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irfp2907.pdf
= 1 MHZ Ciss = gs+ Cgd Cds SHORTED ) VDS = 60V C = C ( V = 37V 16000 rss gd e 16 DS Coss= Cds Cgd t F o ( Ciss V c2000 c 12 a u c o p - a8000 - 8 , t C a , 4000 S 4 Coss G V Crss FOR TEST CIRCUIT 0 SEE FIGURE 13 1 10 100 0 0 100 200 300 400 500 600 700 V DS, Drain-to-Source Voltage (V) Q G Total Gate
in „Sinusendstufe für 300A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRFP2907.pdf
= 1 MHZ Ciss = gs+ Cgd Cds SHORTED ) VDS = 60V C = C ( V = 37V 16000 rss gd e 16 DS Coss= Cds Cgd t F o ( Ciss V c2000 c 12 a u c o p - a8000 - 8 , t C a , 4000 S 4 Coss G V Crss FOR TEST CIRCUIT 0 SEE FIGURE 13 1 10 100 0 0 100 200 300 400 500 600 700 V DS, Drain-to-Source Voltage (V) Q G Total Gate
in „Auto-Kühler-Lüfter per PWM manuell steuern“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
LedVuMeter.ino
_t n, uint8_t state) { if(n==4)digitalWrite(Led[n], !state); else digitalWrite(Led[n], state); } #define SAMPLEBUFFERLENGTH 400 int16_t sampleBuffer[SAMPLEBUFFERLENGTH]; int32_t OldValue = 0; void sampleMicrophon() { int32_t n, k; int32_t sample = 0; for (n = 0; n < SAMPLEBUFFERLENGTH; n++) { int32_t value = 0; for (k = 0; k < 500; k++) { digitalWrite(MICROPHON_CLK_INPUT, HIGH); if (digitalRead(MICROPHON_PDMDATA_OUTPUT)
in „STM32F4 Discovery Arduino“ · Mikrocontroller und Digitale Elektronik ·
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DS3930.pdf
Both SDA and SCL F B ns Signals (Note 7) Standard mode 20 + 0.1CB 300 Setup Time for STOP Condition tSU:STO Fast mode 0.6 µs Standard mode 4.0 Capacitive Load for Each Bus CB (Note 7) 400 pF EEPROM Write Time tW (Note 8) 5 20 ms EEPROM CHARACTERISTICS (V = +2.7V to +5.5V; T = -40°C to +85°C, unless otherwise
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LMV7235_39.PDF
. n Zero-crossing detectors L n High speed sampling circuits o w V Typical Application l a e , a l t - a l n p u C o m p r 10135902 t r w t h © 2002 National SemiconduDS101359poration www.national.com 3 7 Connection Diagram V M SC70-5/SOT23-5 / 3 2 V M L 10135903 Top View Ordering Information Package
in „Welche SMD-ICs sind dies?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
25RIA-IR.pdf
Current ( Rated VRRM Applied Following Surge. ( 425 Versus Pulse Train Duration. Control n 350 InitiJl T = 125°C n Of Conduction May Not Be Maintained. r e 400 u 325 @ 60 Hz 0.0083 s u 375 InitiaJ T = 125°C C @ 50 Hz 0.0100 s C No Voltage Reapplied t t 350 RRM t 300 t Rated V Reapplied - - 325 O n e 275
in „Unbekannter Thyristor dringend gesucht“ · Mikrocontroller und Digitale Elektronik ·
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TD62083AFG_datasheet.pdf
2009-10-01 TD62083~084APG/AFG I – V I – V IN IN IN IN 3 3 TD62083 TD62084 A A m m ( 2 ( 2 N N I I t max t e e r r c typ. c max u 1 u 1 n n typ. I I min min 0 0 2 3 4 5 5 7 9 11 Input voltage V IN (V) Input voltage V IN (V) IOUT – V CE (sat) IOUT – V CE (sat) 600 600 IIN= 500 μA ) ) A A ( ( 400 400
