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Datei
isrs.s
isrs.s:314 .text:00000000 L0 L198 isrs.s:315 .text:00000000 L0 L199 isrs.s:316 .text:00000000 L0 L200 isrs.s:317 .text:00000000 L0 L201 isrs.s:318 .text:00000000 L0 L202 isrs.s:319 .text:00000000 L0 L203 isrs.s:320 .text:00000000 L0 L204 isrs.s:321 .text:00000000 L0 L205 isrs.s:325 .text:00000000 WDT_vect
in „Fehler beim ausführen von MAKE (e=2) kann Datei nicht finden“ · Mikrocontroller und Digitale Elektronik ·
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PDF
DS_IRLZ44N-IR.pdf
J ID DS ( TOP 10A y 17A D.U.T. r 400 BOTTOM 25A n RG + E -VDD e c 5.0 V I a 300 AS a p 0.01Ω A e l 200 P Fig 12a. Unclamped Inductive Test Circuit e g i 100 S , S EA VDD = 25V V(BR)DSS 0 A 25 50 75 100 125 150 175 tp Starting T , Junction Temperature (°C) J VDD Fig 12c. Maximum Avalanche Energy VDS
in „IRLZ44N Logic Level? Welcher Parameter?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
irf3205.pdf
TOP 25A r 44A n 400 BOTTOM 62A VDS L DRIVER E e c a 300 RG D.U.T +V a I - DD A v 20V AS e tp 0.01Ω l 200 u e Fig 12a. Unclamped Inductive Test Circuit g i 100 , V(BR)DSS S A p E 0 25 50 75 100 125 150 175 Starting J , Junction Temperature( C) Fig 12c. Maximum Avalanche Energy Vs. Drain Current I AS Fig
in „Erzeugt ein 9V-Printtrafo mehr als 750V?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
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AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „Zusätzlicher Schalter aber keine Ader frei.“ · Haus & Smart Home ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „Suche Halbleiterelement als Ersatz für Relai in Radar-Bewegungsmelder“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Dema_Drehmaschine.pdf
Zugspindel. 6 TECHNISCHE DATEN Netzanschluss 230 V / 50 Hz Leistungsaufnahme 400 W Gänge 2 Drehzahlbereich L 200 bis 1150 U/min Drehzahlbereich H 460 bis 2500 U/min Drehdurchmesser über Bett 180 mm Drehdurchmesser über Schlitten 105 mm Maximale Werkstücklänge 300 mm Maximale Schlittenweg längs 275 mm Maximale
in „Widerstand Identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLZ44N-IR_Reichelt.pdf
J ID DS ( TOP 10A y 17A D.U.T. r 400 BOTTOM 25A n RG + E -VDD e c 5.0 V I a 300 AS a p 0.01Ω A e l 200 P Fig 12a. Unclamped Inductive Test Circuit e g i 100 S , S EA VDD = 25V V(BR)DSS 0 A 25 50 75 100 125 150 175 tp Starting T , Junction Temperature (°C) J VDD Fig 12c. Maximum Avalanche Energy VDS
in „PWM-Drehzahlregelung Wasserpumpe mit DC bürstenloser Motor“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „Triac vs Relais“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „Relais 12v nach Tagen benutzung kaputt - Jalousien steuerung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „230VAC Max 200mA mit ESP32 3,3VDC schalten“ · Mikrocontroller und Digitale Elektronik ·
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PDF
IRLIZ44N_IR.pdf
