FritzBox“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MAX603-MAX604.pdf
= 200mA MAX604 240 410 IOUT = 400mA 480 820 MAX60_C/E 15 35 Quiescent Current Q 3.0V ≤ IN ≤ 11.5V, SET = OUT µA MAX60_M 40 MAX60_C 0.01 2 OFF ≤ 0.4V, L = 1kΩ, OFF Quiescent Current Q OFF (VOUT + 1V) ≤ IN≤ 11.5V
in „Logikanalzyer mit FT232BL“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Nokia_2-mm_DC_Charging_Interface_Specification_v1_2_en.pdf
DC Charging Interface Specification 7 Forum.Nokia.com Current Mobile device current limit 1100 mA Max. 5 ms Max. 10 ms 10% Nominal output current 0 mA Time Figure 2: Maximum duration of charging current overshoot 2.4 Maximum output ripple voltage The maximum acceptable output ripple voltage with maximum
in „Nokia über USB laden“ · Offtopic ·
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PDF
irlb3034pbf-Datasheet.pdf
1.0 ID = 1.0mA t 4 S ID = 1.0A G 0.5 V 2 0.0 0 -75 -50 -25 0 25 50 75 100 125 150 175 0 100 200 300 400 500 T , Temperature ( °C ) J dF /dt (A/µs) Fig 16. Threshold Voltage vs. Temperature Fig. 17 - Typical Recovery Current vs. di fdt 14 400 I = 117A F F = 78A 12 VR = 34V V = 34V R TJ= 25°C 300 TJ= 25°C 10 T = 125°C J TJ= 125°C ) ( 8 A M (200 R R IR 6 Q 4 100 2 0 0 0 100 200 300 400 500 0 100 200 300 400 500 diF/dt (A/µs) diF /dt (A/µs) Fig. 18 - Typical Recovery Current vs. di /dt Fig. 19 - Typical Stored Charge vs. di /dt f f 400 I = 117A F V = 34V R 300 TJ= 25°C T = 125°C J
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PDF
IRLB3034PbF.pdf
1.0 ID = 1.0mA t 4 S ID = 1.0A G 0.5 V 2 0.0 0 -75 -50 -25 0 25 50 75 100 125 150 175 0 100 200 300 400 500 T , Temperature ( °C ) J dF /dt (A/µs) Fig 16. Threshold Voltage vs. Temperature Fig. 17 - Typical Recovery Current vs. di fdt 14 400 I = 117A F F = 78A 12 VR = 34V V = 34V R TJ= 25°C 300 TJ= 25°C 10 T = 125°C J TJ= 125°C ) ( 8 A M (200 R R IR 6 Q 4 100 2 0 0 0 100 200 300 400 500 0 100 200 300 400 500 diF/dt (A/µs) diF /dt (A/µs) Fig. 18 - Typical Recovery Current vs. di /dt Fig. 19 - Typical Stored Charge vs. di /dt f f 400 I = 117A F V = 34V R 300 TJ= 25°C T = 125°C J
in „Aufwärtsschaltregler bauen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLB3034.pdf
1.0 ID = 1.0mA t 4 S ID = 1.0A G 0.5 V 2 0.0 0 -75 -50 -25 0 25 50 75 100 125 150 175 0 100 200 300 400 500 T , Temperature ( °C ) J dF /dt (A/µs) Fig 16. Threshold Voltage vs. Temperature Fig. 17 - Typical Recovery Current vs. di fdt 14 400 I = 117A F F = 78A 12 VR = 34V V = 34V R TJ= 25°C 300 TJ= 25°C 10 T = 125°C J TJ= 125°C ) ( 8 A M (200 R R IR 6 Q 4 100 2 0 0 0 100 200 300 400 500 0 100 200 300 400 500 diF/dt (A/µs) diF /dt (A/µs) Fig. 18 - Typical Recovery Current vs. di /dt Fig. 19 - Typical Stored Charge vs. di /dt f f 400 I = 117A F V = 34V R 300 TJ= 25°C T = 125°C J
in „Logic Level Mosfet - Welcher "kann mehr"“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Nokia_2-mm_DC_Charging_Interface_Specification_v1_2_en.pdf
DC Charging Interface Specification 7 Forum.Nokia.com Current Mobile device current limit 1100 mA Max. 5 ms Max. 10 ms 10% Nominal output current 0 mA Time Figure 2: Maximum duration of charging current overshoot 2.4 Maximum output ripple voltage The maximum acceptable output ripple voltage with maximum
in „Handy mit "Falscher" Spannungshohe laden.“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
lt3580.pdf
Power Loss vs Load Current 95 1400 90 1200 85 1000 P ) 80 W ( E C 75 800 L E S I 70 600 S F W E 65 ) 400 60 200 55 50 0 0 100 200 300 400 500 600 LOAD CURRENT (mA) 3580 TA07b Transient Response with 400mA to 500mA to 400mA Output Load Step Start-Up Waveforms V OUT VOUT 5V/DIV 0.5V/DIV AC COUPLED IL 1A/
in „Switcher CAD III Simulation - Schaltungsfehler ?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Multifuse_Sicherung_MF-R.pdf
to plane (kinked lead) H0 H0 (.63) (±.02) 32.2 Abscissa to top H1 H1 (1.268) max. 43.2 Overall width w/lead protrusion C1 (1.7) max. 42.5 Overall width w/o lead protrusion C2 (1.673) max. 1.0 Lead protrusion I1 L1 (.039) max. 11 Protrusion of cutout L L (.433) max. Protrusion beyond
in „Polyfuse - Auslösezeit im Datenblatt?“ · Mikrocontroller und Digitale Elektronik ·
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Datei
irmp.diff
LEGO_0_PAUSE_LEN_MAX ((uint_fast8_t)(F_INTERRUPTS * LEGO_0_PAUSE_TIME * MAX_TOLERANCE_30 + 0.5) + 1) +#define LEGO_0_PAUSE_LEN_MAX ((uint_fast8_t)(F_INTERRUPTS * LEGO_0_PAUSE_TIME * MAX_TOLERANCE_30 + 0.5) + 0) #define
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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Datei
irmp.diff
LEGO_0_PAUSE_LEN_MAX ((uint_fast8_t)(F_INTERRUPTS * LEGO_0_PAUSE_TIME * MAX_TOLERANCE_30 + 0.5) + 1) +#define LEGO_0_PAUSE_LEN_MAX ((uint_fast8_t)(F_INTERRUPTS * LEGO_0_PAUSE_TIME * MAX_TOLERANCE_10 + 0.5) + 1) #define
in „IRMP - Infrared Multi Protocol Decoder“ · Projekte & Code ·
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PDF
ds.pdf
Diode(T = 25℃ unless otCerwise specified): Rating Symbol Parameter Test Conditions Units Min. Typ. Max. VFM Diode Forward Voltage IF=15A -- 1.45 1.7 V T Reverse Recovery Time -- 122 -- ns rr Vcc=400V, I F15A, RRM Diode Peak Reverse Recovery Current -- 13 -- A di/dt=800A/uS Q rr Reverse Recovery Charge
in „Datenblatt Cypress cca7001“ · Mikrocontroller und Digitale Elektronik ·