in „Lichtsteuerung über i2c - ULN2803A - S12-100“ · Mikrocontroller und Digitale Elektronik ·
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3260.pdf
CHOPPER-STABILIZED, PRECISION HALL-EFFECT BIPOLAR SWITCH FUNCTIONAL BLOCK DIAGRAM SUPPLY REG. TO ALL SUBCIRCUITS N T A X C L S M C L L A R A N P O - T GROUND Y A A H W F D T S & L E F F O Dwg. FH-020-4 Suffix Code 'UA' Pinning Suffix Code 'LT' Pinning (SIP) (SOT-89/TO-243AA) X X NC 1 2 3 1 2 3 Y D D Y D LN P N U L
in „Schaltnetzteil TNY Ersatztyp Kompatibel ?“ · Analoge Elektronik und Schaltungstechnik ·
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ina326.pdf
100 −100 100.000 −110 31.600 −120 1.000 ) s o V −130 0.316 m a d V u T −140 0.100 ( o O U P V −150 0.030 O V −160 0.010 −170 0.003 −180 0.001 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 200k 400k 600k 800k 1M 2 1 1 1 1 1 − − − − 2 4 6 8 1 1 1 1 1 2 − − − − − − Gain Error
in „Spannungsmesserbau mit XMega128“ · Mikrocontroller und Digitale Elektronik ·
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g444.pdf
EUR PINCES TYPE ER / ESX SPANTANGEN R R R DIN PINCE ∅ P TARAUD P TARAUD P TARAUD 6499B SPANTANG V T A P V T A P V T A P CAPACIT. ∅ DIN 371 DIN 376 ISO R529 GR. 32 L1 INZETBAARHEIDETARAUD ∅ TARAUD ∅ TAA P∅ T ∅ − 1 mm ∅ T A P ∅ T A P ∅ - 1 mm d 8 M8 M10 M7 M8 ∅ ∅ POIDS 10 M10 M12 M10-11-12 REF. L L1
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PDF
DPA.pdf
deg.C before surge.nd peak 1.2 k ≤ e Control of conduction may be lost p 30 during surge. s 1.0 ( r t 25 A e t 0.8 r e C 20 r 0.6 e u r 15 d u a 0.4 S L m 10 m 0.2 x 5 a M 0.0 0 20 30 40 50 60 70 80 90 0.01 0.02 0.05 0.1 0.2 0.5 1.0 2.0 5.0 10 Ambient Temperature (deg. C) Surge Duration (seconds) Figure
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PDF
Optokoppler_ACPL-T350.pdf
.ICCs.Temperature Figure8.ICCs.V CC A 5 500 500 m I =7mA, T =25 C V =30V, V =0V D V CC = 15 TO 30 V s F A s CC EE L V EE= 0 V - Rg = 10Ω, Cg = 10nF - Rg= 10Ω, Cg = 10nF H 4 OUTPUT = OPEN Y Duty = 50% f = 10kHz Y Duty =o50% f = 10kHz E A400 L 400 TA= 25 C R E
in „Frage zur Optokoppler“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PR22MA11NTZ.pdf
Parameter Symbol Rating Unit Forward current IF 50 *3 mA Input Reverse voltage VR 6 V RMS ON-state current T (rms) 150*3 mA *4 Output Peak one cycle surge current Isurge 1.2 A m Repetitive PR22MA11NTZ 400 1 V DRM V peakOFF-statevoltage2MA11NTZ 600 *1Isolation voltage V (rms) 5.0 kV iso Operating temperature
in „snubber bei triac - ja oder nein?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
PR22MA11NTZ.pdf
Parameter Symbol Rating Unit Forward current IF 50 *3 mA Input Reverse voltage VR 6 V RMS ON-state current T (rms) 150*3 mA *4 Output Peak one cycle surge current Isurge 1.2 A m Repetitive PR22MA11NTZ 400 1 V DRM V peakOFF-statevoltage2MA11NTZ 600 *1Isolation voltage V (rms) 5.0 kV iso Operating temperature