J ID DS m TOP 10A D.U.T. y 17A r BOTTOM 25A R n 400 G + E -VDD e c 5.0 V AS a 300 a tp 0.01Ω v e l 200 u Fig 12a. Unclamped Inductive Test Circuit e g i S 100 , S EA V = 25V V 0 DD A (BR)DSS 25 50 75 100 125 150 175 p Starting J , Junction Temperature (°C) VDD Fig 12c. Maximum Avalanche Energy Vs. Drain
in „Toggle Schaltung mit NE555 schaltet ein, aber nicht aus“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „Triac oder Relais“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
infineon-irf1010e-mosfet.pdf
E D.U.T h RG + V n AS - DDA l 20GS v 400 p 0.01 A s u Fig 12a. Unclamped Inductive Test Circuit P l 200 n S V(BR)DSS , t S p EA 0 25 50 75 100 125 150 175 Starting J , Junction Temperature ( C) Fig 12c. Maximum Avalanche Energy Vs. Drain Current IAS Fig 12b. Unclamped Inductive Waveforms Current Regulator
in „DC Wandler wiederbeleben“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
in „MOSFET 230V AC / 3V3 Arduino“ · Mikrocontroller und Digitale Elektronik ·
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PDF
AC_Powerswitch_CPC1976Y.pdf
Inductive) vs. Load Frequency vs. Load Frequency vs. Load Frequency (V P30V, R =L0:, I =2LA rms) (V L200V, Z =L00mH, 220:) (VL=200V, Z L196mH, 110:) 3.0 3.0 3.0 2.9 2.9 2.9 A2.8 A2.8 A2.8 m ( m t2.7 t2.7 t 2.7 e2.6 e2.6 e2.6 r r r C2.5 C2.5 C 2.5 D2.4 D2.4 D2.4 E L E L2.3 2.3 L2.3 2.2 2.2 2.2 2.1 2.1 2.1
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max5056.pdf
INPUT) 5 VDD= 15V A DD A VDD = 15V A 400 M 400 M 4 M A A A ( ( ( N N T R 300 R 300 E 3 U U R C C C L 200 L 200 L 2 P P P S S S 100 100 1 0 0 0 0 2 4 6 8 10 12 14 16 0 2 4 6 8 10 12 14 16 0 2 4 6 8 10 12 14 16 LOGIC-INPUT VOLTAGE (V) LOGIC-INPUT VOLTAGE (V) LOGIC-INPUT VOLTAGE (V) SUPPLY CURRENT vs. LOGIC-INPUT
in „Dual Mosfet Treiber“ · Analoge Elektronik und Schaltungstechnik ·
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IR2130.pdf
Temperature Figure 25B. Low Level Output vs. Voltage 500 500 ) 400 A400 ( ( n n r r C 300 C300 g g k a L L l 200 l200 u u t t s s O100 O100 Max. Max. 0 0 -50 -25 0 25 50 75 100 125 0 100 200 300 400 500 600 Temperature (°C) V Boost Voltage (V) Figure 26A. Offset Supply Leakage Current Figure 26B. Offset Supply
in „Shunt Messung mit IR2130 (BLDC Steuerung)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
0754-200.pdf
family number ACS754 S Operating ambient temperature range code CB Package type designator SCB200 L...L 200 Maximum measurable current YYWW L...L Manufacturing lot code YY Manufacturing date code: Calendar year (last two digits) WW Manufacturing date code: Calendar week 9 115NortheastCutoff,Box15036 ACS754200
in „Strom 10A bis 300A messen mit Tiny26“ · Mikrocontroller und Digitale Elektronik ·
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PDF
RK032ML05.pdf
Values Item Sym. Unit Note Min. Typ. Max. 1)Contrast Ratio C/R 300 400 - FIG.1 2)Module Luminance L 200 240 - cd/m² FIG.1 3)Response time Tr+Tf - 25 40 ms FIG.2 θ T 30 40 - θB 50 60 - 4)Viewing Angle Degree FIG.3 θ 50 60 - L θR 50 60 - Wx 0.287 0.302 0.317 Wy 0.324 0.339 0.354 Rx 0.605 0.620 0.635 Ry
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PA94U_M.pdf