in „snubber bei triac - ja oder nein?“ · Analoge Elektronik und Schaltungstechnik ·
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RH5RL37AA.pdf
4.08 V3.06 ) 4.06 T3.04 T 4.04 O O V3.02 V 4.02 g e l3.00 t 4.00 o2.98 o 3.98 t t t2.96 u 3.96 u u O2.94 O 3.94 2.92 3.92 2.90 3.90 –40 –20 0 20 40 60 80 100 –40 –20 0 20 40 60 80 100 Temperature Topt(˚C) Temperature Topt
in „Spannungsregler 3,5 oder 3,6v gesucht.gibt es das?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
andilcd_conchar_sheet_en_splc780d1.pdf
Test Condition Min. Typ. Max. E Cycle Time tC 400 - - ns Pin E E Pulse Width PW 150 - - ns Pin E E Rise/Fall Time R, F - - 25 ns Pin E t 30 - - ns Pins: RS, R/W, E Address Setup Time SP1 Address Hold Time tHD1 10 - - ns Pins: RS, R/W, E Data Setup
in „initialisierung splc780d1“ · Mikrocontroller und Digitale Elektronik ·
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splc780d1.pdf
Test Condition Min. Typ. Max. E Cycle Time tC 400 - - ns Pin E E Pulse Width PW 150 - - ns Pin E E Rise/Fall Time R, F - - 25 ns Pin E t 30 - - ns Pins: RS, R/W, E Address Setup Time SP1 Address Hold Time tHD1 10 - - ns Pins: RS, R/W, E Data Setup
in „DDRAM Adressen Pollin 4x16 LCD“ · Mikrocontroller und Digitale Elektronik ·
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ADS1293_3_Kanal_24BIT_EKG_SPI_Dez_2014.pdf
Logical “0” Input Voltage T MIN≤ TA≤ TMAX VDDIO V ISOURCE = 400 µA, Digital output high-drive mode VDDIO – T ≤ T ≤ T 0.075 V Logical “1” Output Voltage MIN A MAX V OH I = 400 µA, Digital output low-drive mode VDDIO – SOURCE T MIN
in „Warum soll ADS1293 mit einem 4,096 MHz Quarz betrieben werden?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
PS-MPU-6000A-00v3.4.pdf
SCL Fall Time Cbbus cap. from 10 to 400pF 20+0.1C b 300 ns t , STOP Condition Setup Time 0.6 µs SU.STO tBUF, Bus Free Time Between STOP and 1.3 µs START Condition C b Capacitive Load for each Bus Line < 400 pF tVD.DAT Data Valid Time 0.9
in „Neigungswinkelinkelmessung beweglicher Teile“ · Analoge Elektronik und Schaltungstechnik ·
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2297.pdf
DIFFERENTIAL VOLTAGE TEMPERATURE AMPLIFICATION versus FREE AIR TEMP. 100 1000 V = 15V ) CC 400 A 10 E 200 ( G V 100 N T ( R O N R 1 V I 40 C I A 20 S N I 10 V CC = 15V I E L V = 10V T 0.1 E P 4 O U F A 2 R =2k N D L I 0.01 1 -75 -50 -25 0 25 50 75 100 125 -50 -25 0 25 50 75 100 125 TEMPERATURE
in „Spannungsabfall durch drei Tl074 :-S“ · Analoge Elektronik und Schaltungstechnik ·
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TL074.pdf
DIFFERENTIAL VOLTAGE TEMPERATURE AMPLIFICATION versus FREE AIR TEMP. 100 1000 V = 15V ) CC 400 A 10 E 200 ( G V 100 N T ( R O N R 1 V I 40 C I A 20 S N I 10 V CC = 15V I E L V = 10V T 0.1 E P 4 O U F A 2 R =2k N D L I 0.01 1 -75 -50 -25 0 25 50 75 100 125 -50 -25 0 25 50 75 100 125 TEMPERATURE
in „Operationsverstärker gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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LT1129.pdf
112935 G05 112935 G06 LT1129-3.3 LT1129-5 LT1129 Output Voltage Output Voltage Adjust Pin Voltage 3.400 5.100 3.850 LOAD = 1mA LOAD = 1mA ILOAD= 1mA 3.375 5.075 3.825 V3.350 5.050 3.800 E V E G E G T3.325 A5.025 T.775 O L O V3.300 O5.000 3.750 P T P T3.275 P4.975 3.725 U T U D O D A3.250 4.950 A.700 3.225
in „Spannungsregler durch Kurzschluß am Ausgang kaputt“ · Mikrocontroller und Digitale Elektronik ·
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SP5505_V2.3.pdf
^œ fiVhNö]åO\W(c¤ PgaNöNåY▯v ‘ NöN▯ÿ▯QvSï ‘‘’S˚[ÿT}Sï ýS×R0_qT˝ N 0▯▯ c¤ P]åO\gaNö S´ep S´ep ▯Vô SUOM u5n u5S 6~30 V ]åO\n)^ƒ ▯Vô -40~85 !▯ eà !xER¤R _fiu5[P ¡V N2.3g PQlSł 2 ▯S ▯P▯5 ▯5▯0▯5 ▯ ▯▯3▯0 ▯V▯/▯0 ▯.▯8 ▯A Ø ▯QIkÔ ▯ Qm0▯▯ {¡ ▯[ NI ^ S÷ T yð R ý
in „Bauteilsuche, jemand ne Ahnung was das ist und wo ich es bekommen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
TIP150_1_2.pdf
Emitter Sustaining Voltage: V = 300V min (TIP150) V CEO(sus)= 350V min (TIP151) CEO(sus) V CEO(sus)= 400V min (TIP152) D Collector−Emitter Saturation Voltage: V CE(sat) 2V max at I C 5A D Reverse−Base SOA: 300V to 400V at 7A Absolute Maximum Ratings: Collector−Emitter Voltage, VCEO TIP150 . . . . . . .
in „Welches SSR für Zündunterbrecher bzw. Alternativen zum SSR?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MAX846AEVKIT.pdf
power transistor (SOT-223) (800) 282-4975 Zetex FZT749 Dale-Vishay (402) 564-3131 (402) 563-6418 0.400Ω, 1%, 1/2W resistors IRC (512) 992-7900 (512) 992-3377 R1, R6 2 Dale WSL-2010-R400-F or James Electronics (312) 463-6500 (312) 463-1504 IRC LR2010-01-R400-F Motorola (602) 303-5454 (602) 994-6430 R2
in „Kompatibles Bauteil“ · Mikrocontroller und Digitale Elektronik ·
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ULN2803-D.pdf
F V V F DUT Open MOTOROLA ANALOG IC DEVICE DATA 3 ULN2803 ULN2804 TYPICAL CHARACTERISTIC CURVES – T = 25⋅C, unleAs otherwise noted Output Characteristics Figure 8. Output Current versus Figure 9. Output Current versus Saturation Voltage Input Current A A ( ( T 600 T 600 E E R R U AllTypes U C C AllTypes O 400 O 400 C C E E L L C 200 C 200 , , IC IC 0 0 0 0.5 1.0 1.5 2.0 0 200 400 600 800 VCE(sat)ATURATIONVOLTAGE(V) I ,INPUTCURRENT( A) IN Input Characteristics Figure 10. ULN2803 Input Current Figure 11. ULN2804
in „Passt der ULN2804???“ · Mikrocontroller und Digitale Elektronik ·
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ULN2803-D.pdf