2.2pF Y = =8 (O00 4 .2 , P TC TC V 7 pF I80 P E C F A CC = 4.7pF S24 25°C G C= G60 M = A 2 P O T C L200 2p O CC = 22 pF R16 –55° O F L40 P TC= V O T E R P100 P20 D 8 T O G U A O 0 L 4 50 10 100 1K 10K100K1M 10M20M O 0 20 40 60 80 100 10K 100K 1M 2M FREQUENCY, F (Hz) V OUTPUT CURRENT, I O(mA) FREQUENCY
in „Netzstrom-Verzerrungen sichtbar machen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRLR6225PBF_NMOS.pdf
TOP 5.9A a r i e 8.6A s 6 E 500 BOTTOM17A R e n c O 5 a 400 c a u TJ= 125°C A S 4 e 300 - u - P i 3 l 200 r n , S n 2 TJ= 25°C , 100 ( A S E D 1 0 R 0 2 4 6 8 10 12 14 25 50 75 100 125 150 Starting T , Junction Temperature (°C) VGS, Gate -to -Source Voltage (V) J Fig 12. On-Resistance vs. Gate Voltage
in „FET abgeraucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Fujitsu_Esprimo_p756-e90-de.pdf
biologischemMaterial Bestellnummer: undeinemvollständigPVC-freienKabel.DieeleganteM440ECO S26381-K450-L200 istauffastjederOberflächenutzbarundfolgtleichtundpräziseall IhrenHandbewegungen.SieistmitzweiTastensowieeinemScrollrad ausgestattet,idealsowohlfürRechts-alsauchfürLinkshänder. SOUNDSYSTEMDSE2000Air
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IRLB8748PBF.PDF
16 ( 450 n g TOP 6.73A t e 400 11.6A s E BOTTOM 32A e 14 e 350 R c O n 300 e 12 a r v 250 o e - 10 l 200 t P i TJ= 125°C l 150 r 8 g D i 100 ,) , o 6 T = 25°C S 50 S J EA D R 4 0 2 4 6 8 10 25 50 75 100 125 150 175 V Gate -to -Source Voltage (V) StartingJT Junction Temperature (°C) GS, Fig 12. On-Resistance
in „Funktionsprüfung MOSFET IRL B8748PbF“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
paper.pdf
target-strength. Smaller objects are supposed to be measurement errors. 300 right left n250 i 0° l200 e −30° 30° o150 - o100 −60° 60° c 50 0 60 48 36 24 12 12 24 36 48 60 0 15 30 45 60 75 90 105 120 135 150 distance / cm distance / cm (a) Smoothed cross-correlation of the signals. (b) echo-intensity
in „Simulation mit Audiosignale“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
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PDF
25RIA-IR.pdf
Reapplied a 300 a Rated V Reapplied s s 300 RRM n 275 n O O v e 275 a 250 a W W 250 e 225 e S i 225 l 200 l a a 200 k 25RIA Series H 25RIA Series a 175 a 175 P (1400 to 1600V) P (1400 to 1600V) 150 150 1 10 100 0.01 0.1 1 Number Of Equal Amplitude Half Cycle Current Pulses (N) Pulse Train Duration (s)
in „Unbekannter Thyristor dringend gesucht“ · Mikrocontroller und Digitale Elektronik ·
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PDF
flipdot.pdf
L180 L181 L182 L183 L184 L185 L186 L187 L188 L189 L190 L191 L192 L193 L194 L195 L196 L197 L198 L199 L200 L201 ROW_6A R348 R350 R352 R354 R356 R358 R360 R362 R364 R366 R368 R370 R372 R374 R376 R378 R380 R382 R384 R386 R388 R390 R392 R394 R396 R398 R400 R402 ROW_6B R349 R351 R353 R355 R357 R359 R361 R363
in „Flipdot Matrix - FP2800A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
flipdot.pdf
D360 D362 D364 D366 D368 D370 D372 D374 D376 D378 D380 D382 D384 D386 D388 D390 D392 L197 L198 L199 L200 L201 L202 L203 L204 L205 L206 L207 L208 L209 L210 L211 L212 L213 L214 L215 L216 L217 L218 L219 L220 L221 L222 L223 L224 ROW_7A D393 D395 D397 D399 D401 D403 D405 D407 D409 D411 D413 D415 D417 D419 D421