F V V F DUT Open MOTOROLA ANALOG IC DEVICE DATA 3 ULN2803 ULN2804 TYPICAL CHARACTERISTIC CURVES – T = 25⋅C, unleAs otherwise noted Output Characteristics Figure 8. Output Current versus Figure 9. Output Current versus Saturation Voltage Input Current A A ( ( T 600 T 600 E E R R U AllTypes U C C AllTypes O 400 O 400 C C E E L L C 200 C 200 , , IC IC 0 0 0 0.5 1.0 1.5 2.0 0 200 400 600 800 VCE(sat)ATURATIONVOLTAGE(V) I ,INPUTCURRENT( A) IN Input Characteristics Figure 10. ULN2803 Input Current Figure 11. ULN2804
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PDF
ULN2803-D.pdf
F V V F DUT Open MOTOROLA ANALOG IC DEVICE DATA 3 ULN2803 ULN2804 TYPICAL CHARACTERISTIC CURVES – T = 25⋅C, unleAs otherwise noted Output Characteristics Figure 8. Output Current versus Figure 9. Output Current versus Saturation Voltage Input Current A A ( ( T 600 T 600 E E R R U AllTypes U C C AllTypes O 400 O 400 C C E E L L C 200 C 200 , , IC IC 0 0 0 0.5 1.0 1.5 2.0 0 200 400 600 800 VCE(sat)ATURATIONVOLTAGE(V) I ,INPUTCURRENT( A) IN Input Characteristics Figure 10. ULN2803 Input Current Figure 11. ULN2804
in „Problem noch nicht gelöst“ · Mikrocontroller und Digitale Elektronik ·
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PDF
ULN2803_ULN2804.pdf
F V V F DUT Open MOTOROLA ANALOG IC DEVICE DATA 3 ULN2803 ULN2804 TYPICAL CHARACTERISTIC CURVES – T = 25⋅C, unleAs otherwise noted Output Characteristics Figure 8. Output Current versus Figure 9. Output Current versus Saturation Voltage Input Current A A ( ( T 600 T 600 E E R R U AllTypes U C C AllTypes O 400 O 400 C C E E L L C 200 C 200 , , IC IC 0 0 0 0.5 1.0 1.5 2.0 0 200 400 600 800 VCE(sat)ATURATIONVOLTAGE(V) I ,INPUTCURRENT( A) IN Input Characteristics Figure 10. ULN2803 Input Current Figure 11. ULN2804
in „Ansteuerung Nixie und Leuchtmelder“ · Mikrocontroller und Digitale Elektronik ·
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PDF
366828_DS.pdf
F V V F DUT Open MOTOROLA ANALOG IC DEVICE DATA 3 ULN2803 ULN2804 TYPICAL CHARACTERISTIC CURVES – T = 25⋅C, unleAs otherwise noted Output Characteristics Figure 8. Output Current versus Figure 9. Output Current versus Saturation Voltage Input Current A A ( ( T 600 T 600 E E R R U AllTypes U C C AllTypes O 400 O 400 C C E E L L C 200 C 200 , , IC IC 0 0 0 0.5 1.0 1.5 2.0 0 200 400 600 800 VCE(sat)ATURATIONVOLTAGE(V) I ,INPUTCURRENT( A) IN Input Characteristics Figure 10. ULN2803 Input Current Figure 11. ULN2804
in „ULN2803 in einem Weichendecoder DCC“ · Analoge Elektronik und Schaltungstechnik ·
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LT6752_Figure_12_Page_23.pdf
Temperature, Voltage (LTC6752-3) Shutdown (LTC6752-2) Shutdown (LTC6752-3) 7 700 700 ) ) ) 6 (600 ITOTAL ( m T T600 T 5 E E ITOTAL E R500 R R C C500 U 4 Y Y C P400 IVDD P IVDD P 3 U U400 U S S S W300 W300 A 2 D D O T I T T 1 H200 VCC H200 IVCC S S 0 100 100 –0.3 0.2 0.7 1.2 1.7 2.2 2.7 –55 –35 –15 5 25 45 65
in „sehr kurzen Impuls detektieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTC6752.pdf
Temperature, Voltage (LTC6752-3) Shutdown (LTC6752-2) Shutdown (LTC6752-3) 7 700 700 ) ) ) 6 (600 ITOTAL ( m T T600 T 5 E E ITOTAL E R500 R R C C500 U 4 Y Y C P400 IVDD P IVDD P 3 U U400 U S S S W300 W300 A 2 D D O T I T T 1 H200 VCC H200 IVCC S S 0 100 100 –0.3 0.2 0.7 1.2 1.7 2.2 2.7 –55 –35 –15 5 25 45 65
in „Impulsverlängerung mit RC-Glied“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS4E-M-DC1.5V-Panasonic.pdf
: 20° to 21°C 68° to 70°F 60 60 60 3A 3A C 2A C50 C , 50 , , 50 s 0A s s 2A r r 3A r r 40 r40 r 40 t t 2A t 0A r e r p 30 p30 p 30 m e 0A m T T T 20 20 20 Reset coil Set coil 10 10 10 0 0 100 110 100 110 0 100 110 Coil applied voltage, %V Coil applied voltage, %V Coil applied voltage, %V 4-(4). Coil
in „"Merkwürdiges" Relais.“ · Analoge Elektronik und Schaltungstechnik ·
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Polyswitch_Sicherung.pdf
• Medical electronics Consumer • Loudspeakers • Satellite video receivers D E V I C E S F O R A U T O M O T I V E A P P L I C AT I O N S These product lines are qualified to operate in Automotive environments and Figure 1 Figure 2 Figure 3 are compliant with QS-9000 AEC and A A AGR400-1100 Ø 0.81 (
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PDF
TBD62783AFG_datasheet_en_20160511.pdf
Min Typ. Max Unit Power supply voltage VCC OUT = -100 mA 2.0 ― 50 V 1 circuits ON, Ta = 25°C 0 ― -400 t = 25 ms Duty = 10% 0 ― -390 PG pw (Note1) 8 circuits ON Ta = 85°C Duty = 50% 0 ― -170 Tj= 120°C 1 circuits ON, Ta = 25°C 0 ― -400 FG tpw= 25 ms Duty = 10% 0 ― -320 (Note1) 8 circuits ON Output Ta
in „Treiber Pendant zu ULN2803“ · Mikrocontroller und Digitale Elektronik ·
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AQV21xS.pdf
load current: Max. (DC) Continuous load current: Max. (DC) 600 5 50 AQV212S 500 Ω 4 40 A e Ω AQV214S t n e e400 t AQV215S n r s 3 t 30 AQV210S c AQV215S r s a300 n r o O 2 n 20 L O 200 AQV217S AQV212S AQV217S AQV210S 1 10 100 AQV214S AQV216S -40 -20 0 20 40 60 8085100 0–40 –20 0 20 40 60 8085 0–40 –20
in „Dualer Optokoppler als Schalter (Auslöser für Kamera) HCPL 0531“ · Mikrocontroller und Digitale Elektronik ·
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PDF
MPU-6050.pdf
Fall Time Cbbus cap. from 10 to 400pF 20+0.1C b 300 ns tSU.STO STOP Condition Setup Time 0.6 µs tBUF, Bus Free Time Between STOP and 1.3 µs START Condition C b Capacitive Load for each Bus Line < 400 pF tVD.DAT Data Valid Time 0.9 µs
in „MPU 6050 Gyrosensor auslesen“ · Mikrocontroller und Digitale Elektronik ·
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PDF
BLF578.pdf
characteristics Symbol Parameter Conditions Typ Unit Rth(j-c) thermal resistance from junction to case T j 150 C [1][2]0.14 K/W Zth(j-c) transient thermal impedance from junction to case T j 150 C; t p 100 s; = 20 % [3] 0.04 K/W [1] Tjis the junction temperature. [2] R is measured under RF conditions
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PDF