in „Flipdot Matrix - FP2800A“ · Mikrocontroller und Digitale Elektronik ·
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PDF
G5177C.pdf
I w aveform IN OUT L IN OUT L VIN2V/div VIN3V,OUT=0A V IN2V/div VIN3 V,OUT=1 LX 2V/div LX 2V/div L 200mA/div IL1A/div VOUT50m V/div V OUT0mV /div ▯ Time 1µs/div Time 1µs/div f b ▯ VIN ,VOUT , L W aveform V IN OUT, L W aveform o y ▯ VIN2V/div VIN3.5V,OUT=0A V IN2V/div ▯ VIN3.5V,OUT=1A g R LX 2V/div ▯
in „Boostconverter hat eine viel zu geringe Ausgangsspannung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
LTZ1000afe_reference.pdf
ALONE V µ G 70 ( 350 ( A S I C 60 O 300 O E 50 E 250 E IZ= 0.5mA A A ZENER CURRENT = 0.5mA A O 40 L200 L V V V E 30 R150 R E N100 N Z 20 ZENER WITH KELVIN Z ZENER CURRENT = 4mA Z 10 SENSED Q1 50 0 0 0 0.5 1.0 1.5 2.0 2.53.0 3.5 4.0 4.5 5.0 0.1 1 10 100 0 10 20 30 40 50 60 ZENER CURRENT (mA) FREQUENCY
in „Elektronikbuch“ · Offtopic ·
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PDF
BUW84.PDF
half-sinewave voltage (curve tracer). MGE239 handbook, halfpage handbooC, halfpage + 50 V (mA) 100 to 200 250 L 200 horizontal oscilloscope 100 vertical 6 V 300 1 0 V (V) min CE 30 to 60 Hz MGE252 VCEOsust Fig.2 Test circuit for collector-emitter Fig.3 Oscilloscope display for collector-emitter sustaining voltage
in „Hochspannung Regeln für eine Bildverstärker Röhre“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Infineon-IRFHS8342-DataSheet-v01_01-EN.pdf
vs. Gate Voltage Fig 13. Typical On-Resistance vs. Drain Current 600 500 ) W r 400 e o P s 300 u P l 200 i S 100 0 1E-5 1E-4 1E-3 1E-2 1E-1 1E+0 Time (sec) Fig 14. Typical Power vs. Time Driver Gate Drive P.W. D.U.T + P.W. Period D =Period V =10V CircuitLayoutConsiderations GS • Low Stray Inductance •
in „IC identifizieren“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DP-Serie_d.pdf
Anzeigebereich DPA 14 DPA 20 Eingang M 31 3½-stellig –100,0...+199,9 °C 30 3 -stellig –199 ... 999 Eingang L –200...+800 °C DPA 25 31 3½ -stellig –1999 ... +1999 –148...+392 °F Eingang A 40 4 -stellig –1999 ... 9999 – 96 x 24 mm –328...+1472 °F 41 4½ -stellig* –19999 ...+19999 –4 96 x 48 mm Eingang – 144 x 48
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PDF
LT3092fb.pdf
10mA l 1.22 1.45 V LOAD ILOAD = 200mA l 1.3 1.65 V Current Limit VIN 5V, V SET = 0V, OUT = –0.1V l 200 300 mA Reference Current RMS Output Noise (Note 5) 10Hz ≤ f ≤ 100kHz 0.7 nA RMS Ripple Rejection f = 120Hz, RIPPLE = 0.5VP-P LOAD = 0.1A, 90 dB CSET = 0.1μF, OUT= 2.2μF f = 10kHz 75 dB f = 1MHz 20
in „Konstantstromquelle LT3092 - Widerstandswahl“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RFM12_Packet_asm.pdf
; (1) f-Start = 2012,500 MHz (-479,5 /0,125) ldi SwpOscH,$2F ; (1) = 12264 dez = 2FE8 hex ldi TmpL,200 ; (1) Festfrequenz-Stufen, (80 pro Umdr.) mov FrqStp,TmpL ; (1) 80*125kHz = 10 MHz ldi TmpL,200 ; (1) Sweep-Step ( 39 Stufen ) mov SwpStp,TmpL ; (1) 200*125kHz = 25 MHz rjmp SpkLp1 AmaLoop: ldi SwpOscL
in „RFM12 - Empfangsstärke“ · Mikrocontroller und Digitale Elektronik ·
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PDF
XMEGA-A3BU_XPLAINED_Design_Documentation_rev2.PDF
current typ I1 500nA A BT200 High power mode of oscillator -> backup system current typ A VCC_MCU_P3V3 L200VCC_ANA_MCU_P3V3 CD075014 1X2 680nA L0 1 P20 2 COIN-CELL BLM15BB221SN1 This header can be used to 11 201 CR1220 Theoretical battery lifetime when main power is absent the 01C2000 the backup system or
in „LED toggeln mit ATxmega256A3BU“ · Mikrocontroller und Digitale Elektronik ·
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PDF
SPS9540_KM_G_011017.pdf
100k fuerI 204 15 /I_REF U-Reglr R 220 C2 12 U-Reglr R214 R218 10k 2k2 10k 2k2 R215 56n R 221 1 M L200 100k 2 1 C 211 C226 n.b. 10uH R 10u 2 8 - R231 A 1 100 R216 R 235 3 C218 1k 15k + IC 2 04 4 LM 358 9 C217 C216 100p 2 . 100p kr R s 100p ker ker R 219=1kbei9540 R219=2k2 bei040 R238 100k -Ieglr R229
in „*Netzteil die ZWEITE*“ · Mikrocontroller und Digitale Elektronik ·
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PDF
but34rev.pdf
Cycle x 2%. 2 Motorola Bipolar Power Transistor Device Data BUT34 TYPICAL CHARACTERISTICS ) 400 T L 200 ( E G 4 A 100 L G O N 50 V 3 E 30 E R T U 20 M C – 2 C =40A D 10 R ,E T IC=20A hF 5 C L 1 T =25⋅C 3 TC=25⋅C O C 2 V =5.0V , CE E 1 VC 0 1 2 3 4 7 10 20 30 40 60 0.1 0.2 0.3 0.5 1 2 3 5 7 10 IC,COLLECTORCURRENT
in „Leistungs-Transistor Alternative“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
IRF3205Z.pdf
IRF3205ZS/L 15V ) 350 J D ( TOP 27A g 300 47A L DRIVER e BOTTOM 66A VDS n e 250 h RG D.U.T + n - VDD l 200 AS A v 20GS A 150 tp 0.01Ω l u e 100 Fig 12a. Unclamped Inductive Test Circuit g V i (BR)DSS S, 50 p S EA 0 25 50 75 100 125 150 175 StartingJT , Junction Temperature (°C) AS Fig 12c. Maximum Avalanche
in „Geiger Counter Sparkfun“ · Mikrocontroller und Digitale Elektronik ·
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PDF
T2117_zero_switch.pdf
4768B–INDCO–10/05 T2117 Figure 5-1. Output Pulse Width 10.00 V = 230 V ~ Mains ) s 1.00 ( p t 0.10 I (mA) L 200 100 50 0.01 10 100 1000 10000 P (W) Figure 5-2. Synchronization Resistance 2000 VMains 230 V ~ 1600 Ω k 1200 (c y s R 800 400 0 0 200 400 600 800 1000 1200 1400 t (µs) p 5 4768B–INDCO–10/05 6. Supply
in „Suche Steuerung für 2kW Heizwendel (230V)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
RK028ML02.pdf
Values Item Sym. Unit Note Min. Typ. Max. 1)Contrast Ratio C/R 300 450 - FIG.1 2)Module Luminance L 200 240 - cd/m² FIG.1 3)Response time Tr+Tf - 25 40 ms FIG.2 θ T 30 40 - θB 50 60 - 4)Viewing Angle Degree FIG.3 θ 50 60 - L θR 50 60 - Wx 0.287 0.302 0.317 Wy 0.324 0.339 0.354 Rx 0.605 0.620 0.635 Ry
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PDF
lt1305-1504096.pdf
Switch Saturation Voltage 1.250 400 300 TA= 25°C ISW = 1A 1.245 V350 V 1.240 ( (250 G300 G )1.235 L L200 (1.230 V250 V A N N L1.225 T200 T150 V R R B1.220 T150 T L1.215 S S100 C100 C 1.210 I I 50 1.205 S 50 S 1.200 0 0 –50 –25 0 25 50 75 100 0 0.2 0.40.6 0.8 1.0 1.21.4 1.6 1.8 2.0 –50 –25 0 25 50 75 100