Eagle_DataSheet_V2.8_english.pdf
EAGLE Device JTAG Timing Specifications Symbol Parameter Minimum Maximum Unit JCP TCK cycle 40 - ns tJCH TCK high time 20 - ns tJCL TCK low time 20 - ns tJPSU_TDI TDI setup time 1 - ns tJPSU_TMS TMS setup time 3 - ns tJPH JTAG port hold time 10 - ns tJPCO JTAG port clock to output delay - 15 ns tJPZX JTAG port valid output to high-impedance conversi-n time 15 ns tJPXZ Capture register setup time - 15 ns tJSSU Grab register hold time 5 - ns tJSH Update register setup time 10 - ns tJSCO Update register clock to output delay - 25 ns tJSZX Update register high impedance
in „Sipeed Lichee Tang FPGA mit RISC-V Core aus China unter 20€“ · FPGA, VHDL & Co. ·
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PDF
Eagle_DataSheet_V2.8_english.pdf
EAGLE Device JTAG Timing Specifications Symbol Parameter Minimum Maximum Unit JCP TCK cycle 40 - ns tJCH TCK high time 20 - ns tJCL TCK low time 20 - ns tJPSU_TDI TDI setup time 1 - ns tJPSU_TMS TMS setup time 3 - ns tJPH JTAG port hold time 10 - ns tJPCO JTAG port clock to output delay - 15 ns tJPZX JTAG port valid output to high-impedance conversi-n time 15 ns tJPXZ Capture register setup time - 15 ns tJSSU Grab register hold time 5 - ns tJSH Update register setup time 10 - ns tJSCO Update register clock to output delay - 25 ns tJSZX Update register high impedance
in „SDRAM Burst lesen ohne Unterbrechung über Column, Row und Banks hinaus“ · FPGA, VHDL & Co. ·
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PDF
LT3092fb.pdf
Dropout Voltage 600 1.6 1.4 ) ) 1.4 V 1.2 I = 200mA A500 ) ) LOAD ( U TJ= –55°C U N V 1.2 VO 1.0 R 400 – TJ= 25°C – ILOAD = 100mA U I 1.0 I C ( ( 0.8 U 300 G 0.8 TJ= 125°C G T T T 0.6 U O O O 200 V 0.6 V U U U 0.4 I O 0.4 P I O O M 100 D 0.2 D 0.2 0 0 0–50 125 –50 –25 0 25 50 75 100 125 150 –25 0 25
in „Konstantstromquelle LT3092 - Widerstandswahl“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
BC817_BC817W_BC337.pdf
Semiconductors BC817; BC817W; BC337 45 V, 500 mA NPN general-purpose transistors 006aaa131 006aaa132 400 600 hFE h FE (1) 300 (1) 400 200 (2) (2) 200 (3) 100 (3) 0 −1 2 3 0 −1 2 3 10 1 10 10 10 10 1 10 10 10 IC (mA) C (mA) V CE = 1 V VCE = 1 V (1) T amb= 150 °C (1) T amb = 150 °C (2) T = 25 °C (2) T =
in „Kennlinie Transistor“ · Analoge Elektronik und Schaltungstechnik ·
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Bild
Simulink-Blockschaltbilder von Regelsystemen
Dgl. Originalsystem -K- + 1/s d_omega 1/s y(t) -K- + -K- Maschinengleichug Amplitudentransformation -K- + 0 -1 4 0 400 Y(t) -1 y(t) Maschinengleichung Zeittransformation -K- + 0 -1 -K- 0 400 Y(T) -1 y(T) -K- XY Graph
in „Bastelmotor Gleichstrommotor Modell“ · Offtopic · · Screenshots
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PDF
Viahay__BZX84.pdf