in „[V] Konvolut (16) ältere LinearTech StepUps LT1302, 1305, SO8 (10€)“ · Markt ·
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PDF
16389fg.pdf
100 V/mV VS= 5V, O = 500mV to 4.5V,LR = 10k 400 1500 V/mV 0°C ≤ A≤ 70°C l 250 V/mV –40°C ≤ A ≤ 85°C l 200 V/mV VOL Output Voltage Swing Low VS= 3V, No Load l 3 8 mV VS= 3V, SINK 5mA l 250 450 mV V = 5V, No Load l 3 8 mV V = 5V, I = 10mA l 500 700 mV S SINK VOH Output Voltage Swing High VS= 3V, No Load
in „Alternative gesucht zu OpAmp“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
KWH080KQ03-F01.pdf
Note 2 Color chromaticity Note 5 W Y 0.28 0.33 0.38 - Note 6 NTSC Sa (60) (65) - % Note 8 Luminance L 200 250 - cd/m² Note 6 Luminance uniformity YU 70 75 - % Note 7 Test Conditions: 1. V CC.3V, I L180mA (Backliyht current), the ambient temperature is 25℃. 2. The test systems refer to Note 2. Part No:
in „NXP verschenkt ARM-Chips“ · Mikrocontroller und Digitale Elektronik ·
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A200-DS_L6920D.pdf
The synchronous switch body diode causes a para- load load_lim Trace1: V out(100mV~/div) Trace4: I L200mA/div). sitic path between power supplyand output that can't Time div.: 5 µs/div be avoided also in shutdown. 4.3 Low battery detection The L6920 includes a low battery detector compara- tor. Threshold
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IRFR2307Z.pdf
TOP g 3.4A L DRIVER e 400 4.6A VDS E BOTTOM 32A e c RG D.U.T + a 300 -VDD a IAS A A 2GS e tp 0.01Ω l 200 P l Fig 12a. Unclamped Inductive Test Circuit g V S 100 (BR)DSS , tp A E 0 25 50 75 100 125 150 175 Starting J , Junction Temperature (°C) AS Fig 12c. Maximum Avalanche Energy Fig 12b. Unclamped Inductive
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XLamp7090XR-E.pdf
xlamp 0 25 50 75 100 125 150 Ambient Temperature (°C) Relative Flux vs. Current (T = 25˚C) J )250 ( x l200 F s u150 n Green i m100 White & Blue L v 50 t l Typical Spatial Radiation Pattern R 0 0 200 400 600 800 1000 Forward Current (mA) Typical Spatial Distribution 120 ) % ( t 100 i n t 80 n I s White o
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datenblatt-505399-panasonic-aqz204d-photomos-relais-1-st-1-schliesser-400-vdc-400-vac-450-ma-polzahl-4.pdf
Riso 1,000 MΩ 500 V DC VIN= 5 V Maximum operating Maximum — 0.5 cps Duty factor = 50% speed I×V L= 200 (VA) Vibration resistance Minimum — 10 to 55 Hz at double amplitude of 3 mm 2 hours for 3 axes 2 Shock resistance Minimum — 4,900 m/s {500 G}1 ms 3 times for 3 axes Recommendable Operate voltage V
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505399-panasonic-aqz204d-photomos-relais-1-st-1-schliesser-400-vdc-400-vac-450-ma-polzahl-4.pdf
Riso 1,000 MΩ 500 V DC VIN= 5 V Maximum operating Maximum — 0.5 cps Duty factor = 50% speed I×V L= 200 (VA) Vibration resistance Minimum — 10 to 55 Hz at double amplitude of 3 mm 2 hours for 3 axes 2 Shock resistance Minimum — 4,900 m/s {500 G}1 ms 3 times for 3 axes Recommendable Operate voltage V
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