www.vishay.com/doc?91000 BZX84-Series www.vishay.com Vishay Semiconductors TYPICAL CHARACTERISTICS (T amb = 25 °C, unless otherwise specified) mA 3 Ω 10 100 TJ= 25 °C 10 2 5 4 IF 10 3 zj 33 T J 100 °C 2 1 22 10-1 10 T = 25 °C 18 J 10-2 15 4 -3 12 10 3 2 10 10-4 6.8/8.2 -5 6.2 10 1 0 0.2 0.4 0.6 0.8 1V
in „Spannungsteiler: niedrigere Ausgangsspannung bei 90 °C“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MC34063a.pdf
1.29 V Threshold voltage Line Regulation V THD VCC3 ~ 40V 2.0 5.0 mV Input Bias Current BIAS VIN0V 50 400 nA Total Device Supply Current ICC VCC5~40V, C =T.001 2.7 4.0 mA V7=VCC V CV THD, Pin2=GND NOTE: Output switch tests are performed under pulsed conditions to minimize power dissipation. THERMAL DATA
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PDF
MC34063a.pdf
1.29 V Threshold voltage Line Regulation V THD VCC3 ~ 40V 2.0 5.0 mV Input Bias Current BIAS VIN0V 50 400 nA Total Device Supply Current ICC VCC5~40V, C =T.001 2.7 4.0 mA V7=VCC V CV THD, Pin2=GND NOTE: Output switch tests are performed under pulsed conditions to minimize power dissipation. THERMAL DATA
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TransistorArray-DMOS-8ch-TBD62083APG.pdf
50% 0 ― 140 Tj= 120°C Output IOUT mA/ch current 1 circuits ON, Ta = 25°C 0 ― 400 FNG pw = 25 ms Duty = 10% 0 ― 320 8 circuits ON (Note2) Ta = 85°C Duty = 50% 0 ― 140 Tj= 120°C 1 circuits ON, Ta = 25°C 0 ― 400 0 ― 370 FWG pw = 25 ms Duty = 10% (Note3) 8 circuits ON Ta = 85°C Duty
in „Lichtsteuerung über i2c - ULN2803A - S12-100“ · Mikrocontroller und Digitale Elektronik ·
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PA52U_G.pdf
2009 MAY 2009 1 http://www.cirrus.com (All Rights Reserved) APEX − PA52UREVG PA52 • PA52A Produ c t Innova tionFrom ABSOLUTE MAXIMUM RATINGS SUPPLY VOLTAGE, +V to SV S 200V BOOST VOLTAGE, +V bto -b 230V OUTPUT CURRENT, within SOA 80A POWER DISSIPATION, internal 400W INPUT VOLTAGE, differential ±20V
in „Hochstrom-Netzteil mit Power OP“ · Analoge Elektronik und Schaltungstechnik ·
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ZXLD1362.pdf
2007 10 www.zetex.com ZXLD1362 Typical operating conditions ZXLD1362 Switching Frequency L=68µH 500 400 z H ( c300 e q r F i 200 c i S 100 0 0 10 20 30 40 50 60 70 Supply Voltage (V) 1 LED 3 LED 5 LED 7 LED 9 LED 11 LED 13 LED 15 LED ZXLD1362 Duty Cycle L=68µH 100 90 80 70 % 60 e c C 50 t u 40 D 30 20
in „MAX16832 v. ZXLD1362 (LED Treiber)“ · Mikrocontroller und Digitale Elektronik ·
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ax50424_ds_v1_3.pdf
GND 3 19 IRQ ANTP 4 AX50424 18 TST3 ANTN 5 17 MOSI GND 6 16 MISO VDD 7 15 CLK 8 9 10 11 12 13 14 C T T D N L E N T T N T C S G S Y R S Figure 2: Pinout drawing (Top view) Version 1.3 Datasheet AX50424 10 Specifications 4. Specifications 4.1. Absolute Maximum Ratings Stresses above those listed under
in „WetterDirekt Wetterstation Basteleien“ · HF, Funk und Felder ·